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dump_proto.cc 22 kB

6 years ago
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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 "debug/dump_proto.h"
  17. #include <algorithm>
  18. #include <fstream>
  19. #include <map>
  20. #include <memory>
  21. #include <utility>
  22. #include <vector>
  23. #include "debug/anf_ir_utils.h"
  24. #include "proto/anf_ir.pb.h"
  25. #include "ir/graph_utils.h"
  26. #include "utils/ms_context.h"
  27. #include "utils/symbolic.h"
  28. #include "utils/utils.h"
  29. #include "pipeline/jit/base.h"
  30. namespace mindspore {
  31. class ProtoExporter {
  32. public:
  33. ProtoExporter() {}
  34. ~ProtoExporter() {}
  35. std::string GetFuncGraphProtoString(const FuncGraphPtr &func_graph);
  36. private:
  37. void InitModelInfo();
  38. void GetOpNodeTypeAndAttrs(const FuncGraphPtr &func_graph, const AnfNodePtr &node, irpb::NodeProto *node_proto);
  39. std::string GetOpNodeInputId(const FuncGraphPtr &func_graph, const AnfNodePtr &node,
  40. const std::map<AnfNodePtr, size_t> &apply_map,
  41. std::map<AnfNodePtr, size_t> *const_map_ptr);
  42. void SetValueToProto(const ValuePtr &attr_value, irpb::ValueProto *value_proto);
  43. void SetScalarToProto(const ScalarPtr &val, irpb::ValueProto *value_proto);
  44. void SetSequenceToProto(const ValueSequeuePtr &val, irpb::ValueProto *value_proto);
  45. void SetDictionaryToProto(const ValueDictionaryPtr &val, irpb::ValueProto *value_proto);
  46. void SetNodeOutputType(const AnfNodePtr &node, irpb::TypeProto *type_proto);
  47. void SetNodeOutputType(const TypePtr &node, const BaseShapePtr &shape, irpb::TypeProto *type_proto);
  48. void ExportFuncGraph(const FuncGraphPtr &func_graph, irpb::GraphProto *graph_proto);
  49. void ExportParameters(const FuncGraphPtr &func_graph, irpb::GraphProto *graph_proto);
  50. void ExportCNodes(const FuncGraphPtr &func_graph, irpb::GraphProto *graph_proto,
  51. std::map<AnfNodePtr, size_t> *const_map_ptr);
  52. void ExportCNode(const FuncGraphPtr &func_graph, const CNodePtr &node, std::map<AnfNodePtr, size_t> *apply_map_ptr,
  53. std::map<AnfNodePtr, size_t> *const_map_ptr, irpb::GraphProto *graph_proto);
  54. void ExportFuncGraphOutput(const FuncGraphPtr &func_graph, const CNodePtr &ret_node,
  55. const std::map<AnfNodePtr, size_t> &apply_map, std::map<AnfNodePtr, size_t> *const_map_ptr,
  56. irpb::GraphProto *graph_proto);
  57. void ExportValueNodes(const std::map<AnfNodePtr, size_t> &const_map, irpb::GraphProto *graph_proto);
  58. static std::string GetConstNodeId(size_t idx) { return std::string("cst") + std::to_string(idx); }
  59. irpb::ModelProto model_;
  60. };
  61. static irpb::DataType GetNumberDataType(const TypePtr &type) {
  62. switch (type->type_id()) {
  63. case kNumberTypeBool:
  64. return irpb::DT_BOOL;
  65. case kNumberTypeInt8:
  66. return irpb::DT_INT8;
  67. case kNumberTypeInt16:
  68. return irpb::DT_INT16;
  69. case kNumberTypeInt32:
  70. return irpb::DT_INT32;
  71. case kNumberTypeInt64:
  72. return irpb::DT_INT64;
  73. case kNumberTypeUInt8:
  74. return irpb::DT_UINT8;
  75. case kNumberTypeUInt16:
  76. return irpb::DT_UINT16;
  77. case kNumberTypeUInt32:
  78. return irpb::DT_UINT32;
  79. case kNumberTypeUInt64:
  80. return irpb::DT_UINT64;
  81. case kNumberTypeFloat16:
  82. return irpb::DT_FLOAT16;
  83. case kNumberTypeFloat32:
  84. return irpb::DT_FLOAT32;
  85. case kNumberTypeFloat64:
  86. return irpb::DT_FLOAT64;
  87. case kNumberTypeInt:
  88. return irpb::DT_BASE_INT;
  89. case kNumberTypeUInt:
  90. return irpb::DT_BASE_UINT;
  91. case kNumberTypeFloat:
  92. return irpb::DT_BASE_FLOAT;
  93. case kNumberTypeComplex64:
  94. return irpb::DT_COMPLEX64;
  95. case kNumberTypeComplex128:
  96. return irpb::DT_COMPLEX128;
  97. default:
  98. MS_LOG(EXCEPTION) << "Unexpected type " << type->type_name();
  99. }
  100. }
  101. void CheckIfValidType(const TypePtr &type) {
  102. MS_EXCEPTION_IF_NULL(type);
  103. if (type->isa<Problem>()) {
  104. MS_LOG(WARNING) << "The type: " << type->type_name();
  105. }
  106. if (!(type->isa<Number>() || type->isa<TensorType>() || type->isa<Tuple>() || type->isa<TypeType>() ||
  107. type->isa<List>() || type->isa<TypeAnything>() || type->isa<RefKeyType>() || type->isa<RefType>() ||
  108. type->isa<Function>() || type->isa<TypeNone>() || type->isa<Problem>() || type->isa<String>() ||
  109. type->isa<RowTensorType>() || type->isa<UndeterminedType>() || type->isa<SparseTensorType>() ||
  110. type->isa<SymbolicKeyType>() || type->isa<MonadType>())) {
  111. MS_LOG(EXCEPTION) << "Unknown type: " << type->type_name();
  112. }
  113. }
  114. void ProtoExporter::SetNodeOutputType(const TypePtr &type, const BaseShapePtr &shape, irpb::TypeProto *type_proto) {
  115. if (type_proto == nullptr) {
  116. return;
  117. }
  118. if (type != nullptr) {
  119. CheckIfValidType(type);
  120. }
  121. if (type == nullptr) {
  122. type_proto->set_data_type(irpb::DT_UNDEFINED);
  123. } else if (type->isa<Number>()) {
  124. type_proto->set_data_type(GetNumberDataType(type));
  125. } else if (type->isa<TensorType>()) {
  126. TypePtr elem_type = dyn_cast<TensorType>(type)->element();
  127. type_proto->mutable_tensor_type()->set_elem_type(GetNumberDataType(elem_type));
  128. type_proto->set_data_type(irpb::DT_TENSOR);
  129. if (shape != nullptr && shape->isa<abstract::Shape>()) {
  130. abstract::ShapePtr shape_info = dyn_cast<abstract::Shape>(shape);
  131. for (const auto &elem : shape_info->shape()) {
  132. type_proto->mutable_tensor_type()->mutable_shape()->add_dim()->set_size(elem);
  133. }
  134. }
  135. } else if (type->isa<Tuple>()) {
  136. TuplePtr tuple_type = dyn_cast<Tuple>(type);
  137. type_proto->set_data_type(irpb::DT_TUPLE);
  138. for (const auto &elem_type : tuple_type->elements()) {
  139. SetNodeOutputType(elem_type, nullptr, type_proto->mutable_sequence_type()->add_elem_types());
  140. }
  141. } else if (type->isa<TypeType>()) {
  142. type_proto->set_data_type(irpb::DT_TYPE);
  143. } else if (type->isa<List>()) {
  144. ListPtr list_type = dyn_cast<List>(type);
  145. type_proto->set_data_type(irpb::DT_LIST);
  146. for (const auto &elem_type : list_type->elements()) {
  147. SetNodeOutputType(elem_type, nullptr, type_proto->mutable_sequence_type()->add_elem_types());
  148. }
  149. } else if (type->isa<TypeAnything>()) {
  150. type_proto->set_data_type(irpb::DT_ANYTHING);
  151. } else if (type->isa<RefKeyType>()) {
  152. type_proto->set_data_type(irpb::DT_REFKEY);
  153. } else if (type->isa<RefType>()) {
  154. type_proto->set_data_type(irpb::DT_REF);
  155. } else if (type->isa<Function>()) {
  156. type_proto->set_data_type(irpb::DT_GRAPH);
  157. } else if (type->isa<TypeNone>()) {
  158. type_proto->set_data_type(irpb::DT_NONE);
  159. } else if (type->isa<String>()) {
  160. type_proto->set_data_type(irpb::DT_STRING);
  161. }
  162. }
  163. void ProtoExporter::SetNodeOutputType(const AnfNodePtr &node, irpb::TypeProto *type_proto) {
  164. if (node == nullptr || type_proto == nullptr) {
  165. return;
  166. }
  167. SetNodeOutputType(node->Type(), node->Shape(), type_proto);
  168. }
  169. void ProtoExporter::SetValueToProto(const ValuePtr &val, irpb::ValueProto *value_proto) {
  170. if (val == nullptr || value_proto == nullptr) {
  171. return;
  172. }
  173. if (val->isa<StringImm>()) {
  174. const StringImmPtr &value = dyn_cast<StringImm>(val);
  175. value_proto->set_dtype(irpb::DT_STRING);
  176. value_proto->set_str_val(value->value());
  177. } else if (val->isa<Scalar>()) {
  178. SetScalarToProto(dyn_cast<Scalar>(val), value_proto);
  179. } else if (val->isa<Bool>()) {
  180. value_proto->set_dtype(irpb::DT_TYPE);
  181. value_proto->mutable_type_val()->set_data_type(irpb::DT_BOOL);
  182. } else if (val->isa<Int>()) {
  183. value_proto->set_dtype(irpb::DT_TYPE);
  184. value_proto->mutable_type_val()->set_data_type(irpb::DT_BASE_INT);
  185. } else if (val->isa<UInt>()) {
  186. value_proto->set_dtype(irpb::DT_TYPE);
  187. value_proto->mutable_type_val()->set_data_type(irpb::DT_BASE_UINT);
  188. } else if (val->isa<Float>()) {
  189. value_proto->set_dtype(irpb::DT_TYPE);
  190. value_proto->mutable_type_val()->set_data_type(irpb::DT_BASE_FLOAT);
  191. } else if (val->isa<ValueSequeue>()) {
  192. SetSequenceToProto(dyn_cast<ValueSequeue>(val), value_proto);
  193. } else if (val->isa<None>()) {
  194. value_proto->set_dtype(irpb::DT_NONE);
  195. value_proto->set_str_val("None");
  196. } else if (val->isa<SymbolicKeyInstance>()) {
  197. SymbolicKeyInstancePtr sym_inst = dyn_cast<SymbolicKeyInstance>(val);
  198. ParameterPtr sym_node = dyn_cast<Parameter>(sym_inst->node());
  199. value_proto->set_dtype(irpb::DT_SYM_INST);
  200. value_proto->set_str_val(sym_node == nullptr ? std::string("nullptr") : sym_node->ToString());
  201. } else if (val->isa<ValueDictionary>()) {
  202. SetDictionaryToProto(dyn_cast<ValueDictionary>(val), value_proto);
  203. } else if (val->isa<tensor::Tensor>()) {
  204. tensor::TensorPtr tensor_ptr = dyn_cast<tensor::Tensor>(val);
  205. value_proto->set_dtype(irpb::DT_TENSOR);
  206. irpb::TensorProto *tensor_proto = value_proto->mutable_tensor_val();
  207. tensor_proto->set_data_type(GetNumberDataType(tensor_ptr->Dtype()));
  208. for (auto &elem : tensor_ptr->shape()) {
  209. tensor_proto->add_dims(elem);
  210. }
  211. } else if (val->isa<TensorType>()) {
  212. value_proto->set_dtype(irpb::DT_TYPE);
  213. irpb::TypeProto *type_proto = value_proto->mutable_type_val();
  214. type_proto->set_data_type(irpb::DT_TENSOR);
  215. TypePtr elem_type = dyn_cast<TensorType>(val)->element();
  216. type_proto->mutable_tensor_type()->set_elem_type(GetNumberDataType(elem_type));
  217. } else if (val->isa<Monad>() || val->isa<MonadType>()) {
  218. value_proto->set_str_val(val->ToString());
  219. } else {
  220. MS_LOG(WARNING) << "Unsupported type " << val->type_name();
  221. }
  222. }
  223. void ProtoExporter::SetScalarToProto(const ScalarPtr &val, irpb::ValueProto *value_proto) {
  224. if (val == nullptr || value_proto == nullptr) {
  225. return;
  226. }
  227. if (val->isa<BoolImm>()) {
  228. const BoolImmPtr &value = dyn_cast<BoolImm>(val);
  229. value_proto->set_dtype(irpb::DT_BOOL);
  230. value_proto->set_bool_val(value->value());
  231. } else if (val->isa<Int8Imm>()) {
  232. const Int8ImmPtr &value = dyn_cast<Int8Imm>(val);
  233. value_proto->set_dtype(irpb::DT_INT8);
  234. value_proto->set_int_val(value->value());
  235. } else if (val->isa<Int16Imm>()) {
  236. const Int16ImmPtr &value = dyn_cast<Int16Imm>(val);
  237. value_proto->set_dtype(irpb::DT_INT16);
  238. value_proto->set_int_val(value->value());
  239. } else if (val->isa<Int32Imm>()) {
  240. const Int32ImmPtr &value = dyn_cast<Int32Imm>(val);
  241. value_proto->set_dtype(irpb::DT_INT32);
  242. value_proto->set_int_val(value->value());
  243. } else if (val->isa<Int64Imm>()) {
  244. const Int64ImmPtr &value = dyn_cast<Int64Imm>(val);
  245. value_proto->set_dtype(irpb::DT_INT64);
  246. value_proto->set_int_val(value->value());
  247. } else if (val->isa<UInt8Imm>()) {
  248. const UInt8ImmPtr &value = dyn_cast<UInt8Imm>(val);
  249. value_proto->set_dtype(irpb::DT_UINT8);
  250. value_proto->set_uint_val(value->value());
  251. } else if (val->isa<UInt16Imm>()) {
  252. const UInt16ImmPtr &value = dyn_cast<UInt16Imm>(val);
  253. value_proto->set_dtype(irpb::DT_UINT16);
  254. value_proto->set_uint_val(value->value());
  255. } else if (val->isa<UInt32Imm>()) {
  256. const UInt32ImmPtr &value = dyn_cast<UInt32Imm>(val);
  257. value_proto->set_dtype(irpb::DT_UINT32);
  258. value_proto->set_uint_val(value->value());
  259. } else if (val->isa<UInt64Imm>()) {
  260. const UInt64ImmPtr &value = dyn_cast<UInt64Imm>(val);
  261. value_proto->set_dtype(irpb::DT_UINT64);
  262. value_proto->set_uint_val(value->value());
  263. } else if (val->isa<FP32Imm>()) {
  264. const FP32ImmPtr &value = dyn_cast<FP32Imm>(val);
  265. value_proto->set_dtype(irpb::DT_FLOAT32);
  266. value_proto->set_float_val(value->value());
  267. } else if (val->isa<FP64Imm>()) {
  268. const FP64ImmPtr &value = dyn_cast<FP64Imm>(val);
  269. value_proto->set_dtype(irpb::DT_FLOAT64);
  270. value_proto->set_double_val(value->value());
  271. } else {
  272. MS_LOG(EXCEPTION) << "Unknown scalar type " << val->ToString();
  273. }
  274. }
  275. void ProtoExporter::SetSequenceToProto(const ValueSequeuePtr &val, irpb::ValueProto *value_proto) {
  276. if (val == nullptr || value_proto == nullptr) {
  277. return;
  278. }
  279. if (val->isa<ValueTuple>()) {
  280. const ValueTuplePtr &value = dyn_cast<ValueTuple>(val);
  281. value_proto->set_dtype(irpb::DT_TUPLE);
  282. for (const auto &item : value->value()) {
  283. SetValueToProto(item, value_proto->add_values());
  284. }
  285. } else if (val->isa<ValueList>()) {
  286. const ValueListPtr &value = dyn_cast<ValueList>(val);
  287. value_proto->set_dtype(irpb::DT_LIST);
  288. for (const auto &item : value->value()) {
  289. SetValueToProto(item, value_proto->add_values());
  290. }
  291. }
  292. }
  293. void ProtoExporter::SetDictionaryToProto(const ValueDictionaryPtr &val, irpb::ValueProto *value_proto) {
  294. if (val == nullptr || value_proto == nullptr) {
  295. return;
  296. }
  297. value_proto->set_dtype(irpb::DT_DICT);
  298. for (const auto &item : val->value()) {
  299. irpb::NamedValueProto *named_val = value_proto->add_dict_val();
  300. named_val->set_key(item.first);
  301. SetValueToProto(item.second, named_val->mutable_value());
  302. }
  303. }
  304. void ProtoExporter::GetOpNodeTypeAndAttrs(const FuncGraphPtr &, const AnfNodePtr &node, irpb::NodeProto *node_proto) {
  305. if (node == nullptr || node_proto == nullptr) {
  306. return;
  307. }
  308. if (node->isa<CNode>() || node->isa<Parameter>() || IsValueNode<FuncGraph>(node)) {
  309. MS_LOG(EXCEPTION) << "Op node can not be CNode, Parameter or ValueNode Graph. But got " << node->ToString();
  310. }
  311. if (!IsValueNode<Primitive>(node)) {
  312. MS_LOG(EXCEPTION) << "Op node is not primitive: " << node->ToString();
  313. }
  314. const PrimitivePtr &prim = GetValueNode<PrimitivePtr>(node);
  315. node_proto->set_op_type(prim->name());
  316. for (const auto &attr : prim->attrs()) {
  317. irpb::AttributeProto *attr_proto = node_proto->add_attribute();
  318. attr_proto->set_name(attr.first);
  319. SetValueToProto(attr.second, attr_proto->mutable_value());
  320. }
  321. node_proto->set_scope(node->scope()->name());
  322. }
  323. std::string ProtoExporter::GetOpNodeInputId(const FuncGraphPtr &, const AnfNodePtr &node,
  324. const std::map<AnfNodePtr, size_t> &apply_map,
  325. std::map<AnfNodePtr, size_t> *const_map_ptr) {
  326. if (node == nullptr || const_map_ptr == nullptr) {
  327. return "";
  328. }
  329. if (node->isa<CNode>()) {
  330. auto iter = apply_map.find(node);
  331. if (iter == apply_map.end()) {
  332. MS_LOG(EXCEPTION) << "Can not find node '" << node->ToString() << "' in apply_map";
  333. }
  334. return std::to_string(iter->second);
  335. }
  336. if (node->isa<Parameter>()) {
  337. return node->ToString();
  338. }
  339. if (node->isa<ValueNode>()) {
  340. auto iter = const_map_ptr->find(node);
  341. if (iter == const_map_ptr->end()) {
  342. // Start index number from 1
  343. auto const_idx = const_map_ptr->size() + 1;
  344. (*const_map_ptr)[node] = const_idx;
  345. }
  346. return GetConstNodeId((*const_map_ptr)[node]);
  347. }
  348. MS_LOG(EXCEPTION) << "Unknown node type. node is '" << node->ToString() << "'";
  349. }
  350. std::string ProtoExporter::GetFuncGraphProtoString(const FuncGraphPtr &func_graph) {
  351. if (func_graph == nullptr) {
  352. return "";
  353. }
  354. InitModelInfo();
  355. irpb::GraphProto *graph_proto = model_.mutable_graph();
  356. ExportFuncGraph(func_graph, graph_proto);
  357. return model_.SerializeAsString();
  358. }
  359. void ProtoExporter::ExportFuncGraph(const FuncGraphPtr &func_graph, irpb::GraphProto *graph_proto) {
  360. if (func_graph == nullptr || graph_proto == nullptr) {
  361. return;
  362. }
  363. // map for store ValueNodes of this graph
  364. std::map<AnfNodePtr, size_t> const_map;
  365. // set graph name
  366. graph_proto->set_name(func_graph->ToString());
  367. ExportParameters(func_graph, graph_proto);
  368. ExportCNodes(func_graph, graph_proto, &const_map);
  369. ExportValueNodes(const_map, graph_proto);
  370. }
  371. void ProtoExporter::ExportParameters(const FuncGraphPtr &func_graph, irpb::GraphProto *graph_proto) {
  372. if (func_graph == nullptr || graph_proto == nullptr) {
  373. return;
  374. }
  375. std::vector<AnfNodePtr> parameters = func_graph->parameters();
  376. for (auto &param : parameters) {
  377. irpb::ParameterProto *param_proto = graph_proto->add_parameters();
  378. param_proto->set_name(param->ToString());
  379. SetNodeOutputType(param, param_proto->mutable_type());
  380. const ParameterPtr param_ptr = dyn_cast<Parameter>(param);
  381. if (param_ptr == nullptr) {
  382. MS_LOG(EXCEPTION) << "Parameter '" << param->ToString() << "' could not cast to parameter.";
  383. }
  384. }
  385. }
  386. void ProtoExporter::ExportCNodes(const FuncGraphPtr &func_graph, irpb::GraphProto *graph_proto,
  387. std::map<AnfNodePtr, size_t> *const_map_ptr) {
  388. if (func_graph == nullptr || graph_proto == nullptr || const_map_ptr == nullptr) {
  389. return;
  390. }
  391. // topo sort nodes
  392. std::vector<AnfNodePtr> nodes = TopoSort(func_graph->get_return(), SuccIncoming, AlwaysInclude);
  393. std::map<AnfNodePtr, size_t> apply_map;
  394. for (const AnfNodePtr &node : nodes) {
  395. MS_EXCEPTION_IF_NULL(node);
  396. if (!node->isa<CNode>()) {
  397. continue;
  398. }
  399. auto cnode = node->cast<CNodePtr>();
  400. if (cnode != func_graph->get_return()) {
  401. ExportCNode(func_graph, cnode, &apply_map, const_map_ptr, graph_proto);
  402. } else {
  403. ExportFuncGraphOutput(func_graph, cnode, apply_map, const_map_ptr, graph_proto);
  404. }
  405. }
  406. }
  407. void ProtoExporter::ExportCNode(const FuncGraphPtr &func_graph, const CNodePtr &node,
  408. std::map<AnfNodePtr, size_t> *apply_map_ptr,
  409. std::map<AnfNodePtr, size_t> *const_map_ptr, irpb::GraphProto *graph_proto) {
  410. if (func_graph == nullptr || node == nullptr || apply_map_ptr == nullptr || const_map_ptr == nullptr ||
  411. graph_proto == nullptr) {
  412. return;
  413. }
  414. auto apply_idx = apply_map_ptr->size() + 1;
  415. (*apply_map_ptr)[node] = apply_idx;
  416. auto &inputs = node->inputs();
  417. if (inputs.size() < 1) {
  418. MS_LOG(EXCEPTION) << "Inputs of apply node is empty";
  419. }
  420. AnfNodePtr op = inputs[0];
  421. irpb::NodeProto *node_proto = graph_proto->add_node();
  422. // CNode/ConstGraph/Const/Parameter
  423. if (op->isa<CNode>() || IsValueNode<FuncGraph>(op) || op->isa<Parameter>()) {
  424. MS_LOG(WARNING) << "Operator must be a primitive";
  425. } else {
  426. GetOpNodeTypeAndAttrs(func_graph, op, node_proto);
  427. node_proto->set_name(std::to_string(apply_idx));
  428. node_proto->set_scope(node->scope()->name());
  429. node_proto->set_full_name(GetKernelNodeName(node));
  430. // process OP inputs
  431. for (size_t i = 1; i < inputs.size(); ++i) {
  432. irpb::InputProto *input_proto = node_proto->add_input();
  433. input_proto->set_type(irpb::InputProto_EdgeType_DATA_EDGE);
  434. std::string id = GetOpNodeInputId(func_graph, inputs[i], *apply_map_ptr, const_map_ptr);
  435. input_proto->set_name(id);
  436. }
  437. // set node output type
  438. SetNodeOutputType(node, node_proto->mutable_output_type());
  439. }
  440. }
  441. void ProtoExporter::ExportFuncGraphOutput(const FuncGraphPtr &func_graph, const CNodePtr &ret_node,
  442. const std::map<AnfNodePtr, size_t> &apply_map,
  443. std::map<AnfNodePtr, size_t> *const_map_ptr, irpb::GraphProto *graph_proto) {
  444. if (ret_node == nullptr || !ret_node->isa<CNode>()) {
  445. MS_LOG(EXCEPTION) << "Graph return node is illegal";
  446. }
  447. // ret node has two input 1 ret op + 1 value
  448. const size_t ret_input_size = 2;
  449. if (ret_node->inputs().size() != ret_input_size) {
  450. return;
  451. }
  452. AnfNodePtr arg = ret_node->input(1);
  453. if (graph_proto == nullptr) {
  454. MS_LOG(EXCEPTION) << "graph_proto is nullptr";
  455. }
  456. irpb::OutputProto *output_proto = graph_proto->add_outputs();
  457. if (output_proto == nullptr) {
  458. MS_LOG(EXCEPTION) << "output_proto is nullptr";
  459. }
  460. std::string id = GetOpNodeInputId(func_graph, arg, apply_map, const_map_ptr);
  461. output_proto->set_name(id);
  462. SetNodeOutputType(arg, output_proto->mutable_type());
  463. }
  464. static bool CompareValue(const std::pair<AnfNodePtr, size_t> &x, const std::pair<AnfNodePtr, size_t> &y) {
  465. return x.second < y.second;
  466. }
  467. void ProtoExporter::ExportValueNodes(const std::map<AnfNodePtr, size_t> &const_map, irpb::GraphProto *graph_proto) {
  468. std::vector<std::pair<AnfNodePtr, size_t>> nodes;
  469. (void)std::transform(const_map.cbegin(), const_map.cend(), std::back_inserter(nodes),
  470. [](const std::pair<AnfNodePtr, size_t> &item) { return item; });
  471. sort(nodes.begin(), nodes.end(), CompareValue);
  472. for (auto &item : nodes) {
  473. if (graph_proto == nullptr) {
  474. MS_LOG(EXCEPTION) << "graph_proto is nullptr";
  475. }
  476. irpb::NamedValueProto *named_value = graph_proto->add_const_vals();
  477. MS_EXCEPTION_IF_NULL(named_value);
  478. named_value->set_key(GetConstNodeId(item.second));
  479. SetValueToProto(GetValueNode(item.first), named_value->mutable_value());
  480. }
  481. }
  482. void ProtoExporter::InitModelInfo() { model_.set_ir_version(irpb::IR_VERSION); }
  483. std::string GetFuncGraphProtoString(const FuncGraphPtr &func_graph) {
  484. ProtoExporter exporter;
  485. return exporter.GetFuncGraphProtoString(func_graph);
  486. }
  487. #ifdef ENABLE_DUMP_IR
  488. void DumpIRProto(const FuncGraphPtr &func_graph, const std::string &suffix) {
  489. if (func_graph == nullptr) {
  490. MS_LOG(ERROR) << "Func graph is nullptr";
  491. return;
  492. }
  493. std::string file_path = GetSaveGraphsPathName("ms_output_" + suffix + ".pb");
  494. auto realpath = Common::CreatePrefixPath(file_path);
  495. if (!realpath.has_value()) {
  496. MS_LOG(ERROR) << "Get real path failed, path=" << file_path;
  497. return;
  498. }
  499. ChangeFileMode(realpath.value(), S_IWUSR);
  500. // write to pb file
  501. std::ofstream ofs(file_path);
  502. if (!ofs.is_open()) {
  503. MS_LOG(ERROR) << "Open file '" << file_path << "' failed!"
  504. << " Errno:" << errno << " ErrInfo:" << strerror(errno);
  505. return;
  506. }
  507. ofs << GetFuncGraphProtoString(func_graph);
  508. ofs.close();
  509. // set file mode to read only by user
  510. ChangeFileMode(file_path, S_IRUSR);
  511. }
  512. #else
  513. void DumpIRProto(const FuncGraphPtr &, const std::string &) {
  514. static bool already_printed = false;
  515. if (already_printed) {
  516. return;
  517. }
  518. already_printed = true;
  519. MS_LOG(WARNING) << "The functionality of dumping function graph IR in protobuf format is disabled, "
  520. << "please recompile source to enable it. See help of building script.";
  521. }
  522. #endif
  523. } // namespace mindspore