xref: /xnu-8792.61.2/iokit/Kernel/IOPMrootDomain.cpp (revision 42e220869062b56f8d7d0726fd4c88954f87902c)
1 /*
2  * Copyright (c) 1998-2021 Apple Inc. All rights reserved.
3  *
4  * @APPLE_OSREFERENCE_LICENSE_HEADER_START@
5  *
6  * This file contains Original Code and/or Modifications of Original Code
7  * as defined in and that are subject to the Apple Public Source License
8  * Version 2.0 (the 'License'). You may not use this file except in
9  * compliance with the License. The rights granted to you under the License
10  * may not be used to create, or enable the creation or redistribution of,
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12  * circumvent, violate, or enable the circumvention or violation of, any
13  * terms of an Apple operating system software license agreement.
14  *
15  * Please obtain a copy of the License at
16  * http://www.opensource.apple.com/apsl/ and read it before using this file.
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18  * The Original Code and all software distributed under the License are
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20  * EXPRESS OR IMPLIED, AND APPLE HEREBY DISCLAIMS ALL SUCH WARRANTIES,
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27  */
28 
29 #define IOKIT_ENABLE_SHARED_PTR
30 
31 #include <libkern/c++/OSAllocation.h>
32 #include <libkern/c++/OSKext.h>
33 #include <libkern/c++/OSMetaClass.h>
34 #include <libkern/OSAtomic.h>
35 #include <libkern/OSDebug.h>
36 #include <IOKit/IOWorkLoop.h>
37 #include <IOKit/IOCommandGate.h>
38 #include <IOKit/IOTimerEventSource.h>
39 #include <IOKit/IOPlatformExpert.h>
40 #include <IOKit/IOCPU.h>
41 #include <IOKit/IOPlatformActions.h>
42 #include <IOKit/IOKitDebug.h>
43 #include <IOKit/IOTimeStamp.h>
44 #include <IOKit/pwr_mgt/IOPMlog.h>
45 #include <IOKit/pwr_mgt/RootDomain.h>
46 #include <IOKit/pwr_mgt/IOPMPrivate.h>
47 #include <IOKit/IODeviceTreeSupport.h>
48 #include <IOKit/IOMessage.h>
49 #include <IOKit/IOReturn.h>
50 #include <IOKit/IONVRAM.h>
51 #include "RootDomainUserClient.h"
52 #include "IOKit/pwr_mgt/IOPowerConnection.h"
53 #include "IOPMPowerStateQueue.h"
54 #include <IOKit/IOCatalogue.h>
55 #include <IOKit/IOReportMacros.h>
56 #include <IOKit/IOLib.h>
57 #include <IOKit/IOKitKeys.h>
58 #include <IOKit/IOUserServer.h>
59 #include "IOKitKernelInternal.h"
60 #if HIBERNATION
61 #include <IOKit/IOHibernatePrivate.h>
62 #endif /* HIBERNATION */
63 #include <console/video_console.h>
64 #include <sys/syslog.h>
65 #include <sys/sysctl.h>
66 #include <sys/vnode.h>
67 #include <sys/vnode_internal.h>
68 #include <sys/fcntl.h>
69 #include <os/log.h>
70 #include <pexpert/protos.h>
71 #include <AssertMacros.h>
72 
73 #include <sys/time.h>
74 #include "IOServicePrivate.h"   // _IOServiceInterestNotifier
75 #include "IOServicePMPrivate.h"
76 
77 #include <libkern/zlib.h>
78 #include <os/cpp_util.h>
79 #include <os/atomic_private.h>
80 #include <libkern/c++/OSBoundedArrayRef.h>
81 
82 __BEGIN_DECLS
83 #include <mach/shared_region.h>
84 #include <kern/clock.h>
85 __END_DECLS
86 
87 #if defined(__i386__) || defined(__x86_64__)
88 __BEGIN_DECLS
89 #include "IOPMrootDomainInternal.h"
90 const char *processor_to_datastring(const char *prefix, processor_t target_processor);
91 __END_DECLS
92 #endif
93 
94 #define kIOPMrootDomainClass    "IOPMrootDomain"
95 #define LOG_PREFIX              "PMRD: "
96 
97 
98 #define MSG(x...) \
99     do { kprintf(LOG_PREFIX x); IOLog(x); } while (false)
100 
101 #define LOG(x...)    \
102     do { kprintf(LOG_PREFIX x); } while (false)
103 
104 #if DEVELOPMENT || DEBUG
105 #define DEBUG_LOG(x...) do { \
106     if (kIOLogPMRootDomain & gIOKitDebug) \
107     kprintf(LOG_PREFIX x); \
108     os_log_debug(OS_LOG_DEFAULT, LOG_PREFIX x); \
109 } while (false)
110 #else
111 #define DEBUG_LOG(x...)
112 #endif
113 
114 #define DLOG(x...)  do { \
115     if (kIOLogPMRootDomain & gIOKitDebug) \
116 	kprintf(LOG_PREFIX x); \
117     else \
118 	os_log(OS_LOG_DEFAULT, LOG_PREFIX x); \
119 } while (false)
120 
121 #define DMSG(x...)  do { \
122     if (kIOLogPMRootDomain & gIOKitDebug) { \
123 	kprintf(LOG_PREFIX x); \
124     } \
125 } while (false)
126 
127 
128 #define _LOG(x...)
129 
130 #define CHECK_THREAD_CONTEXT
131 #ifdef  CHECK_THREAD_CONTEXT
132 static IOWorkLoop * gIOPMWorkLoop = NULL;
133 #define ASSERT_GATED()                                      \
134 do {                                                        \
135     if (gIOPMWorkLoop && gIOPMWorkLoop->inGate() != true) { \
136 	panic("RootDomain: not inside PM gate");            \
137     }                                                       \
138 } while(false)
139 #else
140 #define ASSERT_GATED()
141 #endif /* CHECK_THREAD_CONTEXT */
142 
143 #define CAP_LOSS(c)  \
144 	(((_pendingCapability & (c)) == 0) && \
145 	 ((_currentCapability & (c)) != 0))
146 
147 #define CAP_GAIN(c)  \
148 	(((_currentCapability & (c)) == 0) && \
149 	 ((_pendingCapability & (c)) != 0))
150 
151 #define CAP_CHANGE(c)    \
152 	(((_currentCapability ^ _pendingCapability) & (c)) != 0)
153 
154 #define CAP_CURRENT(c)  \
155 	((_currentCapability & (c)) != 0)
156 
157 #define CAP_HIGHEST(c)  \
158 	((_highestCapability & (c)) != 0)
159 
160 #define CAP_PENDING(c)  \
161 	((_pendingCapability & (c)) != 0)
162 
163 // rdar://problem/9157444
164 #if defined(__i386__) || defined(__x86_64__)
165 #define DARK_TO_FULL_EVALUATE_CLAMSHELL_DELAY   20
166 #endif
167 
168 // Event types for IOPMPowerStateQueue::submitPowerEvent()
169 enum {
170 	kPowerEventFeatureChanged = 1,             // 1
171 	kPowerEventReceivedPowerNotification,      // 2
172 	kPowerEventSystemBootCompleted,            // 3
173 	kPowerEventSystemShutdown,                 // 4
174 	kPowerEventUserDisabledSleep,              // 5
175 	kPowerEventRegisterSystemCapabilityClient, // 6
176 	kPowerEventRegisterKernelCapabilityClient, // 7
177 	kPowerEventPolicyStimulus,                 // 8
178 	kPowerEventAssertionCreate,                // 9
179 	kPowerEventAssertionRelease,               // 10
180 	kPowerEventAssertionSetLevel,              // 11
181 	kPowerEventQueueSleepWakeUUID,             // 12
182 	kPowerEventPublishSleepWakeUUID,           // 13
183 	kPowerEventSetDisplayPowerOn,              // 14
184 	kPowerEventPublishWakeType,                // 15
185 	kPowerEventAOTEvaluate                     // 16
186 };
187 
188 // For evaluatePolicy()
189 // List of stimuli that affects the root domain policy.
190 enum {
191 	kStimulusDisplayWranglerSleep,      // 0
192 	kStimulusDisplayWranglerWake,       // 1
193 	kStimulusAggressivenessChanged,     // 2
194 	kStimulusDemandSystemSleep,         // 3
195 	kStimulusAllowSystemSleepChanged,   // 4
196 	kStimulusDarkWakeActivityTickle,    // 5
197 	kStimulusDarkWakeEntry,             // 6
198 	kStimulusDarkWakeReentry,           // 7
199 	kStimulusDarkWakeEvaluate,          // 8
200 	kStimulusNoIdleSleepPreventers,     // 9
201 	kStimulusEnterUserActiveState,      // 10
202 	kStimulusLeaveUserActiveState       // 11
203 };
204 
205 // Internal power state change reasons
206 // Must be less than kIOPMSleepReasonClamshell=101
207 enum {
208 	kCPSReasonNone = 0,                 // 0
209 	kCPSReasonInit,                     // 1
210 	kCPSReasonWake,                     // 2
211 	kCPSReasonIdleSleepPrevent,         // 3
212 	kCPSReasonIdleSleepAllow,           // 4
213 	kCPSReasonPowerOverride,            // 5
214 	kCPSReasonPowerDownCancel,          // 6
215 	kCPSReasonAOTExit,                  // 7
216 	kCPSReasonAdjustPowerState,         // 8
217 	kCPSReasonDarkWakeCannotSleep,      // 9
218 	kCPSReasonIdleSleepEnabled,         // 10
219 	kCPSReasonEvaluatePolicy,           // 11
220 	kCPSReasonSustainFullWake,          // 12
221 	kCPSReasonPMInternals = (kIOPMSleepReasonClamshell - 1)
222 };
223 
224 extern "C" {
225 IOReturn OSKextSystemSleepOrWake( UInt32 );
226 }
227 extern "C" ppnum_t      pmap_find_phys(pmap_t pmap, addr64_t va);
228 extern "C" addr64_t     kvtophys(vm_offset_t va);
229 extern "C" boolean_t    kdp_has_polled_corefile();
230 
231 static void idleSleepTimerExpired( thread_call_param_t, thread_call_param_t );
232 static void notifySystemShutdown( IOService * root, uint32_t messageType );
233 static void handleAggressivesFunction( thread_call_param_t, thread_call_param_t );
234 static void pmEventTimeStamp(uint64_t *recordTS);
235 static void powerButtonUpCallout( thread_call_param_t, thread_call_param_t );
236 static void powerButtonDownCallout( thread_call_param_t, thread_call_param_t );
237 static OSPtr<const OSSymbol> copyKextIdentifierWithAddress(vm_address_t address);
238 
239 static int  IOPMConvertSecondsToCalendar(clock_sec_t secs, IOPMCalendarStruct * dt);
240 static clock_sec_t IOPMConvertCalendarToSeconds(const IOPMCalendarStruct * dt);
241 #define YMDTF       "%04d/%02d/%d %02d:%02d:%02d"
242 #define YMDT(cal)   ((int)(cal)->year), (cal)->month, (cal)->day, (cal)->hour, (cal)->minute, (cal)->second
243 
244 // "IOPMSetSleepSupported"  callPlatformFunction name
245 static OSSharedPtr<const OSSymbol>         sleepSupportedPEFunction;
246 static OSSharedPtr<const OSSymbol>         sleepMessagePEFunction;
247 static OSSharedPtr<const OSSymbol>         gIOPMWakeTypeUserKey;
248 
249 static OSSharedPtr<const OSSymbol>         gIOPMPSExternalConnectedKey;
250 static OSSharedPtr<const OSSymbol>         gIOPMPSExternalChargeCapableKey;
251 static OSSharedPtr<const OSSymbol>         gIOPMPSBatteryInstalledKey;
252 static OSSharedPtr<const OSSymbol>         gIOPMPSIsChargingKey;
253 static OSSharedPtr<const OSSymbol>         gIOPMPSAtWarnLevelKey;
254 static OSSharedPtr<const OSSymbol>         gIOPMPSAtCriticalLevelKey;
255 static OSSharedPtr<const OSSymbol>         gIOPMPSCurrentCapacityKey;
256 static OSSharedPtr<const OSSymbol>         gIOPMPSMaxCapacityKey;
257 static OSSharedPtr<const OSSymbol>         gIOPMPSDesignCapacityKey;
258 static OSSharedPtr<const OSSymbol>         gIOPMPSTimeRemainingKey;
259 static OSSharedPtr<const OSSymbol>         gIOPMPSAmperageKey;
260 static OSSharedPtr<const OSSymbol>         gIOPMPSVoltageKey;
261 static OSSharedPtr<const OSSymbol>         gIOPMPSCycleCountKey;
262 static OSSharedPtr<const OSSymbol>         gIOPMPSMaxErrKey;
263 static OSSharedPtr<const OSSymbol>         gIOPMPSAdapterInfoKey;
264 static OSSharedPtr<const OSSymbol>         gIOPMPSLocationKey;
265 static OSSharedPtr<const OSSymbol>         gIOPMPSErrorConditionKey;
266 static OSSharedPtr<const OSSymbol>         gIOPMPSManufacturerKey;
267 static OSSharedPtr<const OSSymbol>         gIOPMPSManufactureDateKey;
268 static OSSharedPtr<const OSSymbol>         gIOPMPSModelKey;
269 static OSSharedPtr<const OSSymbol>         gIOPMPSSerialKey;
270 static OSSharedPtr<const OSSymbol>         gIOPMPSLegacyBatteryInfoKey;
271 static OSSharedPtr<const OSSymbol>         gIOPMPSBatteryHealthKey;
272 static OSSharedPtr<const OSSymbol>         gIOPMPSHealthConfidenceKey;
273 static OSSharedPtr<const OSSymbol>         gIOPMPSCapacityEstimatedKey;
274 static OSSharedPtr<const OSSymbol>         gIOPMPSBatteryChargeStatusKey;
275 static OSSharedPtr<const OSSymbol>         gIOPMPSBatteryTemperatureKey;
276 static OSSharedPtr<const OSSymbol>         gIOPMPSAdapterDetailsKey;
277 static OSSharedPtr<const OSSymbol>         gIOPMPSChargerConfigurationKey;
278 static OSSharedPtr<const OSSymbol>         gIOPMPSAdapterDetailsIDKey;
279 static OSSharedPtr<const OSSymbol>         gIOPMPSAdapterDetailsWattsKey;
280 static OSSharedPtr<const OSSymbol>         gIOPMPSAdapterDetailsRevisionKey;
281 static OSSharedPtr<const OSSymbol>         gIOPMPSAdapterDetailsSerialNumberKey;
282 static OSSharedPtr<const OSSymbol>         gIOPMPSAdapterDetailsFamilyKey;
283 static OSSharedPtr<const OSSymbol>         gIOPMPSAdapterDetailsAmperageKey;
284 static OSSharedPtr<const OSSymbol>         gIOPMPSAdapterDetailsDescriptionKey;
285 static OSSharedPtr<const OSSymbol>         gIOPMPSAdapterDetailsPMUConfigurationKey;
286 static OSSharedPtr<const OSSymbol>         gIOPMPSAdapterDetailsSourceIDKey;
287 static OSSharedPtr<const OSSymbol>         gIOPMPSAdapterDetailsErrorFlagsKey;
288 static OSSharedPtr<const OSSymbol>         gIOPMPSAdapterDetailsSharedSourceKey;
289 static OSSharedPtr<const OSSymbol>         gIOPMPSAdapterDetailsCloakedKey;
290 static OSSharedPtr<const OSSymbol>         gIOPMPSInvalidWakeSecondsKey;
291 static OSSharedPtr<const OSSymbol>         gIOPMPSPostChargeWaitSecondsKey;
292 static OSSharedPtr<const OSSymbol>         gIOPMPSPostDishargeWaitSecondsKey;
293 
294 #define kIOSleepSupportedKey        "IOSleepSupported"
295 #define kIOPMSystemCapabilitiesKey  "System Capabilities"
296 #define kIOPMSystemDefaultOverrideKey   "SystemPowerProfileOverrideDict"
297 
298 #define kIORequestWranglerIdleKey   "IORequestIdle"
299 #define kDefaultWranglerIdlePeriod  1000 // in milliseconds
300 
301 #define kIOSleepWakeFailureString   "SleepWakeFailureString"
302 #define kIOEFIBootRomFailureKey     "wake-failure"
303 #define kIOSleepWakeFailurePanic    "SleepWakeFailurePanic"
304 
305 #define kRD_AllPowerSources (kIOPMSupportedOnAC \
306 	                   | kIOPMSupportedOnBatt \
307 	                   | kIOPMSupportedOnUPS)
308 
309 #define kLocalEvalClamshellCommand  (1 << 15)
310 #define kIdleSleepRetryInterval     (3 * 60 * 1000)
311 
312 // Minimum time in milliseconds after AP wake that we allow idle timer to expire.
313 // We impose this minimum to avoid race conditions in the AP wake path where
314 // userspace clients are not able to acquire power assertions before the idle timer expires.
315 #define kMinimumTimeBeforeIdleSleep     1000
316 
317 #define DISPLAY_WRANGLER_PRESENT    (!NO_KERNEL_HID)
318 
319 enum {
320 	kWranglerPowerStateMin   = 0,
321 	kWranglerPowerStateSleep = 2,
322 	kWranglerPowerStateDim   = 3,
323 	kWranglerPowerStateMax   = 4
324 };
325 
326 enum {
327 	OFF_STATE           = 0,
328 	RESTART_STATE       = 1,
329 	SLEEP_STATE         = 2,
330 	AOT_STATE           = 3,
331 	ON_STATE            = 4,
332 	NUM_POWER_STATES
333 };
334 
335 const char *
getPowerStateString(uint32_t state)336 getPowerStateString( uint32_t state )
337 {
338 #define POWER_STATE(x) {(uint32_t) x, #x}
339 
340 	static const IONamedValue powerStates[] = {
341 		POWER_STATE( OFF_STATE ),
342 		POWER_STATE( RESTART_STATE ),
343 		POWER_STATE( SLEEP_STATE ),
344 		POWER_STATE( AOT_STATE ),
345 		POWER_STATE( ON_STATE ),
346 		{ 0, NULL }
347 	};
348 	return IOFindNameForValue(state, powerStates);
349 }
350 
351 #define ON_POWER        kIOPMPowerOn
352 #define RESTART_POWER   kIOPMRestart
353 #define SLEEP_POWER     kIOPMAuxPowerOn
354 
355 static IOPMPowerState
356     ourPowerStates[NUM_POWER_STATES] =
357 {
358 	{   .version                = 1,
359 	    .capabilityFlags        = 0,
360 	    .outputPowerCharacter   = 0,
361 	    .inputPowerRequirement  = 0 },
362 	{   .version                = 1,
363 	    .capabilityFlags        = kIOPMRestartCapability,
364 	    .outputPowerCharacter   = kIOPMRestart,
365 	    .inputPowerRequirement  = RESTART_POWER },
366 	{   .version                = 1,
367 	    .capabilityFlags        = kIOPMSleepCapability,
368 	    .outputPowerCharacter   = kIOPMSleep,
369 	    .inputPowerRequirement  = SLEEP_POWER },
370 	{   .version                = 1,
371 	    .capabilityFlags        = kIOPMAOTCapability,
372 	    .outputPowerCharacter   = kIOPMAOTPower,
373 	    .inputPowerRequirement  = ON_POWER },
374 	{   .version                = 1,
375 	    .capabilityFlags        = kIOPMPowerOn,
376 	    .outputPowerCharacter   = kIOPMPowerOn,
377 	    .inputPowerRequirement  = ON_POWER },
378 };
379 
380 #define kIOPMRootDomainWakeTypeSleepService     "SleepService"
381 #define kIOPMRootDomainWakeTypeMaintenance      "Maintenance"
382 #define kIOPMRootDomainWakeTypeSleepTimer       "SleepTimer"
383 #define kIOPMrootDomainWakeTypeLowBattery       "LowBattery"
384 #define kIOPMRootDomainWakeTypeUser             "User"
385 #define kIOPMRootDomainWakeTypeAlarm            "Alarm"
386 #define kIOPMRootDomainWakeTypeNetwork          "Network"
387 #define kIOPMRootDomainWakeTypeHIDActivity      "HID Activity"
388 #define kIOPMRootDomainWakeTypeNotification     "Notification"
389 #define kIOPMRootDomainWakeTypeHibernateError   "HibernateError"
390 
391 // Special interest that entitles the interested client from receiving
392 // all system messages. Only used by powerd.
393 //
394 #define kIOPMSystemCapabilityInterest       "IOPMSystemCapabilityInterest"
395 
396 // Entitlement required for root domain clients
397 #define kRootDomainEntitlementSetProperty   "com.apple.private.iokit.rootdomain-set-property"
398 
399 #define WAKEEVENT_LOCK()        IOLockLock(wakeEventLock)
400 #define WAKEEVENT_UNLOCK()      IOLockUnlock(wakeEventLock)
401 
402 /*
403  * Aggressiveness
404  */
405 #define AGGRESSIVES_LOCK()      IOLockLock(featuresDictLock)
406 #define AGGRESSIVES_UNLOCK()    IOLockUnlock(featuresDictLock)
407 
408 #define kAggressivesMinValue    1
409 
410 const char *
getAggressivenessTypeString(uint32_t type)411 getAggressivenessTypeString( uint32_t type )
412 {
413 #define AGGRESSIVENESS_TYPE(x) {(uint32_t) x, #x}
414 
415 	static const IONamedValue aggressivenessTypes[] = {
416 		AGGRESSIVENESS_TYPE( kPMGeneralAggressiveness ),
417 		AGGRESSIVENESS_TYPE( kPMMinutesToDim ),
418 		AGGRESSIVENESS_TYPE( kPMMinutesToSpinDown ),
419 		AGGRESSIVENESS_TYPE( kPMMinutesToSleep ),
420 		AGGRESSIVENESS_TYPE( kPMEthernetWakeOnLANSettings ),
421 		AGGRESSIVENESS_TYPE( kPMSetProcessorSpeed ),
422 		AGGRESSIVENESS_TYPE( kPMPowerSource),
423 		AGGRESSIVENESS_TYPE( kPMMotionSensor ),
424 		AGGRESSIVENESS_TYPE( kPMLastAggressivenessType ),
425 		{ 0, NULL }
426 	};
427 	return IOFindNameForValue(type, aggressivenessTypes);
428 }
429 
430 enum {
431 	kAggressivesStateBusy           = 0x01,
432 	kAggressivesStateQuickSpindown  = 0x02
433 };
434 
435 struct AggressivesRecord {
436 	uint32_t    flags;
437 	uint32_t    type;
438 	uint32_t    value;
439 };
440 
441 struct AggressivesRequest {
442 	queue_chain_t           chain;
443 	uint32_t                options;
444 	uint32_t                dataType;
445 	union {
446 		OSSharedPtr<IOService> service;
447 		AggressivesRecord      record;
448 	} data;
449 };
450 
451 enum {
452 	kAggressivesRequestTypeService  = 1,
453 	kAggressivesRequestTypeRecord
454 };
455 
456 enum {
457 	kAggressivesOptionSynchronous          = 0x00000001,
458 	kAggressivesOptionQuickSpindownEnable  = 0x00000100,
459 	kAggressivesOptionQuickSpindownDisable = 0x00000200,
460 	kAggressivesOptionQuickSpindownMask    = 0x00000300
461 };
462 
463 enum {
464 	kAggressivesRecordFlagModified         = 0x00000001,
465 	kAggressivesRecordFlagMinValue         = 0x00000002
466 };
467 
468 // System Sleep Preventers
469 
470 enum {
471 	kPMUserDisabledAllSleep = 1,
472 	kPMSystemRestartBootingInProgress,
473 	kPMConfigPreventSystemSleep,
474 	kPMChildPreventSystemSleep,
475 	kPMCPUAssertion,
476 	kPMPCIUnsupported,
477 };
478 
479 const char *
getSystemSleepPreventerString(uint32_t preventer)480 getSystemSleepPreventerString( uint32_t preventer )
481 {
482 #define SYSTEM_SLEEP_PREVENTER(x) {(int) x, #x}
483 	static const IONamedValue systemSleepPreventers[] = {
484 		SYSTEM_SLEEP_PREVENTER( kPMUserDisabledAllSleep ),
485 		SYSTEM_SLEEP_PREVENTER( kPMSystemRestartBootingInProgress ),
486 		SYSTEM_SLEEP_PREVENTER( kPMConfigPreventSystemSleep ),
487 		SYSTEM_SLEEP_PREVENTER( kPMChildPreventSystemSleep ),
488 		SYSTEM_SLEEP_PREVENTER( kPMCPUAssertion ),
489 		SYSTEM_SLEEP_PREVENTER( kPMPCIUnsupported ),
490 		{ 0, NULL }
491 	};
492 	return IOFindNameForValue(preventer, systemSleepPreventers);
493 }
494 
495 // gDarkWakeFlags
496 enum {
497 	kDarkWakeFlagPromotionNone       = 0x0000,
498 	kDarkWakeFlagPromotionEarly      = 0x0001, // promote before gfx clamp
499 	kDarkWakeFlagPromotionLate       = 0x0002, // promote after gfx clamp
500 	kDarkWakeFlagPromotionMask       = 0x0003,
501 	kDarkWakeFlagAlarmIsDark         = 0x0100,
502 	kDarkWakeFlagAudioNotSuppressed  = 0x0200,
503 	kDarkWakeFlagUserWakeWorkaround  = 0x1000
504 };
505 
506 // gClamshellFlags
507 // The workaround for 9157444 is enabled at compile time using the
508 // DARK_TO_FULL_EVALUATE_CLAMSHELL_DELAY macro and is not represented below.
509 enum {
510 	kClamshell_WAR_38378787 = 0x00000001,
511 	kClamshell_WAR_47715679 = 0x00000002,
512 	kClamshell_WAR_58009435 = 0x00000004
513 };
514 
515 // acceptSystemWakeEvents()
516 enum {
517 	kAcceptSystemWakeEvents_Disable = 0,
518 	kAcceptSystemWakeEvents_Enable,
519 	kAcceptSystemWakeEvents_Reenable
520 };
521 
522 static IOPMrootDomain * gRootDomain;
523 static IORootParent *   gPatriarch;
524 static IONotifier *     gSysPowerDownNotifier = NULL;
525 static UInt32           gSleepOrShutdownPending = 0;
526 static UInt32           gWillShutdown = 0;
527 static UInt32           gPagingOff = 0;
528 static UInt32           gSleepWakeUUIDIsSet = false;
529 static uint32_t         gAggressivesState = 0;
530 uint32_t                gHaltTimeMaxLog;
531 uint32_t                gHaltTimeMaxPanic;
532 IOLock *                gHaltLogLock;
533 static char *           gHaltLog;
534 enum                  { kHaltLogSize = 2048 };
535 static size_t           gHaltLogPos;
536 static uint64_t         gHaltStartTime;
537 static char             gKextNameBuf[64];
538 static size_t           gKextNamePos;
539 static bool             gKextNameEnd;
540 
541 uuid_string_t bootsessionuuid_string;
542 
543 #if defined(XNU_TARGET_OS_OSX)
544 #if DISPLAY_WRANGLER_PRESENT
545 static uint32_t         gDarkWakeFlags = kDarkWakeFlagPromotionNone;
546 #elif defined(__arm64__)
547 // Enable temporary full wake promotion workarounds
548 static uint32_t         gDarkWakeFlags = kDarkWakeFlagUserWakeWorkaround;
549 #else
550 // Enable full wake promotion workarounds
551 static uint32_t         gDarkWakeFlags = kDarkWakeFlagUserWakeWorkaround;
552 #endif
553 #else  /* !defined(XNU_TARGET_OS_OSX) */
554 static uint32_t         gDarkWakeFlags = kDarkWakeFlagPromotionEarly;
555 #endif /* !defined(XNU_TARGET_OS_OSX) */
556 
557 static uint32_t         gNoIdleFlag = 0;
558 static uint32_t         gSleepDisabledFlag = 0;
559 static uint32_t         gSwdPanic = 1;
560 static uint32_t         gSwdSleepTimeout = 0;
561 static uint32_t         gSwdWakeTimeout = 0;
562 static uint32_t         gSwdSleepWakeTimeout = 0;
563 static PMStatsStruct    gPMStats;
564 #if DEVELOPMENT || DEBUG
565 static uint32_t swd_panic_phase;
566 #endif
567 
568 static uint32_t         gClamshellFlags = 0
569 #if defined(__i386__) || defined(__x86_64__)
570     | kClamshell_WAR_58009435
571 #endif
572 ;
573 
574 #if HIBERNATION
575 
576 #if defined(__arm64__)
577 static IOReturn
defaultSleepPolicyHandler(void * ctx,const IOPMSystemSleepPolicyVariables * vars,IOPMSystemSleepParameters * params)578 defaultSleepPolicyHandler(void *ctx, const IOPMSystemSleepPolicyVariables *vars, IOPMSystemSleepParameters *params)
579 {
580 	uint32_t sleepType = kIOPMSleepTypeDeepIdle;
581 
582 	assert(vars->signature == kIOPMSystemSleepPolicySignature);
583 	assert(vars->version == kIOPMSystemSleepPolicyVersion);
584 
585 	// Hibernation enabled and either user forced hibernate or low battery sleep
586 	if ((vars->hibernateMode & kIOHibernateModeOn) &&
587 	    (((vars->hibernateMode & kIOHibernateModeSleep) == 0) ||
588 	    (vars->sleepFactors & kIOPMSleepFactorBatteryLow))) {
589 		sleepType = kIOPMSleepTypeHibernate;
590 	}
591 	params->version = kIOPMSystemSleepParametersVersion;
592 	params->sleepType = sleepType;
593 	return kIOReturnSuccess;
594 }
595 static IOPMSystemSleepPolicyHandler     gSleepPolicyHandler = &defaultSleepPolicyHandler;
596 #else /* defined(__arm64__) */
597 static IOPMSystemSleepPolicyHandler     gSleepPolicyHandler = NULL;
598 #endif /* defined(__arm64__) */
599 
600 static IOPMSystemSleepPolicyVariables * gSleepPolicyVars = NULL;
601 static void *                           gSleepPolicyTarget;
602 #endif
603 
604 struct timeval gIOLastSleepTime;
605 struct timeval gIOLastWakeTime;
606 AbsoluteTime gIOLastWakeAbsTime;
607 AbsoluteTime gIOLastSleepAbsTime;
608 
609 struct timeval gIOLastUserSleepTime;
610 
611 static char gWakeReasonString[128];
612 static char gBootReasonString[80];
613 static char gShutdownReasonString[80];
614 static bool gWakeReasonSysctlRegistered = false;
615 static bool gBootReasonSysctlRegistered = false;
616 static bool gShutdownReasonSysctlRegistered = false;
617 static bool gWillShutdownSysctlRegistered = false;
618 static AbsoluteTime gUserActiveAbsTime;
619 static AbsoluteTime gUserInactiveAbsTime;
620 
621 #if defined(__i386__) || defined(__x86_64__) || (defined(__arm64__) && HIBERNATION)
622 static bool gSpinDumpBufferFull = false;
623 #endif
624 
625 z_stream          swd_zs;
626 vm_offset_t swd_zs_zmem;
627 //size_t swd_zs_zsize;
628 size_t swd_zs_zoffset;
629 #if defined(__i386__) || defined(__x86_64__)
630 IOCPU *currentShutdownTarget = NULL;
631 #endif
632 
633 static unsigned int     gPMHaltBusyCount;
634 static unsigned int     gPMHaltIdleCount;
635 static int              gPMHaltDepth;
636 static uint32_t         gPMHaltMessageType;
637 static IOLock *         gPMHaltLock  = NULL;
638 static OSSharedPtr<OSArray>        gPMHaltArray;
639 static OSSharedPtr<const OSSymbol> gPMHaltClientAcknowledgeKey;
640 static bool             gPMQuiesced;
641 
642 // Constants used as arguments to IOPMrootDomain::informCPUStateChange
643 #define kCPUUnknownIndex    9999999
644 enum {
645 	kInformAC = 0,
646 	kInformLid = 1,
647 	kInformableCount = 2
648 };
649 
650 OSSharedPtr<const OSSymbol> gIOPMStatsResponseTimedOut;
651 OSSharedPtr<const OSSymbol> gIOPMStatsResponseCancel;
652 OSSharedPtr<const OSSymbol> gIOPMStatsResponseSlow;
653 OSSharedPtr<const OSSymbol> gIOPMStatsResponsePrompt;
654 OSSharedPtr<const OSSymbol> gIOPMStatsDriverPSChangeSlow;
655 
656 #define kBadPMFeatureID     0
657 
658 /*
659  * PMSettingHandle
660  * Opaque handle passed to clients of registerPMSettingController()
661  */
662 class PMSettingHandle : public OSObject
663 {
664 	OSDeclareFinalStructors( PMSettingHandle );
665 	friend class PMSettingObject;
666 
667 private:
668 	PMSettingObject *pmso;
669 	void free(void) APPLE_KEXT_OVERRIDE;
670 };
671 
672 /*
673  * PMSettingObject
674  * Internal object to track each PM setting controller
675  */
676 class PMSettingObject : public OSObject
677 {
678 	OSDeclareFinalStructors( PMSettingObject );
679 	friend class IOPMrootDomain;
680 
681 private:
682 	queue_head_t                    calloutQueue;
683 	thread_t                        waitThread;
684 	IOPMrootDomain                  *parent;
685 	PMSettingHandle                 *pmsh;
686 	IOPMSettingControllerCallback   func;
687 	OSObject                        *target;
688 	uintptr_t                       refcon;
689 	OSDataAllocation<uint32_t>      publishedFeatureID;
690 	uint32_t                        settingCount;
691 	bool                            disabled;
692 
693 	void free(void) APPLE_KEXT_OVERRIDE;
694 
695 public:
696 	static PMSettingObject *pmSettingObject(
697 		IOPMrootDomain                  *parent_arg,
698 		IOPMSettingControllerCallback   handler_arg,
699 		OSObject                        *target_arg,
700 		uintptr_t                       refcon_arg,
701 		uint32_t                        supportedPowerSources,
702 		const OSSymbol                  *settings[],
703 		OSObject                        **handle_obj);
704 
705 	IOReturn dispatchPMSetting(const OSSymbol *type, OSObject *object);
706 	void clientHandleFreed(void);
707 };
708 
709 struct PMSettingCallEntry {
710 	queue_chain_t   link;
711 	thread_t        thread;
712 };
713 
714 #define PMSETTING_LOCK()    IOLockLock(settingsCtrlLock)
715 #define PMSETTING_UNLOCK()  IOLockUnlock(settingsCtrlLock)
716 #define PMSETTING_WAIT(p)   IOLockSleep(settingsCtrlLock, p, THREAD_UNINT)
717 #define PMSETTING_WAKEUP(p) IOLockWakeup(settingsCtrlLock, p, true)
718 
719 /*
720  * PMTraceWorker
721  * Internal helper object for logging trace points to RTC
722  * IOPMrootDomain and only IOPMrootDomain should instantiate
723  * exactly one of these.
724  */
725 
726 typedef void (*IOPMTracePointHandler)(
727 	void * target, uint32_t code, uint32_t data );
728 
729 class PMTraceWorker : public OSObject
730 {
731 	OSDeclareDefaultStructors(PMTraceWorker);
732 public:
733 	typedef enum { kPowerChangeStart, kPowerChangeCompleted } change_t;
734 
735 	static OSPtr<PMTraceWorker> tracer( IOPMrootDomain * );
736 	void                        tracePCIPowerChange(change_t, IOService *, uint32_t, uint32_t);
737 	void                        tracePoint(uint8_t phase);
738 	void                        traceDetail(uint32_t detail);
739 	void                        traceComponentWakeProgress(uint32_t component, uint32_t data);
740 	int                         recordTopLevelPCIDevice(IOService *);
741 	void                        RTC_TRACE(void);
742 	virtual bool                serialize(OSSerialize *s) const APPLE_KEXT_OVERRIDE;
743 
744 	IOPMTracePointHandler       tracePointHandler;
745 	void *                      tracePointTarget;
746 	uint64_t                    getPMStatusCode();
747 	uint8_t                     getTracePhase();
748 	uint32_t                    getTraceData();
749 private:
750 	IOPMrootDomain              *owner;
751 	IOLock                      *pmTraceWorkerLock;
752 	OSSharedPtr<OSArray>         pciDeviceBitMappings;
753 
754 	uint8_t                     addedToRegistry;
755 	uint8_t                     tracePhase;
756 	uint32_t                    traceData32;
757 	uint8_t                     loginWindowData;
758 	uint8_t                     coreDisplayData;
759 	uint8_t                     coreGraphicsData;
760 };
761 
762 /*
763  * this should be treated as POD, as it's byte-copied around
764  * and we cannot rely on d'tor firing at the right time
765  */
766 struct PMAssertStruct {
767 	IOPMDriverAssertionID       id;
768 	IOPMDriverAssertionType     assertionBits;
769 	uint64_t                    createdTime;
770 	uint64_t                    modifiedTime;
771 	const OSSymbol              *ownerString;
772 	IOService                   *ownerService;
773 	uint64_t                    registryEntryID;
774 	IOPMDriverAssertionLevel    level;
775 	uint64_t                    assertCPUStartTime;
776 	uint64_t                    assertCPUDuration;
777 };
778 OSDefineValueObjectForDependentType(PMAssertStruct)
779 
780 /*
781  * PMAssertionsTracker
782  * Tracks kernel and user space PM assertions
783  */
784 class PMAssertionsTracker : public OSObject
785 {
786 	OSDeclareFinalStructors(PMAssertionsTracker);
787 public:
788 	static PMAssertionsTracker  *pmAssertionsTracker( IOPMrootDomain * );
789 
790 	IOReturn                    createAssertion(IOPMDriverAssertionType, IOPMDriverAssertionLevel, IOService *, const char *, IOPMDriverAssertionID *);
791 	IOReturn                    releaseAssertion(IOPMDriverAssertionID);
792 	IOReturn                    setAssertionLevel(IOPMDriverAssertionID, IOPMDriverAssertionLevel);
793 	IOReturn                    setUserAssertionLevels(IOPMDriverAssertionType);
794 
795 	OSSharedPtr<OSArray>        copyAssertionsArray(void);
796 	IOPMDriverAssertionType     getActivatedAssertions(void);
797 	IOPMDriverAssertionLevel    getAssertionLevel(IOPMDriverAssertionType);
798 
799 	IOReturn                    handleCreateAssertion(OSValueObject<PMAssertStruct> *);
800 	IOReturn                    handleReleaseAssertion(IOPMDriverAssertionID);
801 	IOReturn                    handleSetAssertionLevel(IOPMDriverAssertionID, IOPMDriverAssertionLevel);
802 	IOReturn                    handleSetUserAssertionLevels(void * arg0);
803 	void                        publishProperties(void);
804 	void                        reportCPUBitAccounting(void);
805 
806 private:
807 	uint32_t                    tabulateProducerCount;
808 	uint32_t                    tabulateConsumerCount;
809 
810 	uint64_t                    maxAssertCPUDuration;
811 	uint64_t                    maxAssertCPUEntryId;
812 
813 	PMAssertStruct              *detailsForID(IOPMDriverAssertionID, int *);
814 	void                        tabulate(void);
815 	void                        updateCPUBitAccounting(PMAssertStruct * assertStruct);
816 
817 	IOPMrootDomain              *owner;
818 	OSSharedPtr<OSArray>        assertionsArray;
819 	IOLock                      *assertionsArrayLock;
820 	IOPMDriverAssertionID       issuingUniqueID __attribute__((aligned(8)));/* aligned for atomic access */
821 	IOPMDriverAssertionType     assertionsKernel;
822 	IOPMDriverAssertionType     assertionsUser;
823 	IOPMDriverAssertionType     assertionsCombined;
824 };
825 
826 OSDefineMetaClassAndFinalStructors(PMAssertionsTracker, OSObject);
827 
828 /*
829  * PMHaltWorker
830  * Internal helper object for Shutdown/Restart notifications.
831  */
832 #define kPMHaltMaxWorkers   8
833 #define kPMHaltTimeoutMS    100
834 
835 class PMHaltWorker : public OSObject
836 {
837 	OSDeclareFinalStructors( PMHaltWorker );
838 
839 public:
840 	IOService *  service;// service being worked on
841 	AbsoluteTime startTime; // time when work started
842 	int          depth;  // work on nubs at this PM-tree depth
843 	int          visits; // number of nodes visited (debug)
844 	IOLock *     lock;
845 	bool         timeout;// service took too long
846 
847 	static  PMHaltWorker * worker( void );
848 	static  void main( void * arg, wait_result_t waitResult );
849 	static  void work( PMHaltWorker * me );
850 	static  void checkTimeout( PMHaltWorker * me, AbsoluteTime * now );
851 	virtual void free( void ) APPLE_KEXT_OVERRIDE;
852 };
853 
OSDefineMetaClassAndFinalStructors(PMHaltWorker,OSObject)854 OSDefineMetaClassAndFinalStructors( PMHaltWorker, OSObject )
855 
856 
857 #define super IOService
858 OSDefineMetaClassAndFinalStructors(IOPMrootDomain, IOService)
859 
860 boolean_t
861 IOPMRootDomainGetWillShutdown(void)
862 {
863 	return gWillShutdown != 0;
864 }
865 
866 static void
IOPMRootDomainWillShutdown(void)867 IOPMRootDomainWillShutdown(void)
868 {
869 	if (OSCompareAndSwap(0, 1, &gWillShutdown)) {
870 		IOService::willShutdown();
871 		for (int i = 0; i < 100; i++) {
872 			if (OSCompareAndSwap(0, 1, &gSleepOrShutdownPending)) {
873 				break;
874 			}
875 			IOSleep( 100 );
876 		}
877 	}
878 }
879 
880 extern "C" IONotifier *
registerSleepWakeInterest(IOServiceInterestHandler handler,void * self,void * ref)881 registerSleepWakeInterest(IOServiceInterestHandler handler, void * self, void * ref)
882 {
883 	return gRootDomain->registerInterest( gIOGeneralInterest, handler, self, ref ).detach();
884 }
885 
886 extern "C" IONotifier *
registerPrioritySleepWakeInterest(IOServiceInterestHandler handler,void * self,void * ref)887 registerPrioritySleepWakeInterest(IOServiceInterestHandler handler, void * self, void * ref)
888 {
889 	return gRootDomain->registerInterest( gIOPriorityPowerStateInterest, handler, self, ref ).detach();
890 }
891 
892 extern "C" IOReturn
acknowledgeSleepWakeNotification(void * PMrefcon)893 acknowledgeSleepWakeNotification(void * PMrefcon)
894 {
895 	return gRootDomain->allowPowerChange((unsigned long)PMrefcon );
896 }
897 
898 extern "C" IOReturn
vetoSleepWakeNotification(void * PMrefcon)899 vetoSleepWakeNotification(void * PMrefcon)
900 {
901 	return gRootDomain->cancelPowerChange((unsigned long)PMrefcon );
902 }
903 
904 extern "C" IOReturn
rootDomainRestart(void)905 rootDomainRestart( void )
906 {
907 	return gRootDomain->restartSystem();
908 }
909 
910 extern "C" IOReturn
rootDomainShutdown(void)911 rootDomainShutdown( void )
912 {
913 	return gRootDomain->shutdownSystem();
914 }
915 
916 static void
halt_log_putc(char c)917 halt_log_putc(char c)
918 {
919 	if (gHaltLogPos >= (kHaltLogSize - 2)) {
920 		return;
921 	}
922 	gHaltLog[gHaltLogPos++] = c;
923 }
924 
925 extern "C" void
926 _doprnt_log(const char     *fmt,
927     va_list                 *argp,
928     void                    (*putc)(char),
929     int                     radix);
930 
931 static int
halt_log(const char * fmt,...)932 halt_log(const char *fmt, ...)
933 {
934 	va_list listp;
935 
936 	va_start(listp, fmt);
937 	_doprnt_log(fmt, &listp, &halt_log_putc, 16);
938 	va_end(listp);
939 
940 	return 0;
941 }
942 
943 extern "C" void
halt_log_enter(const char * what,const void * pc,uint64_t time)944 halt_log_enter(const char * what, const void * pc, uint64_t time)
945 {
946 	uint64_t nano, millis;
947 
948 	if (!gHaltLog) {
949 		return;
950 	}
951 	absolutetime_to_nanoseconds(time, &nano);
952 	millis = nano / NSEC_PER_MSEC;
953 	if (millis < 100) {
954 		return;
955 	}
956 
957 	IOLockLock(gHaltLogLock);
958 	if (pc) {
959 		halt_log("%s: %qd ms @ 0x%lx, ", what, millis, VM_KERNEL_UNSLIDE(pc));
960 		OSKext::printKextsInBacktrace((vm_offset_t *) &pc, 1, &halt_log,
961 		    OSKext::kPrintKextsLock | OSKext::kPrintKextsUnslide | OSKext::kPrintKextsTerse);
962 	} else {
963 		halt_log("%s: %qd ms\n", what, millis);
964 	}
965 
966 	gHaltLog[gHaltLogPos] = 0;
967 	IOLockUnlock(gHaltLogLock);
968 }
969 
970 extern  uint32_t                           gFSState;
971 
972 extern "C" void
IOSystemShutdownNotification(int howto,int stage)973 IOSystemShutdownNotification(int howto, int stage)
974 {
975 	uint64_t startTime;
976 
977 	if (kIOSystemShutdownNotificationStageRootUnmount == stage) {
978 #if defined(XNU_TARGET_OS_OSX)
979 		uint64_t nano, millis;
980 		startTime = mach_absolute_time();
981 		IOService::getPlatform()->waitQuiet(30 * NSEC_PER_SEC);
982 		absolutetime_to_nanoseconds(mach_absolute_time() - startTime, &nano);
983 		millis = nano / NSEC_PER_MSEC;
984 		if (gHaltTimeMaxLog && (millis >= gHaltTimeMaxLog)) {
985 			printf("waitQuiet() for unmount %qd ms\n", millis);
986 		}
987 #endif /* defined(XNU_TARGET_OS_OSX) */
988 		return;
989 	}
990 
991 	if (kIOSystemShutdownNotificationTerminateDEXTs == stage) {
992 		uint64_t nano, millis;
993 		startTime = mach_absolute_time();
994 		IOServicePH::systemHalt(howto);
995 		absolutetime_to_nanoseconds(mach_absolute_time() - startTime, &nano);
996 		millis = nano / NSEC_PER_MSEC;
997 		if (true || (gHaltTimeMaxLog && (millis >= gHaltTimeMaxLog))) {
998 			printf("IOServicePH::systemHalt took %qd ms\n", millis);
999 		}
1000 		return;
1001 	}
1002 
1003 	assert(kIOSystemShutdownNotificationStageProcessExit == stage);
1004 
1005 	IOLockLock(gHaltLogLock);
1006 	if (!gHaltLog) {
1007 		gHaltLog = IONewData(char, (vm_size_t)kHaltLogSize);
1008 		gHaltStartTime = mach_absolute_time();
1009 		if (gHaltLog) {
1010 			halt_log_putc('\n');
1011 		}
1012 	}
1013 	IOLockUnlock(gHaltLogLock);
1014 
1015 	startTime = mach_absolute_time();
1016 	IOPMRootDomainWillShutdown();
1017 	halt_log_enter("IOPMRootDomainWillShutdown", NULL, mach_absolute_time() - startTime);
1018 #if HIBERNATION
1019 	startTime = mach_absolute_time();
1020 	IOHibernateSystemPostWake(true);
1021 	halt_log_enter("IOHibernateSystemPostWake", NULL, mach_absolute_time() - startTime);
1022 #endif
1023 	if (OSCompareAndSwap(0, 1, &gPagingOff)) {
1024 		gRootDomain->handlePlatformHaltRestart(kPEPagingOff);
1025 	}
1026 }
1027 
1028 extern "C" int sync_internal(void);
1029 
1030 /*
1031  *  A device is always in the highest power state which satisfies its driver,
1032  *  its policy-maker, and any power children it has, but within the constraint
1033  *  of the power state provided by its parent.  The driver expresses its desire by
1034  *  calling changePowerStateTo(), the policy-maker expresses its desire by calling
1035  *  changePowerStateToPriv(), and the children express their desires by calling
1036  *  requestPowerDomainState().
1037  *
1038  *  The Root Power Domain owns the policy for idle and demand sleep for the system.
1039  *  It is a power-managed IOService just like the others in the system.
1040  *  It implements several power states which map to what we see as Sleep and On.
1041  *
1042  *  The sleep policy is as follows:
1043  *  1. Sleep is prevented if the case is open so that nobody will think the machine
1044  *  is off and plug/unplug cards.
1045  *  2. Sleep is prevented if the sleep timeout slider in the prefs panel is zero.
1046  *  3. System cannot Sleep if some object in the tree is in a power state marked
1047  *  kIOPMPreventSystemSleep.
1048  *
1049  *  These three conditions are enforced using the "driver clamp" by calling
1050  *  changePowerStateTo(). For example, if the case is opened,
1051  *  changePowerStateTo(ON_STATE) is called to hold the system on regardless
1052  *  of the desires of the children of the root or the state of the other clamp.
1053  *
1054  *  Demand Sleep is initiated by pressing the front panel power button, closing
1055  *  the clamshell, or selecting the menu item. In this case the root's parent
1056  *  actually initiates the power state change so that the root domain has no
1057  *  choice and does not give applications the opportunity to veto the change.
1058  *
1059  *  Idle Sleep occurs if no objects in the tree are in a state marked
1060  *  kIOPMPreventIdleSleep.  When this is true, the root's children are not holding
1061  *  the root on, so it sets the "policy-maker clamp" by calling
1062  *  changePowerStateToPriv(ON_STATE) to hold itself on until the sleep timer expires.
1063  *  This timer is set for the difference between the sleep timeout slider and the
1064  *  display dim timeout slider. When the timer expires, it releases its clamp and
1065  *  now nothing is holding it awake, so it falls asleep.
1066  *
1067  *  Demand sleep is prevented when the system is booting.  When preferences are
1068  *  transmitted by the loginwindow at the end of boot, a flag is cleared,
1069  *  and this allows subsequent Demand Sleep.
1070  */
1071 
1072 //******************************************************************************
1073 
1074 IOPMrootDomain *
construct(void)1075 IOPMrootDomain::construct( void )
1076 {
1077 	IOPMrootDomain  *root;
1078 
1079 	root = new IOPMrootDomain;
1080 	if (root) {
1081 		root->init();
1082 	}
1083 
1084 	return root;
1085 }
1086 
1087 //******************************************************************************
1088 // updateConsoleUsersCallout
1089 //
1090 //******************************************************************************
1091 
1092 static void
updateConsoleUsersCallout(thread_call_param_t p0,thread_call_param_t p1)1093 updateConsoleUsersCallout(thread_call_param_t p0, thread_call_param_t p1)
1094 {
1095 	IOPMrootDomain * rootDomain = (IOPMrootDomain *) p0;
1096 	rootDomain->updateConsoleUsers();
1097 }
1098 
1099 void
updateConsoleUsers(void)1100 IOPMrootDomain::updateConsoleUsers(void)
1101 {
1102 	IOService::updateConsoleUsers(NULL, kIOMessageSystemHasPoweredOn);
1103 	updateTasksSuspend(kTasksSuspendUnsuspended, kTasksSuspendNoChange);
1104 }
1105 
1106 bool
updateTasksSuspend(int newTasksSuspended,int newAOTTasksSuspended)1107 IOPMrootDomain::updateTasksSuspend(int newTasksSuspended, int newAOTTasksSuspended)
1108 {
1109 	bool newSuspend;
1110 
1111 	WAKEEVENT_LOCK();
1112 	if (newTasksSuspended != kTasksSuspendNoChange) {
1113 		tasksSuspended = (newTasksSuspended != kTasksSuspendUnsuspended);
1114 	}
1115 	if (newAOTTasksSuspended != kTasksSuspendNoChange) {
1116 		_aotTasksSuspended = (newAOTTasksSuspended != kTasksSuspendUnsuspended);
1117 	}
1118 	newSuspend = (tasksSuspended || _aotTasksSuspended);
1119 	if (newSuspend == tasksSuspendState) {
1120 		WAKEEVENT_UNLOCK();
1121 		return false;
1122 	}
1123 	tasksSuspendState = newSuspend;
1124 	WAKEEVENT_UNLOCK();
1125 	tasks_system_suspend(newSuspend);
1126 	return true;
1127 }
1128 
1129 //******************************************************************************
1130 
1131 static void
disk_sync_callout(thread_call_param_t p0,thread_call_param_t p1)1132 disk_sync_callout( thread_call_param_t p0, thread_call_param_t p1 )
1133 {
1134 	IOPMrootDomain * rootDomain = (IOPMrootDomain *) p0;
1135 	uint32_t    notifyRef  = (uint32_t)(uintptr_t) p1;
1136 	uint32_t    powerState = rootDomain->getPowerState();
1137 
1138 	DLOG("disk_sync_callout ps=%u\n", powerState);
1139 
1140 	if (ON_STATE == powerState) {
1141 		sync_internal();
1142 
1143 #if HIBERNATION
1144 		// Block sleep until trim issued on previous wake path is completed.
1145 		IOHibernateSystemPostWake(true);
1146 #endif
1147 	}
1148 #if HIBERNATION
1149 	else {
1150 		IOHibernateSystemPostWake(false);
1151 
1152 		rootDomain->sleepWakeDebugSaveSpinDumpFile();
1153 	}
1154 #endif
1155 
1156 	rootDomain->allowPowerChange(notifyRef);
1157 	DLOG("disk_sync_callout finish\n");
1158 }
1159 
1160 //******************************************************************************
1161 static UInt32
computeDeltaTimeMS(const AbsoluteTime * startTime,AbsoluteTime * elapsedTime)1162 computeDeltaTimeMS( const AbsoluteTime * startTime, AbsoluteTime * elapsedTime )
1163 {
1164 	AbsoluteTime    endTime;
1165 	UInt64          nano = 0;
1166 
1167 	clock_get_uptime(&endTime);
1168 	if (CMP_ABSOLUTETIME(&endTime, startTime) <= 0) {
1169 		*elapsedTime = 0;
1170 	} else {
1171 		SUB_ABSOLUTETIME(&endTime, startTime);
1172 		absolutetime_to_nanoseconds(endTime, &nano);
1173 		*elapsedTime = endTime;
1174 	}
1175 
1176 	return (UInt32)(nano / NSEC_PER_MSEC);
1177 }
1178 
1179 //******************************************************************************
1180 
1181 static int
1182 sysctl_sleepwaketime SYSCTL_HANDLER_ARGS
1183 {
1184 	struct timeval *swt = (struct timeval *)arg1;
1185 	struct proc *p = req->p;
1186 
1187 	if (p == kernproc) {
1188 		return sysctl_io_opaque(req, swt, sizeof(*swt), NULL);
1189 	} else if (proc_is64bit(p)) {
1190 		struct user64_timeval t = {};
1191 		t.tv_sec = swt->tv_sec;
1192 		t.tv_usec = swt->tv_usec;
1193 		return sysctl_io_opaque(req, &t, sizeof(t), NULL);
1194 	} else {
1195 		struct user32_timeval t = {};
1196 		t.tv_sec = (typeof(t.tv_sec))swt->tv_sec;
1197 		t.tv_usec = swt->tv_usec;
1198 		return sysctl_io_opaque(req, &t, sizeof(t), NULL);
1199 	}
1200 }
1201 
1202 static SYSCTL_PROC(_kern, OID_AUTO, sleeptime,
1203     CTLTYPE_STRUCT | CTLFLAG_RD | CTLFLAG_KERN | CTLFLAG_LOCKED,
1204     &gIOLastUserSleepTime, 0, sysctl_sleepwaketime, "S,timeval", "");
1205 
1206 static SYSCTL_PROC(_kern, OID_AUTO, waketime,
1207     CTLTYPE_STRUCT | CTLFLAG_RD | CTLFLAG_KERN | CTLFLAG_LOCKED,
1208     &gIOLastWakeTime, 0, sysctl_sleepwaketime, "S,timeval", "");
1209 
1210 SYSCTL_QUAD(_kern, OID_AUTO, wake_abs_time, CTLFLAG_RD | CTLFLAG_LOCKED, &gIOLastWakeAbsTime, "");
1211 SYSCTL_QUAD(_kern, OID_AUTO, sleep_abs_time, CTLFLAG_RD | CTLFLAG_LOCKED, &gIOLastSleepAbsTime, "");
1212 SYSCTL_QUAD(_kern, OID_AUTO, useractive_abs_time, CTLFLAG_RD | CTLFLAG_LOCKED, &gUserActiveAbsTime, "");
1213 SYSCTL_QUAD(_kern, OID_AUTO, userinactive_abs_time, CTLFLAG_RD | CTLFLAG_LOCKED, &gUserInactiveAbsTime, "");
1214 
1215 static int
1216 sysctl_willshutdown SYSCTL_HANDLER_ARGS
1217 {
1218 	int new_value, changed, error;
1219 
1220 	if (!gWillShutdownSysctlRegistered) {
1221 		return ENOENT;
1222 	}
1223 
1224 	error = sysctl_io_number(req, gWillShutdown, sizeof(int), &new_value, &changed);
1225 	if (changed) {
1226 		if (!gWillShutdown && (new_value == 1)) {
1227 			IOPMRootDomainWillShutdown();
1228 		} else {
1229 			error = EINVAL;
1230 		}
1231 	}
1232 	return error;
1233 }
1234 
1235 static SYSCTL_PROC(_kern, OID_AUTO, willshutdown,
1236     CTLTYPE_INT | CTLFLAG_RW | CTLFLAG_KERN | CTLFLAG_LOCKED,
1237     NULL, 0, sysctl_willshutdown, "I", "");
1238 
1239 #if defined(XNU_TARGET_OS_OSX)
1240 
1241 static int
sysctl_progressmeterenable(__unused struct sysctl_oid * oidp,__unused void * arg1,__unused int arg2,struct sysctl_req * req)1242 sysctl_progressmeterenable
1243 (__unused struct sysctl_oid *oidp, __unused void *arg1, __unused int arg2, struct sysctl_req *req)
1244 {
1245 	int error;
1246 	int new_value, changed;
1247 
1248 	error = sysctl_io_number(req, vc_progressmeter_enable, sizeof(int), &new_value, &changed);
1249 
1250 	if (changed) {
1251 		vc_enable_progressmeter(new_value);
1252 	}
1253 
1254 	return error;
1255 }
1256 
1257 static int
sysctl_progressmeter(__unused struct sysctl_oid * oidp,__unused void * arg1,__unused int arg2,struct sysctl_req * req)1258 sysctl_progressmeter
1259 (__unused struct sysctl_oid *oidp, __unused void *arg1, __unused int arg2, struct sysctl_req *req)
1260 {
1261 	int error;
1262 	int new_value, changed;
1263 
1264 	error = sysctl_io_number(req, vc_progressmeter_value, sizeof(int), &new_value, &changed);
1265 
1266 	if (changed) {
1267 		vc_set_progressmeter(new_value);
1268 	}
1269 
1270 	return error;
1271 }
1272 
1273 static SYSCTL_PROC(_kern, OID_AUTO, progressmeterenable,
1274     CTLTYPE_INT | CTLFLAG_RW | CTLFLAG_KERN | CTLFLAG_LOCKED,
1275     NULL, 0, sysctl_progressmeterenable, "I", "");
1276 
1277 static SYSCTL_PROC(_kern, OID_AUTO, progressmeter,
1278     CTLTYPE_INT | CTLFLAG_RW | CTLFLAG_KERN | CTLFLAG_LOCKED,
1279     NULL, 0, sysctl_progressmeter, "I", "");
1280 
1281 #endif /* defined(XNU_TARGET_OS_OSX) */
1282 
1283 
1284 
1285 static int
sysctl_consoleoptions(__unused struct sysctl_oid * oidp,__unused void * arg1,__unused int arg2,struct sysctl_req * req)1286 sysctl_consoleoptions
1287 (__unused struct sysctl_oid *oidp, __unused void *arg1, __unused int arg2, struct sysctl_req *req)
1288 {
1289 	int error, changed;
1290 	uint32_t new_value;
1291 
1292 	error = sysctl_io_number(req, vc_user_options.options, sizeof(uint32_t), &new_value, &changed);
1293 
1294 	if (changed) {
1295 		vc_user_options.options = new_value;
1296 	}
1297 
1298 	return error;
1299 }
1300 
1301 static SYSCTL_PROC(_kern, OID_AUTO, consoleoptions,
1302     CTLTYPE_INT | CTLFLAG_RW | CTLFLAG_KERN | CTLFLAG_LOCKED,
1303     NULL, 0, sysctl_consoleoptions, "I", "");
1304 
1305 
1306 static int
1307 sysctl_progressoptions SYSCTL_HANDLER_ARGS
1308 {
1309 	return sysctl_io_opaque(req, &vc_user_options, sizeof(vc_user_options), NULL);
1310 }
1311 
1312 static SYSCTL_PROC(_kern, OID_AUTO, progressoptions,
1313     CTLTYPE_STRUCT | CTLFLAG_RW | CTLFLAG_KERN | CTLFLAG_LOCKED | CTLFLAG_ANYBODY,
1314     NULL, 0, sysctl_progressoptions, "S,vc_progress_user_options", "");
1315 
1316 
1317 static int
1318 sysctl_wakereason SYSCTL_HANDLER_ARGS
1319 {
1320 	char wr[sizeof(gWakeReasonString)];
1321 
1322 	wr[0] = '\0';
1323 	if (gRootDomain && gWakeReasonSysctlRegistered) {
1324 		gRootDomain->copyWakeReasonString(wr, sizeof(wr));
1325 	} else {
1326 		return ENOENT;
1327 	}
1328 
1329 	return sysctl_io_string(req, wr, 0, 0, NULL);
1330 }
1331 
1332 SYSCTL_PROC(_kern, OID_AUTO, wakereason,
1333     CTLTYPE_STRING | CTLFLAG_RD | CTLFLAG_KERN | CTLFLAG_LOCKED,
1334     NULL, 0, sysctl_wakereason, "A", "wakereason");
1335 
1336 static int
1337 sysctl_bootreason SYSCTL_HANDLER_ARGS
1338 {
1339 	if (!os_atomic_load(&gBootReasonSysctlRegistered, acquire)) {
1340 		return ENOENT;
1341 	}
1342 
1343 	return sysctl_io_string(req, gBootReasonString, 0, 0, NULL);
1344 }
1345 
1346 SYSCTL_PROC(_kern, OID_AUTO, bootreason,
1347     CTLTYPE_STRING | CTLFLAG_RD | CTLFLAG_KERN | CTLFLAG_LOCKED,
1348     NULL, 0, sysctl_bootreason, "A", "");
1349 
1350 static int
1351 sysctl_shutdownreason SYSCTL_HANDLER_ARGS
1352 {
1353 	char sr[sizeof(gShutdownReasonString)];
1354 
1355 	sr[0] = '\0';
1356 	if (gRootDomain && gShutdownReasonSysctlRegistered) {
1357 		gRootDomain->copyShutdownReasonString(sr, sizeof(sr));
1358 	} else {
1359 		return ENOENT;
1360 	}
1361 
1362 	return sysctl_io_string(req, sr, 0, 0, NULL);
1363 }
1364 
1365 SYSCTL_PROC(_kern, OID_AUTO, shutdownreason,
1366     CTLTYPE_STRING | CTLFLAG_RD | CTLFLAG_KERN | CTLFLAG_LOCKED,
1367     NULL, 0, sysctl_shutdownreason, "A", "shutdownreason");
1368 
1369 static int
1370 sysctl_targettype SYSCTL_HANDLER_ARGS
1371 {
1372 	IOService * root;
1373 	OSSharedPtr<OSObject>  obj;
1374 	OSData *    data;
1375 	char        tt[32];
1376 
1377 	tt[0] = '\0';
1378 	root = IOService::getServiceRoot();
1379 	if (root && (obj = root->copyProperty(gIODTTargetTypeKey))) {
1380 		if ((data = OSDynamicCast(OSData, obj.get()))) {
1381 			strlcpy(tt, (const char *) data->getBytesNoCopy(), sizeof(tt));
1382 		}
1383 	}
1384 	return sysctl_io_string(req, tt, 0, 0, NULL);
1385 }
1386 
1387 SYSCTL_PROC(_hw, OID_AUTO, targettype,
1388     CTLTYPE_STRING | CTLFLAG_RD | CTLFLAG_KERN | CTLFLAG_LOCKED,
1389     NULL, 0, sysctl_targettype, "A", "targettype");
1390 
1391 static SYSCTL_INT(_debug, OID_AUTO, noidle, CTLFLAG_RW, &gNoIdleFlag, 0, "");
1392 static SYSCTL_INT(_debug, OID_AUTO, swd_sleep_timeout, CTLFLAG_RW, &gSwdSleepTimeout, 0, "");
1393 static SYSCTL_INT(_debug, OID_AUTO, swd_wake_timeout, CTLFLAG_RW, &gSwdWakeTimeout, 0, "");
1394 static SYSCTL_INT(_debug, OID_AUTO, swd_timeout, CTLFLAG_RW, &gSwdSleepWakeTimeout, 0, "");
1395 static SYSCTL_INT(_debug, OID_AUTO, swd_panic, CTLFLAG_RW, &gSwdPanic, 0, "");
1396 #if DEVELOPMENT || DEBUG
1397 static SYSCTL_INT(_debug, OID_AUTO, swd_panic_phase, CTLFLAG_RW, &swd_panic_phase, 0, "");
1398 #if defined(XNU_TARGET_OS_OSX)
1399 static SYSCTL_INT(_debug, OID_AUTO, clamshell, CTLFLAG_RW, &gClamshellFlags, 0, "");
1400 static SYSCTL_INT(_debug, OID_AUTO, darkwake, CTLFLAG_RW, &gDarkWakeFlags, 0, "");
1401 #endif /* defined(XNU_TARGET_OS_OSX) */
1402 #endif /* DEVELOPMENT || DEBUG */
1403 
1404 //******************************************************************************
1405 // AOT
1406 
1407 static int
1408 sysctl_aotmetrics SYSCTL_HANDLER_ARGS
1409 {
1410 	if (NULL == gRootDomain) {
1411 		return ENOENT;
1412 	}
1413 	if (NULL == gRootDomain->_aotMetrics) {
1414 		IOPMAOTMetrics nullMetrics = {};
1415 		return sysctl_io_opaque(req, &nullMetrics, sizeof(IOPMAOTMetrics), NULL);
1416 	}
1417 	return sysctl_io_opaque(req, gRootDomain->_aotMetrics, sizeof(IOPMAOTMetrics), NULL);
1418 }
1419 
1420 static SYSCTL_PROC(_kern, OID_AUTO, aotmetrics,
1421     CTLTYPE_STRUCT | CTLFLAG_RD | CTLFLAG_KERN | CTLFLAG_LOCKED | CTLFLAG_ANYBODY,
1422     NULL, 0, sysctl_aotmetrics, "S,IOPMAOTMetrics", "");
1423 
1424 
1425 static int
update_aotmode(uint32_t mode)1426 update_aotmode(uint32_t mode)
1427 {
1428 	int result;
1429 
1430 	if (!gIOPMWorkLoop) {
1431 		return ENOENT;
1432 	}
1433 	result = gIOPMWorkLoop->runActionBlock(^IOReturn (void) {
1434 		unsigned int oldCount;
1435 
1436 		if (mode && !gRootDomain->_aotMetrics) {
1437 		        gRootDomain->_aotMetrics = IOMallocType(IOPMAOTMetrics);
1438 		}
1439 
1440 		oldCount = gRootDomain->idleSleepPreventersCount();
1441 		gRootDomain->_aotMode = (mode & kIOPMAOTModeMask);
1442 		gRootDomain->updatePreventIdleSleepListInternal(NULL, false, oldCount);
1443 		return 0;
1444 	});
1445 	return result;
1446 }
1447 
1448 static int
sysctl_aotmodebits(__unused struct sysctl_oid * oidp,__unused void * arg1,__unused int arg2,struct sysctl_req * req)1449 sysctl_aotmodebits
1450 (__unused struct sysctl_oid *oidp, __unused void *arg1, __unused int arg2, struct sysctl_req *req)
1451 {
1452 	int error, changed;
1453 	uint32_t new_value;
1454 
1455 	if (NULL == gRootDomain) {
1456 		return ENOENT;
1457 	}
1458 	error = sysctl_io_number(req, gRootDomain->_aotMode, sizeof(uint32_t), &new_value, &changed);
1459 	if (changed && gIOPMWorkLoop) {
1460 		error = update_aotmode(new_value);
1461 	}
1462 
1463 	return error;
1464 }
1465 
1466 static SYSCTL_PROC(_kern, OID_AUTO, aotmodebits,
1467     CTLTYPE_INT | CTLFLAG_RW | CTLFLAG_KERN | CTLFLAG_LOCKED,
1468     NULL, 0, sysctl_aotmodebits, "I", "");
1469 
1470 static int
sysctl_aotmode(__unused struct sysctl_oid * oidp,__unused void * arg1,__unused int arg2,struct sysctl_req * req)1471 sysctl_aotmode
1472 (__unused struct sysctl_oid *oidp, __unused void *arg1, __unused int arg2, struct sysctl_req *req)
1473 {
1474 	int error, changed;
1475 	uint32_t new_value;
1476 
1477 	if (NULL == gRootDomain) {
1478 		return ENOENT;
1479 	}
1480 	error = sysctl_io_number(req, gRootDomain->_aotMode, sizeof(uint32_t), &new_value, &changed);
1481 	if (changed && gIOPMWorkLoop) {
1482 		if (new_value) {
1483 			new_value = kIOPMAOTModeDefault; // & ~kIOPMAOTModeRespectTimers;
1484 		}
1485 		error = update_aotmode(new_value);
1486 	}
1487 
1488 	return error;
1489 }
1490 
1491 static SYSCTL_PROC(_kern, OID_AUTO, aotmode,
1492     CTLTYPE_INT | CTLFLAG_RW | CTLFLAG_KERN | CTLFLAG_LOCKED | CTLFLAG_ANYBODY,
1493     NULL, 0, sysctl_aotmode, "I", "");
1494 
1495 //******************************************************************************
1496 
1497 static OSSharedPtr<const OSSymbol> gIOPMSettingAutoWakeCalendarKey;
1498 static OSSharedPtr<const OSSymbol> gIOPMSettingAutoWakeSecondsKey;
1499 static OSSharedPtr<const OSSymbol> gIOPMSettingAutoPowerCalendarKey;
1500 static OSSharedPtr<const OSSymbol> gIOPMSettingAutoPowerSecondsKey;
1501 static OSSharedPtr<const OSSymbol> gIOPMSettingDebugWakeRelativeKey;
1502 static OSSharedPtr<const OSSymbol> gIOPMSettingDebugPowerRelativeKey;
1503 static OSSharedPtr<const OSSymbol> gIOPMSettingMaintenanceWakeCalendarKey;
1504 static OSSharedPtr<const OSSymbol> gIOPMSettingSleepServiceWakeCalendarKey;
1505 static OSSharedPtr<const OSSymbol> gIOPMSettingSilentRunningKey;
1506 static OSSharedPtr<const OSSymbol> gIOPMUserTriggeredFullWakeKey;
1507 static OSSharedPtr<const OSSymbol> gIOPMUserIsActiveKey;
1508 static OSSharedPtr<const OSSymbol> gIOPMSettingLowLatencyAudioModeKey;
1509 
1510 //******************************************************************************
1511 // start
1512 //
1513 //******************************************************************************
1514 
1515 #define kRootDomainSettingsCount           20
1516 #define kRootDomainNoPublishSettingsCount  4
1517 
1518 bool
start(IOService * nub)1519 IOPMrootDomain::start( IOService * nub )
1520 {
1521 	OSSharedPtr<OSIterator>      psIterator;
1522 	OSSharedPtr<OSDictionary>    tmpDict;
1523 
1524 	super::start(nub);
1525 
1526 	gRootDomain = this;
1527 	gIOPMSettingAutoWakeCalendarKey = OSSymbol::withCString(kIOPMSettingAutoWakeCalendarKey);
1528 	gIOPMSettingAutoWakeSecondsKey = OSSymbol::withCString(kIOPMSettingAutoWakeSecondsKey);
1529 	gIOPMSettingAutoPowerCalendarKey = OSSymbol::withCString(kIOPMSettingAutoPowerCalendarKey);
1530 	gIOPMSettingAutoPowerSecondsKey = OSSymbol::withCString(kIOPMSettingAutoPowerSecondsKey);
1531 	gIOPMSettingDebugWakeRelativeKey = OSSymbol::withCString(kIOPMSettingDebugWakeRelativeKey);
1532 	gIOPMSettingDebugPowerRelativeKey = OSSymbol::withCString(kIOPMSettingDebugPowerRelativeKey);
1533 	gIOPMSettingMaintenanceWakeCalendarKey = OSSymbol::withCString(kIOPMSettingMaintenanceWakeCalendarKey);
1534 	gIOPMSettingSleepServiceWakeCalendarKey = OSSymbol::withCString(kIOPMSettingSleepServiceWakeCalendarKey);
1535 	gIOPMSettingSilentRunningKey = OSSymbol::withCStringNoCopy(kIOPMSettingSilentRunningKey);
1536 	gIOPMUserTriggeredFullWakeKey = OSSymbol::withCStringNoCopy(kIOPMUserTriggeredFullWakeKey);
1537 	gIOPMUserIsActiveKey = OSSymbol::withCStringNoCopy(kIOPMUserIsActiveKey);
1538 	gIOPMSettingLowLatencyAudioModeKey = OSSymbol::withCStringNoCopy(kIOPMSettingLowLatencyAudioModeKey);
1539 
1540 	gIOPMStatsResponseTimedOut = OSSymbol::withCString(kIOPMStatsResponseTimedOut);
1541 	gIOPMStatsResponseCancel = OSSymbol::withCString(kIOPMStatsResponseCancel);
1542 	gIOPMStatsResponseSlow = OSSymbol::withCString(kIOPMStatsResponseSlow);
1543 	gIOPMStatsResponsePrompt = OSSymbol::withCString(kIOPMStatsResponsePrompt);
1544 	gIOPMStatsDriverPSChangeSlow = OSSymbol::withCString(kIOPMStatsDriverPSChangeSlow);
1545 
1546 	sleepSupportedPEFunction = OSSymbol::withCString("IOPMSetSleepSupported");
1547 	sleepMessagePEFunction = OSSymbol::withCString("IOPMSystemSleepMessage");
1548 	gIOPMWakeTypeUserKey = OSSymbol::withCStringNoCopy(kIOPMRootDomainWakeTypeUser);
1549 
1550 	OSSharedPtr<const OSSymbol> settingsArr[kRootDomainSettingsCount] =
1551 	{
1552 		OSSymbol::withCString(kIOPMSettingSleepOnPowerButtonKey),
1553 		gIOPMSettingAutoWakeSecondsKey,
1554 		gIOPMSettingAutoPowerSecondsKey,
1555 		gIOPMSettingAutoWakeCalendarKey,
1556 		gIOPMSettingAutoPowerCalendarKey,
1557 		gIOPMSettingDebugWakeRelativeKey,
1558 		gIOPMSettingDebugPowerRelativeKey,
1559 		OSSymbol::withCString(kIOPMSettingWakeOnRingKey),
1560 		OSSymbol::withCString(kIOPMSettingRestartOnPowerLossKey),
1561 		OSSymbol::withCString(kIOPMSettingWakeOnClamshellKey),
1562 		OSSymbol::withCString(kIOPMSettingWakeOnACChangeKey),
1563 		OSSymbol::withCString(kIOPMSettingTimeZoneOffsetKey),
1564 		OSSymbol::withCString(kIOPMSettingDisplaySleepUsesDimKey),
1565 		OSSymbol::withCString(kIOPMSettingMobileMotionModuleKey),
1566 		OSSymbol::withCString(kIOPMSettingGraphicsSwitchKey),
1567 		OSSymbol::withCString(kIOPMStateConsoleShutdown),
1568 		OSSymbol::withCString(kIOPMSettingProModeControl),
1569 		OSSymbol::withCString(kIOPMSettingProModeDefer),
1570 		gIOPMSettingSilentRunningKey,
1571 		gIOPMSettingLowLatencyAudioModeKey,
1572 	};
1573 
1574 	OSSharedPtr<const OSSymbol> noPublishSettingsArr[kRootDomainNoPublishSettingsCount] =
1575 	{
1576 		OSSymbol::withCString(kIOPMSettingProModeControl),
1577 		OSSymbol::withCString(kIOPMSettingProModeDefer),
1578 		gIOPMSettingSilentRunningKey,
1579 		gIOPMSettingLowLatencyAudioModeKey,
1580 	};
1581 
1582 #if DEVELOPMENT || DEBUG
1583 #if defined(XNU_TARGET_OS_OSX)
1584 	PE_parse_boot_argn("darkwake", &gDarkWakeFlags, sizeof(gDarkWakeFlags));
1585 	PE_parse_boot_argn("clamshell", &gClamshellFlags, sizeof(gClamshellFlags));
1586 #endif /* defined(XNU_TARGET_OS_OSX) */
1587 #endif /* DEVELOPMENT || DEBUG */
1588 
1589 	PE_parse_boot_argn("noidle", &gNoIdleFlag, sizeof(gNoIdleFlag));
1590 	PE_parse_boot_argn("swd_sleeptimeout", &gSwdSleepTimeout, sizeof(gSwdSleepTimeout));
1591 	PE_parse_boot_argn("swd_waketimeout", &gSwdWakeTimeout, sizeof(gSwdWakeTimeout));
1592 	PE_parse_boot_argn("swd_timeout", &gSwdSleepWakeTimeout, sizeof(gSwdSleepWakeTimeout));
1593 	PE_parse_boot_argn("haltmspanic", &gHaltTimeMaxPanic, sizeof(gHaltTimeMaxPanic));
1594 	PE_parse_boot_argn("haltmslog", &gHaltTimeMaxLog, sizeof(gHaltTimeMaxLog));
1595 
1596 	// read noidle setting from Device Tree
1597 	if (PE_get_default("no-idle", &gNoIdleFlag, sizeof(gNoIdleFlag))) {
1598 		DLOG("Setting gNoIdleFlag to %u from device tree\n", gNoIdleFlag);
1599 	}
1600 
1601 	queue_init(&aggressivesQueue);
1602 	aggressivesThreadCall = thread_call_allocate(handleAggressivesFunction, this);
1603 	aggressivesData = OSData::withCapacity(
1604 		sizeof(AggressivesRecord) * (kPMLastAggressivenessType + 4));
1605 
1606 	featuresDictLock = IOLockAlloc();
1607 	settingsCtrlLock = IOLockAlloc();
1608 	wakeEventLock = IOLockAlloc();
1609 	gHaltLogLock = IOLockAlloc();
1610 
1611 	extraSleepTimer = thread_call_allocate(
1612 		idleSleepTimerExpired,
1613 		(thread_call_param_t) this);
1614 
1615 	powerButtonDown = thread_call_allocate(
1616 		powerButtonDownCallout,
1617 		(thread_call_param_t) this);
1618 
1619 	powerButtonUp = thread_call_allocate(
1620 		powerButtonUpCallout,
1621 		(thread_call_param_t) this);
1622 
1623 	diskSyncCalloutEntry = thread_call_allocate(
1624 		&disk_sync_callout,
1625 		(thread_call_param_t) this);
1626 	updateConsoleUsersEntry = thread_call_allocate(
1627 		&updateConsoleUsersCallout,
1628 		(thread_call_param_t) this);
1629 
1630 #if DARK_TO_FULL_EVALUATE_CLAMSHELL_DELAY
1631 	fullWakeThreadCall = thread_call_allocate_with_options(
1632 		OSMemberFunctionCast(thread_call_func_t, this,
1633 		&IOPMrootDomain::fullWakeDelayedWork),
1634 		(thread_call_param_t) this, THREAD_CALL_PRIORITY_KERNEL,
1635 		THREAD_CALL_OPTIONS_ONCE);
1636 #endif
1637 
1638 	setProperty(kIOSleepSupportedKey, true);
1639 
1640 	bzero(&gPMStats, sizeof(gPMStats));
1641 
1642 	pmTracer = PMTraceWorker::tracer(this);
1643 
1644 	pmAssertions = PMAssertionsTracker::pmAssertionsTracker(this);
1645 
1646 	userDisabledAllSleep = false;
1647 	systemBooting = true;
1648 	idleSleepEnabled = false;
1649 	sleepSlider = 0;
1650 	idleSleepTimerPending = false;
1651 	wrangler = NULL;
1652 	clamshellClosed = false;
1653 	clamshellExists = false;
1654 #if DISPLAY_WRANGLER_PRESENT
1655 	clamshellDisabled = true;
1656 #else
1657 	clamshellDisabled = false;
1658 #endif
1659 	clamshellIgnoreClose = false;
1660 	acAdaptorConnected = true;
1661 	clamshellSleepDisableMask = 0;
1662 	gWakeReasonString[0] = '\0';
1663 
1664 	// Initialize to user active.
1665 	// Will never transition to user inactive w/o wrangler.
1666 	fullWakeReason = kFullWakeReasonLocalUser;
1667 	userIsActive = userWasActive = true;
1668 	clock_get_uptime(&gUserActiveAbsTime);
1669 	setProperty(gIOPMUserIsActiveKey.get(), kOSBooleanTrue);
1670 
1671 	// Set the default system capabilities at boot.
1672 	_currentCapability = kIOPMSystemCapabilityCPU      |
1673 	    kIOPMSystemCapabilityGraphics |
1674 	    kIOPMSystemCapabilityAudio    |
1675 	    kIOPMSystemCapabilityNetwork;
1676 
1677 	_pendingCapability = _currentCapability;
1678 	_desiredCapability = _currentCapability;
1679 	_highestCapability = _currentCapability;
1680 	setProperty(kIOPMSystemCapabilitiesKey, _currentCapability, 64);
1681 
1682 	queuedSleepWakeUUIDString = NULL;
1683 	initializeBootSessionUUID();
1684 	pmStatsAppResponses     = OSArray::withCapacity(5);
1685 	_statsNameKey           = OSSymbol::withCString(kIOPMStatsNameKey);
1686 	_statsPIDKey            = OSSymbol::withCString(kIOPMStatsPIDKey);
1687 	_statsTimeMSKey         = OSSymbol::withCString(kIOPMStatsTimeMSKey);
1688 	_statsResponseTypeKey   = OSSymbol::withCString(kIOPMStatsApplicationResponseTypeKey);
1689 	_statsMessageTypeKey    = OSSymbol::withCString(kIOPMStatsMessageTypeKey);
1690 	_statsPowerCapsKey      = OSSymbol::withCString(kIOPMStatsPowerCapabilityKey);
1691 	assertOnWakeSecs        = -1;// Invalid value to prevent updates
1692 
1693 	pmStatsLock = IOLockAlloc();
1694 	idxPMCPUClamshell = kCPUUnknownIndex;
1695 	idxPMCPULimitedPower = kCPUUnknownIndex;
1696 
1697 	tmpDict = OSDictionary::withCapacity(1);
1698 	setProperty(kRootDomainSupportedFeatures, tmpDict.get());
1699 
1700 	// Set a default "SystemPowerProfileOverrideDict" for platform
1701 	// drivers without any overrides.
1702 	if (!propertyExists(kIOPMSystemDefaultOverrideKey)) {
1703 		tmpDict = OSDictionary::withCapacity(1);
1704 		setProperty(kIOPMSystemDefaultOverrideKey, tmpDict.get());
1705 	}
1706 
1707 	settingsCallbacks = OSDictionary::withCapacity(1);
1708 
1709 	// Create a list of the valid PM settings that we'll relay to
1710 	// interested clients in setProperties() => setPMSetting()
1711 	allowedPMSettings = OSArray::withObjects(
1712 		(const OSObject **)settingsArr,
1713 		kRootDomainSettingsCount,
1714 		0);
1715 
1716 	// List of PM settings that should not automatically publish itself
1717 	// as a feature when registered by a listener.
1718 	noPublishPMSettings = OSArray::withObjects(
1719 		(const OSObject **)noPublishSettingsArr,
1720 		kRootDomainNoPublishSettingsCount,
1721 		0);
1722 
1723 	fPMSettingsDict = OSDictionary::withCapacity(5);
1724 	preventIdleSleepList = OSSet::withCapacity(8);
1725 	preventSystemSleepList = OSSet::withCapacity(2);
1726 
1727 	PMinit(); // creates gIOPMWorkLoop
1728 	gIOPMWorkLoop = getIOPMWorkloop();
1729 
1730 	// Create IOPMPowerStateQueue used to queue external power
1731 	// events, and to handle those events on the PM work loop.
1732 	pmPowerStateQueue = IOPMPowerStateQueue::PMPowerStateQueue(
1733 		this, OSMemberFunctionCast(IOEventSource::Action, this,
1734 		&IOPMrootDomain::dispatchPowerEvent));
1735 	gIOPMWorkLoop->addEventSource(pmPowerStateQueue);
1736 
1737 	_aotMode = 0;
1738 	_aotTimerES = IOTimerEventSource::timerEventSource(this,
1739 	    OSMemberFunctionCast(IOTimerEventSource::Action,
1740 	    this, &IOPMrootDomain::aotEvaluate));
1741 	gIOPMWorkLoop->addEventSource(_aotTimerES.get());
1742 
1743 	// Avoid publishing service early so gIOPMWorkLoop is
1744 	// guaranteed to be initialized by rootDomain.
1745 	setPMRootDomain(this);
1746 
1747 	// create our power parent
1748 	gPatriarch = new IORootParent;
1749 	gPatriarch->init();
1750 	gPatriarch->attach(this);
1751 	gPatriarch->start(this);
1752 	gPatriarch->addPowerChild(this);
1753 
1754 	registerPowerDriver(this, ourPowerStates, NUM_POWER_STATES);
1755 	changePowerStateWithTagToPriv(ON_STATE, kCPSReasonInit);
1756 
1757 	// install power change handler
1758 	gSysPowerDownNotifier = registerPrioritySleepWakeInterest( &sysPowerDownHandler, this, NULL);
1759 
1760 #if DISPLAY_WRANGLER_PRESENT
1761 	wranglerIdleSettings = OSDictionary::withCapacity(1);
1762 	OSSharedPtr<OSNumber> wranglerIdlePeriod = OSNumber::withNumber(kDefaultWranglerIdlePeriod, 32);
1763 
1764 	if (wranglerIdleSettings && wranglerIdlePeriod) {
1765 		wranglerIdleSettings->setObject(kIORequestWranglerIdleKey,
1766 		    wranglerIdlePeriod.get());
1767 	}
1768 
1769 #endif /* DISPLAY_WRANGLER_PRESENT */
1770 
1771 	lowLatencyAudioNotifierDict       = OSDictionary::withCapacity(2);
1772 	lowLatencyAudioNotifyStateSym     = OSSymbol::withCString("LowLatencyAudioNotifyState");
1773 	lowLatencyAudioNotifyTimestampSym = OSSymbol::withCString("LowLatencyAudioNotifyTimestamp");
1774 	lowLatencyAudioNotifyStateVal     = OSNumber::withNumber(0ull, 32);
1775 	lowLatencyAudioNotifyTimestampVal = OSNumber::withNumber(0ull, 64);
1776 
1777 	if (lowLatencyAudioNotifierDict && lowLatencyAudioNotifyStateSym && lowLatencyAudioNotifyTimestampSym &&
1778 	    lowLatencyAudioNotifyStateVal && lowLatencyAudioNotifyTimestampVal) {
1779 		lowLatencyAudioNotifierDict->setObject(lowLatencyAudioNotifyStateSym.get(), lowLatencyAudioNotifyStateVal.get());
1780 		lowLatencyAudioNotifierDict->setObject(lowLatencyAudioNotifyTimestampSym.get(), lowLatencyAudioNotifyTimestampVal.get());
1781 	}
1782 
1783 	OSSharedPtr<const OSSymbol> ucClassName = OSSymbol::withCStringNoCopy("RootDomainUserClient");
1784 	setProperty(gIOUserClientClassKey, const_cast<OSObject *>(static_cast<const OSObject *>(ucClassName.get())));
1785 
1786 	// IOBacklightDisplay can take a long time to load at boot, or it may
1787 	// not load at all if you're booting with clamshell closed. We publish
1788 	// 'DisplayDims' here redundantly to get it published early and at all.
1789 	OSSharedPtr<OSDictionary> matching;
1790 	matching = serviceMatching("IOPMPowerSource");
1791 	psIterator = getMatchingServices(matching.get());
1792 
1793 	if (psIterator && psIterator->getNextObject()) {
1794 		// There's at least one battery on the system, so we publish
1795 		// 'DisplayDims' support for the LCD.
1796 		publishFeature("DisplayDims");
1797 	}
1798 
1799 	// read swd_panic boot-arg
1800 	PE_parse_boot_argn("swd_panic", &gSwdPanic, sizeof(gSwdPanic));
1801 	gWillShutdownSysctlRegistered = true;
1802 
1803 #if HIBERNATION
1804 #if defined(__arm64__)
1805 #endif /* defined(__arm64__) */
1806 	IOHibernateSystemInit(this);
1807 #endif
1808 
1809 	registerService();                  // let clients find us
1810 
1811 	return true;
1812 }
1813 
1814 //******************************************************************************
1815 // setProperties
1816 //
1817 // Receive a setProperty call
1818 // The "System Boot" property means the system is completely booted.
1819 //******************************************************************************
1820 
1821 IOReturn
setProperties(OSObject * props_obj)1822 IOPMrootDomain::setProperties( OSObject * props_obj )
1823 {
1824 	IOReturn        return_value = kIOReturnSuccess;
1825 	OSDictionary    *dict = OSDynamicCast(OSDictionary, props_obj);
1826 	OSBoolean       *b = NULL;
1827 	OSNumber        *n = NULL;
1828 	const OSSymbol  *key = NULL;
1829 	OSObject        *obj = NULL;
1830 	OSSharedPtr<OSCollectionIterator> iter;
1831 
1832 	if (!dict) {
1833 		return kIOReturnBadArgument;
1834 	}
1835 
1836 	bool clientEntitled = false;
1837 	{
1838 		OSSharedPtr<OSObject> obj = IOUserClient::copyClientEntitlement(current_task(), kRootDomainEntitlementSetProperty);
1839 		clientEntitled = (obj == kOSBooleanTrue);
1840 	}
1841 
1842 	if (!clientEntitled) {
1843 		const char * errorSuffix = NULL;
1844 
1845 		// IOPMSchedulePowerEvent() clients may not be entitled, but must be root.
1846 		// That API can set 6 possible keys that are checked below.
1847 		if ((dict->getCount() == 1) &&
1848 		    (dict->getObject(gIOPMSettingAutoWakeSecondsKey.get()) ||
1849 		    dict->getObject(gIOPMSettingAutoPowerSecondsKey.get()) ||
1850 		    dict->getObject(gIOPMSettingAutoWakeCalendarKey.get()) ||
1851 		    dict->getObject(gIOPMSettingAutoPowerCalendarKey.get()) ||
1852 		    dict->getObject(gIOPMSettingDebugWakeRelativeKey.get()) ||
1853 		    dict->getObject(gIOPMSettingDebugPowerRelativeKey.get()))) {
1854 			return_value = IOUserClient::clientHasPrivilege(current_task(), kIOClientPrivilegeAdministrator);
1855 			if (return_value != kIOReturnSuccess) {
1856 				errorSuffix = "privileged";
1857 			}
1858 		} else {
1859 			return_value = kIOReturnNotPermitted;
1860 			errorSuffix = "entitled";
1861 		}
1862 
1863 		if (return_value != kIOReturnSuccess) {
1864 			OSSharedPtr<OSString> procName(IOCopyLogNameForPID(proc_selfpid()), OSNoRetain);
1865 			DLOG("%s failed, process %s is not %s\n", __func__,
1866 			    procName ? procName->getCStringNoCopy() : "", errorSuffix);
1867 			return return_value;
1868 		}
1869 	}
1870 
1871 	OSSharedPtr<const OSSymbol> publish_simulated_battery_string    = OSSymbol::withCString("SoftwareSimulatedBatteries");
1872 	OSSharedPtr<const OSSymbol> boot_complete_string                = OSSymbol::withCString("System Boot Complete");
1873 	OSSharedPtr<const OSSymbol> sys_shutdown_string                 = OSSymbol::withCString("System Shutdown");
1874 	OSSharedPtr<const OSSymbol> stall_halt_string                   = OSSymbol::withCString("StallSystemAtHalt");
1875 	OSSharedPtr<const OSSymbol> battery_warning_disabled_string     = OSSymbol::withCString("BatteryWarningsDisabled");
1876 	OSSharedPtr<const OSSymbol> idle_seconds_string                 = OSSymbol::withCString("System Idle Seconds");
1877 	OSSharedPtr<const OSSymbol> idle_milliseconds_string            = OSSymbol::withCString("System Idle Milliseconds");
1878 	OSSharedPtr<const OSSymbol> sleepdisabled_string                = OSSymbol::withCString("SleepDisabled");
1879 	OSSharedPtr<const OSSymbol> ondeck_sleepwake_uuid_string        = OSSymbol::withCString(kIOPMSleepWakeUUIDKey);
1880 	OSSharedPtr<const OSSymbol> loginwindow_progress_string         = OSSymbol::withCString(kIOPMLoginWindowProgressKey);
1881 	OSSharedPtr<const OSSymbol> coredisplay_progress_string         = OSSymbol::withCString(kIOPMCoreDisplayProgressKey);
1882 	OSSharedPtr<const OSSymbol> coregraphics_progress_string        = OSSymbol::withCString(kIOPMCoreGraphicsProgressKey);
1883 #if DEBUG || DEVELOPMENT
1884 	OSSharedPtr<const OSSymbol> clamshell_close_string              = OSSymbol::withCString("IOPMTestClamshellClose");
1885 	OSSharedPtr<const OSSymbol> clamshell_open_string               = OSSymbol::withCString("IOPMTestClamshellOpen");
1886 	OSSharedPtr<const OSSymbol> ac_detach_string                    = OSSymbol::withCString("IOPMTestACDetach");
1887 	OSSharedPtr<const OSSymbol> ac_attach_string                    = OSSymbol::withCString("IOPMTestACAttach");
1888 	OSSharedPtr<const OSSymbol> desktopmode_set_string              = OSSymbol::withCString("IOPMTestDesktopModeSet");
1889 	OSSharedPtr<const OSSymbol> desktopmode_remove_string           = OSSymbol::withCString("IOPMTestDesktopModeRemove");
1890 #endif
1891 
1892 #if HIBERNATION
1893 	OSSharedPtr<const OSSymbol> hibernatemode_string                = OSSymbol::withCString(kIOHibernateModeKey);
1894 	OSSharedPtr<const OSSymbol> hibernatefile_string                = OSSymbol::withCString(kIOHibernateFileKey);
1895 	OSSharedPtr<const OSSymbol> hibernatefilemin_string             = OSSymbol::withCString(kIOHibernateFileMinSizeKey);
1896 	OSSharedPtr<const OSSymbol> hibernatefilemax_string             = OSSymbol::withCString(kIOHibernateFileMaxSizeKey);
1897 	OSSharedPtr<const OSSymbol> hibernatefreeratio_string           = OSSymbol::withCString(kIOHibernateFreeRatioKey);
1898 	OSSharedPtr<const OSSymbol> hibernatefreetime_string            = OSSymbol::withCString(kIOHibernateFreeTimeKey);
1899 #endif
1900 
1901 	iter = OSCollectionIterator::withCollection(dict);
1902 	if (!iter) {
1903 		return_value = kIOReturnNoMemory;
1904 		goto exit;
1905 	}
1906 
1907 	while ((key = (const OSSymbol *) iter->getNextObject()) &&
1908 	    (obj = dict->getObject(key))) {
1909 		if (key->isEqualTo(publish_simulated_battery_string.get())) {
1910 			if (OSDynamicCast(OSBoolean, obj)) {
1911 				publishResource(key, kOSBooleanTrue);
1912 			}
1913 		} else if (key->isEqualTo(idle_seconds_string.get())) {
1914 			if ((n = OSDynamicCast(OSNumber, obj))) {
1915 				setProperty(key, n);
1916 				idleMilliSeconds = n->unsigned32BitValue() * 1000;
1917 			}
1918 		} else if (key->isEqualTo(idle_milliseconds_string.get())) {
1919 			if ((n = OSDynamicCast(OSNumber, obj))) {
1920 				setProperty(key, n);
1921 				idleMilliSeconds = n->unsigned32BitValue();
1922 			}
1923 		} else if (key->isEqualTo(boot_complete_string.get())) {
1924 			pmPowerStateQueue->submitPowerEvent(kPowerEventSystemBootCompleted);
1925 		} else if (key->isEqualTo(sys_shutdown_string.get())) {
1926 			if ((b = OSDynamicCast(OSBoolean, obj))) {
1927 				pmPowerStateQueue->submitPowerEvent(kPowerEventSystemShutdown, (void *) b);
1928 			}
1929 		} else if (key->isEqualTo(battery_warning_disabled_string.get())) {
1930 			setProperty(key, obj);
1931 		}
1932 #if HIBERNATION
1933 		else if (key->isEqualTo(hibernatemode_string.get()) ||
1934 		    key->isEqualTo(hibernatefilemin_string.get()) ||
1935 		    key->isEqualTo(hibernatefilemax_string.get()) ||
1936 		    key->isEqualTo(hibernatefreeratio_string.get()) ||
1937 		    key->isEqualTo(hibernatefreetime_string.get())) {
1938 			if ((n = OSDynamicCast(OSNumber, obj))) {
1939 				setProperty(key, n);
1940 			}
1941 		} else if (key->isEqualTo(hibernatefile_string.get())) {
1942 			OSString * str = OSDynamicCast(OSString, obj);
1943 			if (str) {
1944 				setProperty(key, str);
1945 			}
1946 		}
1947 #endif
1948 		else if (key->isEqualTo(sleepdisabled_string.get())) {
1949 			if ((b = OSDynamicCast(OSBoolean, obj))) {
1950 				setProperty(key, b);
1951 				pmPowerStateQueue->submitPowerEvent(kPowerEventUserDisabledSleep, (void *) b);
1952 			}
1953 		} else if (key->isEqualTo(ondeck_sleepwake_uuid_string.get())) {
1954 			obj->retain();
1955 			pmPowerStateQueue->submitPowerEvent(kPowerEventQueueSleepWakeUUID, (void *)obj);
1956 		} else if (key->isEqualTo(loginwindow_progress_string.get())) {
1957 			if (pmTracer && (n = OSDynamicCast(OSNumber, obj))) {
1958 				uint32_t data = n->unsigned32BitValue();
1959 				pmTracer->traceComponentWakeProgress(kIOPMLoginWindowProgress, data);
1960 				kdebugTrace(kPMLogComponentWakeProgress, 0, kIOPMLoginWindowProgress, data);
1961 			}
1962 		} else if (key->isEqualTo(coredisplay_progress_string.get())) {
1963 			if (pmTracer && (n = OSDynamicCast(OSNumber, obj))) {
1964 				uint32_t data = n->unsigned32BitValue();
1965 				pmTracer->traceComponentWakeProgress(kIOPMCoreDisplayProgress, data);
1966 				kdebugTrace(kPMLogComponentWakeProgress, 0, kIOPMCoreDisplayProgress, data);
1967 			}
1968 		} else if (key->isEqualTo(coregraphics_progress_string.get())) {
1969 			if (pmTracer && (n = OSDynamicCast(OSNumber, obj))) {
1970 				uint32_t data = n->unsigned32BitValue();
1971 				pmTracer->traceComponentWakeProgress(kIOPMCoreGraphicsProgress, data);
1972 				kdebugTrace(kPMLogComponentWakeProgress, 0, kIOPMCoreGraphicsProgress, data);
1973 			}
1974 		} else if (key->isEqualTo(kIOPMDeepSleepEnabledKey) ||
1975 		    key->isEqualTo(kIOPMDestroyFVKeyOnStandbyKey) ||
1976 		    key->isEqualTo(kIOPMAutoPowerOffEnabledKey) ||
1977 		    key->isEqualTo(stall_halt_string.get())) {
1978 			if ((b = OSDynamicCast(OSBoolean, obj))) {
1979 				setProperty(key, b);
1980 			}
1981 		} else if (key->isEqualTo(kIOPMDeepSleepDelayKey) ||
1982 		    key->isEqualTo(kIOPMDeepSleepTimerKey) ||
1983 		    key->isEqualTo(kIOPMAutoPowerOffDelayKey) ||
1984 		    key->isEqualTo(kIOPMAutoPowerOffTimerKey)) {
1985 			if ((n = OSDynamicCast(OSNumber, obj))) {
1986 				setProperty(key, n);
1987 			}
1988 		} else if (key->isEqualTo(kIOPMUserWakeAlarmScheduledKey)) {
1989 			if (kOSBooleanTrue == obj) {
1990 				OSBitOrAtomic(kIOPMAlarmBitCalendarWake, &_userScheduledAlarmMask);
1991 			} else {
1992 				OSBitAndAtomic(~kIOPMAlarmBitCalendarWake, &_userScheduledAlarmMask);
1993 			}
1994 			DLOG("_userScheduledAlarmMask 0x%x\n", (uint32_t) _userScheduledAlarmMask);
1995 		}
1996 #if DEBUG || DEVELOPMENT
1997 		else if (key->isEqualTo(clamshell_close_string.get())) {
1998 			DLOG("SetProperties: setting clamshell close\n");
1999 			UInt32 msg = kIOPMClamshellClosed;
2000 			pmPowerStateQueue->submitPowerEvent(kPowerEventReceivedPowerNotification, (void *)(uintptr_t)msg);
2001 		} else if (key->isEqualTo(clamshell_open_string.get())) {
2002 			DLOG("SetProperties: setting clamshell open\n");
2003 			UInt32 msg = kIOPMClamshellOpened;
2004 			pmPowerStateQueue->submitPowerEvent(kPowerEventReceivedPowerNotification, (void *)(uintptr_t)msg);
2005 		} else if (key->isEqualTo(ac_detach_string.get())) {
2006 			DLOG("SetProperties: setting ac detach\n");
2007 			UInt32 msg = kIOPMSetACAdaptorConnected;
2008 			pmPowerStateQueue->submitPowerEvent(kPowerEventReceivedPowerNotification, (void *)(uintptr_t)msg);
2009 		} else if (key->isEqualTo(ac_attach_string.get())) {
2010 			DLOG("SetProperties: setting ac attach\n");
2011 			UInt32 msg = kIOPMSetACAdaptorConnected | kIOPMSetValue;
2012 			pmPowerStateQueue->submitPowerEvent(kPowerEventReceivedPowerNotification, (void *)(uintptr_t)msg);
2013 		} else if (key->isEqualTo(desktopmode_set_string.get())) {
2014 			DLOG("SetProperties: setting desktopmode");
2015 			UInt32 msg = kIOPMSetDesktopMode | kIOPMSetValue;
2016 			pmPowerStateQueue->submitPowerEvent(kPowerEventReceivedPowerNotification, (void *)(uintptr_t)msg);
2017 		} else if (key->isEqualTo(desktopmode_remove_string.get())) {
2018 			DLOG("SetProperties: removing desktopmode\n");
2019 			UInt32 msg = kIOPMSetDesktopMode;
2020 			pmPowerStateQueue->submitPowerEvent(kPowerEventReceivedPowerNotification, (void *)(uintptr_t)msg);
2021 		}
2022 #endif
2023 		// Relay our allowed PM settings onto our registered PM clients
2024 		else if ((allowedPMSettings->getNextIndexOfObject(key, 0) != (unsigned int) -1)) {
2025 			return_value = setPMSetting(key, obj);
2026 			if (kIOReturnSuccess != return_value) {
2027 				break;
2028 			}
2029 		} else {
2030 			DLOG("setProperties(%s) not handled\n", key->getCStringNoCopy());
2031 		}
2032 	}
2033 
2034 exit:
2035 	return return_value;
2036 }
2037 
2038 // MARK: -
2039 // MARK: Aggressiveness
2040 
2041 //******************************************************************************
2042 // setAggressiveness
2043 //
2044 // Override IOService::setAggressiveness()
2045 //******************************************************************************
2046 
2047 IOReturn
setAggressiveness(unsigned long type,unsigned long value)2048 IOPMrootDomain::setAggressiveness(
2049 	unsigned long   type,
2050 	unsigned long   value )
2051 {
2052 	return setAggressiveness( type, value, 0 );
2053 }
2054 
2055 /*
2056  * Private setAggressiveness() with an internal options argument.
2057  */
2058 IOReturn
setAggressiveness(unsigned long type,unsigned long value,IOOptionBits options)2059 IOPMrootDomain::setAggressiveness(
2060 	unsigned long   type,
2061 	unsigned long   value,
2062 	IOOptionBits    options )
2063 {
2064 	AggressivesRequest *    entry;
2065 	AggressivesRequest *    request;
2066 	bool                    found = false;
2067 
2068 	if ((type > UINT_MAX) || (value > UINT_MAX)) {
2069 		return kIOReturnBadArgument;
2070 	}
2071 
2072 	if (type == kPMMinutesToDim || type == kPMMinutesToSleep) {
2073 		DLOG("setAggressiveness(%x) %s = %u\n",
2074 		    (uint32_t) options, getAggressivenessTypeString((uint32_t) type), (uint32_t) value);
2075 	} else {
2076 		DEBUG_LOG("setAggressiveness(%x) %s = %u\n",
2077 		    (uint32_t) options, getAggressivenessTypeString((uint32_t) type), (uint32_t) value);
2078 	}
2079 
2080 	request = IOMallocType(AggressivesRequest);
2081 	request->options  = options;
2082 	request->dataType = kAggressivesRequestTypeRecord;
2083 	request->data.record.type  = (uint32_t) type;
2084 	request->data.record.value = (uint32_t) value;
2085 
2086 	AGGRESSIVES_LOCK();
2087 
2088 	// Update disk quick spindown flag used by getAggressiveness().
2089 	// Never merge requests with quick spindown flags set.
2090 
2091 	if (options & kAggressivesOptionQuickSpindownEnable) {
2092 		gAggressivesState |= kAggressivesStateQuickSpindown;
2093 	} else if (options & kAggressivesOptionQuickSpindownDisable) {
2094 		gAggressivesState &= ~kAggressivesStateQuickSpindown;
2095 	} else {
2096 		// Coalesce requests with identical aggressives types.
2097 		// Deal with callers that calls us too "aggressively".
2098 
2099 		queue_iterate(&aggressivesQueue, entry, AggressivesRequest *, chain)
2100 		{
2101 			if ((entry->dataType == kAggressivesRequestTypeRecord) &&
2102 			    (entry->data.record.type == type) &&
2103 			    ((entry->options & kAggressivesOptionQuickSpindownMask) == 0)) {
2104 				entry->data.record.value = (uint32_t) value;
2105 				found = true;
2106 				break;
2107 			}
2108 		}
2109 	}
2110 
2111 	if (!found) {
2112 		queue_enter(&aggressivesQueue, request, AggressivesRequest *, chain);
2113 	}
2114 
2115 	AGGRESSIVES_UNLOCK();
2116 
2117 	if (found) {
2118 		IOFreeType(request, AggressivesRequest);
2119 	}
2120 
2121 	if (options & kAggressivesOptionSynchronous) {
2122 		handleAggressivesRequests(); // not truly synchronous
2123 	} else {
2124 		thread_call_enter(aggressivesThreadCall);
2125 	}
2126 
2127 	return kIOReturnSuccess;
2128 }
2129 
2130 //******************************************************************************
2131 // getAggressiveness
2132 //
2133 // Override IOService::setAggressiveness()
2134 // Fetch the aggressiveness factor with the given type.
2135 //******************************************************************************
2136 
2137 IOReturn
getAggressiveness(unsigned long type,unsigned long * outLevel)2138 IOPMrootDomain::getAggressiveness(
2139 	unsigned long   type,
2140 	unsigned long * outLevel )
2141 {
2142 	uint32_t    value  = 0;
2143 	int         source = 0;
2144 
2145 	if (!outLevel || (type > UINT_MAX)) {
2146 		return kIOReturnBadArgument;
2147 	}
2148 
2149 	AGGRESSIVES_LOCK();
2150 
2151 	// Disk quick spindown in effect, report value = 1
2152 
2153 	if ((gAggressivesState & kAggressivesStateQuickSpindown) &&
2154 	    (type == kPMMinutesToSpinDown)) {
2155 		value  = kAggressivesMinValue;
2156 		source = 1;
2157 	}
2158 
2159 	// Consult the pending request queue.
2160 
2161 	if (!source) {
2162 		AggressivesRequest * entry;
2163 
2164 		queue_iterate(&aggressivesQueue, entry, AggressivesRequest *, chain)
2165 		{
2166 			if ((entry->dataType == kAggressivesRequestTypeRecord) &&
2167 			    (entry->data.record.type == type) &&
2168 			    ((entry->options & kAggressivesOptionQuickSpindownMask) == 0)) {
2169 				value  = entry->data.record.value;
2170 				source = 2;
2171 				break;
2172 			}
2173 		}
2174 	}
2175 
2176 	// Consult the backend records.
2177 
2178 	if (!source && aggressivesData) {
2179 		AggressivesRecord * record;
2180 		int                 i, count;
2181 
2182 		count  = aggressivesData->getLength() / sizeof(AggressivesRecord);
2183 		record = (AggressivesRecord *) aggressivesData->getBytesNoCopy();
2184 
2185 		for (i = 0; i < count; i++, record++) {
2186 			if (record->type == type) {
2187 				value  = record->value;
2188 				source = 3;
2189 				break;
2190 			}
2191 		}
2192 	}
2193 
2194 	AGGRESSIVES_UNLOCK();
2195 
2196 	if (source) {
2197 		*outLevel = (unsigned long) value;
2198 		return kIOReturnSuccess;
2199 	} else {
2200 		DLOG("getAggressiveness type 0x%x not found\n", (uint32_t) type);
2201 		*outLevel = 0; // default return = 0, driver may not check for error
2202 		return kIOReturnInvalid;
2203 	}
2204 }
2205 
2206 //******************************************************************************
2207 // joinAggressiveness
2208 //
2209 // Request from IOService to join future aggressiveness broadcasts.
2210 //******************************************************************************
2211 
2212 IOReturn
joinAggressiveness(IOService * service)2213 IOPMrootDomain::joinAggressiveness(
2214 	IOService * service )
2215 {
2216 	AggressivesRequest *    request;
2217 
2218 	if (!service || (service == this)) {
2219 		return kIOReturnBadArgument;
2220 	}
2221 
2222 	DEBUG_LOG("joinAggressiveness %s %p\n", service->getName(), OBFUSCATE(service));
2223 
2224 	request = IOMallocType(AggressivesRequest);
2225 	request->dataType = kAggressivesRequestTypeService;
2226 	request->data.service.reset(service, OSRetain); // released by synchronizeAggressives()
2227 
2228 	AGGRESSIVES_LOCK();
2229 	queue_enter(&aggressivesQueue, request, AggressivesRequest *, chain);
2230 	AGGRESSIVES_UNLOCK();
2231 
2232 	thread_call_enter(aggressivesThreadCall);
2233 
2234 	return kIOReturnSuccess;
2235 }
2236 
2237 //******************************************************************************
2238 // handleAggressivesRequests
2239 //
2240 // Backend thread processes all incoming aggressiveness requests in the queue.
2241 //******************************************************************************
2242 
2243 static void
handleAggressivesFunction(thread_call_param_t param1,thread_call_param_t param2)2244 handleAggressivesFunction(
2245 	thread_call_param_t param1,
2246 	thread_call_param_t param2 )
2247 {
2248 	if (param1) {
2249 		((IOPMrootDomain *) param1)->handleAggressivesRequests();
2250 	}
2251 }
2252 
2253 void
handleAggressivesRequests(void)2254 IOPMrootDomain::handleAggressivesRequests( void )
2255 {
2256 	AggressivesRecord *     start;
2257 	AggressivesRecord *     record;
2258 	AggressivesRequest *    request;
2259 	queue_head_t            joinedQueue;
2260 	int                     i, count;
2261 	bool                    broadcast;
2262 	bool                    found;
2263 	bool                    pingSelf = false;
2264 
2265 	AGGRESSIVES_LOCK();
2266 
2267 	if ((gAggressivesState & kAggressivesStateBusy) || !aggressivesData ||
2268 	    queue_empty(&aggressivesQueue)) {
2269 		goto unlock_done;
2270 	}
2271 
2272 	gAggressivesState |= kAggressivesStateBusy;
2273 	count = aggressivesData->getLength() / sizeof(AggressivesRecord);
2274 	start = (AggressivesRecord *) aggressivesData->getBytesNoCopy();
2275 
2276 	do{
2277 		broadcast = false;
2278 		queue_init(&joinedQueue);
2279 
2280 		do{
2281 			// Remove request from the incoming queue in FIFO order.
2282 			queue_remove_first(&aggressivesQueue, request, AggressivesRequest *, chain);
2283 			switch (request->dataType) {
2284 			case kAggressivesRequestTypeRecord:
2285 				// Update existing record if found.
2286 				found = false;
2287 				for (i = 0, record = start; i < count; i++, record++) {
2288 					if (record->type == request->data.record.type) {
2289 						found = true;
2290 
2291 						if (request->options & kAggressivesOptionQuickSpindownEnable) {
2292 							if ((record->flags & kAggressivesRecordFlagMinValue) == 0) {
2293 								broadcast = true;
2294 								record->flags |= (kAggressivesRecordFlagMinValue |
2295 								    kAggressivesRecordFlagModified);
2296 								DLOG("disk spindown accelerated, was %u min\n",
2297 								    record->value);
2298 							}
2299 						} else if (request->options & kAggressivesOptionQuickSpindownDisable) {
2300 							if (record->flags & kAggressivesRecordFlagMinValue) {
2301 								broadcast = true;
2302 								record->flags |= kAggressivesRecordFlagModified;
2303 								record->flags &= ~kAggressivesRecordFlagMinValue;
2304 								DLOG("disk spindown restored to %u min\n",
2305 								    record->value);
2306 							}
2307 						} else if (record->value != request->data.record.value) {
2308 							record->value = request->data.record.value;
2309 							if ((record->flags & kAggressivesRecordFlagMinValue) == 0) {
2310 								broadcast = true;
2311 								record->flags |= kAggressivesRecordFlagModified;
2312 							}
2313 						}
2314 						break;
2315 					}
2316 				}
2317 
2318 				// No matching record, append a new record.
2319 				if (!found &&
2320 				    ((request->options & kAggressivesOptionQuickSpindownDisable) == 0)) {
2321 					AggressivesRecord   newRecord;
2322 
2323 					newRecord.flags = kAggressivesRecordFlagModified;
2324 					newRecord.type  = request->data.record.type;
2325 					newRecord.value = request->data.record.value;
2326 					if (request->options & kAggressivesOptionQuickSpindownEnable) {
2327 						newRecord.flags |= kAggressivesRecordFlagMinValue;
2328 						DLOG("disk spindown accelerated\n");
2329 					}
2330 
2331 					aggressivesData->appendValue(newRecord);
2332 
2333 					// OSData may have switched to another (larger) buffer.
2334 					count = aggressivesData->getLength() / sizeof(AggressivesRecord);
2335 					start = (AggressivesRecord *) aggressivesData->getBytesNoCopy();
2336 					broadcast = true;
2337 				}
2338 
2339 				// Finished processing the request, release it.
2340 				IOFreeType(request, AggressivesRequest);
2341 				break;
2342 
2343 			case kAggressivesRequestTypeService:
2344 				// synchronizeAggressives() will free request.
2345 				queue_enter(&joinedQueue, request, AggressivesRequest *, chain);
2346 				break;
2347 
2348 			default:
2349 				panic("bad aggressives request type %x", request->dataType);
2350 				break;
2351 			}
2352 		} while (!queue_empty(&aggressivesQueue));
2353 
2354 		// Release the lock to perform work, with busy flag set.
2355 		if (!queue_empty(&joinedQueue) || broadcast) {
2356 			AGGRESSIVES_UNLOCK();
2357 			if (!queue_empty(&joinedQueue)) {
2358 				synchronizeAggressives(&joinedQueue, start, count);
2359 			}
2360 			if (broadcast) {
2361 				broadcastAggressives(start, count);
2362 			}
2363 			AGGRESSIVES_LOCK();
2364 		}
2365 
2366 		// Remove the modified flag from all records.
2367 		for (i = 0, record = start; i < count; i++, record++) {
2368 			if ((record->flags & kAggressivesRecordFlagModified) &&
2369 			    ((record->type == kPMMinutesToDim) ||
2370 			    (record->type == kPMMinutesToSleep))) {
2371 				pingSelf = true;
2372 			}
2373 
2374 			record->flags &= ~kAggressivesRecordFlagModified;
2375 		}
2376 
2377 		// Check the incoming queue again since new entries may have been
2378 		// added while lock was released above.
2379 	} while (!queue_empty(&aggressivesQueue));
2380 
2381 	gAggressivesState &= ~kAggressivesStateBusy;
2382 
2383 unlock_done:
2384 	AGGRESSIVES_UNLOCK();
2385 
2386 	// Root domain is interested in system and display sleep slider changes.
2387 	// Submit a power event to handle those changes on the PM work loop.
2388 
2389 	if (pingSelf && pmPowerStateQueue) {
2390 		pmPowerStateQueue->submitPowerEvent(
2391 			kPowerEventPolicyStimulus,
2392 			(void *) kStimulusAggressivenessChanged );
2393 	}
2394 }
2395 
2396 //******************************************************************************
2397 // synchronizeAggressives
2398 //
2399 // Push all known aggressiveness records to one or more IOService.
2400 //******************************************************************************
2401 
2402 void
synchronizeAggressives(queue_head_t * joinedQueue,const AggressivesRecord * array,int count)2403 IOPMrootDomain::synchronizeAggressives(
2404 	queue_head_t *              joinedQueue,
2405 	const AggressivesRecord *   array,
2406 	int                         count )
2407 {
2408 	OSSharedPtr<IOService>      service;
2409 	AggressivesRequest *        request;
2410 	const AggressivesRecord *   record;
2411 	IOPMDriverCallEntry         callEntry;
2412 	uint32_t                    value;
2413 	int                         i;
2414 
2415 	while (!queue_empty(joinedQueue)) {
2416 		queue_remove_first(joinedQueue, request, AggressivesRequest *, chain);
2417 		if (request->dataType == kAggressivesRequestTypeService) {
2418 			// retained by joinAggressiveness(), so take ownership
2419 			service = os::move(request->data.service);
2420 		} else {
2421 			service.reset();
2422 		}
2423 
2424 		IOFreeType(request, AggressivesRequest);
2425 		request = NULL;
2426 
2427 		if (service) {
2428 			if (service->assertPMDriverCall(&callEntry, kIOPMDriverCallMethodSetAggressive)) {
2429 				for (i = 0, record = array; i < count; i++, record++) {
2430 					value = record->value;
2431 					if (record->flags & kAggressivesRecordFlagMinValue) {
2432 						value = kAggressivesMinValue;
2433 					}
2434 
2435 					_LOG("synchronizeAggressives 0x%x = %u to %s\n",
2436 					    record->type, value, service->getName());
2437 					service->setAggressiveness(record->type, value);
2438 				}
2439 				service->deassertPMDriverCall(&callEntry);
2440 			}
2441 		}
2442 	}
2443 }
2444 
2445 //******************************************************************************
2446 // broadcastAggressives
2447 //
2448 // Traverse PM tree and call setAggressiveness() for records that have changed.
2449 //******************************************************************************
2450 
2451 void
broadcastAggressives(const AggressivesRecord * array,int count)2452 IOPMrootDomain::broadcastAggressives(
2453 	const AggressivesRecord *   array,
2454 	int                         count )
2455 {
2456 	OSSharedPtr<IORegistryIterator> iter;
2457 	IORegistryEntry                *entry;
2458 	OSSharedPtr<IORegistryEntry>    child;
2459 	IOPowerConnection              *connect;
2460 	IOService                      *service;
2461 	const AggressivesRecord        *record;
2462 	IOPMDriverCallEntry             callEntry;
2463 	uint32_t                        value;
2464 	int                             i;
2465 
2466 	iter = IORegistryIterator::iterateOver(
2467 		this, gIOPowerPlane, kIORegistryIterateRecursively);
2468 	if (iter) {
2469 		do{
2470 			// !! reset the iterator
2471 			iter->reset();
2472 			while ((entry = iter->getNextObject())) {
2473 				connect = OSDynamicCast(IOPowerConnection, entry);
2474 				if (!connect || !connect->getReadyFlag()) {
2475 					continue;
2476 				}
2477 
2478 				child = connect->copyChildEntry(gIOPowerPlane);
2479 				if (child) {
2480 					if ((service = OSDynamicCast(IOService, child.get()))) {
2481 						if (service->assertPMDriverCall(&callEntry, kIOPMDriverCallMethodSetAggressive)) {
2482 							for (i = 0, record = array; i < count; i++, record++) {
2483 								if (record->flags & kAggressivesRecordFlagModified) {
2484 									value = record->value;
2485 									if (record->flags & kAggressivesRecordFlagMinValue) {
2486 										value = kAggressivesMinValue;
2487 									}
2488 									_LOG("broadcastAggressives %x = %u to %s\n",
2489 									    record->type, value, service->getName());
2490 									service->setAggressiveness(record->type, value);
2491 								}
2492 							}
2493 							service->deassertPMDriverCall(&callEntry);
2494 						}
2495 					}
2496 				}
2497 			}
2498 		}while (!entry && !iter->isValid());
2499 	}
2500 }
2501 
2502 //*****************************************
2503 // stackshot on power button press
2504 // ***************************************
2505 static void
powerButtonDownCallout(thread_call_param_t us,thread_call_param_t)2506 powerButtonDownCallout(thread_call_param_t us, thread_call_param_t )
2507 {
2508 	/* Power button pressed during wake
2509 	 * Take a stackshot
2510 	 */
2511 	DEBUG_LOG("Powerbutton: down. Taking stackshot\n");
2512 	((IOPMrootDomain *)us)->takeStackshot(false);
2513 }
2514 
2515 static void
powerButtonUpCallout(thread_call_param_t us,thread_call_param_t)2516 powerButtonUpCallout(thread_call_param_t us, thread_call_param_t)
2517 {
2518 	/* Power button released.
2519 	 * Delete any stackshot data
2520 	 */
2521 	DEBUG_LOG("PowerButton: up callout. Delete stackshot\n");
2522 	((IOPMrootDomain *)us)->deleteStackshot();
2523 }
2524 //*************************************************************************
2525 //
2526 
2527 // MARK: -
2528 // MARK: System Sleep
2529 
2530 //******************************************************************************
2531 // startIdleSleepTimer
2532 //
2533 //******************************************************************************
2534 
2535 void
startIdleSleepTimer(uint32_t inMilliSeconds)2536 IOPMrootDomain::startIdleSleepTimer( uint32_t inMilliSeconds )
2537 {
2538 	AbsoluteTime deadline;
2539 
2540 	ASSERT_GATED();
2541 	if (gNoIdleFlag) {
2542 		DLOG("idle timer not set (noidle=%d)\n", gNoIdleFlag);
2543 		return;
2544 	}
2545 	if (inMilliSeconds) {
2546 		if (inMilliSeconds < kMinimumTimeBeforeIdleSleep) {
2547 			AbsoluteTime    now;
2548 			uint64_t        nsec_since_wake;
2549 			uint64_t                msec_since_wake;
2550 
2551 			// Adjust idle timer so it will not expire until atleast kMinimumTimeBeforeIdleSleep milliseconds
2552 			// after the most recent AP wake.
2553 			clock_get_uptime(&now);
2554 			SUB_ABSOLUTETIME(&now, &gIOLastWakeAbsTime);
2555 			absolutetime_to_nanoseconds(now, &nsec_since_wake);
2556 			msec_since_wake = nsec_since_wake / NSEC_PER_MSEC;
2557 
2558 			if (msec_since_wake < kMinimumTimeBeforeIdleSleep) {
2559 				uint32_t newIdleTimer = kMinimumTimeBeforeIdleSleep - (uint32_t)msec_since_wake;
2560 
2561 				// Ensure that our new idle timer is not less than inMilliSeconds,
2562 				// as we should only be increasing the timer duration, not decreasing it
2563 				if (newIdleTimer > inMilliSeconds) {
2564 					DLOG("startIdleSleepTimer increasing timeout from %u to %u\n", inMilliSeconds, newIdleTimer);
2565 					inMilliSeconds = newIdleTimer;
2566 				}
2567 			}
2568 		}
2569 		clock_interval_to_deadline(inMilliSeconds, kMillisecondScale, &deadline);
2570 		thread_call_enter_delayed(extraSleepTimer, deadline);
2571 		idleSleepTimerPending = true;
2572 	} else {
2573 		thread_call_enter(extraSleepTimer);
2574 	}
2575 	DLOG("idle timer set for %u milliseconds\n", inMilliSeconds);
2576 }
2577 
2578 //******************************************************************************
2579 // cancelIdleSleepTimer
2580 //
2581 //******************************************************************************
2582 
2583 void
cancelIdleSleepTimer(void)2584 IOPMrootDomain::cancelIdleSleepTimer( void )
2585 {
2586 	ASSERT_GATED();
2587 	if (idleSleepTimerPending) {
2588 		DLOG("idle timer cancelled\n");
2589 		thread_call_cancel(extraSleepTimer);
2590 		idleSleepTimerPending = false;
2591 
2592 		if (!assertOnWakeSecs && gIOLastWakeAbsTime) {
2593 			AbsoluteTime    now;
2594 			clock_usec_t    microsecs;
2595 			clock_get_uptime(&now);
2596 			SUB_ABSOLUTETIME(&now, &gIOLastWakeAbsTime);
2597 			absolutetime_to_microtime(now, &assertOnWakeSecs, &microsecs);
2598 			if (assertOnWakeReport) {
2599 				HISTREPORT_TALLYVALUE(assertOnWakeReport, (int64_t)assertOnWakeSecs);
2600 				DLOG("Updated assertOnWake %lu\n", (unsigned long)assertOnWakeSecs);
2601 			}
2602 		}
2603 	}
2604 }
2605 
2606 //******************************************************************************
2607 // idleSleepTimerExpired
2608 //
2609 //******************************************************************************
2610 
2611 static void
idleSleepTimerExpired(thread_call_param_t us,thread_call_param_t)2612 idleSleepTimerExpired(
2613 	thread_call_param_t us, thread_call_param_t )
2614 {
2615 	((IOPMrootDomain *)us)->handleSleepTimerExpiration();
2616 }
2617 
2618 //******************************************************************************
2619 // handleSleepTimerExpiration
2620 //
2621 // The time between the sleep idle timeout and the next longest one has elapsed.
2622 // It's time to sleep. Start that by removing the clamp that's holding us awake.
2623 //******************************************************************************
2624 
2625 void
handleSleepTimerExpiration(void)2626 IOPMrootDomain::handleSleepTimerExpiration( void )
2627 {
2628 	if (!gIOPMWorkLoop->inGate()) {
2629 		gIOPMWorkLoop->runAction(
2630 			OSMemberFunctionCast(IOWorkLoop::Action, this,
2631 			&IOPMrootDomain::handleSleepTimerExpiration),
2632 			this);
2633 		return;
2634 	}
2635 
2636 	DLOG("sleep timer expired\n");
2637 	ASSERT_GATED();
2638 
2639 	idleSleepTimerPending = false;
2640 	setQuickSpinDownTimeout();
2641 	adjustPowerState(true);
2642 }
2643 
2644 //******************************************************************************
2645 // getTimeToIdleSleep
2646 //
2647 // Returns number of milliseconds left before going into idle sleep.
2648 // Caller has to make sure that idle sleep is allowed at the time of calling
2649 // this function
2650 //******************************************************************************
2651 
2652 uint32_t
getTimeToIdleSleep(void)2653 IOPMrootDomain::getTimeToIdleSleep( void )
2654 {
2655 	AbsoluteTime    now, lastActivityTime;
2656 	uint64_t        nanos;
2657 	uint32_t        minutesSinceUserInactive = 0;
2658 	uint32_t        sleepDelay = 0;
2659 
2660 	if (!idleSleepEnabled) {
2661 		return 0xffffffff;
2662 	}
2663 
2664 	if (userActivityTime) {
2665 		lastActivityTime = userActivityTime;
2666 	} else {
2667 		lastActivityTime = userBecameInactiveTime;
2668 	}
2669 
2670 	// Ignore any lastActivityTime that predates the last system wake.
2671 	// The goal is to avoid a sudden idle sleep right after a dark wake
2672 	// due to sleepDelay=0 computed below. The alternative 60s minimum
2673 	// timeout should be large enough to allow dark wake to complete,
2674 	// at which point the idle timer will be promptly cancelled.
2675 	clock_get_uptime(&now);
2676 	if ((CMP_ABSOLUTETIME(&lastActivityTime, &gIOLastWakeAbsTime) >= 0) &&
2677 	    (CMP_ABSOLUTETIME(&now, &lastActivityTime) > 0)) {
2678 		SUB_ABSOLUTETIME(&now, &lastActivityTime);
2679 		absolutetime_to_nanoseconds(now, &nanos);
2680 		minutesSinceUserInactive = nanos / (60000000000ULL);
2681 
2682 		if (minutesSinceUserInactive >= sleepSlider) {
2683 			sleepDelay = 0;
2684 		} else {
2685 			sleepDelay = sleepSlider - minutesSinceUserInactive;
2686 		}
2687 	} else {
2688 		DLOG("ignoring lastActivityTime 0x%qx, now 0x%qx, wake 0x%qx\n",
2689 		    lastActivityTime, now, gIOLastWakeAbsTime);
2690 		sleepDelay = sleepSlider;
2691 	}
2692 
2693 	DLOG("user inactive %u min, time to idle sleep %u min\n",
2694 	    minutesSinceUserInactive, sleepDelay);
2695 
2696 	return sleepDelay * 60 * 1000;
2697 }
2698 
2699 //******************************************************************************
2700 // setQuickSpinDownTimeout
2701 //
2702 //******************************************************************************
2703 
2704 void
setQuickSpinDownTimeout(void)2705 IOPMrootDomain::setQuickSpinDownTimeout( void )
2706 {
2707 	ASSERT_GATED();
2708 	setAggressiveness(
2709 		kPMMinutesToSpinDown, 0, kAggressivesOptionQuickSpindownEnable );
2710 }
2711 
2712 //******************************************************************************
2713 // restoreUserSpinDownTimeout
2714 //
2715 //******************************************************************************
2716 
2717 void
restoreUserSpinDownTimeout(void)2718 IOPMrootDomain::restoreUserSpinDownTimeout( void )
2719 {
2720 	ASSERT_GATED();
2721 	setAggressiveness(
2722 		kPMMinutesToSpinDown, 0, kAggressivesOptionQuickSpindownDisable );
2723 }
2724 
2725 //******************************************************************************
2726 // sleepSystem
2727 //
2728 //******************************************************************************
2729 
2730 /* public */
2731 IOReturn
sleepSystem(void)2732 IOPMrootDomain::sleepSystem( void )
2733 {
2734 	return sleepSystemOptions(NULL);
2735 }
2736 
2737 /* private */
2738 IOReturn
sleepSystemOptions(OSDictionary * options)2739 IOPMrootDomain::sleepSystemOptions( OSDictionary *options )
2740 {
2741 	OSObject *obj = NULL;
2742 	OSString *reason = NULL;
2743 	/* sleepSystem is a public function, and may be called by any kernel driver.
2744 	 * And that's bad - drivers should sleep the system by calling
2745 	 * receivePowerNotification() instead. Drivers should not use sleepSystem.
2746 	 *
2747 	 * Note that user space app calls to IOPMSleepSystem() will also travel
2748 	 * this code path and thus be correctly identified as software sleeps.
2749 	 */
2750 
2751 	if (options && options->getObject("OSSwitch")) {
2752 		// Log specific sleep cause for OS Switch hibernation
2753 		return privateSleepSystem( kIOPMSleepReasonOSSwitchHibernate);
2754 	}
2755 
2756 	if (options && (obj = options->getObject("Sleep Reason"))) {
2757 		reason = OSDynamicCast(OSString, obj);
2758 		if (reason && reason->isEqualTo(kIOPMDarkWakeThermalEmergencyKey)) {
2759 			return privateSleepSystem(kIOPMSleepReasonDarkWakeThermalEmergency);
2760 		}
2761 		if (reason && reason->isEqualTo(kIOPMNotificationWakeExitKey)) {
2762 			return privateSleepSystem(kIOPMSleepReasonNotificationWakeExit);
2763 		}
2764 	}
2765 
2766 	return privateSleepSystem( kIOPMSleepReasonSoftware);
2767 }
2768 
2769 /* private */
2770 IOReturn
privateSleepSystem(uint32_t sleepReason)2771 IOPMrootDomain::privateSleepSystem( uint32_t sleepReason )
2772 {
2773 	/* Called from both gated and non-gated context */
2774 
2775 	if (!checkSystemSleepEnabled() || !pmPowerStateQueue) {
2776 		return kIOReturnNotPermitted;
2777 	}
2778 
2779 	pmPowerStateQueue->submitPowerEvent(
2780 		kPowerEventPolicyStimulus,
2781 		(void *) kStimulusDemandSystemSleep,
2782 		sleepReason);
2783 
2784 	return kIOReturnSuccess;
2785 }
2786 
2787 //******************************************************************************
2788 // powerChangeDone
2789 //
2790 // This overrides powerChangeDone in IOService.
2791 //******************************************************************************
2792 void
powerChangeDone(unsigned long previousPowerState)2793 IOPMrootDomain::powerChangeDone( unsigned long previousPowerState )
2794 {
2795 #if !__i386__ && !__x86_64__
2796 	uint64_t    timeSinceReset = 0;
2797 #endif
2798 	uint64_t           now;
2799 	unsigned long      newState;
2800 	clock_sec_t        secs;
2801 	clock_usec_t       microsecs;
2802 	uint32_t           lastDebugWakeSeconds;
2803 	clock_sec_t        adjWakeTime;
2804 	IOPMCalendarStruct nowCalendar;
2805 
2806 	ASSERT_GATED();
2807 	newState = getPowerState();
2808 	DLOG("PowerChangeDone: %s->%s\n",
2809 	    getPowerStateString((uint32_t) previousPowerState), getPowerStateString((uint32_t) getPowerState()));
2810 
2811 	if (previousPowerState == newState) {
2812 		return;
2813 	}
2814 
2815 	notifierThread = current_thread();
2816 	switch (getPowerState()) {
2817 	case SLEEP_STATE: {
2818 		if (kPMCalendarTypeInvalid != _aotWakeTimeCalendar.selector) {
2819 			secs = 0;
2820 			microsecs = 0;
2821 			PEGetUTCTimeOfDay(&secs, &microsecs);
2822 
2823 			adjWakeTime = 0;
2824 			if ((kIOPMAOTModeRespectTimers & _aotMode) && (_calendarWakeAlarmUTC < _aotWakeTimeUTC)) {
2825 				IOLog("use _calendarWakeAlarmUTC\n");
2826 				adjWakeTime = _calendarWakeAlarmUTC;
2827 			} else if (kIOPMWakeEventAOTExitFlags & _aotPendingFlags) {
2828 				IOLog("accelerate _aotWakeTime for exit\n");
2829 				adjWakeTime = secs;
2830 			} else if (kIOPMDriverAssertionLevelOn == getPMAssertionLevel(kIOPMDriverAssertionCPUBit)) {
2831 				IOLog("accelerate _aotWakeTime for assertion\n");
2832 				adjWakeTime = secs;
2833 			}
2834 			if (adjWakeTime) {
2835 				IOPMConvertSecondsToCalendar(adjWakeTime, &_aotWakeTimeCalendar);
2836 			}
2837 
2838 			IOPMConvertSecondsToCalendar(secs, &nowCalendar);
2839 			IOLog("aotSleep at " YMDTF " sched: " YMDTF "\n", YMDT(&nowCalendar), YMDT(&_aotWakeTimeCalendar));
2840 
2841 			IOReturn __unused ret = setMaintenanceWakeCalendar(&_aotWakeTimeCalendar);
2842 			assert(kIOReturnSuccess == ret);
2843 		}
2844 		if (_aotLastWakeTime) {
2845 			_aotMetrics->totalTime += mach_absolute_time() - _aotLastWakeTime;
2846 			if (_aotMetrics->sleepCount && (_aotMetrics->sleepCount <= kIOPMAOTMetricsKernelWakeCountMax)) {
2847 				strlcpy(&_aotMetrics->kernelWakeReason[_aotMetrics->sleepCount - 1][0],
2848 				    gWakeReasonString,
2849 				    sizeof(_aotMetrics->kernelWakeReason[_aotMetrics->sleepCount]));
2850 			}
2851 		}
2852 		_aotPendingFlags &= ~kIOPMWakeEventAOTPerCycleFlags;
2853 		if (_aotTimerScheduled) {
2854 			_aotTimerES->cancelTimeout();
2855 			_aotTimerScheduled = false;
2856 		}
2857 		acceptSystemWakeEvents(kAcceptSystemWakeEvents_Enable);
2858 
2859 		// re-enable this timer for next sleep
2860 		cancelIdleSleepTimer();
2861 
2862 		if (clamshellExists) {
2863 #if DARK_TO_FULL_EVALUATE_CLAMSHELL_DELAY
2864 			if (gClamshellFlags & kClamshell_WAR_58009435) {
2865 				// Disable clamshell sleep until system has completed full wake.
2866 				// This prevents a system sleep request (due to a clamshell close)
2867 				// from being queued until the end of system full wake - even if
2868 				// other clamshell disable bits outside of our control is wrong.
2869 				setClamShellSleepDisable(true, kClamshellSleepDisableInternal);
2870 			}
2871 #endif
2872 
2873 			// Log the last known clamshell state before system sleep
2874 			DLOG("clamshell closed %d, disabled %d/%x, desktopMode %d, ac %d\n",
2875 			    clamshellClosed, clamshellDisabled, clamshellSleepDisableMask,
2876 			    desktopMode, acAdaptorConnected);
2877 		}
2878 
2879 		clock_get_calendar_absolute_and_microtime(&secs, &microsecs, &now);
2880 		logtime(secs);
2881 		gIOLastSleepTime.tv_sec  = secs;
2882 		gIOLastSleepTime.tv_usec = microsecs;
2883 		if (!_aotLastWakeTime) {
2884 			gIOLastUserSleepTime = gIOLastSleepTime;
2885 		}
2886 
2887 		gIOLastWakeTime.tv_sec = 0;
2888 		gIOLastWakeTime.tv_usec = 0;
2889 		gIOLastSleepAbsTime = now;
2890 
2891 		if (wake2DarkwakeDelay && sleepDelaysReport) {
2892 			clock_sec_t     wake2DarkwakeSecs, darkwake2SleepSecs;
2893 			// Update 'wake2DarkwakeDelay' histogram if this is a fullwake->sleep transition
2894 
2895 			SUB_ABSOLUTETIME(&now, &ts_sleepStart);
2896 			absolutetime_to_microtime(now, &darkwake2SleepSecs, &microsecs);
2897 			absolutetime_to_microtime(wake2DarkwakeDelay, &wake2DarkwakeSecs, &microsecs);
2898 			HISTREPORT_TALLYVALUE(sleepDelaysReport,
2899 			    (int64_t)(wake2DarkwakeSecs + darkwake2SleepSecs));
2900 
2901 			DLOG("Updated sleepDelaysReport %lu %lu\n", (unsigned long)wake2DarkwakeSecs, (unsigned long)darkwake2SleepSecs);
2902 			wake2DarkwakeDelay = 0;
2903 		}
2904 #if HIBERNATION
2905 		LOG("System %sSleep\n", gIOHibernateState ? "Safe" : "");
2906 
2907 		IOHibernateSystemHasSlept();
2908 
2909 		evaluateSystemSleepPolicyFinal();
2910 #else
2911 		LOG("System Sleep\n");
2912 #endif
2913 		if (thermalWarningState) {
2914 			OSSharedPtr<const OSSymbol> event = OSSymbol::withCString(kIOPMThermalLevelWarningKey);
2915 			if (event) {
2916 				systemPowerEventOccurred(event.get(), kIOPMThermalLevelUnknown);
2917 			}
2918 		}
2919 		assertOnWakeSecs = 0;
2920 		lowBatteryCondition = false;
2921 		thermalEmergencyState = false;
2922 
2923 #if DEVELOPMENT || DEBUG
2924 		extern int g_should_log_clock_adjustments;
2925 		if (g_should_log_clock_adjustments) {
2926 			clock_sec_t  secs = 0;
2927 			clock_usec_t microsecs = 0;
2928 			uint64_t now_b = mach_absolute_time();
2929 
2930 			secs = 0;
2931 			microsecs = 0;
2932 			PEGetUTCTimeOfDay(&secs, &microsecs);
2933 
2934 			uint64_t now_a = mach_absolute_time();
2935 			os_log(OS_LOG_DEFAULT, "%s PMU before going to sleep %lu s %d u %llu abs_b_PEG %llu abs_a_PEG \n",
2936 			    __func__, (unsigned long)secs, microsecs, now_b, now_a);
2937 		}
2938 #endif
2939 
2940 		getPlatform()->sleepKernel();
2941 
2942 		// The CPU(s) are off at this point,
2943 		// Code will resume execution here upon wake.
2944 
2945 		clock_get_uptime(&gIOLastWakeAbsTime);
2946 		IOLog("gIOLastWakeAbsTime: %lld\n", gIOLastWakeAbsTime);
2947 		_highestCapability = 0;
2948 
2949 #if HIBERNATION
2950 		IOHibernateSystemWake();
2951 #endif
2952 
2953 		// sleep transition complete
2954 		gSleepOrShutdownPending = 0;
2955 
2956 		// trip the reset of the calendar clock
2957 		clock_wakeup_calendar();
2958 		clock_get_calendar_microtime(&secs, &microsecs);
2959 		gIOLastWakeTime.tv_sec  = secs;
2960 		gIOLastWakeTime.tv_usec = microsecs;
2961 
2962 		// aot
2963 		if (_aotWakeTimeCalendar.selector != kPMCalendarTypeInvalid) {
2964 			_aotWakeTimeCalendar.selector = kPMCalendarTypeInvalid;
2965 			secs = 0;
2966 			microsecs = 0;
2967 			PEGetUTCTimeOfDay(&secs, &microsecs);
2968 			IOPMConvertSecondsToCalendar(secs, &nowCalendar);
2969 			IOLog("aotWake at " YMDTF " sched: " YMDTF "\n", YMDT(&nowCalendar), YMDT(&_aotWakeTimeCalendar));
2970 			_aotMetrics->sleepCount++;
2971 			_aotLastWakeTime = gIOLastWakeAbsTime;
2972 			if (_aotMetrics->sleepCount <= kIOPMAOTMetricsKernelWakeCountMax) {
2973 				_aotMetrics->kernelSleepTime[_aotMetrics->sleepCount - 1]
2974 				        = (((uint64_t) gIOLastSleepTime.tv_sec) << 10) + (gIOLastSleepTime.tv_usec / 1000);
2975 				_aotMetrics->kernelWakeTime[_aotMetrics->sleepCount - 1]
2976 				        = (((uint64_t) gIOLastWakeTime.tv_sec) << 10) + (gIOLastWakeTime.tv_usec / 1000);
2977 			}
2978 
2979 			if (_aotTestTime) {
2980 				if (_aotWakeTimeUTC <= secs) {
2981 					_aotTestTime = _aotTestTime + _aotTestInterval;
2982 				}
2983 				setWakeTime(_aotTestTime);
2984 			}
2985 		}
2986 
2987 #if HIBERNATION
2988 		LOG("System %sWake\n", gIOHibernateState ? "SafeSleep " : "");
2989 #endif
2990 
2991 		lastSleepReason = 0;
2992 
2993 		lastDebugWakeSeconds    = _debugWakeSeconds;
2994 		_debugWakeSeconds       = 0;
2995 		_scheduledAlarmMask     = 0;
2996 		_nextScheduledAlarmType = NULL;
2997 
2998 		darkWakeExit            = false;
2999 		darkWakePowerClamped    = false;
3000 		darkWakePostTickle      = false;
3001 		darkWakeHibernateError  = false;
3002 		darkWakeToSleepASAP     = true;
3003 		darkWakeLogClamp        = true;
3004 		sleepTimerMaintenance   = false;
3005 		sleepToStandby          = false;
3006 		wranglerTickled         = false;
3007 		userWasActive           = false;
3008 		isRTCAlarmWake          = false;
3009 		clamshellIgnoreClose    = false;
3010 		fullWakeReason = kFullWakeReasonNone;
3011 
3012 #if defined(__i386__) || defined(__x86_64__)
3013 		kdebugTrace(kPMLogSystemWake, 0, 0, 0);
3014 
3015 		OSSharedPtr<OSObject> wakeTypeProp   = copyProperty(kIOPMRootDomainWakeTypeKey);
3016 		OSSharedPtr<OSObject> wakeReasonProp = copyProperty(kIOPMRootDomainWakeReasonKey);
3017 		OSString * wakeType = OSDynamicCast(OSString, wakeTypeProp.get());
3018 		OSString * wakeReason = OSDynamicCast(OSString, wakeReasonProp.get());
3019 
3020 		if (wakeReason && (wakeReason->getLength() >= 2) &&
3021 		    gWakeReasonString[0] == '\0') {
3022 			WAKEEVENT_LOCK();
3023 			// Until the platform driver can claim its wake reasons
3024 			strlcat(gWakeReasonString, wakeReason->getCStringNoCopy(),
3025 			    sizeof(gWakeReasonString));
3026 			if (!gWakeReasonSysctlRegistered) {
3027 				gWakeReasonSysctlRegistered = true;
3028 			}
3029 			WAKEEVENT_UNLOCK();
3030 		}
3031 
3032 		if (wakeType && wakeType->isEqualTo(kIOPMrootDomainWakeTypeLowBattery)) {
3033 			lowBatteryCondition = true;
3034 			darkWakeMaintenance = true;
3035 		} else {
3036 #if HIBERNATION
3037 			OSSharedPtr<OSObject> hibOptionsProp = copyProperty(kIOHibernateOptionsKey);
3038 			OSNumber * hibOptions = OSDynamicCast(  OSNumber, hibOptionsProp.get());
3039 			if (hibernateAborted || ((hibOptions &&
3040 			    !(hibOptions->unsigned32BitValue() & kIOHibernateOptionDarkWake)))) {
3041 				// Hibernate aborted, or EFI brought up graphics
3042 				darkWakeExit = true;
3043 				if (hibernateAborted) {
3044 					DLOG("Hibernation aborted\n");
3045 				} else {
3046 					DLOG("EFI brought up graphics. Going to full wake. HibOptions: 0x%x\n", hibOptions->unsigned32BitValue());
3047 				}
3048 			} else
3049 #endif
3050 			if (wakeType && (
3051 				    wakeType->isEqualTo(kIOPMRootDomainWakeTypeUser) ||
3052 				    wakeType->isEqualTo(kIOPMRootDomainWakeTypeAlarm))) {
3053 				// User wake or RTC alarm
3054 				darkWakeExit = true;
3055 				if (wakeType->isEqualTo(kIOPMRootDomainWakeTypeAlarm)) {
3056 					isRTCAlarmWake = true;
3057 				}
3058 			} else if (wakeType &&
3059 			    wakeType->isEqualTo(kIOPMRootDomainWakeTypeSleepTimer)) {
3060 				// SMC standby timer trumps SleepX
3061 				darkWakeMaintenance = true;
3062 				sleepTimerMaintenance = true;
3063 			} else if ((lastDebugWakeSeconds != 0) &&
3064 			    ((gDarkWakeFlags & kDarkWakeFlagAlarmIsDark) == 0)) {
3065 				// SleepX before maintenance
3066 				darkWakeExit = true;
3067 			} else if (wakeType &&
3068 			    wakeType->isEqualTo(kIOPMRootDomainWakeTypeMaintenance)) {
3069 				darkWakeMaintenance = true;
3070 			} else if (wakeType &&
3071 			    wakeType->isEqualTo(kIOPMRootDomainWakeTypeSleepService)) {
3072 				darkWakeMaintenance = true;
3073 				darkWakeSleepService = true;
3074 #if HIBERNATION
3075 				if (kIOHibernateStateWakingFromHibernate == gIOHibernateState) {
3076 					sleepToStandby = true;
3077 				}
3078 #endif
3079 			} else if (wakeType &&
3080 			    wakeType->isEqualTo(kIOPMRootDomainWakeTypeHibernateError)) {
3081 				darkWakeMaintenance = true;
3082 				darkWakeHibernateError = true;
3083 			} else {
3084 				// Unidentified wake source, resume to full wake if debug
3085 				// alarm is pending.
3086 
3087 				if (lastDebugWakeSeconds &&
3088 				    (!wakeReason || wakeReason->isEqualTo(""))) {
3089 					darkWakeExit = true;
3090 				}
3091 			}
3092 		}
3093 
3094 		if (darkWakeExit) {
3095 			darkWakeToSleepASAP = false;
3096 			fullWakeReason = kFullWakeReasonLocalUser;
3097 			reportUserInput();
3098 		} else if (displayPowerOnRequested && checkSystemCanSustainFullWake()) {
3099 			handleSetDisplayPowerOn(true);
3100 		} else if (!darkWakeMaintenance) {
3101 			// Early/late tickle for non-maintenance wake.
3102 			if ((gDarkWakeFlags & kDarkWakeFlagPromotionMask) != kDarkWakeFlagPromotionNone) {
3103 				darkWakePostTickle = true;
3104 			}
3105 		}
3106 #else   /* !__i386__ && !__x86_64__ */
3107 		timeSinceReset = ml_get_time_since_reset();
3108 		kdebugTrace(kPMLogSystemWake, 0, (uintptr_t)(timeSinceReset >> 32), (uintptr_t) timeSinceReset);
3109 
3110 		if ((gDarkWakeFlags & kDarkWakeFlagPromotionMask) == kDarkWakeFlagPromotionEarly) {
3111 			wranglerTickled = true;
3112 			fullWakeReason = kFullWakeReasonLocalUser;
3113 			requestUserActive(this, "Full wake on dark wake promotion boot-arg");
3114 		} else if ((lastDebugWakeSeconds != 0) && !(gDarkWakeFlags & kDarkWakeFlagAlarmIsDark)) {
3115 			isRTCAlarmWake = true;
3116 			fullWakeReason = kFullWakeReasonLocalUser;
3117 			requestUserActive(this, "RTC debug alarm");
3118 		} else {
3119 #if HIBERNATION
3120 			OSSharedPtr<OSObject> hibOptionsProp = copyProperty(kIOHibernateOptionsKey);
3121 			OSNumber * hibOptions = OSDynamicCast(OSNumber, hibOptionsProp.get());
3122 			if (hibOptions && !(hibOptions->unsigned32BitValue() & kIOHibernateOptionDarkWake)) {
3123 				fullWakeReason = kFullWakeReasonLocalUser;
3124 				requestUserActive(this, "hibernate user wake");
3125 			}
3126 #endif
3127 		}
3128 
3129 		// stay awake for at least 30 seconds
3130 		startIdleSleepTimer(30 * 1000);
3131 #endif
3132 		sleepCnt++;
3133 
3134 		thread_call_enter(updateConsoleUsersEntry);
3135 
3136 		// Skip AOT_STATE if we are waking up from an RTC timer.
3137 		// This check needs to be done after the epoch change is processed
3138 		// and before the changePowerStateWithTagToPriv() call below.
3139 		WAKEEVENT_LOCK();
3140 		aotShouldExit(false, false);
3141 		WAKEEVENT_UNLOCK();
3142 
3143 		changePowerStateWithTagToPriv(getRUN_STATE(), kCPSReasonWake);
3144 		break;
3145 	}
3146 #if !__i386__ && !__x86_64__
3147 	case ON_STATE:
3148 	case AOT_STATE:
3149 	{
3150 		DLOG("Force re-evaluating aggressiveness\n");
3151 		/* Force re-evaluate the aggressiveness values to set appropriate idle sleep timer */
3152 		pmPowerStateQueue->submitPowerEvent(
3153 			kPowerEventPolicyStimulus,
3154 			(void *) kStimulusNoIdleSleepPreventers );
3155 
3156 		// After changing to ON_STATE, invalidate any previously queued
3157 		// request to change to a state less than ON_STATE. This isn't
3158 		// necessary for AOT_STATE or if the device has only one running
3159 		// state since the changePowerStateToPriv() issued at the tail
3160 		// end of SLEEP_STATE case should take care of that.
3161 		if (getPowerState() == ON_STATE) {
3162 			changePowerStateWithTagToPriv(ON_STATE, kCPSReasonWake);
3163 		}
3164 		break;
3165 	}
3166 #endif /* !__i386__ && !__x86_64__ */
3167 	}
3168 	notifierThread = NULL;
3169 }
3170 
3171 //******************************************************************************
3172 // requestPowerDomainState
3173 //
3174 // Extend implementation in IOService. Running on PM work loop thread.
3175 //******************************************************************************
3176 
3177 IOReturn
requestPowerDomainState(IOPMPowerFlags childDesire,IOPowerConnection * childConnection,unsigned long specification)3178 IOPMrootDomain::requestPowerDomainState(
3179 	IOPMPowerFlags      childDesire,
3180 	IOPowerConnection * childConnection,
3181 	unsigned long       specification )
3182 {
3183 	// Idle and system sleep prevention flags affects driver desire.
3184 	// Children desire are irrelevant so they are cleared.
3185 
3186 	return super::requestPowerDomainState(0, childConnection, specification);
3187 }
3188 
3189 
3190 static void
makeSleepPreventersListLog(const OSSharedPtr<OSSet> & preventers,char * buf,size_t buf_size)3191 makeSleepPreventersListLog(const OSSharedPtr<OSSet> &preventers, char *buf, size_t buf_size)
3192 {
3193 	if (!preventers->getCount()) {
3194 		return;
3195 	}
3196 
3197 	char *buf_iter = buf + strlen(buf);
3198 	char *buf_end = buf + buf_size;
3199 
3200 	OSSharedPtr<OSCollectionIterator> iterator = OSCollectionIterator::withCollection(preventers.get());
3201 	OSObject *obj = NULL;
3202 
3203 	while ((obj = iterator->getNextObject())) {
3204 		IOService *srv = OSDynamicCast(IOService, obj);
3205 		if (buf_iter < buf_end) {
3206 			buf_iter += snprintf(buf_iter, buf_end - buf_iter, " %s", srv->getName());
3207 		} else {
3208 			DLOG("Print buffer exhausted for sleep preventers list\n");
3209 			break;
3210 		}
3211 	}
3212 }
3213 
3214 //******************************************************************************
3215 // updatePreventIdleSleepList
3216 //
3217 // Called by IOService on PM work loop.
3218 // Returns true if PM policy recognized the driver's desire to prevent idle
3219 // sleep and updated the list of idle sleep preventers. Returns false otherwise
3220 //******************************************************************************
3221 
3222 bool
updatePreventIdleSleepList(IOService * service,bool addNotRemove)3223 IOPMrootDomain::updatePreventIdleSleepList(
3224 	IOService * service, bool addNotRemove)
3225 {
3226 	unsigned int oldCount;
3227 
3228 	oldCount = idleSleepPreventersCount();
3229 	return updatePreventIdleSleepListInternal(service, addNotRemove, oldCount);
3230 }
3231 
3232 bool
updatePreventIdleSleepListInternal(IOService * service,bool addNotRemove,unsigned int oldCount)3233 IOPMrootDomain::updatePreventIdleSleepListInternal(
3234 	IOService * service, bool addNotRemove, unsigned int oldCount)
3235 {
3236 	unsigned int newCount;
3237 
3238 	ASSERT_GATED();
3239 
3240 #if defined(XNU_TARGET_OS_OSX)
3241 	// Only the display wrangler and no-idle-sleep kernel assertions
3242 	// can prevent idle sleep. The kIOPMPreventIdleSleep capability flag
3243 	// reported by drivers in their power state table is ignored.
3244 	if (service && (service != wrangler) && (service != this)) {
3245 		return false;
3246 	}
3247 #endif
3248 
3249 	if (service) {
3250 		if (addNotRemove) {
3251 			preventIdleSleepList->setObject(service);
3252 			DLOG("Added %s to idle sleep preventers list (Total %u)\n",
3253 			    service->getName(), preventIdleSleepList->getCount());
3254 		} else if (preventIdleSleepList->member(service)) {
3255 			preventIdleSleepList->removeObject(service);
3256 			DLOG("Removed %s from idle sleep preventers list (Total %u)\n",
3257 			    service->getName(), preventIdleSleepList->getCount());
3258 		}
3259 
3260 		if (preventIdleSleepList->getCount()) {
3261 			char buf[256] = "Idle Sleep Preventers:";
3262 			makeSleepPreventersListLog(preventIdleSleepList, buf, sizeof(buf));
3263 			DLOG("%s\n", buf);
3264 		}
3265 	}
3266 
3267 	newCount = idleSleepPreventersCount();
3268 
3269 	if ((oldCount == 0) && (newCount != 0)) {
3270 		// Driver added to empty prevent list.
3271 		// Update the driver desire to prevent idle sleep.
3272 		// Driver desire does not prevent demand sleep.
3273 
3274 		changePowerStateWithTagTo(getRUN_STATE(), kCPSReasonIdleSleepPrevent);
3275 	} else if ((oldCount != 0) && (newCount == 0)) {
3276 		// Last driver removed from prevent list.
3277 		// Drop the driver clamp to allow idle sleep.
3278 
3279 		changePowerStateWithTagTo(SLEEP_STATE, kCPSReasonIdleSleepAllow);
3280 		evaluatePolicy( kStimulusNoIdleSleepPreventers );
3281 	}
3282 	messageClient(kIOPMMessageIdleSleepPreventers, systemCapabilityNotifier.get(),
3283 	    &newCount, sizeof(newCount));
3284 
3285 #if defined(XNU_TARGET_OS_OSX)
3286 	if (addNotRemove && (service == wrangler) && !checkSystemCanSustainFullWake()) {
3287 		DLOG("Cannot cancel idle sleep\n");
3288 		return false; // do not idle-cancel
3289 	}
3290 #endif
3291 
3292 	return true;
3293 }
3294 
3295 //******************************************************************************
3296 // startSpinDump
3297 //******************************************************************************
3298 
3299 void
startSpinDump(uint32_t spindumpKind)3300 IOPMrootDomain::startSpinDump(uint32_t spindumpKind)
3301 {
3302 	messageClients(kIOPMMessageLaunchBootSpinDump, (void *)(uintptr_t)spindumpKind);
3303 }
3304 
3305 //******************************************************************************
3306 // preventSystemSleepListUpdate
3307 //
3308 // Called by IOService on PM work loop.
3309 //******************************************************************************
3310 
3311 void
updatePreventSystemSleepList(IOService * service,bool addNotRemove)3312 IOPMrootDomain::updatePreventSystemSleepList(
3313 	IOService * service, bool addNotRemove )
3314 {
3315 	unsigned int oldCount, newCount;
3316 
3317 	ASSERT_GATED();
3318 	if (this == service) {
3319 		return;
3320 	}
3321 
3322 	oldCount = preventSystemSleepList->getCount();
3323 	if (addNotRemove) {
3324 		preventSystemSleepList->setObject(service);
3325 		DLOG("Added %s to system sleep preventers list (Total %u)\n",
3326 		    service->getName(), preventSystemSleepList->getCount());
3327 		if (!assertOnWakeSecs && gIOLastWakeAbsTime) {
3328 			AbsoluteTime    now;
3329 			clock_usec_t    microsecs;
3330 			clock_get_uptime(&now);
3331 			SUB_ABSOLUTETIME(&now, &gIOLastWakeAbsTime);
3332 			absolutetime_to_microtime(now, &assertOnWakeSecs, &microsecs);
3333 			if (assertOnWakeReport) {
3334 				HISTREPORT_TALLYVALUE(assertOnWakeReport, (int64_t)assertOnWakeSecs);
3335 				DLOG("Updated assertOnWake %lu\n", (unsigned long)assertOnWakeSecs);
3336 			}
3337 		}
3338 	} else if (preventSystemSleepList->member(service)) {
3339 		preventSystemSleepList->removeObject(service);
3340 		DLOG("Removed %s from system sleep preventers list (Total %u)\n",
3341 		    service->getName(), preventSystemSleepList->getCount());
3342 
3343 		if ((oldCount != 0) && (preventSystemSleepList->getCount() == 0)) {
3344 			// Lost all system sleep preventers.
3345 			// Send stimulus if system sleep was blocked, and is in dark wake.
3346 			evaluatePolicy( kStimulusDarkWakeEvaluate );
3347 		}
3348 	}
3349 
3350 	newCount = preventSystemSleepList->getCount();
3351 	if (newCount) {
3352 		char buf[256] = "System Sleep Preventers:";
3353 		makeSleepPreventersListLog(preventSystemSleepList, buf, sizeof(buf));
3354 		DLOG("%s\n", buf);
3355 	}
3356 
3357 	messageClient(kIOPMMessageSystemSleepPreventers, systemCapabilityNotifier.get(),
3358 	    &newCount, sizeof(newCount));
3359 }
3360 
3361 void
copySleepPreventersList(OSArray ** idleSleepList,OSArray ** systemSleepList)3362 IOPMrootDomain::copySleepPreventersList(OSArray **idleSleepList, OSArray **systemSleepList)
3363 {
3364 	OSSharedPtr<OSCollectionIterator> iterator;
3365 	OSObject    *object = NULL;
3366 	OSSharedPtr<OSArray>     array;
3367 
3368 	if (!gIOPMWorkLoop->inGate()) {
3369 		gIOPMWorkLoop->runAction(
3370 			OSMemberFunctionCast(IOWorkLoop::Action, this,
3371 			&IOPMrootDomain::IOPMrootDomain::copySleepPreventersList),
3372 			this, (void *)idleSleepList, (void *)systemSleepList);
3373 		return;
3374 	}
3375 
3376 	if (idleSleepList && preventIdleSleepList && (preventIdleSleepList->getCount() != 0)) {
3377 		iterator = OSCollectionIterator::withCollection(preventIdleSleepList.get());
3378 		array = OSArray::withCapacity(5);
3379 
3380 		if (iterator && array) {
3381 			while ((object = iterator->getNextObject())) {
3382 				IOService *service = OSDynamicCast(IOService, object);
3383 				if (service) {
3384 					OSSharedPtr<const OSSymbol> name = service->copyName();
3385 					if (name) {
3386 						array->setObject(name.get());
3387 					}
3388 				}
3389 			}
3390 		}
3391 		*idleSleepList = array.detach();
3392 	}
3393 
3394 	if (systemSleepList && preventSystemSleepList && (preventSystemSleepList->getCount() != 0)) {
3395 		iterator = OSCollectionIterator::withCollection(preventSystemSleepList.get());
3396 		array = OSArray::withCapacity(5);
3397 
3398 		if (iterator && array) {
3399 			while ((object = iterator->getNextObject())) {
3400 				IOService *service = OSDynamicCast(IOService, object);
3401 				if (service) {
3402 					OSSharedPtr<const OSSymbol> name = service->copyName();
3403 					if (name) {
3404 						array->setObject(name.get());
3405 					}
3406 				}
3407 			}
3408 		}
3409 		*systemSleepList = array.detach();
3410 	}
3411 }
3412 
3413 void
copySleepPreventersListWithID(OSArray ** idleSleepList,OSArray ** systemSleepList)3414 IOPMrootDomain::copySleepPreventersListWithID(OSArray **idleSleepList, OSArray **systemSleepList)
3415 {
3416 	OSSharedPtr<OSCollectionIterator> iterator;
3417 	OSObject    *object = NULL;
3418 	OSSharedPtr<OSArray>     array;
3419 
3420 	if (!gIOPMWorkLoop->inGate()) {
3421 		gIOPMWorkLoop->runAction(
3422 			OSMemberFunctionCast(IOWorkLoop::Action, this,
3423 			&IOPMrootDomain::IOPMrootDomain::copySleepPreventersListWithID),
3424 			this, (void *)idleSleepList, (void *)systemSleepList);
3425 		return;
3426 	}
3427 
3428 	if (idleSleepList && preventIdleSleepList && (preventIdleSleepList->getCount() != 0)) {
3429 		iterator = OSCollectionIterator::withCollection(preventIdleSleepList.get());
3430 		array = OSArray::withCapacity(5);
3431 
3432 		if (iterator && array) {
3433 			while ((object = iterator->getNextObject())) {
3434 				IOService *service = OSDynamicCast(IOService, object);
3435 				if (service) {
3436 					OSSharedPtr<OSDictionary> dict = OSDictionary::withCapacity(2);
3437 					OSSharedPtr<const OSSymbol> name = service->copyName();
3438 					OSSharedPtr<OSNumber> id = OSNumber::withNumber(service->getRegistryEntryID(), 64);
3439 					if (dict && name && id) {
3440 						dict->setObject(kIOPMDriverAssertionRegistryEntryIDKey, id.get());
3441 						dict->setObject(kIOPMDriverAssertionOwnerStringKey, name.get());
3442 						array->setObject(dict.get());
3443 					}
3444 				}
3445 			}
3446 		}
3447 		*idleSleepList = array.detach();
3448 	}
3449 
3450 	if (systemSleepList && preventSystemSleepList && (preventSystemSleepList->getCount() != 0)) {
3451 		iterator = OSCollectionIterator::withCollection(preventSystemSleepList.get());
3452 		array = OSArray::withCapacity(5);
3453 
3454 		if (iterator && array) {
3455 			while ((object = iterator->getNextObject())) {
3456 				IOService *service = OSDynamicCast(IOService, object);
3457 				if (service) {
3458 					OSSharedPtr<OSDictionary> dict = OSDictionary::withCapacity(2);
3459 					OSSharedPtr<const OSSymbol> name = service->copyName();
3460 					OSSharedPtr<OSNumber> id = OSNumber::withNumber(service->getRegistryEntryID(), 64);
3461 					if (dict && name && id) {
3462 						dict->setObject(kIOPMDriverAssertionRegistryEntryIDKey, id.get());
3463 						dict->setObject(kIOPMDriverAssertionOwnerStringKey, name.get());
3464 						array->setObject(dict.get());
3465 					}
3466 				}
3467 			}
3468 		}
3469 		*systemSleepList = array.detach();
3470 	}
3471 }
3472 
3473 //******************************************************************************
3474 // tellChangeDown
3475 //
3476 // Override the superclass implementation to send a different message type.
3477 //******************************************************************************
3478 
3479 bool
tellChangeDown(unsigned long stateNum)3480 IOPMrootDomain::tellChangeDown( unsigned long stateNum )
3481 {
3482 	DLOG("tellChangeDown %s->%s\n",
3483 	    getPowerStateString((uint32_t) getPowerState()), getPowerStateString((uint32_t) stateNum));
3484 
3485 	if (SLEEP_STATE == stateNum) {
3486 		// Legacy apps were already told in the full->dark transition
3487 		if (!ignoreTellChangeDown) {
3488 			tracePoint( kIOPMTracePointSleepApplications );
3489 		} else {
3490 			tracePoint( kIOPMTracePointSleepPriorityClients );
3491 		}
3492 	}
3493 
3494 	if (!ignoreTellChangeDown) {
3495 		userActivityAtSleep = userActivityCount;
3496 		DLOG("tellChangeDown::userActivityAtSleep %d\n", userActivityAtSleep);
3497 
3498 		if (SLEEP_STATE == stateNum) {
3499 			hibernateAborted = false;
3500 
3501 			// Direct callout into OSKext so it can disable kext unloads
3502 			// during sleep/wake to prevent deadlocks.
3503 			OSKextSystemSleepOrWake( kIOMessageSystemWillSleep );
3504 
3505 			IOService::updateConsoleUsers(NULL, kIOMessageSystemWillSleep);
3506 
3507 			// Two change downs are sent by IOServicePM. Ignore the 2nd.
3508 			// But tellClientsWithResponse() must be called for both.
3509 			ignoreTellChangeDown = true;
3510 		}
3511 	}
3512 
3513 	return super::tellClientsWithResponse( kIOMessageSystemWillSleep );
3514 }
3515 
3516 //******************************************************************************
3517 // askChangeDown
3518 //
3519 // Override the superclass implementation to send a different message type.
3520 // This must be idle sleep since we don't ask during any other power change.
3521 //******************************************************************************
3522 
3523 bool
askChangeDown(unsigned long stateNum)3524 IOPMrootDomain::askChangeDown( unsigned long stateNum )
3525 {
3526 	DLOG("askChangeDown %s->%s\n",
3527 	    getPowerStateString((uint32_t) getPowerState()), getPowerStateString((uint32_t) stateNum));
3528 
3529 	// Don't log for dark wake entry
3530 	if (kSystemTransitionSleep == _systemTransitionType) {
3531 		tracePoint( kIOPMTracePointSleepApplications );
3532 	}
3533 
3534 	return super::tellClientsWithResponse( kIOMessageCanSystemSleep );
3535 }
3536 
3537 //******************************************************************************
3538 // askChangeDownDone
3539 //
3540 // An opportunity for root domain to cancel the power transition,
3541 // possibily due to an assertion created by powerd in response to
3542 // kIOMessageCanSystemSleep.
3543 //
3544 // Idle sleep:
3545 //   full -> dark wake transition
3546 //     1. Notify apps and powerd with kIOMessageCanSystemSleep
3547 //     2. askChangeDownDone()
3548 //   dark -> sleep transition
3549 //     1. Notify powerd with kIOMessageCanSystemSleep
3550 //     2. askChangeDownDone()
3551 //
3552 // Demand sleep:
3553 //   full -> dark wake transition
3554 //     1. Notify powerd with kIOMessageCanSystemSleep
3555 //     2. askChangeDownDone()
3556 //   dark -> sleep transition
3557 //     1. Notify powerd with kIOMessageCanSystemSleep
3558 //     2. askChangeDownDone()
3559 //******************************************************************************
3560 
3561 void
askChangeDownDone(IOPMPowerChangeFlags * inOutChangeFlags,bool * cancel)3562 IOPMrootDomain::askChangeDownDone(
3563 	IOPMPowerChangeFlags * inOutChangeFlags, bool * cancel )
3564 {
3565 	DLOG("askChangeDownDone(0x%x, %u) type %x, cap %x->%x\n",
3566 	    *inOutChangeFlags, *cancel,
3567 	    _systemTransitionType,
3568 	    _currentCapability, _pendingCapability);
3569 
3570 	if ((false == *cancel) && (kSystemTransitionSleep == _systemTransitionType)) {
3571 		// Dark->Sleep transition.
3572 		// Check if there are any deny sleep assertions.
3573 		// lastSleepReason already set by handleOurPowerChangeStart()
3574 
3575 		if (!checkSystemCanSleep(lastSleepReason)) {
3576 			// Cancel dark wake to sleep transition.
3577 			// Must re-scan assertions upon entering dark wake.
3578 
3579 			*cancel = true;
3580 			DLOG("cancel dark->sleep\n");
3581 		}
3582 		if (_aotMode && (kPMCalendarTypeInvalid != _aotWakeTimeCalendar.selector)) {
3583 			uint64_t now = mach_continuous_time();
3584 			if (((now + _aotWakePreWindow) >= _aotWakeTimeContinuous)
3585 			    && (now < (_aotWakeTimeContinuous + _aotWakePostWindow))) {
3586 				*cancel = true;
3587 				IOLog("AOT wake window cancel: %qd, %qd\n", now, _aotWakeTimeContinuous);
3588 			}
3589 		}
3590 	}
3591 }
3592 
3593 //******************************************************************************
3594 // systemDidNotSleep
3595 //
3596 // Work common to both canceled or aborted sleep.
3597 //******************************************************************************
3598 
3599 void
systemDidNotSleep(void)3600 IOPMrootDomain::systemDidNotSleep( void )
3601 {
3602 	// reset console lock state
3603 	thread_call_enter(updateConsoleUsersEntry);
3604 
3605 	if (idleSleepEnabled) {
3606 		if (!wrangler) {
3607 #if defined(XNU_TARGET_OS_OSX) && !DISPLAY_WRANGLER_PRESENT
3608 			startIdleSleepTimer(kIdleSleepRetryInterval);
3609 #else
3610 			startIdleSleepTimer(idleMilliSeconds);
3611 #endif
3612 		} else if (!userIsActive) {
3613 			// Manually start the idle sleep timer besides waiting for
3614 			// the user to become inactive.
3615 			startIdleSleepTimer(kIdleSleepRetryInterval);
3616 		}
3617 	}
3618 
3619 	preventTransitionToUserActive(false);
3620 	IOService::setAdvisoryTickleEnable( true );
3621 
3622 	// After idle revert and cancel, send a did-change message to powerd
3623 	// to balance the previous will-change message. Kernel clients do not
3624 	// need this since sleep cannot be canceled once they are notified.
3625 
3626 	if (toldPowerdCapWillChange && systemCapabilityNotifier &&
3627 	    (_pendingCapability != _currentCapability) &&
3628 	    ((_systemMessageClientMask & kSystemMessageClientPowerd) != 0)) {
3629 		// Differs from a real capability gain change where notifyRef != 0,
3630 		// but it is zero here since no response is expected.
3631 
3632 		IOPMSystemCapabilityChangeParameters params;
3633 
3634 		bzero(&params, sizeof(params));
3635 		params.fromCapabilities = _pendingCapability;
3636 		params.toCapabilities = _currentCapability;
3637 		params.changeFlags = kIOPMSystemCapabilityDidChange;
3638 
3639 		DLOG("MESG cap %x->%x did change\n",
3640 		    params.fromCapabilities, params.toCapabilities);
3641 		messageClient(kIOMessageSystemCapabilityChange, systemCapabilityNotifier.get(),
3642 		    &params, sizeof(params));
3643 	}
3644 }
3645 
3646 //******************************************************************************
3647 // tellNoChangeDown
3648 //
3649 // Notify registered applications and kernel clients that we are not dropping
3650 // power.
3651 //
3652 // We override the superclass implementation so we can send a different message
3653 // type to the client or application being notified.
3654 //
3655 // This must be a vetoed idle sleep, since no other power change can be vetoed.
3656 //******************************************************************************
3657 
3658 void
tellNoChangeDown(unsigned long stateNum)3659 IOPMrootDomain::tellNoChangeDown( unsigned long stateNum )
3660 {
3661 	DLOG("tellNoChangeDown %s->%s\n",
3662 	    getPowerStateString((uint32_t) getPowerState()), getPowerStateString((uint32_t) stateNum));
3663 
3664 	// Sleep canceled, clear the sleep trace point.
3665 	tracePoint(kIOPMTracePointSystemUp);
3666 
3667 	systemDidNotSleep();
3668 	return tellClients( kIOMessageSystemWillNotSleep );
3669 }
3670 
3671 //******************************************************************************
3672 // tellChangeUp
3673 //
3674 // Notify registered applications and kernel clients that we are raising power.
3675 //
3676 // We override the superclass implementation so we can send a different message
3677 // type to the client or application being notified.
3678 //******************************************************************************
3679 
3680 void
tellChangeUp(unsigned long stateNum)3681 IOPMrootDomain::tellChangeUp( unsigned long stateNum )
3682 {
3683 	DLOG("tellChangeUp %s->%s\n",
3684 	    getPowerStateString((uint32_t) getPowerState()), getPowerStateString((uint32_t) stateNum));
3685 
3686 	ignoreTellChangeDown = false;
3687 
3688 	if (stateNum == ON_STATE) {
3689 		// Direct callout into OSKext so it can disable kext unloads
3690 		// during sleep/wake to prevent deadlocks.
3691 		OSKextSystemSleepOrWake( kIOMessageSystemHasPoweredOn );
3692 
3693 		// Notify platform that sleep was cancelled or resumed.
3694 		getPlatform()->callPlatformFunction(
3695 			sleepMessagePEFunction.get(), false,
3696 			(void *)(uintptr_t) kIOMessageSystemHasPoweredOn,
3697 			NULL, NULL, NULL);
3698 
3699 		if (getPowerState() == ON_STATE) {
3700 			// Sleep was cancelled by idle cancel or revert
3701 			if (!CAP_CURRENT(kIOPMSystemCapabilityGraphics)) {
3702 				// rdar://problem/50363791
3703 				// If system is in dark wake and sleep is cancelled, do not
3704 				// send SystemWillPowerOn/HasPoweredOn messages to kernel
3705 				// priority clients. They haven't yet seen a SystemWillSleep
3706 				// message before the cancellation. So make sure the kernel
3707 				// client bit is cleared in _systemMessageClientMask before
3708 				// invoking the tellClients() below. This bit may have been
3709 				// set by handleOurPowerChangeStart() anticipating a successful
3710 				// sleep and setting the filter mask ahead of time allows the
3711 				// SystemWillSleep message to go through.
3712 				_systemMessageClientMask &= ~kSystemMessageClientKernel;
3713 			}
3714 
3715 			systemDidNotSleep();
3716 			tellClients( kIOMessageSystemWillPowerOn );
3717 		}
3718 
3719 		tracePoint( kIOPMTracePointWakeApplications );
3720 		tellClients( kIOMessageSystemHasPoweredOn );
3721 	} else if (stateNum == AOT_STATE) {
3722 		if (getPowerState() == AOT_STATE) {
3723 			// Sleep was cancelled by idle cancel or revert
3724 			startIdleSleepTimer(idleMilliSeconds);
3725 		}
3726 	}
3727 }
3728 
3729 #define CAP_WILL_CHANGE_TO_OFF(params, flag) \
3730     (((params)->changeFlags & kIOPMSystemCapabilityWillChange) && \
3731      ((params)->fromCapabilities & (flag)) && \
3732      (((params)->toCapabilities & (flag)) == 0))
3733 
3734 #define CAP_DID_CHANGE_TO_ON(params, flag) \
3735     (((params)->changeFlags & kIOPMSystemCapabilityDidChange) && \
3736      ((params)->toCapabilities & (flag)) && \
3737      (((params)->fromCapabilities & (flag)) == 0))
3738 
3739 #define CAP_DID_CHANGE_TO_OFF(params, flag) \
3740     (((params)->changeFlags & kIOPMSystemCapabilityDidChange) && \
3741      ((params)->fromCapabilities & (flag)) && \
3742      (((params)->toCapabilities & (flag)) == 0))
3743 
3744 #define CAP_WILL_CHANGE_TO_ON(params, flag) \
3745     (((params)->changeFlags & kIOPMSystemCapabilityWillChange) && \
3746      ((params)->toCapabilities & (flag)) && \
3747      (((params)->fromCapabilities & (flag)) == 0))
3748 
3749 //******************************************************************************
3750 // sysPowerDownHandler
3751 //
3752 // Perform a vfs sync before system sleep.
3753 //******************************************************************************
3754 
3755 IOReturn
sysPowerDownHandler(void * target,void * refCon,UInt32 messageType,IOService * service,void * messageArgs,vm_size_t argSize)3756 IOPMrootDomain::sysPowerDownHandler(
3757 	void * target, void * refCon,
3758 	UInt32 messageType, IOService * service,
3759 	void * messageArgs, vm_size_t argSize )
3760 {
3761 	static UInt32 lastSystemMessageType = 0;
3762 	IOReturn    ret = 0;
3763 
3764 	DLOG("sysPowerDownHandler message %s\n", getIOMessageString(messageType));
3765 
3766 	// rdar://problem/50363791
3767 	// Sanity check to make sure the SystemWill/Has message types are
3768 	// received in the expected order for all kernel priority clients.
3769 	if (messageType == kIOMessageSystemWillSleep ||
3770 	    messageType == kIOMessageSystemWillPowerOn ||
3771 	    messageType == kIOMessageSystemHasPoweredOn) {
3772 		switch (messageType) {
3773 		case kIOMessageSystemWillPowerOn:
3774 			assert(lastSystemMessageType == kIOMessageSystemWillSleep);
3775 			break;
3776 		case kIOMessageSystemHasPoweredOn:
3777 			assert(lastSystemMessageType == kIOMessageSystemWillPowerOn);
3778 			break;
3779 		}
3780 
3781 		lastSystemMessageType = messageType;
3782 	}
3783 
3784 	if (!gRootDomain) {
3785 		return kIOReturnUnsupported;
3786 	}
3787 
3788 	if (messageType == kIOMessageSystemCapabilityChange) {
3789 		IOPMSystemCapabilityChangeParameters * params =
3790 		    (IOPMSystemCapabilityChangeParameters *) messageArgs;
3791 
3792 		// Interested applications have been notified of an impending power
3793 		// change and have acked (when applicable).
3794 		// This is our chance to save whatever state we can before powering
3795 		// down.
3796 		// We call sync_internal defined in xnu/bsd/vfs/vfs_syscalls.c,
3797 		// via callout
3798 
3799 		DLOG("sysPowerDownHandler cap %x -> %x (flags %x)\n",
3800 		    params->fromCapabilities, params->toCapabilities,
3801 		    params->changeFlags);
3802 
3803 		if (CAP_WILL_CHANGE_TO_OFF(params, kIOPMSystemCapabilityCPU)) {
3804 			// We will ack within 20 seconds
3805 			params->maxWaitForReply = 20 * 1000 * 1000;
3806 
3807 #if HIBERNATION
3808 			gRootDomain->evaluateSystemSleepPolicyEarly();
3809 
3810 			// add in time we could spend freeing pages
3811 			if (gRootDomain->hibernateMode && !gRootDomain->hibernateDisabled) {
3812 				params->maxWaitForReply = kCapabilityClientMaxWait;
3813 			}
3814 			DLOG("sysPowerDownHandler max wait %d s\n",
3815 			    (int) (params->maxWaitForReply / 1000 / 1000));
3816 #endif
3817 
3818 			// Notify platform that sleep has begun, after the early
3819 			// sleep policy evaluation.
3820 			getPlatform()->callPlatformFunction(
3821 				sleepMessagePEFunction.get(), false,
3822 				(void *)(uintptr_t) kIOMessageSystemWillSleep,
3823 				NULL, NULL, NULL);
3824 
3825 			if (!OSCompareAndSwap( 0, 1, &gSleepOrShutdownPending )) {
3826 				// Purposely delay the ack and hope that shutdown occurs quickly.
3827 				// Another option is not to schedule the thread and wait for
3828 				// ack timeout...
3829 				AbsoluteTime deadline;
3830 				clock_interval_to_deadline( 30, kSecondScale, &deadline );
3831 				thread_call_enter1_delayed(
3832 					gRootDomain->diskSyncCalloutEntry,
3833 					(thread_call_param_t)(uintptr_t) params->notifyRef,
3834 					deadline );
3835 			} else {
3836 				thread_call_enter1(
3837 					gRootDomain->diskSyncCalloutEntry,
3838 					(thread_call_param_t)(uintptr_t) params->notifyRef);
3839 			}
3840 		}
3841 #if HIBERNATION
3842 		else if (CAP_DID_CHANGE_TO_ON(params, kIOPMSystemCapabilityCPU)) {
3843 			// We will ack within 110 seconds
3844 			params->maxWaitForReply = 110 * 1000 * 1000;
3845 
3846 			thread_call_enter1(
3847 				gRootDomain->diskSyncCalloutEntry,
3848 				(thread_call_param_t)(uintptr_t) params->notifyRef);
3849 		}
3850 #endif
3851 		ret = kIOReturnSuccess;
3852 	}
3853 
3854 	return ret;
3855 }
3856 
3857 //******************************************************************************
3858 // handleQueueSleepWakeUUID
3859 //
3860 // Called from IOPMrootDomain when we're initiating a sleep,
3861 // or indirectly from PM configd when PM decides to clear the UUID.
3862 // PM clears the UUID several minutes after successful wake from sleep,
3863 // so that we might associate App spindumps with the immediately previous
3864 // sleep/wake.
3865 //
3866 // @param   obj has a retain on it. We're responsible for releasing that retain.
3867 //******************************************************************************
3868 
3869 void
handleQueueSleepWakeUUID(OSObject * obj)3870 IOPMrootDomain::handleQueueSleepWakeUUID(OSObject *obj)
3871 {
3872 	OSSharedPtr<OSString>    str;
3873 
3874 	if (kOSBooleanFalse == obj) {
3875 		handlePublishSleepWakeUUID(false);
3876 	} else {
3877 		str.reset(OSDynamicCast(OSString, obj), OSNoRetain);
3878 		if (str) {
3879 			// This branch caches the UUID for an upcoming sleep/wake
3880 			queuedSleepWakeUUIDString = str;
3881 			DLOG("SleepWake UUID queued: %s\n", queuedSleepWakeUUIDString->getCStringNoCopy());
3882 		}
3883 	}
3884 }
3885 //******************************************************************************
3886 // handlePublishSleepWakeUUID
3887 //
3888 // Called from IOPMrootDomain when we're initiating a sleep,
3889 // or indirectly from PM configd when PM decides to clear the UUID.
3890 // PM clears the UUID several minutes after successful wake from sleep,
3891 // so that we might associate App spindumps with the immediately previous
3892 // sleep/wake.
3893 //******************************************************************************
3894 
3895 void
handlePublishSleepWakeUUID(bool shouldPublish)3896 IOPMrootDomain::handlePublishSleepWakeUUID( bool shouldPublish )
3897 {
3898 	ASSERT_GATED();
3899 
3900 	/*
3901 	 * Clear the current UUID
3902 	 */
3903 	if (gSleepWakeUUIDIsSet) {
3904 		DLOG("SleepWake UUID cleared\n");
3905 
3906 		gSleepWakeUUIDIsSet = false;
3907 
3908 		removeProperty(kIOPMSleepWakeUUIDKey);
3909 		messageClients(kIOPMMessageSleepWakeUUIDChange, kIOPMMessageSleepWakeUUIDCleared);
3910 	}
3911 
3912 	/*
3913 	 * Optionally, publish a new UUID
3914 	 */
3915 	if (queuedSleepWakeUUIDString && shouldPublish) {
3916 		OSSharedPtr<OSString> publishThisUUID;
3917 
3918 		publishThisUUID = queuedSleepWakeUUIDString;
3919 
3920 		if (publishThisUUID) {
3921 			setProperty(kIOPMSleepWakeUUIDKey, publishThisUUID.get());
3922 		}
3923 
3924 		gSleepWakeUUIDIsSet = true;
3925 		messageClients(kIOPMMessageSleepWakeUUIDChange, kIOPMMessageSleepWakeUUIDSet);
3926 
3927 		queuedSleepWakeUUIDString.reset();
3928 	}
3929 }
3930 
3931 //******************************************************************************
3932 // IOPMGetSleepWakeUUIDKey
3933 //
3934 // Return the truth value of gSleepWakeUUIDIsSet and optionally copy the key.
3935 // To get the full key -- a C string -- the buffer must large enough for
3936 // the end-of-string character.
3937 // The key is expected to be an UUID string
3938 //******************************************************************************
3939 
3940 extern "C" bool
IOPMCopySleepWakeUUIDKey(char * buffer,size_t buf_len)3941 IOPMCopySleepWakeUUIDKey(char *buffer, size_t buf_len)
3942 {
3943 	if (!gSleepWakeUUIDIsSet) {
3944 		return false;
3945 	}
3946 
3947 	if (buffer != NULL) {
3948 		OSSharedPtr<OSString> string =
3949 		    OSDynamicPtrCast<OSString>(gRootDomain->copyProperty(kIOPMSleepWakeUUIDKey));
3950 
3951 		if (!string) {
3952 			*buffer = '\0';
3953 		} else {
3954 			strlcpy(buffer, string->getCStringNoCopy(), buf_len);
3955 		}
3956 	}
3957 
3958 	return true;
3959 }
3960 
3961 //******************************************************************************
3962 // lowLatencyAudioNotify
3963 //
3964 // Used to send an update about low latency audio activity to interested
3965 // clients. To keep the overhead minimal the OSDictionary used here
3966 // is initialized at boot.
3967 //******************************************************************************
3968 
3969 void
lowLatencyAudioNotify(uint64_t time,boolean_t state)3970 IOPMrootDomain::lowLatencyAudioNotify(uint64_t time, boolean_t state)
3971 {
3972 	if (lowLatencyAudioNotifierDict && lowLatencyAudioNotifyStateSym && lowLatencyAudioNotifyTimestampSym &&
3973 	    lowLatencyAudioNotifyStateVal && lowLatencyAudioNotifyTimestampVal) {
3974 		lowLatencyAudioNotifyTimestampVal->setValue(time);
3975 		lowLatencyAudioNotifyStateVal->setValue(state);
3976 		setPMSetting(gIOPMSettingLowLatencyAudioModeKey.get(), lowLatencyAudioNotifierDict.get());
3977 	} else {
3978 		DLOG("LowLatencyAudioNotify error\n");
3979 	}
3980 	return;
3981 }
3982 
3983 //******************************************************************************
3984 // IOPMrootDomainRTNotifier
3985 //
3986 // Used by performance controller to update the timestamp and state associated
3987 // with low latency audio activity in the system.
3988 //******************************************************************************
3989 
3990 extern "C" void
IOPMrootDomainRTNotifier(uint64_t time,boolean_t state)3991 IOPMrootDomainRTNotifier(uint64_t time, boolean_t state)
3992 {
3993 	gRootDomain->lowLatencyAudioNotify(time, state);
3994 	return;
3995 }
3996 
3997 //******************************************************************************
3998 // initializeBootSessionUUID
3999 //
4000 // Initialize the boot session uuid at boot up and sets it into registry.
4001 //******************************************************************************
4002 
4003 void
initializeBootSessionUUID(void)4004 IOPMrootDomain::initializeBootSessionUUID(void)
4005 {
4006 	uuid_t          new_uuid;
4007 	uuid_string_t   new_uuid_string;
4008 
4009 	uuid_generate(new_uuid);
4010 	uuid_unparse_upper(new_uuid, new_uuid_string);
4011 	memcpy(bootsessionuuid_string, new_uuid_string, sizeof(uuid_string_t));
4012 
4013 	setProperty(kIOPMBootSessionUUIDKey, new_uuid_string);
4014 }
4015 
4016 //******************************************************************************
4017 // Root domain uses the private and tagged changePowerState methods for
4018 // tracking and logging purposes.
4019 //******************************************************************************
4020 
4021 #define REQUEST_TAG_TO_REASON(x)        ((uint16_t)x)
4022 
4023 static uint32_t
nextRequestTag(IOPMRequestTag tag)4024 nextRequestTag( IOPMRequestTag tag )
4025 {
4026 	static SInt16 msb16 = 1;
4027 	uint16_t id = OSAddAtomic16(1, &msb16);
4028 	return ((uint32_t)id << 16) | REQUEST_TAG_TO_REASON(tag);
4029 }
4030 
4031 // TODO: remove this shim function and exported symbol
4032 IOReturn
changePowerStateTo(unsigned long ordinal)4033 IOPMrootDomain::changePowerStateTo( unsigned long ordinal )
4034 {
4035 	return changePowerStateWithTagTo(ordinal, kCPSReasonNone);
4036 }
4037 
4038 // TODO: remove this shim function and exported symbol
4039 IOReturn
changePowerStateToPriv(unsigned long ordinal)4040 IOPMrootDomain::changePowerStateToPriv( unsigned long ordinal )
4041 {
4042 	return changePowerStateWithTagToPriv(ordinal, kCPSReasonNone);
4043 }
4044 
4045 IOReturn
changePowerStateWithOverrideTo(IOPMPowerStateIndex ordinal,IOPMRequestTag reason)4046 IOPMrootDomain::changePowerStateWithOverrideTo(
4047 	IOPMPowerStateIndex ordinal, IOPMRequestTag reason )
4048 {
4049 	uint32_t tag = nextRequestTag(reason);
4050 	DLOG("%s(%s, %x)\n", __FUNCTION__, getPowerStateString((uint32_t) ordinal), tag);
4051 
4052 	if ((ordinal != ON_STATE) && (ordinal != AOT_STATE) && (ordinal != SLEEP_STATE)) {
4053 		return kIOReturnUnsupported;
4054 	}
4055 
4056 	return super::changePowerStateWithOverrideTo(ordinal, tag);
4057 }
4058 
4059 IOReturn
changePowerStateWithTagTo(IOPMPowerStateIndex ordinal,IOPMRequestTag reason)4060 IOPMrootDomain::changePowerStateWithTagTo(
4061 	IOPMPowerStateIndex ordinal, IOPMRequestTag reason )
4062 {
4063 	uint32_t tag = nextRequestTag(reason);
4064 	DLOG("%s(%s, %x)\n", __FUNCTION__, getPowerStateString((uint32_t) ordinal), tag);
4065 
4066 	if ((ordinal != ON_STATE) && (ordinal != AOT_STATE) && (ordinal != SLEEP_STATE)) {
4067 		return kIOReturnUnsupported;
4068 	}
4069 
4070 	return super::changePowerStateWithTagTo(ordinal, tag);
4071 }
4072 
4073 IOReturn
changePowerStateWithTagToPriv(IOPMPowerStateIndex ordinal,IOPMRequestTag reason)4074 IOPMrootDomain::changePowerStateWithTagToPriv(
4075 	IOPMPowerStateIndex ordinal, IOPMRequestTag reason )
4076 {
4077 	uint32_t tag = nextRequestTag(reason);
4078 	DLOG("%s(%s, %x)\n", __FUNCTION__, getPowerStateString((uint32_t) ordinal), tag);
4079 
4080 	if ((ordinal != ON_STATE) && (ordinal != AOT_STATE) && (ordinal != SLEEP_STATE)) {
4081 		return kIOReturnUnsupported;
4082 	}
4083 
4084 	return super::changePowerStateWithTagToPriv(ordinal, tag);
4085 }
4086 
4087 //******************************************************************************
4088 // activity detect
4089 //
4090 //******************************************************************************
4091 
4092 bool
activitySinceSleep(void)4093 IOPMrootDomain::activitySinceSleep(void)
4094 {
4095 	return userActivityCount != userActivityAtSleep;
4096 }
4097 
4098 bool
abortHibernation(void)4099 IOPMrootDomain::abortHibernation(void)
4100 {
4101 #if __arm64__
4102 	// don't allow hibernation to be aborted on ARM due to user activity
4103 	// since once ApplePMGR decides we're hibernating, we can't turn back
4104 	// see: <rdar://problem/63848862> Tonga ApplePMGR diff quiesce path support
4105 	return false;
4106 #else
4107 	bool ret = activitySinceSleep();
4108 
4109 	if (ret && !hibernateAborted && checkSystemCanSustainFullWake()) {
4110 		DLOG("activitySinceSleep ABORT [%d, %d]\n", userActivityCount, userActivityAtSleep);
4111 		hibernateAborted = true;
4112 	}
4113 	return ret;
4114 #endif
4115 }
4116 
4117 extern "C" int
hibernate_should_abort(void)4118 hibernate_should_abort(void)
4119 {
4120 	if (gRootDomain) {
4121 		return gRootDomain->abortHibernation();
4122 	} else {
4123 		return 0;
4124 	}
4125 }
4126 
4127 //******************************************************************************
4128 // willNotifyPowerChildren
4129 //
4130 // Called after all interested drivers have all acknowledged the power change,
4131 // but before any power children is informed. Dispatched though a thread call,
4132 // so it is safe to perform work that might block on a sleeping disk. PM state
4133 // machine (not thread) will block w/o timeout until this function returns.
4134 //******************************************************************************
4135 
4136 void
willNotifyPowerChildren(IOPMPowerStateIndex newPowerState)4137 IOPMrootDomain::willNotifyPowerChildren( IOPMPowerStateIndex newPowerState )
4138 {
4139 	OSSharedPtr<OSDictionary> dict;
4140 	OSSharedPtr<OSNumber> secs;
4141 
4142 	if (SLEEP_STATE == newPowerState) {
4143 		notifierThread = current_thread();
4144 		if (updateTasksSuspend(kTasksSuspendSuspended, kTasksSuspendNoChange)) {
4145 			AbsoluteTime deadline;
4146 
4147 			clock_interval_to_deadline(10, kSecondScale, &deadline);
4148 #if defined(XNU_TARGET_OS_OSX)
4149 			vm_pageout_wait(AbsoluteTime_to_scalar(&deadline));
4150 #endif /* defined(XNU_TARGET_OS_OSX) */
4151 		}
4152 
4153 		_aotReadyToFullWake = false;
4154 #if 0
4155 		if (_aotLingerTime) {
4156 			uint64_t deadline;
4157 			IOLog("aot linger no return\n");
4158 			clock_absolutetime_interval_to_deadline(_aotLingerTime, &deadline);
4159 			clock_delay_until(deadline);
4160 		}
4161 #endif
4162 		if (!_aotMode) {
4163 			_aotTestTime = 0;
4164 			_aotWakeTimeCalendar.selector = kPMCalendarTypeInvalid;
4165 			_aotLastWakeTime = 0;
4166 			if (_aotMetrics) {
4167 				bzero(_aotMetrics, sizeof(IOPMAOTMetrics));
4168 			}
4169 		} else if (!_aotNow && !_debugWakeSeconds) {
4170 			_aotNow            = true;
4171 			_aotPendingFlags   = 0;
4172 			_aotTasksSuspended = true;
4173 			_aotLastWakeTime   = 0;
4174 			bzero(_aotMetrics, sizeof(IOPMAOTMetrics));
4175 			if (kIOPMAOTModeCycle & _aotMode) {
4176 				clock_interval_to_absolutetime_interval(60, kSecondScale, &_aotTestInterval);
4177 				_aotTestTime = mach_continuous_time() + _aotTestInterval;
4178 				setWakeTime(_aotTestTime);
4179 			}
4180 			uint32_t lingerSecs;
4181 			if (!PE_parse_boot_argn("aotlinger", &lingerSecs, sizeof(lingerSecs))) {
4182 				lingerSecs = 0;
4183 			}
4184 			clock_interval_to_absolutetime_interval(lingerSecs, kSecondScale, &_aotLingerTime);
4185 			clock_interval_to_absolutetime_interval(2000, kMillisecondScale, &_aotWakePreWindow);
4186 			clock_interval_to_absolutetime_interval(1100, kMillisecondScale, &_aotWakePostWindow);
4187 		}
4188 
4189 #if HIBERNATION
4190 		IOHibernateSystemSleep();
4191 		IOHibernateIOKitSleep();
4192 #endif
4193 		if (gRootDomain->activitySinceSleep()) {
4194 			dict = OSDictionary::withCapacity(1);
4195 			secs = OSNumber::withNumber(1, 32);
4196 
4197 			if (dict && secs) {
4198 				dict->setObject(gIOPMSettingDebugWakeRelativeKey.get(), secs.get());
4199 				gRootDomain->setProperties(dict.get());
4200 				MSG("Reverting sleep with relative wake\n");
4201 			}
4202 		}
4203 
4204 		notifierThread = NULL;
4205 	}
4206 }
4207 
4208 //******************************************************************************
4209 // willTellSystemCapabilityDidChange
4210 //
4211 // IOServicePM calls this from OurChangeTellCapabilityDidChange() when root
4212 // domain is raising its power state, immediately after notifying interested
4213 // drivers and power children.
4214 //******************************************************************************
4215 
4216 void
willTellSystemCapabilityDidChange(void)4217 IOPMrootDomain::willTellSystemCapabilityDidChange( void )
4218 {
4219 	if ((_systemTransitionType == kSystemTransitionWake) &&
4220 	    !CAP_GAIN(kIOPMSystemCapabilityGraphics)) {
4221 		// After powering up drivers, dark->full promotion on the current wake
4222 		// transition is no longer possible. That is because the next machine
4223 		// state will issue the system capability change messages.
4224 		// The darkWakePowerClamped flag may already be set if the system has
4225 		// at least one driver that was power clamped due to dark wake.
4226 		// This function sets the darkWakePowerClamped flag in case there
4227 		// is no power-clamped driver in the system.
4228 		//
4229 		// Last opportunity to exit dark wake using:
4230 		// requestFullWake( kFullWakeReasonLocalUser );
4231 
4232 		if (!darkWakePowerClamped) {
4233 			if (darkWakeLogClamp) {
4234 				AbsoluteTime    now;
4235 				uint64_t        nsec;
4236 
4237 				clock_get_uptime(&now);
4238 				SUB_ABSOLUTETIME(&now, &gIOLastWakeAbsTime);
4239 				absolutetime_to_nanoseconds(now, &nsec);
4240 				DLOG("dark wake promotion disabled at %u ms\n",
4241 				    ((int)((nsec) / NSEC_PER_MSEC)));
4242 			}
4243 			darkWakePowerClamped = true;
4244 		}
4245 	}
4246 }
4247 
4248 //******************************************************************************
4249 // sleepOnClamshellClosed
4250 //
4251 // contains the logic to determine if the system should sleep when the clamshell
4252 // is closed.
4253 //******************************************************************************
4254 
4255 bool
shouldSleepOnClamshellClosed(void)4256 IOPMrootDomain::shouldSleepOnClamshellClosed( void )
4257 {
4258 	if (!clamshellExists) {
4259 		return false;
4260 	}
4261 
4262 	DLOG("clamshell closed %d, disabled %d/%x, desktopMode %d, ac %d\n",
4263 	    clamshellClosed, clamshellDisabled, clamshellSleepDisableMask, desktopMode, acAdaptorConnected);
4264 
4265 	return !clamshellDisabled && !(desktopMode && acAdaptorConnected) && !clamshellSleepDisableMask;
4266 }
4267 
4268 bool
shouldSleepOnRTCAlarmWake(void)4269 IOPMrootDomain::shouldSleepOnRTCAlarmWake( void )
4270 {
4271 	// Called once every RTC/Alarm wake. Device should go to sleep if on clamshell
4272 	// closed && battery
4273 	if (!clamshellExists) {
4274 		return false;
4275 	}
4276 
4277 	DLOG("shouldSleepOnRTCAlarmWake: clamshell closed %d, disabled %d/%x, desktopMode %d, ac %d\n",
4278 	    clamshellClosed, clamshellDisabled, clamshellSleepDisableMask, desktopMode, acAdaptorConnected);
4279 
4280 	return !acAdaptorConnected && !clamshellSleepDisableMask;
4281 }
4282 
4283 void
sendClientClamshellNotification(void)4284 IOPMrootDomain::sendClientClamshellNotification( void )
4285 {
4286 	/* Only broadcast clamshell alert if clamshell exists. */
4287 	if (!clamshellExists) {
4288 		return;
4289 	}
4290 
4291 	setProperty(kAppleClamshellStateKey,
4292 	    clamshellClosed ? kOSBooleanTrue : kOSBooleanFalse);
4293 
4294 	setProperty(kAppleClamshellCausesSleepKey,
4295 	    shouldSleepOnClamshellClosed() ? kOSBooleanTrue : kOSBooleanFalse);
4296 
4297 	/* Argument to message is a bitfiel of
4298 	 *      ( kClamshellStateBit | kClamshellSleepBit )
4299 	 */
4300 	messageClients(kIOPMMessageClamshellStateChange,
4301 	    (void *)(uintptr_t) ((clamshellClosed ? kClamshellStateBit : 0)
4302 	    | (shouldSleepOnClamshellClosed() ? kClamshellSleepBit : 0)));
4303 }
4304 
4305 //******************************************************************************
4306 // getSleepSupported
4307 //
4308 // Deprecated
4309 //******************************************************************************
4310 
4311 IOOptionBits
getSleepSupported(void)4312 IOPMrootDomain::getSleepSupported( void )
4313 {
4314 	return platformSleepSupport;
4315 }
4316 
4317 //******************************************************************************
4318 // setSleepSupported
4319 //
4320 // Deprecated
4321 //******************************************************************************
4322 
4323 void
setSleepSupported(IOOptionBits flags)4324 IOPMrootDomain::setSleepSupported( IOOptionBits flags )
4325 {
4326 	DLOG("setSleepSupported(%x)\n", (uint32_t) flags);
4327 	OSBitOrAtomic(flags, &platformSleepSupport);
4328 }
4329 
4330 //******************************************************************************
4331 // setClamShellSleepDisable
4332 //
4333 //******************************************************************************
4334 
4335 void
setClamShellSleepDisable(bool disable,uint32_t bitmask)4336 IOPMrootDomain::setClamShellSleepDisable( bool disable, uint32_t bitmask )
4337 {
4338 	uint32_t oldMask;
4339 
4340 	// User client calls this in non-gated context
4341 	if (gIOPMWorkLoop->inGate() == false) {
4342 		gIOPMWorkLoop->runAction(
4343 			OSMemberFunctionCast(IOWorkLoop::Action, this,
4344 			&IOPMrootDomain::setClamShellSleepDisable),
4345 			(OSObject *) this,
4346 			(void *) disable, (void *)(uintptr_t) bitmask);
4347 		return;
4348 	}
4349 
4350 	oldMask = clamshellSleepDisableMask;
4351 	if (disable) {
4352 		clamshellSleepDisableMask |= bitmask;
4353 	} else {
4354 		clamshellSleepDisableMask &= ~bitmask;
4355 	}
4356 	DLOG("setClamShellSleepDisable(%x->%x)\n", oldMask, clamshellSleepDisableMask);
4357 
4358 	if (clamshellExists && clamshellClosed &&
4359 	    (clamshellSleepDisableMask != oldMask) &&
4360 	    (clamshellSleepDisableMask == 0)) {
4361 		handlePowerNotification(kLocalEvalClamshellCommand);
4362 	}
4363 }
4364 
4365 //******************************************************************************
4366 // wakeFromDoze
4367 //
4368 // Deprecated.
4369 //******************************************************************************
4370 
4371 void
wakeFromDoze(void)4372 IOPMrootDomain::wakeFromDoze( void )
4373 {
4374 	// Preserve symbol for familes (IOUSBFamily and IOGraphics)
4375 }
4376 
4377 //******************************************************************************
4378 // recordRTCAlarm
4379 //
4380 // Record the earliest scheduled RTC alarm to determine whether a RTC wake
4381 // should be a dark wake or a full wake. Both Maintenance and SleepService
4382 // alarms are dark wake, while AutoWake (WakeByCalendarDate) and DebugWake
4383 // (WakeRelativeToSleep) should trigger a full wake. Scheduled power-on
4384 // PMSettings are ignored.
4385 //
4386 // Caller serialized using settingsCtrlLock.
4387 //******************************************************************************
4388 
4389 void
recordRTCAlarm(const OSSymbol * type,OSObject * object)4390 IOPMrootDomain::recordRTCAlarm(
4391 	const OSSymbol  *type,
4392 	OSObject        *object )
4393 {
4394 	uint32_t previousAlarmMask = _scheduledAlarmMask;
4395 
4396 	if (type == gIOPMSettingDebugWakeRelativeKey) {
4397 		OSNumber * n = OSDynamicCast(OSNumber, object);
4398 		if (n) {
4399 			// Debug wake has highest scheduling priority so it overrides any
4400 			// pre-existing alarm.
4401 			uint32_t debugSecs = n->unsigned32BitValue();
4402 			_nextScheduledAlarmType.reset(type, OSRetain);
4403 			_nextScheduledAlarmUTC = debugSecs;
4404 
4405 			_debugWakeSeconds = debugSecs;
4406 			OSBitOrAtomic(kIOPMAlarmBitDebugWake, &_scheduledAlarmMask);
4407 			DLOG("next alarm (%s) in %u secs\n",
4408 			    type->getCStringNoCopy(), debugSecs);
4409 		}
4410 	} else if ((type == gIOPMSettingAutoWakeCalendarKey.get()) ||
4411 	    (type == gIOPMSettingMaintenanceWakeCalendarKey.get()) ||
4412 	    (type == gIOPMSettingSleepServiceWakeCalendarKey.get())) {
4413 		OSData * data = OSDynamicCast(OSData, object);
4414 		if (data && (data->getLength() == sizeof(IOPMCalendarStruct))) {
4415 			const IOPMCalendarStruct * cs;
4416 			bool replaceNextAlarm = false;
4417 			clock_sec_t secs;
4418 
4419 			cs = (const IOPMCalendarStruct *) data->getBytesNoCopy();
4420 			secs = IOPMConvertCalendarToSeconds(cs);
4421 			DLOG("%s " YMDTF "\n", type->getCStringNoCopy(), YMDT(cs));
4422 
4423 			// Update the next scheduled alarm type
4424 			if ((_nextScheduledAlarmType == NULL) ||
4425 			    ((_nextScheduledAlarmType != gIOPMSettingDebugWakeRelativeKey) &&
4426 			    (secs < _nextScheduledAlarmUTC))) {
4427 				replaceNextAlarm = true;
4428 			}
4429 
4430 			if (type == gIOPMSettingAutoWakeCalendarKey.get()) {
4431 				if (cs->year) {
4432 					_calendarWakeAlarmUTC = IOPMConvertCalendarToSeconds(cs);
4433 					OSBitOrAtomic(kIOPMAlarmBitCalendarWake, &_scheduledAlarmMask);
4434 				} else {
4435 					// TODO: can this else-block be removed?
4436 					_calendarWakeAlarmUTC = 0;
4437 					OSBitAndAtomic(~kIOPMAlarmBitCalendarWake, &_scheduledAlarmMask);
4438 				}
4439 			}
4440 			if (type == gIOPMSettingMaintenanceWakeCalendarKey.get()) {
4441 				OSBitOrAtomic(kIOPMAlarmBitMaintenanceWake, &_scheduledAlarmMask);
4442 			}
4443 			if (type == gIOPMSettingSleepServiceWakeCalendarKey.get()) {
4444 				OSBitOrAtomic(kIOPMAlarmBitSleepServiceWake, &_scheduledAlarmMask);
4445 			}
4446 
4447 			if (replaceNextAlarm) {
4448 				_nextScheduledAlarmType.reset(type, OSRetain);
4449 				_nextScheduledAlarmUTC = secs;
4450 				DLOG("next alarm (%s) " YMDTF "\n", type->getCStringNoCopy(), YMDT(cs));
4451 			}
4452 		}
4453 	}
4454 
4455 	if (_scheduledAlarmMask != previousAlarmMask) {
4456 		DLOG("scheduled alarm mask 0x%x\n", (uint32_t) _scheduledAlarmMask);
4457 	}
4458 }
4459 
4460 // MARK: -
4461 // MARK: Features
4462 
4463 //******************************************************************************
4464 // publishFeature
4465 //
4466 // Adds a new feature to the supported features dictionary
4467 //******************************************************************************
4468 
4469 void
publishFeature(const char * feature)4470 IOPMrootDomain::publishFeature( const char * feature )
4471 {
4472 	publishFeature(feature, kRD_AllPowerSources, NULL);
4473 }
4474 
4475 //******************************************************************************
4476 // publishFeature (with supported power source specified)
4477 //
4478 // Adds a new feature to the supported features dictionary
4479 //******************************************************************************
4480 
4481 void
publishFeature(const char * feature,uint32_t supportedWhere,uint32_t * uniqueFeatureID)4482 IOPMrootDomain::publishFeature(
4483 	const char *feature,
4484 	uint32_t supportedWhere,
4485 	uint32_t *uniqueFeatureID)
4486 {
4487 	static uint16_t       next_feature_id = 500;
4488 
4489 	OSSharedPtr<OSNumber> new_feature_data;
4490 	OSNumber             *existing_feature = NULL;
4491 	OSArray              *existing_feature_arr_raw = NULL;
4492 	OSSharedPtr<OSArray>  existing_feature_arr;
4493 	OSObject             *osObj = NULL;
4494 	uint32_t              feature_value = 0;
4495 
4496 	supportedWhere &= kRD_AllPowerSources; // mask off any craziness!
4497 
4498 	if (!supportedWhere) {
4499 		// Feature isn't supported anywhere!
4500 		return;
4501 	}
4502 
4503 	if (next_feature_id > 5000) {
4504 		// Far, far too many features!
4505 		return;
4506 	}
4507 
4508 	if (featuresDictLock) {
4509 		IOLockLock(featuresDictLock);
4510 	}
4511 
4512 	OSSharedPtr<OSObject> origFeaturesProp = copyProperty(kRootDomainSupportedFeatures);
4513 	OSDictionary *origFeatures = OSDynamicCast(OSDictionary, origFeaturesProp.get());
4514 	OSSharedPtr<OSDictionary> features;
4515 
4516 	// Create new features dict if necessary
4517 	if (origFeatures) {
4518 		features = OSDictionary::withDictionary(origFeatures);
4519 	} else {
4520 		features = OSDictionary::withCapacity(1);
4521 	}
4522 
4523 	// Create OSNumber to track new feature
4524 
4525 	next_feature_id += 1;
4526 	if (uniqueFeatureID) {
4527 		// We don't really mind if the calling kext didn't give us a place
4528 		// to stash their unique id. Many kexts don't plan to unload, and thus
4529 		// have no need to remove themselves later.
4530 		*uniqueFeatureID = next_feature_id;
4531 	}
4532 
4533 	feature_value = (uint32_t)next_feature_id;
4534 	feature_value <<= 16;
4535 	feature_value += supportedWhere;
4536 
4537 	new_feature_data = OSNumber::withNumber(
4538 		(unsigned long long)feature_value, 32);
4539 
4540 	// Does features object already exist?
4541 	if ((osObj = features->getObject(feature))) {
4542 		if ((existing_feature = OSDynamicCast(OSNumber, osObj))) {
4543 			// We need to create an OSArray to hold the now 2 elements.
4544 			existing_feature_arr = OSArray::withObjects(
4545 				(const OSObject **)&existing_feature, 1, 2);
4546 		} else if ((existing_feature_arr_raw = OSDynamicCast(OSArray, osObj))) {
4547 			// Add object to existing array
4548 			existing_feature_arr = OSArray::withArray(
4549 				existing_feature_arr_raw,
4550 				existing_feature_arr_raw->getCount() + 1);
4551 		}
4552 
4553 		if (existing_feature_arr) {
4554 			existing_feature_arr->setObject(new_feature_data.get());
4555 			features->setObject(feature, existing_feature_arr.get());
4556 		}
4557 	} else {
4558 		// The easy case: no previously existing features listed. We simply
4559 		// set the OSNumber at key 'feature' and we're on our way.
4560 		features->setObject(feature, new_feature_data.get());
4561 	}
4562 
4563 	setProperty(kRootDomainSupportedFeatures, features.get());
4564 
4565 	if (featuresDictLock) {
4566 		IOLockUnlock(featuresDictLock);
4567 	}
4568 
4569 	// Notify EnergySaver and all those in user space so they might
4570 	// re-populate their feature specific UI
4571 	if (pmPowerStateQueue) {
4572 		pmPowerStateQueue->submitPowerEvent( kPowerEventFeatureChanged );
4573 	}
4574 }
4575 
4576 //******************************************************************************
4577 // removePublishedFeature
4578 //
4579 // Removes previously published feature
4580 //******************************************************************************
4581 
4582 IOReturn
removePublishedFeature(uint32_t removeFeatureID)4583 IOPMrootDomain::removePublishedFeature( uint32_t removeFeatureID )
4584 {
4585 	IOReturn                ret = kIOReturnError;
4586 	uint32_t                feature_value = 0;
4587 	uint16_t                feature_id = 0;
4588 	bool                    madeAChange = false;
4589 
4590 	OSSymbol                *dictKey = NULL;
4591 	OSSharedPtr<OSCollectionIterator>    dictIterator;
4592 	OSArray                 *arrayMember  = NULL;
4593 	OSNumber                *numberMember = NULL;
4594 	OSObject                *osObj        = NULL;
4595 	OSNumber                *osNum        = NULL;
4596 	OSSharedPtr<OSArray>    arrayMemberCopy;
4597 
4598 	if (kBadPMFeatureID == removeFeatureID) {
4599 		return kIOReturnNotFound;
4600 	}
4601 
4602 	if (featuresDictLock) {
4603 		IOLockLock(featuresDictLock);
4604 	}
4605 
4606 	OSSharedPtr<OSObject> origFeaturesProp = copyProperty(kRootDomainSupportedFeatures);
4607 	OSDictionary *origFeatures = OSDynamicCast(OSDictionary, origFeaturesProp.get());
4608 	OSSharedPtr<OSDictionary> features;
4609 
4610 	if (origFeatures) {
4611 		// Any modifications to the dictionary are made to the copy to prevent
4612 		// races & crashes with userland clients. Dictionary updated
4613 		// automically later.
4614 		features = OSDictionary::withDictionary(origFeatures);
4615 	} else {
4616 		features = NULL;
4617 		ret = kIOReturnNotFound;
4618 		goto exit;
4619 	}
4620 
4621 	// We iterate 'features' dictionary looking for an entry tagged
4622 	// with 'removeFeatureID'. If found, we remove it from our tracking
4623 	// structures and notify the OS via a general interest message.
4624 
4625 	dictIterator = OSCollectionIterator::withCollection(features.get());
4626 	if (!dictIterator) {
4627 		goto exit;
4628 	}
4629 
4630 	while ((dictKey = OSDynamicCast(OSSymbol, dictIterator->getNextObject()))) {
4631 		osObj = features->getObject(dictKey);
4632 
4633 		// Each Feature is either tracked by an OSNumber
4634 		if (osObj && (numberMember = OSDynamicCast(OSNumber, osObj))) {
4635 			feature_value = numberMember->unsigned32BitValue();
4636 			feature_id = (uint16_t)(feature_value >> 16);
4637 
4638 			if (feature_id == (uint16_t)removeFeatureID) {
4639 				// Remove this node
4640 				features->removeObject(dictKey);
4641 				madeAChange = true;
4642 				break;
4643 			}
4644 
4645 			// Or tracked by an OSArray of OSNumbers
4646 		} else if (osObj && (arrayMember = OSDynamicCast(OSArray, osObj))) {
4647 			unsigned int arrayCount = arrayMember->getCount();
4648 
4649 			for (unsigned int i = 0; i < arrayCount; i++) {
4650 				osNum = OSDynamicCast(OSNumber, arrayMember->getObject(i));
4651 				if (!osNum) {
4652 					continue;
4653 				}
4654 
4655 				feature_value = osNum->unsigned32BitValue();
4656 				feature_id = (uint16_t)(feature_value >> 16);
4657 
4658 				if (feature_id == (uint16_t)removeFeatureID) {
4659 					// Remove this node
4660 					if (1 == arrayCount) {
4661 						// If the array only contains one element, remove
4662 						// the whole thing.
4663 						features->removeObject(dictKey);
4664 					} else {
4665 						// Otherwise remove the element from a copy of the array.
4666 						arrayMemberCopy = OSArray::withArray(arrayMember);
4667 						if (arrayMemberCopy) {
4668 							arrayMemberCopy->removeObject(i);
4669 							features->setObject(dictKey, arrayMemberCopy.get());
4670 						}
4671 					}
4672 
4673 					madeAChange = true;
4674 					break;
4675 				}
4676 			}
4677 		}
4678 	}
4679 
4680 	if (madeAChange) {
4681 		ret = kIOReturnSuccess;
4682 
4683 		setProperty(kRootDomainSupportedFeatures, features.get());
4684 
4685 		// Notify EnergySaver and all those in user space so they might
4686 		// re-populate their feature specific UI
4687 		if (pmPowerStateQueue) {
4688 			pmPowerStateQueue->submitPowerEvent( kPowerEventFeatureChanged );
4689 		}
4690 	} else {
4691 		ret = kIOReturnNotFound;
4692 	}
4693 
4694 exit:
4695 	if (featuresDictLock) {
4696 		IOLockUnlock(featuresDictLock);
4697 	}
4698 	return ret;
4699 }
4700 
4701 //******************************************************************************
4702 // publishPMSetting (private)
4703 //
4704 // Should only be called by PMSettingObject to publish a PM Setting as a
4705 // supported feature.
4706 //******************************************************************************
4707 
4708 void
publishPMSetting(const OSSymbol * feature,uint32_t where,uint32_t * featureID)4709 IOPMrootDomain::publishPMSetting(
4710 	const OSSymbol * feature, uint32_t where, uint32_t * featureID )
4711 {
4712 	if (noPublishPMSettings &&
4713 	    (noPublishPMSettings->getNextIndexOfObject(feature, 0) != (unsigned int)-1)) {
4714 		// Setting found in noPublishPMSettings array
4715 		*featureID = kBadPMFeatureID;
4716 		return;
4717 	}
4718 
4719 	publishFeature(
4720 		feature->getCStringNoCopy(), where, featureID);
4721 }
4722 
4723 //******************************************************************************
4724 // setPMSetting (private)
4725 //
4726 // Internal helper to relay PM settings changes from user space to individual
4727 // drivers. Should be called only by IOPMrootDomain::setProperties.
4728 //******************************************************************************
4729 
4730 IOReturn
setPMSetting(const OSSymbol * type,OSObject * object)4731 IOPMrootDomain::setPMSetting(
4732 	const OSSymbol  *type,
4733 	OSObject        *object )
4734 {
4735 	PMSettingCallEntry  *entries = NULL;
4736 	OSSharedPtr<OSArray>    chosen;
4737 	const OSArray       *array;
4738 	PMSettingObject     *pmso;
4739 	thread_t            thisThread;
4740 	int                 i, j, count, capacity;
4741 	bool                ok = false;
4742 	IOReturn            ret;
4743 
4744 	if (NULL == type) {
4745 		return kIOReturnBadArgument;
4746 	}
4747 
4748 	PMSETTING_LOCK();
4749 
4750 	// Update settings dict so changes are visible from copyPMSetting().
4751 	fPMSettingsDict->setObject(type, object);
4752 
4753 	// Prep all PMSetting objects with the given 'type' for callout.
4754 	array = OSDynamicCast(OSArray, settingsCallbacks->getObject(type));
4755 	if (!array || ((capacity = array->getCount()) == 0)) {
4756 		goto unlock_exit;
4757 	}
4758 
4759 	// Array to retain PMSetting objects targeted for callout.
4760 	chosen = OSArray::withCapacity(capacity);
4761 	if (!chosen) {
4762 		goto unlock_exit; // error
4763 	}
4764 	entries = IONew(PMSettingCallEntry, capacity);
4765 	if (!entries) {
4766 		goto unlock_exit; // error
4767 	}
4768 	memset(entries, 0, sizeof(PMSettingCallEntry) * capacity);
4769 
4770 	thisThread = current_thread();
4771 
4772 	for (i = 0, j = 0; i < capacity; i++) {
4773 		pmso = (PMSettingObject *) array->getObject(i);
4774 		if (pmso->disabled) {
4775 			continue;
4776 		}
4777 		entries[j].thread = thisThread;
4778 		queue_enter(&pmso->calloutQueue, &entries[j], PMSettingCallEntry *, link);
4779 		chosen->setObject(pmso);
4780 		j++;
4781 	}
4782 	count = j;
4783 	if (!count) {
4784 		goto unlock_exit;
4785 	}
4786 
4787 	PMSETTING_UNLOCK();
4788 
4789 	// Call each pmso in the chosen array.
4790 	for (i = 0; i < count; i++) {
4791 		pmso = (PMSettingObject *) chosen->getObject(i);
4792 		ret = pmso->dispatchPMSetting(type, object);
4793 		if (ret == kIOReturnSuccess) {
4794 			// At least one setting handler was successful
4795 			ok = true;
4796 #if DEVELOPMENT || DEBUG
4797 		} else {
4798 			// Log the handler and kext that failed
4799 			OSSharedPtr<const OSSymbol> kextName = copyKextIdentifierWithAddress((vm_address_t) pmso->func);
4800 			if (kextName) {
4801 				DLOG("PMSetting(%s) error 0x%x from %s\n",
4802 				    type->getCStringNoCopy(), ret, kextName->getCStringNoCopy());
4803 			}
4804 #endif
4805 		}
4806 	}
4807 
4808 	PMSETTING_LOCK();
4809 	for (i = 0; i < count; i++) {
4810 		pmso = (PMSettingObject *) chosen->getObject(i);
4811 		queue_remove(&pmso->calloutQueue, &entries[i], PMSettingCallEntry *, link);
4812 		if (pmso->waitThread) {
4813 			PMSETTING_WAKEUP(pmso);
4814 		}
4815 	}
4816 
4817 	if (ok) {
4818 		recordRTCAlarm(type, object);
4819 	}
4820 unlock_exit:
4821 	PMSETTING_UNLOCK();
4822 
4823 	if (entries) {
4824 		IODelete(entries, PMSettingCallEntry, capacity);
4825 	}
4826 
4827 	return kIOReturnSuccess;
4828 }
4829 
4830 //******************************************************************************
4831 // copyPMSetting (public)
4832 //
4833 // Allows kexts to safely read setting values, without being subscribed to
4834 // notifications.
4835 //******************************************************************************
4836 
4837 OSSharedPtr<OSObject>
copyPMSetting(OSSymbol * whichSetting)4838 IOPMrootDomain::copyPMSetting(
4839 	OSSymbol *whichSetting)
4840 {
4841 	OSSharedPtr<OSObject> obj;
4842 
4843 	if (!whichSetting) {
4844 		return NULL;
4845 	}
4846 
4847 	PMSETTING_LOCK();
4848 	obj.reset(fPMSettingsDict->getObject(whichSetting), OSRetain);
4849 	PMSETTING_UNLOCK();
4850 
4851 	return obj;
4852 }
4853 
4854 //******************************************************************************
4855 // registerPMSettingController (public)
4856 //
4857 // direct wrapper to registerPMSettingController with uint32_t power source arg
4858 //******************************************************************************
4859 
4860 IOReturn
registerPMSettingController(const OSSymbol * settings[],IOPMSettingControllerCallback func,OSObject * target,uintptr_t refcon,OSObject ** handle)4861 IOPMrootDomain::registerPMSettingController(
4862 	const OSSymbol *                settings[],
4863 	IOPMSettingControllerCallback   func,
4864 	OSObject                        *target,
4865 	uintptr_t                       refcon,
4866 	OSObject                        **handle)
4867 {
4868 	return registerPMSettingController(
4869 		settings,
4870 		(kIOPMSupportedOnAC | kIOPMSupportedOnBatt | kIOPMSupportedOnUPS),
4871 		func, target, refcon, handle);
4872 }
4873 
4874 //******************************************************************************
4875 // registerPMSettingController (public)
4876 //
4877 // Kexts may register for notifications when a particular setting is changed.
4878 // A list of settings is available in IOPM.h.
4879 // Arguments:
4880 //  * settings - An OSArray containing OSSymbols. Caller should populate this
4881 //          array with a list of settings caller wants notifications from.
4882 //  * func - A C function callback of the type IOPMSettingControllerCallback
4883 //  * target - caller may provide an OSObject *, which PM will pass as an
4884 //          target to calls to "func"
4885 //  * refcon - caller may provide an void *, which PM will pass as an
4886 //          argument to calls to "func"
4887 //  * handle - This is a return argument. We will populate this pointer upon
4888 //          call success. Hold onto this and pass this argument to
4889 //          IOPMrootDomain::deRegisterPMSettingCallback when unloading your kext
4890 // Returns:
4891 //      kIOReturnSuccess on success
4892 //******************************************************************************
4893 
4894 IOReturn
registerPMSettingController(const OSSymbol * settings[],uint32_t supportedPowerSources,IOPMSettingControllerCallback func,OSObject * target,uintptr_t refcon,OSObject ** handle)4895 IOPMrootDomain::registerPMSettingController(
4896 	const OSSymbol *                settings[],
4897 	uint32_t                        supportedPowerSources,
4898 	IOPMSettingControllerCallback   func,
4899 	OSObject                        *target,
4900 	uintptr_t                       refcon,
4901 	OSObject                        **handle)
4902 {
4903 	PMSettingObject *pmso = NULL;
4904 	OSObject        *pmsh = NULL;
4905 	int             i;
4906 
4907 	if (NULL == settings ||
4908 	    NULL == func ||
4909 	    NULL == handle) {
4910 		return kIOReturnBadArgument;
4911 	}
4912 
4913 	pmso = PMSettingObject::pmSettingObject(
4914 		(IOPMrootDomain *) this, func, target,
4915 		refcon, supportedPowerSources, settings, &pmsh);
4916 
4917 	if (!pmso) {
4918 		*handle = NULL;
4919 		return kIOReturnInternalError;
4920 	}
4921 
4922 	PMSETTING_LOCK();
4923 	for (i = 0; settings[i]; i++) {
4924 		OSSharedPtr<OSArray> newList;
4925 		OSArray *list = OSDynamicCast(OSArray, settingsCallbacks->getObject(settings[i]));
4926 		if (!list) {
4927 			// New array of callbacks for this setting
4928 			newList = OSArray::withCapacity(1);
4929 			settingsCallbacks->setObject(settings[i], newList.get());
4930 			list = newList.get();
4931 		}
4932 
4933 		// Add caller to the callback list
4934 		list->setObject(pmso);
4935 	}
4936 	PMSETTING_UNLOCK();
4937 
4938 	// Return handle to the caller, the setting object is private.
4939 	*handle = pmsh;
4940 
4941 	return kIOReturnSuccess;
4942 }
4943 
4944 //******************************************************************************
4945 // deregisterPMSettingObject (private)
4946 //
4947 // Only called from PMSettingObject.
4948 //******************************************************************************
4949 
4950 void
deregisterPMSettingObject(PMSettingObject * pmso)4951 IOPMrootDomain::deregisterPMSettingObject( PMSettingObject * pmso )
4952 {
4953 	thread_t                thisThread = current_thread();
4954 	PMSettingCallEntry      *callEntry;
4955 	OSSharedPtr<OSCollectionIterator>    iter;
4956 	OSSymbol                *sym;
4957 	OSArray                 *array;
4958 	int                     index;
4959 	bool                    wait;
4960 
4961 	PMSETTING_LOCK();
4962 
4963 	pmso->disabled = true;
4964 
4965 	// Wait for all callout threads to finish.
4966 	do {
4967 		wait = false;
4968 		queue_iterate(&pmso->calloutQueue, callEntry, PMSettingCallEntry *, link)
4969 		{
4970 			if (callEntry->thread != thisThread) {
4971 				wait = true;
4972 				break;
4973 			}
4974 		}
4975 		if (wait) {
4976 			assert(NULL == pmso->waitThread);
4977 			pmso->waitThread = thisThread;
4978 			PMSETTING_WAIT(pmso);
4979 			pmso->waitThread = NULL;
4980 		}
4981 	} while (wait);
4982 
4983 	// Search each PM settings array in the kernel.
4984 	iter = OSCollectionIterator::withCollection(settingsCallbacks.get());
4985 	if (iter) {
4986 		while ((sym = OSDynamicCast(OSSymbol, iter->getNextObject()))) {
4987 			array = OSDynamicCast(OSArray, settingsCallbacks->getObject(sym));
4988 			index = array->getNextIndexOfObject(pmso, 0);
4989 			if (-1 != index) {
4990 				array->removeObject(index);
4991 			}
4992 		}
4993 	}
4994 
4995 	PMSETTING_UNLOCK();
4996 
4997 	pmso->release();
4998 }
4999 
5000 //******************************************************************************
5001 // informCPUStateChange
5002 //
5003 // Call into PM CPU code so that CPU power savings may dynamically adjust for
5004 // running on battery, with the lid closed, etc.
5005 //
5006 // informCPUStateChange is a no-op on non x86 systems
5007 // only x86 has explicit support in the IntelCPUPowerManagement kext
5008 //******************************************************************************
5009 
5010 void
informCPUStateChange(uint32_t type,uint32_t value)5011 IOPMrootDomain::informCPUStateChange(
5012 	uint32_t type,
5013 	uint32_t value )
5014 {
5015 #if defined(__i386__) || defined(__x86_64__)
5016 
5017 	pmioctlVariableInfo_t varInfoStruct;
5018 	int                 pmCPUret = 0;
5019 	const char          *varNameStr = NULL;
5020 	int32_t             *varIndex   = NULL;
5021 
5022 	if (kInformAC == type) {
5023 		varNameStr = kIOPMRootDomainBatPowerCString;
5024 		varIndex = &idxPMCPULimitedPower;
5025 	} else if (kInformLid == type) {
5026 		varNameStr = kIOPMRootDomainLidCloseCString;
5027 		varIndex = &idxPMCPUClamshell;
5028 	} else {
5029 		return;
5030 	}
5031 
5032 	// Set the new value!
5033 	// pmCPUControl will assign us a new ID if one doesn't exist yet
5034 	bzero(&varInfoStruct, sizeof(pmioctlVariableInfo_t));
5035 	varInfoStruct.varID         = *varIndex;
5036 	varInfoStruct.varType       = vBool;
5037 	varInfoStruct.varInitValue  = value;
5038 	varInfoStruct.varCurValue   = value;
5039 	strlcpy((char *)varInfoStruct.varName,
5040 	    (const char *)varNameStr,
5041 	    sizeof(varInfoStruct.varName));
5042 
5043 	// Set!
5044 	pmCPUret = pmCPUControl( PMIOCSETVARINFO, (void *)&varInfoStruct );
5045 
5046 	// pmCPU only assigns numerical id's when a new varName is specified
5047 	if ((0 == pmCPUret)
5048 	    && (*varIndex == kCPUUnknownIndex)) {
5049 		// pmCPUControl has assigned us a new variable ID.
5050 		// Let's re-read the structure we just SET to learn that ID.
5051 		pmCPUret = pmCPUControl( PMIOCGETVARNAMEINFO, (void *)&varInfoStruct );
5052 
5053 		if (0 == pmCPUret) {
5054 			// Store it in idxPMCPUClamshell or idxPMCPULimitedPower
5055 			*varIndex = varInfoStruct.varID;
5056 		}
5057 	}
5058 
5059 	return;
5060 
5061 #endif /* __i386__ || __x86_64__ */
5062 }
5063 
5064 // MARK: -
5065 // MARK: Deep Sleep Policy
5066 
5067 #if HIBERNATION
5068 
5069 //******************************************************************************
5070 // evaluateSystemSleepPolicy
5071 //******************************************************************************
5072 
5073 #define kIOPlatformSystemSleepPolicyKey     "IOPlatformSystemSleepPolicy"
5074 
5075 // Sleep flags
5076 enum {
5077 	kIOPMSleepFlagHibernate         = 0x00000001,
5078 	kIOPMSleepFlagSleepTimerEnable  = 0x00000002
5079 };
5080 
5081 struct IOPMSystemSleepPolicyEntry {
5082 	uint32_t    factorMask;
5083 	uint32_t    factorBits;
5084 	uint32_t    sleepFlags;
5085 	uint32_t    wakeEvents;
5086 } __attribute__((packed));
5087 
5088 struct IOPMSystemSleepPolicyTable {
5089 	uint32_t    signature;
5090 	uint16_t    version;
5091 	uint16_t    entryCount;
5092 	IOPMSystemSleepPolicyEntry  entries[];
5093 } __attribute__((packed));
5094 
5095 enum {
5096 	kIOPMSleepAttributeHibernateSetup   = 0x00000001,
5097 	kIOPMSleepAttributeHibernateSleep   = 0x00000002
5098 };
5099 
5100 static uint32_t
getSleepTypeAttributes(uint32_t sleepType)5101 getSleepTypeAttributes( uint32_t sleepType )
5102 {
5103 	static const uint32_t sleepTypeAttributes[kIOPMSleepTypeLast] =
5104 	{
5105 		/* invalid   */ 0,
5106 		/* abort     */ 0,
5107 		/* normal    */ 0,
5108 		/* safesleep */ kIOPMSleepAttributeHibernateSetup,
5109 		/* hibernate */ kIOPMSleepAttributeHibernateSetup | kIOPMSleepAttributeHibernateSleep,
5110 		/* standby   */ kIOPMSleepAttributeHibernateSetup | kIOPMSleepAttributeHibernateSleep,
5111 		/* poweroff  */ kIOPMSleepAttributeHibernateSetup | kIOPMSleepAttributeHibernateSleep,
5112 		/* deepidle  */ 0
5113 	};
5114 
5115 	if (sleepType >= kIOPMSleepTypeLast) {
5116 		return 0;
5117 	}
5118 
5119 	return sleepTypeAttributes[sleepType];
5120 }
5121 
5122 bool
evaluateSystemSleepPolicy(IOPMSystemSleepParameters * params,int sleepPhase,uint32_t * hibMode)5123 IOPMrootDomain::evaluateSystemSleepPolicy(
5124 	IOPMSystemSleepParameters * params, int sleepPhase, uint32_t * hibMode )
5125 {
5126 #define SLEEP_FACTOR(x) {(uint32_t) kIOPMSleepFactor ## x, #x}
5127 
5128 	static const IONamedValue factorValues[] = {
5129 		SLEEP_FACTOR( SleepTimerWake ),
5130 		SLEEP_FACTOR( LidOpen ),
5131 		SLEEP_FACTOR( ACPower ),
5132 		SLEEP_FACTOR( BatteryLow ),
5133 		SLEEP_FACTOR( StandbyNoDelay ),
5134 		SLEEP_FACTOR( StandbyForced ),
5135 		SLEEP_FACTOR( StandbyDisabled ),
5136 		SLEEP_FACTOR( USBExternalDevice ),
5137 		SLEEP_FACTOR( BluetoothHIDDevice ),
5138 		SLEEP_FACTOR( ExternalMediaMounted ),
5139 		SLEEP_FACTOR( ThunderboltDevice ),
5140 		SLEEP_FACTOR( RTCAlarmScheduled ),
5141 		SLEEP_FACTOR( MagicPacketWakeEnabled ),
5142 		SLEEP_FACTOR( HibernateForced ),
5143 		SLEEP_FACTOR( AutoPowerOffDisabled ),
5144 		SLEEP_FACTOR( AutoPowerOffForced ),
5145 		SLEEP_FACTOR( ExternalDisplay ),
5146 		SLEEP_FACTOR( NetworkKeepAliveActive ),
5147 		SLEEP_FACTOR( LocalUserActivity ),
5148 		SLEEP_FACTOR( HibernateFailed ),
5149 		SLEEP_FACTOR( ThermalWarning ),
5150 		SLEEP_FACTOR( DisplayCaptured ),
5151 		{ 0, NULL }
5152 	};
5153 
5154 	const IOPMSystemSleepPolicyTable * pt;
5155 	OSSharedPtr<OSObject>  prop;
5156 	OSData *    policyData;
5157 	uint64_t    currentFactors = 0;
5158 	char        currentFactorsBuf[512];
5159 	uint32_t    standbyDelay   = 0;
5160 	uint32_t    powerOffDelay  = 0;
5161 	uint32_t    powerOffTimer  = 0;
5162 	uint32_t    standbyTimer  = 0;
5163 	uint32_t    mismatch;
5164 	bool        standbyEnabled;
5165 	bool        powerOffEnabled;
5166 	bool        found = false;
5167 
5168 	// Get platform's sleep policy table
5169 	if (!gSleepPolicyHandler) {
5170 		prop = getServiceRoot()->copyProperty(kIOPlatformSystemSleepPolicyKey);
5171 		if (!prop) {
5172 			goto done;
5173 		}
5174 	}
5175 
5176 	// Fetch additional settings
5177 	standbyEnabled = (getSleepOption(kIOPMDeepSleepDelayKey, &standbyDelay)
5178 	    && propertyHasValue(kIOPMDeepSleepEnabledKey, kOSBooleanTrue));
5179 	powerOffEnabled = (getSleepOption(kIOPMAutoPowerOffDelayKey, &powerOffDelay)
5180 	    && propertyHasValue(kIOPMAutoPowerOffEnabledKey, kOSBooleanTrue));
5181 	if (!getSleepOption(kIOPMAutoPowerOffTimerKey, &powerOffTimer)) {
5182 		powerOffTimer = powerOffDelay;
5183 	}
5184 	if (!getSleepOption(kIOPMDeepSleepTimerKey, &standbyTimer)) {
5185 		standbyTimer = standbyDelay;
5186 	}
5187 
5188 	DLOG("phase %d, standby %d delay %u timer %u, poweroff %d delay %u timer %u, hibernate 0x%x\n",
5189 	    sleepPhase, standbyEnabled, standbyDelay, standbyTimer,
5190 	    powerOffEnabled, powerOffDelay, powerOffTimer, *hibMode);
5191 
5192 	currentFactorsBuf[0] = 0;
5193 	// pmset level overrides
5194 	if ((*hibMode & kIOHibernateModeOn) == 0) {
5195 		if (!gSleepPolicyHandler) {
5196 			standbyEnabled  = false;
5197 			powerOffEnabled = false;
5198 		}
5199 	} else if (!(*hibMode & kIOHibernateModeSleep)) {
5200 		// Force hibernate (i.e. mode 25)
5201 		// If standby is enabled, force standy.
5202 		// If poweroff is enabled, force poweroff.
5203 		if (standbyEnabled) {
5204 			currentFactors |= kIOPMSleepFactorStandbyForced;
5205 		} else if (powerOffEnabled) {
5206 			currentFactors |= kIOPMSleepFactorAutoPowerOffForced;
5207 		} else {
5208 			currentFactors |= kIOPMSleepFactorHibernateForced;
5209 		}
5210 	}
5211 
5212 	// Current factors based on environment and assertions
5213 	if (sleepTimerMaintenance) {
5214 		currentFactors |= kIOPMSleepFactorSleepTimerWake;
5215 	}
5216 	if (standbyEnabled && sleepToStandby && !gSleepPolicyHandler) {
5217 		currentFactors |= kIOPMSleepFactorSleepTimerWake;
5218 	}
5219 	if (!clamshellClosed) {
5220 		currentFactors |= kIOPMSleepFactorLidOpen;
5221 	}
5222 	if (acAdaptorConnected) {
5223 		currentFactors |= kIOPMSleepFactorACPower;
5224 	}
5225 	if (lowBatteryCondition) {
5226 		hibernateMode = 0;
5227 		getSleepOption(kIOHibernateModeKey, &hibernateMode);
5228 		if ((hibernateMode & kIOHibernateModeOn) == 0) {
5229 			DLOG("HibernateMode is 0. Not sending LowBattery factor to IOPPF\n");
5230 		} else {
5231 			currentFactors |= kIOPMSleepFactorBatteryLow;
5232 		}
5233 	}
5234 	if (!standbyDelay || !standbyTimer) {
5235 		currentFactors |= kIOPMSleepFactorStandbyNoDelay;
5236 	}
5237 	if (standbyNixed || !standbyEnabled) {
5238 		currentFactors |= kIOPMSleepFactorStandbyDisabled;
5239 	}
5240 	if (resetTimers) {
5241 		currentFactors |= kIOPMSleepFactorLocalUserActivity;
5242 		currentFactors &= ~kIOPMSleepFactorSleepTimerWake;
5243 	}
5244 	if (getPMAssertionLevel(kIOPMDriverAssertionUSBExternalDeviceBit) !=
5245 	    kIOPMDriverAssertionLevelOff) {
5246 		currentFactors |= kIOPMSleepFactorUSBExternalDevice;
5247 	}
5248 	if (getPMAssertionLevel(kIOPMDriverAssertionBluetoothHIDDevicePairedBit) !=
5249 	    kIOPMDriverAssertionLevelOff) {
5250 		currentFactors |= kIOPMSleepFactorBluetoothHIDDevice;
5251 	}
5252 	if (getPMAssertionLevel(kIOPMDriverAssertionExternalMediaMountedBit) !=
5253 	    kIOPMDriverAssertionLevelOff) {
5254 		currentFactors |= kIOPMSleepFactorExternalMediaMounted;
5255 	}
5256 	if (getPMAssertionLevel(kIOPMDriverAssertionReservedBit5) !=
5257 	    kIOPMDriverAssertionLevelOff) {
5258 		currentFactors |= kIOPMSleepFactorThunderboltDevice;
5259 	}
5260 	if (_scheduledAlarmMask != 0) {
5261 		currentFactors |= kIOPMSleepFactorRTCAlarmScheduled;
5262 	}
5263 	if (getPMAssertionLevel(kIOPMDriverAssertionMagicPacketWakeEnabledBit) !=
5264 	    kIOPMDriverAssertionLevelOff) {
5265 		currentFactors |= kIOPMSleepFactorMagicPacketWakeEnabled;
5266 	}
5267 #define TCPKEEPALIVE 1
5268 #if TCPKEEPALIVE
5269 	if (getPMAssertionLevel(kIOPMDriverAssertionNetworkKeepAliveActiveBit) !=
5270 	    kIOPMDriverAssertionLevelOff) {
5271 		currentFactors |= kIOPMSleepFactorNetworkKeepAliveActive;
5272 	}
5273 #endif
5274 	if (!powerOffEnabled) {
5275 		currentFactors |= kIOPMSleepFactorAutoPowerOffDisabled;
5276 	}
5277 	if (desktopMode) {
5278 		currentFactors |= kIOPMSleepFactorExternalDisplay;
5279 	}
5280 	if (userWasActive) {
5281 		currentFactors |= kIOPMSleepFactorLocalUserActivity;
5282 	}
5283 	if (darkWakeHibernateError && !CAP_HIGHEST(kIOPMSystemCapabilityGraphics)) {
5284 		currentFactors |= kIOPMSleepFactorHibernateFailed;
5285 	}
5286 	if (thermalWarningState) {
5287 		currentFactors |= kIOPMSleepFactorThermalWarning;
5288 	}
5289 
5290 	for (int factorBit = 0; factorBit < (8 * sizeof(uint32_t)); factorBit++) {
5291 		uint32_t factor = 1 << factorBit;
5292 		if (factor & currentFactors) {
5293 			strlcat(currentFactorsBuf, ", ", sizeof(currentFactorsBuf));
5294 			strlcat(currentFactorsBuf, IOFindNameForValue(factor, factorValues), sizeof(currentFactorsBuf));
5295 		}
5296 	}
5297 	DLOG("sleep factors 0x%llx%s\n", currentFactors, currentFactorsBuf);
5298 
5299 	if (gSleepPolicyHandler) {
5300 		uint32_t    savedHibernateMode;
5301 		IOReturn    result;
5302 
5303 		if (!gSleepPolicyVars) {
5304 			gSleepPolicyVars = IOMallocType(IOPMSystemSleepPolicyVariables);
5305 		}
5306 		gSleepPolicyVars->signature = kIOPMSystemSleepPolicySignature;
5307 		gSleepPolicyVars->version   = kIOPMSystemSleepPolicyVersion;
5308 		gSleepPolicyVars->currentCapability = _currentCapability;
5309 		gSleepPolicyVars->highestCapability = _highestCapability;
5310 		gSleepPolicyVars->sleepFactors      = currentFactors;
5311 		gSleepPolicyVars->sleepReason       = lastSleepReason;
5312 		gSleepPolicyVars->sleepPhase        = sleepPhase;
5313 		gSleepPolicyVars->standbyDelay      = standbyDelay;
5314 		gSleepPolicyVars->standbyTimer      = standbyTimer;
5315 		gSleepPolicyVars->poweroffDelay     = powerOffDelay;
5316 		gSleepPolicyVars->scheduledAlarms   = _scheduledAlarmMask | _userScheduledAlarmMask;
5317 		gSleepPolicyVars->poweroffTimer     = powerOffTimer;
5318 
5319 		if (kIOPMSleepPhase0 == sleepPhase) {
5320 			// preserve hibernateMode
5321 			savedHibernateMode = gSleepPolicyVars->hibernateMode;
5322 			gSleepPolicyVars->hibernateMode = *hibMode;
5323 		} else if (kIOPMSleepPhase1 == sleepPhase) {
5324 			// use original hibernateMode for phase2
5325 			gSleepPolicyVars->hibernateMode = *hibMode;
5326 		}
5327 
5328 		result = gSleepPolicyHandler(gSleepPolicyTarget, gSleepPolicyVars, params);
5329 
5330 		if (kIOPMSleepPhase0 == sleepPhase) {
5331 			// restore hibernateMode
5332 			gSleepPolicyVars->hibernateMode = savedHibernateMode;
5333 		}
5334 
5335 		if ((result != kIOReturnSuccess) ||
5336 		    (kIOPMSleepTypeInvalid == params->sleepType) ||
5337 		    (params->sleepType >= kIOPMSleepTypeLast) ||
5338 		    (kIOPMSystemSleepParametersVersion != params->version)) {
5339 			MSG("sleep policy handler error\n");
5340 			goto done;
5341 		}
5342 
5343 		if ((getSleepTypeAttributes(params->sleepType) &
5344 		    kIOPMSleepAttributeHibernateSetup) &&
5345 		    ((*hibMode & kIOHibernateModeOn) == 0)) {
5346 			*hibMode |= (kIOHibernateModeOn | kIOHibernateModeSleep);
5347 		}
5348 
5349 		DLOG("sleep params v%u, type %u, flags 0x%x, wake 0x%x, timer %u, poweroff %u\n",
5350 		    params->version, params->sleepType, params->sleepFlags,
5351 		    params->ecWakeEvents, params->ecWakeTimer, params->ecPoweroffTimer);
5352 		found = true;
5353 		goto done;
5354 	}
5355 
5356 	// Policy table is meaningless without standby enabled
5357 	if (!standbyEnabled) {
5358 		goto done;
5359 	}
5360 
5361 	// Validate the sleep policy table
5362 	policyData = OSDynamicCast(OSData, prop.get());
5363 	if (!policyData || (policyData->getLength() <= sizeof(IOPMSystemSleepPolicyTable))) {
5364 		goto done;
5365 	}
5366 
5367 	pt = (const IOPMSystemSleepPolicyTable *) policyData->getBytesNoCopy();
5368 	if ((pt->signature != kIOPMSystemSleepPolicySignature) ||
5369 	    (pt->version != 1) || (0 == pt->entryCount)) {
5370 		goto done;
5371 	}
5372 
5373 	if (((policyData->getLength() - sizeof(IOPMSystemSleepPolicyTable)) !=
5374 	    (sizeof(IOPMSystemSleepPolicyEntry) * pt->entryCount))) {
5375 		goto done;
5376 	}
5377 
5378 	for (uint32_t i = 0; i < pt->entryCount; i++) {
5379 		const IOPMSystemSleepPolicyEntry * entry = &pt->entries[i];
5380 		mismatch = (((uint32_t)currentFactors ^ entry->factorBits) & entry->factorMask);
5381 
5382 		DLOG("mask 0x%08x, bits 0x%08x, flags 0x%08x, wake 0x%08x, mismatch 0x%08x\n",
5383 		    entry->factorMask, entry->factorBits,
5384 		    entry->sleepFlags, entry->wakeEvents, mismatch);
5385 		if (mismatch) {
5386 			continue;
5387 		}
5388 
5389 		DLOG("^ found match\n");
5390 		found = true;
5391 
5392 		params->version = kIOPMSystemSleepParametersVersion;
5393 		params->reserved1 = 1;
5394 		if (entry->sleepFlags & kIOPMSleepFlagHibernate) {
5395 			params->sleepType = kIOPMSleepTypeStandby;
5396 		} else {
5397 			params->sleepType = kIOPMSleepTypeNormalSleep;
5398 		}
5399 
5400 		params->ecWakeEvents = entry->wakeEvents;
5401 		if (entry->sleepFlags & kIOPMSleepFlagSleepTimerEnable) {
5402 			if (kIOPMSleepPhase2 == sleepPhase) {
5403 				clock_sec_t now_secs = gIOLastSleepTime.tv_sec;
5404 
5405 				if (!_standbyTimerResetSeconds ||
5406 				    (now_secs <= _standbyTimerResetSeconds)) {
5407 					// Reset standby timer adjustment
5408 					_standbyTimerResetSeconds = now_secs;
5409 					DLOG("standby delay %u, reset %u\n",
5410 					    standbyDelay, (uint32_t) _standbyTimerResetSeconds);
5411 				} else if (standbyDelay) {
5412 					// Shorten the standby delay timer
5413 					clock_sec_t elapsed = now_secs - _standbyTimerResetSeconds;
5414 					if (standbyDelay > elapsed) {
5415 						standbyDelay -= elapsed;
5416 					} else {
5417 						standbyDelay = 1; // must be > 0
5418 					}
5419 					DLOG("standby delay %u, elapsed %u\n",
5420 					    standbyDelay, (uint32_t) elapsed);
5421 				}
5422 			}
5423 			params->ecWakeTimer = standbyDelay;
5424 		} else if (kIOPMSleepPhase2 == sleepPhase) {
5425 			// A sleep that does not enable the sleep timer will reset
5426 			// the standby delay adjustment.
5427 			_standbyTimerResetSeconds = 0;
5428 		}
5429 		break;
5430 	}
5431 
5432 done:
5433 	return found;
5434 }
5435 
5436 static IOPMSystemSleepParameters gEarlySystemSleepParams;
5437 
5438 void
evaluateSystemSleepPolicyEarly(void)5439 IOPMrootDomain::evaluateSystemSleepPolicyEarly( void )
5440 {
5441 	// Evaluate early (priority interest phase), before drivers sleep.
5442 
5443 	DLOG("%s\n", __FUNCTION__);
5444 	removeProperty(kIOPMSystemSleepParametersKey);
5445 
5446 	// Full wake resets the standby timer delay adjustment
5447 	if (_highestCapability & kIOPMSystemCapabilityGraphics) {
5448 		_standbyTimerResetSeconds = 0;
5449 	}
5450 
5451 	hibernateDisabled = false;
5452 	hibernateMode = 0;
5453 	getSleepOption(kIOHibernateModeKey, &hibernateMode);
5454 
5455 	// Save for late evaluation if sleep is aborted
5456 	bzero(&gEarlySystemSleepParams, sizeof(gEarlySystemSleepParams));
5457 
5458 	if (evaluateSystemSleepPolicy(&gEarlySystemSleepParams, kIOPMSleepPhase1,
5459 	    &hibernateMode)) {
5460 		if (!hibernateRetry &&
5461 		    ((getSleepTypeAttributes(gEarlySystemSleepParams.sleepType) &
5462 		    kIOPMSleepAttributeHibernateSetup) == 0)) {
5463 			// skip hibernate setup
5464 			hibernateDisabled = true;
5465 		}
5466 	}
5467 
5468 	// Publish IOPMSystemSleepType
5469 	uint32_t sleepType = gEarlySystemSleepParams.sleepType;
5470 	if (sleepType == kIOPMSleepTypeInvalid) {
5471 		// no sleep policy
5472 		sleepType = kIOPMSleepTypeNormalSleep;
5473 		if (hibernateMode & kIOHibernateModeOn) {
5474 			sleepType = (hibernateMode & kIOHibernateModeSleep) ?
5475 			    kIOPMSleepTypeSafeSleep : kIOPMSleepTypeHibernate;
5476 		}
5477 	} else if ((sleepType == kIOPMSleepTypeStandby) &&
5478 	    (gEarlySystemSleepParams.ecPoweroffTimer)) {
5479 		// report the lowest possible sleep state
5480 		sleepType = kIOPMSleepTypePowerOff;
5481 	}
5482 
5483 	setProperty(kIOPMSystemSleepTypeKey, sleepType, 32);
5484 }
5485 
5486 void
evaluateSystemSleepPolicyFinal(void)5487 IOPMrootDomain::evaluateSystemSleepPolicyFinal( void )
5488 {
5489 	IOPMSystemSleepParameters   params;
5490 	OSSharedPtr<OSData>         paramsData;
5491 	bool                        wakeNow;
5492 	// Evaluate sleep policy after sleeping drivers but before platform sleep.
5493 
5494 	DLOG("%s\n", __FUNCTION__);
5495 
5496 	bzero(&params, sizeof(params));
5497 	wakeNow = false;
5498 	if (evaluateSystemSleepPolicy(&params, kIOPMSleepPhase2, &hibernateMode)) {
5499 		if ((kIOPMSleepTypeStandby == params.sleepType)
5500 		    && gIOHibernateStandbyDisabled && gSleepPolicyVars
5501 		    && (!((kIOPMSleepFactorStandbyForced | kIOPMSleepFactorAutoPowerOffForced | kIOPMSleepFactorHibernateForced)
5502 		    & gSleepPolicyVars->sleepFactors))) {
5503 			standbyNixed = true;
5504 			wakeNow = true;
5505 		}
5506 		if (wakeNow
5507 		    || ((hibernateDisabled || hibernateAborted) &&
5508 		    (getSleepTypeAttributes(params.sleepType) &
5509 		    kIOPMSleepAttributeHibernateSetup))) {
5510 			// Final evaluation picked a state requiring hibernation,
5511 			// but hibernate isn't going to proceed. Arm a short sleep using
5512 			// the early non-hibernate sleep parameters.
5513 			bcopy(&gEarlySystemSleepParams, &params, sizeof(params));
5514 			params.sleepType = kIOPMSleepTypeAbortedSleep;
5515 			params.ecWakeTimer = 1;
5516 			if (standbyNixed) {
5517 				resetTimers = true;
5518 			} else {
5519 				// Set hibernateRetry flag to force hibernate setup on the
5520 				// next sleep.
5521 				hibernateRetry = true;
5522 			}
5523 			DLOG("wake in %u secs for hibernateDisabled %d, hibernateAborted %d, standbyNixed %d\n",
5524 			    params.ecWakeTimer, hibernateDisabled, hibernateAborted, standbyNixed);
5525 		} else {
5526 			hibernateRetry = false;
5527 		}
5528 
5529 		if (kIOPMSleepTypeAbortedSleep != params.sleepType) {
5530 			resetTimers = false;
5531 		}
5532 
5533 		paramsData = OSData::withValue(params);
5534 		if (paramsData) {
5535 			setProperty(kIOPMSystemSleepParametersKey, paramsData.get());
5536 		}
5537 
5538 		if (getSleepTypeAttributes(params.sleepType) &
5539 		    kIOPMSleepAttributeHibernateSleep) {
5540 			// Disable sleep to force hibernation
5541 			gIOHibernateMode &= ~kIOHibernateModeSleep;
5542 		}
5543 	}
5544 }
5545 
5546 bool
getHibernateSettings(uint32_t * hibernateModePtr,uint32_t * hibernateFreeRatio,uint32_t * hibernateFreeTime)5547 IOPMrootDomain::getHibernateSettings(
5548 	uint32_t *  hibernateModePtr,
5549 	uint32_t *  hibernateFreeRatio,
5550 	uint32_t *  hibernateFreeTime )
5551 {
5552 	// Called by IOHibernateSystemSleep() after evaluateSystemSleepPolicyEarly()
5553 	// has updated the hibernateDisabled flag.
5554 
5555 	bool ok = getSleepOption(kIOHibernateModeKey, hibernateModePtr);
5556 	getSleepOption(kIOHibernateFreeRatioKey, hibernateFreeRatio);
5557 	getSleepOption(kIOHibernateFreeTimeKey, hibernateFreeTime);
5558 	if (hibernateDisabled) {
5559 		*hibernateModePtr = 0;
5560 	} else if (gSleepPolicyHandler) {
5561 		*hibernateModePtr = hibernateMode;
5562 	}
5563 	DLOG("hibernateMode 0x%x\n", *hibernateModePtr);
5564 	return ok;
5565 }
5566 
5567 bool
getSleepOption(const char * key,uint32_t * option)5568 IOPMrootDomain::getSleepOption( const char * key, uint32_t * option )
5569 {
5570 	OSSharedPtr<OSObject>       optionsProp;
5571 	OSDictionary *              optionsDict;
5572 	OSSharedPtr<OSObject>       obj;
5573 	OSNumber *                  num;
5574 	bool                        ok = false;
5575 
5576 	optionsProp = copyProperty(kRootDomainSleepOptionsKey);
5577 	optionsDict = OSDynamicCast(OSDictionary, optionsProp.get());
5578 
5579 	if (optionsDict) {
5580 		obj.reset(optionsDict->getObject(key), OSRetain);
5581 	}
5582 	if (!obj) {
5583 		obj = copyProperty(key);
5584 	}
5585 	if (obj) {
5586 		if ((num = OSDynamicCast(OSNumber, obj.get()))) {
5587 			*option = num->unsigned32BitValue();
5588 			ok = true;
5589 		} else if (OSDynamicCast(OSBoolean, obj.get())) {
5590 			*option = (obj == kOSBooleanTrue) ? 1 : 0;
5591 			ok = true;
5592 		}
5593 	}
5594 
5595 	return ok;
5596 }
5597 #endif /* HIBERNATION */
5598 
5599 IOReturn
getSystemSleepType(uint32_t * sleepType,uint32_t * standbyTimer)5600 IOPMrootDomain::getSystemSleepType( uint32_t * sleepType, uint32_t * standbyTimer )
5601 {
5602 #if HIBERNATION
5603 	IOPMSystemSleepParameters   params;
5604 	uint32_t                    hibMode = 0;
5605 	bool                        ok;
5606 
5607 	if (gIOPMWorkLoop->inGate() == false) {
5608 		IOReturn ret = gIOPMWorkLoop->runAction(
5609 			OSMemberFunctionCast(IOWorkLoop::Action, this,
5610 			&IOPMrootDomain::getSystemSleepType),
5611 			(OSObject *) this,
5612 			(void *) sleepType, (void *) standbyTimer);
5613 		return ret;
5614 	}
5615 
5616 	getSleepOption(kIOHibernateModeKey, &hibMode);
5617 	bzero(&params, sizeof(params));
5618 
5619 	ok = evaluateSystemSleepPolicy(&params, kIOPMSleepPhase0, &hibMode);
5620 	if (ok) {
5621 		*sleepType = params.sleepType;
5622 		if (!getSleepOption(kIOPMDeepSleepTimerKey, standbyTimer) &&
5623 		    !getSleepOption(kIOPMDeepSleepDelayKey, standbyTimer)) {
5624 			DLOG("Standby delay is not set\n");
5625 			*standbyTimer = 0;
5626 		}
5627 		return kIOReturnSuccess;
5628 	}
5629 #endif
5630 
5631 	return kIOReturnUnsupported;
5632 }
5633 
5634 // MARK: -
5635 // MARK: Shutdown and Restart
5636 
5637 //******************************************************************************
5638 // handlePlatformHaltRestart
5639 //
5640 //******************************************************************************
5641 
5642 // Phases while performing shutdown/restart
5643 typedef enum {
5644 	kNotifyDone                 = 0x00,
5645 	kNotifyPriorityClients      = 0x10,
5646 	kNotifyPowerPlaneDrivers    = 0x20,
5647 	kNotifyHaltRestartAction    = 0x30,
5648 	kQuiescePM                  = 0x40,
5649 } shutdownPhase_t;
5650 
5651 
5652 struct HaltRestartApplierContext {
5653 	IOPMrootDomain *    RootDomain;
5654 	unsigned long       PowerState;
5655 	IOPMPowerFlags      PowerFlags;
5656 	UInt32              MessageType;
5657 	UInt32              Counter;
5658 	const char *        LogString;
5659 	shutdownPhase_t     phase;
5660 
5661 	IOServiceInterestHandler    handler;
5662 } gHaltRestartCtx;
5663 
5664 const char *
shutdownPhase2String(shutdownPhase_t phase)5665 shutdownPhase2String(shutdownPhase_t phase)
5666 {
5667 	switch (phase) {
5668 	case kNotifyDone:
5669 		return "Notifications completed";
5670 	case kNotifyPriorityClients:
5671 		return "Notifying priority clients";
5672 	case kNotifyPowerPlaneDrivers:
5673 		return "Notifying power plane drivers";
5674 	case kNotifyHaltRestartAction:
5675 		return "Notifying HaltRestart action handlers";
5676 	case kQuiescePM:
5677 		return "Quiescing PM";
5678 	default:
5679 		return "Unknown";
5680 	}
5681 }
5682 
5683 static void
platformHaltRestartApplier(OSObject * object,void * context)5684 platformHaltRestartApplier( OSObject * object, void * context )
5685 {
5686 	IOPowerStateChangeNotification  notify;
5687 	HaltRestartApplierContext *     ctx;
5688 	AbsoluteTime                    startTime, elapsedTime;
5689 	uint32_t                        deltaTime;
5690 
5691 	ctx = (HaltRestartApplierContext *) context;
5692 
5693 	_IOServiceInterestNotifier * notifier;
5694 	notifier = OSDynamicCast(_IOServiceInterestNotifier, object);
5695 	memset(&notify, 0, sizeof(notify));
5696 	notify.powerRef    = (void *)(uintptr_t)ctx->Counter;
5697 	notify.returnValue = 0;
5698 	notify.stateNumber = ctx->PowerState;
5699 	notify.stateFlags  = ctx->PowerFlags;
5700 
5701 	if (notifier) {
5702 		ctx->handler = notifier->handler;
5703 	}
5704 
5705 	clock_get_uptime(&startTime);
5706 	ctx->RootDomain->messageClient( ctx->MessageType, object, (void *)&notify );
5707 	deltaTime = computeDeltaTimeMS(&startTime, &elapsedTime);
5708 
5709 	if ((deltaTime > kPMHaltTimeoutMS) && notifier) {
5710 		LOG("%s handler %p took %u ms\n",
5711 		    ctx->LogString, OBFUSCATE(notifier->handler), deltaTime);
5712 		halt_log_enter("PowerOff/Restart message to priority client", (const void *) notifier->handler, elapsedTime);
5713 	}
5714 
5715 	ctx->handler = NULL;
5716 	ctx->Counter++;
5717 }
5718 
5719 static void
quiescePowerTreeCallback(void * target,void * param)5720 quiescePowerTreeCallback( void * target, void * param )
5721 {
5722 	IOLockLock(gPMHaltLock);
5723 	gPMQuiesced = true;
5724 	thread_wakeup(param);
5725 	IOLockUnlock(gPMHaltLock);
5726 }
5727 
5728 void
handlePlatformHaltRestart(UInt32 pe_type)5729 IOPMrootDomain::handlePlatformHaltRestart( UInt32 pe_type )
5730 {
5731 	AbsoluteTime                startTime, elapsedTime;
5732 	uint32_t                    deltaTime;
5733 	bool                        nvramSync = false;
5734 
5735 	memset(&gHaltRestartCtx, 0, sizeof(gHaltRestartCtx));
5736 	gHaltRestartCtx.RootDomain = this;
5737 
5738 	clock_get_uptime(&startTime);
5739 	switch (pe_type) {
5740 	case kPEHaltCPU:
5741 	case kPEUPSDelayHaltCPU:
5742 		gHaltRestartCtx.PowerState  = OFF_STATE;
5743 		gHaltRestartCtx.MessageType = kIOMessageSystemWillPowerOff;
5744 		gHaltRestartCtx.LogString   = "PowerOff";
5745 		nvramSync = true;
5746 		break;
5747 
5748 	case kPERestartCPU:
5749 		gHaltRestartCtx.PowerState  = RESTART_STATE;
5750 		gHaltRestartCtx.MessageType = kIOMessageSystemWillRestart;
5751 		gHaltRestartCtx.LogString   = "Restart";
5752 		nvramSync = true;
5753 		break;
5754 
5755 	case kPEPagingOff:
5756 		gHaltRestartCtx.PowerState  = ON_STATE;
5757 		gHaltRestartCtx.MessageType = kIOMessageSystemPagingOff;
5758 		gHaltRestartCtx.LogString   = "PagingOff";
5759 		IOService::updateConsoleUsers(NULL, kIOMessageSystemPagingOff);
5760 #if HIBERNATION
5761 		IOHibernateSystemRestart();
5762 #endif
5763 		break;
5764 
5765 	default:
5766 		return;
5767 	}
5768 
5769 	if (nvramSync) {
5770 		PESyncNVRAM();
5771 	}
5772 
5773 	gHaltRestartCtx.phase = kNotifyPriorityClients;
5774 	// Notify legacy clients
5775 	applyToInterested(gIOPriorityPowerStateInterest, platformHaltRestartApplier, &gHaltRestartCtx);
5776 
5777 	// For normal shutdown, turn off File Server Mode.
5778 	if (kPEHaltCPU == pe_type) {
5779 		OSSharedPtr<const OSSymbol> setting = OSSymbol::withCString(kIOPMSettingRestartOnPowerLossKey);
5780 		OSSharedPtr<OSNumber> num = OSNumber::withNumber((unsigned long long) 0, 32);
5781 		if (setting && num) {
5782 			setPMSetting(setting.get(), num.get());
5783 		}
5784 	}
5785 
5786 	if (kPEPagingOff != pe_type) {
5787 		gHaltRestartCtx.phase = kNotifyPowerPlaneDrivers;
5788 		// Notify in power tree order
5789 		notifySystemShutdown(this, gHaltRestartCtx.MessageType);
5790 	}
5791 
5792 	gHaltRestartCtx.phase = kNotifyHaltRestartAction;
5793 #if defined(XNU_TARGET_OS_OSX)
5794 	IOCPURunPlatformHaltRestartActions(pe_type);
5795 #else /* !defined(XNU_TARGET_OS_OSX) */
5796 	if (kPEPagingOff != pe_type) {
5797 		IOCPURunPlatformHaltRestartActions(pe_type);
5798 	}
5799 #endif /* !defined(XNU_TARGET_OS_OSX) */
5800 
5801 	// Wait for PM to quiesce
5802 	if ((kPEPagingOff != pe_type) && gPMHaltLock) {
5803 		gHaltRestartCtx.phase = kQuiescePM;
5804 		AbsoluteTime quiesceTime = mach_absolute_time();
5805 
5806 		IOLockLock(gPMHaltLock);
5807 		gPMQuiesced = false;
5808 		if (quiescePowerTree(this, &quiescePowerTreeCallback, &gPMQuiesced) ==
5809 		    kIOReturnSuccess) {
5810 			while (!gPMQuiesced) {
5811 				IOLockSleep(gPMHaltLock, &gPMQuiesced, THREAD_UNINT);
5812 			}
5813 		}
5814 		IOLockUnlock(gPMHaltLock);
5815 		deltaTime = computeDeltaTimeMS(&quiesceTime, &elapsedTime);
5816 		DLOG("PM quiesce took %u ms\n", deltaTime);
5817 		halt_log_enter("Quiesce", NULL, elapsedTime);
5818 	}
5819 	gHaltRestartCtx.phase = kNotifyDone;
5820 
5821 	deltaTime = computeDeltaTimeMS(&startTime, &elapsedTime);
5822 	LOG("%s all drivers took %u ms\n", gHaltRestartCtx.LogString, deltaTime);
5823 
5824 	halt_log_enter(gHaltRestartCtx.LogString, NULL, elapsedTime);
5825 
5826 	deltaTime = computeDeltaTimeMS(&gHaltStartTime, &elapsedTime);
5827 	LOG("%s total %u ms\n", gHaltRestartCtx.LogString, deltaTime);
5828 
5829 	if (gHaltLog && gHaltTimeMaxLog && (deltaTime >= gHaltTimeMaxLog)) {
5830 		printf("%s total %d ms:%s\n", gHaltRestartCtx.LogString, deltaTime, gHaltLog);
5831 	}
5832 
5833 	checkShutdownTimeout();
5834 }
5835 
5836 bool
checkShutdownTimeout()5837 IOPMrootDomain::checkShutdownTimeout()
5838 {
5839 	AbsoluteTime   elapsedTime;
5840 	uint32_t deltaTime = computeDeltaTimeMS(&gHaltStartTime, &elapsedTime);
5841 
5842 	if (gHaltTimeMaxPanic && (deltaTime >= gHaltTimeMaxPanic)) {
5843 		return true;
5844 	}
5845 	return false;
5846 }
5847 
5848 void
panicWithShutdownLog(uint32_t timeoutInMs)5849 IOPMrootDomain::panicWithShutdownLog(uint32_t timeoutInMs)
5850 {
5851 	if (gHaltLog) {
5852 		if ((gHaltRestartCtx.phase == kNotifyPriorityClients) && gHaltRestartCtx.handler) {
5853 			halt_log_enter("Blocked on priority client", (void *)gHaltRestartCtx.handler, mach_absolute_time() - gHaltStartTime);
5854 		}
5855 		panic("%s timed out in phase '%s'. Total %d ms:%s",
5856 		    gHaltRestartCtx.LogString, shutdownPhase2String(gHaltRestartCtx.phase), timeoutInMs, gHaltLog);
5857 	} else {
5858 		panic("%s timed out in phase \'%s\'. Total %d ms",
5859 		    gHaltRestartCtx.LogString, shutdownPhase2String(gHaltRestartCtx.phase), timeoutInMs);
5860 	}
5861 }
5862 
5863 //******************************************************************************
5864 // shutdownSystem
5865 //
5866 //******************************************************************************
5867 
5868 IOReturn
shutdownSystem(void)5869 IOPMrootDomain::shutdownSystem( void )
5870 {
5871 	return kIOReturnUnsupported;
5872 }
5873 
5874 //******************************************************************************
5875 // restartSystem
5876 //
5877 //******************************************************************************
5878 
5879 IOReturn
restartSystem(void)5880 IOPMrootDomain::restartSystem( void )
5881 {
5882 	return kIOReturnUnsupported;
5883 }
5884 
5885 // MARK: -
5886 // MARK: System Capability
5887 
5888 //******************************************************************************
5889 // tagPowerPlaneService
5890 //
5891 // Running on PM work loop thread.
5892 //******************************************************************************
5893 
5894 void
tagPowerPlaneService(IOService * service,IOPMActions * actions,IOPMPowerStateIndex maxPowerState)5895 IOPMrootDomain::tagPowerPlaneService(
5896 	IOService *         service,
5897 	IOPMActions *       actions,
5898 	IOPMPowerStateIndex maxPowerState )
5899 {
5900 	uint32_t    flags = 0;
5901 
5902 	memset(actions, 0, sizeof(*actions));
5903 	actions->target = this;
5904 
5905 	if (service == this) {
5906 		actions->actionPowerChangeStart =
5907 		    OSMemberFunctionCast(
5908 			IOPMActionPowerChangeStart, this,
5909 			&IOPMrootDomain::handleOurPowerChangeStart);
5910 
5911 		actions->actionPowerChangeDone =
5912 		    OSMemberFunctionCast(
5913 			IOPMActionPowerChangeDone, this,
5914 			&IOPMrootDomain::handleOurPowerChangeDone);
5915 
5916 		actions->actionPowerChangeOverride =
5917 		    OSMemberFunctionCast(
5918 			IOPMActionPowerChangeOverride, this,
5919 			&IOPMrootDomain::overrideOurPowerChange);
5920 		return;
5921 	}
5922 
5923 #if DISPLAY_WRANGLER_PRESENT
5924 	if (NULL != service->metaCast("IODisplayWrangler")) {
5925 		// XXX should this really retain?
5926 		wrangler.reset(service, OSRetain);
5927 		wrangler->registerInterest(gIOGeneralInterest,
5928 		    &displayWranglerNotification, this, NULL);
5929 
5930 		// found the display wrangler, check for any display assertions already created
5931 		if (pmAssertions->getActivatedAssertions() & kIOPMDriverAssertionPreventDisplaySleepBit) {
5932 			DLOG("wrangler setIgnoreIdleTimer\(1) due to pre-existing assertion\n");
5933 			wrangler->setIgnoreIdleTimer( true );
5934 		}
5935 		flags |= kPMActionsFlagIsDisplayWrangler;
5936 	}
5937 #endif /* DISPLAY_WRANGLER_PRESENT */
5938 
5939 	if (service->propertyExists("IOPMStrictTreeOrder")) {
5940 		flags |= kPMActionsFlagIsGraphicsDriver;
5941 	}
5942 	if (service->propertyExists("IOPMUnattendedWakePowerState")) {
5943 		flags |= kPMActionsFlagIsAudioDriver;
5944 	}
5945 
5946 	// Find the power connection object that is a child of the PCI host
5947 	// bridge, and has a graphics/audio device attached below. Mark the
5948 	// power branch for delayed child notifications.
5949 
5950 	if (flags) {
5951 		IORegistryEntry * child  = service;
5952 		IORegistryEntry * parent = child->getParentEntry(gIOPowerPlane);
5953 
5954 		while (child != this) {
5955 			if (child->propertyHasValue("IOPCITunnelled", kOSBooleanTrue)) {
5956 				// Skip delaying notifications and clamping power on external graphics and audio devices.
5957 				DLOG("Avoiding delayChildNotification on object 0x%llx. flags: 0x%x\n", service->getRegistryEntryID(), flags);
5958 				flags = 0;
5959 				break;
5960 			}
5961 			if ((parent == pciHostBridgeDriver) ||
5962 			    (parent == this)) {
5963 				if (OSDynamicCast(IOPowerConnection, child)) {
5964 					IOPowerConnection * conn = (IOPowerConnection *) child;
5965 					conn->delayChildNotification = true;
5966 					DLOG("delayChildNotification for 0x%llx\n", conn->getRegistryEntryID());
5967 				}
5968 				break;
5969 			}
5970 			child = parent;
5971 			parent = child->getParentEntry(gIOPowerPlane);
5972 		}
5973 	}
5974 
5975 	OSSharedPtr<OSObject> prop = service->copyProperty(kIOPMDarkWakeMaxPowerStateKey);
5976 	if (prop) {
5977 		OSNumber * num = OSDynamicCast(OSNumber, prop.get());
5978 		if (num) {
5979 			actions->darkWakePowerState = num->unsigned32BitValue();
5980 			if (actions->darkWakePowerState < maxPowerState) {
5981 				flags |= kPMActionsFlagHasDarkWakePowerState;
5982 			}
5983 		}
5984 	}
5985 
5986 
5987 	if (flags) {
5988 		DLOG("%s tag flags %x\n", service->getName(), flags);
5989 		actions->flags |= flags;
5990 		actions->actionPowerChangeOverride =
5991 		    OSMemberFunctionCast(
5992 			IOPMActionPowerChangeOverride, this,
5993 			&IOPMrootDomain::overridePowerChangeForService);
5994 
5995 		if (flags & kPMActionsFlagIsDisplayWrangler) {
5996 			actions->actionActivityTickle =
5997 			    OSMemberFunctionCast(
5998 				IOPMActionActivityTickle, this,
5999 				&IOPMrootDomain::handleActivityTickleForDisplayWrangler);
6000 
6001 			actions->actionUpdatePowerClient =
6002 			    OSMemberFunctionCast(
6003 				IOPMActionUpdatePowerClient, this,
6004 				&IOPMrootDomain::handleUpdatePowerClientForDisplayWrangler);
6005 		}
6006 		return;
6007 	}
6008 
6009 	// Locate the first PCI host bridge for PMTrace.
6010 	if (!pciHostBridgeDevice && service->metaCast("IOPCIBridge")) {
6011 		IOService * provider = service->getProvider();
6012 		if (OSDynamicCast(IOPlatformDevice, provider) &&
6013 		    provider->inPlane(gIODTPlane)) {
6014 			pciHostBridgeDevice.reset(provider, OSNoRetain);
6015 			pciHostBridgeDriver.reset(service, OSNoRetain);
6016 			DLOG("PMTrace found PCI host bridge %s->%s\n",
6017 			    provider->getName(), service->getName());
6018 		}
6019 	}
6020 
6021 	// Tag top-level PCI devices. The order of PMinit() call does not
6022 	// change across boots and is used as the PCI bit number.
6023 	if (pciHostBridgeDevice && service->metaCast("IOPCIDevice")) {
6024 		// Would prefer to check built-in property, but tagPowerPlaneService()
6025 		// is called before pciDevice->registerService().
6026 		IORegistryEntry * parent = service->getParentEntry(gIODTPlane);
6027 		if ((parent == pciHostBridgeDevice) && service->propertyExists("acpi-device")) {
6028 			int bit = pmTracer->recordTopLevelPCIDevice( service );
6029 			if (bit >= 0) {
6030 				// Save the assigned bit for fast lookup.
6031 				actions->flags |= (bit & kPMActionsPCIBitNumberMask);
6032 
6033 				actions->actionPowerChangeStart =
6034 				    OSMemberFunctionCast(
6035 					IOPMActionPowerChangeStart, this,
6036 					&IOPMrootDomain::handlePowerChangeStartForPCIDevice);
6037 
6038 				actions->actionPowerChangeDone =
6039 				    OSMemberFunctionCast(
6040 					IOPMActionPowerChangeDone, this,
6041 					&IOPMrootDomain::handlePowerChangeDoneForPCIDevice);
6042 			}
6043 		}
6044 	}
6045 }
6046 
6047 //******************************************************************************
6048 // PM actions for root domain
6049 //******************************************************************************
6050 
6051 void
overrideOurPowerChange(IOService * service,IOPMActions * actions,const IOPMRequest * request,IOPMPowerStateIndex * inOutPowerState,IOPMPowerChangeFlags * inOutChangeFlags)6052 IOPMrootDomain::overrideOurPowerChange(
6053 	IOService *             service,
6054 	IOPMActions *           actions,
6055 	const IOPMRequest *     request,
6056 	IOPMPowerStateIndex *   inOutPowerState,
6057 	IOPMPowerChangeFlags *  inOutChangeFlags )
6058 {
6059 	uint32_t changeFlags = *inOutChangeFlags;
6060 	uint32_t desiredPowerState = (uint32_t) *inOutPowerState;
6061 	uint32_t currentPowerState = (uint32_t) getPowerState();
6062 
6063 	if (request->getTag() == 0) {
6064 		// Set a tag for any request that originates from IOServicePM
6065 		(const_cast<IOPMRequest *>(request))->fTag = nextRequestTag(kCPSReasonPMInternals);
6066 	}
6067 
6068 	DLOG("PowerChangeOverride (%s->%s, %x, 0x%x) tag 0x%x\n",
6069 	    getPowerStateString(currentPowerState),
6070 	    getPowerStateString(desiredPowerState),
6071 	    _currentCapability, changeFlags,
6072 	    request->getTag());
6073 
6074 
6075 #if defined(XNU_TARGET_OS_OSX) && !DISPLAY_WRANGLER_PRESENT
6076 	/*
6077 	 * ASBM send lowBattery notifications every 1 second until the device
6078 	 * enters hibernation. This queues up multiple sleep requests.
6079 	 * After the device wakes from hibernation, none of these previously
6080 	 * queued sleep requests are valid.
6081 	 * lowBattteryCondition variable is set when ASBM notifies rootDomain
6082 	 * and is cleared at the very last point in sleep.
6083 	 * Any attempt to sleep with reason kIOPMSleepReasonLowPower without
6084 	 * lowBatteryCondition is invalid
6085 	 */
6086 	if (REQUEST_TAG_TO_REASON(request->getTag()) == kIOPMSleepReasonLowPower) {
6087 		if (!lowBatteryCondition) {
6088 			DLOG("Duplicate lowBattery sleep");
6089 			*inOutChangeFlags |= kIOPMNotDone;
6090 			return;
6091 		}
6092 	}
6093 #endif
6094 
6095 	if ((AOT_STATE == desiredPowerState) && (ON_STATE == currentPowerState)) {
6096 		// Assertion may have been taken in AOT leading to changePowerStateTo(AOT)
6097 		*inOutChangeFlags |= kIOPMNotDone;
6098 		return;
6099 	}
6100 
6101 	if (changeFlags & kIOPMParentInitiated) {
6102 		// Root parent is permanently pegged at max power,
6103 		// a parent initiated power change is unexpected.
6104 		*inOutChangeFlags |= kIOPMNotDone;
6105 		return;
6106 	}
6107 
6108 	if (desiredPowerState < currentPowerState) {
6109 		if (CAP_CURRENT(kIOPMSystemCapabilityGraphics)) {
6110 			// Root domain is dropping power state from ON->SLEEP.
6111 			// If system is in full wake, first enter dark wake by
6112 			// converting the power drop to a capability change.
6113 			// Once in dark wake, transition to sleep state ASAP.
6114 
6115 			darkWakeToSleepASAP = true;
6116 
6117 			// Drop graphics and audio capability
6118 			_desiredCapability &= ~(
6119 				kIOPMSystemCapabilityGraphics |
6120 				kIOPMSystemCapabilityAudio);
6121 
6122 			// Convert to capability change (ON->ON)
6123 			*inOutPowerState = getRUN_STATE();
6124 			*inOutChangeFlags |= kIOPMSynchronize;
6125 
6126 			// Revert device desire from SLEEP to ON
6127 			changePowerStateWithTagToPriv(getRUN_STATE(), kCPSReasonPowerOverride);
6128 		} else {
6129 			// System is already in dark wake, ok to drop power state.
6130 			// Broadcast root power down to entire tree.
6131 			*inOutChangeFlags |= kIOPMRootChangeDown;
6132 		}
6133 	} else if (desiredPowerState > currentPowerState) {
6134 		if ((_currentCapability & kIOPMSystemCapabilityCPU) == 0) {
6135 			// Broadcast power up when waking from sleep, but not for the
6136 			// initial power change at boot by checking for cpu capability.
6137 			*inOutChangeFlags |= kIOPMRootChangeUp;
6138 		}
6139 	}
6140 }
6141 
6142 void
handleOurPowerChangeStart(IOService * service,IOPMActions * actions,const IOPMRequest * request,IOPMPowerStateIndex newPowerState,IOPMPowerChangeFlags * inOutChangeFlags)6143 IOPMrootDomain::handleOurPowerChangeStart(
6144 	IOService *             service,
6145 	IOPMActions *           actions,
6146 	const IOPMRequest *     request,
6147 	IOPMPowerStateIndex     newPowerState,
6148 	IOPMPowerChangeFlags *  inOutChangeFlags )
6149 {
6150 	IOPMRequestTag requestTag = request->getTag();
6151 	IOPMRequestTag sleepReason;
6152 
6153 	uint32_t changeFlags        = *inOutChangeFlags;
6154 	uint32_t currentPowerState  = (uint32_t) getPowerState();
6155 	bool     publishSleepReason = false;
6156 
6157 	// Check if request has a valid sleep reason
6158 	sleepReason = REQUEST_TAG_TO_REASON(requestTag);
6159 	if (sleepReason < kIOPMSleepReasonClamshell) {
6160 		sleepReason = kIOPMSleepReasonIdle;
6161 	}
6162 
6163 	_systemTransitionType    = kSystemTransitionNone;
6164 	_systemMessageClientMask = 0;
6165 	capabilityLoss           = false;
6166 	toldPowerdCapWillChange  = false;
6167 
6168 	// Emergency notifications may arrive after the initial sleep request
6169 	// has been queued. Override the sleep reason so powerd and others can
6170 	// treat this as an emergency sleep.
6171 	if (lowBatteryCondition) {
6172 		sleepReason = kIOPMSleepReasonLowPower;
6173 	} else if (thermalEmergencyState) {
6174 		sleepReason = kIOPMSleepReasonThermalEmergency;
6175 	}
6176 
6177 	// 1. Explicit capability change.
6178 	if (changeFlags & kIOPMSynchronize) {
6179 		if (newPowerState == ON_STATE) {
6180 			if (changeFlags & kIOPMSyncNoChildNotify) {
6181 				_systemTransitionType = kSystemTransitionNewCapClient;
6182 			} else {
6183 				_systemTransitionType = kSystemTransitionCapability;
6184 			}
6185 		}
6186 	}
6187 	// 2. Going to sleep (cancellation still possible).
6188 	else if (newPowerState < currentPowerState) {
6189 		_systemTransitionType = kSystemTransitionSleep;
6190 	}
6191 	// 3. Woke from (idle or demand) sleep.
6192 	else if (!systemBooting &&
6193 	    (changeFlags & kIOPMSelfInitiated) &&
6194 	    (newPowerState > currentPowerState)) {
6195 		_systemTransitionType = kSystemTransitionWake;
6196 		_desiredCapability = kIOPMSystemCapabilityCPU | kIOPMSystemCapabilityNetwork;
6197 
6198 		// Early exit from dark wake to full (e.g. LID open)
6199 		if (kFullWakeReasonNone != fullWakeReason) {
6200 			_desiredCapability |= (
6201 				kIOPMSystemCapabilityGraphics |
6202 				kIOPMSystemCapabilityAudio);
6203 
6204 #if defined(XNU_TARGET_OS_OSX) && !DISPLAY_WRANGLER_PRESENT
6205 			if (fullWakeReason == kFullWakeReasonLocalUser) {
6206 				darkWakeExit = true;
6207 				darkWakeToSleepASAP = false;
6208 				setProperty(kIOPMRootDomainWakeTypeKey, isRTCAlarmWake ?
6209 				    kIOPMRootDomainWakeTypeAlarm : kIOPMRootDomainWakeTypeUser);
6210 			}
6211 #endif
6212 		}
6213 #if HIBERNATION
6214 		IOHibernateSetWakeCapabilities(_desiredCapability);
6215 #endif
6216 	}
6217 
6218 	// Update pending wake capability at the beginning of every
6219 	// state transition (including synchronize). This will become
6220 	// the current capability at the end of the transition.
6221 
6222 	if (kSystemTransitionSleep == _systemTransitionType) {
6223 		_pendingCapability = 0;
6224 		capabilityLoss = true;
6225 	} else if (kSystemTransitionNewCapClient != _systemTransitionType) {
6226 		_pendingCapability = _desiredCapability |
6227 		    kIOPMSystemCapabilityCPU |
6228 		    kIOPMSystemCapabilityNetwork;
6229 
6230 		if (_pendingCapability & kIOPMSystemCapabilityGraphics) {
6231 			_pendingCapability |= kIOPMSystemCapabilityAudio;
6232 		}
6233 
6234 		if ((kSystemTransitionCapability == _systemTransitionType) &&
6235 		    (_pendingCapability == _currentCapability)) {
6236 			// Cancel the PM state change.
6237 			_systemTransitionType = kSystemTransitionNone;
6238 			*inOutChangeFlags |= kIOPMNotDone;
6239 		}
6240 		if (__builtin_popcount(_pendingCapability) <
6241 		    __builtin_popcount(_currentCapability)) {
6242 			capabilityLoss = true;
6243 		}
6244 	}
6245 
6246 	// 1. Capability change.
6247 	if (kSystemTransitionCapability == _systemTransitionType) {
6248 		// Dark to Full transition.
6249 		if (CAP_GAIN(kIOPMSystemCapabilityGraphics)) {
6250 			tracePoint( kIOPMTracePointDarkWakeExit );
6251 
6252 #if defined(XNU_TARGET_OS_OSX)
6253 			// rdar://problem/65627936
6254 			// When a dark->full wake promotion is scheduled before an ON->SLEEP
6255 			// power state drop, invalidate any request to drop power state already
6256 			// in the queue, including the override variant, unless full wake cannot
6257 			// be sustained. Any power state drop queued after this SustainFullWake
6258 			// request will not be affected.
6259 			if (checkSystemCanSustainFullWake()) {
6260 				changePowerStateWithOverrideTo(getRUN_STATE(), kCPSReasonSustainFullWake);
6261 			}
6262 #endif
6263 
6264 			willEnterFullWake();
6265 		}
6266 
6267 		// Full to Dark transition.
6268 		if (CAP_LOSS(kIOPMSystemCapabilityGraphics)) {
6269 			// Clear previous stats
6270 			IOLockLock(pmStatsLock);
6271 			if (pmStatsAppResponses) {
6272 				pmStatsAppResponses = OSArray::withCapacity(5);
6273 			}
6274 			IOLockUnlock(pmStatsLock);
6275 
6276 			tracePoint( kIOPMTracePointDarkWakeEntry );
6277 			*inOutChangeFlags |= kIOPMSyncTellPowerDown;
6278 			_systemMessageClientMask = kSystemMessageClientPowerd |
6279 			    kSystemMessageClientLegacyApp;
6280 
6281 			// rdar://15971327
6282 			// Prevent user active transitions before notifying clients
6283 			// that system will sleep.
6284 			preventTransitionToUserActive(true);
6285 
6286 			IOService::setAdvisoryTickleEnable( false );
6287 
6288 			// Publish the sleep reason for full to dark wake
6289 			publishSleepReason = true;
6290 			lastSleepReason = fullToDarkReason = sleepReason;
6291 
6292 			// Publish a UUID for the Sleep --> Wake cycle
6293 			handlePublishSleepWakeUUID(true);
6294 			if (sleepDelaysReport) {
6295 				clock_get_uptime(&ts_sleepStart);
6296 				DLOG("sleepDelaysReport f->9 start at 0x%llx\n", ts_sleepStart);
6297 			}
6298 
6299 			darkWakeExit = false;
6300 		}
6301 	}
6302 	// 2. System sleep.
6303 	else if (kSystemTransitionSleep == _systemTransitionType) {
6304 		// Beginning of a system sleep transition.
6305 		// Cancellation is still possible.
6306 		tracePoint( kIOPMTracePointSleepStarted );
6307 
6308 		_systemMessageClientMask = kSystemMessageClientAll;
6309 		if ((_currentCapability & kIOPMSystemCapabilityGraphics) == 0) {
6310 			_systemMessageClientMask &= ~kSystemMessageClientLegacyApp;
6311 		}
6312 		if ((_highestCapability & kIOPMSystemCapabilityGraphics) == 0) {
6313 			// Kernel priority clients are only notified on the initial
6314 			// transition to full wake, so don't notify them unless system
6315 			// has gained graphics capability since the last system wake.
6316 			_systemMessageClientMask &= ~kSystemMessageClientKernel;
6317 		} else {
6318 			// System was in full wake, but the downwards power transition is driven
6319 			// by a request that originates from IOServicePM, so it isn't tagged with
6320 			// a valid system sleep reason.
6321 			if (REQUEST_TAG_TO_REASON(requestTag) == kCPSReasonPMInternals) {
6322 				// Publish the same reason for full to dark
6323 				sleepReason = fullToDarkReason;
6324 			}
6325 		}
6326 #if HIBERNATION
6327 		gIOHibernateState = 0;
6328 #endif
6329 
6330 		// Record the reason for dark wake back to sleep
6331 		// System may not have ever achieved full wake
6332 
6333 		publishSleepReason = true;
6334 		lastSleepReason = sleepReason;
6335 		if (sleepDelaysReport) {
6336 			clock_get_uptime(&ts_sleepStart);
6337 			DLOG("sleepDelaysReport 9->0 start at 0x%llx\n", ts_sleepStart);
6338 		}
6339 	}
6340 	// 3. System wake.
6341 	else if (kSystemTransitionWake == _systemTransitionType) {
6342 		tracePoint( kIOPMTracePointWakeWillPowerOnClients );
6343 		// Clear stats about sleep
6344 
6345 		if (AOT_STATE == newPowerState) {
6346 			_pendingCapability = 0;
6347 		}
6348 
6349 		if (AOT_STATE == currentPowerState) {
6350 			// Wake events are no longer accepted after waking to AOT_STATE.
6351 			// Re-enable wake event acceptance to append wake events claimed
6352 			// during the AOT to ON_STATE transition.
6353 			acceptSystemWakeEvents(kAcceptSystemWakeEvents_Reenable);
6354 		}
6355 
6356 		if (_pendingCapability & kIOPMSystemCapabilityGraphics) {
6357 			willEnterFullWake();
6358 		}
6359 	}
6360 
6361 	// The only location where the sleep reason is published. At this point
6362 	// sleep can still be cancelled, but sleep reason should be published
6363 	// early for logging purposes.
6364 
6365 	if (publishSleepReason) {
6366 		static const char * IOPMSleepReasons[] =
6367 		{
6368 			kIOPMClamshellSleepKey,
6369 			kIOPMPowerButtonSleepKey,
6370 			kIOPMSoftwareSleepKey,
6371 			kIOPMOSSwitchHibernationKey,
6372 			kIOPMIdleSleepKey,
6373 			kIOPMLowPowerSleepKey,
6374 			kIOPMThermalEmergencySleepKey,
6375 			kIOPMMaintenanceSleepKey,
6376 			kIOPMSleepServiceExitKey,
6377 			kIOPMDarkWakeThermalEmergencyKey,
6378 			kIOPMNotificationWakeExitKey
6379 		};
6380 
6381 		// Record sleep cause in IORegistry
6382 		uint32_t reasonIndex = sleepReason - kIOPMSleepReasonClamshell;
6383 		if (reasonIndex < sizeof(IOPMSleepReasons) / sizeof(IOPMSleepReasons[0])) {
6384 			DLOG("sleep reason %s\n", IOPMSleepReasons[reasonIndex]);
6385 			setProperty(kRootDomainSleepReasonKey, IOPMSleepReasons[reasonIndex]);
6386 		}
6387 	}
6388 
6389 	if ((kSystemTransitionNone != _systemTransitionType) &&
6390 	    (kSystemTransitionNewCapClient != _systemTransitionType)) {
6391 		_systemStateGeneration++;
6392 		systemDarkWake = false;
6393 
6394 		DLOG("=== START (%s->%s, %x->%x, 0x%x) gen %u, msg %x, tag %x\n",
6395 		    getPowerStateString(currentPowerState),
6396 		    getPowerStateString((uint32_t) newPowerState),
6397 		    _currentCapability, _pendingCapability,
6398 		    *inOutChangeFlags, _systemStateGeneration, _systemMessageClientMask,
6399 		    requestTag);
6400 	}
6401 
6402 	if ((AOT_STATE == newPowerState) && (SLEEP_STATE != currentPowerState)) {
6403 		panic("illegal AOT entry from %s", getPowerStateString(currentPowerState));
6404 	}
6405 	if (_aotNow && (ON_STATE == newPowerState)) {
6406 		WAKEEVENT_LOCK();
6407 		aotShouldExit(false, true);
6408 		WAKEEVENT_UNLOCK();
6409 		aotExit(false);
6410 	}
6411 }
6412 
6413 void
handleOurPowerChangeDone(IOService * service,IOPMActions * actions,const IOPMRequest * request,IOPMPowerStateIndex oldPowerState,IOPMPowerChangeFlags changeFlags)6414 IOPMrootDomain::handleOurPowerChangeDone(
6415 	IOService *             service,
6416 	IOPMActions *           actions,
6417 	const IOPMRequest *     request,
6418 	IOPMPowerStateIndex     oldPowerState,
6419 	IOPMPowerChangeFlags    changeFlags )
6420 {
6421 	if (kSystemTransitionNewCapClient == _systemTransitionType) {
6422 		_systemTransitionType = kSystemTransitionNone;
6423 		return;
6424 	}
6425 
6426 	if (_systemTransitionType != kSystemTransitionNone) {
6427 		uint32_t currentPowerState = (uint32_t) getPowerState();
6428 
6429 		if (changeFlags & kIOPMNotDone) {
6430 			// Power down was cancelled or vetoed.
6431 			_pendingCapability = _currentCapability;
6432 			lastSleepReason = 0;
6433 
6434 			// When sleep is cancelled or reverted, don't report
6435 			// the target (lower) power state as the previous state.
6436 			oldPowerState = currentPowerState;
6437 
6438 			if (!CAP_CURRENT(kIOPMSystemCapabilityGraphics) &&
6439 			    CAP_CURRENT(kIOPMSystemCapabilityCPU)) {
6440 #if defined(XNU_TARGET_OS_OSX)
6441 				pmPowerStateQueue->submitPowerEvent(
6442 					kPowerEventPolicyStimulus,
6443 					(void *) kStimulusDarkWakeReentry,
6444 					_systemStateGeneration );
6445 #else /* !defined(XNU_TARGET_OS_OSX) */
6446 				// On embedded, there are no factors that can prolong a
6447 				// "darkWake" when a power down is vetoed. We need to
6448 				// promote to "fullWake" at least once so that factors
6449 				// that prevent idle sleep can assert themselves if required
6450 				pmPowerStateQueue->submitPowerEvent(
6451 					kPowerEventPolicyStimulus,
6452 					(void *) kStimulusDarkWakeActivityTickle);
6453 #endif /* !defined(XNU_TARGET_OS_OSX) */
6454 			}
6455 
6456 			// Revert device desire to max.
6457 			changePowerStateWithTagToPriv(getRUN_STATE(), kCPSReasonPowerDownCancel);
6458 		} else {
6459 			// Send message on dark wake to full wake promotion.
6460 			// tellChangeUp() handles the normal SLEEP->ON case.
6461 
6462 			if (kSystemTransitionCapability == _systemTransitionType) {
6463 				if (CAP_GAIN(kIOPMSystemCapabilityGraphics)) {
6464 					lastSleepReason = 0; // stop logging wrangler tickles
6465 					tellClients(kIOMessageSystemHasPoweredOn);
6466 				}
6467 				if (CAP_LOSS(kIOPMSystemCapabilityGraphics)) {
6468 					// Going dark, reset full wake state
6469 					// userIsActive will be cleared by wrangler powering down
6470 					fullWakeReason = kFullWakeReasonNone;
6471 
6472 					if (ts_sleepStart) {
6473 						clock_get_uptime(&wake2DarkwakeDelay);
6474 						SUB_ABSOLUTETIME(&wake2DarkwakeDelay, &ts_sleepStart);
6475 						DLOG("sleepDelaysReport f->9 end 0x%llx\n", wake2DarkwakeDelay);
6476 						ts_sleepStart = 0;
6477 					}
6478 				}
6479 			}
6480 
6481 			// Reset state after exiting from dark wake.
6482 
6483 			if (CAP_GAIN(kIOPMSystemCapabilityGraphics) ||
6484 			    CAP_LOSS(kIOPMSystemCapabilityCPU)) {
6485 				darkWakeMaintenance = false;
6486 				darkWakeToSleepASAP = false;
6487 				pciCantSleepValid   = false;
6488 				darkWakeSleepService = false;
6489 
6490 				if (CAP_LOSS(kIOPMSystemCapabilityCPU)) {
6491 					// Remove the influence of display power assertion
6492 					// before next system wake.
6493 					if (wrangler) {
6494 						wrangler->changePowerStateForRootDomain(
6495 							kWranglerPowerStateMin );
6496 					}
6497 					removeProperty(gIOPMUserTriggeredFullWakeKey.get());
6498 				}
6499 			}
6500 
6501 			// Entered dark mode.
6502 
6503 			if (((_pendingCapability & kIOPMSystemCapabilityGraphics) == 0) &&
6504 			    (_pendingCapability & kIOPMSystemCapabilityCPU)) {
6505 				// Queue an evaluation of whether to remain in dark wake,
6506 				// and for how long. This serves the purpose of draining
6507 				// any assertions from the queue.
6508 
6509 				pmPowerStateQueue->submitPowerEvent(
6510 					kPowerEventPolicyStimulus,
6511 					(void *) kStimulusDarkWakeEntry,
6512 					_systemStateGeneration );
6513 			}
6514 		}
6515 
6516 		DLOG("=== FINISH (%s->%s, %x->%x, 0x%x) gen %u, msg %x, tag %x\n",
6517 		    getPowerStateString((uint32_t) oldPowerState), getPowerStateString(currentPowerState),
6518 		    _currentCapability, _pendingCapability,
6519 		    changeFlags, _systemStateGeneration, _systemMessageClientMask,
6520 		    request->getTag());
6521 
6522 		if ((currentPowerState == ON_STATE) && pmAssertions) {
6523 			pmAssertions->reportCPUBitAccounting();
6524 		}
6525 
6526 		if (_pendingCapability & kIOPMSystemCapabilityGraphics) {
6527 			displayWakeCnt++;
6528 #if DARK_TO_FULL_EVALUATE_CLAMSHELL_DELAY
6529 			if (clamshellExists && fullWakeThreadCall) {
6530 				AbsoluteTime deadline;
6531 				clock_interval_to_deadline(DARK_TO_FULL_EVALUATE_CLAMSHELL_DELAY, kSecondScale, &deadline);
6532 				thread_call_enter_delayed(fullWakeThreadCall, deadline);
6533 			}
6534 #endif
6535 		} else if (CAP_GAIN(kIOPMSystemCapabilityCPU)) {
6536 			darkWakeCnt++;
6537 		}
6538 
6539 		// Update current system capability.
6540 		if (_currentCapability != _pendingCapability) {
6541 			_currentCapability = _pendingCapability;
6542 		}
6543 
6544 		// Update highest system capability.
6545 
6546 		_highestCapability |= _currentCapability;
6547 
6548 		if (darkWakePostTickle &&
6549 		    (kSystemTransitionWake == _systemTransitionType) &&
6550 		    (gDarkWakeFlags & kDarkWakeFlagPromotionMask) ==
6551 		    kDarkWakeFlagPromotionLate) {
6552 			darkWakePostTickle = false;
6553 			reportUserInput();
6554 		} else if (darkWakeExit) {
6555 			requestFullWake( kFullWakeReasonLocalUser );
6556 		}
6557 
6558 		// Reset tracepoint at completion of capability change,
6559 		// completion of wake transition, and aborted sleep transition.
6560 
6561 		if ((_systemTransitionType == kSystemTransitionCapability) ||
6562 		    (_systemTransitionType == kSystemTransitionWake) ||
6563 		    ((_systemTransitionType == kSystemTransitionSleep) &&
6564 		    (changeFlags & kIOPMNotDone))) {
6565 			setProperty(kIOPMSystemCapabilitiesKey, _currentCapability, 64);
6566 			tracePoint( kIOPMTracePointSystemUp );
6567 		}
6568 
6569 		_systemTransitionType = kSystemTransitionNone;
6570 		_systemMessageClientMask = 0;
6571 		toldPowerdCapWillChange  = false;
6572 
6573 		darkWakeLogClamp = false;
6574 
6575 		if (lowBatteryCondition) {
6576 			privateSleepSystem(kIOPMSleepReasonLowPower);
6577 		} else if (thermalEmergencyState) {
6578 			privateSleepSystem(kIOPMSleepReasonThermalEmergency);
6579 		} else if ((fullWakeReason == kFullWakeReasonDisplayOn) && !displayPowerOnRequested) {
6580 			// Request for full wake is removed while system is waking up to full wake
6581 			DLOG("DisplayOn fullwake request is removed\n");
6582 			handleSetDisplayPowerOn(false);
6583 		}
6584 
6585 		if ((gClamshellFlags & kClamshell_WAR_47715679) && isRTCAlarmWake) {
6586 			pmPowerStateQueue->submitPowerEvent(
6587 				kPowerEventReceivedPowerNotification, (void *)(uintptr_t) kLocalEvalClamshellCommand );
6588 		}
6589 	}
6590 }
6591 
6592 //******************************************************************************
6593 // PM actions for graphics and audio.
6594 //******************************************************************************
6595 
6596 void
overridePowerChangeForService(IOService * service,IOPMActions * actions,const IOPMRequest * request,IOPMPowerStateIndex * inOutPowerState,IOPMPowerChangeFlags * inOutChangeFlags)6597 IOPMrootDomain::overridePowerChangeForService(
6598 	IOService *             service,
6599 	IOPMActions *           actions,
6600 	const IOPMRequest *     request,
6601 	IOPMPowerStateIndex *   inOutPowerState,
6602 	IOPMPowerChangeFlags *  inOutChangeFlags )
6603 {
6604 	uint32_t powerState  = (uint32_t) *inOutPowerState;
6605 	uint32_t changeFlags = (uint32_t) *inOutChangeFlags;
6606 	const uint32_t actionFlags = actions->flags;
6607 
6608 	if (kSystemTransitionNone == _systemTransitionType) {
6609 		// Not in midst of a system transition.
6610 		// Do not set kPMActionsStatePowerClamped.
6611 	} else if ((actions->state & kPMActionsStatePowerClamped) == 0) {
6612 		bool enableClamp = false;
6613 
6614 		// For most drivers, enable the clamp during ON->Dark transition
6615 		// which has the kIOPMSynchronize flag set in changeFlags.
6616 		if ((actionFlags & kPMActionsFlagIsDisplayWrangler) &&
6617 		    ((_pendingCapability & kIOPMSystemCapabilityGraphics) == 0) &&
6618 		    (changeFlags & kIOPMSynchronize)) {
6619 			enableClamp = true;
6620 		} else if ((actionFlags & kPMActionsFlagIsAudioDriver) &&
6621 		    ((gDarkWakeFlags & kDarkWakeFlagAudioNotSuppressed) == 0) &&
6622 		    ((_pendingCapability & kIOPMSystemCapabilityAudio) == 0) &&
6623 		    (changeFlags & kIOPMSynchronize)) {
6624 			enableClamp = true;
6625 		} else if ((actionFlags & kPMActionsFlagHasDarkWakePowerState) &&
6626 		    ((_pendingCapability & kIOPMSystemCapabilityGraphics) == 0) &&
6627 		    (changeFlags & kIOPMSynchronize)) {
6628 			enableClamp = true;
6629 		} else if ((actionFlags & kPMActionsFlagIsGraphicsDriver) &&
6630 		    (_systemTransitionType == kSystemTransitionSleep)) {
6631 			// For graphics drivers, clamp power when entering
6632 			// system sleep. Not when dropping to dark wake.
6633 			enableClamp = true;
6634 		}
6635 
6636 		if (enableClamp) {
6637 			actions->state |= kPMActionsStatePowerClamped;
6638 			DLOG("power clamp enabled %s %qx, pendingCap 0x%x, ps %d, cflags 0x%x\n",
6639 			    service->getName(), service->getRegistryEntryID(),
6640 			    _pendingCapability, powerState, changeFlags);
6641 		}
6642 	} else if ((actions->state & kPMActionsStatePowerClamped) != 0) {
6643 		bool disableClamp = false;
6644 
6645 		if ((actionFlags & (
6646 			    kPMActionsFlagIsDisplayWrangler |
6647 			    kPMActionsFlagIsGraphicsDriver)) &&
6648 		    (_pendingCapability & kIOPMSystemCapabilityGraphics)) {
6649 			disableClamp = true;
6650 		} else if ((actionFlags & kPMActionsFlagIsAudioDriver) &&
6651 		    (_pendingCapability & kIOPMSystemCapabilityAudio)) {
6652 			disableClamp = true;
6653 		} else if ((actionFlags & kPMActionsFlagHasDarkWakePowerState) &&
6654 		    (_pendingCapability & kIOPMSystemCapabilityGraphics)) {
6655 			disableClamp = true;
6656 		}
6657 
6658 		if (disableClamp) {
6659 			actions->state &= ~kPMActionsStatePowerClamped;
6660 			DLOG("power clamp removed %s %qx, pendingCap 0x%x, ps %d, cflags 0x%x\n",
6661 			    service->getName(), service->getRegistryEntryID(),
6662 			    _pendingCapability, powerState, changeFlags);
6663 		}
6664 	}
6665 
6666 	if (actions->state & kPMActionsStatePowerClamped) {
6667 		uint32_t maxPowerState = 0;
6668 
6669 		// Determine the max power state allowed when clamp is enabled
6670 		if (changeFlags & (kIOPMDomainDidChange | kIOPMDomainWillChange)) {
6671 			// Parent intiated power state changes
6672 			if ((service->getPowerState() > maxPowerState) &&
6673 			    (actionFlags & kPMActionsFlagIsDisplayWrangler)) {
6674 				maxPowerState++;
6675 
6676 				// Remove lingering effects of any tickle before entering
6677 				// dark wake. It will take a new tickle to return to full
6678 				// wake, so the existing tickle state is useless.
6679 
6680 				if (changeFlags & kIOPMDomainDidChange) {
6681 					*inOutChangeFlags |= kIOPMExpireIdleTimer;
6682 				}
6683 			} else if (actionFlags & kPMActionsFlagIsGraphicsDriver) {
6684 				maxPowerState++;
6685 			} else if (actionFlags & kPMActionsFlagHasDarkWakePowerState) {
6686 				maxPowerState = actions->darkWakePowerState;
6687 			}
6688 		} else {
6689 			// Deny all self-initiated changes when power is limited.
6690 			// Wrangler tickle should never defeat the limiter.
6691 			maxPowerState = service->getPowerState();
6692 		}
6693 
6694 		if (powerState > maxPowerState) {
6695 			DLOG("power clamped %s %qx, ps %u->%u, cflags 0x%x)\n",
6696 			    service->getName(), service->getRegistryEntryID(),
6697 			    powerState, maxPowerState, changeFlags);
6698 			*inOutPowerState = maxPowerState;
6699 
6700 			if (darkWakePostTickle &&
6701 			    (actionFlags & kPMActionsFlagIsDisplayWrangler) &&
6702 			    (changeFlags & kIOPMDomainWillChange) &&
6703 			    ((gDarkWakeFlags & kDarkWakeFlagPromotionMask) ==
6704 			    kDarkWakeFlagPromotionEarly)) {
6705 				darkWakePostTickle = false;
6706 				reportUserInput();
6707 			}
6708 		}
6709 
6710 		if (!darkWakePowerClamped && (changeFlags & kIOPMDomainDidChange)) {
6711 			if (darkWakeLogClamp) {
6712 				AbsoluteTime    now;
6713 				uint64_t        nsec;
6714 
6715 				clock_get_uptime(&now);
6716 				SUB_ABSOLUTETIME(&now, &gIOLastWakeAbsTime);
6717 				absolutetime_to_nanoseconds(now, &nsec);
6718 				DLOG("dark wake power clamped after %u ms\n",
6719 				    ((int)((nsec) / NSEC_PER_MSEC)));
6720 			}
6721 			darkWakePowerClamped = true;
6722 		}
6723 	}
6724 }
6725 
6726 void
handleActivityTickleForDisplayWrangler(IOService * service,IOPMActions * actions)6727 IOPMrootDomain::handleActivityTickleForDisplayWrangler(
6728 	IOService *     service,
6729 	IOPMActions *   actions )
6730 {
6731 #if DISPLAY_WRANGLER_PRESENT
6732 	// Warning: Not running in PM work loop context - don't modify state !!!
6733 	// Trap tickle directed to IODisplayWrangler while running with graphics
6734 	// capability suppressed.
6735 
6736 	assert(service == wrangler);
6737 
6738 	clock_get_uptime(&userActivityTime);
6739 	bool aborting = ((lastSleepReason == kIOPMSleepReasonIdle)
6740 	    || (lastSleepReason == kIOPMSleepReasonMaintenance)
6741 	    || (lastSleepReason == kIOPMSleepReasonSoftware));
6742 	if (aborting) {
6743 		userActivityCount++;
6744 		DLOG("display wrangler tickled1 %d lastSleepReason %d\n",
6745 		    userActivityCount, lastSleepReason);
6746 	}
6747 
6748 	if (!darkWakeExit && ((_pendingCapability & kIOPMSystemCapabilityGraphics) == 0)) {
6749 		DLOG("display wrangler tickled\n");
6750 		if (kIOLogPMRootDomain & gIOKitDebug) {
6751 			OSReportWithBacktrace("Dark wake display tickle");
6752 		}
6753 		if (pmPowerStateQueue) {
6754 			pmPowerStateQueue->submitPowerEvent(
6755 				kPowerEventPolicyStimulus,
6756 				(void *) kStimulusDarkWakeActivityTickle,
6757 				true /* set wake type */ );
6758 		}
6759 	}
6760 #endif /* DISPLAY_WRANGLER_PRESENT */
6761 }
6762 
6763 void
handleUpdatePowerClientForDisplayWrangler(IOService * service,IOPMActions * actions,const OSSymbol * powerClient,IOPMPowerStateIndex oldPowerState,IOPMPowerStateIndex newPowerState)6764 IOPMrootDomain::handleUpdatePowerClientForDisplayWrangler(
6765 	IOService *             service,
6766 	IOPMActions *           actions,
6767 	const OSSymbol *        powerClient,
6768 	IOPMPowerStateIndex     oldPowerState,
6769 	IOPMPowerStateIndex     newPowerState )
6770 {
6771 #if DISPLAY_WRANGLER_PRESENT
6772 	assert(service == wrangler);
6773 
6774 	// This function implements half of the user active detection
6775 	// by monitoring changes to the display wrangler's device desire.
6776 	//
6777 	// User becomes active when either:
6778 	// 1. Wrangler's DeviceDesire increases to max, but wrangler is already
6779 	//    in max power state. This desire change in absence of a power state
6780 	//    change is detected within. This handles the case when user becomes
6781 	//    active while the display is already lit by setDisplayPowerOn().
6782 	//
6783 	// 2. Power state change to max, and DeviceDesire is also at max.
6784 	//    Handled by displayWranglerNotification().
6785 	//
6786 	// User becomes inactive when DeviceDesire drops to sleep state or below.
6787 
6788 	DLOG("wrangler %s (ps %u, %u->%u)\n",
6789 	    powerClient->getCStringNoCopy(),
6790 	    (uint32_t) service->getPowerState(),
6791 	    (uint32_t) oldPowerState, (uint32_t) newPowerState);
6792 
6793 	if (powerClient == gIOPMPowerClientDevice) {
6794 		if ((newPowerState > oldPowerState) &&
6795 		    (newPowerState == kWranglerPowerStateMax) &&
6796 		    (service->getPowerState() == kWranglerPowerStateMax)) {
6797 			evaluatePolicy( kStimulusEnterUserActiveState );
6798 		} else if ((newPowerState < oldPowerState) &&
6799 		    (newPowerState <= kWranglerPowerStateSleep)) {
6800 			evaluatePolicy( kStimulusLeaveUserActiveState );
6801 		}
6802 	}
6803 
6804 	if (newPowerState <= kWranglerPowerStateSleep) {
6805 		evaluatePolicy( kStimulusDisplayWranglerSleep );
6806 	} else if (newPowerState == kWranglerPowerStateMax) {
6807 		evaluatePolicy( kStimulusDisplayWranglerWake );
6808 	}
6809 #endif /* DISPLAY_WRANGLER_PRESENT */
6810 }
6811 
6812 //******************************************************************************
6813 // User active state management
6814 //******************************************************************************
6815 
6816 void
preventTransitionToUserActive(bool prevent)6817 IOPMrootDomain::preventTransitionToUserActive( bool prevent )
6818 {
6819 #if DISPLAY_WRANGLER_PRESENT
6820 	_preventUserActive = prevent;
6821 	if (wrangler && !_preventUserActive) {
6822 		// Allowing transition to user active, but the wrangler may have
6823 		// already powered ON in case of sleep cancel/revert. Poll the
6824 		// same conditions checked for in displayWranglerNotification()
6825 		// to bring the user active state up to date.
6826 
6827 		if ((wrangler->getPowerState() == kWranglerPowerStateMax) &&
6828 		    (wrangler->getPowerStateForClient(gIOPMPowerClientDevice) ==
6829 		    kWranglerPowerStateMax)) {
6830 			evaluatePolicy( kStimulusEnterUserActiveState );
6831 		}
6832 	}
6833 #endif /* DISPLAY_WRANGLER_PRESENT */
6834 }
6835 
6836 //******************************************************************************
6837 // Approve usage of delayed child notification by PM.
6838 //******************************************************************************
6839 
6840 bool
shouldDelayChildNotification(IOService * service)6841 IOPMrootDomain::shouldDelayChildNotification(
6842 	IOService * service )
6843 {
6844 	if ((kFullWakeReasonNone == fullWakeReason) &&
6845 	    (kSystemTransitionWake == _systemTransitionType)) {
6846 		DLOG("%s: delay child notify\n", service->getName());
6847 		return true;
6848 	}
6849 	return false;
6850 }
6851 
6852 //******************************************************************************
6853 // PM actions for PCI device.
6854 //******************************************************************************
6855 
6856 void
handlePowerChangeStartForPCIDevice(IOService * service,IOPMActions * actions,const IOPMRequest * request,IOPMPowerStateIndex powerState,IOPMPowerChangeFlags * inOutChangeFlags)6857 IOPMrootDomain::handlePowerChangeStartForPCIDevice(
6858 	IOService *             service,
6859 	IOPMActions *           actions,
6860 	const IOPMRequest *     request,
6861 	IOPMPowerStateIndex     powerState,
6862 	IOPMPowerChangeFlags *  inOutChangeFlags )
6863 {
6864 	pmTracer->tracePCIPowerChange(
6865 		PMTraceWorker::kPowerChangeStart,
6866 		service, *inOutChangeFlags,
6867 		(actions->flags & kPMActionsPCIBitNumberMask));
6868 }
6869 
6870 void
handlePowerChangeDoneForPCIDevice(IOService * service,IOPMActions * actions,const IOPMRequest * request,IOPMPowerStateIndex powerState,IOPMPowerChangeFlags changeFlags)6871 IOPMrootDomain::handlePowerChangeDoneForPCIDevice(
6872 	IOService *             service,
6873 	IOPMActions *           actions,
6874 	const IOPMRequest *     request,
6875 	IOPMPowerStateIndex     powerState,
6876 	IOPMPowerChangeFlags    changeFlags )
6877 {
6878 	pmTracer->tracePCIPowerChange(
6879 		PMTraceWorker::kPowerChangeCompleted,
6880 		service, changeFlags,
6881 		(actions->flags & kPMActionsPCIBitNumberMask));
6882 }
6883 
6884 //******************************************************************************
6885 // registerInterest
6886 //
6887 // Override IOService::registerInterest() for root domain clients.
6888 //******************************************************************************
6889 
6890 class IOPMServiceInterestNotifier : public _IOServiceInterestNotifier
6891 {
6892 	friend class IOPMrootDomain;
6893 	OSDeclareDefaultStructors(IOPMServiceInterestNotifier);
6894 
6895 protected:
6896 	uint32_t        ackTimeoutCnt;
6897 	uint32_t        msgType;    // Last type seen by the message filter
6898 	uint32_t        lastSleepWakeMsgType;
6899 	uint32_t        msgIndex;
6900 	uint32_t        maxMsgDelayMS;
6901 	uint32_t        maxAckDelayMS;
6902 	uint64_t        msgAbsTime;
6903 	uint64_t        uuid0;
6904 	uint64_t        uuid1;
6905 	OSSharedPtr<const OSSymbol> identifier;
6906 	OSSharedPtr<const OSSymbol> clientName;
6907 };
6908 
OSDefineMetaClassAndStructors(IOPMServiceInterestNotifier,_IOServiceInterestNotifier)6909 OSDefineMetaClassAndStructors(IOPMServiceInterestNotifier, _IOServiceInterestNotifier)
6910 
6911 OSSharedPtr<IONotifier>
6912 IOPMrootDomain::registerInterest(
6913 	const OSSymbol * typeOfInterest,
6914 	IOServiceInterestHandler handler,
6915 	void * target, void * ref )
6916 {
6917 	IOPMServiceInterestNotifier* notifier;
6918 	bool            isSystemCapabilityClient;
6919 	bool            isKernelCapabilityClient;
6920 	IOReturn        rc = kIOReturnError;
6921 
6922 	isSystemCapabilityClient = typeOfInterest &&
6923 	    typeOfInterest->isEqualTo(kIOPMSystemCapabilityInterest);
6924 
6925 	isKernelCapabilityClient = typeOfInterest &&
6926 	    typeOfInterest->isEqualTo(gIOPriorityPowerStateInterest);
6927 
6928 	if (isSystemCapabilityClient) {
6929 		typeOfInterest = gIOAppPowerStateInterest;
6930 	}
6931 
6932 	notifier = new IOPMServiceInterestNotifier;
6933 	if (!notifier) {
6934 		return NULL;
6935 	}
6936 
6937 	if (notifier->init()) {
6938 		rc  = super::registerInterestForNotifier(notifier, typeOfInterest, handler, target, ref);
6939 	}
6940 	if (rc != kIOReturnSuccess) {
6941 		OSSafeReleaseNULL(notifier);
6942 		return NULL;
6943 	}
6944 
6945 	notifier->ackTimeoutCnt = 0;
6946 
6947 	if (pmPowerStateQueue) {
6948 		if (isSystemCapabilityClient) {
6949 			notifier->retain();
6950 			if (pmPowerStateQueue->submitPowerEvent(
6951 				    kPowerEventRegisterSystemCapabilityClient, notifier) == false) {
6952 				notifier->release();
6953 			}
6954 		}
6955 
6956 		if (isKernelCapabilityClient) {
6957 			notifier->retain();
6958 			if (pmPowerStateQueue->submitPowerEvent(
6959 				    kPowerEventRegisterKernelCapabilityClient, notifier) == false) {
6960 				notifier->release();
6961 			}
6962 		}
6963 	}
6964 
6965 	OSSharedPtr<OSData> data;
6966 	uint8_t *uuid = NULL;
6967 	OSSharedPtr<OSKext> kext = OSKext::lookupKextWithAddress((vm_address_t)handler);
6968 	if (kext) {
6969 		data = kext->copyUUID();
6970 	}
6971 	if (data && (data->getLength() == sizeof(uuid_t))) {
6972 		uuid = (uint8_t *)(data->getBytesNoCopy());
6973 
6974 		notifier->uuid0 = ((uint64_t)(uuid[0]) << 56) | ((uint64_t)(uuid[1]) << 48) | ((uint64_t)(uuid[2]) << 40) |
6975 		    ((uint64_t)(uuid[3]) << 32) | ((uint64_t)(uuid[4]) << 24) | ((uint64_t)(uuid[5]) << 16) |
6976 		    ((uint64_t)(uuid[6]) << 8) | (uuid[7]);
6977 		notifier->uuid1 = ((uint64_t)(uuid[8]) << 56) | ((uint64_t)(uuid[9]) << 48) | ((uint64_t)(uuid[10]) << 40) |
6978 		    ((uint64_t)(uuid[11]) << 32) | ((uint64_t)(uuid[12]) << 24) | ((uint64_t)(uuid[13]) << 16) |
6979 		    ((uint64_t)(uuid[14]) << 8) | (uuid[15]);
6980 
6981 		notifier->identifier = copyKextIdentifierWithAddress((vm_address_t) handler);
6982 	}
6983 	return OSSharedPtr<IOPMServiceInterestNotifier>(notifier, OSNoRetain);
6984 }
6985 
6986 //******************************************************************************
6987 // systemMessageFilter
6988 //
6989 //******************************************************************************
6990 
6991 bool
systemMessageFilter(void * object,void * arg1,void * arg2,void * arg3)6992 IOPMrootDomain::systemMessageFilter(
6993 	void * object, void * arg1, void * arg2, void * arg3 )
6994 {
6995 	const IOPMInterestContext * context = (const IOPMInterestContext *) arg1;
6996 	bool  isCapMsg = (context->messageType == kIOMessageSystemCapabilityChange);
6997 	bool  isCapPowerd = (object == (void *) systemCapabilityNotifier.get());
6998 	bool  isCapClient = false;
6999 	bool  allow = false;
7000 	OSBoolean **waitForReply = (typeof(waitForReply))arg3;
7001 	IOPMServiceInterestNotifier *notifier;
7002 
7003 	notifier = OSDynamicCast(IOPMServiceInterestNotifier, (OSObject *)object);
7004 
7005 	do {
7006 		// When powerd and kernel priority clients register capability interest,
7007 		// the power tree is sync'ed to inform those clients about the current
7008 		// system capability. Only allow capability change messages during sync.
7009 		if ((kSystemTransitionNewCapClient == _systemTransitionType) &&
7010 		    (!isCapMsg || !_joinedCapabilityClients ||
7011 		    !_joinedCapabilityClients->containsObject((OSObject *) object))) {
7012 			break;
7013 		}
7014 
7015 		// Capability change message for powerd and kernel clients
7016 		if (isCapMsg) {
7017 			// Kernel priority clients
7018 			if ((context->notifyType == kNotifyPriority) ||
7019 			    (context->notifyType == kNotifyCapabilityChangePriority)) {
7020 				isCapClient = true;
7021 			}
7022 
7023 			// powerd will maintain two client registrations with root domain.
7024 			// isCapPowerd will be TRUE for any message targeting the powerd
7025 			// exclusive (capability change) interest registration.
7026 			if (isCapPowerd && (context->notifyType == kNotifyCapabilityChangeApps)) {
7027 				isCapClient = true;
7028 			}
7029 		}
7030 
7031 		if (isCapClient) {
7032 			IOPMSystemCapabilityChangeParameters * capArgs =
7033 			    (IOPMSystemCapabilityChangeParameters *) arg2;
7034 
7035 			if (kSystemTransitionNewCapClient == _systemTransitionType) {
7036 				capArgs->fromCapabilities = 0;
7037 				capArgs->toCapabilities = _currentCapability;
7038 				capArgs->changeFlags = 0;
7039 			} else {
7040 				capArgs->fromCapabilities = _currentCapability;
7041 				capArgs->toCapabilities = _pendingCapability;
7042 
7043 				if (context->isPreChange) {
7044 					capArgs->changeFlags = kIOPMSystemCapabilityWillChange;
7045 				} else {
7046 					capArgs->changeFlags = kIOPMSystemCapabilityDidChange;
7047 				}
7048 
7049 				if (isCapPowerd && context->isPreChange) {
7050 					toldPowerdCapWillChange = true;
7051 				}
7052 			}
7053 
7054 			// App level capability change messages must only go to powerd.
7055 			// Wait for response post-change if capabilitiy is increasing.
7056 			// Wait for response pre-change if capability is decreasing.
7057 
7058 			if ((context->notifyType == kNotifyCapabilityChangeApps) && waitForReply &&
7059 			    ((capabilityLoss && context->isPreChange) ||
7060 			    (!capabilityLoss && !context->isPreChange))) {
7061 				*waitForReply = kOSBooleanTrue;
7062 			}
7063 
7064 			allow = true;
7065 			break;
7066 		}
7067 
7068 		// powerd will always receive CanSystemSleep, even for a demand sleep.
7069 		// It will also have a final chance to veto sleep after all clients
7070 		// have responded to SystemWillSleep
7071 
7072 		if ((kIOMessageCanSystemSleep == context->messageType) ||
7073 		    (kIOMessageSystemWillNotSleep == context->messageType)) {
7074 			if (isCapPowerd) {
7075 				allow = true;
7076 				break;
7077 			}
7078 
7079 			// Demand sleep, don't ask apps for permission
7080 			if (context->changeFlags & kIOPMSkipAskPowerDown) {
7081 				break;
7082 			}
7083 		}
7084 
7085 		if (kIOPMMessageLastCallBeforeSleep == context->messageType) {
7086 			if (isCapPowerd && CAP_HIGHEST(kIOPMSystemCapabilityGraphics) &&
7087 			    (fullToDarkReason == kIOPMSleepReasonIdle)) {
7088 				allow = true;
7089 			}
7090 			break;
7091 		}
7092 
7093 		// Drop capability change messages for legacy clients.
7094 		// Drop legacy system sleep messages for powerd capability interest.
7095 		if (isCapMsg || isCapPowerd) {
7096 			break;
7097 		}
7098 
7099 		// Not a capability change message.
7100 		// Perform message filtering based on _systemMessageClientMask.
7101 
7102 		if ((context->notifyType == kNotifyApps) &&
7103 		    (_systemMessageClientMask & kSystemMessageClientLegacyApp)) {
7104 			if (!notifier) {
7105 				break;
7106 			}
7107 
7108 			if ((notifier->lastSleepWakeMsgType == context->messageType) &&
7109 			    (notifier->lastSleepWakeMsgType == kIOMessageSystemWillPowerOn)) {
7110 				break; // drop any duplicate WillPowerOn for AOT devices
7111 			}
7112 
7113 			allow = true;
7114 
7115 			if (waitForReply) {
7116 				if (notifier->ackTimeoutCnt >= 3) {
7117 					*waitForReply = kOSBooleanFalse;
7118 				} else {
7119 					*waitForReply = kOSBooleanTrue;
7120 				}
7121 			}
7122 		} else if ((context->notifyType == kNotifyPriority) &&
7123 		    (_systemMessageClientMask & kSystemMessageClientKernel)) {
7124 			allow = true;
7125 		}
7126 
7127 		// Check sleep/wake message ordering
7128 		if (allow) {
7129 			if (context->messageType == kIOMessageSystemWillSleep ||
7130 			    context->messageType == kIOMessageSystemWillPowerOn ||
7131 			    context->messageType == kIOMessageSystemHasPoweredOn) {
7132 				notifier->lastSleepWakeMsgType = context->messageType;
7133 			}
7134 		}
7135 	} while (false);
7136 
7137 	if (allow && isCapMsg && _joinedCapabilityClients) {
7138 		_joinedCapabilityClients->removeObject((OSObject *) object);
7139 		if (_joinedCapabilityClients->getCount() == 0) {
7140 			DMSG("destroyed capability client set %p\n",
7141 			    OBFUSCATE(_joinedCapabilityClients.get()));
7142 			_joinedCapabilityClients.reset();
7143 		}
7144 	}
7145 	if (notifier) {
7146 		// Record the last seen message type even if the message is dropped
7147 		// for traceFilteredNotification().
7148 		notifier->msgType = context->messageType;
7149 	}
7150 
7151 	return allow;
7152 }
7153 
7154 //******************************************************************************
7155 // setMaintenanceWakeCalendar
7156 //
7157 //******************************************************************************
7158 
7159 IOReturn
setMaintenanceWakeCalendar(const IOPMCalendarStruct * calendar)7160 IOPMrootDomain::setMaintenanceWakeCalendar(
7161 	const IOPMCalendarStruct * calendar )
7162 {
7163 	OSSharedPtr<OSData> data;
7164 	IOReturn ret = 0;
7165 
7166 	if (!calendar) {
7167 		return kIOReturnBadArgument;
7168 	}
7169 
7170 	data = OSData::withValue(*calendar);
7171 	if (!data) {
7172 		return kIOReturnNoMemory;
7173 	}
7174 
7175 	if (kPMCalendarTypeMaintenance == calendar->selector) {
7176 		ret = setPMSetting(gIOPMSettingMaintenanceWakeCalendarKey.get(), data.get());
7177 	} else if (kPMCalendarTypeSleepService == calendar->selector) {
7178 		ret = setPMSetting(gIOPMSettingSleepServiceWakeCalendarKey.get(), data.get());
7179 	}
7180 
7181 	return ret;
7182 }
7183 
7184 // MARK: -
7185 // MARK: Display Wrangler
7186 
7187 //******************************************************************************
7188 // displayWranglerNotification
7189 //
7190 // Handle the notification when the IODisplayWrangler changes power state.
7191 //******************************************************************************
7192 
7193 IOReturn
displayWranglerNotification(void * target,void * refCon,UInt32 messageType,IOService * service,void * messageArgument,vm_size_t argSize)7194 IOPMrootDomain::displayWranglerNotification(
7195 	void * target, void * refCon,
7196 	UInt32 messageType, IOService * service,
7197 	void * messageArgument, vm_size_t argSize )
7198 {
7199 #if DISPLAY_WRANGLER_PRESENT
7200 	IOPMPowerStateIndex                 displayPowerState;
7201 	IOPowerStateChangeNotification *    params =
7202 	    (IOPowerStateChangeNotification *) messageArgument;
7203 
7204 	if ((messageType != kIOMessageDeviceWillPowerOff) &&
7205 	    (messageType != kIOMessageDeviceHasPoweredOn)) {
7206 		return kIOReturnUnsupported;
7207 	}
7208 
7209 	ASSERT_GATED();
7210 	if (!gRootDomain) {
7211 		return kIOReturnUnsupported;
7212 	}
7213 
7214 	displayPowerState = params->stateNumber;
7215 	DLOG("wrangler %s ps %d\n",
7216 	    getIOMessageString(messageType), (uint32_t) displayPowerState);
7217 
7218 	switch (messageType) {
7219 	case kIOMessageDeviceWillPowerOff:
7220 		// Display wrangler has dropped power due to display idle
7221 		// or force system sleep.
7222 		//
7223 		// 4 Display ON             kWranglerPowerStateMax
7224 		// 3 Display Dim            kWranglerPowerStateDim
7225 		// 2 Display Sleep          kWranglerPowerStateSleep
7226 		// 1 Not visible to user
7227 		// 0 Not visible to user    kWranglerPowerStateMin
7228 
7229 		if (displayPowerState <= kWranglerPowerStateSleep) {
7230 			gRootDomain->evaluatePolicy( kStimulusDisplayWranglerSleep );
7231 		}
7232 		break;
7233 
7234 	case kIOMessageDeviceHasPoweredOn:
7235 		// Display wrangler has powered on due to user activity
7236 		// or wake from sleep.
7237 
7238 		if (kWranglerPowerStateMax == displayPowerState) {
7239 			gRootDomain->evaluatePolicy( kStimulusDisplayWranglerWake );
7240 
7241 			// See comment in handleUpdatePowerClientForDisplayWrangler
7242 			if (service->getPowerStateForClient(gIOPMPowerClientDevice) ==
7243 			    kWranglerPowerStateMax) {
7244 				gRootDomain->evaluatePolicy( kStimulusEnterUserActiveState );
7245 			}
7246 		}
7247 		break;
7248 	}
7249 #endif /* DISPLAY_WRANGLER_PRESENT */
7250 	return kIOReturnUnsupported;
7251 }
7252 
7253 //******************************************************************************
7254 // reportUserInput
7255 //
7256 //******************************************************************************
7257 
7258 void
updateUserActivity(void)7259 IOPMrootDomain::updateUserActivity( void )
7260 {
7261 #if defined(XNU_TARGET_OS_OSX) && !DISPLAY_WRANGLER_PRESENT
7262 	clock_get_uptime(&userActivityTime);
7263 	bool aborting =  ((lastSleepReason == kIOPMSleepReasonSoftware)
7264 	    || (lastSleepReason == kIOPMSleepReasonIdle)
7265 	    || (lastSleepReason == kIOPMSleepReasonMaintenance));
7266 	if (aborting) {
7267 		userActivityCount++;
7268 		DLOG("user activity reported %d lastSleepReason %d\n", userActivityCount, lastSleepReason);
7269 	}
7270 #endif
7271 }
7272 void
reportUserInput(void)7273 IOPMrootDomain::reportUserInput( void )
7274 {
7275 	if (wrangler) {
7276 		wrangler->activityTickle(0, 0);
7277 	}
7278 #if defined(XNU_TARGET_OS_OSX) && !DISPLAY_WRANGLER_PRESENT
7279 	// Update user activity
7280 	updateUserActivity();
7281 
7282 	if (!darkWakeExit && ((_pendingCapability & kIOPMSystemCapabilityGraphics) == 0)) {
7283 		// update user active abs time
7284 		clock_get_uptime(&gUserActiveAbsTime);
7285 		pmPowerStateQueue->submitPowerEvent(
7286 			kPowerEventPolicyStimulus,
7287 			(void *) kStimulusDarkWakeActivityTickle,
7288 			true /* set wake type */ );
7289 	}
7290 #endif
7291 }
7292 
7293 void
requestUserActive(IOService * device,const char * reason)7294 IOPMrootDomain::requestUserActive(IOService *device, const char *reason)
7295 {
7296 #if DISPLAY_WRANGLER_PRESENT
7297 	if (wrangler) {
7298 		wrangler->activityTickle(0, 0);
7299 	}
7300 #else
7301 	if (!device) {
7302 		DLOG("requestUserActive: device is null\n");
7303 		return;
7304 	}
7305 	OSSharedPtr<const OSSymbol> deviceName = device->copyName();
7306 	uint64_t registryID = device->getRegistryEntryID();
7307 
7308 	if (!deviceName || !registryID) {
7309 		DLOG("requestUserActive: no device name or registry entry\n");
7310 		return;
7311 	}
7312 	const char *name = deviceName->getCStringNoCopy();
7313 	char payload[128];
7314 	snprintf(payload, sizeof(payload), "%s:%s", name, reason);
7315 	DLOG("requestUserActive from %s (0x%llx) for %s\n", name, registryID, reason);
7316 	messageClient(kIOPMMessageRequestUserActive, systemCapabilityNotifier.get(), (void *)payload, sizeof(payload));
7317 #endif
7318 }
7319 
7320 //******************************************************************************
7321 // latchDisplayWranglerTickle
7322 //******************************************************************************
7323 
7324 bool
latchDisplayWranglerTickle(bool latch)7325 IOPMrootDomain::latchDisplayWranglerTickle( bool latch )
7326 {
7327 #if DISPLAY_WRANGLER_PRESENT
7328 	if (latch) {
7329 		if (!(_currentCapability & kIOPMSystemCapabilityGraphics) &&
7330 		    !(_pendingCapability & kIOPMSystemCapabilityGraphics) &&
7331 		    !checkSystemCanSustainFullWake()) {
7332 			// Currently in dark wake, and not transitioning to full wake.
7333 			// Full wake is unsustainable, so latch the tickle to prevent
7334 			// the display from lighting up momentarily.
7335 			wranglerTickled = true;
7336 		} else {
7337 			wranglerTickled = false;
7338 		}
7339 	} else if (wranglerTickled && checkSystemCanSustainFullWake()) {
7340 		wranglerTickled = false;
7341 
7342 		pmPowerStateQueue->submitPowerEvent(
7343 			kPowerEventPolicyStimulus,
7344 			(void *) kStimulusDarkWakeActivityTickle );
7345 	}
7346 
7347 	return wranglerTickled;
7348 #else  /* ! DISPLAY_WRANGLER_PRESENT */
7349 	return false;
7350 #endif /* ! DISPLAY_WRANGLER_PRESENT */
7351 }
7352 
7353 //******************************************************************************
7354 // setDisplayPowerOn
7355 //
7356 // For root domain user client
7357 //******************************************************************************
7358 
7359 void
setDisplayPowerOn(uint32_t options)7360 IOPMrootDomain::setDisplayPowerOn( uint32_t options )
7361 {
7362 	pmPowerStateQueue->submitPowerEvent( kPowerEventSetDisplayPowerOn,
7363 	    (void *) NULL, options );
7364 }
7365 
7366 // MARK: -
7367 // MARK: System PM Policy
7368 
7369 //******************************************************************************
7370 // checkSystemSleepAllowed
7371 //
7372 //******************************************************************************
7373 
7374 bool
checkSystemSleepAllowed(IOOptionBits options,uint32_t sleepReason)7375 IOPMrootDomain::checkSystemSleepAllowed( IOOptionBits options,
7376     uint32_t     sleepReason )
7377 {
7378 	uint32_t err = 0;
7379 
7380 	// Conditions that prevent idle and demand system sleep.
7381 
7382 	do {
7383 		if (gSleepDisabledFlag) {
7384 			err = kPMConfigPreventSystemSleep;
7385 			break;
7386 		}
7387 
7388 		if (userDisabledAllSleep) {
7389 			err = kPMUserDisabledAllSleep; // 1. user-space sleep kill switch
7390 			break;
7391 		}
7392 
7393 		if (systemBooting || systemShutdown || gWillShutdown) {
7394 			err = kPMSystemRestartBootingInProgress; // 2. restart or shutdown in progress
7395 			break;
7396 		}
7397 
7398 		if (options == 0) {
7399 			break;
7400 		}
7401 
7402 		// Conditions above pegs the system at full wake.
7403 		// Conditions below prevent system sleep but does not prevent
7404 		// dark wake, and must be called from gated context.
7405 
7406 #if !CONFIG_SLEEP
7407 		err = kPMConfigPreventSystemSleep;    // 3. config does not support sleep
7408 		break;
7409 #endif
7410 
7411 		if (lowBatteryCondition || thermalWarningState || thermalEmergencyState) {
7412 			break; // always sleep on low battery or when in thermal warning/emergency state
7413 		}
7414 
7415 		if (sleepReason == kIOPMSleepReasonDarkWakeThermalEmergency) {
7416 			break; // always sleep on dark wake thermal emergencies
7417 		}
7418 
7419 		if (preventSystemSleepList->getCount() != 0) {
7420 			err = kPMChildPreventSystemSleep; // 4. child prevent system sleep clamp
7421 			break;
7422 		}
7423 
7424 		if (getPMAssertionLevel( kIOPMDriverAssertionCPUBit ) ==
7425 		    kIOPMDriverAssertionLevelOn) {
7426 			err = kPMCPUAssertion; // 5. CPU assertion
7427 			break;
7428 		}
7429 
7430 		if (pciCantSleepValid) {
7431 			if (pciCantSleepFlag) {
7432 				err = kPMPCIUnsupported; // 6. PCI card does not support PM (cached)
7433 			}
7434 			break;
7435 		} else if (sleepSupportedPEFunction &&
7436 		    CAP_HIGHEST(kIOPMSystemCapabilityGraphics)) {
7437 			IOReturn ret;
7438 			OSBitAndAtomic(~kPCICantSleep, &platformSleepSupport);
7439 			ret = getPlatform()->callPlatformFunction(
7440 				sleepSupportedPEFunction.get(), false,
7441 				NULL, NULL, NULL, NULL);
7442 			pciCantSleepValid = true;
7443 			pciCantSleepFlag  = false;
7444 			if ((platformSleepSupport & kPCICantSleep) ||
7445 			    ((ret != kIOReturnSuccess) && (ret != kIOReturnUnsupported))) {
7446 				err = 6; // 6. PCI card does not support PM
7447 				pciCantSleepFlag = true;
7448 				break;
7449 			}
7450 		}
7451 	}while (false);
7452 
7453 	if (err) {
7454 		DLOG("System sleep prevented by %s\n", getSystemSleepPreventerString(err));
7455 		return false;
7456 	}
7457 	return true;
7458 }
7459 
7460 bool
checkSystemSleepEnabled(void)7461 IOPMrootDomain::checkSystemSleepEnabled( void )
7462 {
7463 	return checkSystemSleepAllowed(0, 0);
7464 }
7465 
7466 bool
checkSystemCanSleep(uint32_t sleepReason)7467 IOPMrootDomain::checkSystemCanSleep( uint32_t sleepReason )
7468 {
7469 	ASSERT_GATED();
7470 	return checkSystemSleepAllowed(1, sleepReason);
7471 }
7472 
7473 //******************************************************************************
7474 // checkSystemCanSustainFullWake
7475 //******************************************************************************
7476 
7477 bool
checkSystemCanSustainFullWake(void)7478 IOPMrootDomain::checkSystemCanSustainFullWake( void )
7479 {
7480 	if (lowBatteryCondition || thermalWarningState || thermalEmergencyState) {
7481 		// Low battery wake, or received a low battery notification
7482 		// while system is awake. This condition will persist until
7483 		// the following wake.
7484 		return false;
7485 	}
7486 
7487 	if (clamshellExists && clamshellClosed && !clamshellSleepDisableMask) {
7488 		// Graphics state is unknown and external display might not be probed.
7489 		// Do not incorporate state that requires graphics to be in max power
7490 		// such as desktopMode or clamshellDisabled.
7491 
7492 		if (!acAdaptorConnected) {
7493 			DLOG("full wake check: no AC\n");
7494 			return false;
7495 		}
7496 	}
7497 	return true;
7498 }
7499 
7500 //******************************************************************************
7501 // mustHibernate
7502 //******************************************************************************
7503 
7504 #if HIBERNATION
7505 
7506 bool
mustHibernate(void)7507 IOPMrootDomain::mustHibernate( void )
7508 {
7509 	return lowBatteryCondition || thermalWarningState;
7510 }
7511 
7512 #endif /* HIBERNATION */
7513 
7514 //******************************************************************************
7515 // AOT
7516 //******************************************************************************
7517 
7518 // Tables for accumulated days in year by month, latter used for leap years
7519 
7520 static const unsigned int daysbymonth[] =
7521 { 0, 31, 59, 90, 120, 151, 181, 212, 243, 273, 304, 334, 365 };
7522 
7523 static const unsigned int lydaysbymonth[] =
7524 { 0, 31, 60, 91, 121, 152, 182, 213, 244, 274, 305, 335, 366 };
7525 
7526 static int __unused
IOPMConvertSecondsToCalendar(clock_sec_t secs,IOPMCalendarStruct * dt)7527 IOPMConvertSecondsToCalendar(clock_sec_t secs, IOPMCalendarStruct * dt)
7528 {
7529 	const unsigned int *    dbm = daysbymonth;
7530 	clock_sec_t             n, x, y, z;
7531 
7532 	// Calculate seconds, minutes and hours
7533 
7534 	n = secs % (24 * 3600);
7535 	dt->second = n % 60;
7536 	n /= 60;
7537 	dt->minute = n % 60;
7538 	dt->hour = (typeof(dt->hour))(n / 60);
7539 
7540 	// Calculate day of week
7541 
7542 	n = secs / (24 * 3600);
7543 //	dt->dayWeek = (n + 4) % 7;
7544 
7545 	// Calculate year
7546 	// Rebase from days since Unix epoch (1/1/1970) store in 'n',
7547 	// to days since 1/1/1968 to start on 4 year cycle, beginning
7548 	// on a leap year.
7549 
7550 	n += (366 + 365);
7551 
7552 	// Every 4 year cycle will be exactly (366 + 365 * 3) = 1461 days.
7553 	// Valid before 2100, since 2100 is not a leap year.
7554 
7555 	x = n / 1461;       // number of 4 year cycles
7556 	y = n % 1461;       // days into current 4 year cycle
7557 	z = 1968 + (4 * x);
7558 
7559 	// Add in years in the current 4 year cycle
7560 
7561 	if (y >= 366) {
7562 		y -= 366;   // days after the leap year
7563 		n = y % 365; // days into the current year
7564 		z += (1 + y / 365); // years after the past 4-yr cycle
7565 	} else {
7566 		n = y;
7567 		dbm = lydaysbymonth;
7568 	}
7569 	if (z > 2099) {
7570 		return 0;
7571 	}
7572 
7573 	dt->year = (typeof(dt->year))z;
7574 
7575 	// Adjust remaining days value to start at 1
7576 
7577 	n += 1;
7578 
7579 	// Calculate month
7580 
7581 	for (x = 1; (n > dbm[x]) && (x < 12); x++) {
7582 		continue;
7583 	}
7584 	dt->month = (typeof(dt->month))x;
7585 
7586 	// Calculate day of month
7587 
7588 	dt->day = (typeof(dt->day))(n - dbm[x - 1]);
7589 
7590 	return 1;
7591 }
7592 
7593 static clock_sec_t
IOPMConvertCalendarToSeconds(const IOPMCalendarStruct * dt)7594 IOPMConvertCalendarToSeconds(const IOPMCalendarStruct * dt)
7595 {
7596 	const unsigned int *    dbm = daysbymonth;
7597 	long                    y, secs, days;
7598 
7599 	if (dt->year < 1970 || dt->month > 12) {
7600 		return 0;
7601 	}
7602 
7603 	// Seconds elapsed in the current day
7604 
7605 	secs = dt->second + 60 * dt->minute + 3600 * dt->hour;
7606 
7607 	// Number of days from 1/1/70 to beginning of current year
7608 	// Account for extra day every 4 years starting at 1973
7609 
7610 	y = dt->year - 1970;
7611 	days = (y * 365) + ((y + 1) / 4);
7612 
7613 	// Change table if current year is a leap year
7614 
7615 	if ((dt->year % 4) == 0) {
7616 		dbm = lydaysbymonth;
7617 	}
7618 
7619 	// Add in days elapsed in the current year
7620 
7621 	days += (dt->day - 1) + dbm[dt->month - 1];
7622 
7623 	// Add accumulated days to accumulated seconds
7624 
7625 	secs += 24 * 3600 * days;
7626 
7627 	return secs;
7628 }
7629 
7630 unsigned long
getRUN_STATE(void)7631 IOPMrootDomain::getRUN_STATE(void)
7632 {
7633 	return (_aotNow && !(kIOPMWakeEventAOTExitFlags & _aotPendingFlags)) ? AOT_STATE : ON_STATE;
7634 }
7635 
7636 bool
isAOTMode()7637 IOPMrootDomain::isAOTMode()
7638 {
7639 	return _aotNow;
7640 }
7641 
7642 IOReturn
setWakeTime(uint64_t wakeContinuousTime)7643 IOPMrootDomain::setWakeTime(uint64_t wakeContinuousTime)
7644 {
7645 	clock_sec_t     nowsecs, wakesecs;
7646 	clock_usec_t    nowmicrosecs, wakemicrosecs;
7647 	uint64_t        nowAbs, wakeAbs;
7648 
7649 	if (!_aotMode) {
7650 		return kIOReturnNotReady;
7651 	}
7652 
7653 	clock_gettimeofday_and_absolute_time(&nowsecs, &nowmicrosecs, &nowAbs);
7654 	wakeAbs = continuoustime_to_absolutetime(wakeContinuousTime);
7655 	if (wakeAbs < nowAbs) {
7656 		printf(LOG_PREFIX "wakeAbs %qd < nowAbs %qd\n", wakeAbs, nowAbs);
7657 		wakeAbs = nowAbs;
7658 	}
7659 	wakeAbs -= nowAbs;
7660 	absolutetime_to_microtime(wakeAbs, &wakesecs, &wakemicrosecs);
7661 
7662 	wakesecs += nowsecs;
7663 	wakemicrosecs += nowmicrosecs;
7664 	if (wakemicrosecs >= USEC_PER_SEC) {
7665 		wakesecs++;
7666 		wakemicrosecs -= USEC_PER_SEC;
7667 	}
7668 	if (wakemicrosecs >= (USEC_PER_SEC / 10)) {
7669 		wakesecs++;
7670 	}
7671 
7672 	IOPMConvertSecondsToCalendar(wakesecs, &_aotWakeTimeCalendar);
7673 
7674 	if (_aotWakeTimeContinuous != wakeContinuousTime) {
7675 		_aotWakeTimeContinuous = wakeContinuousTime;
7676 		IOLog(LOG_PREFIX "setWakeTime: " YMDTF "\n", YMDT(&_aotWakeTimeCalendar));
7677 	}
7678 	_aotWakeTimeCalendar.selector = kPMCalendarTypeMaintenance;
7679 	_aotWakeTimeUTC               = wakesecs;
7680 
7681 	return kIOReturnSuccess;
7682 }
7683 
7684 // assumes WAKEEVENT_LOCK
7685 bool
aotShouldExit(bool checkTimeSet,bool software)7686 IOPMrootDomain::aotShouldExit(bool checkTimeSet, bool software)
7687 {
7688 	bool exitNow = false;
7689 	const char * reason = "";
7690 
7691 	if (!_aotNow) {
7692 		return false;
7693 	}
7694 
7695 	if (software) {
7696 		exitNow = true;
7697 		_aotMetrics->softwareRequestCount++;
7698 		reason = "software request";
7699 	} else if (kIOPMWakeEventAOTExitFlags & _aotPendingFlags) {
7700 		exitNow = true;
7701 		reason = gWakeReasonString;
7702 	} else if (checkTimeSet && (kPMCalendarTypeInvalid == _aotWakeTimeCalendar.selector)) {
7703 		exitNow = true;
7704 		_aotMetrics->noTimeSetCount++;
7705 		reason = "flipbook expired";
7706 	} else if ((kIOPMAOTModeRespectTimers & _aotMode) && _calendarWakeAlarmUTC) {
7707 		clock_sec_t     sec;
7708 		clock_usec_t    usec;
7709 		clock_get_calendar_microtime(&sec, &usec);
7710 		if (_calendarWakeAlarmUTC <= sec) {
7711 			exitNow = true;
7712 			_aotMetrics->rtcAlarmsCount++;
7713 			reason = "user alarm";
7714 		}
7715 	}
7716 	if (exitNow) {
7717 		_aotPendingFlags |= kIOPMWakeEventAOTExit;
7718 		IOLog(LOG_PREFIX "AOT exit for %s, sc %d po %d, cp %d, rj %d, ex %d, nt %d, rt %d\n",
7719 		    reason,
7720 		    _aotMetrics->sleepCount,
7721 		    _aotMetrics->possibleCount,
7722 		    _aotMetrics->confirmedPossibleCount,
7723 		    _aotMetrics->rejectedPossibleCount,
7724 		    _aotMetrics->expiredPossibleCount,
7725 		    _aotMetrics->noTimeSetCount,
7726 		    _aotMetrics->rtcAlarmsCount);
7727 	}
7728 	return exitNow;
7729 }
7730 
7731 void
aotExit(bool cps)7732 IOPMrootDomain::aotExit(bool cps)
7733 {
7734 	uint32_t savedMessageMask;
7735 
7736 	ASSERT_GATED();
7737 	_aotNow = false;
7738 	_aotReadyToFullWake = false;
7739 	if (_aotTimerScheduled) {
7740 		_aotTimerES->cancelTimeout();
7741 		_aotTimerScheduled = false;
7742 	}
7743 	updateTasksSuspend(kTasksSuspendNoChange, kTasksSuspendUnsuspended);
7744 
7745 	_aotMetrics->totalTime += mach_absolute_time() - _aotLastWakeTime;
7746 	_aotLastWakeTime = 0;
7747 	if (_aotMetrics->sleepCount && (_aotMetrics->sleepCount <= kIOPMAOTMetricsKernelWakeCountMax)) {
7748 		WAKEEVENT_LOCK();
7749 		strlcpy(&_aotMetrics->kernelWakeReason[_aotMetrics->sleepCount - 1][0],
7750 		    gWakeReasonString,
7751 		    sizeof(_aotMetrics->kernelWakeReason[_aotMetrics->sleepCount]));
7752 		WAKEEVENT_UNLOCK();
7753 	}
7754 
7755 	_aotWakeTimeCalendar.selector = kPMCalendarTypeInvalid;
7756 
7757 	// Preserve the message mask since a system wake transition
7758 	// may have already started and initialized the mask.
7759 	savedMessageMask = _systemMessageClientMask;
7760 	_systemMessageClientMask = kSystemMessageClientLegacyApp;
7761 	tellClients(kIOMessageSystemWillPowerOn);
7762 	_systemMessageClientMask = savedMessageMask | kSystemMessageClientLegacyApp;
7763 
7764 	if (cps) {
7765 		changePowerStateWithTagToPriv(getRUN_STATE(), kCPSReasonAOTExit);
7766 	}
7767 }
7768 
7769 void
aotEvaluate(IOTimerEventSource * timer)7770 IOPMrootDomain::aotEvaluate(IOTimerEventSource * timer)
7771 {
7772 	bool exitNow;
7773 
7774 	IOLog("aotEvaluate(%d) 0x%x\n", (timer != NULL), _aotPendingFlags);
7775 
7776 	WAKEEVENT_LOCK();
7777 	exitNow = aotShouldExit(false, false);
7778 	if (timer != NULL) {
7779 		_aotTimerScheduled = false;
7780 	}
7781 	WAKEEVENT_UNLOCK();
7782 	if (exitNow) {
7783 		aotExit(true);
7784 	} else {
7785 #if 0
7786 		if (_aotLingerTime) {
7787 			uint64_t deadline;
7788 			IOLog("aot linger before sleep\n");
7789 			clock_absolutetime_interval_to_deadline(_aotLingerTime, &deadline);
7790 			clock_delay_until(deadline);
7791 		}
7792 #endif
7793 		privateSleepSystem(kIOPMSleepReasonSoftware);
7794 	}
7795 }
7796 
7797 //******************************************************************************
7798 // adjustPowerState
7799 //
7800 // Conditions that affect our wake/sleep decision has changed.
7801 // If conditions dictate that the system must remain awake, clamp power
7802 // state to max with changePowerStateToPriv(ON). Otherwise if sleepASAP
7803 // is TRUE, then remove the power clamp and allow the power state to drop
7804 // to SLEEP_STATE.
7805 //******************************************************************************
7806 
7807 void
adjustPowerState(bool sleepASAP)7808 IOPMrootDomain::adjustPowerState( bool sleepASAP )
7809 {
7810 	DEBUG_LOG("adjustPowerState %s, asap %d, idleSleepEnabled %d\n",
7811 	    getPowerStateString((uint32_t) getPowerState()), sleepASAP, idleSleepEnabled);
7812 
7813 	ASSERT_GATED();
7814 
7815 	if (_aotNow) {
7816 		bool exitNow;
7817 
7818 		if (AOT_STATE != getPowerState()) {
7819 			return;
7820 		}
7821 		WAKEEVENT_LOCK();
7822 		exitNow = aotShouldExit(true, false);
7823 		if (!exitNow
7824 		    && !_aotTimerScheduled
7825 		    && (kIOPMWakeEventAOTPossibleExit == (kIOPMWakeEventAOTPossibleFlags & _aotPendingFlags))) {
7826 			_aotTimerScheduled = true;
7827 			if (_aotLingerTime) {
7828 				_aotTimerES->setTimeout(_aotLingerTime);
7829 			} else {
7830 				_aotTimerES->setTimeout(800, kMillisecondScale);
7831 			}
7832 		}
7833 		WAKEEVENT_UNLOCK();
7834 		if (exitNow) {
7835 			aotExit(true);
7836 		} else {
7837 			_aotReadyToFullWake = true;
7838 			if (!_aotTimerScheduled) {
7839 				if (kIOPMDriverAssertionLevelOn == getPMAssertionLevel(kIOPMDriverAssertionCPUBit)) {
7840 					// Don't try to force sleep during AOT while IOMobileFramebuffer is holding a power assertion.
7841 					// Doing so will result in the sleep being cancelled anyway,
7842 					// but this check avoids unnecessary thrashing in the power state engine.
7843 					return;
7844 				}
7845 				privateSleepSystem(kIOPMSleepReasonSoftware);
7846 			}
7847 		}
7848 		return;
7849 	}
7850 
7851 	if ((!idleSleepEnabled) || !checkSystemSleepEnabled()) {
7852 		changePowerStateWithTagToPriv(getRUN_STATE(), kCPSReasonAdjustPowerState);
7853 	} else if (sleepASAP) {
7854 		changePowerStateWithTagToPriv(SLEEP_STATE, kCPSReasonAdjustPowerState);
7855 	}
7856 }
7857 
7858 void
handleSetDisplayPowerOn(bool powerOn)7859 IOPMrootDomain::handleSetDisplayPowerOn(bool powerOn)
7860 {
7861 	if (powerOn) {
7862 		if (!checkSystemCanSustainFullWake()) {
7863 			DLOG("System cannot sustain full wake\n");
7864 			return;
7865 		}
7866 
7867 		// Force wrangler to max power state. If system is in dark wake
7868 		// this alone won't raise the wrangler's power state.
7869 		if (wrangler) {
7870 			wrangler->changePowerStateForRootDomain(kWranglerPowerStateMax);
7871 		}
7872 
7873 		// System in dark wake, always requesting full wake should
7874 		// not have any bad side-effects, even if the request fails.
7875 
7876 		if (!CAP_CURRENT(kIOPMSystemCapabilityGraphics)) {
7877 			setProperty(kIOPMRootDomainWakeTypeKey, kIOPMRootDomainWakeTypeNotification);
7878 			requestFullWake( kFullWakeReasonDisplayOn );
7879 		}
7880 	} else {
7881 		// Relenquish desire to power up display.
7882 		// Must first transition to state 1 since wrangler doesn't
7883 		// power off the displays at state 0. At state 0 the root
7884 		// domain is removed from the wrangler's power client list.
7885 		if (wrangler) {
7886 			wrangler->changePowerStateForRootDomain(kWranglerPowerStateMin + 1);
7887 			wrangler->changePowerStateForRootDomain(kWranglerPowerStateMin);
7888 		}
7889 	}
7890 }
7891 
7892 //******************************************************************************
7893 // dispatchPowerEvent
7894 //
7895 // IOPMPowerStateQueue callback function. Running on PM work loop thread.
7896 //******************************************************************************
7897 
7898 void
dispatchPowerEvent(uint32_t event,void * arg0,uint64_t arg1)7899 IOPMrootDomain::dispatchPowerEvent(
7900 	uint32_t event, void * arg0, uint64_t arg1 )
7901 {
7902 	ASSERT_GATED();
7903 
7904 	switch (event) {
7905 	case kPowerEventFeatureChanged:
7906 		DMSG("power event %u args %p 0x%llx\n", event, OBFUSCATE(arg0), arg1);
7907 		messageClients(kIOPMMessageFeatureChange, this);
7908 		break;
7909 
7910 	case kPowerEventReceivedPowerNotification:
7911 		DMSG("power event %u args %p 0x%llx\n", event, OBFUSCATE(arg0), arg1);
7912 		handlePowerNotification((UInt32)(uintptr_t) arg0 );
7913 		break;
7914 
7915 	case kPowerEventSystemBootCompleted:
7916 		DLOG("power event %u args %p 0x%llx\n", event, OBFUSCATE(arg0), arg1);
7917 		if (systemBooting) {
7918 			systemBooting = false;
7919 
7920 			if (PE_get_default("sleep-disabled", &gSleepDisabledFlag, sizeof(gSleepDisabledFlag))) {
7921 				DLOG("Setting gSleepDisabledFlag to %u from device tree\n", gSleepDisabledFlag);
7922 			}
7923 			if (lowBatteryCondition || thermalEmergencyState) {
7924 				if (lowBatteryCondition) {
7925 					privateSleepSystem(kIOPMSleepReasonLowPower);
7926 				} else {
7927 					privateSleepSystem(kIOPMSleepReasonThermalEmergency);
7928 				}
7929 				// The rest is unnecessary since the system is expected
7930 				// to sleep immediately. The following wake will update
7931 				// everything.
7932 				break;
7933 			}
7934 
7935 			sleepWakeDebugMemAlloc();
7936 			saveFailureData2File();
7937 
7938 			// If lid is closed, re-send lid closed notification
7939 			// now that booting is complete.
7940 			if (clamshellClosed) {
7941 				handlePowerNotification(kLocalEvalClamshellCommand);
7942 			}
7943 			evaluatePolicy( kStimulusAllowSystemSleepChanged );
7944 		}
7945 		break;
7946 
7947 	case kPowerEventSystemShutdown:
7948 		DLOG("power event %u args %p 0x%llx\n", event, OBFUSCATE(arg0), arg1);
7949 		if (kOSBooleanTrue == (OSBoolean *) arg0) {
7950 			/* We set systemShutdown = true during shutdown
7951 			 *  to prevent sleep at unexpected times while loginwindow is trying
7952 			 *  to shutdown apps and while the OS is trying to transition to
7953 			 *  complete power of.
7954 			 *
7955 			 *  Set to true during shutdown, as soon as loginwindow shows
7956 			 *  the "shutdown countdown dialog", through individual app
7957 			 *  termination, and through black screen kernel shutdown.
7958 			 */
7959 			systemShutdown = true;
7960 		} else {
7961 			/*
7962 			 *  A shutdown was initiated, but then the shutdown
7963 			 *  was cancelled, clearing systemShutdown to false here.
7964 			 */
7965 			systemShutdown = false;
7966 		}
7967 		break;
7968 
7969 	case kPowerEventUserDisabledSleep:
7970 		DLOG("power event %u args %p 0x%llx\n", event, OBFUSCATE(arg0), arg1);
7971 		userDisabledAllSleep = (kOSBooleanTrue == (OSBoolean *) arg0);
7972 		break;
7973 
7974 	case kPowerEventRegisterSystemCapabilityClient:
7975 		DLOG("power event %u args %p 0x%llx\n", event, OBFUSCATE(arg0), arg1);
7976 
7977 		// reset() handles the arg0 == nullptr case for us
7978 		systemCapabilityNotifier.reset((IONotifier *) arg0, OSRetain);
7979 		/* intentional fall-through */
7980 		[[clang::fallthrough]];
7981 
7982 	case kPowerEventRegisterKernelCapabilityClient:
7983 		DLOG("power event %u args %p 0x%llx\n", event, OBFUSCATE(arg0), arg1);
7984 		if (!_joinedCapabilityClients) {
7985 			_joinedCapabilityClients = OSSet::withCapacity(8);
7986 		}
7987 		if (arg0) {
7988 			OSSharedPtr<IONotifier> notify((IONotifier *) arg0, OSNoRetain);
7989 			if (_joinedCapabilityClients) {
7990 				_joinedCapabilityClients->setObject(notify.get());
7991 				synchronizePowerTree( kIOPMSyncNoChildNotify );
7992 			}
7993 		}
7994 		break;
7995 
7996 	case kPowerEventPolicyStimulus:
7997 		DMSG("power event %u args %p 0x%llx\n", event, OBFUSCATE(arg0), arg1);
7998 		if (arg0) {
7999 			int stimulus = (int)(uintptr_t) arg0;
8000 			evaluatePolicy(stimulus, (uint32_t) arg1);
8001 		}
8002 		break;
8003 
8004 	case kPowerEventAssertionCreate:
8005 		DMSG("power event %u args %p 0x%llx\n", event, OBFUSCATE(arg0), arg1);
8006 		if (pmAssertions) {
8007 			pmAssertions->handleCreateAssertion((OSValueObject<PMAssertStruct> *)arg0);
8008 		}
8009 		break;
8010 
8011 
8012 	case kPowerEventAssertionRelease:
8013 		DMSG("power event %u args %p 0x%llx\n", event, OBFUSCATE(arg0), arg1);
8014 		if (pmAssertions) {
8015 			pmAssertions->handleReleaseAssertion(arg1);
8016 		}
8017 		break;
8018 
8019 	case kPowerEventAssertionSetLevel:
8020 		DMSG("power event %u args %p 0x%llx\n", event, OBFUSCATE(arg0), arg1);
8021 		if (pmAssertions) {
8022 			pmAssertions->handleSetAssertionLevel(arg1, (IOPMDriverAssertionLevel)(uintptr_t)arg0);
8023 		}
8024 		break;
8025 
8026 	case kPowerEventQueueSleepWakeUUID:
8027 		DLOG("power event %u args %p 0x%llx\n", event, OBFUSCATE(arg0), arg1);
8028 		handleQueueSleepWakeUUID((OSObject *)arg0);
8029 		break;
8030 	case kPowerEventPublishSleepWakeUUID:
8031 		DLOG("power event %u args %p 0x%llx\n", event, OBFUSCATE(arg0), arg1);
8032 		handlePublishSleepWakeUUID((bool)arg0);
8033 		break;
8034 
8035 	case kPowerEventSetDisplayPowerOn:
8036 		DLOG("power event %u args %p 0x%llx\n", event, OBFUSCATE(arg0), arg1);
8037 		if (arg1 != 0) {
8038 			displayPowerOnRequested = true;
8039 		} else {
8040 			displayPowerOnRequested = false;
8041 		}
8042 		handleSetDisplayPowerOn(displayPowerOnRequested);
8043 		break;
8044 
8045 	case kPowerEventPublishWakeType:
8046 		DLOG("power event %u args %p 0x%llx\n", event, OBFUSCATE(arg0), arg1);
8047 
8048 		// Don't replace wake type property if already set
8049 		if ((arg0 == gIOPMWakeTypeUserKey) ||
8050 		    !propertyExists(kIOPMRootDomainWakeTypeKey)) {
8051 			const char * wakeType = NULL;
8052 
8053 			if (arg0 == gIOPMWakeTypeUserKey) {
8054 				requestUserActive(this, "WakeTypeUser");
8055 				wakeType = kIOPMRootDomainWakeTypeUser;
8056 			} else if (arg0 == gIOPMSettingDebugWakeRelativeKey) {
8057 				requestUserActive(this, "WakeTypeAlarm");
8058 				wakeType = kIOPMRootDomainWakeTypeAlarm;
8059 			} else if (arg0 == gIOPMSettingSleepServiceWakeCalendarKey) {
8060 				darkWakeSleepService = true;
8061 				wakeType = kIOPMRootDomainWakeTypeSleepService;
8062 			} else if (arg0 == gIOPMSettingMaintenanceWakeCalendarKey) {
8063 				wakeType = kIOPMRootDomainWakeTypeMaintenance;
8064 			}
8065 
8066 			if (wakeType) {
8067 				setProperty(kIOPMRootDomainWakeTypeKey, wakeType);
8068 			}
8069 		}
8070 		break;
8071 
8072 	case kPowerEventAOTEvaluate:
8073 		DLOG("power event %u args %p 0x%llx\n", event, OBFUSCATE(arg0), arg1);
8074 		if (_aotReadyToFullWake) {
8075 			aotEvaluate(NULL);
8076 		}
8077 		break;
8078 	}
8079 }
8080 
8081 //******************************************************************************
8082 // systemPowerEventOccurred
8083 //
8084 // The power controller is notifying us of a hardware-related power management
8085 // event that we must handle.
8086 //
8087 // systemPowerEventOccurred covers the same functionality that
8088 // receivePowerNotification does; it simply provides a richer API for conveying
8089 // more information.
8090 //******************************************************************************
8091 
8092 IOReturn
systemPowerEventOccurred(const OSSymbol * event,uint32_t intValue)8093 IOPMrootDomain::systemPowerEventOccurred(
8094 	const OSSymbol *event,
8095 	uint32_t intValue)
8096 {
8097 	IOReturn        attempt = kIOReturnSuccess;
8098 	OSSharedPtr<OSNumber>        newNumber;
8099 
8100 	if (!event) {
8101 		return kIOReturnBadArgument;
8102 	}
8103 
8104 	newNumber = OSNumber::withNumber(intValue, 8 * sizeof(intValue));
8105 	if (!newNumber) {
8106 		return kIOReturnInternalError;
8107 	}
8108 
8109 	attempt = systemPowerEventOccurred(event, static_cast<OSObject *>(newNumber.get()));
8110 
8111 	return attempt;
8112 }
8113 
8114 void
setThermalState(OSObject * value)8115 IOPMrootDomain::setThermalState(OSObject *value)
8116 {
8117 	OSNumber * num;
8118 
8119 	if (gIOPMWorkLoop->inGate() == false) {
8120 		gIOPMWorkLoop->runAction(
8121 			OSMemberFunctionCast(IOWorkLoop::Action, this, &IOPMrootDomain::setThermalState),
8122 			(OSObject *)this,
8123 			(void *)value);
8124 
8125 		return;
8126 	}
8127 	if (value && (num = OSDynamicCast(OSNumber, value))) {
8128 		thermalWarningState = ((num->unsigned32BitValue() == kIOPMThermalLevelWarning) ||
8129 		    (num->unsigned32BitValue() == kIOPMThermalLevelTrap)) ? 1 : 0;
8130 	}
8131 }
8132 
8133 IOReturn
systemPowerEventOccurred(const OSSymbol * event,OSObject * value)8134 IOPMrootDomain::systemPowerEventOccurred(
8135 	const OSSymbol *event,
8136 	OSObject *value)
8137 {
8138 	OSSharedPtr<OSDictionary> thermalsDict;
8139 	bool shouldUpdate = true;
8140 
8141 	if (!event || !value) {
8142 		return kIOReturnBadArgument;
8143 	}
8144 
8145 	// LOCK
8146 	// We reuse featuresDict Lock because it already exists and guards
8147 	// the very infrequently used publish/remove feature mechanism; so there's zero rsk
8148 	// of stepping on that lock.
8149 	if (featuresDictLock) {
8150 		IOLockLock(featuresDictLock);
8151 	}
8152 
8153 	OSSharedPtr<OSObject> origThermalsProp = copyProperty(kIOPMRootDomainPowerStatusKey);
8154 	OSDictionary * origThermalsDict = OSDynamicCast(OSDictionary, origThermalsProp.get());
8155 
8156 	if (origThermalsDict) {
8157 		thermalsDict = OSDictionary::withDictionary(origThermalsDict);
8158 	} else {
8159 		thermalsDict = OSDictionary::withCapacity(1);
8160 	}
8161 
8162 	if (!thermalsDict) {
8163 		shouldUpdate = false;
8164 		goto exit;
8165 	}
8166 
8167 	thermalsDict->setObject(event, value);
8168 
8169 	setProperty(kIOPMRootDomainPowerStatusKey, thermalsDict.get());
8170 
8171 exit:
8172 	// UNLOCK
8173 	if (featuresDictLock) {
8174 		IOLockUnlock(featuresDictLock);
8175 	}
8176 
8177 	if (shouldUpdate) {
8178 		if (event &&
8179 		    event->isEqualTo(kIOPMThermalLevelWarningKey)) {
8180 			setThermalState(value);
8181 		}
8182 		messageClients(kIOPMMessageSystemPowerEventOccurred, (void *)NULL);
8183 	}
8184 
8185 	return kIOReturnSuccess;
8186 }
8187 
8188 //******************************************************************************
8189 // receivePowerNotification
8190 //
8191 // The power controller is notifying us of a hardware-related power management
8192 // event that we must handle. This may be a result of an 'environment' interrupt
8193 // from the power mgt micro.
8194 //******************************************************************************
8195 
8196 IOReturn
receivePowerNotification(UInt32 msg)8197 IOPMrootDomain::receivePowerNotification( UInt32 msg )
8198 {
8199 	if (msg & kIOPMPowerButton) {
8200 		uint32_t currentPhase = pmTracer->getTracePhase();
8201 		if (currentPhase != kIOPMTracePointSystemUp && currentPhase > kIOPMTracePointSystemSleep) {
8202 			DEBUG_LOG("power button pressed during wake. phase = %u\n", currentPhase);
8203 			swd_flags |= SWD_PWR_BTN_STACKSHOT;
8204 			thread_call_enter(powerButtonDown);
8205 		} else {
8206 			DEBUG_LOG("power button pressed when system is up\n");
8207 		}
8208 	} else if (msg & kIOPMPowerButtonUp) {
8209 		if (swd_flags & SWD_PWR_BTN_STACKSHOT) {
8210 			swd_flags &= ~SWD_PWR_BTN_STACKSHOT;
8211 			thread_call_enter(powerButtonUp);
8212 		}
8213 	} else {
8214 		pmPowerStateQueue->submitPowerEvent(
8215 			kPowerEventReceivedPowerNotification, (void *)(uintptr_t) msg );
8216 	}
8217 	return kIOReturnSuccess;
8218 }
8219 
8220 void
handlePowerNotification(UInt32 msg)8221 IOPMrootDomain::handlePowerNotification( UInt32 msg )
8222 {
8223 	bool        eval_clamshell = false;
8224 	bool        eval_clamshell_alarm = false;
8225 
8226 	ASSERT_GATED();
8227 
8228 	/*
8229 	 * Local (IOPMrootDomain only) eval clamshell command
8230 	 */
8231 	if (msg & kLocalEvalClamshellCommand) {
8232 		if ((gClamshellFlags & kClamshell_WAR_47715679) && isRTCAlarmWake) {
8233 			eval_clamshell_alarm = true;
8234 
8235 			// reset isRTCAlarmWake. This evaluation should happen only once
8236 			// on RTC/Alarm wake. Any clamshell events after wake should follow
8237 			// the regular evaluation
8238 			isRTCAlarmWake = false;
8239 		} else {
8240 			eval_clamshell = true;
8241 		}
8242 	}
8243 
8244 	/*
8245 	 * Overtemp
8246 	 */
8247 	if (msg & kIOPMOverTemp) {
8248 		DLOG("Thermal overtemp message received!\n");
8249 		thermalEmergencyState = true;
8250 		privateSleepSystem(kIOPMSleepReasonThermalEmergency);
8251 	}
8252 
8253 	/*
8254 	 * Forward DW thermal notification to client, if system is not going to sleep
8255 	 */
8256 	if ((msg & kIOPMDWOverTemp) && (_systemTransitionType != kSystemTransitionSleep)) {
8257 		DLOG("DarkWake thermal limits message received!\n");
8258 		messageClients(kIOPMMessageDarkWakeThermalEmergency);
8259 	}
8260 
8261 	/*
8262 	 * Sleep Now!
8263 	 */
8264 	if (msg & kIOPMSleepNow) {
8265 		privateSleepSystem(kIOPMSleepReasonSoftware);
8266 	}
8267 
8268 	/*
8269 	 * Power Emergency
8270 	 */
8271 	if (msg & kIOPMPowerEmergency) {
8272 		DLOG("Received kIOPMPowerEmergency");
8273 		lowBatteryCondition = true;
8274 		privateSleepSystem(kIOPMSleepReasonLowPower);
8275 	}
8276 
8277 	/*
8278 	 * Clamshell OPEN
8279 	 */
8280 	if (msg & kIOPMClamshellOpened) {
8281 		DLOG("Clamshell opened\n");
8282 		// Received clamshel open message from clamshell controlling driver
8283 		// Update our internal state and tell general interest clients
8284 		clamshellClosed = false;
8285 		clamshellExists = true;
8286 
8287 		// Don't issue a hid tickle when lid is open and polled on wake
8288 		if (msg & kIOPMSetValue) {
8289 			setProperty(kIOPMRootDomainWakeTypeKey, "Lid Open");
8290 			reportUserInput();
8291 		}
8292 
8293 		// Tell PMCPU
8294 		informCPUStateChange(kInformLid, 0);
8295 
8296 		// Tell general interest clients
8297 		sendClientClamshellNotification();
8298 
8299 		bool aborting =  ((lastSleepReason == kIOPMSleepReasonClamshell)
8300 		    || (lastSleepReason == kIOPMSleepReasonIdle)
8301 		    || (lastSleepReason == kIOPMSleepReasonMaintenance));
8302 		if (aborting) {
8303 			userActivityCount++;
8304 		}
8305 		DLOG("clamshell tickled %d lastSleepReason %d\n", userActivityCount, lastSleepReason);
8306 	}
8307 
8308 	/*
8309 	 * Clamshell CLOSED
8310 	 * Send the clamshell interest notification since the lid is closing.
8311 	 */
8312 	if (msg & kIOPMClamshellClosed) {
8313 		if ((clamshellIgnoreClose || (gClamshellFlags & kClamshell_WAR_38378787)) &&
8314 		    clamshellClosed && clamshellExists) {
8315 			DLOG("Ignoring redundant Clamshell close event\n");
8316 		} else {
8317 			DLOG("Clamshell closed\n");
8318 			// Received clamshel open message from clamshell controlling driver
8319 			// Update our internal state and tell general interest clients
8320 			clamshellClosed = true;
8321 			clamshellExists = true;
8322 
8323 			// Ignore all following clamshell close events until the clamshell
8324 			// is opened or the system sleeps. When a clamshell close triggers
8325 			// a system wake, the lid driver may send us two clamshell close
8326 			// events, one for the clamshell close event itself, and a second
8327 			// close event when the driver polls the lid state on wake.
8328 			clamshellIgnoreClose = true;
8329 
8330 			// Tell PMCPU
8331 			informCPUStateChange(kInformLid, 1);
8332 
8333 			// Tell general interest clients
8334 			sendClientClamshellNotification();
8335 
8336 			// And set eval_clamshell = so we can attempt
8337 			eval_clamshell = true;
8338 		}
8339 	}
8340 
8341 	/*
8342 	 * Set Desktop mode (sent from graphics)
8343 	 *
8344 	 *  -> reevaluate lid state
8345 	 */
8346 	if (msg & kIOPMSetDesktopMode) {
8347 		desktopMode = (0 != (msg & kIOPMSetValue));
8348 		msg &= ~(kIOPMSetDesktopMode | kIOPMSetValue);
8349 		DLOG("Desktop mode %d\n", desktopMode);
8350 
8351 		sendClientClamshellNotification();
8352 
8353 		// Re-evaluate the lid state
8354 		eval_clamshell = true;
8355 	}
8356 
8357 	/*
8358 	 * AC Adaptor connected
8359 	 *
8360 	 *  -> reevaluate lid state
8361 	 */
8362 	if (msg & kIOPMSetACAdaptorConnected) {
8363 		acAdaptorConnected = (0 != (msg & kIOPMSetValue));
8364 		msg &= ~(kIOPMSetACAdaptorConnected | kIOPMSetValue);
8365 
8366 		// Tell CPU PM
8367 		informCPUStateChange(kInformAC, !acAdaptorConnected);
8368 
8369 		// Tell BSD if AC is connected
8370 		//      0 == external power source; 1 == on battery
8371 		post_sys_powersource(acAdaptorConnected ? 0:1);
8372 
8373 		sendClientClamshellNotification();
8374 
8375 		IOUserServer::powerSourceChanged(acAdaptorConnected);
8376 
8377 		// Re-evaluate the lid state
8378 		eval_clamshell = true;
8379 
8380 		// Lack of AC may have latched a display wrangler tickle.
8381 		// This mirrors the hardware's USB wake event latch, where a latched
8382 		// USB wake event followed by an AC attach will trigger a full wake.
8383 		latchDisplayWranglerTickle( false );
8384 
8385 #if HIBERNATION
8386 		// AC presence will reset the standy timer delay adjustment.
8387 		_standbyTimerResetSeconds = 0;
8388 #endif
8389 		if (!userIsActive) {
8390 			// Reset userActivityTime when power supply is changed(rdr 13789330)
8391 			clock_get_uptime(&userActivityTime);
8392 		}
8393 	}
8394 
8395 	/*
8396 	 * Enable Clamshell (external display disappear)
8397 	 *
8398 	 *  -> reevaluate lid state
8399 	 */
8400 	if (msg & kIOPMEnableClamshell) {
8401 		DLOG("Clamshell enabled\n");
8402 
8403 		// Re-evaluate the lid state
8404 		// System should sleep on external display disappearance
8405 		// in lid closed operation.
8406 		if (true == clamshellDisabled) {
8407 			eval_clamshell = true;
8408 
8409 #if DARK_TO_FULL_EVALUATE_CLAMSHELL_DELAY
8410 			// Also clear kClamshellSleepDisableInternal when graphics enables
8411 			// the clamshell during a full wake. When graphics is behaving as
8412 			// expected, this will allow clamshell close to be honored earlier
8413 			// rather than waiting for the delayed evaluation.
8414 			if ((clamshellSleepDisableMask & kClamshellSleepDisableInternal) &&
8415 			    (CAP_PENDING(kIOPMSystemCapabilityGraphics) ||
8416 			    CAP_CURRENT(kIOPMSystemCapabilityGraphics))) {
8417 				setClamShellSleepDisable(false, kClamshellSleepDisableInternal);
8418 
8419 				// Cancel the TC to avoid an extra kLocalEvalClamshellCommand
8420 				// when timer expires which is harmless but useless.
8421 				thread_call_cancel(fullWakeThreadCall);
8422 			}
8423 #endif
8424 		}
8425 
8426 		clamshellDisabled = false;
8427 		sendClientClamshellNotification();
8428 	}
8429 
8430 	/*
8431 	 * Disable Clamshell (external display appeared)
8432 	 * We don't bother re-evaluating clamshell state. If the system is awake,
8433 	 * the lid is probably open.
8434 	 */
8435 	if (msg & kIOPMDisableClamshell) {
8436 		DLOG("Clamshell disabled\n");
8437 		clamshellDisabled = true;
8438 		sendClientClamshellNotification();
8439 	}
8440 
8441 	/*
8442 	 * Evaluate clamshell and SLEEP if appropriate
8443 	 */
8444 	if (eval_clamshell_alarm && clamshellClosed) {
8445 		if (shouldSleepOnRTCAlarmWake()) {
8446 			privateSleepSystem(kIOPMSleepReasonClamshell);
8447 		}
8448 	} else if (eval_clamshell && clamshellClosed) {
8449 		if (shouldSleepOnClamshellClosed()) {
8450 			privateSleepSystem(kIOPMSleepReasonClamshell);
8451 		} else {
8452 			evaluatePolicy( kStimulusDarkWakeEvaluate );
8453 		}
8454 	}
8455 
8456 	if (msg & kIOPMProModeEngaged) {
8457 		int newState = 1;
8458 		DLOG("ProModeEngaged\n");
8459 		messageClient(kIOPMMessageProModeStateChange, systemCapabilityNotifier.get(), &newState, sizeof(newState));
8460 	}
8461 
8462 	if (msg & kIOPMProModeDisengaged) {
8463 		int newState = 0;
8464 		DLOG("ProModeDisengaged\n");
8465 		messageClient(kIOPMMessageProModeStateChange, systemCapabilityNotifier.get(), &newState, sizeof(newState));
8466 	}
8467 }
8468 
8469 //******************************************************************************
8470 // evaluatePolicy
8471 //
8472 // Evaluate root-domain policy in response to external changes.
8473 //******************************************************************************
8474 
8475 void
evaluatePolicy(int stimulus,uint32_t arg)8476 IOPMrootDomain::evaluatePolicy( int stimulus, uint32_t arg )
8477 {
8478 	union {
8479 		struct {
8480 			int idleSleepEnabled    : 1;
8481 			int idleSleepDisabled   : 1;
8482 			int displaySleep        : 1;
8483 			int sleepDelayChanged   : 1;
8484 			int evaluateDarkWake    : 1;
8485 			int adjustPowerState    : 1;
8486 			int userBecameInactive  : 1;
8487 			int displaySleepEntry   : 1;
8488 		} bit;
8489 		uint32_t u32;
8490 	} flags;
8491 
8492 
8493 	ASSERT_GATED();
8494 	flags.u32 = 0;
8495 
8496 	switch (stimulus) {
8497 	case kStimulusDisplayWranglerSleep:
8498 		DLOG("evaluatePolicy( %d, 0x%x )\n", stimulus, arg);
8499 		if (!wranglerPowerOff) {
8500 			// wrangler is in sleep state or lower
8501 			flags.bit.displaySleep = true;
8502 		}
8503 		if (!wranglerAsleep) {
8504 			// transition from wrangler wake to wrangler sleep
8505 			flags.bit.displaySleepEntry = true;
8506 			wranglerAsleep = true;
8507 		}
8508 		break;
8509 
8510 	case kStimulusDisplayWranglerWake:
8511 		DLOG("evaluatePolicy( %d, 0x%x )\n", stimulus, arg);
8512 		displayIdleForDemandSleep = false;
8513 		wranglerPowerOff = false;
8514 		wranglerAsleep = false;
8515 		break;
8516 
8517 	case kStimulusEnterUserActiveState:
8518 		DLOG("evaluatePolicy( %d, 0x%x )\n", stimulus, arg);
8519 		if (_preventUserActive) {
8520 			DLOG("user active dropped\n");
8521 			break;
8522 		}
8523 		if (!userIsActive) {
8524 			userIsActive = true;
8525 			userWasActive = true;
8526 			clock_get_uptime(&gUserActiveAbsTime);
8527 
8528 			// Stay awake after dropping demand for display power on
8529 			if (kFullWakeReasonDisplayOn == fullWakeReason) {
8530 				fullWakeReason = fFullWakeReasonDisplayOnAndLocalUser;
8531 				DLOG("User activity while in notification wake\n");
8532 				changePowerStateWithOverrideTo( getRUN_STATE(), 0);
8533 			}
8534 
8535 			kdebugTrace(kPMLogUserActiveState, 0, 1, 0);
8536 			setProperty(gIOPMUserIsActiveKey.get(), kOSBooleanTrue);
8537 			messageClients(kIOPMMessageUserIsActiveChanged);
8538 		}
8539 		flags.bit.idleSleepDisabled = true;
8540 		break;
8541 
8542 	case kStimulusLeaveUserActiveState:
8543 		DLOG("evaluatePolicy( %d, 0x%x )\n", stimulus, arg);
8544 		if (userIsActive) {
8545 			clock_get_uptime(&gUserInactiveAbsTime);
8546 			userIsActive = false;
8547 			clock_get_uptime(&userBecameInactiveTime);
8548 			flags.bit.userBecameInactive = true;
8549 
8550 			kdebugTrace(kPMLogUserActiveState, 0, 0, 0);
8551 			setProperty(gIOPMUserIsActiveKey.get(), kOSBooleanFalse);
8552 			messageClients(kIOPMMessageUserIsActiveChanged);
8553 		}
8554 		break;
8555 
8556 	case kStimulusAggressivenessChanged:
8557 	{
8558 		DMSG("evaluatePolicy( %d, 0x%x )\n", stimulus, arg);
8559 		unsigned long   aggressiveValue;
8560 		uint32_t        minutesToIdleSleep  = 0;
8561 		uint32_t        minutesToDisplayDim = 0;
8562 		uint32_t        minutesDelta        = 0;
8563 
8564 		// Fetch latest display and system sleep slider values.
8565 		aggressiveValue = 0;
8566 		getAggressiveness(kPMMinutesToSleep, &aggressiveValue);
8567 		minutesToIdleSleep = (uint32_t) aggressiveValue;
8568 
8569 		aggressiveValue = 0;
8570 		getAggressiveness(kPMMinutesToDim, &aggressiveValue);
8571 		minutesToDisplayDim = (uint32_t) aggressiveValue;
8572 		DLOG("aggressiveness changed: system %u->%u, display %u\n",
8573 		    sleepSlider, minutesToIdleSleep, minutesToDisplayDim);
8574 
8575 		DLOG("idle time -> %d ms (ena %d)\n",
8576 		    idleMilliSeconds, (minutesToIdleSleep != 0));
8577 
8578 		// How long to wait before sleeping the system once
8579 		// the displays turns off is indicated by 'extraSleepDelay'.
8580 
8581 		if (minutesToIdleSleep > minutesToDisplayDim) {
8582 			minutesDelta = minutesToIdleSleep - minutesToDisplayDim;
8583 		} else if (minutesToIdleSleep == minutesToDisplayDim) {
8584 			minutesDelta = 1;
8585 		}
8586 
8587 		if ((!idleSleepEnabled) && (minutesToIdleSleep != 0)) {
8588 			idleSleepEnabled = flags.bit.idleSleepEnabled = true;
8589 		}
8590 
8591 		if ((idleSleepEnabled) && (minutesToIdleSleep == 0)) {
8592 			flags.bit.idleSleepDisabled = true;
8593 			idleSleepEnabled = false;
8594 		}
8595 #if !defined(XNU_TARGET_OS_OSX)
8596 		if (0x7fffffff == minutesToIdleSleep) {
8597 			minutesToIdleSleep = idleMilliSeconds / 1000;
8598 		}
8599 #endif /* !defined(XNU_TARGET_OS_OSX) */
8600 
8601 		if (((minutesDelta != extraSleepDelay) ||
8602 		    (userActivityTime != userActivityTime_prev)) &&
8603 		    !flags.bit.idleSleepEnabled && !flags.bit.idleSleepDisabled) {
8604 			flags.bit.sleepDelayChanged = true;
8605 		}
8606 
8607 		if (systemDarkWake && !darkWakeToSleepASAP &&
8608 		    (flags.bit.idleSleepEnabled || flags.bit.idleSleepDisabled)) {
8609 			// Reconsider decision to remain in dark wake
8610 			flags.bit.evaluateDarkWake = true;
8611 		}
8612 
8613 		sleepSlider = minutesToIdleSleep;
8614 		extraSleepDelay = minutesDelta;
8615 		userActivityTime_prev = userActivityTime;
8616 	}   break;
8617 
8618 	case kStimulusDemandSystemSleep:
8619 		DLOG("evaluatePolicy( %d, 0x%x )\n", stimulus, arg);
8620 		displayIdleForDemandSleep = true;
8621 		if (wrangler && wranglerIdleSettings) {
8622 			// Request wrangler idle only when demand sleep is triggered
8623 			// from full wake.
8624 			if (CAP_CURRENT(kIOPMSystemCapabilityGraphics)) {
8625 				wrangler->setProperties(wranglerIdleSettings.get());
8626 				DLOG("Requested wrangler idle\n");
8627 			}
8628 		}
8629 		// arg = sleepReason
8630 		changePowerStateWithOverrideTo( SLEEP_STATE, arg );
8631 		break;
8632 
8633 	case kStimulusAllowSystemSleepChanged:
8634 		DLOG("evaluatePolicy( %d, 0x%x )\n", stimulus, arg);
8635 		flags.bit.adjustPowerState = true;
8636 		break;
8637 
8638 	case kStimulusDarkWakeActivityTickle:
8639 		DLOG("evaluatePolicy( %d, 0x%x )\n", stimulus, arg);
8640 		// arg == true implies real and not self generated wrangler tickle.
8641 		// Update wake type on PM work loop instead of the tickle thread to
8642 		// eliminate the possibility of an early tickle clobbering the wake
8643 		// type set by the platform driver.
8644 		if (arg == true) {
8645 			setProperty(kIOPMRootDomainWakeTypeKey, kIOPMRootDomainWakeTypeHIDActivity);
8646 		}
8647 
8648 		if (!darkWakeExit) {
8649 			if (latchDisplayWranglerTickle(true)) {
8650 				DLOG("latched tickle\n");
8651 				break;
8652 			}
8653 
8654 			darkWakeExit = true;
8655 			DLOG("Requesting full wake due to dark wake activity tickle\n");
8656 			requestFullWake( kFullWakeReasonLocalUser );
8657 		}
8658 		break;
8659 
8660 	case kStimulusDarkWakeEntry:
8661 	case kStimulusDarkWakeReentry:
8662 		DLOG("evaluatePolicy( %d, 0x%x )\n", stimulus, arg);
8663 		// Any system transitions since the last dark wake transition
8664 		// will invalid the stimulus.
8665 
8666 		if (arg == _systemStateGeneration) {
8667 			DLOG("dark wake entry\n");
8668 			systemDarkWake = true;
8669 
8670 			// Keep wranglerPowerOff an invariant when wrangler is absent
8671 			if (wrangler) {
8672 				wranglerPowerOff = true;
8673 			}
8674 
8675 			if (kStimulusDarkWakeEntry == stimulus) {
8676 				clock_get_uptime(&userBecameInactiveTime);
8677 				flags.bit.evaluateDarkWake = true;
8678 				if (activitySinceSleep()) {
8679 					DLOG("User activity recorded while going to darkwake\n");
8680 					reportUserInput();
8681 				}
8682 			}
8683 
8684 			// Always accelerate disk spindown while in dark wake,
8685 			// even if system does not support/allow sleep.
8686 
8687 			cancelIdleSleepTimer();
8688 			setQuickSpinDownTimeout();
8689 		}
8690 		break;
8691 
8692 	case kStimulusDarkWakeEvaluate:
8693 		DMSG("evaluatePolicy( %d, 0x%x )\n", stimulus, arg);
8694 		if (systemDarkWake) {
8695 			flags.bit.evaluateDarkWake = true;
8696 		}
8697 		break;
8698 
8699 	case kStimulusNoIdleSleepPreventers:
8700 		DMSG("evaluatePolicy( %d, 0x%x )\n", stimulus, arg);
8701 		flags.bit.adjustPowerState = true;
8702 		break;
8703 	} /* switch(stimulus) */
8704 
8705 	if (flags.bit.evaluateDarkWake && (kFullWakeReasonNone == fullWakeReason)) {
8706 		DLOG("DarkWake: sleepASAP %d, clamshell closed %d, disabled %d/%x, desktopMode %d, ac %d\n",
8707 		    darkWakeToSleepASAP, clamshellClosed, clamshellDisabled, clamshellSleepDisableMask, desktopMode, acAdaptorConnected);
8708 		if (darkWakeToSleepASAP ||
8709 		    (clamshellClosed && !(desktopMode && acAdaptorConnected))) {
8710 			uint32_t newSleepReason;
8711 
8712 			if (CAP_HIGHEST(kIOPMSystemCapabilityGraphics)) {
8713 				// System was previously in full wake. Sleep reason from
8714 				// full to dark already recorded in fullToDarkReason.
8715 
8716 				if (lowBatteryCondition) {
8717 					newSleepReason = kIOPMSleepReasonLowPower;
8718 				} else if (thermalEmergencyState) {
8719 					newSleepReason = kIOPMSleepReasonThermalEmergency;
8720 				} else {
8721 					newSleepReason = fullToDarkReason;
8722 				}
8723 			} else {
8724 				// In dark wake from system sleep.
8725 
8726 				if (darkWakeSleepService) {
8727 					newSleepReason = kIOPMSleepReasonSleepServiceExit;
8728 				} else {
8729 					newSleepReason = kIOPMSleepReasonMaintenance;
8730 				}
8731 			}
8732 
8733 			if (checkSystemCanSleep(newSleepReason)) {
8734 				privateSleepSystem(newSleepReason);
8735 			}
8736 		} else { // non-maintenance (network) dark wake
8737 			if (checkSystemCanSleep(kIOPMSleepReasonIdle)) {
8738 				// Release power clamp, and wait for children idle.
8739 				adjustPowerState(true);
8740 			} else {
8741 				changePowerStateWithTagToPriv(getRUN_STATE(), kCPSReasonDarkWakeCannotSleep);
8742 			}
8743 		}
8744 	}
8745 
8746 	if (systemDarkWake) {
8747 		// The rest are irrelevant while system is in dark wake.
8748 		flags.u32 = 0;
8749 	}
8750 
8751 	if ((flags.bit.displaySleepEntry) &&
8752 	    (kFullWakeReasonDisplayOn == fullWakeReason)) {
8753 		// kIOPMSleepReasonNotificationWakeExit
8754 		DLOG("Display sleep while in notification wake\n");
8755 		changePowerStateWithOverrideTo(SLEEP_STATE, kIOPMSleepReasonNotificationWakeExit);
8756 	}
8757 
8758 	if (flags.bit.userBecameInactive || flags.bit.sleepDelayChanged) {
8759 		bool cancelQuickSpindown = false;
8760 
8761 		if (flags.bit.sleepDelayChanged) {
8762 			// Cancel existing idle sleep timer and quick disk spindown.
8763 			// New settings will be applied by the idleSleepEnabled flag
8764 			// handler below if idle sleep is enabled.
8765 
8766 			DLOG("extra sleep timer changed\n");
8767 			cancelIdleSleepTimer();
8768 			cancelQuickSpindown = true;
8769 		} else {
8770 			DLOG("user inactive\n");
8771 		}
8772 
8773 		if (!userIsActive && idleSleepEnabled) {
8774 			startIdleSleepTimer(getTimeToIdleSleep());
8775 		}
8776 
8777 		if (cancelQuickSpindown) {
8778 			restoreUserSpinDownTimeout();
8779 		}
8780 	}
8781 
8782 	if (flags.bit.idleSleepEnabled) {
8783 		DLOG("idle sleep timer enabled\n");
8784 		if (!wrangler) {
8785 #if defined(XNU_TARGET_OS_OSX) && !DISPLAY_WRANGLER_PRESENT
8786 			startIdleSleepTimer(getTimeToIdleSleep());
8787 #else
8788 			changePowerStateWithTagToPriv(getRUN_STATE(), kCPSReasonIdleSleepEnabled);
8789 			startIdleSleepTimer( idleMilliSeconds );
8790 #endif
8791 		} else {
8792 			// Start idle timer if prefs now allow system sleep
8793 			// and user is already inactive. Disk spindown is
8794 			// accelerated upon timer expiration.
8795 
8796 			if (!userIsActive) {
8797 				startIdleSleepTimer(getTimeToIdleSleep());
8798 			}
8799 		}
8800 	}
8801 
8802 	if (flags.bit.idleSleepDisabled) {
8803 		DLOG("idle sleep timer disabled\n");
8804 		cancelIdleSleepTimer();
8805 		restoreUserSpinDownTimeout();
8806 		adjustPowerState();
8807 	}
8808 
8809 	if (flags.bit.adjustPowerState) {
8810 		bool sleepASAP = false;
8811 
8812 		if (!systemBooting && (0 == idleSleepPreventersCount())) {
8813 			if (!wrangler) {
8814 				changePowerStateWithTagToPriv(getRUN_STATE(), kCPSReasonEvaluatePolicy);
8815 				if (idleSleepEnabled) {
8816 #if defined(XNU_TARGET_OS_OSX) && !DISPLAY_WRANGLER_PRESENT
8817 					if (!extraSleepDelay && !idleSleepTimerPending) {
8818 						sleepASAP = true;
8819 					}
8820 #else
8821 					// stay awake for at least idleMilliSeconds
8822 					startIdleSleepTimer(idleMilliSeconds);
8823 #endif
8824 				}
8825 			} else if (!extraSleepDelay && !idleSleepTimerPending && !systemDarkWake) {
8826 				sleepASAP = true;
8827 			}
8828 		}
8829 
8830 		adjustPowerState(sleepASAP);
8831 	}
8832 }
8833 
8834 //******************************************************************************
8835 
8836 unsigned int
idleSleepPreventersCount()8837 IOPMrootDomain::idleSleepPreventersCount()
8838 {
8839 	if (_aotMode) {
8840 		unsigned int count __block;
8841 		count = 0;
8842 		preventIdleSleepList->iterateObjects(^bool (OSObject * obj)
8843 		{
8844 			count += (NULL == obj->metaCast("AppleARMBacklight"));
8845 			return false;
8846 		});
8847 		return count;
8848 	}
8849 
8850 	return preventIdleSleepList->getCount();
8851 }
8852 
8853 
8854 //******************************************************************************
8855 // requestFullWake
8856 //
8857 // Request transition from dark wake to full wake
8858 //******************************************************************************
8859 
8860 void
requestFullWake(FullWakeReason reason)8861 IOPMrootDomain::requestFullWake( FullWakeReason reason )
8862 {
8863 	uint32_t        options = 0;
8864 	IOService *     pciRoot = NULL;
8865 	bool            promotion = false;
8866 
8867 	// System must be in dark wake and a valid reason for entering full wake
8868 	if ((kFullWakeReasonNone == reason) ||
8869 	    (kFullWakeReasonNone != fullWakeReason) ||
8870 	    (CAP_CURRENT(kIOPMSystemCapabilityGraphics))) {
8871 		return;
8872 	}
8873 
8874 	// Will clear reason upon exit from full wake
8875 	fullWakeReason = reason;
8876 
8877 	_desiredCapability |= (kIOPMSystemCapabilityGraphics |
8878 	    kIOPMSystemCapabilityAudio);
8879 
8880 	if ((kSystemTransitionWake == _systemTransitionType) &&
8881 	    !(_pendingCapability & kIOPMSystemCapabilityGraphics) &&
8882 	    !darkWakePowerClamped) {
8883 		// Promote to full wake while waking up to dark wake due to tickle.
8884 		// PM will hold off notifying the graphics subsystem about system wake
8885 		// as late as possible, so if a HID tickle does arrive, graphics can
8886 		// power up from this same wake transition. Otherwise, the latency to
8887 		// power up graphics on the following transition can be huge on certain
8888 		// systems. However, once any power clamping has taken effect, it is
8889 		// too late to promote the current dark wake transition to a full wake.
8890 		_pendingCapability |= (kIOPMSystemCapabilityGraphics |
8891 		    kIOPMSystemCapabilityAudio);
8892 
8893 		// Tell the PCI parent of audio and graphics drivers to stop
8894 		// delaying the child notifications. Same for root domain.
8895 		pciRoot = pciHostBridgeDriver.get();
8896 		willEnterFullWake();
8897 		promotion = true;
8898 	}
8899 
8900 	// Unsafe to cancel once graphics was powered.
8901 	// If system woke from dark wake, the return to sleep can
8902 	// be cancelled. "awake -> dark -> sleep" transition
8903 	// can be cancelled also, during the "dark -> sleep" phase
8904 	// *prior* to driver power down.
8905 	if (!CAP_HIGHEST(kIOPMSystemCapabilityGraphics) ||
8906 	    _pendingCapability == 0) {
8907 		options |= kIOPMSyncCancelPowerDown;
8908 	}
8909 
8910 	synchronizePowerTree(options, pciRoot);
8911 
8912 	if (kFullWakeReasonLocalUser == fullWakeReason) {
8913 		// IOGraphics doesn't light the display even though graphics is
8914 		// enabled in kIOMessageSystemCapabilityChange message(radar 9502104)
8915 		// So, do an explicit activity tickle
8916 		if (wrangler) {
8917 			wrangler->activityTickle(0, 0);
8918 		}
8919 	}
8920 
8921 	// Log a timestamp for the initial full wake request.
8922 	// System may not always honor this full wake request.
8923 	if (!CAP_HIGHEST(kIOPMSystemCapabilityGraphics)) {
8924 		AbsoluteTime    now;
8925 		uint64_t        nsec;
8926 
8927 		clock_get_uptime(&now);
8928 		SUB_ABSOLUTETIME(&now, &gIOLastWakeAbsTime);
8929 		absolutetime_to_nanoseconds(now, &nsec);
8930 		MSG("full wake %s (reason %u) %u ms\n",
8931 		    promotion ? "promotion" : "request",
8932 		    fullWakeReason, ((int)((nsec) / NSEC_PER_MSEC)));
8933 	}
8934 }
8935 
8936 //******************************************************************************
8937 // willEnterFullWake
8938 //
8939 // System will enter full wake from sleep, from dark wake, or from dark
8940 // wake promotion. This function aggregate things that are in common to
8941 // all three full wake transitions.
8942 //
8943 // Assumptions: fullWakeReason was updated
8944 //******************************************************************************
8945 
8946 void
willEnterFullWake(void)8947 IOPMrootDomain::willEnterFullWake( void )
8948 {
8949 	hibernateRetry = false;
8950 	sleepToStandby = false;
8951 	standbyNixed   = false;
8952 	resetTimers    = false;
8953 	sleepTimerMaintenance = false;
8954 
8955 	assert(!CAP_CURRENT(kIOPMSystemCapabilityGraphics));
8956 
8957 	_systemMessageClientMask = kSystemMessageClientPowerd |
8958 	    kSystemMessageClientLegacyApp;
8959 
8960 	if ((_highestCapability & kIOPMSystemCapabilityGraphics) == 0) {
8961 		// First time to attain full wake capability since the last wake
8962 		_systemMessageClientMask |= kSystemMessageClientKernel;
8963 
8964 		// Set kIOPMUserTriggeredFullWakeKey before full wake for IOGraphics
8965 		setProperty(gIOPMUserTriggeredFullWakeKey.get(),
8966 		    (kFullWakeReasonLocalUser == fullWakeReason) ?
8967 		    kOSBooleanTrue : kOSBooleanFalse);
8968 	}
8969 #if HIBERNATION
8970 	IOHibernateSetWakeCapabilities(_pendingCapability);
8971 #endif
8972 
8973 	IOService::setAdvisoryTickleEnable( true );
8974 	tellClients(kIOMessageSystemWillPowerOn);
8975 	preventTransitionToUserActive(false);
8976 }
8977 
8978 //******************************************************************************
8979 // fullWakeDelayedWork
8980 //
8981 // System has already entered full wake. Invoked by a delayed thread call.
8982 //******************************************************************************
8983 
8984 void
fullWakeDelayedWork(void)8985 IOPMrootDomain::fullWakeDelayedWork( void )
8986 {
8987 #if DARK_TO_FULL_EVALUATE_CLAMSHELL_DELAY
8988 	if (!gIOPMWorkLoop->inGate()) {
8989 		gIOPMWorkLoop->runAction(
8990 			OSMemberFunctionCast(IOWorkLoop::Action, this,
8991 			&IOPMrootDomain::fullWakeDelayedWork), this);
8992 		return;
8993 	}
8994 
8995 	DLOG("fullWakeDelayedWork cap cur %x pend %x high %x, clamshell disable %x/%x\n",
8996 	    _currentCapability, _pendingCapability, _highestCapability,
8997 	    clamshellDisabled, clamshellSleepDisableMask);
8998 
8999 	if (clamshellExists &&
9000 	    CAP_CURRENT(kIOPMSystemCapabilityGraphics) &&
9001 	    !CAP_CHANGE(kIOPMSystemCapabilityGraphics)) {
9002 		if (clamshellSleepDisableMask & kClamshellSleepDisableInternal) {
9003 			setClamShellSleepDisable(false, kClamshellSleepDisableInternal);
9004 		} else {
9005 			// Not the initial full wake after waking from sleep.
9006 			// Evaluate the clamshell for rdar://problem/9157444.
9007 			receivePowerNotification(kLocalEvalClamshellCommand);
9008 		}
9009 	}
9010 #endif
9011 }
9012 
9013 //******************************************************************************
9014 // evaluateAssertions
9015 //
9016 //******************************************************************************
9017 
9018 // Bitmask of all kernel assertions that prevent system idle sleep.
9019 // kIOPMDriverAssertionReservedBit7 is reserved for IOMediaBSDClient.
9020 #define NO_IDLE_SLEEP_ASSERTIONS_MASK \
9021 	(kIOPMDriverAssertionReservedBit7 | \
9022 	 kIOPMDriverAssertionPreventSystemIdleSleepBit)
9023 
9024 void
evaluateAssertions(IOPMDriverAssertionType newAssertions,IOPMDriverAssertionType oldAssertions)9025 IOPMrootDomain::evaluateAssertions(IOPMDriverAssertionType newAssertions, IOPMDriverAssertionType oldAssertions)
9026 {
9027 	IOPMDriverAssertionType changedBits = newAssertions ^ oldAssertions;
9028 
9029 	messageClients(kIOPMMessageDriverAssertionsChanged);
9030 
9031 	if (changedBits & kIOPMDriverAssertionPreventDisplaySleepBit) {
9032 		if (wrangler) {
9033 			bool value = (newAssertions & kIOPMDriverAssertionPreventDisplaySleepBit) ? true : false;
9034 
9035 			DLOG("wrangler->setIgnoreIdleTimer\(%d)\n", value);
9036 			wrangler->setIgnoreIdleTimer( value );
9037 		}
9038 	}
9039 
9040 	if (changedBits & kIOPMDriverAssertionCPUBit) {
9041 		if (_aotNow) {
9042 			IOLog("CPU assertions %d\n", (0 != (kIOPMDriverAssertionCPUBit & newAssertions)));
9043 		}
9044 		evaluatePolicy(_aotNow ? kStimulusNoIdleSleepPreventers : kStimulusDarkWakeEvaluate);
9045 		if (!assertOnWakeSecs && gIOLastWakeAbsTime) {
9046 			AbsoluteTime    now;
9047 			clock_usec_t    microsecs;
9048 			clock_get_uptime(&now);
9049 			SUB_ABSOLUTETIME(&now, &gIOLastWakeAbsTime);
9050 			absolutetime_to_microtime(now, &assertOnWakeSecs, &microsecs);
9051 			if (assertOnWakeReport) {
9052 				HISTREPORT_TALLYVALUE(assertOnWakeReport, (int64_t)assertOnWakeSecs);
9053 				DLOG("Updated assertOnWake %lu\n", (unsigned long)assertOnWakeSecs);
9054 			}
9055 		}
9056 	}
9057 
9058 	if (changedBits & NO_IDLE_SLEEP_ASSERTIONS_MASK) {
9059 		if ((newAssertions & NO_IDLE_SLEEP_ASSERTIONS_MASK) != 0) {
9060 			if ((oldAssertions & NO_IDLE_SLEEP_ASSERTIONS_MASK) == 0) {
9061 				DLOG("PreventIdleSleep driver assertion raised\n");
9062 				bool ok = updatePreventIdleSleepList(this, true);
9063 				if (ok && (changedBits & kIOPMDriverAssertionPreventSystemIdleSleepBit)) {
9064 					// Cancel idle sleep if there is one in progress
9065 					cancelIdlePowerDown(this);
9066 				}
9067 			}
9068 		} else {
9069 			DLOG("PreventIdleSleep driver assertion dropped\n");
9070 			updatePreventIdleSleepList(this, false);
9071 		}
9072 	}
9073 }
9074 
9075 // MARK: -
9076 // MARK: Statistics
9077 
9078 //******************************************************************************
9079 // pmStats
9080 //
9081 //******************************************************************************
9082 
9083 void
pmStatsRecordEvent(int eventIndex,AbsoluteTime timestamp)9084 IOPMrootDomain::pmStatsRecordEvent(
9085 	int                 eventIndex,
9086 	AbsoluteTime        timestamp)
9087 {
9088 	bool        starting = eventIndex & kIOPMStatsEventStartFlag ? true:false;
9089 	bool        stopping = eventIndex & kIOPMStatsEventStopFlag ? true:false;
9090 	uint64_t    delta;
9091 	uint64_t    nsec;
9092 	OSSharedPtr<OSData> publishPMStats;
9093 
9094 	eventIndex &= ~(kIOPMStatsEventStartFlag | kIOPMStatsEventStopFlag);
9095 
9096 	absolutetime_to_nanoseconds(timestamp, &nsec);
9097 
9098 	switch (eventIndex) {
9099 	case kIOPMStatsHibernateImageWrite:
9100 		if (starting) {
9101 			gPMStats.hibWrite.start = nsec;
9102 		} else if (stopping) {
9103 			gPMStats.hibWrite.stop = nsec;
9104 		}
9105 
9106 		if (stopping) {
9107 			delta = gPMStats.hibWrite.stop - gPMStats.hibWrite.start;
9108 			IOLog("PMStats: Hibernate write took %qd ms\n", delta / NSEC_PER_MSEC);
9109 		}
9110 		break;
9111 	case kIOPMStatsHibernateImageRead:
9112 		if (starting) {
9113 			gPMStats.hibRead.start = nsec;
9114 		} else if (stopping) {
9115 			gPMStats.hibRead.stop = nsec;
9116 		}
9117 
9118 		if (stopping) {
9119 			delta = gPMStats.hibRead.stop - gPMStats.hibRead.start;
9120 			IOLog("PMStats: Hibernate read took %qd ms\n", delta / NSEC_PER_MSEC);
9121 
9122 			publishPMStats = OSData::withValue(gPMStats);
9123 			setProperty(kIOPMSleepStatisticsKey, publishPMStats.get());
9124 			bzero(&gPMStats, sizeof(gPMStats));
9125 		}
9126 		break;
9127 	}
9128 }
9129 
9130 /*
9131  * Appends a record of the application response to
9132  * IOPMrootDomain::pmStatsAppResponses
9133  */
9134 void
pmStatsRecordApplicationResponse(const OSSymbol * response,const char * name,int messageType,uint32_t delay_ms,uint64_t id,OSObject * object,IOPMPowerStateIndex powerState,bool async)9135 IOPMrootDomain::pmStatsRecordApplicationResponse(
9136 	const OSSymbol      *response,
9137 	const char          *name,
9138 	int                 messageType,
9139 	uint32_t            delay_ms,
9140 	uint64_t            id,
9141 	OSObject            *object,
9142 	IOPMPowerStateIndex powerState,
9143 	bool                async)
9144 {
9145 	OSSharedPtr<OSDictionary>    responseDescription;
9146 	OSSharedPtr<OSNumber>        delayNum;
9147 	OSSharedPtr<OSNumber>        powerCaps;
9148 	OSSharedPtr<OSNumber>        pidNum;
9149 	OSSharedPtr<OSNumber>        msgNum;
9150 	OSSharedPtr<const OSSymbol>  appname;
9151 	OSSharedPtr<const OSSymbol>  sleep;
9152 	OSSharedPtr<const OSSymbol>  wake;
9153 	IOPMServiceInterestNotifier *notify = NULL;
9154 
9155 	if (object && (notify = OSDynamicCast(IOPMServiceInterestNotifier, object))) {
9156 		if (response->isEqualTo(gIOPMStatsResponseTimedOut.get())) {
9157 			notify->ackTimeoutCnt++;
9158 		} else {
9159 			notify->ackTimeoutCnt = 0;
9160 		}
9161 	}
9162 
9163 	if (response->isEqualTo(gIOPMStatsResponsePrompt.get()) ||
9164 	    (_systemTransitionType == kSystemTransitionNone) || (_systemTransitionType == kSystemTransitionNewCapClient)) {
9165 		return;
9166 	}
9167 
9168 
9169 	if (response->isEqualTo(gIOPMStatsDriverPSChangeSlow.get())) {
9170 		kdebugTrace(kPMLogDrvPSChangeDelay, id, messageType, delay_ms);
9171 	} else if (notify) {
9172 		// User space app or kernel capability client
9173 		if (id) {
9174 			kdebugTrace(kPMLogAppResponseDelay, id, notify->msgType, delay_ms);
9175 		} else {
9176 			kdebugTrace(kPMLogDrvResponseDelay, notify->uuid0, messageType, delay_ms);
9177 		}
9178 		notify->msgType = 0;
9179 	}
9180 
9181 	responseDescription = OSDictionary::withCapacity(5);
9182 	if (responseDescription) {
9183 		if (response) {
9184 			responseDescription->setObject(_statsResponseTypeKey.get(), response);
9185 		}
9186 
9187 		msgNum = OSNumber::withNumber(messageType, 32);
9188 		if (msgNum) {
9189 			responseDescription->setObject(_statsMessageTypeKey.get(), msgNum.get());
9190 		}
9191 
9192 		if (!name && notify && notify->identifier) {
9193 			name = notify->identifier->getCStringNoCopy();
9194 		}
9195 
9196 		if (name && (strlen(name) > 0)) {
9197 			appname = OSSymbol::withCString(name);
9198 			if (appname) {
9199 				responseDescription->setObject(_statsNameKey.get(), appname.get());
9200 			}
9201 		}
9202 
9203 		if (!id && notify) {
9204 			id = notify->uuid0;
9205 		}
9206 		if (id != 0) {
9207 			pidNum = OSNumber::withNumber(id, 64);
9208 			if (pidNum) {
9209 				responseDescription->setObject(_statsPIDKey.get(), pidNum.get());
9210 			}
9211 		}
9212 
9213 		delayNum = OSNumber::withNumber(delay_ms, 32);
9214 		if (delayNum) {
9215 			responseDescription->setObject(_statsTimeMSKey.get(), delayNum.get());
9216 		}
9217 
9218 		if (response->isEqualTo(gIOPMStatsDriverPSChangeSlow.get())) {
9219 			powerCaps = OSNumber::withNumber(powerState, 32);
9220 
9221 #if !defined(__i386__) && !defined(__x86_64__) && (DEVELOPMENT || DEBUG)
9222 			static const char * driverCallTypes[] = {
9223 				[kDriverCallInformPreChange]  = "powerStateWillChangeTo",
9224 				[kDriverCallInformPostChange] = "powerStateDidChangeTo",
9225 				[kDriverCallSetPowerState]    = "setPowerState"
9226 			};
9227 
9228 			if (messageType < (sizeof(driverCallTypes) / sizeof(driverCallTypes[0]))) {
9229 				DLOG("%s[0x%qx]::%s(%u) %stook %d ms\n",
9230 				    name, id, driverCallTypes[messageType], (uint32_t) powerState,
9231 				    async ? "async " : "", delay_ms);
9232 			}
9233 #endif
9234 		} else {
9235 			powerCaps = OSNumber::withNumber(_pendingCapability, 32);
9236 		}
9237 		if (powerCaps) {
9238 			responseDescription->setObject(_statsPowerCapsKey.get(), powerCaps.get());
9239 		}
9240 
9241 		sleep = OSSymbol::withCString("Sleep");
9242 		wake = OSSymbol::withCString("Wake");
9243 		if (_systemTransitionType == kSystemTransitionSleep) {
9244 			responseDescription->setObject(kIOPMStatsSystemTransitionKey, sleep.get());
9245 		} else if (_systemTransitionType == kSystemTransitionWake) {
9246 			responseDescription->setObject(kIOPMStatsSystemTransitionKey, wake.get());
9247 		} else if (_systemTransitionType == kSystemTransitionCapability) {
9248 			if (CAP_LOSS(kIOPMSystemCapabilityGraphics)) {
9249 				responseDescription->setObject(kIOPMStatsSystemTransitionKey, sleep.get());
9250 			} else if (CAP_GAIN(kIOPMSystemCapabilityGraphics)) {
9251 				responseDescription->setObject(kIOPMStatsSystemTransitionKey, wake.get());
9252 			}
9253 		}
9254 
9255 		IOLockLock(pmStatsLock);
9256 		if (pmStatsAppResponses && pmStatsAppResponses->getCount() < 50) {
9257 			pmStatsAppResponses->setObject(responseDescription.get());
9258 		}
9259 		IOLockUnlock(pmStatsLock);
9260 	}
9261 
9262 	return;
9263 }
9264 
9265 // MARK: -
9266 // MARK: PMTraceWorker
9267 
9268 //******************************************************************************
9269 // TracePoint support
9270 //
9271 //******************************************************************************
9272 
9273 #define kIOPMRegisterNVRAMTracePointHandlerKey  \
9274 	"IOPMRegisterNVRAMTracePointHandler"
9275 
9276 IOReturn
callPlatformFunction(const OSSymbol * functionName,bool waitForFunction,void * param1,void * param2,void * param3,void * param4)9277 IOPMrootDomain::callPlatformFunction(
9278 	const OSSymbol * functionName,
9279 	bool waitForFunction,
9280 	void * param1, void * param2,
9281 	void * param3, void * param4 )
9282 {
9283 	if (pmTracer && functionName &&
9284 	    functionName->isEqualTo(kIOPMRegisterNVRAMTracePointHandlerKey) &&
9285 	    !pmTracer->tracePointHandler && !pmTracer->tracePointTarget) {
9286 		uint32_t    tracePointPhases, tracePointPCI;
9287 		uint64_t    statusCode;
9288 
9289 		pmTracer->tracePointHandler = (IOPMTracePointHandler) param1;
9290 		pmTracer->tracePointTarget  = (void *) param2;
9291 		tracePointPCI               = (uint32_t)(uintptr_t) param3;
9292 		tracePointPhases            = (uint32_t)(uintptr_t) param4;
9293 		if ((tracePointPhases & 0xff) == kIOPMTracePointSystemSleep) {
9294 			OSSharedPtr<IORegistryEntry> node = IORegistryEntry::fromPath( "/chosen", gIODTPlane );
9295 			if (node) {
9296 				OSSharedPtr<OSObject> bootRomFailureProp;
9297 				bootRomFailureProp = node->copyProperty(kIOEFIBootRomFailureKey);
9298 				OSData *data = OSDynamicCast(OSData, bootRomFailureProp.get());
9299 				uint32_t bootFailureCode;
9300 				if (data && data->getLength() == sizeof(bootFailureCode)) {
9301 					// Failure code from EFI/BootRom is a four byte structure
9302 					memcpy(&bootFailureCode, data->getBytesNoCopy(), sizeof(bootFailureCode));
9303 					tracePointPCI = OSSwapBigToHostInt32(bootFailureCode);
9304 				}
9305 			}
9306 		}
9307 		statusCode = (((uint64_t)tracePointPCI) << 32) | tracePointPhases;
9308 		if ((tracePointPhases & 0xff) != kIOPMTracePointSystemUp) {
9309 			MSG("Sleep failure code 0x%08x 0x%08x\n",
9310 			    tracePointPCI, tracePointPhases);
9311 		}
9312 		setProperty(kIOPMSleepWakeFailureCodeKey, statusCode, 64);
9313 		pmTracer->tracePointHandler( pmTracer->tracePointTarget, 0, 0 );
9314 
9315 		return kIOReturnSuccess;
9316 	}
9317 #if HIBERNATION
9318 	else if (functionName &&
9319 	    functionName->isEqualTo(kIOPMInstallSystemSleepPolicyHandlerKey)) {
9320 		if (gSleepPolicyHandler) {
9321 			return kIOReturnExclusiveAccess;
9322 		}
9323 		if (!param1) {
9324 			return kIOReturnBadArgument;
9325 		}
9326 		gSleepPolicyHandler = (IOPMSystemSleepPolicyHandler) param1;
9327 		gSleepPolicyTarget  = (void *) param2;
9328 		setProperty("IOPMSystemSleepPolicyHandler", kOSBooleanTrue);
9329 		return kIOReturnSuccess;
9330 	}
9331 #endif
9332 
9333 	return super::callPlatformFunction(
9334 		functionName, waitForFunction, param1, param2, param3, param4);
9335 }
9336 
9337 void
kdebugTrace(uint32_t event,uint64_t id,uintptr_t param1,uintptr_t param2,uintptr_t param3)9338 IOPMrootDomain::kdebugTrace(uint32_t event, uint64_t id,
9339     uintptr_t param1, uintptr_t param2, uintptr_t param3)
9340 {
9341 	uint32_t code   = IODBG_POWER(event);
9342 	uint64_t regId  = id;
9343 	if (regId == 0) {
9344 		regId  = getRegistryEntryID();
9345 	}
9346 	KERNEL_DEBUG_CONSTANT_IST(KDEBUG_TRACE, code, (uintptr_t) regId, param1, param2, param3, 0);
9347 }
9348 
9349 void
tracePoint(uint8_t point)9350 IOPMrootDomain::tracePoint( uint8_t point )
9351 {
9352 	if (systemBooting) {
9353 		return;
9354 	}
9355 
9356 	if (kIOPMTracePointWakeCapabilityClients == point) {
9357 		acceptSystemWakeEvents(kAcceptSystemWakeEvents_Disable);
9358 	}
9359 
9360 	kdebugTrace(kPMLogSleepWakeTracePoint, 0, point, 0);
9361 	pmTracer->tracePoint(point);
9362 }
9363 
9364 static void
kext_log_putc(char c)9365 kext_log_putc(char c)
9366 {
9367 	if (gKextNameEnd || gKextNamePos >= (sizeof(gKextNameBuf) - 1)) {
9368 		return;
9369 	}
9370 	if (c == '(' || c == '[' || c == ' ') {
9371 		c = 0;
9372 		gKextNameEnd = true;
9373 	}
9374 
9375 	gKextNameBuf[gKextNamePos++] = c;
9376 }
9377 
9378 static int
kext_log(const char * fmt,...)9379 kext_log(const char *fmt, ...)
9380 {
9381 	va_list listp;
9382 
9383 	va_start(listp, fmt);
9384 	_doprnt(fmt, &listp, &kext_log_putc, 16);
9385 	va_end(listp);
9386 
9387 	return 0;
9388 }
9389 
9390 static OSPtr<const OSSymbol>
copyKextIdentifierWithAddress(vm_address_t address)9391 copyKextIdentifierWithAddress(vm_address_t address)
9392 {
9393 	OSSharedPtr<const OSSymbol> identifer;
9394 
9395 	IOLockLock(gHaltLogLock);
9396 
9397 	gKextNameEnd = false;
9398 	gKextNamePos = 0;
9399 	gKextNameBuf[0] = 0;
9400 
9401 	OSKext::printKextsInBacktrace(&address, 1, kext_log, OSKext::kPrintKextsLock | OSKext::kPrintKextsTerse);
9402 	gKextNameBuf[sizeof(gKextNameBuf) - 1] = 0;
9403 	identifer = OSSymbol::withCString((gKextNameBuf[0] != 0) ? gKextNameBuf : kOSKextKernelIdentifier);
9404 
9405 	IOLockUnlock(gHaltLogLock);
9406 
9407 	return identifer;
9408 }
9409 
9410 // Caller serialized using PM workloop
9411 const char *
getNotificationClientName(OSObject * object)9412 IOPMrootDomain::getNotificationClientName(OSObject *object)
9413 {
9414 	IOPMServiceInterestNotifier *notifier = (typeof(notifier))object;
9415 	const char *clientName = "UNKNOWN";
9416 
9417 	if (!notifier->clientName) {
9418 		// Check for user client
9419 		if (systemCapabilityNotifier && (((IOPMServiceInterestNotifier *) systemCapabilityNotifier.get())->handler == notifier->handler)) {
9420 			OSNumber *clientID = NULL;
9421 			messageClient(kIOMessageCopyClientID, object, &clientID);
9422 			if (clientID) {
9423 				OSSharedPtr<OSString> string(IOCopyLogNameForPID(clientID->unsigned32BitValue()), OSNoRetain);
9424 				if (string) {
9425 					notifier->clientName = OSSymbol::withString(string.get());
9426 				}
9427 				clientID->release();
9428 			}
9429 		} else if (notifier->identifier) {
9430 			notifier->clientName.reset(notifier->identifier.get(), OSRetain);
9431 		}
9432 	}
9433 
9434 	if (notifier->clientName) {
9435 		clientName = notifier->clientName->getCStringNoCopy();
9436 	}
9437 
9438 	return clientName;
9439 }
9440 
9441 void
traceNotification(OSObject * object,bool start,uint64_t timestamp,uint32_t msgIndex)9442 IOPMrootDomain::traceNotification(OSObject *object, bool start, uint64_t timestamp, uint32_t msgIndex)
9443 {
9444 	IOPMServiceInterestNotifier *notifier;
9445 
9446 	if (systemBooting) {
9447 		return;
9448 	}
9449 	notifier = OSDynamicCast(IOPMServiceInterestNotifier, object);
9450 	if (!notifier) {
9451 		return;
9452 	}
9453 
9454 	if (start) {
9455 		pmTracer->traceDetail(notifier->uuid0 >> 32);
9456 		kdebugTrace(kPMLogSleepWakeMessage, pmTracer->getTracePhase(),
9457 		    (uintptr_t) notifier->msgType, (uintptr_t) notifier->uuid0, (uintptr_t) notifier->uuid1);
9458 
9459 		// Update notifier state used for response/ack logging
9460 		notifier->msgIndex = msgIndex;
9461 		notifier->msgAbsTime = timestamp;
9462 
9463 		if (msgIndex != UINT_MAX) {
9464 			DLOG("%s[%u] to %s\n", getIOMessageString(notifier->msgType), msgIndex, getNotificationClientName(notifier));
9465 		} else {
9466 			DLOG("%s to %s\n", getIOMessageString(notifier->msgType), getNotificationClientName(notifier));
9467 		}
9468 
9469 		assert(notifierObject == NULL);
9470 		notifierThread = current_thread();
9471 		notifierObject.reset(notifier, OSRetain);
9472 	} else {
9473 		uint64_t nsec;
9474 		uint32_t delayMS;
9475 
9476 		SUB_ABSOLUTETIME(&timestamp, &notifier->msgAbsTime);
9477 		absolutetime_to_nanoseconds(timestamp, &nsec);
9478 		delayMS = (uint32_t)(nsec / 1000000ULL);
9479 		if (delayMS > notifier->maxMsgDelayMS) {
9480 			notifier->maxMsgDelayMS = delayMS;
9481 		}
9482 
9483 		assert(notifierObject == notifier);
9484 		notifierObject.reset();
9485 		notifierThread = NULL;
9486 	}
9487 }
9488 
9489 void
traceNotificationAck(OSObject * object,uint32_t delay_ms)9490 IOPMrootDomain::traceNotificationAck(OSObject *object, uint32_t delay_ms)
9491 {
9492 	if (systemBooting) {
9493 		return;
9494 	}
9495 	IOPMServiceInterestNotifier *notifier = OSDynamicCast(IOPMServiceInterestNotifier, object);
9496 	if (!notifier) {
9497 		return;
9498 	}
9499 
9500 	kdebugTrace(kPMLogDrvResponseDelay, notifier->uuid0,
9501 	    (uintptr_t) notifier->uuid1, (uintptr_t) 0, (uintptr_t) delay_ms);
9502 
9503 	DLOG("%s[%u] ack from %s took %d ms\n",
9504 	    getIOMessageString(notifier->msgType), notifier->msgIndex, getNotificationClientName(notifier), delay_ms);
9505 	if (delay_ms > notifier->maxAckDelayMS) {
9506 		notifier->maxAckDelayMS = delay_ms;
9507 	}
9508 }
9509 
9510 void
traceNotificationResponse(OSObject * object,uint32_t delay_ms,uint32_t ack_time_us)9511 IOPMrootDomain::traceNotificationResponse(OSObject *object, uint32_t delay_ms, uint32_t ack_time_us)
9512 {
9513 	if (systemBooting) {
9514 		return;
9515 	}
9516 	IOPMServiceInterestNotifier *notifier = OSDynamicCast(IOPMServiceInterestNotifier, object);
9517 	if (!notifier) {
9518 		return;
9519 	}
9520 
9521 	kdebugTrace(kPMLogDrvResponseDelay, notifier->uuid0,
9522 	    (uintptr_t) notifier->uuid1, (uintptr_t)(ack_time_us / 1000), (uintptr_t) delay_ms);
9523 
9524 	if (ack_time_us == 0) {
9525 		// Client work is done and ack will not be forthcoming
9526 		DLOG("%s[%u] response from %s took %d ms\n",
9527 		    getIOMessageString(notifier->msgType), notifier->msgIndex, getNotificationClientName(notifier), delay_ms);
9528 	} else {
9529 		// Client needs more time and it must ack within ack_time_us
9530 		DLOG("%s[%u] response from %s took %d ms (ack in %d us)\n",
9531 		    getIOMessageString(notifier->msgType), notifier->msgIndex, getNotificationClientName(notifier), delay_ms, ack_time_us);
9532 	}
9533 }
9534 
9535 void
traceFilteredNotification(OSObject * object)9536 IOPMrootDomain::traceFilteredNotification(OSObject *object)
9537 {
9538 	if ((kIOLogDebugPower & gIOKitDebug) == 0) {
9539 		return;
9540 	}
9541 	if (systemBooting) {
9542 		return;
9543 	}
9544 	IOPMServiceInterestNotifier *notifier = OSDynamicCast(IOPMServiceInterestNotifier, object);
9545 	if (!notifier) {
9546 		return;
9547 	}
9548 
9549 	DLOG("%s to %s dropped\n", getIOMessageString(notifier->msgType), getNotificationClientName(notifier));
9550 }
9551 
9552 void
traceDetail(uint32_t msgType,uint32_t msgIndex,uint32_t delay)9553 IOPMrootDomain::traceDetail(uint32_t msgType, uint32_t msgIndex, uint32_t delay)
9554 {
9555 	if (!systemBooting) {
9556 		uint32_t detail = ((msgType & 0xffff) << 16) | (delay & 0xffff);
9557 		pmTracer->traceDetail( detail );
9558 		kdebugTrace(kPMLogSleepWakeTracePoint, pmTracer->getTracePhase(), msgType, delay);
9559 		DLOG("trace point 0x%02x msgType 0x%x detail 0x%08x\n", pmTracer->getTracePhase(), msgType, delay);
9560 	}
9561 }
9562 
9563 void
configureReportGated(uint64_t channel_id,uint64_t action,void * result)9564 IOPMrootDomain::configureReportGated(uint64_t channel_id, uint64_t action, void *result)
9565 {
9566 	size_t      reportSize;
9567 	void        **report = NULL;
9568 	uint32_t    bktCnt;
9569 	uint32_t    bktSize;
9570 	uint32_t    *clientCnt;
9571 
9572 	ASSERT_GATED();
9573 
9574 	report = NULL;
9575 	if (channel_id == kAssertDelayChID) {
9576 		report = &assertOnWakeReport;
9577 		bktCnt = kAssertDelayBcktCnt;
9578 		bktSize = kAssertDelayBcktSize;
9579 		clientCnt = &assertOnWakeClientCnt;
9580 	} else if (channel_id == kSleepDelaysChID) {
9581 		report = &sleepDelaysReport;
9582 		bktCnt = kSleepDelaysBcktCnt;
9583 		bktSize = kSleepDelaysBcktSize;
9584 		clientCnt = &sleepDelaysClientCnt;
9585 	} else {
9586 		assert(false);
9587 		return;
9588 	}
9589 
9590 	switch (action) {
9591 	case kIOReportEnable:
9592 
9593 		if (*report) {
9594 			(*clientCnt)++;
9595 			break;
9596 		}
9597 
9598 		reportSize = HISTREPORT_BUFSIZE(bktCnt);
9599 		*report = IOMallocZeroData(reportSize);
9600 		if (*report == NULL) {
9601 			break;
9602 		}
9603 		HISTREPORT_INIT((uint16_t)bktCnt, bktSize, *report, reportSize,
9604 		    getRegistryEntryID(), channel_id, kIOReportCategoryPower);
9605 
9606 		if (channel_id == kAssertDelayChID) {
9607 			assertOnWakeSecs = 0;
9608 		}
9609 
9610 		break;
9611 
9612 	case kIOReportDisable:
9613 		if (*clientCnt == 0) {
9614 			break;
9615 		}
9616 		if (*clientCnt == 1) {
9617 			IOFreeData(*report, HISTREPORT_BUFSIZE(bktCnt));
9618 			*report = NULL;
9619 		}
9620 		(*clientCnt)--;
9621 
9622 		if (channel_id == kAssertDelayChID) {
9623 			assertOnWakeSecs = -1; // Invalid value to prevent updates
9624 		}
9625 		break;
9626 
9627 	case kIOReportGetDimensions:
9628 		if (*report) {
9629 			HISTREPORT_UPDATERES(*report, kIOReportGetDimensions, result);
9630 		}
9631 		break;
9632 	}
9633 
9634 	return;
9635 }
9636 
9637 IOReturn
configureReport(IOReportChannelList * channelList,IOReportConfigureAction action,void * result,void * destination)9638 IOPMrootDomain::configureReport(IOReportChannelList    *channelList,
9639     IOReportConfigureAction action,
9640     void                   *result,
9641     void                   *destination)
9642 {
9643 	unsigned cnt;
9644 	uint64_t configAction = (uint64_t)action;
9645 
9646 	for (cnt = 0; cnt < channelList->nchannels; cnt++) {
9647 		if ((channelList->channels[cnt].channel_id == kSleepCntChID) ||
9648 		    (channelList->channels[cnt].channel_id == kDarkWkCntChID) ||
9649 		    (channelList->channels[cnt].channel_id == kUserWkCntChID)) {
9650 			if (action != kIOReportGetDimensions) {
9651 				continue;
9652 			}
9653 			SIMPLEREPORT_UPDATERES(kIOReportGetDimensions, result);
9654 		} else if ((channelList->channels[cnt].channel_id == kAssertDelayChID) ||
9655 		    (channelList->channels[cnt].channel_id == kSleepDelaysChID)) {
9656 			gIOPMWorkLoop->runAction(
9657 				OSMemberFunctionCast(IOWorkLoop::Action, this, &IOPMrootDomain::configureReportGated),
9658 				(OSObject *)this, (void *)channelList->channels[cnt].channel_id,
9659 				(void *)configAction, (void *)result);
9660 		}
9661 	}
9662 
9663 	return super::configureReport(channelList, action, result, destination);
9664 }
9665 
9666 IOReturn
updateReportGated(uint64_t ch_id,void * result,IOBufferMemoryDescriptor * dest)9667 IOPMrootDomain::updateReportGated(uint64_t ch_id, void *result, IOBufferMemoryDescriptor *dest)
9668 {
9669 	uint32_t    size2cpy;
9670 	void        *data2cpy;
9671 	void        **report;
9672 
9673 	ASSERT_GATED();
9674 
9675 	report = NULL;
9676 	if (ch_id == kAssertDelayChID) {
9677 		report = &assertOnWakeReport;
9678 	} else if (ch_id == kSleepDelaysChID) {
9679 		report = &sleepDelaysReport;
9680 	} else {
9681 		assert(false);
9682 		return kIOReturnBadArgument;
9683 	}
9684 
9685 	if (*report == NULL) {
9686 		return kIOReturnNotOpen;
9687 	}
9688 
9689 	HISTREPORT_UPDATEPREP(*report, data2cpy, size2cpy);
9690 	if (size2cpy > (dest->getCapacity() - dest->getLength())) {
9691 		return kIOReturnOverrun;
9692 	}
9693 
9694 	HISTREPORT_UPDATERES(*report, kIOReportCopyChannelData, result);
9695 	dest->appendBytes(data2cpy, size2cpy);
9696 
9697 	return kIOReturnSuccess;
9698 }
9699 
9700 IOReturn
updateReport(IOReportChannelList * channelList,IOReportUpdateAction action,void * result,void * destination)9701 IOPMrootDomain::updateReport(IOReportChannelList      *channelList,
9702     IOReportUpdateAction      action,
9703     void                     *result,
9704     void                     *destination)
9705 {
9706 	uint32_t size2cpy;
9707 	void *data2cpy;
9708 	uint8_t buf[SIMPLEREPORT_BUFSIZE];
9709 	IOBufferMemoryDescriptor *dest = OSDynamicCast(IOBufferMemoryDescriptor, (OSObject *)destination);
9710 	unsigned cnt;
9711 	uint64_t ch_id;
9712 
9713 	if (action != kIOReportCopyChannelData) {
9714 		goto exit;
9715 	}
9716 
9717 	for (cnt = 0; cnt < channelList->nchannels; cnt++) {
9718 		ch_id = channelList->channels[cnt].channel_id;
9719 
9720 		if ((ch_id == kAssertDelayChID) || (ch_id == kSleepDelaysChID)) {
9721 			gIOPMWorkLoop->runAction(
9722 				OSMemberFunctionCast(IOWorkLoop::Action, this, &IOPMrootDomain::updateReportGated),
9723 				(OSObject *)this, (void *)ch_id,
9724 				(void *)result, (void *)dest);
9725 			continue;
9726 		} else if ((ch_id == kSleepCntChID) ||
9727 		    (ch_id == kDarkWkCntChID) || (ch_id == kUserWkCntChID)) {
9728 			SIMPLEREPORT_INIT(buf, sizeof(buf), getRegistryEntryID(), ch_id, kIOReportCategoryPower);
9729 		} else {
9730 			continue;
9731 		}
9732 
9733 		if (ch_id == kSleepCntChID) {
9734 			SIMPLEREPORT_SETVALUE(buf, sleepCnt);
9735 		} else if (ch_id == kDarkWkCntChID) {
9736 			SIMPLEREPORT_SETVALUE(buf, darkWakeCnt);
9737 		} else if (ch_id == kUserWkCntChID) {
9738 			SIMPLEREPORT_SETVALUE(buf, displayWakeCnt);
9739 		}
9740 
9741 		SIMPLEREPORT_UPDATEPREP(buf, data2cpy, size2cpy);
9742 		SIMPLEREPORT_UPDATERES(kIOReportCopyChannelData, result);
9743 		dest->appendBytes(data2cpy, size2cpy);
9744 	}
9745 
9746 exit:
9747 	return super::updateReport(channelList, action, result, destination);
9748 }
9749 
9750 
9751 //******************************************************************************
9752 // PMTraceWorker Class
9753 //
9754 //******************************************************************************
9755 
9756 #undef super
9757 #define super OSObject
OSDefineMetaClassAndStructors(PMTraceWorker,OSObject)9758 OSDefineMetaClassAndStructors(PMTraceWorker, OSObject)
9759 
9760 #define kPMBestGuessPCIDevicesCount     25
9761 #define kPMMaxRTCBitfieldSize           32
9762 
9763 OSPtr<PMTraceWorker>
9764 PMTraceWorker::tracer(IOPMrootDomain * owner)
9765 {
9766 	OSSharedPtr<PMTraceWorker> me = OSMakeShared<PMTraceWorker>();
9767 	if (!me || !me->init()) {
9768 		return NULL;
9769 	}
9770 
9771 	DLOG("PMTraceWorker %p\n", OBFUSCATE(me.get()));
9772 
9773 	// Note that we cannot instantiate the PCI device -> bit mappings here, since
9774 	// the IODeviceTree has not yet been created by IOPlatformExpert. We create
9775 	// this dictionary lazily.
9776 	me->owner = owner;
9777 	me->pciDeviceBitMappings = NULL;
9778 	me->pmTraceWorkerLock = IOLockAlloc();
9779 	me->tracePhase = kIOPMTracePointSystemUp;
9780 	me->traceData32 = 0;
9781 	me->loginWindowData = 0;
9782 	me->coreDisplayData = 0;
9783 	me->coreGraphicsData = 0;
9784 	return me;
9785 }
9786 
9787 void
RTC_TRACE(void)9788 PMTraceWorker::RTC_TRACE(void)
9789 {
9790 	if (tracePointHandler && tracePointTarget) {
9791 		uint32_t    wordA;
9792 
9793 		IOLockLock(pmTraceWorkerLock);
9794 		wordA = (loginWindowData << 24) | (coreDisplayData << 16) |
9795 		    (coreGraphicsData << 8) | tracePhase;
9796 		IOLockUnlock(pmTraceWorkerLock);
9797 
9798 		tracePointHandler( tracePointTarget, traceData32, wordA );
9799 		_LOG("RTC_TRACE wrote 0x%08x 0x%08x\n", traceData32, wordA);
9800 	}
9801 #if DEVELOPMENT || DEBUG
9802 	if ((swd_panic_phase != 0) && (swd_panic_phase == tracePhase)) {
9803 		DEBUG_LOG("Causing sleep wake failure in phase 0x%08x\n", tracePhase);
9804 		IOLock *l = IOLockAlloc();
9805 		IOLockLock(l);
9806 		IOLockLock(l);
9807 	}
9808 #endif
9809 }
9810 
9811 int
recordTopLevelPCIDevice(IOService * pciDevice)9812 PMTraceWorker::recordTopLevelPCIDevice(IOService * pciDevice)
9813 {
9814 	OSSharedPtr<const OSSymbol>    deviceName;
9815 	int                 index = -1;
9816 
9817 	IOLockLock(pmTraceWorkerLock);
9818 
9819 	if (!pciDeviceBitMappings) {
9820 		pciDeviceBitMappings = OSArray::withCapacity(kPMBestGuessPCIDevicesCount);
9821 		if (!pciDeviceBitMappings) {
9822 			goto exit;
9823 		}
9824 	}
9825 
9826 	// Check for bitmask overflow.
9827 	if (pciDeviceBitMappings->getCount() >= kPMMaxRTCBitfieldSize) {
9828 		goto exit;
9829 	}
9830 
9831 	if ((deviceName = pciDevice->copyName()) &&
9832 	    (pciDeviceBitMappings->getNextIndexOfObject(deviceName.get(), 0) == (unsigned int)-1) &&
9833 	    pciDeviceBitMappings->setObject(deviceName.get())) {
9834 		index = pciDeviceBitMappings->getCount() - 1;
9835 		_LOG("PMTrace PCI array: set object %s => %d\n",
9836 		    deviceName->getCStringNoCopy(), index);
9837 	}
9838 
9839 	if (!addedToRegistry && (index >= 0)) {
9840 		addedToRegistry = owner->setProperty("PCITopLevel", this);
9841 	}
9842 
9843 exit:
9844 	IOLockUnlock(pmTraceWorkerLock);
9845 	return index;
9846 }
9847 
9848 bool
serialize(OSSerialize * s) const9849 PMTraceWorker::serialize(OSSerialize *s) const
9850 {
9851 	bool ok = false;
9852 	if (pciDeviceBitMappings) {
9853 		IOLockLock(pmTraceWorkerLock);
9854 		ok = pciDeviceBitMappings->serialize(s);
9855 		IOLockUnlock(pmTraceWorkerLock);
9856 	}
9857 	return ok;
9858 }
9859 
9860 void
tracePoint(uint8_t phase)9861 PMTraceWorker::tracePoint(uint8_t phase)
9862 {
9863 	// clear trace detail when phase begins
9864 	if (tracePhase != phase) {
9865 		traceData32 = 0;
9866 	}
9867 
9868 	tracePhase = phase;
9869 
9870 	DLOG("trace point 0x%02x\n", tracePhase);
9871 	RTC_TRACE();
9872 }
9873 
9874 void
traceDetail(uint32_t detail)9875 PMTraceWorker::traceDetail(uint32_t detail)
9876 {
9877 	if (detail == traceData32) {
9878 		return;
9879 	}
9880 	traceData32 = detail;
9881 	RTC_TRACE();
9882 }
9883 
9884 void
traceComponentWakeProgress(uint32_t component,uint32_t data)9885 PMTraceWorker::traceComponentWakeProgress(uint32_t component, uint32_t data)
9886 {
9887 	switch (component) {
9888 	case kIOPMLoginWindowProgress:
9889 		loginWindowData = data & kIOPMLoginWindowProgressMask;
9890 		break;
9891 	case kIOPMCoreDisplayProgress:
9892 		coreDisplayData = data & kIOPMCoreDisplayProgressMask;
9893 		break;
9894 	case kIOPMCoreGraphicsProgress:
9895 		coreGraphicsData = data & kIOPMCoreGraphicsProgressMask;
9896 		break;
9897 	default:
9898 		return;
9899 	}
9900 
9901 	DLOG("component trace point 0x%02x data 0x%08x\n", component, data);
9902 	RTC_TRACE();
9903 }
9904 
9905 void
tracePCIPowerChange(change_t type,IOService * service,uint32_t changeFlags,uint32_t bitNum)9906 PMTraceWorker::tracePCIPowerChange(
9907 	change_t type, IOService *service, uint32_t changeFlags, uint32_t bitNum)
9908 {
9909 	uint32_t    bitMask;
9910 	uint32_t    expectedFlag;
9911 
9912 	// Ignore PCI changes outside of system sleep/wake.
9913 	if ((kIOPMTracePointSleepPowerPlaneDrivers != tracePhase) &&
9914 	    (kIOPMTracePointWakePowerPlaneDrivers != tracePhase)) {
9915 		return;
9916 	}
9917 
9918 	// Only record the WillChange transition when going to sleep,
9919 	// and the DidChange on the way up.
9920 	changeFlags &= (kIOPMDomainWillChange | kIOPMDomainDidChange);
9921 	expectedFlag = (kIOPMTracePointSleepPowerPlaneDrivers == tracePhase) ?
9922 	    kIOPMDomainWillChange : kIOPMDomainDidChange;
9923 	if (changeFlags != expectedFlag) {
9924 		return;
9925 	}
9926 
9927 	// Mark this device off in our bitfield
9928 	if (bitNum < kPMMaxRTCBitfieldSize) {
9929 		bitMask = (1 << bitNum);
9930 
9931 		if (kPowerChangeStart == type) {
9932 			traceData32 |= bitMask;
9933 			_LOG("PMTrace: Device %s started  - bit %2d mask 0x%08x => 0x%08x\n",
9934 			    service->getName(), bitNum, bitMask, traceData32);
9935 			owner->kdebugTrace(kPMLogPCIDevChangeStart, service->getRegistryEntryID(), traceData32, 0);
9936 		} else {
9937 			traceData32 &= ~bitMask;
9938 			_LOG("PMTrace: Device %s finished - bit %2d mask 0x%08x => 0x%08x\n",
9939 			    service->getName(), bitNum, bitMask, traceData32);
9940 			owner->kdebugTrace(kPMLogPCIDevChangeDone, service->getRegistryEntryID(), traceData32, 0);
9941 		}
9942 
9943 		DLOG("trace point 0x%02x detail 0x%08x\n", tracePhase, traceData32);
9944 		RTC_TRACE();
9945 	}
9946 }
9947 
9948 uint64_t
getPMStatusCode()9949 PMTraceWorker::getPMStatusCode()
9950 {
9951 	return ((uint64_t)traceData32 << 32) | ((uint64_t)tracePhase);
9952 }
9953 
9954 uint8_t
getTracePhase()9955 PMTraceWorker::getTracePhase()
9956 {
9957 	return tracePhase;
9958 }
9959 
9960 uint32_t
getTraceData()9961 PMTraceWorker::getTraceData()
9962 {
9963 	return traceData32;
9964 }
9965 
9966 // MARK: -
9967 // MARK: PMHaltWorker
9968 
9969 //******************************************************************************
9970 // PMHaltWorker Class
9971 //
9972 //******************************************************************************
9973 
9974 PMHaltWorker *
worker(void)9975 PMHaltWorker::worker( void )
9976 {
9977 	PMHaltWorker *  me;
9978 	IOThread        thread;
9979 
9980 	do {
9981 		me = OSTypeAlloc( PMHaltWorker );
9982 		if (!me || !me->init()) {
9983 			break;
9984 		}
9985 
9986 		me->lock = IOLockAlloc();
9987 		if (!me->lock) {
9988 			break;
9989 		}
9990 
9991 		DLOG("PMHaltWorker %p\n", OBFUSCATE(me));
9992 		me->retain(); // thread holds extra retain
9993 		if (KERN_SUCCESS != kernel_thread_start(&PMHaltWorker::main, (void *) me, &thread)) {
9994 			me->release();
9995 			break;
9996 		}
9997 		thread_deallocate(thread);
9998 		return me;
9999 	} while (false);
10000 
10001 	if (me) {
10002 		me->release();
10003 	}
10004 	return NULL;
10005 }
10006 
10007 void
free(void)10008 PMHaltWorker::free( void )
10009 {
10010 	DLOG("PMHaltWorker free %p\n", OBFUSCATE(this));
10011 	if (lock) {
10012 		IOLockFree(lock);
10013 		lock = NULL;
10014 	}
10015 	return OSObject::free();
10016 }
10017 
10018 void
main(void * arg,wait_result_t waitResult)10019 PMHaltWorker::main( void * arg, wait_result_t waitResult )
10020 {
10021 	PMHaltWorker * me = (PMHaltWorker *) arg;
10022 
10023 	IOLockLock( gPMHaltLock );
10024 	gPMHaltBusyCount++;
10025 	me->depth = gPMHaltDepth;
10026 	IOLockUnlock( gPMHaltLock );
10027 
10028 	while (me->depth >= 0) {
10029 		PMHaltWorker::work( me );
10030 
10031 		IOLockLock( gPMHaltLock );
10032 		if (++gPMHaltIdleCount >= gPMHaltBusyCount) {
10033 			// This is the last thread to finish work on this level,
10034 			// inform everyone to start working on next lower level.
10035 			gPMHaltDepth--;
10036 			me->depth = gPMHaltDepth;
10037 			gPMHaltIdleCount = 0;
10038 			thread_wakeup((event_t) &gPMHaltIdleCount);
10039 		} else {
10040 			// One or more threads are still working on this level,
10041 			// this thread must wait.
10042 			me->depth = gPMHaltDepth - 1;
10043 			do {
10044 				IOLockSleep(gPMHaltLock, &gPMHaltIdleCount, THREAD_UNINT);
10045 			} while (me->depth != gPMHaltDepth);
10046 		}
10047 		IOLockUnlock( gPMHaltLock );
10048 	}
10049 
10050 	// No more work to do, terminate thread
10051 	DLOG("All done for worker: %p (visits = %u)\n", OBFUSCATE(me), me->visits);
10052 	thread_wakeup( &gPMHaltDepth );
10053 	me->release();
10054 }
10055 
10056 void
work(PMHaltWorker * me)10057 PMHaltWorker::work( PMHaltWorker * me )
10058 {
10059 	OSSharedPtr<IOService>     service;
10060 	OSSet *         inner;
10061 	AbsoluteTime    startTime, elapsedTime;
10062 	UInt32          deltaTime;
10063 	bool            timeout;
10064 
10065 	while (true) {
10066 		timeout = false;
10067 
10068 		// Claim an unit of work from the shared pool
10069 		IOLockLock( gPMHaltLock );
10070 		inner = (OSSet *)gPMHaltArray->getObject(me->depth);
10071 		if (inner) {
10072 			service.reset(OSDynamicCast(IOService, inner->getAnyObject()), OSRetain);
10073 			if (service) {
10074 				inner->removeObject(service.get());
10075 			}
10076 		}
10077 		IOLockUnlock( gPMHaltLock );
10078 		if (!service) {
10079 			break; // no more work at this depth
10080 		}
10081 		clock_get_uptime(&startTime);
10082 
10083 		if (!service->isInactive() &&
10084 		    service->setProperty(gPMHaltClientAcknowledgeKey.get(), me)) {
10085 			IOLockLock(me->lock);
10086 			me->startTime = startTime;
10087 			me->service   = service.get();
10088 			me->timeout   = false;
10089 			IOLockUnlock(me->lock);
10090 
10091 			service->systemWillShutdown( gPMHaltMessageType);
10092 
10093 			// Wait for driver acknowledgement
10094 			IOLockLock(me->lock);
10095 			while (service->propertyExists(gPMHaltClientAcknowledgeKey.get())) {
10096 				IOLockSleep(me->lock, me, THREAD_UNINT);
10097 			}
10098 			me->service = NULL;
10099 			timeout = me->timeout;
10100 			IOLockUnlock(me->lock);
10101 		}
10102 
10103 		deltaTime = computeDeltaTimeMS(&startTime, &elapsedTime);
10104 		if ((deltaTime > kPMHaltTimeoutMS) || timeout) {
10105 			LOG("%s driver %s (0x%llx) took %u ms\n",
10106 			    (gPMHaltMessageType == kIOMessageSystemWillPowerOff) ?
10107 			    "PowerOff" : "Restart",
10108 			    service->getName(), service->getRegistryEntryID(),
10109 			    (uint32_t) deltaTime );
10110 			halt_log_enter("PowerOff/Restart handler completed",
10111 			    OSMemberFunctionCast(const void *, service.get(), &IOService::systemWillShutdown),
10112 			    elapsedTime);
10113 		}
10114 
10115 		me->visits++;
10116 	}
10117 }
10118 
10119 void
checkTimeout(PMHaltWorker * me,AbsoluteTime * now)10120 PMHaltWorker::checkTimeout( PMHaltWorker * me, AbsoluteTime * now )
10121 {
10122 	UInt64          nano;
10123 	AbsoluteTime    startTime;
10124 	AbsoluteTime    endTime;
10125 
10126 	endTime = *now;
10127 
10128 	IOLockLock(me->lock);
10129 	if (me->service && !me->timeout) {
10130 		startTime = me->startTime;
10131 		nano = 0;
10132 		if (CMP_ABSOLUTETIME(&endTime, &startTime) > 0) {
10133 			SUB_ABSOLUTETIME(&endTime, &startTime);
10134 			absolutetime_to_nanoseconds(endTime, &nano);
10135 		}
10136 		if (nano > 3000000000ULL) {
10137 			me->timeout = true;
10138 
10139 			halt_log_enter("PowerOff/Restart still waiting on handler",
10140 			    OSMemberFunctionCast(const void *, me->service, &IOService::systemWillShutdown),
10141 			    endTime);
10142 			MSG("%s still waiting on %s\n",
10143 			    (gPMHaltMessageType == kIOMessageSystemWillPowerOff) ?  "PowerOff" : "Restart",
10144 			    me->service->getName());
10145 		}
10146 	}
10147 	IOLockUnlock(me->lock);
10148 }
10149 
10150 //******************************************************************************
10151 // acknowledgeSystemWillShutdown
10152 //
10153 // Acknowledgement from drivers that they have prepared for shutdown/restart.
10154 //******************************************************************************
10155 
10156 void
acknowledgeSystemWillShutdown(IOService * from)10157 IOPMrootDomain::acknowledgeSystemWillShutdown( IOService * from )
10158 {
10159 	PMHaltWorker            * worker;
10160 	OSSharedPtr<OSObject>     prop;
10161 
10162 	if (!from) {
10163 		return;
10164 	}
10165 
10166 	//DLOG("%s acknowledged\n", from->getName());
10167 	prop = from->copyProperty( gPMHaltClientAcknowledgeKey.get());
10168 	if (prop) {
10169 		worker = (PMHaltWorker *) prop.get();
10170 		IOLockLock(worker->lock);
10171 		from->removeProperty( gPMHaltClientAcknowledgeKey.get());
10172 		thread_wakeup((event_t) worker);
10173 		IOLockUnlock(worker->lock);
10174 	} else {
10175 		DLOG("%s acknowledged without worker property\n",
10176 		    from->getName());
10177 	}
10178 }
10179 
10180 
10181 //******************************************************************************
10182 // notifySystemShutdown
10183 //
10184 // Notify all objects in PM tree that system will shutdown or restart
10185 //******************************************************************************
10186 
10187 static void
notifySystemShutdown(IOService * root,uint32_t messageType)10188 notifySystemShutdown( IOService * root, uint32_t messageType )
10189 {
10190 #define PLACEHOLDER ((OSSet *)gPMHaltArray.get())
10191 	OSSharedPtr<IORegistryIterator>  iter;
10192 	IORegistryEntry *                entry;
10193 	IOService *                      node;
10194 	OSSet *                          inner;
10195 	OSSharedPtr<OSSet>               newInner;
10196 	PMHaltWorker *                   workers[kPMHaltMaxWorkers];
10197 	AbsoluteTime                     deadline;
10198 	unsigned int                     totalNodes = 0;
10199 	unsigned int                     depth;
10200 	unsigned int                     rootDepth;
10201 	unsigned int                     numWorkers;
10202 	unsigned int                     count;
10203 	int                              waitResult;
10204 	void *                           baseFunc;
10205 	bool                             ok;
10206 
10207 	DLOG("%s msgType = 0x%x\n", __FUNCTION__, messageType);
10208 
10209 	baseFunc = OSMemberFunctionCast(void *, root, &IOService::systemWillShutdown);
10210 
10211 	// Iterate the entire PM tree starting from root
10212 
10213 	rootDepth = root->getDepth( gIOPowerPlane );
10214 	if (!rootDepth) {
10215 		goto done;
10216 	}
10217 
10218 	// debug - for repeated test runs
10219 	while (PMHaltWorker::metaClass->getInstanceCount()) {
10220 		IOSleep(1);
10221 	}
10222 
10223 	if (!gPMHaltArray) {
10224 		gPMHaltArray = OSArray::withCapacity(40);
10225 		if (!gPMHaltArray) {
10226 			goto done;
10227 		}
10228 	} else { // debug
10229 		gPMHaltArray->flushCollection();
10230 	}
10231 
10232 	if (!gPMHaltLock) {
10233 		gPMHaltLock = IOLockAlloc();
10234 		if (!gPMHaltLock) {
10235 			goto done;
10236 		}
10237 	}
10238 
10239 	if (!gPMHaltClientAcknowledgeKey) {
10240 		gPMHaltClientAcknowledgeKey =
10241 		    OSSymbol::withCStringNoCopy("PMShutdown");
10242 		if (!gPMHaltClientAcknowledgeKey) {
10243 			goto done;
10244 		}
10245 	}
10246 
10247 	gPMHaltMessageType = messageType;
10248 
10249 	// Depth-first walk of PM plane
10250 
10251 	iter = IORegistryIterator::iterateOver(
10252 		root, gIOPowerPlane, kIORegistryIterateRecursively);
10253 
10254 	if (iter) {
10255 		while ((entry = iter->getNextObject())) {
10256 			node = OSDynamicCast(IOService, entry);
10257 			if (!node) {
10258 				continue;
10259 			}
10260 
10261 			if (baseFunc ==
10262 			    OSMemberFunctionCast(void *, node, &IOService::systemWillShutdown)) {
10263 				continue;
10264 			}
10265 
10266 			depth = node->getDepth( gIOPowerPlane );
10267 			if (depth <= rootDepth) {
10268 				continue;
10269 			}
10270 
10271 			ok = false;
10272 
10273 			// adjust to zero based depth
10274 			depth -= (rootDepth + 1);
10275 
10276 			// gPMHaltArray is an array of containers, each container
10277 			// refers to nodes with the same depth.
10278 
10279 			count = gPMHaltArray->getCount();
10280 			while (depth >= count) {
10281 				// expand array and insert placeholders
10282 				gPMHaltArray->setObject(PLACEHOLDER);
10283 				count++;
10284 			}
10285 			count = gPMHaltArray->getCount();
10286 			if (depth < count) {
10287 				inner = (OSSet *)gPMHaltArray->getObject(depth);
10288 				if (inner == PLACEHOLDER) {
10289 					newInner = OSSet::withCapacity(40);
10290 					if (newInner) {
10291 						gPMHaltArray->replaceObject(depth, newInner.get());
10292 						inner = newInner.get();
10293 					}
10294 				}
10295 
10296 				// PM nodes that appear more than once in the tree will have
10297 				// the same depth, OSSet will refuse to add the node twice.
10298 				if (inner) {
10299 					ok = inner->setObject(node);
10300 				}
10301 			}
10302 			if (!ok) {
10303 				DLOG("Skipped PM node %s\n", node->getName());
10304 			}
10305 		}
10306 	}
10307 
10308 	// debug only
10309 	for (int i = 0; (inner = (OSSet *)gPMHaltArray->getObject(i)); i++) {
10310 		count = 0;
10311 		if (inner != PLACEHOLDER) {
10312 			count = inner->getCount();
10313 		}
10314 		DLOG("Nodes at depth %u = %u\n", i, count);
10315 	}
10316 
10317 	// strip placeholders (not all depths are populated)
10318 	numWorkers = 0;
10319 	for (int i = 0; (inner = (OSSet *)gPMHaltArray->getObject(i));) {
10320 		if (inner == PLACEHOLDER) {
10321 			gPMHaltArray->removeObject(i);
10322 			continue;
10323 		}
10324 		count = inner->getCount();
10325 		if (count > numWorkers) {
10326 			numWorkers = count;
10327 		}
10328 		totalNodes += count;
10329 		i++;
10330 	}
10331 
10332 	if (gPMHaltArray->getCount() == 0 || !numWorkers) {
10333 		goto done;
10334 	}
10335 
10336 	gPMHaltBusyCount = 0;
10337 	gPMHaltIdleCount = 0;
10338 	gPMHaltDepth = gPMHaltArray->getCount() - 1;
10339 
10340 	// Create multiple workers (and threads)
10341 
10342 	if (numWorkers > kPMHaltMaxWorkers) {
10343 		numWorkers = kPMHaltMaxWorkers;
10344 	}
10345 
10346 	DLOG("PM nodes %u, maxDepth %u, workers %u\n",
10347 	    totalNodes, gPMHaltArray->getCount(), numWorkers);
10348 
10349 	for (unsigned int i = 0; i < numWorkers; i++) {
10350 		workers[i] = PMHaltWorker::worker();
10351 	}
10352 
10353 	// Wait for workers to exhaust all available work
10354 
10355 	IOLockLock(gPMHaltLock);
10356 	while (gPMHaltDepth >= 0) {
10357 		clock_interval_to_deadline(1000, kMillisecondScale, &deadline);
10358 
10359 		waitResult = IOLockSleepDeadline(
10360 			gPMHaltLock, &gPMHaltDepth, deadline, THREAD_UNINT);
10361 		if (THREAD_TIMED_OUT == waitResult) {
10362 			AbsoluteTime now;
10363 			clock_get_uptime(&now);
10364 
10365 			IOLockUnlock(gPMHaltLock);
10366 			for (unsigned int i = 0; i < numWorkers; i++) {
10367 				if (workers[i]) {
10368 					PMHaltWorker::checkTimeout(workers[i], &now);
10369 				}
10370 			}
10371 			IOLockLock(gPMHaltLock);
10372 		}
10373 	}
10374 	IOLockUnlock(gPMHaltLock);
10375 
10376 	// Release all workers
10377 
10378 	for (unsigned int i = 0; i < numWorkers; i++) {
10379 		if (workers[i]) {
10380 			workers[i]->release();
10381 		}
10382 		// worker also retained by it's own thread
10383 	}
10384 
10385 done:
10386 	DLOG("%s done\n", __FUNCTION__);
10387 	return;
10388 }
10389 
10390 // MARK: -
10391 // MARK: Kernel Assertion
10392 
10393 /* * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * */
10394 
10395 IOPMDriverAssertionID
createPMAssertion(IOPMDriverAssertionType whichAssertionBits,IOPMDriverAssertionLevel assertionLevel,IOService * ownerService,const char * ownerDescription)10396 IOPMrootDomain::createPMAssertion(
10397 	IOPMDriverAssertionType whichAssertionBits,
10398 	IOPMDriverAssertionLevel assertionLevel,
10399 	IOService *ownerService,
10400 	const char *ownerDescription)
10401 {
10402 	IOReturn            ret;
10403 	IOPMDriverAssertionID     newAssertion;
10404 
10405 	if (!pmAssertions) {
10406 		return 0;
10407 	}
10408 
10409 	ret = pmAssertions->createAssertion(whichAssertionBits, assertionLevel, ownerService, ownerDescription, &newAssertion);
10410 
10411 	if (kIOReturnSuccess == ret) {
10412 #if (DEVELOPMENT || DEBUG)
10413 		if (_aotNow) {
10414 			OSReportWithBacktrace("IOPMrootDomain::createPMAssertion(0x%qx)", newAssertion);
10415 		}
10416 #endif /* (DEVELOPMENT || DEBUG) */
10417 		return newAssertion;
10418 	} else {
10419 		return 0;
10420 	}
10421 }
10422 
10423 IOReturn
releasePMAssertion(IOPMDriverAssertionID releaseAssertion)10424 IOPMrootDomain::releasePMAssertion(IOPMDriverAssertionID releaseAssertion)
10425 {
10426 #if (DEVELOPMENT || DEBUG)
10427 	if (_aotNow) {
10428 		OSReportWithBacktrace("IOPMrootDomain::releasePMAssertion(0x%qx)", releaseAssertion);
10429 	}
10430 #endif /* (DEVELOPMENT || DEBUG) */
10431 	if (!pmAssertions) {
10432 		return kIOReturnInternalError;
10433 	}
10434 	return pmAssertions->releaseAssertion(releaseAssertion);
10435 }
10436 
10437 
10438 IOReturn
setPMAssertionLevel(IOPMDriverAssertionID assertionID,IOPMDriverAssertionLevel assertionLevel)10439 IOPMrootDomain::setPMAssertionLevel(
10440 	IOPMDriverAssertionID assertionID,
10441 	IOPMDriverAssertionLevel assertionLevel)
10442 {
10443 	return pmAssertions->setAssertionLevel(assertionID, assertionLevel);
10444 }
10445 
10446 IOPMDriverAssertionLevel
getPMAssertionLevel(IOPMDriverAssertionType whichAssertion)10447 IOPMrootDomain::getPMAssertionLevel(IOPMDriverAssertionType whichAssertion)
10448 {
10449 	IOPMDriverAssertionType       sysLevels;
10450 
10451 	if (!pmAssertions || whichAssertion == 0) {
10452 		return kIOPMDriverAssertionLevelOff;
10453 	}
10454 
10455 	sysLevels = pmAssertions->getActivatedAssertions();
10456 
10457 	// Check that every bit set in argument 'whichAssertion' is asserted
10458 	// in the aggregate bits.
10459 	if ((sysLevels & whichAssertion) == whichAssertion) {
10460 		return kIOPMDriverAssertionLevelOn;
10461 	} else {
10462 		return kIOPMDriverAssertionLevelOff;
10463 	}
10464 }
10465 
10466 IOReturn
setPMAssertionUserLevels(IOPMDriverAssertionType inLevels)10467 IOPMrootDomain::setPMAssertionUserLevels(IOPMDriverAssertionType inLevels)
10468 {
10469 	if (!pmAssertions) {
10470 		return kIOReturnNotFound;
10471 	}
10472 
10473 	return pmAssertions->setUserAssertionLevels(inLevels);
10474 }
10475 
10476 bool
serializeProperties(OSSerialize * s) const10477 IOPMrootDomain::serializeProperties( OSSerialize * s ) const
10478 {
10479 	if (pmAssertions) {
10480 		pmAssertions->publishProperties();
10481 	}
10482 	return IOService::serializeProperties(s);
10483 }
10484 
10485 OSSharedPtr<OSObject>
copyProperty(const char * aKey) const10486 IOPMrootDomain::copyProperty( const char * aKey) const
10487 {
10488 	OSSharedPtr<OSObject> obj;
10489 	obj = IOService::copyProperty(aKey);
10490 
10491 	if (obj) {
10492 		return obj;
10493 	}
10494 
10495 	if (!strncmp(aKey, kIOPMSleepWakeWdogRebootKey,
10496 	    sizeof(kIOPMSleepWakeWdogRebootKey))) {
10497 		if (swd_flags & SWD_BOOT_BY_SW_WDOG) {
10498 			return OSSharedPtr<OSBoolean>(kOSBooleanTrue, OSNoRetain);
10499 		} else {
10500 			return OSSharedPtr<OSBoolean>(kOSBooleanFalse, OSNoRetain);
10501 		}
10502 	}
10503 
10504 	if (!strncmp(aKey, kIOPMSleepWakeWdogLogsValidKey,
10505 	    sizeof(kIOPMSleepWakeWdogLogsValidKey))) {
10506 		if (swd_flags & SWD_VALID_LOGS) {
10507 			return OSSharedPtr<OSBoolean>(kOSBooleanTrue, OSNoRetain);
10508 		} else {
10509 			return OSSharedPtr<OSBoolean>(kOSBooleanFalse, OSNoRetain);
10510 		}
10511 	}
10512 
10513 	/*
10514 	 * XXX: We should get rid of "DesktopMode" property  when 'kAppleClamshellCausesSleepKey'
10515 	 * is set properly in darwake from sleep. For that, kIOPMEnableClamshell msg has to be
10516 	 * issued by DisplayWrangler on darkwake.
10517 	 */
10518 	if (!strcmp(aKey, "DesktopMode")) {
10519 		if (desktopMode) {
10520 			return OSSharedPtr<OSBoolean>(kOSBooleanTrue, OSNoRetain);
10521 		} else {
10522 			return OSSharedPtr<OSBoolean>(kOSBooleanFalse, OSNoRetain);
10523 		}
10524 	}
10525 	if (!strcmp(aKey, "DisplayIdleForDemandSleep")) {
10526 		if (displayIdleForDemandSleep) {
10527 			return OSSharedPtr<OSBoolean>(kOSBooleanTrue, OSNoRetain);
10528 		} else {
10529 			return OSSharedPtr<OSBoolean>(kOSBooleanFalse, OSNoRetain);
10530 		}
10531 	}
10532 
10533 	if (!strcmp(aKey, kIOPMDriverWakeEventsKey)) {
10534 		OSSharedPtr<OSArray> array;
10535 		WAKEEVENT_LOCK();
10536 		if (_systemWakeEventsArray && _systemWakeEventsArray->getCount()) {
10537 			OSSharedPtr<OSCollection> collection = _systemWakeEventsArray->copyCollection();
10538 			if (collection) {
10539 				array = OSDynamicPtrCast<OSArray>(collection);
10540 			}
10541 		}
10542 		WAKEEVENT_UNLOCK();
10543 		return os::move(array);
10544 	}
10545 
10546 	if (!strcmp(aKey, kIOPMSleepStatisticsAppsKey)) {
10547 		OSSharedPtr<OSArray> array;
10548 		IOLockLock(pmStatsLock);
10549 		if (pmStatsAppResponses && pmStatsAppResponses->getCount()) {
10550 			OSSharedPtr<OSCollection> collection = pmStatsAppResponses->copyCollection();
10551 			if (collection) {
10552 				array = OSDynamicPtrCast<OSArray>(collection);
10553 			}
10554 		}
10555 		IOLockUnlock(pmStatsLock);
10556 		return os::move(array);
10557 	}
10558 
10559 	if (!strcmp(aKey, kIOPMIdleSleepPreventersKey)) {
10560 		OSArray *idleSleepList = NULL;
10561 		gRootDomain->copySleepPreventersList(&idleSleepList, NULL);
10562 		return OSSharedPtr<OSArray>(idleSleepList, OSNoRetain);
10563 	}
10564 
10565 	if (!strcmp(aKey, kIOPMSystemSleepPreventersKey)) {
10566 		OSArray *systemSleepList = NULL;
10567 		gRootDomain->copySleepPreventersList(NULL, &systemSleepList);
10568 		return OSSharedPtr<OSArray>(systemSleepList, OSNoRetain);
10569 	}
10570 
10571 	if (!strcmp(aKey, kIOPMIdleSleepPreventersWithIDKey)) {
10572 		OSArray *idleSleepList = NULL;
10573 		gRootDomain->copySleepPreventersListWithID(&idleSleepList, NULL);
10574 		return OSSharedPtr<OSArray>(idleSleepList, OSNoRetain);
10575 	}
10576 
10577 	if (!strcmp(aKey, kIOPMSystemSleepPreventersWithIDKey)) {
10578 		OSArray *systemSleepList = NULL;
10579 		gRootDomain->copySleepPreventersListWithID(NULL, &systemSleepList);
10580 		return OSSharedPtr<OSArray>(systemSleepList, OSNoRetain);
10581 	}
10582 	return NULL;
10583 }
10584 
10585 // MARK: -
10586 // MARK: Wake Event Reporting
10587 
10588 void
copyWakeReasonString(char * outBuf,size_t bufSize)10589 IOPMrootDomain::copyWakeReasonString( char * outBuf, size_t bufSize )
10590 {
10591 	WAKEEVENT_LOCK();
10592 	strlcpy(outBuf, gWakeReasonString, bufSize);
10593 	WAKEEVENT_UNLOCK();
10594 }
10595 
10596 void
copyShutdownReasonString(char * outBuf,size_t bufSize)10597 IOPMrootDomain::copyShutdownReasonString( char * outBuf, size_t bufSize )
10598 {
10599 	WAKEEVENT_LOCK();
10600 	strlcpy(outBuf, gShutdownReasonString, bufSize);
10601 	WAKEEVENT_UNLOCK();
10602 }
10603 
10604 //******************************************************************************
10605 // acceptSystemWakeEvents
10606 //
10607 // Private control for the acceptance of driver wake event claims.
10608 //******************************************************************************
10609 
10610 void
acceptSystemWakeEvents(uint32_t control)10611 IOPMrootDomain::acceptSystemWakeEvents( uint32_t control )
10612 {
10613 	bool logWakeReason = false;
10614 
10615 	WAKEEVENT_LOCK();
10616 	switch (control) {
10617 	case kAcceptSystemWakeEvents_Enable:
10618 		assert(_acceptSystemWakeEvents == false);
10619 		if (!_systemWakeEventsArray) {
10620 			_systemWakeEventsArray = OSArray::withCapacity(4);
10621 		}
10622 		_acceptSystemWakeEvents = (_systemWakeEventsArray != NULL);
10623 		if (!(_aotNow && (kIOPMWakeEventAOTExitFlags & _aotPendingFlags))) {
10624 			gWakeReasonString[0] = '\0';
10625 			if (_systemWakeEventsArray) {
10626 				_systemWakeEventsArray->flushCollection();
10627 			}
10628 		}
10629 
10630 		// Remove stale WakeType property before system sleep
10631 		removeProperty(kIOPMRootDomainWakeTypeKey);
10632 		removeProperty(kIOPMRootDomainWakeReasonKey);
10633 		break;
10634 
10635 	case kAcceptSystemWakeEvents_Disable:
10636 		_acceptSystemWakeEvents = false;
10637 #if defined(XNU_TARGET_OS_OSX)
10638 		logWakeReason = (gWakeReasonString[0] != '\0');
10639 #else /* !defined(XNU_TARGET_OS_OSX) */
10640 		logWakeReason = gWakeReasonSysctlRegistered;
10641 #if DEVELOPMENT
10642 		static int panic_allowed = -1;
10643 
10644 		if ((panic_allowed == -1) &&
10645 		    (PE_parse_boot_argn("swd_wakereason_panic", &panic_allowed, sizeof(panic_allowed)) == false)) {
10646 			panic_allowed = 0;
10647 		}
10648 
10649 		if (panic_allowed) {
10650 			size_t i = 0;
10651 			// Panic if wake reason is null or empty
10652 			for (i = 0; (i < strlen(gWakeReasonString)); i++) {
10653 				if ((gWakeReasonString[i] != ' ') && (gWakeReasonString[i] != '\t')) {
10654 					break;
10655 				}
10656 			}
10657 			if (i >= strlen(gWakeReasonString)) {
10658 				panic("Wake reason is empty");
10659 			}
10660 		}
10661 #endif /* DEVELOPMENT */
10662 #endif /* !defined(XNU_TARGET_OS_OSX) */
10663 
10664 		// publish kIOPMRootDomainWakeReasonKey if not already set
10665 		if (!propertyExists(kIOPMRootDomainWakeReasonKey)) {
10666 			setProperty(kIOPMRootDomainWakeReasonKey, gWakeReasonString);
10667 		}
10668 		break;
10669 
10670 	case kAcceptSystemWakeEvents_Reenable:
10671 		assert(_acceptSystemWakeEvents == false);
10672 		_acceptSystemWakeEvents = (_systemWakeEventsArray != NULL);
10673 		removeProperty(kIOPMRootDomainWakeReasonKey);
10674 		break;
10675 	}
10676 	WAKEEVENT_UNLOCK();
10677 
10678 	if (logWakeReason) {
10679 		MSG("system wake events: %s\n", gWakeReasonString);
10680 	}
10681 }
10682 
10683 //******************************************************************************
10684 // claimSystemWakeEvent
10685 //
10686 // For a driver to claim a device is the source/conduit of a system wake event.
10687 //******************************************************************************
10688 
10689 void
claimSystemWakeEvent(IOService * device,IOOptionBits flags,const char * reason,OSObject * details)10690 IOPMrootDomain::claimSystemWakeEvent(
10691 	IOService *     device,
10692 	IOOptionBits    flags,
10693 	const char *    reason,
10694 	OSObject *      details )
10695 {
10696 	OSSharedPtr<const OSSymbol>     deviceName;
10697 	OSSharedPtr<OSNumber>           deviceRegId;
10698 	OSSharedPtr<OSNumber>           claimTime;
10699 	OSSharedPtr<OSData>             flagsData;
10700 	OSSharedPtr<OSString>           reasonString;
10701 	OSSharedPtr<OSDictionary>       dict;
10702 	uint64_t                        timestamp;
10703 	bool                            addWakeReason;
10704 
10705 	if (!device || !reason) {
10706 		return;
10707 	}
10708 
10709 	pmEventTimeStamp(&timestamp);
10710 
10711 	IOOptionBits        aotFlags = 0;
10712 	bool                needAOTEvaluate = FALSE;
10713 
10714 	if (kIOPMAOTModeAddEventFlags & _aotMode) {
10715 		if (!strcmp("hold", reason)
10716 		    || !strcmp("help", reason)
10717 		    || !strcmp("menu", reason)
10718 		    || !strcmp("stockholm", reason)
10719 		    || !strcmp("ringer", reason)
10720 		    || !strcmp("ringerab", reason)
10721 		    || !strcmp("smc0", reason)
10722 		    || !strcmp("AOP.RTPWakeupAP", reason)
10723 		    || !strcmp("AOP.RTP_AP_IRQ", reason)
10724 		    || !strcmp("BT.OutboxNotEmpty", reason)
10725 		    || !strcmp("WL.OutboxNotEmpty", reason)) {
10726 			flags |= kIOPMWakeEventAOTExit;
10727 		}
10728 	}
10729 
10730 #if DEVELOPMENT || DEBUG
10731 	if (_aotLingerTime && !strcmp("rtc", reason)) {
10732 		flags |= kIOPMWakeEventAOTPossibleExit;
10733 	}
10734 #endif /* DEVELOPMENT || DEBUG */
10735 
10736 #if defined(XNU_TARGET_OS_OSX) && !DISPLAY_WRANGLER_PRESENT
10737 	// Publishing the WakeType is serialized by the PM work loop
10738 	if (!strcmp("rtc", reason) && (_nextScheduledAlarmType != NULL)) {
10739 		pmPowerStateQueue->submitPowerEvent(kPowerEventPublishWakeType,
10740 		    (void *) _nextScheduledAlarmType.get());
10741 	}
10742 
10743 	// Workaround for the missing wake HID event
10744 	if (gDarkWakeFlags & kDarkWakeFlagUserWakeWorkaround) {
10745 		if (!strcmp("trackpadkeyboard", reason)) {
10746 			pmPowerStateQueue->submitPowerEvent(kPowerEventPublishWakeType,
10747 			    (void *) gIOPMWakeTypeUserKey.get());
10748 		}
10749 	}
10750 #endif
10751 
10752 	deviceName   = device->copyName(gIOServicePlane);
10753 	deviceRegId  = OSNumber::withNumber(device->getRegistryEntryID(), 64);
10754 	claimTime    = OSNumber::withNumber(timestamp, 64);
10755 	flagsData    = OSData::withValue(flags);
10756 	reasonString = OSString::withCString(reason);
10757 	dict = OSDictionary::withCapacity(5 + (details ? 1 : 0));
10758 	if (!dict || !deviceName || !deviceRegId || !claimTime || !flagsData || !reasonString) {
10759 		goto done;
10760 	}
10761 
10762 	dict->setObject(gIONameKey, deviceName.get());
10763 	dict->setObject(gIORegistryEntryIDKey, deviceRegId.get());
10764 	dict->setObject(kIOPMWakeEventTimeKey, claimTime.get());
10765 	dict->setObject(kIOPMWakeEventFlagsKey, flagsData.get());
10766 	dict->setObject(kIOPMWakeEventReasonKey, reasonString.get());
10767 	if (details) {
10768 		dict->setObject(kIOPMWakeEventDetailsKey, details);
10769 	}
10770 
10771 	WAKEEVENT_LOCK();
10772 	addWakeReason = _acceptSystemWakeEvents;
10773 	if (_aotMode) {
10774 		IOLog("claimSystemWakeEvent(%s, %s, 0x%x) 0x%x %d\n", reason, deviceName->getCStringNoCopy(), (int)flags, _aotPendingFlags, _aotReadyToFullWake);
10775 	}
10776 	aotFlags        = (kIOPMWakeEventAOTFlags & flags);
10777 	aotFlags        = (aotFlags & ~_aotPendingFlags);
10778 	needAOTEvaluate = false;
10779 	if (_aotNow && aotFlags) {
10780 		if (kIOPMWakeEventAOTPossibleExit & flags) {
10781 			_aotMetrics->possibleCount++;
10782 		}
10783 		if (kIOPMWakeEventAOTConfirmedPossibleExit & flags) {
10784 			_aotMetrics->confirmedPossibleCount++;
10785 		}
10786 		if (kIOPMWakeEventAOTRejectedPossibleExit & flags) {
10787 			_aotMetrics->rejectedPossibleCount++;
10788 		}
10789 		if (kIOPMWakeEventAOTExpiredPossibleExit & flags) {
10790 			_aotMetrics->expiredPossibleCount++;
10791 		}
10792 
10793 		_aotPendingFlags |= aotFlags;
10794 		addWakeReason     = _aotNow && _systemWakeEventsArray && ((kIOPMWakeEventAOTExitFlags & aotFlags));
10795 		needAOTEvaluate   = _aotReadyToFullWake;
10796 	}
10797 	DMSG("claimSystemWakeEvent(%s, 0x%x, %s, 0x%llx) aot %d phase 0x%x add %d\n",
10798 	    reason, (int)flags, deviceName->getCStringNoCopy(), device->getRegistryEntryID(),
10799 	    _aotNow, pmTracer->getTracePhase(), addWakeReason);
10800 
10801 	if (!gWakeReasonSysctlRegistered) {
10802 		// Lazy registration until the platform driver stops registering
10803 		// the same name.
10804 		gWakeReasonSysctlRegistered = true;
10805 	}
10806 	if (addWakeReason) {
10807 		_systemWakeEventsArray->setObject(dict.get());
10808 		if (gWakeReasonString[0] != '\0') {
10809 			strlcat(gWakeReasonString, " ", sizeof(gWakeReasonString));
10810 		}
10811 		strlcat(gWakeReasonString, reason, sizeof(gWakeReasonString));
10812 	}
10813 
10814 	WAKEEVENT_UNLOCK();
10815 	if (needAOTEvaluate) {
10816 		// Call aotEvaluate() on PM work loop since it may call
10817 		// aotExit() which accesses PM state.
10818 		pmPowerStateQueue->submitPowerEvent(kPowerEventAOTEvaluate);
10819 	}
10820 
10821 done:
10822 	return;
10823 }
10824 
10825 //******************************************************************************
10826 // claimSystemBootEvent
10827 //
10828 // For a driver to claim a device is the source/conduit of a system boot event.
10829 //******************************************************************************
10830 
10831 void
claimSystemBootEvent(IOService * device,IOOptionBits flags,const char * reason,__unused OSObject * details)10832 IOPMrootDomain::claimSystemBootEvent(
10833 	IOService *              device,
10834 	IOOptionBits             flags,
10835 	const char *             reason,
10836 	__unused OSObject *      details )
10837 {
10838 	if (!device || !reason) {
10839 		return;
10840 	}
10841 
10842 	DEBUG_LOG("claimSystemBootEvent(%s, %s, 0x%x)\n", reason, device->getName(), (uint32_t) flags);
10843 	WAKEEVENT_LOCK();
10844 	if (!gBootReasonSysctlRegistered) {
10845 		// Lazy sysctl registration after setting gBootReasonString
10846 		strlcat(gBootReasonString, reason, sizeof(gBootReasonString));
10847 		os_atomic_store(&gBootReasonSysctlRegistered, true, release);
10848 	}
10849 	WAKEEVENT_UNLOCK();
10850 }
10851 
10852 //******************************************************************************
10853 // claimSystemShutdownEvent
10854 //
10855 // For drivers to claim a system shutdown event on the ensuing boot.
10856 //******************************************************************************
10857 
10858 void
claimSystemShutdownEvent(IOService * device,IOOptionBits flags,const char * reason,__unused OSObject * details)10859 IOPMrootDomain::claimSystemShutdownEvent(
10860 	IOService *              device,
10861 	IOOptionBits             flags,
10862 	const char *             reason,
10863 	__unused OSObject *      details )
10864 {
10865 	if (!device || !reason) {
10866 		return;
10867 	}
10868 
10869 	DEBUG_LOG("claimSystemShutdownEvent(%s, %s, 0x%x)\n", reason, device->getName(), (uint32_t) flags);
10870 	WAKEEVENT_LOCK();
10871 	if (gShutdownReasonString[0] != '\0') {
10872 		strlcat(gShutdownReasonString, " ", sizeof(gShutdownReasonString));
10873 	}
10874 	strlcat(gShutdownReasonString, reason, sizeof(gShutdownReasonString));
10875 
10876 	gShutdownReasonSysctlRegistered = true;
10877 	WAKEEVENT_UNLOCK();
10878 }
10879 
10880 /* * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * */
10881 
10882 // MARK: -
10883 // MARK: PMSettingHandle
10884 
OSDefineMetaClassAndStructors(PMSettingHandle,OSObject)10885 OSDefineMetaClassAndStructors( PMSettingHandle, OSObject )
10886 
10887 void
10888 PMSettingHandle::free( void )
10889 {
10890 	if (pmso) {
10891 		pmso->clientHandleFreed();
10892 		pmso->release();
10893 		pmso = NULL;
10894 	}
10895 
10896 	OSObject::free();
10897 }
10898 
10899 // MARK: -
10900 // MARK: PMSettingObject
10901 
10902 #undef super
10903 #define super OSObject
OSDefineMetaClassAndFinalStructors(PMSettingObject,OSObject)10904 OSDefineMetaClassAndFinalStructors( PMSettingObject, OSObject )
10905 
10906 /*
10907  * Static constructor/initializer for PMSettingObject
10908  */
10909 PMSettingObject *PMSettingObject::pmSettingObject(
10910 	IOPMrootDomain                      * parent_arg,
10911 	IOPMSettingControllerCallback       handler_arg,
10912 	OSObject                            * target_arg,
10913 	uintptr_t                           refcon_arg,
10914 	uint32_t                            supportedPowerSources,
10915 	const OSSymbol *                    settings[],
10916 	OSObject                            * *handle_obj)
10917 {
10918 	uint32_t                            settingCount = 0;
10919 	PMSettingObject                     *pmso = NULL;
10920 	PMSettingHandle                     *pmsh = NULL;
10921 
10922 	if (!parent_arg || !handler_arg || !settings || !handle_obj) {
10923 		return NULL;
10924 	}
10925 
10926 	// count OSSymbol entries in NULL terminated settings array
10927 	while (settings[settingCount]) {
10928 		settingCount++;
10929 	}
10930 	if (0 == settingCount) {
10931 		return NULL;
10932 	}
10933 
10934 	pmso = new PMSettingObject;
10935 	if (!pmso || !pmso->init()) {
10936 		goto fail;
10937 	}
10938 
10939 	pmsh = new PMSettingHandle;
10940 	if (!pmsh || !pmsh->init()) {
10941 		goto fail;
10942 	}
10943 
10944 	queue_init(&pmso->calloutQueue);
10945 	pmso->parent       = parent_arg;
10946 	pmso->func         = handler_arg;
10947 	pmso->target       = target_arg;
10948 	pmso->refcon       = refcon_arg;
10949 	pmso->settingCount = settingCount;
10950 
10951 	pmso->retain(); // handle holds a retain on pmso
10952 	pmsh->pmso = pmso;
10953 	pmso->pmsh = pmsh;
10954 
10955 	pmso->publishedFeatureID = OSDataAllocation<uint32_t>(settingCount, OSAllocateMemory);
10956 	if (pmso->publishedFeatureID) {
10957 		for (unsigned int i = 0; i < settingCount; i++) {
10958 			// Since there is now at least one listener to this setting, publish
10959 			// PM root domain support for it.
10960 			parent_arg->publishPMSetting( settings[i],
10961 			    supportedPowerSources, &pmso->publishedFeatureID[i] );
10962 		}
10963 	}
10964 
10965 	*handle_obj = pmsh;
10966 	return pmso;
10967 
10968 fail:
10969 	if (pmso) {
10970 		pmso->release();
10971 	}
10972 	if (pmsh) {
10973 		pmsh->release();
10974 	}
10975 	return NULL;
10976 }
10977 
10978 void
free(void)10979 PMSettingObject::free( void )
10980 {
10981 	if (publishedFeatureID) {
10982 		for (const auto& featureID : publishedFeatureID) {
10983 			if (featureID) {
10984 				parent->removePublishedFeature( featureID );
10985 			}
10986 		}
10987 
10988 		publishedFeatureID = {};
10989 	}
10990 
10991 	super::free();
10992 }
10993 
10994 IOReturn
dispatchPMSetting(const OSSymbol * type,OSObject * object)10995 PMSettingObject::dispatchPMSetting( const OSSymbol * type, OSObject * object )
10996 {
10997 	return (*func)(target, type, object, refcon);
10998 }
10999 
11000 void
clientHandleFreed(void)11001 PMSettingObject::clientHandleFreed( void )
11002 {
11003 	parent->deregisterPMSettingObject(this);
11004 }
11005 
11006 // MARK: -
11007 // MARK: PMAssertionsTracker
11008 
11009 //*********************************************************************************
11010 //*********************************************************************************
11011 //*********************************************************************************
11012 // class PMAssertionsTracker Implementation
11013 
11014 #define kAssertUniqueIDStart    500
11015 
11016 PMAssertionsTracker *
pmAssertionsTracker(IOPMrootDomain * rootDomain)11017 PMAssertionsTracker::pmAssertionsTracker( IOPMrootDomain *rootDomain )
11018 {
11019 	PMAssertionsTracker    *me;
11020 
11021 	me = new PMAssertionsTracker;
11022 	if (!me || !me->init()) {
11023 		if (me) {
11024 			me->release();
11025 		}
11026 		return NULL;
11027 	}
11028 
11029 	me->owner = rootDomain;
11030 	me->issuingUniqueID = kAssertUniqueIDStart;
11031 	me->assertionsArray = OSArray::withCapacity(5);
11032 	me->assertionsKernel = 0;
11033 	me->assertionsUser = 0;
11034 	me->assertionsCombined = 0;
11035 	me->assertionsArrayLock = IOLockAlloc();
11036 	me->tabulateProducerCount = me->tabulateConsumerCount = 0;
11037 
11038 	assert(me->assertionsArray);
11039 	assert(me->assertionsArrayLock);
11040 
11041 	return me;
11042 }
11043 
11044 /* tabulate
11045  * - Update assertionsKernel to reflect the state of all
11046  * assertions in the kernel.
11047  * - Update assertionsCombined to reflect both kernel & user space.
11048  */
11049 void
tabulate(void)11050 PMAssertionsTracker::tabulate(void)
11051 {
11052 	int i;
11053 	int count;
11054 	const PMAssertStruct *_a = nullptr;
11055 	OSValueObject<PMAssertStruct> *_d = nullptr;
11056 
11057 	IOPMDriverAssertionType oldKernel = assertionsKernel;
11058 	IOPMDriverAssertionType oldCombined = assertionsCombined;
11059 
11060 	ASSERT_GATED();
11061 
11062 	assertionsKernel = 0;
11063 	assertionsCombined = 0;
11064 
11065 	if (!assertionsArray) {
11066 		return;
11067 	}
11068 
11069 	if ((count = assertionsArray->getCount())) {
11070 		for (i = 0; i < count; i++) {
11071 			_d = OSDynamicCast(OSValueObject<PMAssertStruct>, assertionsArray->getObject(i));
11072 			if (_d) {
11073 				_a = _d->getBytesNoCopy();
11074 				if (_a && (kIOPMDriverAssertionLevelOn == _a->level)) {
11075 					assertionsKernel |= _a->assertionBits;
11076 				}
11077 			}
11078 		}
11079 	}
11080 
11081 	tabulateProducerCount++;
11082 	assertionsCombined = assertionsKernel | assertionsUser;
11083 
11084 	if ((assertionsKernel != oldKernel) ||
11085 	    (assertionsCombined != oldCombined)) {
11086 		owner->evaluateAssertions(assertionsCombined, oldCombined);
11087 	}
11088 }
11089 
11090 void
updateCPUBitAccounting(PMAssertStruct * assertStruct)11091 PMAssertionsTracker::updateCPUBitAccounting( PMAssertStruct *assertStruct )
11092 {
11093 	AbsoluteTime now;
11094 	uint64_t     nsec;
11095 
11096 	if (((assertStruct->assertionBits & kIOPMDriverAssertionCPUBit) == 0) ||
11097 	    (assertStruct->assertCPUStartTime == 0)) {
11098 		return;
11099 	}
11100 
11101 	now = mach_absolute_time();
11102 	SUB_ABSOLUTETIME(&now, &assertStruct->assertCPUStartTime);
11103 	absolutetime_to_nanoseconds(now, &nsec);
11104 	assertStruct->assertCPUDuration += nsec;
11105 	assertStruct->assertCPUStartTime = 0;
11106 
11107 	if (assertStruct->assertCPUDuration > maxAssertCPUDuration) {
11108 		maxAssertCPUDuration = assertStruct->assertCPUDuration;
11109 		maxAssertCPUEntryId = assertStruct->registryEntryID;
11110 	}
11111 }
11112 
11113 void
reportCPUBitAccounting(void)11114 PMAssertionsTracker::reportCPUBitAccounting( void )
11115 {
11116 	const PMAssertStruct *_a = nullptr;
11117 	OSValueObject<PMAssertStruct> *_d = nullptr;
11118 	int            i, count;
11119 	AbsoluteTime   now;
11120 	uint64_t       nsec;
11121 
11122 	ASSERT_GATED();
11123 
11124 	// Account for drivers that are still holding the CPU assertion
11125 	if (assertionsKernel & kIOPMDriverAssertionCPUBit) {
11126 		now = mach_absolute_time();
11127 		if ((count = assertionsArray->getCount())) {
11128 			for (i = 0; i < count; i++) {
11129 				_d = OSDynamicCast(OSValueObject<PMAssertStruct>, assertionsArray->getObject(i));
11130 				if (_d) {
11131 					_a = _d->getBytesNoCopy();
11132 					if ((_a->assertionBits & kIOPMDriverAssertionCPUBit) &&
11133 					    (_a->level == kIOPMDriverAssertionLevelOn) &&
11134 					    (_a->assertCPUStartTime != 0)) {
11135 						// Don't modify PMAssertStruct, leave that
11136 						// for updateCPUBitAccounting()
11137 						SUB_ABSOLUTETIME(&now, &_a->assertCPUStartTime);
11138 						absolutetime_to_nanoseconds(now, &nsec);
11139 						nsec += _a->assertCPUDuration;
11140 						if (nsec > maxAssertCPUDuration) {
11141 							maxAssertCPUDuration = nsec;
11142 							maxAssertCPUEntryId = _a->registryEntryID;
11143 						}
11144 					}
11145 				}
11146 			}
11147 		}
11148 	}
11149 
11150 	if (maxAssertCPUDuration) {
11151 		DLOG("cpu assertion held for %llu ms by 0x%llx\n",
11152 		    (maxAssertCPUDuration / NSEC_PER_MSEC), maxAssertCPUEntryId);
11153 	}
11154 
11155 	maxAssertCPUDuration = 0;
11156 	maxAssertCPUEntryId = 0;
11157 }
11158 
11159 void
publishProperties(void)11160 PMAssertionsTracker::publishProperties( void )
11161 {
11162 	OSSharedPtr<OSArray>             assertionsSummary;
11163 
11164 	if (tabulateConsumerCount != tabulateProducerCount) {
11165 		IOLockLock(assertionsArrayLock);
11166 
11167 		tabulateConsumerCount = tabulateProducerCount;
11168 
11169 		/* Publish the IOPMrootDomain property "DriverPMAssertionsDetailed"
11170 		 */
11171 		assertionsSummary = copyAssertionsArray();
11172 		if (assertionsSummary) {
11173 			owner->setProperty(kIOPMAssertionsDriverDetailedKey, assertionsSummary.get());
11174 		} else {
11175 			owner->removeProperty(kIOPMAssertionsDriverDetailedKey);
11176 		}
11177 
11178 		/* Publish the IOPMrootDomain property "DriverPMAssertions"
11179 		 */
11180 		owner->setProperty(kIOPMAssertionsDriverKey, assertionsKernel, 64);
11181 
11182 		IOLockUnlock(assertionsArrayLock);
11183 	}
11184 }
11185 
11186 PMAssertStruct *
detailsForID(IOPMDriverAssertionID _id,int * index)11187 PMAssertionsTracker::detailsForID(IOPMDriverAssertionID _id, int *index)
11188 {
11189 	PMAssertStruct      *_a = NULL;
11190 	OSValueObject<PMAssertStruct> *_d = nullptr;
11191 	int                 found = -1;
11192 	int                 count = 0;
11193 	int                 i = 0;
11194 
11195 	if (assertionsArray
11196 	    && (count = assertionsArray->getCount())) {
11197 		for (i = 0; i < count; i++) {
11198 			_d = OSDynamicCast(OSValueObject<PMAssertStruct>, assertionsArray->getObject(i));
11199 			if (_d) {
11200 				_a = _d->getMutableBytesNoCopy();
11201 				if (_a && (_id == _a->id)) {
11202 					found = i;
11203 					break;
11204 				}
11205 			}
11206 		}
11207 	}
11208 
11209 	if (-1 == found) {
11210 		return NULL;
11211 	} else {
11212 		if (index) {
11213 			*index = found;
11214 		}
11215 		return _a;
11216 	}
11217 }
11218 
11219 /* PMAssertionsTracker::handleCreateAssertion
11220  * Perform assertion work on the PM workloop. Do not call directly.
11221  */
11222 IOReturn
handleCreateAssertion(OSValueObject<PMAssertStruct> * newAssertion)11223 PMAssertionsTracker::handleCreateAssertion(OSValueObject<PMAssertStruct> *newAssertion)
11224 {
11225 	PMAssertStruct *assertStruct = nullptr;
11226 
11227 	ASSERT_GATED();
11228 
11229 	if (newAssertion) {
11230 		IOLockLock(assertionsArrayLock);
11231 		assertStruct = newAssertion->getMutableBytesNoCopy();
11232 		if ((assertStruct->assertionBits & kIOPMDriverAssertionCPUBit) &&
11233 		    (assertStruct->level == kIOPMDriverAssertionLevelOn)) {
11234 			assertStruct->assertCPUStartTime = mach_absolute_time();
11235 		}
11236 		assertionsArray->setObject(newAssertion);
11237 		IOLockUnlock(assertionsArrayLock);
11238 		newAssertion->release();
11239 
11240 		tabulate();
11241 	}
11242 	return kIOReturnSuccess;
11243 }
11244 
11245 /* PMAssertionsTracker::createAssertion
11246  * createAssertion allocates memory for a new PM assertion, and affects system behavior, if
11247  * appropiate.
11248  */
11249 IOReturn
createAssertion(IOPMDriverAssertionType which,IOPMDriverAssertionLevel level,IOService * serviceID,const char * whoItIs,IOPMDriverAssertionID * outID)11250 PMAssertionsTracker::createAssertion(
11251 	IOPMDriverAssertionType which,
11252 	IOPMDriverAssertionLevel level,
11253 	IOService *serviceID,
11254 	const char *whoItIs,
11255 	IOPMDriverAssertionID *outID)
11256 {
11257 	OSSharedPtr<OSValueObject<PMAssertStruct> > dataStore;
11258 	PMAssertStruct  track;
11259 
11260 	// Warning: trillions and trillions of created assertions may overflow the unique ID.
11261 	track.id = OSIncrementAtomic64((SInt64*) &issuingUniqueID);
11262 	track.level = level;
11263 	track.assertionBits = which;
11264 
11265 	// NB: ownerString is explicitly managed by PMAssertStruct
11266 	// it will be released in `handleReleaseAssertion' below
11267 	track.ownerString = whoItIs ? OSSymbol::withCString(whoItIs).detach():nullptr;
11268 	track.ownerService = serviceID;
11269 	track.registryEntryID = serviceID ? serviceID->getRegistryEntryID():0;
11270 	track.modifiedTime = 0;
11271 	pmEventTimeStamp(&track.createdTime);
11272 	track.assertCPUStartTime = 0;
11273 	track.assertCPUDuration = 0;
11274 
11275 	dataStore = OSValueObjectWithValue(track);
11276 	if (!dataStore) {
11277 		if (track.ownerString) {
11278 			track.ownerString->release();
11279 			track.ownerString = NULL;
11280 		}
11281 		return kIOReturnNoMemory;
11282 	}
11283 
11284 	*outID = track.id;
11285 
11286 	if (owner && owner->pmPowerStateQueue) {
11287 		// queue action is responsible for releasing dataStore
11288 		owner->pmPowerStateQueue->submitPowerEvent(kPowerEventAssertionCreate, (void *)dataStore.detach());
11289 	}
11290 
11291 	return kIOReturnSuccess;
11292 }
11293 
11294 /* PMAssertionsTracker::handleReleaseAssertion
11295  * Runs in PM workloop. Do not call directly.
11296  */
11297 IOReturn
handleReleaseAssertion(IOPMDriverAssertionID _id)11298 PMAssertionsTracker::handleReleaseAssertion(
11299 	IOPMDriverAssertionID _id)
11300 {
11301 	ASSERT_GATED();
11302 
11303 	int             index;
11304 	PMAssertStruct  *assertStruct = detailsForID(_id, &index);
11305 
11306 	if (!assertStruct) {
11307 		return kIOReturnNotFound;
11308 	}
11309 
11310 	IOLockLock(assertionsArrayLock);
11311 
11312 	if ((assertStruct->assertionBits & kIOPMDriverAssertionCPUBit) &&
11313 	    (assertStruct->level == kIOPMDriverAssertionLevelOn)) {
11314 		updateCPUBitAccounting(assertStruct);
11315 	}
11316 
11317 	if (assertStruct->ownerString) {
11318 		assertStruct->ownerString->release();
11319 		assertStruct->ownerString = NULL;
11320 	}
11321 
11322 	assertionsArray->removeObject(index);
11323 	IOLockUnlock(assertionsArrayLock);
11324 
11325 	tabulate();
11326 	return kIOReturnSuccess;
11327 }
11328 
11329 /* PMAssertionsTracker::releaseAssertion
11330  * Releases an assertion and affects system behavior if appropiate.
11331  * Actual work happens on PM workloop.
11332  */
11333 IOReturn
releaseAssertion(IOPMDriverAssertionID _id)11334 PMAssertionsTracker::releaseAssertion(
11335 	IOPMDriverAssertionID _id)
11336 {
11337 	if (owner && owner->pmPowerStateQueue) {
11338 		owner->pmPowerStateQueue->submitPowerEvent(kPowerEventAssertionRelease, NULL, _id);
11339 	}
11340 	return kIOReturnSuccess;
11341 }
11342 
11343 /* PMAssertionsTracker::handleSetAssertionLevel
11344  * Runs in PM workloop. Do not call directly.
11345  */
11346 IOReturn
handleSetAssertionLevel(IOPMDriverAssertionID _id,IOPMDriverAssertionLevel _level)11347 PMAssertionsTracker::handleSetAssertionLevel(
11348 	IOPMDriverAssertionID    _id,
11349 	IOPMDriverAssertionLevel _level)
11350 {
11351 	PMAssertStruct      *assertStruct = detailsForID(_id, NULL);
11352 
11353 	ASSERT_GATED();
11354 
11355 	if (!assertStruct) {
11356 		return kIOReturnNotFound;
11357 	}
11358 
11359 	IOLockLock(assertionsArrayLock);
11360 	pmEventTimeStamp(&assertStruct->modifiedTime);
11361 	if ((assertStruct->assertionBits & kIOPMDriverAssertionCPUBit) &&
11362 	    (assertStruct->level != _level)) {
11363 		if (_level == kIOPMDriverAssertionLevelOn) {
11364 			assertStruct->assertCPUStartTime = mach_absolute_time();
11365 		} else {
11366 			updateCPUBitAccounting(assertStruct);
11367 		}
11368 	}
11369 	assertStruct->level = _level;
11370 	IOLockUnlock(assertionsArrayLock);
11371 
11372 	tabulate();
11373 	return kIOReturnSuccess;
11374 }
11375 
11376 /* PMAssertionsTracker::setAssertionLevel
11377  */
11378 IOReturn
setAssertionLevel(IOPMDriverAssertionID _id,IOPMDriverAssertionLevel _level)11379 PMAssertionsTracker::setAssertionLevel(
11380 	IOPMDriverAssertionID    _id,
11381 	IOPMDriverAssertionLevel _level)
11382 {
11383 	if (owner && owner->pmPowerStateQueue) {
11384 		owner->pmPowerStateQueue->submitPowerEvent(kPowerEventAssertionSetLevel,
11385 		    (void *)(uintptr_t)_level, _id);
11386 	}
11387 
11388 	return kIOReturnSuccess;
11389 }
11390 
11391 IOReturn
handleSetUserAssertionLevels(void * arg0)11392 PMAssertionsTracker::handleSetUserAssertionLevels(void * arg0)
11393 {
11394 	IOPMDriverAssertionType new_user_levels = *(IOPMDriverAssertionType *) arg0;
11395 
11396 	ASSERT_GATED();
11397 
11398 	if (new_user_levels != assertionsUser) {
11399 		DLOG("assertionsUser 0x%llx->0x%llx\n", assertionsUser, new_user_levels);
11400 		assertionsUser = new_user_levels;
11401 	}
11402 
11403 	tabulate();
11404 	return kIOReturnSuccess;
11405 }
11406 
11407 IOReturn
setUserAssertionLevels(IOPMDriverAssertionType new_user_levels)11408 PMAssertionsTracker::setUserAssertionLevels(
11409 	IOPMDriverAssertionType new_user_levels)
11410 {
11411 	if (gIOPMWorkLoop) {
11412 		gIOPMWorkLoop->runAction(
11413 			OSMemberFunctionCast(
11414 				IOWorkLoop::Action,
11415 				this,
11416 				&PMAssertionsTracker::handleSetUserAssertionLevels),
11417 			this,
11418 			(void *) &new_user_levels, NULL, NULL, NULL);
11419 	}
11420 
11421 	return kIOReturnSuccess;
11422 }
11423 
11424 
11425 OSSharedPtr<OSArray>
copyAssertionsArray(void)11426 PMAssertionsTracker::copyAssertionsArray(void)
11427 {
11428 	int count;
11429 	int i;
11430 	OSSharedPtr<OSArray>     outArray = NULL;
11431 
11432 	if (!assertionsArray || (0 == (count = assertionsArray->getCount()))) {
11433 		goto exit;
11434 	}
11435 	outArray = OSArray::withCapacity(count);
11436 	if (!outArray) {
11437 		goto exit;
11438 	}
11439 
11440 	for (i = 0; i < count; i++) {
11441 		const PMAssertStruct *_a = nullptr;
11442 		OSValueObject<PMAssertStruct> *_d = nullptr;
11443 		OSSharedPtr<OSDictionary>    details;
11444 
11445 		_d = OSDynamicCast(OSValueObject<PMAssertStruct>, assertionsArray->getObject(i));
11446 		if (_d && (_a = _d->getBytesNoCopy())) {
11447 			OSSharedPtr<OSNumber>        _n;
11448 
11449 			details = OSDictionary::withCapacity(7);
11450 			if (!details) {
11451 				continue;
11452 			}
11453 
11454 			outArray->setObject(details.get());
11455 
11456 			_n = OSNumber::withNumber(_a->id, 64);
11457 			if (_n) {
11458 				details->setObject(kIOPMDriverAssertionIDKey, _n.get());
11459 			}
11460 			_n = OSNumber::withNumber(_a->createdTime, 64);
11461 			if (_n) {
11462 				details->setObject(kIOPMDriverAssertionCreatedTimeKey, _n.get());
11463 			}
11464 			_n = OSNumber::withNumber(_a->modifiedTime, 64);
11465 			if (_n) {
11466 				details->setObject(kIOPMDriverAssertionModifiedTimeKey, _n.get());
11467 			}
11468 			_n = OSNumber::withNumber((uintptr_t)_a->registryEntryID, 64);
11469 			if (_n) {
11470 				details->setObject(kIOPMDriverAssertionRegistryEntryIDKey, _n.get());
11471 			}
11472 			_n = OSNumber::withNumber(_a->level, 64);
11473 			if (_n) {
11474 				details->setObject(kIOPMDriverAssertionLevelKey, _n.get());
11475 			}
11476 			_n = OSNumber::withNumber(_a->assertionBits, 64);
11477 			if (_n) {
11478 				details->setObject(kIOPMDriverAssertionAssertedKey, _n.get());
11479 			}
11480 
11481 			if (_a->ownerString) {
11482 				details->setObject(kIOPMDriverAssertionOwnerStringKey, _a->ownerString);
11483 			}
11484 		}
11485 	}
11486 
11487 exit:
11488 	return os::move(outArray);
11489 }
11490 
11491 IOPMDriverAssertionType
getActivatedAssertions(void)11492 PMAssertionsTracker::getActivatedAssertions(void)
11493 {
11494 	return assertionsCombined;
11495 }
11496 
11497 IOPMDriverAssertionLevel
getAssertionLevel(IOPMDriverAssertionType type)11498 PMAssertionsTracker::getAssertionLevel(
11499 	IOPMDriverAssertionType type)
11500 {
11501 	// FIXME: unused and also wrong
11502 	if (type && ((type & assertionsKernel) == assertionsKernel)) {
11503 		return kIOPMDriverAssertionLevelOn;
11504 	} else {
11505 		return kIOPMDriverAssertionLevelOff;
11506 	}
11507 }
11508 
11509 //*********************************************************************************
11510 //*********************************************************************************
11511 //*********************************************************************************
11512 
11513 
11514 static void
pmEventTimeStamp(uint64_t * recordTS)11515 pmEventTimeStamp(uint64_t *recordTS)
11516 {
11517 	clock_sec_t     tsec;
11518 	clock_usec_t    tusec;
11519 
11520 	if (!recordTS) {
11521 		return;
11522 	}
11523 
11524 	// We assume tsec fits into 32 bits; 32 bits holds enough
11525 	// seconds for 136 years since the epoch in 1970.
11526 	clock_get_calendar_microtime(&tsec, &tusec);
11527 
11528 
11529 	// Pack the sec & microsec calendar time into a uint64_t, for fun.
11530 	*recordTS = 0;
11531 	*recordTS |= (uint32_t)tusec;
11532 	*recordTS |= ((uint64_t)tsec << 32);
11533 
11534 	return;
11535 }
11536 
11537 // MARK: -
11538 // MARK: IORootParent
11539 
11540 /* * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * * */
11541 
11542 OSDefineMetaClassAndFinalStructors(IORootParent, IOService)
11543 
11544 // The reason that root domain needs a root parent is to facilitate demand
11545 // sleep, since a power change from the root parent cannot be vetoed.
11546 //
11547 // The above statement is no longer true since root domain now performs
11548 // demand sleep using overrides. But root parent remains to avoid changing
11549 // the power tree stacking. Root parent is parked at the max power state.
11550 
11551 
11552 static IOPMPowerState patriarchPowerStates[2] =
11553 {
11554 	{1, 0, ON_POWER, 0, 0, 0, 0, 0, 0, 0, 0, 0},
11555 	{1, 0, ON_POWER, 0, 0, 0, 0, 0, 0, 0, 0, 0},
11556 };
11557 
11558 void
initialize(void)11559 IORootParent::initialize( void )
11560 {
11561 
11562 	gIOPMPSExternalConnectedKey = OSSymbol::withCStringNoCopy(kIOPMPSExternalConnectedKey);
11563 	gIOPMPSExternalChargeCapableKey = OSSymbol::withCStringNoCopy(kIOPMPSExternalChargeCapableKey);
11564 	gIOPMPSBatteryInstalledKey = OSSymbol::withCStringNoCopy(kIOPMPSBatteryInstalledKey);
11565 	gIOPMPSIsChargingKey = OSSymbol::withCStringNoCopy(kIOPMPSIsChargingKey);
11566 	gIOPMPSAtWarnLevelKey = OSSymbol::withCStringNoCopy(kIOPMPSAtWarnLevelKey);
11567 	gIOPMPSAtCriticalLevelKey = OSSymbol::withCStringNoCopy(kIOPMPSAtCriticalLevelKey);
11568 	gIOPMPSCurrentCapacityKey = OSSymbol::withCStringNoCopy(kIOPMPSCurrentCapacityKey);
11569 	gIOPMPSMaxCapacityKey = OSSymbol::withCStringNoCopy(kIOPMPSMaxCapacityKey);
11570 	gIOPMPSDesignCapacityKey = OSSymbol::withCStringNoCopy(kIOPMPSDesignCapacityKey);
11571 	gIOPMPSTimeRemainingKey = OSSymbol::withCStringNoCopy(kIOPMPSTimeRemainingKey);
11572 	gIOPMPSAmperageKey = OSSymbol::withCStringNoCopy(kIOPMPSAmperageKey);
11573 	gIOPMPSVoltageKey = OSSymbol::withCStringNoCopy(kIOPMPSVoltageKey);
11574 	gIOPMPSCycleCountKey = OSSymbol::withCStringNoCopy(kIOPMPSCycleCountKey);
11575 	gIOPMPSMaxErrKey = OSSymbol::withCStringNoCopy(kIOPMPSMaxErrKey);
11576 	gIOPMPSAdapterInfoKey = OSSymbol::withCStringNoCopy(kIOPMPSAdapterInfoKey);
11577 	gIOPMPSLocationKey = OSSymbol::withCStringNoCopy(kIOPMPSLocationKey);
11578 	gIOPMPSErrorConditionKey = OSSymbol::withCStringNoCopy(kIOPMPSErrorConditionKey);
11579 	gIOPMPSManufacturerKey = OSSymbol::withCStringNoCopy(kIOPMPSManufacturerKey);
11580 	gIOPMPSManufactureDateKey = OSSymbol::withCStringNoCopy(kIOPMPSManufactureDateKey);
11581 	gIOPMPSModelKey = OSSymbol::withCStringNoCopy(kIOPMPSModelKey);
11582 	gIOPMPSSerialKey = OSSymbol::withCStringNoCopy(kIOPMPSSerialKey);
11583 	gIOPMPSLegacyBatteryInfoKey = OSSymbol::withCStringNoCopy(kIOPMPSLegacyBatteryInfoKey);
11584 	gIOPMPSBatteryHealthKey = OSSymbol::withCStringNoCopy(kIOPMPSBatteryHealthKey);
11585 	gIOPMPSHealthConfidenceKey = OSSymbol::withCStringNoCopy(kIOPMPSHealthConfidenceKey);
11586 	gIOPMPSCapacityEstimatedKey = OSSymbol::withCStringNoCopy(kIOPMPSCapacityEstimatedKey);
11587 	gIOPMPSBatteryChargeStatusKey = OSSymbol::withCStringNoCopy(kIOPMPSBatteryChargeStatusKey);
11588 	gIOPMPSBatteryTemperatureKey = OSSymbol::withCStringNoCopy(kIOPMPSBatteryTemperatureKey);
11589 	gIOPMPSAdapterDetailsKey = OSSymbol::withCStringNoCopy(kIOPMPSAdapterDetailsKey);
11590 	gIOPMPSChargerConfigurationKey = OSSymbol::withCStringNoCopy(kIOPMPSChargerConfigurationKey);
11591 	gIOPMPSAdapterDetailsIDKey = OSSymbol::withCStringNoCopy(kIOPMPSAdapterDetailsIDKey);
11592 	gIOPMPSAdapterDetailsWattsKey = OSSymbol::withCStringNoCopy(kIOPMPSAdapterDetailsWattsKey);
11593 	gIOPMPSAdapterDetailsRevisionKey = OSSymbol::withCStringNoCopy(kIOPMPSAdapterDetailsRevisionKey);
11594 	gIOPMPSAdapterDetailsSerialNumberKey = OSSymbol::withCStringNoCopy(kIOPMPSAdapterDetailsSerialNumberKey);
11595 	gIOPMPSAdapterDetailsFamilyKey = OSSymbol::withCStringNoCopy(kIOPMPSAdapterDetailsFamilyKey);
11596 	gIOPMPSAdapterDetailsAmperageKey = OSSymbol::withCStringNoCopy(kIOPMPSAdapterDetailsAmperageKey);
11597 	gIOPMPSAdapterDetailsDescriptionKey = OSSymbol::withCStringNoCopy(kIOPMPSAdapterDetailsDescriptionKey);
11598 	gIOPMPSAdapterDetailsPMUConfigurationKey = OSSymbol::withCStringNoCopy(kIOPMPSAdapterDetailsPMUConfigurationKey);
11599 	gIOPMPSAdapterDetailsSourceIDKey = OSSymbol::withCStringNoCopy(kIOPMPSAdapterDetailsSourceIDKey);
11600 	gIOPMPSAdapterDetailsErrorFlagsKey = OSSymbol::withCStringNoCopy(kIOPMPSAdapterDetailsErrorFlagsKey);
11601 	gIOPMPSAdapterDetailsSharedSourceKey = OSSymbol::withCStringNoCopy(kIOPMPSAdapterDetailsSharedSourceKey);
11602 	gIOPMPSAdapterDetailsCloakedKey = OSSymbol::withCStringNoCopy(kIOPMPSAdapterDetailsCloakedKey);
11603 	gIOPMPSInvalidWakeSecondsKey = OSSymbol::withCStringNoCopy(kIOPMPSInvalidWakeSecondsKey);
11604 	gIOPMPSPostChargeWaitSecondsKey = OSSymbol::withCStringNoCopy(kIOPMPSPostChargeWaitSecondsKey);
11605 	gIOPMPSPostDishargeWaitSecondsKey = OSSymbol::withCStringNoCopy(kIOPMPSPostDishargeWaitSecondsKey);
11606 }
11607 
11608 bool
start(IOService * nub)11609 IORootParent::start( IOService * nub )
11610 {
11611 	IOService::start(nub);
11612 	attachToParent( getRegistryRoot(), gIOPowerPlane );
11613 	PMinit();
11614 	registerPowerDriver(this, patriarchPowerStates, 2);
11615 	makeUsable();
11616 	return true;
11617 }
11618 
11619 void
shutDownSystem(void)11620 IORootParent::shutDownSystem( void )
11621 {
11622 }
11623 
11624 void
restartSystem(void)11625 IORootParent::restartSystem( void )
11626 {
11627 }
11628 
11629 void
sleepSystem(void)11630 IORootParent::sleepSystem( void )
11631 {
11632 }
11633 
11634 void
dozeSystem(void)11635 IORootParent::dozeSystem( void )
11636 {
11637 }
11638 
11639 void
sleepToDoze(void)11640 IORootParent::sleepToDoze( void )
11641 {
11642 }
11643 
11644 void
wakeSystem(void)11645 IORootParent::wakeSystem( void )
11646 {
11647 }
11648 
11649 OSSharedPtr<OSObject>
copyProperty(const char * aKey) const11650 IORootParent::copyProperty( const char * aKey) const
11651 {
11652 	return IOService::copyProperty(aKey);
11653 }
11654 
11655 uint32_t
getWatchdogTimeout()11656 IOPMrootDomain::getWatchdogTimeout()
11657 {
11658 	if (gSwdSleepWakeTimeout) {
11659 		gSwdSleepTimeout = gSwdWakeTimeout = gSwdSleepWakeTimeout;
11660 	}
11661 	if ((pmTracer->getTracePhase() < kIOPMTracePointSystemSleep) ||
11662 	    (pmTracer->getTracePhase() == kIOPMTracePointDarkWakeEntry)) {
11663 		return gSwdSleepTimeout ? gSwdSleepTimeout : WATCHDOG_SLEEP_TIMEOUT;
11664 	} else {
11665 		return gSwdWakeTimeout ? gSwdWakeTimeout : WATCHDOG_WAKE_TIMEOUT;
11666 	}
11667 }
11668 
11669 
11670 #if defined(__i386__) || defined(__x86_64__) || (defined(__arm64__) && HIBERNATION)
11671 IOReturn
restartWithStackshot()11672 IOPMrootDomain::restartWithStackshot()
11673 {
11674 	takeStackshot(true);
11675 
11676 	return kIOReturnSuccess;
11677 }
11678 
11679 void
sleepWakeDebugTrig(bool wdogTrigger)11680 IOPMrootDomain::sleepWakeDebugTrig(bool wdogTrigger)
11681 {
11682 	takeStackshot(wdogTrigger);
11683 }
11684 
11685 void
tracePhase2String(uint32_t tracePhase,const char ** phaseString,const char ** description)11686 IOPMrootDomain::tracePhase2String(uint32_t tracePhase, const char **phaseString, const char **description)
11687 {
11688 	switch (tracePhase) {
11689 	case kIOPMTracePointSleepStarted:
11690 		*phaseString = "kIOPMTracePointSleepStarted";
11691 		*description = "starting sleep";
11692 		break;
11693 
11694 	case kIOPMTracePointSleepApplications:
11695 		*phaseString = "kIOPMTracePointSleepApplications";
11696 		*description = "notifying applications";
11697 		break;
11698 
11699 	case kIOPMTracePointSleepPriorityClients:
11700 		*phaseString = "kIOPMTracePointSleepPriorityClients";
11701 		*description = "notifying clients about upcoming system capability changes";
11702 		break;
11703 
11704 	case kIOPMTracePointSleepWillChangeInterests:
11705 		*phaseString = "kIOPMTracePointSleepWillChangeInterests";
11706 		*description = "creating hibernation file or while calling rootDomain's clients about upcoming rootDomain's state changes";
11707 		break;
11708 
11709 	case kIOPMTracePointSleepPowerPlaneDrivers:
11710 		*phaseString = "kIOPMTracePointSleepPowerPlaneDrivers";
11711 		*description = "calling power state change callbacks";
11712 		break;
11713 
11714 	case kIOPMTracePointSleepDidChangeInterests:
11715 		*phaseString = "kIOPMTracePointSleepDidChangeInterests";
11716 		*description = "calling rootDomain's clients about rootDomain's state changes";
11717 		break;
11718 
11719 	case kIOPMTracePointSleepCapabilityClients:
11720 		*phaseString = "kIOPMTracePointSleepCapabilityClients";
11721 		*description = "notifying clients about current system capabilities";
11722 		break;
11723 
11724 	case kIOPMTracePointSleepPlatformActions:
11725 		*phaseString = "kIOPMTracePointSleepPlatformActions";
11726 		*description = "calling Quiesce/Sleep action callbacks";
11727 		break;
11728 
11729 	case kIOPMTracePointSleepCPUs:
11730 	{
11731 		*phaseString = "kIOPMTracePointSleepCPUs";
11732 #if defined(__i386__) || defined(__x86_64__)
11733 		/*
11734 		 * We cannot use the getCPUNumber() method to get the cpu number, since
11735 		 * that cpu number is unrelated to the cpu number we need (we need the cpu
11736 		 * number as enumerated by the scheduler, NOT the CPU number enumerated
11737 		 * by ACPIPlatform as the CPUs are enumerated in MADT order).
11738 		 * Instead, pass the Mach processor pointer associated with the current
11739 		 * shutdown target so its associated cpu_id can be used in
11740 		 * processor_to_datastring.
11741 		 */
11742 		if (currentShutdownTarget != NULL &&
11743 		    currentShutdownTarget->getMachProcessor() != NULL) {
11744 			const char *sbuf = processor_to_datastring("halting all non-boot CPUs",
11745 			    currentShutdownTarget->getMachProcessor());
11746 			*description = sbuf;
11747 		} else {
11748 			*description = "halting all non-boot CPUs";
11749 		}
11750 #else
11751 		*description = "halting all non-boot CPUs";
11752 #endif
11753 		break;
11754 	}
11755 	case kIOPMTracePointSleepPlatformDriver:
11756 		*phaseString = "kIOPMTracePointSleepPlatformDriver";
11757 		*description = "executing platform specific code";
11758 		break;
11759 
11760 	case kIOPMTracePointHibernate:
11761 		*phaseString = "kIOPMTracePointHibernate";
11762 		*description = "writing the hibernation image";
11763 		break;
11764 
11765 	case kIOPMTracePointSystemSleep:
11766 		*phaseString = "kIOPMTracePointSystemSleep";
11767 		*description = "in EFI/Bootrom after last point of entry to sleep";
11768 		break;
11769 
11770 	case kIOPMTracePointWakePlatformDriver:
11771 		*phaseString = "kIOPMTracePointWakePlatformDriver";
11772 		*description = "executing platform specific code";
11773 		break;
11774 
11775 
11776 	case kIOPMTracePointWakePlatformActions:
11777 		*phaseString = "kIOPMTracePointWakePlatformActions";
11778 		*description = "calling Wake action callbacks";
11779 		break;
11780 
11781 	case kIOPMTracePointWakeCPUs:
11782 		*phaseString = "kIOPMTracePointWakeCPUs";
11783 		*description = "starting non-boot CPUs";
11784 		break;
11785 
11786 	case kIOPMTracePointWakeWillPowerOnClients:
11787 		*phaseString = "kIOPMTracePointWakeWillPowerOnClients";
11788 		*description = "sending kIOMessageSystemWillPowerOn message to kernel and userspace clients";
11789 		break;
11790 
11791 	case kIOPMTracePointWakeWillChangeInterests:
11792 		*phaseString = "kIOPMTracePointWakeWillChangeInterests";
11793 		*description = "calling rootDomain's clients about upcoming rootDomain's state changes";
11794 		break;
11795 
11796 	case kIOPMTracePointWakeDidChangeInterests:
11797 		*phaseString = "kIOPMTracePointWakeDidChangeInterests";
11798 		*description = "calling rootDomain's clients about completed rootDomain's state changes";
11799 		break;
11800 
11801 	case kIOPMTracePointWakePowerPlaneDrivers:
11802 		*phaseString = "kIOPMTracePointWakePowerPlaneDrivers";
11803 		*description = "calling power state change callbacks";
11804 		break;
11805 
11806 	case kIOPMTracePointWakeCapabilityClients:
11807 		*phaseString = "kIOPMTracePointWakeCapabilityClients";
11808 		*description = "informing clients about current system capabilities";
11809 		break;
11810 
11811 	case kIOPMTracePointWakeApplications:
11812 		*phaseString = "kIOPMTracePointWakeApplications";
11813 		*description = "sending asynchronous kIOMessageSystemHasPoweredOn message to userspace clients";
11814 		break;
11815 
11816 	case kIOPMTracePointDarkWakeEntry:
11817 		*phaseString = "kIOPMTracePointDarkWakeEntry";
11818 		*description = "entering darkwake on way to sleep";
11819 		break;
11820 
11821 	case kIOPMTracePointDarkWakeExit:
11822 		*phaseString = "kIOPMTracePointDarkWakeExit";
11823 		*description = "entering fullwake from darkwake";
11824 		break;
11825 
11826 	default:
11827 		*phaseString = NULL;
11828 		*description = NULL;
11829 	}
11830 }
11831 
11832 void
saveFailureData2File()11833 IOPMrootDomain::saveFailureData2File()
11834 {
11835 	unsigned int len = 0;
11836 	char  failureStr[512];
11837 	errno_t error;
11838 	char *outbuf;
11839 	OSNumber *statusCode;
11840 	uint64_t pmStatusCode = 0;
11841 	uint32_t phaseData = 0;
11842 	uint32_t phaseDetail = 0;
11843 	bool efiFailure = false;
11844 
11845 	OSSharedPtr<OSObject> statusCodeProp = copyProperty(kIOPMSleepWakeFailureCodeKey);
11846 	statusCode = OSDynamicCast(OSNumber, statusCodeProp.get());
11847 	if (statusCode) {
11848 		pmStatusCode = statusCode->unsigned64BitValue();
11849 		phaseData = pmStatusCode & 0xFFFFFFFF;
11850 		phaseDetail = (pmStatusCode >> 32) & 0xFFFFFFFF;
11851 		if ((phaseData & 0xFF) == kIOPMTracePointSystemSleep) {
11852 			LOG("Sleep Wake failure in EFI\n");
11853 			efiFailure = true;
11854 			failureStr[0] = 0;
11855 			snprintf(failureStr, sizeof(failureStr), "Sleep Wake failure in EFI\n\nFailure code:: 0x%08x 0x%08x\n\nPlease IGNORE the below stackshot\n", phaseDetail, phaseData);
11856 			len = (typeof(len))strnlen(failureStr, sizeof(failureStr));
11857 		}
11858 	}
11859 
11860 	if (!efiFailure) {
11861 		if (PEReadNVRAMProperty(kIOSleepWakeFailurePanic, NULL, &len)) {
11862 			swd_flags |= SWD_BOOT_BY_SW_WDOG;
11863 			PERemoveNVRAMProperty(kIOSleepWakeFailurePanic);
11864 			// dump panic will handle saving nvram data
11865 			return;
11866 		}
11867 
11868 		/* Keeping this around for capturing data during power
11869 		 * button press */
11870 
11871 		if (!PEReadNVRAMProperty(kIOSleepWakeFailureString, NULL, &len)) {
11872 			DLOG("No sleep wake failure string\n");
11873 			return;
11874 		}
11875 		if (len == 0) {
11876 			DLOG("Ignoring zero byte SleepWake failure string\n");
11877 			goto exit;
11878 		}
11879 
11880 		// if PMStatus code is zero, delete stackshot and return
11881 		if (statusCode) {
11882 			if (((pmStatusCode & 0xFFFFFFFF) & 0xFF) == 0) {
11883 				// there was no sleep wake failure
11884 				// this can happen if delete stackshot was called
11885 				// before take stackshot completed. Let us delete any
11886 				// sleep wake failure data in nvram
11887 				DLOG("Deleting stackshot on successful wake\n");
11888 				deleteStackshot();
11889 				return;
11890 			}
11891 		}
11892 
11893 		if (len > sizeof(failureStr)) {
11894 			len = sizeof(failureStr);
11895 		}
11896 		failureStr[0] = 0;
11897 		PEReadNVRAMProperty(kIOSleepWakeFailureString, failureStr, &len);
11898 	}
11899 	if (failureStr[0] != 0) {
11900 		error = sleepWakeDebugSaveFile(kSleepWakeFailureStringFile, failureStr, len);
11901 		if (error) {
11902 			DLOG("Failed to save SleepWake failure string to file. error:%d\n", error);
11903 		} else {
11904 			DLOG("Saved SleepWake failure string to file.\n");
11905 		}
11906 	}
11907 
11908 	if (!OSCompareAndSwap(0, 1, &gRootDomain->swd_lock)) {
11909 		goto exit;
11910 	}
11911 
11912 	if (swd_buffer) {
11913 		unsigned int len = 0;
11914 		errno_t error;
11915 		char nvram_var_name_buffer[20];
11916 		unsigned int concat_len = 0;
11917 		swd_hdr      *hdr = NULL;
11918 
11919 
11920 		hdr = (swd_hdr *)swd_buffer;
11921 		outbuf = (char *)hdr + hdr->spindump_offset;
11922 		OSBoundedArrayRef<char> boundedOutBuf(outbuf, hdr->alloc_size - hdr->spindump_offset);
11923 
11924 		for (int i = 0; i < 8; i++) {
11925 			snprintf(nvram_var_name_buffer, sizeof(nvram_var_name_buffer), "%s%02d", SWD_STACKSHOT_VAR_PREFIX, i + 1);
11926 			if (!PEReadNVRAMProperty(nvram_var_name_buffer, NULL, &len)) {
11927 				LOG("No SleepWake blob to read beyond chunk %d\n", i);
11928 				break;
11929 			}
11930 			if (PEReadNVRAMProperty(nvram_var_name_buffer, boundedOutBuf.slice(concat_len, len).data(), &len) == FALSE) {
11931 				PERemoveNVRAMProperty(nvram_var_name_buffer);
11932 				LOG("Could not read the property :-(\n");
11933 				break;
11934 			}
11935 			PERemoveNVRAMProperty(nvram_var_name_buffer);
11936 			concat_len += len;
11937 		}
11938 		LOG("Concatenated length for the SWD blob %d\n", concat_len);
11939 
11940 		if (concat_len) {
11941 			error = sleepWakeDebugSaveFile(kSleepWakeStacksFilename, outbuf, concat_len);
11942 			if (error) {
11943 				LOG("Failed to save SleepWake zipped data to file. error:%d\n", error);
11944 			} else {
11945 				LOG("Saved SleepWake zipped data to file.\n");
11946 			}
11947 		} else {
11948 			// There is a sleep wake failure string but no stackshot
11949 			// Write a placeholder stacks file so that swd runs
11950 			snprintf(outbuf, 20, "%s", "No stackshot data\n");
11951 			error = sleepWakeDebugSaveFile(kSleepWakeStacksFilename, outbuf, 20);
11952 			if (error) {
11953 				LOG("Failed to save SleepWake zipped data to file. error:%d\n", error);
11954 			} else {
11955 				LOG("Saved SleepWake zipped data to file.\n");
11956 			}
11957 		}
11958 	} else {
11959 		LOG("No buffer allocated to save failure stackshot\n");
11960 	}
11961 
11962 
11963 	gRootDomain->swd_lock = 0;
11964 exit:
11965 	PERemoveNVRAMProperty(kIOSleepWakeFailureString);
11966 	return;
11967 }
11968 
11969 
11970 void
getFailureData(thread_t * thread,char * failureStr,size_t strLen)11971 IOPMrootDomain::getFailureData(thread_t *thread, char *failureStr, size_t strLen)
11972 {
11973 	OSSharedPtr<IORegistryIterator>    iter;
11974 	OSSharedPtr<const OSSymbol>        kextName = NULL;
11975 	IORegistryEntry *       entry;
11976 	IOService *             node;
11977 	bool                    nodeFound = false;
11978 
11979 	const void *            callMethod = NULL;
11980 	const char *            objectName = NULL;
11981 	uint32_t                timeout = getWatchdogTimeout();
11982 	const char *            phaseString = NULL;
11983 	const char *            phaseDescription = NULL;
11984 
11985 	IOPMServiceInterestNotifier *notifier = OSDynamicCast(IOPMServiceInterestNotifier, notifierObject.get());
11986 	uint32_t tracePhase = pmTracer->getTracePhase();
11987 
11988 	*thread = NULL;
11989 	if ((tracePhase < kIOPMTracePointSystemSleep) || (tracePhase == kIOPMTracePointDarkWakeEntry)) {
11990 		snprintf(failureStr, strLen, "Sleep transition timed out after %d seconds", timeout);
11991 	} else {
11992 		snprintf(failureStr, strLen, "Wake transition timed out after %d seconds", timeout);
11993 	}
11994 	tracePhase2String(tracePhase, &phaseString, &phaseDescription);
11995 
11996 	if (notifierThread) {
11997 		if (notifier && (notifier->identifier)) {
11998 			objectName = notifier->identifier->getCStringNoCopy();
11999 		}
12000 		*thread = notifierThread;
12001 	} else {
12002 		iter = IORegistryIterator::iterateOver(
12003 			getPMRootDomain(), gIOPowerPlane, kIORegistryIterateRecursively);
12004 
12005 		if (iter) {
12006 			while ((entry = iter->getNextObject())) {
12007 				node = OSDynamicCast(IOService, entry);
12008 				if (!node) {
12009 					continue;
12010 				}
12011 				if (OSDynamicCast(IOPowerConnection, node)) {
12012 					continue;
12013 				}
12014 
12015 				if (node->getBlockingDriverCall(thread, &callMethod)) {
12016 					nodeFound = true;
12017 					break;
12018 				}
12019 			}
12020 		}
12021 		if (nodeFound) {
12022 			kextName = copyKextIdentifierWithAddress((vm_address_t) callMethod);
12023 			if (kextName) {
12024 				objectName = kextName->getCStringNoCopy();
12025 			}
12026 		}
12027 	}
12028 	if (phaseDescription) {
12029 		strlcat(failureStr, " while ", strLen);
12030 		strlcat(failureStr, phaseDescription, strLen);
12031 		strlcat(failureStr, ".", strLen);
12032 	}
12033 	if (objectName) {
12034 		strlcat(failureStr, " Suspected bundle: ", strLen);
12035 		strlcat(failureStr, objectName, strLen);
12036 		strlcat(failureStr, ".", strLen);
12037 	}
12038 	if (*thread) {
12039 		char threadName[40];
12040 		snprintf(threadName, sizeof(threadName), " Thread 0x%llx.", thread_tid(*thread));
12041 		strlcat(failureStr, threadName, strLen);
12042 	}
12043 
12044 	DLOG("%s\n", failureStr);
12045 }
12046 
12047 struct swd_stackshot_compressed_data {
12048 	z_output_func   zoutput;
12049 	size_t                  zipped;
12050 	uint64_t                totalbytes;
12051 	uint64_t                lastpercent;
12052 	IOReturn                error;
12053 	unsigned                outremain;
12054 	unsigned                outlen;
12055 	unsigned                writes;
12056 	Bytef *                 outbuf;
12057 };
12058 struct swd_stackshot_compressed_data swd_zip_var = { };
12059 
12060 static void *
swd_zs_alloc(void * __unused ref,u_int items,u_int size)12061 swd_zs_alloc(void *__unused ref, u_int items, u_int size)
12062 {
12063 	void *result;
12064 	LOG("Alloc in zipping %d items of size %d\n", items, size);
12065 
12066 	result = (void *)(swd_zs_zmem + swd_zs_zoffset);
12067 	swd_zs_zoffset += ~31L & (31 + (items * size)); // 32b align for vector crc
12068 	LOG("Offset %zu\n", swd_zs_zoffset);
12069 	return result;
12070 }
12071 
12072 static int
swd_zinput(z_streamp strm,Bytef * buf,unsigned size)12073 swd_zinput(z_streamp strm, Bytef *buf, unsigned size)
12074 {
12075 	unsigned len;
12076 
12077 	len = strm->avail_in;
12078 
12079 	if (len > size) {
12080 		len = size;
12081 	}
12082 	if (len == 0) {
12083 		return 0;
12084 	}
12085 
12086 	if (strm->next_in != (Bytef *) strm) {
12087 		memcpy(buf, strm->next_in, len);
12088 	} else {
12089 		bzero(buf, len);
12090 	}
12091 
12092 	strm->adler = z_crc32(strm->adler, buf, len);
12093 
12094 	strm->avail_in -= len;
12095 	strm->next_in  += len;
12096 	strm->total_in += len;
12097 
12098 	return (int)len;
12099 }
12100 
12101 static int
swd_zoutput(z_streamp strm,Bytef * buf,unsigned len)12102 swd_zoutput(z_streamp strm, Bytef *buf, unsigned len)
12103 {
12104 	unsigned int i = 0;
12105 	// if outlen > max size don't add to the buffer
12106 	assert(buf != NULL);
12107 	if (strm && buf) {
12108 		if (swd_zip_var.outlen + len > SWD_COMPRESSED_BUFSIZE) {
12109 			LOG("No space to GZIP... not writing to NVRAM\n");
12110 			return len;
12111 		}
12112 	}
12113 	for (i = 0; i < len; i++) {
12114 		*(swd_zip_var.outbuf + swd_zip_var.outlen + i) = *(buf + i);
12115 	}
12116 	swd_zip_var.outlen += len;
12117 	return len;
12118 }
12119 
12120 static void
swd_zs_free(void * __unused ref,void * __unused ptr)12121 swd_zs_free(void * __unused ref, void * __unused ptr)
12122 {
12123 }
12124 
12125 static int
swd_compress(char * inPtr,char * outPtr,size_t numBytes)12126 swd_compress(char *inPtr, char *outPtr, size_t numBytes)
12127 {
12128 	int wbits = 12;
12129 	int memlevel = 3;
12130 
12131 	if (((unsigned int) numBytes) != numBytes) {
12132 		return 0;
12133 	}
12134 
12135 	if (!swd_zs.zalloc) {
12136 		swd_zs.zalloc = swd_zs_alloc;
12137 		swd_zs.zfree = swd_zs_free;
12138 		if (deflateInit2(&swd_zs, Z_BEST_SPEED, Z_DEFLATED, wbits + 16, memlevel, Z_DEFAULT_STRATEGY)) {
12139 			// allocation failed
12140 			bzero(&swd_zs, sizeof(swd_zs));
12141 			// swd_zs_zoffset = 0;
12142 		} else {
12143 			LOG("PMRD inited the zlib allocation routines\n");
12144 		}
12145 	}
12146 
12147 	swd_zip_var.zipped = 0;
12148 	swd_zip_var.totalbytes = 0; // should this be the max that we have?
12149 	swd_zip_var.lastpercent = 0;
12150 	swd_zip_var.error = kIOReturnSuccess;
12151 	swd_zip_var.outremain = 0;
12152 	swd_zip_var.outlen = 0;
12153 	swd_zip_var.writes = 0;
12154 	swd_zip_var.outbuf = (Bytef *)outPtr;
12155 
12156 	swd_zip_var.totalbytes = numBytes;
12157 
12158 	swd_zs.avail_in = 0;
12159 	swd_zs.next_in = NULL;
12160 	swd_zs.avail_out = 0;
12161 	swd_zs.next_out = NULL;
12162 
12163 	deflateResetWithIO(&swd_zs, swd_zinput, swd_zoutput);
12164 
12165 	z_stream *zs;
12166 	int zr;
12167 	zs = &swd_zs;
12168 
12169 	while (swd_zip_var.error >= 0) {
12170 		if (!zs->avail_in) {
12171 			zs->next_in = (unsigned char *)inPtr ? (Bytef *)inPtr : (Bytef *)zs; /* zero marker? */
12172 			zs->avail_in = (unsigned int) numBytes;
12173 		}
12174 		if (!zs->avail_out) {
12175 			zs->next_out = (Bytef *)zs;
12176 			zs->avail_out = UINT32_MAX;
12177 		}
12178 		zr = deflate(zs, Z_NO_FLUSH);
12179 		if (Z_STREAM_END == zr) {
12180 			break;
12181 		}
12182 		if (zr != Z_OK) {
12183 			LOG("ZERR %d\n", zr);
12184 			swd_zip_var.error = zr;
12185 		} else {
12186 			if (zs->total_in == numBytes) {
12187 				break;
12188 			}
12189 		}
12190 	}
12191 
12192 	//now flush the stream
12193 	while (swd_zip_var.error >= 0) {
12194 		if (!zs->avail_out) {
12195 			zs->next_out = (Bytef *)zs;
12196 			zs->avail_out = UINT32_MAX;
12197 		}
12198 		zr = deflate(zs, Z_FINISH);
12199 		if (Z_STREAM_END == zr) {
12200 			break;
12201 		}
12202 		if (zr != Z_OK) {
12203 			LOG("ZERR %d\n", zr);
12204 			swd_zip_var.error = zr;
12205 		} else {
12206 			if (zs->total_in == numBytes) {
12207 				LOG("Total output size %d\n", swd_zip_var.outlen);
12208 				break;
12209 			}
12210 		}
12211 	}
12212 
12213 	return swd_zip_var.outlen;
12214 }
12215 
12216 void
deleteStackshot()12217 IOPMrootDomain::deleteStackshot()
12218 {
12219 	if (!OSCompareAndSwap(0, 1, &gRootDomain->swd_lock)) {
12220 		// takeStackshot hasn't completed
12221 		return;
12222 	}
12223 	LOG("Deleting any sleepwake failure data in nvram\n");
12224 
12225 	PERemoveNVRAMProperty(kIOSleepWakeFailureString);
12226 	char nvram_var_name_buf[20];
12227 	for (int i = 0; i < 8; i++) {
12228 		snprintf(nvram_var_name_buf, sizeof(nvram_var_name_buf), "%s%02d", SWD_STACKSHOT_VAR_PREFIX, i + 1);
12229 		if (PERemoveNVRAMProperty(nvram_var_name_buf) == false) {
12230 			LOG("Removing %s returned false\n", nvram_var_name_buf);
12231 		}
12232 	}
12233 	// force NVRAM sync
12234 	if (PEWriteNVRAMProperty(kIONVRAMSyncNowPropertyKey, kIONVRAMSyncNowPropertyKey, (unsigned int) strlen(kIONVRAMSyncNowPropertyKey)) == false) {
12235 		DLOG("Failed to force nvram sync\n");
12236 	}
12237 	gRootDomain->swd_lock = 0;
12238 }
12239 
12240 void
takeStackshot(bool wdogTrigger)12241 IOPMrootDomain::takeStackshot(bool wdogTrigger)
12242 {
12243 	swd_hdr *                hdr = NULL;
12244 	int                      cnt = 0;
12245 	int                      max_cnt;
12246 	pid_t                    pid = 0;
12247 	kern_return_t            kr = KERN_SUCCESS;
12248 	uint64_t                 flags;
12249 
12250 	char *                   dstAddr;
12251 	uint32_t                 size;
12252 	uint32_t                 bytesRemaining;
12253 	unsigned                 bytesWritten = 0;
12254 
12255 	char                     failureStr[512];
12256 	thread_t                 thread = NULL;
12257 	const char *             swfPanic = "swfPanic";
12258 
12259 	uint32_t                 bufSize;
12260 	int                      success = 0;
12261 
12262 #if defined(__i386__) || defined(__x86_64__)
12263 	const bool               concise = false;
12264 #else
12265 	const bool               concise = true;
12266 #endif
12267 
12268 	if (!OSCompareAndSwap(0, 1, &gRootDomain->swd_lock)) {
12269 		return;
12270 	}
12271 
12272 	failureStr[0] = 0;
12273 	if ((kIOSleepWakeWdogOff & gIOKitDebug) || systemBooting || systemShutdown || gWillShutdown) {
12274 		return;
12275 	}
12276 
12277 	if (wdogTrigger) {
12278 		getFailureData(&thread, failureStr, sizeof(failureStr));
12279 
12280 		if (concise || (PEGetCoprocessorVersion() >= kCoprocessorVersion2)) {
12281 			goto skip_stackshot;
12282 		}
12283 	} else {
12284 		AbsoluteTime now;
12285 		uint64_t nsec;
12286 		clock_get_uptime(&now);
12287 		SUB_ABSOLUTETIME(&now, &gIOLastWakeAbsTime);
12288 		absolutetime_to_nanoseconds(now, &nsec);
12289 		snprintf(failureStr, sizeof(failureStr), "Power button pressed during wake transition after %u ms.\n", ((int)((nsec) / NSEC_PER_MSEC)));
12290 	}
12291 
12292 	if (swd_buffer == NULL) {
12293 		sleepWakeDebugMemAlloc();
12294 		if (swd_buffer == NULL) {
12295 			return;
12296 		}
12297 	}
12298 	hdr = (swd_hdr *)swd_buffer;
12299 	bufSize = hdr->alloc_size;
12300 
12301 	dstAddr = (char*)hdr + hdr->spindump_offset;
12302 	flags = STACKSHOT_KCDATA_FORMAT | STACKSHOT_NO_IO_STATS | STACKSHOT_SAVE_KEXT_LOADINFO | STACKSHOT_ACTIVE_KERNEL_THREADS_ONLY | STACKSHOT_THREAD_WAITINFO | STACKSHOT_INCLUDE_DRIVER_THREADS_IN_KERNEL;
12303 
12304 	/* If not wdogTrigger only take kernel tasks stackshot
12305 	 */
12306 	if (wdogTrigger) {
12307 		pid = -1;
12308 		max_cnt = 3;
12309 	} else {
12310 		pid = 0;
12311 		max_cnt = 2;
12312 	}
12313 
12314 	/* Attempt to take stackshot with all ACTIVE_KERNEL_THREADS
12315 	 * If we run out of space, take stackshot with only kernel task
12316 	 */
12317 	while (success == 0 && cnt < max_cnt) {
12318 		bytesRemaining = bufSize - hdr->spindump_offset;
12319 		cnt++;
12320 		DLOG("Taking snapshot. bytesRemaining: %d\n", bytesRemaining);
12321 
12322 		size = bytesRemaining;
12323 		kr = stack_snapshot_from_kernel(pid, dstAddr, size, flags, 0, 0, &bytesWritten);
12324 		DLOG("stack_snapshot_from_kernel returned 0x%x. pid: %d bufsize:0x%x flags:0x%llx bytesWritten: %d\n",
12325 		    kr, pid, size, flags, bytesWritten);
12326 		if (kr == KERN_INSUFFICIENT_BUFFER_SIZE) {
12327 			if (pid == -1) {
12328 				pid = 0;
12329 			} else if (flags & STACKSHOT_INCLUDE_DRIVER_THREADS_IN_KERNEL) {
12330 				flags = flags & ~STACKSHOT_INCLUDE_DRIVER_THREADS_IN_KERNEL;
12331 			} else {
12332 				LOG("Insufficient buffer size for only kernel task\n");
12333 				break;
12334 			}
12335 		}
12336 		if (kr == KERN_SUCCESS) {
12337 			if (bytesWritten == 0) {
12338 				MSG("Failed to get stackshot(0x%x) bufsize:0x%x flags:0x%llx\n", kr, size, flags);
12339 				continue;
12340 			}
12341 			bytesRemaining -= bytesWritten;
12342 			hdr->spindump_size = (bufSize - bytesRemaining - hdr->spindump_offset);
12343 
12344 			memset(hdr->reason, 0x20, sizeof(hdr->reason));
12345 
12346 			// Compress stackshot and save to NVRAM
12347 			{
12348 				char *outbuf = (char *)swd_compressed_buffer;
12349 				int outlen = 0;
12350 				int num_chunks = 0;
12351 				int max_chunks = 0;
12352 				int leftover = 0;
12353 				char nvram_var_name_buffer[20];
12354 
12355 				outlen = swd_compress((char*)hdr + hdr->spindump_offset, outbuf, bytesWritten);
12356 
12357 				if (outlen) {
12358 					max_chunks = outlen / (2096 - 200);
12359 					leftover = outlen % (2096 - 200);
12360 
12361 					if (max_chunks < 8) {
12362 						for (num_chunks = 0; num_chunks < max_chunks; num_chunks++) {
12363 							snprintf(nvram_var_name_buffer, sizeof(nvram_var_name_buffer), "%s%02d", SWD_STACKSHOT_VAR_PREFIX, num_chunks + 1);
12364 							if (PEWriteNVRAMPropertyWithCopy(nvram_var_name_buffer, (outbuf + (num_chunks * (2096 - 200))), (2096 - 200)) == FALSE) {
12365 								LOG("Failed to update NVRAM %d\n", num_chunks);
12366 								break;
12367 							}
12368 						}
12369 						if (leftover) {
12370 							snprintf(nvram_var_name_buffer, sizeof(nvram_var_name_buffer), "%s%02d", SWD_STACKSHOT_VAR_PREFIX, num_chunks + 1);
12371 							if (PEWriteNVRAMPropertyWithCopy(nvram_var_name_buffer, (outbuf + (num_chunks * (2096 - 200))), leftover) == FALSE) {
12372 								LOG("Failed to update NVRAM with leftovers\n");
12373 							}
12374 						}
12375 						success = 1;
12376 						LOG("Successfully saved stackshot to NVRAM\n");
12377 					} else {
12378 						if (pid == -1) {
12379 							LOG("Compressed failure stackshot is too large. size=%d bytes\n", outlen);
12380 							pid = 0;
12381 						} else if (flags & STACKSHOT_INCLUDE_DRIVER_THREADS_IN_KERNEL) {
12382 							LOG("Compressed failure stackshot of kernel+dexts is too large size=%d bytes\n", outlen);
12383 							flags = flags & ~STACKSHOT_INCLUDE_DRIVER_THREADS_IN_KERNEL;
12384 						} else {
12385 							LOG("Compressed failure stackshot of only kernel is too large size=%d bytes\n", outlen);
12386 							break;
12387 						}
12388 					}
12389 				}
12390 			}
12391 		}
12392 	}
12393 
12394 	if (failureStr[0]) {
12395 		// append sleep-wake failure code
12396 		char traceCode[80];
12397 		snprintf(traceCode, sizeof(traceCode), "\nFailure code:: 0x%08x %08x\n",
12398 		    pmTracer->getTraceData(), pmTracer->getTracePhase());
12399 		strlcat(failureStr, traceCode, sizeof(failureStr));
12400 		if (PEWriteNVRAMProperty(kIOSleepWakeFailureString, failureStr, (unsigned int) strnlen(failureStr, sizeof(failureStr))) == false) {
12401 			DLOG("Failed to write SleepWake failure string\n");
12402 		}
12403 	}
12404 
12405 	// force NVRAM sync
12406 	if (PEWriteNVRAMProperty(kIONVRAMSyncNowPropertyKey, kIONVRAMSyncNowPropertyKey, (unsigned int) strlen(kIONVRAMSyncNowPropertyKey)) == false) {
12407 		DLOG("Failed to force nvram sync\n");
12408 	}
12409 
12410 skip_stackshot:
12411 	if (wdogTrigger) {
12412 		if (PEGetCoprocessorVersion() < kCoprocessorVersion2) {
12413 			if (swd_flags & SWD_BOOT_BY_SW_WDOG) {
12414 				// If current boot is due to this watch dog trigger restart in previous boot,
12415 				// then don't trigger again until at least 1 successful sleep & wake.
12416 				if (!(sleepCnt && (displayWakeCnt || darkWakeCnt))) {
12417 					LOG("Shutting down due to repeated Sleep/Wake failures\n");
12418 					updateTasksSuspend(kTasksSuspendSuspended, kTasksSuspendNoChange);
12419 					PEHaltRestart(kPEHaltCPU);
12420 					return;
12421 				}
12422 			}
12423 			if (gSwdPanic == 0) {
12424 				LOG("Calling panic prevented by swd_panic boot-args. Calling restart");
12425 				updateTasksSuspend(kTasksSuspendSuspended, kTasksSuspendNoChange);
12426 				PEHaltRestart(kPERestartCPU);
12427 			}
12428 		}
12429 		if (!concise && (PEWriteNVRAMProperty(kIOSleepWakeFailurePanic, swfPanic, (unsigned int) strlen(swfPanic)) == false)) {
12430 			DLOG("Failed to write SleepWake failure panic key\n");
12431 		}
12432 #if defined(__x86_64__)
12433 		if (thread) {
12434 			panic_with_thread_context(0, NULL, DEBUGGER_OPTION_ATTEMPTCOREDUMPANDREBOOT, thread, "%s", failureStr);
12435 		} else
12436 #endif /* defined(__x86_64__) */
12437 		{
12438 			panic_with_options(0, NULL, DEBUGGER_OPTION_ATTEMPTCOREDUMPANDREBOOT, "%s", failureStr);
12439 		}
12440 	} else {
12441 		gRootDomain->swd_lock = 0;
12442 		return;
12443 	}
12444 }
12445 
12446 void
sleepWakeDebugMemAlloc()12447 IOPMrootDomain::sleepWakeDebugMemAlloc()
12448 {
12449 	vm_size_t    size = SWD_STACKSHOT_SIZE + SWD_COMPRESSED_BUFSIZE + SWD_ZLIB_BUFSIZE;
12450 
12451 	swd_hdr      *hdr = NULL;
12452 	void         *bufPtr = NULL;
12453 
12454 	OSSharedPtr<IOBufferMemoryDescriptor>  memDesc;
12455 
12456 
12457 	if (kIOSleepWakeWdogOff & gIOKitDebug) {
12458 		return;
12459 	}
12460 
12461 	if (!OSCompareAndSwap(0, 1, &gRootDomain->swd_lock)) {
12462 		return;
12463 	}
12464 
12465 	memDesc = IOBufferMemoryDescriptor::inTaskWithOptions(
12466 		kernel_task, kIODirectionIn | kIOMemoryMapperNone,
12467 		size);
12468 	if (memDesc == NULL) {
12469 		DLOG("Failed to allocate Memory descriptor for sleepWake debug\n");
12470 		goto exit;
12471 	}
12472 
12473 	bufPtr = memDesc->getBytesNoCopy();
12474 
12475 	// Carve out memory for zlib routines
12476 	swd_zs_zmem = (vm_offset_t)bufPtr;
12477 	bufPtr = (char *)bufPtr + SWD_ZLIB_BUFSIZE;
12478 
12479 	// Carve out memory for compressed stackshots
12480 	swd_compressed_buffer = bufPtr;
12481 	bufPtr = (char *)bufPtr + SWD_COMPRESSED_BUFSIZE;
12482 
12483 	// Remaining is used for holding stackshot
12484 	hdr = (swd_hdr *)bufPtr;
12485 	memset(hdr, 0, sizeof(swd_hdr));
12486 
12487 	hdr->signature = SWD_HDR_SIGNATURE;
12488 	hdr->alloc_size = SWD_STACKSHOT_SIZE;
12489 
12490 	hdr->spindump_offset = sizeof(swd_hdr);
12491 	swd_buffer = (void *)hdr;
12492 	swd_memDesc = os::move(memDesc);
12493 	DLOG("SleepWake debug buffer size:0x%x spindump offset:0x%x\n", hdr->alloc_size, hdr->spindump_offset);
12494 
12495 exit:
12496 	gRootDomain->swd_lock = 0;
12497 }
12498 
12499 void
sleepWakeDebugSpinDumpMemAlloc()12500 IOPMrootDomain::sleepWakeDebugSpinDumpMemAlloc()
12501 {
12502 #if UNUSED
12503 	vm_size_t    size = SWD_SPINDUMP_SIZE;
12504 
12505 	swd_hdr      *hdr = NULL;
12506 
12507 	OSSharedPtr<IOBufferMemoryDescriptor>  memDesc;
12508 
12509 	if (!OSCompareAndSwap(0, 1, &gRootDomain->swd_lock)) {
12510 		return;
12511 	}
12512 
12513 	memDesc = IOBufferMemoryDescriptor::inTaskWithOptions(
12514 		kernel_task, kIODirectionIn | kIOMemoryMapperNone,
12515 		SWD_SPINDUMP_SIZE);
12516 
12517 	if (memDesc == NULL) {
12518 		DLOG("Failed to allocate Memory descriptor for sleepWake debug spindump\n");
12519 		goto exit;
12520 	}
12521 
12522 
12523 	hdr = (swd_hdr *)memDesc->getBytesNoCopy();
12524 	memset(hdr, 0, sizeof(swd_hdr));
12525 
12526 	hdr->signature = SWD_HDR_SIGNATURE;
12527 	hdr->alloc_size = size;
12528 
12529 	hdr->spindump_offset = sizeof(swd_hdr);
12530 	swd_spindump_buffer = (void *)hdr;
12531 	swd_spindump_memDesc = os::move(memDesc);
12532 
12533 exit:
12534 	gRootDomain->swd_lock = 0;
12535 #endif /* UNUSED */
12536 }
12537 
12538 void
sleepWakeDebugEnableWdog()12539 IOPMrootDomain::sleepWakeDebugEnableWdog()
12540 {
12541 }
12542 
12543 bool
sleepWakeDebugIsWdogEnabled()12544 IOPMrootDomain::sleepWakeDebugIsWdogEnabled()
12545 {
12546 	return !systemBooting && !systemShutdown && !gWillShutdown;
12547 }
12548 
12549 void
sleepWakeDebugSaveSpinDumpFile()12550 IOPMrootDomain::sleepWakeDebugSaveSpinDumpFile()
12551 {
12552 	swd_hdr *hdr = NULL;
12553 	errno_t error = EIO;
12554 
12555 	if (swd_spindump_buffer && gSpinDumpBufferFull) {
12556 		hdr = (swd_hdr *)swd_spindump_buffer;
12557 
12558 		error = sleepWakeDebugSaveFile("/var/tmp/SleepWakeDelayStacks.dump",
12559 		    (char*)hdr + hdr->spindump_offset, hdr->spindump_size);
12560 
12561 		if (error) {
12562 			return;
12563 		}
12564 
12565 		sleepWakeDebugSaveFile("/var/tmp/SleepWakeDelayLog.dump",
12566 		    (char*)hdr + offsetof(swd_hdr, UUID),
12567 		    sizeof(swd_hdr) - offsetof(swd_hdr, UUID));
12568 
12569 		gSpinDumpBufferFull = false;
12570 	}
12571 }
12572 
12573 errno_t
sleepWakeDebugSaveFile(const char * name,char * buf,int len)12574 IOPMrootDomain::sleepWakeDebugSaveFile(const char *name, char *buf, int len)
12575 {
12576 	struct vnode         *vp = NULL;
12577 	vfs_context_t        ctx = vfs_context_create(vfs_context_current());
12578 	kauth_cred_t         cred = vfs_context_ucred(ctx);
12579 	struct vnode_attr    va;
12580 	errno_t      error = EIO;
12581 
12582 	if (vnode_open(name, (O_CREAT | FWRITE | O_NOFOLLOW),
12583 	    S_IRUSR | S_IRGRP | S_IROTH, VNODE_LOOKUP_NOFOLLOW, &vp, ctx) != 0) {
12584 		LOG("Failed to open the file %s\n", name);
12585 		swd_flags |= SWD_FILEOP_ERROR;
12586 		goto exit;
12587 	}
12588 	VATTR_INIT(&va);
12589 	VATTR_WANTED(&va, va_nlink);
12590 	/* Don't dump to non-regular files or files with links. */
12591 	if (vp->v_type != VREG ||
12592 	    vnode_getattr(vp, &va, ctx) || va.va_nlink != 1) {
12593 		LOG("Bailing as this is not a regular file\n");
12594 		swd_flags |= SWD_FILEOP_ERROR;
12595 		goto exit;
12596 	}
12597 	VATTR_INIT(&va);
12598 	VATTR_SET(&va, va_data_size, 0);
12599 	vnode_setattr(vp, &va, ctx);
12600 
12601 
12602 	if (buf != NULL) {
12603 		error = vn_rdwr(UIO_WRITE, vp, buf, len, 0,
12604 		    UIO_SYSSPACE, IO_NODELOCKED | IO_UNIT, cred, (int *) NULL, vfs_context_proc(ctx));
12605 		if (error != 0) {
12606 			LOG("Failed to save sleep wake log. err 0x%x\n", error);
12607 			swd_flags |= SWD_FILEOP_ERROR;
12608 		} else {
12609 			DLOG("Saved %d bytes to file %s\n", len, name);
12610 		}
12611 	}
12612 
12613 exit:
12614 	if (vp) {
12615 		vnode_close(vp, FWRITE, ctx);
12616 	}
12617 	if (ctx) {
12618 		vfs_context_rele(ctx);
12619 	}
12620 
12621 	return error;
12622 }
12623 
12624 #else /* defined(__i386__) || defined(__x86_64__) */
12625 
12626 void
sleepWakeDebugTrig(bool restart)12627 IOPMrootDomain::sleepWakeDebugTrig(bool restart)
12628 {
12629 	if (restart) {
12630 		if (gSwdPanic == 0) {
12631 			return;
12632 		}
12633 		panic("Sleep/Wake hang detected");
12634 		return;
12635 	}
12636 }
12637 
12638 void
takeStackshot(bool restart)12639 IOPMrootDomain::takeStackshot(bool restart)
12640 {
12641 #pragma unused(restart)
12642 }
12643 
12644 void
deleteStackshot()12645 IOPMrootDomain::deleteStackshot()
12646 {
12647 }
12648 
12649 void
sleepWakeDebugMemAlloc()12650 IOPMrootDomain::sleepWakeDebugMemAlloc()
12651 {
12652 }
12653 
12654 void
saveFailureData2File()12655 IOPMrootDomain::saveFailureData2File()
12656 {
12657 }
12658 
12659 void
sleepWakeDebugEnableWdog()12660 IOPMrootDomain::sleepWakeDebugEnableWdog()
12661 {
12662 }
12663 
12664 bool
sleepWakeDebugIsWdogEnabled()12665 IOPMrootDomain::sleepWakeDebugIsWdogEnabled()
12666 {
12667 	return false;
12668 }
12669 
12670 void
sleepWakeDebugSaveSpinDumpFile()12671 IOPMrootDomain::sleepWakeDebugSaveSpinDumpFile()
12672 {
12673 }
12674 
12675 errno_t
sleepWakeDebugSaveFile(const char * name,char * buf,int len)12676 IOPMrootDomain::sleepWakeDebugSaveFile(const char *name, char *buf, int len)
12677 {
12678 	return 0;
12679 }
12680 
12681 #endif /* defined(__i386__) || defined(__x86_64__) */
12682 
12683