272 lines
7.8 KiB
C++
272 lines
7.8 KiB
C++
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#include "mat_mul.h"
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#include <stdio.h>
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#include <CL/cl.h>
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#include "util.h"
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#define CHECK_ERROR(err) \
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if (err != CL_SUCCESS) { \
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printf("[%s:%d] OpenCL error %d\n", __FILE__, __LINE__, err); \
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exit(EXIT_FAILURE); \
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}
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#define TS 32
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#define WPT 8
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#define WIDTH 8
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#define MAX_DEV 4
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#define RTS (TS/WPT)
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static cl_int err;
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static cl_platform_id platform;
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static cl_device_id device[MAX_DEV];
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static cl_context context;
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static cl_command_queue queue[MAX_DEV];
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static cl_program program;
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static cl_kernel kernel[MAX_DEV];
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static cl_mem a_d[MAX_DEV], b_d[MAX_DEV], c_d[MAX_DEV];
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//static cl_uint num_plaforms;
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static float *A, *B, *C;
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static int M, N, K;
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static int ndev;
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static int CopyBuf = 0;
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void mat_mul(float *_A, float *_B, float *_C, int _M, int _N, int _K) {
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//A = _A, B = _B, C = _C;
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//M = _M, N = _N, K = _K;
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// Setup kernel arguments
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for(int i = 0; i < ndev; i++) {
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err = clSetKernelArg(kernel[i], 0, sizeof(cl_mem), &a_d[i]);
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CHECK_ERROR(err);
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err = clSetKernelArg(kernel[i], 1, sizeof(cl_mem), &b_d[i]);
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CHECK_ERROR(err);
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err = clSetKernelArg(kernel[i], 2, sizeof(cl_mem), &c_d[i]);
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CHECK_ERROR(err);
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err = clSetKernelArg(kernel[i], 3, sizeof(int), &M);
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CHECK_ERROR(err);
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err = clSetKernelArg(kernel[i], 4, sizeof(int), &N);
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CHECK_ERROR(err);
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err = clSetKernelArg(kernel[i], 5, sizeof(int), &K);
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CHECK_ERROR(err);
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}
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// Setup global work size and local work size
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size_t gws[2] = {(size_t)M/ndev, (size_t)N/WIDTH}, lws[2] = {TS, TS/WIDTH};
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for (int i = 0; i < 2; ++i) {
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// By OpenCL spec, global work size should be MULTIPLE of local work size
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// Formula below achieve it
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// e.g., gws = 25, lws = 16, then (25 + 16 - 1) / 16 * 16 = 40 / 16 * 16 = 2 * 16 = 32
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//printf("1.gws[%d]:%ld, lws[%d]:%ld\n", i, gws[i], i, lws[i]);
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gws[i] = (gws[i] + lws[i] - 1) / lws[i] * lws[i];
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//printf("2.gws[%d]:%ld, lws[%d]:%ld\n", i, gws[i], i, lws[i]);
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}
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// Run kernel
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for(int i = 0; i < ndev; i++){
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err = clEnqueueNDRangeKernel(queue[i], kernel[i], 2, NULL, gws, lws, 0, NULL, NULL);
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CHECK_ERROR(err);
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}
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// DO NOT REMOVE; NEEDED FOR TIME MEASURE
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for(int i = 0; i < ndev; i++){
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err = clFinish(queue[i]);
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CHECK_ERROR(err);
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}
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}
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static void print_platform_info(cl_platform_id platform) {
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size_t sz;
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char *buf;
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CHECK_ERROR(clGetPlatformInfo(platform, CL_PLATFORM_NAME, 0, NULL, &sz));
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buf = (char*)malloc(sz);
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CHECK_ERROR(clGetPlatformInfo(platform, CL_PLATFORM_NAME, sz, buf, NULL));
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printf("Detected OpenCL platform: %s\n", buf);
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free(buf);
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}
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static void print_device_info(cl_device_id device) {
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size_t sz;
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char *buf;
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CHECK_ERROR(clGetDeviceInfo(device, CL_DEVICE_NAME, 0, NULL, &sz));
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buf = (char*)malloc(sz);
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CHECK_ERROR(clGetDeviceInfo(device, CL_DEVICE_NAME, sz, buf, NULL));
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printf("Detected OpenCL device: %s\n", buf);
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free(buf);
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}
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static cl_program create_and_build_program_with_source(cl_context context, cl_device_id device, const char *file_name) {
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FILE *file = fopen(file_name, "rb");
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if (file == NULL) {
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printf("Failed to open %s\n", file_name);
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exit(EXIT_FAILURE);
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}
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// printf("Function : %s, Line : %d\n", __FUNCTION__, __LINE__); fflush(stdout);
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fseek(file, 0, SEEK_END);
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size_t source_size = ftell(file);
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rewind(file);
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char *source_code = (char*)malloc(source_size + 1);
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size_t ntotal = 0;
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while (ntotal < source_size) {
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int nread = fread(source_code, sizeof(char), source_size, file);
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ntotal += nread;
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}
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source_code[source_size] = '\0';
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fclose(file);
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cl_program program = clCreateProgramWithSource(context, 1, (const char **)&source_code, &source_size, &err);
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CHECK_ERROR(err);
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free(source_code);
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err = clBuildProgram(program, 1, &device, "", NULL, NULL);
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if (err == CL_BUILD_PROGRAM_FAILURE) {
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size_t log_size;
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CHECK_ERROR(clGetProgramBuildInfo(program, device, CL_PROGRAM_BUILD_LOG, 0, NULL, &log_size));
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char *log = (char*)malloc(log_size + 1);
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CHECK_ERROR(clGetProgramBuildInfo(program, device, CL_PROGRAM_BUILD_LOG, log_size, log, NULL));
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log[log_size] = 0;
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printf("Compile error:\n%s\n", log);
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free(log);
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}
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CHECK_ERROR(err);
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return program;
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}
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void mat_mul_init(float *_A, float *_B, float *_C, int _M, int _N, int _K) {
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// Get OpenCL platform
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err = clGetPlatformIDs(1, &platform, NULL);
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CHECK_ERROR(err);
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print_platform_info(platform);
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// Get OpenCL device
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err = clGetDeviceIDs(platform, CL_DEVICE_TYPE_GPU, 1, NULL, (unsigned int*) &ndev);
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err = clGetDeviceIDs(platform, CL_DEVICE_TYPE_GPU, ndev, device, NULL);
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CHECK_ERROR(err);
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for(int i = 0; i < ndev; i++){
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printf("GPU %d ", i);
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print_device_info(device[i]);
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}
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// Create OpenCL context
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context = clCreateContext(NULL, ndev, device, NULL, NULL, &err);
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CHECK_ERROR(err);
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// Create OpenCL command queue
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for(int i = 0; i < ndev; i++){
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queue[i] = clCreateCommandQueue(context, device[i], 0, &err);
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CHECK_ERROR(err);
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}
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for(int i = 0; i < ndev; i++){
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// Compile program from "kernel.cl"
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program = create_and_build_program_with_source(context, device[i], "kernel.cl");
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// Extract kernel from compiled program
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kernel[i] = clCreateKernel(program, "sgemm", &err);
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CHECK_ERROR(err);
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}
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/////////////////////////////////////////////
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M = (_M & (TS-1))? _M + (TS - (_M & (TS-1))) : _M;
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N = (_N & (TS-1))? _N + (TS - (_N & (TS-1))) : _N;
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K = (_K & (TS-1))? _K + (TS - (_K & (TS-1))) : _K;
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CopyBuf = 0;
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if(M == _M && K == _K){
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A = _A;
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}
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else{
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alloc_mat(&A, M, K);
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for (int i = 0; i < M; i++) {
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for (int j = 0; j < K; j++) {
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if(i<_M && j<_K)
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A[i * K + j] = _A[i * _K + j];
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else
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A[i * K + j] = 0;
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}
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}
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CopyBuf = 1;
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}
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if(K == _K && N == _N){
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B = _B;
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}
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else{
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alloc_mat(&B, K, N);
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for (int i = 0; i < K; i++) {
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for (int j = 0; j < N; j++) {
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if(i<_K && j<_N)
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B[i * N + j] = _B[i * _N + j];
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else
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B[i * N + j] = 0;
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}
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}
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CopyBuf = 1;
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}
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if(M == _M && N == _N){
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C = _C;
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}
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else{
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alloc_mat(&C, M, N);
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zero_mat(C, M, N);
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CopyBuf = 1;
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}
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////////////////////////////////////
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int size_A = M * K * sizeof(float)/ndev, size_C = M * N * sizeof(float)/ndev;
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for(int i = 0; i < ndev; i++){
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if(i == (ndev-1)){
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size_A = M * K * sizeof(float) - size_A * i;
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size_C = M * N * sizeof(float) - size_C * i;
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}
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// Create GPU buffers
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a_d[i] = clCreateBuffer(context, CL_MEM_READ_WRITE, size_A, NULL, &err);
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CHECK_ERROR(err);
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b_d[i] = clCreateBuffer(context, CL_MEM_READ_WRITE, K * N * sizeof(float), NULL, &err);
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CHECK_ERROR(err);
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c_d[i] = clCreateBuffer(context, CL_MEM_READ_WRITE, size_C, NULL, &err);
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CHECK_ERROR(err);
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// Write to GPU; A (cpu) -> a_d (gpu), B (cpu) -> b_d (gpu)
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err = clEnqueueWriteBuffer(queue[i], a_d[i], CL_TRUE, 0, size_A, &A[i*M*K/ndev], 0, NULL, NULL);
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CHECK_ERROR(err);
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err = clEnqueueWriteBuffer(queue[i], b_d[i], CL_TRUE, 0, K * N * sizeof(float), B, 0, NULL, NULL);
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CHECK_ERROR(err);
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}
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// DO NOT REMOVE; NEEDED FOR TIME MEASURE
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for(int i = 0; i < ndev; i++){
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err = clFinish(queue[i]);
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CHECK_ERROR(err);
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}
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}
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void mat_mul_final(float *_A, float *_B, float *_C, int _M, int _N, int _K) {
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int size_C = M * N * sizeof(float)/ndev;
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// Read from GPU; c_d (gpu) -> C (cpu)
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for(int i = 0; i < ndev; i++){
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if(i == (ndev-1)){
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size_C = M * N * sizeof(float) - size_C * i;
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}
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err = clEnqueueReadBuffer(queue[i], c_d[i], CL_TRUE, 0, size_C, &C[i*M*N/ndev], 0, NULL, NULL);
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CHECK_ERROR(err);
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}
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// DO NOT REMOVE; NEEDED FOR TIME MEASURE
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for(int i = 0; i < ndev; i++){
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err = clFinish(queue[i]);
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CHECK_ERROR(err);
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}
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if(CopyBuf == 1){
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for (int i = 0; i < _M; i++) {
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for (int j = 0; j < _N; j++) {
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_C[i * _N + j] = C[i * N + j];
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}
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}
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}
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}
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