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1 /*
2 * Copyright (c) 1999, 2006-2008 Apple Inc. All rights reserved.
3 *
4 * @APPLE_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. Please obtain a copy of the License at
10 * http://www.opensource.apple.com/apsl/ and read it before using this
11 * file.
12 *
13 * The Original Code and all software distributed under the License are
14 * distributed on an 'AS IS' basis, WITHOUT WARRANTY OF ANY KIND, EITHER
15 * EXPRESS OR IMPLIED, AND APPLE HEREBY DISCLAIMS ALL SUCH WARRANTIES,
16 * INCLUDING WITHOUT LIMITATION, ANY WARRANTIES OF MERCHANTABILITY,
17 * FITNESS FOR A PARTICULAR PURPOSE, QUIET ENJOYMENT OR NON-INFRINGEMENT.
18 * Please see the License for the specific language governing rights and
19 * limitations under the License.
20 *
21 * @APPLE_LICENSE_HEADER_END@
22 */
23
24 #include <pthread_internals.h>
25 #include "magmallocProvider.h"
26 #include <mach-o/dyld.h> /* for NSVersionOfLinkTimeLibrary() */
27
28 #import <stdlib.h>
29 #import <stdio.h>
30 #import <string.h>
31 #import <unistd.h>
32 #import <malloc/malloc.h>
33 #import <fcntl.h>
34 #import <crt_externs.h>
35 #import <errno.h>
36 #import <pthread_internals.h>
37 #import <limits.h>
38 #import <dlfcn.h>
39 #import <mach/mach_vm.h>
40 #import <mach/mach_init.h>
41 #import <sys/mman.h>
42
43 #import "scalable_malloc.h"
44 #import "stack_logging.h"
45 #import "malloc_printf.h"
46 #import "_simple.h"
47 #import "CrashReporterClient.h"
48
49 /*
50 * MALLOC_ABSOLUTE_MAX_SIZE - There are many instances of addition to a
51 * user-specified size_t, which can cause overflow (and subsequent crashes)
52 * for values near SIZE_T_MAX. Rather than add extra "if" checks everywhere
53 * this occurs, it is easier to just set an absolute maximum request size,
54 * and immediately return an error if the requested size exceeds this maximum.
55 * Of course, values less than this absolute max can fail later if the value
56 * is still too large for the available memory. The largest value added
57 * seems to be PAGE_SIZE (in the macro round_page()), so to be safe, we set
58 * the maximum to be 2 * PAGE_SIZE less than SIZE_T_MAX.
59 */
60 #define MALLOC_ABSOLUTE_MAX_SIZE (SIZE_T_MAX - (2 * PAGE_SIZE))
61
62 #define USE_SLEEP_RATHER_THAN_ABORT 0
63
64 typedef void (malloc_logger_t)(uint32_t type, uintptr_t arg1, uintptr_t arg2, uintptr_t arg3, uintptr_t result, uint32_t num_hot_frames_to_skip);
65
66 __private_extern__ pthread_lock_t _malloc_lock = 0; // initialized in __libc_init
67
68 /* The following variables are exported for the benefit of performance tools
69 *
70 * It should always be safe to first read malloc_num_zones, then read
71 * malloc_zones without taking the lock, if only iteration is required and
72 * provided that when malloc_destroy_zone is called all prior operations on that
73 * zone are complete and no further calls referencing that zone can be made.
74 */
75 unsigned malloc_num_zones = 0;
76 unsigned malloc_num_zones_allocated = 0;
77 malloc_zone_t **malloc_zones = 0;
78 malloc_logger_t *malloc_logger = NULL;
79
80 unsigned malloc_debug_flags = 0;
81
82 unsigned malloc_check_start = 0; // 0 means don't check
83 unsigned malloc_check_counter = 0;
84 unsigned malloc_check_each = 1000;
85
86 /* global flag to suppress ASL logging e.g. for syslogd */
87 int _malloc_no_asl_log = 0;
88
89 static int malloc_check_sleep = 100; // default 100 second sleep
90 static int malloc_check_abort = 0; // default is to sleep, not abort
91
92 static int malloc_debug_file = STDERR_FILENO;
93 /*
94 * State indicated by malloc_def_zone_state
95 * 0 - the default zone has not yet been created
96 * 1 - a Malloc* environment variable has been set
97 * 2 - the default zone has been created and an environment variable scan done
98 * 3 - a new default zone has been created and another environment variable scan
99 */
100 __private_extern__ int malloc_def_zone_state = 0;
101 __private_extern__ malloc_zone_t *__zone0 = NULL;
102
103 static const char Malloc_Facility[] = "com.apple.Libsystem.malloc";
104
105 #define MALLOC_LOCK() LOCK(_malloc_lock)
106 #define MALLOC_UNLOCK() UNLOCK(_malloc_lock)
107
108 /*
109 * Counters that coordinate zone destruction (in malloc_zone_unregister) with
110 * find_registered_zone (here abbreviated as FRZ).
111 */
112 static int counterAlice = 0, counterBob = 0;
113 static int *pFRZCounterLive= &counterAlice, *pFRZCounterDrain = &counterBob;
114
115 #define MALLOC_LOG_TYPE_ALLOCATE stack_logging_type_alloc
116 #define MALLOC_LOG_TYPE_DEALLOCATE stack_logging_type_dealloc
117 #define MALLOC_LOG_TYPE_HAS_ZONE stack_logging_flag_zone
118 #define MALLOC_LOG_TYPE_CLEARED stack_logging_flag_cleared
119
120 /********* Utilities ************/
121 __private_extern__ uint64_t malloc_entropy[2] = {0, 0};
122
123 void __malloc_entropy_setup(const char *apple[]) __attribute__ ((visibility ("hidden")));
124
125 static int
126 __entropy_from_kernel(const char *str)
127 {
128 unsigned long long val;
129 char tmp[20], *p;
130 int idx = 0;
131
132 /* Skip over key to the first value */
133 str = strchr(str, '=');
134 if (str == NULL)
135 return 0;
136 str++;
137
138 while (str && idx < sizeof(malloc_entropy)/sizeof(malloc_entropy[0])) {
139 strlcpy(tmp, str, 20);
140 p = strchr(tmp, ',');
141 if (p) *p = '\0';
142 val = strtoull(tmp, NULL, 0);
143 malloc_entropy[idx] = (uint64_t)val;
144 idx++;
145 if ((str = strchr(str, ',')) != NULL)
146 str++;
147 }
148 return idx;
149 }
150
151 void
152 __malloc_entropy_setup(const char *apple[])
153 {
154 const char **p;
155 for (p = apple; p && *p; p++) {
156 if (strstr(*p, "malloc_entropy") == *p) {
157 if (sizeof(malloc_entropy)/sizeof(malloc_entropy[0]) == __entropy_from_kernel(*p))
158 return;
159 else
160 break;
161 }
162 }
163
164 malloc_entropy[0] = ((uint64_t)arc4random()) << 32 | ((uint64_t)arc4random());
165 malloc_entropy[1] = ((uint64_t)arc4random()) << 32 | ((uint64_t)arc4random());
166 return;
167 }
168
169 static inline malloc_zone_t * find_registered_zone(const void *, size_t *) __attribute__((always_inline));
170 static inline malloc_zone_t *
171 find_registered_zone(const void *ptr, size_t *returned_size) {
172 // Returns a zone which contains ptr, else NULL
173
174 if (0 == malloc_num_zones) {
175 if (returned_size) *returned_size = 0;
176 return NULL;
177 }
178
179 // The default zone is registered in malloc_zones[0]. There's no danger that it will ever be unregistered.
180 // So don't advance the FRZ counter yet.
181 malloc_zone_t *zone = malloc_zones[0];
182 size_t size = zone->size(zone, ptr);
183 if (size) { // Claimed by this zone?
184 if (returned_size) *returned_size = size;
185 return zone;
186 }
187
188 int *pFRZCounter = pFRZCounterLive; // Capture pointer to the counter of the moment
189 __sync_fetch_and_add(pFRZCounter, 1); // Advance this counter -- our thread is in FRZ
190
191 unsigned index;
192 unsigned limit = malloc_num_zones;
193 malloc_zone_t **zones = &malloc_zones[1];
194
195 for (index = 1; index < limit; ++index, ++zones) {
196 zone = *zones;
197 size = zone->size(zone, ptr);
198 if (size) { // Claimed by this zone?
199 if (returned_size) *returned_size = size;
200 __sync_fetch_and_sub(pFRZCounter, 1); // our thread is leaving FRZ
201 return zone;
202 }
203 }
204 // Unclaimed by any zone.
205 if (returned_size) *returned_size = 0;
206 __sync_fetch_and_sub(pFRZCounter, 1); // our thread is leaving FRZ
207 return NULL;
208 }
209
210 __private_extern__ __attribute__((noinline)) void
211 malloc_error_break(void) {
212 // Provides a non-inlined place for various malloc error procedures to call
213 // that will be called after an error message appears. It does not make
214 // sense for developers to call this function, so it is marked
215 // __private_extern__ to prevent it from becoming API.
216 MAGMALLOC_MALLOCERRORBREAK(); // DTrace USDT probe
217 }
218
219 __private_extern__ boolean_t __stack_logging_locked();
220
221 __private_extern__ __attribute__((noinline)) int
222 malloc_gdb_po_unsafe(void) {
223 // In order to implement "po" other data formatters in gdb, the debugger
224 // calls functions that call malloc. The debugger will only run one thread
225 // of the program in this case, so if another thread is holding a zone lock,
226 // gdb may deadlock in this case.
227 //
228 // Iterate over the zones in malloc_zones, and call "trylock" on the zone
229 // lock. If trylock succeeds, unlock it, otherwise return "locked". Returns
230 // 0 == safe, 1 == locked/unsafe.
231
232 if (__stack_logging_locked())
233 return 1;
234
235 malloc_zone_t **zones = malloc_zones;
236 unsigned i, e = malloc_num_zones;
237
238 for (i = 0; i != e; ++i) {
239 malloc_zone_t *zone = zones[i];
240
241 // Version must be >= 5 to look at the new introspection field.
242 if (zone->version < 5)
243 continue;
244
245 if (zone->introspect->zone_locked && zone->introspect->zone_locked(zone))
246 return 1;
247 }
248 return 0;
249 }
250
251 /********* Creation and destruction ************/
252
253 static void set_flags_from_environment(void);
254
255 static void
256 malloc_zone_register_while_locked(malloc_zone_t *zone) {
257 size_t protect_size;
258 unsigned i;
259
260 /* scan the list of zones, to see if this zone is already registered. If
261 * so, print an error message and return. */
262 for (i = 0; i != malloc_num_zones; ++i)
263 if (zone == malloc_zones[i]) {
264 _malloc_printf(ASL_LEVEL_ERR, "Attempted to register zone more than once: %p\n", zone);
265 return;
266 }
267
268 if (malloc_num_zones == malloc_num_zones_allocated) {
269 size_t malloc_zones_size = malloc_num_zones * sizeof(malloc_zone_t *);
270 size_t alloc_size = malloc_zones_size + vm_page_size;
271
272 malloc_zone_t **new_zones = mmap(0, alloc_size, PROT_READ | PROT_WRITE, MAP_ANON | MAP_PRIVATE, VM_MAKE_TAG(VM_MEMORY_MALLOC), 0);
273
274 /* If there were previously allocated malloc zones, we need to copy them
275 * out of the previous array and into the new zones array */
276 if (malloc_zones)
277 memcpy(new_zones, malloc_zones, malloc_zones_size);
278
279 /* Update the malloc_zones pointer, which we leak if it was previously
280 * allocated, and the number of zones allocated */
281 protect_size = alloc_size;
282 malloc_zones = new_zones;
283 malloc_num_zones_allocated = alloc_size / sizeof(malloc_zone_t *);
284 } else {
285 /* If we don't need to reallocate zones, we need to briefly change the
286 * page protection the malloc zones to allow writes */
287 protect_size = malloc_num_zones_allocated * sizeof(malloc_zone_t *);
288 mprotect(malloc_zones, protect_size, PROT_READ | PROT_WRITE);
289 }
290 malloc_zones[malloc_num_zones++] = zone;
291
292 /* Finally, now that the zone is registered, disallow write access to the
293 * malloc_zones array */
294 mprotect(malloc_zones, protect_size, PROT_READ);
295 //_malloc_printf(ASL_LEVEL_INFO, "Registered malloc_zone %p in malloc_zones %p [%u zones, %u bytes]\n", zone, malloc_zones, malloc_num_zones, protect_size);
296 }
297
298 static void
299 _malloc_initialize(void) {
300 MALLOC_LOCK();
301 if (malloc_def_zone_state < 2) {
302 unsigned n;
303 malloc_zone_t *zone;
304
305 malloc_def_zone_state += 2;
306 set_flags_from_environment(); // will only set flags up to two times
307 n = malloc_num_zones;
308 zone = create_scalable_zone(0, malloc_debug_flags);
309 malloc_zone_register_while_locked(zone);
310 malloc_set_zone_name(zone, "DefaultMallocZone");
311 if (n != 0) { // make the default first, for efficiency
312 unsigned protect_size = malloc_num_zones_allocated * sizeof(malloc_zone_t *);
313 malloc_zone_t *hold = malloc_zones[0];
314
315 if(hold->zone_name && strcmp(hold->zone_name, "DefaultMallocZone") == 0) {
316 malloc_set_zone_name(hold, NULL);
317 }
318
319 mprotect(malloc_zones, protect_size, PROT_READ | PROT_WRITE);
320 malloc_zones[0] = malloc_zones[n];
321 malloc_zones[n] = hold;
322 mprotect(malloc_zones, protect_size, PROT_READ);
323 }
324 // _malloc_printf(ASL_LEVEL_INFO, "%d registered zones\n", malloc_num_zones);
325 // _malloc_printf(ASL_LEVEL_INFO, "malloc_zones is at %p; malloc_num_zones is at %p\n", (unsigned)&malloc_zones, (unsigned)&malloc_num_zones);
326 }
327 MALLOC_UNLOCK();
328 }
329
330 static inline malloc_zone_t *inline_malloc_default_zone(void) __attribute__((always_inline));
331 static inline malloc_zone_t *
332 inline_malloc_default_zone(void) {
333 if (malloc_def_zone_state < 2) _malloc_initialize();
334 // _malloc_printf(ASL_LEVEL_INFO, "In inline_malloc_default_zone with %d %d\n", malloc_num_zones, malloc_has_debug_zone);
335 return malloc_zones[0];
336 }
337
338 malloc_zone_t *
339 malloc_default_zone(void) {
340 return inline_malloc_default_zone();
341 }
342
343 static inline malloc_zone_t *inline_malloc_default_scalable_zone(void) __attribute__((always_inline));
344 static inline malloc_zone_t *
345 inline_malloc_default_scalable_zone(void) {
346 unsigned index;
347
348 if (malloc_def_zone_state < 2) _malloc_initialize();
349 // _malloc_printf(ASL_LEVEL_INFO, "In inline_malloc_default_scalable_zone with %d %d\n", malloc_num_zones, malloc_has_debug_zone);
350
351 MALLOC_LOCK();
352 for (index = 0; index < malloc_num_zones; ++index) {
353 malloc_zone_t *z = malloc_zones[index];
354
355 if(z->zone_name && strcmp(z->zone_name, "DefaultMallocZone") == 0) {
356 MALLOC_UNLOCK();
357 return z;
358 }
359 }
360 MALLOC_UNLOCK();
361
362 malloc_printf("*** malloc_default_scalable_zone() failed to find 'DefaultMallocZone'\n");
363 return NULL; // FIXME: abort() instead?
364 }
365
366 malloc_zone_t *
367 malloc_default_purgeable_zone(void) {
368 static malloc_zone_t *dpz;
369
370 if (!dpz) {
371 //
372 // PR_7288598: Must pass a *scalable* zone (szone) as the helper for create_purgeable_zone().
373 // Take care that the zone so obtained is not subject to interposing.
374 //
375 malloc_zone_t *tmp = create_purgeable_zone(0, inline_malloc_default_scalable_zone(), malloc_debug_flags);
376 malloc_zone_register(tmp);
377 malloc_set_zone_name(tmp, "DefaultPurgeableMallocZone");
378 if (!__sync_bool_compare_and_swap(&dpz, NULL, tmp))
379 malloc_destroy_zone(tmp);
380 }
381 return dpz;
382 }
383
384 // For debugging, allow stack logging to both memory and disk to compare their results.
385 static void
386 stack_logging_log_stack_debug(uint32_t type_flags, uintptr_t zone_ptr, uintptr_t size, uintptr_t ptr_arg, uintptr_t return_val, uint32_t num_hot_to_skip)
387 {
388 __disk_stack_logging_log_stack(type_flags, zone_ptr, size, ptr_arg, return_val, num_hot_to_skip);
389 stack_logging_log_stack(type_flags, zone_ptr, size, ptr_arg, return_val, num_hot_to_skip);
390 }
391
392 static void
393 set_flags_from_environment(void) {
394 const char *flag;
395 int fd;
396 char **env = * _NSGetEnviron();
397 char **p;
398 char *c;
399
400 if (malloc_debug_file != STDERR_FILENO) {
401 close(malloc_debug_file);
402 malloc_debug_file = STDERR_FILENO;
403 }
404 #if __LP64__
405 malloc_debug_flags = SCALABLE_MALLOC_ABORT_ON_CORRUPTION; // Set always on 64-bit processes
406 #else
407 int libSystemVersion = NSVersionOfLinkTimeLibrary("System");
408 if ((-1 != libSystemVersion) && ((libSystemVersion >> 16) < 126) )
409 malloc_debug_flags = 0;
410 else
411 malloc_debug_flags = SCALABLE_MALLOC_ABORT_ON_CORRUPTION;
412 #endif
413 stack_logging_enable_logging = 0;
414 stack_logging_dontcompact = 0;
415 malloc_logger = NULL;
416 malloc_check_start = 0;
417 malloc_check_each = 1000;
418 malloc_check_abort = 0;
419 malloc_check_sleep = 100;
420 /*
421 * Given that all environment variables start with "Malloc" we optimize by scanning quickly
422 * first the environment, therefore avoiding repeated calls to getenv().
423 * If we are setu/gid these flags are ignored to prevent a malicious invoker from changing
424 * our behaviour.
425 */
426 for (p = env; (c = *p) != NULL; ++p) {
427 if (!strncmp(c, "Malloc", 6)) {
428 if (issetugid())
429 return;
430 break;
431 }
432 }
433 if (c == NULL)
434 return;
435 flag = getenv("MallocLogFile");
436 if (flag) {
437 fd = open(flag, O_WRONLY|O_APPEND|O_CREAT, 0644);
438 if (fd >= 0) {
439 malloc_debug_file = fd;
440 fcntl(fd, F_SETFD, 0); // clear close-on-exec flag XXX why?
441 } else {
442 malloc_printf("Could not open %s, using stderr\n", flag);
443 }
444 }
445 if (getenv("MallocGuardEdges")) {
446 malloc_debug_flags |= SCALABLE_MALLOC_ADD_GUARD_PAGES;
447 _malloc_printf(ASL_LEVEL_INFO, "protecting edges\n");
448 if (getenv("MallocDoNotProtectPrelude")) {
449 malloc_debug_flags |= SCALABLE_MALLOC_DONT_PROTECT_PRELUDE;
450 _malloc_printf(ASL_LEVEL_INFO, "... but not protecting prelude guard page\n");
451 }
452 if (getenv("MallocDoNotProtectPostlude")) {
453 malloc_debug_flags |= SCALABLE_MALLOC_DONT_PROTECT_POSTLUDE;
454 _malloc_printf(ASL_LEVEL_INFO, "... but not protecting postlude guard page\n");
455 }
456 }
457 flag = getenv("MallocStackLogging");
458 if (!flag) {
459 flag = getenv("MallocStackLoggingNoCompact");
460 stack_logging_dontcompact = 1;
461 }
462 // For debugging, the MallocStackLogging or MallocStackLoggingNoCompact environment variables can be set to
463 // values of "memory", "disk", or "both" to control which stack logging mechanism to use. Those strings appear
464 // in the flag variable, and the strtoul() call below will return 0, so then we can do string comparison on the
465 // value of flag. The default stack logging now is disk stack logging, since memory stack logging is not 64-bit-aware.
466 if (flag) {
467 unsigned long val = strtoul(flag, NULL, 0);
468 if (val == 1) val = 0;
469 if (val == -1) val = 0;
470 if (val) {
471 malloc_logger = (void *)val;
472 _malloc_printf(ASL_LEVEL_INFO, "recording stacks using recorder %p\n", malloc_logger);
473 } else if (strcmp(flag,"memory") == 0) {
474 malloc_logger = (malloc_logger_t *)stack_logging_log_stack;
475 _malloc_printf(ASL_LEVEL_INFO, "recording malloc stacks in memory using standard recorder\n");
476 } else if (strcmp(flag,"both") == 0) {
477 malloc_logger = stack_logging_log_stack_debug;
478 _malloc_printf(ASL_LEVEL_INFO, "recording malloc stacks to both memory and disk for comparison debugging\n");
479 } else { // the default is to log to disk
480 malloc_logger = __disk_stack_logging_log_stack;
481 _malloc_printf(ASL_LEVEL_INFO, "recording malloc stacks to disk using standard recorder\n");
482 }
483 stack_logging_enable_logging = 1;
484 if (stack_logging_dontcompact) {
485 if (malloc_logger == __disk_stack_logging_log_stack) {
486 _malloc_printf(ASL_LEVEL_INFO, "stack logging compaction turned off; size of log files on disk can increase rapidly\n");
487 } else {
488 _malloc_printf(ASL_LEVEL_INFO, "stack logging compaction turned off; VM can increase rapidly\n");
489 }
490 }
491 }
492 if (getenv("MallocScribble")) {
493 malloc_debug_flags |= SCALABLE_MALLOC_DO_SCRIBBLE;
494 _malloc_printf(ASL_LEVEL_INFO, "enabling scribbling to detect mods to free blocks\n");
495 }
496 if (getenv("MallocErrorAbort")) {
497 malloc_debug_flags |= SCALABLE_MALLOC_ABORT_ON_ERROR;
498 _malloc_printf(ASL_LEVEL_INFO, "enabling abort() on bad malloc or free\n");
499 }
500 #if __LP64__
501 /* initialization above forces SCALABLE_MALLOC_ABORT_ON_CORRUPTION of 64-bit processes */
502 #else
503 flag = getenv("MallocCorruptionAbort");
504 if (flag && (flag[0] == '0')) { // Set from an environment variable in 32-bit processes
505 malloc_debug_flags &= ~SCALABLE_MALLOC_ABORT_ON_CORRUPTION;
506 } else if (flag) {
507 malloc_debug_flags |= SCALABLE_MALLOC_ABORT_ON_CORRUPTION;
508 }
509 #endif
510 flag = getenv("MallocCheckHeapStart");
511 if (flag) {
512 malloc_check_start = strtoul(flag, NULL, 0);
513 if (malloc_check_start == 0) malloc_check_start = 1;
514 if (malloc_check_start == -1) malloc_check_start = 1;
515 flag = getenv("MallocCheckHeapEach");
516 if (flag) {
517 malloc_check_each = strtoul(flag, NULL, 0);
518 if (malloc_check_each == 0) malloc_check_each = 1;
519 if (malloc_check_each == -1) malloc_check_each = 1;
520 }
521 _malloc_printf(ASL_LEVEL_INFO, "checks heap after %dth operation and each %d operations\n", malloc_check_start, malloc_check_each);
522 flag = getenv("MallocCheckHeapAbort");
523 if (flag)
524 malloc_check_abort = strtol(flag, NULL, 0);
525 if (malloc_check_abort)
526 _malloc_printf(ASL_LEVEL_INFO, "will abort on heap corruption\n");
527 else {
528 flag = getenv("MallocCheckHeapSleep");
529 if (flag)
530 malloc_check_sleep = strtol(flag, NULL, 0);
531 if (malloc_check_sleep > 0)
532 _malloc_printf(ASL_LEVEL_INFO, "will sleep for %d seconds on heap corruption\n", malloc_check_sleep);
533 else if (malloc_check_sleep < 0)
534 _malloc_printf(ASL_LEVEL_INFO, "will sleep once for %d seconds on heap corruption\n", -malloc_check_sleep);
535 else
536 _malloc_printf(ASL_LEVEL_INFO, "no sleep on heap corruption\n");
537 }
538 }
539 if (getenv("MallocHelp")) {
540 _malloc_printf(ASL_LEVEL_INFO,
541 "environment variables that can be set for debug:\n"
542 "- MallocLogFile <f> to create/append messages to file <f> instead of stderr\n"
543 "- MallocGuardEdges to add 2 guard pages for each large block\n"
544 "- MallocDoNotProtectPrelude to disable protection (when previous flag set)\n"
545 "- MallocDoNotProtectPostlude to disable protection (when previous flag set)\n"
546 "- MallocStackLogging to record all stacks. Tools like leaks can then be applied\n"
547 "- MallocStackLoggingNoCompact to record all stacks. Needed for malloc_history\n"
548 "- MallocStackLoggingDirectory to set location of stack logs, which can grow large; default is /tmp\n"
549 "- MallocScribble to detect writing on free blocks and missing initializers:\n"
550 " 0x55 is written upon free and 0xaa is written on allocation\n"
551 "- MallocCheckHeapStart <n> to start checking the heap after <n> operations\n"
552 "- MallocCheckHeapEach <s> to repeat the checking of the heap after <s> operations\n"
553 "- MallocCheckHeapSleep <t> to sleep <t> seconds on heap corruption\n"
554 "- MallocCheckHeapAbort <b> to abort on heap corruption if <b> is non-zero\n"
555 "- MallocCorruptionAbort to abort on malloc errors, but not on out of memory for 32-bit processes\n"
556 " MallocCorruptionAbort is always set on 64-bit processes\n"
557 "- MallocErrorAbort to abort on any malloc error, including out of memory\n"
558 "- MallocHelp - this help!\n");
559 }
560 }
561
562 malloc_zone_t *
563 malloc_create_zone(vm_size_t start_size, unsigned flags)
564 {
565 malloc_zone_t *zone;
566
567 /* start_size doesn't seemed to actually be used, but we test anyways */
568 if (start_size > MALLOC_ABSOLUTE_MAX_SIZE) {
569 return NULL;
570 }
571 if (malloc_def_zone_state < 2) _malloc_initialize();
572 zone = create_scalable_zone(start_size, flags | malloc_debug_flags);
573 malloc_zone_register(zone);
574 return zone;
575 }
576
577 /*
578 * For use by CheckFix: establish a new default zone whose behavior is, apart from
579 * the use of death-row and per-CPU magazines, that of Leopard.
580 */
581 void
582 malloc_create_legacy_default_zone(void)
583 {
584 malloc_zone_t *zone;
585 int i;
586
587 if (malloc_def_zone_state < 2) _malloc_initialize();
588 zone = create_legacy_scalable_zone(0, malloc_debug_flags);
589
590 MALLOC_LOCK();
591 malloc_zone_register_while_locked(zone);
592
593 //
594 // Establish the legacy scalable zone just created as the default zone.
595 //
596 malloc_zone_t *hold = malloc_zones[0];
597 if(hold->zone_name && strcmp(hold->zone_name, "DefaultMallocZone") == 0) {
598 malloc_set_zone_name(hold, NULL);
599 }
600 malloc_set_zone_name(zone, "DefaultMallocZone");
601
602 unsigned protect_size = malloc_num_zones_allocated * sizeof(malloc_zone_t *);
603 mprotect(malloc_zones, protect_size, PROT_READ | PROT_WRITE);
604
605 // assert(zone == malloc_zones[malloc_num_zones - 1];
606 for (i = malloc_num_zones - 1; i > 0; --i) {
607 malloc_zones[i] = malloc_zones[i - 1];
608 }
609 malloc_zones[0] = zone;
610
611 mprotect(malloc_zones, protect_size, PROT_READ);
612 MALLOC_UNLOCK();
613 }
614
615 void
616 malloc_destroy_zone(malloc_zone_t *zone) {
617 malloc_set_zone_name(zone, NULL); // Deallocate zone name wherever it may reside PR_7701095
618 malloc_zone_unregister(zone);
619 zone->destroy(zone);
620 }
621
622 /* called from the {put,set,unset}env routine */
623 __private_extern__ void
624 __malloc_check_env_name(const char *name)
625 {
626 MALLOC_LOCK();
627 /*
628 * 2. malloc will no longer take notice of *programmatic* changes to the MALLOC_* environment variables
629 * (i.e. calls to putenv() or setenv() that manipulate these environment variables.)
630 *
631 */
632 #if 0
633 if(malloc_def_zone_state == 2 && strncmp(name, "Malloc", 6) == 0)
634 malloc_def_zone_state = 1;
635 #endif
636 MALLOC_UNLOCK();
637 }
638
639 /********* Block creation and manipulation ************/
640
641 static void
642 internal_check(void) {
643 static vm_address_t *frames = NULL;
644 static unsigned num_frames;
645 if (malloc_zone_check(NULL)) {
646 if (!frames) vm_allocate(mach_task_self(), (void *)&frames, vm_page_size, 1);
647 thread_stack_pcs(frames, vm_page_size/sizeof(vm_address_t) - 1, &num_frames);
648 } else {
649 _SIMPLE_STRING b = _simple_salloc();
650 if (b)
651 _simple_sprintf(b, "*** MallocCheckHeap: FAILED check at %dth operation\n", malloc_check_counter-1);
652 else
653 _malloc_printf(MALLOC_PRINTF_NOLOG, "*** MallocCheckHeap: FAILED check at %dth operation\n", malloc_check_counter-1);
654 malloc_printf("*** MallocCheckHeap: FAILED check at %dth operation\n", malloc_check_counter-1);
655 if (frames) {
656 unsigned index = 1;
657 if (b) {
658 _simple_sappend(b, "Stack for last operation where the malloc check succeeded: ");
659 while (index < num_frames) _simple_sprintf(b, "%p ", frames[index++]);
660 malloc_printf("%s\n(Use 'atos' for a symbolic stack)\n", _simple_string(b));
661 } else {
662 /*
663 * Should only get here if vm_allocate() can't get a single page of
664 * memory, implying _simple_asl_log() would also fail. So we just
665 * print to the file descriptor.
666 */
667 _malloc_printf(MALLOC_PRINTF_NOLOG, "Stack for last operation where the malloc check succeeded: ");
668 while (index < num_frames) _malloc_printf(MALLOC_PRINTF_NOLOG, "%p ", frames[index++]);
669 _malloc_printf(MALLOC_PRINTF_NOLOG, "\n(Use 'atos' for a symbolic stack)\n");
670 }
671 }
672 if (malloc_check_each > 1) {
673 unsigned recomm_each = (malloc_check_each > 10) ? malloc_check_each/10 : 1;
674 unsigned recomm_start = (malloc_check_counter > malloc_check_each+1) ? malloc_check_counter-1-malloc_check_each : 1;
675 malloc_printf("*** Recommend using 'setenv MallocCheckHeapStart %d; setenv MallocCheckHeapEach %d' to narrow down failure\n", recomm_start, recomm_each);
676 }
677 if (malloc_check_abort) {
678 CRSetCrashLogMessage(b ? _simple_string(b) : "*** MallocCheckHeap: FAILED check");
679 abort();
680 } else if (b)
681 _simple_sfree(b);
682 if (malloc_check_sleep > 0) {
683 _malloc_printf(ASL_LEVEL_NOTICE, "*** Sleeping for %d seconds to leave time to attach\n",
684 malloc_check_sleep);
685 sleep(malloc_check_sleep);
686 } else if (malloc_check_sleep < 0) {
687 _malloc_printf(ASL_LEVEL_NOTICE, "*** Sleeping once for %d seconds to leave time to attach\n",
688 -malloc_check_sleep);
689 sleep(-malloc_check_sleep);
690 malloc_check_sleep = 0;
691 }
692 }
693 malloc_check_start += malloc_check_each;
694 }
695
696 void *
697 malloc_zone_malloc(malloc_zone_t *zone, size_t size) {
698 void *ptr;
699 if (malloc_check_start && (malloc_check_counter++ >= malloc_check_start)) {
700 internal_check();
701 }
702 if (size > MALLOC_ABSOLUTE_MAX_SIZE) {
703 return NULL;
704 }
705 ptr = zone->malloc(zone, size);
706 if (malloc_logger)
707 malloc_logger(MALLOC_LOG_TYPE_ALLOCATE | MALLOC_LOG_TYPE_HAS_ZONE, (uintptr_t)zone, (uintptr_t)size, 0, (uintptr_t)ptr, 0);
708 return ptr;
709 }
710
711 void *
712 malloc_zone_calloc(malloc_zone_t *zone, size_t num_items, size_t size) {
713 void *ptr;
714 if (malloc_check_start && (malloc_check_counter++ >= malloc_check_start)) {
715 internal_check();
716 }
717 if (size > MALLOC_ABSOLUTE_MAX_SIZE) {
718 return NULL;
719 }
720 ptr = zone->calloc(zone, num_items, size);
721 if (malloc_logger)
722 malloc_logger(MALLOC_LOG_TYPE_ALLOCATE | MALLOC_LOG_TYPE_HAS_ZONE | MALLOC_LOG_TYPE_CLEARED, (uintptr_t)zone, (uintptr_t)(num_items * size), 0,
723 (uintptr_t)ptr, 0);
724 return ptr;
725 }
726
727 void *
728 malloc_zone_valloc(malloc_zone_t *zone, size_t size) {
729 void *ptr;
730 if (malloc_check_start && (malloc_check_counter++ >= malloc_check_start)) {
731 internal_check();
732 }
733 if (size > MALLOC_ABSOLUTE_MAX_SIZE) {
734 return NULL;
735 }
736 ptr = zone->valloc(zone, size);
737 if (malloc_logger)
738 malloc_logger(MALLOC_LOG_TYPE_ALLOCATE | MALLOC_LOG_TYPE_HAS_ZONE, (uintptr_t)zone, (uintptr_t)size, 0, (uintptr_t)ptr, 0);
739 return ptr;
740 }
741
742 void *
743 malloc_zone_realloc(malloc_zone_t *zone, void *ptr, size_t size) {
744 void *new_ptr;
745 if (malloc_check_start && (malloc_check_counter++ >= malloc_check_start)) {
746 internal_check();
747 }
748 if (size > MALLOC_ABSOLUTE_MAX_SIZE) {
749 return NULL;
750 }
751 new_ptr = zone->realloc(zone, ptr, size);
752 if (malloc_logger)
753 malloc_logger(MALLOC_LOG_TYPE_ALLOCATE | MALLOC_LOG_TYPE_DEALLOCATE | MALLOC_LOG_TYPE_HAS_ZONE, (uintptr_t)zone, (uintptr_t)ptr, (uintptr_t)size,
754 (uintptr_t)new_ptr, 0);
755 return new_ptr;
756 }
757
758 void
759 malloc_zone_free(malloc_zone_t *zone, void *ptr) {
760 if (malloc_logger)
761 malloc_logger(MALLOC_LOG_TYPE_DEALLOCATE | MALLOC_LOG_TYPE_HAS_ZONE, (uintptr_t)zone, (uintptr_t)ptr, 0, 0, 0);
762 if (malloc_check_start && (malloc_check_counter++ >= malloc_check_start)) {
763 internal_check();
764 }
765 zone->free(zone, ptr);
766 }
767
768 static void
769 malloc_zone_free_definite_size(malloc_zone_t *zone, void *ptr, size_t size) {
770 if (malloc_logger)
771 malloc_logger(MALLOC_LOG_TYPE_DEALLOCATE | MALLOC_LOG_TYPE_HAS_ZONE, (uintptr_t)zone, (uintptr_t)ptr, 0, 0, 0);
772 if (malloc_check_start && (malloc_check_counter++ >= malloc_check_start)) {
773 internal_check();
774 }
775 zone->free_definite_size(zone, ptr, size);
776 }
777
778 malloc_zone_t *
779 malloc_zone_from_ptr(const void *ptr) {
780 if (!ptr)
781 return NULL;
782 else
783 return find_registered_zone(ptr, NULL);
784 }
785
786 void *
787 malloc_zone_memalign(malloc_zone_t *zone, size_t alignment, size_t size) {
788 void *ptr;
789 if (zone->version < 5) // Version must be >= 5 to look at the new memalign field.
790 return NULL;
791 if (!(zone->memalign))
792 return NULL;
793 if (malloc_check_start && (malloc_check_counter++ >= malloc_check_start)) {
794 internal_check();
795 }
796 if (size > MALLOC_ABSOLUTE_MAX_SIZE) {
797 return NULL;
798 }
799 if (alignment < sizeof( void *) || // excludes 0 == alignment
800 0 != (alignment & (alignment - 1))) { // relies on sizeof(void *) being a power of two.
801 return NULL;
802 }
803 ptr = zone->memalign(zone, alignment, size);
804 if (malloc_logger)
805 malloc_logger(MALLOC_LOG_TYPE_ALLOCATE | MALLOC_LOG_TYPE_HAS_ZONE, (uintptr_t)zone, (uintptr_t)size, 0, (uintptr_t)ptr, 0);
806 return ptr;
807 }
808
809 /********* Functions for zone implementors ************/
810
811 void
812 malloc_zone_register(malloc_zone_t *zone) {
813 MALLOC_LOCK();
814 malloc_zone_register_while_locked(zone);
815 MALLOC_UNLOCK();
816 }
817
818 void
819 malloc_zone_unregister(malloc_zone_t *z) {
820 unsigned index;
821
822 if (malloc_num_zones == 0)
823 return;
824
825 MALLOC_LOCK();
826 for (index = 0; index < malloc_num_zones; ++index) {
827 if (z != malloc_zones[index])
828 continue;
829
830 // Modify the page to be allow write access, so that we can update the
831 // malloc_zones array.
832 size_t protect_size = malloc_num_zones_allocated * sizeof(malloc_zone_t *);
833 mprotect(malloc_zones, protect_size, PROT_READ | PROT_WRITE);
834
835 // If we found a match, replace it with the entry at the end of the list, shrink the list,
836 // and leave the end of the list intact to avoid racing with find_registered_zone().
837
838 malloc_zones[index] = malloc_zones[malloc_num_zones - 1];
839 --malloc_num_zones;
840
841 mprotect(malloc_zones, protect_size, PROT_READ);
842
843 // Exchange the roles of the FRZ counters. The counter that has captured the number of threads presently
844 // executing *inside* find_regiatered_zone is swapped with the counter drained to zero last time through.
845 // The former is then allowed to drain to zero while this thread yields.
846 int *p = pFRZCounterLive;
847 pFRZCounterLive = pFRZCounterDrain;
848 pFRZCounterDrain = p;
849 __sync_synchronize(); // Full memory barrier
850
851 while (0 != *pFRZCounterDrain) { pthread_yield_np(); }
852
853 MALLOC_UNLOCK();
854
855 return;
856 }
857 MALLOC_UNLOCK();
858 malloc_printf("*** malloc_zone_unregister() failed for %p\n", z);
859 }
860
861 void
862 malloc_set_zone_name(malloc_zone_t *z, const char *name) {
863 char *newName;
864
865 mprotect(z, sizeof(malloc_zone_t), PROT_READ | PROT_WRITE);
866 if (z->zone_name) {
867 free((char *)z->zone_name);
868 z->zone_name = NULL;
869 }
870 if (name) {
871 size_t buflen = strlen(name) + 1;
872 newName = malloc_zone_malloc(z, buflen);
873 if (newName) {
874 strlcpy(newName, name, buflen);
875 z->zone_name = (const char *)newName;
876 } else {
877 z->zone_name = NULL;
878 }
879 }
880 mprotect(z, sizeof(malloc_zone_t), PROT_READ);
881 }
882
883 const char *
884 malloc_get_zone_name(malloc_zone_t *zone) {
885 return zone->zone_name;
886 }
887
888 /*
889 * XXX malloc_printf now uses _simple_*printf. It only deals with a
890 * subset of printf format specifiers, but it doesn't call malloc.
891 */
892
893 __private_extern__ void
894 _malloc_vprintf(int flags, const char *format, va_list ap)
895 {
896 _SIMPLE_STRING b;
897
898 if (_malloc_no_asl_log || (flags & MALLOC_PRINTF_NOLOG) || (b = _simple_salloc()) == NULL) {
899 if (!(flags & MALLOC_PRINTF_NOPREFIX)) {
900 if (__is_threaded) {
901 /* XXX somewhat rude 'knowing' that pthread_t is a pointer */
902 _simple_dprintf(malloc_debug_file, "%s(%d,%p) malloc: ", getprogname(), getpid(), (void *)pthread_self());
903 } else {
904 _simple_dprintf(malloc_debug_file, "%s(%d) malloc: ", getprogname(), getpid());
905 }
906 }
907 _simple_vdprintf(malloc_debug_file, format, ap);
908 return;
909 }
910 if (!(flags & MALLOC_PRINTF_NOPREFIX)) {
911 if (__is_threaded) {
912 /* XXX somewhat rude 'knowing' that pthread_t is a pointer */
913 _simple_sprintf(b, "%s(%d,%p) malloc: ", getprogname(), getpid(), (void *)pthread_self());
914 } else {
915 _simple_sprintf(b, "%s(%d) malloc: ", getprogname(), getpid());
916 }
917 }
918 _simple_vsprintf(b, format, ap);
919 _simple_put(b, malloc_debug_file);
920 _simple_asl_log(flags & MALLOC_PRINTF_LEVEL_MASK, Malloc_Facility, _simple_string(b));
921 _simple_sfree(b);
922 }
923
924 __private_extern__ void
925 _malloc_printf(int flags, const char *format, ...)
926 {
927 va_list ap;
928
929 va_start(ap, format);
930 _malloc_vprintf(flags, format, ap);
931 va_end(ap);
932 }
933
934 void
935 malloc_printf(const char *format, ...)
936 {
937 va_list ap;
938
939 va_start(ap, format);
940 _malloc_vprintf(ASL_LEVEL_ERR, format, ap);
941 va_end(ap);
942 }
943
944 /********* Generic ANSI callouts ************/
945
946 void *
947 malloc(size_t size) {
948 void *retval;
949 retval = malloc_zone_malloc(inline_malloc_default_zone(), size);
950 if (retval == NULL) {
951 errno = ENOMEM;
952 }
953 return retval;
954 }
955
956 void *
957 calloc(size_t num_items, size_t size) {
958 void *retval;
959 retval = malloc_zone_calloc(inline_malloc_default_zone(), num_items, size);
960 if (retval == NULL) {
961 errno = ENOMEM;
962 }
963 return retval;
964 }
965
966 void
967 free(void *ptr) {
968 malloc_zone_t *zone;
969 size_t size;
970 if (!ptr)
971 return;
972 zone = find_registered_zone(ptr, &size);
973 if (!zone) {
974 malloc_printf("*** error for object %p: pointer being freed was not allocated\n"
975 "*** set a breakpoint in malloc_error_break to debug\n", ptr);
976 malloc_error_break();
977 if ((malloc_debug_flags & (SCALABLE_MALLOC_ABORT_ON_CORRUPTION|SCALABLE_MALLOC_ABORT_ON_ERROR))) {
978 _SIMPLE_STRING b = _simple_salloc();
979 if (b) {
980 _simple_sprintf(b, "*** error for object %p: pointer being freed was not allocated\n", ptr);
981 CRSetCrashLogMessage(_simple_string(b));
982 } else {
983 CRSetCrashLogMessage("*** error: pointer being freed was not allocated\n");
984 }
985 abort();
986 }
987 } else if (zone->version >= 6 && zone->free_definite_size)
988 malloc_zone_free_definite_size(zone, ptr, size);
989 else
990 malloc_zone_free(zone, ptr);
991 }
992
993 void *
994 realloc(void *in_ptr, size_t new_size) {
995 void *retval = NULL;
996 void *old_ptr;
997 malloc_zone_t *zone;
998 size_t old_size = 0;
999
1000 // SUSv3: "If size is 0 and ptr is not a null pointer, the object
1001 // pointed to is freed. If the space cannot be allocated, the object
1002 // shall remain unchanged." Also "If size is 0, either a null pointer
1003 // or a unique pointer that can be successfully passed to free() shall
1004 // be returned." We choose to allocate a minimum size object by calling
1005 // malloc_zone_malloc with zero size, which matches "If ptr is a null
1006 // pointer, realloc() shall be equivalent to malloc() for the specified
1007 // size." So we only free the original memory if the allocation succeeds.
1008 old_ptr = (new_size == 0) ? NULL : in_ptr;
1009 if (!old_ptr) {
1010 retval = malloc_zone_malloc(inline_malloc_default_zone(), new_size);
1011 } else {
1012 zone = find_registered_zone(old_ptr, &old_size);
1013 if (!zone) {
1014 malloc_printf("*** error for object %p: pointer being realloc'd was not allocated\n"
1015 "*** set a breakpoint in malloc_error_break to debug\n", old_ptr);
1016 malloc_error_break();
1017 if ((malloc_debug_flags & (SCALABLE_MALLOC_ABORT_ON_CORRUPTION|SCALABLE_MALLOC_ABORT_ON_ERROR))) {
1018 _SIMPLE_STRING b = _simple_salloc();
1019 if (b) {
1020 _simple_sprintf(b, "*** error for object %p: pointer being realloc'd was not allocated\n", old_ptr);
1021 CRSetCrashLogMessage(_simple_string(b));
1022 } else {
1023 CRSetCrashLogMessage("*** error: pointer being realloc'd was not allocated\n");
1024 }
1025 abort();
1026 }
1027 } else {
1028 retval = malloc_zone_realloc(zone, old_ptr, new_size);
1029 }
1030 }
1031 if (retval == NULL) {
1032 errno = ENOMEM;
1033 } else if (new_size == 0) {
1034 free(in_ptr);
1035 }
1036 return retval;
1037 }
1038
1039 void *
1040 valloc(size_t size) {
1041 void *retval;
1042 malloc_zone_t *zone = inline_malloc_default_zone();
1043 retval = malloc_zone_valloc(zone, size);
1044 if (retval == NULL) {
1045 errno = ENOMEM;
1046 }
1047 return retval;
1048 }
1049
1050 extern void
1051 vfree(void *ptr) {
1052 free(ptr);
1053 }
1054
1055 size_t
1056 malloc_size(const void *ptr) {
1057 size_t size = 0;
1058
1059 if (!ptr)
1060 return size;
1061
1062 (void)find_registered_zone(ptr, &size);
1063 return size;
1064 }
1065
1066 size_t
1067 malloc_good_size (size_t size) {
1068 malloc_zone_t *zone = inline_malloc_default_zone();
1069 return zone->introspect->good_size(zone, size);
1070 }
1071
1072 /*
1073 * The posix_memalign() function shall allocate size bytes aligned on a boundary specified by alignment,
1074 * and shall return a pointer to the allocated memory in memptr.
1075 * The value of alignment shall be a multiple of sizeof( void *), that is also a power of two.
1076 * Upon successful completion, the value pointed to by memptr shall be a multiple of alignment.
1077 *
1078 * Upon successful completion, posix_memalign() shall return zero; otherwise,
1079 * an error number shall be returned to indicate the error.
1080 *
1081 * The posix_memalign() function shall fail if:
1082 * EINVAL
1083 * The value of the alignment parameter is not a power of two multiple of sizeof( void *).
1084 * ENOMEM
1085 * There is insufficient memory available with the requested alignment.
1086 */
1087
1088 int
1089 posix_memalign(void **memptr, size_t alignment, size_t size)
1090 {
1091 void *retval;
1092
1093 /* POSIX is silent on NULL == memptr !?! */
1094
1095 retval = malloc_zone_memalign(inline_malloc_default_zone(), alignment, size);
1096 if (retval == NULL) {
1097 // To avoid testing the alignment constraints redundantly, we'll rely on the
1098 // test made in malloc_zone_memalign to vet each request. Only if that test fails
1099 // and returns NULL, do we arrive here to detect the bogus alignment and give the
1100 // required EINVAL return.
1101 if (alignment < sizeof( void *) || // excludes 0 == alignment
1102 0 != (alignment & (alignment - 1))) { // relies on sizeof(void *) being a power of two.
1103 return EINVAL;
1104 }
1105 return ENOMEM;
1106 } else {
1107 *memptr = retval; // Set iff allocation succeeded
1108 return 0;
1109 }
1110 }
1111
1112 static malloc_zone_t *
1113 find_registered_purgeable_zone(void *ptr) {
1114 if (!ptr)
1115 return NULL;
1116
1117 /*
1118 * Look for a zone which contains ptr. If that zone does not have the purgeable malloc flag
1119 * set, or the allocation is too small, do nothing. Otherwise, set the allocation volatile.
1120 * FIXME: for performance reasons, we should probably keep a separate list of purgeable zones
1121 * and only search those.
1122 */
1123 size_t size = 0;
1124 malloc_zone_t *zone = find_registered_zone(ptr, &size);
1125
1126 /* FIXME: would really like a zone->introspect->flags->purgeable check, but haven't determined
1127 * binary compatibility impact of changing the introspect struct yet. */
1128 if (!zone)
1129 return NULL;
1130
1131 /* Check to make sure pointer is page aligned and size is multiple of page size */
1132 if ((size < vm_page_size) || ((size % vm_page_size) != 0))
1133 return NULL;
1134
1135 return zone;
1136 }
1137
1138 void
1139 malloc_make_purgeable(void *ptr) {
1140 malloc_zone_t *zone = find_registered_purgeable_zone(ptr);
1141 if (!zone)
1142 return;
1143
1144 int state = VM_PURGABLE_VOLATILE;
1145 vm_purgable_control(mach_task_self(), (vm_address_t)ptr, VM_PURGABLE_SET_STATE, &state);
1146 return;
1147 }
1148
1149 /* Returns true if ptr is valid. Ignore the return value from vm_purgeable_control and only report
1150 * state. */
1151 int
1152 malloc_make_nonpurgeable(void *ptr) {
1153 malloc_zone_t *zone = find_registered_purgeable_zone(ptr);
1154 if (!zone)
1155 return 0;
1156
1157 int state = VM_PURGABLE_NONVOLATILE;
1158 vm_purgable_control(mach_task_self(), (vm_address_t)ptr, VM_PURGABLE_SET_STATE, &state);
1159
1160 if (state == VM_PURGABLE_EMPTY)
1161 return EFAULT;
1162
1163 return 0;
1164 }
1165
1166 size_t malloc_zone_pressure_relief(malloc_zone_t *zone, size_t goal)
1167 {
1168 if (!zone) {
1169 unsigned index = 0;
1170 size_t total = 0;
1171
1172 // Take lock to defend against malloc_destroy_zone()
1173 MALLOC_LOCK();
1174 while (index < malloc_num_zones) {
1175 zone = malloc_zones[index++];
1176 if (zone->version < 8)
1177 continue;
1178 if (NULL == zone->pressure_relief)
1179 continue;
1180 if (0 == goal) /* Greedy */
1181 total += zone->pressure_relief(zone, 0);
1182 else if (goal > total)
1183 total += zone->pressure_relief(zone, goal - total);
1184 else /* total >= goal */
1185 break;
1186 }
1187 MALLOC_UNLOCK();
1188 return total;
1189 } else {
1190 // Assumes zone is not destroyed for the duration of this call
1191 if (zone->version < 8)
1192 return 0;
1193 if (NULL == zone->pressure_relief)
1194 return 0;
1195 return zone->pressure_relief(zone, goal);
1196 }
1197 }
1198
1199 /********* Batch methods ************/
1200
1201 unsigned
1202 malloc_zone_batch_malloc(malloc_zone_t *zone, size_t size, void **results, unsigned num_requested) {
1203 unsigned (*batch_malloc)(malloc_zone_t *, size_t, void **, unsigned) = zone-> batch_malloc;
1204 if (! batch_malloc)
1205 return 0;
1206 if (malloc_check_start && (malloc_check_counter++ >= malloc_check_start)) {
1207 internal_check();
1208 }
1209 unsigned batched = batch_malloc(zone, size, results, num_requested);
1210 if (malloc_logger) {
1211 unsigned index = 0;
1212 while (index < batched) {
1213 malloc_logger(MALLOC_LOG_TYPE_ALLOCATE | MALLOC_LOG_TYPE_HAS_ZONE, (uintptr_t)zone, (uintptr_t)size, 0, (uintptr_t)results[index], 0);
1214 index++;
1215 }
1216 }
1217 return batched;
1218 }
1219
1220 void
1221 malloc_zone_batch_free(malloc_zone_t *zone, void **to_be_freed, unsigned num) {
1222 if (malloc_check_start && (malloc_check_counter++ >= malloc_check_start)) {
1223 internal_check();
1224 }
1225 if (malloc_logger) {
1226 unsigned index = 0;
1227 while (index < num) {
1228 malloc_logger(MALLOC_LOG_TYPE_DEALLOCATE | MALLOC_LOG_TYPE_HAS_ZONE, (uintptr_t)zone, (uintptr_t)to_be_freed[index], 0, 0, 0);
1229 index++;
1230 }
1231 }
1232 void (*batch_free)(malloc_zone_t *, void **, unsigned) = zone-> batch_free;
1233 if (batch_free) {
1234 batch_free(zone, to_be_freed, num);
1235 } else {
1236 void (*free_fun)(malloc_zone_t *, void *) = zone->free;
1237 while (num--) {
1238 void *ptr = *to_be_freed++;
1239 free_fun(zone, ptr);
1240 }
1241 }
1242 }
1243
1244 /********* Functions for performance tools ************/
1245
1246 static kern_return_t
1247 _malloc_default_reader(task_t task, vm_address_t address, vm_size_t size, void **ptr) {
1248 *ptr = (void *)address;
1249 return 0;
1250 }
1251
1252 kern_return_t
1253 malloc_get_all_zones(task_t task, memory_reader_t reader, vm_address_t **addresses, unsigned *count) {
1254 // Note that the 2 following addresses are not correct if the address of the target is different from your own. This notably occurs if the address of System.framework is slid (e.g. different than at B & I )
1255 vm_address_t remote_malloc_zones = (vm_address_t)&malloc_zones;
1256 vm_address_t remote_malloc_num_zones = (vm_address_t)&malloc_num_zones;
1257 kern_return_t err;
1258 vm_address_t zones_address;
1259 vm_address_t *zones_address_ref;
1260 unsigned num_zones;
1261 unsigned *num_zones_ref;
1262 if (!reader) reader = _malloc_default_reader;
1263 // printf("Read malloc_zones at address %p should be %p\n", &malloc_zones, malloc_zones);
1264 err = reader(task, remote_malloc_zones, sizeof(void *), (void **)&zones_address_ref);
1265 // printf("Read malloc_zones[%p]=%p\n", remote_malloc_zones, *zones_address_ref);
1266 if (err) {
1267 malloc_printf("*** malloc_get_all_zones: error reading zones_address at %p\n", (unsigned)remote_malloc_zones);
1268 return err;
1269 }
1270 zones_address = *zones_address_ref;
1271 // printf("Reading num_zones at address %p\n", remote_malloc_num_zones);
1272 err = reader(task, remote_malloc_num_zones, sizeof(unsigned), (void **)&num_zones_ref);
1273 if (err) {
1274 malloc_printf("*** malloc_get_all_zones: error reading num_zones at %p\n", (unsigned)remote_malloc_num_zones);
1275 return err;
1276 }
1277 num_zones = *num_zones_ref;
1278 // printf("Read malloc_num_zones[%p]=%d\n", remote_malloc_num_zones, num_zones);
1279 *count = num_zones;
1280 // printf("malloc_get_all_zones succesfully found %d zones\n", num_zones);
1281 err = reader(task, zones_address, sizeof(malloc_zone_t *) * num_zones, (void **)addresses);
1282 if (err) {
1283 malloc_printf("*** malloc_get_all_zones: error reading zones at %p\n", &zones_address);
1284 return err;
1285 }
1286 // printf("malloc_get_all_zones succesfully read %d zones\n", num_zones);
1287 return err;
1288 }
1289
1290 /********* Debug helpers ************/
1291
1292 void
1293 malloc_zone_print_ptr_info(void *ptr) {
1294 malloc_zone_t *zone;
1295 if (!ptr) return;
1296 zone = malloc_zone_from_ptr(ptr);
1297 if (zone) {
1298 printf("ptr %p in registered zone %p\n", ptr, zone);
1299 } else {
1300 printf("ptr %p not in heap\n", ptr);
1301 }
1302 }
1303
1304 boolean_t
1305 malloc_zone_check(malloc_zone_t *zone) {
1306 boolean_t ok = 1;
1307 if (!zone) {
1308 unsigned index = 0;
1309 while (index < malloc_num_zones) {
1310 zone = malloc_zones[index++];
1311 if (!zone->introspect->check(zone)) ok = 0;
1312 }
1313 } else {
1314 ok = zone->introspect->check(zone);
1315 }
1316 return ok;
1317 }
1318
1319 void
1320 malloc_zone_print(malloc_zone_t *zone, boolean_t verbose) {
1321 if (!zone) {
1322 unsigned index = 0;
1323 while (index < malloc_num_zones) {
1324 zone = malloc_zones[index++];
1325 zone->introspect->print(zone, verbose);
1326 }
1327 } else {
1328 zone->introspect->print(zone, verbose);
1329 }
1330 }
1331
1332 void
1333 malloc_zone_statistics(malloc_zone_t *zone, malloc_statistics_t *stats) {
1334 if (!zone) {
1335 memset(stats, 0, sizeof(*stats));
1336 unsigned index = 0;
1337 while (index < malloc_num_zones) {
1338 zone = malloc_zones[index++];
1339 malloc_statistics_t this_stats;
1340 zone->introspect->statistics(zone, &this_stats);
1341 stats->blocks_in_use += this_stats.blocks_in_use;
1342 stats->size_in_use += this_stats.size_in_use;
1343 stats->max_size_in_use += this_stats.max_size_in_use;
1344 stats->size_allocated += this_stats.size_allocated;
1345 }
1346 } else {
1347 zone->introspect->statistics(zone, stats);
1348 }
1349 }
1350
1351 void
1352 malloc_zone_log(malloc_zone_t *zone, void *address) {
1353 if (!zone) {
1354 unsigned index = 0;
1355 while (index < malloc_num_zones) {
1356 zone = malloc_zones[index++];
1357 zone->introspect->log(zone, address);
1358 }
1359 } else {
1360 zone->introspect->log(zone, address);
1361 }
1362 }
1363
1364 /********* Misc other entry points ************/
1365
1366 static void
1367 DefaultMallocError(int x) {
1368 #if USE_SLEEP_RATHER_THAN_ABORT
1369 malloc_printf("*** error %d\n", x);
1370 sleep(3600);
1371 #else
1372 _SIMPLE_STRING b = _simple_salloc();
1373 if (b) {
1374 _simple_sprintf(b, "*** error %d", x);
1375 malloc_printf("%s\n", _simple_string(b));
1376 CRSetCrashLogMessage(_simple_string(b));
1377 } else {
1378 _malloc_printf(MALLOC_PRINTF_NOLOG, "*** error %d", x);
1379 CRSetCrashLogMessage("*** DefaultMallocError called");
1380 }
1381 abort();
1382 #endif
1383 }
1384
1385 void (*
1386 malloc_error(void (*func)(int)))(int) {
1387 return DefaultMallocError;
1388 }
1389
1390 /* Stack logging fork-handling prototypes */
1391 extern void __stack_logging_fork_prepare();
1392 extern void __stack_logging_fork_parent();
1393 extern void __stack_logging_fork_child();
1394
1395 void
1396 _malloc_fork_prepare() {
1397 /* Prepare the malloc module for a fork by insuring that no thread is in a malloc critical section */
1398 unsigned index = 0;
1399 MALLOC_LOCK();
1400 while (index < malloc_num_zones) {
1401 malloc_zone_t *zone = malloc_zones[index++];
1402 zone->introspect->force_lock(zone);
1403 }
1404 __stack_logging_fork_prepare();
1405 }
1406
1407 void
1408 _malloc_fork_parent() {
1409 /* Called in the parent process after a fork() to resume normal operation. */
1410 unsigned index = 0;
1411 __stack_logging_fork_parent();
1412 MALLOC_UNLOCK();
1413 while (index < malloc_num_zones) {
1414 malloc_zone_t *zone = malloc_zones[index++];
1415 zone->introspect->force_unlock(zone);
1416 }
1417 }
1418
1419 void
1420 _malloc_fork_child() {
1421 /* Called in the child process after a fork() to resume normal operation. In the MTASK case we also have to change memory inheritance so that the child does not share memory with the parent. */
1422 unsigned index = 0;
1423 __stack_logging_fork_child();
1424 MALLOC_UNLOCK();
1425 while (index < malloc_num_zones) {
1426 malloc_zone_t *zone = malloc_zones[index++];
1427 zone->introspect->force_unlock(zone);
1428 }
1429 }
1430
1431 /*
1432 * A Glibc-like mstats() interface.
1433 *
1434 * Note that this interface really isn't very good, as it doesn't understand
1435 * that we may have multiple allocators running at once. We just massage
1436 * the result from malloc_zone_statistics in any case.
1437 */
1438 struct mstats
1439 mstats(void)
1440 {
1441 malloc_statistics_t s;
1442 struct mstats m;
1443
1444 malloc_zone_statistics(NULL, &s);
1445 m.bytes_total = s.size_allocated;
1446 m.chunks_used = s.blocks_in_use;
1447 m.bytes_used = s.size_in_use;
1448 m.chunks_free = 0;
1449 m.bytes_free = m.bytes_total - m.bytes_used; /* isn't this somewhat obvious? */
1450
1451 return(m);
1452 }
1453
1454 boolean_t
1455 malloc_zone_enable_discharge_checking(malloc_zone_t *zone)
1456 {
1457 if (zone->version < 7) // Version must be >= 7 to look at the new discharge checking fields.
1458 return FALSE;
1459 if (NULL == zone->introspect->enable_discharge_checking)
1460 return FALSE;
1461 return zone->introspect->enable_discharge_checking(zone);
1462 }
1463
1464 void
1465 malloc_zone_disable_discharge_checking(malloc_zone_t *zone)
1466 {
1467 if (zone->version < 7) // Version must be >= 7 to look at the new discharge checking fields.
1468 return;
1469 if (NULL == zone->introspect->disable_discharge_checking)
1470 return;
1471 zone->introspect->disable_discharge_checking(zone);
1472 }
1473
1474 void
1475 malloc_zone_discharge(malloc_zone_t *zone, void *memory)
1476 {
1477 if (NULL == zone)
1478 zone = malloc_zone_from_ptr(memory);
1479 if (NULL == zone)
1480 return;
1481 if (zone->version < 7) // Version must be >= 7 to look at the new discharge checking fields.
1482 return;
1483 if (NULL == zone->introspect->discharge)
1484 return;
1485 zone->introspect->discharge(zone, memory);
1486 }
1487
1488 void
1489 malloc_zone_enumerate_discharged_pointers(malloc_zone_t *zone, void (^report_discharged)(void *memory, void *info))
1490 {
1491 if (!zone) {
1492 unsigned index = 0;
1493 while (index < malloc_num_zones) {
1494 zone = malloc_zones[index++];
1495 if (zone->version < 7)
1496 continue;
1497 if (NULL == zone->introspect->enumerate_discharged_pointers)
1498 continue;
1499 zone->introspect->enumerate_discharged_pointers(zone, report_discharged);
1500 }
1501 } else {
1502 if (zone->version < 7)
1503 return;
1504 if (NULL == zone->introspect->enumerate_discharged_pointers)
1505 return;
1506 zone->introspect->enumerate_discharged_pointers(zone, report_discharged);
1507 }
1508 }
1509
1510 /***************** OBSOLETE ENTRY POINTS ********************/
1511
1512 #if PHASE_OUT_OLD_MALLOC
1513 #error PHASE OUT THE FOLLOWING FUNCTIONS
1514 #else
1515 #warning PHASE OUT THE FOLLOWING FUNCTIONS
1516 #endif
1517
1518 void
1519 set_malloc_singlethreaded(boolean_t single) {
1520 static boolean_t warned = 0;
1521 if (!warned) {
1522 #if PHASE_OUT_OLD_MALLOC
1523 malloc_printf("*** OBSOLETE: set_malloc_singlethreaded(%d)\n", single);
1524 #endif
1525 warned = 1;
1526 }
1527 }
1528
1529 void
1530 malloc_singlethreaded() {
1531 static boolean_t warned = 0;
1532 if (!warned) {
1533 malloc_printf("*** OBSOLETE: malloc_singlethreaded()\n");
1534 warned = 1;
1535 }
1536 }
1537
1538 int
1539 malloc_debug(int level) {
1540 malloc_printf("*** OBSOLETE: malloc_debug()\n");
1541 return 0;
1542 }