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			362 lines
		
	
	
		
			12 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
			
		
		
	
	
			362 lines
		
	
	
		
			12 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
#include "ggml-opencl.h"
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#define CL_TARGET_OPENCL_VERSION 110
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#include <clblast_c.h>
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#include <stdlib.h>
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#include <stdio.h>
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#include <string.h>
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#include "ggml.h"
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#define MULTILINE_QUOTE(...) #__VA_ARGS__
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const char * clblast_dequant = MULTILINE_QUOTE(
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typedef uchar uint8_t;
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typedef int int32_t;
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typedef uint uint32_t;
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constant uint QK4_0 = 32;
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struct block_q4_0
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{
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    float d;
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    uint8_t qs[QK4_0 / 2];
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};
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constant uint QK4_1 = 32;
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struct block_q4_1
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{
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    float d;
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    float m;
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    uint8_t qs[QK4_1 / 2];
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};
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constant uint QK5_0 = 32;
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struct __attribute__ ((packed)) block_q5_0
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{
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    half d;
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    uint32_t qh;
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    uint8_t qs[QK5_0 / 2];
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};
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constant uint QK5_1 = 32;
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struct block_q5_1
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{
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    half d;
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    half m;
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    uint32_t qh;
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    uint8_t qs[QK5_1 / 2];
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};
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constant uint QK8_0 = 32;
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struct block_q8_0
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{
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    float d;
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    uint8_t qs[QK8_0];
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};
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__kernel void dequantize_row_q4_0(__global struct block_q4_0* x, __global float* y) {
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    constant uint qk = QK4_0;
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    const uint i = get_global_id(0) / qk;
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    const uint j = get_local_id(0);
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    const float d = x[i].d;
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    const int x0 = (x[i].qs[j] & 0xf) - 8;
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    const int x1 = (x[i].qs[j] >>  4) - 8;
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    y[i*qk + j + 0   ] = x0*d;
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    y[i*qk + j + qk/2] = x1*d;
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}
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__kernel void dequantize_row_q4_1(__global struct block_q4_1* x, __global float* y) {
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    constant uint qk = QK4_1;
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    const uint i = get_global_id(0) / qk;
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    const uint j = get_local_id(0);
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    const float d = x[i].d;
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    const float m = x[i].m;
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    const int x0 = (x[i].qs[j] & 0xf);
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    const int x1 = (x[i].qs[j] >>  4);
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    y[i*qk + j + 0   ] = x0*d + m;
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    y[i*qk + j + qk/2] = x1*d + m;
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}
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__kernel void dequantize_row_q5_0(__global struct block_q5_0* x, __global float* y) {
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    constant uint qk = QK5_0;
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    const uint i = get_global_id(0) / qk;
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    const uint j = get_local_id(0);
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    const float d = vload_half(0, (__global half*) &x[i].d);
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    uint32_t qh = x[i].qh;
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    const uint8_t xh_0 = ((qh >> (j +  0)) << 4) & 0x10;
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    const uint8_t xh_1 = ((qh >> (j + 12))     ) & 0x10;
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    const int32_t x0 = ((x[i].qs[j] & 0xf) | xh_0) - 16;
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    const int32_t x1 = ((x[i].qs[j] >>  4) | xh_1) - 16;
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    y[i*qk + j + 0   ] = x0*d;
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    y[i*qk + j + qk/2] = x1*d;
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}
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__kernel void dequantize_row_q5_1(__global struct block_q5_1* x, __global float* y) {
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    constant uint qk = QK5_1;
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    const uint i = get_global_id(0) / qk;
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    const uint j = get_local_id(0);
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    const float d = vload_half(0, (__global half*) &x[i].d);
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    const float m = vload_half(0, (__global half*) &x[i].m);
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    uint32_t qh = x[i].qh;
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    const uint8_t xh_0 = ((qh >> (j +  0)) << 4) & 0x10;
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    const uint8_t xh_1 = ((qh >> (j + 12))     ) & 0x10;
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    const int x0 = (x[i].qs[j] & 0xf) | xh_0;
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    const int x1 = (x[i].qs[j] >>  4) | xh_1;
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    y[i*qk + j + 0   ] = x0*d + m;
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    y[i*qk + j + qk/2] = x1*d + m;
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}
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__kernel void dequantize_row_q8_0(__global struct block_q8_0* x, __global float* y) {
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    constant uint qk = QK8_0;
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    const uint i = get_global_id(0) / qk;
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    const uint j = get_local_id(0);
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    const float d = x[i].d;
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    y[i*qk + j] = x[i].qs[j]*d;
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}
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);
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#define CL_CHECK(err, name)                                                                     \
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    do {                                                                                        \
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        cl_int err_ = (err);                                                                    \
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        if (err_ != CL_SUCCESS) {                                                               \
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            fprintf(stderr, "OpenCL %s error %d at %s:%d\n", name, err_, __FILE__, __LINE__);   \
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            exit(1);                                                                            \
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        }                                                                                       \
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    } while (0)
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static cl_platform_id platform;
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static cl_device_id device;
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static cl_context context;
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static cl_command_queue queue;
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static cl_program program;
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static cl_kernel kernel_q4_0, kernel_q4_1, kernel_q5_0, kernel_q5_1, kernel_q8_0;
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static cl_mem cl_buffer_a, cl_buffer_qb, cl_buffer_b, cl_buffer_c;
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static size_t cl_size_a = 0, cl_size_qb = 0, cl_size_b = 0, cl_size_c = 0;
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static cl_program build_program_from_source(cl_context ctx, cl_device_id dev, const char* program_buffer) {
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    cl_program p;
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    char *program_log;
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    size_t program_size, log_size;
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    int err;
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    program_size = strlen(program_buffer);
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    p = clCreateProgramWithSource(ctx, 1, (const char**)&program_buffer, &program_size, &err);
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    if(err < 0) {
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        fprintf(stderr, "OpenCL error creating program");
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        exit(1);
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    }
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    err = clBuildProgram(p, 0, NULL, NULL, NULL, NULL);
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    if(err < 0) {
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        clGetProgramBuildInfo(p, dev, CL_PROGRAM_BUILD_LOG, 0, NULL, &log_size);
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        program_log = (char*) malloc(log_size + 1);
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        program_log[log_size] = '\0';
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        clGetProgramBuildInfo(p, dev, CL_PROGRAM_BUILD_LOG, log_size + 1, program_log, NULL);
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        printf("%s\n", program_log);
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        free(program_log);
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        exit(1);
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    }
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    return p;
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}
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void ggml_cl_init(void) {
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    cl_int err = 0;
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    char * GGML_CLBLAST_PLATFORM = getenv("GGML_CLBLAST_PLATFORM");
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    char * GGML_CLBLAST_DEVICE = getenv("GGML_CLBLAST_DEVICE");
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    int plat_num = (GGML_CLBLAST_PLATFORM == NULL ? 0 : atoi(GGML_CLBLAST_PLATFORM));
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    int dev_num = (GGML_CLBLAST_DEVICE == NULL ? 0 : atoi(GGML_CLBLAST_DEVICE));
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    printf("\nInitializing CLBlast (First Run)...");
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    printf("\nAttempting to use: Platform=%d, Device=%d (If invalid, program will crash)\n",plat_num,dev_num);
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    cl_uint num_platforms;
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    clGetPlatformIDs(0, NULL, &num_platforms);
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    cl_platform_id* platforms = (cl_platform_id*)malloc(num_platforms*sizeof(cl_platform_id));
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    clGetPlatformIDs(num_platforms, platforms, NULL);
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    platform = platforms[plat_num];
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    char platform_buffer[1024];
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    clGetPlatformInfo(platform, CL_PLATFORM_NAME, sizeof(platform_buffer), &platform_buffer, NULL);
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    cl_uint num_devices;
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    clGetDeviceIDs(platform, CL_DEVICE_TYPE_ALL, 0, NULL, &num_devices);
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    cl_device_id* devices = (cl_device_id*)malloc(num_devices*sizeof(cl_device_id));
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    clGetDeviceIDs(platform, CL_DEVICE_TYPE_ALL, num_devices, devices, NULL);
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    device = devices[dev_num];
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    char device_buffer[1024];
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    clGetDeviceInfo(device, CL_DEVICE_NAME, sizeof(device_buffer), &device_buffer, NULL);
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    printf("Using Platform: %s Device: %s\n", platform_buffer, device_buffer);
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    context = clCreateContext(NULL, 1, &device, NULL, NULL, &err);
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    CL_CHECK(err, "clCreateContext");
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    queue = clCreateCommandQueue(context, device, CL_QUEUE_OUT_OF_ORDER_EXEC_MODE_ENABLE, &err);
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    CL_CHECK(err, "clCreateCommandQueue");
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    free(platforms);
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    free(devices);
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    program = build_program_from_source(context, device, clblast_dequant);
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    // Prepare dequantize kernels
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    kernel_q4_0 = clCreateKernel(program, "dequantize_row_q4_0", &err);
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    CL_CHECK(err, "clCreateKernel");
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    kernel_q4_1 = clCreateKernel(program, "dequantize_row_q4_1", &err);
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    CL_CHECK(err, "clCreateKernel");
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    kernel_q5_0 = clCreateKernel(program, "dequantize_row_q5_0", &err);
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    CL_CHECK(err, "clCreateKernel");
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    kernel_q5_1 = clCreateKernel(program, "dequantize_row_q5_1", &err);
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    CL_CHECK(err, "clCreateKernel");
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    kernel_q8_0 = clCreateKernel(program, "dequantize_row_q8_0", &err);
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    CL_CHECK(err, "clCreateKernel");
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}
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static void ggml_cl_malloc(size_t req_size, size_t* cur_size, cl_mem_flags flags, cl_mem* buf) {
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    if (req_size <= *cur_size) {
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        return;
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    }
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    // Reallocate buffer with enough space
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    if (*cur_size > 0) {
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        clReleaseMemObject(*buf);
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    }
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    cl_int err;
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    *buf = clCreateBuffer(context, flags, req_size, NULL, &err);
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    *cur_size = req_size;
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    CL_CHECK(err, "clCreateBuffer");
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}
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void ggml_cl_sgemm_wrapper(
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        const enum ggml_blas_order order, const enum ggml_blas_op trans_a, const enum ggml_blas_op trans_b,
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        const int m, const int n, const int k,
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        const float alpha, const void *host_a, const int lda,
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        const float *host_b, const int ldb, const float beta,
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        float *host_c, const int ldc, const int btype) {
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    cl_int err = 0;
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    cl_kernel kernel;
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    size_t global = n * k, local, size_qb;
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    bool dequant;
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    switch (btype) {
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    case GGML_TYPE_F32:
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        dequant = false;
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        break;
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    case GGML_TYPE_Q4_0:
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        dequant = true;
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        kernel = kernel_q4_0;
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        local = 16;
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        size_qb = global * (sizeof(float) + local) / 32;
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        break;
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    case GGML_TYPE_Q4_1:
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        dequant = true;
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        kernel = kernel_q4_1;
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        local = 16;
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        size_qb = global * (sizeof(float) * 2 + local) / 32;
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        break;
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    case GGML_TYPE_Q5_0:
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        dequant = true;
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        kernel = kernel_q5_0;
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        local = 16;
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        size_qb = global * (sizeof(ggml_fp16_t) + sizeof(uint32_t) + local) / 32;
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        break;
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    case GGML_TYPE_Q5_1:
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        dequant = true;
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        kernel = kernel_q5_1;
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        local = 16;
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        size_qb = global * (sizeof(ggml_fp16_t) * 2 + sizeof(uint32_t) + local) / 32;
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        break;
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    case GGML_TYPE_Q8_0:
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        dequant = true;
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        kernel = kernel_q8_0;
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        local = 32;
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        size_qb = global * (sizeof(float) + local) / 32;
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        break;
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    default:
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        fprintf(stderr, "Error: Unsupported OpenCL btype %d\n", btype);
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        abort();
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    }
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    const size_t size_a =  m * k * sizeof(float);
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    const size_t size_b =  n * k * sizeof(float);
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    const size_t size_c =  m * n * sizeof(float);
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    // Prepare buffers
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    ggml_cl_malloc(size_a, &cl_size_a, CL_MEM_READ_ONLY, &cl_buffer_a);
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    if (dequant) {
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        ggml_cl_malloc(size_qb, &cl_size_qb, CL_MEM_READ_ONLY, &cl_buffer_qb);
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    }
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    ggml_cl_malloc(size_b, &cl_size_b, CL_MEM_READ_WRITE, &cl_buffer_b);
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    ggml_cl_malloc(size_c, &cl_size_c, CL_MEM_WRITE_ONLY, &cl_buffer_c);
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    cl_event ev_a, ev_qb, ev_b;
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    if (dequant) {
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        err = clSetKernelArg(kernel, 0, sizeof(cl_mem), &cl_buffer_qb);
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        err |= clSetKernelArg(kernel, 1, sizeof(cl_mem), &cl_buffer_b);
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        CL_CHECK(err, "clSetKernelArg");
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        err = clEnqueueWriteBuffer(queue, cl_buffer_qb, CL_FALSE, 0, size_qb, host_b, 0, NULL, &ev_qb);
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        CL_CHECK(err, "clEnqueueWriteBuffer qb");
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    } else {
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        err = clEnqueueWriteBuffer(queue, cl_buffer_b, CL_FALSE, 0, size_b, host_b, 0, NULL, &ev_b);
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        CL_CHECK(err, "clEnqueueWriteBuffer b");
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    }
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    err = clEnqueueWriteBuffer(queue, cl_buffer_a, CL_FALSE, 0, size_a, host_a, 0, NULL, &ev_a);
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    CL_CHECK(err, "clEnqueueWriteBuffer a");
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    if (dequant) {
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        err = clEnqueueNDRangeKernel(queue, kernel, 1, NULL, &global, &local, 1, &ev_qb, &ev_b);
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        CL_CHECK(err, "clEnqueueNDRangeKernel");
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        clReleaseEvent(ev_qb);
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    }
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    clWaitForEvents(1, &ev_a);
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    clWaitForEvents(1, &ev_b);
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    clReleaseEvent(ev_a);
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    clReleaseEvent(ev_b);
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    cl_event ev_sgemm;
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    CLBlastStatusCode status = CLBlastSgemm((CLBlastLayout)order,
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                                            (CLBlastTranspose)trans_a, (CLBlastTranspose)trans_b,
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                                            m, n, k,
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                                            alpha,
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                                            cl_buffer_a, 0, lda,
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                                            cl_buffer_b, 0, ldb,
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                                            beta,
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                                            cl_buffer_c, 0, ldc,
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                                            &queue, &ev_sgemm);
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    if (status != CLBlastSuccess) {
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        fprintf(stderr, "Error: CLBlast SGEMM %d\n", status);
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        abort();
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    }
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    cl_event ev_c;
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    clEnqueueReadBuffer(queue, cl_buffer_c, CL_TRUE, 0, size_c, host_c, 1, &ev_sgemm, &ev_c);
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    // Wait for completion
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    clWaitForEvents(1, &ev_c);
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    clReleaseEvent(ev_sgemm);
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    clReleaseEvent(ev_c);
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}
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