xref: /xnu-8796.121.2/osfmk/kern/kern_stackshot.c (revision c54f35ca767986246321eb901baf8f5ff7923f6a)
1 /*
2  * Copyright (c) 2013-2020 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,
11  * unlawful or unlicensed copies of an Apple operating system, or to
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.
17  *
18  * The Original Code and all software distributed under the License are
19  * distributed on an 'AS IS' basis, WITHOUT WARRANTY OF ANY KIND, EITHER
20  * EXPRESS OR IMPLIED, AND APPLE HEREBY DISCLAIMS ALL SUCH WARRANTIES,
21  * INCLUDING WITHOUT LIMITATION, ANY WARRANTIES OF MERCHANTABILITY,
22  * FITNESS FOR A PARTICULAR PURPOSE, QUIET ENJOYMENT OR NON-INFRINGEMENT.
23  * Please see the License for the specific language governing rights and
24  * limitations under the License.
25  *
26  * @APPLE_OSREFERENCE_LICENSE_HEADER_END@
27  */
28 
29 #include <mach/mach_types.h>
30 #include <mach/vm_param.h>
31 #include <mach/mach_vm.h>
32 #include <mach/clock_types.h>
33 #include <sys/errno.h>
34 #include <sys/stackshot.h>
35 #ifdef IMPORTANCE_INHERITANCE
36 #include <ipc/ipc_importance.h>
37 #endif
38 #include <sys/appleapiopts.h>
39 #include <kern/debug.h>
40 #include <kern/block_hint.h>
41 #include <uuid/uuid.h>
42 
43 #include <kdp/kdp_dyld.h>
44 #include <kdp/kdp_en_debugger.h>
45 #include <kdp/processor_core.h>
46 #include <kdp/kdp_common.h>
47 
48 #include <libsa/types.h>
49 #include <libkern/version.h>
50 #include <libkern/section_keywords.h>
51 
52 #include <string.h> /* bcopy */
53 
54 #include <kern/backtrace.h>
55 #include <kern/coalition.h>
56 #include <kern/processor.h>
57 #include <kern/host_statistics.h>
58 #include <kern/counter.h>
59 #include <kern/thread.h>
60 #include <kern/thread_group.h>
61 #include <kern/task.h>
62 #include <kern/telemetry.h>
63 #include <kern/clock.h>
64 #include <kern/policy_internal.h>
65 #include <kern/socd_client.h>
66 #include <vm/vm_map.h>
67 #include <vm/vm_kern.h>
68 #include <vm/vm_pageout.h>
69 #include <vm/vm_fault.h>
70 #include <vm/vm_shared_region.h>
71 #include <vm/vm_compressor.h>
72 #include <libkern/OSKextLibPrivate.h>
73 #include <os/log.h>
74 
75 #if defined(__x86_64__)
76 #include <i386/mp.h>
77 #include <i386/cpu_threads.h>
78 #endif
79 
80 #include <pexpert/pexpert.h>
81 
82 #if CONFIG_PERVASIVE_CPI
83 #include <kern/monotonic.h>
84 #endif /* CONFIG_PERVASIVE_CPI */
85 
86 #include <san/kasan.h>
87 
88 #if DEBUG || DEVELOPMENT
89 # define STACKSHOT_COLLECTS_LATENCY_INFO 1
90 #else
91 # define STACKSHOT_COLLECTS_LATENCY_INFO 0
92 #endif /* DEBUG || DEVELOPMENT */
93 
94 extern unsigned int not_in_kdp;
95 
96 /* indicate to the compiler that some accesses are unaligned */
97 typedef uint64_t unaligned_u64 __attribute__((aligned(1)));
98 
99 int kdp_snapshot                            = 0;
100 static kern_return_t stack_snapshot_ret     = 0;
101 static uint32_t stack_snapshot_bytes_traced = 0;
102 static uint32_t stack_snapshot_bytes_uncompressed  = 0;
103 
104 #if STACKSHOT_COLLECTS_LATENCY_INFO
105 static bool collect_latency_info = true;
106 #endif
107 static kcdata_descriptor_t stackshot_kcdata_p = NULL;
108 static void *stack_snapshot_buf;
109 static uint32_t stack_snapshot_bufsize;
110 int stack_snapshot_pid;
111 static uint64_t stack_snapshot_flags;
112 static uint64_t stack_snapshot_delta_since_timestamp;
113 static uint32_t stack_snapshot_pagetable_mask;
114 static boolean_t panic_stackshot;
115 
116 static boolean_t stack_enable_faulting = FALSE;
117 static struct stackshot_fault_stats fault_stats;
118 
119 static uint64_t stackshot_last_abs_start;       /* start time of last stackshot */
120 static uint64_t stackshot_last_abs_end;         /* end time of last stackshot */
121 static uint64_t stackshots_taken;               /* total stackshots taken since boot */
122 static uint64_t stackshots_duration;            /* total abs time spent in stackshot_trap() since boot */
123 
124 /*
125  * Experimentally, our current estimates are 20% short 96% of the time; 40 gets
126  * us into 99.9%+ territory.  In the longer run, we need to make stackshot
127  * estimates use a better approach (rdar://78880038); this is intended to be a
128  * short-term fix.
129  */
130 uint32_t stackshot_estimate_adj = 40; /* experiment factor: 0-100, adjust our estimate up by this amount */
131 
132 static uint32_t stackshot_initial_estimate;
133 static uint32_t stackshot_initial_estimate_adj;
134 static uint64_t stackshot_duration_prior_abs;   /* prior attempts, abs */
135 static unaligned_u64 * stackshot_duration_outer;
136 static uint64_t stackshot_microsecs;
137 
138 void * kernel_stackshot_buf   = NULL; /* Pointer to buffer for stackshots triggered from the kernel and retrieved later */
139 int kernel_stackshot_buf_size = 0;
140 
141 void * stackshot_snapbuf = NULL; /* Used by stack_snapshot2 (to be removed) */
142 
143 __private_extern__ void stackshot_init( void );
144 static boolean_t memory_iszero(void *addr, size_t size);
145 uint32_t                get_stackshot_estsize(uint32_t prev_size_hint, uint32_t adj);
146 kern_return_t           kern_stack_snapshot_internal(int stackshot_config_version, void *stackshot_config,
147     size_t stackshot_config_size, boolean_t stackshot_from_user);
148 kern_return_t           do_stackshot(void *);
149 void                    kdp_snapshot_preflight(int pid, void * tracebuf, uint32_t tracebuf_size, uint64_t flags, kcdata_descriptor_t data_p, uint64_t since_timestamp, uint32_t pagetable_mask);
150 boolean_t               stackshot_thread_is_idle_worker_unsafe(thread_t thread);
151 static int              kdp_stackshot_kcdata_format(int pid, uint64_t trace_flags, uint32_t *pBytesTraced, uint32_t *pBytesUncompressed);
152 uint32_t                kdp_stack_snapshot_bytes_traced(void);
153 uint32_t                kdp_stack_snapshot_bytes_uncompressed(void);
154 static void             kdp_mem_and_io_snapshot(struct mem_and_io_snapshot *memio_snap);
155 static vm_offset_t      stackshot_find_phys(vm_map_t map, vm_offset_t target_addr, kdp_fault_flags_t fault_flags, uint32_t *kdp_fault_result_flags);
156 static boolean_t        stackshot_copyin(vm_map_t map, uint64_t uaddr, void *dest, size_t size, boolean_t try_fault, uint32_t *kdp_fault_result);
157 static int              stackshot_copyin_string(task_t task, uint64_t addr, char *buf, int buf_sz, boolean_t try_fault, uint32_t *kdp_fault_results);
158 static boolean_t        stackshot_copyin_word(task_t task, uint64_t addr, uint64_t *result, boolean_t try_fault, uint32_t *kdp_fault_results);
159 static uint64_t         proc_was_throttled_from_task(task_t task);
160 static void             stackshot_thread_wait_owner_info(thread_t thread, thread_waitinfo_v2_t * waitinfo);
161 static int              stackshot_thread_has_valid_waitinfo(thread_t thread);
162 static void             stackshot_thread_turnstileinfo(thread_t thread, thread_turnstileinfo_v2_t *tsinfo);
163 static int              stackshot_thread_has_valid_turnstileinfo(thread_t thread);
164 
165 #if CONFIG_COALITIONS
166 static void             stackshot_coalition_jetsam_count(void *arg, int i, coalition_t coal);
167 static void             stackshot_coalition_jetsam_snapshot(void *arg, int i, coalition_t coal);
168 #endif /* CONFIG_COALITIONS */
169 
170 #if CONFIG_THREAD_GROUPS
171 static void             stackshot_thread_group_count(void *arg, int i, struct thread_group *tg);
172 static void             stackshot_thread_group_snapshot(void *arg, int i, struct thread_group *tg);
173 #endif /* CONFIG_THREAD_GROUPS */
174 
175 extern uint32_t         workqueue_get_pwq_state_kdp(void *proc);
176 
177 struct proc;
178 extern int              proc_pid(struct proc *p);
179 extern uint64_t         proc_uniqueid(void *p);
180 extern uint64_t         proc_was_throttled(void *p);
181 extern uint64_t         proc_did_throttle(void *p);
182 extern int              proc_exiting(void *p);
183 extern int              proc_in_teardown(void *p);
184 static uint64_t         proc_did_throttle_from_task(task_t task);
185 extern void             proc_name_kdp(struct proc *p, char * buf, int size);
186 extern int              proc_threadname_kdp(void * uth, char * buf, size_t size);
187 extern void             proc_starttime_kdp(void * p, uint64_t * tv_sec, uint64_t * tv_usec, uint64_t * abstime);
188 extern void             proc_archinfo_kdp(void* p, cpu_type_t* cputype, cpu_subtype_t* cpusubtype);
189 extern uint64_t         proc_getcsflags_kdp(void * p);
190 extern boolean_t        proc_binary_uuid_kdp(task_t task, uuid_t uuid);
191 extern int              memorystatus_get_pressure_status_kdp(void);
192 extern void             memorystatus_proc_flags_unsafe(void * v, boolean_t *is_dirty, boolean_t *is_dirty_tracked, boolean_t *allow_idle_exit);
193 
194 extern int count_busy_buffers(void); /* must track with declaration in bsd/sys/buf_internal.h */
195 
196 #if CONFIG_TELEMETRY
197 extern kern_return_t stack_microstackshot(user_addr_t tracebuf, uint32_t tracebuf_size, uint32_t flags, int32_t *retval);
198 #endif /* CONFIG_TELEMETRY */
199 
200 extern kern_return_t kern_stack_snapshot_with_reason(char* reason);
201 extern kern_return_t kern_stack_snapshot_internal(int stackshot_config_version, void *stackshot_config, size_t stackshot_config_size, boolean_t stackshot_from_user);
202 
203 static size_t stackshot_plh_est_size(void);
204 
205 /*
206  * Validates that the given address for a word is both a valid page and has
207  * default caching attributes for the current map.
208  */
209 bool machine_trace_thread_validate_kva(vm_offset_t);
210 /*
211  * Validates a region that stackshot will potentially inspect.
212  */
213 static bool _stackshot_validate_kva(vm_offset_t, size_t);
214 /*
215  * Must be called whenever stackshot is re-driven.
216  */
217 static void _stackshot_validation_reset(void);
218 /*
219  * A kdp-safe strlen() call.  Returns:
220  *      -1 if we reach maxlen or a bad address before the end of the string, or
221  *      strlen(s)
222  */
223 static long _stackshot_strlen(const char *s, size_t maxlen);
224 
225 #define MAX_FRAMES 1000
226 #define MAX_LOADINFOS 500
227 #define MAX_DYLD_COMPACTINFO (20 * 1024)  // max bytes of compactinfo to include per proc/shared region
228 #define TASK_IMP_WALK_LIMIT 20
229 
230 typedef struct thread_snapshot *thread_snapshot_t;
231 typedef struct task_snapshot *task_snapshot_t;
232 
233 #if CONFIG_KDP_INTERACTIVE_DEBUGGING
234 extern kdp_send_t    kdp_en_send_pkt;
235 #endif
236 
237 /*
238  * Stackshot locking and other defines.
239  */
240 static LCK_GRP_DECLARE(stackshot_subsys_lck_grp, "stackshot_subsys_lock");
241 static LCK_MTX_DECLARE(stackshot_subsys_mutex, &stackshot_subsys_lck_grp);
242 
243 #define STACKSHOT_SUBSYS_LOCK() lck_mtx_lock(&stackshot_subsys_mutex)
244 #define STACKSHOT_SUBSYS_TRY_LOCK() lck_mtx_try_lock(&stackshot_subsys_mutex)
245 #define STACKSHOT_SUBSYS_UNLOCK() lck_mtx_unlock(&stackshot_subsys_mutex)
246 
247 #define SANE_BOOTPROFILE_TRACEBUF_SIZE (64ULL * 1024ULL * 1024ULL)
248 #define SANE_TRACEBUF_SIZE (8ULL * 1024ULL * 1024ULL)
249 
250 #define TRACEBUF_SIZE_PER_GB (1024ULL * 1024ULL)
251 #define GIGABYTES (1024ULL * 1024ULL * 1024ULL)
252 
253 SECURITY_READ_ONLY_LATE(static uint32_t) max_tracebuf_size = SANE_TRACEBUF_SIZE;
254 
255 /*
256  * We currently set a ceiling of 3 milliseconds spent in the kdp fault path
257  * for non-panic stackshots where faulting is requested.
258  */
259 #define KDP_FAULT_PATH_MAX_TIME_PER_STACKSHOT_NSECS (3 * NSEC_PER_MSEC)
260 
261 #define STACKSHOT_SUPP_SIZE (16 * 1024) /* Minimum stackshot size */
262 #define TASK_UUID_AVG_SIZE (16 * sizeof(uuid_t)) /* Average space consumed by UUIDs/task */
263 
264 #ifndef ROUNDUP
265 #define ROUNDUP(x, y)            ((((x)+(y)-1)/(y))*(y))
266 #endif
267 
268 #define STACKSHOT_QUEUE_LABEL_MAXSIZE  64
269 
270 /*
271  * Initialize the mutex governing access to the stack snapshot subsystem
272  * and other stackshot related bits.
273  */
274 __private_extern__ void
stackshot_init(void)275 stackshot_init( void )
276 {
277 	mach_timebase_info_data_t timebase;
278 
279 	clock_timebase_info(&timebase);
280 	fault_stats.sfs_system_max_fault_time = ((KDP_FAULT_PATH_MAX_TIME_PER_STACKSHOT_NSECS * timebase.denom) / timebase.numer);
281 
282 	max_tracebuf_size = MAX(max_tracebuf_size, ((ROUNDUP(max_mem, GIGABYTES) / GIGABYTES) * TRACEBUF_SIZE_PER_GB));
283 
284 	PE_parse_boot_argn("stackshot_maxsz", &max_tracebuf_size, sizeof(max_tracebuf_size));
285 }
286 
287 /*
288  * Called with interrupts disabled after stackshot context has been
289  * initialized. Updates stack_snapshot_ret.
290  */
291 static kern_return_t
stackshot_trap(void)292 stackshot_trap(void)
293 {
294 	kern_return_t   rv;
295 
296 #if defined(__x86_64__)
297 	/*
298 	 * Since mp_rendezvous and stackshot both attempt to capture cpus then perform an
299 	 * operation, it's essential to apply mutual exclusion to the other when one
300 	 * mechanism is in operation, lest there be a deadlock as the mechanisms race to
301 	 * capture CPUs.
302 	 *
303 	 * Further, we assert that invoking stackshot from mp_rendezvous*() is not
304 	 * allowed, so we check to ensure there there is no rendezvous in progress before
305 	 * trying to grab the lock (if there is, a deadlock will occur when we try to
306 	 * grab the lock).  This is accomplished by setting cpu_rendezvous_in_progress to
307 	 * TRUE in the mp rendezvous action function.  If stackshot_trap() is called by
308 	 * a subordinate of the call chain within the mp rendezvous action, this flag will
309 	 * be set and can be used to detect the inevitable deadlock that would occur
310 	 * if this thread tried to grab the rendezvous lock.
311 	 */
312 
313 	if (current_cpu_datap()->cpu_rendezvous_in_progress == TRUE) {
314 		panic("Calling stackshot from a rendezvous is not allowed!");
315 	}
316 
317 	mp_rendezvous_lock();
318 #endif
319 
320 	stackshot_last_abs_start = mach_absolute_time();
321 	stackshot_last_abs_end = 0;
322 
323 	rv = DebuggerTrapWithState(DBOP_STACKSHOT, NULL, NULL, NULL, 0, NULL, FALSE, 0);
324 
325 	stackshot_last_abs_end = mach_absolute_time();
326 	stackshots_taken++;
327 	stackshots_duration += (stackshot_last_abs_end - stackshot_last_abs_start);
328 
329 #if defined(__x86_64__)
330 	mp_rendezvous_unlock();
331 #endif
332 	return rv;
333 }
334 
335 extern void stackshot_get_timing(uint64_t *last_abs_start, uint64_t *last_abs_end, uint64_t *count, uint64_t *total_duration);
336 void
stackshot_get_timing(uint64_t * last_abs_start,uint64_t * last_abs_end,uint64_t * count,uint64_t * total_duration)337 stackshot_get_timing(uint64_t *last_abs_start, uint64_t *last_abs_end, uint64_t *count, uint64_t *total_duration)
338 {
339 	STACKSHOT_SUBSYS_LOCK();
340 	*last_abs_start = stackshot_last_abs_start;
341 	*last_abs_end = stackshot_last_abs_end;
342 	*count = stackshots_taken;
343 	*total_duration = stackshots_duration;
344 	STACKSHOT_SUBSYS_UNLOCK();
345 }
346 
347 kern_return_t
stack_snapshot_from_kernel(int pid,void * buf,uint32_t size,uint64_t flags,uint64_t delta_since_timestamp,uint32_t pagetable_mask,unsigned * bytes_traced)348 stack_snapshot_from_kernel(int pid, void *buf, uint32_t size, uint64_t flags, uint64_t delta_since_timestamp, uint32_t pagetable_mask, unsigned *bytes_traced)
349 {
350 	kern_return_t error = KERN_SUCCESS;
351 	boolean_t istate;
352 
353 #if DEVELOPMENT || DEBUG
354 	if (kern_feature_override(KF_STACKSHOT_OVRD) == TRUE) {
355 		return KERN_NOT_SUPPORTED;
356 	}
357 #endif
358 	if ((buf == NULL) || (size <= 0) || (bytes_traced == NULL)) {
359 		return KERN_INVALID_ARGUMENT;
360 	}
361 
362 	/* cap in individual stackshot to max_tracebuf_size */
363 	if (size > max_tracebuf_size) {
364 		size = max_tracebuf_size;
365 	}
366 
367 	/* Serialize tracing */
368 	if (flags & STACKSHOT_TRYLOCK) {
369 		if (!STACKSHOT_SUBSYS_TRY_LOCK()) {
370 			return KERN_LOCK_OWNED;
371 		}
372 	} else {
373 		STACKSHOT_SUBSYS_LOCK();
374 	}
375 
376 	struct kcdata_descriptor kcdata;
377 	uint32_t hdr_tag = (flags & STACKSHOT_COLLECT_DELTA_SNAPSHOT) ?
378 	    KCDATA_BUFFER_BEGIN_DELTA_STACKSHOT : KCDATA_BUFFER_BEGIN_STACKSHOT;
379 
380 	error = kcdata_memory_static_init(&kcdata, (mach_vm_address_t)buf, hdr_tag, size,
381 	    KCFLAG_USE_MEMCOPY | KCFLAG_NO_AUTO_ENDBUFFER);
382 	if (error) {
383 		goto out;
384 	}
385 
386 	stackshot_initial_estimate = 0;
387 	stackshot_duration_prior_abs = 0;
388 	stackshot_duration_outer = NULL;
389 
390 	KDBG_RELEASE(MACHDBG_CODE(DBG_MACH_STACKSHOT, STACKSHOT_KERN_RECORD) | DBG_FUNC_START,
391 	    flags, size, pid, delta_since_timestamp);
392 
393 	istate = ml_set_interrupts_enabled(FALSE);
394 	uint64_t time_start      = mach_absolute_time();
395 
396 	/* Emit a SOCD tracepoint that we are initiating a stackshot */
397 	SOCD_TRACE_XNU_START(STACKSHOT);
398 
399 	/* Preload trace parameters*/
400 	kdp_snapshot_preflight(pid, buf, size, flags, &kcdata,
401 	    delta_since_timestamp, pagetable_mask);
402 
403 	/*
404 	 * Trap to the debugger to obtain a coherent stack snapshot; this populates
405 	 * the trace buffer
406 	 */
407 	error = stackshot_trap();
408 
409 	uint64_t time_end               = mach_absolute_time();
410 
411 	/* Emit a SOCD tracepoint that we have completed the stackshot */
412 	SOCD_TRACE_XNU_END(STACKSHOT);
413 
414 	ml_set_interrupts_enabled(istate);
415 
416 	if (stackshot_duration_outer) {
417 		*stackshot_duration_outer = time_end - time_start;
418 	}
419 	*bytes_traced = kdp_stack_snapshot_bytes_traced();
420 
421 	KDBG_RELEASE(MACHDBG_CODE(DBG_MACH_STACKSHOT, STACKSHOT_KERN_RECORD) | DBG_FUNC_END,
422 	    error, (time_end - time_start), size, *bytes_traced);
423 out:
424 	stackshot_kcdata_p = NULL;
425 	STACKSHOT_SUBSYS_UNLOCK();
426 	return error;
427 }
428 
429 #if CONFIG_TELEMETRY
430 kern_return_t
stack_microstackshot(user_addr_t tracebuf,uint32_t tracebuf_size,uint32_t flags,int32_t * retval)431 stack_microstackshot(user_addr_t tracebuf, uint32_t tracebuf_size, uint32_t flags, int32_t *retval)
432 {
433 	int error = KERN_SUCCESS;
434 	uint32_t bytes_traced = 0;
435 
436 	*retval = -1;
437 
438 	/*
439 	 * Control related operations
440 	 */
441 	if (flags & STACKSHOT_GLOBAL_MICROSTACKSHOT_ENABLE) {
442 		telemetry_global_ctl(1);
443 		*retval = 0;
444 		goto exit;
445 	} else if (flags & STACKSHOT_GLOBAL_MICROSTACKSHOT_DISABLE) {
446 		telemetry_global_ctl(0);
447 		*retval = 0;
448 		goto exit;
449 	}
450 
451 	/*
452 	 * Data related operations
453 	 */
454 	*retval = -1;
455 
456 	if ((((void*)tracebuf) == NULL) || (tracebuf_size == 0)) {
457 		error = KERN_INVALID_ARGUMENT;
458 		goto exit;
459 	}
460 
461 	STACKSHOT_SUBSYS_LOCK();
462 
463 	if (flags & STACKSHOT_GET_MICROSTACKSHOT) {
464 		if (tracebuf_size > max_tracebuf_size) {
465 			error = KERN_INVALID_ARGUMENT;
466 			goto unlock_exit;
467 		}
468 
469 		bytes_traced = tracebuf_size;
470 		error = telemetry_gather(tracebuf, &bytes_traced,
471 		    (flags & STACKSHOT_SET_MICROSTACKSHOT_MARK) ? true : false);
472 		*retval = (int)bytes_traced;
473 		goto unlock_exit;
474 	}
475 
476 unlock_exit:
477 	STACKSHOT_SUBSYS_UNLOCK();
478 exit:
479 	return error;
480 }
481 #endif /* CONFIG_TELEMETRY */
482 
483 /*
484  * Return the estimated size of a stackshot based on the
485  * number of currently running threads and tasks.
486  *
487  * adj is an adjustment in units of percentage
488  *
489  * This function is mostly unhinged from reality; struct thread_snapshot and
490  * struct task_stackshot are legacy, much larger versions of the structures we
491  * actually use, and there's no accounting for how we actually generate
492  * task & thread information.  rdar://78880038 intends to replace this all.
493  */
494 uint32_t
get_stackshot_estsize(uint32_t prev_size_hint,uint32_t adj)495 get_stackshot_estsize(uint32_t prev_size_hint, uint32_t adj)
496 {
497 	vm_size_t thread_total;
498 	vm_size_t task_total;
499 	uint64_t size;
500 	uint32_t estimated_size;
501 	size_t est_thread_size = sizeof(struct thread_snapshot);
502 	size_t est_task_size = sizeof(struct task_snapshot) + TASK_UUID_AVG_SIZE;
503 
504 	adj = MIN(adj, 100u);   /* no more than double our estimate */
505 
506 #if STACKSHOT_COLLECTS_LATENCY_INFO
507 	if (collect_latency_info) {
508 		est_thread_size += sizeof(struct stackshot_latency_thread);
509 		est_task_size += sizeof(struct stackshot_latency_task);
510 	}
511 #endif
512 
513 	thread_total = (threads_count * est_thread_size);
514 	task_total = (tasks_count  * est_task_size);
515 
516 	size = thread_total + task_total + STACKSHOT_SUPP_SIZE;                 /* estimate */
517 	size += (size * adj) / 100;                                                                     /* add adj */
518 	size = MAX(size, prev_size_hint);                                                               /* allow hint to increase */
519 	size += stackshot_plh_est_size(); /* add space for the port label hash */
520 	size = MIN(size, VM_MAP_TRUNC_PAGE(UINT32_MAX, PAGE_MASK));             /* avoid overflow */
521 	estimated_size = (uint32_t) VM_MAP_ROUND_PAGE(size, PAGE_MASK); /* round to pagesize */
522 
523 	return estimated_size;
524 }
525 
526 /*
527  * stackshot_remap_buffer:	Utility function to remap bytes_traced bytes starting at stackshotbuf
528  *				into the current task's user space and subsequently copy out the address
529  *				at which the buffer has been mapped in user space to out_buffer_addr.
530  *
531  * Inputs:			stackshotbuf - pointer to the original buffer in the kernel's address space
532  *				bytes_traced - length of the buffer to remap starting from stackshotbuf
533  *				out_buffer_addr - pointer to placeholder where newly mapped buffer will be mapped.
534  *				out_size_addr - pointer to be filled in with the size of the buffer
535  *
536  * Outputs:			ENOSPC if there is not enough free space in the task's address space to remap the buffer
537  *				EINVAL for all other errors returned by task_remap_buffer/mach_vm_remap
538  *				an error from copyout
539  */
540 static kern_return_t
stackshot_remap_buffer(void * stackshotbuf,uint32_t bytes_traced,uint64_t out_buffer_addr,uint64_t out_size_addr)541 stackshot_remap_buffer(void *stackshotbuf, uint32_t bytes_traced, uint64_t out_buffer_addr, uint64_t out_size_addr)
542 {
543 	int                     error = 0;
544 	mach_vm_offset_t        stackshotbuf_user_addr = (mach_vm_offset_t)NULL;
545 	vm_prot_t               cur_prot, max_prot;
546 
547 	error = mach_vm_remap_kernel(get_task_map(current_task()), &stackshotbuf_user_addr, bytes_traced, 0,
548 	    VM_FLAGS_ANYWHERE, VM_KERN_MEMORY_NONE, kernel_map, (mach_vm_offset_t)stackshotbuf, FALSE, &cur_prot, &max_prot, VM_INHERIT_DEFAULT);
549 	/*
550 	 * If the call to mach_vm_remap fails, we return the appropriate converted error
551 	 */
552 	if (error == KERN_SUCCESS) {
553 		/*
554 		 * If we fail to copy out the address or size of the new buffer, we remove the buffer mapping that
555 		 * we just made in the task's user space.
556 		 */
557 		error = copyout(CAST_DOWN(void *, &stackshotbuf_user_addr), (user_addr_t)out_buffer_addr, sizeof(stackshotbuf_user_addr));
558 		if (error != KERN_SUCCESS) {
559 			mach_vm_deallocate(get_task_map(current_task()), stackshotbuf_user_addr, (mach_vm_size_t)bytes_traced);
560 			return error;
561 		}
562 		error = copyout(&bytes_traced, (user_addr_t)out_size_addr, sizeof(bytes_traced));
563 		if (error != KERN_SUCCESS) {
564 			mach_vm_deallocate(get_task_map(current_task()), stackshotbuf_user_addr, (mach_vm_size_t)bytes_traced);
565 			return error;
566 		}
567 	}
568 	return error;
569 }
570 
571 kern_return_t
kern_stack_snapshot_internal(int stackshot_config_version,void * stackshot_config,size_t stackshot_config_size,boolean_t stackshot_from_user)572 kern_stack_snapshot_internal(int stackshot_config_version, void *stackshot_config, size_t stackshot_config_size, boolean_t stackshot_from_user)
573 {
574 	int error = 0;
575 	boolean_t prev_interrupt_state;
576 	uint32_t bytes_traced = 0;
577 	uint32_t stackshot_estimate = 0;
578 	uint32_t stackshotbuf_size = 0;
579 	void * stackshotbuf = NULL;
580 	kcdata_descriptor_t kcdata_p = NULL;
581 
582 	void * buf_to_free = NULL;
583 	int size_to_free = 0;
584 	bool is_traced = false;    /* has FUNC_START tracepoint fired? */
585 	uint64_t tot_interrupts_off_abs = 0; /* sum(time with interrupts off) */
586 
587 	/* Parsed arguments */
588 	uint64_t                out_buffer_addr;
589 	uint64_t                out_size_addr;
590 	int                     pid = -1;
591 	uint64_t                flags;
592 	uint64_t                since_timestamp;
593 	uint32_t                size_hint = 0;
594 	uint32_t                pagetable_mask = STACKSHOT_PAGETABLES_MASK_ALL;
595 
596 	if (stackshot_config == NULL) {
597 		return KERN_INVALID_ARGUMENT;
598 	}
599 #if DEVELOPMENT || DEBUG
600 	/* TBD: ask stackshot clients to avoid issuing stackshots in this
601 	 * configuration in lieu of the kernel feature override.
602 	 */
603 	if (kern_feature_override(KF_STACKSHOT_OVRD) == TRUE) {
604 		return KERN_NOT_SUPPORTED;
605 	}
606 #endif
607 
608 	switch (stackshot_config_version) {
609 	case STACKSHOT_CONFIG_TYPE:
610 		if (stackshot_config_size != sizeof(stackshot_config_t)) {
611 			return KERN_INVALID_ARGUMENT;
612 		}
613 		stackshot_config_t *config = (stackshot_config_t *) stackshot_config;
614 		out_buffer_addr = config->sc_out_buffer_addr;
615 		out_size_addr = config->sc_out_size_addr;
616 		pid = config->sc_pid;
617 		flags = config->sc_flags;
618 		since_timestamp = config->sc_delta_timestamp;
619 		if (config->sc_size <= max_tracebuf_size) {
620 			size_hint = config->sc_size;
621 		}
622 		/*
623 		 * Retain the pre-sc_pagetable_mask behavior of STACKSHOT_PAGE_TABLES,
624 		 * dump every level if the pagetable_mask is not set
625 		 */
626 		if (flags & STACKSHOT_PAGE_TABLES && config->sc_pagetable_mask) {
627 			pagetable_mask = config->sc_pagetable_mask;
628 		}
629 		break;
630 	default:
631 		return KERN_NOT_SUPPORTED;
632 	}
633 
634 	/*
635 	 * Currently saving a kernel buffer and trylock are only supported from the
636 	 * internal/KEXT API.
637 	 */
638 	if (stackshot_from_user) {
639 		if (flags & (STACKSHOT_TRYLOCK | STACKSHOT_SAVE_IN_KERNEL_BUFFER | STACKSHOT_FROM_PANIC)) {
640 			return KERN_NO_ACCESS;
641 		}
642 #if !DEVELOPMENT && !DEBUG
643 		if (flags & (STACKSHOT_DO_COMPRESS)) {
644 			return KERN_NO_ACCESS;
645 		}
646 #endif
647 	} else {
648 		if (!(flags & STACKSHOT_SAVE_IN_KERNEL_BUFFER)) {
649 			return KERN_NOT_SUPPORTED;
650 		}
651 	}
652 
653 	if (!((flags & STACKSHOT_KCDATA_FORMAT) || (flags & STACKSHOT_RETRIEVE_EXISTING_BUFFER))) {
654 		return KERN_NOT_SUPPORTED;
655 	}
656 
657 	/* Compresssed delta stackshots or page dumps are not yet supported */
658 	if (((flags & STACKSHOT_COLLECT_DELTA_SNAPSHOT) || (flags & STACKSHOT_PAGE_TABLES))
659 	    && (flags & STACKSHOT_DO_COMPRESS)) {
660 		return KERN_NOT_SUPPORTED;
661 	}
662 
663 	/*
664 	 * If we're not saving the buffer in the kernel pointer, we need a place to copy into.
665 	 */
666 	if ((!out_buffer_addr || !out_size_addr) && !(flags & STACKSHOT_SAVE_IN_KERNEL_BUFFER)) {
667 		return KERN_INVALID_ARGUMENT;
668 	}
669 
670 	if (since_timestamp != 0 && ((flags & STACKSHOT_COLLECT_DELTA_SNAPSHOT) == 0)) {
671 		return KERN_INVALID_ARGUMENT;
672 	}
673 
674 #if CONFIG_PERVASIVE_CPI && MONOTONIC
675 	if (!mt_core_supported) {
676 		flags &= ~STACKSHOT_INSTRS_CYCLES;
677 	}
678 #else /* CONFIG_PERVASIVE_CPI && MONOTONIC */
679 	flags &= ~STACKSHOT_INSTRS_CYCLES;
680 #endif /* !CONFIG_PERVASIVE_CPI || !MONOTONIC */
681 
682 	STACKSHOT_SUBSYS_LOCK();
683 
684 	if (flags & STACKSHOT_SAVE_IN_KERNEL_BUFFER) {
685 		/*
686 		 * Don't overwrite an existing stackshot
687 		 */
688 		if (kernel_stackshot_buf != NULL) {
689 			error = KERN_MEMORY_PRESENT;
690 			goto error_exit;
691 		}
692 	} else if (flags & STACKSHOT_RETRIEVE_EXISTING_BUFFER) {
693 		if ((kernel_stackshot_buf == NULL) || (kernel_stackshot_buf_size <= 0)) {
694 			error = KERN_NOT_IN_SET;
695 			goto error_exit;
696 		}
697 		error = stackshot_remap_buffer(kernel_stackshot_buf, kernel_stackshot_buf_size,
698 		    out_buffer_addr, out_size_addr);
699 		/*
700 		 * If we successfully remapped the buffer into the user's address space, we
701 		 * set buf_to_free and size_to_free so the prior kernel mapping will be removed
702 		 * and then clear the kernel stackshot pointer and associated size.
703 		 */
704 		if (error == KERN_SUCCESS) {
705 			buf_to_free = kernel_stackshot_buf;
706 			size_to_free = (int) VM_MAP_ROUND_PAGE(kernel_stackshot_buf_size, PAGE_MASK);
707 			kernel_stackshot_buf = NULL;
708 			kernel_stackshot_buf_size = 0;
709 		}
710 
711 		goto error_exit;
712 	}
713 
714 	if (flags & STACKSHOT_GET_BOOT_PROFILE) {
715 		void *bootprofile = NULL;
716 		uint32_t len = 0;
717 #if CONFIG_TELEMETRY
718 		bootprofile_get(&bootprofile, &len);
719 #endif
720 		if (!bootprofile || !len) {
721 			error = KERN_NOT_IN_SET;
722 			goto error_exit;
723 		}
724 		error = stackshot_remap_buffer(bootprofile, len, out_buffer_addr, out_size_addr);
725 		goto error_exit;
726 	}
727 
728 	stackshot_duration_prior_abs = 0;
729 	stackshot_initial_estimate_adj = os_atomic_load(&stackshot_estimate_adj, relaxed);
730 	stackshotbuf_size = stackshot_estimate =
731 	    get_stackshot_estsize(size_hint, stackshot_initial_estimate_adj);
732 	stackshot_initial_estimate = stackshot_estimate;
733 
734 	KDBG_RELEASE(MACHDBG_CODE(DBG_MACH_STACKSHOT, STACKSHOT_RECORD) | DBG_FUNC_START,
735 	    flags, stackshotbuf_size, pid, since_timestamp);
736 	is_traced = true;
737 
738 	for (; stackshotbuf_size <= max_tracebuf_size; stackshotbuf_size <<= 1) {
739 		if (kmem_alloc(kernel_map, (vm_offset_t *)&stackshotbuf, stackshotbuf_size,
740 		    KMA_ZERO | KMA_DATA, VM_KERN_MEMORY_DIAG) != KERN_SUCCESS) {
741 			error = KERN_RESOURCE_SHORTAGE;
742 			goto error_exit;
743 		}
744 
745 
746 		uint32_t hdr_tag = (flags & STACKSHOT_COLLECT_DELTA_SNAPSHOT) ? KCDATA_BUFFER_BEGIN_DELTA_STACKSHOT
747 		    : (flags & STACKSHOT_DO_COMPRESS) ? KCDATA_BUFFER_BEGIN_COMPRESSED
748 		    : KCDATA_BUFFER_BEGIN_STACKSHOT;
749 		kcdata_p = kcdata_memory_alloc_init((mach_vm_address_t)stackshotbuf, hdr_tag, stackshotbuf_size,
750 		    KCFLAG_USE_MEMCOPY | KCFLAG_NO_AUTO_ENDBUFFER);
751 
752 		stackshot_duration_outer = NULL;
753 
754 		/* if compression was requested, allocate the extra zlib scratch area */
755 		if (flags & STACKSHOT_DO_COMPRESS) {
756 			hdr_tag = (flags & STACKSHOT_COLLECT_DELTA_SNAPSHOT) ? KCDATA_BUFFER_BEGIN_DELTA_STACKSHOT
757 			    : KCDATA_BUFFER_BEGIN_STACKSHOT;
758 			error = kcdata_init_compress(kcdata_p, hdr_tag, kdp_memcpy, KCDCT_ZLIB);
759 			if (error != KERN_SUCCESS) {
760 				os_log(OS_LOG_DEFAULT, "failed to initialize compression: %d!\n",
761 				    (int) error);
762 				goto error_exit;
763 			}
764 		}
765 
766 		/*
767 		 * Disable interrupts and save the current interrupt state.
768 		 */
769 		prev_interrupt_state = ml_set_interrupts_enabled(FALSE);
770 		uint64_t time_start      = mach_absolute_time();
771 
772 		/* Emit a SOCD tracepoint that we are initiating a stackshot */
773 		SOCD_TRACE_XNU_START(STACKSHOT);
774 
775 		/*
776 		 * Load stackshot parameters.
777 		 */
778 		kdp_snapshot_preflight(pid, stackshotbuf, stackshotbuf_size, flags, kcdata_p, since_timestamp,
779 		    pagetable_mask);
780 
781 		error = stackshot_trap();
782 
783 		/* record the duration that interupts were disabled */
784 		uint64_t time_end = mach_absolute_time();
785 
786 		/* Emit a SOCD tracepoint that we have completed the stackshot */
787 		SOCD_TRACE_XNU_END(STACKSHOT);
788 		ml_set_interrupts_enabled(prev_interrupt_state);
789 
790 		if (stackshot_duration_outer) {
791 			*stackshot_duration_outer = time_end - time_start;
792 		}
793 		tot_interrupts_off_abs += time_end - time_start;
794 
795 		if (error != KERN_SUCCESS) {
796 			if (kcdata_p != NULL) {
797 				kcdata_memory_destroy(kcdata_p);
798 				kcdata_p = NULL;
799 				stackshot_kcdata_p = NULL;
800 			}
801 			kmem_free(kernel_map, (vm_offset_t)stackshotbuf, stackshotbuf_size);
802 			stackshotbuf = NULL;
803 			if (error == KERN_INSUFFICIENT_BUFFER_SIZE) {
804 				/*
805 				 * If we didn't allocate a big enough buffer, deallocate and try again.
806 				 */
807 				KDBG_RELEASE(MACHDBG_CODE(DBG_MACH_STACKSHOT, STACKSHOT_RECORD_SHORT) | DBG_FUNC_NONE,
808 				    time_end - time_start, stackshot_estimate, stackshotbuf_size);
809 				stackshot_duration_prior_abs += (time_end - time_start);
810 				continue;
811 			} else {
812 				goto error_exit;
813 			}
814 		}
815 
816 		bytes_traced = kdp_stack_snapshot_bytes_traced();
817 		if (bytes_traced <= 0) {
818 			error = KERN_ABORTED;
819 			goto error_exit;
820 		}
821 
822 		assert(bytes_traced <= stackshotbuf_size);
823 		if (!(flags & STACKSHOT_SAVE_IN_KERNEL_BUFFER)) {
824 			error = stackshot_remap_buffer(stackshotbuf, bytes_traced, out_buffer_addr, out_size_addr);
825 			goto error_exit;
826 		}
827 
828 		/*
829 		 * Save the stackshot in the kernel buffer.
830 		 */
831 		kernel_stackshot_buf = stackshotbuf;
832 		kernel_stackshot_buf_size =  bytes_traced;
833 		/*
834 		 * Figure out if we didn't use all the pages in the buffer. If so, we set buf_to_free to the beginning of
835 		 * the next page after the end of the stackshot in the buffer so that the kmem_free clips the buffer and
836 		 * update size_to_free for kmem_free accordingly.
837 		 */
838 		size_to_free = stackshotbuf_size - (int) VM_MAP_ROUND_PAGE(bytes_traced, PAGE_MASK);
839 
840 		assert(size_to_free >= 0);
841 
842 		if (size_to_free != 0) {
843 			buf_to_free = (void *)((uint64_t)stackshotbuf + stackshotbuf_size - size_to_free);
844 		}
845 
846 		stackshotbuf = NULL;
847 		stackshotbuf_size = 0;
848 		goto error_exit;
849 	}
850 
851 	if (stackshotbuf_size > max_tracebuf_size) {
852 		error = KERN_RESOURCE_SHORTAGE;
853 	}
854 
855 error_exit:
856 	if (is_traced) {
857 		KDBG_RELEASE(MACHDBG_CODE(DBG_MACH_STACKSHOT, STACKSHOT_RECORD) | DBG_FUNC_END,
858 		    error, tot_interrupts_off_abs, stackshotbuf_size, bytes_traced);
859 	}
860 	if (kcdata_p != NULL) {
861 		kcdata_memory_destroy(kcdata_p);
862 		kcdata_p = NULL;
863 		stackshot_kcdata_p = NULL;
864 	}
865 
866 	if (stackshotbuf != NULL) {
867 		kmem_free(kernel_map, (vm_offset_t)stackshotbuf, stackshotbuf_size);
868 	}
869 	if (buf_to_free != NULL) {
870 		kmem_free(kernel_map, (vm_offset_t)buf_to_free, size_to_free);
871 	}
872 	STACKSHOT_SUBSYS_UNLOCK();
873 	return error;
874 }
875 
876 /*
877  * Cache stack snapshot parameters in preparation for a trace.
878  */
879 void
kdp_snapshot_preflight(int pid,void * tracebuf,uint32_t tracebuf_size,uint64_t flags,kcdata_descriptor_t data_p,uint64_t since_timestamp,uint32_t pagetable_mask)880 kdp_snapshot_preflight(int pid, void * tracebuf, uint32_t tracebuf_size, uint64_t flags,
881     kcdata_descriptor_t data_p, uint64_t since_timestamp, uint32_t pagetable_mask)
882 {
883 	uint64_t microsecs = 0, secs = 0;
884 	clock_get_calendar_microtime((clock_sec_t *)&secs, (clock_usec_t *)&microsecs);
885 
886 	stackshot_microsecs = microsecs + (secs * USEC_PER_SEC);
887 	stack_snapshot_pid = pid;
888 	stack_snapshot_buf = tracebuf;
889 	stack_snapshot_bufsize = tracebuf_size;
890 	stack_snapshot_flags = flags;
891 	stack_snapshot_delta_since_timestamp = since_timestamp;
892 	stack_snapshot_pagetable_mask = pagetable_mask;
893 
894 	panic_stackshot = ((flags & STACKSHOT_FROM_PANIC) != 0);
895 
896 	assert(data_p != NULL);
897 	assert(stackshot_kcdata_p == NULL);
898 	stackshot_kcdata_p = data_p;
899 
900 	stack_snapshot_bytes_traced = 0;
901 	stack_snapshot_bytes_uncompressed = 0;
902 }
903 
904 void
panic_stackshot_reset_state(void)905 panic_stackshot_reset_state(void)
906 {
907 	stackshot_kcdata_p = NULL;
908 }
909 
910 boolean_t
stackshot_active(void)911 stackshot_active(void)
912 {
913 	return stackshot_kcdata_p != NULL;
914 }
915 
916 uint32_t
kdp_stack_snapshot_bytes_traced(void)917 kdp_stack_snapshot_bytes_traced(void)
918 {
919 	return stack_snapshot_bytes_traced;
920 }
921 
922 uint32_t
kdp_stack_snapshot_bytes_uncompressed(void)923 kdp_stack_snapshot_bytes_uncompressed(void)
924 {
925 	return stack_snapshot_bytes_uncompressed;
926 }
927 
928 static boolean_t
memory_iszero(void * addr,size_t size)929 memory_iszero(void *addr, size_t size)
930 {
931 	char *data = (char *)addr;
932 	for (size_t i = 0; i < size; i++) {
933 		if (data[i] != 0) {
934 			return FALSE;
935 		}
936 	}
937 	return TRUE;
938 }
939 
940 /*
941  * Keep a simple cache of the most recent validation done at a page granularity
942  * to avoid the expensive software KVA-to-phys translation in the VM.
943  */
944 
945 struct _stackshot_validation_state {
946 	vm_offset_t last_valid_page_kva;
947 	size_t last_valid_size;
948 } g_validation_state;
949 
950 static void
_stackshot_validation_reset(void)951 _stackshot_validation_reset(void)
952 {
953 	g_validation_state.last_valid_page_kva = -1;
954 	g_validation_state.last_valid_size = 0;
955 }
956 
957 static bool
_stackshot_validate_kva(vm_offset_t addr,size_t size)958 _stackshot_validate_kva(vm_offset_t addr, size_t size)
959 {
960 	vm_offset_t page_addr = atop_kernel(addr);
961 	if (g_validation_state.last_valid_page_kva == page_addr &&
962 	    g_validation_state.last_valid_size <= size) {
963 		return true;
964 	}
965 
966 	if (ml_validate_nofault(addr, size)) {
967 		g_validation_state.last_valid_page_kva = page_addr;
968 		g_validation_state.last_valid_size = size;
969 		return true;
970 	}
971 	return false;
972 }
973 
974 static long
_stackshot_strlen(const char * s,size_t maxlen)975 _stackshot_strlen(const char *s, size_t maxlen)
976 {
977 	size_t len = 0;
978 	for (len = 0; _stackshot_validate_kva((vm_offset_t)s, 1); len++, s++) {
979 		if (*s == 0) {
980 			return len;
981 		}
982 		if (len >= maxlen) {
983 			return -1;
984 		}
985 	}
986 	return -1; /* failed before end of string */
987 }
988 
989 #define kcd_end_address(kcd) ((void *)((uint64_t)((kcd)->kcd_addr_begin) + kcdata_memory_get_used_bytes((kcd))))
990 #define kcd_max_address(kcd) ((void *)((kcd)->kcd_addr_begin + (kcd)->kcd_length))
991 /*
992  * Use of the kcd_exit_on_error(action) macro requires a local
993  * 'kern_return_t error' variable and 'error_exit' label.
994  */
995 #define kcd_exit_on_error(action)                      \
996 	do {                                               \
997 	        if (KERN_SUCCESS != (error = (action))) {      \
998 	                if (error == KERN_RESOURCE_SHORTAGE) {     \
999 	                        error = KERN_INSUFFICIENT_BUFFER_SIZE; \
1000 	                }                                          \
1001 	                goto error_exit;                           \
1002 	        }                                              \
1003 	} while (0); /* end kcd_exit_on_error */
1004 
1005 
1006 /*
1007  * For port labels, we have a small hash table we use to track the
1008  * struct ipc_service_port_label pointers we see along the way.
1009  * This structure encapsulates the global state.
1010  *
1011  * The hash table is insert-only, similar to "intern"ing strings.  It's
1012  * only used an manipulated in during the stackshot collection.  We use
1013  * seperate chaining, with the hash elements and chains being int16_ts
1014  * indexes into the parallel arrays, with -1 ending the chain.  Array indices are
1015  * allocated using a bump allocator.
1016  *
1017  * The parallel arrays contain:
1018  *      - plh_array[idx]	the pointer entered
1019  *      - plh_chains[idx]	the hash chain
1020  *      - plh_gen[idx]		the last 'generation #' seen
1021  *
1022  * Generation IDs are used to track entries looked up in the current
1023  * task; 0 is never used, and the plh_gen array is cleared to 0 on
1024  * rollover.
1025  *
1026  * The portlabel_ids we report externally are just the index in the array,
1027  * plus 1 to avoid 0 as a value.  0 is NONE, -1 is UNKNOWN (e.g. there is
1028  * one, but we ran out of space)
1029  */
1030 struct port_label_hash {
1031 	uint16_t                plh_size;       /* size of allocations; 0 disables tracking */
1032 	uint16_t                plh_count;      /* count of used entries in plh_array */
1033 	struct ipc_service_port_label **plh_array; /* _size allocated, _count used */
1034 	int16_t                *plh_chains;    /* _size allocated */
1035 	uint8_t                *plh_gen;       /* last 'gen #' seen in */
1036 	int16_t                *plh_hash;      /* (1 << STACKSHOT_PLH_SHIFT) entry hash table: hash(ptr) -> array index */
1037 	int16_t                 plh_curgen_min; /* min idx seen for this gen */
1038 	int16_t                 plh_curgen_max; /* max idx seen for this gen */
1039 	uint8_t                 plh_curgen;     /* current gen */
1040 #if DEVELOPMENT || DEBUG
1041 	/* statistics */
1042 	uint32_t                plh_lookups;    /* # lookups or inserts */
1043 	uint32_t                plh_found;
1044 	uint32_t                plh_found_depth;
1045 	uint32_t                plh_insert;
1046 	uint32_t                plh_insert_depth;
1047 	uint32_t                plh_bad;
1048 	uint32_t                plh_bad_depth;
1049 	uint32_t                plh_lookup_send;
1050 	uint32_t                plh_lookup_receive;
1051 #define PLH_STAT_OP(...)    (void)(__VA_ARGS__)
1052 #else /* DEVELOPMENT || DEBUG */
1053 #define PLH_STAT_OP(...)    (void)(0)
1054 #endif /* DEVELOPMENT || DEBUG */
1055 } port_label_hash;
1056 
1057 #define STACKSHOT_PLH_SHIFT    7
1058 #define STACKSHOT_PLH_SIZE_MAX ((kdp_ipc_have_splabel)? 1024 : 0)
1059 size_t stackshot_port_label_size = (2 * (1u << STACKSHOT_PLH_SHIFT));
1060 #define STASKSHOT_PLH_SIZE(x) MIN((x), STACKSHOT_PLH_SIZE_MAX)
1061 
1062 static size_t
stackshot_plh_est_size(void)1063 stackshot_plh_est_size(void)
1064 {
1065 	struct port_label_hash *plh = &port_label_hash;
1066 	size_t size = STASKSHOT_PLH_SIZE(stackshot_port_label_size);
1067 
1068 	if (size == 0) {
1069 		return 0;
1070 	}
1071 #define SIZE_EST(x) ROUNDUP((x), sizeof (uintptr_t))
1072 	return SIZE_EST(size * sizeof(*plh->plh_array)) +
1073 	       SIZE_EST(size * sizeof(*plh->plh_chains)) +
1074 	       SIZE_EST(size * sizeof(*plh->plh_gen)) +
1075 	       SIZE_EST((1ul << STACKSHOT_PLH_SHIFT) * sizeof(*plh->plh_hash));
1076 #undef SIZE_EST
1077 }
1078 
1079 static void
stackshot_plh_reset(void)1080 stackshot_plh_reset(void)
1081 {
1082 	port_label_hash = (struct port_label_hash){.plh_size = 0};  /* structure assignment */
1083 }
1084 
1085 static void
stackshot_plh_setup(kcdata_descriptor_t data)1086 stackshot_plh_setup(kcdata_descriptor_t data)
1087 {
1088 	struct port_label_hash plh = {
1089 		.plh_size = STASKSHOT_PLH_SIZE(stackshot_port_label_size),
1090 		.plh_count = 0,
1091 		.plh_curgen = 1,
1092 		.plh_curgen_min = STACKSHOT_PLH_SIZE_MAX,
1093 		.plh_curgen_max = 0,
1094 	};
1095 	stackshot_plh_reset();
1096 	size_t size = plh.plh_size;
1097 	if (size == 0) {
1098 		return;
1099 	}
1100 	plh.plh_array = kcdata_endalloc(data, size * sizeof(*plh.plh_array));
1101 	plh.plh_chains = kcdata_endalloc(data, size * sizeof(*plh.plh_chains));
1102 	plh.plh_gen = kcdata_endalloc(data, size * sizeof(*plh.plh_gen));
1103 	plh.plh_hash = kcdata_endalloc(data, (1ul << STACKSHOT_PLH_SHIFT) * sizeof(*plh.plh_hash));
1104 	if (plh.plh_array == NULL || plh.plh_chains == NULL || plh.plh_gen == NULL || plh.plh_hash == NULL) {
1105 		PLH_STAT_OP(port_label_hash.plh_bad++);
1106 		return;
1107 	}
1108 	for (int x = 0; x < size; x++) {
1109 		plh.plh_array[x] = NULL;
1110 		plh.plh_chains[x] = -1;
1111 		plh.plh_gen[x] = 0;
1112 	}
1113 	for (int x = 0; x < (1ul << STACKSHOT_PLH_SHIFT); x++) {
1114 		plh.plh_hash[x] = -1;
1115 	}
1116 	port_label_hash = plh;  /* structure assignment */
1117 }
1118 
1119 static int16_t
stackshot_plh_hash(struct ipc_service_port_label * ispl)1120 stackshot_plh_hash(struct ipc_service_port_label *ispl)
1121 {
1122 	uintptr_t ptr = (uintptr_t)ispl;
1123 	static_assert(STACKSHOT_PLH_SHIFT < 16, "plh_hash must fit in 15 bits");
1124 #define PLH_HASH_STEP(ptr, x) \
1125 	    ((((x) * STACKSHOT_PLH_SHIFT) < (sizeof(ispl) * CHAR_BIT)) ? ((ptr) >> ((x) * STACKSHOT_PLH_SHIFT)) : 0)
1126 	ptr ^= PLH_HASH_STEP(ptr, 16);
1127 	ptr ^= PLH_HASH_STEP(ptr, 8);
1128 	ptr ^= PLH_HASH_STEP(ptr, 4);
1129 	ptr ^= PLH_HASH_STEP(ptr, 2);
1130 	ptr ^= PLH_HASH_STEP(ptr, 1);
1131 #undef PLH_HASH_STEP
1132 	return (int16_t)(ptr & ((1ul << STACKSHOT_PLH_SHIFT) - 1));
1133 }
1134 
1135 enum stackshot_plh_lookup_type {
1136 	STACKSHOT_PLH_LOOKUP_UNKNOWN,
1137 	STACKSHOT_PLH_LOOKUP_SEND,
1138 	STACKSHOT_PLH_LOOKUP_RECEIVE,
1139 };
1140 
1141 static void
stackshot_plh_resetgen(void)1142 stackshot_plh_resetgen(void)
1143 {
1144 	struct port_label_hash *plh = &port_label_hash;
1145 	if (plh->plh_curgen_min == STACKSHOT_PLH_SIZE_MAX && plh->plh_curgen_max == 0) {
1146 		return;  // no lookups, nothing using the current generation
1147 	}
1148 	plh->plh_curgen++;
1149 	plh->plh_curgen_min = STACKSHOT_PLH_SIZE_MAX;
1150 	plh->plh_curgen_max = 0;
1151 	if (plh->plh_curgen == 0) { // wrapped, zero the array and increment the generation
1152 		for (int x = 0; x < plh->plh_size; x++) {
1153 			plh->plh_gen[x] = 0;
1154 		}
1155 		plh->plh_curgen = 1;
1156 	}
1157 }
1158 
1159 static int16_t
stackshot_plh_lookup(struct ipc_service_port_label * ispl,enum stackshot_plh_lookup_type type)1160 stackshot_plh_lookup(struct ipc_service_port_label *ispl, enum stackshot_plh_lookup_type type)
1161 {
1162 	struct port_label_hash *plh = &port_label_hash;
1163 	int depth;
1164 	int16_t cur;
1165 	if (ispl == NULL) {
1166 		return STACKSHOT_PORTLABELID_NONE;
1167 	}
1168 	switch (type) {
1169 	case STACKSHOT_PLH_LOOKUP_SEND:
1170 		PLH_STAT_OP(plh->plh_lookup_send++);
1171 		break;
1172 	case STACKSHOT_PLH_LOOKUP_RECEIVE:
1173 		PLH_STAT_OP(plh->plh_lookup_receive++);
1174 		break;
1175 	default:
1176 		break;
1177 	}
1178 	PLH_STAT_OP(plh->plh_lookups++);
1179 	if (plh->plh_size == 0) {
1180 		return STACKSHOT_PORTLABELID_MISSING;
1181 	}
1182 	int16_t hash = stackshot_plh_hash(ispl);
1183 	assert(hash >= 0 && hash < (1ul << STACKSHOT_PLH_SHIFT));
1184 	depth = 0;
1185 	for (cur = plh->plh_hash[hash]; cur >= 0; cur = plh->plh_chains[cur]) {
1186 		/* cur must be in-range, and chain depth can never be above our # allocated */
1187 		if (cur >= plh->plh_count || depth > plh->plh_count || depth > plh->plh_size) {
1188 			PLH_STAT_OP((plh->plh_bad++), (plh->plh_bad_depth += depth));
1189 			return STACKSHOT_PORTLABELID_MISSING;
1190 		}
1191 		assert(cur < plh->plh_count);
1192 		if (plh->plh_array[cur] == ispl) {
1193 			PLH_STAT_OP((plh->plh_found++), (plh->plh_found_depth += depth));
1194 			goto found;
1195 		}
1196 		depth++;
1197 	}
1198 	/* not found in hash table, so alloc and insert it */
1199 	if (cur != -1) {
1200 		PLH_STAT_OP((plh->plh_bad++), (plh->plh_bad_depth += depth));
1201 		return STACKSHOT_PORTLABELID_MISSING; /* bad end of chain */
1202 	}
1203 	PLH_STAT_OP((plh->plh_insert++), (plh->plh_insert_depth += depth));
1204 	if (plh->plh_count >= plh->plh_size) {
1205 		return STACKSHOT_PORTLABELID_MISSING; /* no space */
1206 	}
1207 	cur = plh->plh_count;
1208 	plh->plh_count++;
1209 	plh->plh_array[cur] = ispl;
1210 	plh->plh_chains[cur] = plh->plh_hash[hash];
1211 	plh->plh_hash[hash] = cur;
1212 found:
1213 	plh->plh_gen[cur] = plh->plh_curgen;
1214 	if (plh->plh_curgen_min > cur) {
1215 		plh->plh_curgen_min = cur;
1216 	}
1217 	if (plh->plh_curgen_max < cur) {
1218 		plh->plh_curgen_max = cur;
1219 	}
1220 	return cur + 1;   /* offset to avoid 0 */
1221 }
1222 
1223 // record any PLH referenced since the last stackshot_plh_resetgen() call
1224 static kern_return_t
kdp_stackshot_plh_record(void)1225 kdp_stackshot_plh_record(void)
1226 {
1227 	kern_return_t error = KERN_SUCCESS;
1228 	struct port_label_hash *plh = &port_label_hash;
1229 	uint16_t count = plh->plh_count;
1230 	uint8_t curgen = plh->plh_curgen;
1231 	int16_t curgen_min = plh->plh_curgen_min;
1232 	int16_t curgen_max = plh->plh_curgen_max;
1233 	if (curgen_min <= curgen_max && curgen_max < count &&
1234 	    count <= plh->plh_size && plh->plh_size <= STACKSHOT_PLH_SIZE_MAX) {
1235 		struct ipc_service_port_label **arr = plh->plh_array;
1236 		size_t ispl_size, max_namelen;
1237 		kdp_ipc_splabel_size(&ispl_size, &max_namelen);
1238 		for (int idx = curgen_min; idx <= curgen_max; idx++) {
1239 			struct ipc_service_port_label *ispl = arr[idx];
1240 			struct portlabel_info spl = {
1241 				.portlabel_id = (idx + 1),
1242 			};
1243 			const char *name = NULL;
1244 			long name_sz = 0;
1245 			if (plh->plh_gen[idx] != curgen) {
1246 				continue;
1247 			}
1248 			if (_stackshot_validate_kva((vm_offset_t)ispl, ispl_size)) {
1249 				kdp_ipc_fill_splabel(ispl, &spl, &name);
1250 			}
1251 			kcd_exit_on_error(kcdata_add_container_marker(stackshot_kcdata_p, KCDATA_TYPE_CONTAINER_BEGIN,
1252 			    STACKSHOT_KCCONTAINER_PORTLABEL, idx + 1));
1253 			if (name != NULL && (name_sz = _stackshot_strlen(name, max_namelen)) > 0) {   /* validates the kva */
1254 				kcd_exit_on_error(kcdata_push_data(stackshot_kcdata_p, STACKSHOT_KCTYPE_PORTLABEL_NAME, name_sz + 1, name));
1255 			} else {
1256 				spl.portlabel_flags |= STACKSHOT_PORTLABEL_READFAILED;
1257 			}
1258 			kcd_exit_on_error(kcdata_push_data(stackshot_kcdata_p, STACKSHOT_KCTYPE_PORTLABEL, sizeof(spl), &spl));
1259 			kcd_exit_on_error(kcdata_add_container_marker(stackshot_kcdata_p, KCDATA_TYPE_CONTAINER_END,
1260 			    STACKSHOT_KCCONTAINER_PORTLABEL, idx + 1));
1261 		}
1262 	}
1263 
1264 error_exit:
1265 	return error;
1266 }
1267 
1268 #if DEVELOPMENT || DEBUG
1269 static kern_return_t
kdp_stackshot_plh_stats(void)1270 kdp_stackshot_plh_stats(void)
1271 {
1272 	kern_return_t error = KERN_SUCCESS;
1273 	struct port_label_hash *plh = &port_label_hash;
1274 
1275 #define PLH_STAT(x) do { if (plh->x != 0) { \
1276 	kcd_exit_on_error(kcdata_add_uint32_with_description(stackshot_kcdata_p, plh->x, "stackshot_" #x)); \
1277 } } while (0)
1278 	PLH_STAT(plh_size);
1279 	PLH_STAT(plh_lookups);
1280 	PLH_STAT(plh_found);
1281 	PLH_STAT(plh_found_depth);
1282 	PLH_STAT(plh_insert);
1283 	PLH_STAT(plh_insert_depth);
1284 	PLH_STAT(plh_bad);
1285 	PLH_STAT(plh_bad_depth);
1286 	PLH_STAT(plh_lookup_send);
1287 	PLH_STAT(plh_lookup_receive);
1288 #undef PLH_STAT
1289 
1290 error_exit:
1291 	return error;
1292 }
1293 #endif /* DEVELOPMENT || DEBUG */
1294 
1295 static uint64_t
kcdata_get_task_ss_flags(task_t task)1296 kcdata_get_task_ss_flags(task_t task)
1297 {
1298 	uint64_t ss_flags = 0;
1299 	boolean_t task_64bit_addr = task_has_64Bit_addr(task);
1300 	void *bsd_info = get_bsdtask_info(task);
1301 
1302 	if (task_64bit_addr) {
1303 		ss_flags |= kUser64_p;
1304 	}
1305 	if (!task->active || task_is_a_corpse(task) || proc_exiting(bsd_info)) {
1306 		ss_flags |= kTerminatedSnapshot;
1307 	}
1308 	if (task->pidsuspended) {
1309 		ss_flags |= kPidSuspended;
1310 	}
1311 	if (task->frozen) {
1312 		ss_flags |= kFrozen;
1313 	}
1314 	if (task->effective_policy.tep_darwinbg == 1) {
1315 		ss_flags |= kTaskDarwinBG;
1316 	}
1317 	if (task->requested_policy.trp_role == TASK_FOREGROUND_APPLICATION) {
1318 		ss_flags |= kTaskIsForeground;
1319 	}
1320 	if (task->requested_policy.trp_boosted == 1) {
1321 		ss_flags |= kTaskIsBoosted;
1322 	}
1323 	if (task->effective_policy.tep_sup_active == 1) {
1324 		ss_flags |= kTaskIsSuppressed;
1325 	}
1326 #if CONFIG_MEMORYSTATUS
1327 
1328 	boolean_t dirty = FALSE, dirty_tracked = FALSE, allow_idle_exit = FALSE;
1329 	memorystatus_proc_flags_unsafe(bsd_info, &dirty, &dirty_tracked, &allow_idle_exit);
1330 	if (dirty) {
1331 		ss_flags |= kTaskIsDirty;
1332 	}
1333 	if (dirty_tracked) {
1334 		ss_flags |= kTaskIsDirtyTracked;
1335 	}
1336 	if (allow_idle_exit) {
1337 		ss_flags |= kTaskAllowIdleExit;
1338 	}
1339 
1340 #endif
1341 	if (task->effective_policy.tep_tal_engaged) {
1342 		ss_flags |= kTaskTALEngaged;
1343 	}
1344 
1345 	ss_flags |= (0x7 & workqueue_get_pwq_state_kdp(bsd_info)) << 17;
1346 
1347 #if IMPORTANCE_INHERITANCE
1348 	if (task->task_imp_base) {
1349 		if (task->task_imp_base->iit_donor) {
1350 			ss_flags |= kTaskIsImpDonor;
1351 		}
1352 		if (task->task_imp_base->iit_live_donor) {
1353 			ss_flags |= kTaskIsLiveImpDonor;
1354 		}
1355 	}
1356 #endif
1357 	return ss_flags;
1358 }
1359 
1360 static kern_return_t
kcdata_record_shared_cache_info(kcdata_descriptor_t kcd,task_t task,unaligned_u64 * task_snap_ss_flags)1361 kcdata_record_shared_cache_info(kcdata_descriptor_t kcd, task_t task, unaligned_u64 *task_snap_ss_flags)
1362 {
1363 	kern_return_t error = KERN_SUCCESS;
1364 
1365 	uint64_t shared_cache_slide = 0;
1366 	uint64_t shared_cache_first_mapping = 0;
1367 	uint32_t kdp_fault_results = 0;
1368 	uint32_t shared_cache_id = 0;
1369 	struct dyld_shared_cache_loadinfo shared_cache_data = {0};
1370 
1371 
1372 	assert(task_snap_ss_flags != NULL);
1373 
1374 	/* Get basic info about the shared region pointer, regardless of any failures */
1375 	if (task->shared_region == NULL) {
1376 		*task_snap_ss_flags |= kTaskSharedRegionNone;
1377 	} else if (task->shared_region == primary_system_shared_region) {
1378 		*task_snap_ss_flags |= kTaskSharedRegionSystem;
1379 	} else {
1380 		*task_snap_ss_flags |= kTaskSharedRegionOther;
1381 	}
1382 
1383 	if (task->shared_region && _stackshot_validate_kva((vm_offset_t)task->shared_region, sizeof(struct vm_shared_region))) {
1384 		struct vm_shared_region *sr = task->shared_region;
1385 		shared_cache_first_mapping = sr->sr_base_address + sr->sr_first_mapping;
1386 
1387 		shared_cache_id = sr->sr_id;
1388 	} else {
1389 		*task_snap_ss_flags |= kTaskSharedRegionInfoUnavailable;
1390 		goto error_exit;
1391 	}
1392 
1393 	/* We haven't copied in the shared region UUID yet as part of setup */
1394 	if (!shared_cache_first_mapping || !task->shared_region->sr_uuid_copied) {
1395 		goto error_exit;
1396 	}
1397 
1398 
1399 	/*
1400 	 * No refcounting here, but we are in debugger context, so that should be safe.
1401 	 */
1402 	shared_cache_slide = task->shared_region->sr_slide;
1403 
1404 	if (task->shared_region == primary_system_shared_region) {
1405 		/* skip adding shared cache info -- it's the same as the system level one */
1406 		goto error_exit;
1407 	}
1408 	/*
1409 	 * New-style shared cache reference: for non-primary shared regions,
1410 	 * just include the ID of the shared cache we're attached to.  Consumers
1411 	 * should use the following info from the task's ts_ss_flags as well:
1412 	 *
1413 	 * kTaskSharedRegionNone - task is not attached to a shared region
1414 	 * kTaskSharedRegionSystem - task is attached to the shared region
1415 	 *     with kSharedCacheSystemPrimary set in sharedCacheFlags.
1416 	 * kTaskSharedRegionOther - task is attached to the shared region with
1417 	 *     sharedCacheID matching the STACKSHOT_KCTYPE_SHAREDCACHE_ID entry.
1418 	 */
1419 	kcd_exit_on_error(kcdata_push_data(kcd, STACKSHOT_KCTYPE_SHAREDCACHE_ID, sizeof(shared_cache_id), &shared_cache_id));
1420 
1421 	/*
1422 	 * For backwards compatibility; this should eventually be removed.
1423 	 *
1424 	 * Historically, this data was in a dyld_uuid_info_64 structure, but the
1425 	 * naming of both the structure and fields for this use wasn't great.  The
1426 	 * dyld_shared_cache_loadinfo structure has better names, but the same
1427 	 * layout and content as the original.
1428 	 *
1429 	 * The imageSlidBaseAddress/sharedCacheUnreliableSlidBaseAddress field
1430 	 * has been used inconsistently for STACKSHOT_COLLECT_SHAREDCACHE_LAYOUT
1431 	 * entries; here, it's the slid first mapping, and we leave it that way
1432 	 * for backwards compatibility.
1433 	 */
1434 	shared_cache_data.sharedCacheSlide = shared_cache_slide;
1435 	kdp_memcpy(&shared_cache_data.sharedCacheUUID, task->shared_region->sr_uuid, sizeof(task->shared_region->sr_uuid));
1436 	shared_cache_data.sharedCacheUnreliableSlidBaseAddress = shared_cache_first_mapping;
1437 	shared_cache_data.sharedCacheSlidFirstMapping = shared_cache_first_mapping;
1438 	kcd_exit_on_error(kcdata_push_data(kcd, STACKSHOT_KCTYPE_SHAREDCACHE_LOADINFO, sizeof(shared_cache_data), &shared_cache_data));
1439 
1440 error_exit:
1441 	if (kdp_fault_results & KDP_FAULT_RESULT_PAGED_OUT) {
1442 		*task_snap_ss_flags |= kTaskUUIDInfoMissing;
1443 	}
1444 
1445 	if (kdp_fault_results & KDP_FAULT_RESULT_TRIED_FAULT) {
1446 		*task_snap_ss_flags |= kTaskUUIDInfoTriedFault;
1447 	}
1448 
1449 	if (kdp_fault_results & KDP_FAULT_RESULT_FAULTED_IN) {
1450 		*task_snap_ss_flags |= kTaskUUIDInfoFaultedIn;
1451 	}
1452 
1453 	return error;
1454 }
1455 
1456 static kern_return_t
kcdata_record_uuid_info(kcdata_descriptor_t kcd,task_t task,uint64_t trace_flags,boolean_t have_pmap,unaligned_u64 * task_snap_ss_flags)1457 kcdata_record_uuid_info(kcdata_descriptor_t kcd, task_t task, uint64_t trace_flags, boolean_t have_pmap, unaligned_u64 *task_snap_ss_flags)
1458 {
1459 	bool save_loadinfo_p         = ((trace_flags & STACKSHOT_SAVE_LOADINFO) != 0);
1460 	bool save_kextloadinfo_p     = ((trace_flags & STACKSHOT_SAVE_KEXT_LOADINFO) != 0);
1461 	bool save_compactinfo_p      = ((trace_flags & STACKSHOT_SAVE_DYLD_COMPACTINFO) != 0);
1462 	bool should_fault            = (trace_flags & STACKSHOT_ENABLE_UUID_FAULTING);
1463 
1464 	kern_return_t error        = KERN_SUCCESS;
1465 	mach_vm_address_t out_addr = 0;
1466 
1467 	mach_vm_address_t dyld_compactinfo_addr = 0;
1468 	uint32_t dyld_compactinfo_size = 0;
1469 
1470 	uint32_t uuid_info_count         = 0;
1471 	mach_vm_address_t uuid_info_addr = 0;
1472 	uint64_t uuid_info_timestamp     = 0;
1473 	kdp_fault_result_flags_t kdp_fault_results = 0;
1474 
1475 
1476 	assert(task_snap_ss_flags != NULL);
1477 
1478 	int task_pid     = pid_from_task(task);
1479 	boolean_t task_64bit_addr = task_has_64Bit_addr(task);
1480 
1481 	if ((save_loadinfo_p || save_compactinfo_p) && have_pmap && task->active && task_pid > 0) {
1482 		/* Read the dyld_all_image_infos struct from the task memory to get UUID array count and location */
1483 		if (task_64bit_addr) {
1484 			struct user64_dyld_all_image_infos task_image_infos;
1485 			if (stackshot_copyin(task->map, task->all_image_info_addr, &task_image_infos,
1486 			    sizeof(struct user64_dyld_all_image_infos), should_fault, &kdp_fault_results)) {
1487 				uuid_info_count = (uint32_t)task_image_infos.uuidArrayCount;
1488 				uuid_info_addr = task_image_infos.uuidArray;
1489 				if (task_image_infos.version >= DYLD_ALL_IMAGE_INFOS_TIMESTAMP_MINIMUM_VERSION) {
1490 					uuid_info_timestamp = task_image_infos.timestamp;
1491 				}
1492 				if (task_image_infos.version >= DYLD_ALL_IMAGE_INFOS_COMPACTINFO_MINIMUM_VERSION) {
1493 					dyld_compactinfo_addr = task_image_infos.compact_dyld_image_info_addr;
1494 					dyld_compactinfo_size = task_image_infos.compact_dyld_image_info_size;
1495 				}
1496 
1497 			}
1498 		} else {
1499 			struct user32_dyld_all_image_infos task_image_infos;
1500 			if (stackshot_copyin(task->map, task->all_image_info_addr, &task_image_infos,
1501 			    sizeof(struct user32_dyld_all_image_infos), should_fault, &kdp_fault_results)) {
1502 				uuid_info_count = task_image_infos.uuidArrayCount;
1503 				uuid_info_addr = task_image_infos.uuidArray;
1504 				if (task_image_infos.version >= DYLD_ALL_IMAGE_INFOS_TIMESTAMP_MINIMUM_VERSION) {
1505 					uuid_info_timestamp = task_image_infos.timestamp;
1506 				}
1507 				if (task_image_infos.version >= DYLD_ALL_IMAGE_INFOS_COMPACTINFO_MINIMUM_VERSION) {
1508 					dyld_compactinfo_addr = task_image_infos.compact_dyld_image_info_addr;
1509 					dyld_compactinfo_size = task_image_infos.compact_dyld_image_info_size;
1510 				}
1511 			}
1512 		}
1513 
1514 		/*
1515 		 * If we get a NULL uuid_info_addr (which can happen when we catch dyld in the middle of updating
1516 		 * this data structure), we zero the uuid_info_count so that we won't even try to save load info
1517 		 * for this task.
1518 		 */
1519 		if (!uuid_info_addr) {
1520 			uuid_info_count = 0;
1521 		}
1522 
1523 		if (!dyld_compactinfo_addr) {
1524 			dyld_compactinfo_size = 0;
1525 		}
1526 
1527 	}
1528 
1529 	if (have_pmap && task_pid == 0) {
1530 		if (save_kextloadinfo_p && _stackshot_validate_kva((vm_offset_t)(gLoadedKextSummaries), sizeof(OSKextLoadedKextSummaryHeader))) {
1531 			uuid_info_count = gLoadedKextSummaries->numSummaries + 1; /* include main kernel UUID */
1532 		} else {
1533 			uuid_info_count = 1; /* include kernelcache UUID (embedded) or kernel UUID (desktop) */
1534 		}
1535 	}
1536 
1537 	if (save_compactinfo_p && task_pid > 0) {
1538 		if (dyld_compactinfo_size == 0) {
1539 			*task_snap_ss_flags |= kTaskDyldCompactInfoNone;
1540 		} else if (dyld_compactinfo_size > MAX_DYLD_COMPACTINFO) {
1541 			*task_snap_ss_flags |= kTaskDyldCompactInfoTooBig;
1542 		} else {
1543 			kdp_fault_result_flags_t ci_kdp_fault_results = 0;
1544 
1545 			/* Open a compression window to avoid overflowing the stack */
1546 			kcdata_compression_window_open(kcd);
1547 			kcd_exit_on_error(kcdata_get_memory_addr(kcd, STACKSHOT_KCTYPE_DYLD_COMPACTINFO,
1548 			    dyld_compactinfo_size, &out_addr));
1549 
1550 			if (!stackshot_copyin(task->map, dyld_compactinfo_addr, (void *)out_addr,
1551 			    dyld_compactinfo_size, should_fault, &ci_kdp_fault_results)) {
1552 				bzero((void *)out_addr, dyld_compactinfo_size);
1553 			}
1554 			if (ci_kdp_fault_results & KDP_FAULT_RESULT_PAGED_OUT) {
1555 				*task_snap_ss_flags |= kTaskDyldCompactInfoMissing;
1556 			}
1557 
1558 			if (ci_kdp_fault_results & KDP_FAULT_RESULT_TRIED_FAULT) {
1559 				*task_snap_ss_flags |= kTaskDyldCompactInfoTriedFault;
1560 			}
1561 
1562 			if (ci_kdp_fault_results & KDP_FAULT_RESULT_FAULTED_IN) {
1563 				*task_snap_ss_flags |= kTaskDyldCompactInfoFaultedIn;
1564 			}
1565 
1566 			kcd_exit_on_error(kcdata_compression_window_close(kcd));
1567 		}
1568 	}
1569 	if (save_loadinfo_p && task_pid > 0 && (uuid_info_count < MAX_LOADINFOS)) {
1570 		uint32_t copied_uuid_count = 0;
1571 		uint32_t uuid_info_size = (uint32_t)(task_64bit_addr ? sizeof(struct user64_dyld_uuid_info) : sizeof(struct user32_dyld_uuid_info));
1572 		uint32_t uuid_info_array_size = 0;
1573 
1574 		/* Open a compression window to avoid overflowing the stack */
1575 		kcdata_compression_window_open(kcd);
1576 
1577 		/* If we found some UUID information, first try to copy it in -- this will only be non-zero if we had a pmap above */
1578 		if (uuid_info_count > 0) {
1579 			uuid_info_array_size = uuid_info_count * uuid_info_size;
1580 
1581 			kcd_exit_on_error(kcdata_get_memory_addr_for_array(kcd, (task_64bit_addr ? KCDATA_TYPE_LIBRARY_LOADINFO64 : KCDATA_TYPE_LIBRARY_LOADINFO),
1582 			    uuid_info_size, uuid_info_count, &out_addr));
1583 
1584 			if (!stackshot_copyin(task->map, uuid_info_addr, (void *)out_addr, uuid_info_array_size, should_fault, &kdp_fault_results)) {
1585 				bzero((void *)out_addr, uuid_info_array_size);
1586 			} else {
1587 				copied_uuid_count = uuid_info_count;
1588 			}
1589 		}
1590 
1591 		uuid_t binary_uuid;
1592 		if (!copied_uuid_count && proc_binary_uuid_kdp(task, binary_uuid)) {
1593 			/* We failed to copyin the UUID information, try to store the UUID of the main binary we have in the proc */
1594 			if (uuid_info_array_size == 0) {
1595 				/* We just need to store one UUID */
1596 				uuid_info_array_size = uuid_info_size;
1597 				kcd_exit_on_error(kcdata_get_memory_addr_for_array(kcd, (task_64bit_addr ? KCDATA_TYPE_LIBRARY_LOADINFO64 : KCDATA_TYPE_LIBRARY_LOADINFO),
1598 				    uuid_info_size, 1, &out_addr));
1599 			}
1600 
1601 			if (task_64bit_addr) {
1602 				struct user64_dyld_uuid_info *uuid_info = (struct user64_dyld_uuid_info *)out_addr;
1603 				uint64_t image_load_address = task->mach_header_vm_address;
1604 
1605 				kdp_memcpy(&uuid_info->imageUUID, binary_uuid, sizeof(uuid_t));
1606 				kdp_memcpy(&uuid_info->imageLoadAddress, &image_load_address, sizeof(image_load_address));
1607 			} else {
1608 				struct user32_dyld_uuid_info *uuid_info = (struct user32_dyld_uuid_info *)out_addr;
1609 				uint32_t image_load_address = (uint32_t) task->mach_header_vm_address;
1610 
1611 				kdp_memcpy(&uuid_info->imageUUID, binary_uuid, sizeof(uuid_t));
1612 				kdp_memcpy(&uuid_info->imageLoadAddress, &image_load_address, sizeof(image_load_address));
1613 			}
1614 		}
1615 
1616 		kcd_exit_on_error(kcdata_compression_window_close(kcd));
1617 	} else if (task_pid == 0 && uuid_info_count > 0 && uuid_info_count < MAX_LOADINFOS) {
1618 		uintptr_t image_load_address;
1619 
1620 		do {
1621 #if defined(__arm64__)
1622 			if (kernelcache_uuid_valid && !save_kextloadinfo_p) {
1623 				struct dyld_uuid_info_64 kc_uuid = {0};
1624 				kc_uuid.imageLoadAddress = VM_MIN_KERNEL_AND_KEXT_ADDRESS;
1625 				kdp_memcpy(&kc_uuid.imageUUID, &kernelcache_uuid, sizeof(uuid_t));
1626 				kcd_exit_on_error(kcdata_push_data(kcd, STACKSHOT_KCTYPE_KERNELCACHE_LOADINFO, sizeof(struct dyld_uuid_info_64), &kc_uuid));
1627 				break;
1628 			}
1629 #endif /* defined(__arm64__) */
1630 
1631 			if (!kernel_uuid || !_stackshot_validate_kva((vm_offset_t)kernel_uuid, sizeof(uuid_t))) {
1632 				/* Kernel UUID not found or inaccessible */
1633 				break;
1634 			}
1635 
1636 			uint32_t uuid_type = KCDATA_TYPE_LIBRARY_LOADINFO;
1637 			if ((sizeof(kernel_uuid_info) == sizeof(struct user64_dyld_uuid_info))) {
1638 				uuid_type = KCDATA_TYPE_LIBRARY_LOADINFO64;
1639 #if  defined(__arm64__)
1640 				kc_format_t primary_kc_type = KCFormatUnknown;
1641 				if (PE_get_primary_kc_format(&primary_kc_type) && (primary_kc_type == KCFormatFileset)) {
1642 					/* return TEXT_EXEC based load information on arm devices running with fileset kernelcaches */
1643 					uuid_type = STACKSHOT_KCTYPE_LOADINFO64_TEXT_EXEC;
1644 				}
1645 #endif
1646 			}
1647 
1648 			/*
1649 			 * The element count of the array can vary - avoid overflowing the
1650 			 * stack by opening a window.
1651 			 */
1652 			kcdata_compression_window_open(kcd);
1653 			kcd_exit_on_error(kcdata_get_memory_addr_for_array(kcd, uuid_type,
1654 			    sizeof(kernel_uuid_info), uuid_info_count, &out_addr));
1655 			kernel_uuid_info *uuid_info_array = (kernel_uuid_info *)out_addr;
1656 
1657 			image_load_address = (uintptr_t)VM_KERNEL_UNSLIDE(vm_kernel_stext);
1658 #if defined(__arm64__)
1659 			if (uuid_type == STACKSHOT_KCTYPE_LOADINFO64_TEXT_EXEC) {
1660 				/* If we're reporting TEXT_EXEC load info, populate the TEXT_EXEC base instead */
1661 				extern vm_offset_t segTEXTEXECB;
1662 				image_load_address = (uintptr_t)VM_KERNEL_UNSLIDE(segTEXTEXECB);
1663 			}
1664 #endif
1665 			uuid_info_array[0].imageLoadAddress = image_load_address;
1666 			kdp_memcpy(&uuid_info_array[0].imageUUID, kernel_uuid, sizeof(uuid_t));
1667 
1668 			if (save_kextloadinfo_p &&
1669 			    _stackshot_validate_kva((vm_offset_t)(gLoadedKextSummaries), sizeof(OSKextLoadedKextSummaryHeader)) &&
1670 			    _stackshot_validate_kva((vm_offset_t)(&gLoadedKextSummaries->summaries[0]),
1671 			    gLoadedKextSummaries->entry_size * gLoadedKextSummaries->numSummaries)) {
1672 				uint32_t kexti;
1673 				for (kexti = 0; kexti < gLoadedKextSummaries->numSummaries; kexti++) {
1674 					image_load_address = (uintptr_t)VM_KERNEL_UNSLIDE(gLoadedKextSummaries->summaries[kexti].address);
1675 #if defined(__arm64__)
1676 					if (uuid_type == STACKSHOT_KCTYPE_LOADINFO64_TEXT_EXEC) {
1677 						/* If we're reporting TEXT_EXEC load info, populate the TEXT_EXEC base instead */
1678 						image_load_address = (uintptr_t)VM_KERNEL_UNSLIDE(gLoadedKextSummaries->summaries[kexti].text_exec_address);
1679 					}
1680 #endif
1681 					uuid_info_array[kexti + 1].imageLoadAddress = image_load_address;
1682 					kdp_memcpy(&uuid_info_array[kexti + 1].imageUUID, &gLoadedKextSummaries->summaries[kexti].uuid, sizeof(uuid_t));
1683 				}
1684 			}
1685 			kcd_exit_on_error(kcdata_compression_window_close(kcd));
1686 		} while (0);
1687 	}
1688 
1689 error_exit:
1690 	if (kdp_fault_results & KDP_FAULT_RESULT_PAGED_OUT) {
1691 		*task_snap_ss_flags |= kTaskUUIDInfoMissing;
1692 	}
1693 
1694 	if (kdp_fault_results & KDP_FAULT_RESULT_TRIED_FAULT) {
1695 		*task_snap_ss_flags |= kTaskUUIDInfoTriedFault;
1696 	}
1697 
1698 	if (kdp_fault_results & KDP_FAULT_RESULT_FAULTED_IN) {
1699 		*task_snap_ss_flags |= kTaskUUIDInfoFaultedIn;
1700 	}
1701 
1702 	return error;
1703 }
1704 
1705 static kern_return_t
kcdata_record_task_iostats(kcdata_descriptor_t kcd,task_t task)1706 kcdata_record_task_iostats(kcdata_descriptor_t kcd, task_t task)
1707 {
1708 	kern_return_t error = KERN_SUCCESS;
1709 	mach_vm_address_t out_addr = 0;
1710 
1711 	/* I/O Statistics if any counters are non zero */
1712 	assert(IO_NUM_PRIORITIES == STACKSHOT_IO_NUM_PRIORITIES);
1713 	if (task->task_io_stats && !memory_iszero(task->task_io_stats, sizeof(struct io_stat_info))) {
1714 		/* struct io_stats_snapshot is quite large - avoid overflowing the stack. */
1715 		kcdata_compression_window_open(kcd);
1716 		kcd_exit_on_error(kcdata_get_memory_addr(kcd, STACKSHOT_KCTYPE_IOSTATS, sizeof(struct io_stats_snapshot), &out_addr));
1717 		struct io_stats_snapshot *_iostat = (struct io_stats_snapshot *)out_addr;
1718 		_iostat->ss_disk_reads_count = task->task_io_stats->disk_reads.count;
1719 		_iostat->ss_disk_reads_size = task->task_io_stats->disk_reads.size;
1720 		_iostat->ss_disk_writes_count = (task->task_io_stats->total_io.count - task->task_io_stats->disk_reads.count);
1721 		_iostat->ss_disk_writes_size = (task->task_io_stats->total_io.size - task->task_io_stats->disk_reads.size);
1722 		_iostat->ss_paging_count = task->task_io_stats->paging.count;
1723 		_iostat->ss_paging_size = task->task_io_stats->paging.size;
1724 		_iostat->ss_non_paging_count = (task->task_io_stats->total_io.count - task->task_io_stats->paging.count);
1725 		_iostat->ss_non_paging_size = (task->task_io_stats->total_io.size - task->task_io_stats->paging.size);
1726 		_iostat->ss_metadata_count = task->task_io_stats->metadata.count;
1727 		_iostat->ss_metadata_size = task->task_io_stats->metadata.size;
1728 		_iostat->ss_data_count = (task->task_io_stats->total_io.count - task->task_io_stats->metadata.count);
1729 		_iostat->ss_data_size = (task->task_io_stats->total_io.size - task->task_io_stats->metadata.size);
1730 		for (int i = 0; i < IO_NUM_PRIORITIES; i++) {
1731 			_iostat->ss_io_priority_count[i] = task->task_io_stats->io_priority[i].count;
1732 			_iostat->ss_io_priority_size[i] = task->task_io_stats->io_priority[i].size;
1733 		}
1734 		kcd_exit_on_error(kcdata_compression_window_close(kcd));
1735 	}
1736 
1737 
1738 error_exit:
1739 	return error;
1740 }
1741 
1742 #if CONFIG_PERVASIVE_CPI
1743 static kern_return_t
kcdata_record_task_instrs_cycles(kcdata_descriptor_t kcd,task_t task)1744 kcdata_record_task_instrs_cycles(kcdata_descriptor_t kcd, task_t task)
1745 {
1746 	struct instrs_cycles_snapshot_v2 instrs_cycles = { 0 };
1747 	struct recount_usage usage = { 0 };
1748 	struct recount_usage perf_only = { 0 };
1749 	recount_task_terminated_usage_perf_only(task, &usage, &perf_only);
1750 	instrs_cycles.ics_instructions = usage.ru_instructions;
1751 	instrs_cycles.ics_cycles = usage.ru_cycles;
1752 	instrs_cycles.ics_p_instructions = perf_only.ru_instructions;
1753 	instrs_cycles.ics_p_cycles = perf_only.ru_cycles;
1754 
1755 	return kcdata_push_data(kcd, STACKSHOT_KCTYPE_INSTRS_CYCLES, sizeof(instrs_cycles), &instrs_cycles);
1756 }
1757 #endif /* CONFIG_PERVASIVE_CPI */
1758 
1759 static kern_return_t
kcdata_record_task_cpu_architecture(kcdata_descriptor_t kcd,task_t task)1760 kcdata_record_task_cpu_architecture(kcdata_descriptor_t kcd, task_t task)
1761 {
1762 	struct stackshot_cpu_architecture cpu_architecture = {0};
1763 	int32_t cputype;
1764 	int32_t cpusubtype;
1765 
1766 	proc_archinfo_kdp(get_bsdtask_info(task), &cputype, &cpusubtype);
1767 	cpu_architecture.cputype = cputype;
1768 	cpu_architecture.cpusubtype = cpusubtype;
1769 
1770 	return kcdata_push_data(kcd, STACKSHOT_KCTYPE_TASK_CPU_ARCHITECTURE, sizeof(struct stackshot_cpu_architecture), &cpu_architecture);
1771 }
1772 
1773 static kern_return_t
kcdata_record_task_codesigning_info(kcdata_descriptor_t kcd,task_t task)1774 kcdata_record_task_codesigning_info(kcdata_descriptor_t kcd, task_t task)
1775 {
1776 	struct stackshot_task_codesigning_info codesigning_info = {};
1777 	void * bsdtask_info = NULL;
1778 	if (task != kernel_task) {
1779 		bsdtask_info = get_bsdtask_info(task);
1780 		codesigning_info.csflags = proc_getcsflags_kdp(bsdtask_info);
1781 		codesigning_info.cs_trust_level = 0; //TODO in rdar://102261763
1782 	} else {
1783 		return KERN_SUCCESS;
1784 	}
1785 	return kcdata_push_data(kcd, STACKSHOT_KCTYPE_CODESIGNING_INFO, sizeof(struct stackshot_task_codesigning_info), &codesigning_info);
1786 }
1787 
1788 static kern_return_t
kcdata_record_transitioning_task_snapshot(kcdata_descriptor_t kcd,task_t task,unaligned_u64 task_snap_ss_flags,uint64_t transition_type)1789 kcdata_record_transitioning_task_snapshot(kcdata_descriptor_t kcd, task_t task, unaligned_u64 task_snap_ss_flags, uint64_t transition_type)
1790 {
1791 	kern_return_t error                 = KERN_SUCCESS;
1792 	mach_vm_address_t out_addr          = 0;
1793 	struct transitioning_task_snapshot * cur_tsnap = NULL;
1794 
1795 	int task_pid           = pid_from_task(task);
1796 	/* Is returning -1 ok for terminating task ok ??? */
1797 	uint64_t task_uniqueid = get_task_uniqueid(task);
1798 
1799 	if (task_pid && (task_did_exec_internal(task) || task_is_exec_copy_internal(task))) {
1800 		/*
1801 		 * if this task is a transit task from another one, show the pid as
1802 		 * negative
1803 		 */
1804 		task_pid = 0 - task_pid;
1805 	}
1806 
1807 	/* the task_snapshot_v2 struct is large - avoid overflowing the stack */
1808 	kcdata_compression_window_open(kcd);
1809 	kcd_exit_on_error(kcdata_get_memory_addr(kcd, STACKSHOT_KCTYPE_TRANSITIONING_TASK_SNAPSHOT, sizeof(struct transitioning_task_snapshot), &out_addr));
1810 	cur_tsnap = (struct transitioning_task_snapshot *)out_addr;
1811 	bzero(cur_tsnap, sizeof(*cur_tsnap));
1812 
1813 	cur_tsnap->tts_unique_pid = task_uniqueid;
1814 	cur_tsnap->tts_ss_flags = kcdata_get_task_ss_flags(task);
1815 	cur_tsnap->tts_ss_flags |= task_snap_ss_flags;
1816 	cur_tsnap->tts_transition_type = transition_type;
1817 	cur_tsnap->tts_pid = task_pid;
1818 
1819 	/* Add the BSD process identifiers */
1820 	if (task_pid != -1 && get_bsdtask_info(task) != NULL) {
1821 		proc_name_kdp(get_bsdtask_info(task), cur_tsnap->tts_p_comm, sizeof(cur_tsnap->tts_p_comm));
1822 	} else {
1823 		cur_tsnap->tts_p_comm[0] = '\0';
1824 	}
1825 
1826 	kcd_exit_on_error(kcdata_compression_window_close(kcd));
1827 
1828 error_exit:
1829 	return error;
1830 }
1831 
1832 static kern_return_t
1833 #if STACKSHOT_COLLECTS_LATENCY_INFO
kcdata_record_task_snapshot(kcdata_descriptor_t kcd,task_t task,uint64_t trace_flags,boolean_t have_pmap,unaligned_u64 task_snap_ss_flags,struct stackshot_latency_task * latency_info)1834 kcdata_record_task_snapshot(kcdata_descriptor_t kcd, task_t task, uint64_t trace_flags, boolean_t have_pmap, unaligned_u64 task_snap_ss_flags, struct stackshot_latency_task *latency_info)
1835 #else
1836 kcdata_record_task_snapshot(kcdata_descriptor_t kcd, task_t task, uint64_t trace_flags, boolean_t have_pmap, unaligned_u64 task_snap_ss_flags)
1837 #endif /* STACKSHOT_COLLECTS_LATENCY_INFO */
1838 {
1839 	boolean_t collect_delta_stackshot = ((trace_flags & STACKSHOT_COLLECT_DELTA_SNAPSHOT) != 0);
1840 	boolean_t collect_iostats         = !collect_delta_stackshot && !(trace_flags & STACKSHOT_NO_IO_STATS);
1841 #if CONFIG_PERVASIVE_CPI
1842 	boolean_t collect_instrs_cycles   = ((trace_flags & STACKSHOT_INSTRS_CYCLES) != 0);
1843 #endif /* CONFIG_PERVASIVE_CPI */
1844 #if __arm64__
1845 	boolean_t collect_asid            = ((trace_flags & STACKSHOT_ASID) != 0);
1846 #endif
1847 	boolean_t collect_pagetables       = ((trace_flags & STACKSHOT_PAGE_TABLES) != 0);
1848 
1849 
1850 	kern_return_t error                 = KERN_SUCCESS;
1851 	mach_vm_address_t out_addr          = 0;
1852 	struct task_snapshot_v2 * cur_tsnap = NULL;
1853 #if STACKSHOT_COLLECTS_LATENCY_INFO
1854 	latency_info->cur_tsnap_latency = mach_absolute_time();
1855 #endif /* STACKSHOT_COLLECTS_LATENCY_INFO */
1856 
1857 	int task_pid           = pid_from_task(task);
1858 	uint64_t task_uniqueid = get_task_uniqueid(task);
1859 	void *bsd_info = get_bsdtask_info(task);
1860 	uint64_t proc_starttime_secs = 0;
1861 
1862 	if (task_pid && (task_did_exec_internal(task) || task_is_exec_copy_internal(task))) {
1863 		/*
1864 		 * if this task is a transit task from another one, show the pid as
1865 		 * negative
1866 		 */
1867 		task_pid = 0 - task_pid;
1868 	}
1869 
1870 	/* the task_snapshot_v2 struct is large - avoid overflowing the stack */
1871 	kcdata_compression_window_open(kcd);
1872 	kcd_exit_on_error(kcdata_get_memory_addr(kcd, STACKSHOT_KCTYPE_TASK_SNAPSHOT, sizeof(struct task_snapshot_v2), &out_addr));
1873 	cur_tsnap = (struct task_snapshot_v2 *)out_addr;
1874 	bzero(cur_tsnap, sizeof(*cur_tsnap));
1875 
1876 	cur_tsnap->ts_unique_pid = task_uniqueid;
1877 	cur_tsnap->ts_ss_flags = kcdata_get_task_ss_flags(task);
1878 	cur_tsnap->ts_ss_flags |= task_snap_ss_flags;
1879 
1880 	struct recount_usage term_usage = { 0 };
1881 	recount_task_terminated_usage(task, &term_usage);
1882 	cur_tsnap->ts_user_time_in_terminated_threads =
1883 	    term_usage.ru_user_time_mach;
1884 	cur_tsnap->ts_system_time_in_terminated_threads =
1885 	    term_usage.ru_system_time_mach;
1886 
1887 	proc_starttime_kdp(bsd_info, &proc_starttime_secs, NULL, NULL);
1888 	cur_tsnap->ts_p_start_sec = proc_starttime_secs;
1889 	cur_tsnap->ts_task_size = have_pmap ? get_task_phys_footprint(task) : 0;
1890 	cur_tsnap->ts_max_resident_size = get_task_resident_max(task);
1891 	cur_tsnap->ts_was_throttled = (uint32_t) proc_was_throttled_from_task(task);
1892 	cur_tsnap->ts_did_throttle = (uint32_t) proc_did_throttle_from_task(task);
1893 
1894 	cur_tsnap->ts_suspend_count = task->suspend_count;
1895 	cur_tsnap->ts_faults = counter_load(&task->faults);
1896 	cur_tsnap->ts_pageins = counter_load(&task->pageins);
1897 	cur_tsnap->ts_cow_faults = counter_load(&task->cow_faults);
1898 	cur_tsnap->ts_latency_qos = (task->effective_policy.tep_latency_qos == LATENCY_QOS_TIER_UNSPECIFIED) ?
1899 	    LATENCY_QOS_TIER_UNSPECIFIED : ((0xFF << 16) | task->effective_policy.tep_latency_qos);
1900 	cur_tsnap->ts_pid = task_pid;
1901 
1902 	/* Add the BSD process identifiers */
1903 	if (task_pid != -1 && bsd_info != NULL) {
1904 		proc_name_kdp(bsd_info, cur_tsnap->ts_p_comm, sizeof(cur_tsnap->ts_p_comm));
1905 	} else {
1906 		cur_tsnap->ts_p_comm[0] = '\0';
1907 #if IMPORTANCE_INHERITANCE && (DEVELOPMENT || DEBUG)
1908 		if (task->task_imp_base != NULL) {
1909 			kdp_strlcpy(cur_tsnap->ts_p_comm, &task->task_imp_base->iit_procname[0],
1910 			    MIN((int)sizeof(task->task_imp_base->iit_procname), (int)sizeof(cur_tsnap->ts_p_comm)));
1911 		}
1912 #endif /* IMPORTANCE_INHERITANCE && (DEVELOPMENT || DEBUG) */
1913 	}
1914 
1915 	kcd_exit_on_error(kcdata_compression_window_close(kcd));
1916 
1917 #if CONFIG_COALITIONS
1918 	if (task_pid != -1 && bsd_info != NULL &&
1919 	    (task->coalition[COALITION_TYPE_JETSAM] != NULL)) {
1920 		/*
1921 		 * The jetsam coalition ID is always saved, even if
1922 		 * STACKSHOT_SAVE_JETSAM_COALITIONS is not set.
1923 		 */
1924 		uint64_t jetsam_coal_id = coalition_id(task->coalition[COALITION_TYPE_JETSAM]);
1925 		kcd_exit_on_error(kcdata_push_data(kcd, STACKSHOT_KCTYPE_JETSAM_COALITION, sizeof(jetsam_coal_id), &jetsam_coal_id));
1926 	}
1927 #endif /* CONFIG_COALITIONS */
1928 
1929 #if __arm64__
1930 	if (collect_asid && have_pmap) {
1931 		uint32_t asid = PMAP_VASID(task->map->pmap);
1932 		kcd_exit_on_error(kcdata_push_data(kcd, STACKSHOT_KCTYPE_ASID, sizeof(asid), &asid));
1933 	}
1934 #endif
1935 
1936 #if STACKSHOT_COLLECTS_LATENCY_INFO
1937 	latency_info->cur_tsnap_latency = mach_absolute_time() - latency_info->cur_tsnap_latency;
1938 	latency_info->pmap_latency = mach_absolute_time();
1939 #endif /* STACKSHOT_COLLECTS_LATENCY_INFO */
1940 
1941 	if (collect_pagetables && have_pmap) {
1942 #if SCHED_HYGIENE_DEBUG
1943 		// pagetable dumps can be large; reset the interrupt timeout to avoid a panic
1944 		ml_spin_debug_clear_self();
1945 #endif
1946 		size_t bytes_dumped = 0;
1947 		error = pmap_dump_page_tables(task->map->pmap, kcd_end_address(kcd), kcd_max_address(kcd), stack_snapshot_pagetable_mask, &bytes_dumped);
1948 		if (error != KERN_SUCCESS) {
1949 			goto error_exit;
1950 		} else {
1951 			/* Variable size array - better not have it on the stack. */
1952 			kcdata_compression_window_open(kcd);
1953 			kcd_exit_on_error(kcdata_get_memory_addr_for_array(kcd, STACKSHOT_KCTYPE_PAGE_TABLES,
1954 			    sizeof(uint64_t), (uint32_t)(bytes_dumped / sizeof(uint64_t)), &out_addr));
1955 			kcd_exit_on_error(kcdata_compression_window_close(kcd));
1956 		}
1957 	}
1958 
1959 #if STACKSHOT_COLLECTS_LATENCY_INFO
1960 	latency_info->pmap_latency = mach_absolute_time() - latency_info->pmap_latency;
1961 	latency_info->bsd_proc_ids_latency = mach_absolute_time();
1962 #endif /* STACKSHOT_COLLECTS_LATENCY_INFO */
1963 
1964 #if STACKSHOT_COLLECTS_LATENCY_INFO
1965 	latency_info->bsd_proc_ids_latency = mach_absolute_time() - latency_info->bsd_proc_ids_latency;
1966 	latency_info->end_latency = mach_absolute_time();
1967 #endif /* STACKSHOT_COLLECTS_LATENCY_INFO */
1968 
1969 	if (collect_iostats) {
1970 		kcd_exit_on_error(kcdata_record_task_iostats(kcd, task));
1971 	}
1972 
1973 #if CONFIG_PERVASIVE_CPI
1974 	if (collect_instrs_cycles) {
1975 		kcd_exit_on_error(kcdata_record_task_instrs_cycles(kcd, task));
1976 	}
1977 #endif /* CONFIG_PERVASIVE_CPI */
1978 
1979 	kcd_exit_on_error(kcdata_record_task_cpu_architecture(kcd, task));
1980 	kcd_exit_on_error(kcdata_record_task_codesigning_info(kcd, task));
1981 
1982 #if STACKSHOT_COLLECTS_LATENCY_INFO
1983 	latency_info->end_latency = mach_absolute_time() - latency_info->end_latency;
1984 #endif /* STACKSHOT_COLLECTS_LATENCY_INFO */
1985 
1986 error_exit:
1987 	return error;
1988 }
1989 
1990 static kern_return_t
kcdata_record_task_delta_snapshot(kcdata_descriptor_t kcd,task_t task,uint64_t trace_flags,boolean_t have_pmap,unaligned_u64 task_snap_ss_flags)1991 kcdata_record_task_delta_snapshot(kcdata_descriptor_t kcd, task_t task, uint64_t trace_flags, boolean_t have_pmap, unaligned_u64 task_snap_ss_flags)
1992 {
1993 #if !CONFIG_PERVASIVE_CPI
1994 #pragma unused(trace_flags)
1995 #endif /* !CONFIG_PERVASIVE_CPI */
1996 	kern_return_t error                       = KERN_SUCCESS;
1997 	struct task_delta_snapshot_v2 * cur_tsnap = NULL;
1998 	mach_vm_address_t out_addr                = 0;
1999 	(void) trace_flags;
2000 #if __arm64__
2001 	boolean_t collect_asid                    = ((trace_flags & STACKSHOT_ASID) != 0);
2002 #endif
2003 #if CONFIG_PERVASIVE_CPI
2004 	boolean_t collect_instrs_cycles           = ((trace_flags & STACKSHOT_INSTRS_CYCLES) != 0);
2005 #endif /* CONFIG_PERVASIVE_CPI */
2006 
2007 	uint64_t task_uniqueid = get_task_uniqueid(task);
2008 
2009 	kcd_exit_on_error(kcdata_get_memory_addr(kcd, STACKSHOT_KCTYPE_TASK_DELTA_SNAPSHOT, sizeof(struct task_delta_snapshot_v2), &out_addr));
2010 
2011 	cur_tsnap = (struct task_delta_snapshot_v2 *)out_addr;
2012 
2013 	cur_tsnap->tds_unique_pid = task_uniqueid;
2014 	cur_tsnap->tds_ss_flags = kcdata_get_task_ss_flags(task);
2015 	cur_tsnap->tds_ss_flags |= task_snap_ss_flags;
2016 
2017 	struct recount_usage usage = { 0 };
2018 	recount_task_terminated_usage(task, &usage);
2019 
2020 	cur_tsnap->tds_user_time_in_terminated_threads = usage.ru_user_time_mach;
2021 	cur_tsnap->tds_system_time_in_terminated_threads =
2022 	    usage.ru_system_time_mach;
2023 
2024 	cur_tsnap->tds_task_size = have_pmap ? get_task_phys_footprint(task) : 0;
2025 
2026 	cur_tsnap->tds_max_resident_size = get_task_resident_max(task);
2027 	cur_tsnap->tds_suspend_count = task->suspend_count;
2028 	cur_tsnap->tds_faults            = counter_load(&task->faults);
2029 	cur_tsnap->tds_pageins           = counter_load(&task->pageins);
2030 	cur_tsnap->tds_cow_faults        = counter_load(&task->cow_faults);
2031 	cur_tsnap->tds_was_throttled     = (uint32_t)proc_was_throttled_from_task(task);
2032 	cur_tsnap->tds_did_throttle      = (uint32_t)proc_did_throttle_from_task(task);
2033 	cur_tsnap->tds_latency_qos       = (task->effective_policy.tep_latency_qos == LATENCY_QOS_TIER_UNSPECIFIED)
2034 	    ? LATENCY_QOS_TIER_UNSPECIFIED
2035 	    : ((0xFF << 16) | task->effective_policy.tep_latency_qos);
2036 
2037 #if __arm64__
2038 	if (collect_asid && have_pmap) {
2039 		uint32_t asid = PMAP_VASID(task->map->pmap);
2040 		kcd_exit_on_error(kcdata_get_memory_addr(kcd, STACKSHOT_KCTYPE_ASID, sizeof(uint32_t), &out_addr));
2041 		kdp_memcpy((void*)out_addr, &asid, sizeof(asid));
2042 	}
2043 #endif
2044 
2045 #if CONFIG_PERVASIVE_CPI
2046 	if (collect_instrs_cycles) {
2047 		kcd_exit_on_error(kcdata_record_task_instrs_cycles(kcd, task));
2048 	}
2049 #endif /* CONFIG_PERVASIVE_CPI */
2050 
2051 error_exit:
2052 	return error;
2053 }
2054 
2055 static kern_return_t
kcdata_record_thread_iostats(kcdata_descriptor_t kcd,thread_t thread)2056 kcdata_record_thread_iostats(kcdata_descriptor_t kcd, thread_t thread)
2057 {
2058 	kern_return_t error = KERN_SUCCESS;
2059 	mach_vm_address_t out_addr = 0;
2060 
2061 	/* I/O Statistics */
2062 	assert(IO_NUM_PRIORITIES == STACKSHOT_IO_NUM_PRIORITIES);
2063 	if (thread->thread_io_stats && !memory_iszero(thread->thread_io_stats, sizeof(struct io_stat_info))) {
2064 		kcd_exit_on_error(kcdata_get_memory_addr(kcd, STACKSHOT_KCTYPE_IOSTATS, sizeof(struct io_stats_snapshot), &out_addr));
2065 		struct io_stats_snapshot *_iostat = (struct io_stats_snapshot *)out_addr;
2066 		_iostat->ss_disk_reads_count = thread->thread_io_stats->disk_reads.count;
2067 		_iostat->ss_disk_reads_size = thread->thread_io_stats->disk_reads.size;
2068 		_iostat->ss_disk_writes_count = (thread->thread_io_stats->total_io.count - thread->thread_io_stats->disk_reads.count);
2069 		_iostat->ss_disk_writes_size = (thread->thread_io_stats->total_io.size - thread->thread_io_stats->disk_reads.size);
2070 		_iostat->ss_paging_count = thread->thread_io_stats->paging.count;
2071 		_iostat->ss_paging_size = thread->thread_io_stats->paging.size;
2072 		_iostat->ss_non_paging_count = (thread->thread_io_stats->total_io.count - thread->thread_io_stats->paging.count);
2073 		_iostat->ss_non_paging_size = (thread->thread_io_stats->total_io.size - thread->thread_io_stats->paging.size);
2074 		_iostat->ss_metadata_count = thread->thread_io_stats->metadata.count;
2075 		_iostat->ss_metadata_size = thread->thread_io_stats->metadata.size;
2076 		_iostat->ss_data_count = (thread->thread_io_stats->total_io.count - thread->thread_io_stats->metadata.count);
2077 		_iostat->ss_data_size = (thread->thread_io_stats->total_io.size - thread->thread_io_stats->metadata.size);
2078 		for (int i = 0; i < IO_NUM_PRIORITIES; i++) {
2079 			_iostat->ss_io_priority_count[i] = thread->thread_io_stats->io_priority[i].count;
2080 			_iostat->ss_io_priority_size[i] = thread->thread_io_stats->io_priority[i].size;
2081 		}
2082 	}
2083 
2084 error_exit:
2085 	return error;
2086 }
2087 
2088 bool
machine_trace_thread_validate_kva(vm_offset_t addr)2089 machine_trace_thread_validate_kva(vm_offset_t addr)
2090 {
2091 	return _stackshot_validate_kva(addr, sizeof(uintptr_t));
2092 }
2093 
2094 struct _stackshot_backtrace_context {
2095 	vm_map_t sbc_map;
2096 	vm_offset_t sbc_prev_page;
2097 	vm_offset_t sbc_prev_kva;
2098 	uint32_t sbc_flags;
2099 	bool sbc_allow_faulting;
2100 };
2101 
2102 static errno_t
_stackshot_backtrace_copy(void * vctx,void * dst,user_addr_t src,size_t size)2103 _stackshot_backtrace_copy(void *vctx, void *dst, user_addr_t src, size_t size)
2104 {
2105 	struct _stackshot_backtrace_context *ctx = vctx;
2106 	size_t map_page_mask = 0;
2107 	size_t __assert_only map_page_size = kdp_vm_map_get_page_size(ctx->sbc_map,
2108 	    &map_page_mask);
2109 	assert(size < map_page_size);
2110 	if (src & (size - 1)) {
2111 		// The source should be aligned to the size passed in, like a stack
2112 		// frame or word.
2113 		return EINVAL;
2114 	}
2115 
2116 	vm_offset_t src_page = src & ~map_page_mask;
2117 	vm_offset_t src_kva = 0;
2118 
2119 	if (src_page != ctx->sbc_prev_page) {
2120 		uint32_t res = 0;
2121 		uint32_t flags = 0;
2122 		vm_offset_t src_pa = stackshot_find_phys(ctx->sbc_map, src,
2123 		    ctx->sbc_allow_faulting, &res);
2124 
2125 		flags |= (res & KDP_FAULT_RESULT_PAGED_OUT) ? kThreadTruncatedBT : 0;
2126 		flags |= (res & KDP_FAULT_RESULT_TRIED_FAULT) ? kThreadTriedFaultBT : 0;
2127 		flags |= (res & KDP_FAULT_RESULT_FAULTED_IN) ? kThreadFaultedBT : 0;
2128 		ctx->sbc_flags |= flags;
2129 		if (src_pa == 0) {
2130 			return EFAULT;
2131 		}
2132 
2133 		src_kva = phystokv(src_pa);
2134 		ctx->sbc_prev_page = src_page;
2135 		ctx->sbc_prev_kva = (src_kva & ~map_page_mask);
2136 	} else {
2137 		src_kva = ctx->sbc_prev_kva + (src & map_page_mask);
2138 	}
2139 
2140 #if KASAN
2141 	/*
2142 	 * KASan does not monitor accesses to userspace pages. Therefore, it is
2143 	 * pointless to maintain a shadow map for them. Instead, they are all
2144 	 * mapped to a single, always valid shadow map page. This approach saves
2145 	 * a considerable amount of shadow map pages which are limited and
2146 	 * precious.
2147 	 */
2148 	kasan_notify_address_nopoison(src_kva, size);
2149 #endif
2150 	memcpy(dst, (const void *)src_kva, size);
2151 
2152 	return 0;
2153 }
2154 
2155 static kern_return_t
kcdata_record_thread_snapshot(kcdata_descriptor_t kcd,thread_t thread,task_t task,uint64_t trace_flags,boolean_t have_pmap,boolean_t thread_on_core)2156 kcdata_record_thread_snapshot(
2157 	kcdata_descriptor_t kcd, thread_t thread, task_t task, uint64_t trace_flags, boolean_t have_pmap, boolean_t thread_on_core)
2158 {
2159 	boolean_t dispatch_p              = ((trace_flags & STACKSHOT_GET_DQ) != 0);
2160 	boolean_t active_kthreads_only_p  = ((trace_flags & STACKSHOT_ACTIVE_KERNEL_THREADS_ONLY) != 0);
2161 	boolean_t collect_delta_stackshot = ((trace_flags & STACKSHOT_COLLECT_DELTA_SNAPSHOT) != 0);
2162 	boolean_t collect_iostats         = !collect_delta_stackshot && !(trace_flags & STACKSHOT_NO_IO_STATS);
2163 #if CONFIG_PERVASIVE_CPI
2164 	boolean_t collect_instrs_cycles   = ((trace_flags & STACKSHOT_INSTRS_CYCLES) != 0);
2165 #endif /* CONFIG_PERVASIVE_CPI */
2166 	kern_return_t error        = KERN_SUCCESS;
2167 
2168 #if STACKSHOT_COLLECTS_LATENCY_INFO
2169 	struct stackshot_latency_thread latency_info;
2170 	latency_info.cur_thsnap1_latency = mach_absolute_time();
2171 #endif /* STACKSHOT_COLLECTS_LATENCY_INFO */
2172 
2173 	mach_vm_address_t out_addr = 0;
2174 	int saved_count            = 0;
2175 
2176 	struct thread_snapshot_v4 * cur_thread_snap = NULL;
2177 	char cur_thread_name[STACKSHOT_MAX_THREAD_NAME_SIZE];
2178 
2179 	kcd_exit_on_error(kcdata_get_memory_addr(kcd, STACKSHOT_KCTYPE_THREAD_SNAPSHOT, sizeof(struct thread_snapshot_v4), &out_addr));
2180 	cur_thread_snap = (struct thread_snapshot_v4 *)out_addr;
2181 
2182 	/* Populate the thread snapshot header */
2183 	cur_thread_snap->ths_ss_flags = 0;
2184 	cur_thread_snap->ths_thread_id = thread_tid(thread);
2185 	cur_thread_snap->ths_wait_event = VM_KERNEL_UNSLIDE_OR_PERM(thread->wait_event);
2186 	cur_thread_snap->ths_continuation = VM_KERNEL_UNSLIDE(thread->continuation);
2187 	cur_thread_snap->ths_total_syscalls = thread->syscalls_mach + thread->syscalls_unix;
2188 
2189 	if (IPC_VOUCHER_NULL != thread->ith_voucher) {
2190 		cur_thread_snap->ths_voucher_identifier = VM_KERNEL_ADDRPERM(thread->ith_voucher);
2191 	} else {
2192 		cur_thread_snap->ths_voucher_identifier = 0;
2193 	}
2194 
2195 #if STACKSHOT_COLLECTS_LATENCY_INFO
2196 	latency_info.cur_thsnap1_latency = mach_absolute_time() - latency_info.cur_thsnap1_latency;
2197 	latency_info.dispatch_serial_latency = mach_absolute_time();
2198 	latency_info.dispatch_label_latency = 0;
2199 #endif /* STACKSHOT_COLLECTS_LATENCY_INFO */
2200 
2201 	cur_thread_snap->ths_dqserialnum = 0;
2202 	if (dispatch_p && (task != kernel_task) && (task->active) && have_pmap) {
2203 		uint64_t dqkeyaddr = thread_dispatchqaddr(thread);
2204 		if (dqkeyaddr != 0) {
2205 			uint64_t dqaddr = 0;
2206 			boolean_t copyin_ok = stackshot_copyin_word(task, dqkeyaddr, &dqaddr, FALSE, NULL);
2207 			if (copyin_ok && dqaddr != 0) {
2208 				uint64_t dqserialnumaddr = dqaddr + get_task_dispatchqueue_serialno_offset(task);
2209 				uint64_t dqserialnum = 0;
2210 				copyin_ok = stackshot_copyin_word(task, dqserialnumaddr, &dqserialnum, FALSE, NULL);
2211 				if (copyin_ok) {
2212 					cur_thread_snap->ths_ss_flags |= kHasDispatchSerial;
2213 					cur_thread_snap->ths_dqserialnum = dqserialnum;
2214 				}
2215 
2216 #if STACKSHOT_COLLECTS_LATENCY_INFO
2217 				latency_info.dispatch_serial_latency = mach_absolute_time() - latency_info.dispatch_serial_latency;
2218 				latency_info.dispatch_label_latency = mach_absolute_time();
2219 #endif /* STACKSHOT_COLLECTS_LATENCY_INFO */
2220 
2221 				/* try copying in the queue label */
2222 				uint64_t label_offs = get_task_dispatchqueue_label_offset(task);
2223 				if (label_offs) {
2224 					uint64_t dqlabeladdr = dqaddr + label_offs;
2225 					uint64_t actual_dqlabeladdr = 0;
2226 
2227 					copyin_ok = stackshot_copyin_word(task, dqlabeladdr, &actual_dqlabeladdr, FALSE, NULL);
2228 					if (copyin_ok && actual_dqlabeladdr != 0) {
2229 						char label_buf[STACKSHOT_QUEUE_LABEL_MAXSIZE];
2230 						int len;
2231 
2232 						bzero(label_buf, STACKSHOT_QUEUE_LABEL_MAXSIZE * sizeof(char));
2233 						len = stackshot_copyin_string(task, actual_dqlabeladdr, label_buf, STACKSHOT_QUEUE_LABEL_MAXSIZE, FALSE, NULL);
2234 						if (len > 0) {
2235 							mach_vm_address_t label_addr = 0;
2236 							kcd_exit_on_error(kcdata_get_memory_addr(kcd, STACKSHOT_KCTYPE_THREAD_DISPATCH_QUEUE_LABEL, len, &label_addr));
2237 							kdp_strlcpy((char*)label_addr, &label_buf[0], len);
2238 						}
2239 					}
2240 				}
2241 #if STACKSHOT_COLLECTS_LATENCY_INFO
2242 				latency_info.dispatch_label_latency = mach_absolute_time() - latency_info.dispatch_label_latency;
2243 #endif /* STACKSHOT_COLLECTS_LATENCY_INFO */
2244 			}
2245 		}
2246 	}
2247 
2248 #if STACKSHOT_COLLECTS_LATENCY_INFO
2249 	if ((cur_thread_snap->ths_ss_flags & kHasDispatchSerial) == 0) {
2250 		latency_info.dispatch_serial_latency = 0;
2251 	}
2252 	latency_info.cur_thsnap2_latency = mach_absolute_time();
2253 #endif /* STACKSHOT_COLLECTS_LATENCY_INFO */
2254 
2255 	struct recount_times_mach times = recount_thread_times(thread);
2256 	cur_thread_snap->ths_user_time = times.rtm_user;
2257 	cur_thread_snap->ths_sys_time = times.rtm_system;
2258 
2259 	if (thread->thread_tag & THREAD_TAG_MAINTHREAD) {
2260 		cur_thread_snap->ths_ss_flags |= kThreadMain;
2261 	}
2262 	if (thread->effective_policy.thep_darwinbg) {
2263 		cur_thread_snap->ths_ss_flags |= kThreadDarwinBG;
2264 	}
2265 	if (proc_get_effective_thread_policy(thread, TASK_POLICY_PASSIVE_IO)) {
2266 		cur_thread_snap->ths_ss_flags |= kThreadIOPassive;
2267 	}
2268 	if (thread->suspend_count > 0) {
2269 		cur_thread_snap->ths_ss_flags |= kThreadSuspended;
2270 	}
2271 	if (thread->options & TH_OPT_GLOBAL_FORCED_IDLE) {
2272 		cur_thread_snap->ths_ss_flags |= kGlobalForcedIdle;
2273 	}
2274 	if (thread_on_core) {
2275 		cur_thread_snap->ths_ss_flags |= kThreadOnCore;
2276 	}
2277 	if (stackshot_thread_is_idle_worker_unsafe(thread)) {
2278 		cur_thread_snap->ths_ss_flags |= kThreadIdleWorker;
2279 	}
2280 
2281 	/* make sure state flags defined in kcdata.h still match internal flags */
2282 	static_assert(SS_TH_WAIT == TH_WAIT);
2283 	static_assert(SS_TH_SUSP == TH_SUSP);
2284 	static_assert(SS_TH_RUN == TH_RUN);
2285 	static_assert(SS_TH_UNINT == TH_UNINT);
2286 	static_assert(SS_TH_TERMINATE == TH_TERMINATE);
2287 	static_assert(SS_TH_TERMINATE2 == TH_TERMINATE2);
2288 	static_assert(SS_TH_IDLE == TH_IDLE);
2289 
2290 	cur_thread_snap->ths_last_run_time           = thread->last_run_time;
2291 	cur_thread_snap->ths_last_made_runnable_time = thread->last_made_runnable_time;
2292 	cur_thread_snap->ths_state                   = thread->state;
2293 	cur_thread_snap->ths_sched_flags             = thread->sched_flags;
2294 	cur_thread_snap->ths_base_priority = thread->base_pri;
2295 	cur_thread_snap->ths_sched_priority = thread->sched_pri;
2296 	cur_thread_snap->ths_eqos = thread->effective_policy.thep_qos;
2297 	cur_thread_snap->ths_rqos = thread->requested_policy.thrp_qos;
2298 	cur_thread_snap->ths_rqos_override = MAX(thread->requested_policy.thrp_qos_override,
2299 	    thread->requested_policy.thrp_qos_workq_override);
2300 	cur_thread_snap->ths_io_tier = (uint8_t) proc_get_effective_thread_policy(thread, TASK_POLICY_IO);
2301 	cur_thread_snap->ths_thread_t = VM_KERNEL_UNSLIDE_OR_PERM(thread);
2302 
2303 	static_assert(sizeof(thread->effective_policy) == sizeof(uint64_t));
2304 	static_assert(sizeof(thread->requested_policy) == sizeof(uint64_t));
2305 	cur_thread_snap->ths_requested_policy = *(unaligned_u64 *) &thread->requested_policy;
2306 	cur_thread_snap->ths_effective_policy = *(unaligned_u64 *) &thread->effective_policy;
2307 
2308 #if STACKSHOT_COLLECTS_LATENCY_INFO
2309 	latency_info.cur_thsnap2_latency = mach_absolute_time()  - latency_info.cur_thsnap2_latency;
2310 	latency_info.thread_name_latency = mach_absolute_time();
2311 #endif /* STACKSHOT_COLLECTS_LATENCY_INFO */
2312 
2313 	/* if there is thread name then add to buffer */
2314 	cur_thread_name[0] = '\0';
2315 	proc_threadname_kdp(get_bsdthread_info(thread), cur_thread_name, STACKSHOT_MAX_THREAD_NAME_SIZE);
2316 	if (strnlen(cur_thread_name, STACKSHOT_MAX_THREAD_NAME_SIZE) > 0) {
2317 		kcd_exit_on_error(kcdata_get_memory_addr(kcd, STACKSHOT_KCTYPE_THREAD_NAME, sizeof(cur_thread_name), &out_addr));
2318 		kdp_memcpy((void *)out_addr, (void *)cur_thread_name, sizeof(cur_thread_name));
2319 	}
2320 
2321 #if STACKSHOT_COLLECTS_LATENCY_INFO
2322 	latency_info.thread_name_latency = mach_absolute_time()  - latency_info.thread_name_latency;
2323 	latency_info.sur_times_latency = mach_absolute_time();
2324 #endif /* STACKSHOT_COLLECTS_LATENCY_INFO */
2325 
2326 	/* record system, user, and runnable times */
2327 	time_value_t runnable_time;
2328 	thread_read_times(thread, NULL, NULL, &runnable_time);
2329 	clock_sec_t user_sec = 0, system_sec = 0;
2330 	clock_usec_t user_usec = 0, system_usec = 0;
2331 	absolutetime_to_microtime(times.rtm_user, &user_sec, &user_usec);
2332 	absolutetime_to_microtime(times.rtm_system, &system_sec, &system_usec);
2333 
2334 	kcd_exit_on_error(kcdata_get_memory_addr(kcd, STACKSHOT_KCTYPE_CPU_TIMES, sizeof(struct stackshot_cpu_times_v2), &out_addr));
2335 	struct stackshot_cpu_times_v2 *stackshot_cpu_times = (struct stackshot_cpu_times_v2 *)out_addr;
2336 	*stackshot_cpu_times = (struct stackshot_cpu_times_v2){
2337 		.user_usec = user_sec * USEC_PER_SEC + user_usec,
2338 		.system_usec = system_sec * USEC_PER_SEC + system_usec,
2339 		.runnable_usec = (uint64_t)runnable_time.seconds * USEC_PER_SEC + runnable_time.microseconds,
2340 	};
2341 
2342 #if STACKSHOT_COLLECTS_LATENCY_INFO
2343 	latency_info.sur_times_latency = mach_absolute_time()  - latency_info.sur_times_latency;
2344 	latency_info.user_stack_latency = mach_absolute_time();
2345 #endif /* STACKSHOT_COLLECTS_LATENCY_INFO */
2346 
2347 	/* Trace user stack, if any */
2348 	if (!active_kthreads_only_p && task->active && task->map != kernel_map) {
2349 		uint32_t user_ths_ss_flags = 0;
2350 
2351 		/*
2352 		 * This relies on knowing the "end" address points to the start of the
2353 		 * next elements data and, in the case of arrays, the elements.
2354 		 */
2355 		out_addr = (mach_vm_address_t)kcd_end_address(kcd);
2356 		mach_vm_address_t max_addr = (mach_vm_address_t)kcd_max_address(kcd);
2357 		assert(out_addr <= max_addr);
2358 		size_t avail_frames = (max_addr - out_addr) / sizeof(uintptr_t);
2359 		size_t max_frames = MIN(avail_frames, MAX_FRAMES);
2360 		if (max_frames == 0) {
2361 			error = KERN_RESOURCE_SHORTAGE;
2362 			goto error_exit;
2363 		}
2364 		struct _stackshot_backtrace_context ctx = {
2365 			.sbc_map = task->map,
2366 			.sbc_allow_faulting = stack_enable_faulting,
2367 			.sbc_prev_page = -1,
2368 			.sbc_prev_kva = -1,
2369 		};
2370 		struct backtrace_control ctl = {
2371 			.btc_user_thread = thread,
2372 			.btc_user_copy = _stackshot_backtrace_copy,
2373 			.btc_user_copy_context = &ctx,
2374 		};
2375 		struct backtrace_user_info info = BTUINFO_INIT;
2376 
2377 		saved_count = backtrace_user((uintptr_t *)out_addr, max_frames, &ctl,
2378 		    &info);
2379 		if (saved_count > 0) {
2380 #if __LP64__
2381 #define STACKLR_WORDS STACKSHOT_KCTYPE_USER_STACKLR64
2382 #else // __LP64__
2383 #define STACKLR_WORDS STACKSHOT_KCTYPE_USER_STACKLR
2384 #endif // !__LP64__
2385 			mach_vm_address_t out_addr_array;
2386 			kcd_exit_on_error(kcdata_get_memory_addr_for_array(kcd,
2387 			    STACKLR_WORDS, sizeof(uintptr_t), saved_count,
2388 			    &out_addr_array));
2389 			/*
2390 			 * Ensure the kcd_end_address (above) trick worked.
2391 			 */
2392 			assert(out_addr == out_addr_array);
2393 			if (info.btui_info & BTI_64_BIT) {
2394 				user_ths_ss_flags |= kUser64_p;
2395 			}
2396 			if ((info.btui_info & BTI_TRUNCATED) ||
2397 			    (ctx.sbc_flags & kThreadTruncatedBT)) {
2398 				user_ths_ss_flags |= kThreadTruncatedBT;
2399 				user_ths_ss_flags |= kThreadTruncUserBT;
2400 			}
2401 			user_ths_ss_flags |= ctx.sbc_flags;
2402 			ctx.sbc_flags = 0;
2403 #if __LP64__
2404 			/* We only support async stacks on 64-bit kernels */
2405 			if (info.btui_async_frame_addr != 0) {
2406 				uint32_t async_start_offset = info.btui_async_start_index;
2407 				kcd_exit_on_error(kcdata_push_data(kcd, STACKSHOT_KCTYPE_USER_ASYNC_START_INDEX,
2408 				    sizeof(async_start_offset), &async_start_offset));
2409 				out_addr = (mach_vm_address_t)kcd_end_address(kcd);
2410 				assert(out_addr <= max_addr);
2411 
2412 				avail_frames = (max_addr - out_addr) / sizeof(uintptr_t);
2413 				max_frames = MIN(avail_frames, MAX_FRAMES);
2414 				if (max_frames == 0) {
2415 					error = KERN_RESOURCE_SHORTAGE;
2416 					goto error_exit;
2417 				}
2418 				ctl.btc_frame_addr = info.btui_async_frame_addr;
2419 				ctl.btc_addr_offset = BTCTL_ASYNC_ADDR_OFFSET;
2420 				info = BTUINFO_INIT;
2421 				unsigned int async_count = backtrace_user((uintptr_t *)out_addr, max_frames, &ctl,
2422 				    &info);
2423 				if (async_count > 0) {
2424 					mach_vm_address_t async_out_addr;
2425 					kcd_exit_on_error(kcdata_get_memory_addr_for_array(kcd,
2426 					    STACKSHOT_KCTYPE_USER_ASYNC_STACKLR64, sizeof(uintptr_t), async_count,
2427 					    &async_out_addr));
2428 					/*
2429 					 * Ensure the kcd_end_address (above) trick worked.
2430 					 */
2431 					assert(out_addr == async_out_addr);
2432 					if ((info.btui_info & BTI_TRUNCATED) ||
2433 					    (ctx.sbc_flags & kThreadTruncatedBT)) {
2434 						user_ths_ss_flags |= kThreadTruncatedBT;
2435 						user_ths_ss_flags |= kThreadTruncUserAsyncBT;
2436 					}
2437 					user_ths_ss_flags |= ctx.sbc_flags;
2438 				}
2439 			}
2440 #endif /* _LP64 */
2441 		}
2442 		if (user_ths_ss_flags != 0) {
2443 			cur_thread_snap->ths_ss_flags |= user_ths_ss_flags;
2444 		}
2445 	}
2446 
2447 #if STACKSHOT_COLLECTS_LATENCY_INFO
2448 	latency_info.user_stack_latency = mach_absolute_time()  - latency_info.user_stack_latency;
2449 	latency_info.kernel_stack_latency = mach_absolute_time();
2450 #endif /* STACKSHOT_COLLECTS_LATENCY_INFO */
2451 
2452 	/* Call through to the machine specific trace routines
2453 	 * Frames are added past the snapshot header.
2454 	 */
2455 	if (thread->kernel_stack != 0) {
2456 		uint32_t kern_ths_ss_flags = 0;
2457 		out_addr = (mach_vm_address_t)kcd_end_address(kcd);
2458 #if defined(__LP64__)
2459 		uint32_t stack_kcdata_type = STACKSHOT_KCTYPE_KERN_STACKLR64;
2460 		extern int machine_trace_thread64(thread_t thread, char *tracepos,
2461 		    char *tracebound, int nframes, uint32_t *thread_trace_flags);
2462 		saved_count = machine_trace_thread64(
2463 #else
2464 		uint32_t stack_kcdata_type = STACKSHOT_KCTYPE_KERN_STACKLR;
2465 		extern int machine_trace_thread(thread_t thread, char *tracepos,
2466 		    char *tracebound, int nframes, uint32_t *thread_trace_flags);
2467 		saved_count = machine_trace_thread(
2468 #endif
2469 			thread, (char *)out_addr, (char *)kcd_max_address(kcd), MAX_FRAMES,
2470 			&kern_ths_ss_flags);
2471 		if (saved_count > 0) {
2472 			int frame_size = sizeof(uintptr_t);
2473 #if defined(__LP64__)
2474 			cur_thread_snap->ths_ss_flags |= kKernel64_p;
2475 #endif
2476 			kcd_exit_on_error(kcdata_get_memory_addr_for_array(kcd, stack_kcdata_type,
2477 			    frame_size, saved_count / frame_size, &out_addr));
2478 		}
2479 		if (kern_ths_ss_flags & kThreadTruncatedBT) {
2480 			kern_ths_ss_flags |= kThreadTruncKernBT;
2481 		}
2482 		if (kern_ths_ss_flags != 0) {
2483 			cur_thread_snap->ths_ss_flags |= kern_ths_ss_flags;
2484 		}
2485 	}
2486 
2487 #if STACKSHOT_COLLECTS_LATENCY_INFO
2488 	latency_info.kernel_stack_latency = mach_absolute_time()  - latency_info.kernel_stack_latency;
2489 	latency_info.misc_latency = mach_absolute_time();
2490 #endif /* STACKSHOT_COLLECTS_LATENCY_INFO */
2491 
2492 #if CONFIG_THREAD_GROUPS
2493 	if (trace_flags & STACKSHOT_THREAD_GROUP) {
2494 		uint64_t thread_group_id = thread->thread_group ? thread_group_get_id(thread->thread_group) : 0;
2495 		kcd_exit_on_error(kcdata_get_memory_addr(kcd, STACKSHOT_KCTYPE_THREAD_GROUP, sizeof(thread_group_id), &out_addr));
2496 		kdp_memcpy((void*)out_addr, &thread_group_id, sizeof(uint64_t));
2497 	}
2498 #endif /* CONFIG_THREAD_GROUPS */
2499 
2500 	if (collect_iostats) {
2501 		kcd_exit_on_error(kcdata_record_thread_iostats(kcd, thread));
2502 	}
2503 
2504 #if CONFIG_PERVASIVE_CPI
2505 	if (collect_instrs_cycles) {
2506 		struct recount_usage usage = { 0 };
2507 		recount_sum_unsafe(&recount_thread_plan, thread->th_recount.rth_lifetime,
2508 		    &usage);
2509 
2510 		kcd_exit_on_error(kcdata_get_memory_addr(kcd, STACKSHOT_KCTYPE_INSTRS_CYCLES, sizeof(struct instrs_cycles_snapshot), &out_addr));
2511 		struct instrs_cycles_snapshot *instrs_cycles = (struct instrs_cycles_snapshot *)out_addr;
2512 		    instrs_cycles->ics_instructions = usage.ru_instructions;
2513 		    instrs_cycles->ics_cycles = usage.ru_cycles;
2514 	}
2515 #endif /* CONFIG_PERVASIVE_CPI */
2516 
2517 #if STACKSHOT_COLLECTS_LATENCY_INFO
2518 	latency_info.misc_latency = mach_absolute_time() - latency_info.misc_latency;
2519 	if (collect_latency_info) {
2520 		kcd_exit_on_error(kcdata_push_data(kcd, STACKSHOT_KCTYPE_LATENCY_INFO_THREAD, sizeof(latency_info), &latency_info));
2521 	}
2522 #endif /* STACKSHOT_COLLECTS_LATENCY_INFO */
2523 
2524 error_exit:
2525 	return error;
2526 }
2527 
2528 static int
kcdata_record_thread_delta_snapshot(struct thread_delta_snapshot_v3 * cur_thread_snap,thread_t thread,boolean_t thread_on_core)2529 kcdata_record_thread_delta_snapshot(struct thread_delta_snapshot_v3 * cur_thread_snap, thread_t thread, boolean_t thread_on_core)
2530 {
2531 	cur_thread_snap->tds_thread_id = thread_tid(thread);
2532 	if (IPC_VOUCHER_NULL != thread->ith_voucher) {
2533 		cur_thread_snap->tds_voucher_identifier  = VM_KERNEL_ADDRPERM(thread->ith_voucher);
2534 	} else {
2535 		cur_thread_snap->tds_voucher_identifier = 0;
2536 	}
2537 
2538 	cur_thread_snap->tds_ss_flags = 0;
2539 	if (thread->effective_policy.thep_darwinbg) {
2540 		cur_thread_snap->tds_ss_flags |= kThreadDarwinBG;
2541 	}
2542 	if (proc_get_effective_thread_policy(thread, TASK_POLICY_PASSIVE_IO)) {
2543 		cur_thread_snap->tds_ss_flags |= kThreadIOPassive;
2544 	}
2545 	if (thread->suspend_count > 0) {
2546 		cur_thread_snap->tds_ss_flags |= kThreadSuspended;
2547 	}
2548 	if (thread->options & TH_OPT_GLOBAL_FORCED_IDLE) {
2549 		cur_thread_snap->tds_ss_flags |= kGlobalForcedIdle;
2550 	}
2551 	if (thread_on_core) {
2552 		cur_thread_snap->tds_ss_flags |= kThreadOnCore;
2553 	}
2554 	if (stackshot_thread_is_idle_worker_unsafe(thread)) {
2555 		cur_thread_snap->tds_ss_flags |= kThreadIdleWorker;
2556 	}
2557 
2558 	cur_thread_snap->tds_last_made_runnable_time = thread->last_made_runnable_time;
2559 	cur_thread_snap->tds_state                   = thread->state;
2560 	cur_thread_snap->tds_sched_flags             = thread->sched_flags;
2561 	cur_thread_snap->tds_base_priority           = thread->base_pri;
2562 	cur_thread_snap->tds_sched_priority          = thread->sched_pri;
2563 	cur_thread_snap->tds_eqos                    = thread->effective_policy.thep_qos;
2564 	cur_thread_snap->tds_rqos                    = thread->requested_policy.thrp_qos;
2565 	cur_thread_snap->tds_rqos_override           = MAX(thread->requested_policy.thrp_qos_override,
2566 	    thread->requested_policy.thrp_qos_workq_override);
2567 	cur_thread_snap->tds_io_tier                 = (uint8_t) proc_get_effective_thread_policy(thread, TASK_POLICY_IO);
2568 
2569 	static_assert(sizeof(thread->effective_policy) == sizeof(uint64_t));
2570 	static_assert(sizeof(thread->requested_policy) == sizeof(uint64_t));
2571 	cur_thread_snap->tds_requested_policy = *(unaligned_u64 *) &thread->requested_policy;
2572 	cur_thread_snap->tds_effective_policy = *(unaligned_u64 *) &thread->effective_policy;
2573 
2574 	return 0;
2575 }
2576 
2577 /*
2578  * Why 12?  12 strikes a decent balance between allocating a large array on
2579  * the stack and having large kcdata item overheads for recording nonrunable
2580  * tasks.
2581  */
2582 #define UNIQUEIDSPERFLUSH 12
2583 
2584 struct saved_uniqueids {
2585 	uint64_t ids[UNIQUEIDSPERFLUSH];
2586 	unsigned count;
2587 };
2588 
2589 enum thread_classification {
2590 	tc_full_snapshot,  /* take a full snapshot */
2591 	tc_delta_snapshot, /* take a delta snapshot */
2592 };
2593 
2594 static enum thread_classification
classify_thread(thread_t thread,boolean_t * thread_on_core_p,boolean_t collect_delta_stackshot)2595 classify_thread(thread_t thread, boolean_t * thread_on_core_p, boolean_t collect_delta_stackshot)
2596 {
2597 	processor_t last_processor = thread->last_processor;
2598 
2599 	boolean_t thread_on_core = FALSE;
2600 	if (last_processor != PROCESSOR_NULL) {
2601 		/* Idle threads are always treated as on-core, since the processor state can change while they are running. */
2602 		thread_on_core = (thread == last_processor->idle_thread) ||
2603 		    ((last_processor->state == PROCESSOR_SHUTDOWN || last_processor->state == PROCESSOR_RUNNING) &&
2604 		    last_processor->active_thread == thread);
2605 	}
2606 
2607 	*thread_on_core_p = thread_on_core;
2608 
2609 	/* Capture the full thread snapshot if this is not a delta stackshot or if the thread has run subsequent to the
2610 	 * previous full stackshot */
2611 	if (!collect_delta_stackshot || thread_on_core || (thread->last_run_time > stack_snapshot_delta_since_timestamp)) {
2612 		return tc_full_snapshot;
2613 	} else {
2614 		return tc_delta_snapshot;
2615 	}
2616 }
2617 
2618 struct stackshot_context {
2619 	int pid;
2620 	uint64_t trace_flags;
2621 	bool include_drivers;
2622 };
2623 
2624 static kern_return_t
kdp_stackshot_record_task(struct stackshot_context * ctx,task_t task)2625 kdp_stackshot_record_task(struct stackshot_context *ctx, task_t task)
2626 {
2627 	boolean_t active_kthreads_only_p  = ((ctx->trace_flags & STACKSHOT_ACTIVE_KERNEL_THREADS_ONLY) != 0);
2628 	boolean_t save_donating_pids_p    = ((ctx->trace_flags & STACKSHOT_SAVE_IMP_DONATION_PIDS) != 0);
2629 	boolean_t collect_delta_stackshot = ((ctx->trace_flags & STACKSHOT_COLLECT_DELTA_SNAPSHOT) != 0);
2630 	boolean_t save_owner_info         = ((ctx->trace_flags & STACKSHOT_THREAD_WAITINFO) != 0);
2631 
2632 	kern_return_t error = KERN_SUCCESS;
2633 	mach_vm_address_t out_addr = 0;
2634 	int saved_count = 0;
2635 
2636 	int task_pid                   = 0;
2637 	uint64_t task_uniqueid         = 0;
2638 	int num_delta_thread_snapshots = 0;
2639 	int num_waitinfo_threads       = 0;
2640 	int num_turnstileinfo_threads  = 0;
2641 
2642 	uint64_t task_start_abstime    = 0;
2643 	boolean_t have_map = FALSE, have_pmap = FALSE;
2644 	boolean_t some_thread_ran = FALSE;
2645 	unaligned_u64 task_snap_ss_flags = 0;
2646 #if STACKSHOT_COLLECTS_LATENCY_INFO
2647 	struct stackshot_latency_task latency_info;
2648 	latency_info.setup_latency = mach_absolute_time();
2649 #endif /* STACKSHOT_COLLECTS_LATENCY_INFO */
2650 
2651 #if SCHED_HYGIENE_DEBUG && CONFIG_PERVASIVE_CPI
2652 	uint64_t task_begin_cpu_cycle_count = 0;
2653 	if (!panic_stackshot) {
2654 		task_begin_cpu_cycle_count = mt_cur_cpu_cycles();
2655 	}
2656 #endif
2657 
2658 	if ((task == NULL) || !_stackshot_validate_kva((vm_offset_t)task, sizeof(struct task))) {
2659 		error = KERN_FAILURE;
2660 		goto error_exit;
2661 	}
2662 
2663 	void *bsd_info = get_bsdtask_info(task);
2664 	boolean_t task_in_teardown        = (bsd_info == NULL) || proc_in_teardown(bsd_info);// has P_LPEXIT set during proc_exit()
2665 	boolean_t task_in_transition      = task_in_teardown;         // here we can add other types of transition.
2666 	uint32_t  container_type          = (task_in_transition) ? STACKSHOT_KCCONTAINER_TRANSITIONING_TASK : STACKSHOT_KCCONTAINER_TASK;
2667 	uint32_t  transition_type         = (task_in_teardown) ? kTaskIsTerminated : 0;
2668 
2669 	if (task_in_transition) {
2670 		collect_delta_stackshot = FALSE;
2671 	}
2672 
2673 	have_map = (task->map != NULL) && (_stackshot_validate_kva((vm_offset_t)(task->map), sizeof(struct _vm_map)));
2674 	have_pmap = have_map && (task->map->pmap != NULL) && (_stackshot_validate_kva((vm_offset_t)(task->map->pmap), sizeof(struct pmap)));
2675 
2676 	task_pid = pid_from_task(task);
2677 	/* Is returning -1 ok for terminating task ok ??? */
2678 	task_uniqueid = get_task_uniqueid(task);
2679 
2680 	if (!task->active || task_is_a_corpse(task) || task_is_a_corpse_fork(task)) {
2681 		/*
2682 		 * Not interested in terminated tasks without threads.
2683 		 */
2684 		if (queue_empty(&task->threads) || task_pid == -1) {
2685 			return KERN_SUCCESS;
2686 		}
2687 	}
2688 
2689 	/* All PIDs should have the MSB unset */
2690 	assert((task_pid & (1ULL << 31)) == 0);
2691 
2692 #if STACKSHOT_COLLECTS_LATENCY_INFO
2693 	latency_info.setup_latency = mach_absolute_time() - latency_info.setup_latency;
2694 	latency_info.task_uniqueid = task_uniqueid;
2695 #endif /* STACKSHOT_COLLECTS_LATENCY_INFO */
2696 
2697 	/* Trace everything, unless a process was specified. Add in driver tasks if requested. */
2698 	if ((ctx->pid == -1) || (ctx->pid == task_pid) || (ctx->include_drivers && task_is_driver(task))) {
2699 		/* add task snapshot marker */
2700 		kcd_exit_on_error(kcdata_add_container_marker(stackshot_kcdata_p, KCDATA_TYPE_CONTAINER_BEGIN,
2701 		    container_type, task_uniqueid));
2702 
2703 		if (collect_delta_stackshot) {
2704 			/*
2705 			 * For delta stackshots we need to know if a thread from this task has run since the
2706 			 * previous timestamp to decide whether we're going to record a full snapshot and UUID info.
2707 			 */
2708 			thread_t thread = THREAD_NULL;
2709 			queue_iterate(&task->threads, thread, thread_t, task_threads)
2710 			{
2711 				if ((thread == NULL) || !_stackshot_validate_kva((vm_offset_t)thread, sizeof(struct thread))) {
2712 					error = KERN_FAILURE;
2713 					goto error_exit;
2714 				}
2715 
2716 				if (active_kthreads_only_p && thread->kernel_stack == 0) {
2717 					continue;
2718 				}
2719 
2720 				boolean_t thread_on_core;
2721 				enum thread_classification thread_classification = classify_thread(thread, &thread_on_core, collect_delta_stackshot);
2722 
2723 				switch (thread_classification) {
2724 				case tc_full_snapshot:
2725 					some_thread_ran = TRUE;
2726 					break;
2727 				case tc_delta_snapshot:
2728 					num_delta_thread_snapshots++;
2729 					break;
2730 				}
2731 			}
2732 		}
2733 
2734 		if (collect_delta_stackshot) {
2735 			proc_starttime_kdp(get_bsdtask_info(task), NULL, NULL, &task_start_abstime);
2736 		}
2737 
2738 		/* Next record any relevant UUID info and store the task snapshot */
2739 		if (task_in_transition ||
2740 		    !collect_delta_stackshot ||
2741 		    (task_start_abstime == 0) ||
2742 		    (task_start_abstime > stack_snapshot_delta_since_timestamp) ||
2743 		    some_thread_ran) {
2744 			/*
2745 			 * Collect full task information in these scenarios:
2746 			 *
2747 			 * 1) a full stackshot or the task is in transition
2748 			 * 2) a delta stackshot where the task started after the previous full stackshot
2749 			 * 3) a delta stackshot where any thread from the task has run since the previous full stackshot
2750 			 *
2751 			 * because the task may have exec'ed, changing its name, architecture, load info, etc
2752 			 */
2753 
2754 			kcd_exit_on_error(kcdata_record_shared_cache_info(stackshot_kcdata_p, task, &task_snap_ss_flags));
2755 			kcd_exit_on_error(kcdata_record_uuid_info(stackshot_kcdata_p, task, ctx->trace_flags, have_pmap, &task_snap_ss_flags));
2756 #if STACKSHOT_COLLECTS_LATENCY_INFO
2757 			if (!task_in_transition) {
2758 				kcd_exit_on_error(kcdata_record_task_snapshot(stackshot_kcdata_p, task, ctx->trace_flags, have_pmap, task_snap_ss_flags, &latency_info));
2759 			} else {
2760 				kcd_exit_on_error(kcdata_record_transitioning_task_snapshot(stackshot_kcdata_p, task, task_snap_ss_flags, transition_type));
2761 			}
2762 #else
2763 			if (!task_in_transition) {
2764 				kcd_exit_on_error(kcdata_record_task_snapshot(stackshot_kcdata_p, task, ctx->trace_flags, have_pmap, task_snap_ss_flags));
2765 			} else {
2766 				kcd_exit_on_error(kcdata_record_transitioning_task_snapshot(stackshot_kcdata_p, task, task_snap_ss_flags, transition_type));
2767 			}
2768 #endif /* STACKSHOT_COLLECTS_LATENCY_INFO */
2769 		} else {
2770 			kcd_exit_on_error(kcdata_record_task_delta_snapshot(stackshot_kcdata_p, task, ctx->trace_flags, have_pmap, task_snap_ss_flags));
2771 		}
2772 
2773 #if STACKSHOT_COLLECTS_LATENCY_INFO
2774 		latency_info.misc_latency = mach_absolute_time();
2775 #endif /* STACKSHOT_COLLECTS_LATENCY_INFO */
2776 
2777 		struct thread_delta_snapshot_v3 * delta_snapshots = NULL;
2778 		int current_delta_snapshot_index                  = 0;
2779 		if (num_delta_thread_snapshots > 0) {
2780 			kcd_exit_on_error(kcdata_get_memory_addr_for_array(stackshot_kcdata_p, STACKSHOT_KCTYPE_THREAD_DELTA_SNAPSHOT,
2781 			    sizeof(struct thread_delta_snapshot_v3),
2782 			    num_delta_thread_snapshots, &out_addr));
2783 			delta_snapshots = (struct thread_delta_snapshot_v3 *)out_addr;
2784 		}
2785 
2786 
2787 #if STACKSHOT_COLLECTS_LATENCY_INFO
2788 		latency_info.task_thread_count_loop_latency = mach_absolute_time();
2789 #endif
2790 		/*
2791 		 * Iterate over the task threads to save thread snapshots and determine
2792 		 * how much space we need for waitinfo and turnstile info
2793 		 */
2794 		thread_t thread = THREAD_NULL;
2795 		queue_iterate(&task->threads, thread, thread_t, task_threads)
2796 		{
2797 			if ((thread == NULL) || !_stackshot_validate_kva((vm_offset_t)thread, sizeof(struct thread))) {
2798 				error = KERN_FAILURE;
2799 				goto error_exit;
2800 			}
2801 
2802 			uint64_t thread_uniqueid;
2803 			if (active_kthreads_only_p && thread->kernel_stack == 0) {
2804 				continue;
2805 			}
2806 			thread_uniqueid = thread_tid(thread);
2807 
2808 			boolean_t thread_on_core;
2809 			enum thread_classification thread_classification = classify_thread(thread, &thread_on_core, collect_delta_stackshot);
2810 
2811 			switch (thread_classification) {
2812 			case tc_full_snapshot:
2813 				/* add thread marker */
2814 				kcd_exit_on_error(kcdata_add_container_marker(stackshot_kcdata_p, KCDATA_TYPE_CONTAINER_BEGIN,
2815 				    STACKSHOT_KCCONTAINER_THREAD, thread_uniqueid));
2816 
2817 				/* thread snapshot can be large, including strings, avoid overflowing the stack. */
2818 				kcdata_compression_window_open(stackshot_kcdata_p);
2819 
2820 				kcd_exit_on_error(kcdata_record_thread_snapshot(stackshot_kcdata_p, thread, task, ctx->trace_flags, have_pmap, thread_on_core));
2821 
2822 				kcd_exit_on_error(kcdata_compression_window_close(stackshot_kcdata_p));
2823 
2824 				/* mark end of thread snapshot data */
2825 				kcd_exit_on_error(kcdata_add_container_marker(stackshot_kcdata_p, KCDATA_TYPE_CONTAINER_END,
2826 				    STACKSHOT_KCCONTAINER_THREAD, thread_uniqueid));
2827 				break;
2828 			case tc_delta_snapshot:
2829 				kcd_exit_on_error(kcdata_record_thread_delta_snapshot(&delta_snapshots[current_delta_snapshot_index++], thread, thread_on_core));
2830 				break;
2831 			}
2832 
2833 			/*
2834 			 * We want to report owner information regardless of whether a thread
2835 			 * has changed since the last delta, whether it's a normal stackshot,
2836 			 * or whether it's nonrunnable
2837 			 */
2838 			if (save_owner_info) {
2839 				if (stackshot_thread_has_valid_waitinfo(thread)) {
2840 					num_waitinfo_threads++;
2841 				}
2842 
2843 				if (stackshot_thread_has_valid_turnstileinfo(thread)) {
2844 					num_turnstileinfo_threads++;
2845 				}
2846 			}
2847 		}
2848 #if STACKSHOT_COLLECTS_LATENCY_INFO
2849 		latency_info.task_thread_count_loop_latency = mach_absolute_time() - latency_info.task_thread_count_loop_latency;
2850 #endif /* STACKSHOT_COLLECTS_LATENCY_INFO */
2851 
2852 
2853 		thread_waitinfo_v2_t *thread_waitinfo           = NULL;
2854 		thread_turnstileinfo_v2_t *thread_turnstileinfo = NULL;
2855 		int current_waitinfo_index              = 0;
2856 		int current_turnstileinfo_index         = 0;
2857 		/* allocate space for the wait and turnstil info */
2858 		if (num_waitinfo_threads > 0 || num_turnstileinfo_threads > 0) {
2859 			/* thread waitinfo and turnstileinfo can be quite large, avoid overflowing the stack */
2860 			kcdata_compression_window_open(stackshot_kcdata_p);
2861 
2862 			if (num_waitinfo_threads > 0) {
2863 				kcd_exit_on_error(kcdata_get_memory_addr_for_array(stackshot_kcdata_p, STACKSHOT_KCTYPE_THREAD_WAITINFO,
2864 				    sizeof(thread_waitinfo_v2_t), num_waitinfo_threads, &out_addr));
2865 				thread_waitinfo = (thread_waitinfo_v2_t *)out_addr;
2866 			}
2867 
2868 			if (num_turnstileinfo_threads > 0) {
2869 				/* get space for the turnstile info */
2870 				kcd_exit_on_error(kcdata_get_memory_addr_for_array(stackshot_kcdata_p, STACKSHOT_KCTYPE_THREAD_TURNSTILEINFO,
2871 				    sizeof(thread_turnstileinfo_v2_t), num_turnstileinfo_threads, &out_addr));
2872 				thread_turnstileinfo = (thread_turnstileinfo_v2_t *)out_addr;
2873 			}
2874 
2875 			stackshot_plh_resetgen();  // so we know which portlabel_ids are referenced
2876 		}
2877 
2878 #if STACKSHOT_COLLECTS_LATENCY_INFO
2879 		latency_info.misc_latency = mach_absolute_time() - latency_info.misc_latency;
2880 		latency_info.task_thread_data_loop_latency = mach_absolute_time();
2881 #endif /* STACKSHOT_COLLECTS_LATENCY_INFO */
2882 
2883 		/* Iterate over the task's threads to save the wait and turnstile info */
2884 		queue_iterate(&task->threads, thread, thread_t, task_threads)
2885 		{
2886 			uint64_t thread_uniqueid;
2887 
2888 			if (active_kthreads_only_p && thread->kernel_stack == 0) {
2889 				continue;
2890 			}
2891 
2892 			thread_uniqueid = thread_tid(thread);
2893 
2894 			/* If we want owner info, we should capture it regardless of its classification */
2895 			if (save_owner_info) {
2896 				if (stackshot_thread_has_valid_waitinfo(thread)) {
2897 					stackshot_thread_wait_owner_info(
2898 						thread,
2899 						&thread_waitinfo[current_waitinfo_index++]);
2900 				}
2901 
2902 				if (stackshot_thread_has_valid_turnstileinfo(thread)) {
2903 					stackshot_thread_turnstileinfo(
2904 						thread,
2905 						&thread_turnstileinfo[current_turnstileinfo_index++]);
2906 				}
2907 			}
2908 		}
2909 
2910 #if STACKSHOT_COLLECTS_LATENCY_INFO
2911 		latency_info.task_thread_data_loop_latency = mach_absolute_time() - latency_info.task_thread_data_loop_latency;
2912 		latency_info.misc2_latency = mach_absolute_time();
2913 #endif /* STACKSHOT_COLLECTS_LATENCY_INFO */
2914 
2915 #if DEBUG || DEVELOPMENT
2916 		if (current_delta_snapshot_index != num_delta_thread_snapshots) {
2917 			panic("delta thread snapshot count mismatch while capturing snapshots for task %p. expected %d, found %d", task,
2918 			    num_delta_thread_snapshots, current_delta_snapshot_index);
2919 		}
2920 		if (current_waitinfo_index != num_waitinfo_threads) {
2921 			panic("thread wait info count mismatch while capturing snapshots for task %p. expected %d, found %d", task,
2922 			    num_waitinfo_threads, current_waitinfo_index);
2923 		}
2924 #endif
2925 
2926 		if (num_waitinfo_threads > 0 || num_turnstileinfo_threads > 0) {
2927 			kcd_exit_on_error(kcdata_compression_window_close(stackshot_kcdata_p));
2928 			// now, record the portlabel hashes.
2929 			kcd_exit_on_error(kdp_stackshot_plh_record());
2930 		}
2931 
2932 #if IMPORTANCE_INHERITANCE
2933 		if (save_donating_pids_p) {
2934 			kcd_exit_on_error(
2935 				((((mach_vm_address_t)kcd_end_address(stackshot_kcdata_p) + (TASK_IMP_WALK_LIMIT * sizeof(int32_t))) <
2936 				(mach_vm_address_t)kcd_max_address(stackshot_kcdata_p))
2937 				? KERN_SUCCESS
2938 				: KERN_RESOURCE_SHORTAGE));
2939 			saved_count = task_importance_list_pids(task, TASK_IMP_LIST_DONATING_PIDS,
2940 			    (void *)kcd_end_address(stackshot_kcdata_p), TASK_IMP_WALK_LIMIT);
2941 			if (saved_count > 0) {
2942 				/* Variable size array - better not have it on the stack. */
2943 				kcdata_compression_window_open(stackshot_kcdata_p);
2944 				kcd_exit_on_error(kcdata_get_memory_addr_for_array(stackshot_kcdata_p, STACKSHOT_KCTYPE_DONATING_PIDS,
2945 				    sizeof(int32_t), saved_count, &out_addr));
2946 				kcd_exit_on_error(kcdata_compression_window_close(stackshot_kcdata_p));
2947 			}
2948 		}
2949 #endif
2950 
2951 #if SCHED_HYGIENE_DEBUG && CONFIG_PERVASIVE_CPI
2952 		if (!panic_stackshot) {
2953 			kcd_exit_on_error(kcdata_add_uint64_with_description(stackshot_kcdata_p, (mt_cur_cpu_cycles() - task_begin_cpu_cycle_count),
2954 			    "task_cpu_cycle_count"));
2955 		}
2956 #endif
2957 
2958 #if STACKSHOT_COLLECTS_LATENCY_INFO
2959 		latency_info.misc2_latency = mach_absolute_time() - latency_info.misc2_latency;
2960 		if (collect_latency_info) {
2961 			kcd_exit_on_error(kcdata_push_data(stackshot_kcdata_p, STACKSHOT_KCTYPE_LATENCY_INFO_TASK, sizeof(latency_info), &latency_info));
2962 		}
2963 #endif /* STACKSHOT_COLLECTS_LATENCY_INFO */
2964 
2965 		/* mark end of task snapshot data */
2966 		kcd_exit_on_error(kcdata_add_container_marker(stackshot_kcdata_p, KCDATA_TYPE_CONTAINER_END, container_type,
2967 		    task_uniqueid));
2968 	}
2969 
2970 
2971 error_exit:
2972 	return error;
2973 }
2974 
2975 /* Record global shared regions */
2976 static kern_return_t
kdp_stackshot_shared_regions(uint64_t trace_flags)2977 kdp_stackshot_shared_regions(uint64_t trace_flags)
2978 {
2979 	kern_return_t error        = KERN_SUCCESS;
2980 
2981 	boolean_t collect_delta_stackshot = ((trace_flags & STACKSHOT_COLLECT_DELTA_SNAPSHOT) != 0);
2982 	extern queue_head_t vm_shared_region_queue;
2983 	vm_shared_region_t sr;
2984 
2985 	extern queue_head_t vm_shared_region_queue;
2986 	queue_iterate(&vm_shared_region_queue,
2987 	    sr,
2988 	    vm_shared_region_t,
2989 	    sr_q) {
2990 		struct dyld_shared_cache_loadinfo_v2 scinfo = {0};
2991 		if (!_stackshot_validate_kva((vm_offset_t)sr, sizeof(*sr))) {
2992 			break;
2993 		}
2994 		if (collect_delta_stackshot && sr->sr_install_time < stack_snapshot_delta_since_timestamp) {
2995 			continue; // only include new shared caches in delta stackshots
2996 		}
2997 		uint32_t sharedCacheFlags = ((sr == primary_system_shared_region) ? kSharedCacheSystemPrimary : 0) |
2998 		    (sr->sr_driverkit ? kSharedCacheDriverkit : 0);
2999 		kcd_exit_on_error(kcdata_add_container_marker(stackshot_kcdata_p, KCDATA_TYPE_CONTAINER_BEGIN,
3000 		    STACKSHOT_KCCONTAINER_SHAREDCACHE, sr->sr_id));
3001 		kdp_memcpy(scinfo.sharedCacheUUID, sr->sr_uuid, sizeof(sr->sr_uuid));
3002 		scinfo.sharedCacheSlide = sr->sr_slide;
3003 		scinfo.sharedCacheUnreliableSlidBaseAddress = sr->sr_base_address + sr->sr_first_mapping;
3004 		scinfo.sharedCacheSlidFirstMapping = sr->sr_base_address + sr->sr_first_mapping;
3005 		scinfo.sharedCacheID = sr->sr_id;
3006 		scinfo.sharedCacheFlags = sharedCacheFlags;
3007 
3008 		kcd_exit_on_error(kcdata_push_data(stackshot_kcdata_p, STACKSHOT_KCTYPE_SHAREDCACHE_INFO,
3009 		    sizeof(scinfo), &scinfo));
3010 
3011 		if ((trace_flags & STACKSHOT_COLLECT_SHAREDCACHE_LAYOUT) && sr->sr_images != NULL &&
3012 		    _stackshot_validate_kva((vm_offset_t)sr->sr_images, sr->sr_images_count * sizeof(struct dyld_uuid_info_64))) {
3013 			assert(sr->sr_images_count != 0);
3014 			kcd_exit_on_error(kcdata_push_array(stackshot_kcdata_p, STACKSHOT_KCTYPE_SYS_SHAREDCACHE_LAYOUT, sizeof(struct dyld_uuid_info_64), sr->sr_images_count, sr->sr_images));
3015 		}
3016 		kcd_exit_on_error(kcdata_add_container_marker(stackshot_kcdata_p, KCDATA_TYPE_CONTAINER_END,
3017 		    STACKSHOT_KCCONTAINER_SHAREDCACHE, sr->sr_id));
3018 	}
3019 
3020 	/*
3021 	 * For backwards compatibility; this will eventually be removed.
3022 	 * Another copy of the Primary System Shared Region, for older readers.
3023 	 */
3024 	sr = primary_system_shared_region;
3025 	/* record system level shared cache load info (if available) */
3026 	if (!collect_delta_stackshot && sr &&
3027 	    _stackshot_validate_kva((vm_offset_t)sr, sizeof(struct vm_shared_region))) {
3028 		struct dyld_shared_cache_loadinfo scinfo = {0};
3029 
3030 		/*
3031 		 * Historically, this data was in a dyld_uuid_info_64 structure, but the
3032 		 * naming of both the structure and fields for this use isn't great.  The
3033 		 * dyld_shared_cache_loadinfo structure has better names, but the same
3034 		 * layout and content as the original.
3035 		 *
3036 		 * The imageSlidBaseAddress/sharedCacheUnreliableSlidBaseAddress field
3037 		 * has been used inconsistently for STACKSHOT_COLLECT_SHAREDCACHE_LAYOUT
3038 		 * entries; here, it's the slid base address, and we leave it that way
3039 		 * for backwards compatibility.
3040 		 */
3041 		kdp_memcpy(scinfo.sharedCacheUUID, &sr->sr_uuid, sizeof(sr->sr_uuid));
3042 		scinfo.sharedCacheSlide = sr->sr_slide;
3043 		scinfo.sharedCacheUnreliableSlidBaseAddress = sr->sr_slide + sr->sr_base_address;
3044 		scinfo.sharedCacheSlidFirstMapping = sr->sr_base_address + sr->sr_first_mapping;
3045 
3046 		kcd_exit_on_error(kcdata_push_data(stackshot_kcdata_p, STACKSHOT_KCTYPE_SHAREDCACHE_LOADINFO,
3047 		    sizeof(scinfo), &scinfo));
3048 
3049 		if (trace_flags & STACKSHOT_COLLECT_SHAREDCACHE_LAYOUT) {
3050 			/*
3051 			 * Include a map of the system shared cache layout if it has been populated
3052 			 * (which is only when the system is using a custom shared cache).
3053 			 */
3054 			if (sr->sr_images && _stackshot_validate_kva((vm_offset_t)sr->sr_images,
3055 			    (sr->sr_images_count * sizeof(struct dyld_uuid_info_64)))) {
3056 				assert(sr->sr_images_count != 0);
3057 				kcd_exit_on_error(kcdata_push_array(stackshot_kcdata_p, STACKSHOT_KCTYPE_SYS_SHAREDCACHE_LAYOUT, sizeof(struct dyld_uuid_info_64), sr->sr_images_count, sr->sr_images));
3058 			}
3059 		}
3060 	}
3061 
3062 error_exit:
3063 	return error;
3064 }
3065 
3066 static kern_return_t
kdp_stackshot_kcdata_format(int pid,uint64_t trace_flags,uint32_t * pBytesTraced,uint32_t * pBytesUncompressed)3067 kdp_stackshot_kcdata_format(int pid, uint64_t trace_flags, uint32_t * pBytesTraced, uint32_t * pBytesUncompressed)
3068 {
3069 	kern_return_t error        = KERN_SUCCESS;
3070 	mach_vm_address_t out_addr = 0;
3071 	uint64_t abs_time = 0, abs_time_end = 0;
3072 	uint64_t system_state_flags = 0;
3073 	task_t task = TASK_NULL;
3074 	mach_timebase_info_data_t timebase = {0, 0};
3075 	uint32_t length_to_copy = 0, tmp32 = 0;
3076 	abs_time = mach_absolute_time();
3077 	uint64_t last_task_start_time = 0;
3078 
3079 #if STACKSHOT_COLLECTS_LATENCY_INFO
3080 	struct stackshot_latency_collection latency_info;
3081 #endif
3082 
3083 #if SCHED_HYGIENE_DEBUG && CONFIG_PERVASIVE_CPI
3084 	uint64_t stackshot_begin_cpu_cycle_count = 0;
3085 
3086 	if (!panic_stackshot) {
3087 		stackshot_begin_cpu_cycle_count = mt_cur_cpu_cycles();
3088 	}
3089 #endif
3090 
3091 #if STACKSHOT_COLLECTS_LATENCY_INFO
3092 	collect_latency_info = trace_flags & STACKSHOT_DISABLE_LATENCY_INFO ? false : true;
3093 #endif
3094 
3095 	/* process the flags */
3096 	bool collect_delta_stackshot = ((trace_flags & STACKSHOT_COLLECT_DELTA_SNAPSHOT) != 0);
3097 	bool use_fault_path          = ((trace_flags & (STACKSHOT_ENABLE_UUID_FAULTING | STACKSHOT_ENABLE_BT_FAULTING)) != 0);
3098 	stack_enable_faulting = (trace_flags & (STACKSHOT_ENABLE_BT_FAULTING));
3099 
3100 	/* Currently we only support returning explicit KEXT load info on fileset kernels */
3101 	kc_format_t primary_kc_type = KCFormatUnknown;
3102 	if (PE_get_primary_kc_format(&primary_kc_type) && (primary_kc_type != KCFormatFileset)) {
3103 		trace_flags &= ~(STACKSHOT_SAVE_KEXT_LOADINFO);
3104 	}
3105 
3106 	struct stackshot_context ctx = {};
3107 	ctx.trace_flags = trace_flags;
3108 	ctx.pid = pid;
3109 	ctx.include_drivers = (pid == 0 && (trace_flags & STACKSHOT_INCLUDE_DRIVER_THREADS_IN_KERNEL) != 0);
3110 
3111 	if (use_fault_path) {
3112 		fault_stats.sfs_pages_faulted_in = 0;
3113 		fault_stats.sfs_time_spent_faulting = 0;
3114 		fault_stats.sfs_stopped_faulting = (uint8_t) FALSE;
3115 	}
3116 
3117 	if (sizeof(void *) == 8) {
3118 		system_state_flags |= kKernel64_p;
3119 	}
3120 
3121 	if (stackshot_kcdata_p == NULL || pBytesTraced == NULL) {
3122 		error = KERN_INVALID_ARGUMENT;
3123 		goto error_exit;
3124 	}
3125 
3126 	_stackshot_validation_reset();
3127 	stackshot_plh_setup(stackshot_kcdata_p); /* set up port label hash */
3128 
3129 	/* setup mach_absolute_time and timebase info -- copy out in some cases and needed to convert since_timestamp to seconds for proc start time */
3130 	clock_timebase_info(&timebase);
3131 
3132 	/* begin saving data into the buffer */
3133 	*pBytesTraced = 0;
3134 	if (pBytesUncompressed) {
3135 		*pBytesUncompressed = 0;
3136 	}
3137 	kcd_exit_on_error(kcdata_add_uint64_with_description(stackshot_kcdata_p, trace_flags, "stackshot_in_flags"));
3138 	kcd_exit_on_error(kcdata_add_uint32_with_description(stackshot_kcdata_p, (uint32_t)pid, "stackshot_in_pid"));
3139 	kcd_exit_on_error(kcdata_add_uint64_with_description(stackshot_kcdata_p, system_state_flags, "system_state_flags"));
3140 	if (trace_flags & STACKSHOT_PAGE_TABLES) {
3141 		kcd_exit_on_error(kcdata_add_uint32_with_description(stackshot_kcdata_p, stack_snapshot_pagetable_mask, "stackshot_pagetable_mask"));
3142 	}
3143 	if (stackshot_initial_estimate != 0) {
3144 		kcd_exit_on_error(kcdata_add_uint32_with_description(stackshot_kcdata_p, stackshot_initial_estimate, "stackshot_size_estimate"));
3145 		kcd_exit_on_error(kcdata_add_uint32_with_description(stackshot_kcdata_p, stackshot_initial_estimate_adj, "stackshot_size_estimate_adj"));
3146 	}
3147 
3148 #if STACKSHOT_COLLECTS_LATENCY_INFO
3149 	latency_info.setup_latency = mach_absolute_time();
3150 #endif /* STACKSHOT_COLLECTS_LATENCY_INFO */
3151 
3152 #if CONFIG_JETSAM
3153 	tmp32 = memorystatus_get_pressure_status_kdp();
3154 	kcd_exit_on_error(kcdata_push_data(stackshot_kcdata_p, STACKSHOT_KCTYPE_JETSAM_LEVEL, sizeof(uint32_t), &tmp32));
3155 #endif
3156 
3157 	if (!collect_delta_stackshot) {
3158 		tmp32 = THREAD_POLICY_INTERNAL_STRUCT_VERSION;
3159 		kcd_exit_on_error(kcdata_push_data(stackshot_kcdata_p, STACKSHOT_KCTYPE_THREAD_POLICY_VERSION, sizeof(uint32_t), &tmp32));
3160 
3161 		tmp32 = PAGE_SIZE;
3162 		kcd_exit_on_error(kcdata_push_data(stackshot_kcdata_p, STACKSHOT_KCTYPE_KERN_PAGE_SIZE, sizeof(uint32_t), &tmp32));
3163 
3164 		/* save boot-args and osversion string */
3165 		length_to_copy =  MIN((uint32_t)(strlen(version) + 1), OSVERSIZE);
3166 		kcd_exit_on_error(kcdata_push_data(stackshot_kcdata_p, STACKSHOT_KCTYPE_OSVERSION, length_to_copy, (const void *)version));
3167 
3168 
3169 		length_to_copy =  MIN((uint32_t)(strlen(PE_boot_args()) + 1), BOOT_LINE_LENGTH);
3170 		kcd_exit_on_error(kcdata_push_data(stackshot_kcdata_p, STACKSHOT_KCTYPE_BOOTARGS, length_to_copy, PE_boot_args()));
3171 
3172 		kcd_exit_on_error(kcdata_push_data(stackshot_kcdata_p, KCDATA_TYPE_TIMEBASE, sizeof(timebase), &timebase));
3173 	} else {
3174 		kcd_exit_on_error(kcdata_push_data(stackshot_kcdata_p, STACKSHOT_KCTYPE_DELTA_SINCE_TIMESTAMP, sizeof(uint64_t), &stack_snapshot_delta_since_timestamp));
3175 	}
3176 
3177 	kcd_exit_on_error(kcdata_push_data(stackshot_kcdata_p, KCDATA_TYPE_MACH_ABSOLUTE_TIME, sizeof(uint64_t), &abs_time));
3178 
3179 	kcd_exit_on_error(kcdata_push_data(stackshot_kcdata_p, KCDATA_TYPE_USECS_SINCE_EPOCH, sizeof(uint64_t), &stackshot_microsecs));
3180 
3181 	kcd_exit_on_error(kdp_stackshot_shared_regions(trace_flags));
3182 
3183 	/* Add requested information first */
3184 	if (trace_flags & STACKSHOT_GET_GLOBAL_MEM_STATS) {
3185 		struct mem_and_io_snapshot mais = {0};
3186 		kdp_mem_and_io_snapshot(&mais);
3187 		kcd_exit_on_error(kcdata_push_data(stackshot_kcdata_p, STACKSHOT_KCTYPE_GLOBAL_MEM_STATS, sizeof(mais), &mais));
3188 	}
3189 
3190 #if CONFIG_THREAD_GROUPS
3191 	struct thread_group_snapshot_v3 *thread_groups = NULL;
3192 	int num_thread_groups = 0;
3193 
3194 #if SCHED_HYGIENE_DEBUG && CONFIG_PERVASIVE_CPI
3195 	uint64_t thread_group_begin_cpu_cycle_count = 0;
3196 
3197 	if (!panic_stackshot && (trace_flags & STACKSHOT_THREAD_GROUP)) {
3198 		thread_group_begin_cpu_cycle_count = mt_cur_cpu_cycles();
3199 	}
3200 #endif
3201 
3202 
3203 	/* Iterate over thread group names */
3204 	if (trace_flags & STACKSHOT_THREAD_GROUP) {
3205 		/* Variable size array - better not have it on the stack. */
3206 		kcdata_compression_window_open(stackshot_kcdata_p);
3207 
3208 		if (thread_group_iterate_stackshot(stackshot_thread_group_count, &num_thread_groups) != KERN_SUCCESS) {
3209 			trace_flags &= ~(STACKSHOT_THREAD_GROUP);
3210 		}
3211 
3212 		if (num_thread_groups > 0) {
3213 			kcd_exit_on_error(kcdata_get_memory_addr_for_array(stackshot_kcdata_p, STACKSHOT_KCTYPE_THREAD_GROUP_SNAPSHOT, sizeof(struct thread_group_snapshot_v3), num_thread_groups, &out_addr));
3214 			thread_groups = (struct thread_group_snapshot_v3 *)out_addr;
3215 		}
3216 
3217 		if (thread_group_iterate_stackshot(stackshot_thread_group_snapshot, thread_groups) != KERN_SUCCESS) {
3218 			error = KERN_FAILURE;
3219 			goto error_exit;
3220 		}
3221 
3222 		kcd_exit_on_error(kcdata_compression_window_close(stackshot_kcdata_p));
3223 	}
3224 
3225 #if SCHED_HYGIENE_DEBUG && CONFIG_PERVASIVE_CPI
3226 	if (!panic_stackshot && (thread_group_begin_cpu_cycle_count != 0)) {
3227 		kcd_exit_on_error(kcdata_add_uint64_with_description(stackshot_kcdata_p, (mt_cur_cpu_cycles() - thread_group_begin_cpu_cycle_count),
3228 		    "thread_groups_cpu_cycle_count"));
3229 	}
3230 #endif
3231 #else
3232 	trace_flags &= ~(STACKSHOT_THREAD_GROUP);
3233 #endif /* CONFIG_THREAD_GROUPS */
3234 
3235 
3236 #if STACKSHOT_COLLECTS_LATENCY_INFO
3237 	latency_info.setup_latency = mach_absolute_time() - latency_info.setup_latency;
3238 	latency_info.total_task_iteration_latency = mach_absolute_time();
3239 #endif /* STACKSHOT_COLLECTS_LATENCY_INFO */
3240 
3241 	/* Iterate over tasks */
3242 	queue_iterate(&tasks, task, task_t, tasks)
3243 	{
3244 		if (collect_delta_stackshot) {
3245 			uint64_t abstime;
3246 			proc_starttime_kdp(get_bsdtask_info(task), NULL, NULL, &abstime);
3247 
3248 			if (abstime > last_task_start_time) {
3249 				last_task_start_time = abstime;
3250 			}
3251 		}
3252 
3253 		error = kdp_stackshot_record_task(&ctx, task);
3254 		if (error) {
3255 			goto error_exit;
3256 		}
3257 	}
3258 
3259 
3260 #if STACKSHOT_COLLECTS_LATENCY_INFO
3261 	latency_info.total_task_iteration_latency = mach_absolute_time() - latency_info.total_task_iteration_latency;
3262 #endif /* STACKSHOT_COLLECTS_LATENCY_INFO */
3263 
3264 #if CONFIG_COALITIONS
3265 	/* Don't collect jetsam coalition snapshots in delta stackshots - these don't change */
3266 	if (!collect_delta_stackshot || (last_task_start_time > stack_snapshot_delta_since_timestamp)) {
3267 		int num_coalitions = 0;
3268 		struct jetsam_coalition_snapshot *coalitions = NULL;
3269 
3270 #if SCHED_HYGIENE_DEBUG && CONFIG_PERVASIVE_CPI
3271 		uint64_t coalition_begin_cpu_cycle_count = 0;
3272 
3273 		if (!panic_stackshot && (trace_flags & STACKSHOT_SAVE_JETSAM_COALITIONS)) {
3274 			coalition_begin_cpu_cycle_count = mt_cur_cpu_cycles();
3275 		}
3276 #endif /* SCHED_HYGIENE_DEBUG && CONFIG_PERVASIVE_CPI */
3277 
3278 		/* Iterate over coalitions */
3279 		if (trace_flags & STACKSHOT_SAVE_JETSAM_COALITIONS) {
3280 			if (coalition_iterate_stackshot(stackshot_coalition_jetsam_count, &num_coalitions, COALITION_TYPE_JETSAM) != KERN_SUCCESS) {
3281 				trace_flags &= ~(STACKSHOT_SAVE_JETSAM_COALITIONS);
3282 			}
3283 		}
3284 		if (trace_flags & STACKSHOT_SAVE_JETSAM_COALITIONS) {
3285 			if (num_coalitions > 0) {
3286 				/* Variable size array - better not have it on the stack. */
3287 				kcdata_compression_window_open(stackshot_kcdata_p);
3288 				kcd_exit_on_error(kcdata_get_memory_addr_for_array(stackshot_kcdata_p, STACKSHOT_KCTYPE_JETSAM_COALITION_SNAPSHOT, sizeof(struct jetsam_coalition_snapshot), num_coalitions, &out_addr));
3289 				coalitions = (struct jetsam_coalition_snapshot*)out_addr;
3290 
3291 				if (coalition_iterate_stackshot(stackshot_coalition_jetsam_snapshot, coalitions, COALITION_TYPE_JETSAM) != KERN_SUCCESS) {
3292 					error = KERN_FAILURE;
3293 					goto error_exit;
3294 				}
3295 
3296 				kcd_exit_on_error(kcdata_compression_window_close(stackshot_kcdata_p));
3297 			}
3298 		}
3299 #if SCHED_HYGIENE_DEBUG && CONFIG_PERVASIVE_CPI
3300 		if (!panic_stackshot && (coalition_begin_cpu_cycle_count != 0)) {
3301 			kcd_exit_on_error(kcdata_add_uint64_with_description(stackshot_kcdata_p, (mt_cur_cpu_cycles() - coalition_begin_cpu_cycle_count),
3302 			    "coalitions_cpu_cycle_count"));
3303 		}
3304 #endif /* SCHED_HYGIENE_DEBUG && CONFIG_PERVASIVE_CPI */
3305 	}
3306 #else
3307 	trace_flags &= ~(STACKSHOT_SAVE_JETSAM_COALITIONS);
3308 #endif /* CONFIG_COALITIONS */
3309 
3310 #if STACKSHOT_COLLECTS_LATENCY_INFO
3311 	latency_info.total_terminated_task_iteration_latency = mach_absolute_time();
3312 #endif /* STACKSHOT_COLLECTS_LATENCY_INFO */
3313 
3314 	/*
3315 	 * Iterate over the tasks in the terminated tasks list. We only inspect
3316 	 * tasks that have a valid bsd_info pointer. The check for task transition
3317 	 * like past P_LPEXIT during proc_exit() is now checked for inside the
3318 	 * kdp_stackshot_record_task(), and then a safer and minimal
3319 	 * transitioning_task_snapshot struct is collected via
3320 	 * kcdata_record_transitioning_task_snapshot()
3321 	 */
3322 	queue_iterate(&terminated_tasks, task, task_t, tasks)
3323 	{
3324 		error = kdp_stackshot_record_task(&ctx, task);
3325 		if (error) {
3326 			goto error_exit;
3327 		}
3328 	}
3329 #if DEVELOPMENT || DEBUG
3330 	kcd_exit_on_error(kdp_stackshot_plh_stats());
3331 #endif /* DEVELOPMENT || DEBUG */
3332 
3333 #if STACKSHOT_COLLECTS_LATENCY_INFO
3334 	latency_info.total_terminated_task_iteration_latency = mach_absolute_time() - latency_info.total_terminated_task_iteration_latency;
3335 #endif /* STACKSHOT_COLLECTS_LATENCY_INFO */
3336 
3337 	if (use_fault_path) {
3338 		kcdata_push_data(stackshot_kcdata_p, STACKSHOT_KCTYPE_STACKSHOT_FAULT_STATS,
3339 		    sizeof(struct stackshot_fault_stats), &fault_stats);
3340 	}
3341 
3342 #if STACKSHOT_COLLECTS_LATENCY_INFO
3343 	if (collect_latency_info) {
3344 		latency_info.latency_version = 1;
3345 		kcd_exit_on_error(kcdata_push_data(stackshot_kcdata_p, STACKSHOT_KCTYPE_LATENCY_INFO, sizeof(latency_info), &latency_info));
3346 	}
3347 #endif /* STACKSHOT_COLLECTS_LATENCY_INFO */
3348 
3349 	/* update timestamp of the stackshot */
3350 	abs_time_end = mach_absolute_time();
3351 	struct stackshot_duration_v2 stackshot_duration = {
3352 		.stackshot_duration         = (abs_time_end - abs_time),
3353 		.stackshot_duration_outer   = 0,
3354 		.stackshot_duration_prior   = stackshot_duration_prior_abs,
3355 	};
3356 
3357 	if ((trace_flags & STACKSHOT_DO_COMPRESS) == 0) {
3358 		kcd_exit_on_error(kcdata_get_memory_addr(stackshot_kcdata_p, STACKSHOT_KCTYPE_STACKSHOT_DURATION,
3359 		    sizeof(struct stackshot_duration_v2), &out_addr));
3360 		struct stackshot_duration_v2 *duration_p = (void *) out_addr;
3361 		kdp_memcpy(duration_p, &stackshot_duration, sizeof(*duration_p));
3362 		stackshot_duration_outer                   = (unaligned_u64 *)&duration_p->stackshot_duration_outer;
3363 	} else {
3364 		kcd_exit_on_error(kcdata_push_data(stackshot_kcdata_p, STACKSHOT_KCTYPE_STACKSHOT_DURATION, sizeof(stackshot_duration), &stackshot_duration));
3365 		stackshot_duration_outer = NULL;
3366 	}
3367 
3368 #if SCHED_HYGIENE_DEBUG && CONFIG_PERVASIVE_CPI
3369 	if (!panic_stackshot) {
3370 		kcd_exit_on_error(kcdata_add_uint64_with_description(stackshot_kcdata_p, (mt_cur_cpu_cycles() - stackshot_begin_cpu_cycle_count),
3371 		    "stackshot_total_cpu_cycle_cnt"));
3372 	}
3373 #endif
3374 
3375 	kcd_finalize_compression(stackshot_kcdata_p);
3376 	kcd_exit_on_error(kcdata_add_uint64_with_description(stackshot_kcdata_p, trace_flags, "stackshot_out_flags"));
3377 
3378 	kcd_exit_on_error(kcdata_write_buffer_end(stackshot_kcdata_p));
3379 
3380 	/*  === END of populating stackshot data === */
3381 
3382 	*pBytesTraced = (uint32_t) kcdata_memory_get_used_bytes(stackshot_kcdata_p);
3383 	*pBytesUncompressed = (uint32_t) kcdata_memory_get_uncompressed_bytes(stackshot_kcdata_p);
3384 
3385 error_exit:;
3386 
3387 #if SCHED_HYGIENE_DEBUG
3388 	bool disable_interrupts_masked_check = kern_feature_override(
3389 		KF_INTERRUPT_MASKED_DEBUG_STACKSHOT_OVRD) ||
3390 	    (trace_flags & STACKSHOT_DO_COMPRESS) != 0;
3391 
3392 #if STACKSHOT_INTERRUPTS_MASKED_CHECK_DISABLED
3393 	disable_interrupts_masked_check = true;
3394 #endif /* STACKSHOT_INTERRUPTS_MASKED_CHECK_DISABLED */
3395 
3396 	if (disable_interrupts_masked_check) {
3397 		ml_spin_debug_clear_self();
3398 	}
3399 
3400 	if (!panic_stackshot && interrupt_masked_debug_mode) {
3401 		/*
3402 		 * Try to catch instances where stackshot takes too long BEFORE returning from
3403 		 * the debugger
3404 		 */
3405 		ml_handle_stackshot_interrupt_disabled_duration(current_thread());
3406 	}
3407 #endif /* SCHED_HYGIENE_DEBUG */
3408 	stackshot_plh_reset();
3409 	stack_enable_faulting = FALSE;
3410 
3411 	return error;
3412 }
3413 
3414 static uint64_t
proc_was_throttled_from_task(task_t task)3415 proc_was_throttled_from_task(task_t task)
3416 {
3417 	uint64_t was_throttled = 0;
3418 	void *bsd_info = get_bsdtask_info(task);
3419 
3420 	if (bsd_info) {
3421 		was_throttled = proc_was_throttled(bsd_info);
3422 	}
3423 
3424 	return was_throttled;
3425 }
3426 
3427 static uint64_t
proc_did_throttle_from_task(task_t task)3428 proc_did_throttle_from_task(task_t task)
3429 {
3430 	uint64_t did_throttle = 0;
3431 	void *bsd_info = get_bsdtask_info(task);
3432 
3433 	if (bsd_info) {
3434 		did_throttle = proc_did_throttle(bsd_info);
3435 	}
3436 
3437 	return did_throttle;
3438 }
3439 
3440 static void
kdp_mem_and_io_snapshot(struct mem_and_io_snapshot * memio_snap)3441 kdp_mem_and_io_snapshot(struct mem_and_io_snapshot *memio_snap)
3442 {
3443 	unsigned int pages_reclaimed;
3444 	unsigned int pages_wanted;
3445 	kern_return_t kErr;
3446 
3447 	uint64_t compressions = 0;
3448 	uint64_t decompressions = 0;
3449 
3450 	compressions = counter_load(&vm_statistics_compressions);
3451 	decompressions = counter_load(&vm_statistics_decompressions);
3452 
3453 	memio_snap->snapshot_magic = STACKSHOT_MEM_AND_IO_SNAPSHOT_MAGIC;
3454 	memio_snap->free_pages = vm_page_free_count;
3455 	memio_snap->active_pages = vm_page_active_count;
3456 	memio_snap->inactive_pages = vm_page_inactive_count;
3457 	memio_snap->purgeable_pages = vm_page_purgeable_count;
3458 	memio_snap->wired_pages = vm_page_wire_count;
3459 	memio_snap->speculative_pages = vm_page_speculative_count;
3460 	memio_snap->throttled_pages = vm_page_throttled_count;
3461 	memio_snap->busy_buffer_count = count_busy_buffers();
3462 	memio_snap->filebacked_pages = vm_page_pageable_external_count;
3463 	memio_snap->compressions = (uint32_t)compressions;
3464 	memio_snap->decompressions = (uint32_t)decompressions;
3465 	memio_snap->compressor_size = VM_PAGE_COMPRESSOR_COUNT;
3466 	kErr = mach_vm_pressure_monitor(FALSE, VM_PRESSURE_TIME_WINDOW, &pages_reclaimed, &pages_wanted);
3467 
3468 	if (!kErr) {
3469 		memio_snap->pages_wanted = (uint32_t)pages_wanted;
3470 		memio_snap->pages_reclaimed = (uint32_t)pages_reclaimed;
3471 		memio_snap->pages_wanted_reclaimed_valid = 1;
3472 	} else {
3473 		memio_snap->pages_wanted = 0;
3474 		memio_snap->pages_reclaimed = 0;
3475 		memio_snap->pages_wanted_reclaimed_valid = 0;
3476 	}
3477 }
3478 
3479 static vm_offset_t
stackshot_find_phys(vm_map_t map,vm_offset_t target_addr,kdp_fault_flags_t fault_flags,uint32_t * kdp_fault_result_flags)3480 stackshot_find_phys(vm_map_t map, vm_offset_t target_addr, kdp_fault_flags_t fault_flags, uint32_t *kdp_fault_result_flags)
3481 {
3482 	vm_offset_t result;
3483 	struct kdp_fault_result fault_results = {0};
3484 	if (fault_stats.sfs_stopped_faulting) {
3485 		fault_flags &= ~KDP_FAULT_FLAGS_ENABLE_FAULTING;
3486 	}
3487 
3488 	result = kdp_find_phys(map, target_addr, fault_flags, &fault_results);
3489 
3490 	if ((fault_results.flags & KDP_FAULT_RESULT_TRIED_FAULT) || (fault_results.flags & KDP_FAULT_RESULT_FAULTED_IN)) {
3491 		fault_stats.sfs_time_spent_faulting += fault_results.time_spent_faulting;
3492 
3493 		if ((fault_stats.sfs_time_spent_faulting >= fault_stats.sfs_system_max_fault_time) && !panic_stackshot) {
3494 			fault_stats.sfs_stopped_faulting = (uint8_t) TRUE;
3495 		}
3496 	}
3497 
3498 	if (fault_results.flags & KDP_FAULT_RESULT_FAULTED_IN) {
3499 		fault_stats.sfs_pages_faulted_in++;
3500 	}
3501 
3502 	if (kdp_fault_result_flags) {
3503 		*kdp_fault_result_flags = fault_results.flags;
3504 	}
3505 
3506 	return result;
3507 }
3508 
3509 /*
3510  * Wrappers around kdp_generic_copyin, kdp_generic_copyin_word, kdp_generic_copyin_string that use stackshot_find_phys
3511  * in order to:
3512  *   1. collect statistics on the number of pages faulted in
3513  *   2. stop faulting if the time spent faulting has exceeded the limit.
3514  */
3515 static boolean_t
stackshot_copyin(vm_map_t map,uint64_t uaddr,void * dest,size_t size,boolean_t try_fault,kdp_fault_result_flags_t * kdp_fault_result_flags)3516 stackshot_copyin(vm_map_t map, uint64_t uaddr, void *dest, size_t size, boolean_t try_fault, kdp_fault_result_flags_t *kdp_fault_result_flags)
3517 {
3518 	kdp_fault_flags_t fault_flags = KDP_FAULT_FLAGS_NONE;
3519 	if (try_fault) {
3520 		fault_flags |= KDP_FAULT_FLAGS_ENABLE_FAULTING;
3521 	}
3522 	return kdp_generic_copyin(map, uaddr, dest, size, fault_flags, (find_phys_fn_t)stackshot_find_phys, kdp_fault_result_flags) == KERN_SUCCESS;
3523 }
3524 static boolean_t
stackshot_copyin_word(task_t task,uint64_t addr,uint64_t * result,boolean_t try_fault,kdp_fault_result_flags_t * kdp_fault_result_flags)3525 stackshot_copyin_word(task_t task, uint64_t addr, uint64_t *result, boolean_t try_fault, kdp_fault_result_flags_t *kdp_fault_result_flags)
3526 {
3527 	kdp_fault_flags_t fault_flags = KDP_FAULT_FLAGS_NONE;
3528 	if (try_fault) {
3529 		fault_flags |= KDP_FAULT_FLAGS_ENABLE_FAULTING;
3530 	}
3531 	return kdp_generic_copyin_word(task, addr, result, fault_flags, (find_phys_fn_t)stackshot_find_phys, kdp_fault_result_flags) == KERN_SUCCESS;
3532 }
3533 static int
stackshot_copyin_string(task_t task,uint64_t addr,char * buf,int buf_sz,boolean_t try_fault,kdp_fault_result_flags_t * kdp_fault_result_flags)3534 stackshot_copyin_string(task_t task, uint64_t addr, char *buf, int buf_sz, boolean_t try_fault, kdp_fault_result_flags_t *kdp_fault_result_flags)
3535 {
3536 	kdp_fault_flags_t fault_flags = KDP_FAULT_FLAGS_NONE;
3537 	if (try_fault) {
3538 		fault_flags |= KDP_FAULT_FLAGS_ENABLE_FAULTING;
3539 	}
3540 	return kdp_generic_copyin_string(task, addr, buf, buf_sz, fault_flags, (find_phys_fn_t)stackshot_find_phys, kdp_fault_result_flags);
3541 }
3542 
3543 kern_return_t
do_stackshot(void * context)3544 do_stackshot(void *context)
3545 {
3546 #pragma unused(context)
3547 	kdp_snapshot++;
3548 
3549 	stack_snapshot_ret = kdp_stackshot_kcdata_format(stack_snapshot_pid,
3550 	    stack_snapshot_flags,
3551 	    &stack_snapshot_bytes_traced,
3552 	    &stack_snapshot_bytes_uncompressed);
3553 
3554 	if (stack_snapshot_ret == KERN_SUCCESS) {
3555 		/* releases and zeros and kcdata_end_alloc()s done */
3556 		kcdata_finish(stackshot_kcdata_p);
3557 	}
3558 
3559 	kdp_snapshot--;
3560 	return stack_snapshot_ret;
3561 }
3562 
3563 boolean_t
stackshot_thread_is_idle_worker_unsafe(thread_t thread)3564 stackshot_thread_is_idle_worker_unsafe(thread_t thread)
3565 {
3566 	/* When the pthread kext puts a worker thread to sleep, it will
3567 	 * set kThreadWaitParkedWorkQueue in the block_hint of the thread
3568 	 * struct. See parkit() in kern/kern_support.c in libpthread.
3569 	 */
3570 	return (thread->state & TH_WAIT) &&
3571 	       (thread->block_hint == kThreadWaitParkedWorkQueue);
3572 }
3573 
3574 #if CONFIG_COALITIONS
3575 static void
stackshot_coalition_jetsam_count(void * arg,int i,coalition_t coal)3576 stackshot_coalition_jetsam_count(void *arg, int i, coalition_t coal)
3577 {
3578 #pragma unused(i, coal)
3579 	unsigned int *coalition_count = (unsigned int*)arg;
3580 	(*coalition_count)++;
3581 }
3582 
3583 static void
stackshot_coalition_jetsam_snapshot(void * arg,int i,coalition_t coal)3584 stackshot_coalition_jetsam_snapshot(void *arg, int i, coalition_t coal)
3585 {
3586 	if (coalition_type(coal) != COALITION_TYPE_JETSAM) {
3587 		return;
3588 	}
3589 
3590 	struct jetsam_coalition_snapshot *coalitions = (struct jetsam_coalition_snapshot*)arg;
3591 	struct jetsam_coalition_snapshot *jcs = &coalitions[i];
3592 	task_t leader = TASK_NULL;
3593 	jcs->jcs_id = coalition_id(coal);
3594 	jcs->jcs_flags = 0;
3595 	jcs->jcs_thread_group = 0;
3596 
3597 	if (coalition_term_requested(coal)) {
3598 		jcs->jcs_flags |= kCoalitionTermRequested;
3599 	}
3600 	if (coalition_is_terminated(coal)) {
3601 		jcs->jcs_flags |= kCoalitionTerminated;
3602 	}
3603 	if (coalition_is_reaped(coal)) {
3604 		jcs->jcs_flags |= kCoalitionReaped;
3605 	}
3606 	if (coalition_is_privileged(coal)) {
3607 		jcs->jcs_flags |= kCoalitionPrivileged;
3608 	}
3609 
3610 #if CONFIG_THREAD_GROUPS
3611 	struct thread_group *thread_group = kdp_coalition_get_thread_group(coal);
3612 	if (thread_group) {
3613 		jcs->jcs_thread_group = thread_group_get_id(thread_group);
3614 	}
3615 #endif /* CONFIG_THREAD_GROUPS */
3616 
3617 	leader = kdp_coalition_get_leader(coal);
3618 	if (leader) {
3619 		jcs->jcs_leader_task_uniqueid = get_task_uniqueid(leader);
3620 	} else {
3621 		jcs->jcs_leader_task_uniqueid = 0;
3622 	}
3623 }
3624 #endif /* CONFIG_COALITIONS */
3625 
3626 #if CONFIG_THREAD_GROUPS
3627 static void
stackshot_thread_group_count(void * arg,int i,struct thread_group * tg)3628 stackshot_thread_group_count(void *arg, int i, struct thread_group *tg)
3629 {
3630 #pragma unused(i, tg)
3631 	unsigned int *n = (unsigned int*)arg;
3632 	(*n)++;
3633 }
3634 
3635 static void
stackshot_thread_group_snapshot(void * arg,int i,struct thread_group * tg)3636 stackshot_thread_group_snapshot(void *arg, int i, struct thread_group *tg)
3637 {
3638 	struct thread_group_snapshot_v3 *thread_groups = arg;
3639 	struct thread_group_snapshot_v3 *tgs = &thread_groups[i];
3640 	const char *name = thread_group_get_name(tg);
3641 	uint32_t flags = thread_group_get_flags(tg);
3642 	tgs->tgs_id = thread_group_get_id(tg);
3643 	static_assert(THREAD_GROUP_MAXNAME > sizeof(tgs->tgs_name));
3644 	kdp_memcpy(tgs->tgs_name, name, sizeof(tgs->tgs_name));
3645 	kdp_memcpy(tgs->tgs_name_cont, name + sizeof(tgs->tgs_name),
3646 	    sizeof(tgs->tgs_name_cont));
3647 	tgs->tgs_flags =
3648 	    ((flags & THREAD_GROUP_FLAGS_EFFICIENT)     ? kThreadGroupEfficient     : 0) |
3649 	    ((flags & THREAD_GROUP_FLAGS_APPLICATION)   ? kThreadGroupApplication   : 0) |
3650 	    ((flags & THREAD_GROUP_FLAGS_CRITICAL)      ? kThreadGroupCritical      : 0) |
3651 	    ((flags & THREAD_GROUP_FLAGS_BEST_EFFORT)   ? kThreadGroupBestEffort    : 0) |
3652 	    ((flags & THREAD_GROUP_FLAGS_UI_APP)        ? kThreadGroupUIApplication : 0) |
3653 	    ((flags & THREAD_GROUP_FLAGS_MANAGED)       ? kThreadGroupManaged       : 0) |
3654 	    ((flags & THREAD_GROUP_FLAGS_STRICT_TIMERS) ? kThreadGroupStrictTimers  : 0) |
3655 	    0;
3656 }
3657 #endif /* CONFIG_THREAD_GROUPS */
3658 
3659 /* Determine if a thread has waitinfo that stackshot can provide */
3660 static int
stackshot_thread_has_valid_waitinfo(thread_t thread)3661 stackshot_thread_has_valid_waitinfo(thread_t thread)
3662 {
3663 	if (!(thread->state & TH_WAIT)) {
3664 		return 0;
3665 	}
3666 
3667 	switch (thread->block_hint) {
3668 	// If set to None or is a parked work queue, ignore it
3669 	case kThreadWaitParkedWorkQueue:
3670 	case kThreadWaitNone:
3671 		return 0;
3672 	// There is a short window where the pthread kext removes a thread
3673 	// from its ksyn wait queue before waking the thread up
3674 	case kThreadWaitPThreadMutex:
3675 	case kThreadWaitPThreadRWLockRead:
3676 	case kThreadWaitPThreadRWLockWrite:
3677 	case kThreadWaitPThreadCondVar:
3678 		return kdp_pthread_get_thread_kwq(thread) != NULL;
3679 	// All other cases are valid block hints if in a wait state
3680 	default:
3681 		return 1;
3682 	}
3683 }
3684 
3685 /* Determine if a thread has turnstileinfo that stackshot can provide */
3686 static int
stackshot_thread_has_valid_turnstileinfo(thread_t thread)3687 stackshot_thread_has_valid_turnstileinfo(thread_t thread)
3688 {
3689 	struct turnstile *ts = thread_get_waiting_turnstile(thread);
3690 
3691 	return stackshot_thread_has_valid_waitinfo(thread) &&
3692 	       ts != TURNSTILE_NULL;
3693 }
3694 
3695 static void
stackshot_thread_turnstileinfo(thread_t thread,thread_turnstileinfo_v2_t * tsinfo)3696 stackshot_thread_turnstileinfo(thread_t thread, thread_turnstileinfo_v2_t *tsinfo)
3697 {
3698 	struct turnstile *ts;
3699 	struct ipc_service_port_label *ispl = NULL;
3700 
3701 	/* acquire turnstile information and store it in the stackshot */
3702 	ts = thread_get_waiting_turnstile(thread);
3703 	tsinfo->waiter = thread_tid(thread);
3704 	kdp_turnstile_fill_tsinfo(ts, tsinfo, &ispl);
3705 	tsinfo->portlabel_id = stackshot_plh_lookup(ispl,
3706 	    (tsinfo->turnstile_flags & STACKSHOT_TURNSTILE_STATUS_SENDPORT) ? STACKSHOT_PLH_LOOKUP_SEND :
3707 	    (tsinfo->turnstile_flags & STACKSHOT_TURNSTILE_STATUS_RECEIVEPORT) ? STACKSHOT_PLH_LOOKUP_RECEIVE :
3708 	    STACKSHOT_PLH_LOOKUP_UNKNOWN);
3709 }
3710 
3711 static void
stackshot_thread_wait_owner_info(thread_t thread,thread_waitinfo_v2_t * waitinfo)3712 stackshot_thread_wait_owner_info(thread_t thread, thread_waitinfo_v2_t *waitinfo)
3713 {
3714 	thread_waitinfo_t *waitinfo_v1 = (thread_waitinfo_t *)waitinfo;
3715 	struct ipc_service_port_label *ispl = NULL;
3716 
3717 	waitinfo->waiter        = thread_tid(thread);
3718 	waitinfo->wait_type     = thread->block_hint;
3719 	waitinfo->wait_flags    = 0;
3720 
3721 	switch (waitinfo->wait_type) {
3722 	case kThreadWaitKernelMutex:
3723 		kdp_lck_mtx_find_owner(thread->waitq.wq_q, thread->wait_event, waitinfo_v1);
3724 		break;
3725 	case kThreadWaitPortReceive:
3726 		kdp_mqueue_recv_find_owner(thread->waitq.wq_q, thread->wait_event, waitinfo, &ispl);
3727 		waitinfo->portlabel_id  = stackshot_plh_lookup(ispl, STACKSHOT_PLH_LOOKUP_RECEIVE);
3728 		break;
3729 	case kThreadWaitPortSend:
3730 		kdp_mqueue_send_find_owner(thread->waitq.wq_q, thread->wait_event, waitinfo, &ispl);
3731 		waitinfo->portlabel_id  = stackshot_plh_lookup(ispl, STACKSHOT_PLH_LOOKUP_SEND);
3732 		break;
3733 	case kThreadWaitSemaphore:
3734 		kdp_sema_find_owner(thread->waitq.wq_q, thread->wait_event, waitinfo_v1);
3735 		break;
3736 	case kThreadWaitUserLock:
3737 		kdp_ulock_find_owner(thread->waitq.wq_q, thread->wait_event, waitinfo_v1);
3738 		break;
3739 	case kThreadWaitKernelRWLockRead:
3740 	case kThreadWaitKernelRWLockWrite:
3741 	case kThreadWaitKernelRWLockUpgrade:
3742 		kdp_rwlck_find_owner(thread->waitq.wq_q, thread->wait_event, waitinfo_v1);
3743 		break;
3744 	case kThreadWaitPThreadMutex:
3745 	case kThreadWaitPThreadRWLockRead:
3746 	case kThreadWaitPThreadRWLockWrite:
3747 	case kThreadWaitPThreadCondVar:
3748 		kdp_pthread_find_owner(thread, waitinfo_v1);
3749 		break;
3750 	case kThreadWaitWorkloopSyncWait:
3751 		kdp_workloop_sync_wait_find_owner(thread, thread->wait_event, waitinfo_v1);
3752 		break;
3753 	case kThreadWaitOnProcess:
3754 		kdp_wait4_find_process(thread, thread->wait_event, waitinfo_v1);
3755 		break;
3756 	case kThreadWaitSleepWithInheritor:
3757 		kdp_sleep_with_inheritor_find_owner(thread->waitq.wq_q, thread->wait_event, waitinfo_v1);
3758 		break;
3759 	case kThreadWaitEventlink:
3760 		kdp_eventlink_find_owner(thread->waitq.wq_q, thread->wait_event, waitinfo_v1);
3761 		break;
3762 	case kThreadWaitCompressor:
3763 		kdp_compressor_busy_find_owner(thread->wait_event, waitinfo_v1);
3764 		break;
3765 	default:
3766 		waitinfo->owner = 0;
3767 		waitinfo->context = 0;
3768 		break;
3769 	}
3770 }
3771