forked from huawei/mindspore2022
186 lines
8.3 KiB
C++
186 lines
8.3 KiB
C++
/**
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* Copyright 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 <set>
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#include <string>
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#include <memory>
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#include <algorithm>
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#include "device/gpu/gpu_common.h"
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#include "device/gpu/kernel_info_setter.h"
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#include "device/gpu/gpu_device_manager.h"
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#include "device/gpu/gpu_stream_assign.h"
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namespace mindspore {
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namespace device {
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namespace gpu {
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void AssignGpuStream(const std::shared_ptr<session::KernelGraph> &kernel_graph) {
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MS_EXCEPTION_IF_NULL(kernel_graph);
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std::vector<CNodePtr> allreduce_kernels;
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auto execution_kernels = kernel_graph->execution_order();
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for (auto kernel_node : execution_kernels) {
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std::string kernel_name = AnfAlgo::GetCNodeName(kernel_node);
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if (kernel_name == kAllReduceOpName) {
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allreduce_kernels.emplace_back(kernel_node);
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} else {
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DeviceStream compute_stream = GPUDeviceManager::GetInstance().default_stream();
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AnfAlgo::SetNodeAttr("stream_id", MakeValue(reinterpret_cast<uintptr_t>(compute_stream)), kernel_node);
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}
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}
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if (allreduce_kernels.size() > 1) {
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DeviceStream comm_stream = nullptr;
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GPUDeviceManager::GetInstance().CreateStream(&comm_stream);
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std::transform(
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allreduce_kernels.begin(), allreduce_kernels.end(), allreduce_kernels.begin(), [&](CNodePtr allreduce_kernel) {
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AnfAlgo::SetNodeAttr("stream_id", MakeValue(reinterpret_cast<uintptr_t>(comm_stream)), allreduce_kernel);
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return allreduce_kernel;
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});
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std::vector<SendRecvPair> send_recv_pairs;
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FindAllReduceStreamSwitchPos(kernel_graph, &send_recv_pairs);
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InsertStreamSwitchNode(kernel_graph, send_recv_pairs);
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}
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}
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void FindAllReduceStreamSwitchPos(const std::shared_ptr<session::KernelGraph> &kernel_graph,
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std::vector<SendRecvPair> *send_recv_pairs) {
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auto execution_kernels = kernel_graph->execution_order();
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std::vector<CNodePtr>::iterator iter, iter_begin;
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iter = iter_begin = execution_kernels.begin();
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std::vector<CNodePtr>::iterator iter_end = execution_kernels.end();
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for (; iter != execution_kernels.end(); ++iter) {
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std::string kernel_name = AnfAlgo::GetCNodeName(*iter);
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if (kernel_name == kAllReduceOpName) {
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// Find AllReduce node's last input node.
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std::vector<CNodePtr>::iterator mock_send_node_iter =
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FindSendNodePos(iter_begin, iter + 1, *iter, kAllReduceStreamSwitch);
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if (mock_send_node_iter == iter + 1) {
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MS_LOG(WARNING) << "Can't find send node place before AllReduce node.";
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continue;
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}
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SendRecvPair pair1 = {kAllReduceStreamSwitch, *mock_send_node_iter, *iter,
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IntToSize(mock_send_node_iter - iter_begin + 1), IntToSize(iter - iter_begin)};
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send_recv_pairs->push_back(pair1);
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// Find node which uses AllReduce as input[0].
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std::vector<CNodePtr>::iterator mock_recv_node_iter =
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FindRecvNodePos(iter, iter_end, *iter, kAllReduceStreamSwitch);
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if (mock_recv_node_iter == iter_end) {
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MS_LOG(WARNING) << "Can't find send node place before AllReduce node.";
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continue;
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}
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SendRecvPair pair2 = {kAllReduceStreamSwitch, *iter, *mock_recv_node_iter, IntToSize(iter - iter_begin + 1),
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IntToSize(mock_recv_node_iter - iter_begin)};
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send_recv_pairs->push_back(pair2);
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}
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}
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}
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std::vector<CNodePtr>::iterator FindSendNodePos(std::vector<CNodePtr>::iterator begin,
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std::vector<CNodePtr>::iterator end, const CNodePtr mock_recv_node,
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StreamSwitchType stream_switch_type) {
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MS_EXCEPTION_IF_NULL(mock_recv_node);
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if (stream_switch_type == kAllReduceStreamSwitch) {
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for (auto iter = begin; iter != end; iter++) {
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if (*(iter + 1) == mock_recv_node) {
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return iter;
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}
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}
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}
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return end;
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}
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std::vector<CNodePtr>::iterator FindRecvNodePos(std::vector<CNodePtr>::iterator begin,
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std::vector<CNodePtr>::iterator end, const CNodePtr mock_send_node,
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StreamSwitchType stream_switch_type) {
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MS_EXCEPTION_IF_NULL(mock_send_node);
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for (auto iter = begin; iter != end; iter++) {
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auto node = *iter;
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if (stream_switch_type == kAllReduceStreamSwitch) {
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for (auto input : node->inputs()) {
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if (mock_send_node == AnfAlgo::VisitKernel(input, 0).first) {
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return iter;
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}
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}
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}
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}
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return end;
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}
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void InsertStreamSwitchNode(const std::shared_ptr<session::KernelGraph> &kernel_graph,
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const std::vector<SendRecvPair> &send_recv_pairs) {
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std::set<StreamSwitchNode> ordered_stream_switch_nodes;
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for (SendRecvPair pair : send_recv_pairs) {
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StreamSwitchType stream_switch_type = pair.stream_switch_type;
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CNodePtr mock_send_node = pair.mock_send_node;
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CNodePtr mock_recv_node = pair.mock_recv_node;
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size_t send_node_offset = pair.send_node_offset;
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size_t recv_node_offset = pair.recv_node_offset;
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CNodePtr send_node = nullptr;
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CNodePtr recv_node = nullptr;
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// Step 1: generate Send and Recv CNodes.
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if (stream_switch_type == kAllReduceStreamSwitch) {
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if (!GenSendRecvCNodesForAllReduce(kernel_graph, mock_send_node, mock_recv_node, &send_node, &recv_node)) {
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MS_LOG(EXCEPTION) << "Generating CNodes for send and recv failed. Stream switch type: kAllReduceStreamSwitch";
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}
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}
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// Step 2: sort send and recv CNodes by offset.
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ordered_stream_switch_nodes.insert({send_node_offset, send_node});
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ordered_stream_switch_nodes.insert({recv_node_offset, recv_node});
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}
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// Step 3: insert stream switch CNodes into execution kernel list.
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auto execution_kernels = kernel_graph->execution_order();
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for (auto node = ordered_stream_switch_nodes.rbegin(); node != ordered_stream_switch_nodes.rend(); node++) {
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execution_kernels.insert(execution_kernels.begin() + node->offset, node->cnode);
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}
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kernel_graph->set_execution_order(execution_kernels);
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}
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bool GenSendRecvCNodesForAllReduce(const std::shared_ptr<session::KernelGraph> &kernel_graph,
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const CNodePtr &mock_send_node, const CNodePtr &mock_recv_node, CNodePtr *send_node,
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CNodePtr *recv_node) {
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*send_node = CreateStreamSwitchNode(kernel_graph, kSendOpName);
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MS_EXCEPTION_IF_NULL(*send_node);
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*recv_node = CreateStreamSwitchNode(kernel_graph, kRecvOpName);
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MS_EXCEPTION_IF_NULL(*recv_node);
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cudaEvent_t event = nullptr;
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CHECK_CUDA_RET_WITH_EXCEPT(cudaEventCreate(&event, cudaEventDisableTiming), "Creating cuda event failed.");
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AnfAlgo::SetNodeAttr("record_event", MakeValue(reinterpret_cast<uintptr_t>(event)), *send_node);
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AnfAlgo::SetNodeAttr("wait_event", MakeValue(reinterpret_cast<uintptr_t>(event)), *recv_node);
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uintptr_t send_stream = AnfAlgo::GetNodeAttr<uintptr_t>(mock_send_node, "stream_id");
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AnfAlgo::SetNodeAttr("record_event_stream", MakeValue(send_stream), *send_node);
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uintptr_t recv_stream = AnfAlgo::GetNodeAttr<uintptr_t>(mock_recv_node, "stream_id");
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AnfAlgo::SetNodeAttr("wait_event_stream", MakeValue(recv_stream), *recv_node);
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return true;
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}
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CNodePtr CreateStreamSwitchNode(const std::shared_ptr<session::KernelGraph> &kernel_graph, const std::string &name) {
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auto op = std::make_shared<Primitive>(name);
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auto apply = std::make_shared<ValueNode>(op);
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std::vector<AnfNodePtr> input_list = {apply};
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CNodePtr node = kernel_graph->NewCNode(input_list);
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MS_EXCEPTION_IF_NULL(node);
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kernel::KernelBuildInfo::KernelBuildInfoBuilder selected_kernel_builder;
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AnfAlgo::SetSelectKernelBuildInfo(selected_kernel_builder.Build(), node.get());
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auto abstract_none = std::make_shared<abstract::AbstractNone>();
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node->set_abstract(abstract_none);
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SetKernelInfo(node);
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return node;
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}
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} // namespace gpu
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} // namespace device
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} // namespace mindspore
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