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Simplify integerify()
Make offsets 64 bit in the SSE scrypt impl
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@ -160,9 +160,9 @@ blockmix_salsa8(const uint32_t *Bin, uint32_t *Bout, uint32_t *X, size_t r)
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static inline uint64_t
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integerify(const void *B, size_t r)
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{
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const uint32_t *X = (const uint32_t *) ((uintptr_t)(B) + (2 * r - 1) * 64);
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const uint32_t *X = ((const uint32_t *) B) + (2 * r - 1) * 16;
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return (((uint64_t)(X[1]) << 32) + X[0]);
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return ((uint64_t) (X[1]) << 32) + X[0];
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}
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/**
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@ -213,10 +213,12 @@ blockmix_salsa8_xor(const __m128i *Bin1, const __m128i *Bin2, __m128i *Bout,
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* Return the result of parsing B_{2r-1} as a little-endian integer.
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* Note that B's layout is permuted compared to the generic implementation.
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*/
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static inline uint32_t
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static inline uint64_t
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integerify(const void *B, size_t r)
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{
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return *(const uint32_t *) ((uintptr_t)(B) + (2 * r - 1) * 64);
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const uint64_t *X = ((const uint64_t *) B) + (2 * r - 1) * 8;
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return *X;
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}
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/**
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@ -228,12 +230,12 @@ integerify(const void *B, size_t r)
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* multiple of 64 bytes.
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*/
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static void
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smix(uint8_t *B, size_t r, uint32_t N, void *V, void *XY)
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smix(uint8_t *B, size_t r, uint64_t N, void *V, void *XY)
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{
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size_t s = 128 * r;
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__m128i *X = (__m128i *) V, *Y;
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uint32_t *X32 = (uint32_t *) V;
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uint32_t i, j;
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uint64_t i, j;
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size_t k;
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/* 1: X <-- B */
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@ -388,7 +390,7 @@ escrypt_kdf_sse(escrypt_local_t *local, const uint8_t *passwd, size_t passwdlen,
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/* 2: for i = 0 to p - 1 do */
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for (i = 0; i < p; i++) {
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/* 3: B_i <-- MF(B_i, N) */
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smix(&B[(size_t) 128 * i * r], r, (uint32_t) N, V, XY);
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smix(&B[(size_t) 128 * i * r], r, N, V, XY);
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}
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/* 5: DK <-- PBKDF2(P, B, 1, dkLen) */
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