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/**
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* Copyright 2019-2020 Huawei Technologies Co., Ltd
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*
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* Licensed under the Apache License, Version 2.0 (the "License");
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* you may not use this file except in compliance with the License.
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* You may obtain a copy of the License at
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*
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* http://www.apache.org/licenses/LICENSE-2.0
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*
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* Unless required by applicable law or agreed to in writing, software
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* distributed under the License is distributed on an "AS IS" BASIS,
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* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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* See the License for the specific language governing permissions and
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* limitations under the License.
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*/
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#include "single_op/single_op.h"
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#include "common/fmk_types.h"
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#include "common/math/math_util.h"
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#include "common/profiling/profiling_manager.h"
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#include "framework/common/debug/ge_log.h"
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#include "framework/common/util.h"
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#include "graph/load/new_model_manager/model_utils.h"
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#include "runtime/mem.h"
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#include "single_op/single_op_manager.h"
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#include "graph/load/new_model_manager/model_manager.h"
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namespace ge {
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namespace {
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const size_t kDataMemAlignSize = 32;
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size_t GetAlignedSize(size_t size) {
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size_t aligned_size = (size + 2 * kDataMemAlignSize - 1) / kDataMemAlignSize * kDataMemAlignSize;
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return aligned_size;
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}
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} // namespace
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SingleOp::SingleOp(std::mutex *stream_mutex, rtStream_t stream) : stream_mutex_(stream_mutex), stream_(stream) {
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}
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FMK_FUNC_HOST_VISIBILITY FMK_FUNC_DEV_VISIBILITY SingleOp::~SingleOp() {
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for (auto task : tasks_) {
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delete task;
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task = nullptr;
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}
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GELOGI("SingleOp destory sessionId = %lu", aicpu_session_id_);
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ModelManager::GetInstance()->DestroyAicpuSession(aicpu_session_id_);
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}
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Status SingleOp::ValidateArgs(const std::vector<DataBuffer> &inputs, const std::vector<DataBuffer> &outputs) {
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auto num_inputs = inputs.size();
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if (num_inputs != input_sizes_.size()) {
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GELOGE(ACL_ERROR_GE_PARAM_INVALID, "Input num mismatch. model expect %zu, but given %zu", input_addr_list_.size(),
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inputs.size());
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return ACL_ERROR_GE_PARAM_INVALID;
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}
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for (size_t i = 0; i < num_inputs; ++i) {
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// preventing from read out of bound
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size_t aligned_size = GetAlignedSize(inputs[i].length);
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GELOGI("Input [%zu], aligned_size:%zu, inputs.length:%lu, input_sizes_:%lu",
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i, aligned_size, inputs[i].length, input_sizes_[i]);
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if (aligned_size < input_sizes_[i]) {
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GELOGE(ACL_ERROR_GE_PARAM_INVALID, "Input size mismatch. index = %zu, model expect %zu,"
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" but given %zu(after align)", i, input_sizes_[i], aligned_size);
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return ACL_ERROR_GE_PARAM_INVALID;
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}
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}
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auto num_outputs = outputs.size();
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if (num_outputs != output_sizes_.size()) {
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GELOGE(ACL_ERROR_GE_PARAM_INVALID, "output num mismatch. model expect %zu, but given %zu", output_sizes_.size(), outputs.size());
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return ACL_ERROR_GE_PARAM_INVALID;
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}
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for (size_t i = 0; i < num_outputs; ++i) {
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// preventing from write out of bound
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size_t aligned_size = GetAlignedSize(outputs[i].length);
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GELOGI("Output [%zu], aligned_size:%zu, outputs.length:%lu, output_sizes_:%lu",
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i, aligned_size, outputs[i].length, output_sizes_[i]);
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if (aligned_size < output_sizes_[i]) {
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GELOGE(ACL_ERROR_GE_PARAM_INVALID, "Output size mismatch. index = %zu, model expect %zu,"
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"but given %zu(after align)", i, output_sizes_[i], aligned_size);
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return ACL_ERROR_GE_PARAM_INVALID;
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}
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}
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return SUCCESS;
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}
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Status SingleOp::GetArgs(const std::vector<DataBuffer> &inputs, const std::vector<DataBuffer> &outputs) {
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size_t arg_index = 0;
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for (auto &input : inputs) {
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args_[arg_index++] = reinterpret_cast<uintptr_t>(input.data);
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}
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for (auto &output : outputs) {
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args_[arg_index++] = reinterpret_cast<uintptr_t>(output.data);
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}
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return SUCCESS;
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}
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Status SingleOp::UpdateArgs(const std::vector<DataBuffer> &inputs, const std::vector<DataBuffer> &outputs) {
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Status ret = GetArgs(inputs, outputs);
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if (ret != SUCCESS) {
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return ret;
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}
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// update tbe task args
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size_t num_args = arg_table_.size();
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for (size_t i = 0; i < num_args; ++i) {
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std::vector<uintptr_t *> &ptr_to_arg_in_tasks = arg_table_[i];
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if (ptr_to_arg_in_tasks.empty()) {
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GELOGW("found NO arg address to update for arg[%lu]", i);
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continue;
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}
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for (uintptr_t *arg_addr : ptr_to_arg_in_tasks) {
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*arg_addr = args_[i];
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}
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}
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// update aicpu_TF or aicpu_CC args
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for (auto &task : tasks_) {
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size_t io_addr_num = args_.size();
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if (task->GetOpTaskType() == OP_TASK_AICPU) {
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GELOGD("Update aicpu_TF task args");
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task->SetIoAddrsForDump(args_);
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auto *dst_io_addr = const_cast<uintptr_t *>(reinterpret_cast<const uintptr_t *>(task->GetIOAddr()));
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GE_CHECK_NOTNULL(dst_io_addr);
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auto rt_ret = rtMemcpyAsync(dst_io_addr,
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sizeof(uint64_t) * args_.size(),
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&args_[0],
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sizeof(uint64_t) * args_.size(),
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RT_MEMCPY_HOST_TO_DEVICE_EX,
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stream_);
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if (rt_ret != RT_ERROR_NONE) {
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GELOGE(rt_ret, "rtMemcpyAsync addresses failed, ret = %d", rt_ret);
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return rt_ret;
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}
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} else if (task->GetOpTaskType() == OP_TASK_AICPUCC) {
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GELOGD("Update aicpu_CC task args");
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const uintptr_t *task_io_addr = reinterpret_cast<const uintptr_t *>(task->GetIOAddr());
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GE_CHECK_NOTNULL(task_io_addr);
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auto io_addr = reinterpret_cast<uint64_t *>(const_cast<uintptr_t *>(task_io_addr));
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for (size_t i = 0; i < io_addr_num; ++i) {
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io_addr[i] = reinterpret_cast<uintptr_t>(args_[i]);
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}
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} else {
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GELOGW("Only TF_kernel aicpu and aicpu_CC are supported, but got %u", task->GetOpTaskType());
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continue;
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}
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}
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return SUCCESS;
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}
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FMK_FUNC_HOST_VISIBILITY FMK_FUNC_DEV_VISIBILITY Status SingleOp::ExecuteAsync(const std::vector<DataBuffer> &inputs,
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const std::vector<DataBuffer> &outputs) {
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Status ret = ValidateArgs(inputs, outputs);
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if (ret != SUCCESS) {
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return ret;
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}
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std::lock_guard<std::mutex> lk(*stream_mutex_);
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ret = UpdateArgs(inputs, outputs);
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if (ret != SUCCESS) {
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return ret;
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}
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for (auto &task : tasks_) {
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ret = task->LaunchKernel(stream_);
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if (ret != SUCCESS) {
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return ret;
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}
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}
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return ret;
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}
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void SingleOp::SetStream(rtStream_t stream) {
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stream_ = stream;
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}
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void SingleOp::SetSessionID(uint64_t session_id) {
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aicpu_session_id_ = session_id;
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}
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DynamicSingleOp::DynamicSingleOp(uintptr_t resource_id, std::mutex *stream_mutex, rtStream_t stream)
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: resource_id_(resource_id), stream_mutex_(stream_mutex), stream_(stream) {
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}
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DynamicSingleOp::~DynamicSingleOp() {
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GELOGI("DynamicSingleOp destory sessionId = %lu", aicpu_session_id_);
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ModelManager::GetInstance()->DestroyAicpuSession(aicpu_session_id_);
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}
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Status DynamicSingleOp::ValidateParams(const vector<GeTensorDesc> &input_desc,
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const std::vector<DataBuffer> &inputs,
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std::vector<GeTensorDesc> &output_desc,
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std::vector<DataBuffer> &outputs) const {
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if (inputs.size() != input_desc.size()) {
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GELOGE(ACL_ERROR_GE_PARAM_INVALID,
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"Input number mismatches input desc number. Input num = %zu, input desc num = %zu",
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inputs.size(),
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input_desc.size());
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return ACL_ERROR_GE_PARAM_INVALID;
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}
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if (outputs.size() != output_desc.size()) {
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GELOGE(ACL_ERROR_GE_PARAM_INVALID,
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"Output number mismatches output desc number. Output num = %zu, output desc num = %zu",
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outputs.size(),
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output_desc.size());
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return ACL_ERROR_GE_PARAM_INVALID;
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}
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if (input_desc.size() != num_inputs_) {
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GELOGE(ACL_ERROR_GE_PARAM_INVALID, "Input number mismatches. expect %zu, but given %zu", num_inputs_, input_desc.size());
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return ACL_ERROR_GE_PARAM_INVALID;
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}
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if (output_desc.size() != num_outputs_) {
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GELOGE(ACL_ERROR_GE_PARAM_INVALID, "Output number mismatches. expect %zu, but given %zu", num_outputs_, output_desc.size());
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return ACL_ERROR_GE_PARAM_INVALID;
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}
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return SUCCESS;
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}
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Status DynamicSingleOp::AllocateWorkspaces(const std::vector<int64_t> &workspace_sizes,
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std::vector<void *> &workspaces) {
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static const std::string kPurpose("malloc workspace memory for dynamic op.");
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if (workspace_sizes.empty()) {
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GELOGD("No need to allocate workspace.");
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return SUCCESS;
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}
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int64_t total_size = 0;
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std::vector<int64_t> ws_offsets;
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for (auto ws_size : workspace_sizes) {
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// alignment and padding should be done in OpParaCalculate
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GE_CHK_STATUS_RET_NOLOG(CheckInt64AddOverflow(total_size, ws_size));
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ws_offsets.emplace_back(total_size);
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total_size += ws_size;
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}
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GELOGD("Total workspace size is %ld", total_size);
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StreamResource *stream_resource = SingleOpManager::GetInstance().GetResource(resource_id_, stream_);
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GE_CHECK_NOTNULL(stream_resource);
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auto ws_base = stream_resource->MallocMemory(kPurpose, static_cast<size_t>(total_size));
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if (ws_base == nullptr) {
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GELOGE(ACL_ERROR_GE_MEMORY_ALLOCATION, "Failed to allocate memory of size: %ld", total_size);
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return ACL_ERROR_GE_MEMORY_ALLOCATION;
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}
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GELOGD("Done allocating workspace memory successfully.");
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for (auto ws_offset : ws_offsets) {
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workspaces.emplace_back(ws_base + ws_offset);
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}
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return SUCCESS;
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}
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Status DynamicSingleOp::ExecuteTbeTask(const vector<GeTensorDesc> &input_desc,
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const vector<void *> &inputs,
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vector<GeTensorDesc> &output_desc,
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vector<void *> &outputs) {
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GE_CHK_STATUS_RET_NOLOG(op_task_->UpdateRunInfo(input_desc, output_desc));
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std::vector<void *> workspace_buffers;
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GE_CHK_STATUS_RET_NOLOG(AllocateWorkspaces(op_task_->GetWorkspaceSizes(), workspace_buffers));
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return op_task_->LaunchKernel(inputs, outputs, workspace_buffers, stream_);
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}
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Status DynamicSingleOp::ExecuteAsync(const vector<GeTensorDesc> &input_desc,
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const vector<DataBuffer> &input_buffers,
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vector<GeTensorDesc> &output_desc,
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vector<DataBuffer> &output_buffers) {
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GE_CHECK_NOTNULL(op_task_);
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GE_CHK_STATUS_RET_NOLOG(ValidateParams(input_desc, input_buffers, output_desc, output_buffers));
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std::lock_guard<std::mutex> lk(*stream_mutex_);
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std::vector<void *> inputs;
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std::vector<void *> outputs;
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for (auto &buffer : input_buffers) {
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inputs.emplace_back(buffer.data);
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}
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for (auto &buffer : output_buffers) {
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outputs.emplace_back(buffer.data);
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}
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if (op_task_->GetOpTaskType() == OP_TASK_TBE) {
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return ExecuteTbeTask(input_desc, inputs, output_desc, outputs);
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} else if (op_task_->GetOpTaskType() == OP_TASK_AICPU || op_task_->GetOpTaskType() == OP_TASK_AICPUCC) {
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return op_task_->LaunchKernel(input_desc, input_buffers, output_desc, output_buffers, stream_);
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} else {
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GELOGE(ACL_ERROR_GE_OP_TASK_TYPE_INVALID,
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"Only TBE_Task, AI_CPU_Task and AI_CPUCC_Task are supported, but got %u",
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op_task_->GetOpTaskType());
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return ACL_ERROR_GE_OP_TASK_TYPE_INVALID;
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}
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}
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void DynamicSingleOp::SetSessionID(uint64_t session_id) {
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aicpu_session_id_ = session_id;
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}
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} // namespace ge
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