forked from huawei/mindspore2022
220 lines
8.5 KiB
C++
220 lines
8.5 KiB
C++
/**
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* Copyright 2021 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 "common/graph_kernel/optimize_assign.h"
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#include <algorithm>
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#include <vector>
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#include <string>
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#include <map>
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#include "base/core_ops.h"
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#include "backend/common/optimizer/helper.h"
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#include "backend/common/session/anf_runtime_algorithm.h"
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#include "include/common/utils/anfalgo.h"
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#include "common/graph_kernel/graph_kernel_helper.h"
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namespace mindspore::graphkernel {
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namespace {
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/**
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* If an Assign's source node was outputted with this Assign, the src-node should be removed from output list,
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* external users can use the dest-node under the premise of correct execution order.
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* This function find out the [index of src node in output list] and [external dest-node].
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* Note:
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* 1. Assign is always in output list. (links to external Depend node)
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* 2. Assign's dest-node should be a Parameter.
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*/
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std::map<size_t, AnfNodePtr> FindAssignAndOutputVal(const CNodePtr &fg_cnode) {
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// Check output includes assign
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auto func_graph = common::AnfAlgo::GetCNodeFuncGraphPtr(fg_cnode);
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MS_EXCEPTION_IF_NULL(func_graph);
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auto out_cnode = func_graph->output()->cast<CNodePtr>();
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MS_EXCEPTION_IF_NULL(out_cnode);
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std::map<size_t, AnfNodePtr> output_replace_map;
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if (!IsPrimitiveCNode(out_cnode, prim::kPrimMakeTuple)) {
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return output_replace_map;
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}
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// Trans parameter to the real input
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auto ParameterToInput = [&func_graph, &fg_cnode](const AnfNodePtr &p) {
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const auto ¶ms = func_graph->parameters();
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size_t i = std::find(params.begin(), params.end(), p) - params.begin();
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return i == params.size() ? nullptr : fg_cnode->input(i + 1);
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};
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const auto &inputs = out_cnode->inputs();
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for (const auto &out : inputs) {
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if (IsPrimitiveCNode(out, prim::kPrimAssign)) {
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auto assign_val = out->cast<CNodePtr>()->input(2);
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auto assign_parameter = out->cast<CNodePtr>()->input(1);
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auto iter = std::find(inputs.begin() + 1, inputs.end(), assign_val);
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if (iter != inputs.end()) {
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size_t assign_val_index = iter - inputs.begin();
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auto assign_to = ParameterToInput(assign_parameter);
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if (assign_to != nullptr && assign_val_index > 0) {
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output_replace_map[assign_val_index - 1] = assign_to;
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}
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}
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}
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}
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return output_replace_map;
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}
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bool HasPathToParamUser(const AnfNodePtr &gk_node, const AnfNodePtr ¶m_user, const AnfNodePtr &getitem) {
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auto mng = common::AnfAlgo::GetCNodeFuncGraphPtr(gk_node)->manager();
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MS_EXCEPTION_IF_NULL(mng);
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bool result = false;
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auto IncludeUser = [&result, &gk_node, &getitem](const AnfNodePtr &node) {
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if (node == getitem) {
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return EXCLUDE;
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}
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if (node == gk_node) {
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result = true;
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return EXCLUDE;
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}
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return result ? EXCLUDE : FOLLOW;
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};
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static_cast<void>(DeepLinkedGraphSearch(param_user, IncludeUser));
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return result;
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}
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void KeepExecOrder(const FuncGraphPtr &func_graph, const AnfNodePtr &getitem, const AnfNodePtr &assign_to_node,
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const FuncGraphManagerPtr &mng) {
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// Insert update_state_node, need mount a monad node.
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auto u = NewValueNode(kUMonad);
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u->set_abstract(kUMonad->ToAbstract());
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AnfNodePtrList update_state_inputs = {NewValueNode(prim::kPrimUpdateState), u, getitem};
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auto update_state_node = func_graph->NewCNode(update_state_inputs);
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update_state_node->set_abstract(getitem->abstract());
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func_graph->AddNode(update_state_node);
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// Insert load_node
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AnfNodePtrList load_inputs = {NewValueNode(prim::kPrimLoad), assign_to_node, update_state_node};
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auto load_node = func_graph->NewCNode(load_inputs);
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load_node->set_abstract(assign_to_node->abstract());
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func_graph->AddNode(load_node);
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(void)mng->Replace(getitem, load_node);
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}
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int64_t GetitemIndex(const AnfNodePtr &getitem) {
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auto index_node = getitem->cast<CNodePtr>()->input(kInputNodeOutputIndexInTupleGetItem);
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auto value_ptr = GetValueNode(index_node);
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return GetValue<int64_t>(value_ptr);
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}
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void UpdateUsersOfGraphKernel(const FuncGraphPtr &func_graph, const AnfNodePtr &cnode, const AnfNodePtr &assign_to,
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int64_t removed_index) {
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auto mng = func_graph->manager();
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MS_EXCEPTION_IF_NULL(mng);
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for (const auto &getitem_iter : mng->node_users()[cnode]) {
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auto getitem = getitem_iter.first;
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if (GetitemIndex(getitem) != removed_index) continue;
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auto getitem_users = mng->node_users()[getitem]; // get a copy of getitem's users before replacing
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for (const auto &getitem_user_iter : getitem_users) {
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auto getitem_user = getitem_user_iter.first;
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// 1. Data users may not link directly to its input, they may segregated by Depend node.
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// 2. If the `cnode` has another path to the getitem_user, it's unnecessary to add update_state and load node to
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// keep exec_order.
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if (HasPathToParamUser(cnode, getitem_user, getitem)) {
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(void)mng->Replace(getitem, assign_to);
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continue;
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}
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KeepExecOrder(func_graph, getitem, assign_to, mng);
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}
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break;
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}
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}
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bool RepalceOutputByParameter(const FuncGraphPtr &func_graph) {
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auto todos = TopoSort(func_graph->get_return());
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MS_EXCEPTION_IF_NULL(func_graph);
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bool changed = false;
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for (const auto &n : todos) {
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if (!common::AnfAlgo::IsGraphKernel(n)) continue;
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auto cnode = n->cast<CNodePtr>();
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auto replaceable_nodes = FindAssignAndOutputVal(cnode);
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if (replaceable_nodes.empty()) continue;
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changed = true;
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for (const auto &iter : replaceable_nodes) {
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UpdateUsersOfGraphKernel(func_graph, cnode, iter.second, static_cast<int64_t>(iter.first));
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}
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}
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return changed;
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}
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bool ReplaceAssignByInplaceAssignInGraphkernel(const FuncGraphPtr &func_graph) {
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auto mng = func_graph->manager();
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MS_EXCEPTION_IF_NULL(mng);
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auto todos = TopoSort(func_graph->get_return());
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bool changed = false;
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for (const auto &n : todos) {
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if (!common::AnfAlgo::CheckPrimitiveType(n, prim::kPrimAssign)) continue;
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changed = true;
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auto cnode = n->cast<CNodePtr>();
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AnfNodePtrList inputs = {NewValueNode(prim::kPrimInplaceAssign), cnode->input(1), cnode->input(2), cnode->input(2)};
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auto new_cnode = func_graph->NewCNode(inputs);
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SetNodeAttrSafely("fake_output", MakeValue(true), new_cnode);
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new_cnode->set_abstract(inputs.back()->abstract());
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new_cnode->set_kernel_info(std::make_shared<device::KernelInfo>());
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std::vector<std::string> input_formats = AnfAlgo::GetAllInputFormats(cnode);
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std::vector<TypeId> input_types = AnfAlgo::GetAllInputDeviceTypes(cnode);
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input_formats.push_back(input_formats.back());
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input_types.push_back(input_types.back());
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std::vector<std::string> output_formats = {input_formats.back()};
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std::vector<TypeId> output_types = {input_types.back()};
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auto graph_sel_info = BuildSelectKernelBuildInfo(input_formats, input_types, output_formats, output_types,
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AnfAlgo::GetProcessor(cnode));
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AnfAlgo::SetSelectKernelBuildInfo(graph_sel_info, new_cnode.get());
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(void)mng->Replace(cnode, new_cnode);
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}
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return changed;
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}
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bool RepalceAssignByInplaceAssign(const FuncGraphPtr &func_graph) {
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MS_EXCEPTION_IF_NULL(func_graph);
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auto mng = func_graph->manager();
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MS_EXCEPTION_IF_NULL(mng);
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auto todos = TopoSort(func_graph->get_return());
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auto changed = false;
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for (const auto &n : todos) {
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if (!common::AnfAlgo::IsGraphKernel(n)) continue;
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auto graph_kernel_fg = common::AnfAlgo::GetCNodeFuncGraphPtr(n);
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MS_EXCEPTION_IF_NULL(graph_kernel_fg);
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changed = ReplaceAssignByInplaceAssignInGraphkernel(graph_kernel_fg) || changed;
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}
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return changed;
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}
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} // namespace
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bool OptimizeAssign::Run(const FuncGraphPtr &func_graph) {
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auto mng = func_graph->manager();
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if (mng == nullptr) {
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mng = Manage(func_graph, true);
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func_graph->set_manager(mng);
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}
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auto res = RepalceOutputByParameter(func_graph);
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if (res) {
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mng->RemoveRoots();
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mng->KeepRoots({func_graph});
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}
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return RepalceAssignByInplaceAssign(func_graph);
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}
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} // namespace mindspore::graphkernel
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