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/**
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* Tribus Algo for Denarius
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*
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* tpruvot@github 09 2017 - GPLv3
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*
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*/
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extern "C" {
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#include "sph/sph_jh.h"
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#include "sph/sph_keccak.h"
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#include "sph/sph_echo.h"
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}
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#include "miner.h"
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#include "cuda_helper.h"
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#include "x11/cuda_x11.h"
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void jh512_setBlock_80(int thr_id, uint32_t *endiandata);
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void jh512_cuda_hash_80(const int thr_id, const uint32_t threads, const uint32_t startNounce, uint32_t *d_hash);
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void tribus_echo512_final(int thr_id, uint32_t threads, uint32_t *d_hash, uint32_t *d_resNonce, const uint64_t target);
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static uint32_t *d_hash[MAX_GPUS];
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static uint32_t *d_resNonce[MAX_GPUS];
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// cpu hash
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extern "C" void tribus_hash(void *state, const void *input)
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{
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uint8_t _ALIGN(64) hash[64];
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sph_jh512_context ctx_jh;
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sph_keccak512_context ctx_keccak;
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sph_echo512_context ctx_echo;
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sph_jh512_init(&ctx_jh);
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sph_jh512(&ctx_jh, input, 80);
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sph_jh512_close(&ctx_jh, (void*) hash);
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sph_keccak512_init(&ctx_keccak);
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sph_keccak512(&ctx_keccak, (const void*) hash, 64);
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sph_keccak512_close(&ctx_keccak, (void*) hash);
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sph_echo512_init(&ctx_echo);
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sph_echo512(&ctx_echo, (const void*) hash, 64);
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sph_echo512_close(&ctx_echo, (void*) hash);
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memcpy(state, hash, 32);
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}
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static bool init[MAX_GPUS] = { 0 };
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static bool use_compat_kernels[MAX_GPUS] = { 0 };
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extern "C" int scanhash_tribus(int thr_id, struct work *work, uint32_t max_nonce, unsigned long *hashes_done)
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{
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uint32_t _ALIGN(64) endiandata[20];
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uint32_t *pdata = work->data;
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uint32_t *ptarget = work->target;
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const uint32_t first_nonce = pdata[19];
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int8_t intensity = is_windows() ? 20 : 23;
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uint32_t throughput = cuda_default_throughput(thr_id, 1 << intensity);
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if (init[thr_id]) throughput = min(throughput, max_nonce - first_nonce);
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if (opt_benchmark)
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((uint32_t*)ptarget)[7] = 0x00FF;
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if (!init[thr_id])
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{
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int dev_id = device_map[thr_id];
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cudaSetDevice(dev_id);
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if (opt_cudaschedule == -1 && gpu_threads == 1) {
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cudaDeviceReset();
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// reduce cpu usage
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cudaSetDeviceFlags(cudaDeviceScheduleBlockingSync);
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CUDA_LOG_ERROR();
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}
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gpulog(LOG_INFO, thr_id, "Intensity set to %g, %u cuda threads", throughput2intensity(throughput), throughput);
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quark_jh512_cpu_init(thr_id, throughput);
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quark_keccak512_cpu_init(thr_id, throughput);
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cuda_get_arch(thr_id);
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use_compat_kernels[thr_id] = (cuda_arch[dev_id] < 500);
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if (use_compat_kernels[thr_id])
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x11_echo512_cpu_init(thr_id, throughput);
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// char[64] work space for hashes results
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CUDA_SAFE_CALL(cudaMalloc(&d_hash[thr_id], (size_t)64 * throughput));
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CUDA_SAFE_CALL(cudaMalloc(&d_resNonce[thr_id], 2 * sizeof(uint32_t)));
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cuda_check_cpu_init(thr_id, throughput);
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init[thr_id] = true;
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}
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for (int k=0; k < 20; k++)
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be32enc(&endiandata[k], pdata[k]);
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jh512_setBlock_80(thr_id, endiandata);
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if (use_compat_kernels[thr_id])
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cuda_check_cpu_setTarget(ptarget);
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else
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cudaMemset(d_resNonce[thr_id], 0xFF, 2 * sizeof(uint32_t));
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work->valid_nonces = 0;
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do {
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int order = 1;
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jh512_cuda_hash_80(thr_id, throughput, pdata[19], d_hash[thr_id]);
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quark_keccak512_cpu_hash_64(thr_id, throughput, pdata[19], NULL, d_hash[thr_id], order++);
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if (use_compat_kernels[thr_id]) {
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x11_echo512_cpu_hash_64(thr_id, throughput, pdata[19], NULL, d_hash[thr_id], order++);
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work->nonces[0] = cuda_check_hash(thr_id, throughput, pdata[19], d_hash[thr_id]);
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work->nonces[1] = UINT32_MAX;
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} else {
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tribus_echo512_final(thr_id, throughput, d_hash[thr_id], d_resNonce[thr_id], AS_U64(&ptarget[6]));
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cudaMemcpy(&work->nonces[0], d_resNonce[thr_id], 2 * sizeof(uint32_t), cudaMemcpyDeviceToHost);
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}
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*hashes_done = pdata[19] - first_nonce + throughput;
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if (work->nonces[0] != UINT32_MAX)
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{
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uint32_t _ALIGN(64) vhash[8];
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const uint32_t Htarg = ptarget[7];
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const uint32_t startNounce = pdata[19];
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if (!use_compat_kernels[thr_id]) work->nonces[0] += startNounce;
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be32enc(&endiandata[19], work->nonces[0]);
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tribus_hash(vhash, endiandata);
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if (vhash[7] <= Htarg && fulltest(vhash, ptarget)) {
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work->valid_nonces = 1;
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work_set_target_ratio(work, vhash);
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if (work->nonces[1] != UINT32_MAX) {
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work->nonces[1] += startNounce;
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be32enc(&endiandata[19], work->nonces[1]);
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tribus_hash(vhash, endiandata);
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bn_set_target_ratio(work, vhash, 1);
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work->valid_nonces++;
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pdata[19] = max(work->nonces[0], work->nonces[1]) + 1;
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} else {
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pdata[19] = work->nonces[0] + 1; // cursor
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}
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goto out;
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}
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else if (vhash[7] > Htarg) {
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gpu_increment_reject(thr_id);
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if (!opt_quiet)
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gpulog(LOG_WARNING, thr_id, "result for %08x does not validate on CPU!", work->nonces[0]);
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cudaMemset(d_resNonce[thr_id], 0xFF, 2 * sizeof(uint32_t));
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pdata[19] = work->nonces[0] + 1;
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continue;
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}
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}
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if ((uint64_t) throughput + pdata[19] >= max_nonce) {
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pdata[19] = max_nonce;
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break;
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}
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pdata[19] += throughput;
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} while (!work_restart[thr_id].restart);
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out:
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// *hashes_done = pdata[19] - first_nonce;
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return work->valid_nonces;
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}
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// ressources cleanup
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extern "C" void free_tribus(int thr_id)
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{
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if (!init[thr_id])
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return;
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cudaThreadSynchronize();
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cudaFree(d_hash[thr_id]);
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cudaFree(d_resNonce[thr_id]);
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cuda_check_cpu_free(thr_id);
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init[thr_id] = false;
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cudaDeviceSynchronize();
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}
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