mirror of
https://github.com/JayDDee/cpuminer-opt.git
synced 2025-09-17 23:44:27 +00:00
v3.10.5
This commit is contained in:
@@ -26,6 +26,19 @@
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#include "lyra2.h"
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#include "sponge.h"
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// LYRA2RE 8 cols 8 rows used by lyea2re, allium, phi2, x22i, x25x.
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//
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// LYRA2REV2 4 cols 4 rows used by lyra2rev2.
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//
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// LYRA2REV3 4 cols 4 rows with an extra twist in calculating
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// rowa in the wandering phase. Used by lyra2rev3.
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//
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// LYRA2Z various cols & rows and supports 80 input. Used by lyra2z,
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// lyra2z330, lyra2h,
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#if defined(__AVX512F__) && defined(__AVX512VL__) && defined(__AVX512DQ__) && defined(__AVX512BW__)
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/**
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* Executes Lyra2 based on the G function from Blake2b. This version supports salts and passwords
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* whose combined length is smaller than the size of the memory matrix, (i.e., (nRows x nCols x b) bits,
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@@ -46,176 +59,137 @@
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* @return 0 if the key is generated correctly; -1 if there is an error (usually due to lack of memory for allocation)
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*/
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int LYRA2REV2( uint64_t* wholeMatrix, void *K, uint64_t kLen, const void *pwd,
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const uint64_t pwdlen, const void *salt, const uint64_t saltlen,
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const uint64_t timeCost, const uint64_t nRows,
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const uint64_t nCols )
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// For lyra2rev3.
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// convert a simple offset to an index into interleaved data.
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// good for state and 4 row matrix.
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// index = ( int( off / 4 ) * 2 ) + ( off mod 4 )
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#define offset_to_index( o ) \
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( ( ( (uint64_t)( (o) & 0xf) / 4 ) * 8 ) + ( (o) % 4 ) )
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int LYRA2REV2_2WAY( uint64_t* wholeMatrix, void *K, uint64_t kLen,
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const void *pwd, const uint64_t pwdlen, const uint64_t timeCost,
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const uint64_t nRows, const uint64_t nCols )
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{
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//====================== Basic variables ============================//
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uint64_t _ALIGN(256) state[16];
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int64_t row = 2; //index of row to be processed
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int64_t prev = 1; //index of prev (last row ever computed/modified)
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int64_t rowa = 0; //index of row* (a previous row, deterministically picked during Setup and randomly picked while Wandering)
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int64_t tau; //Time Loop iterator
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int64_t step = 1; //Visitation step (used during Setup and Wandering phases)
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int64_t window = 2; //Visitation window (used to define which rows can be revisited during Setup)
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int64_t gap = 1; //Modifier to the step, assuming the values 1 or -1
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// int64_t i; //auxiliary iteration counter
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int64_t v64; // 64bit var for memcpy
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uint64_t _ALIGN(256) state[32];
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int64_t row = 2;
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int64_t prev = 1;
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int64_t rowa0 = 0;
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int64_t rowa1 = 0;
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int64_t tau;
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int64_t step = 1;
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int64_t window = 2;
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int64_t gap = 1;
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//====================================================================/
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//=== Initializing the Memory Matrix and pointers to it =============//
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//Tries to allocate enough space for the whole memory matrix
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const int64_t ROW_LEN_INT64 = BLOCK_LEN_INT64 * nCols;
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// const int64_t ROW_LEN_BYTES = ROW_LEN_INT64 * 8;
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// for Lyra2REv2, nCols = 4, v1 was using 8
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const int64_t BLOCK_LEN = (nCols == 4) ? BLOCK_LEN_BLAKE2_SAFE_INT64
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: BLOCK_LEN_BLAKE2_SAFE_BYTES;
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uint64_t *ptrWord = wholeMatrix;
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// memset( wholeMatrix, 0, ROW_LEN_BYTES * nRows );
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//=== Getting the password + salt + basil padded with 10*1 ==========//
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//OBS.:The memory matrix will temporarily hold the password: not for saving memory,
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//but this ensures that the password copied locally will be overwritten as soon as possible
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//First, we clean enough blocks for the password, salt, basil and padding
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int64_t nBlocksInput = ( ( saltlen + pwdlen + 6 * sizeof(uint64_t) )
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int64_t nBlocksInput = ( ( pwdlen + pwdlen + 6 * sizeof(uint64_t) )
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/ BLOCK_LEN_BLAKE2_SAFE_BYTES ) + 1;
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byte *ptrByte = (byte*) wholeMatrix;
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uint64_t *ptr = wholeMatrix;
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uint64_t *pw = (uint64_t*)pwd;
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//Prepends the password
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memcpy(ptrByte, pwd, pwdlen);
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ptrByte += pwdlen;
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memcpy( ptr, pw, 2*pwdlen ); // password
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ptr += pwdlen>>2;
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memcpy( ptr, pw, 2*pwdlen ); // password lane 1
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ptr += pwdlen>>2;
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//Concatenates the salt
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memcpy(ptrByte, salt, saltlen);
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ptrByte += saltlen;
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// now build the rest interleaving on the fly.
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memset( ptrByte, 0, nBlocksInput * BLOCK_LEN_BLAKE2_SAFE_BYTES
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- (saltlen + pwdlen) );
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ptr[0] = ptr[ 4] = kLen;
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ptr[1] = ptr[ 5] = pwdlen;
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ptr[2] = ptr[ 6] = pwdlen; // saltlen
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ptr[3] = ptr[ 7] = timeCost;
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ptr[8] = ptr[12] = nRows;
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ptr[9] = ptr[13] = nCols;
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ptr[10] = ptr[14] = 0x80;
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ptr[11] = ptr[15] = 0x0100000000000000;
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//Concatenates the basil: every integer passed as parameter, in the order they are provided by the interface
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memcpy(ptrByte, &kLen, sizeof(int64_t));
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ptrByte += sizeof(uint64_t);
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v64 = pwdlen;
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memcpy(ptrByte, &v64, sizeof(int64_t));
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ptrByte += sizeof(uint64_t);
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v64 = saltlen;
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memcpy(ptrByte, &v64, sizeof(int64_t));
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ptrByte += sizeof(uint64_t);
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v64 = timeCost;
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memcpy(ptrByte, &v64, sizeof(int64_t));
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ptrByte += sizeof(uint64_t);
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v64 = nRows;
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memcpy(ptrByte, &v64, sizeof(int64_t));
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ptrByte += sizeof(uint64_t);
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v64 = nCols;
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memcpy(ptrByte, &v64, sizeof(int64_t));
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ptrByte += sizeof(uint64_t);
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//Now comes the padding
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*ptrByte = 0x80; //first byte of padding: right after the password
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ptrByte = (byte*) wholeMatrix; //resets the pointer to the start of the memory matrix
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ptrByte += nBlocksInput * BLOCK_LEN_BLAKE2_SAFE_BYTES - 1; //sets the pointer to the correct position: end of incomplete block
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*ptrByte ^= 0x01; //last byte of padding: at the end of the last incomplete block
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// from here on it's all simd acces to state and matrix
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// define vector pointers and adjust sizes and pointer offsets
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//================= Initializing the Sponge State ====================//
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//Sponge state: 16 uint64_t, BLOCK_LEN_INT64 words of them for the bitrate (b) and the remainder for the capacity (c)
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// initState( state );
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//========================= Setup Phase =============================//
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//Absorbing salt, password and basil: this is the only place in which the block length is hard-coded to 512 bits
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ptrWord = wholeMatrix;
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absorbBlockBlake2Safe( state, ptrWord, nBlocksInput, BLOCK_LEN );
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/*
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for (i = 0; i < nBlocksInput; i++)
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{
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absorbBlockBlake2Safe( state, ptrWord ); //absorbs each block of pad(pwd || salt || basil)
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ptrWord += BLOCK_LEN; //goes to next block of pad(pwd || salt || basil)
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}
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*/
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absorbBlockBlake2Safe_2way( state, ptrWord, nBlocksInput, BLOCK_LEN );
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//Initializes M[0] and M[1]
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reducedSqueezeRow0( state, &wholeMatrix[0], nCols ); //The locally copied password is most likely overwritten here
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reducedSqueezeRow0_2way( state, &wholeMatrix[0], nCols );
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reducedDuplexRow1( state, &wholeMatrix[0], &wholeMatrix[ROW_LEN_INT64],
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nCols);
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reducedDuplexRow1_2way( state, &wholeMatrix[0],
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&wholeMatrix[ 2 * ROW_LEN_INT64 ], nCols );
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do
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{
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//M[row] = rand; //M[row*] = M[row*] XOR rotW(rand)
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//M[row] = rand; //M[row*] = M[row*] XOR rotW(rand)
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reducedDuplexRowSetup( state, &wholeMatrix[prev*ROW_LEN_INT64],
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&wholeMatrix[rowa*ROW_LEN_INT64],
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&wholeMatrix[row*ROW_LEN_INT64], nCols );
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reducedDuplexRowSetup_2way( state, &wholeMatrix[ 2* prev * ROW_LEN_INT64],
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&wholeMatrix[ 2* rowa0 * ROW_LEN_INT64],
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&wholeMatrix[ 2* row*ROW_LEN_INT64],
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nCols );
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//updates the value of row* (deterministically picked during Setup))
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rowa = (rowa + step) & (window - 1);
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//update prev: it now points to the last row ever computed
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rowa0 = (rowa0 + step) & (window - 1);
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prev = row;
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//updates row: goes to the next row to be computed
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row++;
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prev = row;
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row++;
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//Checks if all rows in the window where visited.
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if (rowa == 0)
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{
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step = window + gap; //changes the step: approximately doubles its value
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window *= 2; //doubles the size of the re-visitation window
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gap = -gap; //inverts the modifier to the step
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}
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} while (row < nRows);
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if ( rowa0 == 0 )
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{
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step = window + gap;
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window *= 2;
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gap = -gap;
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}
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} while ( row < nRows );
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//===================== Wandering Phase =============================//
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row = 0; //Resets the visitation to the first row of the memory matrix
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for (tau = 1; tau <= timeCost; tau++)
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row = 0;
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for ( tau = 1; tau <= timeCost; tau++ )
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{
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//Step is approximately half the number of all rows of the memory matrix for an odd tau; otherwise, it is -1
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step = (tau % 2 == 0) ? -1 : nRows / 2 - 1;
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do
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{
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//Selects a pseudorandom index row*
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//-----------------------------------------------
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rowa = state[0] & (unsigned int)(nRows-1); //(USE THIS IF nRows IS A POWER OF 2)
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step = ( (tau & 1) == 0 ) ? -1 : ( nRows >> 1 ) - 1;
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do
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{
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rowa0 = state[ 0 ] & (unsigned int)(nRows-1);
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rowa1 = state[ 4 ] & (unsigned int)(nRows-1);
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//rowa = state[0] % nRows; //(USE THIS FOR THE "GENERIC" CASE)
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//-------------------------------------------
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reducedDuplexRow_2way( state, &wholeMatrix[ 2* prev * ROW_LEN_INT64 ],
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&wholeMatrix[ 2* rowa0 * ROW_LEN_INT64 ],
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&wholeMatrix[ 2* rowa1 * ROW_LEN_INT64 ],
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&wholeMatrix[ 2* row *ROW_LEN_INT64 ],
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nCols );
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prev = row;
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//Performs a reduced-round duplexing operation over M[row*] XOR M[prev], updating both M[row*] and M[row]
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reducedDuplexRow( state, &wholeMatrix[prev*ROW_LEN_INT64],
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&wholeMatrix[rowa*ROW_LEN_INT64],
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&wholeMatrix[row*ROW_LEN_INT64], nCols );
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//update prev: it now points to the last row ever computed
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prev = row;
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row = (row + step) & (unsigned int)(nRows-1); //(USE THIS IF nRows IS A POWER OF 2)
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//updates row: goes to the next row to be computed
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//----------------------------------------------------
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row = (row + step) & (unsigned int)(nRows-1); //(USE THIS IF nRows IS A POWER OF 2)
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//row = (row + step) % nRows; //(USE THIS FOR THE "GENERIC" CASE)
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//----------------------------------------------------
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} while (row != 0);
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} while (row != 0);
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}
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//===================== Wrap-up Phase ===============================//
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//Absorbs the last block of the memory matrix
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absorbBlock(state, &wholeMatrix[rowa*ROW_LEN_INT64]);
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absorbBlock_2way( state, &wholeMatrix[ 2 * rowa0 *ROW_LEN_INT64 ],
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&wholeMatrix[ 2 * rowa1 *ROW_LEN_INT64 ] );
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//Squeezes the key
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squeeze(state, K, (unsigned int) kLen);
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squeeze_2way( state, K, (unsigned int) kLen );
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return 0;
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}
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// This version is currently only used by REv3 and has some hard coding
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// specific to v3 such as input data size of 32 bytes.
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//
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// Similarly with REv2. Thedifference with REv3 isn't clear and maybe
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// they can be merged.
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//
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// RE is used by RE, allium. The main difference between RE and REv2
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// in the matrix size.
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//
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// Z also needs to support 80 byte input as well as 32 byte, and odd
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// matrix sizes like 330 rows. It is used by lyra2z330, lyra2z, lyra2h.
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/////////////////////////////////////////////////
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// 2 way 256
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@@ -223,22 +197,29 @@ int LYRA2REV2( uint64_t* wholeMatrix, void *K, uint64_t kLen, const void *pwd,
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// Data is interleaved 2x256.
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int LYRA2REV3_2WAY( uint64_t* wholeMatrix, void *K, uint64_t kLen,
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const void *pwd, const uint64_t pwdlen, const void *salt,
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const uint64_t saltlen, const uint64_t timeCost, const uint64_t nRows,
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const uint64_t nCols )
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const void *pwd, uint64_t pwdlen, uint64_t timeCost,
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uint64_t nRows, uint64_t nCols )
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// hard coded for 32 byte input as well as matrix size.
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// Other required versions include 80 byte input and different block
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// sizez
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//int LYRA2REV3_2WAY( uint64_t* wholeMatrix, void *K, uint64_t kLen,
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// const void *pwd, const uint64_t pwdlen, const void *salt,
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// const uint64_t saltlen, const uint64_t timeCost, const uint64_t nRows,
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// const uint64_t nCols )
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{
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//====================== Basic variables ============================//
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uint64_t _ALIGN(256) state[16];
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int64_t row = 2; //index of row to be processed
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int64_t prev = 1; //index of prev (last row ever computed/modified)
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int64_t rowa = 0; //index of row* (a previous row, deterministically picked during Setup and randomly picked while Wandering)
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int64_t tau; //Time Loop iterator
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int64_t step = 1; //Visitation step (used during Setup and Wandering phases)
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int64_t window = 2; //Visitation window (used to define which rows can be revisited during Setup)
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int64_t gap = 1; //Modifier to the step, assuming the values 1 or -1
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// int64_t i; //auxiliary iteration counter
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int64_t v64; // 64bit var for memcpy
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uint64_t instance0 = 0; // Seperate instance for each lane
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uint64_t _ALIGN(256) state[32];
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int64_t row = 2;
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int64_t prev = 1;
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int64_t rowa0 = 0;
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int64_t rowa1 = 0;
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int64_t tau;
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int64_t step = 1;
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int64_t window = 2;
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int64_t gap = 1;
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uint64_t instance0 = 0;
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uint64_t instance1 = 0;
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//====================================================================/
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@@ -248,7 +229,9 @@ int LYRA2REV3_2WAY( uint64_t* wholeMatrix, void *K, uint64_t kLen,
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uint64_t *ptrWord = wholeMatrix;
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// 2 way 256 rewrite. Salt always == password, and data is interleaved,
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// need to build in parallel:
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// need to build in parallel as pw isalready interleaved.
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// { password, (64 or 80 bytes)
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// salt, (64 or 80 bytes) = same as password
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// Klen, (u64) = 32 bytes
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@@ -262,73 +245,54 @@ int LYRA2REV3_2WAY( uint64_t* wholeMatrix, void *K, uint64_t kLen,
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// 1 (byte)
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// }
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// memset( wholeMatrix, 0, ROW_LEN_BYTES * nRows );
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// input is usually 32 maybe 64, both are aligned to 256 bit vector.
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// 80 byte inpput is not aligned complicating matters for lyra2z.
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int64_t nBlocksInput = ( ( saltlen + pwdlen + 6 * sizeof(uint64_t) )
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int64_t nBlocksInput = ( ( pwdlen + pwdlen + 6 * sizeof(uint64_t) )
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/ BLOCK_LEN_BLAKE2_SAFE_BYTES ) + 1;
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uint64_t *ptr = wholeMatrix;
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uint64_t *pw = (uint64_t*)pwd;
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byte *ptrByte = (byte*) wholeMatrix;
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memcpy( ptr, pw, 2*pwdlen ); // password
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ptr += pwdlen>>2;
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memcpy( ptr, pw, 2*pwdlen ); // password lane 1
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ptr += pwdlen>>2;
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// now build the rest interleaving on the fly.
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//Prepends the password
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memcpy(ptrByte, pwd, pwdlen);
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ptrByte += pwdlen;
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//Concatenates the salt
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memcpy(ptrByte, salt, saltlen);
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ptrByte += saltlen;
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memset( ptrByte, 0, nBlocksInput * BLOCK_LEN_BLAKE2_SAFE_BYTES
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- (saltlen + pwdlen) );
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//Concatenates the basil: every integer passed as parameter, in the order they are provided by the interface
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memcpy(ptrByte, &kLen, sizeof(int64_t));
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ptrByte += sizeof(uint64_t);
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v64 = pwdlen;
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memcpy(ptrByte, &v64, sizeof(int64_t));
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ptrByte += sizeof(uint64_t);
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v64 = saltlen;
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memcpy(ptrByte, &v64, sizeof(int64_t));
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ptrByte += sizeof(uint64_t);
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v64 = timeCost;
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memcpy(ptrByte, &v64, sizeof(int64_t));
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ptrByte += sizeof(uint64_t);
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v64 = nRows;
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memcpy(ptrByte, &v64, sizeof(int64_t));
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ptrByte += sizeof(uint64_t);
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v64 = nCols;
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memcpy(ptrByte, &v64, sizeof(int64_t));
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ptrByte += sizeof(uint64_t);
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//Now comes the padding
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*ptrByte = 0x80; //first byte of padding: right after the password
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ptrByte = (byte*) wholeMatrix; //resets the pointer to the start of the memory matrix
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||||
ptrByte += nBlocksInput * BLOCK_LEN_BLAKE2_SAFE_BYTES - 1; //sets the pointer to the correct position: end of incomplete block
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||||
*ptrByte ^= 0x01; //last byte of padding: at the end of the last incomplete block
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||||
|
||||
// from here on it's all simd acces to state and matrix
|
||||
// define vector pointers and adjust sizes and pointer offsets
|
||||
ptr[0] = ptr[ 4] = kLen;
|
||||
ptr[1] = ptr[ 5] = pwdlen;
|
||||
ptr[2] = ptr[ 6] = pwdlen; // saltlen
|
||||
ptr[3] = ptr[ 7] = timeCost;
|
||||
ptr[8] = ptr[12] = nRows;
|
||||
ptr[9] = ptr[13] = nCols;
|
||||
ptr[10] = ptr[14] = 0x80;
|
||||
ptr[11] = ptr[15] = 0x0100000000000000;
|
||||
|
||||
ptrWord = wholeMatrix;
|
||||
|
||||
absorbBlockBlake2Safe( state, ptrWord, nBlocksInput, BLOCK_LEN );
|
||||
reducedSqueezeRow0( state, &wholeMatrix[0], nCols );
|
||||
absorbBlockBlake2Safe_2way( state, ptrWord, nBlocksInput, BLOCK_LEN );
|
||||
|
||||
reducedDuplexRow1( state, &wholeMatrix[0], &wholeMatrix[ROW_LEN_INT64],
|
||||
nCols);
|
||||
reducedSqueezeRow0_2way( state, &wholeMatrix[0], nCols );
|
||||
|
||||
reducedDuplexRow1_2way( state, &wholeMatrix[0],
|
||||
&wholeMatrix[2*ROW_LEN_INT64], nCols );
|
||||
|
||||
do
|
||||
{
|
||||
|
||||
reducedDuplexRowSetup( state, &wholeMatrix[prev*ROW_LEN_INT64],
|
||||
&wholeMatrix[rowa*ROW_LEN_INT64],
|
||||
&wholeMatrix[row*ROW_LEN_INT64], nCols );
|
||||
reducedDuplexRowSetup_2way( state, &wholeMatrix[ 2* prev*ROW_LEN_INT64 ],
|
||||
&wholeMatrix[ 2* rowa0*ROW_LEN_INT64 ],
|
||||
&wholeMatrix[ 2* row*ROW_LEN_INT64 ],
|
||||
nCols );
|
||||
|
||||
rowa = (rowa + step) & (window - 1);
|
||||
rowa0 = (rowa0 + step) & (window - 1);
|
||||
|
||||
prev = row;
|
||||
row++;
|
||||
|
||||
if (rowa == 0)
|
||||
if (rowa0 == 0)
|
||||
{
|
||||
step = window + gap; //changes the step: approximately doubles its value
|
||||
window *= 2; //doubles the size of the re-visitation window
|
||||
@@ -340,37 +304,22 @@ int LYRA2REV3_2WAY( uint64_t* wholeMatrix, void *K, uint64_t kLen,
|
||||
row = 0;
|
||||
for (tau = 1; tau <= timeCost; tau++)
|
||||
{
|
||||
step = ((tau & 1) == 0) ? -1 : (nRows >> 1) - 1;
|
||||
step = ( (tau & 1) == 0 ) ? -1 : ( nRows >> 1 ) - 1;
|
||||
do
|
||||
{
|
||||
// This part is not parallel, rowa will be different for each lane.
|
||||
// state (u64[16]) is interleaved 2x256, need to extract seperately.
|
||||
instance0 = state[ offset_to_index( instance0 ) ];
|
||||
instance1 = (&state[4])[ offset_to_index( instance1 ) ];
|
||||
|
||||
// index = 2 * instance / 4 * 4 + instance % 4
|
||||
uint64_t index0 = ( ( (instance0 & 0xf) >> 3 ) << 2 )
|
||||
+ ( instance0 & 0x3 )
|
||||
uint64_t index1 = ( ( (instance1 & 0xf) >> 3 ) << 2 )
|
||||
+ ( instance1 & 0x3 )
|
||||
rowa0 = state[ offset_to_index( instance0 ) ]
|
||||
& (unsigned int)(nRows-1);
|
||||
rowa1 = (state+4)[ offset_to_index( instance1 ) ]
|
||||
& (unsigned int)(nRows-1);
|
||||
|
||||
instance0 = state[ index0 ] & 0xf;
|
||||
instance1 = (state+4)[ index1 ] & 0xf;
|
||||
|
||||
rowa0 = state[ instance0 ];
|
||||
rowa1 = (state+4)[ instance1 ];
|
||||
|
||||
reducedDuplexRow_2way( state, &wholeMatrix[prev*ROW_LEN_INT64],
|
||||
&wholeMatrix[rowa0*ROW_LEN_INT64],
|
||||
&wholeMatrix[rowa1*ROW_LEN_INT64],
|
||||
&wholeMatrix[row*ROW_LEN_INT64], nCols );
|
||||
/*
|
||||
instance = state[instance & 0xF];
|
||||
rowa = state[instance & 0xF] & (unsigned int)(nRows-1);
|
||||
|
||||
reducedDuplexRow( state, &wholeMatrix[prev*ROW_LEN_INT64],
|
||||
&wholeMatrix[rowa*ROW_LEN_INT64],
|
||||
&wholeMatrix[row*ROW_LEN_INT64], nCols );
|
||||
*/
|
||||
// End of divergence.
|
||||
reducedDuplexRow_2way( state, &wholeMatrix[ 2* prev * ROW_LEN_INT64 ],
|
||||
&wholeMatrix[ 2* rowa0 * ROW_LEN_INT64 ],
|
||||
&wholeMatrix[ 2* rowa1 * ROW_LEN_INT64 ],
|
||||
&wholeMatrix[ 2* row*ROW_LEN_INT64 ],
|
||||
nCols );
|
||||
|
||||
prev = row;
|
||||
row = (row + step) & (unsigned int)(nRows-1);
|
||||
@@ -378,13 +327,17 @@ int LYRA2REV3_2WAY( uint64_t* wholeMatrix, void *K, uint64_t kLen,
|
||||
} while ( row != 0 );
|
||||
}
|
||||
|
||||
absorbBlock( state, &wholeMatrix[rowa*ROW_LEN_INT64] );
|
||||
squeeze( state, K, (unsigned int) kLen );
|
||||
absorbBlock_2way( state, &wholeMatrix[2*rowa0*ROW_LEN_INT64],
|
||||
&wholeMatrix[2*rowa1*ROW_LEN_INT64] );
|
||||
|
||||
squeeze_2way( state, K, (unsigned int) kLen );
|
||||
|
||||
return 0;
|
||||
}
|
||||
|
||||
#endif // AVX512
|
||||
|
||||
#if 0
|
||||
|
||||
//////////////////////////////////////////////////
|
||||
int LYRA2Z( uint64_t* wholeMatrix, void *K, uint64_t kLen, const void *pwd,
|
||||
@@ -532,22 +485,26 @@ int LYRA2Z( uint64_t* wholeMatrix, void *K, uint64_t kLen, const void *pwd,
|
||||
return 0;
|
||||
}
|
||||
|
||||
#endif
|
||||
|
||||
#if defined(__AVX512F__) && defined(__AVX512VL__) && defined(__AVX512DQ__) && defined(__AVX512BW__)
|
||||
|
||||
// Lyra2RE doesn't like the new wholeMatrix implementation
|
||||
int LYRA2RE( void *K, uint64_t kLen, const void *pwd, const uint64_t pwdlen,
|
||||
const void *salt, const uint64_t saltlen, const uint64_t timeCost,
|
||||
const uint64_t nRows, const uint64_t nCols )
|
||||
int LYRA2RE_2WAY( void *K, uint64_t kLen, const void *pwd,
|
||||
const uint64_t pwdlen, const uint64_t timeCost,
|
||||
const uint64_t nRows, const uint64_t nCols )
|
||||
{
|
||||
//====================== Basic variables ============================//
|
||||
uint64_t _ALIGN(256) state[16];
|
||||
int64_t row = 2; //index of row to be processed
|
||||
int64_t prev = 1; //index of prev (last row ever computed/modified)
|
||||
int64_t rowa = 0; //index of row* (a previous row, deterministically picked during Setup and randomly picked while Wandering)
|
||||
int64_t rowa0 = 0;
|
||||
int64_t rowa1 = 0;
|
||||
int64_t tau; //Time Loop iterator
|
||||
int64_t step = 1; //Visitation step (used during Setup and Wandering phases)
|
||||
int64_t window = 2; //Visitation window (used to define which rows can be revisited during Setup)
|
||||
int64_t gap = 1; //Modifier to the step, assuming the values 1 or -1
|
||||
int64_t i; //auxiliary iteration counter
|
||||
int64_t v64; // 64bit var for memcpy
|
||||
//====================================================================/
|
||||
|
||||
//=== Initializing the Memory Matrix and pointers to it =============//
|
||||
@@ -573,15 +530,36 @@ int LYRA2RE( void *K, uint64_t kLen, const void *pwd, const uint64_t pwdlen,
|
||||
#endif
|
||||
|
||||
uint64_t *ptrWord = wholeMatrix;
|
||||
uint64_t *pw = (uint64_t*)pwd;
|
||||
|
||||
//=== Getting the password + salt + basil padded with 10*1 ==========//
|
||||
//OBS.:The memory matrix will temporarily hold the password: not for saving memory,
|
||||
//but this ensures that the password copied locally will be overwritten as soon as possible
|
||||
|
||||
//First, we clean enough blocks for the password, salt, basil and padding
|
||||
int64_t nBlocksInput = ( ( saltlen + pwdlen + 6 * sizeof(uint64_t) )
|
||||
int64_t nBlocksInput = ( ( pwdlen + pwdlen + 6 * sizeof(uint64_t) )
|
||||
/ BLOCK_LEN_BLAKE2_SAFE_BYTES ) + 1;
|
||||
|
||||
uint64_t *ptr = wholeMatrix;
|
||||
|
||||
memcpy( ptr, pw, 2*pwdlen ); // password
|
||||
ptr += pwdlen>>2;
|
||||
memcpy( ptr, pw, 2*pwdlen ); // password lane 1
|
||||
ptr += pwdlen>>2;
|
||||
|
||||
// now build the rest interleaving on the fly.
|
||||
|
||||
ptr[0] = ptr[ 4] = kLen;
|
||||
ptr[1] = ptr[ 5] = pwdlen;
|
||||
ptr[2] = ptr[ 6] = pwdlen; // saltlen
|
||||
ptr[3] = ptr[ 7] = timeCost;
|
||||
ptr[8] = ptr[12] = nRows;
|
||||
ptr[9] = ptr[13] = nCols;
|
||||
ptr[10] = ptr[14] = 0x80;
|
||||
ptr[11] = ptr[15] = 0x0100000000000000;
|
||||
|
||||
|
||||
/*
|
||||
byte *ptrByte = (byte*) wholeMatrix;
|
||||
|
||||
//Prepends the password
|
||||
@@ -630,7 +608,9 @@ int LYRA2RE( void *K, uint64_t kLen, const void *pwd, const uint64_t pwdlen,
|
||||
|
||||
ptrWord = wholeMatrix;
|
||||
|
||||
absorbBlockBlake2Safe( state, ptrWord, nBlocksInput, BLOCK_LEN );
|
||||
*/
|
||||
|
||||
absorbBlockBlake2Safe_2way( state, ptrWord, nBlocksInput, BLOCK_LEN );
|
||||
/*
|
||||
for (i = 0; i < nBlocksInput; i++)
|
||||
{
|
||||
@@ -639,21 +619,22 @@ int LYRA2RE( void *K, uint64_t kLen, const void *pwd, const uint64_t pwdlen,
|
||||
}
|
||||
*/
|
||||
//Initializes M[0] and M[1]
|
||||
reducedSqueezeRow0( state, &wholeMatrix[0], nCols ); //The locally copied password is most likely overwritten here
|
||||
reducedSqueezeRow0_2way( state, &wholeMatrix[0], nCols ); //The locally copied password is most likely overwritten here
|
||||
|
||||
reducedDuplexRow1( state, &wholeMatrix[0], &wholeMatrix[ROW_LEN_INT64],
|
||||
nCols);
|
||||
reducedDuplexRow1_2way( state, &wholeMatrix[0],
|
||||
&wholeMatrix[ 2 * ROW_LEN_INT64], nCols );
|
||||
|
||||
do
|
||||
{
|
||||
//M[row] = rand; //M[row*] = M[row*] XOR rotW(rand)
|
||||
|
||||
reducedDuplexRowSetup( state, &wholeMatrix[prev*ROW_LEN_INT64],
|
||||
&wholeMatrix[rowa*ROW_LEN_INT64],
|
||||
&wholeMatrix[row*ROW_LEN_INT64], nCols );
|
||||
reducedDuplexRowSetup_2way( state, &wholeMatrix[ 2* prev*ROW_LEN_INT64 ],
|
||||
&wholeMatrix[ 2* rowa0*ROW_LEN_INT64 ],
|
||||
&wholeMatrix[ 2* row*ROW_LEN_INT64 ],
|
||||
nCols );
|
||||
|
||||
//updates the value of row* (deterministically picked during Setup))
|
||||
rowa = (rowa + step) & (window - 1);
|
||||
rowa0 = (rowa0 + step) & (window - 1);
|
||||
//update prev: it now points to the last row ever computed
|
||||
|
||||
prev = row;
|
||||
@@ -661,7 +642,7 @@ int LYRA2RE( void *K, uint64_t kLen, const void *pwd, const uint64_t pwdlen,
|
||||
row++;
|
||||
|
||||
//Checks if all rows in the window where visited.
|
||||
if (rowa == 0)
|
||||
if (rowa0 == 0)
|
||||
{
|
||||
step = window + gap; //changes the step: approximately doubles its value
|
||||
window *= 2; //doubles the size of the re-visitation window
|
||||
@@ -674,21 +655,18 @@ int LYRA2RE( void *K, uint64_t kLen, const void *pwd, const uint64_t pwdlen,
|
||||
row = 0; //Resets the visitation to the first row of the memory matrix
|
||||
for (tau = 1; tau <= timeCost; tau++)
|
||||
{
|
||||
//Step is approximately half the number of all rows of the memory matrix for an odd tau; otherwise, it is -1
|
||||
step = (tau % 2 == 0) ? -1 : nRows / 2 - 1;
|
||||
do
|
||||
{
|
||||
//Selects a pseudorandom index row*
|
||||
//-----------------------------------------------
|
||||
rowa = state[0] & (unsigned int)(nRows-1); //(USE THIS IF nRows IS A POWER OF 2)
|
||||
step = ((tau & 1) == 0) ? -1 : (nRows >> 1) - 1;
|
||||
do
|
||||
{
|
||||
rowa0 = state[ 0 ] & (unsigned int)(nRows-1);
|
||||
rowa1 = state[ 4 ] & (unsigned int)(nRows-1);
|
||||
|
||||
//rowa = state[0] % nRows; //(USE THIS FOR THE "GENERIC" CASE)
|
||||
//-------------------------------------------
|
||||
reducedDuplexRow_2way( state, &wholeMatrix[ 2* prev * ROW_LEN_INT64 ],
|
||||
&wholeMatrix[ 2* rowa0 * ROW_LEN_INT64 ],
|
||||
&wholeMatrix[ 2* rowa1 * ROW_LEN_INT64 ],
|
||||
&wholeMatrix[ 2* row *ROW_LEN_INT64 ],
|
||||
nCols );
|
||||
|
||||
//Performs a reduced-round duplexing operation over M[row*] XOR M[prev], updating both M[row*] and M[row]
|
||||
reducedDuplexRow( state, &wholeMatrix[prev*ROW_LEN_INT64],
|
||||
&wholeMatrix[rowa*ROW_LEN_INT64],
|
||||
&wholeMatrix[row*ROW_LEN_INT64], nCols );
|
||||
//update prev: it now points to the last row ever computed
|
||||
prev = row;
|
||||
|
||||
@@ -703,9 +681,10 @@ int LYRA2RE( void *K, uint64_t kLen, const void *pwd, const uint64_t pwdlen,
|
||||
|
||||
//===================== Wrap-up Phase ===============================//
|
||||
//Absorbs the last block of the memory matrix
|
||||
absorbBlock(state, &wholeMatrix[rowa*ROW_LEN_INT64]);
|
||||
absorbBlock_2way( state, &wholeMatrix[ 2 * rowa0 *ROW_LEN_INT64],
|
||||
&wholeMatrix[ 2 * rowa1 *ROW_LEN_INT64] );
|
||||
//Squeezes the key
|
||||
squeeze(state, K, (unsigned int) kLen);
|
||||
squeeze_2way( state, K, (unsigned int) kLen );
|
||||
|
||||
//================== Freeing the memory =============================//
|
||||
_mm_free(wholeMatrix);
|
||||
@@ -713,3 +692,4 @@ int LYRA2RE( void *K, uint64_t kLen, const void *pwd, const uint64_t pwdlen,
|
||||
return 0;
|
||||
}
|
||||
|
||||
#endif
|
||||
|
||||
Reference in New Issue
Block a user