1 /*
2 * Copyright (c) 1999-2020 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 * File: ubc_subr.c
30 * Author: Umesh Vaishampayan [[email protected]]
31 * 05-Aug-1999 umeshv Created.
32 *
33 * Functions related to Unified Buffer cache.
34 *
35 * Caller of UBC functions MUST have a valid reference on the vnode.
36 *
37 */
38
39 #include <sys/types.h>
40 #include <sys/param.h>
41 #include <sys/systm.h>
42 #include <sys/lock.h>
43 #include <sys/mman.h>
44 #include <sys/mount_internal.h>
45 #include <sys/vnode_internal.h>
46 #include <sys/ubc_internal.h>
47 #include <sys/ucred.h>
48 #include <sys/proc_internal.h>
49 #include <sys/kauth.h>
50 #include <sys/buf.h>
51 #include <sys/user.h>
52 #include <sys/codesign.h>
53 #include <sys/codedir_internal.h>
54 #include <sys/fsevents.h>
55 #include <sys/fcntl.h>
56 #include <sys/reboot.h>
57 #include <sys/code_signing.h>
58
59 #include <mach/mach_types.h>
60 #include <mach/memory_object_types.h>
61 #include <mach/memory_object_control.h>
62 #include <mach/vm_map.h>
63 #include <mach/mach_vm.h>
64 #include <mach/upl.h>
65
66 #include <kern/kern_types.h>
67 #include <kern/kalloc.h>
68 #include <kern/zalloc.h>
69 #include <kern/thread.h>
70 #include <vm/pmap.h>
71 #include <vm/vm_pageout.h>
72 #include <vm/vm_map.h>
73 #include <vm/vm_upl.h>
74 #include <vm/vm_kern_xnu.h>
75 #include <vm/vm_protos.h> /* last */
76 #include <vm/vm_ubc.h>
77
78 #include <libkern/crypto/sha1.h>
79 #include <libkern/crypto/sha2.h>
80 #include <libkern/libkern.h>
81
82 #include <security/mac_framework.h>
83 #include <stdbool.h>
84 #include <stdatomic.h>
85 #include <libkern/amfi/amfi.h>
86
87 extern void Debugger(const char *message);
88
89 #if DIAGNOSTIC
90 #if defined(assert)
91 #undef assert
92 #endif
93 #define assert(cond) \
94 ((void) ((cond) ? 0 : panic("Assert failed: %s", # cond)))
95 #else
96 #include <kern/assert.h>
97 #endif /* DIAGNOSTIC */
98
99 static int ubc_info_init_internal(struct vnode *vp, int withfsize, off_t filesize);
100 static int ubc_umcallback(vnode_t, void *);
101 static int ubc_msync_internal(vnode_t, off_t, off_t, off_t *, int, int *);
102 static void ubc_cs_free(struct ubc_info *uip);
103
104 static boolean_t ubc_cs_supports_multilevel_hash(struct cs_blob *blob);
105 static kern_return_t ubc_cs_convert_to_multilevel_hash(struct cs_blob *blob);
106
107 ZONE_DEFINE_TYPE(ubc_info_zone, "ubc_info zone", struct ubc_info,
108 ZC_ZFREE_CLEARMEM);
109 static uint32_t cs_blob_generation_count = 1;
110
111 /*
112 * CODESIGNING
113 * Routines to navigate code signing data structures in the kernel...
114 */
115
116 ZONE_DEFINE_ID(ZONE_ID_CS_BLOB, "cs_blob zone", struct cs_blob,
117 ZC_READONLY | ZC_ZFREE_CLEARMEM);
118
119 extern int cs_debug;
120
121 #define PAGE_SHIFT_4K (12)
122
123 static boolean_t
cs_valid_range(const void * start,const void * end,const void * lower_bound,const void * upper_bound)124 cs_valid_range(
125 const void *start,
126 const void *end,
127 const void *lower_bound,
128 const void *upper_bound)
129 {
130 if (upper_bound < lower_bound ||
131 end < start) {
132 return FALSE;
133 }
134
135 if (start < lower_bound ||
136 end > upper_bound) {
137 return FALSE;
138 }
139
140 return TRUE;
141 }
142
143 typedef void (*cs_md_init)(void *ctx);
144 typedef void (*cs_md_update)(void *ctx, const void *data, size_t size);
145 typedef void (*cs_md_final)(void *hash, void *ctx);
146
147 struct cs_hash {
148 uint8_t cs_type; /* type code as per code signing */
149 size_t cs_size; /* size of effective hash (may be truncated) */
150 size_t cs_digest_size;/* size of native hash */
151 cs_md_init cs_init;
152 cs_md_update cs_update;
153 cs_md_final cs_final;
154 };
155
156 uint8_t
cs_hash_type(struct cs_hash const * const cs_hash)157 cs_hash_type(
158 struct cs_hash const * const cs_hash)
159 {
160 return cs_hash->cs_type;
161 }
162
163 static const struct cs_hash cs_hash_sha1 = {
164 .cs_type = CS_HASHTYPE_SHA1,
165 .cs_size = CS_SHA1_LEN,
166 .cs_digest_size = SHA_DIGEST_LENGTH,
167 .cs_init = (cs_md_init)SHA1Init,
168 .cs_update = (cs_md_update)SHA1Update,
169 .cs_final = (cs_md_final)SHA1Final,
170 };
171 #if CRYPTO_SHA2
172 static const struct cs_hash cs_hash_sha256 = {
173 .cs_type = CS_HASHTYPE_SHA256,
174 .cs_size = SHA256_DIGEST_LENGTH,
175 .cs_digest_size = SHA256_DIGEST_LENGTH,
176 .cs_init = (cs_md_init)SHA256_Init,
177 .cs_update = (cs_md_update)SHA256_Update,
178 .cs_final = (cs_md_final)SHA256_Final,
179 };
180 static const struct cs_hash cs_hash_sha256_truncate = {
181 .cs_type = CS_HASHTYPE_SHA256_TRUNCATED,
182 .cs_size = CS_SHA256_TRUNCATED_LEN,
183 .cs_digest_size = SHA256_DIGEST_LENGTH,
184 .cs_init = (cs_md_init)SHA256_Init,
185 .cs_update = (cs_md_update)SHA256_Update,
186 .cs_final = (cs_md_final)SHA256_Final,
187 };
188 static const struct cs_hash cs_hash_sha384 = {
189 .cs_type = CS_HASHTYPE_SHA384,
190 .cs_size = SHA384_DIGEST_LENGTH,
191 .cs_digest_size = SHA384_DIGEST_LENGTH,
192 .cs_init = (cs_md_init)SHA384_Init,
193 .cs_update = (cs_md_update)SHA384_Update,
194 .cs_final = (cs_md_final)SHA384_Final,
195 };
196 #endif
197
198 static struct cs_hash const *
cs_find_md(uint8_t type)199 cs_find_md(uint8_t type)
200 {
201 if (type == CS_HASHTYPE_SHA1) {
202 return &cs_hash_sha1;
203 #if CRYPTO_SHA2
204 } else if (type == CS_HASHTYPE_SHA256) {
205 return &cs_hash_sha256;
206 } else if (type == CS_HASHTYPE_SHA256_TRUNCATED) {
207 return &cs_hash_sha256_truncate;
208 } else if (type == CS_HASHTYPE_SHA384) {
209 return &cs_hash_sha384;
210 #endif
211 }
212 return NULL;
213 }
214
215 union cs_hash_union {
216 SHA1_CTX sha1ctxt;
217 SHA256_CTX sha256ctx;
218 SHA384_CTX sha384ctx;
219 };
220
221
222 /*
223 * Choose among different hash algorithms.
224 * Higher is better, 0 => don't use at all.
225 */
226 static const uint32_t hashPriorities[] = {
227 CS_HASHTYPE_SHA1,
228 CS_HASHTYPE_SHA256_TRUNCATED,
229 CS_HASHTYPE_SHA256,
230 CS_HASHTYPE_SHA384,
231 };
232
233 static unsigned int
hash_rank(const CS_CodeDirectory * cd)234 hash_rank(const CS_CodeDirectory *cd)
235 {
236 uint32_t type = cd->hashType;
237 unsigned int n;
238
239 for (n = 0; n < sizeof(hashPriorities) / sizeof(hashPriorities[0]); ++n) {
240 if (hashPriorities[n] == type) {
241 return n + 1;
242 }
243 }
244 return 0; /* not supported */
245 }
246
247
248 /*
249 * Locating a page hash
250 */
251 static const unsigned char *
hashes(const CS_CodeDirectory * cd,uint32_t page,size_t hash_len,const char * lower_bound,const char * upper_bound)252 hashes(
253 const CS_CodeDirectory *cd,
254 uint32_t page,
255 size_t hash_len,
256 const char *lower_bound,
257 const char *upper_bound)
258 {
259 const unsigned char *base, *top, *hash;
260 uint32_t nCodeSlots = ntohl(cd->nCodeSlots);
261
262 assert(cs_valid_range(cd, cd + 1, lower_bound, upper_bound));
263
264 if ((ntohl(cd->version) >= CS_SUPPORTSSCATTER) && (ntohl(cd->scatterOffset))) {
265 /* Get first scatter struct */
266 const SC_Scatter *scatter = (const SC_Scatter*)
267 ((const char*)cd + ntohl(cd->scatterOffset));
268 uint32_t hashindex = 0, scount, sbase = 0;
269 /* iterate all scatter structs */
270 do {
271 if ((const char*)scatter > (const char*)cd + ntohl(cd->length)) {
272 if (cs_debug) {
273 printf("CODE SIGNING: Scatter extends past Code Directory\n");
274 }
275 return NULL;
276 }
277
278 scount = ntohl(scatter->count);
279 uint32_t new_base = ntohl(scatter->base);
280
281 /* last scatter? */
282 if (scount == 0) {
283 return NULL;
284 }
285
286 if ((hashindex > 0) && (new_base <= sbase)) {
287 if (cs_debug) {
288 printf("CODE SIGNING: unordered Scatter, prev base %d, cur base %d\n",
289 sbase, new_base);
290 }
291 return NULL; /* unordered scatter array */
292 }
293 sbase = new_base;
294
295 /* this scatter beyond page we're looking for? */
296 if (sbase > page) {
297 return NULL;
298 }
299
300 if (sbase + scount >= page) {
301 /* Found the scatter struct that is
302 * referencing our page */
303
304 /* base = address of first hash covered by scatter */
305 base = (const unsigned char *)cd + ntohl(cd->hashOffset) +
306 hashindex * hash_len;
307 /* top = address of first hash after this scatter */
308 top = base + scount * hash_len;
309 if (!cs_valid_range(base, top, lower_bound,
310 upper_bound) ||
311 hashindex > nCodeSlots) {
312 return NULL;
313 }
314
315 break;
316 }
317
318 /* this scatter struct is before the page we're looking
319 * for. Iterate. */
320 hashindex += scount;
321 scatter++;
322 } while (1);
323
324 hash = base + (page - sbase) * hash_len;
325 } else {
326 base = (const unsigned char *)cd + ntohl(cd->hashOffset);
327 top = base + nCodeSlots * hash_len;
328 if (!cs_valid_range(base, top, lower_bound, upper_bound) ||
329 page > nCodeSlots) {
330 return NULL;
331 }
332 assert(page < nCodeSlots);
333
334 hash = base + page * hash_len;
335 }
336
337 if (!cs_valid_range(hash, hash + hash_len,
338 lower_bound, upper_bound)) {
339 hash = NULL;
340 }
341
342 return hash;
343 }
344
345 /*
346 * cs_validate_codedirectory
347 *
348 * Validate that pointers inside the code directory to make sure that
349 * all offsets and lengths are constrained within the buffer.
350 *
351 * Parameters: cd Pointer to code directory buffer
352 * length Length of buffer
353 *
354 * Returns: 0 Success
355 * EBADEXEC Invalid code signature
356 */
357
358 static int
cs_validate_codedirectory(const CS_CodeDirectory * cd,size_t length)359 cs_validate_codedirectory(const CS_CodeDirectory *cd, size_t length)
360 {
361 struct cs_hash const *hashtype;
362
363 if (length < sizeof(*cd)) {
364 return EBADEXEC;
365 }
366 if (ntohl(cd->magic) != CSMAGIC_CODEDIRECTORY) {
367 return EBADEXEC;
368 }
369 if ((cd->pageSize != PAGE_SHIFT_4K) && (cd->pageSize != PAGE_SHIFT)) {
370 printf("disallowing unsupported code signature page shift: %u\n", cd->pageSize);
371 return EBADEXEC;
372 }
373 hashtype = cs_find_md(cd->hashType);
374 if (hashtype == NULL) {
375 return EBADEXEC;
376 }
377
378 if (cd->hashSize != hashtype->cs_size) {
379 return EBADEXEC;
380 }
381
382 if (length < ntohl(cd->hashOffset)) {
383 return EBADEXEC;
384 }
385
386 /* check that nSpecialSlots fits in the buffer in front of hashOffset */
387 if (ntohl(cd->hashOffset) / hashtype->cs_size < ntohl(cd->nSpecialSlots)) {
388 return EBADEXEC;
389 }
390
391 /* check that codeslots fits in the buffer */
392 if ((length - ntohl(cd->hashOffset)) / hashtype->cs_size < ntohl(cd->nCodeSlots)) {
393 return EBADEXEC;
394 }
395
396 if (ntohl(cd->version) >= CS_SUPPORTSSCATTER && cd->scatterOffset) {
397 if (length < ntohl(cd->scatterOffset)) {
398 return EBADEXEC;
399 }
400
401 const SC_Scatter *scatter = (const SC_Scatter *)
402 (((const uint8_t *)cd) + ntohl(cd->scatterOffset));
403 uint32_t nPages = 0;
404
405 /*
406 * Check each scatter buffer, since we don't know the
407 * length of the scatter buffer array, we have to
408 * check each entry.
409 */
410 while (1) {
411 /* check that the end of each scatter buffer in within the length */
412 if (((const uint8_t *)scatter) + sizeof(scatter[0]) > (const uint8_t *)cd + length) {
413 return EBADEXEC;
414 }
415 uint32_t scount = ntohl(scatter->count);
416 if (scount == 0) {
417 break;
418 }
419 if (nPages + scount < nPages) {
420 return EBADEXEC;
421 }
422 nPages += scount;
423 scatter++;
424
425 /* XXX check that basees doesn't overlap */
426 /* XXX check that targetOffset doesn't overlap */
427 }
428 #if 0 /* rdar://12579439 */
429 if (nPages != ntohl(cd->nCodeSlots)) {
430 return EBADEXEC;
431 }
432 #endif
433 }
434
435 if (length < ntohl(cd->identOffset)) {
436 return EBADEXEC;
437 }
438
439 /* identifier is NUL terminated string */
440 if (cd->identOffset) {
441 const uint8_t *ptr = (const uint8_t *)cd + ntohl(cd->identOffset);
442 if (memchr(ptr, 0, length - ntohl(cd->identOffset)) == NULL) {
443 return EBADEXEC;
444 }
445 }
446
447 /* team identifier is NULL terminated string */
448 if (ntohl(cd->version) >= CS_SUPPORTSTEAMID && ntohl(cd->teamOffset)) {
449 if (length < ntohl(cd->teamOffset)) {
450 return EBADEXEC;
451 }
452
453 const uint8_t *ptr = (const uint8_t *)cd + ntohl(cd->teamOffset);
454 if (memchr(ptr, 0, length - ntohl(cd->teamOffset)) == NULL) {
455 return EBADEXEC;
456 }
457 }
458
459 /* linkage is variable length binary data */
460 if (ntohl(cd->version) >= CS_SUPPORTSLINKAGE && cd->linkageHashType != 0) {
461 const uintptr_t ptr = (uintptr_t)cd + ntohl(cd->linkageOffset);
462 const uintptr_t ptr_end = ptr + ntohl(cd->linkageSize);
463
464 if (ptr_end < ptr || ptr < (uintptr_t)cd || ptr_end > (uintptr_t)cd + length) {
465 return EBADEXEC;
466 }
467 }
468
469
470 return 0;
471 }
472
473 /*
474 *
475 */
476
477 static int
cs_validate_blob(const CS_GenericBlob * blob,size_t length)478 cs_validate_blob(const CS_GenericBlob *blob, size_t length)
479 {
480 if (length < sizeof(CS_GenericBlob) || length < ntohl(blob->length)) {
481 return EBADEXEC;
482 }
483 return 0;
484 }
485
486 /*
487 * cs_validate_csblob
488 *
489 * Validate that superblob/embedded code directory to make sure that
490 * all internal pointers are valid.
491 *
492 * Will validate both a superblob csblob and a "raw" code directory.
493 *
494 *
495 * Parameters: buffer Pointer to code signature
496 * length Length of buffer
497 * rcd returns pointer to code directory
498 *
499 * Returns: 0 Success
500 * EBADEXEC Invalid code signature
501 */
502
503 static int
cs_validate_csblob(const uint8_t * addr,const size_t blob_size,const CS_CodeDirectory ** rcd,const CS_GenericBlob ** rentitlements,const CS_GenericBlob ** rder_entitlements)504 cs_validate_csblob(
505 const uint8_t *addr,
506 const size_t blob_size,
507 const CS_CodeDirectory **rcd,
508 const CS_GenericBlob **rentitlements,
509 const CS_GenericBlob **rder_entitlements)
510 {
511 const CS_GenericBlob *blob;
512 int error;
513 size_t length;
514 const CS_GenericBlob *self_constraint = NULL;
515 const CS_GenericBlob *parent_constraint = NULL;
516 const CS_GenericBlob *responsible_proc_constraint = NULL;
517 const CS_GenericBlob *library_constraint = NULL;
518
519 *rcd = NULL;
520 *rentitlements = NULL;
521 *rder_entitlements = NULL;
522
523 blob = (const CS_GenericBlob *)(const void *)addr;
524
525 length = blob_size;
526 error = cs_validate_blob(blob, length);
527 if (error) {
528 return error;
529 }
530 length = ntohl(blob->length);
531
532 if (ntohl(blob->magic) == CSMAGIC_EMBEDDED_SIGNATURE) {
533 const CS_SuperBlob *sb;
534 uint32_t n, count;
535 const CS_CodeDirectory *best_cd = NULL;
536 unsigned int best_rank = 0;
537
538 if (length < sizeof(CS_SuperBlob)) {
539 return EBADEXEC;
540 }
541
542 sb = (const CS_SuperBlob *)blob;
543 count = ntohl(sb->count);
544
545 /* check that the array of BlobIndex fits in the rest of the data */
546 if ((length - sizeof(CS_SuperBlob)) / sizeof(CS_BlobIndex) < count) {
547 return EBADEXEC;
548 }
549
550 /* now check each BlobIndex */
551 for (n = 0; n < count; n++) {
552 const CS_BlobIndex *blobIndex = &sb->index[n];
553 uint32_t type = ntohl(blobIndex->type);
554 uint32_t offset = ntohl(blobIndex->offset);
555 if (length < offset) {
556 return EBADEXEC;
557 }
558
559 const CS_GenericBlob *subBlob =
560 (const CS_GenericBlob *)(const void *)(addr + offset);
561
562 size_t subLength = length - offset;
563
564 if ((error = cs_validate_blob(subBlob, subLength)) != 0) {
565 return error;
566 }
567 subLength = ntohl(subBlob->length);
568
569 /* extra validation for CDs, that is also returned */
570 if (type == CSSLOT_CODEDIRECTORY || (type >= CSSLOT_ALTERNATE_CODEDIRECTORIES && type < CSSLOT_ALTERNATE_CODEDIRECTORY_LIMIT)) {
571 const CS_CodeDirectory *candidate = (const CS_CodeDirectory *)subBlob;
572 if ((error = cs_validate_codedirectory(candidate, subLength)) != 0) {
573 return error;
574 }
575 unsigned int rank = hash_rank(candidate);
576 if (cs_debug > 3) {
577 printf("CodeDirectory type %d rank %d at slot 0x%x index %d\n", candidate->hashType, (int)rank, (int)type, (int)n);
578 }
579 if (best_cd == NULL || rank > best_rank) {
580 best_cd = candidate;
581 best_rank = rank;
582
583 if (cs_debug > 2) {
584 printf("using CodeDirectory type %d (rank %d)\n", (int)best_cd->hashType, best_rank);
585 }
586 *rcd = best_cd;
587 } else if (best_cd != NULL && rank == best_rank) {
588 /* repeat of a hash type (1:1 mapped to ranks), illegal and suspicious */
589 printf("multiple hash=%d CodeDirectories in signature; rejecting\n", best_cd->hashType);
590 return EBADEXEC;
591 }
592 } else if (type == CSSLOT_ENTITLEMENTS) {
593 if (ntohl(subBlob->magic) != CSMAGIC_EMBEDDED_ENTITLEMENTS) {
594 return EBADEXEC;
595 }
596 if (*rentitlements != NULL) {
597 printf("multiple entitlements blobs\n");
598 return EBADEXEC;
599 }
600 *rentitlements = subBlob;
601 } else if (type == CSSLOT_DER_ENTITLEMENTS) {
602 if (ntohl(subBlob->magic) != CSMAGIC_EMBEDDED_DER_ENTITLEMENTS) {
603 return EBADEXEC;
604 }
605 if (*rder_entitlements != NULL) {
606 printf("multiple der entitlements blobs\n");
607 return EBADEXEC;
608 }
609 *rder_entitlements = subBlob;
610 } else if (type == CSSLOT_LAUNCH_CONSTRAINT_SELF) {
611 if (ntohl(subBlob->magic) != CSMAGIC_EMBEDDED_LAUNCH_CONSTRAINT) {
612 return EBADEXEC;
613 }
614 if (self_constraint != NULL) {
615 printf("multiple self constraint blobs\n");
616 return EBADEXEC;
617 }
618 self_constraint = subBlob;
619 } else if (type == CSSLOT_LAUNCH_CONSTRAINT_PARENT) {
620 if (ntohl(subBlob->magic) != CSMAGIC_EMBEDDED_LAUNCH_CONSTRAINT) {
621 return EBADEXEC;
622 }
623 if (parent_constraint != NULL) {
624 printf("multiple parent constraint blobs\n");
625 return EBADEXEC;
626 }
627 parent_constraint = subBlob;
628 } else if (type == CSSLOT_LAUNCH_CONSTRAINT_RESPONSIBLE) {
629 if (ntohl(subBlob->magic) != CSMAGIC_EMBEDDED_LAUNCH_CONSTRAINT) {
630 return EBADEXEC;
631 }
632 if (responsible_proc_constraint != NULL) {
633 printf("multiple responsible process constraint blobs\n");
634 return EBADEXEC;
635 }
636 responsible_proc_constraint = subBlob;
637 } else if (type == CSSLOT_LIBRARY_CONSTRAINT) {
638 if (ntohl(subBlob->magic) != CSMAGIC_EMBEDDED_LAUNCH_CONSTRAINT) {
639 return EBADEXEC;
640 }
641 if (library_constraint != NULL) {
642 printf("multiple library constraint blobs\n");
643 return EBADEXEC;
644 }
645 library_constraint = subBlob;
646 }
647 }
648 } else if (ntohl(blob->magic) == CSMAGIC_CODEDIRECTORY) {
649 if ((error = cs_validate_codedirectory((const CS_CodeDirectory *)(const void *)addr, length)) != 0) {
650 return error;
651 }
652 *rcd = (const CS_CodeDirectory *)blob;
653 } else {
654 return EBADEXEC;
655 }
656
657 if (*rcd == NULL) {
658 return EBADEXEC;
659 }
660
661 return 0;
662 }
663
664 /*
665 * cs_find_blob_bytes
666 *
667 * Find an blob from the superblob/code directory. The blob must have
668 * been been validated by cs_validate_csblob() before calling
669 * this. Use csblob_find_blob() instead.
670 *
671 * Will also find a "raw" code directory if its stored as well as
672 * searching the superblob.
673 *
674 * Parameters: buffer Pointer to code signature
675 * length Length of buffer
676 * type type of blob to find
677 * magic the magic number for that blob
678 *
679 * Returns: pointer Success
680 * NULL Buffer not found
681 */
682
683 const CS_GenericBlob *
csblob_find_blob_bytes(const uint8_t * addr,size_t length,uint32_t type,uint32_t magic)684 csblob_find_blob_bytes(const uint8_t *addr, size_t length, uint32_t type, uint32_t magic)
685 {
686 const CS_GenericBlob *blob = (const CS_GenericBlob *)(const void *)addr;
687
688 if ((addr + length) < addr) {
689 panic("CODE SIGNING: CS Blob length overflow for addr: %p", addr);
690 }
691
692 if (ntohl(blob->magic) == CSMAGIC_EMBEDDED_SIGNATURE) {
693 const CS_SuperBlob *sb = (const CS_SuperBlob *)blob;
694 size_t n, count = ntohl(sb->count);
695
696 for (n = 0; n < count; n++) {
697 if (ntohl(sb->index[n].type) != type) {
698 continue;
699 }
700 uint32_t offset = ntohl(sb->index[n].offset);
701 if (length - sizeof(const CS_GenericBlob) < offset) {
702 return NULL;
703 }
704 blob = (const CS_GenericBlob *)(const void *)(addr + offset);
705 if (ntohl(blob->magic) != magic) {
706 continue;
707 }
708 if (((vm_address_t)blob + ntohl(blob->length)) < (vm_address_t)blob) {
709 panic("CODE SIGNING: CS Blob length overflow for blob at: %p", blob);
710 } else if (((vm_address_t)blob + ntohl(blob->length)) > (vm_address_t)(addr + length)) {
711 continue;
712 }
713 return blob;
714 }
715 } else if (type == CSSLOT_CODEDIRECTORY && ntohl(blob->magic) == CSMAGIC_CODEDIRECTORY
716 && magic == CSMAGIC_CODEDIRECTORY) {
717 if (((vm_address_t)blob + ntohl(blob->length)) < (vm_address_t)blob) {
718 panic("CODE SIGNING: CS Blob length overflow for code directory blob at: %p", blob);
719 } else if (((vm_address_t)blob + ntohl(blob->length)) > (vm_address_t)(addr + length)) {
720 return NULL;
721 }
722 return blob;
723 }
724 return NULL;
725 }
726
727
728 const CS_GenericBlob *
csblob_find_blob(struct cs_blob * csblob,uint32_t type,uint32_t magic)729 csblob_find_blob(struct cs_blob *csblob, uint32_t type, uint32_t magic)
730 {
731 if ((csblob->csb_flags & CS_VALID) == 0) {
732 return NULL;
733 }
734 return csblob_find_blob_bytes((const uint8_t *)csblob->csb_mem_kaddr, csblob->csb_mem_size, type, magic);
735 }
736
737 static const uint8_t *
find_special_slot(const CS_CodeDirectory * cd,size_t slotsize,uint32_t slot)738 find_special_slot(const CS_CodeDirectory *cd, size_t slotsize, uint32_t slot)
739 {
740 /* there is no zero special slot since that is the first code slot */
741 if (ntohl(cd->nSpecialSlots) < slot || slot == 0) {
742 return NULL;
743 }
744
745 return (const uint8_t *)cd + ntohl(cd->hashOffset) - (slotsize * slot);
746 }
747
748 static uint8_t cshash_zero[CS_HASH_MAX_SIZE] = { 0 };
749
750 static int
csblob_find_special_slot_blob(struct cs_blob * csblob,uint32_t slot,uint32_t magic,const CS_GenericBlob ** out_start,size_t * out_length)751 csblob_find_special_slot_blob(struct cs_blob* csblob, uint32_t slot, uint32_t magic, const CS_GenericBlob **out_start, size_t *out_length)
752 {
753 uint8_t computed_hash[CS_HASH_MAX_SIZE];
754 const CS_GenericBlob *blob;
755 const CS_CodeDirectory *code_dir;
756 const uint8_t *embedded_hash;
757 union cs_hash_union context;
758
759 if (out_start) {
760 *out_start = NULL;
761 }
762 if (out_length) {
763 *out_length = 0;
764 }
765
766 if (csblob->csb_hashtype == NULL || csblob->csb_hashtype->cs_digest_size > sizeof(computed_hash)) {
767 return EBADEXEC;
768 }
769
770 code_dir = csblob->csb_cd;
771
772 blob = csblob_find_blob_bytes((const uint8_t *)csblob->csb_mem_kaddr, csblob->csb_mem_size, slot, magic);
773
774 embedded_hash = find_special_slot(code_dir, csblob->csb_hashtype->cs_size, slot);
775
776 if (embedded_hash == NULL) {
777 if (blob) {
778 return EBADEXEC;
779 }
780 return 0;
781 } else if (blob == NULL) {
782 if (memcmp(embedded_hash, cshash_zero, csblob->csb_hashtype->cs_size) != 0) {
783 return EBADEXEC;
784 } else {
785 return 0;
786 }
787 }
788
789 csblob->csb_hashtype->cs_init(&context);
790 csblob->csb_hashtype->cs_update(&context, blob, ntohl(blob->length));
791 csblob->csb_hashtype->cs_final(computed_hash, &context);
792
793 if (memcmp(computed_hash, embedded_hash, csblob->csb_hashtype->cs_size) != 0) {
794 return EBADEXEC;
795 }
796 if (out_start) {
797 *out_start = blob;
798 }
799 if (out_length) {
800 *out_length = ntohl(blob->length);
801 }
802
803 return 0;
804 }
805
806 int
csblob_get_entitlements(struct cs_blob * csblob,void ** out_start,size_t * out_length)807 csblob_get_entitlements(struct cs_blob *csblob, void **out_start, size_t *out_length)
808 {
809 uint8_t computed_hash[CS_HASH_MAX_SIZE];
810 const CS_GenericBlob *entitlements;
811 const CS_CodeDirectory *code_dir;
812 const uint8_t *embedded_hash;
813 union cs_hash_union context;
814
815 *out_start = NULL;
816 *out_length = 0;
817
818 if (csblob->csb_hashtype == NULL || csblob->csb_hashtype->cs_digest_size > sizeof(computed_hash)) {
819 return EBADEXEC;
820 }
821
822 code_dir = csblob->csb_cd;
823
824 if ((csblob->csb_flags & CS_VALID) == 0) {
825 entitlements = NULL;
826 } else {
827 entitlements = csblob->csb_entitlements_blob;
828 }
829 embedded_hash = find_special_slot(code_dir, csblob->csb_hashtype->cs_size, CSSLOT_ENTITLEMENTS);
830
831 if (embedded_hash == NULL) {
832 if (entitlements) {
833 return EBADEXEC;
834 }
835 return 0;
836 } else if (entitlements == NULL) {
837 if (memcmp(embedded_hash, cshash_zero, csblob->csb_hashtype->cs_size) != 0) {
838 return EBADEXEC;
839 } else {
840 return 0;
841 }
842 }
843
844 csblob->csb_hashtype->cs_init(&context);
845 csblob->csb_hashtype->cs_update(&context, entitlements, ntohl(entitlements->length));
846 csblob->csb_hashtype->cs_final(computed_hash, &context);
847
848 if (memcmp(computed_hash, embedded_hash, csblob->csb_hashtype->cs_size) != 0) {
849 return EBADEXEC;
850 }
851
852 *out_start = __DECONST(void *, entitlements);
853 *out_length = ntohl(entitlements->length);
854
855 return 0;
856 }
857
858 const CS_GenericBlob*
csblob_get_der_entitlements_unsafe(struct cs_blob * csblob)859 csblob_get_der_entitlements_unsafe(struct cs_blob * csblob)
860 {
861 if ((csblob->csb_flags & CS_VALID) == 0) {
862 return NULL;
863 }
864
865 return csblob->csb_der_entitlements_blob;
866 }
867
868 int
csblob_get_der_entitlements(struct cs_blob * csblob,const CS_GenericBlob ** out_start,size_t * out_length)869 csblob_get_der_entitlements(struct cs_blob *csblob, const CS_GenericBlob **out_start, size_t *out_length)
870 {
871 uint8_t computed_hash[CS_HASH_MAX_SIZE];
872 const CS_GenericBlob *der_entitlements;
873 const CS_CodeDirectory *code_dir;
874 const uint8_t *embedded_hash;
875 union cs_hash_union context;
876
877 *out_start = NULL;
878 *out_length = 0;
879
880 if (csblob->csb_hashtype == NULL || csblob->csb_hashtype->cs_digest_size > sizeof(computed_hash)) {
881 return EBADEXEC;
882 }
883
884 code_dir = csblob->csb_cd;
885
886 if ((csblob->csb_flags & CS_VALID) == 0) {
887 der_entitlements = NULL;
888 } else {
889 der_entitlements = csblob->csb_der_entitlements_blob;
890 }
891 embedded_hash = find_special_slot(code_dir, csblob->csb_hashtype->cs_size, CSSLOT_DER_ENTITLEMENTS);
892
893 if (embedded_hash == NULL) {
894 if (der_entitlements) {
895 return EBADEXEC;
896 }
897 return 0;
898 } else if (der_entitlements == NULL) {
899 if (memcmp(embedded_hash, cshash_zero, csblob->csb_hashtype->cs_size) != 0) {
900 return EBADEXEC;
901 } else {
902 return 0;
903 }
904 }
905
906 csblob->csb_hashtype->cs_init(&context);
907 csblob->csb_hashtype->cs_update(&context, der_entitlements, ntohl(der_entitlements->length));
908 csblob->csb_hashtype->cs_final(computed_hash, &context);
909
910 if (memcmp(computed_hash, embedded_hash, csblob->csb_hashtype->cs_size) != 0) {
911 return EBADEXEC;
912 }
913
914 *out_start = der_entitlements;
915 *out_length = ntohl(der_entitlements->length);
916
917 return 0;
918 }
919
920 static bool
ubc_cs_blob_pagewise_allocate(__unused vm_size_t size)921 ubc_cs_blob_pagewise_allocate(
922 __unused vm_size_t size)
923 {
924 #if CODE_SIGNING_MONITOR
925 /* If the monitor isn't enabled, then we don't need to page-align */
926 if (csm_enabled() == false) {
927 return false;
928 }
929
930 /*
931 * Small allocations can be maanged by the monitor itself. We only need to allocate
932 * page-wise when it is a sufficiently large allocation and the monitor cannot manage
933 * it on its own.
934 */
935 if (size <= csm_signature_size_limit()) {
936 return false;
937 }
938
939 return true;
940 #else
941 /* Without a monitor, we never need to page align */
942 return false;
943 #endif /* CODE_SIGNING_MONITOR */
944 }
945
946 int
csblob_register_profile(__unused struct cs_blob * csblob,__unused cs_profile_register_t * profile)947 csblob_register_profile(
948 __unused struct cs_blob *csblob,
949 __unused cs_profile_register_t *profile)
950 {
951 #if CODE_SIGNING_MONITOR
952 /* Profiles only need to be registered for monitor environments */
953 assert(profile->data != NULL);
954 assert(profile->size != 0);
955 assert(csblob != NULL);
956
957 kern_return_t kr = csm_register_provisioning_profile(
958 profile->uuid,
959 profile->data, profile->size);
960
961 if ((kr != KERN_SUCCESS) && (kr != KERN_ALREADY_IN_SET)) {
962 if (kr == KERN_NOT_SUPPORTED) {
963 return 0;
964 }
965 return EPERM;
966 }
967
968 /* Attempt to trust the profile */
969 kr = csm_trust_provisioning_profile(
970 profile->uuid,
971 profile->sig_data, profile->sig_size);
972
973 if (kr != KERN_SUCCESS) {
974 return EPERM;
975 }
976
977 /* Associate the profile with the monitor's signature object */
978 kr = csm_associate_provisioning_profile(
979 csblob->csb_csm_obj,
980 profile->uuid);
981
982 if (kr != KERN_SUCCESS) {
983 return EPERM;
984 }
985
986 return 0;
987 #else
988 return 0;
989 #endif /* CODE_SIGNING_MONITOR */
990 }
991
992 int
csblob_register_profile_uuid(struct cs_blob * csblob,const uuid_t profile_uuid,void * profile_addr,vm_size_t profile_size)993 csblob_register_profile_uuid(
994 struct cs_blob *csblob,
995 const uuid_t profile_uuid,
996 void *profile_addr,
997 vm_size_t profile_size)
998 {
999 cs_profile_register_t profile = {
1000 .sig_data = NULL,
1001 .sig_size = 0,
1002 .data = profile_addr,
1003 .size = profile_size
1004 };
1005
1006 /* Copy the provided UUID */
1007 memcpy(profile.uuid, profile_uuid, sizeof(profile.uuid));
1008
1009 return csblob_register_profile(csblob, &profile);
1010 }
1011
1012 /*
1013 * CODESIGNING
1014 * End of routines to navigate code signing data structures in the kernel.
1015 */
1016
1017
1018
1019 /*
1020 * ubc_info_init
1021 *
1022 * Allocate and attach an empty ubc_info structure to a vnode
1023 *
1024 * Parameters: vp Pointer to the vnode
1025 *
1026 * Returns: 0 Success
1027 * vnode_size:ENOMEM Not enough space
1028 * vnode_size:??? Other error from vnode_getattr
1029 *
1030 */
1031 int
ubc_info_init(struct vnode * vp)1032 ubc_info_init(struct vnode *vp)
1033 {
1034 return ubc_info_init_internal(vp, 0, 0);
1035 }
1036
1037
1038 /*
1039 * ubc_info_init_withsize
1040 *
1041 * Allocate and attach a sized ubc_info structure to a vnode
1042 *
1043 * Parameters: vp Pointer to the vnode
1044 * filesize The size of the file
1045 *
1046 * Returns: 0 Success
1047 * vnode_size:ENOMEM Not enough space
1048 * vnode_size:??? Other error from vnode_getattr
1049 */
1050 int
ubc_info_init_withsize(struct vnode * vp,off_t filesize)1051 ubc_info_init_withsize(struct vnode *vp, off_t filesize)
1052 {
1053 return ubc_info_init_internal(vp, 1, filesize);
1054 }
1055
1056
1057 /*
1058 * ubc_info_init_internal
1059 *
1060 * Allocate and attach a ubc_info structure to a vnode
1061 *
1062 * Parameters: vp Pointer to the vnode
1063 * withfsize{0,1} Zero if the size should be obtained
1064 * from the vnode; otherwise, use filesize
1065 * filesize The size of the file, if withfsize == 1
1066 *
1067 * Returns: 0 Success
1068 * vnode_size:ENOMEM Not enough space
1069 * vnode_size:??? Other error from vnode_getattr
1070 *
1071 * Notes: We call a blocking zalloc(), and the zone was created as an
1072 * expandable and collectable zone, so if no memory is available,
1073 * it is possible for zalloc() to block indefinitely. zalloc()
1074 * may also panic if the zone of zones is exhausted, since it's
1075 * NOT expandable.
1076 *
1077 * We unconditionally call vnode_pager_setup(), even if this is
1078 * a reuse of a ubc_info; in that case, we should probably assert
1079 * that it does not already have a pager association, but do not.
1080 *
1081 * Since memory_object_create_named() can only fail from receiving
1082 * an invalid pager argument, the explicit check and panic is
1083 * merely precautionary.
1084 */
1085 static int
ubc_info_init_internal(vnode_t vp,int withfsize,off_t filesize)1086 ubc_info_init_internal(vnode_t vp, int withfsize, off_t filesize)
1087 {
1088 struct ubc_info *uip;
1089 void * pager;
1090 int error = 0;
1091 kern_return_t kret;
1092 memory_object_control_t control;
1093
1094 uip = vp->v_ubcinfo;
1095
1096 /*
1097 * If there is not already a ubc_info attached to the vnode, we
1098 * attach one; otherwise, we will reuse the one that's there.
1099 */
1100 if (uip == UBC_INFO_NULL) {
1101 uip = zalloc_flags(ubc_info_zone, Z_WAITOK | Z_ZERO);
1102
1103 uip->ui_vnode = vp;
1104 uip->ui_flags = UI_INITED;
1105 uip->ui_ucred = NOCRED;
1106 }
1107 assert(uip->ui_flags != UI_NONE);
1108 assert(uip->ui_vnode == vp);
1109
1110 /* now set this ubc_info in the vnode */
1111 vp->v_ubcinfo = uip;
1112
1113 /*
1114 * Allocate a pager object for this vnode
1115 *
1116 * XXX The value of the pager parameter is currently ignored.
1117 * XXX Presumably, this API changed to avoid the race between
1118 * XXX setting the pager and the UI_HASPAGER flag.
1119 */
1120 pager = (void *)vnode_pager_setup(vp, uip->ui_pager);
1121 assert(pager);
1122
1123 /*
1124 * Explicitly set the pager into the ubc_info, after setting the
1125 * UI_HASPAGER flag.
1126 */
1127 SET(uip->ui_flags, UI_HASPAGER);
1128 uip->ui_pager = pager;
1129
1130 /*
1131 * Note: We can not use VNOP_GETATTR() to get accurate
1132 * value of ui_size because this may be an NFS vnode, and
1133 * nfs_getattr() can call vinvalbuf(); if this happens,
1134 * ubc_info is not set up to deal with that event.
1135 * So use bogus size.
1136 */
1137
1138 /*
1139 * create a vnode - vm_object association
1140 * memory_object_create_named() creates a "named" reference on the
1141 * memory object we hold this reference as long as the vnode is
1142 * "alive." Since memory_object_create_named() took its own reference
1143 * on the vnode pager we passed it, we can drop the reference
1144 * vnode_pager_setup() returned here.
1145 */
1146 kret = memory_object_create_named(pager,
1147 (memory_object_size_t)uip->ui_size, &control);
1148 vnode_pager_deallocate(pager);
1149 if (kret != KERN_SUCCESS) {
1150 panic("ubc_info_init: memory_object_create_named returned %d", kret);
1151 }
1152
1153 assert(control);
1154 uip->ui_control = control; /* cache the value of the mo control */
1155 SET(uip->ui_flags, UI_HASOBJREF); /* with a named reference */
1156
1157 if (withfsize == 0) {
1158 /* initialize the size */
1159 error = vnode_size(vp, &uip->ui_size, vfs_context_current());
1160 if (error) {
1161 uip->ui_size = 0;
1162 }
1163 } else {
1164 uip->ui_size = filesize;
1165 }
1166 vp->v_lflag |= VNAMED_UBC; /* vnode has a named ubc reference */
1167
1168 return error;
1169 }
1170
1171
1172 /*
1173 * ubc_info_free
1174 *
1175 * Free a ubc_info structure
1176 *
1177 * Parameters: uip A pointer to the ubc_info to free
1178 *
1179 * Returns: (void)
1180 *
1181 * Notes: If there is a credential that has subsequently been associated
1182 * with the ubc_info, the reference to the credential is dropped.
1183 *
1184 * It's actually impossible for a ubc_info.ui_control to take the
1185 * value MEMORY_OBJECT_CONTROL_NULL.
1186 */
1187 static void
ubc_info_free(struct ubc_info * uip)1188 ubc_info_free(struct ubc_info *uip)
1189 {
1190 if (IS_VALID_CRED(uip->ui_ucred)) {
1191 kauth_cred_unref(&uip->ui_ucred);
1192 }
1193
1194 if (uip->ui_control != MEMORY_OBJECT_CONTROL_NULL) {
1195 memory_object_control_deallocate(uip->ui_control);
1196 }
1197
1198 cluster_release(uip);
1199 ubc_cs_free(uip);
1200
1201 zfree(ubc_info_zone, uip);
1202 return;
1203 }
1204
1205
1206 void
ubc_info_deallocate(struct ubc_info * uip)1207 ubc_info_deallocate(struct ubc_info *uip)
1208 {
1209 ubc_info_free(uip);
1210 }
1211
1212 /*
1213 * ubc_setsize_ex
1214 *
1215 * Tell the VM that the the size of the file represented by the vnode has
1216 * changed
1217 *
1218 * Parameters: vp The vp whose backing file size is
1219 * being changed
1220 * nsize The new size of the backing file
1221 * opts Options
1222 *
1223 * Returns: EINVAL for new size < 0
1224 * ENOENT if no UBC info exists
1225 * EAGAIN if UBC_SETSIZE_NO_FS_REENTRY option is set and new_size < old size
1226 * Other errors (mapped to errno_t) returned by VM functions
1227 *
1228 * Notes: This function will indicate success if the new size is the
1229 * same or larger than the old size (in this case, the
1230 * remainder of the file will require modification or use of
1231 * an existing upl to access successfully).
1232 *
1233 * This function will fail if the new file size is smaller,
1234 * and the memory region being invalidated was unable to
1235 * actually be invalidated and/or the last page could not be
1236 * flushed, if the new size is not aligned to a page
1237 * boundary. This is usually indicative of an I/O error.
1238 */
1239 errno_t
ubc_setsize_ex(struct vnode * vp,off_t nsize,ubc_setsize_opts_t opts)1240 ubc_setsize_ex(struct vnode *vp, off_t nsize, ubc_setsize_opts_t opts)
1241 {
1242 off_t osize; /* ui_size before change */
1243 off_t lastpg, olastpgend, lastoff;
1244 struct ubc_info *uip;
1245 memory_object_control_t control;
1246 kern_return_t kret = KERN_SUCCESS;
1247
1248 if (nsize < (off_t)0) {
1249 return EINVAL;
1250 }
1251
1252 if (!UBCINFOEXISTS(vp)) {
1253 return ENOENT;
1254 }
1255
1256 uip = vp->v_ubcinfo;
1257 osize = uip->ui_size;
1258
1259 if (ISSET(opts, UBC_SETSIZE_NO_FS_REENTRY) && nsize < osize) {
1260 return EAGAIN;
1261 }
1262
1263 /*
1264 * Update the size before flushing the VM
1265 */
1266 uip->ui_size = nsize;
1267
1268 if (nsize >= osize) { /* Nothing more to do */
1269 if (nsize > osize) {
1270 lock_vnode_and_post(vp, NOTE_EXTEND);
1271 }
1272
1273 return 0;
1274 }
1275
1276 /*
1277 * When the file shrinks, invalidate the pages beyond the
1278 * new size. Also get rid of garbage beyond nsize on the
1279 * last page. The ui_size already has the nsize, so any
1280 * subsequent page-in will zero-fill the tail properly
1281 */
1282 lastpg = trunc_page_64(nsize);
1283 olastpgend = round_page_64(osize);
1284 control = uip->ui_control;
1285 assert(control);
1286 lastoff = (nsize & PAGE_MASK_64);
1287
1288 if (lastoff) {
1289 upl_t upl;
1290 upl_page_info_t *pl;
1291
1292 /*
1293 * new EOF ends up in the middle of a page
1294 * zero the tail of this page if it's currently
1295 * present in the cache
1296 */
1297 kret = ubc_create_upl_kernel(vp, lastpg, PAGE_SIZE, &upl, &pl, UPL_SET_LITE | UPL_WILL_MODIFY, VM_KERN_MEMORY_FILE);
1298
1299 if (kret != KERN_SUCCESS) {
1300 panic("ubc_setsize: ubc_create_upl (error = %d)", kret);
1301 }
1302
1303 if (upl_valid_page(pl, 0)) {
1304 cluster_zero(upl, (uint32_t)lastoff, PAGE_SIZE - (uint32_t)lastoff, NULL);
1305 }
1306
1307 ubc_upl_abort_range(upl, 0, PAGE_SIZE, UPL_ABORT_FREE_ON_EMPTY);
1308
1309 lastpg += PAGE_SIZE_64;
1310 }
1311 if (olastpgend > lastpg) {
1312 int flags;
1313
1314 if (lastpg == 0) {
1315 flags = MEMORY_OBJECT_DATA_FLUSH_ALL;
1316 } else {
1317 flags = MEMORY_OBJECT_DATA_FLUSH;
1318 }
1319 /*
1320 * invalidate the pages beyond the new EOF page
1321 *
1322 */
1323 kret = memory_object_lock_request(control,
1324 (memory_object_offset_t)lastpg,
1325 (memory_object_size_t)(olastpgend - lastpg), NULL, NULL,
1326 MEMORY_OBJECT_RETURN_NONE, flags, VM_PROT_NO_CHANGE);
1327 if (kret != KERN_SUCCESS) {
1328 printf("ubc_setsize: invalidate failed (error = %d)\n", kret);
1329 }
1330 }
1331 return mach_to_bsd_errno(kret);
1332 }
1333
1334 // Returns true for success
1335 int
ubc_setsize(vnode_t vp,off_t nsize)1336 ubc_setsize(vnode_t vp, off_t nsize)
1337 {
1338 return ubc_setsize_ex(vp, nsize, 0) == 0;
1339 }
1340
1341 /*
1342 * ubc_getsize
1343 *
1344 * Get the size of the file assocated with the specified vnode
1345 *
1346 * Parameters: vp The vnode whose size is of interest
1347 *
1348 * Returns: 0 There is no ubc_info associated with
1349 * this vnode, or the size is zero
1350 * !0 The size of the file
1351 *
1352 * Notes: Using this routine, it is not possible for a caller to
1353 * successfully distinguish between a vnode associate with a zero
1354 * length file, and a vnode with no associated ubc_info. The
1355 * caller therefore needs to not care, or needs to ensure that
1356 * they have previously successfully called ubc_info_init() or
1357 * ubc_info_init_withsize().
1358 */
1359 off_t
ubc_getsize(struct vnode * vp)1360 ubc_getsize(struct vnode *vp)
1361 {
1362 /* people depend on the side effect of this working this way
1363 * as they call this for directory
1364 */
1365 if (!UBCINFOEXISTS(vp)) {
1366 return (off_t)0;
1367 }
1368 return vp->v_ubcinfo->ui_size;
1369 }
1370
1371
1372 /*
1373 * ubc_umount
1374 *
1375 * Call ubc_msync(vp, 0, EOF, NULL, UBC_PUSHALL) on all the vnodes for this
1376 * mount point
1377 *
1378 * Parameters: mp The mount point
1379 *
1380 * Returns: 0 Success
1381 *
1382 * Notes: There is no failure indication for this function.
1383 *
1384 * This function is used in the unmount path; since it may block
1385 * I/O indefinitely, it should not be used in the forced unmount
1386 * path, since a device unavailability could also block that
1387 * indefinitely.
1388 *
1389 * Because there is no device ejection interlock on USB, FireWire,
1390 * or similar devices, it's possible that an ejection that begins
1391 * subsequent to the vnode_iterate() completing, either on one of
1392 * those devices, or a network mount for which the server quits
1393 * responding, etc., may cause the caller to block indefinitely.
1394 */
1395 __private_extern__ int
ubc_umount(struct mount * mp)1396 ubc_umount(struct mount *mp)
1397 {
1398 vnode_iterate(mp, 0, ubc_umcallback, 0);
1399 return 0;
1400 }
1401
1402
1403 /*
1404 * ubc_umcallback
1405 *
1406 * Used by ubc_umount() as an internal implementation detail; see ubc_umount()
1407 * and vnode_iterate() for details of implementation.
1408 */
1409 static int
ubc_umcallback(vnode_t vp,__unused void * args)1410 ubc_umcallback(vnode_t vp, __unused void * args)
1411 {
1412 if (UBCINFOEXISTS(vp)) {
1413 (void) ubc_msync(vp, (off_t)0, ubc_getsize(vp), NULL, UBC_PUSHALL);
1414 }
1415 return VNODE_RETURNED;
1416 }
1417
1418
1419 /*
1420 * ubc_getcred
1421 *
1422 * Get the credentials currently active for the ubc_info associated with the
1423 * vnode.
1424 *
1425 * Parameters: vp The vnode whose ubc_info credentials
1426 * are to be retrieved
1427 *
1428 * Returns: !NOCRED The credentials
1429 * NOCRED If there is no ubc_info for the vnode,
1430 * or if there is one, but it has not had
1431 * any credentials associated with it.
1432 */
1433 kauth_cred_t
ubc_getcred(struct vnode * vp)1434 ubc_getcred(struct vnode *vp)
1435 {
1436 if (UBCINFOEXISTS(vp)) {
1437 return vp->v_ubcinfo->ui_ucred;
1438 }
1439
1440 return NOCRED;
1441 }
1442
1443
1444 /*
1445 * ubc_setthreadcred
1446 *
1447 * If they are not already set, set the credentials of the ubc_info structure
1448 * associated with the vnode to those of the supplied thread; otherwise leave
1449 * them alone.
1450 *
1451 * Parameters: vp The vnode whose ubc_info creds are to
1452 * be set
1453 * p The process whose credentials are to
1454 * be used, if not running on an assumed
1455 * credential
1456 * thread The thread whose credentials are to
1457 * be used
1458 *
1459 * Returns: 1 This vnode has no associated ubc_info
1460 * 0 Success
1461 *
1462 * Notes: This function is generally used only in the following cases:
1463 *
1464 * o a memory mapped file via the mmap() system call
1465 * o a swap store backing file
1466 * o subsequent to a successful write via vn_write()
1467 *
1468 * The information is then used by the NFS client in order to
1469 * cons up a wire message in either the page-in or page-out path.
1470 *
1471 * There are two potential problems with the use of this API:
1472 *
1473 * o Because the write path only set it on a successful
1474 * write, there is a race window between setting the
1475 * credential and its use to evict the pages to the
1476 * remote file server
1477 *
1478 * o Because a page-in may occur prior to a write, the
1479 * credential may not be set at this time, if the page-in
1480 * is not the result of a mapping established via mmap().
1481 *
1482 * In both these cases, this will be triggered from the paging
1483 * path, which will instead use the credential of the current
1484 * process, which in this case is either the dynamic_pager or
1485 * the kernel task, both of which utilize "root" credentials.
1486 *
1487 * This may potentially permit operations to occur which should
1488 * be denied, or it may cause to be denied operations which
1489 * should be permitted, depending on the configuration of the NFS
1490 * server.
1491 */
1492 int
ubc_setthreadcred(struct vnode * vp,proc_t p,thread_t thread)1493 ubc_setthreadcred(struct vnode *vp, proc_t p, thread_t thread)
1494 {
1495 #pragma unused(p, thread)
1496 assert(p == current_proc());
1497 assert(thread == current_thread());
1498
1499 return ubc_setcred(vp, kauth_cred_get());
1500 }
1501
1502
1503 /*
1504 * ubc_setcred
1505 *
1506 * If they are not already set, set the credentials of the ubc_info structure
1507 * associated with the vnode to those specified; otherwise leave them
1508 * alone.
1509 *
1510 * Parameters: vp The vnode whose ubc_info creds are to
1511 * be set
1512 * ucred The credentials to use
1513 *
1514 * Returns: 0 This vnode has no associated ubc_info
1515 * 1 Success
1516 *
1517 * Notes: The return values for this function are inverted from nearly
1518 * all other uses in the kernel.
1519 *
1520 * See also ubc_setthreadcred(), above.
1521 */
1522 int
ubc_setcred(struct vnode * vp,kauth_cred_t ucred)1523 ubc_setcred(struct vnode *vp, kauth_cred_t ucred)
1524 {
1525 struct ubc_info *uip;
1526
1527 /* If there is no ubc_info, deny the operation */
1528 if (!UBCINFOEXISTS(vp)) {
1529 return 0;
1530 }
1531
1532 /*
1533 * Check to see if there is already a credential reference in the
1534 * ubc_info; if there is not, take one on the supplied credential.
1535 */
1536 vnode_lock(vp);
1537 uip = vp->v_ubcinfo;
1538 if (!IS_VALID_CRED(uip->ui_ucred)) {
1539 kauth_cred_ref(ucred);
1540 uip->ui_ucred = ucred;
1541 }
1542 vnode_unlock(vp);
1543
1544 return 1;
1545 }
1546
1547 /*
1548 * ubc_getpager
1549 *
1550 * Get the pager associated with the ubc_info associated with the vnode.
1551 *
1552 * Parameters: vp The vnode to obtain the pager from
1553 *
1554 * Returns: !VNODE_PAGER_NULL The memory_object_t for the pager
1555 * VNODE_PAGER_NULL There is no ubc_info for this vnode
1556 *
1557 * Notes: For each vnode that has a ubc_info associated with it, that
1558 * ubc_info SHALL have a pager associated with it, so in the
1559 * normal case, it's impossible to return VNODE_PAGER_NULL for
1560 * a vnode with an associated ubc_info.
1561 */
1562 __private_extern__ memory_object_t
ubc_getpager(struct vnode * vp)1563 ubc_getpager(struct vnode *vp)
1564 {
1565 if (UBCINFOEXISTS(vp)) {
1566 return vp->v_ubcinfo->ui_pager;
1567 }
1568
1569 return 0;
1570 }
1571
1572
1573 /*
1574 * ubc_getobject
1575 *
1576 * Get the memory object control associated with the ubc_info associated with
1577 * the vnode
1578 *
1579 * Parameters: vp The vnode to obtain the memory object
1580 * from
1581 * flags DEPRECATED
1582 *
1583 * Returns: !MEMORY_OBJECT_CONTROL_NULL
1584 * MEMORY_OBJECT_CONTROL_NULL
1585 *
1586 * Notes: Historically, if the flags were not "do not reactivate", this
1587 * function would look up the memory object using the pager if
1588 * it did not exist (this could be the case if the vnode had
1589 * been previously reactivated). The flags would also permit a
1590 * hold to be requested, which would have created an object
1591 * reference, if one had not already existed. This usage is
1592 * deprecated, as it would permit a race between finding and
1593 * taking the reference vs. a single reference being dropped in
1594 * another thread.
1595 */
1596 memory_object_control_t
ubc_getobject(struct vnode * vp,__unused int flags)1597 ubc_getobject(struct vnode *vp, __unused int flags)
1598 {
1599 if (UBCINFOEXISTS(vp)) {
1600 return vp->v_ubcinfo->ui_control;
1601 }
1602
1603 return MEMORY_OBJECT_CONTROL_NULL;
1604 }
1605
1606 /*
1607 * ubc_blktooff
1608 *
1609 * Convert a given block number to a memory backing object (file) offset for a
1610 * given vnode
1611 *
1612 * Parameters: vp The vnode in which the block is located
1613 * blkno The block number to convert
1614 *
1615 * Returns: !-1 The offset into the backing object
1616 * -1 There is no ubc_info associated with
1617 * the vnode
1618 * -1 An error occurred in the underlying VFS
1619 * while translating the block to an
1620 * offset; the most likely cause is that
1621 * the caller specified a block past the
1622 * end of the file, but this could also be
1623 * any other error from VNOP_BLKTOOFF().
1624 *
1625 * Note: Representing the error in band loses some information, but does
1626 * not occlude a valid offset, since an off_t of -1 is normally
1627 * used to represent EOF. If we had a more reliable constant in
1628 * our header files for it (i.e. explicitly cast to an off_t), we
1629 * would use it here instead.
1630 */
1631 off_t
ubc_blktooff(vnode_t vp,daddr64_t blkno)1632 ubc_blktooff(vnode_t vp, daddr64_t blkno)
1633 {
1634 off_t file_offset = -1;
1635 int error;
1636
1637 if (UBCINFOEXISTS(vp)) {
1638 error = VNOP_BLKTOOFF(vp, blkno, &file_offset);
1639 if (error) {
1640 file_offset = -1;
1641 }
1642 }
1643
1644 return file_offset;
1645 }
1646
1647
1648 /*
1649 * ubc_offtoblk
1650 *
1651 * Convert a given offset in a memory backing object into a block number for a
1652 * given vnode
1653 *
1654 * Parameters: vp The vnode in which the offset is
1655 * located
1656 * offset The offset into the backing object
1657 *
1658 * Returns: !-1 The returned block number
1659 * -1 There is no ubc_info associated with
1660 * the vnode
1661 * -1 An error occurred in the underlying VFS
1662 * while translating the block to an
1663 * offset; the most likely cause is that
1664 * the caller specified a block past the
1665 * end of the file, but this could also be
1666 * any other error from VNOP_OFFTOBLK().
1667 *
1668 * Note: Representing the error in band loses some information, but does
1669 * not occlude a valid block number, since block numbers exceed
1670 * the valid range for offsets, due to their relative sizes. If
1671 * we had a more reliable constant than -1 in our header files
1672 * for it (i.e. explicitly cast to an daddr64_t), we would use it
1673 * here instead.
1674 */
1675 daddr64_t
ubc_offtoblk(vnode_t vp,off_t offset)1676 ubc_offtoblk(vnode_t vp, off_t offset)
1677 {
1678 daddr64_t blkno = -1;
1679 int error = 0;
1680
1681 if (UBCINFOEXISTS(vp)) {
1682 error = VNOP_OFFTOBLK(vp, offset, &blkno);
1683 if (error) {
1684 blkno = -1;
1685 }
1686 }
1687
1688 return blkno;
1689 }
1690
1691
1692 /*
1693 * ubc_pages_resident
1694 *
1695 * Determine whether or not a given vnode has pages resident via the memory
1696 * object control associated with the ubc_info associated with the vnode
1697 *
1698 * Parameters: vp The vnode we want to know about
1699 *
1700 * Returns: 1 Yes
1701 * 0 No
1702 */
1703 int
ubc_pages_resident(vnode_t vp)1704 ubc_pages_resident(vnode_t vp)
1705 {
1706 kern_return_t kret;
1707 boolean_t has_pages_resident;
1708
1709 if (!UBCINFOEXISTS(vp)) {
1710 return 0;
1711 }
1712
1713 /*
1714 * The following call may fail if an invalid ui_control is specified,
1715 * or if there is no VM object associated with the control object. In
1716 * either case, reacting to it as if there were no pages resident will
1717 * result in correct behavior.
1718 */
1719 kret = memory_object_pages_resident(vp->v_ubcinfo->ui_control, &has_pages_resident);
1720
1721 if (kret != KERN_SUCCESS) {
1722 return 0;
1723 }
1724
1725 if (has_pages_resident == TRUE) {
1726 return 1;
1727 }
1728
1729 return 0;
1730 }
1731
1732 /*
1733 * ubc_msync
1734 *
1735 * Clean and/or invalidate a range in the memory object that backs this vnode
1736 *
1737 * Parameters: vp The vnode whose associated ubc_info's
1738 * associated memory object is to have a
1739 * range invalidated within it
1740 * beg_off The start of the range, as an offset
1741 * end_off The end of the range, as an offset
1742 * resid_off The address of an off_t supplied by the
1743 * caller; may be set to NULL to ignore
1744 * flags See ubc_msync_internal()
1745 *
1746 * Returns: 0 Success
1747 * !0 Failure; an errno is returned
1748 *
1749 * Implicit Returns:
1750 * *resid_off, modified If non-NULL, the contents are ALWAYS
1751 * modified; they are initialized to the
1752 * beg_off, and in case of an I/O error,
1753 * the difference between beg_off and the
1754 * current value will reflect what was
1755 * able to be written before the error
1756 * occurred. If no error is returned, the
1757 * value of the resid_off is undefined; do
1758 * NOT use it in place of end_off if you
1759 * intend to increment from the end of the
1760 * last call and call iteratively.
1761 *
1762 * Notes: see ubc_msync_internal() for more detailed information.
1763 *
1764 */
1765 errno_t
ubc_msync(vnode_t vp,off_t beg_off,off_t end_off,off_t * resid_off,int flags)1766 ubc_msync(vnode_t vp, off_t beg_off, off_t end_off, off_t *resid_off, int flags)
1767 {
1768 int retval;
1769 int io_errno = 0;
1770
1771 if (resid_off) {
1772 *resid_off = beg_off;
1773 }
1774
1775 retval = ubc_msync_internal(vp, beg_off, end_off, resid_off, flags, &io_errno);
1776
1777 if (retval == 0 && io_errno == 0) {
1778 return EINVAL;
1779 }
1780 return io_errno;
1781 }
1782
1783
1784 /*
1785 * ubc_msync_internal
1786 *
1787 * Clean and/or invalidate a range in the memory object that backs this vnode
1788 *
1789 * Parameters: vp The vnode whose associated ubc_info's
1790 * associated memory object is to have a
1791 * range invalidated within it
1792 * beg_off The start of the range, as an offset
1793 * end_off The end of the range, as an offset
1794 * resid_off The address of an off_t supplied by the
1795 * caller; may be set to NULL to ignore
1796 * flags MUST contain at least one of the flags
1797 * UBC_INVALIDATE, UBC_PUSHDIRTY, or
1798 * UBC_PUSHALL; if UBC_PUSHDIRTY is used,
1799 * UBC_SYNC may also be specified to cause
1800 * this function to block until the
1801 * operation is complete. The behavior
1802 * of UBC_SYNC is otherwise undefined.
1803 * io_errno The address of an int to contain the
1804 * errno from a failed I/O operation, if
1805 * one occurs; may be set to NULL to
1806 * ignore
1807 *
1808 * Returns: 1 Success
1809 * 0 Failure
1810 *
1811 * Implicit Returns:
1812 * *resid_off, modified The contents of this offset MAY be
1813 * modified; in case of an I/O error, the
1814 * difference between beg_off and the
1815 * current value will reflect what was
1816 * able to be written before the error
1817 * occurred.
1818 * *io_errno, modified The contents of this offset are set to
1819 * an errno, if an error occurs; if the
1820 * caller supplies an io_errno parameter,
1821 * they should be careful to initialize it
1822 * to 0 before calling this function to
1823 * enable them to distinguish an error
1824 * with a valid *resid_off from an invalid
1825 * one, and to avoid potentially falsely
1826 * reporting an error, depending on use.
1827 *
1828 * Notes: If there is no ubc_info associated with the vnode supplied,
1829 * this function immediately returns success.
1830 *
1831 * If the value of end_off is less than or equal to beg_off, this
1832 * function immediately returns success; that is, end_off is NOT
1833 * inclusive.
1834 *
1835 * IMPORTANT: one of the flags UBC_INVALIDATE, UBC_PUSHDIRTY, or
1836 * UBC_PUSHALL MUST be specified; that is, it is NOT possible to
1837 * attempt to block on in-progress I/O by calling this function
1838 * with UBC_PUSHDIRTY, and then later call it with just UBC_SYNC
1839 * in order to block pending on the I/O already in progress.
1840 *
1841 * The start offset is truncated to the page boundary and the
1842 * size is adjusted to include the last page in the range; that
1843 * is, end_off on exactly a page boundary will not change if it
1844 * is rounded, and the range of bytes written will be from the
1845 * truncate beg_off to the rounded (end_off - 1).
1846 */
1847 static int
ubc_msync_internal(vnode_t vp,off_t beg_off,off_t end_off,off_t * resid_off,int flags,int * io_errno)1848 ubc_msync_internal(vnode_t vp, off_t beg_off, off_t end_off, off_t *resid_off, int flags, int *io_errno)
1849 {
1850 memory_object_size_t tsize;
1851 kern_return_t kret;
1852 int request_flags = 0;
1853 int flush_flags = MEMORY_OBJECT_RETURN_NONE;
1854
1855 if (!UBCINFOEXISTS(vp)) {
1856 return 0;
1857 }
1858 if ((flags & (UBC_INVALIDATE | UBC_PUSHDIRTY | UBC_PUSHALL)) == 0) {
1859 return 0;
1860 }
1861 if (end_off <= beg_off) {
1862 return 1;
1863 }
1864
1865 if (flags & UBC_INVALIDATE) {
1866 /*
1867 * discard the resident pages
1868 */
1869 request_flags = (MEMORY_OBJECT_DATA_FLUSH | MEMORY_OBJECT_DATA_NO_CHANGE);
1870 }
1871
1872 if (flags & UBC_SYNC) {
1873 /*
1874 * wait for all the I/O to complete before returning
1875 */
1876 request_flags |= MEMORY_OBJECT_IO_SYNC;
1877 }
1878
1879 if (flags & UBC_PUSHDIRTY) {
1880 /*
1881 * we only return the dirty pages in the range
1882 */
1883 flush_flags = MEMORY_OBJECT_RETURN_DIRTY;
1884 }
1885
1886 if (flags & UBC_PUSHALL) {
1887 /*
1888 * then return all the interesting pages in the range (both
1889 * dirty and precious) to the pager
1890 */
1891 flush_flags = MEMORY_OBJECT_RETURN_ALL;
1892 }
1893
1894 beg_off = trunc_page_64(beg_off);
1895 end_off = round_page_64(end_off);
1896 tsize = (memory_object_size_t)end_off - beg_off;
1897
1898 /* flush and/or invalidate pages in the range requested */
1899 kret = memory_object_lock_request(vp->v_ubcinfo->ui_control,
1900 beg_off, tsize,
1901 (memory_object_offset_t *)resid_off,
1902 io_errno, flush_flags, request_flags,
1903 VM_PROT_NO_CHANGE);
1904
1905 return (kret == KERN_SUCCESS) ? 1 : 0;
1906 }
1907
1908
1909 /*
1910 * ubc_map
1911 *
1912 * Explicitly map a vnode that has an associate ubc_info, and add a reference
1913 * to it for the ubc system, if there isn't one already, so it will not be
1914 * recycled while it's in use, and set flags on the ubc_info to indicate that
1915 * we have done this
1916 *
1917 * Parameters: vp The vnode to map
1918 * flags The mapping flags for the vnode; this
1919 * will be a combination of one or more of
1920 * PROT_READ, PROT_WRITE, and PROT_EXEC
1921 *
1922 * Returns: 0 Success
1923 * EPERM Permission was denied
1924 *
1925 * Notes: An I/O reference on the vnode must already be held on entry
1926 *
1927 * If there is no ubc_info associated with the vnode, this function
1928 * will return success.
1929 *
1930 * If a permission error occurs, this function will return
1931 * failure; all other failures will cause this function to return
1932 * success.
1933 *
1934 * IMPORTANT: This is an internal use function, and its symbols
1935 * are not exported, hence its error checking is not very robust.
1936 * It is primarily used by:
1937 *
1938 * o mmap(), when mapping a file
1939 * o When mapping a shared file (a shared library in the
1940 * shared segment region)
1941 * o When loading a program image during the exec process
1942 *
1943 * ...all of these uses ignore the return code, and any fault that
1944 * results later because of a failure is handled in the fix-up path
1945 * of the fault handler. The interface exists primarily as a
1946 * performance hint.
1947 *
1948 * Given that third party implementation of the type of interfaces
1949 * that would use this function, such as alternative executable
1950 * formats, etc., are unsupported, this function is not exported
1951 * for general use.
1952 *
1953 * The extra reference is held until the VM system unmaps the
1954 * vnode from its own context to maintain a vnode reference in
1955 * cases like open()/mmap()/close(), which leave the backing
1956 * object referenced by a mapped memory region in a process
1957 * address space.
1958 */
1959 __private_extern__ int
ubc_map(vnode_t vp,int flags)1960 ubc_map(vnode_t vp, int flags)
1961 {
1962 struct ubc_info *uip;
1963 int error = 0;
1964 int need_ref = 0;
1965 int need_wakeup = 0;
1966
1967 /*
1968 * This call is non-blocking and does not ever fail but it can
1969 * only be made when there is other explicit synchronization
1970 * with reclaiming of the vnode which, in this path, is provided
1971 * by the "mapping in progress" counter.
1972 */
1973 error = vnode_getalways_from_pager(vp);
1974 if (error != 0) {
1975 /* This can't happen */
1976 panic("vnode_getalways returned %d for vp %p", error, vp);
1977 }
1978
1979 if (UBCINFOEXISTS(vp) == 0) {
1980 /*
1981 * The vnode might have started being reclaimed (forced unmount?) while
1982 * this call was in progress.
1983 * The caller is not expecting an error but is expected to figure out that
1984 * the "pager" it used for this vnode is now gone.
1985 */
1986 error = 0;
1987 } else {
1988 vnode_lock(vp);
1989 uip = vp->v_ubcinfo;
1990
1991 while (ISSET(uip->ui_flags, UI_MAPBUSY)) {
1992 SET(uip->ui_flags, UI_MAPWAITING);
1993 (void) msleep(&uip->ui_flags, &vp->v_lock,
1994 PRIBIO, "ubc_map", NULL);
1995 }
1996 SET(uip->ui_flags, UI_MAPBUSY);
1997 vnode_unlock(vp);
1998
1999 error = VNOP_MMAP(vp, flags, vfs_context_current());
2000
2001 /*
2002 * rdar://problem/22587101 required that we stop propagating
2003 * EPERM up the stack. Otherwise, we would have to funnel up
2004 * the error at all the call sites for memory_object_map().
2005 * The risk is in having to undo the map/object/entry state at
2006 * all these call sites. It would also affect more than just mmap()
2007 * e.g. vm_remap().
2008 *
2009 * if (error != EPERM)
2010 * error = 0;
2011 */
2012
2013 error = 0;
2014
2015 vnode_lock_spin(vp);
2016
2017 if (error == 0) {
2018 if (!ISSET(uip->ui_flags, UI_ISMAPPED)) {
2019 need_ref = 1;
2020 }
2021 SET(uip->ui_flags, (UI_WASMAPPED | UI_ISMAPPED));
2022 if (flags & PROT_WRITE) {
2023 SET(uip->ui_flags, (UI_WASMAPPEDWRITE | UI_MAPPEDWRITE));
2024 }
2025 }
2026 CLR(uip->ui_flags, UI_MAPBUSY);
2027
2028 if (ISSET(uip->ui_flags, UI_MAPWAITING)) {
2029 CLR(uip->ui_flags, UI_MAPWAITING);
2030 need_wakeup = 1;
2031 }
2032 vnode_unlock(vp);
2033
2034 if (need_wakeup) {
2035 wakeup(&uip->ui_flags);
2036 }
2037
2038 if (need_ref) {
2039 /*
2040 * Make sure we get a ref as we can't unwind from here
2041 */
2042 if (vnode_ref_ext(vp, 0, VNODE_REF_FORCE)) {
2043 panic("%s : VNODE_REF_FORCE failed", __FUNCTION__);
2044 }
2045 /*
2046 * Vnodes that are on "unreliable" media (like disk
2047 * images, network filesystems, 3rd-party filesystems,
2048 * and possibly external devices) could see their
2049 * contents be changed via the backing store without
2050 * triggering copy-on-write, so we can't fully rely
2051 * on copy-on-write and might have to resort to
2052 * copy-on-read to protect "privileged" processes and
2053 * prevent privilege escalation.
2054 *
2055 * The root filesystem is considered "reliable" because
2056 * there's not much point in trying to protect
2057 * ourselves from such a vulnerability and the extra
2058 * cost of copy-on-read (CPU time and memory pressure)
2059 * could result in some serious regressions.
2060 */
2061 if (vp->v_mount != NULL &&
2062 ((vp->v_mount->mnt_flag & MNT_ROOTFS) ||
2063 vnode_on_reliable_media(vp))) {
2064 /*
2065 * This vnode is deemed "reliable" so mark
2066 * its VM object as "trusted".
2067 */
2068 memory_object_mark_trusted(uip->ui_control);
2069 } else {
2070 // printf("BUGGYCOW: %s:%d vp %p \"%s\" in mnt %p \"%s\" is untrusted\n", __FUNCTION__, __LINE__, vp, vp->v_name, vp->v_mount, vp->v_mount->mnt_vnodecovered->v_name);
2071 }
2072 }
2073 }
2074 vnode_put_from_pager(vp);
2075
2076 return error;
2077 }
2078
2079
2080 /*
2081 * ubc_destroy_named
2082 *
2083 * Destroy the named memory object associated with the ubc_info control object
2084 * associated with the designated vnode, if there is a ubc_info associated
2085 * with the vnode, and a control object is associated with it
2086 *
2087 * Parameters: vp The designated vnode
2088 *
2089 * Returns: (void)
2090 *
2091 * Notes: This function is called on vnode termination for all vnodes,
2092 * and must therefore not assume that there is a ubc_info that is
2093 * associated with the vnode, nor that there is a control object
2094 * associated with the ubc_info.
2095 *
2096 * If all the conditions necessary are present, this function
2097 * calls memory_object_destory(), which will in turn end up
2098 * calling ubc_unmap() to release any vnode references that were
2099 * established via ubc_map().
2100 *
2101 * IMPORTANT: This is an internal use function that is used
2102 * exclusively by the internal use function vclean().
2103 */
2104 __private_extern__ void
ubc_destroy_named(vnode_t vp,vm_object_destroy_reason_t reason)2105 ubc_destroy_named(vnode_t vp, vm_object_destroy_reason_t reason)
2106 {
2107 memory_object_control_t control;
2108 struct ubc_info *uip;
2109 kern_return_t kret;
2110
2111 if (UBCINFOEXISTS(vp)) {
2112 uip = vp->v_ubcinfo;
2113
2114 /* Terminate the memory object */
2115 control = ubc_getobject(vp, UBC_HOLDOBJECT);
2116 if (control != MEMORY_OBJECT_CONTROL_NULL) {
2117 kret = memory_object_destroy(control, reason);
2118 if (kret != KERN_SUCCESS) {
2119 panic("ubc_destroy_named: memory_object_destroy failed");
2120 }
2121 }
2122 }
2123 }
2124
2125
2126 /*
2127 * ubc_isinuse
2128 *
2129 * Determine whether or not a vnode is currently in use by ubc at a level in
2130 * excess of the requested busycount
2131 *
2132 * Parameters: vp The vnode to check
2133 * busycount The threshold busy count, used to bias
2134 * the count usually already held by the
2135 * caller to avoid races
2136 *
2137 * Returns: 1 The vnode is in use over the threshold
2138 * 0 The vnode is not in use over the
2139 * threshold
2140 *
2141 * Notes: Because the vnode is only held locked while actually asking
2142 * the use count, this function only represents a snapshot of the
2143 * current state of the vnode. If more accurate information is
2144 * required, an additional busycount should be held by the caller
2145 * and a non-zero busycount used.
2146 *
2147 * If there is no ubc_info associated with the vnode, this
2148 * function will report that the vnode is not in use by ubc.
2149 */
2150 int
ubc_isinuse(struct vnode * vp,int busycount)2151 ubc_isinuse(struct vnode *vp, int busycount)
2152 {
2153 if (!UBCINFOEXISTS(vp)) {
2154 return 0;
2155 }
2156 return ubc_isinuse_locked(vp, busycount, 0);
2157 }
2158
2159
2160 /*
2161 * ubc_isinuse_locked
2162 *
2163 * Determine whether or not a vnode is currently in use by ubc at a level in
2164 * excess of the requested busycount
2165 *
2166 * Parameters: vp The vnode to check
2167 * busycount The threshold busy count, used to bias
2168 * the count usually already held by the
2169 * caller to avoid races
2170 * locked True if the vnode is already locked by
2171 * the caller
2172 *
2173 * Returns: 1 The vnode is in use over the threshold
2174 * 0 The vnode is not in use over the
2175 * threshold
2176 *
2177 * Notes: If the vnode is not locked on entry, it is locked while
2178 * actually asking the use count. If this is the case, this
2179 * function only represents a snapshot of the current state of
2180 * the vnode. If more accurate information is required, the
2181 * vnode lock should be held by the caller, otherwise an
2182 * additional busycount should be held by the caller and a
2183 * non-zero busycount used.
2184 *
2185 * If there is no ubc_info associated with the vnode, this
2186 * function will report that the vnode is not in use by ubc.
2187 */
2188 int
ubc_isinuse_locked(struct vnode * vp,int busycount,int locked)2189 ubc_isinuse_locked(struct vnode *vp, int busycount, int locked)
2190 {
2191 int retval = 0;
2192
2193
2194 if (!locked) {
2195 vnode_lock_spin(vp);
2196 }
2197
2198 if ((vp->v_usecount - vp->v_kusecount) > busycount) {
2199 retval = 1;
2200 }
2201
2202 if (!locked) {
2203 vnode_unlock(vp);
2204 }
2205 return retval;
2206 }
2207
2208
2209 /*
2210 * ubc_unmap
2211 *
2212 * Reverse the effects of a ubc_map() call for a given vnode
2213 *
2214 * Parameters: vp vnode to unmap from ubc
2215 *
2216 * Returns: (void)
2217 *
2218 * Notes: This is an internal use function used by vnode_pager_unmap().
2219 * It will attempt to obtain a reference on the supplied vnode,
2220 * and if it can do so, and there is an associated ubc_info, and
2221 * the flags indicate that it was mapped via ubc_map(), then the
2222 * flag is cleared, the mapping removed, and the reference taken
2223 * by ubc_map() is released.
2224 *
2225 * IMPORTANT: This MUST only be called by the VM
2226 * to prevent race conditions.
2227 */
2228 __private_extern__ void
ubc_unmap(struct vnode * vp)2229 ubc_unmap(struct vnode *vp)
2230 {
2231 struct ubc_info *uip;
2232 int need_rele = 0;
2233 int need_wakeup = 0;
2234 int error = 0;
2235
2236 /*
2237 * This call is non-blocking and does not ever fail but it can
2238 * only be made when there is other explicit synchronization
2239 * with reclaiming of the vnode which, in this path, is provided
2240 * by the "mapping in progress" counter.
2241 */
2242 error = vnode_getalways_from_pager(vp);
2243 if (error != 0) {
2244 /* This can't happen */
2245 panic("vnode_getalways returned %d for vp %p", error, vp);
2246 }
2247
2248 if (UBCINFOEXISTS(vp) == 0) {
2249 /*
2250 * The vnode might have started being reclaimed (forced unmount?) while
2251 * this call was in progress.
2252 * The caller is not expecting an error but is expected to figure out that
2253 * the "pager" it used for this vnode is now gone and take appropriate
2254 * action.
2255 */
2256 } else {
2257 bool want_fsevent = false;
2258
2259 vnode_lock(vp);
2260 uip = vp->v_ubcinfo;
2261
2262 while (ISSET(uip->ui_flags, UI_MAPBUSY)) {
2263 SET(uip->ui_flags, UI_MAPWAITING);
2264 (void) msleep(&uip->ui_flags, &vp->v_lock,
2265 PRIBIO, "ubc_unmap", NULL);
2266 }
2267 SET(uip->ui_flags, UI_MAPBUSY);
2268
2269 if (ISSET(uip->ui_flags, UI_ISMAPPED)) {
2270 if (ISSET(uip->ui_flags, UI_MAPPEDWRITE)) {
2271 want_fsevent = true;
2272 }
2273
2274 need_rele = 1;
2275
2276 /*
2277 * We want to clear the mapped flags after we've called
2278 * VNOP_MNOMAP to avoid certain races and allow
2279 * VNOP_MNOMAP to call ubc_is_mapped_writable.
2280 */
2281 }
2282 vnode_unlock(vp);
2283
2284 if (need_rele) {
2285 vfs_context_t ctx = vfs_context_current();
2286
2287 (void)VNOP_MNOMAP(vp, ctx);
2288
2289 #if CONFIG_FSE
2290 /*
2291 * Why do we want an fsevent here? Normally the
2292 * content modified fsevent is posted when a file is
2293 * closed and only if it's written to via conventional
2294 * means. It's perfectly legal to close a file and
2295 * keep your mappings and we don't currently track
2296 * whether it was written to via a mapping.
2297 * Therefore, we need to post an fsevent here if the
2298 * file was mapped writable. This may result in false
2299 * events, i.e. we post a notification when nothing
2300 * has really changed.
2301 */
2302 if (want_fsevent && need_fsevent(FSE_CONTENT_MODIFIED, vp)) {
2303 add_fsevent(FSE_CONTENT_MODIFIED_NO_HLINK, ctx,
2304 FSE_ARG_VNODE, vp,
2305 FSE_ARG_DONE);
2306 }
2307 #endif
2308
2309 vnode_rele(vp);
2310 }
2311
2312 vnode_lock_spin(vp);
2313
2314 if (need_rele) {
2315 CLR(uip->ui_flags, UI_ISMAPPED | UI_MAPPEDWRITE);
2316 }
2317
2318 CLR(uip->ui_flags, UI_MAPBUSY);
2319
2320 if (ISSET(uip->ui_flags, UI_MAPWAITING)) {
2321 CLR(uip->ui_flags, UI_MAPWAITING);
2322 need_wakeup = 1;
2323 }
2324 vnode_unlock(vp);
2325
2326 if (need_wakeup) {
2327 wakeup(&uip->ui_flags);
2328 }
2329 }
2330 /*
2331 * the drop of the vnode ref will cleanup
2332 */
2333 vnode_put_from_pager(vp);
2334 }
2335
2336
2337 /*
2338 * ubc_page_op
2339 *
2340 * Manipulate individual page state for a vnode with an associated ubc_info
2341 * with an associated memory object control.
2342 *
2343 * Parameters: vp The vnode backing the page
2344 * f_offset A file offset interior to the page
2345 * ops The operations to perform, as a bitmap
2346 * (see below for more information)
2347 * phys_entryp The address of a ppnum_t; may be NULL
2348 * to ignore
2349 * flagsp A pointer to an int to contain flags;
2350 * may be NULL to ignore
2351 *
2352 * Returns: KERN_SUCCESS Success
2353 * KERN_INVALID_ARGUMENT If the memory object control has no VM
2354 * object associated
2355 * KERN_INVALID_OBJECT If UPL_POP_PHYSICAL and the object is
2356 * not physically contiguous
2357 * KERN_INVALID_OBJECT If !UPL_POP_PHYSICAL and the object is
2358 * physically contiguous
2359 * KERN_FAILURE If the page cannot be looked up
2360 *
2361 * Implicit Returns:
2362 * *phys_entryp (modified) If phys_entryp is non-NULL and
2363 * UPL_POP_PHYSICAL
2364 * *flagsp (modified) If flagsp is non-NULL and there was
2365 * !UPL_POP_PHYSICAL and a KERN_SUCCESS
2366 *
2367 * Notes: For object boundaries, it is considerably more efficient to
2368 * ensure that f_offset is in fact on a page boundary, as this
2369 * will avoid internal use of the hash table to identify the
2370 * page, and would therefore skip a number of early optimizations.
2371 * Since this is a page operation anyway, the caller should try
2372 * to pass only a page aligned offset because of this.
2373 *
2374 * *flagsp may be modified even if this function fails. If it is
2375 * modified, it will contain the condition of the page before the
2376 * requested operation was attempted; these will only include the
2377 * bitmap flags, and not the PL_POP_PHYSICAL, UPL_POP_DUMP,
2378 * UPL_POP_SET, or UPL_POP_CLR bits.
2379 *
2380 * The flags field may contain a specific operation, such as
2381 * UPL_POP_PHYSICAL or UPL_POP_DUMP:
2382 *
2383 * o UPL_POP_PHYSICAL Fail if not contiguous; if
2384 * *phys_entryp and successful, set
2385 * *phys_entryp
2386 * o UPL_POP_DUMP Dump the specified page
2387 *
2388 * Otherwise, it is treated as a bitmap of one or more page
2389 * operations to perform on the final memory object; allowable
2390 * bit values are:
2391 *
2392 * o UPL_POP_DIRTY The page is dirty
2393 * o UPL_POP_PAGEOUT The page is paged out
2394 * o UPL_POP_PRECIOUS The page is precious
2395 * o UPL_POP_ABSENT The page is absent
2396 * o UPL_POP_BUSY The page is busy
2397 *
2398 * If the page status is only being queried and not modified, then
2399 * not other bits should be specified. However, if it is being
2400 * modified, exactly ONE of the following bits should be set:
2401 *
2402 * o UPL_POP_SET Set the current bitmap bits
2403 * o UPL_POP_CLR Clear the current bitmap bits
2404 *
2405 * Thus to effect a combination of setting an clearing, it may be
2406 * necessary to call this function twice. If this is done, the
2407 * set should be used before the clear, since clearing may trigger
2408 * a wakeup on the destination page, and if the page is backed by
2409 * an encrypted swap file, setting will trigger the decryption
2410 * needed before the wakeup occurs.
2411 */
2412 kern_return_t
ubc_page_op(struct vnode * vp,off_t f_offset,int ops,ppnum_t * phys_entryp,int * flagsp)2413 ubc_page_op(
2414 struct vnode *vp,
2415 off_t f_offset,
2416 int ops,
2417 ppnum_t *phys_entryp,
2418 int *flagsp)
2419 {
2420 memory_object_control_t control;
2421
2422 control = ubc_getobject(vp, UBC_FLAGS_NONE);
2423 if (control == MEMORY_OBJECT_CONTROL_NULL) {
2424 return KERN_INVALID_ARGUMENT;
2425 }
2426
2427 return memory_object_page_op(control,
2428 (memory_object_offset_t)f_offset,
2429 ops,
2430 phys_entryp,
2431 flagsp);
2432 }
2433
2434
2435 /*
2436 * ubc_range_op
2437 *
2438 * Manipulate page state for a range of memory for a vnode with an associated
2439 * ubc_info with an associated memory object control, when page level state is
2440 * not required to be returned from the call (i.e. there are no phys_entryp or
2441 * flagsp parameters to this call, and it takes a range which may contain
2442 * multiple pages, rather than an offset interior to a single page).
2443 *
2444 * Parameters: vp The vnode backing the page
2445 * f_offset_beg A file offset interior to the start page
2446 * f_offset_end A file offset interior to the end page
2447 * ops The operations to perform, as a bitmap
2448 * (see below for more information)
2449 * range The address of an int; may be NULL to
2450 * ignore
2451 *
2452 * Returns: KERN_SUCCESS Success
2453 * KERN_INVALID_ARGUMENT If the memory object control has no VM
2454 * object associated
2455 * KERN_INVALID_OBJECT If the object is physically contiguous
2456 *
2457 * Implicit Returns:
2458 * *range (modified) If range is non-NULL, its contents will
2459 * be modified to contain the number of
2460 * bytes successfully operated upon.
2461 *
2462 * Notes: IMPORTANT: This function cannot be used on a range that
2463 * consists of physically contiguous pages.
2464 *
2465 * For object boundaries, it is considerably more efficient to
2466 * ensure that f_offset_beg and f_offset_end are in fact on page
2467 * boundaries, as this will avoid internal use of the hash table
2468 * to identify the page, and would therefore skip a number of
2469 * early optimizations. Since this is an operation on a set of
2470 * pages anyway, the caller should try to pass only a page aligned
2471 * offsets because of this.
2472 *
2473 * *range will be modified only if this function succeeds.
2474 *
2475 * The flags field MUST contain a specific operation; allowable
2476 * values are:
2477 *
2478 * o UPL_ROP_ABSENT Returns the extent of the range
2479 * presented which is absent, starting
2480 * with the start address presented
2481 *
2482 * o UPL_ROP_PRESENT Returns the extent of the range
2483 * presented which is present (resident),
2484 * starting with the start address
2485 * presented
2486 * o UPL_ROP_DUMP Dump the pages which are found in the
2487 * target object for the target range.
2488 *
2489 * IMPORTANT: For UPL_ROP_ABSENT and UPL_ROP_PRESENT; if there are
2490 * multiple regions in the range, only the first matching region
2491 * is returned.
2492 */
2493 kern_return_t
ubc_range_op(struct vnode * vp,off_t f_offset_beg,off_t f_offset_end,int ops,int * range)2494 ubc_range_op(
2495 struct vnode *vp,
2496 off_t f_offset_beg,
2497 off_t f_offset_end,
2498 int ops,
2499 int *range)
2500 {
2501 memory_object_control_t control;
2502
2503 control = ubc_getobject(vp, UBC_FLAGS_NONE);
2504 if (control == MEMORY_OBJECT_CONTROL_NULL) {
2505 return KERN_INVALID_ARGUMENT;
2506 }
2507
2508 return memory_object_range_op(control,
2509 (memory_object_offset_t)f_offset_beg,
2510 (memory_object_offset_t)f_offset_end,
2511 ops,
2512 range);
2513 }
2514
2515
2516 /*
2517 * ubc_create_upl
2518 *
2519 * Given a vnode, cause the population of a portion of the vm_object; based on
2520 * the nature of the request, the pages returned may contain valid data, or
2521 * they may be uninitialized.
2522 *
2523 * Parameters: vp The vnode from which to create the upl
2524 * f_offset The start offset into the backing store
2525 * represented by the vnode
2526 * bufsize The size of the upl to create
2527 * uplp Pointer to the upl_t to receive the
2528 * created upl; MUST NOT be NULL
2529 * plp Pointer to receive the internal page
2530 * list for the created upl; MAY be NULL
2531 * to ignore
2532 *
2533 * Returns: KERN_SUCCESS The requested upl has been created
2534 * KERN_INVALID_ARGUMENT The bufsize argument is not an even
2535 * multiple of the page size
2536 * KERN_INVALID_ARGUMENT There is no ubc_info associated with
2537 * the vnode, or there is no memory object
2538 * control associated with the ubc_info
2539 * memory_object_upl_request:KERN_INVALID_VALUE
2540 * The supplied upl_flags argument is
2541 * invalid
2542 * Implicit Returns:
2543 * *uplp (modified)
2544 * *plp (modified) If non-NULL, the value of *plp will be
2545 * modified to point to the internal page
2546 * list; this modification may occur even
2547 * if this function is unsuccessful, in
2548 * which case the contents may be invalid
2549 *
2550 * Note: If successful, the returned *uplp MUST subsequently be freed
2551 * via a call to ubc_upl_commit(), ubc_upl_commit_range(),
2552 * ubc_upl_abort(), or ubc_upl_abort_range().
2553 */
2554 kern_return_t
ubc_create_upl_external(struct vnode * vp,off_t f_offset,int bufsize,upl_t * uplp,upl_page_info_t ** plp,int uplflags)2555 ubc_create_upl_external(
2556 struct vnode *vp,
2557 off_t f_offset,
2558 int bufsize,
2559 upl_t *uplp,
2560 upl_page_info_t **plp,
2561 int uplflags)
2562 {
2563 return ubc_create_upl_kernel(vp, f_offset, bufsize, uplp, plp, uplflags, vm_tag_bt());
2564 }
2565
2566 kern_return_t
ubc_create_upl_kernel(struct vnode * vp,off_t f_offset,int bufsize,upl_t * uplp,upl_page_info_t ** plp,int uplflags,vm_tag_t tag)2567 ubc_create_upl_kernel(
2568 struct vnode *vp,
2569 off_t f_offset,
2570 int bufsize,
2571 upl_t *uplp,
2572 upl_page_info_t **plp,
2573 int uplflags,
2574 vm_tag_t tag)
2575 {
2576 memory_object_control_t control;
2577 kern_return_t kr;
2578
2579 if (plp != NULL) {
2580 *plp = NULL;
2581 }
2582 *uplp = NULL;
2583
2584 if (bufsize & 0xfff) {
2585 return KERN_INVALID_ARGUMENT;
2586 }
2587
2588 if (bufsize > MAX_UPL_SIZE_BYTES) {
2589 return KERN_INVALID_ARGUMENT;
2590 }
2591
2592 if (uplflags & (UPL_UBC_MSYNC | UPL_UBC_PAGEOUT | UPL_UBC_PAGEIN)) {
2593 if (uplflags & UPL_UBC_MSYNC) {
2594 uplflags &= UPL_RET_ONLY_DIRTY;
2595
2596 uplflags |= UPL_COPYOUT_FROM | UPL_CLEAN_IN_PLACE |
2597 UPL_SET_INTERNAL | UPL_SET_LITE;
2598 } else if (uplflags & UPL_UBC_PAGEOUT) {
2599 uplflags &= UPL_RET_ONLY_DIRTY;
2600
2601 if (uplflags & UPL_RET_ONLY_DIRTY) {
2602 uplflags |= UPL_NOBLOCK;
2603 }
2604
2605 uplflags |= UPL_FOR_PAGEOUT | UPL_CLEAN_IN_PLACE |
2606 UPL_COPYOUT_FROM | UPL_SET_INTERNAL | UPL_SET_LITE;
2607 } else {
2608 uplflags |= UPL_RET_ONLY_ABSENT |
2609 UPL_NO_SYNC | UPL_CLEAN_IN_PLACE |
2610 UPL_SET_INTERNAL | UPL_SET_LITE;
2611
2612 /*
2613 * if the requested size == PAGE_SIZE, we don't want to set
2614 * the UPL_NOBLOCK since we may be trying to recover from a
2615 * previous partial pagein I/O that occurred because we were low
2616 * on memory and bailed early in order to honor the UPL_NOBLOCK...
2617 * since we're only asking for a single page, we can block w/o fear
2618 * of tying up pages while waiting for more to become available
2619 */
2620 if (bufsize > PAGE_SIZE) {
2621 uplflags |= UPL_NOBLOCK;
2622 }
2623 }
2624 } else {
2625 uplflags &= ~UPL_FOR_PAGEOUT;
2626
2627 if (uplflags & UPL_WILL_BE_DUMPED) {
2628 uplflags &= ~UPL_WILL_BE_DUMPED;
2629 uplflags |= (UPL_NO_SYNC | UPL_SET_INTERNAL);
2630 } else {
2631 uplflags |= (UPL_NO_SYNC | UPL_CLEAN_IN_PLACE | UPL_SET_INTERNAL);
2632 }
2633 }
2634 control = ubc_getobject(vp, UBC_FLAGS_NONE);
2635 if (control == MEMORY_OBJECT_CONTROL_NULL) {
2636 return KERN_INVALID_ARGUMENT;
2637 }
2638
2639 kr = memory_object_upl_request(control, f_offset, bufsize, uplp, NULL, NULL, uplflags, tag);
2640 if (kr == KERN_SUCCESS && plp != NULL) {
2641 *plp = UPL_GET_INTERNAL_PAGE_LIST(*uplp);
2642 }
2643 return kr;
2644 }
2645
2646
2647 /*
2648 * ubc_upl_maxbufsize
2649 *
2650 * Return the maximum bufsize ubc_create_upl( ) will take.
2651 *
2652 * Parameters: none
2653 *
2654 * Returns: maximum size buffer (in bytes) ubc_create_upl( ) will take.
2655 */
2656 upl_size_t
ubc_upl_maxbufsize(void)2657 ubc_upl_maxbufsize(
2658 void)
2659 {
2660 return MAX_UPL_SIZE_BYTES;
2661 }
2662
2663 /*
2664 * ubc_upl_map
2665 *
2666 * Map the page list assocated with the supplied upl into the kernel virtual
2667 * address space at the virtual address indicated by the dst_addr argument;
2668 * the entire upl is mapped
2669 *
2670 * Parameters: upl The upl to map
2671 * dst_addr The address at which to map the upl
2672 *
2673 * Returns: KERN_SUCCESS The upl has been mapped
2674 * KERN_INVALID_ARGUMENT The upl is UPL_NULL
2675 * KERN_FAILURE The upl is already mapped
2676 * vm_map_enter:KERN_INVALID_ARGUMENT
2677 * A failure code from vm_map_enter() due
2678 * to an invalid argument
2679 */
2680 kern_return_t
ubc_upl_map(upl_t upl,vm_offset_t * dst_addr)2681 ubc_upl_map(
2682 upl_t upl,
2683 vm_offset_t *dst_addr)
2684 {
2685 return vm_upl_map(kernel_map, upl, dst_addr);
2686 }
2687
2688 /*
2689 * ubc_upl_map_range:- similar to ubc_upl_map but the focus is on a range
2690 * of the UPL. Takes an offset, size, and protection so that only a part
2691 * of the UPL can be mapped with the right protections.
2692 */
2693 kern_return_t
ubc_upl_map_range(upl_t upl,vm_offset_t offset_to_map,vm_size_t size_to_map,vm_prot_t prot_to_map,vm_offset_t * dst_addr)2694 ubc_upl_map_range(
2695 upl_t upl,
2696 vm_offset_t offset_to_map,
2697 vm_size_t size_to_map,
2698 vm_prot_t prot_to_map,
2699 vm_offset_t *dst_addr)
2700 {
2701 return vm_upl_map_range(kernel_map, upl, offset_to_map, size_to_map, prot_to_map, dst_addr);
2702 }
2703
2704
2705 /*
2706 * ubc_upl_unmap
2707 *
2708 * Unmap the page list assocated with the supplied upl from the kernel virtual
2709 * address space; the entire upl is unmapped.
2710 *
2711 * Parameters: upl The upl to unmap
2712 *
2713 * Returns: KERN_SUCCESS The upl has been unmapped
2714 * KERN_FAILURE The upl is not currently mapped
2715 * KERN_INVALID_ARGUMENT If the upl is UPL_NULL
2716 */
2717 kern_return_t
ubc_upl_unmap(upl_t upl)2718 ubc_upl_unmap(
2719 upl_t upl)
2720 {
2721 return vm_upl_unmap(kernel_map, upl);
2722 }
2723
2724 /*
2725 * ubc_upl_unmap_range:- similar to ubc_upl_unmap but the focus is
2726 * on part of the UPL that is mapped. The offset and size parameter
2727 * specifies what part of the UPL needs to be unmapped.
2728 *
2729 * Note: Currrently offset & size are unused as we always initiate the unmap from the
2730 * very beginning of the UPL's mapping and track the mapped size in the UPL. But we
2731 * might want to allow unmapping a UPL in the middle, for example, and we can use the
2732 * offset + size parameters for that purpose.
2733 */
2734 kern_return_t
ubc_upl_unmap_range(upl_t upl,vm_offset_t offset_to_unmap,vm_size_t size_to_unmap)2735 ubc_upl_unmap_range(
2736 upl_t upl,
2737 vm_offset_t offset_to_unmap,
2738 vm_size_t size_to_unmap)
2739 {
2740 return vm_upl_unmap_range(kernel_map, upl, offset_to_unmap, size_to_unmap);
2741 }
2742
2743
2744 /*
2745 * ubc_upl_commit
2746 *
2747 * Commit the contents of the upl to the backing store
2748 *
2749 * Parameters: upl The upl to commit
2750 *
2751 * Returns: KERN_SUCCESS The upl has been committed
2752 * KERN_INVALID_ARGUMENT The supplied upl was UPL_NULL
2753 * KERN_FAILURE The supplied upl does not represent
2754 * device memory, and the offset plus the
2755 * size would exceed the actual size of
2756 * the upl
2757 *
2758 * Notes: In practice, the only return value for this function should be
2759 * KERN_SUCCESS, unless there has been data structure corruption;
2760 * since the upl is deallocated regardless of success or failure,
2761 * there's really nothing to do about this other than panic.
2762 *
2763 * IMPORTANT: Use of this function should not be mixed with use of
2764 * ubc_upl_commit_range(), due to the unconditional deallocation
2765 * by this function.
2766 */
2767 kern_return_t
ubc_upl_commit(upl_t upl)2768 ubc_upl_commit(
2769 upl_t upl)
2770 {
2771 upl_page_info_t *pl;
2772 kern_return_t kr;
2773
2774 pl = UPL_GET_INTERNAL_PAGE_LIST(upl);
2775 kr = upl_commit(upl, pl, MAX_UPL_SIZE_BYTES >> PAGE_SHIFT);
2776 upl_deallocate(upl);
2777 return kr;
2778 }
2779
2780
2781 /*
2782 * ubc_upl_commit
2783 *
2784 * Commit the contents of the specified range of the upl to the backing store
2785 *
2786 * Parameters: upl The upl to commit
2787 * offset The offset into the upl
2788 * size The size of the region to be committed,
2789 * starting at the specified offset
2790 * flags commit type (see below)
2791 *
2792 * Returns: KERN_SUCCESS The range has been committed
2793 * KERN_INVALID_ARGUMENT The supplied upl was UPL_NULL
2794 * KERN_FAILURE The supplied upl does not represent
2795 * device memory, and the offset plus the
2796 * size would exceed the actual size of
2797 * the upl
2798 *
2799 * Notes: IMPORTANT: If the commit is successful, and the object is now
2800 * empty, the upl will be deallocated. Since the caller cannot
2801 * check that this is the case, the UPL_COMMIT_FREE_ON_EMPTY flag
2802 * should generally only be used when the offset is 0 and the size
2803 * is equal to the upl size.
2804 *
2805 * The flags argument is a bitmap of flags on the rage of pages in
2806 * the upl to be committed; allowable flags are:
2807 *
2808 * o UPL_COMMIT_FREE_ON_EMPTY Free the upl when it is
2809 * both empty and has been
2810 * successfully committed
2811 * o UPL_COMMIT_CLEAR_DIRTY Clear each pages dirty
2812 * bit; will prevent a
2813 * later pageout
2814 * o UPL_COMMIT_SET_DIRTY Set each pages dirty
2815 * bit; will cause a later
2816 * pageout
2817 * o UPL_COMMIT_INACTIVATE Clear each pages
2818 * reference bit; the page
2819 * will not be accessed
2820 * o UPL_COMMIT_ALLOW_ACCESS Unbusy each page; pages
2821 * become busy when an
2822 * IOMemoryDescriptor is
2823 * mapped or redirected,
2824 * and we have to wait for
2825 * an IOKit driver
2826 *
2827 * The flag UPL_COMMIT_NOTIFY_EMPTY is used internally, and should
2828 * not be specified by the caller.
2829 *
2830 * The UPL_COMMIT_CLEAR_DIRTY and UPL_COMMIT_SET_DIRTY flags are
2831 * mutually exclusive, and should not be combined.
2832 */
2833 kern_return_t
ubc_upl_commit_range(upl_t upl,upl_offset_t offset,upl_size_t size,int flags)2834 ubc_upl_commit_range(
2835 upl_t upl,
2836 upl_offset_t offset,
2837 upl_size_t size,
2838 int flags)
2839 {
2840 upl_page_info_t *pl;
2841 boolean_t empty;
2842 kern_return_t kr;
2843
2844 if (flags & UPL_COMMIT_FREE_ON_EMPTY) {
2845 flags |= UPL_COMMIT_NOTIFY_EMPTY;
2846 }
2847
2848 if (flags & UPL_COMMIT_KERNEL_ONLY_FLAGS) {
2849 return KERN_INVALID_ARGUMENT;
2850 }
2851
2852 pl = UPL_GET_INTERNAL_PAGE_LIST(upl);
2853
2854 kr = upl_commit_range(upl, offset, size, flags,
2855 pl, MAX_UPL_SIZE_BYTES >> PAGE_SHIFT, &empty);
2856
2857 if ((flags & UPL_COMMIT_FREE_ON_EMPTY) && empty) {
2858 upl_deallocate(upl);
2859 }
2860
2861 return kr;
2862 }
2863
2864
2865 /*
2866 * ubc_upl_abort_range
2867 *
2868 * Abort the contents of the specified range of the specified upl
2869 *
2870 * Parameters: upl The upl to abort
2871 * offset The offset into the upl
2872 * size The size of the region to be aborted,
2873 * starting at the specified offset
2874 * abort_flags abort type (see below)
2875 *
2876 * Returns: KERN_SUCCESS The range has been aborted
2877 * KERN_INVALID_ARGUMENT The supplied upl was UPL_NULL
2878 * KERN_FAILURE The supplied upl does not represent
2879 * device memory, and the offset plus the
2880 * size would exceed the actual size of
2881 * the upl
2882 *
2883 * Notes: IMPORTANT: If the abort is successful, and the object is now
2884 * empty, the upl will be deallocated. Since the caller cannot
2885 * check that this is the case, the UPL_ABORT_FREE_ON_EMPTY flag
2886 * should generally only be used when the offset is 0 and the size
2887 * is equal to the upl size.
2888 *
2889 * The abort_flags argument is a bitmap of flags on the range of
2890 * pages in the upl to be aborted; allowable flags are:
2891 *
2892 * o UPL_ABORT_FREE_ON_EMPTY Free the upl when it is both
2893 * empty and has been successfully
2894 * aborted
2895 * o UPL_ABORT_RESTART The operation must be restarted
2896 * o UPL_ABORT_UNAVAILABLE The pages are unavailable
2897 * o UPL_ABORT_ERROR An I/O error occurred
2898 * o UPL_ABORT_DUMP_PAGES Just free the pages
2899 * o UPL_ABORT_NOTIFY_EMPTY RESERVED
2900 * o UPL_ABORT_ALLOW_ACCESS RESERVED
2901 *
2902 * The UPL_ABORT_NOTIFY_EMPTY is an internal use flag and should
2903 * not be specified by the caller. It is intended to fulfill the
2904 * same role as UPL_COMMIT_NOTIFY_EMPTY does in the function
2905 * ubc_upl_commit_range(), but is never referenced internally.
2906 *
2907 * The UPL_ABORT_ALLOW_ACCESS is defined, but neither set nor
2908 * referenced; do not use it.
2909 */
2910 kern_return_t
ubc_upl_abort_range(upl_t upl,upl_offset_t offset,upl_size_t size,int abort_flags)2911 ubc_upl_abort_range(
2912 upl_t upl,
2913 upl_offset_t offset,
2914 upl_size_t size,
2915 int abort_flags)
2916 {
2917 kern_return_t kr;
2918 boolean_t empty = FALSE;
2919
2920 if (abort_flags & UPL_ABORT_FREE_ON_EMPTY) {
2921 abort_flags |= UPL_ABORT_NOTIFY_EMPTY;
2922 }
2923
2924 kr = upl_abort_range(upl, offset, size, abort_flags, &empty);
2925
2926 if ((abort_flags & UPL_ABORT_FREE_ON_EMPTY) && empty) {
2927 upl_deallocate(upl);
2928 }
2929
2930 return kr;
2931 }
2932
2933
2934 /*
2935 * ubc_upl_abort
2936 *
2937 * Abort the contents of the specified upl
2938 *
2939 * Parameters: upl The upl to abort
2940 * abort_type abort type (see below)
2941 *
2942 * Returns: KERN_SUCCESS The range has been aborted
2943 * KERN_INVALID_ARGUMENT The supplied upl was UPL_NULL
2944 * KERN_FAILURE The supplied upl does not represent
2945 * device memory, and the offset plus the
2946 * size would exceed the actual size of
2947 * the upl
2948 *
2949 * Notes: IMPORTANT: If the abort is successful, and the object is now
2950 * empty, the upl will be deallocated. Since the caller cannot
2951 * check that this is the case, the UPL_ABORT_FREE_ON_EMPTY flag
2952 * should generally only be used when the offset is 0 and the size
2953 * is equal to the upl size.
2954 *
2955 * The abort_type is a bitmap of flags on the range of
2956 * pages in the upl to be aborted; allowable flags are:
2957 *
2958 * o UPL_ABORT_FREE_ON_EMPTY Free the upl when it is both
2959 * empty and has been successfully
2960 * aborted
2961 * o UPL_ABORT_RESTART The operation must be restarted
2962 * o UPL_ABORT_UNAVAILABLE The pages are unavailable
2963 * o UPL_ABORT_ERROR An I/O error occurred
2964 * o UPL_ABORT_DUMP_PAGES Just free the pages
2965 * o UPL_ABORT_NOTIFY_EMPTY RESERVED
2966 * o UPL_ABORT_ALLOW_ACCESS RESERVED
2967 *
2968 * The UPL_ABORT_NOTIFY_EMPTY is an internal use flag and should
2969 * not be specified by the caller. It is intended to fulfill the
2970 * same role as UPL_COMMIT_NOTIFY_EMPTY does in the function
2971 * ubc_upl_commit_range(), but is never referenced internally.
2972 *
2973 * The UPL_ABORT_ALLOW_ACCESS is defined, but neither set nor
2974 * referenced; do not use it.
2975 */
2976 kern_return_t
ubc_upl_abort(upl_t upl,int abort_type)2977 ubc_upl_abort(
2978 upl_t upl,
2979 int abort_type)
2980 {
2981 kern_return_t kr;
2982
2983 kr = upl_abort(upl, abort_type);
2984 upl_deallocate(upl);
2985 return kr;
2986 }
2987
2988
2989 /*
2990 * ubc_upl_pageinfo
2991 *
2992 * Retrieve the internal page list for the specified upl
2993 *
2994 * Parameters: upl The upl to obtain the page list from
2995 *
2996 * Returns: !NULL The (upl_page_info_t *) for the page
2997 * list internal to the upl
2998 * NULL Error/no page list associated
2999 *
3000 * Notes: IMPORTANT: The function is only valid on internal objects
3001 * where the list request was made with the UPL_INTERNAL flag.
3002 *
3003 * This function is a utility helper function, since some callers
3004 * may not have direct access to the header defining the macro,
3005 * due to abstraction layering constraints.
3006 */
3007 upl_page_info_t *
ubc_upl_pageinfo(upl_t upl)3008 ubc_upl_pageinfo(
3009 upl_t upl)
3010 {
3011 return UPL_GET_INTERNAL_PAGE_LIST(upl);
3012 }
3013
3014
3015 int
UBCINFOEXISTS(const struct vnode * vp)3016 UBCINFOEXISTS(const struct vnode * vp)
3017 {
3018 return (vp) && ((vp)->v_type == VREG) && ((vp)->v_ubcinfo != UBC_INFO_NULL);
3019 }
3020
3021
3022 void
ubc_upl_range_needed(upl_t upl,int index,int count)3023 ubc_upl_range_needed(
3024 upl_t upl,
3025 int index,
3026 int count)
3027 {
3028 upl_range_needed(upl, index, count);
3029 }
3030
3031 boolean_t
ubc_is_mapped(const struct vnode * vp,boolean_t * writable)3032 ubc_is_mapped(const struct vnode *vp, boolean_t *writable)
3033 {
3034 if (!UBCINFOEXISTS(vp) || !ISSET(vp->v_ubcinfo->ui_flags, UI_ISMAPPED)) {
3035 return FALSE;
3036 }
3037 if (writable) {
3038 *writable = ISSET(vp->v_ubcinfo->ui_flags, UI_MAPPEDWRITE);
3039 }
3040 return TRUE;
3041 }
3042
3043 boolean_t
ubc_is_mapped_writable(const struct vnode * vp)3044 ubc_is_mapped_writable(const struct vnode *vp)
3045 {
3046 boolean_t writable;
3047 return ubc_is_mapped(vp, &writable) && writable;
3048 }
3049
3050 boolean_t
ubc_was_mapped(const struct vnode * vp,boolean_t * writable)3051 ubc_was_mapped(const struct vnode *vp, boolean_t *writable)
3052 {
3053 if (!UBCINFOEXISTS(vp) || !ISSET(vp->v_ubcinfo->ui_flags, UI_WASMAPPED)) {
3054 return FALSE;
3055 }
3056 if (writable) {
3057 *writable = ISSET(vp->v_ubcinfo->ui_flags, UI_WASMAPPEDWRITE);
3058 }
3059 return TRUE;
3060 }
3061
3062 boolean_t
ubc_was_mapped_writable(const struct vnode * vp)3063 ubc_was_mapped_writable(const struct vnode *vp)
3064 {
3065 boolean_t writable;
3066 return ubc_was_mapped(vp, &writable) && writable;
3067 }
3068
3069
3070 /*
3071 * CODE SIGNING
3072 */
3073 static atomic_size_t cs_blob_size = 0;
3074 static atomic_uint_fast32_t cs_blob_count = 0;
3075 static atomic_size_t cs_blob_size_peak = 0;
3076 static atomic_size_t cs_blob_size_max = 0;
3077 static atomic_uint_fast32_t cs_blob_count_peak = 0;
3078
3079 SYSCTL_UINT(_vm, OID_AUTO, cs_blob_count, CTLFLAG_RD | CTLFLAG_LOCKED, &cs_blob_count, 0, "Current number of code signature blobs");
3080 SYSCTL_ULONG(_vm, OID_AUTO, cs_blob_size, CTLFLAG_RD | CTLFLAG_LOCKED, &cs_blob_size, "Current size of all code signature blobs");
3081 SYSCTL_UINT(_vm, OID_AUTO, cs_blob_count_peak, CTLFLAG_RD | CTLFLAG_LOCKED, &cs_blob_count_peak, 0, "Peak number of code signature blobs");
3082 SYSCTL_ULONG(_vm, OID_AUTO, cs_blob_size_peak, CTLFLAG_RD | CTLFLAG_LOCKED, &cs_blob_size_peak, "Peak size of code signature blobs");
3083 SYSCTL_ULONG(_vm, OID_AUTO, cs_blob_size_max, CTLFLAG_RD | CTLFLAG_LOCKED, &cs_blob_size_max, "Size of biggest code signature blob");
3084
3085 /*
3086 * Function: csblob_parse_teamid
3087 *
3088 * Description: This function returns a pointer to the team id
3089 * stored within the codedirectory of the csblob.
3090 * If the codedirectory predates team-ids, it returns
3091 * NULL.
3092 * This does not copy the name but returns a pointer to
3093 * it within the CD. Subsequently, the CD must be
3094 * available when this is used.
3095 */
3096
3097 static const char *
csblob_parse_teamid(struct cs_blob * csblob)3098 csblob_parse_teamid(struct cs_blob *csblob)
3099 {
3100 const CS_CodeDirectory *cd;
3101
3102 cd = csblob->csb_cd;
3103
3104 if (ntohl(cd->version) < CS_SUPPORTSTEAMID) {
3105 return NULL;
3106 }
3107
3108 if (cd->teamOffset == 0) {
3109 return NULL;
3110 }
3111
3112 const char *name = ((const char *)cd) + ntohl(cd->teamOffset);
3113 if (cs_debug > 1) {
3114 printf("found team-id %s in cdblob\n", name);
3115 }
3116
3117 return name;
3118 }
3119
3120 kern_return_t
ubc_cs_blob_allocate(vm_offset_t * blob_addr_p,vm_size_t * blob_size_p)3121 ubc_cs_blob_allocate(
3122 vm_offset_t *blob_addr_p,
3123 vm_size_t *blob_size_p)
3124 {
3125 kern_return_t kr = KERN_FAILURE;
3126 vm_size_t allocation_size = 0;
3127
3128 if (!blob_addr_p || !blob_size_p) {
3129 return KERN_INVALID_ARGUMENT;
3130 }
3131 allocation_size = *blob_size_p;
3132
3133 if (ubc_cs_blob_pagewise_allocate(allocation_size) == true) {
3134 /* Round up to page size */
3135 allocation_size = round_page(allocation_size);
3136
3137 /* Allocate page-wise */
3138 kr = kmem_alloc(
3139 kernel_map,
3140 blob_addr_p,
3141 allocation_size,
3142 KMA_KOBJECT | KMA_DATA | KMA_ZERO,
3143 VM_KERN_MEMORY_SECURITY);
3144 } else {
3145 *blob_addr_p = (vm_offset_t)kalloc_data_tag(
3146 allocation_size,
3147 Z_WAITOK | Z_ZERO,
3148 VM_KERN_MEMORY_SECURITY);
3149
3150 assert(*blob_addr_p != 0);
3151 kr = KERN_SUCCESS;
3152 }
3153
3154 if (kr == KERN_SUCCESS) {
3155 *blob_size_p = allocation_size;
3156 }
3157
3158 return kr;
3159 }
3160
3161 void
ubc_cs_blob_deallocate(vm_offset_t blob_addr,vm_size_t blob_size)3162 ubc_cs_blob_deallocate(
3163 vm_offset_t blob_addr,
3164 vm_size_t blob_size)
3165 {
3166 if (ubc_cs_blob_pagewise_allocate(blob_size) == true) {
3167 kmem_free(kernel_map, blob_addr, blob_size);
3168 } else {
3169 kfree_data(blob_addr, blob_size);
3170 }
3171 }
3172
3173 /*
3174 * Some codesigned files use a lowest common denominator page size of
3175 * 4KiB, but can be used on systems that have a runtime page size of
3176 * 16KiB. Since faults will only occur on 16KiB ranges in
3177 * cs_validate_range(), we can convert the original Code Directory to
3178 * a multi-level scheme where groups of 4 hashes are combined to form
3179 * a new hash, which represents 16KiB in the on-disk file. This can
3180 * reduce the wired memory requirement for the Code Directory by
3181 * 75%.
3182 */
3183 static boolean_t
ubc_cs_supports_multilevel_hash(struct cs_blob * blob __unused)3184 ubc_cs_supports_multilevel_hash(struct cs_blob *blob __unused)
3185 {
3186 const CS_CodeDirectory *cd;
3187
3188 #if CODE_SIGNING_MONITOR
3189 // TODO: <rdar://problem/30954826>
3190 if (csm_enabled() == true) {
3191 return FALSE;
3192 }
3193 #endif
3194
3195 /*
3196 * Only applies to binaries that ship as part of the OS,
3197 * primarily the shared cache.
3198 */
3199 if (!blob->csb_platform_binary || blob->csb_teamid != NULL) {
3200 return FALSE;
3201 }
3202
3203 /*
3204 * If the runtime page size matches the code signing page
3205 * size, there is no work to do.
3206 */
3207 if (PAGE_SHIFT <= blob->csb_hash_pageshift) {
3208 return FALSE;
3209 }
3210
3211 cd = blob->csb_cd;
3212
3213 /*
3214 * There must be a valid integral multiple of hashes
3215 */
3216 if (ntohl(cd->nCodeSlots) & (PAGE_MASK >> blob->csb_hash_pageshift)) {
3217 return FALSE;
3218 }
3219
3220 /*
3221 * Scatter lists must also have ranges that have an integral number of hashes
3222 */
3223 if ((ntohl(cd->version) >= CS_SUPPORTSSCATTER) && (ntohl(cd->scatterOffset))) {
3224 const SC_Scatter *scatter = (const SC_Scatter*)
3225 ((const char*)cd + ntohl(cd->scatterOffset));
3226 /* iterate all scatter structs to make sure they are all aligned */
3227 do {
3228 uint32_t sbase = ntohl(scatter->base);
3229 uint32_t scount = ntohl(scatter->count);
3230
3231 /* last scatter? */
3232 if (scount == 0) {
3233 break;
3234 }
3235
3236 if (sbase & (PAGE_MASK >> blob->csb_hash_pageshift)) {
3237 return FALSE;
3238 }
3239
3240 if (scount & (PAGE_MASK >> blob->csb_hash_pageshift)) {
3241 return FALSE;
3242 }
3243
3244 scatter++;
3245 } while (1);
3246 }
3247
3248 /* Covered range must be a multiple of the new page size */
3249 if (ntohl(cd->codeLimit) & PAGE_MASK) {
3250 return FALSE;
3251 }
3252
3253 /* All checks pass */
3254 return TRUE;
3255 }
3256
3257 /*
3258 * Reconstruct a cs_blob with the code signature fields. This helper function
3259 * is useful because a lot of things often change the base address of the code
3260 * signature blob, which requires reconstructing some of the other pointers
3261 * within.
3262 */
3263 static errno_t
ubc_cs_blob_reconstruct(struct cs_blob * cs_blob,const vm_address_t signature_addr,const vm_address_t signature_size,const vm_offset_t code_directory_offset)3264 ubc_cs_blob_reconstruct(
3265 struct cs_blob *cs_blob,
3266 const vm_address_t signature_addr,
3267 const vm_address_t signature_size,
3268 const vm_offset_t code_directory_offset)
3269 {
3270 const CS_CodeDirectory *code_directory = NULL;
3271
3272 /* Setup the signature blob address */
3273 cs_blob->csb_mem_kaddr = (void*)signature_addr;
3274 cs_blob->csb_mem_size = signature_size;
3275
3276 /* Setup the code directory in the blob */
3277 code_directory = (const CS_CodeDirectory*)(signature_addr + code_directory_offset);
3278 cs_blob->csb_cd = code_directory;
3279
3280 /* Setup the XML entitlements */
3281 cs_blob->csb_entitlements_blob = csblob_find_blob_bytes(
3282 (uint8_t*)signature_addr,
3283 signature_size,
3284 CSSLOT_ENTITLEMENTS,
3285 CSMAGIC_EMBEDDED_ENTITLEMENTS);
3286
3287 /* Setup the DER entitlements */
3288 cs_blob->csb_der_entitlements_blob = csblob_find_blob_bytes(
3289 (uint8_t*)signature_addr,
3290 signature_size,
3291 CSSLOT_DER_ENTITLEMENTS,
3292 CSMAGIC_EMBEDDED_DER_ENTITLEMENTS);
3293
3294 return 0;
3295 }
3296
3297 /*
3298 * Given a validated cs_blob, we reformat the structure to only include
3299 * the blobs which are required by the kernel for our current platform.
3300 * This saves significant memory with agile signatures.
3301 *
3302 * To support rewriting the code directory, potentially through
3303 * multilevel hashes, we provide a mechanism to allocate a code directory
3304 * of a specified size and zero it out --> caller can fill it in.
3305 *
3306 * We don't need to perform a lot of overflow checks as the assumption
3307 * here is that the cs_blob has already been validated.
3308 */
3309 static errno_t
ubc_cs_reconstitute_code_signature(const struct cs_blob * const blob,vm_address_t * const ret_mem_kaddr,vm_size_t * const ret_mem_size,vm_size_t code_directory_size,CS_CodeDirectory ** const code_directory)3310 ubc_cs_reconstitute_code_signature(
3311 const struct cs_blob * const blob,
3312 vm_address_t * const ret_mem_kaddr,
3313 vm_size_t * const ret_mem_size,
3314 vm_size_t code_directory_size,
3315 CS_CodeDirectory ** const code_directory
3316 )
3317 {
3318 vm_address_t new_blob_addr = 0;
3319 vm_size_t new_blob_size = 0;
3320 vm_size_t new_code_directory_size = 0;
3321 const CS_GenericBlob *best_code_directory = NULL;
3322 const CS_GenericBlob *first_code_directory = NULL;
3323 const CS_GenericBlob *der_entitlements_blob = NULL;
3324 const CS_GenericBlob *entitlements_blob = NULL;
3325 const CS_GenericBlob *cms_blob = NULL;
3326 const CS_GenericBlob *launch_constraint_self = NULL;
3327 const CS_GenericBlob *launch_constraint_parent = NULL;
3328 const CS_GenericBlob *launch_constraint_responsible = NULL;
3329 const CS_GenericBlob *library_constraint = NULL;
3330 CS_SuperBlob *superblob = NULL;
3331 uint32_t num_blobs = 0;
3332 uint32_t blob_index = 0;
3333 uint32_t blob_offset = 0;
3334 kern_return_t ret;
3335 int err;
3336
3337 if (!blob) {
3338 if (cs_debug > 1) {
3339 printf("CODE SIGNING: CS Blob passed in is NULL\n");
3340 }
3341 return EINVAL;
3342 }
3343
3344 best_code_directory = (const CS_GenericBlob*)blob->csb_cd;
3345 if (!best_code_directory) {
3346 /* This case can never happen, and it is a sign of bad things */
3347 panic("CODE SIGNING: Validated CS Blob has no code directory");
3348 }
3349
3350 new_code_directory_size = code_directory_size;
3351 if (new_code_directory_size == 0) {
3352 new_code_directory_size = ntohl(best_code_directory->length);
3353 }
3354
3355 /*
3356 * A code signature can contain multiple code directories, each of which contains hashes
3357 * of pages based on a hashing algorithm. The kernel selects which hashing algorithm is
3358 * the strongest, and consequently, marks one of these code directories as the best
3359 * matched one. More often than not, the best matched one is _not_ the first one.
3360 *
3361 * However, the CMS blob which cryptographically verifies the code signature is only
3362 * signed against the first code directory. Therefore, if the CMS blob is present, we also
3363 * need the first code directory to be able to verify it. Given this, we organize the
3364 * new cs_blob as following order:
3365 *
3366 * 1. best code directory
3367 * 2. DER encoded entitlements blob (if present)
3368 * 3. launch constraint self (if present)
3369 * 4. launch constraint parent (if present)
3370 * 5. launch constraint responsible (if present)
3371 * 6. library constraint (if present)
3372 * 7. entitlements blob (if present)
3373 * 8. cms blob (if present)
3374 * 9. first code directory (if not already the best match, and if cms blob is present)
3375 *
3376 * This order is chosen deliberately, as later on, we expect to get rid of the CMS blob
3377 * and the first code directory once their verification is complete.
3378 */
3379
3380 /* Storage for the super blob header */
3381 new_blob_size += sizeof(CS_SuperBlob);
3382
3383 /* Guaranteed storage for the best code directory */
3384 new_blob_size += sizeof(CS_BlobIndex);
3385 new_blob_size += new_code_directory_size;
3386 num_blobs += 1;
3387
3388 /* Conditional storage for the DER entitlements blob */
3389 der_entitlements_blob = blob->csb_der_entitlements_blob;
3390 if (der_entitlements_blob) {
3391 new_blob_size += sizeof(CS_BlobIndex);
3392 new_blob_size += ntohl(der_entitlements_blob->length);
3393 num_blobs += 1;
3394 }
3395
3396 /* Conditional storage for the launch constraints self blob */
3397 launch_constraint_self = csblob_find_blob_bytes(
3398 (const uint8_t *)blob->csb_mem_kaddr,
3399 blob->csb_mem_size,
3400 CSSLOT_LAUNCH_CONSTRAINT_SELF,
3401 CSMAGIC_EMBEDDED_LAUNCH_CONSTRAINT);
3402 if (launch_constraint_self) {
3403 new_blob_size += sizeof(CS_BlobIndex);
3404 new_blob_size += ntohl(launch_constraint_self->length);
3405 num_blobs += 1;
3406 }
3407
3408 /* Conditional storage for the launch constraints parent blob */
3409 launch_constraint_parent = csblob_find_blob_bytes(
3410 (const uint8_t *)blob->csb_mem_kaddr,
3411 blob->csb_mem_size,
3412 CSSLOT_LAUNCH_CONSTRAINT_PARENT,
3413 CSMAGIC_EMBEDDED_LAUNCH_CONSTRAINT);
3414 if (launch_constraint_parent) {
3415 new_blob_size += sizeof(CS_BlobIndex);
3416 new_blob_size += ntohl(launch_constraint_parent->length);
3417 num_blobs += 1;
3418 }
3419
3420 /* Conditional storage for the launch constraints responsible blob */
3421 launch_constraint_responsible = csblob_find_blob_bytes(
3422 (const uint8_t *)blob->csb_mem_kaddr,
3423 blob->csb_mem_size,
3424 CSSLOT_LAUNCH_CONSTRAINT_RESPONSIBLE,
3425 CSMAGIC_EMBEDDED_LAUNCH_CONSTRAINT);
3426 if (launch_constraint_responsible) {
3427 new_blob_size += sizeof(CS_BlobIndex);
3428 new_blob_size += ntohl(launch_constraint_responsible->length);
3429 num_blobs += 1;
3430 }
3431
3432 /* Conditional storage for the library constraintsblob */
3433 library_constraint = csblob_find_blob_bytes(
3434 (const uint8_t *)blob->csb_mem_kaddr,
3435 blob->csb_mem_size,
3436 CSSLOT_LIBRARY_CONSTRAINT,
3437 CSMAGIC_EMBEDDED_LAUNCH_CONSTRAINT);
3438 if (library_constraint) {
3439 new_blob_size += sizeof(CS_BlobIndex);
3440 new_blob_size += ntohl(library_constraint->length);
3441 num_blobs += 1;
3442 }
3443
3444 /* Conditional storage for the entitlements blob */
3445 entitlements_blob = blob->csb_entitlements_blob;
3446 if (entitlements_blob) {
3447 new_blob_size += sizeof(CS_BlobIndex);
3448 new_blob_size += ntohl(entitlements_blob->length);
3449 num_blobs += 1;
3450 }
3451
3452 /* Conditional storage for the CMS blob */
3453 cms_blob = csblob_find_blob_bytes((const uint8_t *)blob->csb_mem_kaddr, blob->csb_mem_size, CSSLOT_SIGNATURESLOT, CSMAGIC_BLOBWRAPPER);
3454 if (cms_blob) {
3455 new_blob_size += sizeof(CS_BlobIndex);
3456 new_blob_size += ntohl(cms_blob->length);
3457 num_blobs += 1;
3458 }
3459
3460 /*
3461 * Conditional storage for the first code directory.
3462 * This is only needed if a CMS blob exists and the best code directory isn't already
3463 * the first one. It is an error if we find a CMS blob but do not find a first code directory.
3464 */
3465 if (cms_blob) {
3466 first_code_directory = csblob_find_blob_bytes((const uint8_t *)blob->csb_mem_kaddr, blob->csb_mem_size, CSSLOT_CODEDIRECTORY, CSMAGIC_CODEDIRECTORY);
3467 if (first_code_directory == best_code_directory) {
3468 /* We don't need the first code directory anymore, since the best one is already it */
3469 first_code_directory = NULL;
3470 } else if (first_code_directory) {
3471 new_blob_size += sizeof(CS_BlobIndex);
3472 new_blob_size += ntohl(first_code_directory->length);
3473 num_blobs += 1;
3474 } else {
3475 printf("CODE SIGNING: Invalid CS Blob: found CMS blob but not a first code directory\n");
3476 return EINVAL;
3477 }
3478 }
3479
3480 /*
3481 * The blob size could be rouded up to page size here, so we keep a copy
3482 * of the actual superblob length as well.
3483 */
3484 vm_size_t new_blob_allocation_size = new_blob_size;
3485 ret = ubc_cs_blob_allocate(&new_blob_addr, &new_blob_allocation_size);
3486 if (ret != KERN_SUCCESS) {
3487 printf("CODE SIGNING: Failed to allocate memory for new code signing blob: %d\n", ret);
3488 return ENOMEM;
3489 }
3490
3491 /*
3492 * Fill out the superblob header and then all the blobs in the order listed
3493 * above.
3494 */
3495 superblob = (CS_SuperBlob*)new_blob_addr;
3496 superblob->magic = htonl(CSMAGIC_EMBEDDED_SIGNATURE);
3497 superblob->length = htonl((uint32_t)new_blob_size);
3498 superblob->count = htonl(num_blobs);
3499
3500 blob_index = 0;
3501 blob_offset = sizeof(CS_SuperBlob) + (num_blobs * sizeof(CS_BlobIndex));
3502
3503 /* Best code directory */
3504 superblob->index[blob_index].offset = htonl(blob_offset);
3505 if (first_code_directory) {
3506 superblob->index[blob_index].type = htonl(CSSLOT_ALTERNATE_CODEDIRECTORIES);
3507 } else {
3508 superblob->index[blob_index].type = htonl(CSSLOT_CODEDIRECTORY);
3509 }
3510
3511 if (code_directory_size > 0) {
3512 /* We zero out the code directory, as we expect the caller to fill it in */
3513 memset((void*)(new_blob_addr + blob_offset), 0, new_code_directory_size);
3514 } else {
3515 memcpy((void*)(new_blob_addr + blob_offset), best_code_directory, new_code_directory_size);
3516 }
3517
3518 if (code_directory) {
3519 *code_directory = (CS_CodeDirectory*)(new_blob_addr + blob_offset);
3520 }
3521 blob_offset += new_code_directory_size;
3522
3523 /* DER entitlements blob */
3524 if (der_entitlements_blob) {
3525 blob_index += 1;
3526 superblob->index[blob_index].offset = htonl(blob_offset);
3527 superblob->index[blob_index].type = htonl(CSSLOT_DER_ENTITLEMENTS);
3528
3529 memcpy((void*)(new_blob_addr + blob_offset), der_entitlements_blob, ntohl(der_entitlements_blob->length));
3530 blob_offset += ntohl(der_entitlements_blob->length);
3531 }
3532
3533 /* Launch constraints self blob */
3534 if (launch_constraint_self) {
3535 blob_index += 1;
3536 superblob->index[blob_index].offset = htonl(blob_offset);
3537 superblob->index[blob_index].type = htonl(CSSLOT_LAUNCH_CONSTRAINT_SELF);
3538
3539 memcpy(
3540 (void*)(new_blob_addr + blob_offset),
3541 launch_constraint_self,
3542 ntohl(launch_constraint_self->length));
3543
3544 blob_offset += ntohl(launch_constraint_self->length);
3545 }
3546
3547 /* Launch constraints parent blob */
3548 if (launch_constraint_parent) {
3549 blob_index += 1;
3550 superblob->index[blob_index].offset = htonl(blob_offset);
3551 superblob->index[blob_index].type = htonl(CSSLOT_LAUNCH_CONSTRAINT_PARENT);
3552
3553 memcpy(
3554 (void*)(new_blob_addr + blob_offset),
3555 launch_constraint_parent,
3556 ntohl(launch_constraint_parent->length));
3557
3558 blob_offset += ntohl(launch_constraint_parent->length);
3559 }
3560
3561 /* Launch constraints responsible blob */
3562 if (launch_constraint_responsible) {
3563 blob_index += 1;
3564 superblob->index[blob_index].offset = htonl(blob_offset);
3565 superblob->index[blob_index].type = htonl(CSSLOT_LAUNCH_CONSTRAINT_RESPONSIBLE);
3566
3567 memcpy(
3568 (void*)(new_blob_addr + blob_offset),
3569 launch_constraint_responsible,
3570 ntohl(launch_constraint_responsible->length));
3571
3572 blob_offset += ntohl(launch_constraint_responsible->length);
3573 }
3574
3575 /* library constraints blob */
3576 if (library_constraint) {
3577 blob_index += 1;
3578 superblob->index[blob_index].offset = htonl(blob_offset);
3579 superblob->index[blob_index].type = htonl(CSSLOT_LIBRARY_CONSTRAINT);
3580
3581 memcpy(
3582 (void*)(new_blob_addr + blob_offset),
3583 library_constraint,
3584 ntohl(library_constraint->length));
3585
3586 blob_offset += ntohl(library_constraint->length);
3587 }
3588
3589 /* Entitlements blob */
3590 if (entitlements_blob) {
3591 blob_index += 1;
3592 superblob->index[blob_index].offset = htonl(blob_offset);
3593 superblob->index[blob_index].type = htonl(CSSLOT_ENTITLEMENTS);
3594
3595 memcpy((void*)(new_blob_addr + blob_offset), entitlements_blob, ntohl(entitlements_blob->length));
3596 blob_offset += ntohl(entitlements_blob->length);
3597 }
3598
3599 /* CMS blob */
3600 if (cms_blob) {
3601 blob_index += 1;
3602 superblob->index[blob_index].offset = htonl(blob_offset);
3603 superblob->index[blob_index].type = htonl(CSSLOT_SIGNATURESLOT);
3604 memcpy((void*)(new_blob_addr + blob_offset), cms_blob, ntohl(cms_blob->length));
3605 blob_offset += ntohl(cms_blob->length);
3606 }
3607
3608 /* First code directory */
3609 if (first_code_directory) {
3610 blob_index += 1;
3611 superblob->index[blob_index].offset = htonl(blob_offset);
3612 superblob->index[blob_index].type = htonl(CSSLOT_CODEDIRECTORY);
3613 memcpy((void*)(new_blob_addr + blob_offset), first_code_directory, ntohl(first_code_directory->length));
3614 blob_offset += ntohl(first_code_directory->length);
3615 }
3616
3617 /*
3618 * We only validate the blob in case we copied in the best code directory.
3619 * In case the code directory size we were passed in wasn't 0, we memset the best
3620 * code directory to 0 and expect the caller to fill it in. In the same spirit, we
3621 * expect the caller to validate the code signature after they fill in the code
3622 * directory.
3623 */
3624 if (code_directory_size == 0) {
3625 const CS_CodeDirectory *validated_code_directory = NULL;
3626 const CS_GenericBlob *validated_entitlements_blob = NULL;
3627 const CS_GenericBlob *validated_der_entitlements_blob = NULL;
3628
3629 ret = cs_validate_csblob(
3630 (const uint8_t *)superblob,
3631 new_blob_size,
3632 &validated_code_directory,
3633 &validated_entitlements_blob,
3634 &validated_der_entitlements_blob);
3635
3636 if (ret) {
3637 printf("unable to validate reconstituted cs_blob: %d\n", ret);
3638 err = EINVAL;
3639 goto fail;
3640 }
3641 }
3642
3643 if (ret_mem_kaddr) {
3644 *ret_mem_kaddr = new_blob_addr;
3645 }
3646 if (ret_mem_size) {
3647 *ret_mem_size = new_blob_allocation_size;
3648 }
3649
3650 return 0;
3651
3652 fail:
3653 ubc_cs_blob_deallocate(new_blob_addr, new_blob_allocation_size);
3654 return err;
3655 }
3656
3657 /*
3658 * We use this function to clear out unnecessary bits from the code signature
3659 * blob which are no longer needed. We free these bits and give them back to
3660 * the kernel. This is needed since reconstitution includes extra data which is
3661 * needed only for verification but has no point in keeping afterwards.
3662 *
3663 * This results in significant memory reduction, especially for 3rd party apps
3664 * since we also get rid of the CMS blob.
3665 */
3666 static errno_t
ubc_cs_reconstitute_code_signature_2nd_stage(struct cs_blob * blob)3667 ubc_cs_reconstitute_code_signature_2nd_stage(
3668 struct cs_blob *blob
3669 )
3670 {
3671 kern_return_t ret = KERN_FAILURE;
3672 const CS_GenericBlob *launch_constraint_self = NULL;
3673 const CS_GenericBlob *launch_constraint_parent = NULL;
3674 const CS_GenericBlob *launch_constraint_responsible = NULL;
3675 const CS_GenericBlob *library_constraint = NULL;
3676 CS_SuperBlob *superblob = NULL;
3677 uint32_t num_blobs = 0;
3678 vm_size_t last_needed_blob_offset = 0;
3679 vm_offset_t code_directory_offset = 0;
3680
3681 /*
3682 * Ordering of blobs we need to keep:
3683 * 1. Code directory
3684 * 2. DER encoded entitlements (if present)
3685 * 3. Launch constraints self (if present)
3686 * 4. Launch constraints parent (if present)
3687 * 5. Launch constraints responsible (if present)
3688 * 6. Library constraints (if present)
3689 *
3690 * We need to clear out the remaining page after these blobs end, and fix up
3691 * the superblob for the changes. Things gets a little more complicated for
3692 * blobs which may not have been kmem_allocated. For those, we simply just
3693 * allocate the new required space and copy into it.
3694 */
3695
3696 if (blob == NULL) {
3697 printf("NULL blob passed in for 2nd stage reconstitution\n");
3698 return EINVAL;
3699 }
3700 assert(blob->csb_reconstituted == true);
3701
3702 /* Ensure we're not page-wise allocated when in this function */
3703 assert(ubc_cs_blob_pagewise_allocate(blob->csb_mem_size) == false);
3704
3705 if (!blob->csb_cd) {
3706 /* This case can never happen, and it is a sign of bad things */
3707 panic("validated cs_blob has no code directory");
3708 }
3709 superblob = (CS_SuperBlob*)blob->csb_mem_kaddr;
3710
3711 num_blobs = 1;
3712 last_needed_blob_offset = ntohl(superblob->index[0].offset) + ntohl(blob->csb_cd->length);
3713
3714 /* Check for DER entitlements */
3715 if (blob->csb_der_entitlements_blob) {
3716 num_blobs += 1;
3717 last_needed_blob_offset += ntohl(blob->csb_der_entitlements_blob->length);
3718 }
3719
3720 /* Check for launch constraints self */
3721 launch_constraint_self = csblob_find_blob_bytes(
3722 (const uint8_t *)blob->csb_mem_kaddr,
3723 blob->csb_mem_size,
3724 CSSLOT_LAUNCH_CONSTRAINT_SELF,
3725 CSMAGIC_EMBEDDED_LAUNCH_CONSTRAINT);
3726 if (launch_constraint_self) {
3727 num_blobs += 1;
3728 last_needed_blob_offset += ntohl(launch_constraint_self->length);
3729 }
3730
3731 /* Check for launch constraints parent */
3732 launch_constraint_parent = csblob_find_blob_bytes(
3733 (const uint8_t *)blob->csb_mem_kaddr,
3734 blob->csb_mem_size,
3735 CSSLOT_LAUNCH_CONSTRAINT_PARENT,
3736 CSMAGIC_EMBEDDED_LAUNCH_CONSTRAINT);
3737 if (launch_constraint_parent) {
3738 num_blobs += 1;
3739 last_needed_blob_offset += ntohl(launch_constraint_parent->length);
3740 }
3741
3742 /* Check for launch constraints responsible */
3743 launch_constraint_responsible = csblob_find_blob_bytes(
3744 (const uint8_t *)blob->csb_mem_kaddr,
3745 blob->csb_mem_size,
3746 CSSLOT_LAUNCH_CONSTRAINT_RESPONSIBLE,
3747 CSMAGIC_EMBEDDED_LAUNCH_CONSTRAINT);
3748 if (launch_constraint_responsible) {
3749 num_blobs += 1;
3750 last_needed_blob_offset += ntohl(launch_constraint_responsible->length);
3751 }
3752
3753 /* Check for library constraint */
3754 library_constraint = csblob_find_blob_bytes(
3755 (const uint8_t *)blob->csb_mem_kaddr,
3756 blob->csb_mem_size,
3757 CSSLOT_LIBRARY_CONSTRAINT,
3758 CSMAGIC_EMBEDDED_LAUNCH_CONSTRAINT);
3759 if (library_constraint) {
3760 num_blobs += 1;
3761 last_needed_blob_offset += ntohl(library_constraint->length);
3762 }
3763
3764 superblob->count = htonl(num_blobs);
3765 superblob->length = htonl((uint32_t)last_needed_blob_offset);
3766
3767 /*
3768 * There is a chance that the code directory is marked within the superblob as an
3769 * alternate code directory. This happens when the first code directory isn't the
3770 * best one chosen by the kernel, so to be able to access both the first and the best,
3771 * we save the best one as an alternate one. Since we're getting rid of the first one
3772 * here, we mark the best one as the first one.
3773 */
3774 superblob->index[0].type = htonl(CSSLOT_CODEDIRECTORY);
3775
3776 vm_address_t new_superblob = 0;
3777 vm_size_t new_superblob_size = last_needed_blob_offset;
3778
3779 ret = ubc_cs_blob_allocate(&new_superblob, &new_superblob_size);
3780 if (ret != KERN_SUCCESS) {
3781 printf("unable to allocate memory for 2nd stage reconstitution: %d\n", ret);
3782 return ENOMEM;
3783 }
3784 assert(new_superblob_size == last_needed_blob_offset);
3785
3786 /* Calculate the code directory offset */
3787 code_directory_offset = (vm_offset_t)blob->csb_cd - (vm_offset_t)blob->csb_mem_kaddr;
3788
3789 /* Copy in the updated superblob into the new memory */
3790 memcpy((void*)new_superblob, superblob, new_superblob_size);
3791
3792 /* Free the old code signature and old memory */
3793 ubc_cs_blob_deallocate((vm_offset_t)blob->csb_mem_kaddr, blob->csb_mem_size);
3794
3795 /* Reconstruct critical fields in the blob object */
3796 ubc_cs_blob_reconstruct(
3797 blob,
3798 new_superblob,
3799 new_superblob_size,
3800 code_directory_offset);
3801
3802 /* XML entitlements should've been removed */
3803 assert(blob->csb_entitlements_blob == NULL);
3804
3805 const CS_CodeDirectory *validated_code_directory = NULL;
3806 const CS_GenericBlob *validated_entitlements_blob = NULL;
3807 const CS_GenericBlob *validated_der_entitlements_blob = NULL;
3808
3809 ret = cs_validate_csblob(
3810 (const uint8_t*)blob->csb_mem_kaddr,
3811 blob->csb_mem_size,
3812 &validated_code_directory,
3813 &validated_entitlements_blob,
3814 &validated_der_entitlements_blob);
3815 if (ret) {
3816 printf("unable to validate code signature after 2nd stage reconstitution: %d\n", ret);
3817 return EINVAL;
3818 }
3819
3820 return 0;
3821 }
3822
3823 static int
ubc_cs_convert_to_multilevel_hash(struct cs_blob * blob)3824 ubc_cs_convert_to_multilevel_hash(struct cs_blob *blob)
3825 {
3826 const CS_CodeDirectory *old_cd, *cd;
3827 CS_CodeDirectory *new_cd;
3828 const CS_GenericBlob *entitlements;
3829 const CS_GenericBlob *der_entitlements;
3830 vm_offset_t new_blob_addr;
3831 vm_size_t new_blob_size;
3832 vm_size_t new_cdsize;
3833 int error;
3834
3835 uint32_t hashes_per_new_hash_shift = (uint32_t)(PAGE_SHIFT - blob->csb_hash_pageshift);
3836
3837 if (cs_debug > 1) {
3838 printf("CODE SIGNING: Attempting to convert Code Directory for %lu -> %lu page shift\n",
3839 (unsigned long)blob->csb_hash_pageshift, (unsigned long)PAGE_SHIFT);
3840 }
3841
3842 old_cd = blob->csb_cd;
3843
3844 /* Up to the hashes, we can copy all data */
3845 new_cdsize = ntohl(old_cd->hashOffset);
3846 new_cdsize += (ntohl(old_cd->nCodeSlots) >> hashes_per_new_hash_shift) * old_cd->hashSize;
3847
3848 error = ubc_cs_reconstitute_code_signature(blob, &new_blob_addr, &new_blob_size, new_cdsize, &new_cd);
3849 if (error != 0) {
3850 printf("CODE SIGNING: Failed to reconsitute code signature: %d\n", error);
3851 return error;
3852 }
3853 entitlements = csblob_find_blob_bytes((uint8_t*)new_blob_addr, new_blob_size, CSSLOT_ENTITLEMENTS, CSMAGIC_EMBEDDED_ENTITLEMENTS);
3854 der_entitlements = csblob_find_blob_bytes((uint8_t*)new_blob_addr, new_blob_size, CSSLOT_DER_ENTITLEMENTS, CSMAGIC_EMBEDDED_DER_ENTITLEMENTS);
3855
3856 memcpy(new_cd, old_cd, ntohl(old_cd->hashOffset));
3857
3858 /* Update fields in the Code Directory structure */
3859 new_cd->length = htonl((uint32_t)new_cdsize);
3860
3861 uint32_t nCodeSlots = ntohl(new_cd->nCodeSlots);
3862 nCodeSlots >>= hashes_per_new_hash_shift;
3863 new_cd->nCodeSlots = htonl(nCodeSlots);
3864
3865 new_cd->pageSize = (uint8_t)PAGE_SHIFT; /* Not byte-swapped */
3866
3867 if ((ntohl(new_cd->version) >= CS_SUPPORTSSCATTER) && (ntohl(new_cd->scatterOffset))) {
3868 SC_Scatter *scatter = (SC_Scatter*)
3869 ((char *)new_cd + ntohl(new_cd->scatterOffset));
3870 /* iterate all scatter structs to scale their counts */
3871 do {
3872 uint32_t scount = ntohl(scatter->count);
3873 uint32_t sbase = ntohl(scatter->base);
3874
3875 /* last scatter? */
3876 if (scount == 0) {
3877 break;
3878 }
3879
3880 scount >>= hashes_per_new_hash_shift;
3881 scatter->count = htonl(scount);
3882
3883 sbase >>= hashes_per_new_hash_shift;
3884 scatter->base = htonl(sbase);
3885
3886 scatter++;
3887 } while (1);
3888 }
3889
3890 /* For each group of hashes, hash them together */
3891 const unsigned char *src_base = (const unsigned char *)old_cd + ntohl(old_cd->hashOffset);
3892 unsigned char *dst_base = (unsigned char *)new_cd + ntohl(new_cd->hashOffset);
3893
3894 uint32_t hash_index;
3895 for (hash_index = 0; hash_index < nCodeSlots; hash_index++) {
3896 union cs_hash_union mdctx;
3897
3898 uint32_t source_hash_len = old_cd->hashSize << hashes_per_new_hash_shift;
3899 const unsigned char *src = src_base + hash_index * source_hash_len;
3900 unsigned char *dst = dst_base + hash_index * new_cd->hashSize;
3901
3902 blob->csb_hashtype->cs_init(&mdctx);
3903 blob->csb_hashtype->cs_update(&mdctx, src, source_hash_len);
3904 blob->csb_hashtype->cs_final(dst, &mdctx);
3905 }
3906
3907 error = cs_validate_csblob((const uint8_t *)new_blob_addr, new_blob_size, &cd, &entitlements, &der_entitlements);
3908 if (error != 0) {
3909 printf("CODE SIGNING: Failed to validate new Code Signing Blob: %d\n",
3910 error);
3911
3912 ubc_cs_blob_deallocate(new_blob_addr, new_blob_size);
3913 return error;
3914 }
3915
3916 /* New Code Directory is ready for use, swap it out in the blob structure */
3917 ubc_cs_blob_deallocate((vm_offset_t)blob->csb_mem_kaddr, blob->csb_mem_size);
3918
3919 blob->csb_mem_size = new_blob_size;
3920 blob->csb_mem_kaddr = (void *)new_blob_addr;
3921 blob->csb_cd = cd;
3922 blob->csb_entitlements_blob = NULL;
3923
3924 blob->csb_der_entitlements_blob = der_entitlements; /* may be NULL, not yet validated */
3925 blob->csb_reconstituted = true;
3926
3927 /* The blob has some cached attributes of the Code Directory, so update those */
3928
3929 blob->csb_hash_firstlevel_pageshift = blob->csb_hash_pageshift; /* Save the original page size */
3930
3931 blob->csb_hash_pageshift = PAGE_SHIFT;
3932 blob->csb_end_offset = ntohl(cd->codeLimit);
3933 if ((ntohl(cd->version) >= CS_SUPPORTSSCATTER) && (ntohl(cd->scatterOffset))) {
3934 const SC_Scatter *scatter = (const SC_Scatter*)
3935 ((const char*)cd + ntohl(cd->scatterOffset));
3936 blob->csb_start_offset = ((off_t)ntohl(scatter->base)) * PAGE_SIZE;
3937 } else {
3938 blob->csb_start_offset = 0;
3939 }
3940
3941 return 0;
3942 }
3943
3944 static void
cs_blob_cleanup(struct cs_blob * blob)3945 cs_blob_cleanup(struct cs_blob *blob)
3946 {
3947 if (blob->csb_entitlements != NULL) {
3948 amfi->OSEntitlements_invalidate(blob->csb_entitlements);
3949 osobject_release(blob->csb_entitlements);
3950 blob->csb_entitlements = NULL;
3951 }
3952
3953 #if CODE_SIGNING_MONITOR
3954 if (blob->csb_csm_obj != NULL) {
3955 /* Unconditionally remove any profiles we may have associated */
3956 csm_disassociate_provisioning_profile(blob->csb_csm_obj);
3957
3958 kern_return_t kr = csm_unregister_code_signature(blob->csb_csm_obj);
3959 if (kr == KERN_SUCCESS) {
3960 /*
3961 * If the code signature was monitor managed, the monitor will have freed it
3962 * itself in the unregistration call. It means we do not need to free the data
3963 * over here.
3964 */
3965 if (blob->csb_csm_managed) {
3966 blob->csb_mem_kaddr = NULL;
3967 blob->csb_mem_size = 0;
3968 }
3969 } else if (kr == KERN_ABORTED) {
3970 /*
3971 * The code-signing-monitor refused to unregister the code signature. It means
3972 * whatever memory was backing the code signature may not have been released, and
3973 * attempting to free it down below will not be successful. As a result, all we
3974 * can do is prevent the kernel from touching the data.
3975 */
3976 blob->csb_mem_kaddr = NULL;
3977 blob->csb_mem_size = 0;
3978 }
3979 }
3980
3981 /* Unconditionally remove references to the monitor */
3982 blob->csb_csm_obj = NULL;
3983 blob->csb_csm_managed = false;
3984 #endif
3985
3986 if (blob->csb_mem_kaddr) {
3987 ubc_cs_blob_deallocate((vm_offset_t)blob->csb_mem_kaddr, blob->csb_mem_size);
3988 }
3989 blob->csb_mem_kaddr = NULL;
3990 blob->csb_mem_size = 0;
3991 }
3992
3993 static void
cs_blob_ro_free(struct cs_blob * blob)3994 cs_blob_ro_free(struct cs_blob *blob)
3995 {
3996 struct cs_blob tmp;
3997
3998 if (blob != NULL) {
3999 /*
4000 * cs_blob_cleanup clears fields, so we need to pass it a
4001 * mutable copy.
4002 */
4003 tmp = *blob;
4004 cs_blob_cleanup(&tmp);
4005
4006 zfree_ro(ZONE_ID_CS_BLOB, blob);
4007 }
4008 }
4009
4010 /*
4011 * Free a cs_blob previously created by cs_blob_create_validated.
4012 */
4013 void
cs_blob_free(struct cs_blob * blob)4014 cs_blob_free(
4015 struct cs_blob *blob)
4016 {
4017 cs_blob_ro_free(blob);
4018 }
4019
4020 static int
cs_blob_init_validated(vm_address_t * const addr,vm_size_t size,struct cs_blob * blob,CS_CodeDirectory const ** const ret_cd)4021 cs_blob_init_validated(
4022 vm_address_t * const addr,
4023 vm_size_t size,
4024 struct cs_blob *blob,
4025 CS_CodeDirectory const ** const ret_cd)
4026 {
4027 int error = EINVAL;
4028 const CS_CodeDirectory *cd = NULL;
4029 const CS_GenericBlob *entitlements = NULL;
4030 const CS_GenericBlob *der_entitlements = NULL;
4031 union cs_hash_union mdctx;
4032 size_t length;
4033
4034 bzero(blob, sizeof(*blob));
4035
4036 /* fill in the new blob */
4037 blob->csb_mem_size = size;
4038 blob->csb_mem_offset = 0;
4039 blob->csb_mem_kaddr = (void *)*addr;
4040 blob->csb_flags = 0;
4041 blob->csb_signer_type = CS_SIGNER_TYPE_UNKNOWN;
4042 blob->csb_platform_binary = 0;
4043 blob->csb_platform_path = 0;
4044 blob->csb_teamid = NULL;
4045 #if CONFIG_SUPPLEMENTAL_SIGNATURES
4046 blob->csb_supplement_teamid = NULL;
4047 #endif
4048 blob->csb_entitlements_blob = NULL;
4049 blob->csb_der_entitlements_blob = NULL;
4050 blob->csb_entitlements = NULL;
4051 #if CODE_SIGNING_MONITOR
4052 blob->csb_csm_obj = NULL;
4053 blob->csb_csm_managed = false;
4054 #endif
4055 blob->csb_reconstituted = false;
4056 blob->csb_validation_category = CS_VALIDATION_CATEGORY_INVALID;
4057
4058 /* Transfer ownership. Even on error, this function will deallocate */
4059 *addr = 0;
4060
4061 /*
4062 * Validate the blob's contents
4063 */
4064 length = (size_t) size;
4065 error = cs_validate_csblob((const uint8_t *)blob->csb_mem_kaddr,
4066 length, &cd, &entitlements, &der_entitlements);
4067 if (error) {
4068 if (cs_debug) {
4069 printf("CODESIGNING: csblob invalid: %d\n", error);
4070 }
4071 /*
4072 * The vnode checker can't make the rest of this function
4073 * succeed if csblob validation failed, so bail */
4074 goto out;
4075 } else {
4076 const unsigned char *md_base;
4077 uint8_t hash[CS_HASH_MAX_SIZE];
4078 int md_size;
4079 vm_offset_t hash_pagemask;
4080
4081 blob->csb_cd = cd;
4082 blob->csb_entitlements_blob = entitlements; /* may be NULL, not yet validated */
4083 blob->csb_der_entitlements_blob = der_entitlements; /* may be NULL, not yet validated */
4084 blob->csb_hashtype = cs_find_md(cd->hashType);
4085 if (blob->csb_hashtype == NULL || blob->csb_hashtype->cs_digest_size > sizeof(hash)) {
4086 panic("validated CodeDirectory but unsupported type");
4087 }
4088
4089 blob->csb_hash_pageshift = cd->pageSize;
4090 hash_pagemask = (1U << cd->pageSize) - 1;
4091 blob->csb_hash_firstlevel_pageshift = 0;
4092 blob->csb_flags = (ntohl(cd->flags) & CS_ALLOWED_MACHO) | CS_VALID;
4093 blob->csb_end_offset = (((vm_offset_t)ntohl(cd->codeLimit) + hash_pagemask) & ~hash_pagemask);
4094 if ((ntohl(cd->version) >= CS_SUPPORTSSCATTER) && (ntohl(cd->scatterOffset))) {
4095 const SC_Scatter *scatter = (const SC_Scatter*)
4096 ((const char*)cd + ntohl(cd->scatterOffset));
4097 blob->csb_start_offset = ((off_t)ntohl(scatter->base)) * (1U << blob->csb_hash_pageshift);
4098 } else {
4099 blob->csb_start_offset = 0;
4100 }
4101 /* compute the blob's cdhash */
4102 md_base = (const unsigned char *) cd;
4103 md_size = ntohl(cd->length);
4104
4105 blob->csb_hashtype->cs_init(&mdctx);
4106 blob->csb_hashtype->cs_update(&mdctx, md_base, md_size);
4107 blob->csb_hashtype->cs_final(hash, &mdctx);
4108
4109 memcpy(blob->csb_cdhash, hash, CS_CDHASH_LEN);
4110
4111 #if CONFIG_SUPPLEMENTAL_SIGNATURES
4112 blob->csb_linkage_hashtype = NULL;
4113 if (ntohl(cd->version) >= CS_SUPPORTSLINKAGE && cd->linkageHashType != 0 &&
4114 ntohl(cd->linkageSize) >= CS_CDHASH_LEN) {
4115 blob->csb_linkage_hashtype = cs_find_md(cd->linkageHashType);
4116
4117 if (blob->csb_linkage_hashtype != NULL) {
4118 memcpy(blob->csb_linkage, (uint8_t const*)cd + ntohl(cd->linkageOffset),
4119 CS_CDHASH_LEN);
4120 }
4121 }
4122 #endif
4123 }
4124
4125 error = 0;
4126
4127 out:
4128 if (error != 0) {
4129 cs_blob_cleanup(blob);
4130 blob = NULL;
4131 cd = NULL;
4132 }
4133
4134 if (ret_cd != NULL) {
4135 *ret_cd = cd;
4136 }
4137
4138 return error;
4139 }
4140
4141 /*
4142 * Validate the code signature blob, create a struct cs_blob wrapper
4143 * and return it together with a pointer to the chosen code directory
4144 * and entitlements blob.
4145 *
4146 * Note that this takes ownership of the memory as addr, mainly because
4147 * this function can actually replace the passed in blob with another
4148 * one, e.g. when performing multilevel hashing optimization.
4149 */
4150 int
cs_blob_create_validated(vm_address_t * const addr,vm_size_t size,struct cs_blob ** const ret_blob,CS_CodeDirectory const ** const ret_cd)4151 cs_blob_create_validated(
4152 vm_address_t * const addr,
4153 vm_size_t size,
4154 struct cs_blob ** const ret_blob,
4155 CS_CodeDirectory const ** const ret_cd)
4156 {
4157 struct cs_blob blob = {};
4158 struct cs_blob *ro_blob;
4159 int error;
4160
4161 if (ret_blob) {
4162 *ret_blob = NULL;
4163 }
4164
4165 if ((error = cs_blob_init_validated(addr, size, &blob, ret_cd)) != 0) {
4166 return error;
4167 }
4168
4169 if (ret_blob != NULL) {
4170 ro_blob = zalloc_ro(ZONE_ID_CS_BLOB, Z_WAITOK | Z_NOFAIL);
4171 zalloc_ro_update_elem(ZONE_ID_CS_BLOB, ro_blob, &blob);
4172 *ret_blob = ro_blob;
4173 }
4174
4175 return error;
4176 }
4177
4178 #if CONFIG_SUPPLEMENTAL_SIGNATURES
4179 static void
cs_blob_supplement_free(struct cs_blob * const blob)4180 cs_blob_supplement_free(struct cs_blob * const blob)
4181 {
4182 void *teamid;
4183
4184 if (blob != NULL) {
4185 if (blob->csb_supplement_teamid != NULL) {
4186 teamid = blob->csb_supplement_teamid;
4187 vm_size_t teamid_size = strlen(blob->csb_supplement_teamid) + 1;
4188 kfree_data(teamid, teamid_size);
4189 }
4190 cs_blob_ro_free(blob);
4191 }
4192 }
4193 #endif
4194
4195 static void
ubc_cs_blob_adjust_statistics(struct cs_blob const * blob)4196 ubc_cs_blob_adjust_statistics(struct cs_blob const *blob)
4197 {
4198 /* Note that the atomic ops are not enough to guarantee
4199 * correctness: If a blob with an intermediate size is inserted
4200 * concurrently, we can lose a peak value assignment. But these
4201 * statistics are only advisory anyway, so we're not going to
4202 * employ full locking here. (Consequently, we are also okay with
4203 * relaxed ordering of those accesses.)
4204 */
4205
4206 unsigned int new_cs_blob_count = os_atomic_add(&cs_blob_count, 1, relaxed);
4207 if (new_cs_blob_count > os_atomic_load(&cs_blob_count_peak, relaxed)) {
4208 os_atomic_store(&cs_blob_count_peak, new_cs_blob_count, relaxed);
4209 }
4210
4211 size_t new_cs_blob_size = os_atomic_add(&cs_blob_size, blob->csb_mem_size, relaxed);
4212
4213 if (new_cs_blob_size > os_atomic_load(&cs_blob_size_peak, relaxed)) {
4214 os_atomic_store(&cs_blob_size_peak, new_cs_blob_size, relaxed);
4215 }
4216 if (blob->csb_mem_size > os_atomic_load(&cs_blob_size_max, relaxed)) {
4217 os_atomic_store(&cs_blob_size_max, blob->csb_mem_size, relaxed);
4218 }
4219 }
4220
4221 static void
cs_blob_set_cpu_type(struct cs_blob * blob,cpu_type_t cputype)4222 cs_blob_set_cpu_type(struct cs_blob *blob, cpu_type_t cputype)
4223 {
4224 zalloc_ro_update_field(ZONE_ID_CS_BLOB, blob, csb_cpu_type, &cputype);
4225 }
4226
4227 __abortlike
4228 static void
panic_cs_blob_backref_mismatch(struct cs_blob * blob,struct vnode * vp)4229 panic_cs_blob_backref_mismatch(struct cs_blob *blob, struct vnode *vp)
4230 {
4231 panic("cs_blob vnode backref mismatch: blob=%p, vp=%p, "
4232 "blob->csb_vnode=%p", blob, vp, blob->csb_vnode);
4233 }
4234
4235 void
cs_blob_require(struct cs_blob * blob,vnode_t vp)4236 cs_blob_require(struct cs_blob *blob, vnode_t vp)
4237 {
4238 zone_require_ro(ZONE_ID_CS_BLOB, sizeof(struct cs_blob), blob);
4239
4240 if (vp != NULL && __improbable(blob->csb_vnode != vp)) {
4241 panic_cs_blob_backref_mismatch(blob, vp);
4242 }
4243 }
4244
4245 #if CODE_SIGNING_MONITOR
4246
4247 /**
4248 * Independently verify the authenticity of the code signature through the monitor
4249 * environment. This is required as otherwise the monitor won't allow associations
4250 * of the code signature with address spaces.
4251 *
4252 * Once we've verified the code signature, we no longer need to keep around any
4253 * provisioning profiles we may have registered with it. AMFI associates profiles
4254 * with the monitor during its validation (which happens before the monitor's).
4255 */
4256 static errno_t
verify_code_signature_monitor(struct cs_blob * cs_blob)4257 verify_code_signature_monitor(
4258 struct cs_blob *cs_blob)
4259 {
4260 kern_return_t ret = KERN_DENIED;
4261
4262 ret = csm_verify_code_signature(cs_blob->csb_csm_obj, &cs_blob->csb_csm_trust_level);
4263 if ((ret != KERN_SUCCESS) && (ret != KERN_NOT_SUPPORTED)) {
4264 printf("unable to verify code signature with monitor: %d\n", ret);
4265 return EPERM;
4266 }
4267
4268 ret = csm_disassociate_provisioning_profile(cs_blob->csb_csm_obj);
4269 if ((ret != KERN_SUCCESS) && (ret != KERN_NOT_FOUND) && (ret != KERN_NOT_SUPPORTED)) {
4270 printf("unable to disassociate profile from code signature: %d\n", ret);
4271 return EPERM;
4272 }
4273
4274 /* Associate the OSEntitlements kernel object with the monitor */
4275 ret = csm_associate_os_entitlements(cs_blob->csb_csm_obj, cs_blob->csb_entitlements);
4276 if ((ret != KERN_SUCCESS) && (ret != KERN_NOT_SUPPORTED)) {
4277 printf("unable to associate OSEntitlements with monitor: %d\n", ret);
4278 return EPERM;
4279 }
4280
4281 return 0;
4282 }
4283
4284 /**
4285 * Register the code signature with the code signing monitor environment. This
4286 * will effectively make the blob data immutable, either because the blob memory
4287 * will be allocated and managed directory by the monitor, or because the monitor
4288 * will lockdown the memory associated with the blob.
4289 */
4290 static errno_t
register_code_signature_monitor(struct vnode * vnode,struct cs_blob * cs_blob,vm_offset_t code_directory_offset)4291 register_code_signature_monitor(
4292 struct vnode *vnode,
4293 struct cs_blob *cs_blob,
4294 vm_offset_t code_directory_offset)
4295 {
4296 kern_return_t ret = KERN_DENIED;
4297 vm_address_t monitor_signature_addr = 0;
4298 void *monitor_sig_object = NULL;
4299 const char *vnode_path_ptr = NULL;
4300
4301 /*
4302 * Attempt to resolve the path for this vnode and pass it in to the code
4303 * signing monitor during registration.
4304 */
4305 int vnode_path_len = MAXPATHLEN;
4306 char *vnode_path = kalloc_data(vnode_path_len, Z_WAITOK);
4307
4308 /*
4309 * Taking a reference on the vnode recursively can sometimes lead to a
4310 * deadlock on the system. Since we already have a vnode pointer, it means
4311 * the caller performed a vnode lookup, which implicitly takes a reference
4312 * on the vnode. However, there is more than just having a reference on a
4313 * vnode which is important. vnode's also have an iocount, and we must only
4314 * access a vnode which has an iocount of greater than 0. Thankfully, all
4315 * the conditions which lead to calling this function ensure that this
4316 * vnode is safe to access here.
4317 *
4318 * For more details: rdar://105819068.
4319 */
4320 errno_t error = vn_getpath(vnode, vnode_path, &vnode_path_len);
4321 if (error == 0) {
4322 vnode_path_ptr = vnode_path;
4323 }
4324
4325 ret = csm_register_code_signature(
4326 (vm_address_t)cs_blob->csb_mem_kaddr,
4327 cs_blob->csb_mem_size,
4328 code_directory_offset,
4329 vnode_path_ptr,
4330 &monitor_sig_object,
4331 &monitor_signature_addr);
4332
4333 kfree_data(vnode_path, MAXPATHLEN);
4334 vnode_path_ptr = NULL;
4335
4336 if (ret == KERN_SUCCESS) {
4337 /* Reconstruct the cs_blob if the monitor used its own allocation */
4338 if (monitor_signature_addr != (vm_address_t)cs_blob->csb_mem_kaddr) {
4339 vm_address_t monitor_signature_size = cs_blob->csb_mem_size;
4340
4341 /* Free the old memory for the blob */
4342 ubc_cs_blob_deallocate(
4343 (vm_address_t)cs_blob->csb_mem_kaddr,
4344 cs_blob->csb_mem_size);
4345
4346 /* Reconstruct critical fields in the blob object */
4347 ubc_cs_blob_reconstruct(
4348 cs_blob,
4349 monitor_signature_addr,
4350 monitor_signature_size,
4351 code_directory_offset);
4352
4353 /* Mark the signature as monitor managed */
4354 cs_blob->csb_csm_managed = true;
4355 }
4356 } else if (ret != KERN_NOT_SUPPORTED) {
4357 printf("unable to register code signature with monitor: %d\n", ret);
4358 return EPERM;
4359 }
4360
4361 /* Save the monitor handle for the signature object -- may be NULL */
4362 cs_blob->csb_csm_obj = monitor_sig_object;
4363
4364 return 0;
4365 }
4366
4367 #endif /* CODE_SIGNING_MONITOR */
4368
4369 static errno_t
validate_main_binary_check(struct cs_blob * csblob,cs_blob_add_flags_t csblob_add_flags)4370 validate_main_binary_check(
4371 struct cs_blob *csblob,
4372 cs_blob_add_flags_t csblob_add_flags)
4373 {
4374 #if XNU_TARGET_OS_OSX
4375 (void)csblob;
4376 (void)csblob_add_flags;
4377 return 0;
4378 #else
4379 const CS_CodeDirectory *first_cd = NULL;
4380 const CS_CodeDirectory *alt_cd = NULL;
4381 uint64_t exec_seg_flags = 0;
4382 uint32_t slot = CSSLOT_CODEDIRECTORY;
4383
4384 /* Nothing to enforce if we're allowing main binaries */
4385 if ((csblob_add_flags & CS_BLOB_ADD_ALLOW_MAIN_BINARY) != 0) {
4386 return 0;
4387 }
4388
4389 first_cd = (const CS_CodeDirectory*)csblob_find_blob(csblob, slot, CSMAGIC_CODEDIRECTORY);
4390 if ((first_cd != NULL) && (ntohl(first_cd->version) >= CS_SUPPORTSEXECSEG)) {
4391 exec_seg_flags |= ntohll(first_cd->execSegFlags);
4392 }
4393
4394 for (uint32_t i = 0; i < CSSLOT_ALTERNATE_CODEDIRECTORY_MAX; i++) {
4395 slot = CSSLOT_ALTERNATE_CODEDIRECTORIES + i;
4396 alt_cd = (const CS_CodeDirectory*)csblob_find_blob(csblob, slot, CSMAGIC_CODEDIRECTORY);
4397 if ((alt_cd == NULL) || (ntohl(alt_cd->version) < CS_SUPPORTSEXECSEG)) {
4398 continue;
4399 }
4400 exec_seg_flags |= ntohll(alt_cd->execSegFlags);
4401 }
4402
4403 if ((exec_seg_flags & CS_EXECSEG_MAIN_BINARY) != 0) {
4404 return EBADEXEC;
4405 }
4406 return 0;
4407 #endif /* XNU_TARGET_OS_OSX */
4408 }
4409
4410 /**
4411 * Accelerate entitlements for a code signature object. When we have a code
4412 * signing monitor, this acceleration is done within the monitor which then
4413 * passes back a CoreEntitlements query context the kernel can use. When we
4414 * don't have a code signing monitor, we accelerate the queries within the
4415 * kernel memory itself.
4416 *
4417 * This function must be called when the storage for the code signature can
4418 * no longer change.
4419 */
4420 static errno_t
accelerate_entitlement_queries(struct cs_blob * cs_blob)4421 accelerate_entitlement_queries(
4422 struct cs_blob *cs_blob)
4423 {
4424 kern_return_t ret = KERN_NOT_SUPPORTED;
4425
4426 #if CODE_SIGNING_MONITOR
4427 CEQueryContext_t ce_ctx = NULL;
4428 const char *signing_id = NULL;
4429
4430 ret = csm_accelerate_entitlements(cs_blob->csb_csm_obj, &ce_ctx);
4431 if ((ret != KERN_SUCCESS) && (ret != KERN_NOT_SUPPORTED)) {
4432 printf("unable to accelerate entitlements through the monitor: %d\n", ret);
4433 return EPERM;
4434 }
4435
4436 if (ret == KERN_SUCCESS) {
4437 /* Call cannot not fail at this stage */
4438 ret = csm_acquire_signing_identifier(cs_blob->csb_csm_obj, &signing_id);
4439 assert(ret == KERN_SUCCESS);
4440
4441 /* Adjust the OSEntitlements context with AMFI */
4442 ret = amfi->OSEntitlements.adjustContextWithMonitor(
4443 cs_blob->csb_entitlements,
4444 ce_ctx,
4445 cs_blob->csb_csm_obj,
4446 signing_id,
4447 cs_blob->csb_flags);
4448 if (ret != KERN_SUCCESS) {
4449 printf("unable to adjust OSEntitlements context with monitor: %d\n", ret);
4450 return EPERM;
4451 }
4452
4453 return 0;
4454 }
4455 #endif
4456
4457 /*
4458 * If we reach here, then either we don't have a code signing monitor, or
4459 * the code signing monitor isn't enabled for code signing, in which case,
4460 * AMFI is going to accelerate the entitlements context and adjust its
4461 * context on its own.
4462 */
4463 assert(ret == KERN_NOT_SUPPORTED);
4464
4465 ret = amfi->OSEntitlements.adjustContextWithoutMonitor(
4466 cs_blob->csb_entitlements,
4467 cs_blob);
4468
4469 if (ret != KERN_SUCCESS) {
4470 printf("unable to adjust OSEntitlements context without monitor: %d\n", ret);
4471 return EPERM;
4472 }
4473
4474 return 0;
4475 }
4476
4477 /**
4478 * Ensure and validate that some security critical code signing blobs haven't
4479 * been stripped off from the code signature. This can happen if an attacker
4480 * chose to load a code signature sans these critical blobs, or if there is a
4481 * bug in reconstitution logic which remove these blobs from the code signature.
4482 */
4483 static errno_t
validate_auxiliary_signed_blobs(struct cs_blob * cs_blob)4484 validate_auxiliary_signed_blobs(
4485 struct cs_blob *cs_blob)
4486 {
4487 struct cs_blob_identifier {
4488 uint32_t cs_slot;
4489 uint32_t cs_magic;
4490 };
4491
4492 const struct cs_blob_identifier identifiers[] = {
4493 {CSSLOT_LAUNCH_CONSTRAINT_SELF, CSMAGIC_EMBEDDED_LAUNCH_CONSTRAINT},
4494 {CSSLOT_LAUNCH_CONSTRAINT_PARENT, CSMAGIC_EMBEDDED_LAUNCH_CONSTRAINT},
4495 {CSSLOT_LAUNCH_CONSTRAINT_RESPONSIBLE, CSMAGIC_EMBEDDED_LAUNCH_CONSTRAINT},
4496 {CSSLOT_LIBRARY_CONSTRAINT, CSMAGIC_EMBEDDED_LAUNCH_CONSTRAINT}
4497 };
4498 const uint32_t num_identifiers = sizeof(identifiers) / sizeof(identifiers[0]);
4499
4500 for (uint32_t i = 0; i < num_identifiers; i++) {
4501 errno_t err = csblob_find_special_slot_blob(
4502 cs_blob,
4503 identifiers[i].cs_slot,
4504 identifiers[i].cs_magic,
4505 NULL,
4506 NULL);
4507
4508 if (err != 0) {
4509 printf("unable to validate security-critical blob: %d [%u|%u]\n",
4510 err, identifiers[i].cs_slot, identifiers[i].cs_magic);
4511
4512 return EPERM;
4513 }
4514 }
4515
4516 return 0;
4517 }
4518
4519 /**
4520 * Setup multi-level hashing for the code signature. This isn't supported on most
4521 * shipping devices, but on ones where it is, it can result in significant savings
4522 * of memory from the code signature standpoint.
4523 *
4524 * Multi-level hashing is used to condense the code directory hashes in order to
4525 * improve memory consumption. We take four 4K page hashes, and condense them into
4526 * a single 16K hash, hence reducing the space consumed by the code directory by
4527 * about ~75%.
4528 */
4529 static errno_t
setup_multilevel_hashing(struct cs_blob * cs_blob)4530 setup_multilevel_hashing(
4531 struct cs_blob *cs_blob)
4532 {
4533 code_signing_monitor_type_t monitor_type = CS_MONITOR_TYPE_NONE;
4534 errno_t err = -1;
4535
4536 /*
4537 * When we have a code signing monitor, we do not support multi-level hashing
4538 * since the code signature data is expected to be locked within memory which
4539 * cannot be written to by the kernel.
4540 *
4541 * Even when the code signing monitor isn't explicitly enabled, there are other
4542 * reasons for not performing multi-level hashing. For instance, Rosetta creates
4543 * issues with multi-level hashing on Apple Silicon Macs.
4544 */
4545 code_signing_configuration(&monitor_type, NULL);
4546 if (monitor_type != CS_MONITOR_TYPE_NONE) {
4547 return 0;
4548 }
4549
4550 /* We need to check if multi-level hashing is supported for this blob */
4551 if (ubc_cs_supports_multilevel_hash(cs_blob) == false) {
4552 return 0;
4553 }
4554
4555 err = ubc_cs_convert_to_multilevel_hash(cs_blob);
4556 if (err != 0) {
4557 printf("unable to setup multi-level hashing: %d\n", err);
4558 return err;
4559 }
4560
4561 assert(cs_blob->csb_reconstituted == true);
4562 return 0;
4563 }
4564
4565 /**
4566 * Once code signature validation is complete, we can remove even more blobs from the
4567 * code signature as they are no longer needed. This goes on to conserve even more
4568 * system memory.
4569 */
4570 static errno_t
reconstitute_code_signature_2nd_stage(struct cs_blob * cs_blob)4571 reconstitute_code_signature_2nd_stage(
4572 struct cs_blob *cs_blob)
4573 {
4574 kern_return_t ret = KERN_NOT_SUPPORTED;
4575 errno_t err = EPERM;
4576
4577 /* If we never reconstituted before, we won't be reconstituting again */
4578 if (cs_blob->csb_reconstituted == false) {
4579 return 0;
4580 }
4581
4582 #if CODE_SIGNING_MONITOR
4583 /*
4584 * When we have a code signing monitor, the code signature is immutable until the
4585 * monitor decides to unlock parts of it. Therefore, 2nd stage reconstitution takes
4586 * place in the monitor when we have a monitor available.
4587 *
4588 * If the monitor isn't enforcing code signing (in which case the code signature is
4589 * NOT immutable), then we perform 2nd stage reconstitution within the kernel itself.
4590 */
4591 vm_address_t unneeded_addr = 0;
4592 vm_size_t unneeded_size = 0;
4593
4594 ret = csm_reconstitute_code_signature(
4595 cs_blob->csb_csm_obj,
4596 &unneeded_addr,
4597 &unneeded_size);
4598
4599 if ((ret == KERN_SUCCESS) && unneeded_addr && unneeded_size) {
4600 /* Free the unneded part of the blob */
4601 kmem_free(kernel_map, unneeded_addr, unneeded_size);
4602
4603 /* Adjust the size in the blob object */
4604 cs_blob->csb_mem_size -= unneeded_size;
4605 }
4606 #endif
4607
4608 if (ret == KERN_SUCCESS) {
4609 goto success;
4610 } else if (ret != KERN_NOT_SUPPORTED) {
4611 /*
4612 * A monitor environment is available, and it failed in performing 2nd stage
4613 * reconstitution. This is a fatal issue for code signing validation.
4614 */
4615 printf("unable to reconstitute code signature through monitor: %d\n", ret);
4616 return EPERM;
4617 }
4618
4619 /* No monitor available if we reached here */
4620 err = ubc_cs_reconstitute_code_signature_2nd_stage(cs_blob);
4621 if (err != 0) {
4622 return err;
4623 }
4624
4625 success:
4626 /*
4627 * Regardless of whether we are performing 2nd stage reconstitution in the monitor
4628 * or in the kernel, we remove references to XML entitlements from the blob here.
4629 * None of the 2nd stage reconstitution code ever keeps these around, and they have
4630 * been explicitly deprecated and disallowed.
4631 */
4632 cs_blob->csb_entitlements_blob = NULL;
4633
4634 return 0;
4635 }
4636
4637 /**
4638 * A code signature blob often contains blob which aren't needed in the kernel. Since
4639 * the code signature is wired into kernel memory for the time it is used, it behooves
4640 * us to remove any blobs we have no need for in order to conserve memory.
4641 *
4642 * Some platforms support copying the entire SuperBlob stored in kernel memory into
4643 * userspace memory through the "csops" system call. There is an expectation that when
4644 * this happens, all the blobs which were a part of the code signature are copied in
4645 * to userspace memory. As a result, these platforms cannot reconstitute the code
4646 * signature since, or rather, these platforms cannot remove blobs from the signature,
4647 * thereby making reconstitution useless.
4648 */
4649 static errno_t
reconstitute_code_signature(struct cs_blob * cs_blob)4650 reconstitute_code_signature(
4651 struct cs_blob *cs_blob)
4652 {
4653 CS_CodeDirectory *code_directory = NULL;
4654 vm_address_t signature_addr = 0;
4655 vm_size_t signature_size = 0;
4656 vm_offset_t code_directory_offset = 0;
4657 bool platform_supports_reconstitution = false;
4658
4659 #if CONFIG_CODE_SIGNATURE_RECONSTITUTION
4660 platform_supports_reconstitution = true;
4661 #endif
4662
4663 /*
4664 * We can skip reconstitution if the code signing monitor isn't available or not
4665 * enabled. But if we do have a monitor, then reconsitution becomes required, as
4666 * there is an expectation of performing 2nd stage reconstitution through the
4667 * monitor itself.
4668 */
4669 if (platform_supports_reconstitution == false) {
4670 #if CODE_SIGNING_MONITOR
4671 if (csm_enabled() == true) {
4672 printf("reconstitution required when code signing monitor is enabled\n");
4673 return EPERM;
4674 }
4675 #endif
4676 return 0;
4677 }
4678
4679 errno_t err = ubc_cs_reconstitute_code_signature(
4680 cs_blob,
4681 &signature_addr,
4682 &signature_size,
4683 0,
4684 &code_directory);
4685
4686 if (err != 0) {
4687 printf("unable to reconstitute code signature: %d\n", err);
4688 return err;
4689 }
4690
4691 /* Calculate the code directory offset */
4692 code_directory_offset = (vm_offset_t)code_directory - signature_addr;
4693
4694 /* Reconstitution allocates new memory -- free the old one */
4695 ubc_cs_blob_deallocate((vm_address_t)cs_blob->csb_mem_kaddr, cs_blob->csb_mem_size);
4696
4697 /* Reconstruct critical fields in the blob object */
4698 ubc_cs_blob_reconstruct(
4699 cs_blob,
4700 signature_addr,
4701 signature_size,
4702 code_directory_offset);
4703
4704 /* Mark the object as reconstituted */
4705 cs_blob->csb_reconstituted = true;
4706
4707 return 0;
4708 }
4709
4710 int
ubc_cs_blob_add(struct vnode * vp,uint32_t platform,cpu_type_t cputype,cpu_subtype_t cpusubtype,off_t base_offset,vm_address_t * addr,vm_size_t size,struct image_params * imgp,__unused int flags,struct cs_blob ** ret_blob,cs_blob_add_flags_t csblob_add_flags)4711 ubc_cs_blob_add(
4712 struct vnode *vp,
4713 uint32_t platform,
4714 cpu_type_t cputype,
4715 cpu_subtype_t cpusubtype,
4716 off_t base_offset,
4717 vm_address_t *addr,
4718 vm_size_t size,
4719 struct image_params *imgp,
4720 __unused int flags,
4721 struct cs_blob **ret_blob,
4722 cs_blob_add_flags_t csblob_add_flags)
4723 {
4724 ptrauth_generic_signature_t cs_blob_sig = {0};
4725 struct ubc_info *uip = NULL;
4726 struct cs_blob tmp_blob = {0};
4727 struct cs_blob *blob_ro = NULL;
4728 struct cs_blob *oblob = NULL;
4729 CS_CodeDirectory const *cd = NULL;
4730 off_t blob_start_offset = 0;
4731 off_t blob_end_offset = 0;
4732 boolean_t record_mtime = false;
4733 kern_return_t kr = KERN_DENIED;
4734 errno_t error = -1;
4735
4736 #if HAS_APPLE_PAC
4737 void *signed_entitlements = NULL;
4738 #if CODE_SIGNING_MONITOR
4739 void *signed_monitor_obj = NULL;
4740 #endif
4741 #endif
4742
4743 if (ret_blob) {
4744 *ret_blob = NULL;
4745 }
4746
4747 /*
4748 * Create the struct cs_blob abstract data type which will get attached to
4749 * the vnode object. This function also validates the structural integrity
4750 * of the code signature blob being passed in.
4751 *
4752 * We initialize a temporary blob whose contents are then copied into an RO
4753 * blob which we allocate from the read-only allocator.
4754 */
4755 error = cs_blob_init_validated(addr, size, &tmp_blob, &cd);
4756 if (error != 0) {
4757 printf("unable to create a validated cs_blob object: %d\n", error);
4758 return error;
4759 }
4760
4761 tmp_blob.csb_cpu_type = cputype;
4762 tmp_blob.csb_cpu_subtype = cpusubtype & ~CPU_SUBTYPE_MASK;
4763 tmp_blob.csb_base_offset = base_offset;
4764
4765 /* Perform 1st stage reconstitution */
4766 error = reconstitute_code_signature(&tmp_blob);
4767 if (error != 0) {
4768 goto out;
4769 }
4770
4771 /*
4772 * There is a strong design pattern we have to follow carefully within this
4773 * function. Since we're storing the struct cs_blob within RO-allocated
4774 * memory, it is immutable to modifications from within the kernel itself.
4775 *
4776 * However, before the contents of the blob are transferred to the immutable
4777 * cs_blob, they are kept on the stack. In order to protect against a kernel
4778 * R/W attacker, we must protect this stack variable. Most importantly, any
4779 * code paths which can block for a while must compute a PAC signature over
4780 * the stack variable, then perform the blocking operation, and then ensure
4781 * that the PAC signature over the stack variable is still valid to ensure
4782 * that an attacker did not overwrite contents of the blob by introducing a
4783 * maliciously long blocking operation, giving them the time required to go
4784 * and overwrite the contents of the blob.
4785 *
4786 * The most important fields to protect here are the OSEntitlements and the
4787 * code signing monitor object references. For these ones, we keep around
4788 * extra signed pointers diversified against the read-only blobs' memory
4789 * and then update the stack variable with these before updating the full
4790 * read-only blob.
4791 */
4792
4793 blob_ro = zalloc_ro(ZONE_ID_CS_BLOB, Z_WAITOK | Z_NOFAIL);
4794 assert(blob_ro != NULL);
4795
4796 tmp_blob.csb_ro_addr = blob_ro;
4797 tmp_blob.csb_vnode = vp;
4798
4799 /* AMFI needs to see the current blob state at the RO address */
4800 zalloc_ro_update_elem(ZONE_ID_CS_BLOB, blob_ro, &tmp_blob);
4801
4802 #if CODE_SIGNING_MONITOR
4803 error = register_code_signature_monitor(
4804 vp,
4805 &tmp_blob,
4806 (vm_offset_t)tmp_blob.csb_cd - (vm_offset_t)tmp_blob.csb_mem_kaddr);
4807
4808 if (error != 0) {
4809 goto out;
4810 }
4811
4812 #if HAS_APPLE_PAC
4813 signed_monitor_obj = ptrauth_sign_unauthenticated(
4814 tmp_blob.csb_csm_obj,
4815 ptrauth_key_process_independent_data,
4816 ptrauth_blend_discriminator(&blob_ro->csb_csm_obj,
4817 OS_PTRAUTH_DISCRIMINATOR("cs_blob.csb_csm_obj")));
4818 #endif /* HAS_APPLE_PAC */
4819
4820 #endif /* CODE_SIGNING_MONITOR */
4821
4822 /*
4823 * Ensure that we're honoring the main binary policy check on platforms which
4824 * require it. We perform this check at this stage to ensure the blob we're
4825 * looking at has been locked down by a code signing monitor if the system
4826 * has one.
4827 */
4828 error = validate_main_binary_check(&tmp_blob, csblob_add_flags);
4829 if (error != 0) {
4830 printf("failed to verify main binary policy: %d\n", error);
4831 goto out;
4832 }
4833
4834 #if CONFIG_MACF
4835 unsigned int cs_flags = tmp_blob.csb_flags;
4836 unsigned int signer_type = tmp_blob.csb_signer_type;
4837
4838 error = mac_vnode_check_signature(
4839 vp,
4840 &tmp_blob,
4841 imgp,
4842 &cs_flags,
4843 &signer_type,
4844 flags,
4845 platform);
4846
4847 if (error != 0) {
4848 printf("validation of code signature failed through MACF policy: %d\n", error);
4849 goto out;
4850 }
4851
4852 #if HAS_APPLE_PAC
4853 signed_entitlements = ptrauth_sign_unauthenticated(
4854 tmp_blob.csb_entitlements,
4855 ptrauth_key_process_independent_data,
4856 ptrauth_blend_discriminator(&blob_ro->csb_entitlements,
4857 OS_PTRAUTH_DISCRIMINATOR("cs_blob.csb_entitlements")));
4858 #endif
4859
4860 tmp_blob.csb_flags = cs_flags;
4861 tmp_blob.csb_signer_type = signer_type;
4862
4863 if (tmp_blob.csb_flags & CS_PLATFORM_BINARY) {
4864 tmp_blob.csb_platform_binary = 1;
4865 tmp_blob.csb_platform_path = !!(tmp_blob.csb_flags & CS_PLATFORM_PATH);
4866 tmp_blob.csb_teamid = NULL;
4867 } else {
4868 tmp_blob.csb_platform_binary = 0;
4869 tmp_blob.csb_platform_path = 0;
4870 }
4871
4872 if ((flags & MAC_VNODE_CHECK_DYLD_SIM) && !tmp_blob.csb_platform_binary) {
4873 printf("dyld simulator runtime is not apple signed: proc: %d\n",
4874 proc_getpid(current_proc()));
4875
4876 error = EPERM;
4877 goto out;
4878 }
4879 #endif /* CONFIG_MACF */
4880
4881 #if CODE_SIGNING_MONITOR
4882 error = verify_code_signature_monitor(&tmp_blob);
4883 if (error != 0) {
4884 goto out;
4885 }
4886 #endif
4887
4888 /* Perform 2nd stage reconstitution */
4889 error = reconstitute_code_signature_2nd_stage(&tmp_blob);
4890 if (error != 0) {
4891 goto out;
4892 }
4893
4894 /* Setup any multi-level hashing for the code signature */
4895 error = setup_multilevel_hashing(&tmp_blob);
4896 if (error != 0) {
4897 goto out;
4898 }
4899
4900 /* Ensure security critical auxiliary blobs still exist */
4901 error = validate_auxiliary_signed_blobs(&tmp_blob);
4902 if (error != 0) {
4903 goto out;
4904 }
4905
4906 /*
4907 * Accelerate the entitlement queries for this code signature. This must
4908 * be done only after we know that the code signature pointers within the
4909 * struct cs_blob aren't going to be shifted around anymore, which is why
4910 * this acceleration is done after setting up multilevel hashing, since
4911 * that is the last part of signature validation which can shift the code
4912 * signature around.
4913 */
4914 error = accelerate_entitlement_queries(&tmp_blob);
4915 if (error != 0) {
4916 goto out;
4917 }
4918
4919 /*
4920 * Parse and set the Team ID for this code signature. This only needs to
4921 * happen when the signature isn't marked as platform. Like above, this
4922 * has to happen after we know the pointers within struct cs_blob aren't
4923 * going to be shifted anymore.
4924 */
4925 if ((tmp_blob.csb_flags & CS_PLATFORM_BINARY) == 0) {
4926 tmp_blob.csb_teamid = csblob_parse_teamid(&tmp_blob);
4927 }
4928
4929 /*
4930 * Validate the code signing blob's coverage. Ideally, we can just do this
4931 * in the beginning, right after structural validation, however, multilevel
4932 * hashing can change some offets.
4933 */
4934 blob_start_offset = tmp_blob.csb_base_offset + tmp_blob.csb_start_offset;
4935 blob_end_offset = tmp_blob.csb_base_offset + tmp_blob.csb_end_offset;
4936 if (blob_start_offset >= blob_end_offset) {
4937 error = EINVAL;
4938 goto out;
4939 } else if (blob_start_offset < 0 || blob_end_offset <= 0) {
4940 error = EINVAL;
4941 goto out;
4942 }
4943
4944 /*
4945 * The vnode_lock, linked list traversal, and marking of the memory object as
4946 * signed can all be blocking operations. Compute a PAC over the tmp_blob.
4947 */
4948 cs_blob_sig = ptrauth_utils_sign_blob_generic(
4949 &tmp_blob,
4950 sizeof(tmp_blob),
4951 OS_PTRAUTH_DISCRIMINATOR("ubc_cs_blob_add.blocking_op0"),
4952 PTRAUTH_ADDR_DIVERSIFY);
4953
4954 vnode_lock(vp);
4955 if (!UBCINFOEXISTS(vp)) {
4956 vnode_unlock(vp);
4957 error = ENOENT;
4958 goto out;
4959 }
4960 uip = vp->v_ubcinfo;
4961
4962 /* check if this new blob overlaps with an existing blob */
4963 for (oblob = ubc_get_cs_blobs(vp);
4964 oblob != NULL;
4965 oblob = oblob->csb_next) {
4966 off_t oblob_start_offset, oblob_end_offset;
4967
4968 if (tmp_blob.csb_signer_type != oblob->csb_signer_type) { // signer type needs to be the same for slices
4969 vnode_unlock(vp);
4970 error = EALREADY;
4971 goto out;
4972 } else if (tmp_blob.csb_platform_binary) { //platform binary needs to be the same for app slices
4973 if (!oblob->csb_platform_binary) {
4974 vnode_unlock(vp);
4975 error = EALREADY;
4976 goto out;
4977 }
4978 } else if (tmp_blob.csb_teamid) { //teamid binary needs to be the same for app slices
4979 if (oblob->csb_platform_binary ||
4980 oblob->csb_teamid == NULL ||
4981 strcmp(oblob->csb_teamid, tmp_blob.csb_teamid) != 0) {
4982 vnode_unlock(vp);
4983 error = EALREADY;
4984 goto out;
4985 }
4986 } else { // non teamid binary needs to be the same for app slices
4987 if (oblob->csb_platform_binary ||
4988 oblob->csb_teamid != NULL) {
4989 vnode_unlock(vp);
4990 error = EALREADY;
4991 goto out;
4992 }
4993 }
4994
4995 oblob_start_offset = (oblob->csb_base_offset +
4996 oblob->csb_start_offset);
4997 oblob_end_offset = (oblob->csb_base_offset +
4998 oblob->csb_end_offset);
4999 if (blob_start_offset >= oblob_end_offset ||
5000 blob_end_offset <= oblob_start_offset) {
5001 /* no conflict with this existing blob */
5002 } else {
5003 /* conflict ! */
5004 if (blob_start_offset == oblob_start_offset &&
5005 blob_end_offset == oblob_end_offset &&
5006 tmp_blob.csb_mem_size == oblob->csb_mem_size &&
5007 tmp_blob.csb_flags == oblob->csb_flags &&
5008 (tmp_blob.csb_cpu_type == CPU_TYPE_ANY ||
5009 oblob->csb_cpu_type == CPU_TYPE_ANY ||
5010 tmp_blob.csb_cpu_type == oblob->csb_cpu_type) &&
5011 !bcmp(tmp_blob.csb_cdhash,
5012 oblob->csb_cdhash,
5013 CS_CDHASH_LEN)) {
5014 /*
5015 * We already have this blob:
5016 * we'll return success but
5017 * throw away the new blob.
5018 */
5019 if (oblob->csb_cpu_type == CPU_TYPE_ANY) {
5020 /*
5021 * The old blob matches this one
5022 * but doesn't have any CPU type.
5023 * Update it with whatever the caller
5024 * provided this time.
5025 */
5026 cs_blob_set_cpu_type(oblob, cputype);
5027 }
5028
5029 /* The signature is still accepted, so update the
5030 * generation count. */
5031 uip->cs_add_gen = cs_blob_generation_count;
5032
5033 vnode_unlock(vp);
5034 if (ret_blob) {
5035 *ret_blob = oblob;
5036 }
5037 error = EAGAIN;
5038 goto out;
5039 } else {
5040 /* different blob: reject the new one */
5041 vnode_unlock(vp);
5042 error = EALREADY;
5043 goto out;
5044 }
5045 }
5046 }
5047
5048 /* mark this vnode's VM object as having "signed pages" */
5049 kr = memory_object_signed(uip->ui_control, TRUE);
5050 if (kr != KERN_SUCCESS) {
5051 vnode_unlock(vp);
5052 error = ENOENT;
5053 goto out;
5054 }
5055
5056 if (uip->cs_blobs == NULL) {
5057 /* loading 1st blob: record the file's current "modify time" */
5058 record_mtime = TRUE;
5059 }
5060
5061 /* set the generation count for cs_blobs */
5062 uip->cs_add_gen = cs_blob_generation_count;
5063
5064 /* Authenticate the PAC signature after blocking operation */
5065 ptrauth_utils_auth_blob_generic(
5066 &tmp_blob,
5067 sizeof(tmp_blob),
5068 OS_PTRAUTH_DISCRIMINATOR("ubc_cs_blob_add.blocking_op0"),
5069 PTRAUTH_ADDR_DIVERSIFY,
5070 cs_blob_sig);
5071
5072 /* Update the system statistics for code signatures blobs */
5073 ubc_cs_blob_adjust_statistics(&tmp_blob);
5074
5075 /* Update the list pointer to reference other blobs for this vnode */
5076 tmp_blob.csb_next = uip->cs_blobs;
5077
5078 #if HAS_APPLE_PAC
5079 /*
5080 * Update all the critical pointers in the blob with the RO diversified
5081 * values before updating the read-only blob with the full contents of
5082 * the struct cs_blob. We need to use memcpy here as otherwise a simple
5083 * assignment will cause the compiler to re-sign using the stack variable
5084 * as the address diversifier.
5085 */
5086 memcpy((void*)&tmp_blob.csb_entitlements, &signed_entitlements, sizeof(void*));
5087 #if CODE_SIGNING_MONITOR
5088 memcpy((void*)&tmp_blob.csb_csm_obj, &signed_monitor_obj, sizeof(void*));
5089 #endif
5090 #endif
5091 zalloc_ro_update_elem(ZONE_ID_CS_BLOB, blob_ro, &tmp_blob);
5092
5093 /* Add a fence to ensure writes to the blob are visible on all threads */
5094 os_atomic_thread_fence(seq_cst);
5095
5096 /*
5097 * Add the cs_blob to the front of the list of blobs for this vnode. We
5098 * add to the front of the list, and we never remove a blob from the list
5099 * which means ubc_cs_get_blobs can return whatever the top of the list
5100 * is, while still keeping the list valid. Useful for if we validate a
5101 * page while adding in a new blob for this vnode.
5102 */
5103 uip->cs_blobs = blob_ro;
5104
5105 /* Make sure to reload pointer from uip to double check */
5106 if (uip->cs_blobs->csb_next) {
5107 zone_require_ro(ZONE_ID_CS_BLOB, sizeof(struct cs_blob), uip->cs_blobs->csb_next);
5108 }
5109
5110 if (cs_debug > 1) {
5111 proc_t p;
5112 const char *name = vnode_getname_printable(vp);
5113 p = current_proc();
5114 printf("CODE SIGNING: proc %d(%s) "
5115 "loaded %s signatures for file (%s) "
5116 "range 0x%llx:0x%llx flags 0x%x\n",
5117 proc_getpid(p), p->p_comm,
5118 blob_ro->csb_cpu_type == -1 ? "detached" : "embedded",
5119 name,
5120 blob_ro->csb_base_offset + blob_ro->csb_start_offset,
5121 blob_ro->csb_base_offset + blob_ro->csb_end_offset,
5122 blob_ro->csb_flags);
5123 vnode_putname_printable(name);
5124 }
5125
5126 vnode_unlock(vp);
5127
5128 if (record_mtime) {
5129 vnode_mtime(vp, &uip->cs_mtime, vfs_context_current());
5130 }
5131
5132 if (ret_blob) {
5133 *ret_blob = blob_ro;
5134 }
5135
5136 error = 0; /* success ! */
5137
5138 out:
5139 if (error) {
5140 if (error != EAGAIN) {
5141 printf("check_signature[pid: %d]: error = %d\n", proc_getpid(current_proc()), error);
5142 }
5143
5144 cs_blob_cleanup(&tmp_blob);
5145 if (blob_ro) {
5146 zfree_ro(ZONE_ID_CS_BLOB, blob_ro);
5147 }
5148 }
5149
5150 if (error == EAGAIN) {
5151 /*
5152 * See above: error is EAGAIN if we were asked
5153 * to add an existing blob again. We cleaned the new
5154 * blob and we want to return success.
5155 */
5156 error = 0;
5157 }
5158
5159 return error;
5160 }
5161
5162 #if CONFIG_SUPPLEMENTAL_SIGNATURES
5163 int
ubc_cs_blob_add_supplement(struct vnode * vp,struct vnode * orig_vp,off_t base_offset,vm_address_t * addr,vm_size_t size,struct cs_blob ** ret_blob)5164 ubc_cs_blob_add_supplement(
5165 struct vnode *vp,
5166 struct vnode *orig_vp,
5167 off_t base_offset,
5168 vm_address_t *addr,
5169 vm_size_t size,
5170 struct cs_blob **ret_blob)
5171 {
5172 kern_return_t kr;
5173 struct ubc_info *uip, *orig_uip;
5174 int error;
5175 struct cs_blob tmp_blob;
5176 struct cs_blob *orig_blob;
5177 struct cs_blob *blob_ro = NULL;
5178 CS_CodeDirectory const *cd;
5179 off_t blob_start_offset, blob_end_offset;
5180
5181 if (ret_blob) {
5182 *ret_blob = NULL;
5183 }
5184
5185 /* Create the struct cs_blob wrapper that will be attached to the vnode.
5186 * Validates the passed in blob in the process. */
5187 error = cs_blob_init_validated(addr, size, &tmp_blob, &cd);
5188
5189 if (error != 0) {
5190 printf("malformed code signature supplement blob: %d\n", error);
5191 return error;
5192 }
5193
5194 tmp_blob.csb_cpu_type = -1;
5195 tmp_blob.csb_base_offset = base_offset;
5196
5197 tmp_blob.csb_reconstituted = false;
5198
5199 vnode_lock(orig_vp);
5200 if (!UBCINFOEXISTS(orig_vp)) {
5201 vnode_unlock(orig_vp);
5202 error = ENOENT;
5203 goto out;
5204 }
5205
5206 orig_uip = orig_vp->v_ubcinfo;
5207
5208 /* check that the supplement's linked cdhash matches a cdhash of
5209 * the target image.
5210 */
5211
5212 if (tmp_blob.csb_linkage_hashtype == NULL) {
5213 proc_t p;
5214 const char *iname = vnode_getname_printable(vp);
5215 p = current_proc();
5216
5217 printf("CODE SIGNING: proc %d(%s) supplemental signature for file (%s) "
5218 "is not a supplemental.\n",
5219 proc_getpid(p), p->p_comm, iname);
5220
5221 error = EINVAL;
5222
5223 vnode_putname_printable(iname);
5224 vnode_unlock(orig_vp);
5225 goto out;
5226 }
5227 bool found_but_not_valid = false;
5228 for (orig_blob = ubc_get_cs_blobs(orig_vp); orig_blob != NULL;
5229 orig_blob = orig_blob->csb_next) {
5230 if (orig_blob->csb_hashtype == tmp_blob.csb_linkage_hashtype &&
5231 memcmp(orig_blob->csb_cdhash, tmp_blob.csb_linkage, CS_CDHASH_LEN) == 0) {
5232 // Found match!
5233 found_but_not_valid = ((orig_blob->csb_flags & CS_VALID) != CS_VALID);
5234 break;
5235 }
5236 }
5237
5238 if (orig_blob == NULL || found_but_not_valid) {
5239 // Not found.
5240
5241 proc_t p;
5242 const char *iname = vnode_getname_printable(vp);
5243 p = current_proc();
5244
5245 error = (orig_blob == NULL) ? ESRCH : EPERM;
5246
5247 printf("CODE SIGNING: proc %d(%s) supplemental signature for file (%s) "
5248 "does not match any attached cdhash (error: %d).\n",
5249 proc_getpid(p), p->p_comm, iname, error);
5250
5251 vnode_putname_printable(iname);
5252 vnode_unlock(orig_vp);
5253 goto out;
5254 }
5255
5256 vnode_unlock(orig_vp);
5257
5258 blob_ro = zalloc_ro(ZONE_ID_CS_BLOB, Z_WAITOK | Z_NOFAIL);
5259 tmp_blob.csb_ro_addr = blob_ro;
5260 tmp_blob.csb_vnode = vp;
5261
5262 /* AMFI needs to see the current blob state at the RO address. */
5263 zalloc_ro_update_elem(ZONE_ID_CS_BLOB, blob_ro, &tmp_blob);
5264
5265 // validate the signature against policy!
5266 #if CONFIG_MACF
5267 unsigned int signer_type = tmp_blob.csb_signer_type;
5268 error = mac_vnode_check_supplemental_signature(vp, &tmp_blob, orig_vp, orig_blob, &signer_type);
5269
5270 tmp_blob.csb_signer_type = signer_type;
5271
5272 if (error) {
5273 if (cs_debug) {
5274 printf("check_supplemental_signature[pid: %d], error = %d\n", proc_getpid(current_proc()), error);
5275 }
5276 goto out;
5277 }
5278 #endif
5279
5280 // We allowed the supplemental signature blob so
5281 // copy the platform bit or team-id from the linked signature and whether or not the original is developer code
5282 tmp_blob.csb_platform_binary = 0;
5283 tmp_blob.csb_platform_path = 0;
5284 if (orig_blob->csb_platform_binary == 1) {
5285 tmp_blob.csb_platform_binary = orig_blob->csb_platform_binary;
5286 tmp_blob.csb_platform_path = orig_blob->csb_platform_path;
5287 } else if (orig_blob->csb_teamid != NULL) {
5288 vm_size_t teamid_size = strlen(orig_blob->csb_teamid) + 1;
5289 tmp_blob.csb_supplement_teamid = kalloc_data(teamid_size, Z_WAITOK);
5290 if (tmp_blob.csb_supplement_teamid == NULL) {
5291 error = ENOMEM;
5292 goto out;
5293 }
5294 strlcpy(tmp_blob.csb_supplement_teamid, orig_blob->csb_teamid, teamid_size);
5295 }
5296 tmp_blob.csb_flags = (orig_blob->csb_flags & CS_DEV_CODE);
5297
5298 // Validate the blob's coverage
5299 blob_start_offset = tmp_blob.csb_base_offset + tmp_blob.csb_start_offset;
5300 blob_end_offset = tmp_blob.csb_base_offset + tmp_blob.csb_end_offset;
5301
5302 if (blob_start_offset >= blob_end_offset || blob_start_offset < 0 || blob_end_offset <= 0) {
5303 /* reject empty or backwards blob */
5304 error = EINVAL;
5305 goto out;
5306 }
5307
5308 vnode_lock(vp);
5309 if (!UBCINFOEXISTS(vp)) {
5310 vnode_unlock(vp);
5311 error = ENOENT;
5312 goto out;
5313 }
5314 uip = vp->v_ubcinfo;
5315
5316 struct cs_blob *existing = uip->cs_blob_supplement;
5317 if (existing != NULL) {
5318 if (tmp_blob.csb_hashtype == existing->csb_hashtype &&
5319 memcmp(tmp_blob.csb_cdhash, existing->csb_cdhash, CS_CDHASH_LEN) == 0) {
5320 error = EAGAIN; // non-fatal
5321 } else {
5322 error = EALREADY; // fatal
5323 }
5324
5325 vnode_unlock(vp);
5326 goto out;
5327 }
5328
5329 /* mark this vnode's VM object as having "signed pages" */
5330 kr = memory_object_signed(uip->ui_control, TRUE);
5331 if (kr != KERN_SUCCESS) {
5332 vnode_unlock(vp);
5333 error = ENOENT;
5334 goto out;
5335 }
5336
5337
5338 /* We still adjust statistics even for supplemental blobs, as they
5339 * consume memory just the same. */
5340 ubc_cs_blob_adjust_statistics(&tmp_blob);
5341 /* Unlike regular cs_blobs, we only ever support one supplement. */
5342 tmp_blob.csb_next = NULL;
5343 zalloc_ro_update_elem(ZONE_ID_CS_BLOB, blob_ro, &tmp_blob);
5344
5345 os_atomic_thread_fence(seq_cst); // Fence to prevent reordering here
5346 uip->cs_blob_supplement = blob_ro;
5347
5348 /* Make sure to reload pointer from uip to double check */
5349 if (__improbable(uip->cs_blob_supplement->csb_next)) {
5350 panic("csb_next does not match expected NULL value");
5351 }
5352
5353 vnode_unlock(vp);
5354
5355
5356 if (cs_debug > 1) {
5357 proc_t p;
5358 const char *name = vnode_getname_printable(vp);
5359 p = current_proc();
5360 printf("CODE SIGNING: proc %d(%s) "
5361 "loaded supplemental signature for file (%s) "
5362 "range 0x%llx:0x%llx\n",
5363 proc_getpid(p), p->p_comm,
5364 name,
5365 blob_ro->csb_base_offset + blob_ro->csb_start_offset,
5366 blob_ro->csb_base_offset + blob_ro->csb_end_offset);
5367 vnode_putname_printable(name);
5368 }
5369
5370 if (ret_blob) {
5371 *ret_blob = blob_ro;
5372 }
5373
5374 error = 0; // Success!
5375 out:
5376 if (error) {
5377 if (cs_debug) {
5378 printf("ubc_cs_blob_add_supplement[pid: %d]: error = %d\n", proc_getpid(current_proc()), error);
5379 }
5380
5381 cs_blob_cleanup(&tmp_blob);
5382 if (blob_ro) {
5383 zfree_ro(ZONE_ID_CS_BLOB, blob_ro);
5384 }
5385 }
5386
5387 if (error == EAGAIN) {
5388 /* We were asked to add an existing blob.
5389 * We cleaned up and ignore the attempt. */
5390 error = 0;
5391 }
5392
5393 return error;
5394 }
5395 #endif
5396
5397
5398
5399 void
csvnode_print_debug(struct vnode * vp)5400 csvnode_print_debug(struct vnode *vp)
5401 {
5402 const char *name = NULL;
5403 struct ubc_info *uip;
5404 struct cs_blob *blob;
5405
5406 name = vnode_getname_printable(vp);
5407 if (name) {
5408 printf("csvnode: name: %s\n", name);
5409 vnode_putname_printable(name);
5410 }
5411
5412 vnode_lock_spin(vp);
5413
5414 if (!UBCINFOEXISTS(vp)) {
5415 blob = NULL;
5416 goto out;
5417 }
5418
5419 uip = vp->v_ubcinfo;
5420 for (blob = uip->cs_blobs; blob != NULL; blob = blob->csb_next) {
5421 printf("csvnode: range: %lu -> %lu flags: 0x%08x platform: %s path: %s team: %s\n",
5422 (unsigned long)blob->csb_start_offset,
5423 (unsigned long)blob->csb_end_offset,
5424 blob->csb_flags,
5425 blob->csb_platform_binary ? "yes" : "no",
5426 blob->csb_platform_path ? "yes" : "no",
5427 blob->csb_teamid ? blob->csb_teamid : "<NO-TEAM>");
5428 }
5429
5430 out:
5431 vnode_unlock(vp);
5432 }
5433
5434 #if CONFIG_SUPPLEMENTAL_SIGNATURES
5435 struct cs_blob *
ubc_cs_blob_get_supplement(struct vnode * vp,off_t offset)5436 ubc_cs_blob_get_supplement(
5437 struct vnode *vp,
5438 off_t offset)
5439 {
5440 struct cs_blob *blob;
5441 off_t offset_in_blob;
5442
5443 vnode_lock_spin(vp);
5444
5445 if (!UBCINFOEXISTS(vp)) {
5446 blob = NULL;
5447 goto out;
5448 }
5449
5450 blob = vp->v_ubcinfo->cs_blob_supplement;
5451
5452 if (blob == NULL) {
5453 // no supplemental blob
5454 goto out;
5455 }
5456
5457
5458 if (offset != -1) {
5459 offset_in_blob = offset - blob->csb_base_offset;
5460 if (offset_in_blob < blob->csb_start_offset || offset_in_blob >= blob->csb_end_offset) {
5461 // not actually covered by this blob
5462 blob = NULL;
5463 }
5464 }
5465
5466 out:
5467 vnode_unlock(vp);
5468
5469 return blob;
5470 }
5471 #endif
5472
5473 struct cs_blob *
ubc_cs_blob_get(struct vnode * vp,cpu_type_t cputype,cpu_subtype_t cpusubtype,off_t offset)5474 ubc_cs_blob_get(
5475 struct vnode *vp,
5476 cpu_type_t cputype,
5477 cpu_subtype_t cpusubtype,
5478 off_t offset)
5479 {
5480 struct cs_blob *blob;
5481 off_t offset_in_blob;
5482
5483 vnode_lock_spin(vp);
5484
5485 if (!UBCINFOEXISTS(vp)) {
5486 blob = NULL;
5487 goto out;
5488 }
5489
5490 for (blob = ubc_get_cs_blobs(vp);
5491 blob != NULL;
5492 blob = blob->csb_next) {
5493 if (cputype != -1 && blob->csb_cpu_type == cputype && (cpusubtype == -1 || blob->csb_cpu_subtype == (cpusubtype & ~CPU_SUBTYPE_MASK))) {
5494 break;
5495 }
5496 if (offset != -1) {
5497 offset_in_blob = offset - blob->csb_base_offset;
5498 if (offset_in_blob >= blob->csb_start_offset &&
5499 offset_in_blob < blob->csb_end_offset) {
5500 /* our offset is covered by this blob */
5501 break;
5502 }
5503 }
5504 }
5505
5506 out:
5507 vnode_unlock(vp);
5508
5509 return blob;
5510 }
5511
5512 void
ubc_cs_free_and_vnode_unlock(vnode_t vp)5513 ubc_cs_free_and_vnode_unlock(
5514 vnode_t vp)
5515 {
5516 struct ubc_info *uip = vp->v_ubcinfo;
5517 struct cs_blob *cs_blobs, *blob, *next_blob;
5518
5519 if (!(uip->ui_flags & UI_CSBLOBINVALID)) {
5520 vnode_unlock(vp);
5521 return;
5522 }
5523
5524 uip->ui_flags &= ~UI_CSBLOBINVALID;
5525
5526 cs_blobs = uip->cs_blobs;
5527 uip->cs_blobs = NULL;
5528
5529 #if CHECK_CS_VALIDATION_BITMAP
5530 ubc_cs_validation_bitmap_deallocate( uip );
5531 #endif
5532
5533 #if CONFIG_SUPPLEMENTAL_SIGNATURES
5534 struct cs_blob *cs_blob_supplement = uip->cs_blob_supplement;
5535 uip->cs_blob_supplement = NULL;
5536 #endif
5537
5538 vnode_unlock(vp);
5539
5540 for (blob = cs_blobs;
5541 blob != NULL;
5542 blob = next_blob) {
5543 next_blob = blob->csb_next;
5544 os_atomic_add(&cs_blob_count, -1, relaxed);
5545 os_atomic_add(&cs_blob_size, -blob->csb_mem_size, relaxed);
5546 cs_blob_ro_free(blob);
5547 }
5548
5549 #if CONFIG_SUPPLEMENTAL_SIGNATURES
5550 if (cs_blob_supplement != NULL) {
5551 os_atomic_add(&cs_blob_count, -1, relaxed);
5552 os_atomic_add(&cs_blob_size, -cs_blob_supplement->csb_mem_size, relaxed);
5553 cs_blob_supplement_free(cs_blob_supplement);
5554 }
5555 #endif
5556 }
5557
5558 static void
ubc_cs_free(struct ubc_info * uip)5559 ubc_cs_free(
5560 struct ubc_info *uip)
5561 {
5562 struct cs_blob *blob, *next_blob;
5563
5564 for (blob = uip->cs_blobs;
5565 blob != NULL;
5566 blob = next_blob) {
5567 next_blob = blob->csb_next;
5568 os_atomic_add(&cs_blob_count, -1, relaxed);
5569 os_atomic_add(&cs_blob_size, -blob->csb_mem_size, relaxed);
5570 cs_blob_ro_free(blob);
5571 }
5572 #if CHECK_CS_VALIDATION_BITMAP
5573 ubc_cs_validation_bitmap_deallocate( uip );
5574 #endif
5575 uip->cs_blobs = NULL;
5576 #if CONFIG_SUPPLEMENTAL_SIGNATURES
5577 if (uip->cs_blob_supplement != NULL) {
5578 blob = uip->cs_blob_supplement;
5579 os_atomic_add(&cs_blob_count, -1, relaxed);
5580 os_atomic_add(&cs_blob_size, -blob->csb_mem_size, relaxed);
5581 cs_blob_supplement_free(uip->cs_blob_supplement);
5582 uip->cs_blob_supplement = NULL;
5583 }
5584 #endif
5585 }
5586
5587 /* check cs blob generation on vnode
5588 * returns:
5589 * 0 : Success, the cs_blob attached is current
5590 * ENEEDAUTH : Generation count mismatch. Needs authentication again.
5591 */
5592 int
ubc_cs_generation_check(struct vnode * vp)5593 ubc_cs_generation_check(
5594 struct vnode *vp)
5595 {
5596 int retval = ENEEDAUTH;
5597
5598 vnode_lock_spin(vp);
5599
5600 if (UBCINFOEXISTS(vp) && vp->v_ubcinfo->cs_add_gen == cs_blob_generation_count) {
5601 retval = 0;
5602 }
5603
5604 vnode_unlock(vp);
5605 return retval;
5606 }
5607
5608 int
ubc_cs_blob_revalidate(struct vnode * vp,struct cs_blob * blob,struct image_params * imgp,int flags,uint32_t platform)5609 ubc_cs_blob_revalidate(
5610 struct vnode *vp,
5611 struct cs_blob *blob,
5612 struct image_params *imgp,
5613 int flags,
5614 uint32_t platform
5615 )
5616 {
5617 int error = 0;
5618 const CS_CodeDirectory *cd = NULL;
5619 const CS_GenericBlob *entitlements = NULL;
5620 const CS_GenericBlob *der_entitlements = NULL;
5621 size_t size;
5622 assert(vp != NULL);
5623 assert(blob != NULL);
5624
5625 if ((blob->csb_flags & CS_VALID) == 0) {
5626 // If the blob attached to the vnode was invalidated, don't try to revalidate it
5627 // Blob invalidation only occurs when the file that the blob is attached to is
5628 // opened for writing, giving us a signal that the file is modified.
5629 printf("CODESIGNING: can not re-validate a previously invalidated blob, reboot or create a new file.\n");
5630 error = EPERM;
5631 goto out;
5632 }
5633
5634 size = blob->csb_mem_size;
5635 error = cs_validate_csblob((const uint8_t *)blob->csb_mem_kaddr,
5636 size, &cd, &entitlements, &der_entitlements);
5637 if (error) {
5638 if (cs_debug) {
5639 printf("CODESIGNING: csblob invalid: %d\n", error);
5640 }
5641 goto out;
5642 }
5643
5644 unsigned int cs_flags = (ntohl(cd->flags) & CS_ALLOWED_MACHO) | CS_VALID;
5645 unsigned int signer_type = CS_SIGNER_TYPE_UNKNOWN;
5646
5647 if (blob->csb_reconstituted) {
5648 /*
5649 * Code signatures that have been modified after validation
5650 * cannot be revalidated inline from their in-memory blob.
5651 *
5652 * That's okay, though, because the only path left that relies
5653 * on revalidation of existing in-memory blobs is the legacy
5654 * detached signature database path, which only exists on macOS,
5655 * which does not do reconstitution of any kind.
5656 */
5657 if (cs_debug) {
5658 printf("CODESIGNING: revalidate: not inline revalidating reconstituted signature.\n");
5659 }
5660
5661 /*
5662 * EAGAIN tells the caller that they may reread the code
5663 * signature and try attaching it again, which is the same
5664 * thing they would do if there was no cs_blob yet in the
5665 * first place.
5666 *
5667 * Conveniently, after ubc_cs_blob_add did a successful
5668 * validation, it will detect that a matching cs_blob (cdhash,
5669 * offset, arch etc.) already exists, and return success
5670 * without re-adding a cs_blob to the vnode.
5671 */
5672 return EAGAIN;
5673 }
5674
5675 /* callout to mac_vnode_check_signature */
5676 #if CONFIG_MACF
5677 error = mac_vnode_check_signature(vp, blob, imgp, &cs_flags, &signer_type, flags, platform);
5678 if (cs_debug && error) {
5679 printf("revalidate: check_signature[pid: %d], error = %d\n", proc_getpid(current_proc()), error);
5680 }
5681 #else
5682 (void)flags;
5683 (void)signer_type;
5684 #endif
5685
5686 /* update generation number if success */
5687 vnode_lock_spin(vp);
5688 struct cs_signer_info signer_info = {
5689 .csb_flags = cs_flags,
5690 .csb_signer_type = signer_type
5691 };
5692 zalloc_ro_update_field(ZONE_ID_CS_BLOB, blob, csb_signer_info, &signer_info);
5693 if (UBCINFOEXISTS(vp)) {
5694 if (error == 0) {
5695 vp->v_ubcinfo->cs_add_gen = cs_blob_generation_count;
5696 } else {
5697 vp->v_ubcinfo->cs_add_gen = 0;
5698 }
5699 }
5700
5701 vnode_unlock(vp);
5702
5703 out:
5704 return error;
5705 }
5706
5707 void
cs_blob_reset_cache()5708 cs_blob_reset_cache()
5709 {
5710 /* incrementing odd no by 2 makes sure '0' is never reached. */
5711 OSAddAtomic(+2, &cs_blob_generation_count);
5712 printf("Reseting cs_blob cache from all vnodes. \n");
5713 }
5714
5715 struct cs_blob *
ubc_get_cs_blobs(struct vnode * vp)5716 ubc_get_cs_blobs(
5717 struct vnode *vp)
5718 {
5719 struct ubc_info *uip;
5720 struct cs_blob *blobs;
5721
5722 /*
5723 * No need to take the vnode lock here. The caller must be holding
5724 * a reference on the vnode (via a VM mapping or open file descriptor),
5725 * so the vnode will not go away. The ubc_info stays until the vnode
5726 * goes away. And we only modify "blobs" by adding to the head of the
5727 * list.
5728 * The ubc_info could go away entirely if the vnode gets reclaimed as
5729 * part of a forced unmount. In the case of a code-signature validation
5730 * during a page fault, the "paging_in_progress" reference on the VM
5731 * object guarantess that the vnode pager (and the ubc_info) won't go
5732 * away during the fault.
5733 * Other callers need to protect against vnode reclaim by holding the
5734 * vnode lock, for example.
5735 */
5736
5737 if (!UBCINFOEXISTS(vp)) {
5738 blobs = NULL;
5739 goto out;
5740 }
5741
5742 uip = vp->v_ubcinfo;
5743 blobs = uip->cs_blobs;
5744 if (blobs != NULL) {
5745 cs_blob_require(blobs, vp);
5746 }
5747
5748 out:
5749 return blobs;
5750 }
5751
5752 #if CONFIG_SUPPLEMENTAL_SIGNATURES
5753 struct cs_blob *
ubc_get_cs_supplement(struct vnode * vp)5754 ubc_get_cs_supplement(
5755 struct vnode *vp)
5756 {
5757 struct ubc_info *uip;
5758 struct cs_blob *blob;
5759
5760 /*
5761 * No need to take the vnode lock here. The caller must be holding
5762 * a reference on the vnode (via a VM mapping or open file descriptor),
5763 * so the vnode will not go away. The ubc_info stays until the vnode
5764 * goes away.
5765 * The ubc_info could go away entirely if the vnode gets reclaimed as
5766 * part of a forced unmount. In the case of a code-signature validation
5767 * during a page fault, the "paging_in_progress" reference on the VM
5768 * object guarantess that the vnode pager (and the ubc_info) won't go
5769 * away during the fault.
5770 * Other callers need to protect against vnode reclaim by holding the
5771 * vnode lock, for example.
5772 */
5773
5774 if (!UBCINFOEXISTS(vp)) {
5775 blob = NULL;
5776 goto out;
5777 }
5778
5779 uip = vp->v_ubcinfo;
5780 blob = uip->cs_blob_supplement;
5781 if (blob != NULL) {
5782 cs_blob_require(blob, vp);
5783 }
5784
5785 out:
5786 return blob;
5787 }
5788 #endif
5789
5790
5791 void
ubc_get_cs_mtime(struct vnode * vp,struct timespec * cs_mtime)5792 ubc_get_cs_mtime(
5793 struct vnode *vp,
5794 struct timespec *cs_mtime)
5795 {
5796 struct ubc_info *uip;
5797
5798 if (!UBCINFOEXISTS(vp)) {
5799 cs_mtime->tv_sec = 0;
5800 cs_mtime->tv_nsec = 0;
5801 return;
5802 }
5803
5804 uip = vp->v_ubcinfo;
5805 cs_mtime->tv_sec = uip->cs_mtime.tv_sec;
5806 cs_mtime->tv_nsec = uip->cs_mtime.tv_nsec;
5807 }
5808
5809 unsigned long cs_validate_page_no_hash = 0;
5810 unsigned long cs_validate_page_bad_hash = 0;
5811 static boolean_t
cs_validate_hash(struct cs_blob * blobs,memory_object_t pager,memory_object_offset_t page_offset,const void * data,vm_size_t * bytes_processed,unsigned * tainted)5812 cs_validate_hash(
5813 struct cs_blob *blobs,
5814 memory_object_t pager,
5815 memory_object_offset_t page_offset,
5816 const void *data,
5817 vm_size_t *bytes_processed,
5818 unsigned *tainted)
5819 {
5820 union cs_hash_union mdctx;
5821 struct cs_hash const *hashtype = NULL;
5822 unsigned char actual_hash[CS_HASH_MAX_SIZE];
5823 unsigned char expected_hash[CS_HASH_MAX_SIZE];
5824 boolean_t found_hash;
5825 struct cs_blob *blob;
5826 const CS_CodeDirectory *cd;
5827 const unsigned char *hash;
5828 boolean_t validated;
5829 off_t offset; /* page offset in the file */
5830 size_t size;
5831 off_t codeLimit = 0;
5832 const char *lower_bound, *upper_bound;
5833 vm_offset_t kaddr, blob_addr;
5834
5835 /* retrieve the expected hash */
5836 found_hash = FALSE;
5837
5838 for (blob = blobs;
5839 blob != NULL;
5840 blob = blob->csb_next) {
5841 offset = page_offset - blob->csb_base_offset;
5842 if (offset < blob->csb_start_offset ||
5843 offset >= blob->csb_end_offset) {
5844 /* our page is not covered by this blob */
5845 continue;
5846 }
5847
5848 /* blob data has been released */
5849 kaddr = (vm_offset_t)blob->csb_mem_kaddr;
5850 if (kaddr == 0) {
5851 continue;
5852 }
5853
5854 blob_addr = kaddr + blob->csb_mem_offset;
5855 lower_bound = CAST_DOWN(char *, blob_addr);
5856 upper_bound = lower_bound + blob->csb_mem_size;
5857
5858 cd = blob->csb_cd;
5859 if (cd != NULL) {
5860 /* all CD's that have been injected is already validated */
5861
5862 hashtype = blob->csb_hashtype;
5863 if (hashtype == NULL) {
5864 panic("unknown hash type ?");
5865 }
5866 if (hashtype->cs_digest_size > sizeof(actual_hash)) {
5867 panic("hash size too large");
5868 }
5869 if (offset & ((1U << blob->csb_hash_pageshift) - 1)) {
5870 panic("offset not aligned to cshash boundary");
5871 }
5872
5873 codeLimit = ntohl(cd->codeLimit);
5874
5875 hash = hashes(cd, (uint32_t)(offset >> blob->csb_hash_pageshift),
5876 hashtype->cs_size,
5877 lower_bound, upper_bound);
5878 if (hash != NULL) {
5879 bcopy(hash, expected_hash, hashtype->cs_size);
5880 found_hash = TRUE;
5881 }
5882
5883 break;
5884 }
5885 }
5886
5887 if (found_hash == FALSE) {
5888 /*
5889 * We can't verify this page because there is no signature
5890 * for it (yet). It's possible that this part of the object
5891 * is not signed, or that signatures for that part have not
5892 * been loaded yet.
5893 * Report that the page has not been validated and let the
5894 * caller decide if it wants to accept it or not.
5895 */
5896 cs_validate_page_no_hash++;
5897 if (cs_debug > 1) {
5898 printf("CODE SIGNING: cs_validate_page: "
5899 "mobj %p off 0x%llx: no hash to validate !?\n",
5900 pager, page_offset);
5901 }
5902 validated = FALSE;
5903 *tainted = 0;
5904 } else {
5905 *tainted = 0;
5906
5907 size = (1U << blob->csb_hash_pageshift);
5908 *bytes_processed = size;
5909
5910 const uint32_t *asha1, *esha1;
5911 if ((off_t)(offset + size) > codeLimit) {
5912 /* partial page at end of segment */
5913 assert(offset < codeLimit);
5914 size = (size_t) (codeLimit & (size - 1));
5915 *tainted |= CS_VALIDATE_NX;
5916 }
5917
5918 hashtype->cs_init(&mdctx);
5919
5920 if (blob->csb_hash_firstlevel_pageshift) {
5921 const unsigned char *partial_data = (const unsigned char *)data;
5922 size_t i;
5923 for (i = 0; i < size;) {
5924 union cs_hash_union partialctx;
5925 unsigned char partial_digest[CS_HASH_MAX_SIZE];
5926 size_t partial_size = MIN(size - i, (1U << blob->csb_hash_firstlevel_pageshift));
5927
5928 hashtype->cs_init(&partialctx);
5929 hashtype->cs_update(&partialctx, partial_data, partial_size);
5930 hashtype->cs_final(partial_digest, &partialctx);
5931
5932 /* Update cumulative multi-level hash */
5933 hashtype->cs_update(&mdctx, partial_digest, hashtype->cs_size);
5934 partial_data = partial_data + partial_size;
5935 i += partial_size;
5936 }
5937 } else {
5938 hashtype->cs_update(&mdctx, data, size);
5939 }
5940 hashtype->cs_final(actual_hash, &mdctx);
5941
5942 asha1 = (const uint32_t *) actual_hash;
5943 esha1 = (const uint32_t *) expected_hash;
5944
5945 if (bcmp(expected_hash, actual_hash, hashtype->cs_size) != 0) {
5946 if (cs_debug) {
5947 printf("CODE SIGNING: cs_validate_page: "
5948 "mobj %p off 0x%llx size 0x%lx: "
5949 "actual [0x%x 0x%x 0x%x 0x%x 0x%x] != "
5950 "expected [0x%x 0x%x 0x%x 0x%x 0x%x]\n",
5951 pager, page_offset, size,
5952 asha1[0], asha1[1], asha1[2],
5953 asha1[3], asha1[4],
5954 esha1[0], esha1[1], esha1[2],
5955 esha1[3], esha1[4]);
5956 }
5957 cs_validate_page_bad_hash++;
5958 *tainted |= CS_VALIDATE_TAINTED;
5959 } else {
5960 if (cs_debug > 10) {
5961 printf("CODE SIGNING: cs_validate_page: "
5962 "mobj %p off 0x%llx size 0x%lx: "
5963 "SHA1 OK\n",
5964 pager, page_offset, size);
5965 }
5966 }
5967 validated = TRUE;
5968 }
5969
5970 return validated;
5971 }
5972
5973 boolean_t
cs_validate_range(struct vnode * vp,memory_object_t pager,memory_object_offset_t page_offset,const void * data,vm_size_t dsize,unsigned * tainted)5974 cs_validate_range(
5975 struct vnode *vp,
5976 memory_object_t pager,
5977 memory_object_offset_t page_offset,
5978 const void *data,
5979 vm_size_t dsize,
5980 unsigned *tainted)
5981 {
5982 vm_size_t offset_in_range;
5983 boolean_t all_subranges_validated = TRUE; /* turn false if any subrange fails */
5984
5985 struct cs_blob *blobs = ubc_get_cs_blobs(vp);
5986
5987 #if CONFIG_SUPPLEMENTAL_SIGNATURES
5988 if (blobs == NULL && proc_is_translated(current_proc())) {
5989 struct cs_blob *supp = ubc_get_cs_supplement(vp);
5990
5991 if (supp != NULL) {
5992 blobs = supp;
5993 } else {
5994 return FALSE;
5995 }
5996 }
5997 #endif
5998
5999 #if DEVELOPMENT || DEBUG
6000 code_signing_config_t cs_config = 0;
6001
6002 /*
6003 * This exemption is specifically useful for systems which want to avoid paying
6004 * the cost of verifying the integrity of pages, since that is done by computing
6005 * hashes, which can take some time.
6006 */
6007 code_signing_configuration(NULL, &cs_config);
6008 if (cs_config & CS_CONFIG_INTEGRITY_SKIP) {
6009 *tainted = 0;
6010
6011 /* Return early to avoid paying the cost of hashing */
6012 return true;
6013 }
6014 #endif
6015
6016 *tainted = 0;
6017
6018 for (offset_in_range = 0;
6019 offset_in_range < dsize;
6020 /* offset_in_range updated based on bytes processed */) {
6021 unsigned subrange_tainted = 0;
6022 boolean_t subrange_validated;
6023 vm_size_t bytes_processed = 0;
6024
6025 subrange_validated = cs_validate_hash(blobs,
6026 pager,
6027 page_offset + offset_in_range,
6028 (const void *)((const char *)data + offset_in_range),
6029 &bytes_processed,
6030 &subrange_tainted);
6031
6032 *tainted |= subrange_tainted;
6033
6034 if (bytes_processed == 0) {
6035 /* Cannote make forward progress, so return an error */
6036 all_subranges_validated = FALSE;
6037 break;
6038 } else if (subrange_validated == FALSE) {
6039 all_subranges_validated = FALSE;
6040 /* Keep going to detect other types of failures in subranges */
6041 }
6042
6043 offset_in_range += bytes_processed;
6044 }
6045
6046 return all_subranges_validated;
6047 }
6048
6049 void
cs_validate_page(struct vnode * vp,memory_object_t pager,memory_object_offset_t page_offset,const void * data,int * validated_p,int * tainted_p,int * nx_p)6050 cs_validate_page(
6051 struct vnode *vp,
6052 memory_object_t pager,
6053 memory_object_offset_t page_offset,
6054 const void *data,
6055 int *validated_p,
6056 int *tainted_p,
6057 int *nx_p)
6058 {
6059 vm_size_t offset_in_page;
6060 struct cs_blob *blobs;
6061
6062 blobs = ubc_get_cs_blobs(vp);
6063
6064 #if CONFIG_SUPPLEMENTAL_SIGNATURES
6065 if (blobs == NULL && proc_is_translated(current_proc())) {
6066 struct cs_blob *supp = ubc_get_cs_supplement(vp);
6067
6068 if (supp != NULL) {
6069 blobs = supp;
6070 }
6071 }
6072 #endif
6073
6074 #if DEVELOPMENT || DEBUG
6075 code_signing_config_t cs_config = 0;
6076
6077 /*
6078 * This exemption is specifically useful for systems which want to avoid paying
6079 * the cost of verifying the integrity of pages, since that is done by computing
6080 * hashes, which can take some time.
6081 */
6082 code_signing_configuration(NULL, &cs_config);
6083 if (cs_config & CS_CONFIG_INTEGRITY_SKIP) {
6084 *validated_p = VMP_CS_ALL_TRUE;
6085 *tainted_p = VMP_CS_ALL_FALSE;
6086 *nx_p = VMP_CS_ALL_FALSE;
6087
6088 /* Return early to avoid paying the cost of hashing */
6089 return;
6090 }
6091 #endif
6092
6093 *validated_p = VMP_CS_ALL_FALSE;
6094 *tainted_p = VMP_CS_ALL_FALSE;
6095 *nx_p = VMP_CS_ALL_FALSE;
6096
6097 for (offset_in_page = 0;
6098 offset_in_page < PAGE_SIZE;
6099 /* offset_in_page updated based on bytes processed */) {
6100 unsigned subrange_tainted = 0;
6101 boolean_t subrange_validated;
6102 vm_size_t bytes_processed = 0;
6103 int sub_bit;
6104
6105 subrange_validated = cs_validate_hash(blobs,
6106 pager,
6107 page_offset + offset_in_page,
6108 (const void *)((const char *)data + offset_in_page),
6109 &bytes_processed,
6110 &subrange_tainted);
6111
6112 if (bytes_processed == 0) {
6113 /* 4k chunk not code-signed: try next one */
6114 offset_in_page += FOURK_PAGE_SIZE;
6115 continue;
6116 }
6117 if (offset_in_page == 0 &&
6118 bytes_processed > PAGE_SIZE - FOURK_PAGE_SIZE) {
6119 /* all processed: no 4k granularity */
6120 if (subrange_validated) {
6121 *validated_p = VMP_CS_ALL_TRUE;
6122 }
6123 if (subrange_tainted & CS_VALIDATE_TAINTED) {
6124 *tainted_p = VMP_CS_ALL_TRUE;
6125 }
6126 if (subrange_tainted & CS_VALIDATE_NX) {
6127 *nx_p = VMP_CS_ALL_TRUE;
6128 }
6129 break;
6130 }
6131 /* we only handle 4k or 16k code-signing granularity... */
6132 assertf(bytes_processed <= FOURK_PAGE_SIZE,
6133 "vp %p blobs %p offset 0x%llx + 0x%llx bytes_processed 0x%llx\n",
6134 vp, blobs, (uint64_t)page_offset,
6135 (uint64_t)offset_in_page, (uint64_t)bytes_processed);
6136 sub_bit = 1 << (offset_in_page >> FOURK_PAGE_SHIFT);
6137 if (subrange_validated) {
6138 *validated_p |= sub_bit;
6139 }
6140 if (subrange_tainted & CS_VALIDATE_TAINTED) {
6141 *tainted_p |= sub_bit;
6142 }
6143 if (subrange_tainted & CS_VALIDATE_NX) {
6144 *nx_p |= sub_bit;
6145 }
6146 /* go to next 4k chunk */
6147 offset_in_page += FOURK_PAGE_SIZE;
6148 }
6149
6150 return;
6151 }
6152
6153 int
ubc_cs_getcdhash(vnode_t vp,off_t offset,unsigned char * cdhash,uint8_t * type)6154 ubc_cs_getcdhash(
6155 vnode_t vp,
6156 off_t offset,
6157 unsigned char *cdhash,
6158 uint8_t *type)
6159 {
6160 struct cs_blob *blobs, *blob;
6161 off_t rel_offset;
6162 int ret;
6163
6164 vnode_lock(vp);
6165
6166 blobs = ubc_get_cs_blobs(vp);
6167 for (blob = blobs;
6168 blob != NULL;
6169 blob = blob->csb_next) {
6170 /* compute offset relative to this blob */
6171 rel_offset = offset - blob->csb_base_offset;
6172 if (rel_offset >= blob->csb_start_offset &&
6173 rel_offset < blob->csb_end_offset) {
6174 /* this blob does cover our "offset" ! */
6175 break;
6176 }
6177 }
6178
6179 if (blob == NULL) {
6180 /* we didn't find a blob covering "offset" */
6181 ret = EBADEXEC; /* XXX any better error ? */
6182 } else {
6183 /* get the CDHash of that blob */
6184 bcopy(blob->csb_cdhash, cdhash, sizeof(blob->csb_cdhash));
6185
6186 /* get the type of the CDHash */
6187 if (type != NULL) {
6188 *type = blob->csb_cd->hashType;
6189 }
6190
6191 ret = 0;
6192 }
6193
6194 vnode_unlock(vp);
6195
6196 return ret;
6197 }
6198
6199 boolean_t
ubc_cs_is_range_codesigned(vnode_t vp,mach_vm_offset_t start,mach_vm_size_t size)6200 ubc_cs_is_range_codesigned(
6201 vnode_t vp,
6202 mach_vm_offset_t start,
6203 mach_vm_size_t size)
6204 {
6205 struct cs_blob *csblob;
6206 mach_vm_offset_t blob_start;
6207 mach_vm_offset_t blob_end;
6208
6209 if (vp == NULL) {
6210 /* no file: no code signature */
6211 return FALSE;
6212 }
6213 if (size == 0) {
6214 /* no range: no code signature */
6215 return FALSE;
6216 }
6217 if (start + size < start) {
6218 /* overflow */
6219 return FALSE;
6220 }
6221
6222 csblob = ubc_cs_blob_get(vp, -1, -1, start);
6223 if (csblob == NULL) {
6224 return FALSE;
6225 }
6226
6227 /*
6228 * We currently check if the range is covered by a single blob,
6229 * which should always be the case for the dyld shared cache.
6230 * If we ever want to make this routine handle other cases, we
6231 * would have to iterate if the blob does not cover the full range.
6232 */
6233 blob_start = (mach_vm_offset_t) (csblob->csb_base_offset +
6234 csblob->csb_start_offset);
6235 blob_end = (mach_vm_offset_t) (csblob->csb_base_offset +
6236 csblob->csb_end_offset);
6237 if (blob_start > start || blob_end < (start + size)) {
6238 /* range not fully covered by this code-signing blob */
6239 return FALSE;
6240 }
6241
6242 return TRUE;
6243 }
6244
6245 #if CHECK_CS_VALIDATION_BITMAP
6246 #define stob(s) (((atop_64(round_page_64(s))) + 07) >> 3)
6247 extern boolean_t root_fs_upgrade_try;
6248
6249 /*
6250 * Should we use the code-sign bitmap to avoid repeated code-sign validation?
6251 * Depends:
6252 * a) Is the target vnode on the root filesystem?
6253 * b) Has someone tried to mount the root filesystem read-write?
6254 * If answers are (a) yes AND (b) no, then we can use the bitmap.
6255 */
6256 #define USE_CODE_SIGN_BITMAP(vp) ( (vp != NULL) && (vp->v_mount != NULL) && (vp->v_mount->mnt_flag & MNT_ROOTFS) && !root_fs_upgrade_try)
6257 kern_return_t
ubc_cs_validation_bitmap_allocate(vnode_t vp)6258 ubc_cs_validation_bitmap_allocate(
6259 vnode_t vp)
6260 {
6261 kern_return_t kr = KERN_SUCCESS;
6262 struct ubc_info *uip;
6263 char *target_bitmap;
6264 vm_object_size_t bitmap_size;
6265
6266 if (!USE_CODE_SIGN_BITMAP(vp) || (!UBCINFOEXISTS(vp))) {
6267 kr = KERN_INVALID_ARGUMENT;
6268 } else {
6269 uip = vp->v_ubcinfo;
6270
6271 if (uip->cs_valid_bitmap == NULL) {
6272 bitmap_size = stob(uip->ui_size);
6273 target_bitmap = (char*) kalloc_data((vm_size_t)bitmap_size, Z_WAITOK | Z_ZERO);
6274 if (target_bitmap == 0) {
6275 kr = KERN_NO_SPACE;
6276 } else {
6277 kr = KERN_SUCCESS;
6278 }
6279 if (kr == KERN_SUCCESS) {
6280 uip->cs_valid_bitmap = (void*)target_bitmap;
6281 uip->cs_valid_bitmap_size = bitmap_size;
6282 }
6283 }
6284 }
6285 return kr;
6286 }
6287
6288 kern_return_t
ubc_cs_check_validation_bitmap(vnode_t vp,memory_object_offset_t offset,int optype)6289 ubc_cs_check_validation_bitmap(
6290 vnode_t vp,
6291 memory_object_offset_t offset,
6292 int optype)
6293 {
6294 kern_return_t kr = KERN_SUCCESS;
6295
6296 if (!USE_CODE_SIGN_BITMAP(vp) || !UBCINFOEXISTS(vp)) {
6297 kr = KERN_INVALID_ARGUMENT;
6298 } else {
6299 struct ubc_info *uip = vp->v_ubcinfo;
6300 char *target_bitmap = uip->cs_valid_bitmap;
6301
6302 if (target_bitmap == NULL) {
6303 kr = KERN_INVALID_ARGUMENT;
6304 } else {
6305 uint64_t bit, byte;
6306 bit = atop_64( offset );
6307 byte = bit >> 3;
6308
6309 if (byte > uip->cs_valid_bitmap_size) {
6310 kr = KERN_INVALID_ARGUMENT;
6311 } else {
6312 if (optype == CS_BITMAP_SET) {
6313 target_bitmap[byte] |= (1 << (bit & 07));
6314 kr = KERN_SUCCESS;
6315 } else if (optype == CS_BITMAP_CLEAR) {
6316 target_bitmap[byte] &= ~(1 << (bit & 07));
6317 kr = KERN_SUCCESS;
6318 } else if (optype == CS_BITMAP_CHECK) {
6319 if (target_bitmap[byte] & (1 << (bit & 07))) {
6320 kr = KERN_SUCCESS;
6321 } else {
6322 kr = KERN_FAILURE;
6323 }
6324 }
6325 }
6326 }
6327 }
6328 return kr;
6329 }
6330
6331 void
ubc_cs_validation_bitmap_deallocate(struct ubc_info * uip)6332 ubc_cs_validation_bitmap_deallocate(
6333 struct ubc_info *uip)
6334 {
6335 if (uip->cs_valid_bitmap != NULL) {
6336 kfree_data(uip->cs_valid_bitmap, (vm_size_t)uip->cs_valid_bitmap_size);
6337 uip->cs_valid_bitmap = NULL;
6338 }
6339 }
6340 #else
6341 kern_return_t
ubc_cs_validation_bitmap_allocate(__unused vnode_t vp)6342 ubc_cs_validation_bitmap_allocate(__unused vnode_t vp)
6343 {
6344 return KERN_INVALID_ARGUMENT;
6345 }
6346
6347 kern_return_t
ubc_cs_check_validation_bitmap(__unused struct vnode * vp,__unused memory_object_offset_t offset,__unused int optype)6348 ubc_cs_check_validation_bitmap(
6349 __unused struct vnode *vp,
6350 __unused memory_object_offset_t offset,
6351 __unused int optype)
6352 {
6353 return KERN_INVALID_ARGUMENT;
6354 }
6355
6356 void
ubc_cs_validation_bitmap_deallocate(__unused struct ubc_info * uip)6357 ubc_cs_validation_bitmap_deallocate(__unused struct ubc_info *uip)
6358 {
6359 return;
6360 }
6361 #endif /* CHECK_CS_VALIDATION_BITMAP */
6362
6363 #if CODE_SIGNING_MONITOR
6364
6365 kern_return_t
cs_associate_blob_with_mapping(void * pmap,vm_map_offset_t start,vm_map_size_t size,vm_object_offset_t offset,void * blobs_p)6366 cs_associate_blob_with_mapping(
6367 void *pmap,
6368 vm_map_offset_t start,
6369 vm_map_size_t size,
6370 vm_object_offset_t offset,
6371 void *blobs_p)
6372 {
6373 off_t blob_start_offset, blob_end_offset;
6374 kern_return_t kr;
6375 struct cs_blob *blobs, *blob;
6376 vm_offset_t kaddr;
6377 void *monitor_sig_obj = NULL;
6378
6379 if (csm_enabled() == false) {
6380 return KERN_NOT_SUPPORTED;
6381 }
6382
6383 blobs = (struct cs_blob *)blobs_p;
6384
6385 for (blob = blobs;
6386 blob != NULL;
6387 blob = blob->csb_next) {
6388 blob_start_offset = (blob->csb_base_offset +
6389 blob->csb_start_offset);
6390 blob_end_offset = (blob->csb_base_offset +
6391 blob->csb_end_offset);
6392 if ((off_t) offset < blob_start_offset ||
6393 (off_t) offset >= blob_end_offset ||
6394 (off_t) (offset + size) <= blob_start_offset ||
6395 (off_t) (offset + size) > blob_end_offset) {
6396 continue;
6397 }
6398
6399 kaddr = (vm_offset_t)blob->csb_mem_kaddr;
6400 if (kaddr == 0) {
6401 /* blob data has been released */
6402 continue;
6403 }
6404
6405 monitor_sig_obj = blob->csb_csm_obj;
6406 if (monitor_sig_obj == NULL) {
6407 continue;
6408 }
6409
6410 break;
6411 }
6412
6413 if (monitor_sig_obj != NULL) {
6414 vm_offset_t segment_offset = offset - blob_start_offset;
6415 kr = csm_associate_code_signature(pmap, monitor_sig_obj, start, size, segment_offset);
6416 } else {
6417 kr = KERN_CODESIGN_ERROR;
6418 }
6419
6420 return kr;
6421 }
6422
6423 #endif /* CODE_SIGNING_MONITOR */
6424