1 // SPDX-License-Identifier: BSD-3-Clause OR GPL-2.0-only 2 /* 3 * Copyright (c) Meta Platforms, Inc. and affiliates. 4 * All rights reserved. 5 * 6 * This source code is licensed under both the BSD-style license (found in the 7 * LICENSE file in the root directory of this source tree) and the GPLv2 (found 8 * in the COPYING file in the root directory of this source tree). 9 * You may select, at your option, one of the above-listed licenses. 10 */ 11 12 13 /* ====== Dependencies ======= */ 14 #include "../common/allocations.h" /* ZSTD_customCalloc, ZSTD_customFree */ 15 #include "zstd_deps.h" /* size_t */ 16 #include "debug.h" /* assert */ 17 #include "pool.h" 18 19 /* ====== Compiler specifics ====== */ 20 #if defined(_MSC_VER) 21 # pragma warning(disable : 4204) /* disable: C4204: non-constant aggregate initializer */ 22 #endif 23 24 25 #ifdef ZSTD_MULTITHREAD 26 27 #include "threading.h" /* pthread adaptation */ 28 29 /* A job is a function and an opaque argument */ 30 typedef struct POOL_job_s { 31 POOL_function function; 32 void *opaque; 33 } POOL_job; 34 35 struct POOL_ctx_s { 36 ZSTD_customMem customMem; 37 /* Keep track of the threads */ 38 ZSTD_pthread_t* threads; 39 size_t threadCapacity; 40 size_t threadLimit; 41 42 /* The queue is a circular buffer */ 43 POOL_job *queue; 44 size_t queueHead; 45 size_t queueTail; 46 size_t queueSize; 47 48 /* The number of threads working on jobs */ 49 size_t numThreadsBusy; 50 /* Indicates if the queue is empty */ 51 int queueEmpty; 52 53 /* The mutex protects the queue */ 54 ZSTD_pthread_mutex_t queueMutex; 55 /* Condition variable for pushers to wait on when the queue is full */ 56 ZSTD_pthread_cond_t queuePushCond; 57 /* Condition variables for poppers to wait on when the queue is empty */ 58 ZSTD_pthread_cond_t queuePopCond; 59 /* Indicates if the queue is shutting down */ 60 int shutdown; 61 }; 62 63 /* POOL_thread() : 64 * Work thread for the thread pool. 65 * Waits for jobs and executes them. 66 * @returns : NULL on failure else non-null. 67 */ 68 static void* POOL_thread(void* opaque) { 69 POOL_ctx* const ctx = (POOL_ctx*)opaque; 70 if (!ctx) { return NULL; } 71 for (;;) { 72 /* Lock the mutex and wait for a non-empty queue or until shutdown */ 73 ZSTD_pthread_mutex_lock(&ctx->queueMutex); 74 75 while ( ctx->queueEmpty 76 || (ctx->numThreadsBusy >= ctx->threadLimit) ) { 77 if (ctx->shutdown) { 78 /* even if !queueEmpty, (possible if numThreadsBusy >= threadLimit), 79 * a few threads will be shutdown while !queueEmpty, 80 * but enough threads will remain active to finish the queue */ 81 ZSTD_pthread_mutex_unlock(&ctx->queueMutex); 82 return opaque; 83 } 84 ZSTD_pthread_cond_wait(&ctx->queuePopCond, &ctx->queueMutex); 85 } 86 /* Pop a job off the queue */ 87 { POOL_job const job = ctx->queue[ctx->queueHead]; 88 ctx->queueHead = (ctx->queueHead + 1) % ctx->queueSize; 89 ctx->numThreadsBusy++; 90 ctx->queueEmpty = (ctx->queueHead == ctx->queueTail); 91 /* Unlock the mutex, signal a pusher, and run the job */ 92 ZSTD_pthread_cond_signal(&ctx->queuePushCond); 93 ZSTD_pthread_mutex_unlock(&ctx->queueMutex); 94 95 job.function(job.opaque); 96 97 /* If the intended queue size was 0, signal after finishing job */ 98 ZSTD_pthread_mutex_lock(&ctx->queueMutex); 99 ctx->numThreadsBusy--; 100 ZSTD_pthread_cond_signal(&ctx->queuePushCond); 101 ZSTD_pthread_mutex_unlock(&ctx->queueMutex); 102 } 103 } /* for (;;) */ 104 assert(0); /* Unreachable */ 105 } 106 107 /* ZSTD_createThreadPool() : public access point */ 108 POOL_ctx* ZSTD_createThreadPool(size_t numThreads) { 109 return POOL_create (numThreads, 0); 110 } 111 112 POOL_ctx* POOL_create(size_t numThreads, size_t queueSize) { 113 return POOL_create_advanced(numThreads, queueSize, ZSTD_defaultCMem); 114 } 115 116 POOL_ctx* POOL_create_advanced(size_t numThreads, size_t queueSize, 117 ZSTD_customMem customMem) 118 { 119 POOL_ctx* ctx; 120 /* Check parameters */ 121 if (!numThreads) { return NULL; } 122 /* Allocate the context and zero initialize */ 123 ctx = (POOL_ctx*)ZSTD_customCalloc(sizeof(POOL_ctx), customMem); 124 if (!ctx) { return NULL; } 125 /* Initialize the job queue. 126 * It needs one extra space since one space is wasted to differentiate 127 * empty and full queues. 128 */ 129 ctx->queueSize = queueSize + 1; 130 ctx->queue = (POOL_job*)ZSTD_customCalloc(ctx->queueSize * sizeof(POOL_job), customMem); 131 ctx->queueHead = 0; 132 ctx->queueTail = 0; 133 ctx->numThreadsBusy = 0; 134 ctx->queueEmpty = 1; 135 { 136 int error = 0; 137 error |= ZSTD_pthread_mutex_init(&ctx->queueMutex, NULL); 138 error |= ZSTD_pthread_cond_init(&ctx->queuePushCond, NULL); 139 error |= ZSTD_pthread_cond_init(&ctx->queuePopCond, NULL); 140 if (error) { POOL_free(ctx); return NULL; } 141 } 142 ctx->shutdown = 0; 143 /* Allocate space for the thread handles */ 144 ctx->threads = (ZSTD_pthread_t*)ZSTD_customCalloc(numThreads * sizeof(ZSTD_pthread_t), customMem); 145 ctx->threadCapacity = 0; 146 ctx->customMem = customMem; 147 /* Check for errors */ 148 if (!ctx->threads || !ctx->queue) { POOL_free(ctx); return NULL; } 149 /* Initialize the threads */ 150 { size_t i; 151 for (i = 0; i < numThreads; ++i) { 152 if (ZSTD_pthread_create(&ctx->threads[i], NULL, &POOL_thread, ctx)) { 153 ctx->threadCapacity = i; 154 POOL_free(ctx); 155 return NULL; 156 } } 157 ctx->threadCapacity = numThreads; 158 ctx->threadLimit = numThreads; 159 } 160 return ctx; 161 } 162 163 /*! POOL_join() : 164 Shutdown the queue, wake any sleeping threads, and join all of the threads. 165 */ 166 static void POOL_join(POOL_ctx* ctx) { 167 /* Shut down the queue */ 168 ZSTD_pthread_mutex_lock(&ctx->queueMutex); 169 ctx->shutdown = 1; 170 ZSTD_pthread_mutex_unlock(&ctx->queueMutex); 171 /* Wake up sleeping threads */ 172 ZSTD_pthread_cond_broadcast(&ctx->queuePushCond); 173 ZSTD_pthread_cond_broadcast(&ctx->queuePopCond); 174 /* Join all of the threads */ 175 { size_t i; 176 for (i = 0; i < ctx->threadCapacity; ++i) { 177 ZSTD_pthread_join(ctx->threads[i]); /* note : could fail */ 178 } } 179 } 180 181 void POOL_free(POOL_ctx *ctx) { 182 if (!ctx) { return; } 183 POOL_join(ctx); 184 ZSTD_pthread_mutex_destroy(&ctx->queueMutex); 185 ZSTD_pthread_cond_destroy(&ctx->queuePushCond); 186 ZSTD_pthread_cond_destroy(&ctx->queuePopCond); 187 ZSTD_customFree(ctx->queue, ctx->customMem); 188 ZSTD_customFree(ctx->threads, ctx->customMem); 189 ZSTD_customFree(ctx, ctx->customMem); 190 } 191 192 /*! POOL_joinJobs() : 193 * Waits for all queued jobs to finish executing. 194 */ 195 void POOL_joinJobs(POOL_ctx* ctx) { 196 ZSTD_pthread_mutex_lock(&ctx->queueMutex); 197 while(!ctx->queueEmpty || ctx->numThreadsBusy > 0) { 198 ZSTD_pthread_cond_wait(&ctx->queuePushCond, &ctx->queueMutex); 199 } 200 ZSTD_pthread_mutex_unlock(&ctx->queueMutex); 201 } 202 203 void ZSTD_freeThreadPool (ZSTD_threadPool* pool) { 204 POOL_free (pool); 205 } 206 207 size_t POOL_sizeof(const POOL_ctx* ctx) { 208 if (ctx==NULL) return 0; /* supports sizeof NULL */ 209 return sizeof(*ctx) 210 + ctx->queueSize * sizeof(POOL_job) 211 + ctx->threadCapacity * sizeof(ZSTD_pthread_t); 212 } 213 214 215 /* @return : 0 on success, 1 on error */ 216 static int POOL_resize_internal(POOL_ctx* ctx, size_t numThreads) 217 { 218 if (numThreads <= ctx->threadCapacity) { 219 if (!numThreads) return 1; 220 ctx->threadLimit = numThreads; 221 return 0; 222 } 223 /* numThreads > threadCapacity */ 224 { ZSTD_pthread_t* const threadPool = (ZSTD_pthread_t*)ZSTD_customCalloc(numThreads * sizeof(ZSTD_pthread_t), ctx->customMem); 225 if (!threadPool) return 1; 226 /* replace existing thread pool */ 227 ZSTD_memcpy(threadPool, ctx->threads, ctx->threadCapacity * sizeof(ZSTD_pthread_t)); 228 ZSTD_customFree(ctx->threads, ctx->customMem); 229 ctx->threads = threadPool; 230 /* Initialize additional threads */ 231 { size_t threadId; 232 for (threadId = ctx->threadCapacity; threadId < numThreads; ++threadId) { 233 if (ZSTD_pthread_create(&threadPool[threadId], NULL, &POOL_thread, ctx)) { 234 ctx->threadCapacity = threadId; 235 return 1; 236 } } 237 } } 238 /* successfully expanded */ 239 ctx->threadCapacity = numThreads; 240 ctx->threadLimit = numThreads; 241 return 0; 242 } 243 244 /* @return : 0 on success, 1 on error */ 245 int POOL_resize(POOL_ctx* ctx, size_t numThreads) 246 { 247 int result; 248 if (ctx==NULL) return 1; 249 ZSTD_pthread_mutex_lock(&ctx->queueMutex); 250 result = POOL_resize_internal(ctx, numThreads); 251 ZSTD_pthread_cond_broadcast(&ctx->queuePopCond); 252 ZSTD_pthread_mutex_unlock(&ctx->queueMutex); 253 return result; 254 } 255 256 /** 257 * Returns 1 if the queue is full and 0 otherwise. 258 * 259 * When queueSize is 1 (pool was created with an intended queueSize of 0), 260 * then a queue is empty if there is a thread free _and_ no job is waiting. 261 */ 262 static int isQueueFull(POOL_ctx const* ctx) { 263 if (ctx->queueSize > 1) { 264 return ctx->queueHead == ((ctx->queueTail + 1) % ctx->queueSize); 265 } else { 266 return (ctx->numThreadsBusy == ctx->threadLimit) || 267 !ctx->queueEmpty; 268 } 269 } 270 271 272 static void 273 POOL_add_internal(POOL_ctx* ctx, POOL_function function, void *opaque) 274 { 275 POOL_job job; 276 job.function = function; 277 job.opaque = opaque; 278 assert(ctx != NULL); 279 if (ctx->shutdown) return; 280 281 ctx->queueEmpty = 0; 282 ctx->queue[ctx->queueTail] = job; 283 ctx->queueTail = (ctx->queueTail + 1) % ctx->queueSize; 284 ZSTD_pthread_cond_signal(&ctx->queuePopCond); 285 } 286 287 void POOL_add(POOL_ctx* ctx, POOL_function function, void* opaque) 288 { 289 assert(ctx != NULL); 290 ZSTD_pthread_mutex_lock(&ctx->queueMutex); 291 /* Wait until there is space in the queue for the new job */ 292 while (isQueueFull(ctx) && (!ctx->shutdown)) { 293 ZSTD_pthread_cond_wait(&ctx->queuePushCond, &ctx->queueMutex); 294 } 295 POOL_add_internal(ctx, function, opaque); 296 ZSTD_pthread_mutex_unlock(&ctx->queueMutex); 297 } 298 299 300 int POOL_tryAdd(POOL_ctx* ctx, POOL_function function, void* opaque) 301 { 302 assert(ctx != NULL); 303 ZSTD_pthread_mutex_lock(&ctx->queueMutex); 304 if (isQueueFull(ctx)) { 305 ZSTD_pthread_mutex_unlock(&ctx->queueMutex); 306 return 0; 307 } 308 POOL_add_internal(ctx, function, opaque); 309 ZSTD_pthread_mutex_unlock(&ctx->queueMutex); 310 return 1; 311 } 312 313 314 #else /* ZSTD_MULTITHREAD not defined */ 315 316 /* ========================== */ 317 /* No multi-threading support */ 318 /* ========================== */ 319 320 321 /* We don't need any data, but if it is empty, malloc() might return NULL. */ 322 struct POOL_ctx_s { 323 int dummy; 324 }; 325 static POOL_ctx g_poolCtx; 326 327 POOL_ctx* POOL_create(size_t numThreads, size_t queueSize) { 328 return POOL_create_advanced(numThreads, queueSize, ZSTD_defaultCMem); 329 } 330 331 POOL_ctx* 332 POOL_create_advanced(size_t numThreads, size_t queueSize, ZSTD_customMem customMem) 333 { 334 (void)numThreads; 335 (void)queueSize; 336 (void)customMem; 337 return &g_poolCtx; 338 } 339 340 void POOL_free(POOL_ctx* ctx) { 341 assert(!ctx || ctx == &g_poolCtx); 342 (void)ctx; 343 } 344 345 void POOL_joinJobs(POOL_ctx* ctx){ 346 assert(!ctx || ctx == &g_poolCtx); 347 (void)ctx; 348 } 349 350 int POOL_resize(POOL_ctx* ctx, size_t numThreads) { 351 (void)ctx; (void)numThreads; 352 return 0; 353 } 354 355 void POOL_add(POOL_ctx* ctx, POOL_function function, void* opaque) { 356 (void)ctx; 357 function(opaque); 358 } 359 360 int POOL_tryAdd(POOL_ctx* ctx, POOL_function function, void* opaque) { 361 (void)ctx; 362 function(opaque); 363 return 1; 364 } 365 366 size_t POOL_sizeof(const POOL_ctx* ctx) { 367 if (ctx==NULL) return 0; /* supports sizeof NULL */ 368 assert(ctx == &g_poolCtx); 369 return sizeof(*ctx); 370 } 371 372 #endif /* ZSTD_MULTITHREAD */ 373