threads_win.c 16 KB

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  1. /*
  2. * Copyright 2016-2024 The OpenSSL Project Authors. All Rights Reserved.
  3. *
  4. * Licensed under the Apache License 2.0 (the "License"). You may not use
  5. * this file except in compliance with the License. You can obtain a copy
  6. * in the file LICENSE in the source distribution or at
  7. * https://www.openssl.org/source/license.html
  8. */
  9. #if defined(_WIN32)
  10. # include <windows.h>
  11. # if defined(_WIN32_WINNT) && _WIN32_WINNT >= 0x600
  12. # define USE_RWLOCK
  13. # endif
  14. #endif
  15. #include <assert.h>
  16. /*
  17. * VC++ 2008 or earlier x86 compilers do not have an inline implementation
  18. * of InterlockedOr64 for 32bit and will fail to run on Windows XP 32bit.
  19. * https://docs.microsoft.com/en-us/cpp/intrinsics/interlockedor-intrinsic-functions#requirements
  20. * To work around this problem, we implement a manual locking mechanism for
  21. * only VC++ 2008 or earlier x86 compilers.
  22. */
  23. #if (defined(_MSC_VER) && defined(_M_IX86) && _MSC_VER <= 1600)
  24. # define NO_INTERLOCKEDOR64
  25. #endif
  26. #include <openssl/crypto.h>
  27. #include <crypto/cryptlib.h>
  28. #include "internal/common.h"
  29. #include "internal/thread_arch.h"
  30. #include "internal/rcu.h"
  31. #include "rcu_internal.h"
  32. #if defined(OPENSSL_THREADS) && !defined(CRYPTO_TDEBUG) && defined(OPENSSL_SYS_WINDOWS)
  33. # ifdef USE_RWLOCK
  34. typedef struct {
  35. SRWLOCK lock;
  36. int exclusive;
  37. } CRYPTO_win_rwlock;
  38. # endif
  39. # define READER_SHIFT 0
  40. # define ID_SHIFT 32
  41. # define READER_SIZE 32
  42. # define ID_SIZE 32
  43. # define READER_MASK (((LONG64)1 << READER_SIZE)-1)
  44. # define ID_MASK (((LONG64)1 << ID_SIZE)-1)
  45. # define READER_COUNT(x) (((LONG64)(x) >> READER_SHIFT) & READER_MASK)
  46. # define ID_VAL(x) (((LONG64)(x) >> ID_SHIFT) & ID_MASK)
  47. # define VAL_READER ((LONG64)1 << READER_SHIFT)
  48. # define VAL_ID(x) ((LONG64)x << ID_SHIFT)
  49. /*
  50. * This defines a quescent point (qp)
  51. * This is the barrier beyond which a writer
  52. * must wait before freeing data that was
  53. * atomically updated
  54. */
  55. struct rcu_qp {
  56. volatile LONG64 users;
  57. };
  58. struct thread_qp {
  59. struct rcu_qp *qp;
  60. unsigned int depth;
  61. CRYPTO_RCU_LOCK *lock;
  62. };
  63. #define MAX_QPS 10
  64. /*
  65. * This is the per thread tracking data
  66. * that is assigned to each thread participating
  67. * in an rcu qp
  68. *
  69. * qp points to the qp that it last acquired
  70. *
  71. */
  72. struct rcu_thr_data {
  73. struct thread_qp thread_qps[MAX_QPS];
  74. };
  75. /*
  76. * This is the internal version of a CRYPTO_RCU_LOCK
  77. * it is cast from CRYPTO_RCU_LOCK
  78. */
  79. struct rcu_lock_st {
  80. struct rcu_cb_item *cb_items;
  81. OSSL_LIB_CTX *ctx;
  82. uint32_t id_ctr;
  83. struct rcu_qp *qp_group;
  84. size_t group_count;
  85. uint32_t next_to_retire;
  86. volatile long int reader_idx;
  87. uint32_t current_alloc_idx;
  88. uint32_t writers_alloced;
  89. CRYPTO_MUTEX *write_lock;
  90. CRYPTO_MUTEX *alloc_lock;
  91. CRYPTO_CONDVAR *alloc_signal;
  92. CRYPTO_MUTEX *prior_lock;
  93. CRYPTO_CONDVAR *prior_signal;
  94. };
  95. static struct rcu_qp *allocate_new_qp_group(struct rcu_lock_st *lock,
  96. int count)
  97. {
  98. struct rcu_qp *new =
  99. OPENSSL_zalloc(sizeof(*new) * count);
  100. lock->group_count = count;
  101. return new;
  102. }
  103. CRYPTO_RCU_LOCK *ossl_rcu_lock_new(int num_writers, OSSL_LIB_CTX *ctx)
  104. {
  105. struct rcu_lock_st *new;
  106. if (num_writers < 1)
  107. num_writers = 1;
  108. ctx = ossl_lib_ctx_get_concrete(ctx);
  109. if (ctx == NULL)
  110. return 0;
  111. new = OPENSSL_zalloc(sizeof(*new));
  112. if (new == NULL)
  113. return NULL;
  114. new->ctx = ctx;
  115. new->write_lock = ossl_crypto_mutex_new();
  116. new->alloc_signal = ossl_crypto_condvar_new();
  117. new->prior_signal = ossl_crypto_condvar_new();
  118. new->alloc_lock = ossl_crypto_mutex_new();
  119. new->prior_lock = ossl_crypto_mutex_new();
  120. new->qp_group = allocate_new_qp_group(new, num_writers + 1);
  121. if (new->qp_group == NULL
  122. || new->alloc_signal == NULL
  123. || new->prior_signal == NULL
  124. || new->write_lock == NULL
  125. || new->alloc_lock == NULL
  126. || new->prior_lock == NULL) {
  127. OPENSSL_free(new->qp_group);
  128. ossl_crypto_condvar_free(&new->alloc_signal);
  129. ossl_crypto_condvar_free(&new->prior_signal);
  130. ossl_crypto_mutex_free(&new->alloc_lock);
  131. ossl_crypto_mutex_free(&new->prior_lock);
  132. ossl_crypto_mutex_free(&new->write_lock);
  133. OPENSSL_free(new);
  134. new = NULL;
  135. }
  136. return new;
  137. }
  138. void ossl_rcu_lock_free(CRYPTO_RCU_LOCK *lock)
  139. {
  140. OPENSSL_free(lock->qp_group);
  141. ossl_crypto_condvar_free(&lock->alloc_signal);
  142. ossl_crypto_condvar_free(&lock->prior_signal);
  143. ossl_crypto_mutex_free(&lock->alloc_lock);
  144. ossl_crypto_mutex_free(&lock->prior_lock);
  145. ossl_crypto_mutex_free(&lock->write_lock);
  146. OPENSSL_free(lock);
  147. }
  148. static inline struct rcu_qp *get_hold_current_qp(CRYPTO_RCU_LOCK *lock)
  149. {
  150. uint32_t qp_idx;
  151. /* get the current qp index */
  152. for (;;) {
  153. qp_idx = InterlockedOr(&lock->reader_idx, 0);
  154. InterlockedAdd64(&lock->qp_group[qp_idx].users, VAL_READER);
  155. if (qp_idx == InterlockedOr(&lock->reader_idx, 0))
  156. break;
  157. InterlockedAdd64(&lock->qp_group[qp_idx].users, -VAL_READER);
  158. }
  159. return &lock->qp_group[qp_idx];
  160. }
  161. static void ossl_rcu_free_local_data(void *arg)
  162. {
  163. OSSL_LIB_CTX *ctx = arg;
  164. CRYPTO_THREAD_LOCAL *lkey = ossl_lib_ctx_get_rcukey(ctx);
  165. struct rcu_thr_data *data = CRYPTO_THREAD_get_local(lkey);
  166. OPENSSL_free(data);
  167. }
  168. void ossl_rcu_read_lock(CRYPTO_RCU_LOCK *lock)
  169. {
  170. struct rcu_thr_data *data;
  171. int i;
  172. int available_qp = -1;
  173. CRYPTO_THREAD_LOCAL *lkey = ossl_lib_ctx_get_rcukey(lock->ctx);
  174. /*
  175. * we're going to access current_qp here so ask the
  176. * processor to fetch it
  177. */
  178. data = CRYPTO_THREAD_get_local(lkey);
  179. if (data == NULL) {
  180. data = OPENSSL_zalloc(sizeof(*data));
  181. OPENSSL_assert(data != NULL);
  182. CRYPTO_THREAD_set_local(lkey, data);
  183. ossl_init_thread_start(NULL, lock->ctx, ossl_rcu_free_local_data);
  184. }
  185. for (i = 0; i < MAX_QPS; i++) {
  186. if (data->thread_qps[i].qp == NULL && available_qp == -1)
  187. available_qp = i;
  188. /* If we have a hold on this lock already, we're good */
  189. if (data->thread_qps[i].lock == lock)
  190. return;
  191. }
  192. /*
  193. * if we get here, then we don't have a hold on this lock yet
  194. */
  195. assert(available_qp != -1);
  196. data->thread_qps[available_qp].qp = get_hold_current_qp(lock);
  197. data->thread_qps[available_qp].depth = 1;
  198. data->thread_qps[available_qp].lock = lock;
  199. }
  200. void ossl_rcu_write_lock(CRYPTO_RCU_LOCK *lock)
  201. {
  202. ossl_crypto_mutex_lock(lock->write_lock);
  203. }
  204. void ossl_rcu_write_unlock(CRYPTO_RCU_LOCK *lock)
  205. {
  206. ossl_crypto_mutex_unlock(lock->write_lock);
  207. }
  208. void ossl_rcu_read_unlock(CRYPTO_RCU_LOCK *lock)
  209. {
  210. CRYPTO_THREAD_LOCAL *lkey = ossl_lib_ctx_get_rcukey(lock->ctx);
  211. struct rcu_thr_data *data = CRYPTO_THREAD_get_local(lkey);
  212. int i;
  213. LONG64 ret;
  214. assert(data != NULL);
  215. for (i = 0; i < MAX_QPS; i++) {
  216. if (data->thread_qps[i].lock == lock) {
  217. data->thread_qps[i].depth--;
  218. if (data->thread_qps[i].depth == 0) {
  219. ret = InterlockedAdd64(&data->thread_qps[i].qp->users, -VAL_READER);
  220. OPENSSL_assert(ret >= 0);
  221. data->thread_qps[i].qp = NULL;
  222. data->thread_qps[i].lock = NULL;
  223. }
  224. return;
  225. }
  226. }
  227. }
  228. static struct rcu_qp *update_qp(CRYPTO_RCU_LOCK *lock)
  229. {
  230. uint64_t new_id;
  231. uint32_t current_idx;
  232. uint32_t tmp;
  233. ossl_crypto_mutex_lock(lock->alloc_lock);
  234. /*
  235. * we need at least one qp to be available with one
  236. * left over, so that readers can start working on
  237. * one that isn't yet being waited on
  238. */
  239. while (lock->group_count - lock->writers_alloced < 2)
  240. ossl_crypto_condvar_wait(lock->alloc_signal, lock->alloc_lock);
  241. current_idx = lock->current_alloc_idx;
  242. /* Allocate the qp */
  243. lock->writers_alloced++;
  244. /* increment the allocation index */
  245. lock->current_alloc_idx =
  246. (lock->current_alloc_idx + 1) % lock->group_count;
  247. /* get and insert a new id */
  248. new_id = lock->id_ctr;
  249. lock->id_ctr++;
  250. new_id = VAL_ID(new_id);
  251. InterlockedAnd64(&lock->qp_group[current_idx].users, ID_MASK);
  252. InterlockedAdd64(&lock->qp_group[current_idx].users, new_id);
  253. /* update the reader index to be the prior qp */
  254. tmp = lock->current_alloc_idx;
  255. InterlockedExchange(&lock->reader_idx, tmp);
  256. /* wake up any waiters */
  257. ossl_crypto_condvar_broadcast(lock->alloc_signal);
  258. ossl_crypto_mutex_unlock(lock->alloc_lock);
  259. return &lock->qp_group[current_idx];
  260. }
  261. static void retire_qp(CRYPTO_RCU_LOCK *lock,
  262. struct rcu_qp *qp)
  263. {
  264. ossl_crypto_mutex_lock(lock->alloc_lock);
  265. lock->writers_alloced--;
  266. ossl_crypto_condvar_broadcast(lock->alloc_signal);
  267. ossl_crypto_mutex_unlock(lock->alloc_lock);
  268. }
  269. void ossl_synchronize_rcu(CRYPTO_RCU_LOCK *lock)
  270. {
  271. struct rcu_qp *qp;
  272. uint64_t count;
  273. struct rcu_cb_item *cb_items, *tmpcb;
  274. /* before we do anything else, lets grab the cb list */
  275. cb_items = InterlockedExchangePointer((void * volatile *)&lock->cb_items, NULL);
  276. qp = update_qp(lock);
  277. /* wait for the reader count to reach zero */
  278. do {
  279. count = InterlockedOr64(&qp->users, 0);
  280. } while (READER_COUNT(count) != 0);
  281. /* retire in order */
  282. ossl_crypto_mutex_lock(lock->prior_lock);
  283. while (lock->next_to_retire != ID_VAL(count))
  284. ossl_crypto_condvar_wait(lock->prior_signal, lock->prior_lock);
  285. lock->next_to_retire++;
  286. ossl_crypto_condvar_broadcast(lock->prior_signal);
  287. ossl_crypto_mutex_unlock(lock->prior_lock);
  288. retire_qp(lock, qp);
  289. /* handle any callbacks that we have */
  290. while (cb_items != NULL) {
  291. tmpcb = cb_items;
  292. cb_items = cb_items->next;
  293. tmpcb->fn(tmpcb->data);
  294. OPENSSL_free(tmpcb);
  295. }
  296. /* and we're done */
  297. return;
  298. }
  299. int ossl_rcu_call(CRYPTO_RCU_LOCK *lock, rcu_cb_fn cb, void *data)
  300. {
  301. struct rcu_cb_item *new;
  302. struct rcu_cb_item *prev;
  303. new = OPENSSL_zalloc(sizeof(struct rcu_cb_item));
  304. if (new == NULL)
  305. return 0;
  306. prev = new;
  307. new->data = data;
  308. new->fn = cb;
  309. InterlockedExchangePointer((void * volatile *)&lock->cb_items, prev);
  310. new->next = prev;
  311. return 1;
  312. }
  313. void *ossl_rcu_uptr_deref(void **p)
  314. {
  315. return (void *)*p;
  316. }
  317. void ossl_rcu_assign_uptr(void **p, void **v)
  318. {
  319. InterlockedExchangePointer((void * volatile *)p, (void *)*v);
  320. }
  321. CRYPTO_RWLOCK *CRYPTO_THREAD_lock_new(void)
  322. {
  323. CRYPTO_RWLOCK *lock;
  324. # ifdef USE_RWLOCK
  325. CRYPTO_win_rwlock *rwlock;
  326. if ((lock = OPENSSL_zalloc(sizeof(CRYPTO_win_rwlock))) == NULL)
  327. /* Don't set error, to avoid recursion blowup. */
  328. return NULL;
  329. rwlock = lock;
  330. InitializeSRWLock(&rwlock->lock);
  331. # else
  332. if ((lock = OPENSSL_zalloc(sizeof(CRITICAL_SECTION))) == NULL)
  333. /* Don't set error, to avoid recursion blowup. */
  334. return NULL;
  335. # if !defined(_WIN32_WCE)
  336. /* 0x400 is the spin count value suggested in the documentation */
  337. if (!InitializeCriticalSectionAndSpinCount(lock, 0x400)) {
  338. OPENSSL_free(lock);
  339. return NULL;
  340. }
  341. # else
  342. InitializeCriticalSection(lock);
  343. # endif
  344. # endif
  345. return lock;
  346. }
  347. __owur int CRYPTO_THREAD_read_lock(CRYPTO_RWLOCK *lock)
  348. {
  349. # ifdef USE_RWLOCK
  350. CRYPTO_win_rwlock *rwlock = lock;
  351. AcquireSRWLockShared(&rwlock->lock);
  352. # else
  353. EnterCriticalSection(lock);
  354. # endif
  355. return 1;
  356. }
  357. __owur int CRYPTO_THREAD_write_lock(CRYPTO_RWLOCK *lock)
  358. {
  359. # ifdef USE_RWLOCK
  360. CRYPTO_win_rwlock *rwlock = lock;
  361. AcquireSRWLockExclusive(&rwlock->lock);
  362. rwlock->exclusive = 1;
  363. # else
  364. EnterCriticalSection(lock);
  365. # endif
  366. return 1;
  367. }
  368. int CRYPTO_THREAD_unlock(CRYPTO_RWLOCK *lock)
  369. {
  370. # ifdef USE_RWLOCK
  371. CRYPTO_win_rwlock *rwlock = lock;
  372. if (rwlock->exclusive) {
  373. rwlock->exclusive = 0;
  374. ReleaseSRWLockExclusive(&rwlock->lock);
  375. } else {
  376. ReleaseSRWLockShared(&rwlock->lock);
  377. }
  378. # else
  379. LeaveCriticalSection(lock);
  380. # endif
  381. return 1;
  382. }
  383. void CRYPTO_THREAD_lock_free(CRYPTO_RWLOCK *lock)
  384. {
  385. if (lock == NULL)
  386. return;
  387. # ifndef USE_RWLOCK
  388. DeleteCriticalSection(lock);
  389. # endif
  390. OPENSSL_free(lock);
  391. return;
  392. }
  393. # define ONCE_UNINITED 0
  394. # define ONCE_ININIT 1
  395. # define ONCE_DONE 2
  396. /*
  397. * We don't use InitOnceExecuteOnce because that isn't available in WinXP which
  398. * we still have to support.
  399. */
  400. int CRYPTO_THREAD_run_once(CRYPTO_ONCE *once, void (*init)(void))
  401. {
  402. LONG volatile *lock = (LONG *)once;
  403. LONG result;
  404. if (*lock == ONCE_DONE)
  405. return 1;
  406. do {
  407. result = InterlockedCompareExchange(lock, ONCE_ININIT, ONCE_UNINITED);
  408. if (result == ONCE_UNINITED) {
  409. init();
  410. *lock = ONCE_DONE;
  411. return 1;
  412. }
  413. } while (result == ONCE_ININIT);
  414. return (*lock == ONCE_DONE);
  415. }
  416. int CRYPTO_THREAD_init_local(CRYPTO_THREAD_LOCAL *key, void (*cleanup)(void *))
  417. {
  418. *key = TlsAlloc();
  419. if (*key == TLS_OUT_OF_INDEXES)
  420. return 0;
  421. return 1;
  422. }
  423. void *CRYPTO_THREAD_get_local(CRYPTO_THREAD_LOCAL *key)
  424. {
  425. DWORD last_error;
  426. void *ret;
  427. /*
  428. * TlsGetValue clears the last error even on success, so that callers may
  429. * distinguish it successfully returning NULL or failing. It is documented
  430. * to never fail if the argument is a valid index from TlsAlloc, so we do
  431. * not need to handle this.
  432. *
  433. * However, this error-mangling behavior interferes with the caller's use of
  434. * GetLastError. In particular SSL_get_error queries the error queue to
  435. * determine whether the caller should look at the OS's errors. To avoid
  436. * destroying state, save and restore the Windows error.
  437. *
  438. * https://msdn.microsoft.com/en-us/library/windows/desktop/ms686812(v=vs.85).aspx
  439. */
  440. last_error = GetLastError();
  441. ret = TlsGetValue(*key);
  442. SetLastError(last_error);
  443. return ret;
  444. }
  445. int CRYPTO_THREAD_set_local(CRYPTO_THREAD_LOCAL *key, void *val)
  446. {
  447. if (TlsSetValue(*key, val) == 0)
  448. return 0;
  449. return 1;
  450. }
  451. int CRYPTO_THREAD_cleanup_local(CRYPTO_THREAD_LOCAL *key)
  452. {
  453. if (TlsFree(*key) == 0)
  454. return 0;
  455. return 1;
  456. }
  457. CRYPTO_THREAD_ID CRYPTO_THREAD_get_current_id(void)
  458. {
  459. return GetCurrentThreadId();
  460. }
  461. int CRYPTO_THREAD_compare_id(CRYPTO_THREAD_ID a, CRYPTO_THREAD_ID b)
  462. {
  463. return (a == b);
  464. }
  465. int CRYPTO_atomic_add(int *val, int amount, int *ret, CRYPTO_RWLOCK *lock)
  466. {
  467. *ret = (int)InterlockedExchangeAdd((long volatile *)val, (long)amount) + amount;
  468. return 1;
  469. }
  470. int CRYPTO_atomic_or(uint64_t *val, uint64_t op, uint64_t *ret,
  471. CRYPTO_RWLOCK *lock)
  472. {
  473. #if (defined(NO_INTERLOCKEDOR64))
  474. if (lock == NULL || !CRYPTO_THREAD_write_lock(lock))
  475. return 0;
  476. *val |= op;
  477. *ret = *val;
  478. if (!CRYPTO_THREAD_unlock(lock))
  479. return 0;
  480. return 1;
  481. #else
  482. *ret = (uint64_t)InterlockedOr64((LONG64 volatile *)val, (LONG64)op) | op;
  483. return 1;
  484. #endif
  485. }
  486. int CRYPTO_atomic_load(uint64_t *val, uint64_t *ret, CRYPTO_RWLOCK *lock)
  487. {
  488. #if (defined(NO_INTERLOCKEDOR64))
  489. if (lock == NULL || !CRYPTO_THREAD_read_lock(lock))
  490. return 0;
  491. *ret = *val;
  492. if (!CRYPTO_THREAD_unlock(lock))
  493. return 0;
  494. return 1;
  495. #else
  496. *ret = (uint64_t)InterlockedOr64((LONG64 volatile *)val, 0);
  497. return 1;
  498. #endif
  499. }
  500. int CRYPTO_atomic_load_int(int *val, int *ret, CRYPTO_RWLOCK *lock)
  501. {
  502. #if (defined(NO_INTERLOCKEDOR64))
  503. if (lock == NULL || !CRYPTO_THREAD_read_lock(lock))
  504. return 0;
  505. *ret = *val;
  506. if (!CRYPTO_THREAD_unlock(lock))
  507. return 0;
  508. return 1;
  509. #else
  510. /* On Windows, LONG is always the same size as int. */
  511. *ret = (int)InterlockedOr((LONG volatile *)val, 0);
  512. return 1;
  513. #endif
  514. }
  515. int openssl_init_fork_handlers(void)
  516. {
  517. return 0;
  518. }
  519. int openssl_get_fork_id(void)
  520. {
  521. return 0;
  522. }
  523. #endif