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graph_manager.cc 133 kB

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  1. /**
  2. * Copyright 2019-2020 Huawei Technologies Co., Ltd
  3. *
  4. * Licensed under the Apache License, Version 2.0 (the "License");
  5. * you may not use this file except in compliance with the License.
  6. * You may obtain a copy of the License at
  7. *
  8. * http://www.apache.org/licenses/LICENSE-2.0
  9. *
  10. * Unless required by applicable law or agreed to in writing, software
  11. * distributed under the License is distributed on an "AS IS" BASIS,
  12. * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
  13. * See the License for the specific language governing permissions and
  14. * limitations under the License.
  15. */
  16. #include "graph/manager/graph_manager.h"
  17. #include <pthread.h>
  18. #include <algorithm>
  19. #include <future>
  20. #include <set>
  21. #include <sstream>
  22. #include <string>
  23. #include <thread>
  24. #include <utility>
  25. #include "common/ge/ge_util.h"
  26. #include "common/math/math_util.h"
  27. #include "common/thread_pool.h"
  28. #include "common/util.h"
  29. #include "external/graph/types.h"
  30. #include "framework/common/debug/ge_log.h"
  31. #include "framework/common/ge_inner_error_codes.h"
  32. #include "framework/common/ge_types.h"
  33. #include "analyzer/analyzer.h"
  34. #include "graph/common/ge_call_wrapper.h"
  35. #include "graph/common/local_context.h"
  36. #include "graph/common/transop_util.h"
  37. #include "graph/debug/ge_attr_define.h"
  38. #include "graph/ge_context.h"
  39. #include "graph/ge_global_options.h"
  40. #include "graph/ge_local_context.h"
  41. #include "graph/manager/graph_mem_allocator.h"
  42. #include "graph/manager/util/rt_context_util.h"
  43. #include "graph/partition/dynamic_shape_partition.h"
  44. #include "graph/passes/enter_pass.h"
  45. #include "graph/partition/stage_partition.h"
  46. #include "graph/passes/addn_pass.h"
  47. #include "graph/passes/bitcast_pass.h"
  48. #include "graph/passes/atomic_addr_clean_pass.h"
  49. #include "graph/passes/attach_stream_label_pass.h"
  50. #include "graph/passes/cast_remove_pass.h"
  51. #include "graph/passes/common_subexpression_elimination_pass.h"
  52. #include "graph/passes/compile_nodes_pass.h"
  53. #include "graph/passes/cond_remove_pass.h"
  54. #include "graph/passes/constant_folding_pass.h"
  55. #include "graph/passes/constant_fuse_same_pass.h"
  56. #include "graph/passes/const_without_in_control_pass.h"
  57. #include "graph/passes/control_trigger_pass.h"
  58. #include "graph/passes/ctrl_edge_transfer_pass.h"
  59. #include "graph/passes/dimension_adjust_pass.h"
  60. #include "graph/passes/dimension_compute_pass.h"
  61. #include "graph/passes/flow_ctrl_pass.h"
  62. #include "graph/passes/hccl_group_pass.h"
  63. #include "graph/passes/hccl_memcpy_pass.h"
  64. #include "graph/passes/identity_pass.h"
  65. #include "graph/passes/input_output_connection_identify_pass.h"
  66. #include "graph/passes/iterator_op_pass.h"
  67. #include "graph/passes/link_gen_mask_nodes_pass.h"
  68. #include "graph/passes/mark_graph_unknown_status_pass.h"
  69. #include "graph/passes/merge_pass.h"
  70. #include "graph/passes/merge_input_memcpy_pass.h"
  71. #include "graph/passes/merge_to_stream_merge_pass.h"
  72. #include "graph/passes/multi_batch_pass.h"
  73. #include "graph/passes/next_iteration_pass.h"
  74. #include "graph/passes/permute_pass.h"
  75. #include "graph/passes/prune_pass.h"
  76. #include "graph/passes/ref_identity_delete_op_pass.h"
  77. #include "graph/passes/remove_same_const_pass.h"
  78. #include "graph/passes/replace_with_empty_const_pass.h"
  79. #include "graph/passes/reshape_recovery_pass.h"
  80. #include "graph/passes/reshape_remove_pass.h"
  81. #include "graph/passes/same_transdata_breadth_fusion_pass.h"
  82. #include "graph/passes/subgraph_pass.h"
  83. #include "graph/passes/switch_data_edges_bypass.h"
  84. #include "graph/passes/switch_dead_branch_elimination.h"
  85. #include "graph/passes/switch_logic_remove_pass.h"
  86. #include "graph/passes/switch_to_stream_switch_pass.h"
  87. #include "graph/passes/transop_breadth_fusion_pass.h"
  88. #include "graph/passes/transop_depth_fusion_pass.h"
  89. #include "graph/passes/transop_nearby_allreduce_fusion_pass.h"
  90. #include "graph/passes/transop_symmetry_elimination_pass.h"
  91. #include "graph/passes/transop_without_reshape_fusion_pass.h"
  92. #include "graph/passes/transpose_transdata_pass.h"
  93. #include "graph/passes/variable_op_pass.h"
  94. #include "graph/passes/variable_prepare_op_pass.h"
  95. #include "graph/passes/variable_ref_delete_op_pass.h"
  96. #include "graph/passes/variable_ref_useless_control_out_delete_pass.h"
  97. #include "graph/passes/end_of_sequence_add_control_pass.h"
  98. #include "graph/passes/subexpression_migration_pass.h"
  99. #include "graph/passes/subgraph_const_migration_pass.h"
  100. #include "graph/passes/unused_args_clean_pass.h"
  101. #include "graph/passes/global_step_insert_pass.h"
  102. #include "graph/passes/memcpy_addr_async_pass.h"
  103. #include "graph/build/label_allocator.h"
  104. #include "graph/utils/tensor_adapter.h"
  105. #include "graph/utils/type_utils.h"
  106. #include "graph/graph_util.h"
  107. #include "graph/types.h"
  108. #include "inc/pass_manager.h"
  109. #include "init/gelib.h"
  110. #include "ir_build/atc_ir_common.h"
  111. #include "graph/common/local_context.h"
  112. #include "graph/common/omg_util.h"
  113. #include "common/formats/utils/formats_trans_utils.h"
  114. namespace {
  115. const char *const kSummary = "Summary";
  116. const char *const kSave = "Save";
  117. const char *const kNetOutput = "NetOutput";
  118. const char *const kVariable = "Variable";
  119. const char *const kSend = "Send";
  120. const char *const kRecv = "Recv";
  121. const char *const kCheckPointForGetVar = "CheckPointGraphForGetVar";
  122. const char *const kCheckPointGraph = "checkpoint_graph";
  123. const char *const kVectorEngine = "VectorEngine";
  124. const char *const kAIcoreEngine = "AIcoreEngine";
  125. const char *const kOffOptimize = "off_optimize";
  126. const int32_t kDynamicDimsTypeIsGetNext = 0;
  127. const int32_t kDynamicDimsTypeIsData = 1;
  128. const int64_t kInvalidDynaimcDimsType = -1;
  129. const char *const kSubstrOfGetNextNosinkName = "IteratorGetNext";
  130. const char *const kShapeDataName = "ascend_mbatch_shape_data";
  131. const char *const kGetNextName = "IteratorV2";
  132. const char *const kExtAttrDataNodes = "data_nodes";
  133. const char *const kExtAttrGetNextNoSink = "getnext_no_sink";
  134. bool IsTailingOptimization() {
  135. string is_tailing_optimization_option;
  136. auto ret = ge::GetContext().GetOption(ge::OPTION_EXEC_ENABLE_TAILING_OPTIMIZATION, is_tailing_optimization_option);
  137. if (ret == ge::GRAPH_SUCCESS) {
  138. GELOGI("Option ge.exec.isTailingOptimization is %s", is_tailing_optimization_option.c_str());
  139. // "1" means it's True from frontend option
  140. return is_tailing_optimization_option == "1";
  141. }
  142. GELOGW("OPTION_EXEC_ENABLE_TAILING_OPTIMIZATION not set, use BFSTopologicalSorting by default.");
  143. return false;
  144. }
  145. ge::Status CheckFpCeilingMode() {
  146. static const std::unordered_set<std::string> kValidFpCeilingMode = {"0", "1", "2"};
  147. string mode;
  148. auto ret = ge::GetContext().GetOption("ge.fpCeilingMode", mode);
  149. if (ret == ge::GRAPH_SUCCESS) {
  150. if (kValidFpCeilingMode.count(mode) == 0) {
  151. GELOGE(ge::GE_GRAPH_OPTIONS_INVALID, "The fp_ceiling_mode %s is invalid, options are 0, 1, and 2.", mode.c_str());
  152. return ge::GE_GRAPH_OPTIONS_INVALID;
  153. }
  154. GELOGI("The parameter fp_ceiling_mode is set to %s.", mode.c_str());
  155. return ge::SUCCESS;
  156. }
  157. GELOGW("The parameter fp_ceiling_mode is not set.");
  158. return ge::SUCCESS;
  159. }
  160. } // namespace
  161. namespace ge {
  162. GraphManager::GraphManager()
  163. : thread_run_flag_(false),
  164. graph_run_listener_(nullptr),
  165. init_flag_(false) {
  166. }
  167. Status GraphManager::Initialize(const std::map<string, string> &options) {
  168. if (init_flag_) {
  169. GELOGW("[Initialize] GraphManager already initialized.");
  170. return SUCCESS;
  171. }
  172. // malloc
  173. graph_run_listener_ = MakeShared<GraphModelListener>(sync_run_mutex_, condition_);
  174. if (graph_run_listener_ == nullptr) {
  175. GELOGE(MEMALLOC_FAILED, "Make shared failed");
  176. return MEMALLOC_FAILED;
  177. }
  178. // graph context
  179. graph_context_ = MakeShared<GraphContext>();
  180. if (graph_context_ == nullptr) {
  181. GELOGE(MEMALLOC_FAILED, "Make shared failed.");
  182. return MEMALLOC_FAILED;
  183. }
  184. // parse option parameters
  185. Status ret = ParseOptions(options);
  186. if (ret != SUCCESS) {
  187. GELOGE(ret, "[Initialize] parse options failed.");
  188. return ret;
  189. }
  190. ret = CheckFpCeilingMode();
  191. if (ret != SUCCESS) {
  192. GELOGE(ret, "[Initialize] Check fp-ceiling-mode options failed.");
  193. return ret;
  194. }
  195. ret = graph_context_->Initialize(options);
  196. if (ret != SUCCESS) {
  197. GELOGE(ret, "[Initialize] GraphContext initialize failed.");
  198. return ret;
  199. }
  200. graph_map_.clear();
  201. cache_helper_map_.clear();
  202. init_flag_ = true;
  203. thread_run_flag_ = true;
  204. prerun_thread_ = std::thread(GraphManager::PreRunThread, this);
  205. run_thread_ = std::thread(GraphManager::RunThread, this);
  206. return SUCCESS;
  207. }
  208. Status GraphManager::Finalize() {
  209. if (!init_flag_) {
  210. GELOGW("GraphManager has not been initialized.");
  211. return SUCCESS;
  212. }
  213. if (graph_executor_.FreeExecuteMemory() != SUCCESS) {
  214. GELOGW("Graph executor FreeExecuteMemory failed, resources may not be released correctly.");
  215. }
  216. StopQueue(this);
  217. if (prerun_thread_.joinable()) {
  218. prerun_thread_.join();
  219. }
  220. if (run_thread_.joinable()) {
  221. run_thread_.join();
  222. }
  223. // check graph whether running or not
  224. Status unload_model_ret = SUCCESS;
  225. Status ret;
  226. rtError_t rt_ret;
  227. for (auto iter = graph_map_.begin(); iter != graph_map_.end(); ++iter) {
  228. GraphNodePtr graph_node = iter->second;
  229. if (graph_node->GetRunFlag()) {
  230. GELOGW("[GraphManager] finalize failed, graphId=%u.", iter->first);
  231. unload_model_ret = GE_GRAPH_GRAPH_IS_RUNNING;
  232. continue;
  233. }
  234. // unload model
  235. auto ge_root_model = graph_node->GetGeRootModel();
  236. if (ge_root_model != nullptr && ge_root_model->GetModelId() != INVALID_MODEL_ID && graph_node->GetLoadFlag()) {
  237. rt_ret = rtSetDevice(GetContext().DeviceId());
  238. if (rt_ret != RT_ERROR_NONE) {
  239. GELOGW("[GraphManager] rtSetDevice failed, modelId=%u, graphId=%u.", ge_root_model->GetModelId(), iter->first);
  240. unload_model_ret = FAILED;
  241. continue;
  242. }
  243. ret = GraphLoader::UnloadModel(ge_root_model->GetModelId());
  244. if (ret != SUCCESS) {
  245. GELOGW("[GraphManager] unload model failed, modelId=%u, graphId=%u.", ge_root_model->GetModelId(), iter->first);
  246. unload_model_ret = ret;
  247. }
  248. rt_ret = rtDeviceReset(GetContext().DeviceId());
  249. if (rt_ret != RT_ERROR_NONE) {
  250. GELOGW("[GraphManager] rtDeviceReset failed, modelId=%u, graphId=%u.", ge_root_model->GetModelId(),
  251. iter->first);
  252. unload_model_ret = FAILED;
  253. continue;
  254. }
  255. }
  256. // clear analyzer saved info(graph level)
  257. auto compute_graph = GraphUtils::GetComputeGraph(*graph_node->GetGraph());
  258. GE_CHECK_NOTNULL(compute_graph);
  259. auto session_id = compute_graph->GetSessionID();
  260. auto graph_id = compute_graph->GetGraphID();
  261. Analyzer::GetInstance()->DestroyGraphJsonObject(session_id, graph_id);
  262. }
  263. graph_map_.clear();
  264. cache_helper_map_.clear();
  265. // graph context
  266. if (graph_context_ != nullptr) {
  267. Status ret_final = graph_context_->Finalize();
  268. if (ret_final != SUCCESS) {
  269. GELOGE(ret_final, "[GraphManager] graph context Finalize failed!");
  270. unload_model_ret = ret_final;
  271. }
  272. }
  273. init_flag_ = false;
  274. return unload_model_ret;
  275. }
  276. Status GraphManager::InitDynamicParams(ComputeGraphPtr &compute_graph) {
  277. for (const auto &node : compute_graph->GetAllNodes()) {
  278. auto op_desc = node->GetOpDesc();
  279. if (op_desc == nullptr) {
  280. continue;
  281. }
  282. GetLocalOmgContext().need_multi_batch = false;
  283. std::string op_type;
  284. auto ret = GetOriginalType(node, op_type);
  285. if (ret != SUCCESS) {
  286. GELOGE(FAILED, "Failed to get node %s original type.", node->GetName().c_str());
  287. return FAILED;
  288. }
  289. if ((op_desc->GetType() == DATA) || (op_type == kGetNextName)) {
  290. GELOGI("Need to process multi batch for compute graph.");
  291. GetLocalOmgContext().need_multi_batch = true;
  292. break;
  293. }
  294. }
  295. if (!options_.input_shape.empty() && !options_.dynamic_dims.empty()) {
  296. if (!ge::ParseInputShape(options_.input_shape, GetLocalOmgContext().input_dims,
  297. GetLocalOmgContext().user_input_dims, true)) {
  298. GELOGE(GRAPH_PARAM_INVALID, "Failed to parse input shape: %s.", options_.input_shape.c_str());
  299. return GRAPH_PARAM_INVALID;
  300. }
  301. GetLocalOmgContext().dynamic_dims = options_.dynamic_dims;
  302. }
  303. if (options_.dynamic_node_type == kDynamicDimsTypeIsGetNext) {
  304. GetLocalOmgContext().dynamic_node_type = GETNEXT;
  305. }
  306. if (options_.dynamic_node_type == kDynamicDimsTypeIsData) {
  307. GetLocalOmgContext().dynamic_node_type = DATA;
  308. }
  309. return SUCCESS;
  310. }
  311. Status GraphManager::AddGraph(const GraphId &graph_id, const Graph &graph,
  312. const std::map<std::string, std::string> &options,
  313. const OmgContext &omg_context) {
  314. if (HasGraphNode(graph_id)) {
  315. GELOGE(GE_GRAPH_GRAPH_ALREADY_EXIST, "[GraphManager] graph exists, graph_id = %u.", graph_id);
  316. return GE_GRAPH_GRAPH_ALREADY_EXIST;
  317. }
  318. auto compute_graph = GraphUtils::GetComputeGraph(graph);
  319. if (compute_graph != nullptr) {
  320. compute_graph->SetGraphID(graph_id);
  321. bool graph_has_been_added = false;
  322. if (AttrUtils::GetBool(*compute_graph, ATTR_NAME_GRAPH_HAS_BEEN_ADDED, graph_has_been_added)
  323. && graph_has_been_added) {
  324. GELOGE(GE_GRAPH_GRAPH_ALREADY_EXIST,
  325. "[GraphManager] same graph object can not be added again, graph_id = %u.", graph_id);
  326. return GE_GRAPH_GRAPH_ALREADY_EXIST;
  327. }
  328. (void)AttrUtils::SetBool(*compute_graph, ATTR_NAME_GRAPH_HAS_BEEN_ADDED, true);
  329. compute_graph_ = compute_graph;
  330. } else {
  331. GELOGE(FAILED, "compute graph is null");
  332. return FAILED;
  333. }
  334. std::string session_graph_id;
  335. if (!AttrUtils::GetStr(*compute_graph, ATTR_NAME_SESSION_GRAPH_ID, session_graph_id) || session_graph_id.empty()) {
  336. session_graph_id = "-1_" + to_string(graph_id);
  337. if (!AttrUtils::SetStr(*compute_graph, ATTR_NAME_SESSION_GRAPH_ID, session_graph_id)) {
  338. GELOGW("Set attribute of compute graph failed.");
  339. }
  340. for (auto &subgraph : compute_graph->GetAllSubgraphs()) {
  341. (void)AttrUtils::SetStr(*subgraph, ATTR_NAME_SESSION_GRAPH_ID, session_graph_id);
  342. }
  343. GELOGD("Get graph session_graph_id attr failed, set session id to default value: [0]");
  344. }
  345. GraphNodePtr graph_node = MakeShared<ge::GraphNode>(graph_id);
  346. GE_IF_BOOL_EXEC(graph_node == nullptr, GELOGE(FAILED, "GraphNode make shared failed");
  347. return FAILED);
  348. std::shared_ptr<Graph> graph_ptr = MakeShared<ge::Graph>(graph);
  349. GE_IF_BOOL_EXEC(graph_ptr == nullptr, GELOGE(FAILED, "GraphPtr make shared failed");
  350. return FAILED);
  351. graph_node->SetGraph(graph_ptr);
  352. graph_node->SetOptions(options);
  353. AddGraphNode(graph_id, graph_node);
  354. AddLocalOmgContext(graph_id, omg_context);
  355. if (!options_.output_datatype.empty()) {
  356. GetLocalOmgContext().output_type = options_.output_datatype;
  357. }
  358. if (InitDynamicParams(compute_graph) != SUCCESS) {
  359. GELOGE(GRAPH_PARAM_INVALID, "Failed to init params when online infer is dynamic.");
  360. return GRAPH_PARAM_INVALID;
  361. }
  362. CompilerStages &stages = GetCompilerStages(graph_id);
  363. stages.preparer.SetOptions(options_);
  364. Status status = stages.optimizer.SetOptions(options_);
  365. if (status != SUCCESS) {
  366. GELOGE(status, "Graph optimizer set options failed.");
  367. return status;
  368. }
  369. stages.builder.SetOptions(options_);
  370. var_acc_ctrl_.AddGraph(graph_id, compute_graph);
  371. return SUCCESS;
  372. }
  373. Status GraphManager::AddGraphWithCopy(const GraphId &graph_id, const Graph &graph,
  374. const std::map<std::string, std::string> &options,
  375. const OmgContext &omg_context) {
  376. if (HasGraphNode(graph_id)) {
  377. GELOGE(GE_GRAPH_GRAPH_ALREADY_EXIST, "[GraphManager] graph exists, graph_id = %u.", graph_id);
  378. return GE_GRAPH_GRAPH_ALREADY_EXIST;
  379. }
  380. auto compute_graph = GraphUtils::GetComputeGraph(graph);
  381. if (compute_graph != nullptr) {
  382. compute_graph->SetGraphID(graph_id);
  383. bool graph_has_been_added = false;
  384. if (AttrUtils::GetBool(*compute_graph, ATTR_NAME_GRAPH_HAS_BEEN_ADDED, graph_has_been_added)
  385. && graph_has_been_added) {
  386. GELOGE(GE_GRAPH_GRAPH_ALREADY_EXIST,
  387. "[GraphManager] same graph object can not be added again, graph_id = %u.", graph_id);
  388. return GE_GRAPH_GRAPH_ALREADY_EXIST;
  389. }
  390. } else {
  391. GELOGE(FAILED, "compute graph is null");
  392. return FAILED;
  393. }
  394. std::vector<NodePtr> input_nodes;
  395. std::vector<NodePtr> output_nodes;
  396. auto new_compute_graph = GraphUtils::CloneGraph(compute_graph, "", input_nodes, output_nodes);
  397. std::string session_graph_id;
  398. if (!AttrUtils::GetStr(*new_compute_graph, ATTR_NAME_SESSION_GRAPH_ID, session_graph_id) ||
  399. session_graph_id.empty()) {
  400. session_graph_id = "-1_" + to_string(graph_id);
  401. if (!AttrUtils::SetStr(*new_compute_graph, ATTR_NAME_SESSION_GRAPH_ID, session_graph_id)) {
  402. GELOGW("Set attribute of compute graph failed.");
  403. }
  404. for (auto &subgraph : new_compute_graph->GetAllSubgraphs()) {
  405. (void)AttrUtils::SetStr(*subgraph, ATTR_NAME_SESSION_GRAPH_ID, session_graph_id);
  406. }
  407. GELOGD("Get graph session_graph_id attr failed, set session id to default value: [0]");
  408. }
  409. GraphNodePtr graph_node = MakeShared<ge::GraphNode>(graph_id);
  410. if (graph_node == nullptr) {
  411. GELOGE(FAILED, "GraphNode make shared failed");
  412. return FAILED;
  413. }
  414. std::shared_ptr<Graph> graph_ptr = GraphUtils::CreateGraphPtrFromComputeGraph(new_compute_graph);
  415. if (graph_ptr == nullptr) {
  416. GELOGE(FAILED, "GraphPtr make shared failed");
  417. return FAILED;
  418. }
  419. graph_node->SetGraph(graph_ptr);
  420. graph_node->SetOptions(options);
  421. AddGraphNode(graph_id, graph_node);
  422. AddLocalOmgContext(graph_id, omg_context);
  423. if (!options_.output_datatype.empty()) {
  424. GetLocalOmgContext().output_type = options_.output_datatype;
  425. }
  426. CompilerStages &stages = GetCompilerStages(graph_id);
  427. stages.preparer.SetOptions(options_);
  428. Status status = stages.optimizer.SetOptions(options_);
  429. if (status != SUCCESS) {
  430. GELOGE(status, "Graph optimizer set options failed.");
  431. return status;
  432. }
  433. stages.builder.SetOptions(options_);
  434. var_acc_ctrl_.AddGraph(graph_id, new_compute_graph);
  435. return SUCCESS;
  436. }
  437. Status GraphManager::MergeSubGraph(ComputeGraphPtr &compute_graph, const ge::ComputeGraphPtr &original_compute_graph,
  438. GraphId root_graph_id) {
  439. std::shared_ptr<GELib> instance_ptr = ge::GELib::GetInstance();
  440. GraphPartitioner &partitioner = GetCompilerStages(root_graph_id).partitioner;
  441. if (instance_ptr != nullptr && instance_ptr->InitFlag()) {
  442. Status ret = partitioner.MergeAfterSubGraphOptimization(compute_graph, original_compute_graph);
  443. if (ret != SUCCESS) {
  444. GELOGE(ret, "merge end and placeholder after subGraph optimization failed.");
  445. return FAILED;
  446. }
  447. Status ret_topo = compute_graph->TopologicalSorting();
  448. if (ret_topo != SUCCESS) {
  449. GELOGE(ret_topo, "[GraphManager]: TopologicalSorting the merged graph failed.");
  450. return ret_topo;
  451. }
  452. } else {
  453. auto subgraph_list = partitioner.GetSubGraphMap();
  454. if (subgraph_list.find(original_compute_graph) != subgraph_list.end() &&
  455. !subgraph_list[original_compute_graph].empty() && subgraph_list[original_compute_graph][0] != nullptr) {
  456. compute_graph = subgraph_list[original_compute_graph][0]->GetSubGraph();
  457. }
  458. }
  459. return SUCCESS;
  460. }
  461. Status GraphManager::CopySubGraphAndMarkFusion(const ComputeGraphPtr &compute_graph,
  462. Graph2SubGraphInfoList &sub_graph_map,
  463. std::unordered_map<std::string, ComputeGraphPtr> &copy_graphs) {
  464. GE_CHECK_NOTNULL(compute_graph);
  465. vector<ComputeGraphPtr> old_compute_graphs;
  466. const auto &root_subgraph_list = sub_graph_map[compute_graph];
  467. for (const auto &subgraph : root_subgraph_list) {
  468. old_compute_graphs.emplace_back(subgraph->GetSubGraph());
  469. }
  470. for (const auto &function_graph : compute_graph->GetAllSubgraphs()) {
  471. const auto &subgraph_list = sub_graph_map[function_graph];
  472. for (const auto &subgraph : subgraph_list) {
  473. old_compute_graphs.emplace_back(subgraph->GetSubGraph());
  474. }
  475. }
  476. for (const auto &old_compute_graph : old_compute_graphs) {
  477. std::vector<NodePtr> input_nodes;
  478. std::vector<NodePtr> output_nodes;
  479. ComputeGraphPtr new_compute_graph = GraphUtils::CloneGraph(old_compute_graph, "", input_nodes, output_nodes);
  480. if (new_compute_graph == nullptr) {
  481. GELOGE(INTERNAL_ERROR, "Clone graph failed.");
  482. return INTERNAL_ERROR;
  483. }
  484. copy_graphs.emplace(old_compute_graph->GetName(), new_compute_graph);
  485. if (!AttrUtils::SetBool(old_compute_graph, ATTR_NAME_NEED_LX_FUSION, true)) {
  486. GELOGE(INTERNAL_ERROR, "Set attr lx_fusion to graph failed.");
  487. return INTERNAL_ERROR;
  488. }
  489. }
  490. GELOGI("Copy %zu graphs successfully.", copy_graphs.size());
  491. return SUCCESS;
  492. }
  493. Status GraphManager::OptimizeSubGraphWithMultiThreads(ComputeGraphPtr compute_graph,
  494. Graph2SubGraphInfoList &sub_graph_map, uint64_t session_id) {
  495. GE_CHECK_NOTNULL(compute_graph);
  496. // use default 16 multi thread
  497. const uint32_t thread_num = 16;
  498. ThreadPool executor(thread_num);
  499. std::vector<std::future<Status>> vector_future;
  500. const auto &root_subgraph_list = sub_graph_map[compute_graph];
  501. std::string op_compile_strategy;
  502. (void)AttrUtils::GetStr(compute_graph, ATTR_NAME_OP_COMPILE_STRATEGY, op_compile_strategy);
  503. GELOGD("OptimizeSubGraphWithMultiThreads Process op_compile_strategy:%s", op_compile_strategy.c_str());
  504. for (const auto &subgraph : root_subgraph_list) {
  505. if (!op_compile_strategy.empty()) {
  506. (void) AttrUtils::SetStr(subgraph->GetSubGraph(), ATTR_NAME_OP_COMPILE_STRATEGY, op_compile_strategy);
  507. }
  508. std::future<Status> f = executor.commit(GraphManager::ProcessSubGraphWithMultiThreads, this,
  509. compute_graph->GetGraphID(), subgraph, compute_graph, session_id,
  510. GetThreadLocalContext());
  511. if (!f.valid()) {
  512. GELOGE(FAILED, "Future is invalid");
  513. return FAILED;
  514. }
  515. vector_future.emplace_back(std::move(f));
  516. }
  517. for (auto &function_graph : compute_graph->GetAllSubgraphs()) {
  518. auto subgraph_list = sub_graph_map[function_graph];
  519. for (const auto &subgraph : subgraph_list) {
  520. if (!op_compile_strategy.empty()) {
  521. (void) AttrUtils::SetStr(subgraph->GetSubGraph(), ATTR_NAME_OP_COMPILE_STRATEGY, op_compile_strategy);
  522. }
  523. std::future<Status> f = executor.commit(GraphManager::ProcessSubGraphWithMultiThreads, this,
  524. compute_graph->GetGraphID(), subgraph, compute_graph, session_id,
  525. GetThreadLocalContext());
  526. if (!f.valid()) {
  527. GELOGE(FAILED, "Future is invalid");
  528. return FAILED;
  529. }
  530. vector_future.emplace_back(std::move(f));
  531. }
  532. }
  533. GELOGD("All sub graph num is %zu", vector_future.size());
  534. for (size_t i = 0; i < vector_future.size(); ++i) {
  535. Status ret_status = vector_future[i].get();
  536. if (ret_status != SUCCESS) {
  537. GELOGE(ret_status, "subgraph %zu optimize failed", i);
  538. return ret_status;
  539. }
  540. }
  541. return SUCCESS;
  542. }
  543. bool GraphManager::CheckAllFusionOptimizeSuccess(const ComputeGraphPtr &compute_graph,
  544. Graph2SubGraphInfoList &sub_graph_map) {
  545. if (compute_graph == nullptr) {
  546. GELOGE(PARAM_INVALID, "Input param compute_graph is nullptr.");
  547. return false;
  548. }
  549. /// 1. FE will set attr optimize_group with true(false) while lx fusion is success(fail);
  550. /// 2. FE will not set attr optimize_group while fe.ini set l2fusion enable false;
  551. /// 3. Other engine will not set attr optimize_group.
  552. const auto &root_subgraph_list = sub_graph_map[compute_graph];
  553. for (const auto &subgraph : root_subgraph_list) {
  554. bool optimize_group = true;
  555. (void) AttrUtils::GetBool(subgraph->GetSubGraph(), ATTR_NAME_OPTIMIZE_GROUP, optimize_group);
  556. if (!optimize_group) {
  557. GELOGW("Run lx optimize for subgraph:%s failed.", subgraph->GetSubGraph()->GetName().c_str());
  558. return false;
  559. }
  560. }
  561. for (auto &function_graph : compute_graph->GetAllSubgraphs()) {
  562. const auto &subgraph_list = sub_graph_map[function_graph];
  563. for (const auto &subgraph : subgraph_list) {
  564. bool optimize_group = true;
  565. (void) AttrUtils::GetBool(subgraph->GetSubGraph(), ATTR_NAME_OPTIMIZE_GROUP, optimize_group);
  566. if (!optimize_group) {
  567. GELOGW("Run lx optimize for subgraph:%s failed.", subgraph->GetSubGraph()->GetName().c_str());
  568. return false;
  569. }
  570. }
  571. }
  572. GELOGI("All subgraph are optimized successfully, no need to reuse buffer optimize.");
  573. return true;
  574. }
  575. Status GraphManager::ReplaceSubgraphWithOriGraph(const ComputeGraphPtr &compute_graph,
  576. Graph2SubGraphInfoList &sub_graph_map,
  577. std::unordered_map<std::string, ComputeGraphPtr> &copy_graphs) {
  578. GE_CHECK_NOTNULL(compute_graph);
  579. const auto &root_subgraph_list = sub_graph_map[compute_graph];
  580. for (const auto &subgraph : root_subgraph_list) {
  581. auto iter = copy_graphs.find(subgraph->GetSubGraph()->GetName());
  582. if (iter == copy_graphs.end()) {
  583. GELOGE(FAILED, "Can not find subgraph:%s in copy graphs.", subgraph->GetSubGraph()->GetName().c_str());
  584. return FAILED;
  585. }
  586. subgraph->SetSubGraph(iter->second);
  587. }
  588. for (auto &function_graph : compute_graph->GetAllSubgraphs()) {
  589. const auto &subgraph_list = sub_graph_map[function_graph];
  590. for (const auto &subgraph : subgraph_list) {
  591. auto iter = copy_graphs.find(subgraph->GetSubGraph()->GetName());
  592. if (iter == copy_graphs.end()) {
  593. GELOGE(FAILED, "Can not find subgraph:%s in copy graphs.", subgraph->GetSubGraph()->GetName().c_str());
  594. return FAILED;
  595. }
  596. subgraph->SetSubGraph(iter->second);
  597. }
  598. }
  599. GELOGI("All subgraphs are successfully replaced.");
  600. return SUCCESS;
  601. }
  602. Status GraphManager::SetSubgraph(uint64_t session_id, ComputeGraphPtr compute_graph, GraphPartitioner &partitioner) {
  603. GE_CHECK_NOTNULL(compute_graph);
  604. auto sub_graph_map = partitioner.GetSubGraphMap();
  605. GELOGD("Directly optimize subgraph with build mode:%s, and step:%s.",
  606. options_.build_mode.c_str(),
  607. options_.build_step.c_str());
  608. Status ret = OptimizeSubGraphWithMultiThreads(compute_graph, sub_graph_map, session_id);
  609. if (ret != SUCCESS) {
  610. GELOGE(ret, "Multiply optimize subgraph failed");
  611. return ret;
  612. }
  613. return SUCCESS;
  614. }
  615. #define GM_RUN_AND_DUMP_PERF(name, func, ...) \
  616. do { \
  617. GE_RUN_PERF(GraphManager, func, __VA_ARGS__); \
  618. GE_DUMP(compute_graph, "PreRunAfter" name); \
  619. GELOGI("Run %s on graph %s(%u) success.", name, compute_graph->GetName().c_str(), graph_node->GetGraphId()); \
  620. } while (0)
  621. Status GraphManager::PreRunOptimizeOriginalGraph(const GraphNodePtr &graph_node, const std::vector<GeTensor> &inputs,
  622. ge::ComputeGraphPtr &compute_graph, uint64_t session_id) {
  623. GE_CHECK_NOTNULL(graph_node);
  624. GE_CHECK_NOTNULL(compute_graph);
  625. CompilerStages &stages = GetCompilerStages(graph_node->GetGraphId());
  626. GM_RUN_AND_DUMP_PERF("OptimizeGraphPrepare", stages.optimizer.OptimizeOriginalGraphForQuantize, compute_graph);
  627. GM_RUN_AND_DUMP_PERF("HandleSummaryOp", stages.optimizer.HandleSummaryOp, compute_graph);
  628. GM_RUN_AND_DUMP_PERF("Prepare", stages.preparer.PrepareDynShape, graph_node->GetGraph(), inputs, compute_graph,
  629. session_id);
  630. GM_RUN_AND_DUMP_PERF("OptimizeOriginalGraph", stages.optimizer.OptimizeOriginalGraph, compute_graph);
  631. GM_RUN_AND_DUMP_PERF("PrepareRunningFormatRefiner", stages.preparer.PrepareRunningFormatRefiner);
  632. GM_RUN_AND_DUMP_PERF("RefineRunningFormat", stages.optimizer.OptimizeOriginalGraphJudgeInsert, compute_graph);
  633. GM_RUN_AND_DUMP_PERF("SubexpressionMigration", SubexpressionMigration, compute_graph);
  634. GE_RUN(GraphManager, stages.preparer.RecordAIPPInfo, compute_graph);
  635. if (IsTailingOptimization()) {
  636. GM_RUN_AND_DUMP_PERF("OptimizeSwitchOp", stages.preparer.SwitchOpOptimize, compute_graph);
  637. }
  638. GM_RUN_AND_DUMP_PERF("Optimize1", OptimizeStage1, compute_graph);
  639. GM_RUN_AND_DUMP_PERF("InferShape2", compute_graph->InferShapeInNeed);
  640. PassManager graph_pass;
  641. GE_CHK_STATUS_RET(graph_pass.AddPass("PreRun::CtrlEdgeTransferPass", new (std::nothrow) CtrlEdgeTransferPass))
  642. GE_CHK_STATUS_RET(graph_pass.Run(compute_graph));
  643. GE_CHK_STATUS_RET(stages.optimizer.IdentifyReference(compute_graph), "Identify reference failed.");
  644. GELOGD("PreRun:PreRunOptimizeOriginalGraph success.");
  645. return SUCCESS;
  646. }
  647. Status GraphManager::PreRunOptimizeSubGraph(const GraphNodePtr &graph_node,
  648. ge::ComputeGraphPtr &compute_graph,
  649. uint64_t session_id) {
  650. GE_CHECK_NOTNULL(graph_node);
  651. GE_CHECK_NOTNULL(compute_graph);
  652. GM_RUN_AND_DUMP_PERF("OptimizeSubgraph", OptimizeSubgraph, graph_node, compute_graph, session_id);
  653. // Dump graph to tuning path
  654. if (options_.build_mode == BUILD_MODE_TUNING && options_.build_step == BUILD_STEP_AFTER_UB_MATCH) {
  655. std::string tuning_path;
  656. (void) GetContext().GetOption(TUNING_PATH, tuning_path);
  657. GELOGD("Dump path:%s.", tuning_path.c_str());
  658. GraphUtils::DumpGEGraph(compute_graph, "", true, tuning_path);
  659. }
  660. GELOGD("PreRun:PreRunOptimizeSubGraph success.");
  661. return SUCCESS;
  662. }
  663. Status GraphManager::PreRunAfterOptimizeSubGraph(const GraphNodePtr &graph_node, ComputeGraphPtr &compute_graph,
  664. GeRootModelPtr &ge_root_model, uint64_t session_id) {
  665. GE_CHECK_NOTNULL(graph_node);
  666. GE_CHECK_NOTNULL(compute_graph);
  667. GM_RUN_AND_DUMP_PERF("Optimize2", OptimizeStage2, compute_graph);
  668. GM_RUN_AND_DUMP_PERF("OptimizeGraphBeforeBuildForRts",
  669. GetCompilerStages(graph_node->GetGraphId()).optimizer.OptimizeGraphBeforeBuildForRts,
  670. compute_graph);
  671. Status ret = compute_graph->TopologicalSorting();
  672. if (ret != SUCCESS) {
  673. GELOGE(ret, "Graph topological sort failed, ret:%d.", ret);
  674. return ret;
  675. }
  676. GM_RUN_AND_DUMP_PERF("Build", Build, graph_node, compute_graph, ge_root_model, session_id);
  677. GELOGD("PreRun:PreRunAfterOptimizeSubGraph success.");
  678. return SUCCESS;
  679. }
  680. Status GraphManager::SetRtContext(rtContext_t rt_context, rtCtxMode_t mode, uint64_t session_id, uint32_t graph_id) {
  681. GELOGD("set rt_context, session id: %lu, graph id: %u, mode %d, device id:%u.", session_id, graph_id,
  682. static_cast<int>(mode), ge::GetContext().DeviceId());
  683. rtError_t rt_ret = rtCtxCreate(&rt_context, mode, ge::GetContext().DeviceId());
  684. if (rt_ret != RT_ERROR_NONE) {
  685. GELOGE(FAILED, "Call rt api failed, ret: 0x%X", rt_ret);
  686. return FAILED;
  687. }
  688. rt_ret = rtCtxSetCurrent(rt_context);
  689. if (rt_ret != RT_ERROR_NONE) {
  690. GELOGE(FAILED, "Call rt api failed, ret: 0x%X", rt_ret);
  691. return FAILED;
  692. }
  693. RtContextUtil::GetInstance().AddRtContext(session_id, graph_id, rt_context);
  694. return SUCCESS;
  695. }
  696. Status GraphManager::PreRun(const GraphNodePtr &graph_node, const std::vector<GeTensor> &inputs,
  697. GeRootModelPtr &ge_root_model, uint64_t session_id) {
  698. GE_CHECK_NOTNULL(graph_node);
  699. GE_CHECK_NOTNULL(graph_node->GetGraph());
  700. auto compute_graph = GraphUtils::GetComputeGraph(*graph_node->GetGraph());
  701. GE_CHECK_NOTNULL(compute_graph);
  702. compute_graph->SetSessionID(session_id);
  703. auto analyzer_instance = Analyzer::GetInstance();
  704. GE_CHK_STATUS_RET(analyzer_instance->BuildJsonObject(session_id, compute_graph->GetGraphID()),
  705. "BuildJsonObject Failed")
  706. GEEVENT("PreRun start, graph node size %zu, session id %lu, graph id %u, graph name %s",
  707. compute_graph->GetDirectNodesSize(), session_id, compute_graph->GetGraphID(),
  708. compute_graph->GetName().c_str());
  709. GE_DUMP(compute_graph, "PreRunBegin");
  710. // rtContext_t
  711. Status ret = SetRtContext(rtContext_t(), RT_CTX_GEN_MODE, session_id, compute_graph->GetGraphID());
  712. if (ret != SUCCESS) {
  713. GELOGE(ret, "Set rt context failed.");
  714. return ret;
  715. }
  716. /// 1. BUILD_MODE_TUNING with BUILD_STEP_AFTER_UB_MATCH no need PreRunOptimizeOriginalGraph;
  717. /// 2. BUILD_MODE_TUNING with BUILD_STEP_AFTER_MERGE no need PreRunOptimizeOriginalGraph.
  718. /// 3. BUILD_MODE_TUNING with BUILD_STEP_AFTER_BUILDER_SUB no need PreRunOptimizeOriginalGraph.
  719. bool run_optimize_original_graph = !((options_.build_mode == BUILD_MODE_TUNING) &&
  720. (options_.build_step == BUILD_STEP_AFTER_UB_MATCH ||
  721. options_.build_step == BUILD_STEP_AFTER_MERGE ||
  722. options_.build_step == BUILD_STEP_AFTER_BUILDER_SUB));
  723. if (run_optimize_original_graph) {
  724. Status ret = PreRunOptimizeOriginalGraph(graph_node, inputs, compute_graph, session_id);
  725. if (ret != SUCCESS) {
  726. GELOGE(ret, "Run PreRunOptimizeOriginalGraph failed for graph:%s.", compute_graph->GetName().c_str());
  727. return ret;
  728. }
  729. }
  730. ret = PreRunOptimizeSubGraph(graph_node, compute_graph, session_id);
  731. if (ret != SUCCESS) {
  732. GELOGE(ret, "Run PreRunOptimizeSubGraph failed for graph:%s.", compute_graph->GetName().c_str());
  733. return ret;
  734. }
  735. /// 1. BUILD_MODE_TUNING with BUILD_STEP_BEFORE_UB_MATCH no need PreRunAfterOptimizeSubGraph;
  736. /// 2. BUILD_MODE_TUNING with BUILD_STEP_AFTER_BUILDER no need PreRunAfterOptimizeSubGraph.
  737. /// 3. BUILD_MODE_TUNING with BUILD_STEP_AFTER_BUILDER_SUB no need PreRunAfterOptimizeSubGraph.
  738. bool run_after_optimize_subgraph = !((options_.build_mode == BUILD_MODE_TUNING) &&
  739. (options_.build_step == BUILD_STEP_BEFORE_UB_MATCH ||
  740. options_.build_step == BUILD_STEP_AFTER_BUILDER ||
  741. options_.build_step == BUILD_STEP_AFTER_BUILDER_SUB));
  742. if (run_after_optimize_subgraph) {
  743. Status ret = PreRunAfterOptimizeSubGraph(graph_node, compute_graph, ge_root_model, session_id);
  744. if (ret != SUCCESS) {
  745. GELOGE(ret, "Run PreRunAfterOptimizeSubGraph failed for graph:%s.", compute_graph->GetName().c_str());
  746. return ret;
  747. }
  748. }
  749. // when set incre build, save om model and var manager
  750. GeModelPtr ge_model = nullptr;
  751. auto save_ret = SaveCacheAfterBuild(graph_node->GetGraphId(), compute_graph, ge_model);
  752. if (save_ret != SUCCESS) {
  753. GELOGW("Fail to save cache.");
  754. }
  755. GEEVENT("[GEPERFTRACE] GE PreRun End");
  756. return SUCCESS;
  757. }
  758. Status GraphManager::SubexpressionMigration(ComputeGraphPtr &compute_graph) {
  759. PassManager pass_manager;
  760. GE_CHK_STATUS_RET(pass_manager.AddPass("SubexpressionMigrationPass", new (std::nothrow) SubexpressionMigrationPass));
  761. GE_CHK_STATUS_RET(pass_manager.AddPass("UnusedArgsCleanPass", new (std::nothrow) UnusedArgsCleanPass));
  762. GE_TIMESTAMP_START(SubexpressionMigrationPass);
  763. auto ret = pass_manager.Run(compute_graph);
  764. GE_TIMESTAMP_END(SubexpressionMigrationPass, "GraphManager::SubexpressionMigration");
  765. if (ret != SUCCESS && ret != NOT_CHANGED) {
  766. GELOGE(ret, "Run SubexpressionMigrationPass failed, ret:%u.", ret);
  767. return ret;
  768. }
  769. return SUCCESS;
  770. }
  771. Status GraphManager::StartForRunGraph(const GraphNodePtr &graph_node, const std::vector<GeTensor> &inputs,
  772. GeRootModelPtr &ge_root_model, uint64_t session_id) {
  773. // it will not execute graph prreprocess, optimize, parition, build if the graph has built successful.
  774. Status ret = SUCCESS;
  775. if (IsGraphNeedBuild(graph_node)) {
  776. if (graph_node->GetBuildFlag()) {
  777. GELOGE(PARAM_INVALID,
  778. "The graph %u need to re-build, you should remove it from GE "
  779. "first, then AddGraph again and rebuild it.",
  780. graph_node->GetGraphId());
  781. return PARAM_INVALID;
  782. }
  783. GeModelPtr ge_model = nullptr;
  784. // check need incre build.
  785. ret = IncreBuild(graph_node, ge_model);
  786. if (ret != SUCCESS) {
  787. ret = PreRun(graph_node, inputs, ge_root_model, session_id);
  788. // release rts generate context
  789. RtContextUtil::GetInstance().DestroyRtContexts(session_id, graph_node->GetGraphId());
  790. if (ret != SUCCESS) {
  791. GELOGE(ret, "PreRun Failed.");
  792. return ret;
  793. }
  794. }
  795. if (!graph_node->IsAsync()) {
  796. ret = LoadGraph(ge_root_model, graph_node);
  797. } else {
  798. ret = LoadGraphAsync(ge_root_model, graph_node);
  799. }
  800. if (ret != SUCCESS) {
  801. GELOGE(ret, "LoadGraph Failed.");
  802. return ret;
  803. }
  804. graph_node->SetBuildFlag(true);
  805. var_acc_ctrl_.SetGraphBuildEnd(graph_node->GetGraphId());
  806. } else if (!graph_node->GetLoadFlag()) {
  807. GeRootModelPtr ge_root_model_ptr = graph_node->GetGeRootModel();
  808. if (!graph_node->IsAsync()) {
  809. ret = LoadGraph(ge_root_model_ptr, graph_node);
  810. } else {
  811. ret = LoadGraphAsync(ge_root_model_ptr, graph_node);
  812. }
  813. if (ret != SUCCESS) {
  814. GELOGE(ret, "LoadGraph Failed.");
  815. return ret;
  816. }
  817. }
  818. return ret;
  819. }
  820. Status GraphManager::LoadGraph(const GeRootModelPtr &ge_root_model, const GraphNodePtr &graph_node) {
  821. GELOGI("[LoadGraph] run_graph_flag[%d], graph_id[%u]", options_.run_graph_flag, graph_node->GetGraphId());
  822. if (options_.run_graph_flag && ge_root_model != nullptr) {
  823. // synchronization run graph with model
  824. std::shared_ptr<GraphModelListener> model_listener = GetModelListener();
  825. ModelIdInfo model_id_info;
  826. bool is_unknown_shape = false;
  827. GE_CHK_STATUS_RET(ge_root_model->CheckIsUnknownShape(is_unknown_shape));
  828. if (!is_unknown_shape) {
  829. if (getenv(kEnvGeuseStaticMemory) != nullptr) {
  830. GELOGI("[LoadGraph] GE_USE_STATIC_MEMORY is seted.");
  831. } else {
  832. auto root_graph = ge_root_model->GetRootGraph();
  833. GE_CHECK_NOTNULL(root_graph);
  834. auto name_to_model = ge_root_model->GetSubgraphInstanceNameToModel();
  835. GeModelPtr ge_model = name_to_model[root_graph->GetName()];
  836. GE_CHK_STATUS_RET(CheckAndReleaseMemory(ge_model, graph_node));
  837. }
  838. }
  839. GE_TIMESTAMP_START(LoadGraph);
  840. Status ret = GraphLoader::LoadModelOnline(model_id_info.model_id, ge_root_model, model_listener);
  841. GE_TIMESTAMP_EVENT_END(LoadGraph, "GraphManager::LoadGraph");
  842. if (ret != SUCCESS) {
  843. GELOGE(ret, "[StartForRunGraph] LoadGraph Failed");
  844. graph_node->SetRunFlag(false);
  845. return ret;
  846. }
  847. graph_node->SetLoadFlag(true);
  848. ge_root_model->SetModelId(model_id_info.model_id);
  849. graph_node->SetGeRootModel(ge_root_model);
  850. }
  851. return SUCCESS;
  852. }
  853. Status GraphManager::LoadFromCache(const GraphNodePtr &graph_node, const ModelCacheHelperPtr &cache_helper,
  854. GeModelPtr &ge_model) {
  855. auto graph_id = graph_node->GetGraphId();
  856. auto ret = cache_helper->LoadOmModelFromCache(ge_model);
  857. if (ret != SUCCESS) {
  858. GELOGW("Fail to load om model from cache.");
  859. if (cache_helper->ClearCache(graph_id) != SUCCESS) {
  860. GELOGW("Fail to clear cache of graph %u.", graph_id);
  861. }
  862. return FAILED;
  863. }
  864. ret = cache_helper->RecoverVarManagerFromCache();
  865. if (ret != SUCCESS) {
  866. GELOGW("Fail to recover VarManager from cache.");
  867. if (cache_helper->ClearCache(graph_id) != SUCCESS) {
  868. GELOGW("Fail to clear cache of graph %u.", graph_id);
  869. }
  870. return FAILED;
  871. }
  872. ComputeGraphPtr compute_graph_in_model = GraphUtils::GetComputeGraph(ge_model->GetGraph());
  873. if (compute_graph_in_model == nullptr) {
  874. GELOGW("Error occurred when get compute graph from om, abandon.");
  875. return FAILED;
  876. } else {
  877. graph_node->SetComputeGraph(compute_graph_in_model);
  878. graph_node->SetGeModel(ge_model);
  879. GELOGI("Load model and graph form cache om file.");
  880. }
  881. return SUCCESS;
  882. }
  883. Status GraphManager::SaveCacheBeforeBuild(uint32_t graph_id, const ModelCacheHelperPtr &cache_helper) {
  884. auto ret = cache_helper->SaveCacheInfoToCache();
  885. if (ret != SUCCESS) {
  886. GELOGW("Fail to save cache info of graph[%d] to cache.", graph_id);
  887. return FAILED;
  888. }
  889. ret = cache_helper->SaveVarManagerToCache(true);
  890. if (ret != SUCCESS) {
  891. GELOGW("Fail to save var manager to cache.");
  892. cache_helper->ClearCache(graph_id);
  893. return FAILED;
  894. }
  895. GELOGI("Cache files have been saved.");
  896. return SUCCESS;
  897. }
  898. Status GraphManager::SaveCacheAfterBuild(uint32_t graph_id, ge::ComputeGraphPtr graph, GeModelPtr &ge_model) {
  899. std::shared_ptr<GELib> instance_ptr = ge::GELib::GetInstance();
  900. if ((instance_ptr == nullptr) || !instance_ptr->InitFlag()) {
  901. GELOGW("GELib not initialized.");
  902. return FAILED;
  903. }
  904. if (instance_ptr->IsIncreBuild()) {
  905. std::lock_guard<std::mutex> lock(member_mutex_);
  906. auto iter = cache_helper_map_.find(graph_id);
  907. if (iter == cache_helper_map_.end()) {
  908. GELOGW("Can not find ModelCacheHelper of graph[%u]", graph_id);
  909. return FAILED;
  910. } else {
  911. ModelCacheHelperPtr cache_helper = iter->second;
  912. auto ret = cache_helper->RefreshComputeGraph(graph);
  913. if (ret != SUCCESS) {
  914. cache_helper->ClearCache(graph_id);
  915. GELOGW("Fail to refresh cache helper's compute graph");
  916. return FAILED;
  917. }
  918. ret = cache_helper->SaveVarManagerToCache(false);
  919. if (ret != SUCCESS) {
  920. cache_helper->ClearCache(graph_id);
  921. GELOGW("Fail to save VarManager to cache");
  922. return FAILED;
  923. }
  924. ret = cache_helper->SaveOmModelToCache(ge_model);
  925. if (ret != SUCCESS) {
  926. cache_helper->ClearCache(graph_id);
  927. GELOGW("Fail to save om model to cache");
  928. return FAILED;
  929. }
  930. }
  931. }
  932. return SUCCESS;
  933. }
  934. Status GraphManager::InnerRunGraph(GraphNodePtr &graph_node, const GraphId &graph_id,
  935. const std::vector<GeTensor> &inputs, std::vector<GeTensor> &outputs) {
  936. Status ret = graph_executor_.SetCondition(&sync_run_mutex_, &condition_, graph_run_listener_);
  937. if (ret != SUCCESS) {
  938. GELOGE(GE_GRAPH_RUNGRAPH_FAILED, "[RunGraph] set condition failed, graph_id = %u.", graph_id);
  939. graph_node->SetRunFlag(false);
  940. return GE_GRAPH_RUNGRAPH_FAILED;
  941. }
  942. if (GetTrainFlag()) {
  943. GE_CHK_STATUS_RET(graph_executor_.SetGraphContext(GetGraphContext()));
  944. graph_executor_.SetTrainFlag(options_.train_graph_flag);
  945. }
  946. ret = graph_executor_.ExecuteGraph(graph_id, graph_node->GetGeRootModel(), inputs, outputs);
  947. graph_node->SetRunFlag(false);
  948. if (ret != SUCCESS) {
  949. GELOGE(ret, "[RunGraph] execute graph failed, graph_id = %u.", graph_id);
  950. return ret;
  951. }
  952. return SUCCESS;
  953. }
  954. Status GraphManager::RunGraph(const GraphId &graph_id, const std::vector<GeTensor> &inputs,
  955. std::vector<GeTensor> &outputs, uint64_t session_id) {
  956. std::lock_guard<std::mutex> lock(run_mutex_);
  957. GELOGI("[RunGraph] start to run graph, graph_id = %u, is_train_graph: %d", graph_id, GetTrainFlag());
  958. if (inputs.empty()) {
  959. GELOGI("[RunGraph] initialize sub graph has no inputs");
  960. }
  961. // find graph
  962. GraphNodePtr graph_node = nullptr;
  963. Status ret = GetGraphNode(graph_id, graph_node);
  964. if (ret != SUCCESS) {
  965. GELOGE(ret, "[RunGraph] graph not exist, graph_id = %u.", graph_id);
  966. return ret;
  967. }
  968. if (graph_node == nullptr) {
  969. GELOGE(GE_GRAPH_GRAPH_NODE_NULL, "[RunGraph] graph node is NULL, graph_id = %u.", graph_id);
  970. return GE_GRAPH_GRAPH_NODE_NULL;
  971. }
  972. if (graph_node->GetRunFlag()) {
  973. GELOGE(GE_GRAPH_ALREADY_RUNNING, "[RunGraph] graph already running, graph id = %u", graph_id);
  974. return GE_GRAPH_ALREADY_RUNNING;
  975. }
  976. UpdateLocalOmgContext(graph_id);
  977. // set graph's run flag
  978. graph_node->SetRunFlag(true);
  979. ComputeGraphPtr compute_graph_tmp = GraphUtils::GetComputeGraph(*(graph_node->GetGraph()));
  980. GE_IF_BOOL_EXEC(GetTrainFlag(),
  981. GE_IF_BOOL_EXEC(compute_graph_tmp == nullptr,
  982. GELOGE(GE_GRAPH_GRAPH_NODE_NULL,
  983. "[RunGraph] compute_graph_tmp is NULL, graph id = %u.", graph_id);
  984. return GE_GRAPH_GRAPH_NODE_NULL;))
  985. // when set incre build, add cache helper map
  986. AddModelCacheHelperToMap(graph_id, session_id, compute_graph_tmp);
  987. if (options_.local_fmk_op_flag) {
  988. GetCompilerStages(graph_id).optimizer.TranFrameOp(compute_graph_tmp);
  989. }
  990. GeRootModelPtr ge_root_model = nullptr;
  991. ret = StartForRunGraph(graph_node, inputs, ge_root_model, session_id);
  992. if (ret != SUCCESS) {
  993. GELOGE(ret, "[RunGraph] StartForRunGraph failed!");
  994. graph_node->SetRunFlag(false);
  995. return ret;
  996. }
  997. // excute graph
  998. ret = InnerRunGraph(graph_node, graph_id, inputs, outputs);
  999. if (ret != SUCCESS) {
  1000. return ret;
  1001. }
  1002. if (GetTrainFlag()) {
  1003. if (compute_graph_tmp->IsSummaryGraph()) {
  1004. ret = SummaryHandle(graph_id, outputs);
  1005. if (ret != SUCCESS) {
  1006. GELOGE(ret, "[RunGraph] SummaryHandle failed!");
  1007. }
  1008. }
  1009. GeRootModelPtr root_model = graph_node->GetGeRootModel();
  1010. if (root_model != nullptr) {
  1011. GELOGI("Start CheckpointHandle.");
  1012. auto checkPointGraph = root_model->GetRootGraph();
  1013. if (IsCheckpointGraph(checkPointGraph)) {
  1014. ret = CheckpointHandle(graph_id, checkPointGraph, outputs);
  1015. if (ret != SUCCESS) {
  1016. GELOGE(ret, "[RunGraph] CheckpointHandle failed!");
  1017. }
  1018. }
  1019. }
  1020. }
  1021. GELOGI("[RunGraph] run graph success, graph_id = %u.", graph_id);
  1022. return SUCCESS;
  1023. }
  1024. Status GraphManager::GenerateInfershapeGraph(GraphId &graph_id) {
  1025. GELOGI("[DumpInfershapeJson] start to DumpInfershapeJson graph, graph_id=%u.", graph_id);
  1026. // find graph
  1027. GraphNodePtr graph_node = nullptr;
  1028. Status ret = GetGraphNode(graph_id, graph_node);
  1029. if (ret != SUCCESS) {
  1030. GELOGE(ret, "[BuildGraph] graph not exist, graph_id = %u.", graph_id);
  1031. return ret;
  1032. }
  1033. if (graph_node == nullptr) {
  1034. GELOGE(GE_GRAPH_GRAPH_NODE_NULL, "[BuildGraph] graph node is NULL, graphId = %u.", graph_id);
  1035. return GE_GRAPH_GRAPH_NODE_NULL;
  1036. }
  1037. UpdateLocalOmgContext(graph_id);
  1038. ret = GetCompilerStages(graph_id).preparer.GenerateInfershapeGraph(graph_node->GetGraph());
  1039. if (ret != SUCCESS) {
  1040. GELOGE(ret, "ATC dump infershape json failed");
  1041. return ret;
  1042. }
  1043. GELOGI("[DumpInfershapeJson] Dump infershape json success, graph_id=%u.", graph_id);
  1044. return ret;
  1045. }
  1046. Status GraphManager::BuildGraphForUnregisteredOp(const GraphId &graph_id, const std::vector<GeTensor> &inputs,
  1047. GeRootModelPtr &ge_root_model, uint64_t session_id) {
  1048. // find graph
  1049. GraphNodePtr graph_node = nullptr;
  1050. Status ret = GetGraphNode(graph_id, graph_node);
  1051. if (ret != SUCCESS) {
  1052. GELOGE(ret, "[BuildGraph] graph not exist, graph_id = %u.", graph_id);
  1053. return ret;
  1054. }
  1055. if (graph_node == nullptr) {
  1056. GELOGE(GE_GRAPH_GRAPH_NODE_NULL, "[BuildGraph] graph node is NULL, graphId = %u.", graph_id);
  1057. return GE_GRAPH_GRAPH_NODE_NULL;
  1058. }
  1059. UpdateLocalOmgContext(graph_id);
  1060. auto compute_graph = GraphUtils::GetComputeGraph(*graph_node->GetGraph());
  1061. GE_CHECK_NOTNULL(compute_graph);
  1062. GM_RUN_AND_DUMP_PERF("Prepare", GetCompilerStages(graph_id).preparer.PrepareDynShape, graph_node->GetGraph(), inputs,
  1063. compute_graph, session_id);
  1064. for (auto &node : compute_graph->GetAllNodes()) {
  1065. OpDescPtr op_desc = node->GetOpDesc();
  1066. GE_CHECK_NOTNULL(op_desc);
  1067. if (op_desc->HasAttr(ATTR_NAME_UNREGST_OPPATH)) {
  1068. vector<ge::NodePtr> node_vec = {node};
  1069. auto instance_ptr = ge::GELib::GetInstance();
  1070. if (instance_ptr == nullptr || !instance_ptr->InitFlag()) {
  1071. GELOGE(GE_CLI_GE_NOT_INITIALIZED, "GE is not initialized");
  1072. return GE_CLI_GE_NOT_INITIALIZED;
  1073. }
  1074. OpsKernelInfoStorePtr kernel_info =
  1075. instance_ptr->OpsKernelManagerObj().GetOpsKernelInfoStore(op_desc->GetOpKernelLibName());
  1076. if (kernel_info == nullptr) {
  1077. GELOGE(FAILED, "Get op kernel info store failed");
  1078. return FAILED;
  1079. }
  1080. ret = kernel_info->CompileOp(node_vec);
  1081. if (ret != SUCCESS) {
  1082. GELOGE(ret, "Compile op failed, op = %s, graph_id = %u.", op_desc->GetName().c_str(), graph_id);
  1083. return ret;
  1084. }
  1085. }
  1086. }
  1087. GM_RUN_AND_DUMP_PERF("Build", Build, graph_node, compute_graph, ge_root_model, session_id);
  1088. return SUCCESS;
  1089. }
  1090. Status GraphManager::BuildGraph(const GraphId &graph_id, const std::vector<GeTensor> &inputs,
  1091. GeRootModelPtr &ge_root_model, uint64_t session_id, bool async) {
  1092. GELOGD("[BuildGraph] start to build graph, graph_id=%u.", graph_id);
  1093. if (inputs.empty()) {
  1094. GELOGW("[BuildGraph] BuildGraph warning: empty GeTensor inputs");
  1095. }
  1096. // find graph
  1097. GraphNodePtr graph_node = nullptr;
  1098. Status ret = GetGraphNode(graph_id, graph_node);
  1099. if (ret != SUCCESS) {
  1100. GELOGE(ret, "[BuildGraph] graph not exist, graph_id = %u.", graph_id);
  1101. return ret;
  1102. }
  1103. if (graph_node == nullptr) {
  1104. GELOGE(GE_GRAPH_GRAPH_NODE_NULL, "[BuildGraph] graph node is NULL, graphId = %u.", graph_id);
  1105. return GE_GRAPH_GRAPH_NODE_NULL;
  1106. }
  1107. if (graph_node->GetRunFlag()) {
  1108. GELOGE(GE_GRAPH_ALREADY_RUNNING, "[BuildGraph] graph already running, graph id = %u", graph_node->GetGraphId());
  1109. return GE_GRAPH_ALREADY_RUNNING;
  1110. }
  1111. UpdateLocalOmgContext(graph_id);
  1112. graph_node->SetAsync(async);
  1113. // set graph's run flag
  1114. graph_node->SetRunFlag(true);
  1115. ret = StartForRunGraph(graph_node, inputs, ge_root_model, session_id);
  1116. graph_node->SetRunFlag(false);
  1117. if (ret != SUCCESS) {
  1118. GELOGE(GE_GRAPH_PRERUN_FAILED, "[BuildGraph] StartForRunGraph failed!");
  1119. return GE_GRAPH_PRERUN_FAILED;
  1120. }
  1121. GELOGI("[BuildGraph] build graph success, graph_id=%u.", graph_id);
  1122. return ret;
  1123. }
  1124. ///
  1125. /// @ingroup ge_graph
  1126. /// @brief Save extra attribute to Model
  1127. /// @param [in] model: Model attribues will save to.
  1128. /// @param [in] type: type of OpDesc.
  1129. /// @param [in] attrs: attributes of OpDesc.
  1130. /// @param [in] inputs: inputs tensor.
  1131. /// @param [in] outputs: outputs tensor.
  1132. /// @return: Status
  1133. ///
  1134. Status GraphManager::SaveParams(ge::GeModel &model, const std::string &type, const std::map<string, GeAttrValue> &attrs,
  1135. const std::vector<GeTensor> &inputs, const std::vector<GeTensor> &outputs) {
  1136. GE_CHK_BOOL_EXEC(ge::AttrUtils::SetStr(&model, "ATTR_MODEL_OP_TYPE", type), return FAILED, "Set Op[%s] type fail",
  1137. type.c_str());
  1138. for (const auto &it : attrs) {
  1139. GE_CHK_BOOL_EXEC(model.SetAttr("ATTR_MODEL_" + it.first, it.second) == GRAPH_SUCCESS, return FAILED,
  1140. "Set OpDesc attribute[%s] fail", it.first.c_str());
  1141. }
  1142. GE_CHK_BOOL_EXEC(ge::AttrUtils::SetListTensor(&model, "ATTR_MODEL_TENSOR_INPUTS", inputs), return FAILED,
  1143. "Set Inputs tensor list fail");
  1144. GE_CHK_BOOL_EXEC(ge::AttrUtils::SetListTensor(&model, "ATTR_MODEL_TENSOR_OUTPUTS", outputs), return FAILED,
  1145. "Set Outputs tensor list fail");
  1146. return SUCCESS;
  1147. }
  1148. void GraphManager::RemoveModelCacheHelper(const GraphId &graph_id) {
  1149. std::lock_guard<std::mutex> lock(member_mutex_);
  1150. auto iter = cache_helper_map_.find(graph_id);
  1151. if (iter != cache_helper_map_.end()) {
  1152. cache_helper_map_.erase(iter);
  1153. } else {
  1154. GELOGW("[GraphManager] cache helper does not exist, graph_id = %u", graph_id);
  1155. }
  1156. }
  1157. bool GraphManager::CheckModelLoad(const GeRootModelPtr &ge_root_model, bool load_flag) {
  1158. return ((ge_root_model != nullptr) && (ge_root_model->GetModelId() != INVALID_MODEL_ID) && load_flag);
  1159. }
  1160. Status GraphManager::RemoveGraph(const GraphId &graph_id) {
  1161. GraphNodePtr graph_node = nullptr;
  1162. Status ret = GetGraphNode(graph_id, graph_node);
  1163. if (ret != SUCCESS) {
  1164. GELOGE(GE_GRAPH_GRAPH_NOT_EXIST, "[GraphManager] Id %u does not exists.", graph_id);
  1165. return GE_GRAPH_GRAPH_NOT_EXIST;
  1166. }
  1167. if ((graph_node == nullptr) || (graph_node->GetRunFlag())) {
  1168. GELOGE(GE_GRAPH_GRAPH_IS_RUNNING, "[GraphManager] Id %u is running, can't be deleted.", graph_id);
  1169. return GE_GRAPH_GRAPH_IS_RUNNING;
  1170. }
  1171. std::lock_guard<std::mutex> lock(unload_model_mutex_);
  1172. Status middle_ret;
  1173. rtError_t rt_ret;
  1174. const std::vector<SubGraphInfoPtr> &all_sub_graph = graph_node->GetAllSubGraph();
  1175. for (size_t i = 0; i < all_sub_graph.size(); ++i) {
  1176. // must free buffer firstly
  1177. middle_ret = all_sub_graph[i]->FreeInOutBuffer();
  1178. if (middle_ret != SUCCESS) {
  1179. GELOGE(middle_ret, "[GraphManager] RemoveGraph free mem failed, graph_id=%u.", graph_id);
  1180. ret = middle_ret;
  1181. }
  1182. if (all_sub_graph[i]->GeModelIsValid() && all_sub_graph[i]->GetModelIdInfo().model_id != INVALID_MODEL_ID) {
  1183. // unload model
  1184. GELOGI("UnloadModel via new ome.");
  1185. rt_ret = rtSetDevice(GetContext().DeviceId());
  1186. if (rt_ret != RT_ERROR_NONE) {
  1187. GELOGE(RT_FAILED, "[GraphManager:] rtSetDevice failed, modelId=%u, graphId=%u.",
  1188. all_sub_graph[i]->GetModelIdInfo().model_id, graph_id);
  1189. ret = FAILED;
  1190. continue;
  1191. }
  1192. middle_ret = GraphLoader::UnloadModel(all_sub_graph[i]->GetModelIdInfo().model_id);
  1193. if (middle_ret != SUCCESS) {
  1194. GELOGE(middle_ret, "[GraphManager:] unload model failed, modelId=%u, graph_id=%u.",
  1195. all_sub_graph[i]->GetModelIdInfo().model_id, graph_id);
  1196. ret = middle_ret;
  1197. }
  1198. rt_ret = rtDeviceReset(GetContext().DeviceId());
  1199. if (rt_ret != RT_ERROR_NONE) {
  1200. GELOGE(RT_FAILED, "[GraphManager:] unload model failed, modelId=%u, graphId=%u.",
  1201. all_sub_graph[i]->GetModelIdInfo().model_id, graph_id);
  1202. ret = FAILED;
  1203. }
  1204. }
  1205. }
  1206. var_acc_ctrl_.RemoveGraph(graph_id);
  1207. RemoveGraphNode(graph_id);
  1208. RemoveModelCacheHelper(graph_id);
  1209. auto ge_root_model = graph_node->GetGeRootModel();
  1210. if (CheckModelLoad(ge_root_model, graph_node->GetLoadFlag())) {
  1211. GELOGI("Unload model %u.", ge_root_model->GetModelId());
  1212. rt_ret = rtSetDevice(GetContext().DeviceId());
  1213. if (rt_ret != RT_ERROR_NONE) {
  1214. GELOGE(RT_FAILED, "[GraphManager:] rtSetDevice failed, modelId=%u, graphId=%u.", ge_root_model->GetModelId(),
  1215. graph_id);
  1216. return FAILED;
  1217. }
  1218. middle_ret = GraphLoader::UnloadModel(ge_root_model->GetModelId());
  1219. if (middle_ret != SUCCESS) {
  1220. GELOGE(middle_ret, "[GraphManager:] unload model failed, modelId=%u, graph_id=%u.", ge_root_model->GetModelId(),
  1221. graph_id);
  1222. ret = middle_ret;
  1223. }
  1224. rt_ret = rtDeviceReset(GetContext().DeviceId());
  1225. if (rt_ret != RT_ERROR_NONE) {
  1226. GELOGE(RT_FAILED, "[GraphManager:] rtDeviceReset failed, modelId=%u, graphId=%u.", ge_root_model->GetModelId(),
  1227. graph_id);
  1228. ret = FAILED;
  1229. }
  1230. }
  1231. RemoveCompilerStages(graph_id);
  1232. GE_CHK_STATUS_RET(ret, "[GraphManager:] Remove graph failed, graph_id=%u.", graph_id);
  1233. GELOGI("[GraphManager] remove graph success, graph_id=%u.", graph_id);
  1234. return SUCCESS;
  1235. }
  1236. Status GraphManager::ParseOptions(const std::map<std::string, std::string> &options) {
  1237. Status ret;
  1238. ParseOption(options, "ge.INPUT_NODES_SET_FP16", options_.input_nodes_set_fp16);
  1239. // parse streams max parallel num
  1240. ret = ParseOption(options, STREAM_MAX_PARALLEL_NUM, options_.stream_max_parallel_num);
  1241. if (ret != SUCCESS) {
  1242. GELOGE(GE_GRAPH_OPTIONS_INVALID,
  1243. "parse Key:%s value failed, it must be same format as "
  1244. "DNN_V100:2,DNN_HCCL:3",
  1245. STREAM_MAX_PARALLEL_NUM.c_str());
  1246. return GE_GRAPH_OPTIONS_INVALID;
  1247. }
  1248. // get stream num
  1249. ret = ParseOption(options, STREAM_NUM, options_.stream_num);
  1250. if ((ret != SUCCESS) || (options_.stream_num == 0)) {
  1251. GELOGE(GE_GRAPH_OPTIONS_INVALID, "Key:ge.stream_num, its value %d is invalid, must be not equal zero.",
  1252. options_.stream_num);
  1253. return GE_GRAPH_OPTIONS_INVALID;
  1254. }
  1255. // get perf level, its value please see enum PerfLevel
  1256. ret = ParseOption(options, PERF_LEVEL, options_.perf_level);
  1257. if ((ret != SUCCESS) || IsPerfLevelInvalid(options_.perf_level)) {
  1258. GELOGE(GE_GRAPH_OPTIONS_INVALID, "Key:ge.perfLevel, its value %d is invalid, must be enum PerfLevel type.",
  1259. options_.perf_level);
  1260. return GE_GRAPH_OPTIONS_INVALID;
  1261. }
  1262. // get encrypt mode
  1263. ret = ParseOption(options, ENCRYPT_MODE, options_.encrypt_mode);
  1264. GE_IF_BOOL_EXEC(ret != SUCCESS,
  1265. GELOGE(GE_GRAPH_OPTIONS_INVALID, "Key:ge.encryptMode value invalid.");
  1266. return GE_GRAPH_OPTIONS_INVALID);
  1267. // get ek file
  1268. ParseOption(options, EK_FILE, options_.ek_file);
  1269. // get cert file
  1270. ParseOption(options, CERT_FILE, options_.cert_file);
  1271. // get hw key file
  1272. ParseOption(options, HW_KEY_FILE, options_.hw_key_file);
  1273. // get private file
  1274. ParseOption(options, PRIVATE_KEY_FILE, options_.private_key_file);
  1275. // get framework type, its value please see enum FrameworkType
  1276. ret = ParseOption(options, FRAMEWORK_TYPE, options_.framework_type);
  1277. if (ret != SUCCESS) {
  1278. // print error log in ParseOption
  1279. return GE_GRAPH_OPTIONS_INVALID;
  1280. }
  1281. // get calibration info file
  1282. ParseOption(options, CALIBRATION_CONF_FILE, options_.calibration_conf_file);
  1283. // get insert op info file
  1284. ParseOption(options, INSERT_OP_FILE, options_.insert_op_file);
  1285. // get output node name
  1286. ParseOption(options, OUTPUT_NODE_NAME, options_.output_node_name);
  1287. // get function bin path
  1288. ParseOption(options, "ge.func_bin_path", options_.func_bin_path);
  1289. // get core type
  1290. ParseOption(options, CORE_TYPE, options_.core_type);
  1291. // get weight compress flag
  1292. ret = ParseOption(options, COMPRESS_FLAG, options_.compress_flag);
  1293. GE_IF_BOOL_EXEC(ret != SUCCESS,
  1294. GELOGE(GE_GRAPH_OPTIONS_INVALID, "Key:ge.compressFlag value is invalid, must be 0 or 1.");
  1295. return GE_GRAPH_OPTIONS_INVALID);
  1296. // ge.graphType.
  1297. options_.run_graph_flag = true;
  1298. ret = ParseOption(options, RUN_FLAG, options_.run_graph_flag);
  1299. GE_IF_BOOL_EXEC(ret != SUCCESS,
  1300. GELOGE(GE_GRAPH_OPTIONS_INVALID, "Key:ge.runFlag value is invalid, must be 0 or 1.");
  1301. return GE_GRAPH_OPTIONS_INVALID);
  1302. // ge.graphType
  1303. ret = ParseTrainGraphFlag(options_.run_graph_flag, options_.train_graph_flag);
  1304. GE_IF_BOOL_EXEC(ret != SUCCESS,
  1305. GELOGE(GE_GRAPH_OPTIONS_INVALID, "Key:ge.runFlag value is invalid");
  1306. return GE_GRAPH_OPTIONS_INVALID);
  1307. // parse FmkOp
  1308. options_.local_fmk_op_flag = false;
  1309. ret = ParseOption(options, LOCAL_FMKOP_FLAG, options_.local_fmk_op_flag);
  1310. GE_IF_BOOL_EXEC(ret != SUCCESS,
  1311. GELOGE(GE_GRAPH_OPTIONS_INVALID, "Key:ge.localFmkopFlag value is invalid, must be 0 or 1.");
  1312. return GE_GRAPH_OPTIONS_INVALID);
  1313. options_.enable_print_op_pass = true;
  1314. ret = ParseOption(options, ENABLE_PRINT_OP_PASS, options_.enable_print_op_pass);
  1315. options_.is_single_op = false;
  1316. ret = ParseOption(options, SINGLE_OP_FLAG, options_.is_single_op);
  1317. GE_IF_BOOL_EXEC(ret != SUCCESS,
  1318. GELOGE(GE_GRAPH_OPTIONS_INVALID, "Key:ge.enablePrintOpPass value is invalid, must be 0 or 1.");
  1319. return GE_GRAPH_OPTIONS_INVALID);
  1320. // parse hcom parallel
  1321. options_.hcom_parallel = false;
  1322. ret = ParseOption(options, HCOM_PARALLEL, options_.hcom_parallel);
  1323. GE_IF_BOOL_EXEC(ret != SUCCESS,
  1324. GELOGE(GE_GRAPH_OPTIONS_INVALID, "Key:ge.hcomParallel value is invalid, must be 0 or 1.");
  1325. return GE_GRAPH_OPTIONS_INVALID);
  1326. // net output node dataType
  1327. ParseOption(options, OUTPUT_DATATYPE, options_.output_datatype);
  1328. // Set save_original_model flag (ge.save_original_model)
  1329. ParseOption(options, SAVE_ORIGINAL_MODEL, options_.save_original_model);
  1330. // Original model file name
  1331. ParseOption(options, ORIGINAL_MODEL_FILE, options_.original_model_file);
  1332. ParseOption(options, INPUT_SHAPE, options_.input_shape);
  1333. ParseOption(options, kDynamicDims, options_.dynamic_dims);
  1334. ParseOption(options, DYNAMIC_NODE_TYPE, options_.dynamic_node_type);
  1335. GELOGD("Dynamic dims params: input shape is %s, dynamic dims is %s, dynamic node type is %d.",
  1336. options_.input_shape.c_str(), options_.dynamic_dims.c_str(), options_.dynamic_node_type);
  1337. // Set Build model and step
  1338. ParseOption(options, BUILD_MODE, options_.build_mode);
  1339. ParseOption(options, BUILD_STEP, options_.build_step);
  1340. return SUCCESS;
  1341. }
  1342. Status GraphManager::ParseTrainGraphFlag(bool &options, bool &option) {
  1343. std::shared_ptr<GELib> ge_instance_ptr = ge::GELib::GetInstance();
  1344. if (ge_instance_ptr == nullptr) {
  1345. GELOGW("[Initialize] set train_graph_flag_ to 0 when GE is not initialized or finalized.");
  1346. option = false;
  1347. } else if (!ge_instance_ptr->isTrainMode()) {
  1348. option = false;
  1349. } else { // ge_instance_ptr->isTrainMode() is true
  1350. if (!options) {
  1351. GELOGE(GE_GRAPH_OPTIONS_INVALID,
  1352. "Key:ge.runFlag, its value %d is invalid, it must be 1 when GElib::is_train_mode_ flag is 1", options);
  1353. return GE_GRAPH_OPTIONS_INVALID;
  1354. }
  1355. option = true;
  1356. }
  1357. return SUCCESS;
  1358. }
  1359. bool GraphManager::IsPerfLevelInvalid(int32_t perf_level) {
  1360. return ((perf_level != static_cast<int32_t>(GEN_TASK_WITHOUT_L2FUSION)) &&
  1361. (perf_level != static_cast<int32_t>(GEN_TASK_WITHOUT_FUSION)) && (perf_level != -1));
  1362. }
  1363. void GraphManager::ParseOption(const std::map<std::string, std::string> &options, const std::string &key,
  1364. std::string &option) {
  1365. auto iter = options.find(key);
  1366. if (iter != options.end()) {
  1367. option = iter->second;
  1368. }
  1369. }
  1370. Status GraphManager::ParseOption(const std::map<std::string, std::string> &options, const std::string &key,
  1371. bool &option) {
  1372. auto iter = options.find(key);
  1373. if (iter != options.end()) {
  1374. string flag = iter->second;
  1375. if (flag == "0") {
  1376. option = false;
  1377. } else if (flag == "1") {
  1378. option = true;
  1379. } else {
  1380. GELOGE(GE_GRAPH_OPTIONS_INVALID, "Key:%s, its value %s is invalid, it must be 0 or 1.", key.c_str(),
  1381. flag.c_str());
  1382. return GE_GRAPH_OPTIONS_INVALID;
  1383. }
  1384. }
  1385. return SUCCESS;
  1386. }
  1387. Status GraphManager::ParseOption(const std::map<std::string, std::string> &options, const std::string &key,
  1388. int &option) {
  1389. const int kDecimal = 10;
  1390. char *ptr = nullptr;
  1391. auto iter = options.find(key);
  1392. if (iter != options.end()) {
  1393. option = static_cast<int32_t>(std::strtol(iter->second.c_str(), &ptr, kDecimal));
  1394. if (ptr != nullptr && *ptr != '\0') {
  1395. GELOGE(GE_GRAPH_OPTIONS_INVALID, "Key:%s, its value %s is invalid, must be int32_t type.", key.c_str(),
  1396. iter->second.c_str());
  1397. return GE_GRAPH_OPTIONS_INVALID;
  1398. }
  1399. }
  1400. return SUCCESS;
  1401. }
  1402. void GraphManager::Trim(std::string &str) {
  1403. if (!str.empty()) {
  1404. auto it = str.find_first_not_of(" ");
  1405. if (it != std::string::npos) {
  1406. str.erase(0, it);
  1407. }
  1408. it = str.find_last_not_of(" ");
  1409. if (it != std::string::npos) {
  1410. str.erase(it + 1);
  1411. }
  1412. }
  1413. }
  1414. Status GraphManager::ParseOption(const std::map<std::string, std::string> &options, const std::string &key,
  1415. std::map<std::string, int> &option) {
  1416. auto iter = options.find(key);
  1417. if (iter == options.end()) {
  1418. return SUCCESS;
  1419. }
  1420. GELOGI("Start to parse %s", key.c_str());
  1421. option.clear();
  1422. std::string op_num = iter->second;
  1423. // split string by ','
  1424. std::vector<std::string> split;
  1425. std::istringstream f(op_num);
  1426. std::string str_tmp;
  1427. while (getline(f, str_tmp, ',')) {
  1428. split.push_back(str_tmp);
  1429. }
  1430. for (const std::string &engine_parallel : split) {
  1431. // split engine and num by :
  1432. size_t pos = engine_parallel.find(':');
  1433. if (pos == string::npos) {
  1434. GELOGE(GE_GRAPH_OPTIONS_INVALID,
  1435. "engine and num must be connected by :, "
  1436. "while your input is %s",
  1437. engine_parallel.c_str());
  1438. return GE_GRAPH_OPTIONS_INVALID;
  1439. }
  1440. std::string engine_name = engine_parallel.substr(0, pos);
  1441. std::string parallel_num = engine_parallel.substr(pos + 1);
  1442. Trim(engine_name);
  1443. Trim(parallel_num);
  1444. Status ret = CheckEngineName(engine_name, key, option);
  1445. if (ret != SUCCESS) {
  1446. GELOGE(GE_GRAPH_OPTIONS_INVALID, "check engine name : %s failed, ", engine_name.c_str());
  1447. return GE_GRAPH_OPTIONS_INVALID;
  1448. }
  1449. int num = 0;
  1450. ret = ParseParallelNum(parallel_num, key, num);
  1451. if (ret != SUCCESS) {
  1452. GELOGE(GE_GRAPH_OPTIONS_INVALID, "parse parallel num failed");
  1453. return GE_GRAPH_OPTIONS_INVALID;
  1454. }
  1455. option.insert(std::make_pair(engine_name, num));
  1456. }
  1457. GELOGI("Parse %s successfully", key.c_str());
  1458. return SUCCESS;
  1459. }
  1460. Status GraphManager::CheckEngineName(const std::string &engine_name, const std::string &key,
  1461. const std::map<std::string, int> &option) {
  1462. if (engine_name.empty()) {
  1463. GELOGE(GE_GRAPH_OPTIONS_INVALID, "engine name of %s is empty", key.c_str());
  1464. return GE_GRAPH_OPTIONS_INVALID;
  1465. }
  1466. // judge whether exist in engine list
  1467. if (!GELib::GetInstance()->DNNEngineManagerObj().IsEngineRegistered(engine_name)) {
  1468. GELOGW("engine : %s is not registered in %s", engine_name.c_str(), key.c_str());
  1469. }
  1470. auto it_stream_repeat = option.find(engine_name);
  1471. if (it_stream_repeat != option.end()) {
  1472. GELOGE(GE_GRAPH_OPTIONS_INVALID, "engine : %s of %s is repeated", engine_name.c_str(), key.c_str());
  1473. return GE_GRAPH_OPTIONS_INVALID;
  1474. }
  1475. return SUCCESS;
  1476. }
  1477. Status GraphManager::ParseParallelNum(const std::string &parallel_num, const std::string &key, int &num) {
  1478. if (parallel_num.empty()) {
  1479. GELOGE(GE_GRAPH_OPTIONS_INVALID, "parallel num of %s is empty", key.c_str());
  1480. return GE_GRAPH_OPTIONS_INVALID;
  1481. }
  1482. for (char c : parallel_num) {
  1483. if (!isdigit(c)) {
  1484. GELOGE(GE_GRAPH_OPTIONS_INVALID, "%s input is invalid ", key.c_str());
  1485. return GE_GRAPH_OPTIONS_INVALID;
  1486. }
  1487. }
  1488. try {
  1489. num = std::stoi(parallel_num);
  1490. } catch (std::invalid_argument &) {
  1491. GELOGE(GE_GRAPH_OPTIONS_INVALID, "parallel num : %s of %s is invalid argument", parallel_num.c_str(), key.c_str());
  1492. return GE_GRAPH_OPTIONS_INVALID;
  1493. } catch (std::out_of_range &) {
  1494. GELOGE(GE_GRAPH_OPTIONS_INVALID, "parallel num : %s of %s is out of range", parallel_num.c_str(), key.c_str());
  1495. return GE_GRAPH_OPTIONS_INVALID;
  1496. } catch (...) {
  1497. GELOGE(GE_GRAPH_OPTIONS_INVALID, "parallel num : %s of %s is invalid argument", parallel_num.c_str(), key.c_str());
  1498. return GE_GRAPH_OPTIONS_INVALID;
  1499. }
  1500. if (num < 1) {
  1501. GELOGE(GE_GRAPH_OPTIONS_INVALID, "parallel num : %s of %s must bigger than 0", parallel_num.c_str(), key.c_str());
  1502. return GE_GRAPH_OPTIONS_INVALID;
  1503. }
  1504. return SUCCESS;
  1505. }
  1506. void GraphManager::AddGraphNode(GraphId graph_id, const GraphNodePtr &graph_node) {
  1507. std::lock_guard<std::mutex> lock(member_mutex_);
  1508. graph_map_.emplace(graph_id, graph_node);
  1509. }
  1510. void GraphManager::RemoveGraphNode(GraphId graph_id) {
  1511. std::lock_guard<std::mutex> lock(member_mutex_);
  1512. graph_map_.erase(graph_id);
  1513. }
  1514. bool GraphManager::HasGraphNode(GraphId graph_id) {
  1515. std::lock_guard<std::mutex> lock(member_mutex_);
  1516. return graph_map_.find(graph_id) != graph_map_.end();
  1517. }
  1518. Status GraphManager::GetGraphNode(const GraphId &graph_id, GraphNodePtr &out) {
  1519. std::lock_guard<std::mutex> lock(member_mutex_);
  1520. auto iter = graph_map_.find(graph_id);
  1521. if (iter == graph_map_.end()) {
  1522. out = nullptr;
  1523. GELOGE(GE_GRAPH_GRAPH_NOT_EXIST, "[GraphManager] graph not exist, graph_id= %u.", graph_id);
  1524. return GE_GRAPH_GRAPH_NOT_EXIST;
  1525. }
  1526. out = iter->second;
  1527. return SUCCESS;
  1528. }
  1529. Status GraphManager::GetVariable(const std::string &name, Tensor &val) {
  1530. GeTensorPtr ge_tensor_ptr = TensorAdapter::AsGeTensorPtr(val);
  1531. GE_CHECK_NOTNULL(ge_tensor_ptr);
  1532. return GetGraphContext()->GetVariableTensor(name, *(ge_tensor_ptr.get()));
  1533. }
  1534. Status GraphManager::SummaryHandle(const GraphId &graph_id, std::vector<GeTensor> &outputs) {
  1535. std::vector<GeTensor> without_summary_outputs;
  1536. std::set<int> summary_output_index;
  1537. GELOGI("[GraphManager] SummaryHandle, outputsSize=%zu.", outputs.size());
  1538. const std::map<uint32_t, std::map<string, size_t>> &whole_summary_output_indexes =
  1539. GetCompilerStages(graph_id).optimizer.GetSummaryOutputIndexes();
  1540. if (whole_summary_output_indexes.find(graph_id) == whole_summary_output_indexes.end()) {
  1541. GELOGE(FAILED, "No Summary graph found in map.");
  1542. return FAILED;
  1543. }
  1544. const std::map<string, size_t> &summary_output_indexes = whole_summary_output_indexes.at(graph_id);
  1545. GELOGI("[GraphManager] SummaryHandle, summaryOutputIndexesSize=%zu.", summary_output_indexes.size());
  1546. std::map<string, Tensor> summary_results;
  1547. for (auto iter = summary_output_indexes.begin(); iter != summary_output_indexes.end(); ++iter) {
  1548. GELOGI("[GraphManager] SummaryHandle, summaryName=%s, outputIndex=%zu.", iter->first.c_str(), iter->second);
  1549. summary_results.emplace(iter->first, TensorAdapter::AsTensor(outputs.at(iter->second)));
  1550. summary_output_index.emplace(iter->second);
  1551. }
  1552. // remove summary data from outputs
  1553. if (!summary_output_index.empty()) {
  1554. for (size_t j = 0; j < outputs.size(); ++j) {
  1555. if (summary_output_index.count(j) == 0) {
  1556. without_summary_outputs.emplace_back(outputs.at(j));
  1557. }
  1558. }
  1559. outputs.swap(without_summary_outputs);
  1560. GELOGI("[GraphManager] SummaryHandle, after swap outputsSize=%zu.", outputs.size());
  1561. }
  1562. if (!summary_results.empty()) {
  1563. return PushSummaryData2ME(graph_id, summary_results);
  1564. }
  1565. return SUCCESS;
  1566. }
  1567. Status GraphManager::CheckpointHandle(const GraphId &graph_id, const ComputeGraphPtr &compute_graph,
  1568. const std::vector<GeTensor> &outputs) {
  1569. GELOGI("[GraphManager] CheckpointHandle, outputsSize=%zu.", outputs.size());
  1570. std::vector<InputOutputDescInfo> outputs_desc = graph_executor_.GetOutputsDesc();
  1571. GELOGI("[GraphManager] CheckpointHandle, outputsDescSize=%zu.", outputs_desc.size());
  1572. std::map<string, Tensor> save_results;
  1573. NodePtr netoutput = nullptr;
  1574. for (const auto &node : compute_graph->GetAllNodes()) {
  1575. if (node->GetType() == kNetOutput) {
  1576. netoutput = node;
  1577. break;
  1578. }
  1579. }
  1580. if (netoutput == nullptr) {
  1581. GELOGE(FAILED, "Netoutput is null.");
  1582. return FAILED;
  1583. }
  1584. for (const auto &in : netoutput->GetAllInDataAnchors()) {
  1585. std::string desc_name;
  1586. auto out_anchor = in->GetPeerOutAnchor();
  1587. if (out_anchor == nullptr) {
  1588. GELOGE(FAILED, "out_anchor is null.");
  1589. return FAILED;
  1590. }
  1591. ge::NodePtr peer_node = out_anchor->GetOwnerNode();
  1592. // find the variable node in graph
  1593. while (peer_node != nullptr && peer_node->GetType() != kVariable) {
  1594. if (peer_node->GetAllInDataAnchors().size() != 1) {
  1595. GELOGE(FAILED, "More than one prior nodes of peer_node %s in checkpoint Graph.", peer_node->GetName().c_str());
  1596. return FAILED;
  1597. }
  1598. auto peer_node_in = peer_node->GetAllInDataAnchors().at(0);
  1599. auto peer_node_out_anchor = peer_node_in->GetPeerOutAnchor();
  1600. if (peer_node_out_anchor != nullptr) {
  1601. peer_node = peer_node_out_anchor->GetOwnerNode();
  1602. if (peer_node->GetType() == kVariable) {
  1603. break;
  1604. }
  1605. }
  1606. }
  1607. if (peer_node == nullptr) {
  1608. GELOGE(FAILED, "No variable op found in one branch, checkpoint graph illegal.");
  1609. return FAILED;
  1610. }
  1611. desc_name = peer_node->GetName();
  1612. GELOGI("[GraphManager] CheckpointHandle, descName=%s.", desc_name.c_str());
  1613. if (in->GetIdx() >= static_cast<int>(outputs.size())) {
  1614. GELOGE(FAILED, "variable index out of range.");
  1615. return FAILED;
  1616. }
  1617. save_results.emplace(desc_name, TensorAdapter::AsTensor(outputs.at(in->GetIdx())));
  1618. }
  1619. if (!save_results.empty()) {
  1620. return PushSaveData2ME(graph_id, save_results);
  1621. }
  1622. return SUCCESS;
  1623. }
  1624. Status GraphManager::RegisterCallBackFunc(
  1625. const std::string &key,
  1626. const std::function<Status(uint32_t, const std::map<std::string, ge::Tensor> &)> &callback) {
  1627. std::lock_guard<std::mutex> lock(member_mutex_);
  1628. GELOGI("[GraphManager] RegisterCallBackFunc, key=%s.", key.c_str());
  1629. me_callback_map_[key] = callback;
  1630. return SUCCESS;
  1631. }
  1632. Status GraphManager::RegisterCallBackFunc(
  1633. const std::string &key,
  1634. const std::function<Status(uint32_t, const std::map<AscendString, ge::Tensor> &)> &callback) {
  1635. std::lock_guard<std::mutex> lock(member_mutex_);
  1636. GELOGI("[GraphManager] RegisterCallBackFunc, key=%s.", key.c_str());
  1637. callback_map_[key] = callback;
  1638. return SUCCESS;
  1639. }
  1640. Status GraphManager::PushSummaryData2ME(const GraphId &graph_id,
  1641. const std::map<std::string, ge::Tensor> &summary_data) {
  1642. std::lock_guard<std::mutex> lock(member_mutex_);
  1643. GELOGI("[GraphManager] PushSummaryData2ME, dataSize=%zu.", summary_data.size());
  1644. auto itr = me_callback_map_.find(kSummary);
  1645. if (itr == me_callback_map_.end()) {
  1646. auto iter = callback_map_.find(kSummary);
  1647. if (iter != callback_map_.end()) {
  1648. std::map<AscendString, ge::Tensor> tmp_summary_data;
  1649. for (auto &data : summary_data) {
  1650. AscendString tmp(data.first.c_str());
  1651. tmp_summary_data[tmp] = data.second;
  1652. }
  1653. return iter->second(graph_id, tmp_summary_data);
  1654. }
  1655. GELOGE(FAILED, "[GraphManager] PushSummaryData2ME failed, not found summary callback.");
  1656. return FAILED;
  1657. }
  1658. return itr->second(graph_id, summary_data);
  1659. }
  1660. Status GraphManager::PushSaveData2ME(const GraphId &graph_id, const std::map<std::string, ge::Tensor> &save_data) {
  1661. std::lock_guard<std::mutex> lock(member_mutex_);
  1662. GELOGI("[GraphManager] PushSaveData2ME, dataSize=%zu.", save_data.size());
  1663. auto itr = me_callback_map_.find(kSave);
  1664. if (itr == me_callback_map_.end()) {
  1665. auto iter = callback_map_.find(kSave);
  1666. if (iter != callback_map_.end()) {
  1667. std::map<AscendString, ge::Tensor> tmp_save_data;
  1668. for (auto &data : save_data) {
  1669. AscendString tmp(data.first.c_str());
  1670. tmp_save_data[tmp] = data.second;
  1671. }
  1672. return iter->second(graph_id, tmp_save_data);
  1673. }
  1674. GELOGE(FAILED, "[GraphManager] PushSaveData2ME failed, not found checkpoint callback.");
  1675. return FAILED;
  1676. }
  1677. return itr->second(graph_id, save_data);
  1678. }
  1679. bool GraphManager::CheckNetOutputForCheckpointGraph(NodePtr &node) {
  1680. size_t in_data_anchor_size = node->GetAllInDataAnchors().size();
  1681. for (size_t i = 0; i < in_data_anchor_size; ++i) {
  1682. auto in = node->GetInDataAnchor(i);
  1683. if (in == nullptr) {
  1684. return false;
  1685. }
  1686. auto peerin = in->GetPeerOutAnchor();
  1687. GE_IF_BOOL_EXEC(peerin == nullptr, return false);
  1688. if (peerin->GetOwnerNode()->GetType() != kVariable && (!TransOpUtil::IsTransOp(peerin->GetOwnerNode()))) {
  1689. return false;
  1690. }
  1691. }
  1692. return true;
  1693. }
  1694. bool GraphManager::CheckVariableForCheckpointGraph(NodePtr &node) {
  1695. if (node->GetOpDesc()->HasAttr(kCheckPointForGetVar)) {
  1696. return false;
  1697. }
  1698. auto out = node->GetOutDataAnchor(0);
  1699. if (out == nullptr) {
  1700. GELOGE(GE_GRAPH_PARAM_NULLPTR, "out is nullptr.");
  1701. return false;
  1702. }
  1703. auto peer_out = out->GetPeerInDataAnchors();
  1704. for (size_t i = 0; i < peer_out.size(); ++i) {
  1705. if (peer_out.at(i)->GetOwnerNode()->GetType() != kNetOutput &&
  1706. (!TransOpUtil::IsTransOp(peer_out.at(i)->GetOwnerNode()))) {
  1707. return false;
  1708. }
  1709. }
  1710. return true;
  1711. }
  1712. bool GraphManager::CheckTransOpForCheckpointGraph(NodePtr &node) {
  1713. for (const auto &out_node : node->GetOutAllNodes()) {
  1714. if ((!TransOpUtil::IsTransOp(out_node)) && (out_node->GetType() != kNetOutput) && (out_node->GetType() != kSend)) {
  1715. return false;
  1716. }
  1717. }
  1718. for (const auto &in_node : node->GetInAllNodes()) {
  1719. if ((!TransOpUtil::IsTransOp(in_node)) && (in_node->GetType() != kVariable) && (in_node->GetType() != kRecv)) {
  1720. return false;
  1721. }
  1722. }
  1723. return true;
  1724. }
  1725. static inline bool CheckConstanOpForCheckpointGraph(NodePtr &node) { return node->GetOutDataNodes().empty(); }
  1726. bool GraphManager::IsCheckpointGraph(ComputeGraphPtr &compute_graph) {
  1727. if (compute_graph == nullptr) {
  1728. GELOGE(GE_GRAPH_PARAM_NULLPTR, "[IsCheckpointGraph] computeGraph is nullptr.");
  1729. return false;
  1730. }
  1731. for (auto &node : compute_graph->GetAllNodes()) {
  1732. OpDescPtr op = node->GetOpDesc();
  1733. GE_RT_FALSE_CHECK_NOTNULL(op);
  1734. if (op->GetType() == kNetOutput) {
  1735. if (!CheckNetOutputForCheckpointGraph(node)) {
  1736. return false;
  1737. }
  1738. } else if (op->GetType() == kVariable) {
  1739. if (!CheckVariableForCheckpointGraph(node)) {
  1740. return false;
  1741. }
  1742. } else if ((TransOpUtil::IsTransOp(node))) {
  1743. if (!CheckTransOpForCheckpointGraph(node)) {
  1744. return false;
  1745. }
  1746. } else if (op->GetType() == CONSTANTOP) {
  1747. if (!CheckConstanOpForCheckpointGraph(node)) {
  1748. return false;
  1749. }
  1750. } else if (op->GetType() != kSend && op->GetType() != kRecv) {
  1751. GELOGI("this node is not allow in checkpoint sub graph, node_type: %s, node_name: %s.", op->GetType().c_str(),
  1752. op->GetName().c_str());
  1753. return false;
  1754. }
  1755. }
  1756. GELOGI("current graph %s is checkpoint sub graph.", compute_graph->GetName().c_str());
  1757. return true;
  1758. }
  1759. bool GraphManager::IsBroadCastOpData(const ge::NodePtr &var_node) {
  1760. for (auto &out_anchor : var_node->GetAllOutDataAnchors()) {
  1761. GE_RT_FALSE_CHECK_NOTNULL(out_anchor);
  1762. for (auto &in_anchor : out_anchor->GetPeerInDataAnchors()) {
  1763. GE_RT_FALSE_CHECK_NOTNULL(in_anchor);
  1764. ge::NodePtr dst_node = in_anchor->GetOwnerNode();
  1765. GE_RT_FALSE_CHECK_NOTNULL(dst_node);
  1766. if (dst_node->GetType() == HCOMBROADCAST || dst_node->GetType() == HVDCALLBACKBROADCAST) {
  1767. return true;
  1768. }
  1769. }
  1770. }
  1771. return false;
  1772. }
  1773. void GraphManager::SetAttrForHcomBroadCastOp(ge::ComputeGraphPtr &compute_graph) {
  1774. // add variable attr for hccl broadcast,need to be removed after variable pass online
  1775. for (const ge::NodePtr &node : compute_graph->GetDirectNode()) {
  1776. if (node->GetOpDesc()->GetType() != ge::VARIABLE) {
  1777. continue;
  1778. }
  1779. if (IsBroadCastOpData(node)) {
  1780. AdjustBroadCastOpData(node);
  1781. }
  1782. if (IsAssignOpData(node)) {
  1783. AdjustAssignOpData(node);
  1784. }
  1785. }
  1786. }
  1787. void GraphManager::AdjustBroadCastOpData(const ge::NodePtr &var_node) {
  1788. if (!ge::AttrUtils::SetStr(var_node->GetOpDesc(), VAR_ATTR_VAR_IS_BROADCAST, "var_is_restore")) {
  1789. GELOGW("set var_is_restore failed");
  1790. }
  1791. }
  1792. bool GraphManager::IsAssignOpData(const ge::NodePtr &var_node) {
  1793. GELOGD("IsAssignOpData var_node %s", var_node->GetName().c_str());
  1794. std::map<std::string, std::set<int>> assign_ops = {{ASSIGN, {0}}};
  1795. ge::NodePtr assign_node = nullptr;
  1796. if (ConfirmUseOpAndIndexByNode(var_node, assign_ops, assign_node)) {
  1797. return true;
  1798. }
  1799. return false;
  1800. }
  1801. void GraphManager::AdjustAssignOpData(const ge::NodePtr &var_node) {
  1802. if (!ge::AttrUtils::SetStr(var_node->GetOpDesc(), VAR_ATTR_VAR_IS_RESTORE, "var_is_restore")) {
  1803. GELOGW("SetStr var_is_restore failed");
  1804. }
  1805. }
  1806. bool GraphManager::ConfirmUseOpAndIndexByAnchor(const ge::InDataAnchorPtr &in_anchor,
  1807. const map<string, std::set<int>> &confirm_ops, ge::NodePtr &use_node) {
  1808. GE_RT_FALSE_CHECK_NOTNULL(in_anchor);
  1809. ge::NodePtr dst_node = in_anchor->GetOwnerNode();
  1810. GE_RT_FALSE_CHECK_NOTNULL(dst_node);
  1811. ge::OpDescPtr dst_op_desc = dst_node->GetOpDesc();
  1812. GE_RT_FALSE_CHECK_NOTNULL(dst_op_desc);
  1813. const string &dst_type = dst_op_desc->GetType();
  1814. int input_index = in_anchor->GetIdx();
  1815. GELOGD("ConfirmUseOpAndIndex, var name %s, dst_type = %s, input index %d", dst_node->GetName().c_str(),
  1816. dst_type.c_str(), input_index);
  1817. if (confirm_ops.count(dst_type) > 0) {
  1818. if (confirm_ops.at(dst_type).count(input_index) > 0) {
  1819. use_node = dst_node;
  1820. return true;
  1821. }
  1822. }
  1823. return false;
  1824. }
  1825. bool GraphManager::ConfirmUseOpAndIndexByNode(const ge::NodePtr &var_node,
  1826. const map<string, std::set<int>> &confirm_ops, ge::NodePtr &use_node) {
  1827. GE_RT_FALSE_CHECK_NOTNULL(var_node);
  1828. for (auto &out_anchor : var_node->GetAllOutDataAnchors()) {
  1829. GE_RT_FALSE_CHECK_NOTNULL(out_anchor);
  1830. for (auto &in_anchor : out_anchor->GetPeerInDataAnchors()) {
  1831. GE_RT_FALSE_CHECK_NOTNULL(in_anchor);
  1832. if (ConfirmUseOpAndIndexByAnchor(in_anchor, confirm_ops, use_node)) {
  1833. return true;
  1834. }
  1835. }
  1836. }
  1837. return false;
  1838. }
  1839. Status GraphManager::RemoveIsolatedConstInThisGraph(ge::ComputeGraphPtr &compute_graph) {
  1840. for (ge::NodePtr &n : compute_graph->GetDirectNode()) {
  1841. if (n->GetOpDesc() == nullptr) {
  1842. continue;
  1843. }
  1844. if (n->GetOpDesc()->GetType() == CONSTANT || n->GetOpDesc()->GetType() == CONSTANTOP) {
  1845. // reset const type depend on train_flag
  1846. options_.train_graph_flag ? n->GetOpDesc()->SetType(CONSTANTOP) : n->GetOpDesc()->SetType(CONSTANT);
  1847. if (n->GetOutAllNodes().empty() && n->GetInAllNodes().empty()) {
  1848. // it is an isolated constant, just remove it
  1849. if (GraphUtils::RemoveJustNode(compute_graph, n) != GRAPH_SUCCESS) {
  1850. GELOGE(FAILED, "remove constant %s failed.", n->GetName().c_str());
  1851. return FAILED;
  1852. }
  1853. }
  1854. }
  1855. }
  1856. return SUCCESS;
  1857. }
  1858. Status GraphManager::RemoveIsolatedConst(ge::ComputeGraphPtr &compute_graph) {
  1859. GE_CHK_STATUS_RET(RemoveIsolatedConstInThisGraph(compute_graph));
  1860. for (auto &sub_graph : compute_graph->GetAllSubgraphs()) {
  1861. GE_CHK_STATUS_RET(RemoveIsolatedConstInThisGraph(sub_graph));
  1862. }
  1863. return SUCCESS;
  1864. }
  1865. Status GraphManager::OptimizeStage1(ge::ComputeGraphPtr &compute_graph) {
  1866. string options = "default";
  1867. if (GetContext().GetOption("ge.exec.variable_acc", options) != SUCCESS) {
  1868. GELOGI("get ge.exec.variable_acc failed. set default value.");
  1869. }
  1870. PassManager after_merge_passes;
  1871. GE_CHK_STATUS_RET(
  1872. after_merge_passes.AddPass("OptimizeStage1_1::MergeInputMemcpyPass", new (std::nothrow) MergeInputMemcpyPass));
  1873. GE_CHK_STATUS_RET(
  1874. after_merge_passes.AddPass("OptimizeStage1_1::SwitchDataEdgesBypass", new (std::nothrow) SwitchDataEdgesBypass));
  1875. GE_CHK_STATUS_RET(
  1876. after_merge_passes.AddPass("OptimizeStage1_1::ConstantFuseSamePass", new (std::nothrow) ConstantFuseSamePass));
  1877. GE_CHK_STATUS_RET(after_merge_passes.AddPass("OptimizeStage1_1::CommonSubexpressionEliminationPass",
  1878. new (std::nothrow) CommonSubexpressionEliminationPass));
  1879. GE_CHK_STATUS_RET(after_merge_passes.AddPass("OptimizeStage1_1::PermutePass", new (std::nothrow) PermutePass))
  1880. /*
  1881. * The SameTransdataBreadthFusionPass should be called before VariableOpPass, because of the scene following:
  1882. * node3
  1883. * |
  1884. * transdata1 node2
  1885. * | |
  1886. * cast1 transdata2
  1887. * \ /
  1888. * var
  1889. * the node `transdata1` should be moved to the front of the ndoe `cast1`,
  1890. * to ensure that `transdata1` and `transdata2` can be fusion with `var`.
  1891. * But it is a temp solution, because the `SameTransdataBreadthFusionPass`
  1892. * can only move `TransData` but not `Cast` nodes.
  1893. * So if we exchange Cast and TransData, the fusion mechanism will fail.
  1894. */
  1895. GE_CHK_STATUS_RET(after_merge_passes.AddPass("OptimizeStage1_1::SameTransdataBreadthFusionPass",
  1896. new (std::nothrow) SameTransdataBreadthFusionPass))
  1897. GE_IF_BOOL_EXEC(options == "default" || options == "1", GELOGI("turn on variable accelerator");
  1898. GE_CHK_STATUS_RET(after_merge_passes.AddPass("OptimizeStage1_1::VariableOpPass",
  1899. new (std::nothrow) VariableOpPass(&var_acc_ctrl_))))
  1900. GE_CHK_STATUS_RET(after_merge_passes.AddPass("OptimizeStage1_1::TransOpWithoutReshapeFusionPass",
  1901. new (std::nothrow) TransOpWithoutReshapeFusionPass))
  1902. GE_CHK_STATUS_RET(after_merge_passes.AddPass("OptimizeStage1_1::TransOpBreadthFusionPass",
  1903. new (std::nothrow) TransOpBreadthFusionPass))
  1904. GE_TIMESTAMP_START(after_merge_passes);
  1905. auto ret = after_merge_passes.Run(compute_graph);
  1906. GE_TIMESTAMP_END(after_merge_passes, "GraphManager::OptimizeStage1_1");
  1907. if (ret != SUCCESS && ret != NOT_CHANGED) {
  1908. GELOGE(ret, "Run passes when OptimizeStage1_1 failed, ret:%u.", ret);
  1909. return ret;
  1910. }
  1911. GE_DUMP(compute_graph, "OptimizeStage1_1");
  1912. NamesToPass names_to_passes;
  1913. TransOpNearbyAllreduceFusionPass trans_op_nearby_allreduce_fusion_pass;
  1914. ReshapeRemovePass reshape_remove_pass;
  1915. ConstantFoldingPass constant_folding_pass;
  1916. DimensionAdjustPass dimension_adjust_pass;
  1917. EnterPass enter_pass;
  1918. AddNPass addn_pass;
  1919. SwitchDeadBranchElimination switch_dead_branch_elimination;
  1920. SwitchLogicRemovePass switch_logic_remove_pass;
  1921. MergePass merge_pass;
  1922. CastRemovePass cast_remove_pass;
  1923. TransposeTransDataPass transpose_transdata_pass;
  1924. TransOpSymmetryEliminationPass symmetry_elimination_pass;
  1925. DimensionComputePass dimension_compute_pass;
  1926. ConstWithoutInControlPass const_without_in_control_pass;
  1927. names_to_passes.emplace_back("EnterPass", &enter_pass);
  1928. names_to_passes.emplace_back("AddNPass", &addn_pass);
  1929. names_to_passes.emplace_back("SwitchDeadBranchElimination", &switch_dead_branch_elimination);
  1930. names_to_passes.emplace_back("SwitchLogicRemovePass", &switch_logic_remove_pass);
  1931. names_to_passes.emplace_back("MergePass", &merge_pass);
  1932. names_to_passes.emplace_back("CastRemovePass", &cast_remove_pass);
  1933. names_to_passes.emplace_back("TransposeTransDataPass", &transpose_transdata_pass);
  1934. names_to_passes.emplace_back("ReshapeRemovePass", &reshape_remove_pass);
  1935. names_to_passes.emplace_back("TransOpSymmetryEliminationPass", &symmetry_elimination_pass);
  1936. names_to_passes.emplace_back("TransOpNearbyAllreduceFusionPass", &trans_op_nearby_allreduce_fusion_pass);
  1937. names_to_passes.emplace_back("DimensionComputePass", &dimension_compute_pass);
  1938. names_to_passes.emplace_back("ConstantFoldingPass", &constant_folding_pass);
  1939. names_to_passes.emplace_back("DimensionAdjustPass", &dimension_adjust_pass);
  1940. names_to_passes.emplace_back("ConstWithoutInControlPass", &const_without_in_control_pass);
  1941. GE_TIMESTAMP_START(names_to_passes);
  1942. ret = GEPass(compute_graph).Run(names_to_passes);
  1943. GE_TIMESTAMP_END(names_to_passes, "GraphManager::OptimizeStage1_2");
  1944. if (ret != SUCCESS) {
  1945. GELOGE(ret, "Run passes when OptimizeStage1_2 failed, ret:%u.", ret);
  1946. return ret;
  1947. }
  1948. // Calculate Op/Fe constantfolding cost
  1949. uint64_t op_constant_folding_cost = 0;
  1950. for (auto &it : constant_folding_pass.GetOpConstantFoldingPerfStatistic()) {
  1951. op_constant_folding_cost += it.second.second;
  1952. GELOGI("The time cost of %s constant folding is [%lu] micro second, calls is %lu.",
  1953. it.first.c_str(), it.second.second, it.second.first);
  1954. }
  1955. GEEVENT("[GEPERFTRACE] The time cost of extern constant folding is [%lu] micro second.", op_constant_folding_cost);
  1956. for (auto &it : constant_folding_pass.GetGeConstantFoldingPerfStatistic()) {
  1957. op_constant_folding_cost += it.second.second;
  1958. GELOGI("The time cost of %s constant folding is [%lu] micro second, calls is %lu.",
  1959. it.first.c_str(), it.second.second, it.second.first);
  1960. }
  1961. GE_DUMP(compute_graph, "OptimizeStage1_2");
  1962. PassManager graph_pass;
  1963. // the prune pass should between SwitchPass and SwitchToStreamSwitchPass
  1964. GE_CHK_STATUS_RET(graph_pass.AddPass("OptimizeStage1_3::Migration", new (std::nothrow) SubgraphConstMigrationPass));
  1965. GE_CHK_STATUS_RET(graph_pass.AddPass("OptimizeStage1_3::ArgsClean", new (std::nothrow) UnusedArgsCleanPass));
  1966. GE_CHK_STATUS_RET(graph_pass.AddPass("OptimizeStage1_3::PrunePass", new (std::nothrow) PrunePass))
  1967. GE_CHK_STATUS_RET(graph_pass.AddPass("OptimizeStage1_3::NextIterationPass", new (std::nothrow) NextIterationPass))
  1968. GE_CHK_STATUS_RET(graph_pass.AddPass("OptimizeStage1_3::ControlTriggerPass", new (std::nothrow) ControlTriggerPass))
  1969. GE_CHK_STATUS_RET(
  1970. graph_pass.AddPass("OptimizeStage1_3::MergeToStreamMergePass", new (std::nothrow) MergeToStreamMergePass))
  1971. GE_CHK_STATUS_RET(
  1972. graph_pass.AddPass("OptimizeStage1_3::SwitchToStreamSwitchPass", new (std::nothrow) SwitchToStreamSwitchPass))
  1973. GE_CHK_STATUS_RET(
  1974. graph_pass.AddPass("OptimizeStage1_3::AttachStreamLabelPass", new (std::nothrow) AttachStreamLabelPass))
  1975. GE_CHK_STATUS_RET(graph_pass.AddPass("OptimizeStage1_3::MultiBatchPass", new (std::nothrow) MultiBatchPass(true)))
  1976. GE_CHK_STATUS_RET(graph_pass.AddPass("OptimizeStage1_3::IteratorOpPass", new (std::nothrow) IteratorOpPass))
  1977. GE_CHK_STATUS_RET(graph_pass.AddPass("OptimizeStage1_3::VariableRefUselessControlOutDeletePass",
  1978. new (std::nothrow) VariableRefUselessControlOutDeletePass))
  1979. GE_CHK_STATUS_RET(graph_pass.AddPass("OptimizeStage1_3::ReshapeRecoveryPass", new (std::nothrow) ReshapeRecoveryPass))
  1980. GE_CHK_STATUS_RET(
  1981. graph_pass.AddPass("OptimizeStage1_3::RemoveSameConstPass", new (std::nothrow) RemoveSameConstPass))
  1982. if (options_.train_graph_flag) {
  1983. // Priority: The GlobalStepInsertPass should work before graph partitioner.
  1984. // Reason: Make sure that the var "global_step" can be partitioned to known sub graph and allocated memory
  1985. GE_CHK_STATUS_RET(
  1986. graph_pass.AddPass("OptimizeStage1_3::GlobalStepInsertPass", new (std::nothrow) GlobalStepInsertPass))
  1987. }
  1988. GE_TIMESTAMP_START(graph_pass);
  1989. ret = graph_pass.Run(compute_graph);
  1990. GE_TIMESTAMP_END(graph_pass, "GraphManager::OptimizeStage1_3");
  1991. if (ret != SUCCESS && ret != NOT_CHANGED) {
  1992. GELOGE(ret, "Run passes when OptimizeStage1_3 failed, ret:%u.", ret);
  1993. return ret;
  1994. }
  1995. NamesToPass identity_remove_pass;
  1996. GE_TIMESTAMP_START(identity_remove_pass);
  1997. IdentityPass identity_force_pass(false); // after SwitchToStreamSwitchPass
  1998. identity_remove_pass.emplace_back("IdentityPass", &identity_force_pass);
  1999. ret = GEPass(compute_graph).Run(identity_remove_pass);
  2000. GE_TIMESTAMP_END(identity_remove_pass, "GraphPrepare::IdentityRemovePass");
  2001. if (ret != SUCCESS) {
  2002. GELOGE(ret, "Run identity remove pass for preprocess failed, ret:%u.", ret);
  2003. return ret;
  2004. }
  2005. return SUCCESS;
  2006. }
  2007. Status GraphManager::OptimizeStage2(ge::ComputeGraphPtr &compute_graph) {
  2008. GELOGD("Start optimize after merge sub graph.");
  2009. PassManager after_merge_passes;
  2010. GE_CHK_STATUS_RET(after_merge_passes.AddPass("OptimizeStage2::AfterMergePasses::LinkGenMaskNodesPass",
  2011. new (std::nothrow)
  2012. LinkGenMaskNodesPass(options_.stream_max_parallel_num)));
  2013. GE_TIMESTAMP_START(after_merge_passes);
  2014. auto ret = after_merge_passes.Run(compute_graph);
  2015. GE_TIMESTAMP_END(after_merge_passes, "OptimizeStage2::AfterMergePasses");
  2016. if (ret != SUCCESS && ret != NOT_CHANGED) {
  2017. GELOGE(ret, "Run passes after merge sub graph failed, ret:%d.", ret);
  2018. return ret;
  2019. }
  2020. SetAttrForHcomBroadCastOp(compute_graph);
  2021. NamesToPass names_to_passes;
  2022. ConstantFoldingPass constant_folding_pass;
  2023. ReshapeRemovePass reshape_remove_pass;
  2024. CondRemovePass condition_remove_pass;
  2025. BitcastPass bitcast_pass;
  2026. names_to_passes.emplace_back("ConstantFoldingPass", &constant_folding_pass);
  2027. names_to_passes.emplace_back("ReshapeRemovePass", &reshape_remove_pass);
  2028. names_to_passes.emplace_back("CondRemovePass", &condition_remove_pass);
  2029. names_to_passes.emplace_back("BitcastPass", &bitcast_pass);
  2030. GE_TIMESTAMP_START(names_to_passes);
  2031. ret = GEPass(compute_graph).Run(names_to_passes);
  2032. GE_TIMESTAMP_END(names_to_passes, "OptimizeStage2::MergedGraphNameToPasses");
  2033. if (ret != SUCCESS) {
  2034. GELOGE(ret, "Run ge_passes optimize for OptimizeAfterMergeSubGraph failed, ret:%d.", ret);
  2035. return ret;
  2036. }
  2037. ret = RemoveIsolatedConst(compute_graph);
  2038. if (ret != SUCCESS) {
  2039. GELOGE(ret, "Remove isolated Constant failed, ret:%d.", ret);
  2040. return ret;
  2041. }
  2042. PassManager pass_for_control_attr_optimize;
  2043. if (options_.train_graph_flag) {
  2044. GE_CHK_STATUS_RET(pass_for_control_attr_optimize.AddPass("OptimizeStage2::ControlAttrOptimize::FlowCtrlPass",
  2045. new (std::nothrow) FlowCtrlPass))
  2046. }
  2047. GE_CHK_STATUS_RET(pass_for_control_attr_optimize.AddPass("OptimizeStage2::ControlAttrOptimize::MultiBatchPass",
  2048. new (std::nothrow) MultiBatchPass))
  2049. GE_CHK_STATUS_RET(pass_for_control_attr_optimize.AddPass("OptimizeStage2::AfterMergePasses::RefIdentityDeleteOpPass",
  2050. new (std::nothrow) RefIdentityDeleteOpPass))
  2051. // the value of the attr is the original variable name the ref-variable ref from.
  2052. // The attr will be used when allocating memory,
  2053. // the node marked attr will be output to a variable instead of new-allocated memory.
  2054. // Therefore, ComputeGraph should not delete nodes after `VariableRefDeleteOpPass`
  2055. // to prevent unexpected deletion of nodes marked with attr
  2056. GE_CHK_STATUS_RET(pass_for_control_attr_optimize.AddPass("OptimizeStage2::AfterMergePasses::VariableRefDeleteOpPass",
  2057. new (std::nothrow) VariableRefDeleteOpPass))
  2058. GE_CHK_STATUS_RET(pass_for_control_attr_optimize.AddPass("OptimizeStage2::ControlAttrOptimize::CompileNodesPass",
  2059. new (std::nothrow) CompileNodesPass))
  2060. GE_CHK_STATUS_RET(pass_for_control_attr_optimize.AddPass(
  2061. "OptimizeStage2::AfterMergePasses::MarkGraphUnknownStatusPass", new(std::nothrow) MarkGraphUnknownStatusPass))
  2062. GE_CHK_STATUS_RET(
  2063. pass_for_control_attr_optimize.AddPass("OptimizeStage2::AfterMergePasses::InputOutputConnectionIdentifyPass",
  2064. new (std::nothrow) InputOutputConnectionIdentifyPass))
  2065. // When the input node to be cleared is after a `Data` node, the atomic-clean-node should not be inserted.
  2066. // So The ComputeGraph should not delete nodes after `AtomicAddrCleanPass`
  2067. // to prevent unexpected deletion of nodes after a `Data` node
  2068. GE_CHK_STATUS_RET(pass_for_control_attr_optimize.AddPass("OptimizeStage2::AfterMergePasses::AtomicAddrCleanPass",
  2069. new (std::nothrow) AtomicAddrCleanPass))
  2070. GE_CHK_STATUS_RET(pass_for_control_attr_optimize.AddPass("OptimizeStage2::AfterMergePasses::"
  2071. "EndOfSequenceAddControlPass",
  2072. new (std::nothrow) EndOfSequenceAddControlPass))
  2073. // 'SubgraphPass' solves memory_assign_conflicts by insert MemcpyAsync node, which depends on multi attrs and
  2074. // graph-structure. Passes after 'SubgraphPass' MUST NOT remove MemcpyAsync/Identity nodes in subgraphs.
  2075. GE_CHK_STATUS_RET(pass_for_control_attr_optimize.AddPass("OptimizeStage2::ControlAttrOptimize::SubgraphPass",
  2076. new (std::nothrow) SubgraphPass))
  2077. // 'AttachStreamLabelPass' modifies attr without changing structure of compute_graph
  2078. // All passes after 'AttachStreamLabelPass' MUST mark stream_label on new nodes by self.
  2079. GE_CHK_STATUS_RET(pass_for_control_attr_optimize.AddPass("OptimizeStage2::ControlAttrOptimize::AttachStreamLabelPass",
  2080. new (std::nothrow) AttachStreamLabelPass))
  2081. GE_TIMESTAMP_START(pass_for_control_attr_optimize);
  2082. ret = pass_for_control_attr_optimize.Run(compute_graph);
  2083. GE_TIMESTAMP_END(pass_for_control_attr_optimize, "OptimizeStage2::ControlAttrOptimize");
  2084. if (ret != SUCCESS && ret != NOT_CHANGED) {
  2085. GELOGE(ret, "Run passes when optimize stage 2 failed");
  2086. return ret;
  2087. }
  2088. // Assign functional op labels.
  2089. GE_TIMESTAMP_START(AssignFunctionalLabels);
  2090. LabelAllocator label_allocator(compute_graph);
  2091. GE_CHK_STATUS_RET(label_allocator.AssignFunctionalLabels(), "Assign label failed.");
  2092. GE_TIMESTAMP_END(AssignFunctionalLabels, "ModelBuilder::AssignFunctionalLabels");
  2093. // Add memcpy addr asynchronous node.
  2094. GE_TIMESTAMP_START(AddMemcpyAddrAsyncNode);
  2095. MemcpyAddrAsyncPass memcpy_addr;
  2096. GE_CHK_STATUS_RET(memcpy_addr.Run(compute_graph), "Add memcpy_addr_async node failed.");
  2097. GE_TIMESTAMP_END(AddMemcpyAddrAsyncNode, "MemcpyAddrAsyncPass::Run.");
  2098. // After while sub graph handle, mark all node rw type
  2099. auto result = GetCompilerStages(compute_graph->GetGraphID()).optimizer.HandleMemoryRWConflict(compute_graph);
  2100. if (result != SUCCESS) {
  2101. GELOGW(
  2102. "Mark node rw type failed. It will take some effect on memory_assign_conflicts handling."
  2103. "Please pay attention to it.");
  2104. }
  2105. ChangeConstTypeWhenTraining(compute_graph);
  2106. GELOGI("End optimize after merge sub graph.");
  2107. return SUCCESS;
  2108. }
  2109. void GraphManager::ChangeConstTypeWhenTraining(const ComputeGraphPtr &compute_graph) {
  2110. // The constant for train is CONSTANTOP, and is CONSTANT for inference. They will be unified in future.
  2111. if (options_.train_graph_flag) {
  2112. for (NodePtr &n : compute_graph->GetAllNodes()) {
  2113. // This can ensure that n is not a null pointer
  2114. if (n->GetOpDesc()->GetType() == CONSTANT) {
  2115. n->GetOpDesc()->SetType(CONSTANTOP);
  2116. }
  2117. }
  2118. }
  2119. }
  2120. Status GraphManager::LoadGraphAsync(const GeRootModelPtr &ge_root_model, const GraphNodePtr &graph_node) {
  2121. GELOGI("[LoadGraphAsync] run_graph_flag[%d], graph_id[%u]", options_.run_graph_flag, graph_node->GetGraphId());
  2122. if (options_.run_graph_flag && ge_root_model != nullptr) {
  2123. // synchronization run graph with model
  2124. ModelIdInfo model_id_info;
  2125. bool is_unknown_shape = false;
  2126. GE_CHK_STATUS_RET(ge_root_model->CheckIsUnknownShape(is_unknown_shape));
  2127. if (!is_unknown_shape) {
  2128. if (getenv(kEnvGeuseStaticMemory) != nullptr) {
  2129. GELOGI("[LoadGraphAsync] GE_USE_STATIC_MEMORY is seted.");
  2130. } else {
  2131. auto root_graph = ge_root_model->GetRootGraph();
  2132. GE_CHECK_NOTNULL(root_graph);
  2133. auto name_to_model = ge_root_model->GetSubgraphInstanceNameToModel();
  2134. GeModelPtr ge_model = name_to_model[root_graph->GetName()];
  2135. GE_CHK_STATUS_RET(CheckAndReleaseMemory(ge_model, graph_node));
  2136. }
  2137. }
  2138. GE_TIMESTAMP_START(LoadGraph);
  2139. GE_CHECK_NOTNULL(graph_node->graph_run_async_listener_);
  2140. Status ret =
  2141. GraphLoader::LoadModelOnline(model_id_info.model_id, ge_root_model, graph_node->graph_run_async_listener_);
  2142. GE_TIMESTAMP_EVENT_END(LoadGraph, "GraphManager::LoadGraphAsync");
  2143. if (ret != SUCCESS) {
  2144. GELOGE(ret, "[LoadGraphAsync] LoadGraphAsync Failed");
  2145. graph_node->SetRunFlag(false);
  2146. return ret;
  2147. }
  2148. graph_node->SetLoadFlag(true);
  2149. ge_root_model->SetModelId(model_id_info.model_id);
  2150. graph_node->SetGeRootModel(ge_root_model);
  2151. }
  2152. return SUCCESS;
  2153. }
  2154. Status GraphManager::CheckAndReleaseMemory(const GeModelPtr &ge_model, const GraphNodePtr &graph_node) {
  2155. GELOGI("CheckAndReleaseMemory graph_id[%u]", graph_node->GetGraphId());
  2156. int64_t value = 0;
  2157. bool ret = ge::AttrUtils::GetInt(ge_model, ATTR_MODEL_MEMORY_SIZE, value);
  2158. int64_t memory_size = ret ? value : 0;
  2159. ret = ge::AttrUtils::GetInt(ge_model, ATTR_MODEL_WEIGHT_SIZE, value);
  2160. int64_t weight_size = ret ? value : 0;
  2161. ret = ge::AttrUtils::GetInt(ge_model, MODEL_ATTR_SESSION_ID, value);
  2162. uint64_t session_id = ret ? value : 0;
  2163. int64_t free_memory = 0;
  2164. Status result = GraphLoader::GetMemoryInfo(free_memory);
  2165. if (result != SUCCESS) {
  2166. return result;
  2167. }
  2168. GELOGI(
  2169. "CheckAndReleaseMemory Graph[%u] need memory_size[%ld], weight_size[%ld],"
  2170. " Device[%u] free_memory_size[%ld]",
  2171. graph_node->GetGraphId(), memory_size, weight_size, GetContext().DeviceId(), free_memory);
  2172. if (ge::CheckInt64AddOverflow(memory_size, weight_size) != SUCCESS) {
  2173. GELOGE(INTERNAL_ERROR, "The sum of Memory size and weight size exceeds INT64_MAX");
  2174. return INTERNAL_ERROR;
  2175. }
  2176. if (free_memory >= (memory_size + weight_size)) {
  2177. return SUCCESS;
  2178. }
  2179. std::lock_guard<std::mutex> lock(unload_model_mutex_);
  2180. std::map<GraphId, GraphNodePtr> graph_map;
  2181. {
  2182. std::lock_guard<std::mutex> lock(member_mutex_);
  2183. graph_map = graph_map_;
  2184. }
  2185. for (auto &it : graph_map) {
  2186. auto graph_id = it.second->GetGraphId();
  2187. auto model = it.second->GetGeRootModel();
  2188. if (model == nullptr) {
  2189. continue;
  2190. }
  2191. auto model_id = model->GetModelId();
  2192. // not loaded,no need unload
  2193. if (!it.second->GetLoadFlag()) {
  2194. GELOGI("CheckAndReleaseMemory graph[%u] has not been loaded.", graph_id);
  2195. continue;
  2196. }
  2197. uint64_t max_memory_size = 0;
  2198. result = GraphLoader::GetMaxUsedMemory(model_id, max_memory_size);
  2199. if (result != SUCCESS) {
  2200. continue;
  2201. }
  2202. GELOGI("CheckAndReleaseMemory try to UnloadGraph[%u], model[%u] which MaxUsedMemory[%lu].", graph_id, model_id,
  2203. max_memory_size);
  2204. rtError_t rt_ret = rtSetDevice(GetContext().DeviceId());
  2205. if (rt_ret != RT_ERROR_NONE) {
  2206. GELOGE(RT_FAILED, "[GraphManager:] rtSetDevice failed, modelId=%u, graphId=%u.", model_id, graph_id);
  2207. continue;
  2208. }
  2209. result = GraphLoader::DestroyAicpuKernel(session_id, model_id);
  2210. if (result != SUCCESS) {
  2211. GELOGW("[GraphManager:] destroy aicpu kernel failed when dynamic memory, modelId=%u, graphId=%u.", model_id,
  2212. graph_id);
  2213. }
  2214. result = GraphLoader::UnloadModel(model_id);
  2215. if (result != SUCCESS) {
  2216. GELOGW("[GraphManager:] unload model failed, modelId=%u, graphId=%u.", model_id, graph_id);
  2217. }
  2218. rt_ret = rtDeviceReset(GetContext().DeviceId());
  2219. if (rt_ret != RT_ERROR_NONE) {
  2220. GELOGE(RT_FAILED, "[GraphManager:] rtDeviceReset failed, modelId=%u, graphId=%u.", model_id, graph_id);
  2221. continue;
  2222. }
  2223. it.second->SetLoadFlag(false);
  2224. GELOGI("CheckAndReleaseMemory UnloadGraph[%u], model[%u] success and set LoadFlag to false.", graph_id, model_id);
  2225. }
  2226. return SUCCESS;
  2227. }
  2228. Status GraphManager::ProcessSubGraphWithMultiThreads(GraphManager *graph_manager, GraphId root_graph_id,
  2229. const SubGraphInfoPtr &sub_graph_info_ptr,
  2230. const ComputeGraphPtr &compute_graph, uint64_t session_id,
  2231. const GEThreadLocalContext &ge_context) {
  2232. if (sub_graph_info_ptr != nullptr && graph_manager != nullptr) {
  2233. GetContext().SetSessionId(session_id);
  2234. GetThreadLocalContext() = ge_context;
  2235. graph_manager->UpdateLocalOmgContext(root_graph_id);
  2236. ComputeGraphPtr compute_graph_tmp = sub_graph_info_ptr->GetSubGraph();
  2237. const std::string &engine_name = sub_graph_info_ptr->GetEngineName();
  2238. GELOGD("ProcessSubGraphWithMultiThreads start, graph name is %s, engine_name is %s, thread id is %lu",
  2239. compute_graph_tmp != nullptr ? compute_graph_tmp->GetName().c_str() : "", engine_name.c_str(),
  2240. pthread_self());
  2241. GE_DUMP(compute_graph_tmp, "OptimizeSubGraphBefore");
  2242. GE_CHECK_NOTNULL(compute_graph_tmp);
  2243. if (!AttrUtils::SetInt(*compute_graph_tmp, ATTR_NAME_ROOT_GRAPH_ID, root_graph_id)) {
  2244. GELOGE(FAILED, "Failed to set attr ATTR_NAME_ROOT_GRAPH_ID for subgraph, graph_id: %u.", root_graph_id);
  2245. return FAILED;
  2246. }
  2247. compute_graph_tmp->SetSessionID(session_id);
  2248. Status ret = graph_manager->GetCompilerStages(root_graph_id).optimizer.OptimizeSubGraph(compute_graph_tmp,
  2249. compute_graph,
  2250. engine_name);
  2251. if (ret != SUCCESS) {
  2252. GELOGE(ret, "SubGraph optimize Failed %s", engine_name.c_str());
  2253. return ret;
  2254. } else {
  2255. GELOGD("SubGraph optimize success %s", engine_name.c_str());
  2256. }
  2257. GE_DUMP(compute_graph_tmp, "OptimizeSubGraphAfter");
  2258. sub_graph_info_ptr->SetSubGraph(compute_graph_tmp);
  2259. GELOGD("ProcessSubGraphWithMultiThreads end, graph name is %s, engine_name is %s, thread id is %lu",
  2260. compute_graph_tmp != nullptr ? compute_graph_tmp->GetName().c_str() : "", engine_name.c_str(),
  2261. pthread_self());
  2262. } else {
  2263. GELOGE(FAILED, "graph_manager or sub_graph_info_ptr is nullptr");
  2264. return FAILED;
  2265. }
  2266. return SUCCESS;
  2267. }
  2268. // run graph async on session
  2269. Status GraphManager::RunGraphAsync(const GraphId &graph_id, const std::vector<ge::InputTensorInfo> &inputs,
  2270. uint64_t session_id, RunAsyncCallback callback) {
  2271. GELOGI("[GraphManager] Start to run graph async, graph_id=%u, inputsSize=%zu.", graph_id, inputs.size());
  2272. bool ret = prerun_args_q_.Push(PreRunArgs({graph_id, inputs, session_id, GetThreadLocalContext(), callback}));
  2273. if (!ret) {
  2274. GELOGE(FAILED, "[GraphManager] Run graph async failed, graph_id=%u.", graph_id);
  2275. return FAILED;
  2276. }
  2277. GELOGI("[GraphManager] Run graph async success, graph_id=%u.", graph_id);
  2278. return SUCCESS;
  2279. }
  2280. void GraphManager::AddModelCacheHelperToMap(const GraphId &graph_id, uint64_t session_id,
  2281. ComputeGraphPtr &compute_graph) {
  2282. std::shared_ptr<GELib> instance_ptr = ge::GELib::GetInstance();
  2283. if (instance_ptr != nullptr && instance_ptr->IsIncreBuild()) {
  2284. std::lock_guard<std::mutex> lock(member_mutex_);
  2285. auto iter = cache_helper_map_.find(graph_id);
  2286. if (iter == cache_helper_map_.end()) {
  2287. ModelCacheHelperPtr cache_helper = MakeShared<ge::ModelCacheHelper>(session_id, graph_id, compute_graph);
  2288. if (cache_helper != nullptr) {
  2289. cache_helper_map_.emplace(std::make_pair(graph_id, cache_helper));
  2290. } else {
  2291. GELOGW("Cache helper make shared failed, graph_id = %u.", graph_id);
  2292. }
  2293. }
  2294. }
  2295. }
  2296. ModelCacheHelperPtr GraphManager::FindModelCacheHelper(GraphId graph_id) {
  2297. std::lock_guard<std::mutex> lock(member_mutex_);
  2298. auto iter = cache_helper_map_.find(graph_id);
  2299. if (iter != cache_helper_map_.end()) {
  2300. return iter->second;
  2301. }
  2302. return nullptr;
  2303. }
  2304. Status GraphManager::IncreBuild(const GraphNodePtr &graph_node, GeModelPtr &ge_model) {
  2305. std::shared_ptr<GELib> instance_ptr = ge::GELib::GetInstance();
  2306. if (instance_ptr == nullptr || !instance_ptr->IsIncreBuild()) {
  2307. return FAILED;
  2308. }
  2309. const uint32_t graph_id = graph_node->GetGraphId();
  2310. ModelCacheHelperPtr cache_helper = FindModelCacheHelper(graph_id);
  2311. if (cache_helper == nullptr) {
  2312. GELOGW("Can not find ModelCacheHelper of graph[%u]", graph_id);
  2313. return FAILED;
  2314. }
  2315. if (cache_helper->IsModelCacheHit()) {
  2316. GEEVENT("Model cache hit.");
  2317. Status ret = LoadFromCache(graph_node, cache_helper, ge_model);
  2318. if (ret == SUCCESS) {
  2319. return SUCCESS;
  2320. } else {
  2321. GELOGW("Error occurred when load from cache, abandon.");
  2322. }
  2323. } else {
  2324. GEEVENT("Model cache miss.");
  2325. }
  2326. if (SaveCacheBeforeBuild(graph_node->GetGraphId(), cache_helper) != SUCCESS) {
  2327. GELOGW("Error occurred when save cache.");
  2328. }
  2329. return FAILED;
  2330. }
  2331. void GraphManager::ConstructGeInput(std::vector<ge::GeTensor> &ge_inputs, PreRunArgs &args) {
  2332. for (auto const &input : args.input_tensor) {
  2333. std::vector<int64_t> input_dims;
  2334. std::transform(input.dims.begin(), input.dims.end(), std::back_inserter(input_dims),
  2335. [](int64_t x) -> int64_t { return x; });
  2336. GeShape input_shape(input_dims);
  2337. GeTensorDesc input_tensor_desc;
  2338. input_tensor_desc.SetShape(input_shape);
  2339. input_tensor_desc.SetDataType(static_cast<ge::DataType>(input.data_type));
  2340. ge_inputs.emplace_back(input_tensor_desc);
  2341. }
  2342. }
  2343. void GraphManager::PreRunThread(GraphManager *graph_manager) {
  2344. if (prctl(PR_SET_NAME, ("GE_PreRun")) != 0) {
  2345. GELOGW("Set thread name failed.");
  2346. }
  2347. PreRunArgs args;
  2348. while (graph_manager->thread_run_flag_) {
  2349. bool pop_status = graph_manager->prerun_args_q_.Pop(args);
  2350. if (!pop_status) {
  2351. continue;
  2352. }
  2353. GELOGI("A new loop start.");
  2354. GetContext().SetSessionId(args.session_id);
  2355. GetThreadLocalContext() = args.context;
  2356. graph_manager->UpdateLocalOmgContext(args.graph_id);
  2357. std::vector<ge::GeTensor> ge_inputs;
  2358. ConstructGeInput(ge_inputs, args);
  2359. // find graph
  2360. GraphNodePtr graph_node = nullptr;
  2361. Status ret = graph_manager->GetGraphNode(args.graph_id, graph_node);
  2362. if (ret != SUCCESS) {
  2363. ReturnError(graph_manager, args.callback, GE_GRAPH_ALREADY_RUNNING,
  2364. "[RunGraph] graph not exist, graph_id=" + std::to_string(args.graph_id));
  2365. return;
  2366. }
  2367. graph_node->Lock();
  2368. if (graph_node->GetRunFlag()) {
  2369. ReturnError(graph_manager, args.callback, GE_GRAPH_GRAPH_NODE_NULL,
  2370. "[RunGraph] graph already running, graph id=" + std::to_string(args.graph_id));
  2371. graph_node->Unlock();
  2372. return;
  2373. }
  2374. // set graph's run flag
  2375. graph_node->SetRunFlag(true);
  2376. ComputeGraphPtr compute_graph_tmp = GraphUtils::GetComputeGraph(*(graph_node->GetGraph()));
  2377. if (compute_graph_tmp == nullptr) {
  2378. ReturnError(graph_manager, args.callback, GE_GRAPH_GRAPH_NODE_NULL,
  2379. "[RunGraph] compute_graph_tmp is NULL, graph id = %u.");
  2380. graph_node->Unlock();
  2381. return;
  2382. }
  2383. // when set incre build, save cache helper.
  2384. graph_manager->AddModelCacheHelperToMap(args.graph_id, args.session_id, compute_graph_tmp);
  2385. std::vector<GeModelPtr> ge_models;
  2386. if (graph_manager->options_.local_fmk_op_flag) {
  2387. graph_manager->GetCompilerStages(graph_node->GetGraphId()).optimizer.TranFrameOp(compute_graph_tmp);
  2388. }
  2389. // it will not execute graph preprocess, optimize, parition, build if the graph has built successful.
  2390. GELOGI("Start for run graph async.");
  2391. GeRootModelPtr ge_root_model = nullptr;
  2392. if (graph_manager->IsGraphNeedBuild(graph_node)) {
  2393. if (graph_node->GetBuildFlag()) {
  2394. ReturnError(graph_manager, args.callback, PARAM_INVALID,
  2395. "The graph " + std::to_string(graph_node->GetGraphId()) +
  2396. " need to re-build, you should remove it"
  2397. " from GE first, then AddGraph again and rebuild it.");
  2398. graph_node->Unlock();
  2399. return;
  2400. }
  2401. // check need incre build.
  2402. GeModelPtr ge_model = nullptr;
  2403. if (graph_manager->IncreBuild(graph_node, ge_model) != SUCCESS) {
  2404. ret = graph_manager->PreRun(graph_node, ge_inputs, ge_root_model, args.session_id);
  2405. // release rts generate context
  2406. RtContextUtil::GetInstance().DestroyRtContexts(args.session_id, graph_node->GetGraphId());
  2407. if (ret != SUCCESS) {
  2408. graph_node->SetRunFlag(false);
  2409. if (!ge::Analyzer::GetInstance()->IsEnableNetAnalyzeDebug()) {
  2410. ReturnError(graph_manager, args.callback, ret, "PreRun Failed, thread exit..");
  2411. graph_node->Unlock();
  2412. return;
  2413. } else {
  2414. ReturnError(graph_manager, graph_node, args.callback, ret, "PreRun Failed, keep geop continue!");
  2415. graph_node->Unlock();
  2416. continue;
  2417. }
  2418. }
  2419. }
  2420. graph_node->SetBuildFlag(true);
  2421. graph_manager->var_acc_ctrl_.SetGraphBuildEnd(graph_node->GetGraphId());
  2422. } else {
  2423. ge_root_model = graph_node->GetGeRootModel();
  2424. }
  2425. graph_manager->run_args_q_.Push(RunArgs( { graph_node, args.graph_id, args.session_id, args.input_tensor,
  2426. ge_root_model, GetThreadLocalContext(), args.callback }));
  2427. GELOGI("Loop end.");
  2428. }
  2429. }
  2430. void GraphManager::ParseInputsDimsForData(const std::vector<InputTensorInfo> &input_tensor) {
  2431. GELOGD("Start parse input dims from data.");
  2432. for (size_t i = 0; i < input_tensor.size(); ++i) {
  2433. std::vector<int64_t> dynamic_dim;
  2434. for (size_t j = 0; j < input_tensor[i].dims.size(); ++j) {
  2435. dynamic_dim.emplace_back(input_tensor[i].dims[j]);
  2436. }
  2437. GELOGD("Input tensor dims is %s.", formats::JoinToString(dynamic_dim).c_str());
  2438. GetLocalOmgContext().user_real_input_dims.emplace_back(input_tensor[i].dims);
  2439. }
  2440. }
  2441. Status GraphManager::ParseInputsDimsForGetNexNosinkAndData(const vector<NodePtr> &dynamic_nodes,
  2442. const std::vector<InputTensorInfo> &input_tensor) {
  2443. GELOGD("Start parse inputs dims when coexist data and getnext sink.");
  2444. for (size_t i = 0; i < dynamic_nodes.size(); ++i) {
  2445. auto op_desc = dynamic_nodes.at(i)->GetOpDesc();
  2446. if (op_desc == nullptr) {
  2447. continue;
  2448. }
  2449. GeAttrValue::INT index = 0;
  2450. if (!(AttrUtils::GetInt(op_desc, ATTR_NAME_INDEX, index))) {
  2451. GELOGE(PARAM_INVALID, "Get index from attr failed");
  2452. return PARAM_INVALID;
  2453. }
  2454. if (static_cast<size_t>(index) > input_tensor.size()) {
  2455. GELOGE(PARAM_INVALID, "The count of input tensor should be equal to the count of data.");
  2456. return PARAM_INVALID;
  2457. }
  2458. GetLocalOmgContext().user_real_input_dims.emplace_back(input_tensor.at(index).dims);
  2459. GELOGI("Shape dims of %d data is %s.", index, formats::JoinToString(input_tensor.at(index).dims).c_str());
  2460. }
  2461. return SUCCESS;
  2462. }
  2463. Status GraphManager::ParseInputsDims(const std::vector<InputTensorInfo> &input_tensor) {
  2464. GELOGI("Start parse input dims of %zu input tensor.", input_tensor.size());
  2465. GetLocalOmgContext().user_real_input_dims.clear();
  2466. if (!GetLocalOmgContext().dynamic_node_type.empty()) {
  2467. vector<NodePtr> data_nodes;
  2468. vector<NodePtr> getnext_nosink_nodes;
  2469. data_nodes = compute_graph_->TryGetExtAttr(kExtAttrDataNodes, data_nodes);
  2470. getnext_nosink_nodes = compute_graph_->TryGetExtAttr(kExtAttrGetNextNoSink, getnext_nosink_nodes);
  2471. if (GetLocalOmgContext().dynamic_node_type == DATA) {
  2472. if (getnext_nosink_nodes.empty()) {
  2473. // just data or data+getnext_sink
  2474. ParseInputsDimsForData(input_tensor);
  2475. } else {
  2476. // data+getnext_nosink, but only need to get shape_dims of data
  2477. if (ParseInputsDimsForGetNexNosinkAndData(data_nodes, input_tensor) != SUCCESS) {
  2478. GELOGE(PARAM_INVALID, "Failed to parse dims from data, when data coexist with getnext nosink.");
  2479. return PARAM_INVALID;
  2480. }
  2481. }
  2482. } else {
  2483. if (getnext_nosink_nodes.empty()) {
  2484. // just getnext_sink or getnext_sink+data, need to get shape_dims from aicpu op
  2485. GELOGI("Need to get dims from aicpu op: GETDYNAMICDIMS.");
  2486. return SUCCESS;
  2487. } else {
  2488. if (data_nodes.empty()) {
  2489. // just getnext_nosink
  2490. ParseInputsDimsForData(input_tensor);
  2491. } else {
  2492. // getnext_nosink + data, but only need to get shape_dims of getnext_nosink
  2493. if (ParseInputsDimsForGetNexNosinkAndData(getnext_nosink_nodes, input_tensor) != SUCCESS) {
  2494. GELOGE(PARAM_INVALID, "Failed to parse dims from getnext nosink, when data coexist with getnext nosink");
  2495. return PARAM_INVALID;
  2496. }
  2497. }
  2498. }
  2499. }
  2500. }
  2501. GELOGI("Parse %zu inputs dims success.", GetLocalOmgContext().user_real_input_dims.size());
  2502. return SUCCESS;
  2503. }
  2504. void GraphManager::RunThread(GraphManager *graph_manager) {
  2505. if (prctl(PR_SET_NAME, ("GE_Run")) != 0) {
  2506. GELOGW("Set thread name failed.");
  2507. }
  2508. RunArgs args;
  2509. while (graph_manager->thread_run_flag_) {
  2510. bool pop_status = graph_manager->run_args_q_.Pop(args);
  2511. if (!pop_status) {
  2512. continue;
  2513. }
  2514. GELOGI("A new loop start.");
  2515. GetContext().SetSessionId(args.session_id);
  2516. GetThreadLocalContext() = args.context;
  2517. graph_manager->UpdateLocalOmgContext(args.graph_id);
  2518. if (args.graph_node->graph_run_async_listener_ != nullptr) {
  2519. args.graph_node->graph_run_async_listener_->SetCallback(args.callback);
  2520. }
  2521. Status ret;
  2522. // parse inputs.dims to vector<vector<uint64_t>> dynamic_dims
  2523. ret = graph_manager->ParseInputsDims(args.input_tensor);
  2524. if (ret != SUCCESS) {
  2525. ReturnError(graph_manager, args.callback, ret, "ParseInputsDims failed, thread exit.");
  2526. args.graph_node->Unlock();
  2527. return;
  2528. }
  2529. if (!args.graph_node->GetLoadFlag()) {
  2530. ret = graph_manager->LoadGraphAsync(args.ge_root_model, args.graph_node);
  2531. if (ret != SUCCESS || args.ge_root_model == nullptr) {
  2532. StopQueue(graph_manager);
  2533. ReturnError(graph_manager, args.callback, ret, "LoadGraphAsync failed, thread exit.");
  2534. args.graph_node->Unlock();
  2535. return;
  2536. }
  2537. args.graph_node->SetLoadFlag(true);
  2538. GELOGI("LoadGraph[%u], model[%u] success and set LoadFlag to true.", args.graph_node->GetGraphId(),
  2539. args.ge_root_model->GetModelId());
  2540. }
  2541. if (graph_manager->GetTrainFlag()) {
  2542. ret = graph_manager->graph_executor_.SetGraphContext(graph_manager->GetGraphContext());
  2543. if (ret != SUCCESS) {
  2544. GELOGW("[GraphManager] SetGraphContext failed, graph_id=%u.", args.graph_id);
  2545. }
  2546. graph_manager->graph_executor_.SetTrainFlag(graph_manager->options_.train_graph_flag);
  2547. }
  2548. ret = graph_manager->graph_executor_.ExecuteGraphAsync(args.graph_id, args.graph_node->GetGeRootModel(),
  2549. args.input_tensor);
  2550. args.graph_node->SetRunFlag(false);
  2551. if (ret != SUCCESS) {
  2552. ReturnError(graph_manager, args.callback, ret, "ExecuteGraphAsync failed, thread exit.");
  2553. args.graph_node->Unlock();
  2554. return;
  2555. }
  2556. args.graph_node->Unlock();
  2557. GELOGI("[GraphManager] Run graph async success, graph_id=%u.", args.graph_id);
  2558. }
  2559. }
  2560. void GraphManager::StopQueue(GraphManager *graph_manager) {
  2561. if (graph_manager == nullptr) {
  2562. return;
  2563. }
  2564. graph_manager->thread_run_flag_.store(false);
  2565. graph_manager->prerun_args_q_.Stop();
  2566. graph_manager->run_args_q_.Stop();
  2567. }
  2568. void GraphManager::ReturnError(GraphManager *graph_manager, RunAsyncCallback callback, Status ret, const string &log) {
  2569. if (graph_manager == nullptr) {
  2570. return;
  2571. }
  2572. StopQueue(graph_manager);
  2573. GELOGE(ret, "%s.", log.c_str());
  2574. std::vector<ge::OutputTensorInfo> outputs;
  2575. callback(ret, outputs);
  2576. }
  2577. void GraphManager::ReturnError(GraphManager *graph_manager, GraphNodePtr &graph_node,
  2578. RunAsyncCallback callback, Status ret, const string &log) {
  2579. std::vector<ge::OutputTensorInfo> outputs;
  2580. auto compute_graph = GraphUtils::GetComputeGraph(*graph_node->GetGraph());
  2581. if (graph_manager == nullptr || compute_graph == nullptr) {
  2582. GELOGE(GRAPH_FAILED, "[Analyze Mode] compute graph is null!");
  2583. callback(GRAPH_FAILED, outputs);
  2584. return;
  2585. }
  2586. for (const auto &node : compute_graph->GetAllNodes()) {
  2587. if (node->GetType() != "NetOutput") {
  2588. continue;
  2589. }
  2590. for (size_t i = 0; i < node->GetAllInDataAnchorsSize(); i++) {
  2591. auto input_desc = node->GetOpDesc()->MutableInputDesc(i);
  2592. ge::OutputTensorInfo tensor;
  2593. tensor.dims = input_desc->GetShape().GetDims();
  2594. tensor.data_type = static_cast<uint32_t>(input_desc->GetDataType());
  2595. int64_t len = 1;
  2596. if (input_desc->GetShape().GetDims() != std::vector<int64_t>({})) {
  2597. len = input_desc->GetShape().GetShapeSize();
  2598. }
  2599. if (len < 0) {
  2600. GELOGE(GRAPH_FAILED, "Analyze Mode does not support GEOP output unknown shape!");
  2601. callback(GRAPH_FAILED, outputs);
  2602. return;
  2603. } else if (len == 0) {
  2604. GELOGI("getted shape size is 0.Do process as empty tensor!");
  2605. len = 1;
  2606. }
  2607. auto size = GetSizeByDataType(input_desc->GetDataType());
  2608. if (size <= 0) {
  2609. GELOGE(PARAM_INVALID, "Failed to get cube size, the data type %s is invalid",
  2610. ge::TypeUtils::DataTypeToSerialString(input_desc->GetDataType()).c_str());
  2611. callback(GRAPH_FAILED, outputs);
  2612. return;
  2613. }
  2614. if (CheckInt64MulOverflow(len, static_cast<int64_t>(size)) != true) {
  2615. GELOGE(MEMALLOC_FAILED, "int64 multiply happens overflow! a:%ld b:%d", len, size);
  2616. callback(GRAPH_FAILED, outputs);
  2617. return;
  2618. }
  2619. tensor.length = len * size;
  2620. tensor.data.reset(new(std::nothrow) uint8_t[tensor.length]);
  2621. // To avoid global step too small and can not stop, totally set a bigger value
  2622. for (int64_t i = 0; i < tensor.length; i++) {
  2623. tensor.data[i] = 0x7F; // here stands for a positive max value
  2624. }
  2625. outputs.emplace_back(std::move(tensor));
  2626. }
  2627. }
  2628. callback(SUCCESS, outputs);
  2629. return;
  2630. }
  2631. bool GraphManager::IsGraphNeedRebuild(uint32_t graph_id) {
  2632. // find graph
  2633. GraphNodePtr graph_node = nullptr;
  2634. Status ret = GetGraphNode(graph_id, graph_node);
  2635. if (ret != SUCCESS) {
  2636. GELOGE(ret, "[RunGraph] graph not exist, graph_id=%u.", graph_id);
  2637. return true;
  2638. }
  2639. if (graph_node == nullptr) {
  2640. GELOGE(GE_GRAPH_GRAPH_NODE_NULL, "[RunGraph] graph node is NULL, graphId=%u.", graph_id);
  2641. return true;
  2642. }
  2643. return IsGraphNeedBuild(graph_node);
  2644. }
  2645. bool GraphManager::IsGraphNeedBuild(const GraphNodePtr &graph_node) {
  2646. return !graph_node->GetBuildFlag() || var_acc_ctrl_.IsGraphNeedRebuild(graph_node->GetGraphId());
  2647. }
  2648. const map<std::string, std::string> *GraphManager::GetGraphOptions(uint32_t graph_id) {
  2649. GraphNodePtr graph_node = nullptr;
  2650. Status ret = GetGraphNode(graph_id, graph_node);
  2651. if (ret != SUCCESS) {
  2652. GELOGE(ret, "[RunGraph] graph not exist, graph_id=%u.", graph_id);
  2653. return nullptr;
  2654. }
  2655. if (!graph_node) {
  2656. GELOGE(GE_GRAPH_GRAPH_NODE_NULL, "[RunGraph] graph node is NULL, graph_id=%u.", graph_id);
  2657. return nullptr;
  2658. }
  2659. return &(graph_node->GetOptions());
  2660. }
  2661. void GraphManager::SetOptionsRunGraphFlag(bool run_graph_flag) { options_.run_graph_flag = run_graph_flag; }
  2662. Status GraphManager::OptimizeSubgraph(const GraphNodePtr &graph_node, ComputeGraphPtr &compute_graph,
  2663. uint64_t session_id) {
  2664. // graph partition
  2665. // Stage partition, only for root graph
  2666. GE_TIMESTAMP_START(StagePartition);
  2667. StagePartitioner stage_partitioner(compute_graph);
  2668. auto ret = stage_partitioner.Partition();
  2669. if (ret != SUCCESS) {
  2670. GELOGE(ret, "Graph partition by stage Failed");
  2671. return ret;
  2672. }
  2673. GE_TIMESTAMP_EVENT_END(StagePartition, "OptimizeSubgraph::StagePartition");
  2674. // all sub graph list of root graph and sub graph
  2675. GE_TIMESTAMP_START(GraphPartitionDynamicShape);
  2676. DynamicShapePartitioner dynamic_shape_partitioner(compute_graph);
  2677. ret = dynamic_shape_partitioner.Partition();
  2678. if (ret != SUCCESS) {
  2679. GELOGE(ret, "Graph partition by dynamic shape Failed");
  2680. return ret;
  2681. }
  2682. bool dynamic_shape_partitioned = false;
  2683. if (!AttrUtils::GetBool(*compute_graph, ATTR_NAME_DYNAMIC_SHAPE_PARTITIONED, dynamic_shape_partitioned)) {
  2684. GELOGE(FAILED, "failed get dynamic shape partitioned flag on partitioned graph.");
  2685. return FAILED;
  2686. }
  2687. GE_TIMESTAMP_EVENT_END(GraphPartitionDynamicShape, "OptimizeSubgraph::GraphPartitionDynamicShape");
  2688. GE_TIMESTAMP_START(GraphPartition);
  2689. GraphPartitioner &partitioner = GetCompilerStages(graph_node->GetGraphId()).partitioner;
  2690. ret = partitioner.Partition(compute_graph, GraphPartitioner::kPartitioning);
  2691. if (ret != SUCCESS) {
  2692. GELOGE(ret, "Graph partition Failed");
  2693. return ret;
  2694. }
  2695. GE_TIMESTAMP_EVENT_END(GraphPartition, "OptimizeSubgraph::Partition1");
  2696. GE_TIMESTAMP_START(SetSubgraph);
  2697. ret = SetSubgraph(session_id, compute_graph, partitioner);
  2698. if (ret != SUCCESS) {
  2699. GELOGE(ret, "Graph set subgraph Failed");
  2700. return ret;
  2701. }
  2702. GE_TIMESTAMP_EVENT_END(SetSubgraph, "OptimizeSubgraph::SetSubGraph");
  2703. if ((options_.build_mode == BUILD_MODE_TUNING) &&
  2704. (options_.build_step == BUILD_STEP_BEFORE_UB_MATCH || options_.build_step == BUILD_STEP_AFTER_BUILDER ||
  2705. options_.build_step == BUILD_STEP_AFTER_BUILDER_SUB)) {
  2706. GE_TIMESTAMP_START(ConvertGraphToFile);
  2707. std::string tuning_path;
  2708. (void) GetContext().GetOption(TUNING_PATH, tuning_path);
  2709. Status ret = ConvertGraphToFile(compute_graph, partitioner, tuning_path,
  2710. (options_.build_step == BUILD_STEP_AFTER_BUILDER));
  2711. if (ret != SUCCESS) {
  2712. GELOGE(ret, "Convert graph[%s] to file failed", compute_graph->GetName().c_str());
  2713. return ret;
  2714. }
  2715. GE_TIMESTAMP_EVENT_END(ConvertGraphToFile, "OptimizeSubgraph::ConvertGraphToFile");
  2716. return SUCCESS;
  2717. }
  2718. ComputeGraphPtr merged_compute_graph = nullptr;
  2719. std::vector<ComputeGraphPtr> merged_sub_graph_list;
  2720. GE_TIMESTAMP_START(MergeSubgraph);
  2721. ret = MergeSubGraph(merged_compute_graph, compute_graph, graph_node->GetGraphId());
  2722. if (ret != SUCCESS) {
  2723. GELOGE(ret, "Merge SubGraph Failed");
  2724. return ret;
  2725. }
  2726. GE_CHECK_NOTNULL(merged_compute_graph);
  2727. merged_compute_graph->SetSessionID(session_id);
  2728. merged_compute_graph->SetGraphID(graph_node->GetGraphId());
  2729. merged_compute_graph->SetNeedIteration(compute_graph->GetNeedIteration());
  2730. for (auto &sub_graph : merged_compute_graph->GetAllSubgraphs()) {
  2731. sub_graph->SetSessionID(session_id);
  2732. sub_graph->SetGraphID(graph_node->GetGraphId());
  2733. }
  2734. GE_TIMESTAMP_EVENT_END(MergeSubgraph, "OptimizeSubgraph::MergeSubGraph");
  2735. GE_DUMP(merged_compute_graph, "mergedComputeGraph");
  2736. compute_graph = merged_compute_graph;
  2737. if (!AttrUtils::SetBool(*compute_graph, ATTR_NAME_DYNAMIC_SHAPE_PARTITIONED, dynamic_shape_partitioned)) {
  2738. GELOGE(FAILED, "failed set dynamic shape partitioned flag on partitioned graph.");
  2739. return FAILED;
  2740. }
  2741. return SUCCESS;
  2742. }
  2743. Status GraphManager::ConvertGraphToFile(ComputeGraphPtr &compute_graph, GraphPartitioner &partitioner, std::string path,
  2744. bool exe_flag) {
  2745. GE_CHECK_NOTNULL(compute_graph);
  2746. GELOGI("compute_graph [%s] path [%s] Enter ConvertGraphToFile.", compute_graph->GetName().c_str(), path.c_str());
  2747. std::vector<ComputeGraphPtr> non_tuning_subgraphs;
  2748. auto input_node_sub_graph_map = partitioner.graph_2_input_subgraph_;
  2749. const auto &input_subgraph_info = input_node_sub_graph_map[compute_graph];
  2750. GE_CHECK_NOTNULL(input_subgraph_info);
  2751. ComputeGraphPtr input_graph_tmp = input_subgraph_info->GetSubGraph();
  2752. non_tuning_subgraphs.push_back(input_graph_tmp);
  2753. auto sub_graph_map = partitioner.GetSubGraphMap();
  2754. const auto &subgraph_infos = sub_graph_map[compute_graph];
  2755. std::vector<ComputeGraphPtr> tuning_subgraphs;
  2756. for (const auto &sub_graph_info_ptr: subgraph_infos) {
  2757. GE_CHECK_NOTNULL(sub_graph_info_ptr);
  2758. ComputeGraphPtr sub_graph_tmp = sub_graph_info_ptr->GetSubGraph();
  2759. // need to tuning
  2760. if (sub_graph_info_ptr->GetEngineName() == kVectorEngine || sub_graph_info_ptr->GetEngineName() == kAIcoreEngine) {
  2761. tuning_subgraphs.push_back(sub_graph_tmp);
  2762. } else {
  2763. non_tuning_subgraphs.push_back(sub_graph_tmp);
  2764. }
  2765. }
  2766. return TuningUtils::ConvertGraphToFile(tuning_subgraphs, non_tuning_subgraphs, exe_flag, path);
  2767. }
  2768. Status GraphManager::Build(const GraphNodePtr &graph_node, ComputeGraphPtr &compute_graph,
  2769. GeRootModelPtr &ge_root_model, uint64_t session_id) {
  2770. // build
  2771. if (compute_graph != nullptr) {
  2772. std::string graph_name = compute_graph->GetName();
  2773. graph_name.append("_");
  2774. graph_name.append(std::to_string(graph_node->GetGraphId()));
  2775. compute_graph->SetName(graph_name);
  2776. }
  2777. std::vector<SubGraphInfoPtr> sub_graph_list;
  2778. auto ret = GetCompilerStages(graph_node->GetGraphId()).builder.Build(compute_graph, sub_graph_list, ge_root_model,
  2779. session_id);
  2780. if (ret != SUCCESS) {
  2781. GELOGE(ret, "SubGraph build Failed.");
  2782. return ret;
  2783. }
  2784. bool is_always_dump = false;
  2785. if (!PropertiesManager::Instance().GetDumpProperties(session_id).GetDumpPath().empty()) {
  2786. is_always_dump = true;
  2787. }
  2788. GraphUtils::DumpGEGraph(compute_graph, "Build", is_always_dump);
  2789. GraphUtils::DumpGEGraphToOnnx(*compute_graph, "Build");
  2790. graph_node->SetGeRootModel(ge_root_model);
  2791. return SUCCESS;
  2792. }
  2793. Status GraphManager::GenCheckPointGraph(const std::map<std::string, GeTensorDesc> &all_variables, Graph &graph) {
  2794. ge::ComputeGraphPtr compute_graph = MakeShared<ComputeGraph>(kCheckPointGraph);
  2795. GE_CHECK_NOTNULL(compute_graph);
  2796. OpDescPtr save_desc = MakeShared<ge::OpDesc>(compute_graph->GetName() + "_" + kSave, kSave);
  2797. GE_CHECK_NOTNULL(save_desc);
  2798. uint32_t save_index = 0;
  2799. for (auto iter = all_variables.begin(); iter != all_variables.end(); ++iter) {
  2800. GE_CHK_GRAPH_STATUS_RET(save_desc->AddInputDesc(save_index, iter->second));
  2801. save_index++;
  2802. }
  2803. NodePtr save_node = compute_graph->AddNode(save_desc);
  2804. uint32_t index = 0;
  2805. for (auto iter = all_variables.begin(); iter != all_variables.end(); ++iter) {
  2806. OpDescPtr var_desc = MakeShared<ge::OpDesc>(iter->first, VARIABLE);
  2807. GE_CHECK_NOTNULL(var_desc);
  2808. if (!AttrUtils::SetBool(var_desc, kCheckPointForGetVar, true)) {
  2809. GELOGW("Set check point graph attr failed.");
  2810. }
  2811. GE_CHK_GRAPH_STATUS_RET(var_desc->AddOutputDesc(iter->second));
  2812. NodePtr var_node = compute_graph->AddNode(var_desc);
  2813. GE_CHK_STATUS(GraphUtils::AddEdge(var_node->GetOutDataAnchor(0), save_node->GetInDataAnchor(index)),
  2814. "Add edge[%s->%s] fail.", var_node->GetName().c_str(), save_node->GetName().c_str());
  2815. index++;
  2816. }
  2817. compute_graph->Dump();
  2818. graph = GraphUtils::CreateGraphFromComputeGraph(compute_graph);
  2819. return SUCCESS;
  2820. }
  2821. Status GraphManager::SaveVariables(const Graph &graph, const std::vector<std::string> &var_names,
  2822. const std::vector<Tensor> &outputs, std::vector<Tensor> &var_values) {
  2823. map<string, Tensor> var_results;
  2824. GE_CHK_STATUS_RET(SaveCheckPointResult(graph, outputs, var_results), "Save check point result failed.");
  2825. if (!var_names.empty()) {
  2826. for (const auto &var_name : var_names) {
  2827. if (var_results.count(var_name) == 0) {
  2828. GELOGE(FAILED, "Fetch var[%s] value failed.", var_name.c_str());
  2829. return FAILED;
  2830. } else {
  2831. auto var_tensor = var_results[var_name].GetTensorDesc();
  2832. var_tensor.SetName(var_name);
  2833. var_results[var_name].SetTensorDesc(var_tensor);
  2834. var_values.emplace_back(var_results[var_name]);
  2835. }
  2836. }
  2837. } else {
  2838. for (auto iter = var_results.begin(); iter != var_results.end(); ++iter) {
  2839. string var_name = iter->first;
  2840. auto var_tensor = iter->second.GetTensorDesc();
  2841. var_tensor.SetName(var_name);
  2842. iter->second.SetTensorDesc(var_tensor);
  2843. var_values.emplace_back(iter->second);
  2844. }
  2845. }
  2846. return SUCCESS;
  2847. }
  2848. Status GraphManager::SaveCheckPointResult(const Graph &graph, const std::vector<Tensor> &outputs,
  2849. map<string, Tensor> &var_results) {
  2850. auto compute_graph = GraphUtils::GetComputeGraph(graph);
  2851. NodePtr netoutput_node = nullptr;
  2852. for (const auto &node : compute_graph->GetAllNodes()) {
  2853. if (node->GetType() == NETOUTPUT) {
  2854. netoutput_node = node;
  2855. break;
  2856. }
  2857. }
  2858. GE_CHECK_NOTNULL(netoutput_node);
  2859. for (const auto &in : netoutput_node->GetAllInDataAnchors()) {
  2860. auto out_anchor = in->GetPeerOutAnchor();
  2861. GE_CHECK_NOTNULL(out_anchor);
  2862. auto peer_node = out_anchor->GetOwnerNode();
  2863. while (peer_node->GetType() != VARIABLE) {
  2864. if (peer_node->GetAllInDataAnchors().size() != 1) {
  2865. GELOGE(FAILED, "peer_node [%s] has more than 1 input in checkpoint Graph.", peer_node->GetName().c_str());
  2866. return FAILED;
  2867. }
  2868. auto peer_node_in_anchor = peer_node->GetAllInDataAnchors().at(0);
  2869. auto peer_node_out_anchor = peer_node_in_anchor->GetPeerOutAnchor();
  2870. if (peer_node_out_anchor != nullptr) {
  2871. peer_node = peer_node_out_anchor->GetOwnerNode();
  2872. if (peer_node->GetType() == VARIABLE) {
  2873. break;
  2874. }
  2875. }
  2876. }
  2877. if (peer_node->GetType() != VARIABLE) {
  2878. GELOGE(FAILED, " peer_node %s is not variable in checkpoint Graph.", peer_node->GetName().c_str());
  2879. return FAILED;
  2880. }
  2881. auto var_name = peer_node->GetName();
  2882. GELOGI("[GraphManager] SaveVariables, varName is %s.", var_name.c_str());
  2883. if (in->GetIdx() >= static_cast<int>(outputs.size())) {
  2884. GELOGE(FAILED, "variable index[%d] out of range[%zu].", in->GetIdx(), outputs.size());
  2885. return FAILED;
  2886. }
  2887. var_results.emplace(var_name, outputs.at(in->GetIdx()));
  2888. }
  2889. return SUCCESS;
  2890. }
  2891. void GraphManager::AddLocalOmgContext(GraphId graph_id, const OmgContext &omg_context) {
  2892. std::lock_guard<std::mutex> lock(member_mutex_);
  2893. omg_contexts_.emplace(graph_id, omg_context);
  2894. SetLocalOmgContext(omg_contexts_[graph_id]);
  2895. }
  2896. void GraphManager::UpdateLocalOmgContext(GraphId graph_id) {
  2897. std::lock_guard<std::mutex> lock(member_mutex_);
  2898. auto iter = omg_contexts_.find(graph_id);
  2899. if (iter != omg_contexts_.end()) {
  2900. SetLocalOmgContext(iter->second);
  2901. } else {
  2902. GELOGW("OmgContext of graph %u not found.", graph_id);
  2903. }
  2904. }
  2905. GraphManager::CompilerStages &GraphManager::GetCompilerStages(GraphId graph_id) {
  2906. std::lock_guard<std::mutex> lock(member_mutex_);
  2907. return compiler_stages_[graph_id];
  2908. }
  2909. void GraphManager::RemoveCompilerStages(GraphId graph_id) {
  2910. std::lock_guard<std::mutex> lock(member_mutex_);
  2911. compiler_stages_.erase(graph_id);
  2912. }
  2913. } // namespace ge

图引擎模块(GE)是MindSpore的一个子模块,其代码由C++实现,位于前端模块ME和底层硬件之间,起到承接作用。图引擎模块以ME下发的图作为输入,然后进行一系列的深度图优化操作,最后输出一张可以在底层硬件上高效运行的图。GE针对昇腾AI处理器的硬件结构特点,做了特定的优化工作,以此来充分发挥出昇腾AI处理器的强大算力。在进行模型训练/推理时,GE会被自动调用而用户并不感知。GE主要由GE API和GE Core两部分组成,详细的架构图如下所示