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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 #include "zstd_compress_internal.h"  /* ZSTD_hashPtr, ZSTD_count, ZSTD_storeSeq */
     12 #include "zstd_fast.h"
     13 
     14 static
     15 ZSTD_ALLOW_POINTER_OVERFLOW_ATTR
     16 void ZSTD_fillHashTableForCDict(ZSTD_MatchState_t* ms,
     17                         const void* const end,
     18                         ZSTD_dictTableLoadMethod_e dtlm)
     19 {
     20     const ZSTD_compressionParameters* const cParams = &ms->cParams;
     21     U32* const hashTable = ms->hashTable;
     22     U32  const hBits = cParams->hashLog + ZSTD_SHORT_CACHE_TAG_BITS;
     23     U32  const mls = cParams->minMatch;
     24     const BYTE* const base = ms->window.base;
     25     const BYTE* ip = base + ms->nextToUpdate;
     26     const BYTE* const iend = ((const BYTE*)end) - HASH_READ_SIZE;
     27     const U32 fastHashFillStep = 3;
     28 
     29     /* Currently, we always use ZSTD_dtlm_full for filling CDict tables.
     30      * Feel free to remove this assert if there's a good reason! */
     31     assert(dtlm == ZSTD_dtlm_full);
     32 
     33     /* Always insert every fastHashFillStep position into the hash table.
     34      * Insert the other positions if their hash entry is empty.
     35      */
     36     for ( ; ip + fastHashFillStep < iend + 2; ip += fastHashFillStep) {
     37         U32 const curr = (U32)(ip - base);
     38         {   size_t const hashAndTag = ZSTD_hashPtr(ip, hBits, mls);
     39             ZSTD_writeTaggedIndex(hashTable, hashAndTag, curr);   }
     40 
     41         if (dtlm == ZSTD_dtlm_fast) continue;
     42         /* Only load extra positions for ZSTD_dtlm_full */
     43         {   U32 p;
     44             for (p = 1; p < fastHashFillStep; ++p) {
     45                 size_t const hashAndTag = ZSTD_hashPtr(ip + p, hBits, mls);
     46                 if (hashTable[hashAndTag >> ZSTD_SHORT_CACHE_TAG_BITS] == 0) {  /* not yet filled */
     47                     ZSTD_writeTaggedIndex(hashTable, hashAndTag, curr + p);
     48     }   }   }   }
     49 }
     50 
     51 static
     52 ZSTD_ALLOW_POINTER_OVERFLOW_ATTR
     53 void ZSTD_fillHashTableForCCtx(ZSTD_MatchState_t* ms,
     54                         const void* const end,
     55                         ZSTD_dictTableLoadMethod_e dtlm)
     56 {
     57     const ZSTD_compressionParameters* const cParams = &ms->cParams;
     58     U32* const hashTable = ms->hashTable;
     59     U32  const hBits = cParams->hashLog;
     60     U32  const mls = cParams->minMatch;
     61     const BYTE* const base = ms->window.base;
     62     const BYTE* ip = base + ms->nextToUpdate;
     63     const BYTE* const iend = ((const BYTE*)end) - HASH_READ_SIZE;
     64     const U32 fastHashFillStep = 3;
     65 
     66     /* Currently, we always use ZSTD_dtlm_fast for filling CCtx tables.
     67      * Feel free to remove this assert if there's a good reason! */
     68     assert(dtlm == ZSTD_dtlm_fast);
     69 
     70     /* Always insert every fastHashFillStep position into the hash table.
     71      * Insert the other positions if their hash entry is empty.
     72      */
     73     for ( ; ip + fastHashFillStep < iend + 2; ip += fastHashFillStep) {
     74         U32 const curr = (U32)(ip - base);
     75         size_t const hash0 = ZSTD_hashPtr(ip, hBits, mls);
     76         hashTable[hash0] = curr;
     77         if (dtlm == ZSTD_dtlm_fast) continue;
     78         /* Only load extra positions for ZSTD_dtlm_full */
     79         {   U32 p;
     80             for (p = 1; p < fastHashFillStep; ++p) {
     81                 size_t const hash = ZSTD_hashPtr(ip + p, hBits, mls);
     82                 if (hashTable[hash] == 0) {  /* not yet filled */
     83                     hashTable[hash] = curr + p;
     84     }   }   }   }
     85 }
     86 
     87 void ZSTD_fillHashTable(ZSTD_MatchState_t* ms,
     88                         const void* const end,
     89                         ZSTD_dictTableLoadMethod_e dtlm,
     90                         ZSTD_tableFillPurpose_e tfp)
     91 {
     92     if (tfp == ZSTD_tfp_forCDict) {
     93         ZSTD_fillHashTableForCDict(ms, end, dtlm);
     94     } else {
     95         ZSTD_fillHashTableForCCtx(ms, end, dtlm);
     96     }
     97 }
     98 
     99 
    100 typedef int (*ZSTD_match4Found) (const BYTE* currentPtr, const BYTE* matchAddress, U32 matchIdx, U32 idxLowLimit);
    101 
    102 static int
    103 ZSTD_match4Found_cmov(const BYTE* currentPtr, const BYTE* matchAddress, U32 matchIdx, U32 idxLowLimit)
    104 {
    105     /* Array of ~random data, should have low probability of matching data.
    106      * Load from here if the index is invalid.
    107      * Used to avoid unpredictable branches. */
    108     static const BYTE dummy[] = {0x12,0x34,0x56,0x78};
    109 
    110     /* currentIdx >= lowLimit is a (somewhat) unpredictable branch.
    111      * However expression below compiles into conditional move.
    112      */
    113     const BYTE* mvalAddr = ZSTD_selectAddr(matchIdx, idxLowLimit, matchAddress, dummy);
    114     /* Note: this used to be written as : return test1 && test2;
    115      * Unfortunately, once inlined, these tests become branches,
    116      * in which case it becomes critical that they are executed in the right order (test1 then test2).
    117      * So we have to write these tests in a specific manner to ensure their ordering.
    118      */
    119     if (MEM_read32(currentPtr) != MEM_read32(mvalAddr)) return 0;
    120     /* force ordering of these tests, which matters once the function is inlined, as they become branches */
    121 #if defined(__GNUC__)
    122     __asm__("");
    123 #endif
    124     return matchIdx >= idxLowLimit;
    125 }
    126 
    127 static int
    128 ZSTD_match4Found_branch(const BYTE* currentPtr, const BYTE* matchAddress, U32 matchIdx, U32 idxLowLimit)
    129 {
    130     /* using a branch instead of a cmov,
    131      * because it's faster in scenarios where matchIdx >= idxLowLimit is generally true,
    132      * aka almost all candidates are within range */
    133     U32 mval;
    134     if (matchIdx >= idxLowLimit) {
    135         mval = MEM_read32(matchAddress);
    136     } else {
    137         mval = MEM_read32(currentPtr) ^ 1; /* guaranteed to not match. */
    138     }
    139 
    140     return (MEM_read32(currentPtr) == mval);
    141 }
    142 
    143 
    144 /**
    145  * If you squint hard enough (and ignore repcodes), the search operation at any
    146  * given position is broken into 4 stages:
    147  *
    148  * 1. Hash   (map position to hash value via input read)
    149  * 2. Lookup (map hash val to index via hashtable read)
    150  * 3. Load   (map index to value at that position via input read)
    151  * 4. Compare
    152  *
    153  * Each of these steps involves a memory read at an address which is computed
    154  * from the previous step. This means these steps must be sequenced and their
    155  * latencies are cumulative.
    156  *
    157  * Rather than do 1->2->3->4 sequentially for a single position before moving
    158  * onto the next, this implementation interleaves these operations across the
    159  * next few positions:
    160  *
    161  * R = Repcode Read & Compare
    162  * H = Hash
    163  * T = Table Lookup
    164  * M = Match Read & Compare
    165  *
    166  * Pos | Time -->
    167  * ----+-------------------
    168  * N   | ... M
    169  * N+1 | ...   TM
    170  * N+2 |    R H   T M
    171  * N+3 |         H    TM
    172  * N+4 |           R H   T M
    173  * N+5 |                H   ...
    174  * N+6 |                  R ...
    175  *
    176  * This is very much analogous to the pipelining of execution in a CPU. And just
    177  * like a CPU, we have to dump the pipeline when we find a match (i.e., take a
    178  * branch).
    179  *
    180  * When this happens, we throw away our current state, and do the following prep
    181  * to re-enter the loop:
    182  *
    183  * Pos | Time -->
    184  * ----+-------------------
    185  * N   | H T
    186  * N+1 |  H
    187  *
    188  * This is also the work we do at the beginning to enter the loop initially.
    189  */
    190 FORCE_INLINE_TEMPLATE
    191 ZSTD_ALLOW_POINTER_OVERFLOW_ATTR
    192 size_t ZSTD_compressBlock_fast_noDict_generic(
    193         ZSTD_MatchState_t* ms, SeqStore_t* seqStore, U32 rep[ZSTD_REP_NUM],
    194         void const* src, size_t srcSize,
    195         U32 const mls, int useCmov)
    196 {
    197     const ZSTD_compressionParameters* const cParams = &ms->cParams;
    198     U32* const hashTable = ms->hashTable;
    199     U32 const hlog = cParams->hashLog;
    200     size_t const stepSize = cParams->targetLength + !(cParams->targetLength) + 1; /* min 2 */
    201     const BYTE* const base = ms->window.base;
    202     const BYTE* const istart = (const BYTE*)src;
    203     const U32   endIndex = (U32)((size_t)(istart - base) + srcSize);
    204     const U32   prefixStartIndex = ZSTD_getLowestPrefixIndex(ms, endIndex, cParams->windowLog);
    205     const BYTE* const prefixStart = base + prefixStartIndex;
    206     const BYTE* const iend = istart + srcSize;
    207     const BYTE* const ilimit = iend - HASH_READ_SIZE;
    208 
    209     const BYTE* anchor = istart;
    210     const BYTE* ip0 = istart;
    211     const BYTE* ip1;
    212     const BYTE* ip2;
    213     const BYTE* ip3;
    214     U32 current0;
    215 
    216     U32 rep_offset1 = rep[0];
    217     U32 rep_offset2 = rep[1];
    218     U32 offsetSaved1 = 0, offsetSaved2 = 0;
    219 
    220     size_t hash0; /* hash for ip0 */
    221     size_t hash1; /* hash for ip1 */
    222     U32 matchIdx; /* match idx for ip0 */
    223 
    224     U32 offcode;
    225     const BYTE* match0;
    226     size_t mLength;
    227 
    228     /* ip0 and ip1 are always adjacent. The targetLength skipping and
    229      * uncompressibility acceleration is applied to every other position,
    230      * matching the behavior of #1562. step therefore represents the gap
    231      * between pairs of positions, from ip0 to ip2 or ip1 to ip3. */
    232     size_t step;
    233     const BYTE* nextStep;
    234     const size_t kStepIncr = (1 << (kSearchStrength - 1));
    235     const ZSTD_match4Found matchFound = useCmov ? ZSTD_match4Found_cmov : ZSTD_match4Found_branch;
    236 
    237     DEBUGLOG(5, "ZSTD_compressBlock_fast_generic");
    238     ip0 += (ip0 == prefixStart);
    239     {   U32 const curr = (U32)(ip0 - base);
    240         U32 const windowLow = ZSTD_getLowestPrefixIndex(ms, curr, cParams->windowLog);
    241         U32 const maxRep = curr - windowLow;
    242         if (rep_offset2 > maxRep) offsetSaved2 = rep_offset2, rep_offset2 = 0;
    243         if (rep_offset1 > maxRep) offsetSaved1 = rep_offset1, rep_offset1 = 0;
    244     }
    245 
    246     /* start each op */
    247 _start: /* Requires: ip0 */
    248 
    249     step = stepSize;
    250     nextStep = ip0 + kStepIncr;
    251 
    252     /* calculate positions, ip0 - anchor == 0, so we skip step calc */
    253     ip1 = ip0 + 1;
    254     ip2 = ip0 + step;
    255     ip3 = ip2 + 1;
    256 
    257     if (ip3 >= ilimit) {
    258         goto _cleanup;
    259     }
    260 
    261     hash0 = ZSTD_hashPtr(ip0, hlog, mls);
    262     hash1 = ZSTD_hashPtr(ip1, hlog, mls);
    263 
    264     matchIdx = hashTable[hash0];
    265 
    266     do {
    267         /* load repcode match for ip[2]*/
    268         const U32 rval = MEM_read32(ip2 - rep_offset1);
    269 
    270         /* write back hash table entry */
    271         current0 = (U32)(ip0 - base);
    272         hashTable[hash0] = current0;
    273 
    274         /* check repcode at ip[2] */
    275         if ((MEM_read32(ip2) == rval) & (rep_offset1 > 0)) {
    276             ip0 = ip2;
    277             match0 = ip0 - rep_offset1;
    278             mLength = ip0[-1] == match0[-1];
    279             ip0 -= mLength;
    280             match0 -= mLength;
    281             offcode = REPCODE1_TO_OFFBASE;
    282             mLength += 4;
    283 
    284             /* Write next hash table entry: it's already calculated.
    285              * This write is known to be safe because ip1 is before the
    286              * repcode (ip2). */
    287             hashTable[hash1] = (U32)(ip1 - base);
    288 
    289             goto _match;
    290         }
    291 
    292          if (matchFound(ip0, base + matchIdx, matchIdx, prefixStartIndex)) {
    293             /* Write next hash table entry (it's already calculated).
    294             * This write is known to be safe because the ip1 == ip0 + 1,
    295             * so searching will resume after ip1 */
    296             hashTable[hash1] = (U32)(ip1 - base);
    297 
    298             goto _offset;
    299         }
    300 
    301         /* lookup ip[1] */
    302         matchIdx = hashTable[hash1];
    303 
    304         /* hash ip[2] */
    305         hash0 = hash1;
    306         hash1 = ZSTD_hashPtr(ip2, hlog, mls);
    307 
    308         /* advance to next positions */
    309         ip0 = ip1;
    310         ip1 = ip2;
    311         ip2 = ip3;
    312 
    313         /* write back hash table entry */
    314         current0 = (U32)(ip0 - base);
    315         hashTable[hash0] = current0;
    316 
    317          if (matchFound(ip0, base + matchIdx, matchIdx, prefixStartIndex)) {
    318             /* Write next hash table entry, since it's already calculated */
    319             if (step <= 4) {
    320                 /* Avoid writing an index if it's >= position where search will resume.
    321                 * The minimum possible match has length 4, so search can resume at ip0 + 4.
    322                 */
    323                 hashTable[hash1] = (U32)(ip1 - base);
    324             }
    325             goto _offset;
    326         }
    327 
    328         /* lookup ip[1] */
    329         matchIdx = hashTable[hash1];
    330 
    331         /* hash ip[2] */
    332         hash0 = hash1;
    333         hash1 = ZSTD_hashPtr(ip2, hlog, mls);
    334 
    335         /* advance to next positions */
    336         ip0 = ip1;
    337         ip1 = ip2;
    338         ip2 = ip0 + step;
    339         ip3 = ip1 + step;
    340 
    341         /* calculate step */
    342         if (ip2 >= nextStep) {
    343             step++;
    344             PREFETCH_L1(ip1 + 64);
    345             PREFETCH_L1(ip1 + 128);
    346             nextStep += kStepIncr;
    347         }
    348     } while (ip3 < ilimit);
    349 
    350 _cleanup:
    351     /* Note that there are probably still a couple positions one could search.
    352      * However, it seems to be a meaningful performance hit to try to search
    353      * them. So let's not. */
    354 
    355     /* When the repcodes are outside of the prefix, we set them to zero before the loop.
    356      * When the offsets are still zero, we need to restore them after the block to have a correct
    357      * repcode history. If only one offset was invalid, it is easy. The tricky case is when both
    358      * offsets were invalid. We need to figure out which offset to refill with.
    359      *     - If both offsets are zero they are in the same order.
    360      *     - If both offsets are non-zero, we won't restore the offsets from `offsetSaved[12]`.
    361      *     - If only one is zero, we need to decide which offset to restore.
    362      *         - If rep_offset1 is non-zero, then rep_offset2 must be offsetSaved1.
    363      *         - It is impossible for rep_offset2 to be non-zero.
    364      *
    365      * So if rep_offset1 started invalid (offsetSaved1 != 0) and became valid (rep_offset1 != 0), then
    366      * set rep[0] = rep_offset1 and rep[1] = offsetSaved1.
    367      */
    368     offsetSaved2 = ((offsetSaved1 != 0) && (rep_offset1 != 0)) ? offsetSaved1 : offsetSaved2;
    369 
    370     /* save reps for next block */
    371     rep[0] = rep_offset1 ? rep_offset1 : offsetSaved1;
    372     rep[1] = rep_offset2 ? rep_offset2 : offsetSaved2;
    373 
    374     /* Return the last literals size */
    375     return (size_t)(iend - anchor);
    376 
    377 _offset: /* Requires: ip0, idx */
    378 
    379     /* Compute the offset code. */
    380     match0 = base + matchIdx;
    381     rep_offset2 = rep_offset1;
    382     rep_offset1 = (U32)(ip0-match0);
    383     offcode = OFFSET_TO_OFFBASE(rep_offset1);
    384     mLength = 4;
    385 
    386     /* Count the backwards match length. */
    387     while (((ip0>anchor) & (match0>prefixStart)) && (ip0[-1] == match0[-1])) {
    388         ip0--;
    389         match0--;
    390         mLength++;
    391     }
    392 
    393 _match: /* Requires: ip0, match0, offcode */
    394 
    395     /* Count the forward length. */
    396     mLength += ZSTD_count(ip0 + mLength, match0 + mLength, iend);
    397 
    398     ZSTD_storeSeq(seqStore, (size_t)(ip0 - anchor), anchor, iend, offcode, mLength);
    399 
    400     ip0 += mLength;
    401     anchor = ip0;
    402 
    403     /* Fill table and check for immediate repcode. */
    404     if (ip0 <= ilimit) {
    405         /* Fill Table */
    406         assert(base+current0+2 > istart);  /* check base overflow */
    407         hashTable[ZSTD_hashPtr(base+current0+2, hlog, mls)] = current0+2;  /* here because current+2 could be > iend-8 */
    408         hashTable[ZSTD_hashPtr(ip0-2, hlog, mls)] = (U32)(ip0-2-base);
    409 
    410         if (rep_offset2 > 0) { /* rep_offset2==0 means rep_offset2 is invalidated */
    411             while ( (ip0 <= ilimit) && (MEM_read32(ip0) == MEM_read32(ip0 - rep_offset2)) ) {
    412                 /* store sequence */
    413                 size_t const rLength = ZSTD_count(ip0+4, ip0+4-rep_offset2, iend) + 4;
    414                 { U32 const tmpOff = rep_offset2; rep_offset2 = rep_offset1; rep_offset1 = tmpOff; } /* swap rep_offset2 <=> rep_offset1 */
    415                 hashTable[ZSTD_hashPtr(ip0, hlog, mls)] = (U32)(ip0-base);
    416                 ip0 += rLength;
    417                 ZSTD_storeSeq(seqStore, 0 /*litLen*/, anchor, iend, REPCODE1_TO_OFFBASE, rLength);
    418                 anchor = ip0;
    419                 continue;   /* faster when present (confirmed on gcc-8) ... (?) */
    420     }   }   }
    421 
    422     goto _start;
    423 }
    424 
    425 #define ZSTD_GEN_FAST_FN(dictMode, mml, cmov)                                                       \
    426     static size_t ZSTD_compressBlock_fast_##dictMode##_##mml##_##cmov(                              \
    427             ZSTD_MatchState_t* ms, SeqStore_t* seqStore, U32 rep[ZSTD_REP_NUM],                    \
    428             void const* src, size_t srcSize)                                                       \
    429     {                                                                                              \
    430         return ZSTD_compressBlock_fast_##dictMode##_generic(ms, seqStore, rep, src, srcSize, mml, cmov); \
    431     }
    432 
    433 ZSTD_GEN_FAST_FN(noDict, 4, 1)
    434 ZSTD_GEN_FAST_FN(noDict, 5, 1)
    435 ZSTD_GEN_FAST_FN(noDict, 6, 1)
    436 ZSTD_GEN_FAST_FN(noDict, 7, 1)
    437 
    438 ZSTD_GEN_FAST_FN(noDict, 4, 0)
    439 ZSTD_GEN_FAST_FN(noDict, 5, 0)
    440 ZSTD_GEN_FAST_FN(noDict, 6, 0)
    441 ZSTD_GEN_FAST_FN(noDict, 7, 0)
    442 
    443 size_t ZSTD_compressBlock_fast(
    444         ZSTD_MatchState_t* ms, SeqStore_t* seqStore, U32 rep[ZSTD_REP_NUM],
    445         void const* src, size_t srcSize)
    446 {
    447     U32 const mml = ms->cParams.minMatch;
    448     /* use cmov when "candidate in range" branch is likely unpredictable */
    449     int const useCmov = ms->cParams.windowLog < 19;
    450     assert(ms->dictMatchState == NULL);
    451     if (useCmov) {
    452         switch(mml)
    453         {
    454         default: /* includes case 3 */
    455         case 4 :
    456             return ZSTD_compressBlock_fast_noDict_4_1(ms, seqStore, rep, src, srcSize);
    457         case 5 :
    458             return ZSTD_compressBlock_fast_noDict_5_1(ms, seqStore, rep, src, srcSize);
    459         case 6 :
    460             return ZSTD_compressBlock_fast_noDict_6_1(ms, seqStore, rep, src, srcSize);
    461         case 7 :
    462             return ZSTD_compressBlock_fast_noDict_7_1(ms, seqStore, rep, src, srcSize);
    463         }
    464     } else {
    465         /* use a branch instead */
    466         switch(mml)
    467         {
    468         default: /* includes case 3 */
    469         case 4 :
    470             return ZSTD_compressBlock_fast_noDict_4_0(ms, seqStore, rep, src, srcSize);
    471         case 5 :
    472             return ZSTD_compressBlock_fast_noDict_5_0(ms, seqStore, rep, src, srcSize);
    473         case 6 :
    474             return ZSTD_compressBlock_fast_noDict_6_0(ms, seqStore, rep, src, srcSize);
    475         case 7 :
    476             return ZSTD_compressBlock_fast_noDict_7_0(ms, seqStore, rep, src, srcSize);
    477         }
    478     }
    479 }
    480 
    481 FORCE_INLINE_TEMPLATE
    482 ZSTD_ALLOW_POINTER_OVERFLOW_ATTR
    483 size_t ZSTD_compressBlock_fast_dictMatchState_generic(
    484         ZSTD_MatchState_t* ms, SeqStore_t* seqStore, U32 rep[ZSTD_REP_NUM],
    485         void const* src, size_t srcSize, U32 const mls, U32 const hasStep)
    486 {
    487     const ZSTD_compressionParameters* const cParams = &ms->cParams;
    488     U32* const hashTable = ms->hashTable;
    489     U32 const hlog = cParams->hashLog;
    490     /* support stepSize of 0 */
    491     U32 const stepSize = cParams->targetLength + !(cParams->targetLength);
    492     const BYTE* const base = ms->window.base;
    493     const BYTE* const istart = (const BYTE*)src;
    494     const BYTE* ip0 = istart;
    495     const BYTE* ip1 = ip0 + stepSize; /* we assert below that stepSize >= 1 */
    496     const BYTE* anchor = istart;
    497     const U32   prefixStartIndex = ms->window.dictLimit;
    498     const BYTE* const prefixStart = base + prefixStartIndex;
    499     const BYTE* const iend = istart + srcSize;
    500     const BYTE* const ilimit = iend - HASH_READ_SIZE;
    501     U32 offset_1=rep[0], offset_2=rep[1];
    502 
    503     const ZSTD_MatchState_t* const dms = ms->dictMatchState;
    504     const ZSTD_compressionParameters* const dictCParams = &dms->cParams ;
    505     const U32* const dictHashTable = dms->hashTable;
    506     const U32 dictStartIndex       = dms->window.dictLimit;
    507     const BYTE* const dictBase     = dms->window.base;
    508     const BYTE* const dictStart    = dictBase + dictStartIndex;
    509     const BYTE* const dictEnd      = dms->window.nextSrc;
    510     const U32 dictIndexDelta       = prefixStartIndex - (U32)(dictEnd - dictBase);
    511     const U32 dictAndPrefixLength  = (U32)(istart - prefixStart + dictEnd - dictStart);
    512     const U32 dictHBits            = dictCParams->hashLog + ZSTD_SHORT_CACHE_TAG_BITS;
    513 
    514     /* if a dictionary is still attached, it necessarily means that
    515      * it is within window size. So we just check it. */
    516     const U32 maxDistance = 1U << cParams->windowLog;
    517     const U32 endIndex = (U32)((size_t)(istart - base) + srcSize);
    518     assert(endIndex - prefixStartIndex <= maxDistance);
    519     (void)maxDistance; (void)endIndex;   /* these variables are not used when assert() is disabled */
    520 
    521     (void)hasStep; /* not currently specialized on whether it's accelerated */
    522 
    523     /* ensure there will be no underflow
    524      * when translating a dict index into a local index */
    525     assert(prefixStartIndex >= (U32)(dictEnd - dictBase));
    526 
    527     if (ms->prefetchCDictTables) {
    528         size_t const hashTableBytes = (((size_t)1) << dictCParams->hashLog) * sizeof(U32);
    529         PREFETCH_AREA(dictHashTable, hashTableBytes);
    530     }
    531 
    532     /* init */
    533     DEBUGLOG(5, "ZSTD_compressBlock_fast_dictMatchState_generic");
    534     ip0 += (dictAndPrefixLength == 0);
    535     /* dictMatchState repCode checks don't currently handle repCode == 0
    536      * disabling. */
    537     assert(offset_1 <= dictAndPrefixLength);
    538     assert(offset_2 <= dictAndPrefixLength);
    539 
    540     /* Outer search loop */
    541     assert(stepSize >= 1);
    542     while (ip1 <= ilimit) {   /* repcode check at (ip0 + 1) is safe because ip0 < ip1 */
    543         size_t mLength;
    544         size_t hash0 = ZSTD_hashPtr(ip0, hlog, mls);
    545 
    546         size_t const dictHashAndTag0 = ZSTD_hashPtr(ip0, dictHBits, mls);
    547         U32 dictMatchIndexAndTag = dictHashTable[dictHashAndTag0 >> ZSTD_SHORT_CACHE_TAG_BITS];
    548         int dictTagsMatch = ZSTD_comparePackedTags(dictMatchIndexAndTag, dictHashAndTag0);
    549 
    550         U32 matchIndex = hashTable[hash0];
    551         U32 curr = (U32)(ip0 - base);
    552         size_t step = stepSize;
    553         const size_t kStepIncr = 1 << kSearchStrength;
    554         const BYTE* nextStep = ip0 + kStepIncr;
    555 
    556         /* Inner search loop */
    557         while (1) {
    558             const BYTE* match = base + matchIndex;
    559             const U32 repIndex = curr + 1 - offset_1;
    560             const BYTE* repMatch = (repIndex < prefixStartIndex) ?
    561                                    dictBase + (repIndex - dictIndexDelta) :
    562                                    base + repIndex;
    563             const size_t hash1 = ZSTD_hashPtr(ip1, hlog, mls);
    564             size_t const dictHashAndTag1 = ZSTD_hashPtr(ip1, dictHBits, mls);
    565             hashTable[hash0] = curr;   /* update hash table */
    566 
    567             if ((ZSTD_index_overlap_check(prefixStartIndex, repIndex))
    568                 && (MEM_read32(repMatch) == MEM_read32(ip0 + 1))) {
    569                 const BYTE* const repMatchEnd = repIndex < prefixStartIndex ? dictEnd : iend;
    570                 mLength = ZSTD_count_2segments(ip0 + 1 + 4, repMatch + 4, iend, repMatchEnd, prefixStart) + 4;
    571                 ip0++;
    572                 ZSTD_storeSeq(seqStore, (size_t) (ip0 - anchor), anchor, iend, REPCODE1_TO_OFFBASE, mLength);
    573                 break;
    574             }
    575 
    576             if (dictTagsMatch) {
    577                 /* Found a possible dict match */
    578                 const U32 dictMatchIndex = dictMatchIndexAndTag >> ZSTD_SHORT_CACHE_TAG_BITS;
    579                 const BYTE* dictMatch = dictBase + dictMatchIndex;
    580                 if (dictMatchIndex > dictStartIndex &&
    581                     MEM_read32(dictMatch) == MEM_read32(ip0)) {
    582                     /* To replicate extDict parse behavior, we only use dict matches when the normal matchIndex is invalid */
    583                     if (matchIndex <= prefixStartIndex) {
    584                         U32 const offset = (U32) (curr - dictMatchIndex - dictIndexDelta);
    585                         mLength = ZSTD_count_2segments(ip0 + 4, dictMatch + 4, iend, dictEnd, prefixStart) + 4;
    586                         while (((ip0 > anchor) & (dictMatch > dictStart))
    587                             && (ip0[-1] == dictMatch[-1])) {
    588                             ip0--;
    589                             dictMatch--;
    590                             mLength++;
    591                         } /* catch up */
    592                         offset_2 = offset_1;
    593                         offset_1 = offset;
    594                         ZSTD_storeSeq(seqStore, (size_t) (ip0 - anchor), anchor, iend, OFFSET_TO_OFFBASE(offset), mLength);
    595                         break;
    596                     }
    597                 }
    598             }
    599 
    600             if (ZSTD_match4Found_cmov(ip0, match, matchIndex, prefixStartIndex)) {
    601                 /* found a regular match of size >= 4 */
    602                 U32 const offset = (U32) (ip0 - match);
    603                 mLength = ZSTD_count(ip0 + 4, match + 4, iend) + 4;
    604                 while (((ip0 > anchor) & (match > prefixStart))
    605                        && (ip0[-1] == match[-1])) {
    606                     ip0--;
    607                     match--;
    608                     mLength++;
    609                 } /* catch up */
    610                 offset_2 = offset_1;
    611                 offset_1 = offset;
    612                 ZSTD_storeSeq(seqStore, (size_t) (ip0 - anchor), anchor, iend, OFFSET_TO_OFFBASE(offset), mLength);
    613                 break;
    614             }
    615 
    616             /* Prepare for next iteration */
    617             dictMatchIndexAndTag = dictHashTable[dictHashAndTag1 >> ZSTD_SHORT_CACHE_TAG_BITS];
    618             dictTagsMatch = ZSTD_comparePackedTags(dictMatchIndexAndTag, dictHashAndTag1);
    619             matchIndex = hashTable[hash1];
    620 
    621             if (ip1 >= nextStep) {
    622                 step++;
    623                 nextStep += kStepIncr;
    624             }
    625             ip0 = ip1;
    626             ip1 = ip1 + step;
    627             if (ip1 > ilimit) goto _cleanup;
    628 
    629             curr = (U32)(ip0 - base);
    630             hash0 = hash1;
    631         }   /* end inner search loop */
    632 
    633         /* match found */
    634         assert(mLength);
    635         ip0 += mLength;
    636         anchor = ip0;
    637 
    638         if (ip0 <= ilimit) {
    639             /* Fill Table */
    640             assert(base+curr+2 > istart);  /* check base overflow */
    641             hashTable[ZSTD_hashPtr(base+curr+2, hlog, mls)] = curr+2;  /* here because curr+2 could be > iend-8 */
    642             hashTable[ZSTD_hashPtr(ip0-2, hlog, mls)] = (U32)(ip0-2-base);
    643 
    644             /* check immediate repcode */
    645             while (ip0 <= ilimit) {
    646                 U32 const current2 = (U32)(ip0-base);
    647                 U32 const repIndex2 = current2 - offset_2;
    648                 const BYTE* repMatch2 = repIndex2 < prefixStartIndex ?
    649                         dictBase - dictIndexDelta + repIndex2 :
    650                         base + repIndex2;
    651                 if ( (ZSTD_index_overlap_check(prefixStartIndex, repIndex2))
    652                    && (MEM_read32(repMatch2) == MEM_read32(ip0))) {
    653                     const BYTE* const repEnd2 = repIndex2 < prefixStartIndex ? dictEnd : iend;
    654                     size_t const repLength2 = ZSTD_count_2segments(ip0+4, repMatch2+4, iend, repEnd2, prefixStart) + 4;
    655                     U32 tmpOffset = offset_2; offset_2 = offset_1; offset_1 = tmpOffset;   /* swap offset_2 <=> offset_1 */
    656                     ZSTD_storeSeq(seqStore, 0, anchor, iend, REPCODE1_TO_OFFBASE, repLength2);
    657                     hashTable[ZSTD_hashPtr(ip0, hlog, mls)] = current2;
    658                     ip0 += repLength2;
    659                     anchor = ip0;
    660                     continue;
    661                 }
    662                 break;
    663             }
    664         }
    665 
    666         /* Prepare for next iteration */
    667         assert(ip0 == anchor);
    668         ip1 = ip0 + stepSize;
    669     }
    670 
    671 _cleanup:
    672     /* save reps for next block */
    673     rep[0] = offset_1;
    674     rep[1] = offset_2;
    675 
    676     /* Return the last literals size */
    677     return (size_t)(iend - anchor);
    678 }
    679 
    680 
    681 ZSTD_GEN_FAST_FN(dictMatchState, 4, 0)
    682 ZSTD_GEN_FAST_FN(dictMatchState, 5, 0)
    683 ZSTD_GEN_FAST_FN(dictMatchState, 6, 0)
    684 ZSTD_GEN_FAST_FN(dictMatchState, 7, 0)
    685 
    686 size_t ZSTD_compressBlock_fast_dictMatchState(
    687         ZSTD_MatchState_t* ms, SeqStore_t* seqStore, U32 rep[ZSTD_REP_NUM],
    688         void const* src, size_t srcSize)
    689 {
    690     U32 const mls = ms->cParams.minMatch;
    691     assert(ms->dictMatchState != NULL);
    692     switch(mls)
    693     {
    694     default: /* includes case 3 */
    695     case 4 :
    696         return ZSTD_compressBlock_fast_dictMatchState_4_0(ms, seqStore, rep, src, srcSize);
    697     case 5 :
    698         return ZSTD_compressBlock_fast_dictMatchState_5_0(ms, seqStore, rep, src, srcSize);
    699     case 6 :
    700         return ZSTD_compressBlock_fast_dictMatchState_6_0(ms, seqStore, rep, src, srcSize);
    701     case 7 :
    702         return ZSTD_compressBlock_fast_dictMatchState_7_0(ms, seqStore, rep, src, srcSize);
    703     }
    704 }
    705 
    706 
    707 static
    708 ZSTD_ALLOW_POINTER_OVERFLOW_ATTR
    709 size_t ZSTD_compressBlock_fast_extDict_generic(
    710         ZSTD_MatchState_t* ms, SeqStore_t* seqStore, U32 rep[ZSTD_REP_NUM],
    711         void const* src, size_t srcSize, U32 const mls, U32 const hasStep)
    712 {
    713     const ZSTD_compressionParameters* const cParams = &ms->cParams;
    714     U32* const hashTable = ms->hashTable;
    715     U32 const hlog = cParams->hashLog;
    716     /* support stepSize of 0 */
    717     size_t const stepSize = cParams->targetLength + !(cParams->targetLength) + 1;
    718     const BYTE* const base = ms->window.base;
    719     const BYTE* const dictBase = ms->window.dictBase;
    720     const BYTE* const istart = (const BYTE*)src;
    721     const BYTE* anchor = istart;
    722     const U32   endIndex = (U32)((size_t)(istart - base) + srcSize);
    723     const U32   lowLimit = ZSTD_getLowestMatchIndex(ms, endIndex, cParams->windowLog);
    724     const U32   dictStartIndex = lowLimit;
    725     const BYTE* const dictStart = dictBase + dictStartIndex;
    726     const U32   dictLimit = ms->window.dictLimit;
    727     const U32   prefixStartIndex = dictLimit < lowLimit ? lowLimit : dictLimit;
    728     const BYTE* const prefixStart = base + prefixStartIndex;
    729     const BYTE* const dictEnd = dictBase + prefixStartIndex;
    730     const BYTE* const iend = istart + srcSize;
    731     const BYTE* const ilimit = iend - 8;
    732     U32 offset_1=rep[0], offset_2=rep[1];
    733     U32 offsetSaved1 = 0, offsetSaved2 = 0;
    734 
    735     const BYTE* ip0 = istart;
    736     const BYTE* ip1;
    737     const BYTE* ip2;
    738     const BYTE* ip3;
    739     U32 current0;
    740 
    741 
    742     size_t hash0; /* hash for ip0 */
    743     size_t hash1; /* hash for ip1 */
    744     U32 idx; /* match idx for ip0 */
    745     const BYTE* idxBase; /* base pointer for idx */
    746 
    747     U32 offcode;
    748     const BYTE* match0;
    749     size_t mLength;
    750     const BYTE* matchEnd = 0; /* initialize to avoid warning, assert != 0 later */
    751 
    752     size_t step;
    753     const BYTE* nextStep;
    754     const size_t kStepIncr = (1 << (kSearchStrength - 1));
    755 
    756     (void)hasStep; /* not currently specialized on whether it's accelerated */
    757 
    758     DEBUGLOG(5, "ZSTD_compressBlock_fast_extDict_generic (offset_1=%u)", offset_1);
    759 
    760     /* switch to "regular" variant if extDict is invalidated due to maxDistance */
    761     if (prefixStartIndex == dictStartIndex)
    762         return ZSTD_compressBlock_fast(ms, seqStore, rep, src, srcSize);
    763 
    764     {   U32 const curr = (U32)(ip0 - base);
    765         U32 const maxRep = curr - dictStartIndex;
    766         if (offset_2 >= maxRep) offsetSaved2 = offset_2, offset_2 = 0;
    767         if (offset_1 >= maxRep) offsetSaved1 = offset_1, offset_1 = 0;
    768     }
    769 
    770     /* start each op */
    771 _start: /* Requires: ip0 */
    772 
    773     step = stepSize;
    774     nextStep = ip0 + kStepIncr;
    775 
    776     /* calculate positions, ip0 - anchor == 0, so we skip step calc */
    777     ip1 = ip0 + 1;
    778     ip2 = ip0 + step;
    779     ip3 = ip2 + 1;
    780 
    781     if (ip3 >= ilimit) {
    782         goto _cleanup;
    783     }
    784 
    785     hash0 = ZSTD_hashPtr(ip0, hlog, mls);
    786     hash1 = ZSTD_hashPtr(ip1, hlog, mls);
    787 
    788     idx = hashTable[hash0];
    789     idxBase = idx < prefixStartIndex ? dictBase : base;
    790 
    791     do {
    792         {   /* load repcode match for ip[2] */
    793             U32 const current2 = (U32)(ip2 - base);
    794             U32 const repIndex = current2 - offset_1;
    795             const BYTE* const repBase = repIndex < prefixStartIndex ? dictBase : base;
    796             U32 rval;
    797             if ( ((U32)(prefixStartIndex - repIndex) >= 4) /* intentional underflow */
    798                  & (offset_1 > 0) ) {
    799                 rval = MEM_read32(repBase + repIndex);
    800             } else {
    801                 rval = MEM_read32(ip2) ^ 1; /* guaranteed to not match. */
    802             }
    803 
    804             /* write back hash table entry */
    805             current0 = (U32)(ip0 - base);
    806             hashTable[hash0] = current0;
    807 
    808             /* check repcode at ip[2] */
    809             if (MEM_read32(ip2) == rval) {
    810                 ip0 = ip2;
    811                 match0 = repBase + repIndex;
    812                 matchEnd = repIndex < prefixStartIndex ? dictEnd : iend;
    813                 assert((match0 != prefixStart) & (match0 != dictStart));
    814                 mLength = ip0[-1] == match0[-1];
    815                 ip0 -= mLength;
    816                 match0 -= mLength;
    817                 offcode = REPCODE1_TO_OFFBASE;
    818                 mLength += 4;
    819                 goto _match;
    820         }   }
    821 
    822         {   /* load match for ip[0] */
    823             U32 const mval = idx >= dictStartIndex ?
    824                     MEM_read32(idxBase + idx) :
    825                     MEM_read32(ip0) ^ 1; /* guaranteed not to match */
    826 
    827             /* check match at ip[0] */
    828             if (MEM_read32(ip0) == mval) {
    829                 /* found a match! */
    830                 goto _offset;
    831         }   }
    832 
    833         /* lookup ip[1] */
    834         idx = hashTable[hash1];
    835         idxBase = idx < prefixStartIndex ? dictBase : base;
    836 
    837         /* hash ip[2] */
    838         hash0 = hash1;
    839         hash1 = ZSTD_hashPtr(ip2, hlog, mls);
    840 
    841         /* advance to next positions */
    842         ip0 = ip1;
    843         ip1 = ip2;
    844         ip2 = ip3;
    845 
    846         /* write back hash table entry */
    847         current0 = (U32)(ip0 - base);
    848         hashTable[hash0] = current0;
    849 
    850         {   /* load match for ip[0] */
    851             U32 const mval = idx >= dictStartIndex ?
    852                     MEM_read32(idxBase + idx) :
    853                     MEM_read32(ip0) ^ 1; /* guaranteed not to match */
    854 
    855             /* check match at ip[0] */
    856             if (MEM_read32(ip0) == mval) {
    857                 /* found a match! */
    858                 goto _offset;
    859         }   }
    860 
    861         /* lookup ip[1] */
    862         idx = hashTable[hash1];
    863         idxBase = idx < prefixStartIndex ? dictBase : base;
    864 
    865         /* hash ip[2] */
    866         hash0 = hash1;
    867         hash1 = ZSTD_hashPtr(ip2, hlog, mls);
    868 
    869         /* advance to next positions */
    870         ip0 = ip1;
    871         ip1 = ip2;
    872         ip2 = ip0 + step;
    873         ip3 = ip1 + step;
    874 
    875         /* calculate step */
    876         if (ip2 >= nextStep) {
    877             step++;
    878             PREFETCH_L1(ip1 + 64);
    879             PREFETCH_L1(ip1 + 128);
    880             nextStep += kStepIncr;
    881         }
    882     } while (ip3 < ilimit);
    883 
    884 _cleanup:
    885     /* Note that there are probably still a couple positions we could search.
    886      * However, it seems to be a meaningful performance hit to try to search
    887      * them. So let's not. */
    888 
    889     /* If offset_1 started invalid (offsetSaved1 != 0) and became valid (offset_1 != 0),
    890      * rotate saved offsets. See comment in ZSTD_compressBlock_fast_noDict for more context. */
    891     offsetSaved2 = ((offsetSaved1 != 0) && (offset_1 != 0)) ? offsetSaved1 : offsetSaved2;
    892 
    893     /* save reps for next block */
    894     rep[0] = offset_1 ? offset_1 : offsetSaved1;
    895     rep[1] = offset_2 ? offset_2 : offsetSaved2;
    896 
    897     /* Return the last literals size */
    898     return (size_t)(iend - anchor);
    899 
    900 _offset: /* Requires: ip0, idx, idxBase */
    901 
    902     /* Compute the offset code. */
    903     {   U32 const offset = current0 - idx;
    904         const BYTE* const lowMatchPtr = idx < prefixStartIndex ? dictStart : prefixStart;
    905         matchEnd = idx < prefixStartIndex ? dictEnd : iend;
    906         match0 = idxBase + idx;
    907         offset_2 = offset_1;
    908         offset_1 = offset;
    909         offcode = OFFSET_TO_OFFBASE(offset);
    910         mLength = 4;
    911 
    912         /* Count the backwards match length. */
    913         while (((ip0>anchor) & (match0>lowMatchPtr)) && (ip0[-1] == match0[-1])) {
    914             ip0--;
    915             match0--;
    916             mLength++;
    917     }   }
    918 
    919 _match: /* Requires: ip0, match0, offcode, matchEnd */
    920 
    921     /* Count the forward length. */
    922     assert(matchEnd != 0);
    923     mLength += ZSTD_count_2segments(ip0 + mLength, match0 + mLength, iend, matchEnd, prefixStart);
    924 
    925     ZSTD_storeSeq(seqStore, (size_t)(ip0 - anchor), anchor, iend, offcode, mLength);
    926 
    927     ip0 += mLength;
    928     anchor = ip0;
    929 
    930     /* write next hash table entry */
    931     if (ip1 < ip0) {
    932         hashTable[hash1] = (U32)(ip1 - base);
    933     }
    934 
    935     /* Fill table and check for immediate repcode. */
    936     if (ip0 <= ilimit) {
    937         /* Fill Table */
    938         assert(base+current0+2 > istart);  /* check base overflow */
    939         hashTable[ZSTD_hashPtr(base+current0+2, hlog, mls)] = current0+2;  /* here because current+2 could be > iend-8 */
    940         hashTable[ZSTD_hashPtr(ip0-2, hlog, mls)] = (U32)(ip0-2-base);
    941 
    942         while (ip0 <= ilimit) {
    943             U32 const repIndex2 = (U32)(ip0-base) - offset_2;
    944             const BYTE* const repMatch2 = repIndex2 < prefixStartIndex ? dictBase + repIndex2 : base + repIndex2;
    945             if ( ((ZSTD_index_overlap_check(prefixStartIndex, repIndex2)) & (offset_2 > 0))
    946                  && (MEM_read32(repMatch2) == MEM_read32(ip0)) ) {
    947                 const BYTE* const repEnd2 = repIndex2 < prefixStartIndex ? dictEnd : iend;
    948                 size_t const repLength2 = ZSTD_count_2segments(ip0+4, repMatch2+4, iend, repEnd2, prefixStart) + 4;
    949                 { U32 const tmpOffset = offset_2; offset_2 = offset_1; offset_1 = tmpOffset; }  /* swap offset_2 <=> offset_1 */
    950                 ZSTD_storeSeq(seqStore, 0 /*litlen*/, anchor, iend, REPCODE1_TO_OFFBASE, repLength2);
    951                 hashTable[ZSTD_hashPtr(ip0, hlog, mls)] = (U32)(ip0-base);
    952                 ip0 += repLength2;
    953                 anchor = ip0;
    954                 continue;
    955             }
    956             break;
    957     }   }
    958 
    959     goto _start;
    960 }
    961 
    962 ZSTD_GEN_FAST_FN(extDict, 4, 0)
    963 ZSTD_GEN_FAST_FN(extDict, 5, 0)
    964 ZSTD_GEN_FAST_FN(extDict, 6, 0)
    965 ZSTD_GEN_FAST_FN(extDict, 7, 0)
    966 
    967 size_t ZSTD_compressBlock_fast_extDict(
    968         ZSTD_MatchState_t* ms, SeqStore_t* seqStore, U32 rep[ZSTD_REP_NUM],
    969         void const* src, size_t srcSize)
    970 {
    971     U32 const mls = ms->cParams.minMatch;
    972     assert(ms->dictMatchState == NULL);
    973     switch(mls)
    974     {
    975     default: /* includes case 3 */
    976     case 4 :
    977         return ZSTD_compressBlock_fast_extDict_4_0(ms, seqStore, rep, src, srcSize);
    978     case 5 :
    979         return ZSTD_compressBlock_fast_extDict_5_0(ms, seqStore, rep, src, srcSize);
    980     case 6 :
    981         return ZSTD_compressBlock_fast_extDict_6_0(ms, seqStore, rep, src, srcSize);
    982     case 7 :
    983         return ZSTD_compressBlock_fast_extDict_7_0(ms, seqStore, rep, src, srcSize);
    984     }
    985 }
    986