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#ifndef GGML_SYCL_COMMON_HPP |
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#define GGML_SYCL_COMMON_HPP |
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#include <fstream> |
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#include <iostream> |
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#include "dpct/helper.hpp" |
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#include "ggml-sycl.h" |
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#include "presets.hpp" |
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#if GGML_SYCL_DNNL |
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#include "dnnl.hpp" |
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#include "dnnl_sycl.hpp" |
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#endif |
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#define GGML_COMMON_DECL_SYCL |
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#define GGML_COMMON_IMPL_SYCL |
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#pragma clang diagnostic push |
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#pragma clang diagnostic ignored "-Wnested-anon-types" |
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#include "ggml-common.h" |
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#pragma clang diagnostic pop |
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void* ggml_sycl_host_malloc(size_t size); |
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void ggml_sycl_host_free(void* ptr); |
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static int g_ggml_sycl_debug = 0; |
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#define GGML_SYCL_DEBUG(...) \ |
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do { \ |
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if (g_ggml_sycl_debug) \ |
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fprintf(stderr, __VA_ARGS__); \ |
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} while (0) |
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#define CHECK_TRY_ERROR(expr) \ |
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[&]() { \ |
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try { \ |
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expr; \ |
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return dpct::success; \ |
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} catch (std::exception const& e) { \ |
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std::cerr << e.what() << "\nException caught at file:" << __FILE__ \ |
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<< ", line:" << __LINE__ << ", func:" << __func__ \ |
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<< std::endl; \ |
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return dpct::default_error; \ |
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} \ |
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}() |
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#define __SYCL_ARCH__ DPCT_COMPATIBILITY_TEMP |
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#define VER_4VEC 610 |
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#define VER_GEN9 700 |
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#define VER_GEN12 1000000 |
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#define VER_GEN13 (VER_GEN12 + 1030) |
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#define GGML_SYCL_MAX_NODES 8192 |
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#if !defined(GGML_SYCL_FORCE_MMQ) |
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#define SYCL_USE_XMX |
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#endif |
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#define MMQ_MAX_BATCH_SIZE 32 |
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#if defined(_MSC_VER) |
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#pragma warning(disable : 4244 4267) |
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#endif |
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#ifndef GGML_SYCL_DMMV_X |
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#define GGML_SYCL_DMMV_X 32 |
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#endif |
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#ifndef GGML_SYCL_MMV_Y |
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#define GGML_SYCL_MMV_Y 1 |
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#endif |
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typedef sycl::queue *queue_ptr; |
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enum ggml_sycl_backend_gpu_mode { |
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SYCL_UNSET_GPU_MODE = -1, |
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SYCL_SINGLE_GPU_MODE = 0, |
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SYCL_MUL_GPU_MODE |
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}; |
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static_assert(sizeof(sycl::half) == sizeof(ggml_fp16_t), "wrong fp16 size"); |
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static void crash() { |
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int* ptr = NULL; |
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*ptr = 0; |
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} |
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[[noreturn]] static void ggml_sycl_error( |
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const char* stmt, |
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const char* func, |
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const char* file, |
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const int line, |
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const char* msg) { |
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fprintf(stderr, "SYCL error: %s: %s\n", stmt, msg); |
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fprintf(stderr, " in function %s at %s:%d\n", func, file, line); |
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GGML_ABORT("SYCL error"); |
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} |
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#define SYCL_CHECK(err) \ |
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do { \ |
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auto err_ = (err); \ |
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if (err_ != 0) \ |
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ggml_sycl_error( \ |
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#err, \ |
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__func__, \ |
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__FILE__, \ |
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__LINE__, \ |
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"Meet error in this line code!"); \ |
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} while (0) |
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#if DPCT_COMPAT_RT_VERSION >= 11100 |
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#define GGML_SYCL_ASSUME(x) __builtin_assume(x) |
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#else |
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#define GGML_SYCL_ASSUME(x) |
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#endif |
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#ifdef GGML_SYCL_F16 |
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typedef sycl::half dfloat; |
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typedef sycl::half2 dfloat2; |
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#else |
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typedef float dfloat; |
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typedef sycl::float2 dfloat2; |
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#endif |
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#define MMVQ_MAX_BATCH_SIZE 8 |
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static const int8_t kvalues_iq4nl[16]={-127, -104, -83, -65, -49, -35, -22, -10, 1, 13, 25, 38, 53, 69, 89, 113}; |
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static int g_all_sycl_device_count = -1; |
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static bool g_ggml_backend_sycl_buffer_type_initialized = false; |
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static ggml_sycl_backend_gpu_mode g_ggml_sycl_backend_gpu_mode = |
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SYCL_UNSET_GPU_MODE; |
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static void* g_scratch_buffer = nullptr; |
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static size_t g_scratch_size = 0; |
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static size_t g_scratch_offset = 0; |
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[[noreturn]] static inline void bad_arch(const sycl::stream& stream_ct1) { |
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stream_ct1 << "ERROR: ggml-sycl was compiled without support for the " |
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"current GPU architecture.\n"; |
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std::exit(1); |
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(void)bad_arch; |
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} |
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int get_current_device_id(); |
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inline dpct::err0 ggml_sycl_set_device(const int device) try { |
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int current_device_id; |
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SYCL_CHECK(CHECK_TRY_ERROR(current_device_id = get_current_device_id())); |
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if (device == current_device_id) { |
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return 0; |
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} |
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return CHECK_TRY_ERROR(dpct::select_device(device)); |
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} catch (sycl::exception const& exc) { |
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std::cerr << exc.what() << "Exception caught at file:" << __FILE__ |
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<< ", line:" << __LINE__ << std::endl; |
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crash(); |
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std::exit(1); |
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} |
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struct ggml_sycl_device_info { |
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int device_count; |
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struct sycl_device_info { |
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int cc; |
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bool vmm; |
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size_t total_vram; |
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}; |
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sycl_device_info devices[GGML_SYCL_MAX_DEVICES] = {}; |
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std::array<float, GGML_SYCL_MAX_DEVICES> default_tensor_split = {}; |
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int max_work_group_sizes[GGML_SYCL_MAX_DEVICES] = {0}; |
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}; |
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const ggml_sycl_device_info & ggml_sycl_info(); |
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struct ggml_sycl_pool { |
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virtual ~ggml_sycl_pool() = default; |
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virtual void * alloc(size_t size, size_t * actual_size) = 0; |
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virtual void free(void * ptr, size_t size) = 0; |
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}; |
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template<typename T> |
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struct ggml_sycl_pool_alloc { |
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ggml_sycl_pool * pool = nullptr; |
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T * ptr = nullptr; |
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size_t actual_size = 0; |
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explicit ggml_sycl_pool_alloc(ggml_sycl_pool & pool) : pool(&pool) { |
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} |
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ggml_sycl_pool_alloc(ggml_sycl_pool & pool, size_t size) : pool(&pool) { |
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alloc(size); |
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} |
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~ggml_sycl_pool_alloc() { |
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if (ptr != nullptr) { |
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pool->free(ptr, actual_size); |
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} |
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} |
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T * alloc(size_t size) { |
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GGML_ASSERT(pool != nullptr); |
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GGML_ASSERT(ptr == nullptr); |
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ptr = (T *) pool->alloc(size * sizeof(T), &this->actual_size); |
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return ptr; |
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} |
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T * alloc(ggml_sycl_pool & pool, size_t size) { |
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this->pool = &pool; |
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return alloc(size); |
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} |
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T * get() { |
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return ptr; |
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} |
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ggml_sycl_pool_alloc() = default; |
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ggml_sycl_pool_alloc(const ggml_sycl_pool_alloc &) = delete; |
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ggml_sycl_pool_alloc(ggml_sycl_pool_alloc &&) = delete; |
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ggml_sycl_pool_alloc& operator=(const ggml_sycl_pool_alloc &) = delete; |
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ggml_sycl_pool_alloc& operator=(ggml_sycl_pool_alloc &&) = delete; |
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}; |
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struct ggml_tensor_extra_gpu { |
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void* data_device[GGML_SYCL_MAX_DEVICES]; |
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dpct::event_ptr events[GGML_SYCL_MAX_DEVICES] |
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[GGML_SYCL_MAX_STREAMS]; |
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}; |
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struct ggml_backend_sycl_context { |
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int device; |
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std::string name; |
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queue_ptr qptrs[GGML_SYCL_MAX_DEVICES][GGML_SYCL_MAX_STREAMS] = { { nullptr } }; |
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explicit ggml_backend_sycl_context(int device) : |
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device(device), |
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name(GGML_SYCL_NAME + std::to_string(device)) { |
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} |
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queue_ptr stream(int device, int stream) { |
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if (qptrs[device][stream] == nullptr) { |
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qptrs[device][stream] = &(dpct::get_device(device).default_queue()); |
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} |
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return qptrs[device][stream]; |
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} |
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queue_ptr stream() { |
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return stream(device, 0); |
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} |
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#if GGML_SYCL_DNNL |
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dnnl::engine make_engine(sycl::queue* q) { |
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sycl::device dev = q->get_device(); |
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sycl::context ctx = q->get_context(); |
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const dnnl::engine eng = dnnl::sycl_interop::make_engine(dev, ctx); |
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return eng; |
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} |
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std::unordered_map<sycl::queue*, dnnl::stream> stream_map; |
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std::unordered_map<sycl::queue*, dnnl::engine> engine_map; |
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dnnl::stream stream_dnnl(int device, int _stream) { |
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auto q = stream(device, _stream); |
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return stream_dnnl(q); |
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} |
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dnnl::engine engine_dnnl(sycl::queue* qptr) { |
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auto it = engine_map.find(qptr); |
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if (it == engine_map.end()) { |
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auto eng = make_engine(qptr); |
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engine_map[qptr] = eng; |
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return eng; |
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} |
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else |
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{ |
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return it->second; |
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} |
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} |
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dnnl::stream stream_dnnl(sycl::queue* qptr) { |
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auto it = stream_map.find(qptr); |
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if (it == stream_map.end()) { |
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auto eng = engine_dnnl(qptr); |
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auto stream = dnnl::sycl_interop::make_stream(eng, *qptr); |
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stream_map[qptr] = stream; |
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return stream; |
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} |
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else |
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{ |
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return it->second; |
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} |
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} |
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dnnl::stream stream_dnnl() { |
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return stream_dnnl(device, 0); |
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} |
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#endif |
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std::unique_ptr<ggml_sycl_pool> pools[GGML_SYCL_MAX_DEVICES]; |
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std::unique_ptr<ggml_sycl_pool> host_pools[GGML_SYCL_MAX_DEVICES]; |
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static std::unique_ptr<ggml_sycl_pool> new_pool_for_device(queue_ptr qptr, int device); |
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static std::unique_ptr<ggml_sycl_pool> new_pool_for_host(queue_ptr qptr, int device); |
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ggml_sycl_pool & pool(int device) { |
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if (pools[device] == nullptr) { |
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pools[device] = new_pool_for_device(stream(device,0), device); |
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} |
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return *pools[device]; |
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} |
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ggml_sycl_pool & pool() { |
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return pool(device); |
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} |
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ggml_sycl_pool & host_pool(int device) { |
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if (host_pools[device] == nullptr) { |
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host_pools[device] = new_pool_for_host(stream(device, 0), device); |
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} |
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return *host_pools[device]; |
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} |
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ggml_sycl_pool & host_pool() { return host_pool(device); } |
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}; |
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static __dpct_inline__ float warp_reduce_sum(float x, |
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const sycl::nd_item<3>& item_ct1) { |
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#pragma unroll |
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for (int mask = WARP_SIZE / 2; mask > 0; mask >>= 1) { |
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x += dpct::permute_sub_group_by_xor(item_ct1.get_sub_group(), x, mask); |
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} |
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return x; |
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} |
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static __dpct_inline__ sycl::float2 |
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warp_reduce_sum(sycl::float2 a, const sycl::nd_item<3>& item_ct1) { |
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#pragma unroll |
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for (int mask = WARP_SIZE / 2; mask > 0; mask >>= 1) { |
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a.x() += dpct::permute_sub_group_by_xor(item_ct1.get_sub_group(), a.x(), |
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mask); |
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a.y() += dpct::permute_sub_group_by_xor(item_ct1.get_sub_group(), a.y(), |
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mask); |
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} |
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return a; |
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} |
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static __dpct_inline__ float warp_reduce_max(float x, |
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const sycl::nd_item<3>& item_ct1) { |
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#pragma unroll |
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for (int mask = WARP_SIZE / 2; mask > 0; mask >>= 1) { |
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x = sycl::fmax(x, dpct::permute_sub_group_by_xor( |
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item_ct1.get_sub_group(), x, mask)); |
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} |
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return x; |
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} |
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template <typename Tp, int n> |
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inline sycl::vec<Tp, n> vec_aligned_load(const Tp* aligned_ptr) { |
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return *reinterpret_cast<const sycl::vec<Tp, n>*>(aligned_ptr); |
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} |
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template <typename Tp, int dim> |
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static __dpct_inline__ Tp* get_pointer(sycl::local_accessor<Tp, dim> acc) { |
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return acc.template get_multi_ptr<sycl::access::decorated::no>().get(); |
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} |
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int64_t downsample_sycl_global_range(int64_t accumulate_block_num, int64_t block_size); |
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typedef void (*ggml_sycl_op_flatten_t)(ggml_backend_sycl_context & ctx, const ggml_tensor *src0, |
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const ggml_tensor *src1, |
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ggml_tensor *dst, const float *src0_dd, |
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const float *src1_dd, float *dst_dd, |
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const queue_ptr &main_stream); |
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template<float (*bin_op)(const float, const float), typename src0_t, typename src1_t, typename dst_t> |
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static void k_bin_bcast(const src0_t * src0, const src1_t * src1, dst_t * dst, |
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int ne0, int ne1, int ne2, int ne3, |
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int ne10, int ne11, int ne12, int ne13, |
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int s1, int s2, int s3, |
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int s11, int s12, int s13, |
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const sycl::nd_item<3> &item_ct1) { |
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const int i0s = item_ct1.get_local_range(2) * item_ct1.get_group(2) + |
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item_ct1.get_local_id(2); |
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const int i1 = (item_ct1.get_local_range(1) * item_ct1.get_group(1) + |
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item_ct1.get_local_id(1)); |
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const int i2 = (item_ct1.get_local_range(0) * item_ct1.get_group(0) + |
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item_ct1.get_local_id(0)) / |
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ne3; |
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const int i3 = (item_ct1.get_local_range(0) * item_ct1.get_group(0) + |
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item_ct1.get_local_id(0)) % |
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ne3; |
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if (i0s >= ne0 || i1 >= ne1 || i2 >= ne2 || i3 >= ne3) { |
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return; |
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} |
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const int i11 = i1 % ne11; |
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const int i12 = i2 % ne12; |
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const int i13 = i3 % ne13; |
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const size_t i_src0 = i3*s3 + i2*s2 + i1*s1; |
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const size_t i_src1 = i13*s13 + i12*s12 + i11*s11; |
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const size_t i_dst = i_src0; |
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const src0_t * src0_row = src0 + i_src0; |
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const src1_t * src1_row = src1 + i_src1; |
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dst_t * dst_row = dst + i_dst; |
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for (int i0 = i0s; i0 < ne0; |
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i0 += item_ct1.get_local_range(2) * item_ct1.get_group_range(2)) { |
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const int i10 = i0 % ne10; |
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dst_row[i0] = (dst_t)bin_op(src0 ? (float)src0_row[i0] : 0.0f, (float)src1_row[i10]); |
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} |
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} |
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template<float (*bin_op)(const float, const float), typename src0_t, typename src1_t, typename dst_t> |
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static void k_bin_bcast_unravel(const src0_t * src0, const src1_t * src1, dst_t * dst, |
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int ne0, int ne1, int ne2, int ne3, |
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int ne10, int ne11, int ne12, int ne13, |
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int s1, int s2, int s3, |
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int s11, int s12, int s13, |
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const sycl::nd_item<3> &item_ct1) { |
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const int i = item_ct1.get_local_range(2) * item_ct1.get_group(2) + |
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item_ct1.get_local_id(2); |
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const int i3 = i/(ne2*ne1*ne0); |
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const int i2 = (i/(ne1*ne0)) % ne2; |
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const int i1 = (i/ne0) % ne1; |
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const int i0 = i % ne0; |
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if (i0 >= ne0 || i1 >= ne1 || i2 >= ne2 || i3 >= ne3) { |
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return; |
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} |
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const int i11 = i1 % ne11; |
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const int i12 = i2 % ne12; |
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const int i13 = i3 % ne13; |
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const size_t i_src0 = i3*s3 + i2*s2 + i1*s1; |
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const size_t i_src1 = i13*s13 + i12*s12 + i11*s11; |
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const size_t i_dst = i_src0; |
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const src0_t * src0_row = src0 + i_src0; |
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const src1_t * src1_row = src1 + i_src1; |
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dst_t * dst_row = dst + i_dst; |
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const int i10 = i0 % ne10; |
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dst_row[i0] = (dst_t)bin_op(src0 ? (float)src0_row[i0] : 0.0f, (float)src1_row[i10]); |
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} |
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template<float (*bin_op)(const float, const float)> |
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struct bin_bcast_sycl { |
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template <typename src0_t, typename src1_t, typename dst_t> |
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void operator()(ggml_backend_sycl_context & ctx, |
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const struct ggml_tensor *src0, |
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const struct ggml_tensor *src1, struct ggml_tensor *dst, |
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const src0_t *src0_dd, const src1_t *src1_dd, dst_t *dst_dd, |
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queue_ptr stream) { |
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|
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GGML_TENSOR_BINARY_OP_LOCALS |
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|
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int nr0 = ne10/ne0; |
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int nr1 = ne11/ne1; |
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int nr2 = ne12/ne2; |
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int nr3 = ne13/ne3; |
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int nr[4] = { nr0, nr1, nr2, nr3 }; |
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int64_t cne0[] = {ne0, ne1, ne2, ne3}; |
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int64_t cne1[] = {ne10, ne11, ne12, ne13}; |
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size_t cnb0[] = {nb0, nb1, nb2, nb3}; |
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size_t cnb1[] = {nb10, nb11, nb12, nb13}; |
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auto collapse = [](int64_t cne[]) { |
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cne[0] *= cne[1]; |
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cne[1] = cne[2]; |
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cne[2] = cne[3]; |
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cne[3] = 1; |
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}; |
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|
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auto collapse_nb = [](size_t cnb[], int64_t cne[]) { |
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cnb[1] *= cne[1]; |
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cnb[2] *= cne[2]; |
|
cnb[3] *= cne[3]; |
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}; |
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|
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for (int i = 0; i < 4; i++) { |
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if (nr[i] != 1) { |
|
break; |
|
} |
|
if (i > 0) { |
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collapse_nb(cnb0, cne0); |
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collapse_nb(cnb1, cne1); |
|
collapse(cne0); |
|
collapse(cne1); |
|
} |
|
} |
|
{ |
|
int64_t ne0 = cne0[0]; |
|
int64_t ne1 = cne0[1]; |
|
int64_t ne2 = cne0[2]; |
|
int64_t ne3 = cne0[3]; |
|
|
|
int64_t ne10 = cne1[0]; |
|
int64_t ne11 = cne1[1]; |
|
int64_t ne12 = cne1[2]; |
|
int64_t ne13 = cne1[3]; |
|
|
|
size_t nb0 = cnb0[0]; |
|
size_t nb1 = cnb0[1]; |
|
size_t nb2 = cnb0[2]; |
|
size_t nb3 = cnb0[3]; |
|
|
|
size_t nb10 = cnb1[0]; |
|
size_t nb11 = cnb1[1]; |
|
size_t nb12 = cnb1[2]; |
|
size_t nb13 = cnb1[3]; |
|
|
|
size_t s0 = nb0 / sizeof(dst_t); |
|
size_t s1 = nb1 / sizeof(dst_t); |
|
size_t s2 = nb2 / sizeof(dst_t); |
|
size_t s3 = nb3 / sizeof(dst_t); |
|
|
|
size_t s10 = nb10 / sizeof(src1_t); |
|
size_t s11 = nb11 / sizeof(src1_t); |
|
size_t s12 = nb12 / sizeof(src1_t); |
|
size_t s13 = nb13 / sizeof(src1_t); |
|
|
|
GGML_ASSERT(s0 == 1); |
|
GGML_ASSERT(s10 == 1); |
|
|
|
const int block_size = 128; |
|
|
|
int64_t hne0 = std::max(ne0/2LL, 1LL); |
|
|
|
sycl::range<3> block_dims(1, 1, 1); |
|
block_dims[2] = std::min<unsigned int>(hne0, block_size); |
|
block_dims[1] = std::min<unsigned int>( |
|
ne1, block_size / (unsigned int)block_dims[2]); |
|
block_dims[0] = std::min( |
|
std::min<unsigned int>( |
|
ne2 * ne3, block_size / (unsigned int)block_dims[2] / |
|
(unsigned int)block_dims[1]), |
|
64U); |
|
|
|
sycl::range<3> block_nums( |
|
(ne2 * ne3 + block_dims[0] - 1) / block_dims[0], |
|
(ne1 + block_dims[1] - 1) / block_dims[1], |
|
(hne0 + block_dims[2] - 1) / block_dims[2]); |
|
|
|
if (block_nums[0] > 65535) { |
|
|
|
int block_num = (ne0*ne1*ne2*ne3 + block_size - 1) / block_size; |
|
{ |
|
dpct::has_capability_or_fail(stream->get_device(), |
|
{sycl::aspect::fp16}); |
|
|
|
stream->parallel_for( |
|
sycl::nd_range<3>(sycl::range<3>(1, 1, block_num) * |
|
sycl::range<3>(1, 1, block_size), |
|
sycl::range<3>(1, 1, block_size)), |
|
[=](sycl::nd_item<3> item_ct1) { |
|
k_bin_bcast_unravel<bin_op>( |
|
src0_dd, src1_dd, dst_dd, ne0, ne1, ne2, ne3, |
|
ne10, ne11, ne12, ne13, s1, s2, s3, s11, s12, |
|
s13, item_ct1); |
|
}); |
|
} |
|
} else { |
|
|
|
|
|
|
|
|
|
|
|
|
|
dpct::has_capability_or_fail(stream->get_device(), |
|
{sycl::aspect::fp16}); |
|
|
|
stream->parallel_for( |
|
sycl::nd_range<3>(block_nums * block_dims, block_dims), |
|
[=](sycl::nd_item<3> item_ct1) { |
|
k_bin_bcast<bin_op>(src0_dd, src1_dd, dst_dd, ne0, ne1, |
|
ne2, ne3, ne10, ne11, ne12, ne13, |
|
s1, s2, s3, s11, s12, s13, |
|
item_ct1); |
|
}); |
|
} |
|
} |
|
GGML_UNUSED(ctx); |
|
} |
|
}; |
|
|
|
template <class op> |
|
inline void ggml_sycl_op_bin_bcast(ggml_backend_sycl_context & ctx, const ggml_tensor *src0, |
|
const ggml_tensor *src1, ggml_tensor *dst, |
|
const float *src0_dd, const float *src1_dd, |
|
float *dst_dd, |
|
const queue_ptr &main_stream) { |
|
|
|
if (src0->type == GGML_TYPE_F32 && dst->type == GGML_TYPE_F32) { |
|
op()(ctx, src0, src1, dst, src0_dd, src1_dd, dst_dd, main_stream); |
|
} else if (src0->type == GGML_TYPE_F16 && dst->type == GGML_TYPE_F16) { |
|
op()(ctx, src0, src1, dst, (const sycl::half *)src0_dd, src1_dd, |
|
(sycl::half *)dst_dd, main_stream); |
|
} else if (src0->type == GGML_TYPE_F16 && dst->type == GGML_TYPE_F32) { |
|
op()(ctx, src0, src1, dst, (const sycl::half *)src0_dd, src1_dd, dst_dd, |
|
main_stream); |
|
} else if (src0->type == GGML_TYPE_I32 && dst->type == GGML_TYPE_I32) { |
|
op()(ctx, src0, src1, dst, (const int32_t *)src0_dd, (const int32_t *)src1_dd, (int32_t *)dst_dd, |
|
main_stream); |
|
} else if (src0->type == GGML_TYPE_I16 && dst->type == GGML_TYPE_I16) { |
|
op()(ctx, src0, src1, dst, (const int16_t *)src0_dd, (const int16_t *)src1_dd, (int16_t *)dst_dd, |
|
main_stream); |
|
} else { |
|
fprintf(stderr, "%s: unsupported types: dst: %s, src0: %s, src1: %s\n", __func__, |
|
ggml_type_name(dst->type), ggml_type_name(src0->type), ggml_type_name(src1->type)); |
|
GGML_ABORT("fatal error"); |
|
} |
|
} |
|
|
|
bool gpu_has_xmx(sycl::device &dev); |
|
|
|
void ggml_sycl_op_flatten(ggml_backend_sycl_context & ctx, const ggml_tensor *src0, |
|
const ggml_tensor *src1, ggml_tensor *dst, |
|
const ggml_sycl_op_flatten_t op); |
|
|
|
#endif |
|
|