Coverage Report

Created: 2025-06-22 08:04

/src/zstd/lib/common/entropy_common.c
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/* ******************************************************************
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 * Common functions of New Generation Entropy library
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 * Copyright (c) Meta Platforms, Inc. and affiliates.
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 *
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 *  You can contact the author at :
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 *  - FSE+HUF source repository : https://github.com/Cyan4973/FiniteStateEntropy
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 *  - Public forum : https://groups.google.com/forum/#!forum/lz4c
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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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 * LICENSE file in the root directory of this source tree) and the GPLv2 (found
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 * in the COPYING file in the root directory of this source tree).
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 * You may select, at your option, one of the above-listed licenses.
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****************************************************************** */
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/* *************************************
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*  Dependencies
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***************************************/
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#include "mem.h"
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#include "error_private.h"       /* ERR_*, ERROR */
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#define FSE_STATIC_LINKING_ONLY  /* FSE_MIN_TABLELOG */
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#include "fse.h"
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#include "huf.h"
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#include "bits.h"                /* ZSDT_highbit32, ZSTD_countTrailingZeros32 */
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/*===   Version   ===*/
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0
unsigned FSE_versionNumber(void) { return FSE_VERSION_NUMBER; }
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/*===   Error Management   ===*/
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0
unsigned FSE_isError(size_t code) { return ERR_isError(code); }
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0
const char* FSE_getErrorName(size_t code) { return ERR_getErrorName(code); }
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0
unsigned HUF_isError(size_t code) { return ERR_isError(code); }
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0
const char* HUF_getErrorName(size_t code) { return ERR_getErrorName(code); }
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/*-**************************************************************
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*  FSE NCount encoding-decoding
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****************************************************************/
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FORCE_INLINE_TEMPLATE
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size_t FSE_readNCount_body(short* normalizedCounter, unsigned* maxSVPtr, unsigned* tableLogPtr,
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                           const void* headerBuffer, size_t hbSize)
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0
{
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0
    const BYTE* const istart = (const BYTE*) headerBuffer;
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0
    const BYTE* const iend = istart + hbSize;
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0
    const BYTE* ip = istart;
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0
    int nbBits;
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0
    int remaining;
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0
    int threshold;
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0
    U32 bitStream;
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0
    int bitCount;
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0
    unsigned charnum = 0;
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0
    unsigned const maxSV1 = *maxSVPtr + 1;
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0
    int previous0 = 0;
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0
    if (hbSize < 8) {
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        /* This function only works when hbSize >= 8 */
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0
        char buffer[8] = {0};
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0
        ZSTD_memcpy(buffer, headerBuffer, hbSize);
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0
        {   size_t const countSize = FSE_readNCount(normalizedCounter, maxSVPtr, tableLogPtr,
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0
                                                    buffer, sizeof(buffer));
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0
            if (FSE_isError(countSize)) return countSize;
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0
            if (countSize > hbSize) return ERROR(corruption_detected);
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0
            return countSize;
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0
    }   }
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0
    assert(hbSize >= 8);
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    /* init */
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0
    ZSTD_memset(normalizedCounter, 0, (*maxSVPtr+1) * sizeof(normalizedCounter[0]));   /* all symbols not present in NCount have a frequency of 0 */
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0
    bitStream = MEM_readLE32(ip);
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0
    nbBits = (bitStream & 0xF) + FSE_MIN_TABLELOG;   /* extract tableLog */
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0
    if (nbBits > FSE_TABLELOG_ABSOLUTE_MAX) return ERROR(tableLog_tooLarge);
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0
    bitStream >>= 4;
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0
    bitCount = 4;
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0
    *tableLogPtr = nbBits;
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0
    remaining = (1<<nbBits)+1;
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0
    threshold = 1<<nbBits;
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0
    nbBits++;
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0
    for (;;) {
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0
        if (previous0) {
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            /* Count the number of repeats. Each time the
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             * 2-bit repeat code is 0b11 there is another
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             * repeat.
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             * Avoid UB by setting the high bit to 1.
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             */
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0
            int repeats = ZSTD_countTrailingZeros32(~bitStream | 0x80000000) >> 1;
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0
            while (repeats >= 12) {
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0
                charnum += 3 * 12;
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0
                if (LIKELY(ip <= iend-7)) {
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0
                    ip += 3;
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0
                } else {
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0
                    bitCount -= (int)(8 * (iend - 7 - ip));
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0
                    bitCount &= 31;
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0
                    ip = iend - 4;
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0
                }
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                bitStream = MEM_readLE32(ip) >> bitCount;
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0
                repeats = ZSTD_countTrailingZeros32(~bitStream | 0x80000000) >> 1;
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0
            }
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            charnum += 3 * repeats;
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0
            bitStream >>= 2 * repeats;
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0
            bitCount += 2 * repeats;
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            /* Add the final repeat which isn't 0b11. */
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0
            assert((bitStream & 3) < 3);
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            charnum += bitStream & 3;
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            bitCount += 2;
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            /* This is an error, but break and return an error
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             * at the end, because returning out of a loop makes
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             * it harder for the compiler to optimize.
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             */
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0
            if (charnum >= maxSV1) break;
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            /* We don't need to set the normalized count to 0
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             * because we already memset the whole buffer to 0.
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             */
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            if (LIKELY(ip <= iend-7) || (ip + (bitCount>>3) <= iend-4)) {
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0
                assert((bitCount >> 3) <= 3); /* For first condition to work */
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                ip += bitCount>>3;
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                bitCount &= 7;
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0
            } else {
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0
                bitCount -= (int)(8 * (iend - 4 - ip));
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0
                bitCount &= 31;
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0
                ip = iend - 4;
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0
            }
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0
            bitStream = MEM_readLE32(ip) >> bitCount;
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0
        }
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0
        {
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0
            int const max = (2*threshold-1) - remaining;
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0
            int count;
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0
            if ((bitStream & (threshold-1)) < (U32)max) {
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0
                count = bitStream & (threshold-1);
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0
                bitCount += nbBits-1;
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0
            } else {
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0
                count = bitStream & (2*threshold-1);
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0
                if (count >= threshold) count -= max;
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0
                bitCount += nbBits;
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0
            }
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0
            count--;   /* extra accuracy */
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            /* When it matters (small blocks), this is a
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             * predictable branch, because we don't use -1.
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             */
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0
            if (count >= 0) {
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0
                remaining -= count;
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0
            } else {
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0
                assert(count == -1);
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0
                remaining += count;
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0
            }
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0
            normalizedCounter[charnum++] = (short)count;
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0
            previous0 = !count;
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0
            assert(threshold > 1);
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0
            if (remaining < threshold) {
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                /* This branch can be folded into the
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                 * threshold update condition because we
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                 * know that threshold > 1.
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                 */
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0
                if (remaining <= 1) break;
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0
                nbBits = ZSTD_highbit32(remaining) + 1;
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0
                threshold = 1 << (nbBits - 1);
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0
            }
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0
            if (charnum >= maxSV1) break;
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169
0
            if (LIKELY(ip <= iend-7) || (ip + (bitCount>>3) <= iend-4)) {
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0
                ip += bitCount>>3;
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0
                bitCount &= 7;
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0
            } else {
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0
                bitCount -= (int)(8 * (iend - 4 - ip));
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0
                bitCount &= 31;
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0
                ip = iend - 4;
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0
            }
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0
            bitStream = MEM_readLE32(ip) >> bitCount;
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0
    }   }
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0
    if (remaining != 1) return ERROR(corruption_detected);
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    /* Only possible when there are too many zeros. */
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0
    if (charnum > maxSV1) return ERROR(maxSymbolValue_tooSmall);
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0
    if (bitCount > 32) return ERROR(corruption_detected);
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0
    *maxSVPtr = charnum-1;
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0
    ip += (bitCount+7)>>3;
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0
    return ip-istart;
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0
}
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/* Avoids the FORCE_INLINE of the _body() function. */
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static size_t FSE_readNCount_body_default(
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        short* normalizedCounter, unsigned* maxSVPtr, unsigned* tableLogPtr,
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        const void* headerBuffer, size_t hbSize)
193
0
{
194
0
    return FSE_readNCount_body(normalizedCounter, maxSVPtr, tableLogPtr, headerBuffer, hbSize);
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0
}
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#if DYNAMIC_BMI2
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BMI2_TARGET_ATTRIBUTE static size_t FSE_readNCount_body_bmi2(
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        short* normalizedCounter, unsigned* maxSVPtr, unsigned* tableLogPtr,
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        const void* headerBuffer, size_t hbSize)
201
0
{
202
0
    return FSE_readNCount_body(normalizedCounter, maxSVPtr, tableLogPtr, headerBuffer, hbSize);
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0
}
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#endif
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size_t FSE_readNCount_bmi2(
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        short* normalizedCounter, unsigned* maxSVPtr, unsigned* tableLogPtr,
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        const void* headerBuffer, size_t hbSize, int bmi2)
209
0
{
210
0
#if DYNAMIC_BMI2
211
0
    if (bmi2) {
212
0
        return FSE_readNCount_body_bmi2(normalizedCounter, maxSVPtr, tableLogPtr, headerBuffer, hbSize);
213
0
    }
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0
#endif
215
0
    (void)bmi2;
216
0
    return FSE_readNCount_body_default(normalizedCounter, maxSVPtr, tableLogPtr, headerBuffer, hbSize);
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0
}
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219
size_t FSE_readNCount(
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        short* normalizedCounter, unsigned* maxSVPtr, unsigned* tableLogPtr,
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        const void* headerBuffer, size_t hbSize)
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0
{
223
0
    return FSE_readNCount_bmi2(normalizedCounter, maxSVPtr, tableLogPtr, headerBuffer, hbSize, /* bmi2 */ 0);
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0
}
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/*! HUF_readStats() :
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    Read compact Huffman tree, saved by HUF_writeCTable().
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    `huffWeight` is destination buffer.
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    `rankStats` is assumed to be a table of at least HUF_TABLELOG_MAX U32.
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    @return : size read from `src` , or an error Code .
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    Note : Needed by HUF_readCTable() and HUF_readDTableX?() .
233
*/
234
size_t HUF_readStats(BYTE* huffWeight, size_t hwSize, U32* rankStats,
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                     U32* nbSymbolsPtr, U32* tableLogPtr,
236
                     const void* src, size_t srcSize)
237
0
{
238
0
    U32 wksp[HUF_READ_STATS_WORKSPACE_SIZE_U32];
239
0
    return HUF_readStats_wksp(huffWeight, hwSize, rankStats, nbSymbolsPtr, tableLogPtr, src, srcSize, wksp, sizeof(wksp), /* flags */ 0);
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0
}
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242
FORCE_INLINE_TEMPLATE size_t
243
HUF_readStats_body(BYTE* huffWeight, size_t hwSize, U32* rankStats,
244
                   U32* nbSymbolsPtr, U32* tableLogPtr,
245
                   const void* src, size_t srcSize,
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                   void* workSpace, size_t wkspSize,
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                   int bmi2)
248
0
{
249
0
    U32 weightTotal;
250
0
    const BYTE* ip = (const BYTE*) src;
251
0
    size_t iSize;
252
0
    size_t oSize;
253
254
0
    if (!srcSize) return ERROR(srcSize_wrong);
255
0
    iSize = ip[0];
256
    /* ZSTD_memset(huffWeight, 0, hwSize);   *//* is not necessary, even though some analyzer complain ... */
257
258
0
    if (iSize >= 128) {  /* special header */
259
0
        oSize = iSize - 127;
260
0
        iSize = ((oSize+1)/2);
261
0
        if (iSize+1 > srcSize) return ERROR(srcSize_wrong);
262
0
        if (oSize >= hwSize) return ERROR(corruption_detected);
263
0
        ip += 1;
264
0
        {   U32 n;
265
0
            for (n=0; n<oSize; n+=2) {
266
0
                huffWeight[n]   = ip[n/2] >> 4;
267
0
                huffWeight[n+1] = ip[n/2] & 15;
268
0
    }   }   }
269
0
    else  {   /* header compressed with FSE (normal case) */
270
0
        if (iSize+1 > srcSize) return ERROR(srcSize_wrong);
271
        /* max (hwSize-1) values decoded, as last one is implied */
272
0
        oSize = FSE_decompress_wksp_bmi2(huffWeight, hwSize-1, ip+1, iSize, 6, workSpace, wkspSize, bmi2);
273
0
        if (FSE_isError(oSize)) return oSize;
274
0
    }
275
276
    /* collect weight stats */
277
0
    ZSTD_memset(rankStats, 0, (HUF_TABLELOG_MAX + 1) * sizeof(U32));
278
0
    weightTotal = 0;
279
0
    {   U32 n; for (n=0; n<oSize; n++) {
280
0
            if (huffWeight[n] > HUF_TABLELOG_MAX) return ERROR(corruption_detected);
281
0
            rankStats[huffWeight[n]]++;
282
0
            weightTotal += (1 << huffWeight[n]) >> 1;
283
0
    }   }
284
0
    if (weightTotal == 0) return ERROR(corruption_detected);
285
286
    /* get last non-null symbol weight (implied, total must be 2^n) */
287
0
    {   U32 const tableLog = ZSTD_highbit32(weightTotal) + 1;
288
0
        if (tableLog > HUF_TABLELOG_MAX) return ERROR(corruption_detected);
289
0
        *tableLogPtr = tableLog;
290
        /* determine last weight */
291
0
        {   U32 const total = 1 << tableLog;
292
0
            U32 const rest = total - weightTotal;
293
0
            U32 const verif = 1 << ZSTD_highbit32(rest);
294
0
            U32 const lastWeight = ZSTD_highbit32(rest) + 1;
295
0
            if (verif != rest) return ERROR(corruption_detected);    /* last value must be a clean power of 2 */
296
0
            huffWeight[oSize] = (BYTE)lastWeight;
297
0
            rankStats[lastWeight]++;
298
0
    }   }
299
300
    /* check tree construction validity */
301
0
    if ((rankStats[1] < 2) || (rankStats[1] & 1)) return ERROR(corruption_detected);   /* by construction : at least 2 elts of rank 1, must be even */
302
303
    /* results */
304
0
    *nbSymbolsPtr = (U32)(oSize+1);
305
0
    return iSize+1;
306
0
}
307
308
/* Avoids the FORCE_INLINE of the _body() function. */
309
static size_t HUF_readStats_body_default(BYTE* huffWeight, size_t hwSize, U32* rankStats,
310
                     U32* nbSymbolsPtr, U32* tableLogPtr,
311
                     const void* src, size_t srcSize,
312
                     void* workSpace, size_t wkspSize)
313
0
{
314
0
    return HUF_readStats_body(huffWeight, hwSize, rankStats, nbSymbolsPtr, tableLogPtr, src, srcSize, workSpace, wkspSize, 0);
315
0
}
316
317
#if DYNAMIC_BMI2
318
static BMI2_TARGET_ATTRIBUTE size_t HUF_readStats_body_bmi2(BYTE* huffWeight, size_t hwSize, U32* rankStats,
319
                     U32* nbSymbolsPtr, U32* tableLogPtr,
320
                     const void* src, size_t srcSize,
321
                     void* workSpace, size_t wkspSize)
322
0
{
323
0
    return HUF_readStats_body(huffWeight, hwSize, rankStats, nbSymbolsPtr, tableLogPtr, src, srcSize, workSpace, wkspSize, 1);
324
0
}
325
#endif
326
327
size_t HUF_readStats_wksp(BYTE* huffWeight, size_t hwSize, U32* rankStats,
328
                     U32* nbSymbolsPtr, U32* tableLogPtr,
329
                     const void* src, size_t srcSize,
330
                     void* workSpace, size_t wkspSize,
331
                     int flags)
332
0
{
333
0
#if DYNAMIC_BMI2
334
0
    if (flags & HUF_flags_bmi2) {
335
0
        return HUF_readStats_body_bmi2(huffWeight, hwSize, rankStats, nbSymbolsPtr, tableLogPtr, src, srcSize, workSpace, wkspSize);
336
0
    }
337
0
#endif
338
0
    (void)flags;
339
0
    return HUF_readStats_body_default(huffWeight, hwSize, rankStats, nbSymbolsPtr, tableLogPtr, src, srcSize, workSpace, wkspSize);
340
0
}