mirror of
https://github.com/Xevion/easy7zip.git
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Update Zstandard to Version 1.5.4
Signed-off-by: Tino Reichardt <milky-7zip@mcmilk.de>
This commit is contained in:
@@ -1,5 +1,5 @@
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/*
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* Copyright (c) Yann Collet, Facebook, Inc.
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* Copyright (c) Meta Platforms, Inc. and affiliates.
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* All rights reserved.
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*
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* This source code is licensed under both the BSD-style license (found in the
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@@ -11,8 +11,42 @@
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#include "zstd_compress_internal.h" /* ZSTD_hashPtr, ZSTD_count, ZSTD_storeSeq */
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#include "zstd_fast.h"
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static void ZSTD_fillHashTableForCDict(ZSTD_matchState_t* ms,
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const void* const end,
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ZSTD_dictTableLoadMethod_e dtlm)
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{
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const ZSTD_compressionParameters* const cParams = &ms->cParams;
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U32* const hashTable = ms->hashTable;
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U32 const hBits = cParams->hashLog + ZSTD_SHORT_CACHE_TAG_BITS;
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U32 const mls = cParams->minMatch;
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const BYTE* const base = ms->window.base;
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const BYTE* ip = base + ms->nextToUpdate;
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const BYTE* const iend = ((const BYTE*)end) - HASH_READ_SIZE;
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const U32 fastHashFillStep = 3;
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void ZSTD_fillHashTable(ZSTD_matchState_t* ms,
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/* Currently, we always use ZSTD_dtlm_full for filling CDict tables.
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* Feel free to remove this assert if there's a good reason! */
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assert(dtlm == ZSTD_dtlm_full);
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/* Always insert every fastHashFillStep position into the hash table.
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* Insert the other positions if their hash entry is empty.
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*/
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for ( ; ip + fastHashFillStep < iend + 2; ip += fastHashFillStep) {
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U32 const curr = (U32)(ip - base);
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{ size_t const hashAndTag = ZSTD_hashPtr(ip, hBits, mls);
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ZSTD_writeTaggedIndex(hashTable, hashAndTag, curr); }
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if (dtlm == ZSTD_dtlm_fast) continue;
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/* Only load extra positions for ZSTD_dtlm_full */
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{ U32 p;
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for (p = 1; p < fastHashFillStep; ++p) {
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size_t const hashAndTag = ZSTD_hashPtr(ip + p, hBits, mls);
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if (hashTable[hashAndTag >> ZSTD_SHORT_CACHE_TAG_BITS] == 0) { /* not yet filled */
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ZSTD_writeTaggedIndex(hashTable, hashAndTag, curr + p);
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} } } }
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}
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static void ZSTD_fillHashTableForCCtx(ZSTD_matchState_t* ms,
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const void* const end,
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ZSTD_dictTableLoadMethod_e dtlm)
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{
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@@ -25,6 +59,10 @@ void ZSTD_fillHashTable(ZSTD_matchState_t* ms,
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const BYTE* const iend = ((const BYTE*)end) - HASH_READ_SIZE;
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const U32 fastHashFillStep = 3;
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/* Currently, we always use ZSTD_dtlm_fast for filling CCtx tables.
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* Feel free to remove this assert if there's a good reason! */
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assert(dtlm == ZSTD_dtlm_fast);
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/* Always insert every fastHashFillStep position into the hash table.
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* Insert the other positions if their hash entry is empty.
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*/
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@@ -42,6 +80,18 @@ void ZSTD_fillHashTable(ZSTD_matchState_t* ms,
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} } } }
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}
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void ZSTD_fillHashTable(ZSTD_matchState_t* ms,
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const void* const end,
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ZSTD_dictTableLoadMethod_e dtlm,
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ZSTD_tableFillPurpose_e tfp)
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{
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if (tfp == ZSTD_tfp_forCDict) {
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ZSTD_fillHashTableForCDict(ms, end, dtlm);
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} else {
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ZSTD_fillHashTableForCCtx(ms, end, dtlm);
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}
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}
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/**
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* If you squint hard enough (and ignore repcodes), the search operation at any
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@@ -117,7 +167,7 @@ ZSTD_compressBlock_fast_noDict_generic(
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U32 rep_offset1 = rep[0];
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U32 rep_offset2 = rep[1];
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U32 offsetSaved = 0;
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U32 offsetSaved1 = 0, offsetSaved2 = 0;
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size_t hash0; /* hash for ip0 */
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size_t hash1; /* hash for ip1 */
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@@ -141,8 +191,8 @@ ZSTD_compressBlock_fast_noDict_generic(
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{ U32 const curr = (U32)(ip0 - base);
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U32 const windowLow = ZSTD_getLowestPrefixIndex(ms, curr, cParams->windowLog);
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U32 const maxRep = curr - windowLow;
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if (rep_offset2 > maxRep) offsetSaved = rep_offset2, rep_offset2 = 0;
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if (rep_offset1 > maxRep) offsetSaved = rep_offset1, rep_offset1 = 0;
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if (rep_offset2 > maxRep) offsetSaved2 = rep_offset2, rep_offset2 = 0;
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if (rep_offset1 > maxRep) offsetSaved1 = rep_offset1, rep_offset1 = 0;
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}
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/* start each op */
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@@ -180,8 +230,14 @@ _start: /* Requires: ip0 */
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mLength = ip0[-1] == match0[-1];
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ip0 -= mLength;
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match0 -= mLength;
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offcode = STORE_REPCODE_1;
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offcode = REPCODE1_TO_OFFBASE;
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mLength += 4;
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/* First write next hash table entry; we've already calculated it.
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* This write is known to be safe because the ip1 is before the
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* repcode (ip2). */
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hashTable[hash1] = (U32)(ip1 - base);
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goto _match;
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}
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@@ -195,6 +251,12 @@ _start: /* Requires: ip0 */
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/* check match at ip[0] */
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if (MEM_read32(ip0) == mval) {
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/* found a match! */
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/* First write next hash table entry; we've already calculated it.
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* This write is known to be safe because the ip1 == ip0 + 1, so
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* we know we will resume searching after ip1 */
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hashTable[hash1] = (U32)(ip1 - base);
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goto _offset;
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}
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@@ -224,6 +286,21 @@ _start: /* Requires: ip0 */
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/* check match at ip[0] */
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if (MEM_read32(ip0) == mval) {
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/* found a match! */
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/* first write next hash table entry; we've already calculated it */
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if (step <= 4) {
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/* We need to avoid writing an index into the hash table >= the
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* position at which we will pick up our searching after we've
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* taken this match.
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*
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* The minimum possible match has length 4, so the earliest ip0
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* can be after we take this match will be the current ip0 + 4.
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* ip1 is ip0 + step - 1. If ip1 is >= ip0 + 4, we can't safely
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* write this position.
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*/
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hashTable[hash1] = (U32)(ip1 - base);
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}
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goto _offset;
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}
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@@ -254,9 +331,24 @@ _cleanup:
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* However, it seems to be a meaningful performance hit to try to search
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* them. So let's not. */
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/* When the repcodes are outside of the prefix, we set them to zero before the loop.
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* When the offsets are still zero, we need to restore them after the block to have a correct
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* repcode history. If only one offset was invalid, it is easy. The tricky case is when both
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* offsets were invalid. We need to figure out which offset to refill with.
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* - If both offsets are zero they are in the same order.
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* - If both offsets are non-zero, we won't restore the offsets from `offsetSaved[12]`.
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* - If only one is zero, we need to decide which offset to restore.
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* - If rep_offset1 is non-zero, then rep_offset2 must be offsetSaved1.
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* - It is impossible for rep_offset2 to be non-zero.
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*
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* So if rep_offset1 started invalid (offsetSaved1 != 0) and became valid (rep_offset1 != 0), then
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* set rep[0] = rep_offset1 and rep[1] = offsetSaved1.
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*/
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offsetSaved2 = ((offsetSaved1 != 0) && (rep_offset1 != 0)) ? offsetSaved1 : offsetSaved2;
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/* save reps for next block */
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rep[0] = rep_offset1 ? rep_offset1 : offsetSaved;
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rep[1] = rep_offset2 ? rep_offset2 : offsetSaved;
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rep[0] = rep_offset1 ? rep_offset1 : offsetSaved1;
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rep[1] = rep_offset2 ? rep_offset2 : offsetSaved2;
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/* Return the last literals size */
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return (size_t)(iend - anchor);
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@@ -267,7 +359,7 @@ _offset: /* Requires: ip0, idx */
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match0 = base + idx;
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rep_offset2 = rep_offset1;
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rep_offset1 = (U32)(ip0-match0);
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offcode = STORE_OFFSET(rep_offset1);
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offcode = OFFSET_TO_OFFBASE(rep_offset1);
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mLength = 4;
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/* Count the backwards match length. */
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@@ -287,11 +379,6 @@ _match: /* Requires: ip0, match0, offcode */
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ip0 += mLength;
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anchor = ip0;
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/* write next hash table entry */
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if (ip1 < ip0) {
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hashTable[hash1] = (U32)(ip1 - base);
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}
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/* Fill table and check for immediate repcode. */
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if (ip0 <= ilimit) {
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/* Fill Table */
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@@ -306,7 +393,7 @@ _match: /* Requires: ip0, match0, offcode */
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{ U32 const tmpOff = rep_offset2; rep_offset2 = rep_offset1; rep_offset1 = tmpOff; } /* swap rep_offset2 <=> rep_offset1 */
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hashTable[ZSTD_hashPtr(ip0, hlog, mls)] = (U32)(ip0-base);
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ip0 += rLength;
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ZSTD_storeSeq(seqStore, 0 /*litLen*/, anchor, iend, STORE_REPCODE_1, rLength);
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ZSTD_storeSeq(seqStore, 0 /*litLen*/, anchor, iend, REPCODE1_TO_OFFBASE, rLength);
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anchor = ip0;
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continue; /* faster when present (confirmed on gcc-8) ... (?) */
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} } }
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@@ -380,14 +467,14 @@ size_t ZSTD_compressBlock_fast_dictMatchState_generic(
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U32 const stepSize = cParams->targetLength + !(cParams->targetLength);
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const BYTE* const base = ms->window.base;
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const BYTE* const istart = (const BYTE*)src;
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const BYTE* ip = istart;
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const BYTE* ip0 = istart;
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const BYTE* ip1 = ip0 + stepSize; /* we assert below that stepSize >= 1 */
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const BYTE* anchor = istart;
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const U32 prefixStartIndex = ms->window.dictLimit;
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const BYTE* const prefixStart = base + prefixStartIndex;
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const BYTE* const iend = istart + srcSize;
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const BYTE* const ilimit = iend - HASH_READ_SIZE;
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U32 offset_1=rep[0], offset_2=rep[1];
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U32 offsetSaved = 0;
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const ZSTD_matchState_t* const dms = ms->dictMatchState;
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const ZSTD_compressionParameters* const dictCParams = &dms->cParams ;
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@@ -397,13 +484,13 @@ size_t ZSTD_compressBlock_fast_dictMatchState_generic(
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const BYTE* const dictStart = dictBase + dictStartIndex;
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const BYTE* const dictEnd = dms->window.nextSrc;
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const U32 dictIndexDelta = prefixStartIndex - (U32)(dictEnd - dictBase);
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const U32 dictAndPrefixLength = (U32)(ip - prefixStart + dictEnd - dictStart);
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const U32 dictHLog = dictCParams->hashLog;
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const U32 dictAndPrefixLength = (U32)(istart - prefixStart + dictEnd - dictStart);
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const U32 dictHBits = dictCParams->hashLog + ZSTD_SHORT_CACHE_TAG_BITS;
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/* if a dictionary is still attached, it necessarily means that
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* it is within window size. So we just check it. */
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const U32 maxDistance = 1U << cParams->windowLog;
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const U32 endIndex = (U32)((size_t)(ip - base) + srcSize);
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const U32 endIndex = (U32)((size_t)(istart - base) + srcSize);
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assert(endIndex - prefixStartIndex <= maxDistance);
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(void)maxDistance; (void)endIndex; /* these variables are not used when assert() is disabled */
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@@ -413,106 +500,155 @@ size_t ZSTD_compressBlock_fast_dictMatchState_generic(
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* when translating a dict index into a local index */
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assert(prefixStartIndex >= (U32)(dictEnd - dictBase));
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if (ms->prefetchCDictTables) {
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size_t const hashTableBytes = (((size_t)1) << dictCParams->hashLog) * sizeof(U32);
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PREFETCH_AREA(dictHashTable, hashTableBytes)
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}
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/* init */
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DEBUGLOG(5, "ZSTD_compressBlock_fast_dictMatchState_generic");
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ip += (dictAndPrefixLength == 0);
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ip0 += (dictAndPrefixLength == 0);
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/* dictMatchState repCode checks don't currently handle repCode == 0
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* disabling. */
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assert(offset_1 <= dictAndPrefixLength);
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assert(offset_2 <= dictAndPrefixLength);
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/* Main Search Loop */
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while (ip < ilimit) { /* < instead of <=, because repcode check at (ip+1) */
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/* Outer search loop */
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assert(stepSize >= 1);
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while (ip1 <= ilimit) { /* repcode check at (ip0 + 1) is safe because ip0 < ip1 */
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size_t mLength;
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size_t const h = ZSTD_hashPtr(ip, hlog, mls);
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U32 const curr = (U32)(ip-base);
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U32 const matchIndex = hashTable[h];
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const BYTE* match = base + matchIndex;
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const U32 repIndex = curr + 1 - offset_1;
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const BYTE* repMatch = (repIndex < prefixStartIndex) ?
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dictBase + (repIndex - dictIndexDelta) :
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base + repIndex;
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hashTable[h] = curr; /* update hash table */
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size_t hash0 = ZSTD_hashPtr(ip0, hlog, mls);
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if ( ((U32)((prefixStartIndex-1) - repIndex) >= 3) /* intentional underflow : ensure repIndex isn't overlapping dict + prefix */
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&& (MEM_read32(repMatch) == MEM_read32(ip+1)) ) {
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const BYTE* const repMatchEnd = repIndex < prefixStartIndex ? dictEnd : iend;
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mLength = ZSTD_count_2segments(ip+1+4, repMatch+4, iend, repMatchEnd, prefixStart) + 4;
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ip++;
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ZSTD_storeSeq(seqStore, (size_t)(ip-anchor), anchor, iend, STORE_REPCODE_1, mLength);
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} else if ( (matchIndex <= prefixStartIndex) ) {
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size_t const dictHash = ZSTD_hashPtr(ip, dictHLog, mls);
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U32 const dictMatchIndex = dictHashTable[dictHash];
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const BYTE* dictMatch = dictBase + dictMatchIndex;
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if (dictMatchIndex <= dictStartIndex ||
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MEM_read32(dictMatch) != MEM_read32(ip)) {
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assert(stepSize >= 1);
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ip += ((ip-anchor) >> kSearchStrength) + stepSize;
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continue;
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} else {
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/* found a dict match */
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U32 const offset = (U32)(curr-dictMatchIndex-dictIndexDelta);
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mLength = ZSTD_count_2segments(ip+4, dictMatch+4, iend, dictEnd, prefixStart) + 4;
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while (((ip>anchor) & (dictMatch>dictStart))
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&& (ip[-1] == dictMatch[-1])) {
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ip--; dictMatch--; mLength++;
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size_t const dictHashAndTag0 = ZSTD_hashPtr(ip0, dictHBits, mls);
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U32 dictMatchIndexAndTag = dictHashTable[dictHashAndTag0 >> ZSTD_SHORT_CACHE_TAG_BITS];
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int dictTagsMatch = ZSTD_comparePackedTags(dictMatchIndexAndTag, dictHashAndTag0);
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U32 matchIndex = hashTable[hash0];
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U32 curr = (U32)(ip0 - base);
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size_t step = stepSize;
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const size_t kStepIncr = 1 << kSearchStrength;
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const BYTE* nextStep = ip0 + kStepIncr;
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/* Inner search loop */
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while (1) {
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const BYTE* match = base + matchIndex;
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const U32 repIndex = curr + 1 - offset_1;
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const BYTE* repMatch = (repIndex < prefixStartIndex) ?
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dictBase + (repIndex - dictIndexDelta) :
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base + repIndex;
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const size_t hash1 = ZSTD_hashPtr(ip1, hlog, mls);
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size_t const dictHashAndTag1 = ZSTD_hashPtr(ip1, dictHBits, mls);
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hashTable[hash0] = curr; /* update hash table */
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if (((U32) ((prefixStartIndex - 1) - repIndex) >=
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3) /* intentional underflow : ensure repIndex isn't overlapping dict + prefix */
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&& (MEM_read32(repMatch) == MEM_read32(ip0 + 1))) {
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const BYTE* const repMatchEnd = repIndex < prefixStartIndex ? dictEnd : iend;
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mLength = ZSTD_count_2segments(ip0 + 1 + 4, repMatch + 4, iend, repMatchEnd, prefixStart) + 4;
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ip0++;
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ZSTD_storeSeq(seqStore, (size_t) (ip0 - anchor), anchor, iend, REPCODE1_TO_OFFBASE, mLength);
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break;
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}
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if (dictTagsMatch) {
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/* Found a possible dict match */
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const U32 dictMatchIndex = dictMatchIndexAndTag >> ZSTD_SHORT_CACHE_TAG_BITS;
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const BYTE* dictMatch = dictBase + dictMatchIndex;
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if (dictMatchIndex > dictStartIndex &&
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MEM_read32(dictMatch) == MEM_read32(ip0)) {
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/* To replicate extDict parse behavior, we only use dict matches when the normal matchIndex is invalid */
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if (matchIndex <= prefixStartIndex) {
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U32 const offset = (U32) (curr - dictMatchIndex - dictIndexDelta);
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mLength = ZSTD_count_2segments(ip0 + 4, dictMatch + 4, iend, dictEnd, prefixStart) + 4;
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while (((ip0 > anchor) & (dictMatch > dictStart))
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&& (ip0[-1] == dictMatch[-1])) {
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ip0--;
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dictMatch--;
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mLength++;
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} /* catch up */
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offset_2 = offset_1;
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offset_1 = offset;
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ZSTD_storeSeq(seqStore, (size_t) (ip0 - anchor), anchor, iend, OFFSET_TO_OFFBASE(offset), mLength);
|
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break;
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}
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}
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}
|
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if (matchIndex > prefixStartIndex && MEM_read32(match) == MEM_read32(ip0)) {
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/* found a regular match */
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U32 const offset = (U32) (ip0 - match);
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mLength = ZSTD_count(ip0 + 4, match + 4, iend) + 4;
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while (((ip0 > anchor) & (match > prefixStart))
|
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&& (ip0[-1] == match[-1])) {
|
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ip0--;
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match--;
|
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mLength++;
|
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} /* catch up */
|
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offset_2 = offset_1;
|
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offset_1 = offset;
|
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ZSTD_storeSeq(seqStore, (size_t)(ip-anchor), anchor, iend, STORE_OFFSET(offset), mLength);
|
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ZSTD_storeSeq(seqStore, (size_t) (ip0 - anchor), anchor, iend, OFFSET_TO_OFFBASE(offset), mLength);
|
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break;
|
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}
|
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} else if (MEM_read32(match) != MEM_read32(ip)) {
|
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/* it's not a match, and we're not going to check the dictionary */
|
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assert(stepSize >= 1);
|
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ip += ((ip-anchor) >> kSearchStrength) + stepSize;
|
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continue;
|
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} else {
|
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/* found a regular match */
|
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U32 const offset = (U32)(ip-match);
|
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mLength = ZSTD_count(ip+4, match+4, iend) + 4;
|
||||
while (((ip>anchor) & (match>prefixStart))
|
||||
&& (ip[-1] == match[-1])) { ip--; match--; mLength++; } /* catch up */
|
||||
offset_2 = offset_1;
|
||||
offset_1 = offset;
|
||||
ZSTD_storeSeq(seqStore, (size_t)(ip-anchor), anchor, iend, STORE_OFFSET(offset), mLength);
|
||||
}
|
||||
|
||||
/* Prepare for next iteration */
|
||||
dictMatchIndexAndTag = dictHashTable[dictHashAndTag1 >> ZSTD_SHORT_CACHE_TAG_BITS];
|
||||
dictTagsMatch = ZSTD_comparePackedTags(dictMatchIndexAndTag, dictHashAndTag1);
|
||||
matchIndex = hashTable[hash1];
|
||||
|
||||
if (ip1 >= nextStep) {
|
||||
step++;
|
||||
nextStep += kStepIncr;
|
||||
}
|
||||
ip0 = ip1;
|
||||
ip1 = ip1 + step;
|
||||
if (ip1 > ilimit) goto _cleanup;
|
||||
|
||||
curr = (U32)(ip0 - base);
|
||||
hash0 = hash1;
|
||||
} /* end inner search loop */
|
||||
|
||||
/* match found */
|
||||
ip += mLength;
|
||||
anchor = ip;
|
||||
assert(mLength);
|
||||
ip0 += mLength;
|
||||
anchor = ip0;
|
||||
|
||||
if (ip <= ilimit) {
|
||||
if (ip0 <= ilimit) {
|
||||
/* Fill Table */
|
||||
assert(base+curr+2 > istart); /* check base overflow */
|
||||
hashTable[ZSTD_hashPtr(base+curr+2, hlog, mls)] = curr+2; /* here because curr+2 could be > iend-8 */
|
||||
hashTable[ZSTD_hashPtr(ip-2, hlog, mls)] = (U32)(ip-2-base);
|
||||
hashTable[ZSTD_hashPtr(ip0-2, hlog, mls)] = (U32)(ip0-2-base);
|
||||
|
||||
/* check immediate repcode */
|
||||
while (ip <= ilimit) {
|
||||
U32 const current2 = (U32)(ip-base);
|
||||
while (ip0 <= ilimit) {
|
||||
U32 const current2 = (U32)(ip0-base);
|
||||
U32 const repIndex2 = current2 - offset_2;
|
||||
const BYTE* repMatch2 = repIndex2 < prefixStartIndex ?
|
||||
dictBase - dictIndexDelta + repIndex2 :
|
||||
base + repIndex2;
|
||||
if ( ((U32)((prefixStartIndex-1) - (U32)repIndex2) >= 3 /* intentional overflow */)
|
||||
&& (MEM_read32(repMatch2) == MEM_read32(ip)) ) {
|
||||
&& (MEM_read32(repMatch2) == MEM_read32(ip0))) {
|
||||
const BYTE* const repEnd2 = repIndex2 < prefixStartIndex ? dictEnd : iend;
|
||||
size_t const repLength2 = ZSTD_count_2segments(ip+4, repMatch2+4, iend, repEnd2, prefixStart) + 4;
|
||||
size_t const repLength2 = ZSTD_count_2segments(ip0+4, repMatch2+4, iend, repEnd2, prefixStart) + 4;
|
||||
U32 tmpOffset = offset_2; offset_2 = offset_1; offset_1 = tmpOffset; /* swap offset_2 <=> offset_1 */
|
||||
ZSTD_storeSeq(seqStore, 0, anchor, iend, STORE_REPCODE_1, repLength2);
|
||||
hashTable[ZSTD_hashPtr(ip, hlog, mls)] = current2;
|
||||
ip += repLength2;
|
||||
anchor = ip;
|
||||
ZSTD_storeSeq(seqStore, 0, anchor, iend, REPCODE1_TO_OFFBASE, repLength2);
|
||||
hashTable[ZSTD_hashPtr(ip0, hlog, mls)] = current2;
|
||||
ip0 += repLength2;
|
||||
anchor = ip0;
|
||||
continue;
|
||||
}
|
||||
break;
|
||||
}
|
||||
}
|
||||
|
||||
/* Prepare for next iteration */
|
||||
assert(ip0 == anchor);
|
||||
ip1 = ip0 + stepSize;
|
||||
}
|
||||
|
||||
_cleanup:
|
||||
/* save reps for next block */
|
||||
rep[0] = offset_1 ? offset_1 : offsetSaved;
|
||||
rep[1] = offset_2 ? offset_2 : offsetSaved;
|
||||
rep[0] = offset_1;
|
||||
rep[1] = offset_2;
|
||||
|
||||
/* Return the last literals size */
|
||||
return (size_t)(iend - anchor);
|
||||
@@ -553,11 +689,10 @@ static size_t ZSTD_compressBlock_fast_extDict_generic(
|
||||
U32* const hashTable = ms->hashTable;
|
||||
U32 const hlog = cParams->hashLog;
|
||||
/* support stepSize of 0 */
|
||||
U32 const stepSize = cParams->targetLength + !(cParams->targetLength);
|
||||
size_t const stepSize = cParams->targetLength + !(cParams->targetLength) + 1;
|
||||
const BYTE* const base = ms->window.base;
|
||||
const BYTE* const dictBase = ms->window.dictBase;
|
||||
const BYTE* const istart = (const BYTE*)src;
|
||||
const BYTE* ip = istart;
|
||||
const BYTE* anchor = istart;
|
||||
const U32 endIndex = (U32)((size_t)(istart - base) + srcSize);
|
||||
const U32 lowLimit = ZSTD_getLowestMatchIndex(ms, endIndex, cParams->windowLog);
|
||||
@@ -570,6 +705,28 @@ static size_t ZSTD_compressBlock_fast_extDict_generic(
|
||||
const BYTE* const iend = istart + srcSize;
|
||||
const BYTE* const ilimit = iend - 8;
|
||||
U32 offset_1=rep[0], offset_2=rep[1];
|
||||
U32 offsetSaved1 = 0, offsetSaved2 = 0;
|
||||
|
||||
const BYTE* ip0 = istart;
|
||||
const BYTE* ip1;
|
||||
const BYTE* ip2;
|
||||
const BYTE* ip3;
|
||||
U32 current0;
|
||||
|
||||
|
||||
size_t hash0; /* hash for ip0 */
|
||||
size_t hash1; /* hash for ip1 */
|
||||
U32 idx; /* match idx for ip0 */
|
||||
const BYTE* idxBase; /* base pointer for idx */
|
||||
|
||||
U32 offcode;
|
||||
const BYTE* match0;
|
||||
size_t mLength;
|
||||
const BYTE* matchEnd = 0; /* initialize to avoid warning, assert != 0 later */
|
||||
|
||||
size_t step;
|
||||
const BYTE* nextStep;
|
||||
const size_t kStepIncr = (1 << (kSearchStrength - 1));
|
||||
|
||||
(void)hasStep; /* not currently specialized on whether it's accelerated */
|
||||
|
||||
@@ -579,75 +736,202 @@ static size_t ZSTD_compressBlock_fast_extDict_generic(
|
||||
if (prefixStartIndex == dictStartIndex)
|
||||
return ZSTD_compressBlock_fast(ms, seqStore, rep, src, srcSize);
|
||||
|
||||
/* Search Loop */
|
||||
while (ip < ilimit) { /* < instead of <=, because (ip+1) */
|
||||
const size_t h = ZSTD_hashPtr(ip, hlog, mls);
|
||||
const U32 matchIndex = hashTable[h];
|
||||
const BYTE* const matchBase = matchIndex < prefixStartIndex ? dictBase : base;
|
||||
const BYTE* match = matchBase + matchIndex;
|
||||
const U32 curr = (U32)(ip-base);
|
||||
const U32 repIndex = curr + 1 - offset_1;
|
||||
const BYTE* const repBase = repIndex < prefixStartIndex ? dictBase : base;
|
||||
const BYTE* const repMatch = repBase + repIndex;
|
||||
hashTable[h] = curr; /* update hash table */
|
||||
DEBUGLOG(7, "offset_1 = %u , curr = %u", offset_1, curr);
|
||||
{ U32 const curr = (U32)(ip0 - base);
|
||||
U32 const maxRep = curr - dictStartIndex;
|
||||
if (offset_2 >= maxRep) offsetSaved2 = offset_2, offset_2 = 0;
|
||||
if (offset_1 >= maxRep) offsetSaved1 = offset_1, offset_1 = 0;
|
||||
}
|
||||
|
||||
if ( ( ((U32)((prefixStartIndex-1) - repIndex) >= 3) /* intentional underflow */
|
||||
& (offset_1 <= curr+1 - dictStartIndex) ) /* note: we are searching at curr+1 */
|
||||
&& (MEM_read32(repMatch) == MEM_read32(ip+1)) ) {
|
||||
const BYTE* const repMatchEnd = repIndex < prefixStartIndex ? dictEnd : iend;
|
||||
size_t const rLength = ZSTD_count_2segments(ip+1 +4, repMatch +4, iend, repMatchEnd, prefixStart) + 4;
|
||||
ip++;
|
||||
ZSTD_storeSeq(seqStore, (size_t)(ip-anchor), anchor, iend, STORE_REPCODE_1, rLength);
|
||||
ip += rLength;
|
||||
anchor = ip;
|
||||
} else {
|
||||
if ( (matchIndex < dictStartIndex) ||
|
||||
(MEM_read32(match) != MEM_read32(ip)) ) {
|
||||
assert(stepSize >= 1);
|
||||
ip += ((ip-anchor) >> kSearchStrength) + stepSize;
|
||||
continue;
|
||||
/* start each op */
|
||||
_start: /* Requires: ip0 */
|
||||
|
||||
step = stepSize;
|
||||
nextStep = ip0 + kStepIncr;
|
||||
|
||||
/* calculate positions, ip0 - anchor == 0, so we skip step calc */
|
||||
ip1 = ip0 + 1;
|
||||
ip2 = ip0 + step;
|
||||
ip3 = ip2 + 1;
|
||||
|
||||
if (ip3 >= ilimit) {
|
||||
goto _cleanup;
|
||||
}
|
||||
|
||||
hash0 = ZSTD_hashPtr(ip0, hlog, mls);
|
||||
hash1 = ZSTD_hashPtr(ip1, hlog, mls);
|
||||
|
||||
idx = hashTable[hash0];
|
||||
idxBase = idx < prefixStartIndex ? dictBase : base;
|
||||
|
||||
do {
|
||||
{ /* load repcode match for ip[2] */
|
||||
U32 const current2 = (U32)(ip2 - base);
|
||||
U32 const repIndex = current2 - offset_1;
|
||||
const BYTE* const repBase = repIndex < prefixStartIndex ? dictBase : base;
|
||||
U32 rval;
|
||||
if ( ((U32)(prefixStartIndex - repIndex) >= 4) /* intentional underflow */
|
||||
& (offset_1 > 0) ) {
|
||||
rval = MEM_read32(repBase + repIndex);
|
||||
} else {
|
||||
rval = MEM_read32(ip2) ^ 1; /* guaranteed to not match. */
|
||||
}
|
||||
{ const BYTE* const matchEnd = matchIndex < prefixStartIndex ? dictEnd : iend;
|
||||
const BYTE* const lowMatchPtr = matchIndex < prefixStartIndex ? dictStart : prefixStart;
|
||||
U32 const offset = curr - matchIndex;
|
||||
size_t mLength = ZSTD_count_2segments(ip+4, match+4, iend, matchEnd, prefixStart) + 4;
|
||||
while (((ip>anchor) & (match>lowMatchPtr)) && (ip[-1] == match[-1])) { ip--; match--; mLength++; } /* catch up */
|
||||
offset_2 = offset_1; offset_1 = offset; /* update offset history */
|
||||
ZSTD_storeSeq(seqStore, (size_t)(ip-anchor), anchor, iend, STORE_OFFSET(offset), mLength);
|
||||
ip += mLength;
|
||||
anchor = ip;
|
||||
|
||||
/* write back hash table entry */
|
||||
current0 = (U32)(ip0 - base);
|
||||
hashTable[hash0] = current0;
|
||||
|
||||
/* check repcode at ip[2] */
|
||||
if (MEM_read32(ip2) == rval) {
|
||||
ip0 = ip2;
|
||||
match0 = repBase + repIndex;
|
||||
matchEnd = repIndex < prefixStartIndex ? dictEnd : iend;
|
||||
assert((match0 != prefixStart) & (match0 != dictStart));
|
||||
mLength = ip0[-1] == match0[-1];
|
||||
ip0 -= mLength;
|
||||
match0 -= mLength;
|
||||
offcode = REPCODE1_TO_OFFBASE;
|
||||
mLength += 4;
|
||||
goto _match;
|
||||
} }
|
||||
|
||||
if (ip <= ilimit) {
|
||||
/* Fill Table */
|
||||
hashTable[ZSTD_hashPtr(base+curr+2, hlog, mls)] = curr+2;
|
||||
hashTable[ZSTD_hashPtr(ip-2, hlog, mls)] = (U32)(ip-2-base);
|
||||
/* check immediate repcode */
|
||||
while (ip <= ilimit) {
|
||||
U32 const current2 = (U32)(ip-base);
|
||||
U32 const repIndex2 = current2 - offset_2;
|
||||
const BYTE* const repMatch2 = repIndex2 < prefixStartIndex ? dictBase + repIndex2 : base + repIndex2;
|
||||
if ( (((U32)((prefixStartIndex-1) - repIndex2) >= 3) & (offset_2 <= curr - dictStartIndex)) /* intentional overflow */
|
||||
&& (MEM_read32(repMatch2) == MEM_read32(ip)) ) {
|
||||
const BYTE* const repEnd2 = repIndex2 < prefixStartIndex ? dictEnd : iend;
|
||||
size_t const repLength2 = ZSTD_count_2segments(ip+4, repMatch2+4, iend, repEnd2, prefixStart) + 4;
|
||||
{ U32 const tmpOffset = offset_2; offset_2 = offset_1; offset_1 = tmpOffset; } /* swap offset_2 <=> offset_1 */
|
||||
ZSTD_storeSeq(seqStore, 0 /*litlen*/, anchor, iend, STORE_REPCODE_1, repLength2);
|
||||
hashTable[ZSTD_hashPtr(ip, hlog, mls)] = current2;
|
||||
ip += repLength2;
|
||||
anchor = ip;
|
||||
continue;
|
||||
}
|
||||
break;
|
||||
} } }
|
||||
{ /* load match for ip[0] */
|
||||
U32 const mval = idx >= dictStartIndex ?
|
||||
MEM_read32(idxBase + idx) :
|
||||
MEM_read32(ip0) ^ 1; /* guaranteed not to match */
|
||||
|
||||
/* check match at ip[0] */
|
||||
if (MEM_read32(ip0) == mval) {
|
||||
/* found a match! */
|
||||
goto _offset;
|
||||
} }
|
||||
|
||||
/* lookup ip[1] */
|
||||
idx = hashTable[hash1];
|
||||
idxBase = idx < prefixStartIndex ? dictBase : base;
|
||||
|
||||
/* hash ip[2] */
|
||||
hash0 = hash1;
|
||||
hash1 = ZSTD_hashPtr(ip2, hlog, mls);
|
||||
|
||||
/* advance to next positions */
|
||||
ip0 = ip1;
|
||||
ip1 = ip2;
|
||||
ip2 = ip3;
|
||||
|
||||
/* write back hash table entry */
|
||||
current0 = (U32)(ip0 - base);
|
||||
hashTable[hash0] = current0;
|
||||
|
||||
{ /* load match for ip[0] */
|
||||
U32 const mval = idx >= dictStartIndex ?
|
||||
MEM_read32(idxBase + idx) :
|
||||
MEM_read32(ip0) ^ 1; /* guaranteed not to match */
|
||||
|
||||
/* check match at ip[0] */
|
||||
if (MEM_read32(ip0) == mval) {
|
||||
/* found a match! */
|
||||
goto _offset;
|
||||
} }
|
||||
|
||||
/* lookup ip[1] */
|
||||
idx = hashTable[hash1];
|
||||
idxBase = idx < prefixStartIndex ? dictBase : base;
|
||||
|
||||
/* hash ip[2] */
|
||||
hash0 = hash1;
|
||||
hash1 = ZSTD_hashPtr(ip2, hlog, mls);
|
||||
|
||||
/* advance to next positions */
|
||||
ip0 = ip1;
|
||||
ip1 = ip2;
|
||||
ip2 = ip0 + step;
|
||||
ip3 = ip1 + step;
|
||||
|
||||
/* calculate step */
|
||||
if (ip2 >= nextStep) {
|
||||
step++;
|
||||
PREFETCH_L1(ip1 + 64);
|
||||
PREFETCH_L1(ip1 + 128);
|
||||
nextStep += kStepIncr;
|
||||
}
|
||||
} while (ip3 < ilimit);
|
||||
|
||||
_cleanup:
|
||||
/* Note that there are probably still a couple positions we could search.
|
||||
* However, it seems to be a meaningful performance hit to try to search
|
||||
* them. So let's not. */
|
||||
|
||||
/* If offset_1 started invalid (offsetSaved1 != 0) and became valid (offset_1 != 0),
|
||||
* rotate saved offsets. See comment in ZSTD_compressBlock_fast_noDict for more context. */
|
||||
offsetSaved2 = ((offsetSaved1 != 0) && (offset_1 != 0)) ? offsetSaved1 : offsetSaved2;
|
||||
|
||||
/* save reps for next block */
|
||||
rep[0] = offset_1;
|
||||
rep[1] = offset_2;
|
||||
rep[0] = offset_1 ? offset_1 : offsetSaved1;
|
||||
rep[1] = offset_2 ? offset_2 : offsetSaved2;
|
||||
|
||||
/* Return the last literals size */
|
||||
return (size_t)(iend - anchor);
|
||||
|
||||
_offset: /* Requires: ip0, idx, idxBase */
|
||||
|
||||
/* Compute the offset code. */
|
||||
{ U32 const offset = current0 - idx;
|
||||
const BYTE* const lowMatchPtr = idx < prefixStartIndex ? dictStart : prefixStart;
|
||||
matchEnd = idx < prefixStartIndex ? dictEnd : iend;
|
||||
match0 = idxBase + idx;
|
||||
offset_2 = offset_1;
|
||||
offset_1 = offset;
|
||||
offcode = OFFSET_TO_OFFBASE(offset);
|
||||
mLength = 4;
|
||||
|
||||
/* Count the backwards match length. */
|
||||
while (((ip0>anchor) & (match0>lowMatchPtr)) && (ip0[-1] == match0[-1])) {
|
||||
ip0--;
|
||||
match0--;
|
||||
mLength++;
|
||||
} }
|
||||
|
||||
_match: /* Requires: ip0, match0, offcode, matchEnd */
|
||||
|
||||
/* Count the forward length. */
|
||||
assert(matchEnd != 0);
|
||||
mLength += ZSTD_count_2segments(ip0 + mLength, match0 + mLength, iend, matchEnd, prefixStart);
|
||||
|
||||
ZSTD_storeSeq(seqStore, (size_t)(ip0 - anchor), anchor, iend, offcode, mLength);
|
||||
|
||||
ip0 += mLength;
|
||||
anchor = ip0;
|
||||
|
||||
/* write next hash table entry */
|
||||
if (ip1 < ip0) {
|
||||
hashTable[hash1] = (U32)(ip1 - base);
|
||||
}
|
||||
|
||||
/* Fill table and check for immediate repcode. */
|
||||
if (ip0 <= ilimit) {
|
||||
/* Fill Table */
|
||||
assert(base+current0+2 > istart); /* check base overflow */
|
||||
hashTable[ZSTD_hashPtr(base+current0+2, hlog, mls)] = current0+2; /* here because current+2 could be > iend-8 */
|
||||
hashTable[ZSTD_hashPtr(ip0-2, hlog, mls)] = (U32)(ip0-2-base);
|
||||
|
||||
while (ip0 <= ilimit) {
|
||||
U32 const repIndex2 = (U32)(ip0-base) - offset_2;
|
||||
const BYTE* const repMatch2 = repIndex2 < prefixStartIndex ? dictBase + repIndex2 : base + repIndex2;
|
||||
if ( (((U32)((prefixStartIndex-1) - repIndex2) >= 3) & (offset_2 > 0)) /* intentional underflow */
|
||||
&& (MEM_read32(repMatch2) == MEM_read32(ip0)) ) {
|
||||
const BYTE* const repEnd2 = repIndex2 < prefixStartIndex ? dictEnd : iend;
|
||||
size_t const repLength2 = ZSTD_count_2segments(ip0+4, repMatch2+4, iend, repEnd2, prefixStart) + 4;
|
||||
{ U32 const tmpOffset = offset_2; offset_2 = offset_1; offset_1 = tmpOffset; } /* swap offset_2 <=> offset_1 */
|
||||
ZSTD_storeSeq(seqStore, 0 /*litlen*/, anchor, iend, REPCODE1_TO_OFFBASE, repLength2);
|
||||
hashTable[ZSTD_hashPtr(ip0, hlog, mls)] = (U32)(ip0-base);
|
||||
ip0 += repLength2;
|
||||
anchor = ip0;
|
||||
continue;
|
||||
}
|
||||
break;
|
||||
} }
|
||||
|
||||
goto _start;
|
||||
}
|
||||
|
||||
ZSTD_GEN_FAST_FN(extDict, 4, 0)
|
||||
@@ -660,6 +944,7 @@ size_t ZSTD_compressBlock_fast_extDict(
|
||||
void const* src, size_t srcSize)
|
||||
{
|
||||
U32 const mls = ms->cParams.minMatch;
|
||||
assert(ms->dictMatchState == NULL);
|
||||
switch(mls)
|
||||
{
|
||||
default: /* includes case 3 */
|
||||
|
||||
Reference in New Issue
Block a user