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ggml-cann.cpp
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/*
* Copyright (c) 2023-2024 The ggml authors
*
* Permission is hereby granted, free of charge, to any person obtaining a copy
* of this software and associated documentation files (the "Software"), to
* deal in the Software without restriction, including without limitation the
* rights to use, copy, modify, merge, publish, distribute, sublicense, and/or
* sell copies of the Software, and to permit persons to whom the Software is
* furnished to do so, subject to the following conditions:
*
* The above copyright notice and this permission notice shall be included in
* all copies or substantial portions of the Software.
*
* THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
* IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
* FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
* AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
* LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING
* FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS
* IN THE SOFTWARE.
*/
#include "ggml-cann.h"
#include <acl/acl.h>
#include <stdarg.h>
#include <cmath>
#include <cstdio>
#include <cstring>
#include <mutex>
#include "ggml-impl.h"
#include "ggml-backend-impl.h"
#include "ggml-cann/aclnn_ops.h"
#include "ggml-cann/common.h"
#define GGML_COMMON_DECL_C
#include "ggml-common.h"
#define GGML_CANN_NAME "CANN"
/**
* @brief Handles CANN errors by printing an error message and aborting.
*
* @param stmt The statement that caused the error.
* @param func The function in which the error occurred.
* @param file The file in which the error occurred.
* @param line The line number where the error occurred.
* @param msg The error message.
*/
[[noreturn]] void ggml_cann_error(const char* stmt, const char* func,
const char* file, int line, const char* msg) {
int32_t id = -1;
aclrtGetDevice(&id);
GGML_LOG_ERROR("CANN error: %s\n", msg);
GGML_LOG_ERROR(" current device: %d, in function %s at %s:%d\n", id, func,
file, line);
GGML_LOG_ERROR(" %s\n", stmt);
// abort with GGML_ASSERT to get a stack trace
GGML_ABORT("CANN error");
}
/**
* @brief Sets the device to be used by CANN.
*
* @param device The device ID to set.
*/
void ggml_cann_set_device(const int32_t device) {
// TODO: uncomment these lines after empty context has fixed.
// int current_device;
// ACL_CHECK(aclrtGetDevice(¤t_device));
// if (device == current_device) {
// return;
// }
ACL_CHECK(aclrtSetDevice(device));
}
/**
* @brief Retrieves the current device ID.
*
* @return The current device ID.
*/
int32_t ggml_cann_get_device() {
int32_t id;
ACL_CHECK(aclrtGetDevice(&id));
return id;
}
/**
* @brief Initialize the CANN device information.
*
* This function initializes the CANN device information by obtaining the
* device count and setting the memory allocation granularity for each device.
*
* @return A structure containing the device information.
*/
static ggml_cann_device_info ggml_cann_init() {
ggml_cann_device_info info = {};
aclError err = aclrtGetDeviceCount((uint32_t*)&info.device_count);
if (err != ACL_SUCCESS) {
GGML_LOG_ERROR("%s: failed to initialize CANN: %s\n",
__func__, aclGetRecentErrMsg());
return info;
}
GGML_ASSERT(info.device_count <= GGML_CANN_MAX_DEVICES);
for (int id = 0; id < info.device_count; ++id) {
aclrtPhysicalMemProp prop = {};
prop.handleType = ACL_MEM_HANDLE_TYPE_NONE;
prop.allocationType = ACL_MEM_ALLOCATION_TYPE_PINNED;
prop.memAttr = ACL_HBM_MEM_HUGE;
prop.location.type = ACL_MEM_LOCATION_TYPE_DEVICE;
prop.location.id = id;
prop.reserve = 0;
ACL_CHECK(aclrtMemGetAllocationGranularity(
&prop, ACL_RT_MEM_ALLOC_GRANULARITY_RECOMMENDED,
&info.devices[id].vmm_granularity));
size_t free, total;
ggml_backend_cann_get_device_memory(id, &free, &total);
info.devices[id].total_vram = free;
}
// TODO: add more device info later.
return info;
}
/**
* @brief Retrieve the CANN device information.
*
* This function returns a reference to a structure containing the CANN device
* information. The device information is initialized once and reused on
* subsequent calls.
*
* @return A reference to the structure containing the device information.
*/
const ggml_cann_device_info& ggml_cann_info() {
static ggml_cann_device_info info = ggml_cann_init();
return info;
}
//#define DEBUG_CANN_MALLOC
/**
* @brief A pool of CANN buffers(legacy).
*
* This class manages a pool of CANN buffers for a specific device.
*/
struct ggml_cann_pool_leg : public ggml_cann_pool {
/**
* @brief The maximum number of buffers in the pool.
*/
static const int MAX_BUFFERS = 256;
/**
* @brief The device ID associated with this buffer pool.
*/
int device;
/**
* @brief Structure representing a CANN buffer.
*/
struct ggml_cann_buffer {
void* ptr = nullptr; ///< Pointer to the buffer memory.
size_t size = 0; ///< Size of the buffer.
};
/**
* @brief Array of CANN buffers in the pool.
*/
ggml_cann_buffer buffer_pool[MAX_BUFFERS] = {};
/**
* @brief Total size of all buffers in the pool.
*/
size_t pool_size = 0;
/**
* @brief Constructor to initialize the buffer pool for a specific device.
*
* @param device The device ID to associate with this buffer pool.
*/
explicit ggml_cann_pool_leg(int device) : device(device) {}
/**
* @brief Destructor to free all buffers in the pool.
*/
~ggml_cann_pool_leg() {
ggml_cann_set_device(device);
for (int i = 0; i < MAX_BUFFERS; ++i) {
ggml_cann_buffer& b = buffer_pool[i];
if (b.ptr != nullptr) {
ACL_CHECK(aclrtFree(b.ptr));
pool_size -= b.size;
}
}
GGML_ASSERT(pool_size == 0);
}
/**
* @brief Allocate a buffer of the given size.
*
* @param size The size of the buffer to allocate.
* @param actual_size A pointer to a variable to receive the actual size of
* the allocated buffer.
* @return A pointer to the allocated buffer.
*/
void* alloc(size_t size, size_t* actual_size) override {
const size_t alignment = 128;
size = GGML_PAD(size, alignment);
if (size == 0) {
size = alignment;
}
#ifdef DEBUG_CANN_MALLOC
int nnz = 0;
size_t max_size = 0;
#endif
size_t best_diff = 1ull << 36;
int ibest = -1;
for (int i = 0; i < MAX_BUFFERS; ++i) {
ggml_cann_buffer& b = buffer_pool[i];
if (b.ptr != nullptr) {
#ifdef DEBUG_CANN_MALLOC
++nnz;
if (b.size > max_size) max_size = b.size;
#endif
if (b.size >= size) {
size_t diff = b.size - size;
if (diff < best_diff) {
best_diff = diff;
ibest = i;
if (!best_diff) {
void* ptr = b.ptr;
*actual_size = b.size;
b.ptr = nullptr;
b.size = 0;
return ptr;
}
}
}
}
}
if (ibest >= 0) {
ggml_cann_buffer& b = buffer_pool[ibest];
void* ptr = b.ptr;
*actual_size = b.size;
b.ptr = nullptr;
b.size = 0;
return ptr;
}
void* ptr;
ggml_cann_set_device(device);
ACL_CHECK(
aclrtMalloc(&ptr, size, ACL_MEM_MALLOC_HUGE_FIRST));
*actual_size = size;
pool_size += size;
#ifdef DEBUG_CANN_MALLOC
GGML_LOG_INFO(
"%s[%d]: %d buffers, max_size = %u MB, pool_size = %u MB, "
"requested %u MB\n",
__func__, device, nnz, (uint32_t)(max_size / 1024 / 1024),
(uint32_t)(pool_size / 1024 / 1024),
(uint32_t)(size / 1024 / 1024));
#endif
return ptr;
}
/**
* @brief Free a buffer and return it to the pool.
*
* @param ptr Pointer to the buffer to free.
* @param size Size of the buffer to free.
*/
void free(void* ptr, size_t size) override {
for (int i = 0; i < MAX_BUFFERS; ++i) {
ggml_cann_buffer& b = buffer_pool[i];
if (b.ptr == nullptr) {
b.ptr = ptr;
b.size = size;
return;
}
}
// memory should always buffered. these memory may still needed by
// tasks in stream.
// TODO, fix me.
GGML_ABORT("Cann buffer pool full, increase MAX_CANN_BUFFERS\n");
}
};
/**
* @brief A pool of CANN buffers with virtual memory.
*
* This class manages a pool of CANN buffers with virtual memory for a specific
* device.
*/
struct ggml_cann_pool_vmm : public ggml_cann_pool {
/**
* @brief The maximum size of the virtual memory pool (32 GB).
*/
size_t max_size;
/**
* @brief The device ID associated with this buffer pool.
*/
int device;
/**
* @brief Pointer to the start of the virtual memory pool.
*/
void* pool_addr = 0;
/**
* @brief Amount of virtual memory used in the pool.
*/
size_t pool_used = 0;
/**
* @brief Total size of the virtual memory pool.
*/
size_t pool_size = 0;
/**
* @brief Allocation granularity for the virtual memory pool.
*/
size_t granularity;
/**
* @brief Handles for the physical memory allocated.
*/
std::vector<aclrtDrvMemHandle> handles;
/**
* @brief Offsets for the mapped memory regions.
*/
std::vector<void*> map_offsets;
/**
* @brief Constructor to initialize the buffer pool with virtual memory for
* a specific device.
*
* @param device The device ID to associate with this buffer pool.
*/
explicit ggml_cann_pool_vmm(int device)
: device(device),
granularity(ggml_cann_info().devices[device].vmm_granularity) {
auto dev = ggml_cann_info().devices[device];
granularity = dev.vmm_granularity;
max_size = dev.total_vram;
}
/**
* @brief Destructor to free all buffers in the virtual memory pool.
*/
~ggml_cann_pool_vmm() {
if (pool_addr != 0) {
for (auto& offset : map_offsets) {
ACL_CHECK(aclrtUnmapMem(offset));
}
for (auto& handle : handles) {
ACL_CHECK(aclrtFreePhysical(handle));
}
ACL_CHECK(aclrtReleaseMemAddress(pool_addr));
}
}
/**
* @brief Allocate a buffer of the given size in the virtual memory pool.
*
* @param size The size of the buffer to allocate.
* @param actual_size A pointer to a variable to receive the actual size of
* the allocated buffer.
* @return A pointer to the allocated buffer.
*/
void* alloc(size_t size, size_t* actual_size) override {
// round up the allocation size to the alignment to ensure that all
// allocations are aligned for all data types
const size_t alignment = 128;
size = GGML_PAD(size, alignment);
if (size == 0) {
size = alignment;
}
size_t avail = pool_size - pool_used;
if (size > avail) {
// round up to the next multiple of the granularity
size_t reserve_size = size - avail;
reserve_size = GGML_PAD(reserve_size, granularity);
GGML_ASSERT(pool_size + reserve_size <= max_size);
// allocate more physical memory
aclrtPhysicalMemProp prop = {};
prop.handleType = ACL_MEM_HANDLE_TYPE_NONE;
prop.allocationType = ACL_MEM_ALLOCATION_TYPE_PINNED;
prop.memAttr = ACL_HBM_MEM_HUGE;
prop.location.type = ACL_MEM_LOCATION_TYPE_DEVICE;
prop.location.id = device;
prop.reserve = 0;
aclrtDrvMemHandle handle;
ACL_CHECK(aclrtMallocPhysical(&handle, reserve_size, &prop, 0));
// reserve virtual address space (if not already reserved)
if (pool_addr == 0) {
ACL_CHECK(aclrtReserveMemAddress(
&pool_addr, max_size, 0, NULL, 1));
}
// map at the end of the pool
ACL_CHECK(aclrtMapMem((char*)pool_addr + pool_size, reserve_size, 0,
handle, 0));
handles.push_back(handle);
map_offsets.push_back((char*)pool_addr + pool_size);
// add to the pool
pool_size += reserve_size;
#ifdef DEBUG_CANN_MALLOC
GGML_LOG_INFO("cann pool[%d]: size increased to %llu MB (reserved %llu MB)\n",
device, (unsigned long long) (pool_size/1024/1024),
(unsigned long long) (reserve_size/1024/1024));
#endif
}
GGML_ASSERT(pool_addr != 0);
void* ptr = (void*)((char*)pool_addr + pool_used);
*actual_size = size;
pool_used += size;
#ifdef DEBUG_CANN_MALLOC
GGML_LOG_INFO("cann pool[%d]: allocated %llu bytes at %llx\n", device,
(unsigned long long)size, (unsigned long long)ptr);
#endif
return ptr;
}
/**
* @brief Free a buffer and return it to the virtual memory pool.
*
* @param ptr Pointer to the buffer to free.
* @param size Size of the buffer to free.
*/
void free(void* ptr, size_t size) override {
#ifdef DEBUG_CANN_MALLOC
GGML_LOG_INFO("cann pool[%d]: freed %llu bytes at %llx\n", device,
(unsigned long long)size, (unsigned long long)ptr);
#endif
pool_used -= size;
// all deallocations must be in reverse order of the allocations
GGML_ASSERT(ptr == (void*)((char*)pool_addr + pool_used));
}
};
/**
* @brief Create a new CANN pool for a specific device.
*
* Factory method to create a new CANN pool object based on the device type.
*
* @param device The device ID for which to create the pool.
* @return A unique pointer to the created CANN pool.
*/
std::unique_ptr<ggml_cann_pool> ggml_backend_cann_context::new_pool_for_device(
int device) {
return std::unique_ptr<ggml_cann_pool>(new ggml_cann_pool_vmm(device));
}
// cann buffer
/**
* @brief Context for managing a CANN buffer associated with a specific device.
*
* This structure holds information about a CANN buffer, including the device
* ID, device pointer, and a name derived from GGML_CANN_NAME and the device ID.
*/
struct ggml_backend_cann_buffer_context {
int32_t device; ///< The device ID associated with this buffer context.
void* dev_ptr =
nullptr; ///< Pointer to the device memory allocated for the buffer.
/**
* @brief Constructor to initialize the CANN buffer context.
*
* @param device The device ID associated with this buffer context.
* @param dev_ptr Pointer to the device memory allocated for the buffer.
*/
ggml_backend_cann_buffer_context(int32_t device, void* dev_ptr)
: device(device),
dev_ptr(dev_ptr) {}
/**
* @brief Destructor to free the device memory allocated for the buffer.
*/
~ggml_backend_cann_buffer_context() { ACL_CHECK(aclrtFree(dev_ptr)); }
};
/**
* @brief Check if a buffer is a CANN buffer.
*
* This function checks if a given buffer is a CANN buffer by comparing its
* `get_name` function pointer to `ggml_backend_cann_buffer_get_name`.
*
* @param buffer The buffer to check.
* @return true if the buffer is a CANN buffer, false otherwise.
*/
static bool ggml_backend_buft_is_cann(ggml_backend_buffer_type_t buft);
static bool ggml_backend_buffer_is_cann(
ggml_backend_buffer_t buffer) {
return ggml_backend_buft_is_cann(buffer->buft);
}
/**
* @brief Free resources associated with a CANN buffer.
*
* This function frees the resources associated with a CANN buffer, including
* its context.
*
* @param buffer The CANN buffer to free.
*/
static void ggml_backend_cann_buffer_free_buffer(
ggml_backend_buffer_t buffer) {
ggml_backend_cann_buffer_context* ctx =
(ggml_backend_cann_buffer_context*)buffer->context;
delete ctx;
}
/**
* @brief Retrieve the base pointer of a CANN buffer.
*
* This function returns the base pointer of a CANN buffer, which points to the
* device memory allocated for the buffer.
*
* @param buffer The CANN buffer whose base pointer is to be retrieved.
* @return A pointer to the base of the device memory allocated for the buffer.
*/
static void* ggml_backend_cann_buffer_get_base(
ggml_backend_buffer_t buffer) {
ggml_backend_cann_buffer_context* ctx =
(ggml_backend_cann_buffer_context*)buffer->context;
return ctx->dev_ptr;
}
/**
* @brief Transform quantized Q4.0 tensor data into a format suitable for CANN
* processing.
*
* This function transforms quantized Q4.0 tensor data into a format suitable
* for CANN processing. It extracts quantization values and scales from the
* source data and prepares them in a format expected by CANN operations.
*
* @param tensor Pointer to the tensor information.
* @param src Pointer to the source data in Q4.0 format.
* @param dst Pointer to the destination buffer where transformed data will be
* stored.
*/
static void ggml_backend_cann_transform_q4_0(ggml_tensor* tensor,
const void* src,
void* dst) {
int64_t n_elems = ggml_nelements(tensor);
int64_t groups = n_elems / QK4_0;
size_t quant_bytes = n_elems * sizeof(uint8_t) / 2;
uint8_t* quant_offset = (uint8_t*)dst;
uint16_t* scale_offset = (uint16_t*)((char*)dst + quant_bytes);
for (int i = 0; i < groups; i++) {
const block_q4_0* group =
(const block_q4_0*)((const char*)src + i * sizeof(block_q4_0));
*scale_offset = group->d;
scale_offset++;
// 0-15
for (int j = 0; j < QK4_0 / 2; j += 2) {
(*quant_offset) = (group->qs[j] & 0x0F);
(*quant_offset) |= ((group->qs[j + 1] << 4));
quant_offset++;
}
// 16-31
for (int j = 0; j < QK4_0 / 2; j += 2) {
(*quant_offset) = (group->qs[j] >> 4);
(*quant_offset) |= (group->qs[j + 1] & 0xF0);
quant_offset++;
}
}
// put (uint4b_t -8) into int4b_t
for (quant_offset = (uint8_t*)dst;
quant_offset < (uint8_t*)dst + quant_bytes; quant_offset++) {
(*quant_offset) ^= 0x88;
}
}
/**
* @brief Transform CANN processed data back into quantized Q4.0 format.
*
* This function transforms CANN processed data back into quantized Q4.0 format.
* It reverses the transformation performed by
* ggml_backend_cann_transform_q4_0(), converting the data back into its
* original quantized form.
*
* @param tensor Pointer to the tensor information.
* @param src Pointer to the source buffer containing transformed data.
* @param dst Pointer to the destination buffer where the Q4.0 formatted data
* will be stored.
*/
static void ggml_backend_cann_transform_back_q4_0(
const ggml_tensor* tensor, void* src, void* dst) {
int64_t n_elems = ggml_nelements(tensor);
int64_t groups = n_elems / QK4_0;
size_t quant_bytes = n_elems * sizeof(uint8_t) / 2;
uint8_t* quant_offset = (uint8_t*)src;
uint16_t* scale_offset = (uint16_t*)((char*)src + quant_bytes);
for (; quant_offset < (uint8_t*)src + quant_bytes; quant_offset++) {
(*quant_offset) ^= 0x88;
}
quant_offset = (uint8_t*)src;
for (int i = 0; i < groups; i++) {
block_q4_0* group = (block_q4_0*)((char*)dst + i * sizeof(block_q4_0));
group->d = *scale_offset;
scale_offset++;
// 0-15
for (int j = 0; j < QK4_0 / 2; j += 2) {
group->qs[j] = ((*quant_offset) & 0x0F);
group->qs[j + 1] = ((*quant_offset) >> 4);
quant_offset++;
}
// 16-31
for (int j = 0; j < QK4_0 / 2; j += 2) {
group->qs[j] |= ((*quant_offset) << 4);
group->qs[j + 1] |= ((*quant_offset) & 0xF0);
quant_offset++;
}
}
}
/**
* @brief Transform quantized Q8.0 tensor data into a format suitable for CANN
* processing.
*
* This function transforms quantized Q8.0 tensor data into a format suitable
* for CANN processing. It extracts quantization values and scales from the
* source data and prepares them in a format expected by CANN operations.
*
* @param tensor Pointer to the tensor information.
* @param src Pointer to the source data in Q8.0 format.
* @param dst Pointer to the destination buffer where transformed data will be
* stored.
*/
static void ggml_backend_cann_transform_q8_0(ggml_tensor* tensor,
const void* src,
void* dst) {
int64_t n_elems = ggml_nelements(tensor);
int64_t groups = n_elems / QK8_0;
size_t quant_bytes = n_elems * sizeof(uint8_t);
uint8_t* quant_offset = (uint8_t*)dst;
uint16_t* scale_offset = (uint16_t*)((char*)dst + quant_bytes);
for (int i = 0; i < groups; i++) {
const block_q8_0* group =
(const block_q8_0*)((const char*)src + i * sizeof(block_q8_0));
*scale_offset = group->d;
scale_offset++;
size_t group_quant_size = QK8_0 * sizeof(uint8_t);
memcpy(quant_offset, group->qs, group_quant_size);
quant_offset += group_quant_size;
}
}
/**
* @brief Transform CANN processed data back into quantized Q8.0 format.
*
* This function transforms CANN processed data back into quantized Q8.0 format.
* It reverses the transformation performed by
* ggml_backend_cann_transform_q8_0(), converting the data back into its
* original quantized form.
*
* @param tensor Pointer to the tensor information.
* @param src Pointer to the source buffer containing transformed data.
* @param dst Pointer to the destination buffer where the Q8.0 formatted data
* will be stored.
*/
static void ggml_backend_cann_transform_back_q8_0(
const ggml_tensor* tensor, const void* src, void* dst) {
int64_t n_elems = ggml_nelements(tensor);
int64_t groups = n_elems / QK8_0;
size_t quant_bytes = n_elems * sizeof(uint8_t);
const uint8_t* quant_offset = (const uint8_t*)src;
const uint16_t* scale_offset =
(const uint16_t*)((const char*)src + quant_bytes);
for (int i = 0; i < groups; i++) {
block_q8_0* group = (block_q8_0*)((char*)dst + i * sizeof(block_q8_0));
group->d = *scale_offset;
scale_offset++;
size_t group_quant_size = QK8_0 * sizeof(uint8_t);
memcpy(group->qs, quant_offset, group_quant_size);
quant_offset += group_quant_size;
}
}
/**
* @brief Transform tensor data based on its type for CANN processing.
*
* This function transforms tensor data based on its quantization type for CANN
* processing. It dispatches the transformation based on the tensor's type to
* specialized functions handling Q4.0 and Q8.0 formats.
*
* @param tensor Pointer to the tensor information.
* @param src Pointer to the source data to be transformed.
* @param dst Pointer to the destination buffer where transformed data will be
* stored.
*/
static void ggml_backend_cann_transform(ggml_tensor* tensor,
const void* src, void* dst) {
switch (tensor->type) {
case GGML_TYPE_Q4_0:
ggml_backend_cann_transform_q4_0(tensor, src, dst);
break;
case GGML_TYPE_Q8_0:
ggml_backend_cann_transform_q8_0(tensor, src, dst);
break;
default:
break;
}
}
/**
* @brief Transform CANN processed data back into tensor data based on its type.
*
* This function transforms CANN processed data back into tensor data based on
* its quantization type for Q4.0 and Q8.0 formats. It dispatches the
* transformation based on the tensor's type to specialized functions.
*
* @param tensor Pointer to the tensor information.
* @param src Pointer to the source data containing CANN processed data.
* @param dst Pointer to the destination buffer where transformed tensor data
* will be stored.
*/
static void ggml_backend_cann_transform_back(
const ggml_tensor* tensor, void* src, void* dst) {
switch (tensor->type) {
case GGML_TYPE_Q4_0:
ggml_backend_cann_transform_back_q4_0(tensor, src, dst);
break;
case GGML_TYPE_Q8_0:
ggml_backend_cann_transform_back_q8_0(tensor, src, dst);
break;
default:
break;
}
}
/**
* @brief Check if transformation is needed for a given tensor type.
*
* This function checks if transformation is needed for a given tensor type
* to prepare data for CANN processing.
*
* @param type The tensor type to check.
* @return true if transformation is needed, false otherwise.
*/
static bool need_transform(ggml_type type) {
switch (type) {
case GGML_TYPE_Q4_0:
case GGML_TYPE_Q8_0:
return true;
default:
return false;
}
}
/**
* @brief Initialize a tensor using data from a CANN buffer.
*
* This function initializes a tensor using data from a CANN buffer.
* It handles special cases such as views and quantization.
*
* @param buffer The CANN buffer from which to initialize the tensor.
* @param tensor Pointer to the tensor to be initialized.
*/
static enum ggml_status ggml_backend_cann_buffer_init_tensor(
ggml_backend_buffer_t buffer, ggml_tensor* tensor) {
if (tensor->view_src != NULL && tensor->view_offs == 0) {
GGML_ASSERT(tensor->view_src->buffer->buft == buffer->buft);
return GGML_STATUS_SUCCESS;
}
// TODO: cann backend doesn't support quantized yet. Just leave the code
// here.
if (ggml_is_quantized(tensor->type)) {
// Initialize padding to 0 to avoid possible NaN values
size_t original_size = ggml_nbytes(tensor);
size_t padded_size =
ggml_backend_buft_get_alloc_size(buffer->buft, tensor);
if (padded_size > original_size && tensor->view_src == nullptr) {
size_t memset_size = padded_size - original_size;
ACL_CHECK(aclrtMemset((char*)tensor->data + original_size,
memset_size, 0, memset_size));
}
}
return GGML_STATUS_SUCCESS;
}
// TODO: need handle tensor which has paddings.
/**
* @brief Set tensor data in a CANN buffer.
*
* This function sets tensor data in a CANN buffer, handling transformations
* if needed based on the tensor's type.
*
* @param buffer The CANN buffer where the tensor data will be set.
* @param tensor Pointer to the tensor whose data will be set.
* @param data Pointer to the source data to be copied into the tensor.
* @param offset Offset in the source data from where to start copying.
* @param size Size of the data to be copied, in bytes.
*/
static void ggml_backend_cann_buffer_set_tensor(
ggml_backend_buffer_t buffer, ggml_tensor *tensor, const void *data,
size_t offset, size_t size) {
ggml_backend_cann_buffer_context *ctx =
(ggml_backend_cann_buffer_context *)buffer->context;
ggml_cann_set_device(ctx->device);
// TODO: refer to cann(#6017), it use thread's default stream.
// For acl, synchronous functions use this default stream.
// Why aclrtSynchronizeDevice?
if (!need_transform(tensor->type)) {
ACL_CHECK(aclrtMemcpy((char *)tensor->data + offset, size, data, size,
ACL_MEMCPY_HOST_TO_DEVICE));
} else {
void *transform_buffer = malloc(size);
ggml_backend_cann_transform(tensor, data, transform_buffer);
ACL_CHECK(aclrtMemcpy((char *)tensor->data + offset, size,
transform_buffer, size,
ACL_MEMCPY_HOST_TO_DEVICE));
free(transform_buffer);
}
}
/**
* @brief Get tensor data from a CANN buffer.
*
* This function retrieves tensor data from a CANN buffer, handling
* transformations if needed based on the tensor's type.
*
* @param buffer The CANN buffer from which to retrieve tensor data.
* @param tensor Pointer to the tensor whose data will be retrieved.
* @param data Pointer to the destination buffer where the tensor data will be
* copied.
* @param offset Offset in the destination buffer where to start copying.
* @param size Size of the data to be copied, in bytes.
*/
static void ggml_backend_cann_buffer_get_tensor(
ggml_backend_buffer_t buffer, const ggml_tensor* tensor, void* data,
size_t offset, size_t size) {
ggml_backend_cann_buffer_context* ctx =
(ggml_backend_cann_buffer_context*)buffer->context;
ggml_cann_set_device(ctx->device);
if (!need_transform(tensor->type)) {
ACL_CHECK(aclrtMemcpy(data, size, (char*)tensor->data + offset, size,
ACL_MEMCPY_DEVICE_TO_HOST));
} else {
void* transform_buffer = malloc(size);
ACL_CHECK(aclrtMemcpy(transform_buffer, size,
(char*)tensor->data + offset, size,
ACL_MEMCPY_DEVICE_TO_HOST));
ggml_backend_cann_transform_back(tensor, transform_buffer, data);
free(transform_buffer);
}
}
/**
* @brief Copy tensor data between CANN buffers if possible.
*
* This function copies tensor data between CANN buffers if the source and
* destination buffers are CANN buffers and they meet the necessary conditions
* (same device or devices can access each other).
*
* @param buffer The destination CANN buffer where the tensor data will be
* copied.
* @param src Pointer to the source tensor whose data will be copied.
* @param dst Pointer to the destination tensor where the data will be copied.
* @return true if the copy operation succeeded, false otherwise.
*/
static bool ggml_backend_cann_buffer_cpy_tensor(
ggml_backend_buffer_t buffer, const ggml_tensor* src, ggml_tensor* dst) {
if (ggml_backend_buffer_is_cann(src->buffer)) {
ggml_backend_cann_buffer_context* src_ctx =
(ggml_backend_cann_buffer_context*)src->buffer->context;
ggml_backend_cann_buffer_context* dst_ctx =
(ggml_backend_cann_buffer_context*)buffer->context;
size_t memcpy_size = ggml_nbytes(src);
// Same device.
if (src_ctx->device == dst_ctx->device) {
ACL_CHECK(aclrtMemcpy((char*)dst->data, memcpy_size,
(const char*)src->data, memcpy_size,
ACL_MEMCPY_DEVICE_TO_DEVICE));
return true;
} else {
// Different device but can access by peer.
int32_t canAccessPeer = 0;
ACL_CHECK(aclrtDeviceCanAccessPeer(&canAccessPeer, src_ctx->device,
dst_ctx->device));
if (canAccessPeer) {
ggml_cann_set_device(src_ctx->device);
ACL_CHECK(aclrtDeviceEnablePeerAccess(dst_ctx->device, 0));
ACL_CHECK(aclrtMemcpy((char*)dst->data, memcpy_size,
(const char*)src->data, memcpy_size,
ACL_MEMCPY_DEVICE_TO_DEVICE));
return true;
}
}
}
return false;
}
/**
* @brief Clear a CANN buffer by setting all its memory to a specified value.
*
* This function clears a CANN buffer by setting all its memory to a specified
* value.
*
* @param buffer The CANN buffer to be cleared.
* @param value The value to which each byte in the buffer will be set.
*/
static void ggml_backend_cann_buffer_clear(
ggml_backend_buffer_t buffer, uint8_t value) {
ggml_backend_cann_buffer_context* ctx =
(ggml_backend_cann_buffer_context*)buffer->context;
ggml_cann_set_device(ctx->device);
ACL_CHECK(aclrtMemset(ctx->dev_ptr, buffer->size, value, buffer->size));
}
/**
* @brief Interface for a CANN buffer in the backend.
*
* This structure defines function pointers to operations that can be performed
* on a CANN buffer within the backend.
*/
static const ggml_backend_buffer_i ggml_backend_cann_buffer_interface = {
/* .free_buffer = */ ggml_backend_cann_buffer_free_buffer,
/* .get_base = */ ggml_backend_cann_buffer_get_base,
/* .init_tensor = */ ggml_backend_cann_buffer_init_tensor,
/* .memset_tensor = */ NULL,
/* .set_tensor = */ ggml_backend_cann_buffer_set_tensor,
/* .get_tensor = */ ggml_backend_cann_buffer_get_tensor,
/* .cpy_tensor = */ ggml_backend_cann_buffer_cpy_tensor,
/* .clear = */ ggml_backend_cann_buffer_clear,
/* .reset = */ NULL,
};
// cann buffer type
/**
* @brief Structure representing context information for a specific backend
* buffer type.
*/
struct ggml_backend_cann_buffer_type_context {
int32_t
device; /**< Device identifier associated with the buffer context. */
std::string name; /**< Name associated with the buffer context. */
};
/**
* @brief Retrieves the name associated with a CANN buffer type.
*
* This function returns the descriptive name associated with the specified
* CANN buffer type context.
*
* @param buft Pointer to the buffer type context.
* @return Const pointer to the C-style string containing the name.
*/
static const char* ggml_backend_cann_buffer_type_name(
ggml_backend_buffer_type_t buft) {
ggml_backend_cann_buffer_type_context* buft_ctx =
(ggml_backend_cann_buffer_type_context*)buft->context;