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      1 /*
      2  * Copyright (c) Meta Platforms, Inc. and affiliates.
      3  * All rights reserved.
      4  *
      5  * This source code is licensed under both the BSD-style license (found in the
      6  * LICENSE file in the root directory of this source tree) and the GPLv2 (found
      7  * in the COPYING file in the root directory of this source tree).
      8  * You may select, at your option, one of the above-listed licenses.
      9  */
     10 
     11 
     12 /* ======   Compiler specifics   ====== */
     13 #if defined(_MSC_VER)
     14 #  pragma warning(disable : 4204)   /* disable: C4204: non-constant aggregate initializer */
     15 #endif
     16 
     17 
     18 /* ======   Dependencies   ====== */
     19 #include "../common/allocations.h" /* ZSTD_customMalloc, ZSTD_customCalloc, ZSTD_customFree */
     20 #include "../common/zstd_deps.h"   /* ZSTD_memcpy, ZSTD_memset, INT_MAX, UINT_MAX */
     21 #include "../common/mem.h"         /* MEM_STATIC */
     22 #include "../common/pool.h"        /* threadpool */
     23 #include "../common/threading.h"   /* mutex */
     24 #include "zstd_compress_internal.h" /* MIN, ERROR, ZSTD_*, ZSTD_highbit32 */
     25 #include "zstd_ldm.h"
     26 #include "zstdmt_compress.h"
     27 
     28 /* Guards code to support resizing the SeqPool.
     29  * We will want to resize the SeqPool to save memory in the future.
     30  * Until then, comment the code out since it is unused.
     31  */
     32 #define ZSTD_RESIZE_SEQPOOL 0
     33 
     34 /* ======   Debug   ====== */
     35 #if defined(DEBUGLEVEL) && (DEBUGLEVEL>=2) \
     36     && !defined(_MSC_VER) \
     37     && !defined(__MINGW32__)
     38 
     39 #  include <stdio.h>
     40 #  include <unistd.h>
     41 #  include <sys/times.h>
     42 
     43 #  define DEBUG_PRINTHEX(l,p,n)                                       \
     44     do {                                                              \
     45         unsigned debug_u;                                             \
     46         for (debug_u=0; debug_u<(n); debug_u++)                       \
     47             RAWLOG(l, "%02X ", ((const unsigned char*)(p))[debug_u]); \
     48         RAWLOG(l, " \n");                                             \
     49     } while (0)
     50 
     51 static unsigned long long GetCurrentClockTimeMicroseconds(void)
     52 {
     53    static clock_t _ticksPerSecond = 0;
     54    if (_ticksPerSecond <= 0) _ticksPerSecond = sysconf(_SC_CLK_TCK);
     55 
     56    {   struct tms junk; clock_t newTicks = (clock_t) times(&junk);
     57        return ((((unsigned long long)newTicks)*(1000000))/_ticksPerSecond);
     58 }  }
     59 
     60 #define MUTEX_WAIT_TIME_DLEVEL 6
     61 #define ZSTD_PTHREAD_MUTEX_LOCK(mutex)                                                  \
     62     do {                                                                                \
     63         if (DEBUGLEVEL >= MUTEX_WAIT_TIME_DLEVEL) {                                     \
     64             unsigned long long const beforeTime = GetCurrentClockTimeMicroseconds();    \
     65             ZSTD_pthread_mutex_lock(mutex);                                             \
     66             {   unsigned long long const afterTime = GetCurrentClockTimeMicroseconds(); \
     67                 unsigned long long const elapsedTime = (afterTime-beforeTime);          \
     68                 if (elapsedTime > 1000) {                                               \
     69                     /* or whatever threshold you like; I'm using 1 millisecond here */  \
     70                     DEBUGLOG(MUTEX_WAIT_TIME_DLEVEL,                                    \
     71                         "Thread took %llu microseconds to acquire mutex %s \n",         \
     72                         elapsedTime, #mutex);                                           \
     73             }   }                                                                       \
     74         } else {                                                                        \
     75             ZSTD_pthread_mutex_lock(mutex);                                             \
     76         }                                                                               \
     77     } while (0)
     78 
     79 #else
     80 
     81 #  define ZSTD_PTHREAD_MUTEX_LOCK(m) ZSTD_pthread_mutex_lock(m)
     82 #  define DEBUG_PRINTHEX(l,p,n) do { } while (0)
     83 
     84 #endif
     85 
     86 
     87 /* =====   Buffer Pool   ===== */
     88 /* a single Buffer Pool can be invoked from multiple threads in parallel */
     89 
     90 typedef struct buffer_s {
     91     void* start;
     92     size_t capacity;
     93 } Buffer;
     94 
     95 static const Buffer g_nullBuffer = { NULL, 0 };
     96 
     97 typedef struct ZSTDMT_bufferPool_s {
     98     ZSTD_pthread_mutex_t poolMutex;
     99     size_t bufferSize;
    100     unsigned totalBuffers;
    101     unsigned nbBuffers;
    102     ZSTD_customMem cMem;
    103     Buffer* buffers;
    104 } ZSTDMT_bufferPool;
    105 
    106 static void ZSTDMT_freeBufferPool(ZSTDMT_bufferPool* bufPool)
    107 {
    108     DEBUGLOG(3, "ZSTDMT_freeBufferPool (address:%08X)", (U32)(size_t)bufPool);
    109     if (!bufPool) return;   /* compatibility with free on NULL */
    110     if (bufPool->buffers) {
    111         unsigned u;
    112         for (u=0; u<bufPool->totalBuffers; u++) {
    113             DEBUGLOG(4, "free buffer %2u (address:%08X)", u, (U32)(size_t)bufPool->buffers[u].start);
    114             ZSTD_customFree(bufPool->buffers[u].start, bufPool->cMem);
    115         }
    116         ZSTD_customFree(bufPool->buffers, bufPool->cMem);
    117     }
    118     ZSTD_pthread_mutex_destroy(&bufPool->poolMutex);
    119     ZSTD_customFree(bufPool, bufPool->cMem);
    120 }
    121 
    122 static ZSTDMT_bufferPool* ZSTDMT_createBufferPool(unsigned maxNbBuffers, ZSTD_customMem cMem)
    123 {
    124     ZSTDMT_bufferPool* const bufPool =
    125         (ZSTDMT_bufferPool*)ZSTD_customCalloc(sizeof(ZSTDMT_bufferPool), cMem);
    126     if (bufPool==NULL) return NULL;
    127     if (ZSTD_pthread_mutex_init(&bufPool->poolMutex, NULL)) {
    128         ZSTD_customFree(bufPool, cMem);
    129         return NULL;
    130     }
    131     bufPool->buffers = (Buffer*)ZSTD_customCalloc(maxNbBuffers * sizeof(Buffer), cMem);
    132     if (bufPool->buffers==NULL) {
    133         ZSTDMT_freeBufferPool(bufPool);
    134         return NULL;
    135     }
    136     bufPool->bufferSize = 64 KB;
    137     bufPool->totalBuffers = maxNbBuffers;
    138     bufPool->nbBuffers = 0;
    139     bufPool->cMem = cMem;
    140     return bufPool;
    141 }
    142 
    143 /* only works at initialization, not during compression */
    144 static size_t ZSTDMT_sizeof_bufferPool(ZSTDMT_bufferPool* bufPool)
    145 {
    146     size_t const poolSize = sizeof(*bufPool);
    147     size_t const arraySize = bufPool->totalBuffers * sizeof(Buffer);
    148     unsigned u;
    149     size_t totalBufferSize = 0;
    150     ZSTD_pthread_mutex_lock(&bufPool->poolMutex);
    151     for (u=0; u<bufPool->totalBuffers; u++)
    152         totalBufferSize += bufPool->buffers[u].capacity;
    153     ZSTD_pthread_mutex_unlock(&bufPool->poolMutex);
    154 
    155     return poolSize + arraySize + totalBufferSize;
    156 }
    157 
    158 /* ZSTDMT_setBufferSize() :
    159  * all future buffers provided by this buffer pool will have _at least_ this size
    160  * note : it's better for all buffers to have same size,
    161  * as they become freely interchangeable, reducing malloc/free usages and memory fragmentation */
    162 static void ZSTDMT_setBufferSize(ZSTDMT_bufferPool* const bufPool, size_t const bSize)
    163 {
    164     ZSTD_pthread_mutex_lock(&bufPool->poolMutex);
    165     DEBUGLOG(4, "ZSTDMT_setBufferSize: bSize = %u", (U32)bSize);
    166     bufPool->bufferSize = bSize;
    167     ZSTD_pthread_mutex_unlock(&bufPool->poolMutex);
    168 }
    169 
    170 
    171 static ZSTDMT_bufferPool* ZSTDMT_expandBufferPool(ZSTDMT_bufferPool* srcBufPool, unsigned maxNbBuffers)
    172 {
    173     if (srcBufPool==NULL) return NULL;
    174     if (srcBufPool->totalBuffers >= maxNbBuffers) /* good enough */
    175         return srcBufPool;
    176     /* need a larger buffer pool */
    177     {   ZSTD_customMem const cMem = srcBufPool->cMem;
    178         size_t const bSize = srcBufPool->bufferSize;   /* forward parameters */
    179         ZSTDMT_bufferPool* newBufPool;
    180         ZSTDMT_freeBufferPool(srcBufPool);
    181         newBufPool = ZSTDMT_createBufferPool(maxNbBuffers, cMem);
    182         if (newBufPool==NULL) return newBufPool;
    183         ZSTDMT_setBufferSize(newBufPool, bSize);
    184         return newBufPool;
    185     }
    186 }
    187 
    188 /** ZSTDMT_getBuffer() :
    189  *  assumption : bufPool must be valid
    190  * @return : a buffer, with start pointer and size
    191  *  note: allocation may fail, in this case, start==NULL and size==0 */
    192 static Buffer ZSTDMT_getBuffer(ZSTDMT_bufferPool* bufPool)
    193 {
    194     size_t const bSize = bufPool->bufferSize;
    195     DEBUGLOG(5, "ZSTDMT_getBuffer: bSize = %u", (U32)bufPool->bufferSize);
    196     ZSTD_pthread_mutex_lock(&bufPool->poolMutex);
    197     if (bufPool->nbBuffers) {   /* try to use an existing buffer */
    198         Buffer const buf = bufPool->buffers[--(bufPool->nbBuffers)];
    199         size_t const availBufferSize = buf.capacity;
    200         bufPool->buffers[bufPool->nbBuffers] = g_nullBuffer;
    201         if ((availBufferSize >= bSize) & ((availBufferSize>>3) <= bSize)) {
    202             /* large enough, but not too much */
    203             DEBUGLOG(5, "ZSTDMT_getBuffer: provide buffer %u of size %u",
    204                         bufPool->nbBuffers, (U32)buf.capacity);
    205             ZSTD_pthread_mutex_unlock(&bufPool->poolMutex);
    206             return buf;
    207         }
    208         /* size conditions not respected : scratch this buffer, create new one */
    209         DEBUGLOG(5, "ZSTDMT_getBuffer: existing buffer does not meet size conditions => freeing");
    210         ZSTD_customFree(buf.start, bufPool->cMem);
    211     }
    212     ZSTD_pthread_mutex_unlock(&bufPool->poolMutex);
    213     /* create new buffer */
    214     DEBUGLOG(5, "ZSTDMT_getBuffer: create a new buffer");
    215     {   Buffer buffer;
    216         void* const start = ZSTD_customMalloc(bSize, bufPool->cMem);
    217         buffer.start = start;   /* note : start can be NULL if malloc fails ! */
    218         buffer.capacity = (start==NULL) ? 0 : bSize;
    219         if (start==NULL) {
    220             DEBUGLOG(5, "ZSTDMT_getBuffer: buffer allocation failure !!");
    221         } else {
    222             DEBUGLOG(5, "ZSTDMT_getBuffer: created buffer of size %u", (U32)bSize);
    223         }
    224         return buffer;
    225     }
    226 }
    227 
    228 #if ZSTD_RESIZE_SEQPOOL
    229 /** ZSTDMT_resizeBuffer() :
    230  * assumption : bufPool must be valid
    231  * @return : a buffer that is at least the buffer pool buffer size.
    232  *           If a reallocation happens, the data in the input buffer is copied.
    233  */
    234 static Buffer ZSTDMT_resizeBuffer(ZSTDMT_bufferPool* bufPool, Buffer buffer)
    235 {
    236     size_t const bSize = bufPool->bufferSize;
    237     if (buffer.capacity < bSize) {
    238         void* const start = ZSTD_customMalloc(bSize, bufPool->cMem);
    239         Buffer newBuffer;
    240         newBuffer.start = start;
    241         newBuffer.capacity = start == NULL ? 0 : bSize;
    242         if (start != NULL) {
    243             assert(newBuffer.capacity >= buffer.capacity);
    244             ZSTD_memcpy(newBuffer.start, buffer.start, buffer.capacity);
    245             DEBUGLOG(5, "ZSTDMT_resizeBuffer: created buffer of size %u", (U32)bSize);
    246             return newBuffer;
    247         }
    248         DEBUGLOG(5, "ZSTDMT_resizeBuffer: buffer allocation failure !!");
    249     }
    250     return buffer;
    251 }
    252 #endif
    253 
    254 /* store buffer for later re-use, up to pool capacity */
    255 static void ZSTDMT_releaseBuffer(ZSTDMT_bufferPool* bufPool, Buffer buf)
    256 {
    257     DEBUGLOG(5, "ZSTDMT_releaseBuffer");
    258     if (buf.start == NULL) return;   /* compatible with release on NULL */
    259     ZSTD_pthread_mutex_lock(&bufPool->poolMutex);
    260     if (bufPool->nbBuffers < bufPool->totalBuffers) {
    261         bufPool->buffers[bufPool->nbBuffers++] = buf;  /* stored for later use */
    262         DEBUGLOG(5, "ZSTDMT_releaseBuffer: stored buffer of size %u in slot %u",
    263                     (U32)buf.capacity, (U32)(bufPool->nbBuffers-1));
    264         ZSTD_pthread_mutex_unlock(&bufPool->poolMutex);
    265         return;
    266     }
    267     ZSTD_pthread_mutex_unlock(&bufPool->poolMutex);
    268     /* Reached bufferPool capacity (note: should not happen) */
    269     DEBUGLOG(5, "ZSTDMT_releaseBuffer: pool capacity reached => freeing ");
    270     ZSTD_customFree(buf.start, bufPool->cMem);
    271 }
    272 
    273 /* We need 2 output buffers per worker since each dstBuff must be flushed after it is released.
    274  * The 3 additional buffers are as follows:
    275  *   1 buffer for input loading
    276  *   1 buffer for "next input" when submitting current one
    277  *   1 buffer stuck in queue */
    278 #define BUF_POOL_MAX_NB_BUFFERS(nbWorkers) (2*(nbWorkers) + 3)
    279 
    280 /* After a worker releases its rawSeqStore, it is immediately ready for reuse.
    281  * So we only need one seq buffer per worker. */
    282 #define SEQ_POOL_MAX_NB_BUFFERS(nbWorkers) (nbWorkers)
    283 
    284 /* =====   Seq Pool Wrapper   ====== */
    285 
    286 typedef ZSTDMT_bufferPool ZSTDMT_seqPool;
    287 
    288 static size_t ZSTDMT_sizeof_seqPool(ZSTDMT_seqPool* seqPool)
    289 {
    290     return ZSTDMT_sizeof_bufferPool(seqPool);
    291 }
    292 
    293 static RawSeqStore_t bufferToSeq(Buffer buffer)
    294 {
    295     RawSeqStore_t seq = kNullRawSeqStore;
    296     seq.seq = (rawSeq*)buffer.start;
    297     seq.capacity = buffer.capacity / sizeof(rawSeq);
    298     return seq;
    299 }
    300 
    301 static Buffer seqToBuffer(RawSeqStore_t seq)
    302 {
    303     Buffer buffer;
    304     buffer.start = seq.seq;
    305     buffer.capacity = seq.capacity * sizeof(rawSeq);
    306     return buffer;
    307 }
    308 
    309 static RawSeqStore_t ZSTDMT_getSeq(ZSTDMT_seqPool* seqPool)
    310 {
    311     if (seqPool->bufferSize == 0) {
    312         return kNullRawSeqStore;
    313     }
    314     return bufferToSeq(ZSTDMT_getBuffer(seqPool));
    315 }
    316 
    317 #if ZSTD_RESIZE_SEQPOOL
    318 static RawSeqStore_t ZSTDMT_resizeSeq(ZSTDMT_seqPool* seqPool, RawSeqStore_t seq)
    319 {
    320   return bufferToSeq(ZSTDMT_resizeBuffer(seqPool, seqToBuffer(seq)));
    321 }
    322 #endif
    323 
    324 static void ZSTDMT_releaseSeq(ZSTDMT_seqPool* seqPool, RawSeqStore_t seq)
    325 {
    326   ZSTDMT_releaseBuffer(seqPool, seqToBuffer(seq));
    327 }
    328 
    329 static void ZSTDMT_setNbSeq(ZSTDMT_seqPool* const seqPool, size_t const nbSeq)
    330 {
    331   ZSTDMT_setBufferSize(seqPool, nbSeq * sizeof(rawSeq));
    332 }
    333 
    334 static ZSTDMT_seqPool* ZSTDMT_createSeqPool(unsigned nbWorkers, ZSTD_customMem cMem)
    335 {
    336     ZSTDMT_seqPool* const seqPool = ZSTDMT_createBufferPool(SEQ_POOL_MAX_NB_BUFFERS(nbWorkers), cMem);
    337     if (seqPool == NULL) return NULL;
    338     ZSTDMT_setNbSeq(seqPool, 0);
    339     return seqPool;
    340 }
    341 
    342 static void ZSTDMT_freeSeqPool(ZSTDMT_seqPool* seqPool)
    343 {
    344     ZSTDMT_freeBufferPool(seqPool);
    345 }
    346 
    347 static ZSTDMT_seqPool* ZSTDMT_expandSeqPool(ZSTDMT_seqPool* pool, U32 nbWorkers)
    348 {
    349     return ZSTDMT_expandBufferPool(pool, SEQ_POOL_MAX_NB_BUFFERS(nbWorkers));
    350 }
    351 
    352 
    353 /* =====   CCtx Pool   ===== */
    354 /* a single CCtx Pool can be invoked from multiple threads in parallel */
    355 
    356 typedef struct {
    357     ZSTD_pthread_mutex_t poolMutex;
    358     int totalCCtx;
    359     int availCCtx;
    360     ZSTD_customMem cMem;
    361     ZSTD_CCtx** cctxs;
    362 } ZSTDMT_CCtxPool;
    363 
    364 /* note : all CCtx borrowed from the pool must be reverted back to the pool _before_ freeing the pool */
    365 static void ZSTDMT_freeCCtxPool(ZSTDMT_CCtxPool* pool)
    366 {
    367     if (!pool) return;
    368     ZSTD_pthread_mutex_destroy(&pool->poolMutex);
    369     if (pool->cctxs) {
    370         int cid;
    371         for (cid=0; cid<pool->totalCCtx; cid++)
    372             ZSTD_freeCCtx(pool->cctxs[cid]);  /* free compatible with NULL */
    373         ZSTD_customFree(pool->cctxs, pool->cMem);
    374     }
    375     ZSTD_customFree(pool, pool->cMem);
    376 }
    377 
    378 /* ZSTDMT_createCCtxPool() :
    379  * implies nbWorkers >= 1 , checked by caller ZSTDMT_createCCtx() */
    380 static ZSTDMT_CCtxPool* ZSTDMT_createCCtxPool(int nbWorkers,
    381                                               ZSTD_customMem cMem)
    382 {
    383     ZSTDMT_CCtxPool* const cctxPool =
    384         (ZSTDMT_CCtxPool*) ZSTD_customCalloc(sizeof(ZSTDMT_CCtxPool), cMem);
    385     assert(nbWorkers > 0);
    386     if (!cctxPool) return NULL;
    387     if (ZSTD_pthread_mutex_init(&cctxPool->poolMutex, NULL)) {
    388         ZSTD_customFree(cctxPool, cMem);
    389         return NULL;
    390     }
    391     cctxPool->totalCCtx = nbWorkers;
    392     cctxPool->cctxs = (ZSTD_CCtx**)ZSTD_customCalloc(nbWorkers * sizeof(ZSTD_CCtx*), cMem);
    393     if (!cctxPool->cctxs) {
    394         ZSTDMT_freeCCtxPool(cctxPool);
    395         return NULL;
    396     }
    397     cctxPool->cMem = cMem;
    398     cctxPool->cctxs[0] = ZSTD_createCCtx_advanced(cMem);
    399     if (!cctxPool->cctxs[0]) { ZSTDMT_freeCCtxPool(cctxPool); return NULL; }
    400     cctxPool->availCCtx = 1;   /* at least one cctx for single-thread mode */
    401     DEBUGLOG(3, "cctxPool created, with %u workers", nbWorkers);
    402     return cctxPool;
    403 }
    404 
    405 static ZSTDMT_CCtxPool* ZSTDMT_expandCCtxPool(ZSTDMT_CCtxPool* srcPool,
    406                                               int nbWorkers)
    407 {
    408     if (srcPool==NULL) return NULL;
    409     if (nbWorkers <= srcPool->totalCCtx) return srcPool;   /* good enough */
    410     /* need a larger cctx pool */
    411     {   ZSTD_customMem const cMem = srcPool->cMem;
    412         ZSTDMT_freeCCtxPool(srcPool);
    413         return ZSTDMT_createCCtxPool(nbWorkers, cMem);
    414     }
    415 }
    416 
    417 /* only works during initialization phase, not during compression */
    418 static size_t ZSTDMT_sizeof_CCtxPool(ZSTDMT_CCtxPool* cctxPool)
    419 {
    420     ZSTD_pthread_mutex_lock(&cctxPool->poolMutex);
    421     {   unsigned const nbWorkers = cctxPool->totalCCtx;
    422         size_t const poolSize = sizeof(*cctxPool);
    423         size_t const arraySize = cctxPool->totalCCtx * sizeof(ZSTD_CCtx*);
    424         size_t totalCCtxSize = 0;
    425         unsigned u;
    426         for (u=0; u<nbWorkers; u++) {
    427             totalCCtxSize += ZSTD_sizeof_CCtx(cctxPool->cctxs[u]);
    428         }
    429         ZSTD_pthread_mutex_unlock(&cctxPool->poolMutex);
    430         assert(nbWorkers > 0);
    431         return poolSize + arraySize + totalCCtxSize;
    432     }
    433 }
    434 
    435 static ZSTD_CCtx* ZSTDMT_getCCtx(ZSTDMT_CCtxPool* cctxPool)
    436 {
    437     DEBUGLOG(5, "ZSTDMT_getCCtx");
    438     ZSTD_pthread_mutex_lock(&cctxPool->poolMutex);
    439     if (cctxPool->availCCtx) {
    440         cctxPool->availCCtx--;
    441         {   ZSTD_CCtx* const cctx = cctxPool->cctxs[cctxPool->availCCtx];
    442             ZSTD_pthread_mutex_unlock(&cctxPool->poolMutex);
    443             return cctx;
    444     }   }
    445     ZSTD_pthread_mutex_unlock(&cctxPool->poolMutex);
    446     DEBUGLOG(5, "create one more CCtx");
    447     return ZSTD_createCCtx_advanced(cctxPool->cMem);   /* note : can be NULL, when creation fails ! */
    448 }
    449 
    450 static void ZSTDMT_releaseCCtx(ZSTDMT_CCtxPool* pool, ZSTD_CCtx* cctx)
    451 {
    452     if (cctx==NULL) return;   /* compatibility with release on NULL */
    453     ZSTD_pthread_mutex_lock(&pool->poolMutex);
    454     if (pool->availCCtx < pool->totalCCtx)
    455         pool->cctxs[pool->availCCtx++] = cctx;
    456     else {
    457         /* pool overflow : should not happen, since totalCCtx==nbWorkers */
    458         DEBUGLOG(4, "CCtx pool overflow : free cctx");
    459         ZSTD_freeCCtx(cctx);
    460     }
    461     ZSTD_pthread_mutex_unlock(&pool->poolMutex);
    462 }
    463 
    464 /* ====   Serial State   ==== */
    465 
    466 typedef struct {
    467     void const* start;
    468     size_t size;
    469 } Range;
    470 
    471 typedef struct {
    472     /* All variables in the struct are protected by mutex. */
    473     ZSTD_pthread_mutex_t mutex;
    474     ZSTD_pthread_cond_t cond;
    475     ZSTD_CCtx_params params;
    476     ldmState_t ldmState;
    477     XXH64_state_t xxhState;
    478     unsigned nextJobID;
    479     /* Protects ldmWindow.
    480      * Must be acquired after the main mutex when acquiring both.
    481      */
    482     ZSTD_pthread_mutex_t ldmWindowMutex;
    483     ZSTD_pthread_cond_t ldmWindowCond;  /* Signaled when ldmWindow is updated */
    484     ZSTD_window_t ldmWindow;  /* A thread-safe copy of ldmState.window */
    485 } SerialState;
    486 
    487 static int
    488 ZSTDMT_serialState_reset(SerialState* serialState,
    489                          ZSTDMT_seqPool* seqPool,
    490                          ZSTD_CCtx_params params,
    491                          size_t jobSize,
    492                          const void* dict, size_t const dictSize,
    493                          ZSTD_dictContentType_e dictContentType)
    494 {
    495     /* Adjust parameters */
    496     if (params.ldmParams.enableLdm == ZSTD_ps_enable) {
    497         DEBUGLOG(4, "LDM window size = %u KB", (1U << params.cParams.windowLog) >> 10);
    498         ZSTD_ldm_adjustParameters(&params.ldmParams, &params.cParams);
    499         assert(params.ldmParams.hashLog >= params.ldmParams.bucketSizeLog);
    500         assert(params.ldmParams.hashRateLog < 32);
    501     } else {
    502         ZSTD_memset(&params.ldmParams, 0, sizeof(params.ldmParams));
    503     }
    504     serialState->nextJobID = 0;
    505     if (params.fParams.checksumFlag)
    506         XXH64_reset(&serialState->xxhState, 0);
    507     if (params.ldmParams.enableLdm == ZSTD_ps_enable) {
    508         ZSTD_customMem cMem = params.customMem;
    509         unsigned const hashLog = params.ldmParams.hashLog;
    510         size_t const hashSize = ((size_t)1 << hashLog) * sizeof(ldmEntry_t);
    511         unsigned const bucketLog =
    512             params.ldmParams.hashLog - params.ldmParams.bucketSizeLog;
    513         unsigned const prevBucketLog =
    514             serialState->params.ldmParams.hashLog -
    515             serialState->params.ldmParams.bucketSizeLog;
    516         size_t const numBuckets = (size_t)1 << bucketLog;
    517         /* Size the seq pool tables */
    518         ZSTDMT_setNbSeq(seqPool, ZSTD_ldm_getMaxNbSeq(params.ldmParams, jobSize));
    519         /* Reset the window */
    520         ZSTD_window_init(&serialState->ldmState.window);
    521         /* Resize tables and output space if necessary. */
    522         if (serialState->ldmState.hashTable == NULL || serialState->params.ldmParams.hashLog < hashLog) {
    523             ZSTD_customFree(serialState->ldmState.hashTable, cMem);
    524             serialState->ldmState.hashTable = (ldmEntry_t*)ZSTD_customMalloc(hashSize, cMem);
    525         }
    526         if (serialState->ldmState.bucketOffsets == NULL || prevBucketLog < bucketLog) {
    527             ZSTD_customFree(serialState->ldmState.bucketOffsets, cMem);
    528             serialState->ldmState.bucketOffsets = (BYTE*)ZSTD_customMalloc(numBuckets, cMem);
    529         }
    530         if (!serialState->ldmState.hashTable || !serialState->ldmState.bucketOffsets)
    531             return 1;
    532         /* Zero the tables */
    533         ZSTD_memset(serialState->ldmState.hashTable, 0, hashSize);
    534         ZSTD_memset(serialState->ldmState.bucketOffsets, 0, numBuckets);
    535 
    536         /* Update window state and fill hash table with dict */
    537         serialState->ldmState.loadedDictEnd = 0;
    538         if (dictSize > 0) {
    539             if (dictContentType == ZSTD_dct_rawContent) {
    540                 BYTE const* const dictEnd = (const BYTE*)dict + dictSize;
    541                 ZSTD_window_update(&serialState->ldmState.window, dict, dictSize, /* forceNonContiguous */ 0);
    542                 ZSTD_ldm_fillHashTable(&serialState->ldmState, (const BYTE*)dict, dictEnd, &params.ldmParams);
    543                 serialState->ldmState.loadedDictEnd = params.forceWindow ? 0 : (U32)(dictEnd - serialState->ldmState.window.base);
    544             } else {
    545                 /* don't even load anything */
    546             }
    547         }
    548 
    549         /* Initialize serialState's copy of ldmWindow. */
    550         serialState->ldmWindow = serialState->ldmState.window;
    551     }
    552 
    553     serialState->params = params;
    554     serialState->params.jobSize = (U32)jobSize;
    555     return 0;
    556 }
    557 
    558 static int ZSTDMT_serialState_init(SerialState* serialState)
    559 {
    560     int initError = 0;
    561     ZSTD_memset(serialState, 0, sizeof(*serialState));
    562     initError |= ZSTD_pthread_mutex_init(&serialState->mutex, NULL);
    563     initError |= ZSTD_pthread_cond_init(&serialState->cond, NULL);
    564     initError |= ZSTD_pthread_mutex_init(&serialState->ldmWindowMutex, NULL);
    565     initError |= ZSTD_pthread_cond_init(&serialState->ldmWindowCond, NULL);
    566     return initError;
    567 }
    568 
    569 static void ZSTDMT_serialState_free(SerialState* serialState)
    570 {
    571     ZSTD_customMem cMem = serialState->params.customMem;
    572     ZSTD_pthread_mutex_destroy(&serialState->mutex);
    573     ZSTD_pthread_cond_destroy(&serialState->cond);
    574     ZSTD_pthread_mutex_destroy(&serialState->ldmWindowMutex);
    575     ZSTD_pthread_cond_destroy(&serialState->ldmWindowCond);
    576     ZSTD_customFree(serialState->ldmState.hashTable, cMem);
    577     ZSTD_customFree(serialState->ldmState.bucketOffsets, cMem);
    578 }
    579 
    580 static void
    581 ZSTDMT_serialState_genSequences(SerialState* serialState,
    582                                 RawSeqStore_t* seqStore,
    583                                 Range src, unsigned jobID)
    584 {
    585     /* Wait for our turn */
    586     ZSTD_PTHREAD_MUTEX_LOCK(&serialState->mutex);
    587     while (serialState->nextJobID < jobID) {
    588         DEBUGLOG(5, "wait for serialState->cond");
    589         ZSTD_pthread_cond_wait(&serialState->cond, &serialState->mutex);
    590     }
    591     /* A future job may error and skip our job */
    592     if (serialState->nextJobID == jobID) {
    593         /* It is now our turn, do any processing necessary */
    594         if (serialState->params.ldmParams.enableLdm == ZSTD_ps_enable) {
    595             size_t error;
    596             DEBUGLOG(6, "ZSTDMT_serialState_genSequences: LDM update");
    597             assert(seqStore->seq != NULL && seqStore->pos == 0 &&
    598                    seqStore->size == 0 && seqStore->capacity > 0);
    599             assert(src.size <= serialState->params.jobSize);
    600             ZSTD_window_update(&serialState->ldmState.window, src.start, src.size, /* forceNonContiguous */ 0);
    601             error = ZSTD_ldm_generateSequences(
    602                 &serialState->ldmState, seqStore,
    603                 &serialState->params.ldmParams, src.start, src.size);
    604             /* We provide a large enough buffer to never fail. */
    605             assert(!ZSTD_isError(error)); (void)error;
    606             /* Update ldmWindow to match the ldmState.window and signal the main
    607              * thread if it is waiting for a buffer.
    608              */
    609             ZSTD_PTHREAD_MUTEX_LOCK(&serialState->ldmWindowMutex);
    610             serialState->ldmWindow = serialState->ldmState.window;
    611             ZSTD_pthread_cond_signal(&serialState->ldmWindowCond);
    612             ZSTD_pthread_mutex_unlock(&serialState->ldmWindowMutex);
    613         }
    614         if (serialState->params.fParams.checksumFlag && src.size > 0)
    615             XXH64_update(&serialState->xxhState, src.start, src.size);
    616     }
    617     /* Now it is the next jobs turn */
    618     serialState->nextJobID++;
    619     ZSTD_pthread_cond_broadcast(&serialState->cond);
    620     ZSTD_pthread_mutex_unlock(&serialState->mutex);
    621 }
    622 
    623 static void
    624 ZSTDMT_serialState_applySequences(const SerialState* serialState, /* just for an assert() check */
    625                                   ZSTD_CCtx* jobCCtx,
    626                                   const RawSeqStore_t* seqStore)
    627 {
    628     if (seqStore->size > 0) {
    629         DEBUGLOG(5, "ZSTDMT_serialState_applySequences: uploading %u external sequences", (unsigned)seqStore->size);
    630         assert(serialState->params.ldmParams.enableLdm == ZSTD_ps_enable); (void)serialState;
    631         assert(jobCCtx);
    632         ZSTD_referenceExternalSequences(jobCCtx, seqStore->seq, seqStore->size);
    633     }
    634 }
    635 
    636 static void ZSTDMT_serialState_ensureFinished(SerialState* serialState,
    637                                               unsigned jobID, size_t cSize)
    638 {
    639     ZSTD_PTHREAD_MUTEX_LOCK(&serialState->mutex);
    640     if (serialState->nextJobID <= jobID) {
    641         assert(ZSTD_isError(cSize)); (void)cSize;
    642         DEBUGLOG(5, "Skipping past job %u because of error", jobID);
    643         serialState->nextJobID = jobID + 1;
    644         ZSTD_pthread_cond_broadcast(&serialState->cond);
    645 
    646         ZSTD_PTHREAD_MUTEX_LOCK(&serialState->ldmWindowMutex);
    647         ZSTD_window_clear(&serialState->ldmWindow);
    648         ZSTD_pthread_cond_signal(&serialState->ldmWindowCond);
    649         ZSTD_pthread_mutex_unlock(&serialState->ldmWindowMutex);
    650     }
    651     ZSTD_pthread_mutex_unlock(&serialState->mutex);
    652 
    653 }
    654 
    655 
    656 /* ------------------------------------------ */
    657 /* =====          Worker thread         ===== */
    658 /* ------------------------------------------ */
    659 
    660 static const Range kNullRange = { NULL, 0 };
    661 
    662 typedef struct {
    663     size_t   consumed;                 /* SHARED - set0 by mtctx, then modified by worker AND read by mtctx */
    664     size_t   cSize;                    /* SHARED - set0 by mtctx, then modified by worker AND read by mtctx, then set0 by mtctx */
    665     ZSTD_pthread_mutex_t job_mutex;    /* Thread-safe - used by mtctx and worker */
    666     ZSTD_pthread_cond_t job_cond;      /* Thread-safe - used by mtctx and worker */
    667     ZSTDMT_CCtxPool* cctxPool;         /* Thread-safe - used by mtctx and (all) workers */
    668     ZSTDMT_bufferPool* bufPool;        /* Thread-safe - used by mtctx and (all) workers */
    669     ZSTDMT_seqPool* seqPool;           /* Thread-safe - used by mtctx and (all) workers */
    670     SerialState* serial;               /* Thread-safe - used by mtctx and (all) workers */
    671     Buffer dstBuff;                    /* set by worker (or mtctx), then read by worker & mtctx, then modified by mtctx => no barrier */
    672     Range prefix;                      /* set by mtctx, then read by worker & mtctx => no barrier */
    673     Range src;                         /* set by mtctx, then read by worker & mtctx => no barrier */
    674     unsigned jobID;                    /* set by mtctx, then read by worker => no barrier */
    675     unsigned firstJob;                 /* set by mtctx, then read by worker => no barrier */
    676     unsigned lastJob;                  /* set by mtctx, then read by worker => no barrier */
    677     ZSTD_CCtx_params params;           /* set by mtctx, then read by worker => no barrier */
    678     const ZSTD_CDict* cdict;           /* set by mtctx, then read by worker => no barrier */
    679     unsigned long long fullFrameSize;  /* set by mtctx, then read by worker => no barrier */
    680     size_t   dstFlushed;               /* used only by mtctx */
    681     unsigned frameChecksumNeeded;      /* used only by mtctx */
    682 } ZSTDMT_jobDescription;
    683 
    684 #define JOB_ERROR(e)                                \
    685     do {                                            \
    686         ZSTD_PTHREAD_MUTEX_LOCK(&job->job_mutex);   \
    687         job->cSize = e;                             \
    688         ZSTD_pthread_mutex_unlock(&job->job_mutex); \
    689         goto _endJob;                               \
    690     } while (0)
    691 
    692 /* ZSTDMT_compressionJob() is a POOL_function type */
    693 static void ZSTDMT_compressionJob(void* jobDescription)
    694 {
    695     ZSTDMT_jobDescription* const job = (ZSTDMT_jobDescription*)jobDescription;
    696     ZSTD_CCtx_params jobParams = job->params;   /* do not modify job->params ! copy it, modify the copy */
    697     ZSTD_CCtx* const cctx = ZSTDMT_getCCtx(job->cctxPool);
    698     RawSeqStore_t rawSeqStore = ZSTDMT_getSeq(job->seqPool);
    699     Buffer dstBuff = job->dstBuff;
    700     size_t lastCBlockSize = 0;
    701 
    702     DEBUGLOG(5, "ZSTDMT_compressionJob: job %u", job->jobID);
    703     /* resources */
    704     if (cctx==NULL) JOB_ERROR(ERROR(memory_allocation));
    705     if (dstBuff.start == NULL) {   /* streaming job : doesn't provide a dstBuffer */
    706         dstBuff = ZSTDMT_getBuffer(job->bufPool);
    707         if (dstBuff.start==NULL) JOB_ERROR(ERROR(memory_allocation));
    708         job->dstBuff = dstBuff;   /* this value can be read in ZSTDMT_flush, when it copies the whole job */
    709     }
    710     if (jobParams.ldmParams.enableLdm == ZSTD_ps_enable && rawSeqStore.seq == NULL)
    711         JOB_ERROR(ERROR(memory_allocation));
    712 
    713     /* Don't compute the checksum for chunks, since we compute it externally,
    714      * but write it in the header.
    715      */
    716     if (job->jobID != 0) jobParams.fParams.checksumFlag = 0;
    717     /* Don't run LDM for the chunks, since we handle it externally */
    718     jobParams.ldmParams.enableLdm = ZSTD_ps_disable;
    719     /* Correct nbWorkers to 0. */
    720     jobParams.nbWorkers = 0;
    721 
    722 
    723     /* init */
    724 
    725     /* Perform serial step as early as possible */
    726     ZSTDMT_serialState_genSequences(job->serial, &rawSeqStore, job->src, job->jobID);
    727 
    728     if (job->cdict) {
    729         size_t const initError = ZSTD_compressBegin_advanced_internal(cctx, NULL, 0, ZSTD_dct_auto, ZSTD_dtlm_fast, job->cdict, &jobParams, job->fullFrameSize);
    730         assert(job->firstJob);  /* only allowed for first job */
    731         if (ZSTD_isError(initError)) JOB_ERROR(initError);
    732     } else {
    733         U64 const pledgedSrcSize = job->firstJob ? job->fullFrameSize : job->src.size;
    734         {   size_t const forceWindowError = ZSTD_CCtxParams_setParameter(&jobParams, ZSTD_c_forceMaxWindow, !job->firstJob);
    735             if (ZSTD_isError(forceWindowError)) JOB_ERROR(forceWindowError);
    736         }
    737         if (!job->firstJob) {
    738             size_t const err = ZSTD_CCtxParams_setParameter(&jobParams, ZSTD_c_deterministicRefPrefix, 0);
    739             if (ZSTD_isError(err)) JOB_ERROR(err);
    740         }
    741         DEBUGLOG(6, "ZSTDMT_compressionJob: job %u: loading prefix of size %zu", job->jobID, job->prefix.size);
    742         {   size_t const initError = ZSTD_compressBegin_advanced_internal(cctx,
    743                                         job->prefix.start, job->prefix.size, ZSTD_dct_rawContent,
    744                                         ZSTD_dtlm_fast,
    745                                         NULL, /*cdict*/
    746                                         &jobParams, pledgedSrcSize);
    747             if (ZSTD_isError(initError)) JOB_ERROR(initError);
    748     }   }
    749 
    750     /* External Sequences can only be applied after CCtx initialization */
    751     ZSTDMT_serialState_applySequences(job->serial, cctx, &rawSeqStore);
    752 
    753     if (!job->firstJob) {  /* flush and overwrite frame header when it's not first job */
    754         size_t const hSize = ZSTD_compressContinue_public(cctx, dstBuff.start, dstBuff.capacity, job->src.start, 0);
    755         if (ZSTD_isError(hSize)) JOB_ERROR(hSize);
    756         DEBUGLOG(5, "ZSTDMT_compressionJob: flush and overwrite %u bytes of frame header (not first job)", (U32)hSize);
    757         ZSTD_invalidateRepCodes(cctx);
    758     }
    759 
    760     /* compress the entire job by smaller chunks, for better granularity */
    761     {   size_t const chunkSize = 4*ZSTD_BLOCKSIZE_MAX;
    762         int const nbChunks = (int)((job->src.size + (chunkSize-1)) / chunkSize);
    763         const BYTE* ip = (const BYTE*) job->src.start;
    764         BYTE* const ostart = (BYTE*)dstBuff.start;
    765         BYTE* op = ostart;
    766         BYTE* oend = op + dstBuff.capacity;
    767         int chunkNb;
    768         if (sizeof(size_t) > sizeof(int)) assert(job->src.size < ((size_t)INT_MAX) * chunkSize);   /* check overflow */
    769         DEBUGLOG(5, "ZSTDMT_compressionJob: compress %u bytes in %i blocks", (U32)job->src.size, nbChunks);
    770         assert(job->cSize == 0);
    771         for (chunkNb = 1; chunkNb < nbChunks; chunkNb++) {
    772             size_t const cSize = ZSTD_compressContinue_public(cctx, op, oend-op, ip, chunkSize);
    773             if (ZSTD_isError(cSize)) JOB_ERROR(cSize);
    774             ip += chunkSize;
    775             op += cSize; assert(op < oend);
    776             /* stats */
    777             ZSTD_PTHREAD_MUTEX_LOCK(&job->job_mutex);
    778             job->cSize += cSize;
    779             job->consumed = chunkSize * chunkNb;
    780             DEBUGLOG(5, "ZSTDMT_compressionJob: compress new block : cSize==%u bytes (total: %u)",
    781                         (U32)cSize, (U32)job->cSize);
    782             ZSTD_pthread_cond_signal(&job->job_cond);   /* warns some more data is ready to be flushed */
    783             ZSTD_pthread_mutex_unlock(&job->job_mutex);
    784         }
    785         /* last block */
    786         assert(chunkSize > 0);
    787         assert((chunkSize & (chunkSize - 1)) == 0);  /* chunkSize must be power of 2 for mask==(chunkSize-1) to work */
    788         if ((nbChunks > 0) | job->lastJob /*must output a "last block" flag*/ ) {
    789             size_t const lastBlockSize1 = job->src.size & (chunkSize-1);
    790             size_t const lastBlockSize = ((lastBlockSize1==0) & (job->src.size>=chunkSize)) ? chunkSize : lastBlockSize1;
    791             size_t const cSize = (job->lastJob) ?
    792                  ZSTD_compressEnd_public(cctx, op, oend-op, ip, lastBlockSize) :
    793                  ZSTD_compressContinue_public(cctx, op, oend-op, ip, lastBlockSize);
    794             if (ZSTD_isError(cSize)) JOB_ERROR(cSize);
    795             lastCBlockSize = cSize;
    796     }   }
    797     if (!job->firstJob) {
    798         /* Double check that we don't have an ext-dict, because then our
    799          * repcode invalidation doesn't work.
    800          */
    801         assert(!ZSTD_window_hasExtDict(cctx->blockState.matchState.window));
    802     }
    803     ZSTD_CCtx_trace(cctx, 0);
    804 
    805 _endJob:
    806     ZSTDMT_serialState_ensureFinished(job->serial, job->jobID, job->cSize);
    807     if (job->prefix.size > 0)
    808         DEBUGLOG(5, "Finished with prefix: %zx", (size_t)job->prefix.start);
    809     DEBUGLOG(5, "Finished with source: %zx", (size_t)job->src.start);
    810     /* release resources */
    811     ZSTDMT_releaseSeq(job->seqPool, rawSeqStore);
    812     ZSTDMT_releaseCCtx(job->cctxPool, cctx);
    813     /* report */
    814     ZSTD_PTHREAD_MUTEX_LOCK(&job->job_mutex);
    815     if (ZSTD_isError(job->cSize)) assert(lastCBlockSize == 0);
    816     job->cSize += lastCBlockSize;
    817     job->consumed = job->src.size;  /* when job->consumed == job->src.size , compression job is presumed completed */
    818     ZSTD_pthread_cond_signal(&job->job_cond);
    819     ZSTD_pthread_mutex_unlock(&job->job_mutex);
    820 }
    821 
    822 
    823 /* ------------------------------------------ */
    824 /* =====   Multi-threaded compression   ===== */
    825 /* ------------------------------------------ */
    826 
    827 typedef struct {
    828     Range prefix;         /* read-only non-owned prefix buffer */
    829     Buffer buffer;
    830     size_t filled;
    831 } InBuff_t;
    832 
    833 typedef struct {
    834   BYTE* buffer;     /* The round input buffer. All jobs get references
    835                      * to pieces of the buffer. ZSTDMT_tryGetInputRange()
    836                      * handles handing out job input buffers, and makes
    837                      * sure it doesn't overlap with any pieces still in use.
    838                      */
    839   size_t capacity;  /* The capacity of buffer. */
    840   size_t pos;       /* The position of the current inBuff in the round
    841                      * buffer. Updated past the end if the inBuff once
    842                      * the inBuff is sent to the worker thread.
    843                      * pos <= capacity.
    844                      */
    845 } RoundBuff_t;
    846 
    847 static const RoundBuff_t kNullRoundBuff = {NULL, 0, 0};
    848 
    849 #define RSYNC_LENGTH 32
    850 /* Don't create chunks smaller than the zstd block size.
    851  * This stops us from regressing compression ratio too much,
    852  * and ensures our output fits in ZSTD_compressBound().
    853  *
    854  * If this is shrunk < ZSTD_BLOCKSIZELOG_MIN then
    855  * ZSTD_COMPRESSBOUND() will need to be updated.
    856  */
    857 #define RSYNC_MIN_BLOCK_LOG ZSTD_BLOCKSIZELOG_MAX
    858 #define RSYNC_MIN_BLOCK_SIZE (1<<RSYNC_MIN_BLOCK_LOG)
    859 
    860 typedef struct {
    861   U64 hash;
    862   U64 hitMask;
    863   U64 primePower;
    864 } RSyncState_t;
    865 
    866 struct ZSTDMT_CCtx_s {
    867     POOL_ctx* factory;
    868     ZSTDMT_jobDescription* jobs;
    869     ZSTDMT_bufferPool* bufPool;
    870     ZSTDMT_CCtxPool* cctxPool;
    871     ZSTDMT_seqPool* seqPool;
    872     ZSTD_CCtx_params params;
    873     size_t targetSectionSize;
    874     size_t targetPrefixSize;
    875     int jobReady;        /* 1 => one job is already prepared, but pool has shortage of workers. Don't create a new job. */
    876     InBuff_t inBuff;
    877     RoundBuff_t roundBuff;
    878     SerialState serial;
    879     RSyncState_t rsync;
    880     unsigned jobIDMask;
    881     unsigned doneJobID;
    882     unsigned nextJobID;
    883     unsigned frameEnded;
    884     unsigned allJobsCompleted;
    885     unsigned long long frameContentSize;
    886     unsigned long long consumed;
    887     unsigned long long produced;
    888     ZSTD_customMem cMem;
    889     ZSTD_CDict* cdictLocal;
    890     const ZSTD_CDict* cdict;
    891     unsigned providedFactory: 1;
    892 };
    893 
    894 static void ZSTDMT_freeJobsTable(ZSTDMT_jobDescription* jobTable, U32 nbJobs, ZSTD_customMem cMem)
    895 {
    896     U32 jobNb;
    897     if (jobTable == NULL) return;
    898     for (jobNb=0; jobNb<nbJobs; jobNb++) {
    899         ZSTD_pthread_mutex_destroy(&jobTable[jobNb].job_mutex);
    900         ZSTD_pthread_cond_destroy(&jobTable[jobNb].job_cond);
    901     }
    902     ZSTD_customFree(jobTable, cMem);
    903 }
    904 
    905 /* ZSTDMT_allocJobsTable()
    906  * allocate and init a job table.
    907  * update *nbJobsPtr to next power of 2 value, as size of table */
    908 static ZSTDMT_jobDescription* ZSTDMT_createJobsTable(U32* nbJobsPtr, ZSTD_customMem cMem)
    909 {
    910     U32 const nbJobsLog2 = ZSTD_highbit32(*nbJobsPtr) + 1;
    911     U32 const nbJobs = 1 << nbJobsLog2;
    912     U32 jobNb;
    913     ZSTDMT_jobDescription* const jobTable = (ZSTDMT_jobDescription*)
    914                 ZSTD_customCalloc(nbJobs * sizeof(ZSTDMT_jobDescription), cMem);
    915     int initError = 0;
    916     if (jobTable==NULL) return NULL;
    917     *nbJobsPtr = nbJobs;
    918     for (jobNb=0; jobNb<nbJobs; jobNb++) {
    919         initError |= ZSTD_pthread_mutex_init(&jobTable[jobNb].job_mutex, NULL);
    920         initError |= ZSTD_pthread_cond_init(&jobTable[jobNb].job_cond, NULL);
    921     }
    922     if (initError != 0) {
    923         ZSTDMT_freeJobsTable(jobTable, nbJobs, cMem);
    924         return NULL;
    925     }
    926     return jobTable;
    927 }
    928 
    929 static size_t ZSTDMT_expandJobsTable (ZSTDMT_CCtx* mtctx, U32 nbWorkers) {
    930     U32 nbJobs = nbWorkers + 2;
    931     if (nbJobs > mtctx->jobIDMask+1) {  /* need more job capacity */
    932         ZSTDMT_freeJobsTable(mtctx->jobs, mtctx->jobIDMask+1, mtctx->cMem);
    933         mtctx->jobIDMask = 0;
    934         mtctx->jobs = ZSTDMT_createJobsTable(&nbJobs, mtctx->cMem);
    935         if (mtctx->jobs==NULL) return ERROR(memory_allocation);
    936         assert((nbJobs != 0) && ((nbJobs & (nbJobs - 1)) == 0));  /* ensure nbJobs is a power of 2 */
    937         mtctx->jobIDMask = nbJobs - 1;
    938     }
    939     return 0;
    940 }
    941 
    942 
    943 /* ZSTDMT_CCtxParam_setNbWorkers():
    944  * Internal use only */
    945 static size_t ZSTDMT_CCtxParam_setNbWorkers(ZSTD_CCtx_params* params, unsigned nbWorkers)
    946 {
    947     return ZSTD_CCtxParams_setParameter(params, ZSTD_c_nbWorkers, (int)nbWorkers);
    948 }
    949 
    950 MEM_STATIC ZSTDMT_CCtx* ZSTDMT_createCCtx_advanced_internal(unsigned nbWorkers, ZSTD_customMem cMem, ZSTD_threadPool* pool)
    951 {
    952     ZSTDMT_CCtx* mtctx;
    953     U32 nbJobs = nbWorkers + 2;
    954     int initError;
    955     DEBUGLOG(3, "ZSTDMT_createCCtx_advanced (nbWorkers = %u)", nbWorkers);
    956 
    957     if (nbWorkers < 1) return NULL;
    958     nbWorkers = MIN(nbWorkers , ZSTDMT_NBWORKERS_MAX);
    959     if ((cMem.customAlloc!=NULL) ^ (cMem.customFree!=NULL))
    960         /* invalid custom allocator */
    961         return NULL;
    962 
    963     mtctx = (ZSTDMT_CCtx*) ZSTD_customCalloc(sizeof(ZSTDMT_CCtx), cMem);
    964     if (!mtctx) return NULL;
    965     ZSTDMT_CCtxParam_setNbWorkers(&mtctx->params, nbWorkers);
    966     mtctx->cMem = cMem;
    967     mtctx->allJobsCompleted = 1;
    968     if (pool != NULL) {
    969       mtctx->factory = pool;
    970       mtctx->providedFactory = 1;
    971     }
    972     else {
    973       mtctx->factory = POOL_create_advanced(nbWorkers, 0, cMem);
    974       mtctx->providedFactory = 0;
    975     }
    976     mtctx->jobs = ZSTDMT_createJobsTable(&nbJobs, cMem);
    977     assert(nbJobs > 0); assert((nbJobs & (nbJobs - 1)) == 0);  /* ensure nbJobs is a power of 2 */
    978     mtctx->jobIDMask = nbJobs - 1;
    979     mtctx->bufPool = ZSTDMT_createBufferPool(BUF_POOL_MAX_NB_BUFFERS(nbWorkers), cMem);
    980     mtctx->cctxPool = ZSTDMT_createCCtxPool(nbWorkers, cMem);
    981     mtctx->seqPool = ZSTDMT_createSeqPool(nbWorkers, cMem);
    982     initError = ZSTDMT_serialState_init(&mtctx->serial);
    983     mtctx->roundBuff = kNullRoundBuff;
    984     if (!mtctx->factory | !mtctx->jobs | !mtctx->bufPool | !mtctx->cctxPool | !mtctx->seqPool | initError) {
    985         ZSTDMT_freeCCtx(mtctx);
    986         return NULL;
    987     }
    988     DEBUGLOG(3, "mt_cctx created, for %u threads", nbWorkers);
    989     return mtctx;
    990 }
    991 
    992 ZSTDMT_CCtx* ZSTDMT_createCCtx_advanced(unsigned nbWorkers, ZSTD_customMem cMem, ZSTD_threadPool* pool)
    993 {
    994 #ifdef ZSTD_MULTITHREAD
    995     return ZSTDMT_createCCtx_advanced_internal(nbWorkers, cMem, pool);
    996 #else
    997     (void)nbWorkers;
    998     (void)cMem;
    999     (void)pool;
   1000     return NULL;
   1001 #endif
   1002 }
   1003 
   1004 
   1005 /* ZSTDMT_releaseAllJobResources() :
   1006  * note : ensure all workers are killed first ! */
   1007 static void ZSTDMT_releaseAllJobResources(ZSTDMT_CCtx* mtctx)
   1008 {
   1009     unsigned jobID;
   1010     DEBUGLOG(3, "ZSTDMT_releaseAllJobResources");
   1011     for (jobID=0; jobID <= mtctx->jobIDMask; jobID++) {
   1012         /* Copy the mutex/cond out */
   1013         ZSTD_pthread_mutex_t const mutex = mtctx->jobs[jobID].job_mutex;
   1014         ZSTD_pthread_cond_t const cond = mtctx->jobs[jobID].job_cond;
   1015 
   1016         DEBUGLOG(4, "job%02u: release dst address %08X", jobID, (U32)(size_t)mtctx->jobs[jobID].dstBuff.start);
   1017         ZSTDMT_releaseBuffer(mtctx->bufPool, mtctx->jobs[jobID].dstBuff);
   1018 
   1019         /* Clear the job description, but keep the mutex/cond */
   1020         ZSTD_memset(&mtctx->jobs[jobID], 0, sizeof(mtctx->jobs[jobID]));
   1021         mtctx->jobs[jobID].job_mutex = mutex;
   1022         mtctx->jobs[jobID].job_cond = cond;
   1023     }
   1024     mtctx->inBuff.buffer = g_nullBuffer;
   1025     mtctx->inBuff.filled = 0;
   1026     mtctx->allJobsCompleted = 1;
   1027 }
   1028 
   1029 static void ZSTDMT_waitForAllJobsCompleted(ZSTDMT_CCtx* mtctx)
   1030 {
   1031     DEBUGLOG(4, "ZSTDMT_waitForAllJobsCompleted");
   1032     while (mtctx->doneJobID < mtctx->nextJobID) {
   1033         unsigned const jobID = mtctx->doneJobID & mtctx->jobIDMask;
   1034         ZSTD_PTHREAD_MUTEX_LOCK(&mtctx->jobs[jobID].job_mutex);
   1035         while (mtctx->jobs[jobID].consumed < mtctx->jobs[jobID].src.size) {
   1036             DEBUGLOG(4, "waiting for jobCompleted signal from job %u", mtctx->doneJobID);   /* we want to block when waiting for data to flush */
   1037             ZSTD_pthread_cond_wait(&mtctx->jobs[jobID].job_cond, &mtctx->jobs[jobID].job_mutex);
   1038         }
   1039         ZSTD_pthread_mutex_unlock(&mtctx->jobs[jobID].job_mutex);
   1040         mtctx->doneJobID++;
   1041     }
   1042 }
   1043 
   1044 size_t ZSTDMT_freeCCtx(ZSTDMT_CCtx* mtctx)
   1045 {
   1046     if (mtctx==NULL) return 0;   /* compatible with free on NULL */
   1047     if (!mtctx->providedFactory)
   1048         POOL_free(mtctx->factory);   /* stop and free worker threads */
   1049     ZSTDMT_releaseAllJobResources(mtctx);  /* release job resources into pools first */
   1050     ZSTDMT_freeJobsTable(mtctx->jobs, mtctx->jobIDMask+1, mtctx->cMem);
   1051     ZSTDMT_freeBufferPool(mtctx->bufPool);
   1052     ZSTDMT_freeCCtxPool(mtctx->cctxPool);
   1053     ZSTDMT_freeSeqPool(mtctx->seqPool);
   1054     ZSTDMT_serialState_free(&mtctx->serial);
   1055     ZSTD_freeCDict(mtctx->cdictLocal);
   1056     if (mtctx->roundBuff.buffer)
   1057         ZSTD_customFree(mtctx->roundBuff.buffer, mtctx->cMem);
   1058     ZSTD_customFree(mtctx, mtctx->cMem);
   1059     return 0;
   1060 }
   1061 
   1062 size_t ZSTDMT_sizeof_CCtx(ZSTDMT_CCtx* mtctx)
   1063 {
   1064     if (mtctx == NULL) return 0;   /* supports sizeof NULL */
   1065     return sizeof(*mtctx)
   1066             + POOL_sizeof(mtctx->factory)
   1067             + ZSTDMT_sizeof_bufferPool(mtctx->bufPool)
   1068             + (mtctx->jobIDMask+1) * sizeof(ZSTDMT_jobDescription)
   1069             + ZSTDMT_sizeof_CCtxPool(mtctx->cctxPool)
   1070             + ZSTDMT_sizeof_seqPool(mtctx->seqPool)
   1071             + ZSTD_sizeof_CDict(mtctx->cdictLocal)
   1072             + mtctx->roundBuff.capacity;
   1073 }
   1074 
   1075 
   1076 /* ZSTDMT_resize() :
   1077  * @return : error code if fails, 0 on success */
   1078 static size_t ZSTDMT_resize(ZSTDMT_CCtx* mtctx, unsigned nbWorkers)
   1079 {
   1080     if (POOL_resize(mtctx->factory, nbWorkers)) return ERROR(memory_allocation);
   1081     FORWARD_IF_ERROR( ZSTDMT_expandJobsTable(mtctx, nbWorkers) , "");
   1082     mtctx->bufPool = ZSTDMT_expandBufferPool(mtctx->bufPool, BUF_POOL_MAX_NB_BUFFERS(nbWorkers));
   1083     if (mtctx->bufPool == NULL) return ERROR(memory_allocation);
   1084     mtctx->cctxPool = ZSTDMT_expandCCtxPool(mtctx->cctxPool, nbWorkers);
   1085     if (mtctx->cctxPool == NULL) return ERROR(memory_allocation);
   1086     mtctx->seqPool = ZSTDMT_expandSeqPool(mtctx->seqPool, nbWorkers);
   1087     if (mtctx->seqPool == NULL) return ERROR(memory_allocation);
   1088     ZSTDMT_CCtxParam_setNbWorkers(&mtctx->params, nbWorkers);
   1089     return 0;
   1090 }
   1091 
   1092 
   1093 /*! ZSTDMT_updateCParams_whileCompressing() :
   1094  *  Updates a selected set of compression parameters, remaining compatible with currently active frame.
   1095  *  New parameters will be applied to next compression job. */
   1096 void ZSTDMT_updateCParams_whileCompressing(ZSTDMT_CCtx* mtctx, const ZSTD_CCtx_params* cctxParams)
   1097 {
   1098     U32 const saved_wlog = mtctx->params.cParams.windowLog;   /* Do not modify windowLog while compressing */
   1099     int const compressionLevel = cctxParams->compressionLevel;
   1100     DEBUGLOG(5, "ZSTDMT_updateCParams_whileCompressing (level:%i)",
   1101                 compressionLevel);
   1102     mtctx->params.compressionLevel = compressionLevel;
   1103     {   ZSTD_compressionParameters cParams = ZSTD_getCParamsFromCCtxParams(cctxParams, ZSTD_CONTENTSIZE_UNKNOWN, 0, ZSTD_cpm_noAttachDict);
   1104         cParams.windowLog = saved_wlog;
   1105         mtctx->params.cParams = cParams;
   1106     }
   1107 }
   1108 
   1109 /* ZSTDMT_getFrameProgression():
   1110  * tells how much data has been consumed (input) and produced (output) for current frame.
   1111  * able to count progression inside worker threads.
   1112  * Note : mutex will be acquired during statistics collection inside workers. */
   1113 ZSTD_frameProgression ZSTDMT_getFrameProgression(ZSTDMT_CCtx* mtctx)
   1114 {
   1115     ZSTD_frameProgression fps;
   1116     DEBUGLOG(5, "ZSTDMT_getFrameProgression");
   1117     fps.ingested = mtctx->consumed + mtctx->inBuff.filled;
   1118     fps.consumed = mtctx->consumed;
   1119     fps.produced = fps.flushed = mtctx->produced;
   1120     fps.currentJobID = mtctx->nextJobID;
   1121     fps.nbActiveWorkers = 0;
   1122     {   unsigned jobNb;
   1123         unsigned lastJobNb = mtctx->nextJobID + mtctx->jobReady; assert(mtctx->jobReady <= 1);
   1124         DEBUGLOG(6, "ZSTDMT_getFrameProgression: jobs: from %u to <%u (jobReady:%u)",
   1125                     mtctx->doneJobID, lastJobNb, mtctx->jobReady);
   1126         for (jobNb = mtctx->doneJobID ; jobNb < lastJobNb ; jobNb++) {
   1127             unsigned const wJobID = jobNb & mtctx->jobIDMask;
   1128             ZSTDMT_jobDescription* jobPtr = &mtctx->jobs[wJobID];
   1129             ZSTD_pthread_mutex_lock(&jobPtr->job_mutex);
   1130             {   size_t const cResult = jobPtr->cSize;
   1131                 size_t const produced = ZSTD_isError(cResult) ? 0 : cResult;
   1132                 size_t const flushed = ZSTD_isError(cResult) ? 0 : jobPtr->dstFlushed;
   1133                 assert(flushed <= produced);
   1134                 fps.ingested += jobPtr->src.size;
   1135                 fps.consumed += jobPtr->consumed;
   1136                 fps.produced += produced;
   1137                 fps.flushed  += flushed;
   1138                 fps.nbActiveWorkers += (jobPtr->consumed < jobPtr->src.size);
   1139             }
   1140             ZSTD_pthread_mutex_unlock(&mtctx->jobs[wJobID].job_mutex);
   1141         }
   1142     }
   1143     return fps;
   1144 }
   1145 
   1146 
   1147 size_t ZSTDMT_toFlushNow(ZSTDMT_CCtx* mtctx)
   1148 {
   1149     size_t toFlush;
   1150     unsigned const jobID = mtctx->doneJobID;
   1151     assert(jobID <= mtctx->nextJobID);
   1152     if (jobID == mtctx->nextJobID) return 0;   /* no active job => nothing to flush */
   1153 
   1154     /* look into oldest non-fully-flushed job */
   1155     {   unsigned const wJobID = jobID & mtctx->jobIDMask;
   1156         ZSTDMT_jobDescription* const jobPtr = &mtctx->jobs[wJobID];
   1157         ZSTD_pthread_mutex_lock(&jobPtr->job_mutex);
   1158         {   size_t const cResult = jobPtr->cSize;
   1159             size_t const produced = ZSTD_isError(cResult) ? 0 : cResult;
   1160             size_t const flushed = ZSTD_isError(cResult) ? 0 : jobPtr->dstFlushed;
   1161             assert(flushed <= produced);
   1162             assert(jobPtr->consumed <= jobPtr->src.size);
   1163             toFlush = produced - flushed;
   1164             /* if toFlush==0, nothing is available to flush.
   1165              * However, jobID is expected to still be active:
   1166              * if jobID was already completed and fully flushed,
   1167              * ZSTDMT_flushProduced() should have already moved onto next job.
   1168              * Therefore, some input has not yet been consumed. */
   1169             if (toFlush==0) {
   1170                 assert(jobPtr->consumed < jobPtr->src.size);
   1171             }
   1172         }
   1173         ZSTD_pthread_mutex_unlock(&mtctx->jobs[wJobID].job_mutex);
   1174     }
   1175 
   1176     return toFlush;
   1177 }
   1178 
   1179 
   1180 /* ------------------------------------------ */
   1181 /* =====   Multi-threaded compression   ===== */
   1182 /* ------------------------------------------ */
   1183 
   1184 static unsigned ZSTDMT_computeTargetJobLog(const ZSTD_CCtx_params* params)
   1185 {
   1186     unsigned jobLog;
   1187     if (params->ldmParams.enableLdm == ZSTD_ps_enable) {
   1188         /* In Long Range Mode, the windowLog is typically oversized.
   1189          * In which case, it's preferable to determine the jobSize
   1190          * based on cycleLog instead. */
   1191         jobLog = MAX(21, ZSTD_cycleLog(params->cParams.chainLog, params->cParams.strategy) + 3);
   1192     } else {
   1193         jobLog = MAX(20, params->cParams.windowLog + 2);
   1194     }
   1195     return MIN(jobLog, (unsigned)ZSTDMT_JOBLOG_MAX);
   1196 }
   1197 
   1198 static int ZSTDMT_overlapLog_default(ZSTD_strategy strat)
   1199 {
   1200     switch(strat)
   1201     {
   1202         case ZSTD_btultra2:
   1203             return 9;
   1204         case ZSTD_btultra:
   1205         case ZSTD_btopt:
   1206             return 8;
   1207         case ZSTD_btlazy2:
   1208         case ZSTD_lazy2:
   1209             return 7;
   1210         case ZSTD_lazy:
   1211         case ZSTD_greedy:
   1212         case ZSTD_dfast:
   1213         case ZSTD_fast:
   1214         default:;
   1215     }
   1216     return 6;
   1217 }
   1218 
   1219 static int ZSTDMT_overlapLog(int ovlog, ZSTD_strategy strat)
   1220 {
   1221     assert(0 <= ovlog && ovlog <= 9);
   1222     if (ovlog == 0) return ZSTDMT_overlapLog_default(strat);
   1223     return ovlog;
   1224 }
   1225 
   1226 static size_t ZSTDMT_computeOverlapSize(const ZSTD_CCtx_params* params)
   1227 {
   1228     int const overlapRLog = 9 - ZSTDMT_overlapLog(params->overlapLog, params->cParams.strategy);
   1229     int ovLog = (overlapRLog >= 8) ? 0 : (params->cParams.windowLog - overlapRLog);
   1230     assert(0 <= overlapRLog && overlapRLog <= 8);
   1231     if (params->ldmParams.enableLdm == ZSTD_ps_enable) {
   1232         /* In Long Range Mode, the windowLog is typically oversized.
   1233          * In which case, it's preferable to determine the jobSize
   1234          * based on chainLog instead.
   1235          * Then, ovLog becomes a fraction of the jobSize, rather than windowSize */
   1236         ovLog = MIN(params->cParams.windowLog, ZSTDMT_computeTargetJobLog(params) - 2)
   1237                 - overlapRLog;
   1238     }
   1239     assert(0 <= ovLog && ovLog <= ZSTD_WINDOWLOG_MAX);
   1240     DEBUGLOG(4, "overlapLog : %i", params->overlapLog);
   1241     DEBUGLOG(4, "overlap size : %i", 1 << ovLog);
   1242     return (ovLog==0) ? 0 : (size_t)1 << ovLog;
   1243 }
   1244 
   1245 /* ====================================== */
   1246 /* =======      Streaming API     ======= */
   1247 /* ====================================== */
   1248 
   1249 size_t ZSTDMT_initCStream_internal(
   1250         ZSTDMT_CCtx* mtctx,
   1251         const void* dict, size_t dictSize, ZSTD_dictContentType_e dictContentType,
   1252         const ZSTD_CDict* cdict, ZSTD_CCtx_params params,
   1253         unsigned long long pledgedSrcSize)
   1254 {
   1255     DEBUGLOG(4, "ZSTDMT_initCStream_internal (pledgedSrcSize=%u, nbWorkers=%u, cctxPool=%u)",
   1256                 (U32)pledgedSrcSize, params.nbWorkers, mtctx->cctxPool->totalCCtx);
   1257 
   1258     /* params supposed partially fully validated at this point */
   1259     assert(!ZSTD_isError(ZSTD_checkCParams(params.cParams)));
   1260     assert(!((dict) && (cdict)));  /* either dict or cdict, not both */
   1261 
   1262     /* init */
   1263     if (params.nbWorkers != mtctx->params.nbWorkers)
   1264         FORWARD_IF_ERROR( ZSTDMT_resize(mtctx, (unsigned)params.nbWorkers) , "");
   1265 
   1266     if (params.jobSize != 0 && params.jobSize < ZSTDMT_JOBSIZE_MIN) params.jobSize = ZSTDMT_JOBSIZE_MIN;
   1267     if (params.jobSize > (size_t)ZSTDMT_JOBSIZE_MAX) params.jobSize = (size_t)ZSTDMT_JOBSIZE_MAX;
   1268 
   1269     if (mtctx->allJobsCompleted == 0) {   /* previous compression not correctly finished */
   1270         ZSTDMT_waitForAllJobsCompleted(mtctx);
   1271         ZSTDMT_releaseAllJobResources(mtctx);
   1272         mtctx->allJobsCompleted = 1;
   1273     }
   1274 
   1275     mtctx->params = params;
   1276     mtctx->frameContentSize = pledgedSrcSize;
   1277     ZSTD_freeCDict(mtctx->cdictLocal);
   1278     if (dict) {
   1279         mtctx->cdictLocal = ZSTD_createCDict_advanced(dict, dictSize,
   1280                                                     ZSTD_dlm_byCopy, dictContentType, /* note : a loadPrefix becomes an internal CDict */
   1281                                                     params.cParams, mtctx->cMem);
   1282         mtctx->cdict = mtctx->cdictLocal;
   1283         if (mtctx->cdictLocal == NULL) return ERROR(memory_allocation);
   1284     } else {
   1285         mtctx->cdictLocal = NULL;
   1286         mtctx->cdict = cdict;
   1287     }
   1288 
   1289     mtctx->targetPrefixSize = ZSTDMT_computeOverlapSize(&params);
   1290     DEBUGLOG(4, "overlapLog=%i => %u KB", params.overlapLog, (U32)(mtctx->targetPrefixSize>>10));
   1291     mtctx->targetSectionSize = params.jobSize;
   1292     if (mtctx->targetSectionSize == 0) {
   1293         mtctx->targetSectionSize = 1ULL << ZSTDMT_computeTargetJobLog(&params);
   1294     }
   1295     assert(mtctx->targetSectionSize <= (size_t)ZSTDMT_JOBSIZE_MAX);
   1296 
   1297     if (params.rsyncable) {
   1298         /* Aim for the targetsectionSize as the average job size. */
   1299         U32 const jobSizeKB = (U32)(mtctx->targetSectionSize >> 10);
   1300         U32 const rsyncBits = (assert(jobSizeKB >= 1), ZSTD_highbit32(jobSizeKB) + 10);
   1301         /* We refuse to create jobs < RSYNC_MIN_BLOCK_SIZE bytes, so make sure our
   1302          * expected job size is at least 4x larger. */
   1303         assert(rsyncBits >= RSYNC_MIN_BLOCK_LOG + 2);
   1304         DEBUGLOG(4, "rsyncLog = %u", rsyncBits);
   1305         mtctx->rsync.hash = 0;
   1306         mtctx->rsync.hitMask = (1ULL << rsyncBits) - 1;
   1307         mtctx->rsync.primePower = ZSTD_rollingHash_primePower(RSYNC_LENGTH);
   1308     }
   1309     if (mtctx->targetSectionSize < mtctx->targetPrefixSize) mtctx->targetSectionSize = mtctx->targetPrefixSize;  /* job size must be >= overlap size */
   1310     DEBUGLOG(4, "Job Size : %u KB (note : set to %u)", (U32)(mtctx->targetSectionSize>>10), (U32)params.jobSize);
   1311     DEBUGLOG(4, "inBuff Size : %u KB", (U32)(mtctx->targetSectionSize>>10));
   1312     ZSTDMT_setBufferSize(mtctx->bufPool, ZSTD_compressBound(mtctx->targetSectionSize));
   1313     {
   1314         /* If ldm is enabled we need windowSize space. */
   1315         size_t const windowSize = mtctx->params.ldmParams.enableLdm == ZSTD_ps_enable ? (1U << mtctx->params.cParams.windowLog) : 0;
   1316         /* Two buffers of slack, plus extra space for the overlap
   1317          * This is the minimum slack that LDM works with. One extra because
   1318          * flush might waste up to targetSectionSize-1 bytes. Another extra
   1319          * for the overlap (if > 0), then one to fill which doesn't overlap
   1320          * with the LDM window.
   1321          */
   1322         size_t const nbSlackBuffers = 2 + (mtctx->targetPrefixSize > 0);
   1323         size_t const slackSize = mtctx->targetSectionSize * nbSlackBuffers;
   1324         /* Compute the total size, and always have enough slack */
   1325         size_t const nbWorkers = MAX(mtctx->params.nbWorkers, 1);
   1326         size_t const sectionsSize = mtctx->targetSectionSize * nbWorkers;
   1327         size_t const capacity = MAX(windowSize, sectionsSize) + slackSize;
   1328         if (mtctx->roundBuff.capacity < capacity) {
   1329             if (mtctx->roundBuff.buffer)
   1330                 ZSTD_customFree(mtctx->roundBuff.buffer, mtctx->cMem);
   1331             mtctx->roundBuff.buffer = (BYTE*)ZSTD_customMalloc(capacity, mtctx->cMem);
   1332             if (mtctx->roundBuff.buffer == NULL) {
   1333                 mtctx->roundBuff.capacity = 0;
   1334                 return ERROR(memory_allocation);
   1335             }
   1336             mtctx->roundBuff.capacity = capacity;
   1337         }
   1338     }
   1339     DEBUGLOG(4, "roundBuff capacity : %u KB", (U32)(mtctx->roundBuff.capacity>>10));
   1340     mtctx->roundBuff.pos = 0;
   1341     mtctx->inBuff.buffer = g_nullBuffer;
   1342     mtctx->inBuff.filled = 0;
   1343     mtctx->inBuff.prefix = kNullRange;
   1344     mtctx->doneJobID = 0;
   1345     mtctx->nextJobID = 0;
   1346     mtctx->frameEnded = 0;
   1347     mtctx->allJobsCompleted = 0;
   1348     mtctx->consumed = 0;
   1349     mtctx->produced = 0;
   1350 
   1351     /* update dictionary */
   1352     ZSTD_freeCDict(mtctx->cdictLocal);
   1353     mtctx->cdictLocal = NULL;
   1354     mtctx->cdict = NULL;
   1355     if (dict) {
   1356         if (dictContentType == ZSTD_dct_rawContent) {
   1357             mtctx->inBuff.prefix.start = (const BYTE*)dict;
   1358             mtctx->inBuff.prefix.size = dictSize;
   1359         } else {
   1360             /* note : a loadPrefix becomes an internal CDict */
   1361             mtctx->cdictLocal = ZSTD_createCDict_advanced(dict, dictSize,
   1362                                                         ZSTD_dlm_byRef, dictContentType,
   1363                                                         params.cParams, mtctx->cMem);
   1364             mtctx->cdict = mtctx->cdictLocal;
   1365             if (mtctx->cdictLocal == NULL) return ERROR(memory_allocation);
   1366         }
   1367     } else {
   1368         mtctx->cdict = cdict;
   1369     }
   1370 
   1371     if (ZSTDMT_serialState_reset(&mtctx->serial, mtctx->seqPool, params, mtctx->targetSectionSize,
   1372                                  dict, dictSize, dictContentType))
   1373         return ERROR(memory_allocation);
   1374 
   1375 
   1376     return 0;
   1377 }
   1378 
   1379 
   1380 /* ZSTDMT_writeLastEmptyBlock()
   1381  * Write a single empty block with an end-of-frame to finish a frame.
   1382  * Job must be created from streaming variant.
   1383  * This function is always successful if expected conditions are fulfilled.
   1384  */
   1385 static void ZSTDMT_writeLastEmptyBlock(ZSTDMT_jobDescription* job)
   1386 {
   1387     assert(job->lastJob == 1);
   1388     assert(job->src.size == 0);   /* last job is empty -> will be simplified into a last empty block */
   1389     assert(job->firstJob == 0);   /* cannot be first job, as it also needs to create frame header */
   1390     assert(job->dstBuff.start == NULL);   /* invoked from streaming variant only (otherwise, dstBuff might be user's output) */
   1391     job->dstBuff = ZSTDMT_getBuffer(job->bufPool);
   1392     if (job->dstBuff.start == NULL) {
   1393       job->cSize = ERROR(memory_allocation);
   1394       return;
   1395     }
   1396     assert(job->dstBuff.capacity >= ZSTD_blockHeaderSize);   /* no buffer should ever be that small */
   1397     job->src = kNullRange;
   1398     job->cSize = ZSTD_writeLastEmptyBlock(job->dstBuff.start, job->dstBuff.capacity);
   1399     assert(!ZSTD_isError(job->cSize));
   1400     assert(job->consumed == 0);
   1401 }
   1402 
   1403 static size_t ZSTDMT_createCompressionJob(ZSTDMT_CCtx* mtctx, size_t srcSize, ZSTD_EndDirective endOp)
   1404 {
   1405     unsigned const jobID = mtctx->nextJobID & mtctx->jobIDMask;
   1406     int const endFrame = (endOp == ZSTD_e_end);
   1407 
   1408     if (mtctx->nextJobID > mtctx->doneJobID + mtctx->jobIDMask) {
   1409         DEBUGLOG(5, "ZSTDMT_createCompressionJob: will not create new job : table is full");
   1410         assert((mtctx->nextJobID & mtctx->jobIDMask) == (mtctx->doneJobID & mtctx->jobIDMask));
   1411         return 0;
   1412     }
   1413 
   1414     if (!mtctx->jobReady) {
   1415         BYTE const* src = (BYTE const*)mtctx->inBuff.buffer.start;
   1416         DEBUGLOG(5, "ZSTDMT_createCompressionJob: preparing job %u to compress %u bytes with %u preload ",
   1417                     mtctx->nextJobID, (U32)srcSize, (U32)mtctx->inBuff.prefix.size);
   1418         mtctx->jobs[jobID].src.start = src;
   1419         mtctx->jobs[jobID].src.size = srcSize;
   1420         assert(mtctx->inBuff.filled >= srcSize);
   1421         mtctx->jobs[jobID].prefix = mtctx->inBuff.prefix;
   1422         mtctx->jobs[jobID].consumed = 0;
   1423         mtctx->jobs[jobID].cSize = 0;
   1424         mtctx->jobs[jobID].params = mtctx->params;
   1425         mtctx->jobs[jobID].cdict = mtctx->nextJobID==0 ? mtctx->cdict : NULL;
   1426         mtctx->jobs[jobID].fullFrameSize = mtctx->frameContentSize;
   1427         mtctx->jobs[jobID].dstBuff = g_nullBuffer;
   1428         mtctx->jobs[jobID].cctxPool = mtctx->cctxPool;
   1429         mtctx->jobs[jobID].bufPool = mtctx->bufPool;
   1430         mtctx->jobs[jobID].seqPool = mtctx->seqPool;
   1431         mtctx->jobs[jobID].serial = &mtctx->serial;
   1432         mtctx->jobs[jobID].jobID = mtctx->nextJobID;
   1433         mtctx->jobs[jobID].firstJob = (mtctx->nextJobID==0);
   1434         mtctx->jobs[jobID].lastJob = endFrame;
   1435         mtctx->jobs[jobID].frameChecksumNeeded = mtctx->params.fParams.checksumFlag && endFrame && (mtctx->nextJobID>0);
   1436         mtctx->jobs[jobID].dstFlushed = 0;
   1437 
   1438         /* Update the round buffer pos and clear the input buffer to be reset */
   1439         mtctx->roundBuff.pos += srcSize;
   1440         mtctx->inBuff.buffer = g_nullBuffer;
   1441         mtctx->inBuff.filled = 0;
   1442         /* Set the prefix for next job */
   1443         if (!endFrame) {
   1444             size_t const newPrefixSize = MIN(srcSize, mtctx->targetPrefixSize);
   1445             mtctx->inBuff.prefix.start = src + srcSize - newPrefixSize;
   1446             mtctx->inBuff.prefix.size = newPrefixSize;
   1447         } else {   /* endFrame==1 => no need for another input buffer */
   1448             mtctx->inBuff.prefix = kNullRange;
   1449             mtctx->frameEnded = endFrame;
   1450             if (mtctx->nextJobID == 0) {
   1451                 /* single job exception : checksum is already calculated directly within worker thread */
   1452                 mtctx->params.fParams.checksumFlag = 0;
   1453         }   }
   1454 
   1455         if ( (srcSize == 0)
   1456           && (mtctx->nextJobID>0)/*single job must also write frame header*/ ) {
   1457             DEBUGLOG(5, "ZSTDMT_createCompressionJob: creating a last empty block to end frame");
   1458             assert(endOp == ZSTD_e_end);  /* only possible case : need to end the frame with an empty last block */
   1459             ZSTDMT_writeLastEmptyBlock(mtctx->jobs + jobID);
   1460             mtctx->nextJobID++;
   1461             return 0;
   1462         }
   1463     }
   1464 
   1465     DEBUGLOG(5, "ZSTDMT_createCompressionJob: posting job %u : %u bytes  (end:%u, jobNb == %u (mod:%u))",
   1466                 mtctx->nextJobID,
   1467                 (U32)mtctx->jobs[jobID].src.size,
   1468                 mtctx->jobs[jobID].lastJob,
   1469                 mtctx->nextJobID,
   1470                 jobID);
   1471     if (POOL_tryAdd(mtctx->factory, ZSTDMT_compressionJob, &mtctx->jobs[jobID])) {
   1472         mtctx->nextJobID++;
   1473         mtctx->jobReady = 0;
   1474     } else {
   1475         DEBUGLOG(5, "ZSTDMT_createCompressionJob: no worker available for job %u", mtctx->nextJobID);
   1476         mtctx->jobReady = 1;
   1477     }
   1478     return 0;
   1479 }
   1480 
   1481 
   1482 /*! ZSTDMT_flushProduced() :
   1483  *  flush whatever data has been produced but not yet flushed in current job.
   1484  *  move to next job if current one is fully flushed.
   1485  * `output` : `pos` will be updated with amount of data flushed .
   1486  * `blockToFlush` : if >0, the function will block and wait if there is no data available to flush .
   1487  * @return : amount of data remaining within internal buffer, 0 if no more, 1 if unknown but > 0, or an error code */
   1488 static size_t ZSTDMT_flushProduced(ZSTDMT_CCtx* mtctx, ZSTD_outBuffer* output, unsigned blockToFlush, ZSTD_EndDirective end)
   1489 {
   1490     unsigned const wJobID = mtctx->doneJobID & mtctx->jobIDMask;
   1491     DEBUGLOG(5, "ZSTDMT_flushProduced (blocking:%u , job %u <= %u)",
   1492                 blockToFlush, mtctx->doneJobID, mtctx->nextJobID);
   1493     assert(output->size >= output->pos);
   1494 
   1495     ZSTD_PTHREAD_MUTEX_LOCK(&mtctx->jobs[wJobID].job_mutex);
   1496     if (  blockToFlush
   1497       && (mtctx->doneJobID < mtctx->nextJobID) ) {
   1498         assert(mtctx->jobs[wJobID].dstFlushed <= mtctx->jobs[wJobID].cSize);
   1499         while (mtctx->jobs[wJobID].dstFlushed == mtctx->jobs[wJobID].cSize) {  /* nothing to flush */
   1500             if (mtctx->jobs[wJobID].consumed == mtctx->jobs[wJobID].src.size) {
   1501                 DEBUGLOG(5, "job %u is completely consumed (%u == %u) => don't wait for cond, there will be none",
   1502                             mtctx->doneJobID, (U32)mtctx->jobs[wJobID].consumed, (U32)mtctx->jobs[wJobID].src.size);
   1503                 break;
   1504             }
   1505             DEBUGLOG(5, "waiting for something to flush from job %u (currently flushed: %u bytes)",
   1506                         mtctx->doneJobID, (U32)mtctx->jobs[wJobID].dstFlushed);
   1507             ZSTD_pthread_cond_wait(&mtctx->jobs[wJobID].job_cond, &mtctx->jobs[wJobID].job_mutex);  /* block when nothing to flush but some to come */
   1508     }   }
   1509 
   1510     /* try to flush something */
   1511     {   size_t cSize = mtctx->jobs[wJobID].cSize;                  /* shared */
   1512         size_t const srcConsumed = mtctx->jobs[wJobID].consumed;   /* shared */
   1513         size_t const srcSize = mtctx->jobs[wJobID].src.size;       /* read-only, could be done after mutex lock, but no-declaration-after-statement */
   1514         ZSTD_pthread_mutex_unlock(&mtctx->jobs[wJobID].job_mutex);
   1515         if (ZSTD_isError(cSize)) {
   1516             DEBUGLOG(5, "ZSTDMT_flushProduced: job %u : compression error detected : %s",
   1517                         mtctx->doneJobID, ZSTD_getErrorName(cSize));
   1518             ZSTDMT_waitForAllJobsCompleted(mtctx);
   1519             ZSTDMT_releaseAllJobResources(mtctx);
   1520             return cSize;
   1521         }
   1522         /* add frame checksum if necessary (can only happen once) */
   1523         assert(srcConsumed <= srcSize);
   1524         if ( (srcConsumed == srcSize)   /* job completed -> worker no longer active */
   1525           && mtctx->jobs[wJobID].frameChecksumNeeded ) {
   1526             U32 const checksum = (U32)XXH64_digest(&mtctx->serial.xxhState);
   1527             DEBUGLOG(4, "ZSTDMT_flushProduced: writing checksum : %08X \n", checksum);
   1528             MEM_writeLE32((char*)mtctx->jobs[wJobID].dstBuff.start + mtctx->jobs[wJobID].cSize, checksum);
   1529             cSize += 4;
   1530             mtctx->jobs[wJobID].cSize += 4;  /* can write this shared value, as worker is no longer active */
   1531             mtctx->jobs[wJobID].frameChecksumNeeded = 0;
   1532         }
   1533 
   1534         if (cSize > 0) {   /* compression is ongoing or completed */
   1535             size_t const toFlush = MIN(cSize - mtctx->jobs[wJobID].dstFlushed, output->size - output->pos);
   1536             DEBUGLOG(5, "ZSTDMT_flushProduced: Flushing %u bytes from job %u (completion:%u/%u, generated:%u)",
   1537                         (U32)toFlush, mtctx->doneJobID, (U32)srcConsumed, (U32)srcSize, (U32)cSize);
   1538             assert(mtctx->doneJobID < mtctx->nextJobID);
   1539             assert(cSize >= mtctx->jobs[wJobID].dstFlushed);
   1540             assert(mtctx->jobs[wJobID].dstBuff.start != NULL);
   1541             if (toFlush > 0) {
   1542                 ZSTD_memcpy((char*)output->dst + output->pos,
   1543                     (const char*)mtctx->jobs[wJobID].dstBuff.start + mtctx->jobs[wJobID].dstFlushed,
   1544                     toFlush);
   1545             }
   1546             output->pos += toFlush;
   1547             mtctx->jobs[wJobID].dstFlushed += toFlush;  /* can write : this value is only used by mtctx */
   1548 
   1549             if ( (srcConsumed == srcSize)    /* job is completed */
   1550               && (mtctx->jobs[wJobID].dstFlushed == cSize) ) {   /* output buffer fully flushed => free this job position */
   1551                 DEBUGLOG(5, "Job %u completed (%u bytes), moving to next one",
   1552                         mtctx->doneJobID, (U32)mtctx->jobs[wJobID].dstFlushed);
   1553                 ZSTDMT_releaseBuffer(mtctx->bufPool, mtctx->jobs[wJobID].dstBuff);
   1554                 DEBUGLOG(5, "dstBuffer released");
   1555                 mtctx->jobs[wJobID].dstBuff = g_nullBuffer;
   1556                 mtctx->jobs[wJobID].cSize = 0;   /* ensure this job slot is considered "not started" in future check */
   1557                 mtctx->consumed += srcSize;
   1558                 mtctx->produced += cSize;
   1559                 mtctx->doneJobID++;
   1560         }   }
   1561 
   1562         /* return value : how many bytes left in buffer ; fake it to 1 when unknown but >0 */
   1563         if (cSize > mtctx->jobs[wJobID].dstFlushed) return (cSize - mtctx->jobs[wJobID].dstFlushed);
   1564         if (srcSize > srcConsumed) return 1;   /* current job not completely compressed */
   1565     }
   1566     if (mtctx->doneJobID < mtctx->nextJobID) return 1;   /* some more jobs ongoing */
   1567     if (mtctx->jobReady) return 1;      /* one job is ready to push, just not yet in the list */
   1568     if (mtctx->inBuff.filled > 0) return 1;   /* input is not empty, and still needs to be converted into a job */
   1569     mtctx->allJobsCompleted = mtctx->frameEnded;   /* all jobs are entirely flushed => if this one is last one, frame is completed */
   1570     if (end == ZSTD_e_end) return !mtctx->frameEnded;  /* for ZSTD_e_end, question becomes : is frame completed ? instead of : are internal buffers fully flushed ? */
   1571     return 0;   /* internal buffers fully flushed */
   1572 }
   1573 
   1574 /**
   1575  * Returns the range of data used by the earliest job that is not yet complete.
   1576  * If the data of the first job is broken up into two segments, we cover both
   1577  * sections.
   1578  */
   1579 static Range ZSTDMT_getInputDataInUse(ZSTDMT_CCtx* mtctx)
   1580 {
   1581     unsigned const firstJobID = mtctx->doneJobID;
   1582     unsigned const lastJobID = mtctx->nextJobID;
   1583     unsigned jobID;
   1584 
   1585     /* no need to check during first round */
   1586     size_t roundBuffCapacity = mtctx->roundBuff.capacity;
   1587     size_t nbJobs1stRoundMin = roundBuffCapacity / mtctx->targetSectionSize;
   1588     if (lastJobID < nbJobs1stRoundMin) return kNullRange;
   1589 
   1590     for (jobID = firstJobID; jobID < lastJobID; ++jobID) {
   1591         unsigned const wJobID = jobID & mtctx->jobIDMask;
   1592         size_t consumed;
   1593 
   1594         ZSTD_PTHREAD_MUTEX_LOCK(&mtctx->jobs[wJobID].job_mutex);
   1595         consumed = mtctx->jobs[wJobID].consumed;
   1596         ZSTD_pthread_mutex_unlock(&mtctx->jobs[wJobID].job_mutex);
   1597 
   1598         if (consumed < mtctx->jobs[wJobID].src.size) {
   1599             Range range = mtctx->jobs[wJobID].prefix;
   1600             if (range.size == 0) {
   1601                 /* Empty prefix */
   1602                 range = mtctx->jobs[wJobID].src;
   1603             }
   1604             /* Job source in multiple segments not supported yet */
   1605             assert(range.start <= mtctx->jobs[wJobID].src.start);
   1606             return range;
   1607         }
   1608     }
   1609     return kNullRange;
   1610 }
   1611 
   1612 /**
   1613  * Returns non-zero iff buffer and range overlap.
   1614  */
   1615 static int ZSTDMT_isOverlapped(Buffer buffer, Range range)
   1616 {
   1617     BYTE const* const bufferStart = (BYTE const*)buffer.start;
   1618     BYTE const* const rangeStart = (BYTE const*)range.start;
   1619 
   1620     if (rangeStart == NULL || bufferStart == NULL)
   1621         return 0;
   1622 
   1623     {
   1624         BYTE const* const bufferEnd = bufferStart + buffer.capacity;
   1625         BYTE const* const rangeEnd = rangeStart + range.size;
   1626 
   1627         /* Empty ranges cannot overlap */
   1628         if (bufferStart == bufferEnd || rangeStart == rangeEnd)
   1629             return 0;
   1630 
   1631         return bufferStart < rangeEnd && rangeStart < bufferEnd;
   1632     }
   1633 }
   1634 
   1635 static int ZSTDMT_doesOverlapWindow(Buffer buffer, ZSTD_window_t window)
   1636 {
   1637     Range extDict;
   1638     Range prefix;
   1639 
   1640     DEBUGLOG(5, "ZSTDMT_doesOverlapWindow");
   1641     extDict.start = window.dictBase + window.lowLimit;
   1642     extDict.size = window.dictLimit - window.lowLimit;
   1643 
   1644     prefix.start = window.base + window.dictLimit;
   1645     prefix.size = window.nextSrc - (window.base + window.dictLimit);
   1646     DEBUGLOG(5, "extDict [0x%zx, 0x%zx)",
   1647                 (size_t)extDict.start,
   1648                 (size_t)extDict.start + extDict.size);
   1649     DEBUGLOG(5, "prefix  [0x%zx, 0x%zx)",
   1650                 (size_t)prefix.start,
   1651                 (size_t)prefix.start + prefix.size);
   1652 
   1653     return ZSTDMT_isOverlapped(buffer, extDict)
   1654         || ZSTDMT_isOverlapped(buffer, prefix);
   1655 }
   1656 
   1657 static void ZSTDMT_waitForLdmComplete(ZSTDMT_CCtx* mtctx, Buffer buffer)
   1658 {
   1659     if (mtctx->params.ldmParams.enableLdm == ZSTD_ps_enable) {
   1660         ZSTD_pthread_mutex_t* mutex = &mtctx->serial.ldmWindowMutex;
   1661         DEBUGLOG(5, "ZSTDMT_waitForLdmComplete");
   1662         DEBUGLOG(5, "source  [0x%zx, 0x%zx)",
   1663                     (size_t)buffer.start,
   1664                     (size_t)buffer.start + buffer.capacity);
   1665         ZSTD_PTHREAD_MUTEX_LOCK(mutex);
   1666         while (ZSTDMT_doesOverlapWindow(buffer, mtctx->serial.ldmWindow)) {
   1667             DEBUGLOG(5, "Waiting for LDM to finish...");
   1668             ZSTD_pthread_cond_wait(&mtctx->serial.ldmWindowCond, mutex);
   1669         }
   1670         DEBUGLOG(6, "Done waiting for LDM to finish");
   1671         ZSTD_pthread_mutex_unlock(mutex);
   1672     }
   1673 }
   1674 
   1675 /**
   1676  * Attempts to set the inBuff to the next section to fill.
   1677  * If any part of the new section is still in use we give up.
   1678  * Returns non-zero if the buffer is filled.
   1679  */
   1680 static int ZSTDMT_tryGetInputRange(ZSTDMT_CCtx* mtctx)
   1681 {
   1682     Range const inUse = ZSTDMT_getInputDataInUse(mtctx);
   1683     size_t const spaceLeft = mtctx->roundBuff.capacity - mtctx->roundBuff.pos;
   1684     size_t const spaceNeeded = mtctx->targetSectionSize;
   1685     Buffer buffer;
   1686 
   1687     DEBUGLOG(5, "ZSTDMT_tryGetInputRange");
   1688     assert(mtctx->inBuff.buffer.start == NULL);
   1689     assert(mtctx->roundBuff.capacity >= spaceNeeded);
   1690 
   1691     if (spaceLeft < spaceNeeded) {
   1692         /* ZSTD_invalidateRepCodes() doesn't work for extDict variants.
   1693          * Simply copy the prefix to the beginning in that case.
   1694          */
   1695         BYTE* const start = (BYTE*)mtctx->roundBuff.buffer;
   1696         size_t const prefixSize = mtctx->inBuff.prefix.size;
   1697 
   1698         buffer.start = start;
   1699         buffer.capacity = prefixSize;
   1700         if (ZSTDMT_isOverlapped(buffer, inUse)) {
   1701             DEBUGLOG(5, "Waiting for buffer...");
   1702             return 0;
   1703         }
   1704         ZSTDMT_waitForLdmComplete(mtctx, buffer);
   1705         ZSTD_memmove(start, mtctx->inBuff.prefix.start, prefixSize);
   1706         mtctx->inBuff.prefix.start = start;
   1707         mtctx->roundBuff.pos = prefixSize;
   1708     }
   1709     buffer.start = mtctx->roundBuff.buffer + mtctx->roundBuff.pos;
   1710     buffer.capacity = spaceNeeded;
   1711 
   1712     if (ZSTDMT_isOverlapped(buffer, inUse)) {
   1713         DEBUGLOG(5, "Waiting for buffer...");
   1714         return 0;
   1715     }
   1716     assert(!ZSTDMT_isOverlapped(buffer, mtctx->inBuff.prefix));
   1717 
   1718     ZSTDMT_waitForLdmComplete(mtctx, buffer);
   1719 
   1720     DEBUGLOG(5, "Using prefix range [%zx, %zx)",
   1721                 (size_t)mtctx->inBuff.prefix.start,
   1722                 (size_t)mtctx->inBuff.prefix.start + mtctx->inBuff.prefix.size);
   1723     DEBUGLOG(5, "Using source range [%zx, %zx)",
   1724                 (size_t)buffer.start,
   1725                 (size_t)buffer.start + buffer.capacity);
   1726 
   1727 
   1728     mtctx->inBuff.buffer = buffer;
   1729     mtctx->inBuff.filled = 0;
   1730     assert(mtctx->roundBuff.pos + buffer.capacity <= mtctx->roundBuff.capacity);
   1731     return 1;
   1732 }
   1733 
   1734 typedef struct {
   1735   size_t toLoad;  /* The number of bytes to load from the input. */
   1736   int flush;      /* Boolean declaring if we must flush because we found a synchronization point. */
   1737 } SyncPoint;
   1738 
   1739 /**
   1740  * Searches through the input for a synchronization point. If one is found, we
   1741  * will instruct the caller to flush, and return the number of bytes to load.
   1742  * Otherwise, we will load as many bytes as possible and instruct the caller
   1743  * to continue as normal.
   1744  */
   1745 static SyncPoint
   1746 findSynchronizationPoint(ZSTDMT_CCtx const* mtctx, ZSTD_inBuffer const input)
   1747 {
   1748     BYTE const* const istart = (BYTE const*)input.src + input.pos;
   1749     U64 const primePower = mtctx->rsync.primePower;
   1750     U64 const hitMask = mtctx->rsync.hitMask;
   1751 
   1752     SyncPoint syncPoint;
   1753     U64 hash;
   1754     BYTE const* prev;
   1755     size_t pos;
   1756 
   1757     syncPoint.toLoad = MIN(input.size - input.pos, mtctx->targetSectionSize - mtctx->inBuff.filled);
   1758     syncPoint.flush = 0;
   1759     if (!mtctx->params.rsyncable)
   1760         /* Rsync is disabled. */
   1761         return syncPoint;
   1762     if (mtctx->inBuff.filled + input.size - input.pos < RSYNC_MIN_BLOCK_SIZE)
   1763         /* We don't emit synchronization points if it would produce too small blocks.
   1764          * We don't have enough input to find a synchronization point, so don't look.
   1765          */
   1766         return syncPoint;
   1767     if (mtctx->inBuff.filled + syncPoint.toLoad < RSYNC_LENGTH)
   1768         /* Not enough to compute the hash.
   1769          * We will miss any synchronization points in this RSYNC_LENGTH byte
   1770          * window. However, since it depends only in the internal buffers, if the
   1771          * state is already synchronized, we will remain synchronized.
   1772          * Additionally, the probability that we miss a synchronization point is
   1773          * low: RSYNC_LENGTH / targetSectionSize.
   1774          */
   1775         return syncPoint;
   1776     /* Initialize the loop variables. */
   1777     if (mtctx->inBuff.filled < RSYNC_MIN_BLOCK_SIZE) {
   1778         /* We don't need to scan the first RSYNC_MIN_BLOCK_SIZE positions
   1779          * because they can't possibly be a sync point. So we can start
   1780          * part way through the input buffer.
   1781          */
   1782         pos = RSYNC_MIN_BLOCK_SIZE - mtctx->inBuff.filled;
   1783         if (pos >= RSYNC_LENGTH) {
   1784             prev = istart + pos - RSYNC_LENGTH;
   1785             hash = ZSTD_rollingHash_compute(prev, RSYNC_LENGTH);
   1786         } else {
   1787             assert(mtctx->inBuff.filled >= RSYNC_LENGTH);
   1788             prev = (BYTE const*)mtctx->inBuff.buffer.start + mtctx->inBuff.filled - RSYNC_LENGTH;
   1789             hash = ZSTD_rollingHash_compute(prev + pos, (RSYNC_LENGTH - pos));
   1790             hash = ZSTD_rollingHash_append(hash, istart, pos);
   1791         }
   1792     } else {
   1793         /* We have enough bytes buffered to initialize the hash,
   1794          * and have processed enough bytes to find a sync point.
   1795          * Start scanning at the beginning of the input.
   1796          */
   1797         assert(mtctx->inBuff.filled >= RSYNC_MIN_BLOCK_SIZE);
   1798         assert(RSYNC_MIN_BLOCK_SIZE >= RSYNC_LENGTH);
   1799         pos = 0;
   1800         prev = (BYTE const*)mtctx->inBuff.buffer.start + mtctx->inBuff.filled - RSYNC_LENGTH;
   1801         hash = ZSTD_rollingHash_compute(prev, RSYNC_LENGTH);
   1802         if ((hash & hitMask) == hitMask) {
   1803             /* We're already at a sync point so don't load any more until
   1804              * we're able to flush this sync point.
   1805              * This likely happened because the job table was full so we
   1806              * couldn't add our job.
   1807              */
   1808             syncPoint.toLoad = 0;
   1809             syncPoint.flush = 1;
   1810             return syncPoint;
   1811         }
   1812     }
   1813     /* Starting with the hash of the previous RSYNC_LENGTH bytes, roll
   1814      * through the input. If we hit a synchronization point, then cut the
   1815      * job off, and tell the compressor to flush the job. Otherwise, load
   1816      * all the bytes and continue as normal.
   1817      * If we go too long without a synchronization point (targetSectionSize)
   1818      * then a block will be emitted anyways, but this is okay, since if we
   1819      * are already synchronized we will remain synchronized.
   1820      */
   1821     assert(pos < RSYNC_LENGTH || ZSTD_rollingHash_compute(istart + pos - RSYNC_LENGTH, RSYNC_LENGTH) == hash);
   1822     for (; pos < syncPoint.toLoad; ++pos) {
   1823         BYTE const toRemove = pos < RSYNC_LENGTH ? prev[pos] : istart[pos - RSYNC_LENGTH];
   1824         /* This assert is very expensive, and Debian compiles with asserts enabled.
   1825          * So disable it for now. We can get similar coverage by checking it at the
   1826          * beginning & end of the loop.
   1827          * assert(pos < RSYNC_LENGTH || ZSTD_rollingHash_compute(istart + pos - RSYNC_LENGTH, RSYNC_LENGTH) == hash);
   1828          */
   1829         hash = ZSTD_rollingHash_rotate(hash, toRemove, istart[pos], primePower);
   1830         assert(mtctx->inBuff.filled + pos >= RSYNC_MIN_BLOCK_SIZE);
   1831         if ((hash & hitMask) == hitMask) {
   1832             syncPoint.toLoad = pos + 1;
   1833             syncPoint.flush = 1;
   1834             ++pos; /* for assert */
   1835             break;
   1836         }
   1837     }
   1838     assert(pos < RSYNC_LENGTH || ZSTD_rollingHash_compute(istart + pos - RSYNC_LENGTH, RSYNC_LENGTH) == hash);
   1839     return syncPoint;
   1840 }
   1841 
   1842 size_t ZSTDMT_nextInputSizeHint(const ZSTDMT_CCtx* mtctx)
   1843 {
   1844     size_t hintInSize = mtctx->targetSectionSize - mtctx->inBuff.filled;
   1845     if (hintInSize==0) hintInSize = mtctx->targetSectionSize;
   1846     return hintInSize;
   1847 }
   1848 
   1849 /** ZSTDMT_compressStream_generic() :
   1850  *  internal use only - exposed to be invoked from zstd_compress.c
   1851  *  assumption : output and input are valid (pos <= size)
   1852  * @return : minimum amount of data remaining to flush, 0 if none */
   1853 size_t ZSTDMT_compressStream_generic(ZSTDMT_CCtx* mtctx,
   1854                                      ZSTD_outBuffer* output,
   1855                                      ZSTD_inBuffer* input,
   1856                                      ZSTD_EndDirective endOp)
   1857 {
   1858     unsigned forwardInputProgress = 0;
   1859     DEBUGLOG(5, "ZSTDMT_compressStream_generic (endOp=%u, srcSize=%u)",
   1860                 (U32)endOp, (U32)(input->size - input->pos));
   1861     assert(output->pos <= output->size);
   1862     assert(input->pos  <= input->size);
   1863 
   1864     if ((mtctx->frameEnded) && (endOp==ZSTD_e_continue)) {
   1865         /* current frame being ended. Only flush/end are allowed */
   1866         return ERROR(stage_wrong);
   1867     }
   1868 
   1869     /* fill input buffer */
   1870     if ( (!mtctx->jobReady)
   1871       && (input->size > input->pos) ) {   /* support NULL input */
   1872         if (mtctx->inBuff.buffer.start == NULL) {
   1873             assert(mtctx->inBuff.filled == 0); /* Can't fill an empty buffer */
   1874             if (!ZSTDMT_tryGetInputRange(mtctx)) {
   1875                 /* It is only possible for this operation to fail if there are
   1876                  * still compression jobs ongoing.
   1877                  */
   1878                 DEBUGLOG(5, "ZSTDMT_tryGetInputRange failed");
   1879                 assert(mtctx->doneJobID != mtctx->nextJobID);
   1880             } else
   1881                 DEBUGLOG(5, "ZSTDMT_tryGetInputRange completed successfully : mtctx->inBuff.buffer.start = %p", mtctx->inBuff.buffer.start);
   1882         }
   1883         if (mtctx->inBuff.buffer.start != NULL) {
   1884             SyncPoint const syncPoint = findSynchronizationPoint(mtctx, *input);
   1885             if (syncPoint.flush && endOp == ZSTD_e_continue) {
   1886                 endOp = ZSTD_e_flush;
   1887             }
   1888             assert(mtctx->inBuff.buffer.capacity >= mtctx->targetSectionSize);
   1889             DEBUGLOG(5, "ZSTDMT_compressStream_generic: adding %u bytes on top of %u to buffer of size %u",
   1890                         (U32)syncPoint.toLoad, (U32)mtctx->inBuff.filled, (U32)mtctx->targetSectionSize);
   1891             ZSTD_memcpy((char*)mtctx->inBuff.buffer.start + mtctx->inBuff.filled, (const char*)input->src + input->pos, syncPoint.toLoad);
   1892             input->pos += syncPoint.toLoad;
   1893             mtctx->inBuff.filled += syncPoint.toLoad;
   1894             forwardInputProgress = syncPoint.toLoad>0;
   1895         }
   1896     }
   1897     if ((input->pos < input->size) && (endOp == ZSTD_e_end)) {
   1898         /* Can't end yet because the input is not fully consumed.
   1899             * We are in one of these cases:
   1900             * - mtctx->inBuff is NULL & empty: we couldn't get an input buffer so don't create a new job.
   1901             * - We filled the input buffer: flush this job but don't end the frame.
   1902             * - We hit a synchronization point: flush this job but don't end the frame.
   1903             */
   1904         assert(mtctx->inBuff.filled == 0 || mtctx->inBuff.filled == mtctx->targetSectionSize || mtctx->params.rsyncable);
   1905         endOp = ZSTD_e_flush;
   1906     }
   1907 
   1908     if ( (mtctx->jobReady)
   1909       || (mtctx->inBuff.filled >= mtctx->targetSectionSize)  /* filled enough : let's compress */
   1910       || ((endOp != ZSTD_e_continue) && (mtctx->inBuff.filled > 0))  /* something to flush : let's go */
   1911       || ((endOp == ZSTD_e_end) && (!mtctx->frameEnded)) ) {   /* must finish the frame with a zero-size block */
   1912         size_t const jobSize = mtctx->inBuff.filled;
   1913         assert(mtctx->inBuff.filled <= mtctx->targetSectionSize);
   1914         FORWARD_IF_ERROR( ZSTDMT_createCompressionJob(mtctx, jobSize, endOp) , "");
   1915     }
   1916 
   1917     /* check for potential compressed data ready to be flushed */
   1918     {   size_t const remainingToFlush = ZSTDMT_flushProduced(mtctx, output, !forwardInputProgress, endOp); /* block if there was no forward input progress */
   1919         if (input->pos < input->size) return MAX(remainingToFlush, 1);  /* input not consumed : do not end flush yet */
   1920         DEBUGLOG(5, "end of ZSTDMT_compressStream_generic: remainingToFlush = %u", (U32)remainingToFlush);
   1921         return remainingToFlush;
   1922     }
   1923 }
   1924