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synced 2025-10-08 00:04:02 -04:00
fixed incorrect assert
commented Fweight instead
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4a1a79a512
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@ -26,15 +26,15 @@
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#if 0 /* approximation at bit level (for tests) */
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# define BITCOST_ACCURACY 0
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# define BITCOST_MULTIPLIER (1 << BITCOST_ACCURACY)
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# define WEIGHT(stat, opt) ((void)opt, ZSTD_bitWeight(stat))
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# define WEIGHT(stat, opt) ((void)(opt), ZSTD_bitWeight(stat))
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#elif 0 /* fractional bit accuracy (for tests) */
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# define BITCOST_ACCURACY 8
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# define BITCOST_MULTIPLIER (1 << BITCOST_ACCURACY)
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# define WEIGHT(stat,opt) ((void)opt, ZSTD_fracWeight(stat))
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# define WEIGHT(stat,opt) ((void)(opt), ZSTD_fracWeight(stat))
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#else /* opt==approx, ultra==accurate */
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# define BITCOST_ACCURACY 8
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# define BITCOST_MULTIPLIER (1 << BITCOST_ACCURACY)
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# define WEIGHT(stat,opt) (opt ? ZSTD_fracWeight(stat) : ZSTD_bitWeight(stat))
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# define WEIGHT(stat,opt) ((opt) ? ZSTD_fracWeight(stat) : ZSTD_bitWeight(stat))
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#endif
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/* ZSTD_bitWeight() :
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@ -52,10 +52,12 @@ MEM_STATIC U32 ZSTD_fracWeight(U32 rawStat)
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U32 const stat = rawStat + 1;
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U32 const hb = ZSTD_highbit32(stat);
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U32 const BWeight = hb * BITCOST_MULTIPLIER;
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/* Fweight was meant for "Fractional weight"
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* but it's effectively a value between 1 and 2
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* using fixed point arithmetic */
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U32 const FWeight = (stat << BITCOST_ACCURACY) >> hb;
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U32 const weight = BWeight + FWeight;
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assert(hb + BITCOST_ACCURACY < 31);
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assert(FWeight < BITCOST_MULTIPLIER);
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return weight;
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}
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