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ge_hybrid_unittest.cc 33 kB

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  1. /**
  2. * Copyright 2019-2021 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 <gtest/gtest.h>
  17. #include <gmock/gmock.h>
  18. #include <vector>
  19. #include "runtime/rt.h"
  20. #define protected public
  21. #define private public
  22. #include "graph/utils/node_utils.h"
  23. #include "hybrid/model/hybrid_model_builder.h"
  24. #include "hybrid/model/hybrid_model.h"
  25. #include "hybrid/node_executor/node_executor.h"
  26. #include "model/ge_model.h"
  27. #include "model/ge_root_model.h"
  28. #include "hybrid/node_executor/aicore/aicore_op_task.h"
  29. #include "framework/common/taskdown_common.h"
  30. #include "framework/common/debug/log.h"
  31. #include "graph/ge_context.h"
  32. #include "hybrid/executor/hybrid_execution_context.h"
  33. #include "hybrid/executor/hybrid_model_executor.h"
  34. #include "hybrid/node_executor/aicore/aicore_task_builder.h"
  35. #include "graph/load/model_manager/tbe_handle_store.h"
  36. #include "graph/manager/graph_mem_allocator.h"
  37. #include "hybrid/common/npu_memory_allocator.h"
  38. #include "graph/types.h"
  39. #include "graph/utils/tensor_utils.h"
  40. #include "graph/testcase/ge_graph/graph_builder_utils.h"
  41. #include "graph/op_desc_impl.h"
  42. #undef private
  43. #undef protected
  44. using namespace std;
  45. using namespace testing;
  46. using namespace ge;
  47. using namespace hybrid;
  48. class UtestGeHybrid : public testing::Test {
  49. protected:
  50. void SetUp() {}
  51. void TearDown() {
  52. NpuMemoryAllocator::allocators_.clear();
  53. }
  54. };
  55. static ge::OpDescPtr CreateOpDesc(string name = "", string type = "") {
  56. auto op_desc = std::make_shared<ge::OpDesc>(name, type);
  57. op_desc->SetStreamId(0);
  58. op_desc->SetId(0);
  59. op_desc->SetWorkspace({});
  60. ;
  61. op_desc->SetWorkspaceBytes({});
  62. op_desc->SetInputOffset({});
  63. op_desc->SetOutputOffset({});
  64. ge::AttrUtils::SetStr(op_desc, ge::TVM_ATTR_NAME_MAGIC, "RT_DEV_BINARY_MAGIC_ELF_AIVEC");
  65. bool support_dynamic = true;
  66. ge::AttrUtils::GetBool(op_desc, "support_dynamicshape", support_dynamic);
  67. return op_desc;
  68. }
  69. TEST_F(UtestGeHybrid, aicore_op_task_init_success) {
  70. // build aicore task
  71. auto aicore_task = std::unique_ptr<hybrid::AiCoreOpTask>(new(std::nothrow)hybrid::AiCoreOpTask());
  72. domi::TaskDef task_def;
  73. task_def.set_type(RT_MODEL_TASK_ALL_KERNEL);
  74. domi::KernelDefWithHandle *kernel_with_handle = task_def.mutable_kernel_with_handle();
  75. kernel_with_handle->set_original_kernel_key("");
  76. kernel_with_handle->set_node_info("");
  77. kernel_with_handle->set_block_dim(32);
  78. kernel_with_handle->set_args_size(64);
  79. string args(64, '1');
  80. kernel_with_handle->set_args(args.data(), 64);
  81. domi::KernelContext *context = kernel_with_handle->mutable_context();
  82. context->set_op_index(1);
  83. context->set_kernel_type(2); // ccKernelType::TE
  84. uint16_t args_offset[9] = {0};
  85. context->set_args_offset(args_offset, 9 * sizeof(uint16_t));
  86. OpDescPtr op_desc = CreateOpDesc("Add", "Add");
  87. std::vector<char> kernelBin;
  88. TBEKernelPtr tbe_kernel = std::make_shared<ge::OpKernelBin>("name/Add", std::move(kernelBin));
  89. op_desc->SetExtAttr(ge::OP_EXTATTR_NAME_TBE_KERNEL, tbe_kernel);
  90. std::string kernel_name("kernel/Add");
  91. AttrUtils::SetStr(op_desc, op_desc->GetName() + "_kernelname", kernel_name);
  92. ASSERT_EQ(aicore_task->InitWithTaskDef(*op_desc.get(), task_def), SUCCESS);
  93. rtStream_t stream = nullptr;
  94. rtStreamCreate(&stream, 0);
  95. ASSERT_EQ(aicore_task->LaunchKernel(stream), SUCCESS);
  96. char *handle = "";
  97. aicore_task->handle_ = handle;
  98. aicore_task->tiling_key_ = 1;
  99. ASSERT_EQ(aicore_task->LaunchKernel(stream), SUCCESS);
  100. }
  101. TEST_F(UtestGeHybrid, aicore_op_task_init_success2) {
  102. // build aicore task
  103. auto aicore_task = std::unique_ptr<hybrid::AiCoreOpTask>(new(std::nothrow)hybrid::AiCoreOpTask());
  104. aicore_task->is_single_op_ = true;
  105. domi::TaskDef task_def;
  106. task_def.set_type(RT_MODEL_TASK_KERNEL);
  107. domi::KernelDef *kernel = task_def.mutable_kernel();
  108. kernel->set_block_dim(32);
  109. kernel->set_args_size(64);
  110. string args(64, '1');
  111. kernel->set_args(args.data(), 64);
  112. domi::KernelContext *context = kernel->mutable_context();
  113. context->set_op_index(1);
  114. context->set_kernel_type(2); // ccKernelType::TE
  115. uint16_t args_offset[9] = {0};
  116. context->set_args_offset(args_offset, 9 * sizeof(uint16_t));
  117. OpDescPtr op_desc = CreateOpDesc("Add", "Add");
  118. std::vector<char> kernelBin;
  119. TBEKernelPtr tbe_kernel = std::make_shared<ge::OpKernelBin>("name/Add", std::move(kernelBin));
  120. op_desc->SetExtAttr(ge::OP_EXTATTR_NAME_TBE_KERNEL, tbe_kernel);
  121. std::string kernel_name("kernel/Add");
  122. AttrUtils::SetStr(op_desc, op_desc->GetName() + "_kernelname", kernel_name);
  123. ASSERT_EQ(aicore_task->InitWithTaskDef(*op_desc.get(), task_def), SUCCESS);
  124. rtStream_t stream = nullptr;
  125. rtStreamCreate(&stream, 0);
  126. ASSERT_EQ(aicore_task->LaunchKernel(stream), SUCCESS);
  127. char *handle = "";
  128. aicore_task->handle_ = handle;
  129. aicore_task->tiling_key_ = 1;
  130. ASSERT_EQ(aicore_task->LaunchKernel(stream), SUCCESS);
  131. }
  132. TEST_F(UtestGeHybrid, task_update_tiling_info) {
  133. auto aicore_task = std::unique_ptr<hybrid::AiCoreOpTask>(new(std::nothrow)hybrid::AiCoreOpTask());
  134. auto graph = make_shared<ComputeGraph>("graph");
  135. OpDescPtr op_desc = CreateOpDesc("Add", "Add");
  136. ge::AttrUtils::SetStr(op_desc, "compile_info_key", "key");
  137. ge::AttrUtils::SetStr(op_desc, "compile_info_json", "json");
  138. ge::AttrUtils::SetBool(op_desc, "support_dynamicshape", true);
  139. ge::AttrUtils::SetInt(op_desc, "op_para_size", 1);
  140. auto node = graph->AddNode(op_desc);
  141. std::unique_ptr<NodeItem> node_item;
  142. NodeItem::Create(node, node_item);
  143. node_item->input_start = 0;
  144. node_item->output_start = 0;
  145. GraphExecutionContext execution_context;
  146. SubgraphContext subgraph_context(nullptr, &execution_context);
  147. auto node_state = subgraph_context.GetOrCreateNodeState(node_item.get());
  148. ASSERT_EQ(aicore_task->InitTilingInfo(*op_desc), SUCCESS);
  149. ASSERT_EQ(aicore_task->UpdateTilingInfo(*node_state->GetTaskContext()), SUCCESS);
  150. }
  151. TEST_F(UtestGeHybrid, index_taskdefs_failed) {
  152. // build aicore task
  153. domi::ModelTaskDef model_task_def;
  154. std::shared_ptr<domi::ModelTaskDef> model_task_def_ptr = make_shared<domi::ModelTaskDef>(model_task_def);
  155. domi::TaskDef *task_def = model_task_def_ptr->add_task();
  156. GeModelPtr ge_model = make_shared<GeModel>();
  157. ge_model->SetModelTaskDef(model_task_def_ptr);
  158. auto aicore_task = std::unique_ptr<hybrid::AiCoreOpTask>(new(std::nothrow)hybrid::AiCoreOpTask());
  159. task_def->set_type(RT_MODEL_TASK_ALL_KERNEL);
  160. domi::KernelDefWithHandle *kernel_with_handle = task_def->mutable_kernel_with_handle();
  161. kernel_with_handle->set_original_kernel_key("");
  162. kernel_with_handle->set_node_info("");
  163. kernel_with_handle->set_block_dim(32);
  164. kernel_with_handle->set_args_size(64);
  165. string args(64, '1');
  166. kernel_with_handle->set_args(args.data(), 64);
  167. domi::KernelContext *context = kernel_with_handle->mutable_context();
  168. context->set_op_index(1);
  169. context->set_kernel_type(2); // ccKernelType::TE
  170. uint16_t args_offset[9] = {0};
  171. context->set_args_offset(args_offset, 9 * sizeof(uint16_t));
  172. OpDescPtr op_desc = CreateOpDesc("Add", "Add");
  173. std::vector<char> kernelBin;
  174. TBEKernelPtr tbe_kernel = std::make_shared<ge::OpKernelBin>("name/Add", std::move(kernelBin));
  175. op_desc->SetExtAttr(ge::OP_EXTATTR_NAME_TBE_KERNEL, tbe_kernel);
  176. std::string kernel_name("kernel/Add");
  177. AttrUtils::SetStr(op_desc, op_desc->GetName() + "_kernelname", kernel_name);
  178. ComputeGraphPtr graph = std::make_shared<ComputeGraph>("test");
  179. GeRootModelPtr ge_root_model = make_shared<GeRootModel>(graph);
  180. ge_root_model->SetModelName("test_name");
  181. HybridModel hybrid_model(ge_root_model);
  182. HybridModelBuilder hybrid_model_builder(hybrid_model);
  183. ASSERT_EQ(hybrid_model_builder.Build(), INTERNAL_ERROR);
  184. ASSERT_EQ(hybrid_model_builder.IndexTaskDefs(graph, ge_model), INTERNAL_ERROR);
  185. }
  186. TEST_F(UtestGeHybrid, parse_force_infershape_nodes) {
  187. const char *const kForceInfershape = "_force_infershape_when_running";
  188. auto graph = make_shared<ComputeGraph>("graph");
  189. OpDescPtr op_desc = CreateOpDesc("Conv2D", "Conv2D");
  190. ge::AttrUtils::SetBool(op_desc, kForceInfershape, true);
  191. auto node = graph->AddNode(op_desc);
  192. std::unique_ptr<NodeItem> new_node;
  193. NodeItem::Create(node, new_node);
  194. GeRootModelPtr ge_root_model = make_shared<GeRootModel>(graph);
  195. HybridModel hybrid_model(ge_root_model);
  196. HybridModelBuilder hybrid_model_builder(hybrid_model);
  197. ASSERT_EQ(hybrid_model_builder.ParseForceInfershapeNodes(node, *new_node), SUCCESS);
  198. }
  199. static ComputeGraphPtr BuildDataDirectConnectGraph() {
  200. const char *kRefIndex = "_parent_node_index";
  201. ge::ut::GraphBuilder builder("subgraph");
  202. auto data = builder.AddNode("Data", "Data", 1, 1);
  203. auto netoutput = builder.AddNode("NetOutput", "NetOutput", 1, 1);
  204. (void)AttrUtils::SetInt(netoutput->GetOpDesc()->MutableInputDesc(0), kRefIndex, 0);
  205. builder.AddDataEdge(data, 0, netoutput, 0);
  206. return builder.GetGraph();
  207. }
  208. TEST_F(UtestGeHybrid, data_direct_connect) {
  209. std::unique_ptr<NodeItem> node_item;
  210. auto root_graph = make_shared<ComputeGraph>("root_graph");
  211. OpDescPtr op_desc = CreateOpDesc("PartitionedCall", "PartitionedCall");
  212. auto node = root_graph->AddNode(op_desc);
  213. node->SetOwnerComputeGraph(root_graph);
  214. auto sub_graph = BuildDataDirectConnectGraph();
  215. sub_graph->SetParentGraph(root_graph);
  216. sub_graph->SetParentNode(node);
  217. node->GetOpDesc()->AddSubgraphName("subgraph");
  218. node->GetOpDesc()->SetSubgraphInstanceName(0, "subgraph");
  219. root_graph->AddSubgraph("subgraph", sub_graph);
  220. std::unique_ptr<NodeItem> new_node;
  221. NodeItem::Create(node, new_node);
  222. GeRootModelPtr ge_root_model = make_shared<GeRootModel>(root_graph);
  223. HybridModel hybrid_model(ge_root_model);
  224. HybridModelBuilder hybrid_model_builder(hybrid_model);
  225. auto ret = hybrid_model_builder.IdentifyVariableOutputs(*new_node.get(), sub_graph);
  226. ASSERT_EQ(ret, SUCCESS);
  227. }
  228. TEST_F(UtestGeHybrid, index_taskdefs_success) {
  229. // build aicore task
  230. domi::ModelTaskDef model_task_def;
  231. std::shared_ptr<domi::ModelTaskDef> model_task_def_ptr = make_shared<domi::ModelTaskDef>(model_task_def);
  232. domi::TaskDef *task_def = model_task_def_ptr->add_task();
  233. GeModelPtr ge_model = make_shared<GeModel>();
  234. ge_model->SetModelTaskDef(model_task_def_ptr);
  235. auto aicore_task = std::unique_ptr<hybrid::AiCoreOpTask>(new(std::nothrow)hybrid::AiCoreOpTask());
  236. task_def->set_type(RT_MODEL_TASK_ALL_KERNEL);
  237. domi::KernelDefWithHandle *kernel_with_handle = task_def->mutable_kernel_with_handle();
  238. kernel_with_handle->set_original_kernel_key("");
  239. kernel_with_handle->set_node_info("");
  240. kernel_with_handle->set_block_dim(32);
  241. kernel_with_handle->set_args_size(64);
  242. string args(64, '1');
  243. kernel_with_handle->set_args(args.data(), 64);
  244. domi::KernelContext *context = kernel_with_handle->mutable_context();
  245. context->set_op_index(0);
  246. context->set_kernel_type(2); // ccKernelType::TE
  247. uint16_t args_offset[9] = {0};
  248. context->set_args_offset(args_offset, 9 * sizeof(uint16_t));
  249. OpDescPtr op_desc = CreateOpDesc("Add", "Add");
  250. std::vector<char> kernelBin;
  251. TBEKernelPtr tbe_kernel = std::make_shared<ge::OpKernelBin>("name/Add", std::move(kernelBin));
  252. op_desc->SetExtAttr(ge::OP_EXTATTR_NAME_TBE_KERNEL, tbe_kernel);
  253. std::string kernel_name("kernel/Add");
  254. AttrUtils::SetStr(op_desc, op_desc->GetName() + "_kernelname", kernel_name);
  255. ComputeGraphPtr graph = std::make_shared<ComputeGraph>("test");
  256. NodePtr node = graph->AddNode(op_desc);
  257. GeRootModelPtr ge_root_model = make_shared<GeRootModel>(graph);
  258. HybridModel hybrid_model(ge_root_model);
  259. HybridModelBuilder hybrid_model_builder(hybrid_model);
  260. ASSERT_EQ(hybrid_model_builder.IndexTaskDefs(graph, ge_model), SUCCESS);
  261. }
  262. TEST_F(UtestGeHybrid, init_weight_success) {
  263. NpuMemoryAllocator::allocators_.emplace(make_pair(0, nullptr));
  264. // make graph with sub_graph
  265. ComputeGraphPtr graph = std::make_shared<ComputeGraph>("root_graph");
  266. OpDescPtr op_desc = CreateOpDesc("if", IF);
  267. NodePtr node = graph->AddNode(op_desc);
  268. // make sub graph
  269. ComputeGraphPtr sub_graph = std::make_shared<ComputeGraph>("if_sub_graph");
  270. OpDescPtr const_op_desc = CreateOpDesc("const", CONSTANT);
  271. vector<int64_t> dims_vec_0 = {2, 1, 4, 1, 2};
  272. vector<int32_t> data_vec_0 = {1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16};
  273. GeTensorDesc tensor_desc_0(GeShape(dims_vec_0), FORMAT_NCHW, DT_INT32);
  274. (void)TensorUtils::SetRealDimCnt(tensor_desc_0, dims_vec_0.size());
  275. ConstGeTensorPtr constTensor_0 =
  276. std::make_shared<GeTensor>(tensor_desc_0, (uint8_t *)&data_vec_0[0], data_vec_0.size() * sizeof(int32_t));
  277. AttrUtils::SetTensor(const_op_desc, ge::ATTR_NAME_WEIGHTS, constTensor_0);
  278. const_op_desc->AddOutputDesc(tensor_desc_0);
  279. NodePtr const_node = sub_graph->AddNode(const_op_desc);
  280. graph->AddSubgraph("sub", sub_graph);
  281. GeRootModelPtr ge_root_model = make_shared<GeRootModel>(graph);
  282. GeModelPtr ge_sub_model = make_shared<GeModel>();
  283. //Buffer weight_buffer = Buffer(128,0);
  284. //ge_sub_model->SetWeight(weight_buffer);
  285. ge_root_model->SetSubgraphInstanceNameToModel("sub",ge_sub_model);
  286. HybridModel hybrid_model(ge_root_model);
  287. HybridModelBuilder hybrid_model_builder(hybrid_model);
  288. auto ret = hybrid_model_builder.InitWeights();
  289. ASSERT_EQ(ret,SUCCESS);
  290. Buffer weight_buffer = Buffer(128,0);
  291. ge_sub_model->SetWeight(weight_buffer);
  292. ret = hybrid_model_builder.InitWeights();
  293. ASSERT_EQ(ret,PARAM_INVALID);
  294. }
  295. TEST_F(UtestGeHybrid, hybrid_model_executor) {
  296. ComputeGraphPtr compute_graph = MakeShared<ComputeGraph>("abc");
  297. GeRootModelPtr root_model = MakeShared<ge::GeRootModel>(compute_graph);
  298. HybridModel model(root_model);
  299. model.root_graph_item_.reset(new GraphItem);
  300. HybridModel *model_ptr = &model;
  301. uint32_t device_id = 0;
  302. rtStream_t stream = nullptr;
  303. HybridModelExecutor executor(model_ptr, device_id, stream);
  304. executor.Init();
  305. }
  306. TEST_F(UtestGeHybrid, test_parse_parallel_group) {
  307. NodeExecutorManager::GetInstance().engine_mapping_.emplace("ops_kernel_info_hccl",
  308. NodeExecutorManager::ExecutorType::HCCL);
  309. ComputeGraphPtr compute_graph = MakeShared<ComputeGraph>("test");
  310. OpDescPtr op_desc = CreateOpDesc("AllReduce", "AllReduce");
  311. op_desc->SetId(0);
  312. ge::AttrUtils::SetStr(op_desc, ATTR_NAME_PARALLEL_GROUP, "group_1");
  313. auto node = compute_graph->AddNode(op_desc);
  314. std::unique_ptr<NodeItem> node_item;
  315. NodeItem::Create(node, node_item);
  316. node_item->node_id = 0;
  317. op_desc->SetOpKernelLibName("ops_kernel_info_hccl");
  318. GeRootModelPtr root_model = MakeShared<ge::GeRootModel>(compute_graph);
  319. HybridModel model(root_model);
  320. model.root_graph_ = compute_graph;
  321. HybridModelBuilder builder(model);
  322. ASSERT_EQ(builder.CollectParallelGroups(node_item.get()), SUCCESS);
  323. ASSERT_EQ(builder.node_to_parallel_groups_.size(), 1);
  324. ASSERT_EQ(builder.parallel_group_to_nodes_.size(), 1);
  325. OpDescPtr op_desc_1 = CreateOpDesc("subgraph", "PartitionedCall");
  326. op_desc_1->AddSubgraphName("subgraph");
  327. auto node_1 = compute_graph->AddNode(op_desc_1);
  328. ComputeGraphPtr subgraph = MakeShared<ComputeGraph>("subgraph");
  329. ASSERT_EQ(NodeUtils::SetSubgraph(*node_1, 0, subgraph), GRAPH_SUCCESS);
  330. std::unique_ptr<NodeItem> node_item_1;
  331. NodeItem::Create(node_1, node_item_1);
  332. node_item_1->node_id = 1;
  333. ASSERT_EQ(builder.CollectParallelGroups(node_item_1.get()), SUCCESS);
  334. ASSERT_EQ(builder.node_to_parallel_groups_.size(), 1);
  335. ASSERT_EQ(builder.parallel_group_to_nodes_.size(), 1);
  336. OpDescPtr op_desc_2 = CreateOpDesc("sub_node_1", "AllReduce");
  337. ge::AttrUtils::SetStr(op_desc_2, ATTR_NAME_PARALLEL_GROUP, "group_1");
  338. auto node_2 = subgraph->AddNode(op_desc_2);
  339. ASSERT_TRUE(node_2 != nullptr);
  340. OpDescPtr op_desc_3 = CreateOpDesc("sub_node_2", "AllReduce2");
  341. ge::AttrUtils::SetStr(op_desc_3, ATTR_NAME_PARALLEL_GROUP, "group_2");
  342. auto node_3 = subgraph->AddNode(op_desc_3);
  343. ASSERT_TRUE(node_3 != nullptr);
  344. ASSERT_EQ(builder.CollectParallelGroups(node_item_1.get()), SUCCESS);
  345. ASSERT_EQ(builder.node_to_parallel_groups_.size(), 2);
  346. ASSERT_EQ(builder.parallel_group_to_nodes_.size(), 2);
  347. ASSERT_EQ(builder.parallel_group_to_nodes_["group_1"].size(), 2);
  348. ASSERT_EQ(builder.parallel_group_to_nodes_["group_2"].size(), 1);
  349. builder.parallel_group_to_nodes_.clear();
  350. builder.node_ref_inputs_.clear();
  351. model.node_items_[node] = std::move(node_item);
  352. model.node_items_[node_1] = std::move(node_item_1);
  353. ASSERT_FALSE(model.node_items_[node]->has_observer);
  354. ASSERT_TRUE(model.node_items_[node_1]->dependents_for_execution.empty());
  355. ASSERT_EQ(builder.ParseDependentByParallelGroup(), SUCCESS);
  356. ASSERT_TRUE(model.node_items_[node]->has_observer);
  357. ASSERT_EQ(model.node_items_[node_1]->dependents_for_execution.size(), 1);
  358. ASSERT_EQ(model.node_items_[node_1]->dependents_for_execution[0], node);
  359. // repeat parse
  360. ASSERT_EQ(builder.ParseDependentByParallelGroup(), SUCCESS);
  361. ASSERT_TRUE(model.node_items_[node]->has_observer);
  362. ASSERT_EQ(model.node_items_[node_1]->dependents_for_execution.size(), 1);
  363. ASSERT_EQ(model.node_items_[node_1]->dependents_for_execution[0], node);
  364. }
  365. TEST_F(UtestGeHybrid, unfold_subgraphs_success) {
  366. ComputeGraphPtr merged_graph = nullptr;
  367. ComputeGraphPtr sub_sub_graph1 = std::make_shared<ComputeGraph>("while_cond");
  368. OpDescPtr sub_sub_graph_while_cond_data_op_desc = CreateOpDesc("cond_data", DATA);
  369. NodePtr sub_sub_graph_while_cond_data_node = sub_sub_graph1->AddNode(sub_sub_graph_while_cond_data_op_desc);
  370. ComputeGraphPtr sub_sub_graph2 = std::make_shared<ComputeGraph>("while_body");
  371. /*OpDescPtr sub_sub_graph_while_body_const_op_desc = CreateOpDesc("body_const", CONSTANT);
  372. NodePtr sub_sub_graph_while_body_const_node = sub_sub_graph2->AddNode(sub_sub_graph_while_body_const_op_desc);*/
  373. OpDescPtr sub_sub_graph_while_body_data_op_desc = CreateOpDesc("body_data", DATA);
  374. NodePtr sub_sub_graph_while_body_data_node = sub_sub_graph2->AddNode(sub_sub_graph_while_body_data_op_desc);
  375. sub_sub_graph2->SetGraphUnknownFlag(true);
  376. /*OpDescPtr sub_sub_graph_while_body_add_op_desc = CreateOpDesc("body_add", ADD);
  377. NodePtr sub_sub_graph_while_body_add_node = sub_sub_graph2->AddNode(sub_sub_graph_while_body_add_node);
  378. sub_sub_graph_while_body_add_node->AddLinkFrom(sub_sub_graph_while_body_data_node);
  379. sub_sub_graph_while_body_add_node->AddLinkFrom(sub_sub_graph_while_body_const_node);*/
  380. ComputeGraphPtr sub_graph = std::make_shared<ComputeGraph>("sub_graph");
  381. OpDescPtr sub_graph_while_op_desc = CreateOpDesc("while", WHILE);
  382. NodePtr sub_graph_while_node = sub_graph->AddNode(sub_graph_while_op_desc);
  383. sub_graph->SetGraphUnknownFlag(true);
  384. sub_graph_while_node->GetOpDesc()->AddSubgraphName("while_cond");
  385. sub_graph_while_node->GetOpDesc()->AddSubgraphName("while_body");
  386. sub_graph_while_node->GetOpDesc()->SetSubgraphInstanceName(0, "while_cond");
  387. sub_graph_while_node->GetOpDesc()->SetSubgraphInstanceName(1, "while_body");
  388. ComputeGraphPtr root_graph = std::make_shared<ComputeGraph>("root_graph");
  389. auto partitioned_call_op_desc = MakeShared<OpDesc>("partitioned_call", PARTITIONEDCALL);
  390. auto partitioned_call_node = root_graph->AddNode(partitioned_call_op_desc);
  391. partitioned_call_node->GetOpDesc()->AddSubgraphName("sub_graph");
  392. partitioned_call_node->GetOpDesc()->SetSubgraphInstanceName(0, "sub_graph");
  393. root_graph->AddSubGraph(sub_sub_graph1);
  394. root_graph->AddSubGraph(sub_sub_graph2);
  395. sub_sub_graph1->SetParentGraph(root_graph);
  396. sub_sub_graph2->SetParentGraph(root_graph);
  397. sub_sub_graph1->SetParentNode(sub_graph_while_node);
  398. sub_sub_graph2->SetParentNode(sub_graph_while_node);
  399. root_graph->AddSubGraph(sub_graph);
  400. sub_graph->SetParentNode(partitioned_call_node);
  401. sub_graph->SetParentGraph(root_graph);
  402. GeRootModelPtr root_model = MakeShared<ge::GeRootModel>(root_graph);
  403. HybridModel hybrid_model(root_model);
  404. HybridModelBuilder hybrid_model_builder(hybrid_model);
  405. EXPECT_EQ(hybrid_model_builder.UnfoldSubgraphs(root_graph, merged_graph), SUCCESS);
  406. }
  407. TEST_F(UtestGeHybrid, TestTaskContext) {
  408. auto graph = make_shared<ComputeGraph>("graph");
  409. OpDescPtr op_desc = CreateOpDesc("Add", "Add");
  410. GeShape shape({2, 16});
  411. GeTensorDesc tensor_desc(shape);
  412. op_desc->AddInputDesc(tensor_desc);
  413. op_desc->AddInputDesc(tensor_desc);
  414. op_desc->AddOutputDesc(tensor_desc);
  415. auto node = graph->AddNode(op_desc);
  416. std::unique_ptr<NodeItem> node_item;
  417. NodeItem::Create(node, node_item);
  418. node_item->input_start = 0;
  419. node_item->output_start = 0;
  420. GraphExecutionContext execution_context;
  421. GraphItem graph_item;
  422. SubgraphContext subgraph_context(&graph_item, &execution_context);
  423. ASSERT_EQ(subgraph_context.Init(), SUCCESS);
  424. subgraph_context.all_inputs_.resize(2);
  425. subgraph_context.all_outputs_.resize(1);
  426. auto node_state = subgraph_context.GetOrCreateNodeState(node_item.get());
  427. auto task_context = node_state->GetTaskContext();
  428. ASSERT_TRUE(task_context != nullptr);
  429. auto desc = task_context->MutableInputDesc(2);
  430. ASSERT_TRUE(desc == nullptr);
  431. desc = task_context->MutableOutputDesc(0);
  432. ASSERT_TRUE(desc != nullptr);
  433. ASSERT_EQ(desc->GetShape().GetDims(), shape.GetDims());
  434. GeTensorDesc output_desc;
  435. ASSERT_EQ(task_context->GetOutputDesc(0, output_desc), SUCCESS);
  436. ASSERT_EQ(output_desc.GetShape().GetDims(), shape.GetDims());
  437. desc = task_context->MutableInputDesc(0);
  438. ASSERT_TRUE(desc != nullptr);
  439. ASSERT_EQ(desc->GetShape().GetDims(), shape.GetDims());
  440. GeShape new_shape({8, 2});
  441. tensor_desc.SetShape(new_shape);
  442. task_context->UpdateInputDesc(1, tensor_desc);
  443. GeTensorDesc new_desc;
  444. ASSERT_EQ(task_context->GetInputDesc(1, new_desc), SUCCESS);
  445. ASSERT_EQ(new_desc.GetShape().GetDims(), new_shape.GetDims());
  446. }
  447. TEST_F(UtestGeHybrid, hybrid_model_executor_update_args) {
  448. auto aicore_task = std::unique_ptr<hybrid::AiCoreOpTask>(new(std::nothrow)hybrid::AiCoreOpTask());
  449. auto graph = make_shared<ComputeGraph>("graph");
  450. OpDescPtr op_desc = CreateOpDesc("Add", "Add");
  451. GeShape shape({2, 16});
  452. GeTensorDesc tensor_desc(shape);
  453. op_desc->AddInputDesc(tensor_desc);
  454. op_desc->AddInputDesc(tensor_desc);
  455. op_desc->AddOutputDesc(tensor_desc);
  456. auto node = graph->AddNode(op_desc);
  457. std::unique_ptr<NodeItem> node_item;
  458. NodeItem::Create(node, node_item);
  459. node_item->input_start = 0;
  460. node_item->output_start = 0;
  461. GraphExecutionContext execution_context;
  462. GraphItem graph_item;
  463. SubgraphContext subgraph_context(&graph_item, &execution_context);
  464. ASSERT_EQ(subgraph_context.Init(), SUCCESS);
  465. subgraph_context.all_inputs_.resize(2);
  466. subgraph_context.all_outputs_.resize(1);
  467. auto node_state = subgraph_context.GetOrCreateNodeState(node_item.get());
  468. auto task_context = node_state->GetTaskContext();
  469. int32_t buffer[1];
  470. aicore_task->tiling_buffer_ = TensorBuffer::Create(buffer, sizeof(buffer));
  471. EXPECT_NE(aicore_task->tiling_buffer_, nullptr);
  472. aicore_task->max_arg_count_ = 0;
  473. EXPECT_EQ(aicore_task->UpdateArgs(*task_context), ACL_ERROR_GE_MEMORY_OPERATE_FAILED);
  474. aicore_task->args_ = std::unique_ptr<uint8_t[]>(new uint8_t[sizeof(uintptr_t) * 2]);
  475. EXPECT_EQ(aicore_task->UpdateArgs(*task_context), SUCCESS);
  476. }
  477. TEST_F(UtestGeHybrid, hybrid_model_executor_check_shape) {
  478. HybridModelExecutor::ExecuteArgs args;
  479. GeTensorDescPtr ge_tensor = make_shared<GeTensorDesc>(GeTensorDesc());
  480. vector<int64_t> dim = {2 , 3};
  481. ge_tensor->SetShape(GeShape(dim));
  482. args.input_desc.push_back(ge_tensor);
  483. // create node
  484. ge::ComputeGraphPtr graph = std::make_shared<ComputeGraph>("God");
  485. OpDescPtr op_desc = std::make_shared<OpDesc>("data", DATA);
  486. GeTensorDesc tensor_desc(GeShape({2, 3}));
  487. std::vector<std::pair<int64_t, int64_t>> shape_range({std::pair<int64_t, int64_t>(1, 3),
  488. std::pair<int64_t, int64_t>(2, 4)});
  489. tensor_desc.SetShapeRange(shape_range);
  490. op_desc->AddInputDesc(tensor_desc);
  491. op_desc->AddOutputDesc(tensor_desc);
  492. NodePtr node = graph->AddNode(op_desc);
  493. std::unique_ptr<NodeItem> new_node;
  494. NodeItem::Create(node, new_node);
  495. new_node->is_dynamic = true;
  496. GraphItem graph_item;
  497. graph_item.input_nodes_.emplace_back(new_node.get());
  498. Status ret = HybridModelExecutor::CheckInputShapeByShapeRange(&graph_item, args);
  499. ASSERT_EQ(ret, ge::SUCCESS);
  500. HybridModelExecutor::ExecuteArgs args1;
  501. ret = HybridModelExecutor::CheckInputShapeByShapeRange(&graph_item, args1);
  502. ASSERT_EQ(ret, ge::INTERNAL_ERROR);
  503. HybridModelExecutor::ExecuteArgs args2;
  504. GeTensorDescPtr ge_tensor2 = make_shared<GeTensorDesc>(GeTensorDesc());
  505. vector<int64_t> dim2 = {-1 , 3};
  506. ge_tensor2->SetShape(GeShape(dim2));
  507. args2.input_desc.push_back(ge_tensor2);
  508. ret = HybridModelExecutor::CheckInputShapeByShapeRange(&graph_item, args1);
  509. ASSERT_EQ(ret, ge::INTERNAL_ERROR);
  510. HybridModelExecutor::ExecuteArgs args3;
  511. ret = HybridModelExecutor::CheckInputShapeByShapeRange(&graph_item, args3);
  512. ASSERT_EQ(ret, ge::INTERNAL_ERROR);
  513. }
  514. TEST_F(UtestGeHybrid, TestOptimizeDependenciesForConstInputs) {
  515. ComputeGraphPtr compute_graph = MakeShared<ComputeGraph>("test");
  516. GeRootModelPtr root_model = MakeShared<ge::GeRootModel>(compute_graph);
  517. HybridModel model(root_model);
  518. model.root_graph_ = compute_graph;
  519. HybridModelBuilder builder(model);
  520. GeShape shape({2, 16});
  521. GeTensorDesc tensor_desc(shape);
  522. std::unique_ptr<NodeItem> const_node_item;
  523. {
  524. OpDescPtr const_op_desc = CreateOpDesc("Constant", "Const");
  525. const_op_desc->AddOutputDesc(tensor_desc);
  526. auto const_node = compute_graph->AddNode(const_op_desc);
  527. NodeItem::Create(const_node, const_node_item);
  528. }
  529. std::unique_ptr<NodeItem> non_const_node_item;
  530. {
  531. OpDescPtr op_desc = CreateOpDesc("Add", "Add");
  532. op_desc->AddOutputDesc(tensor_desc);
  533. auto const_node = compute_graph->AddNode(op_desc);
  534. NodeItem::Create(const_node, non_const_node_item);
  535. }
  536. std::unique_ptr<NodeItem> known_node_item;
  537. {
  538. OpDescPtr known_op_desc = CreateOpDesc("known", "PartitionedCall");
  539. known_op_desc->AddOutputDesc(tensor_desc);
  540. known_op_desc->AddOutputDesc(tensor_desc);
  541. auto known_node = compute_graph->AddNode(known_op_desc);
  542. NodeItem::Create(known_node, known_node_item);
  543. }
  544. std::unique_ptr<NodeItem> dst_node_item;
  545. {
  546. OpDescPtr known_op_desc = CreateOpDesc("SomeOp", "SomeOpType ");
  547. known_op_desc->AddOutputDesc(tensor_desc);
  548. known_op_desc->AddOutputDesc(tensor_desc);
  549. auto known_node = compute_graph->AddNode(known_op_desc);
  550. NodeItem::Create(known_node, dst_node_item);
  551. }
  552. float buffer[2 * 16];
  553. unique_ptr<TensorValue> tensor_value(new TensorValue(buffer, sizeof(buffer)));
  554. model.constant_tensors_[const_node_item->node] = std::move(tensor_value);
  555. // Case 1. connect to Const
  556. auto output_id = 1;
  557. builder.host_input_value_dependencies_[dst_node_item.get()].emplace_back(output_id, const_node_item.get());
  558. builder.host_input_value_dependencies_[dst_node_item.get()].emplace_back(0, non_const_node_item.get());
  559. dst_node_item->dependents_for_shape_inference.emplace_back(const_node_item->node);
  560. dst_node_item->dependents_for_shape_inference.emplace_back(non_const_node_item->node);
  561. ASSERT_EQ(builder.OptimizeDependenciesForConstantInputs(), SUCCESS);
  562. ASSERT_EQ(dst_node_item->dependents_for_shape_inference.size(), 1);
  563. ASSERT_EQ(dst_node_item->dependents_for_shape_inference[0], non_const_node_item->node);
  564. // Case 2. connect to known-subgraph, netoutput connect to Const
  565. builder.host_input_value_dependencies_.clear();
  566. dst_node_item->dependents_for_shape_inference.clear();
  567. builder.known_subgraph_constant_output_refs_[known_node_item.get()].emplace(output_id, const_node_item->node);
  568. builder.host_input_value_dependencies_[dst_node_item.get()].emplace_back(output_id, known_node_item.get());
  569. builder.host_input_value_dependencies_[dst_node_item.get()].emplace_back(0, non_const_node_item.get());
  570. dst_node_item->dependents_for_shape_inference.emplace_back(known_node_item->node);
  571. dst_node_item->dependents_for_shape_inference.emplace_back(non_const_node_item->node);
  572. ASSERT_EQ(builder.OptimizeDependenciesForConstantInputs(), SUCCESS);
  573. ASSERT_EQ(dst_node_item->dependents_for_shape_inference.size(), 1);
  574. ASSERT_EQ(dst_node_item->dependents_for_shape_inference[0], non_const_node_item->node);
  575. }
  576. TEST_F(UtestGeHybrid, test_key_for_kernel_bin) {
  577. auto aicore_task = std::unique_ptr<hybrid::AiCoreOpTask>(new(std::nothrow)hybrid::AiCoreOpTask());
  578. OpDesc op_desc("Sum", "Sum");
  579. EXPECT_EQ(aicore_task->GetKeyForTbeKernel(), OP_EXTATTR_NAME_TBE_KERNEL);
  580. EXPECT_EQ(aicore_task->GetKeyForTvmMagic(), TVM_ATTR_NAME_MAGIC);
  581. EXPECT_EQ(aicore_task->GetKeyForTvmMetaData(), TVM_ATTR_NAME_METADATA);
  582. EXPECT_EQ(aicore_task->GetKeyForKernelName(op_desc), "Sum_kernelname");
  583. auto atomic_task = std::unique_ptr<hybrid::AtomicAddrCleanOpTask>(new(std::nothrow)hybrid::AtomicAddrCleanOpTask());
  584. EXPECT_EQ(atomic_task->GetKeyForTbeKernel(), EXT_ATTR_ATOMIC_TBE_KERNEL);
  585. EXPECT_EQ(atomic_task->GetKeyForTvmMagic(), ATOMIC_ATTR_TVM_MAGIC);
  586. EXPECT_EQ(atomic_task->GetKeyForTvmMetaData(), ATOMIC_ATTR_TVM_METADATA);
  587. EXPECT_EQ(atomic_task->GetKeyForKernelName(op_desc), "Sum_atomic_kernelname");
  588. }
  589. TEST_F(UtestGeHybrid, TestParseDependentInputNodesForHccl) {
  590. NodeExecutorManager::GetInstance().engine_mapping_.emplace("ops_kernel_info_hccl",
  591. NodeExecutorManager::ExecutorType::HCCL);
  592. ComputeGraphPtr compute_graph = MakeShared<ComputeGraph>("test");
  593. OpDescPtr op_desc = CreateOpDesc("Add", "Add");
  594. auto node = compute_graph->AddNode(op_desc);
  595. std::unique_ptr<NodeItem> node_item;
  596. NodeItem::Create(node, node_item);
  597. node_item->node_id = 0;
  598. OpDescPtr op_desc_1 = CreateOpDesc("AllReduce", "AllReduce");
  599. op_desc_1->SetOpKernelLibName("ops_kernel_info_hccl");
  600. auto node_1 = compute_graph->AddNode(op_desc_1);
  601. std::unique_ptr<NodeItem> node_item_1;
  602. NodeItem::Create(node_1, node_item_1);
  603. node_item_1->node_id = 1;
  604. node->GetOutControlAnchor()->LinkTo(node_1->GetInControlAnchor());
  605. OpDescPtr op_desc_2 = CreateOpDesc("net_output", NETOUTPUT);
  606. auto node_2 = compute_graph->AddNode(op_desc_2);
  607. std::unique_ptr<NodeItem> node_item_2;
  608. NodeItem::Create(node_2, node_item_2);
  609. node_item_2->node_id = 2;
  610. node_1->GetOutControlAnchor()->LinkTo(node_2->GetInControlAnchor());
  611. GeRootModelPtr root_model = MakeShared<ge::GeRootModel>(compute_graph);
  612. HybridModel model(root_model);
  613. model.root_graph_ = compute_graph;
  614. model.node_items_.emplace(node, std::move(node_item));
  615. model.node_items_.emplace(node_1, std::move(node_item_1));
  616. model.node_items_.emplace(node_2, std::move(node_item_2));
  617. HybridModelBuilder builder(model);
  618. std::vector<std::string> deps;
  619. ASSERT_EQ(builder.ParseDependentInputNodes(*model.node_items_[node_1], deps), SUCCESS);
  620. ASSERT_EQ(builder.ParseDependentInputNodes(*model.node_items_[node_2], deps), SUCCESS);
  621. ASSERT_FALSE(model.GetNodeItem(node)->has_observer);
  622. ASSERT_TRUE(model.GetNodeItem(node_1)->has_observer);
  623. ASSERT_EQ(model.node_items_[node_1]->dependents_for_execution.size(), 0);
  624. ASSERT_EQ(model.node_items_[node_2]->dependents_for_execution.size(), 1);
  625. }
  626. TEST_F(UtestGeHybrid, TestParseDependencies) {
  627. // make graph
  628. ut::GraphBuilder graph_builder = ut::GraphBuilder("graph");
  629. auto data = graph_builder.AddNode("Data", "Data", 0, 1);
  630. auto netoutput = graph_builder.AddNode("Netoutput", "NetOutput", 1, 0);
  631. graph_builder.AddDataEdge(data, 0, netoutput, 0);
  632. auto graph = graph_builder.GetGraph();
  633. GeRootModelPtr root_model = MakeShared<ge::GeRootModel>(graph);
  634. HybridModel model(root_model);
  635. HybridModelBuilder builder(model);
  636. std::unique_ptr<NodeItem> node_item;
  637. NodeItem::Create(netoutput, node_item);
  638. std::unique_ptr<NodeItem> node_item2;
  639. NodeItem::Create(data, node_item2);
  640. model.node_items_.emplace(data, std::move(node_item2));
  641. std::vector<std::string> deps;
  642. deps.push_back("Data");
  643. auto op_desc = netoutput->GetOpDesc();
  644. op_desc->impl_->input_name_idx_["Data"] = 0;
  645. auto data_desc = data->GetOpDesc();
  646. auto tensor = std::make_shared<GeTensor>();
  647. auto tensor_desc = data_desc->MutableInputDesc(0);
  648. AttrUtils::SetTensor(tensor_desc, "_value", tensor);
  649. std::set<NodePtr> dependent_for_shape_inference;
  650. ASSERT_EQ(builder.ParseDependencies(*node_item, deps, dependent_for_shape_inference), SUCCESS);
  651. }

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