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https://github.com/JayDDee/cpuminer-opt.git
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220 lines
8.1 KiB
C
220 lines
8.1 KiB
C
#include "cpuminer-config.h"
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#include "x11-gate.h"
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#if defined (X11_4WAY)
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#include <string.h>
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#include <stdint.h>
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#include "algo/blake/blake-hash-4way.h"
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#include "algo/bmw/bmw-hash-4way.h"
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#include "algo/groestl/aes_ni/hash-groestl.h"
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#include "algo/skein/skein-hash-4way.h"
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#include "algo/jh/jh-hash-4way.h"
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#include "algo/keccak/keccak-hash-4way.h"
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#include "algo/luffa/luffa-hash-2way.h"
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#include "algo/cubehash/sse2/cubehash_sse2.h"
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#include "algo/shavite/sph_shavite.h"
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#include "algo/simd/simd-hash-2way.h"
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#include "algo/echo/aes_ni/hash_api.h"
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typedef struct {
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blake512_4way_context blake;
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bmw512_4way_context bmw;
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hashState_groestl groestl;
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skein512_4way_context skein;
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jh512_4way_context jh;
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keccak512_4way_context keccak;
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luffa_2way_context luffa;
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cubehashParam cube;
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sph_shavite512_context shavite;
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simd_2way_context simd;
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hashState_echo echo;
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} x11_4way_ctx_holder;
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x11_4way_ctx_holder x11_4way_ctx;
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void init_x11_4way_ctx()
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{
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blake512_4way_init( &x11_4way_ctx.blake );
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bmw512_4way_init( &x11_4way_ctx.bmw );
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init_groestl( &x11_4way_ctx.groestl, 64 );
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skein512_4way_init( &x11_4way_ctx.skein );
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jh512_4way_init( &x11_4way_ctx.jh );
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keccak512_4way_init( &x11_4way_ctx.keccak );
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luffa_2way_init( &x11_4way_ctx.luffa, 512 );
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cubehashInit( &x11_4way_ctx.cube, 512, 16, 32 );
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sph_shavite512_init( &x11_4way_ctx.shavite );
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simd_2way_init( &x11_4way_ctx.simd, 512 );
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init_echo( &x11_4way_ctx.echo, 512 );
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}
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void x11_4way_hash( void *state, const void *input )
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{
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uint64_t hash0[8] __attribute__ ((aligned (64)));
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uint64_t hash1[8] __attribute__ ((aligned (64)));
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uint64_t hash2[8] __attribute__ ((aligned (64)));
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uint64_t hash3[8] __attribute__ ((aligned (64)));
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uint64_t vhash[8*4] __attribute__ ((aligned (64)));
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uint64_t vhashB[8*2] __attribute__ ((aligned (64)));
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x11_4way_ctx_holder ctx;
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memcpy( &ctx, &x11_4way_ctx, sizeof(x11_4way_ctx) );
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// 1 Blake 4way
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blake512_4way( &ctx.blake, input, 80 );
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blake512_4way_close( &ctx.blake, vhash );
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// 2 Bmw
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bmw512_4way( &ctx.bmw, vhash, 64 );
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bmw512_4way_close( &ctx.bmw, vhash );
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// Serial
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mm256_deinterleave_4x64( hash0, hash1, hash2, hash3, vhash, 512 );
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// 3 Groestl
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update_and_final_groestl( &ctx.groestl, (char*)hash0, (char*)hash0, 512 );
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memcpy( &ctx.groestl, &x11_4way_ctx.groestl, sizeof(hashState_groestl) );
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update_and_final_groestl( &ctx.groestl, (char*)hash1, (char*)hash1, 512 );
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memcpy( &ctx.groestl, &x11_4way_ctx.groestl, sizeof(hashState_groestl) );
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update_and_final_groestl( &ctx.groestl, (char*)hash2, (char*)hash2, 512 );
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memcpy( &ctx.groestl, &x11_4way_ctx.groestl, sizeof(hashState_groestl) );
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update_and_final_groestl( &ctx.groestl, (char*)hash3, (char*)hash3, 512 );
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// 4way
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mm256_interleave_4x64( vhash, hash0, hash1, hash2, hash3, 512 );
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// 4 Skein
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skein512_4way( &ctx.skein, vhash, 64 );
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skein512_4way_close( &ctx.skein, vhash );
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// 5 JH
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jh512_4way( &ctx.jh, vhash, 64 );
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jh512_4way_close( &ctx.jh, vhash );
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// 6 Keccak
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keccak512_4way( &ctx.keccak, vhash, 64 );
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keccak512_4way_close( &ctx.keccak, vhash );
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mm256_deinterleave_4x64( hash0, hash1, hash2, hash3, vhash, 512 );
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// 7 Luffa parallel 2 way 128 bit
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mm256_interleave_2x128( vhash, hash0, hash1, 512 );
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mm256_interleave_2x128( vhashB, hash2, hash3, 512 );
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luffa_2way_update_close( &ctx.luffa, vhash, vhash, 64 );
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luffa_2way_init( &ctx.luffa, 512 );
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luffa_2way_update_close( &ctx.luffa, vhashB, vhashB, 64 );
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mm256_deinterleave_2x128( hash0, hash1, vhash, 512 );
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mm256_deinterleave_2x128( hash2, hash3, vhashB, 512 );
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// 8 Cubehash
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cubehashUpdateDigest( &ctx.cube, (byte*)hash0, (const byte*) hash0, 64 );
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memcpy( &ctx.cube, &x11_4way_ctx.cube, sizeof(cubehashParam) );
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cubehashUpdateDigest( &ctx.cube, (byte*)hash1, (const byte*) hash1, 64 );
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memcpy( &ctx.cube, &x11_4way_ctx.cube, sizeof(cubehashParam) );
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cubehashUpdateDigest( &ctx.cube, (byte*)hash2, (const byte*) hash2, 64 );
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memcpy( &ctx.cube, &x11_4way_ctx.cube, sizeof(cubehashParam) );
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cubehashUpdateDigest( &ctx.cube, (byte*)hash3, (const byte*) hash3, 64 );
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// 9 Shavite
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sph_shavite512( &ctx.shavite, hash0, 64 );
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sph_shavite512_close( &ctx.shavite, hash0 );
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memcpy( &ctx.shavite, &x11_4way_ctx.shavite,
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sizeof(sph_shavite512_context) );
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sph_shavite512( &ctx.shavite, hash1, 64 );
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sph_shavite512_close( &ctx.shavite, hash1 );
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memcpy( &ctx.shavite, &x11_4way_ctx.shavite,
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sizeof(sph_shavite512_context) );
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sph_shavite512( &ctx.shavite, hash2, 64 );
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sph_shavite512_close( &ctx.shavite, hash2 );
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memcpy( &ctx.shavite, &x11_4way_ctx.shavite,
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sizeof(sph_shavite512_context) );
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sph_shavite512( &ctx.shavite, hash3, 64 );
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sph_shavite512_close( &ctx.shavite, hash3 );
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// 10 Simd
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mm256_interleave_2x128( vhash, hash0, hash1, 512 );
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mm256_interleave_2x128( vhashB, hash2, hash3, 512 );
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simd_2way_update_close( &ctx.simd, vhash, vhash, 512 );
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simd_2way_init( &ctx.simd, 512 );
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simd_2way_update_close( &ctx.simd, vhashB, vhashB, 512 );
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mm256_deinterleave_2x128( hash0, hash1, vhash, 512 );
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mm256_deinterleave_2x128( hash2, hash3, vhashB, 512 );
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// 11 Echo
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update_final_echo( &ctx.echo, (BitSequence *)hash0,
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(const BitSequence *) hash0, 512 );
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memcpy( &ctx.echo, &x11_4way_ctx.echo, sizeof(hashState_echo) );
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update_final_echo( &ctx.echo, (BitSequence *)hash1,
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(const BitSequence *) hash1, 512 );
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memcpy( &ctx.echo, &x11_4way_ctx.echo, sizeof(hashState_echo) );
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update_final_echo( &ctx.echo, (BitSequence *)hash2,
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(const BitSequence *) hash2, 512 );
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memcpy( &ctx.echo, &x11_4way_ctx.echo, sizeof(hashState_echo) );
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update_final_echo( &ctx.echo, (BitSequence *)hash3,
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(const BitSequence *) hash3, 512 );
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memcpy( state, hash0, 32 );
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memcpy( state+32, hash1, 32 );
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memcpy( state+64, hash2, 32 );
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memcpy( state+96, hash3, 32 );
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}
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int scanhash_x11_4way( int thr_id, struct work *work, uint32_t max_nonce,
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uint64_t *hashes_done )
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{
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uint32_t hash[4*8] __attribute__ ((aligned (64)));
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uint32_t vdata[24*4] __attribute__ ((aligned (64)));
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uint32_t endiandata[20] __attribute__((aligned(64)));
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uint32_t *pdata = work->data;
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uint32_t *ptarget = work->target;
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uint32_t n = pdata[19];
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const uint32_t first_nonce = pdata[19];
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uint32_t *nonces = work->nonces;
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int num_found = 0;
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uint32_t *noncep = vdata + 73; // 9*8 + 1
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const uint32_t Htarg = ptarget[7];
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uint64_t htmax[] = { 0, 0xF, 0xFF,
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0xFFF, 0xFFFF, 0x10000000 };
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uint32_t masks[] = { 0xFFFFFFFF, 0xFFFFFFF0, 0xFFFFFF00,
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0xFFFFF000, 0xFFFF0000, 0 };
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// big endian encode 0..18 uint32_t, 64 bits at a time
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swab32_array( endiandata, pdata, 20 );
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uint64_t *edata = (uint64_t*)endiandata;
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mm256_interleave_4x64( (uint64_t*)vdata, edata, edata, edata, edata, 640 );
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for (int m=0; m < 6; m++)
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if (Htarg <= htmax[m])
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{
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uint32_t mask = masks[m];
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do
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{
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be32enc( noncep, n );
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be32enc( noncep+2, n+1 );
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be32enc( noncep+4, n+2 );
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be32enc( noncep+6, n+3 );
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x11_4way_hash( hash, vdata );
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pdata[19] = n;
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for ( int i = 0; i < 4; i++ )
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if ( ( ( (hash+(i<<3))[7] & mask ) == 0 )
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&& fulltest( hash+(i<<3), ptarget ) )
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{
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pdata[19] = n+i;
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nonces[ num_found++ ] = n+i;
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work_set_target_ratio( work, hash+(i<<3) );
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}
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n += 4;
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} while ( ( num_found == 0 ) && ( n < max_nonce )
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&& !work_restart[thr_id].restart );
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break;
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}
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*hashes_done = n - first_nonce + 1;
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return num_found;
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}
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#endif
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