/* Implementation by the Keccak, Keyak and Ketje Teams, namely, Guido Bertoni, Joan Daemen, Michaƫl Peeters, Gilles Van Assche and Ronny Van Keer, hereby denoted as "the implementer". For more information, feedback or questions, please refer to our websites: http://keccak.noekeon.org/ http://keyak.noekeon.org/ http://ketje.noekeon.org/ To the extent possible under law, the implementer has waived all copyright and related or neighboring rights to the source code in this file. http://creativecommons.org/publicdomain/zero/1.0/ */ #include #include #include "brg_endian.h" #include "KeccakP-1600-opt64-config.h" typedef unsigned char UINT8; typedef unsigned long long int UINT64; #if defined(KeccakP1600_useLaneComplementing) #define UseBebigokimisa #endif #if defined(_MSC_VER) #define ROL64(a, offset) _rotl64(a, offset) #elif defined(KeccakP1600_useSHLD) #define ROL64(x,N) ({ \ register UINT64 __out; \ register UINT64 __in = x; \ __asm__ ("shld %2,%0,%0" : "=r"(__out) : "0"(__in), "i"(N)); \ __out; \ }) #else #define ROL64(a, offset) ((((UINT64)a) << offset) ^ (((UINT64)a) >> (64-offset))) #endif #include "KeccakP-1600-64.macros" #ifdef KeccakP1600_fullUnrolling #define FullUnrolling #else #define Unrolling KeccakP1600_unrolling #endif #include "KeccakP-1600-unrolling.macros" #include "SnP-Relaned.h" static const UINT64 KeccakF1600RoundConstants[24] = { 0x0000000000000001ULL, 0x0000000000008082ULL, 0x800000000000808aULL, 0x8000000080008000ULL, 0x000000000000808bULL, 0x0000000080000001ULL, 0x8000000080008081ULL, 0x8000000000008009ULL, 0x000000000000008aULL, 0x0000000000000088ULL, 0x0000000080008009ULL, 0x000000008000000aULL, 0x000000008000808bULL, 0x800000000000008bULL, 0x8000000000008089ULL, 0x8000000000008003ULL, 0x8000000000008002ULL, 0x8000000000000080ULL, 0x000000000000800aULL, 0x800000008000000aULL, 0x8000000080008081ULL, 0x8000000000008080ULL, 0x0000000080000001ULL, 0x8000000080008008ULL }; /* ---------------------------------------------------------------- */ void KeccakP1600_Initialize(void *state) { memset(state, 0, 200); #ifdef KeccakP1600_useLaneComplementing ((UINT64*)state)[ 1] = ~(UINT64)0; ((UINT64*)state)[ 2] = ~(UINT64)0; ((UINT64*)state)[ 8] = ~(UINT64)0; ((UINT64*)state)[12] = ~(UINT64)0; ((UINT64*)state)[17] = ~(UINT64)0; ((UINT64*)state)[20] = ~(UINT64)0; #endif } /* ---------------------------------------------------------------- */ void KeccakP1600_AddBytesInLane(void *state, unsigned int lanePosition, const unsigned char *data, unsigned int offset, unsigned int length) { #if (PLATFORM_BYTE_ORDER == IS_LITTLE_ENDIAN) UINT64 lane; if (length == 0) return; if (length == 1) lane = data[0]; else { lane = 0; memcpy(&lane, data, length); } lane <<= offset*8; #else UINT64 lane = 0; unsigned int i; for(i=0; i>= offset*8; for(i=0; i>= 8; } #endif } /* ---------------------------------------------------------------- */ #if (PLATFORM_BYTE_ORDER != IS_LITTLE_ENDIAN) void fromWordToBytes(UINT8 *bytes, const UINT64 word) { unsigned int i; for(i=0; i<(64/8); i++) bytes[i] = (word >> (8*i)) & 0xFF; } #endif void KeccakP1600_ExtractLanes(const void *state, unsigned char *data, unsigned int laneCount) { #if (PLATFORM_BYTE_ORDER == IS_LITTLE_ENDIAN) memcpy(data, state, laneCount*8); #else unsigned int i; for(i=0; i 1) { ((UINT64*)data)[ 1] = ~((UINT64*)data)[ 1]; if (laneCount > 2) { ((UINT64*)data)[ 2] = ~((UINT64*)data)[ 2]; if (laneCount > 8) { ((UINT64*)data)[ 8] = ~((UINT64*)data)[ 8]; if (laneCount > 12) { ((UINT64*)data)[12] = ~((UINT64*)data)[12]; if (laneCount > 17) { ((UINT64*)data)[17] = ~((UINT64*)data)[17]; if (laneCount > 20) { ((UINT64*)data)[20] = ~((UINT64*)data)[20]; } } } } } } #endif } /* ---------------------------------------------------------------- */ void KeccakP1600_ExtractBytes(const void *state, unsigned char *data, unsigned int offset, unsigned int length) { SnP_ExtractBytes(state, data, offset, length, KeccakP1600_ExtractLanes, KeccakP1600_ExtractBytesInLane, 8); } /* ---------------------------------------------------------------- */ void KeccakP1600_ExtractAndAddBytesInLane(const void *state, unsigned int lanePosition, const unsigned char *input, unsigned char *output, unsigned int offset, unsigned int length) { UINT64 lane = ((UINT64*)state)[lanePosition]; #ifdef KeccakP1600_useLaneComplementing if ((lanePosition == 1) || (lanePosition == 2) || (lanePosition == 8) || (lanePosition == 12) || (lanePosition == 17) || (lanePosition == 20)) lane = ~lane; #endif #if (PLATFORM_BYTE_ORDER == IS_LITTLE_ENDIAN) { unsigned int i; UINT64 lane1[1]; lane1[0] = lane; for(i=0; i>= offset*8; for(i=0; i>= 8; } #endif } /* ---------------------------------------------------------------- */ void KeccakP1600_ExtractAndAddLanes(const void *state, const unsigned char *input, unsigned char *output, unsigned int laneCount) { unsigned int i; #if (PLATFORM_BYTE_ORDER != IS_LITTLE_ENDIAN) unsigned char temp[8]; unsigned int j; #endif for(i=0; i 1) { ((UINT64*)output)[ 1] = ~((UINT64*)output)[ 1]; if (laneCount > 2) { ((UINT64*)output)[ 2] = ~((UINT64*)output)[ 2]; if (laneCount > 8) { ((UINT64*)output)[ 8] = ~((UINT64*)output)[ 8]; if (laneCount > 12) { ((UINT64*)output)[12] = ~((UINT64*)output)[12]; if (laneCount > 17) { ((UINT64*)output)[17] = ~((UINT64*)output)[17]; if (laneCount > 20) { ((UINT64*)output)[20] = ~((UINT64*)output)[20]; } } } } } } #endif } /* ---------------------------------------------------------------- */ void KeccakP1600_ExtractAndAddBytes(const void *state, const unsigned char *input, unsigned char *output, unsigned int offset, unsigned int length) { SnP_ExtractAndAddBytes(state, input, output, offset, length, KeccakP1600_ExtractAndAddLanes, KeccakP1600_ExtractAndAddBytesInLane, 8); } /* ---------------------------------------------------------------- */ size_t KeccakF1600_FastLoop_Absorb(void *state, unsigned int laneCount, const unsigned char *data, size_t dataByteLen) { size_t originalDataByteLen = dataByteLen; declareABCDE #ifndef KeccakP1600_fullUnrolling unsigned int i; #endif UINT64 *stateAsLanes = (UINT64*)state; UINT64 *inDataAsLanes = (UINT64*)data; copyFromState(A, stateAsLanes) while(dataByteLen >= laneCount*8) { addInput(A, inDataAsLanes, laneCount) rounds24 inDataAsLanes += laneCount; dataByteLen -= laneCount*8; } copyToState(stateAsLanes, A) return originalDataByteLen - dataByteLen; }