1 /*
2 * Copyright (c) 2015-2018 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 <sys/cprotect.h>
30 #include <sys/malloc.h>
31 #include <sys/mount_internal.h>
32 #include <sys/filio.h>
33 #include <sys/content_protection.h>
34 #include <libkern/crypto/sha1.h>
35 #include <libkern/libkern.h>
36 //for write protection
37 #include <vm/vm_kern.h>
38 #include <vm/vm_map.h>
39
40 #define PTR_ADD(type, base, offset) (type)((uintptr_t)(base) + (offset))
41
42 // -- struct cpx --
43
44 /*
45 * This structure contains the unwrapped key and is passed to the lower layers.
46 * It is private so users must use the accessors declared in sys/cprotect.h
47 * to read/write it.
48 */
49
50 // cpx_flags defined in cprotect.h
51 enum {
52 CPX_SEP_WRAPPEDKEY = 0x01,
53 CPX_IV_AES_CTX_INITIALIZED = 0x02,
54 CPX_USE_OFFSET_FOR_IV = 0x04,
55
56 // Using AES IV context generated from key
57 CPX_IV_AES_CTX_VFS = 0x08,
58 CPX_SYNTHETIC_OFFSET_FOR_IV = 0x10,
59 CPX_COMPOSITEKEY = 0x20,
60
61 //write page protection
62 CPX_WRITE_PROTECTABLE = 0x40
63 };
64
65 /*
66 * variable-length CPX structure. See fixed-length variant in cprotect.h
67 */
68 struct cpx {
69 #if DEBUG
70 uint32_t cpx_magic1;
71 #endif
72 aes_encrypt_ctx *cpx_iv_aes_ctx_ptr;// Pointer to context used for generating the IV
73 cpx_flags_t cpx_flags;
74 uint16_t cpx_max_key_len;
75 uint16_t cpx_key_len;
76 //fixed length up to here. cpx_cached_key is variable-length
77 uint8_t cpx_cached_key[];
78 };
79
80 /* Allows us to switch between CPX types */
81 typedef union cpxunion {
82 struct cpx cpx_var;
83 fcpx_t cpx_fixed;
84 } cpxunion_t;
85
86 ZONE_DEFINE(cpx_zone, "cpx",
87 sizeof(struct fcpx), ZC_ZFREE_CLEARMEM);
88 ZONE_DEFINE(aes_ctz_zone, "AES ctx",
89 sizeof(aes_encrypt_ctx), ZC_ZFREE_CLEARMEM);
90
91 // Note: see struct fcpx defined in sys/cprotect.h
92
93 // -- cpx_t accessors --
94
95 size_t
cpx_size(size_t key_len)96 cpx_size(size_t key_len)
97 {
98 // This should pick up the 'magic' word in DEBUG for free.
99 size_t size = sizeof(struct cpx) + key_len;
100
101 return size;
102 }
103
104 size_t
cpx_sizex(const struct cpx * cpx)105 cpx_sizex(const struct cpx *cpx)
106 {
107 return cpx_size(cpx->cpx_max_key_len);
108 }
109
110 cpx_t
cpx_alloc(size_t key_len,bool needs_ctx)111 cpx_alloc(size_t key_len, bool needs_ctx)
112 {
113 cpx_t cpx = NULL;
114
115 #if CONFIG_KEYPAGE_WP
116 /*
117 * Macs only use 1 key per volume, so force it into its own page.
118 * This way, we can write-protect as needed.
119 */
120 size_t cpsize = cpx_size(key_len);
121
122 // silence warning for needs_ctx
123 (void) needs_ctx;
124
125 if (cpsize < PAGE_SIZE) {
126 /*
127 * Don't use MALLOC to allocate the page-sized structure. Instead,
128 * use kmem_alloc to bypass KASAN since we are supplying our own
129 * unilateral write protection on this page. Note that kmem_alloc
130 * can block.
131 */
132 if (kmem_alloc(kernel_map, (vm_offset_t *)&cpx, PAGE_SIZE, VM_KERN_MEMORY_FILE)) {
133 /*
134 * returning NULL at this point (due to failed
135 * allocation) would just result in a panic.
136 *
137 * fall back to attempting a normal kalloc, and don't
138 * let the cpx get marked PROTECTABLE.
139 */
140 cpx = kheap_alloc(KHEAP_DEFAULT, cpx_size(key_len), Z_WAITOK);
141 } else {
142 //mark the page as protectable, since kmem_alloc succeeded.
143 cpx->cpx_flags |= CPX_WRITE_PROTECTABLE;
144 }
145 } else {
146 panic("cpx_size too large ! (%lu)", cpsize);
147 }
148 #else
149 /* If key page write protection disabled, just switch to zalloc */
150
151 // error out if you try to request a key that's too big
152 if (key_len > VFS_CP_MAX_CACHEBUFLEN) {
153 return NULL;
154 }
155
156 // the actual key array is fixed-length, but the amount of usable content can vary, via 'key_len'
157 cpx = zalloc_flags(cpx_zone, Z_WAITOK | Z_ZERO);
158
159 // if our encryption type needs it, alloc the context
160 if (needs_ctx) {
161 cpx_alloc_ctx(cpx);
162 }
163
164 #endif
165 cpx_init(cpx, key_len);
166
167 return cpx;
168 }
169
170 int
cpx_alloc_ctx(cpx_t cpx)171 cpx_alloc_ctx(cpx_t cpx)
172 {
173 #if CONFIG_KEYPAGE_WP
174 (void) cpx;
175 #else
176 if (cpx->cpx_iv_aes_ctx_ptr) {
177 // already allocated?
178 return 0;
179 }
180
181 cpx->cpx_iv_aes_ctx_ptr = zalloc_flags(aes_ctz_zone, Z_WAITOK | Z_ZERO);
182 #endif // CONFIG_KEYPAGE_WP
183
184 return 0;
185 }
186
187 void
cpx_free_ctx(cpx_t cpx)188 cpx_free_ctx(cpx_t cpx)
189 {
190 #if CONFIG_KEYPAGE_WP
191 (void) cpx;
192 # else
193 if (cpx->cpx_iv_aes_ctx_ptr) {
194 zfree(aes_ctz_zone, cpx->cpx_iv_aes_ctx_ptr);
195 }
196 #endif // CONFIG_KEYPAGE_WP
197 }
198
199 void
cpx_writeprotect(cpx_t cpx)200 cpx_writeprotect(cpx_t cpx)
201 {
202 #if CONFIG_KEYPAGE_WP
203 void *cpxstart = (void*)cpx;
204 void *cpxend = (void*)((uint8_t*)cpx + PAGE_SIZE);
205 if (cpx->cpx_flags & CPX_WRITE_PROTECTABLE) {
206 vm_map_protect(kernel_map, (vm_map_offset_t)cpxstart, (vm_map_offset_t)cpxend, (VM_PROT_READ), FALSE);
207 }
208 #else
209 (void) cpx;
210 #endif
211 return;
212 }
213
214 #if DEBUG
215 static const uint32_t cpx_magic1 = 0x7b787063; // cpx{
216 static const uint32_t cpx_magic2 = 0x7870637d; // }cpx
217 #endif
218
219 void
cpx_free(cpx_t cpx)220 cpx_free(cpx_t cpx)
221 {
222 #if DEBUG
223 assert(cpx->cpx_magic1 == cpx_magic1);
224 assert(*PTR_ADD(uint32_t *, cpx, cpx_sizex(cpx) - 4) == cpx_magic2);
225 #endif
226
227 #if CONFIG_KEYPAGE_WP
228 /* unprotect the page before bzeroing */
229 void *cpxstart = (void*)cpx;
230 void *cpxend = (void*)((uint8_t*)cpx + PAGE_SIZE);
231 if (cpx->cpx_flags & CPX_WRITE_PROTECTABLE) {
232 vm_map_protect(kernel_map, (vm_map_offset_t)cpxstart, (vm_map_offset_t)cpxend, (VM_PROT_DEFAULT), FALSE);
233
234 //now zero the memory after un-protecting it
235 bzero(cpx->cpx_cached_key, cpx->cpx_max_key_len);
236
237 //If we are here, then we used kmem_alloc to get the page. Must use kmem_free to drop it.
238 kmem_free(kernel_map, (vm_offset_t)cpx, PAGE_SIZE);
239 return;
240 }
241 #else
242 // free the context if it wasn't already freed
243 cpx_free_ctx(cpx);
244 zfree(cpx_zone, cpx);
245 return;
246 #endif
247 }
248
249 void
cpx_init(cpx_t cpx,size_t key_len)250 cpx_init(cpx_t cpx, size_t key_len)
251 {
252 #if DEBUG
253 cpx->cpx_magic1 = cpx_magic1;
254 *PTR_ADD(uint32_t *, cpx, cpx_size(key_len) - 4) = cpx_magic2;
255 #endif
256 cpx->cpx_flags = 0;
257 cpx->cpx_key_len = 0;
258 assert(key_len <= UINT16_MAX);
259 cpx->cpx_max_key_len = (uint16_t)key_len;
260 }
261
262 bool
cpx_is_sep_wrapped_key(const struct cpx * cpx)263 cpx_is_sep_wrapped_key(const struct cpx *cpx)
264 {
265 return ISSET(cpx->cpx_flags, CPX_SEP_WRAPPEDKEY);
266 }
267
268 void
cpx_set_is_sep_wrapped_key(struct cpx * cpx,bool v)269 cpx_set_is_sep_wrapped_key(struct cpx *cpx, bool v)
270 {
271 if (v) {
272 SET(cpx->cpx_flags, CPX_SEP_WRAPPEDKEY);
273 } else {
274 CLR(cpx->cpx_flags, CPX_SEP_WRAPPEDKEY);
275 }
276 }
277
278 bool
cpx_is_composite_key(const struct cpx * cpx)279 cpx_is_composite_key(const struct cpx *cpx)
280 {
281 return ISSET(cpx->cpx_flags, CPX_COMPOSITEKEY);
282 }
283
284 void
cpx_set_is_composite_key(struct cpx * cpx,bool v)285 cpx_set_is_composite_key(struct cpx *cpx, bool v)
286 {
287 if (v) {
288 SET(cpx->cpx_flags, CPX_COMPOSITEKEY);
289 } else {
290 CLR(cpx->cpx_flags, CPX_COMPOSITEKEY);
291 }
292 }
293
294 bool
cpx_use_offset_for_iv(const struct cpx * cpx)295 cpx_use_offset_for_iv(const struct cpx *cpx)
296 {
297 return ISSET(cpx->cpx_flags, CPX_USE_OFFSET_FOR_IV);
298 }
299
300 void
cpx_set_use_offset_for_iv(struct cpx * cpx,bool v)301 cpx_set_use_offset_for_iv(struct cpx *cpx, bool v)
302 {
303 if (v) {
304 SET(cpx->cpx_flags, CPX_USE_OFFSET_FOR_IV);
305 } else {
306 CLR(cpx->cpx_flags, CPX_USE_OFFSET_FOR_IV);
307 }
308 }
309
310 bool
cpx_synthetic_offset_for_iv(const struct cpx * cpx)311 cpx_synthetic_offset_for_iv(const struct cpx *cpx)
312 {
313 return ISSET(cpx->cpx_flags, CPX_SYNTHETIC_OFFSET_FOR_IV);
314 }
315
316 void
cpx_set_synthetic_offset_for_iv(struct cpx * cpx,bool v)317 cpx_set_synthetic_offset_for_iv(struct cpx *cpx, bool v)
318 {
319 if (v) {
320 SET(cpx->cpx_flags, CPX_SYNTHETIC_OFFSET_FOR_IV);
321 } else {
322 CLR(cpx->cpx_flags, CPX_SYNTHETIC_OFFSET_FOR_IV);
323 }
324 }
325
326 uint16_t
cpx_max_key_len(const struct cpx * cpx)327 cpx_max_key_len(const struct cpx *cpx)
328 {
329 return cpx->cpx_max_key_len;
330 }
331
332 uint16_t
cpx_key_len(const struct cpx * cpx)333 cpx_key_len(const struct cpx *cpx)
334 {
335 return cpx->cpx_key_len;
336 }
337
338 void
cpx_set_key_len(struct cpx * cpx,uint16_t key_len)339 cpx_set_key_len(struct cpx *cpx, uint16_t key_len)
340 {
341 cpx->cpx_key_len = key_len;
342
343 if (ISSET(cpx->cpx_flags, CPX_IV_AES_CTX_VFS)) {
344 /*
345 * We assume that if the key length is being modified, the key
346 * has changed. As a result, un-set any bits related to the
347 * AES context, if needed. They should be re-generated
348 * on-demand.
349 */
350 CLR(cpx->cpx_flags, CPX_IV_AES_CTX_INITIALIZED | CPX_IV_AES_CTX_VFS);
351 }
352 }
353
354 bool
cpx_has_key(const struct cpx * cpx)355 cpx_has_key(const struct cpx *cpx)
356 {
357 return cpx->cpx_key_len > 0;
358 }
359
360 #pragma clang diagnostic push
361 #pragma clang diagnostic ignored "-Wcast-qual"
362 void *
cpx_key(const struct cpx * cpx)363 cpx_key(const struct cpx *cpx)
364 {
365 return (void *)cpx->cpx_cached_key;
366 }
367 #pragma clang diagnostic pop
368
369 void
cpx_set_aes_iv_key(struct cpx * cpx,void * iv_key)370 cpx_set_aes_iv_key(struct cpx *cpx, void *iv_key)
371 {
372 if (cpx->cpx_iv_aes_ctx_ptr) {
373 aes_encrypt_key128(iv_key, cpx->cpx_iv_aes_ctx_ptr);
374 SET(cpx->cpx_flags, CPX_IV_AES_CTX_INITIALIZED | CPX_USE_OFFSET_FOR_IV);
375 CLR(cpx->cpx_flags, CPX_IV_AES_CTX_VFS);
376 }
377 }
378
379 aes_encrypt_ctx *
cpx_iv_aes_ctx(struct cpx * cpx)380 cpx_iv_aes_ctx(struct cpx *cpx)
381 {
382 if (ISSET(cpx->cpx_flags, CPX_IV_AES_CTX_INITIALIZED)) {
383 return cpx->cpx_iv_aes_ctx_ptr;
384 }
385
386 SHA1_CTX sha1ctxt;
387 uint8_t digest[SHA_DIGEST_LENGTH]; /* Kiv */
388
389 /* First init the cp_cache_iv_key[] */
390 SHA1Init(&sha1ctxt);
391
392 /*
393 * We can only use this when the keys are generated in the AP; As a result
394 * we only use the first 32 bytes of key length in the cache key
395 */
396 SHA1Update(&sha1ctxt, cpx->cpx_cached_key, cpx->cpx_key_len);
397 SHA1Final(digest, &sha1ctxt);
398
399 cpx_set_aes_iv_key(cpx, digest);
400 SET(cpx->cpx_flags, CPX_IV_AES_CTX_VFS);
401
402 return cpx->cpx_iv_aes_ctx_ptr;
403 }
404
405 void
cpx_flush(cpx_t cpx)406 cpx_flush(cpx_t cpx)
407 {
408 bzero(cpx->cpx_cached_key, cpx->cpx_max_key_len);
409 if (cpx->cpx_iv_aes_ctx_ptr) {
410 bzero(cpx->cpx_iv_aes_ctx_ptr, sizeof(aes_encrypt_ctx));
411 }
412 cpx->cpx_flags = 0;
413 cpx->cpx_key_len = 0;
414 }
415
416 bool
cpx_can_copy(const struct cpx * src,const struct cpx * dst)417 cpx_can_copy(const struct cpx *src, const struct cpx *dst)
418 {
419 return src->cpx_key_len <= dst->cpx_max_key_len;
420 }
421
422 void
cpx_copy(const struct cpx * src,cpx_t dst)423 cpx_copy(const struct cpx *src, cpx_t dst)
424 {
425 uint16_t key_len = cpx_key_len(src);
426 cpx_set_key_len(dst, key_len);
427 memcpy(cpx_key(dst), cpx_key(src), key_len);
428 dst->cpx_flags = src->cpx_flags;
429 if (ISSET(dst->cpx_flags, CPX_IV_AES_CTX_INITIALIZED)) {
430 *(dst->cpx_iv_aes_ctx_ptr) = *(src->cpx_iv_aes_ctx_ptr); // deep copy
431 }
432 }
433
434 typedef struct {
435 cp_lock_state_t state;
436 int valid_uuid;
437 uuid_t volume_uuid;
438 } cp_lock_vfs_callback_arg;
439
440 static int
cp_lock_vfs_callback(mount_t mp,void * arg)441 cp_lock_vfs_callback(mount_t mp, void *arg)
442 {
443 cp_lock_vfs_callback_arg *callback_arg = (cp_lock_vfs_callback_arg *)arg;
444
445 if (callback_arg->valid_uuid) {
446 struct vfs_attr va;
447 VFSATTR_INIT(&va);
448 VFSATTR_WANTED(&va, f_uuid);
449
450 if (vfs_getattr(mp, &va, vfs_context_current())) {
451 return 0;
452 }
453
454 if (!VFSATTR_IS_SUPPORTED(&va, f_uuid)) {
455 return 0;
456 }
457
458 if (memcmp(va.f_uuid, callback_arg->volume_uuid, sizeof(uuid_t))) {
459 return 0;
460 }
461 }
462
463 VFS_IOCTL(mp, FIODEVICELOCKED, (void *)(uintptr_t)callback_arg->state, 0, vfs_context_kernel());
464 return 0;
465 }
466
467 int
cp_key_store_action(cp_key_store_action_t action)468 cp_key_store_action(cp_key_store_action_t action)
469 {
470 cp_lock_vfs_callback_arg callback_arg;
471
472 switch (action) {
473 case CP_ACTION_LOCKED:
474 case CP_ACTION_UNLOCKED:
475 callback_arg.state = (action == CP_ACTION_LOCKED ? CP_LOCKED_STATE : CP_UNLOCKED_STATE);
476 memset(callback_arg.volume_uuid, 0, sizeof(uuid_t));
477 callback_arg.valid_uuid = 0;
478 return vfs_iterate(0, cp_lock_vfs_callback, (void *)&callback_arg);
479 default:
480 return -1;
481 }
482 }
483
484 int
cp_key_store_action_for_volume(uuid_t volume_uuid,cp_key_store_action_t action)485 cp_key_store_action_for_volume(uuid_t volume_uuid, cp_key_store_action_t action)
486 {
487 cp_lock_vfs_callback_arg callback_arg;
488
489 switch (action) {
490 case CP_ACTION_LOCKED:
491 case CP_ACTION_UNLOCKED:
492 callback_arg.state = (action == CP_ACTION_LOCKED ? CP_LOCKED_STATE : CP_UNLOCKED_STATE);
493 memcpy(callback_arg.volume_uuid, volume_uuid, sizeof(uuid_t));
494 callback_arg.valid_uuid = 1;
495 return vfs_iterate(0, cp_lock_vfs_callback, (void *)&callback_arg);
496 default:
497 return -1;
498 }
499 }
500
501 int
cp_is_valid_class(int isdir,int32_t protectionclass)502 cp_is_valid_class(int isdir, int32_t protectionclass)
503 {
504 /*
505 * The valid protection classes are from 0 -> N
506 * We use a signed argument to detect unassigned values from
507 * directory entry creation time in HFS.
508 */
509 if (isdir) {
510 /* Directories are not allowed to have F, but they can have "NONE" */
511 return (protectionclass >= PROTECTION_CLASS_DIR_NONE) &&
512 (protectionclass <= PROTECTION_CLASS_D);
513 } else {
514 return (protectionclass >= PROTECTION_CLASS_A) &&
515 (protectionclass <= PROTECTION_CLASS_F);
516 }
517 }
518
519 /*
520 * Parses versions of the form 12A316, i.e. <major><minor><revision> and
521 * returns a uint32_t in the form 0xaabbcccc where aa = <major>,
522 * bb = <ASCII char>, cccc = <revision>.
523 */
524 static cp_key_os_version_t
parse_os_version(const char * vers)525 parse_os_version(const char *vers)
526 {
527 const char *p = vers;
528
529 int a = 0;
530 while (*p >= '0' && *p <= '9') {
531 a = a * 10 + *p - '0';
532 ++p;
533 }
534
535 if (!a) {
536 return 0;
537 }
538
539 int b = *p++;
540 if (!b) {
541 return 0;
542 }
543
544 int c = 0;
545 while (*p >= '0' && *p <= '9') {
546 c = c * 10 + *p - '0';
547 ++p;
548 }
549
550 if (!c) {
551 return 0;
552 }
553
554 return (a & 0xff) << 24 | b << 16 | (c & 0xffff);
555 }
556
557 cp_key_os_version_t
cp_os_version(void)558 cp_os_version(void)
559 {
560 static cp_key_os_version_t cp_os_version;
561
562 if (cp_os_version) {
563 return cp_os_version;
564 }
565
566 if (!osversion[0]) {
567 return 0;
568 }
569
570 cp_os_version = parse_os_version(osversion);
571 if (!cp_os_version) {
572 printf("cp_os_version: unable to parse osversion `%s'\n", osversion);
573 cp_os_version = 1;
574 }
575
576 return cp_os_version;
577 }
578