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test_tensorflow_parser.cc 144 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 <gtest/gtest.h>
  17. #define protected public
  18. #define private public
  19. #include "parser/common/op_parser_factory.h"
  20. #include "parser/tensorflow/tensorflow_parser.h"
  21. #include "graph/operator_reg.h"
  22. #include "register/op_registry.h"
  23. #include "external/register/register.h"
  24. #include "parser/common/register_tbe.h"
  25. #include "st/parser_st_utils.h"
  26. #include "tests/depends/ops_stub/ops_stub.h"
  27. #include "parser/common/acl_graph_parser_util.h"
  28. #include "metadef/third_party/graphengine/inc/external/ge/ge_api_types.h"
  29. #include "omg/parser/parser_factory.h"
  30. #include "common/pre_checker.h"
  31. #include "common/util.h"
  32. #include "external/parser/tensorflow_parser.h"
  33. #include "parser/tensorflow/tensorflow_constant_parser.h"
  34. #include "common/types.h"
  35. #include "parser/common/op_def/variable_op.h"
  36. #include "parser/tensorflow/tensorflow_ref_switch_parser.h"
  37. #include "parser/tensorflow/tensorflow_fusion_op_parser.h"
  38. #include "parser/tensorflow/tensorflow_auto_mapping_parser_adapter.h"
  39. #include "parser/common/op_def/arg_op.h"
  40. #include "parser/tensorflow/tensorflow_fusion_custom_parser_adapter.h"
  41. #include "parser/tensorflow/tensorflow_reshape_parser.h"
  42. #include "parser/tensorflow/tensorflow_custom_parser_adapter.h"
  43. #include "parser/tensorflow/tensorflow_squeeze_parser.h"
  44. #include "parser/tensorflow/graph_functiondef.h"
  45. #include "parser/tensorflow/graph_optimizer.h"
  46. #include "cce/dnn_base_def.hpp"
  47. #include "parser/tensorflow/scope/scope_pass_manager.h"
  48. #include "parser/tensorflow/tensorflow_util.h"
  49. #include "compute_graph_impl.h"
  50. #include "parser/tensorflow/tensorflow_enter_parser.h"
  51. #include "parser/common/op_def/ir_pb_converter.h"
  52. #include "parser/common/tuple.h"
  53. #include "common/op_def/frameworkop_op.h"
  54. #include "common/op_def/shape_n_op.h"
  55. #include "common/op_def/var_is_initialized_op_op.h"
  56. #include "common/op_def/fill_op.h"
  57. #include "common/convert/pb2json.h"
  58. #include "common/convert/message2operator.h"
  59. #include "parser/common/proto_file_parser.h"
  60. #include "parser/common/pre_checker.h"
  61. #include "parser/common/tbe_plugin_loader.h"
  62. #include "parser/common/data_op_parser.h"
  63. #include "parser/common/model_saver.h"
  64. #include "framework/omg/parser/parser_api.h"
  65. #include "parser/common/parser_fp16_t.h"
  66. #include "parser/common/op_parser_factory.h"
  67. #include "parser/common/prototype_pass_manager.h"
  68. #undef protected
  69. #undef private
  70. using namespace std;
  71. using namespace domi::tensorflow;
  72. using namespace domi;
  73. using namespace cce;
  74. using namespace testing;
  75. using namespace std;
  76. using namespace google::protobuf;
  77. static const string GRAPH_DEFAULT_NAME = "default";
  78. namespace ge {
  79. class STestTensorflowParser : public testing::Test {
  80. protected:
  81. void SetUp() {
  82. ParerSTestsUtils::ClearParserInnerCtx();
  83. }
  84. void TearDown() {}
  85. public:
  86. void RegisterCustomOp();
  87. };
  88. class TestOperator : public ParserOperator
  89. {
  90. public:
  91. TestOperator()
  92. : ParserOperator("test")
  93. {
  94. }
  95. ~TestOperator()
  96. {
  97. }
  98. };
  99. class ScopeTestPass : public ScopeBasePass {
  100. protected:
  101. vector<ScopeFusionPatterns> DefinePatterns() {
  102. vector<ScopeFusionPatterns> patterns_list;
  103. return patterns_list;
  104. };
  105. string PassName() {
  106. return "test";
  107. };
  108. Status LastMatchScopesAndOPs(shared_ptr<ScopeGraph> &scope_graph, vector<ScopesResult> &results) {
  109. return domi::SUCCESS;
  110. };
  111. void GenerateFusionResult(const vector<Scope *> &scopes, FusionScopesResult *fusion_rlt) {
  112. return;
  113. };
  114. };
  115. static Status ParseParams(const google::protobuf::Message* op_src, ge::Operator& op_dest) {
  116. return SUCCESS;
  117. }
  118. static Status ParseParamByOpFunc(const ge::Operator &op_src, ge::Operator& op_dest) {
  119. return SUCCESS;
  120. }
  121. void STestTensorflowParser::RegisterCustomOp() {
  122. REGISTER_CUSTOM_OP("Add")
  123. .FrameworkType(domi::TENSORFLOW)
  124. .OriginOpType("Add")
  125. .ParseParamsFn(ParseParams);
  126. std::vector<OpRegistrationData> reg_datas = domi::OpRegistry::Instance()->registrationDatas;
  127. for (auto reg_data : reg_datas) {
  128. OpRegistrationTbe::Instance()->Finalize(reg_data);
  129. domi::OpRegistry::Instance()->Register(reg_data);
  130. }
  131. domi::OpRegistry::Instance()->registrationDatas.clear();
  132. }
  133. namespace {
  134. NodeDef* AddNode(GraphDef& graph, string type, string name) {
  135. NodeDef* nodeDef = graph.add_node();
  136. nodeDef->set_op(type);
  137. nodeDef->set_name(name);
  138. tensorflow::OpDef op_def;
  139. string op_def_string;
  140. op_def.SerializeToString(&op_def_string);
  141. tensorflow::AttrValue value;
  142. value.set_s(op_def_string);
  143. nodeDef->mutable_attr()->insert({"op_def", value});
  144. return nodeDef;
  145. }
  146. void AddInput(NodeDef* src, NodeDef* dst, int srcIndex) {
  147. if(srcIndex == -1){
  148. dst->add_input("^"+src->name());
  149. } else {
  150. if (srcIndex == 0) {
  151. dst->add_input(src->name());
  152. } else {
  153. dst->add_input(src->name() + ":" + std::to_string(srcIndex));
  154. }
  155. {
  156. auto input = (*dst->mutable_attr())[ge::ATTR_NAME_INPUT_TENSOR_DESC].mutable_list()->add_func();
  157. tensorflow::AttrValue val1;
  158. val1.set_i(0);
  159. (*input->mutable_attr())["serialize_format"] = val1;
  160. tensorflow::AttrValue val2;
  161. val2.set_i(tensorflow::DT_FLOAT);
  162. (*input->mutable_attr())["serialize_datatype"] = val2;
  163. tensorflow::AttrValue val3;
  164. val3.mutable_list()->add_i(10);
  165. (*input->mutable_attr())["serialize_shape"] = val3;
  166. }
  167. {
  168. auto output = (*src->mutable_attr())[ge::ATTR_NAME_OUTPUT_TENSOR_DESC].mutable_list()->add_func();
  169. tensorflow::AttrValue val1;
  170. val1.set_i(0);
  171. (*output->mutable_attr())["serialize_format"] = val1;
  172. tensorflow::AttrValue val2;
  173. val2.set_i(tensorflow::DT_FLOAT);
  174. (*output->mutable_attr())["serialize_datatype"] = val2;
  175. tensorflow::AttrValue val3;
  176. val3.mutable_list()->add_i(10);
  177. (*output->mutable_attr())["serialize_shape"] = val3;
  178. }
  179. }
  180. }
  181. NodeDef *initNodeDef() {
  182. NodeDef * nodeDef = new NodeDef();
  183. nodeDef->set_op("Const");
  184. ::google::protobuf::Map<std::string, tensorflow::AttrValue >* node_attr_map = nodeDef->mutable_attr();
  185. //设置 T属性
  186. domi::tensorflow::AttrValue t_attr_value;
  187. t_attr_value.set_type(domi::tensorflow::DT_INT32);
  188. (*node_attr_map)[TENSORFLOW_ATTR_T] = t_attr_value;
  189. domi::tensorflow::AttrValue dtype_attr_value;
  190. dtype_attr_value.set_type(domi::tensorflow::DT_INT32);
  191. (*node_attr_map)[TENSORFLOW_ATTR_DTYPE] = dtype_attr_value;
  192. // out_put
  193. domi::tensorflow::AttrValue outputs_attr_value;
  194. ::tensorflow::AttrValue_ListValue* list = outputs_attr_value.mutable_list();
  195. list->add_s("MatMul");
  196. (*node_attr_map)[TENSORFLOW_ATTR_OUTPUT_OP] = outputs_attr_value;
  197. // 设置 tensor 属性
  198. domi::tensorflow::AttrValue value_attr_value;
  199. tensorflow::TensorProto* tensor = value_attr_value.mutable_tensor();
  200. tensorflow::TensorShapeProto* tensor_shape = tensor->mutable_tensor_shape();
  201. tensor_shape->clear_dim();
  202. tensor_shape->add_dim()->set_size(4);
  203. tensor_shape->add_dim()->set_size(6);
  204. tensor->set_dtype(domi::tensorflow::DT_INT32);
  205. float *addr = new float[24];
  206. for (int32_t i = 0; i < 24; i++) {
  207. *(addr + i) = 1.0 + i;
  208. }
  209. tensor->set_tensor_content((void *)addr, 24 * sizeof(float));
  210. (*node_attr_map)[TENSORFLOW_ATTR_VALUE] = value_attr_value;
  211. delete[] addr;
  212. return nodeDef;
  213. }
  214. NodeDef * initOpNodeDef_VariableV2() {
  215. NodeDef * nodeDef = new NodeDef();
  216. nodeDef->set_op("VariableV2");
  217. google::protobuf::Map<std::string, tensorflow::AttrValue > *node_attr_map = nodeDef->mutable_attr();
  218. //设置data_format属性
  219. domi::tensorflow::AttrValue format_attr_value;
  220. format_attr_value.set_s("_FZ");
  221. (*node_attr_map)[VAR_ATTR_FORMAT] = format_attr_value;
  222. domi::tensorflow::AttrValue type_attr;
  223. type_attr.set_type(domi::tensorflow::DT_FLOAT);
  224. (*node_attr_map)[VAR_ATTR_DTYPE] = type_attr;
  225. domi::tensorflow::AttrValue container_attr_value;
  226. container_attr_value.set_s("container");
  227. (*node_attr_map)[VAR_ATTR_CONTAINER] = container_attr_value;
  228. domi::tensorflow::AttrValue shard_name_attr_value;
  229. shard_name_attr_value.set_s("shard_name");
  230. (*node_attr_map)[VAR_ATTR_SHARED_NAME] = shard_name_attr_value;
  231. domi::tensorflow::AttrValue shape_attr_value;
  232. shape_attr_value.mutable_shape()->add_dim()->set_size(1);
  233. shape_attr_value.mutable_shape()->add_dim()->set_size(2);
  234. shape_attr_value.mutable_shape()->add_dim()->set_size(3);
  235. shape_attr_value.mutable_shape()->add_dim()->set_size(4);
  236. (*node_attr_map)[ge::VAR_ATTR_SHAPE] = shape_attr_value;
  237. domi::tensorflow::AttrValue shape;
  238. shape.mutable_list()->add_i((int64)32);
  239. shape.mutable_list()->add_i((int64)32);
  240. shape.mutable_list()->add_i((int64)14);
  241. shape.mutable_list()->add_i((int64)14);
  242. //设置data_format属性
  243. domi::tensorflow::AttrValue df_attr_value;
  244. domi::tensorflow::AttrValue df_attr_value2;
  245. df_attr_value2.set_s(TENSORFLOWF_TENSOR_NHWC);
  246. df_attr_value.set_i((int64_t)ccTensorFormat_t::CC_TENSOR_NHWC);
  247. (*node_attr_map)[TENSORFLOW_ATTR_DATA_FORMAT] = df_attr_value2;
  248. //设置padding属性
  249. domi::tensorflow::AttrValue pad_attr_value;
  250. domi::tensorflow::AttrValue pad_attr_value2;
  251. pad_attr_value2.set_s(TENSORFLOWF_OP_PADDING_SAME);
  252. (*node_attr_map)[TENSORFLOW_ATTR_PADDING] = pad_attr_value2;
  253. pad_attr_value.set_i((int64_t)tensorflow::DT_FLOAT);
  254. domi::tensorflow::NameAttrList name_attr_list;
  255. name_attr_list.set_name(std::to_string(0));
  256. name_attr_list.mutable_attr()->insert({"serialize_shape", shape});
  257. name_attr_list.mutable_attr()->insert({"serialize_format", df_attr_value});
  258. name_attr_list.mutable_attr()->insert({"serialize_datatype", pad_attr_value});
  259. domi::tensorflow::AttrValue output_tensor_descs;
  260. *(output_tensor_descs.mutable_list()->add_func()) = name_attr_list;
  261. nodeDef->mutable_attr()->insert({ge::ATTR_NAME_OUTPUT_TENSOR_DESC, output_tensor_descs});
  262. return nodeDef;
  263. }
  264. NodeDef *initOpNodeDef_TemporaryVariable() {
  265. NodeDef * nodeDef = new NodeDef();
  266. nodeDef->set_op("TemporaryVariable");
  267. google::protobuf::Map<std::string, tensorflow::AttrValue> *node_attr_map = nodeDef->mutable_attr();
  268. //设置dtype属性
  269. domi::tensorflow::AttrValue type_attr;
  270. type_attr.set_type(domi::tensorflow::DT_FLOAT);
  271. (*node_attr_map)[VAR_ATTR_DTYPE] = type_attr;
  272. //设置var_name属性
  273. domi::tensorflow::AttrValue var_name_attr_value;
  274. var_name_attr_value.set_s("temporary_variable_name");
  275. (*node_attr_map)[ge::VAR_ATTR_NAME] = var_name_attr_value;
  276. //设置shape属性
  277. domi::tensorflow::AttrValue shape_attr_value;
  278. shape_attr_value.mutable_shape()->add_dim()->set_size(1);
  279. shape_attr_value.mutable_shape()->add_dim()->set_size(2);
  280. shape_attr_value.mutable_shape()->add_dim()->set_size(3);
  281. shape_attr_value.mutable_shape()->add_dim()->set_size(4);
  282. (*node_attr_map)[ge::VAR_ATTR_SHAPE] = shape_attr_value;
  283. domi::tensorflow::AttrValue shape;
  284. shape.mutable_list()->add_i((int64)32);
  285. shape.mutable_list()->add_i((int64)32);
  286. shape.mutable_list()->add_i((int64)14);
  287. shape.mutable_list()->add_i((int64)14);
  288. //设置data_format属性
  289. domi::tensorflow::AttrValue df_attr_value2;
  290. df_attr_value2.set_s(TENSORFLOWF_TENSOR_NHWC);
  291. (*node_attr_map)[TENSORFLOW_ATTR_DATA_FORMAT] = df_attr_value2;
  292. domi::tensorflow::AttrValue df_attr_value;
  293. df_attr_value.set_i((int64_t)ccTensorFormat_t::CC_TENSOR_NHWC);
  294. //设置padding属性
  295. domi::tensorflow::AttrValue pad_attr_value2;
  296. pad_attr_value2.set_s(TENSORFLOWF_OP_PADDING_SAME);
  297. (*node_attr_map)[TENSORFLOW_ATTR_PADDING] = pad_attr_value2;
  298. domi::tensorflow::AttrValue pad_attr_value;
  299. pad_attr_value.set_i((int64_t)tensorflow::DT_FLOAT);
  300. domi::tensorflow::NameAttrList name_attr_list;
  301. name_attr_list.set_name(std::to_string(0));
  302. name_attr_list.mutable_attr()->insert({"serialize_shape", shape});
  303. name_attr_list.mutable_attr()->insert({"serialize_format", df_attr_value});
  304. name_attr_list.mutable_attr()->insert({"serialize_datatype", pad_attr_value});
  305. domi::tensorflow::AttrValue output_tensor_descs;
  306. *(output_tensor_descs.mutable_list()->add_func()) = name_attr_list;
  307. nodeDef->mutable_attr()->insert({ge::ATTR_NAME_OUTPUT_TENSOR_DESC, output_tensor_descs});
  308. return nodeDef;
  309. }
  310. NodeDef *fusioninitNodeDef(int index) {
  311. NodeDef *nodeDef = new NodeDef();
  312. google::protobuf::Map<std::string, tensorflow::AttrValue> *node_attr_map = nodeDef->mutable_attr();
  313. //设置 type属性
  314. domi::tensorflow::AttrValue dtype_attr_value ;
  315. if (index == 0) {
  316. dtype_attr_value.set_type(domi::tensorflow::DT_FLOAT);
  317. } else if (index == 1) {
  318. dtype_attr_value.set_type(domi::tensorflow::DT_INT32);
  319. } else if (index == 2) {
  320. dtype_attr_value.set_type(tensorflow::DT_HALF);
  321. }
  322. (*node_attr_map)[ge::TENSORFLOW_ATTR_DTYPE] = dtype_attr_value;
  323. //设置data_format属性
  324. domi::tensorflow::AttrValue df_attr_value;
  325. df_attr_value.set_s(TENSORFLOWF_TENSOR_NCHW);
  326. (*node_attr_map)[TENSORFLOW_ATTR_DATA_FORMAT] = df_attr_value;
  327. // 设置 tensor 属性
  328. domi::tensorflow::AttrValue value_attr_value;
  329. ::tensorflow::TensorProto* tensor = value_attr_value.mutable_tensor();
  330. ::tensorflow::TensorShapeProto* tensor_shape = tensor->mutable_tensor_shape();
  331. tensor_shape->clear_dim();
  332. ::tensorflow::TensorShapeProto_Dim* dim = tensor_shape->add_dim();
  333. dim->set_name("tensor dim");
  334. dim->set_size(1);
  335. if (index == 0) {
  336. tensor->set_dtype(domi::tensorflow::DT_FLOAT);
  337. float *addr = new float[1];
  338. *addr = 1.0;
  339. tensor->set_tensor_content((void *)addr, sizeof(float));
  340. (*node_attr_map)[TENSORFLOW_ATTR_VALUE] = value_attr_value;
  341. delete[] addr;
  342. } else if (index == 1) {
  343. tensor->set_dtype(domi::tensorflow::DT_INT32);
  344. int32_t *addr = new int32_t[1];
  345. *addr = 1;
  346. tensor->set_tensor_content((void *)addr, sizeof(int32_t));
  347. (*node_attr_map)[TENSORFLOW_ATTR_VALUE] = value_attr_value;
  348. delete[] addr;
  349. } else if (index == 2) {
  350. tensor->set_dtype(tensorflow::DT_HALF);
  351. tensor->add_half_val(1);
  352. (*node_attr_map)[TENSORFLOW_ATTR_VALUE] = value_attr_value;
  353. }
  354. return nodeDef;
  355. }
  356. NodeDef *MallocNodeDef(const string &name, const string &type) {
  357. NodeDef* node_def = new (std::nothrow) NodeDef();
  358. if (node_def != nullptr) {
  359. node_def->set_name(name);
  360. node_def->set_op(type);
  361. }
  362. return node_def;
  363. }
  364. void GenOriginNodeDef(ge::TensorFlowModelParser *tensorflow_parser, vector<string> &node_name_list) {
  365. NodeDef* pre_node_a = MallocNodeDef("pre_node_a", "Const");
  366. EXPECT_NE(pre_node_a, nullptr);
  367. {
  368. google::protobuf::Map< ::std::string, ::tensorflow::AttrValue >* node_attr_map = pre_node_a->mutable_attr();
  369. tensorflow::AttrValue attr_dtype;
  370. attr_dtype.set_type(tensorflow::DT_FLOAT);
  371. (*node_attr_map)["dtype"] = attr_dtype;
  372. tensorflow::AttrValue attr_value;
  373. tensorflow::TensorProto* tensor = attr_value.mutable_tensor();
  374. tensor->add_bool_val(true);
  375. tensor->set_dtype(tensorflow::DT_BOOL);
  376. (*node_attr_map)["value"] = attr_value;
  377. }
  378. tensorflow_parser->nodedef_map_["pre_node_a"] = pre_node_a;
  379. node_name_list.push_back("pre_node_a");
  380. NodeDef* pre_node_ctrl_in = MallocNodeDef("pre_node_ctrl_in", "Const");
  381. EXPECT_NE(pre_node_ctrl_in, nullptr);
  382. {
  383. ::google::protobuf::Map< ::std::string, ::tensorflow::AttrValue >* node_attr_map = pre_node_ctrl_in->mutable_attr();
  384. tensorflow::AttrValue attr_dtype;
  385. attr_dtype.set_type(tensorflow::DT_FLOAT);
  386. (*node_attr_map)["dtype"] = attr_dtype;
  387. tensorflow::AttrValue attr_value;
  388. tensorflow::TensorProto* tensor = attr_value.mutable_tensor();
  389. tensor->add_bool_val(true);
  390. tensor->set_dtype(tensorflow::DT_BOOL);
  391. (*node_attr_map)["value"] = attr_value;
  392. }
  393. tensorflow_parser->nodedef_map_["pre_node_ctrl_in"] = pre_node_ctrl_in;
  394. node_name_list.push_back("pre_node_ctrl_in");
  395. NodeDef* post_node_b = MallocNodeDef("post_node_b", "Identity");
  396. EXPECT_NE(post_node_b, nullptr);
  397. tensorflow_parser->nodedef_map_["post_node_b"] = post_node_b;
  398. node_name_list.push_back("post_node_b");
  399. NodeDef* post_node_c = MallocNodeDef("post_node_c", "Identity");
  400. EXPECT_NE(post_node_c, nullptr);
  401. tensorflow_parser->nodedef_map_["post_node_c"] = post_node_c;
  402. node_name_list.push_back("post_node_c");
  403. NodeDef* post_node_d = MallocNodeDef("post_node_d", "Identity");
  404. EXPECT_NE(post_node_d, nullptr);
  405. tensorflow_parser->nodedef_map_["post_node_d"] = post_node_d;
  406. node_name_list.push_back("post_node_d");
  407. }
  408. void FreeNodeDefMap(ge::TensorFlowModelParser *tensorflow_parser, set<string> &malloc_node_name_list) {
  409. for (auto &item : tensorflow_parser->nodedef_map_) {
  410. if (item.second != nullptr && malloc_node_name_list.count(item.first) > 0) {
  411. delete (item.second);
  412. item.second = nullptr;
  413. }
  414. }
  415. }
  416. void GenFusionScopesResult(shared_ptr<ScopeGraph> &scope_graph, FusionScopesResult *fusion_rlt,
  417. const string &fusion_op_name) {
  418. if (fusion_rlt == nullptr) {
  419. return;
  420. }
  421. fusion_rlt->InsertInputs("scope_node_1", {0}); // scope input 0
  422. fusion_rlt->InsertOutputs("scope_node_m", {0}); // scope output 0
  423. fusion_rlt->InsertOutputs("scope_node_n", {1}); // scope output 1
  424. fusion_rlt->SetType(ge::kScopeToMultiNodes);
  425. fusion_rlt->SetName(fusion_op_name);
  426. fusion_rlt->SetDescription("Description for fusion node");
  427. // Add inner nodes in sequence.
  428. auto node1 = fusion_rlt->AddInnerNode("inner_node_1", "Unique"); // add inner node1
  429. CHECK_INNER_NODE_CONDITION(node1 != nullptr, fusion_rlt);
  430. auto ret = node1
  431. ->InsertInput(ge::kInputFromFusionScope, 0) // Input from 0th of boundary (a)
  432. .InsertOutput(ge::kOutputToFusionScope, 0) // Output to 0th of boundary (b)
  433. .InsertOutput("inner_node_2", 0) // Output to input 0th of internal node 2
  434. .BuildInnerNode(); // Construct an internal Operator
  435. CHECK_INNER_NODE_CONDITION(ret == ge::GRAPH_SUCCESS, fusion_rlt);
  436. string str_val = "This is a string.";
  437. node1->MutableOperator()->SetAttr("key1", 2); // Set integer attribute
  438. node1->MutableOperator()->SetAttr("key2", str_val); // Set the string attribute
  439. node1->MutableOperator()->SetAttr("key3", true); // Set boolean attribute
  440. auto node2 = fusion_rlt->AddInnerNode("inner_node_2", "Identity"); // add inner node2
  441. CHECK_INNER_NODE_CONDITION(node2 != nullptr, fusion_rlt);
  442. ret = node2
  443. ->InsertInput("inner_node_1", 1) // The input comes from the 1st output of internal node 1
  444. .InsertOutput("inner_node_3", 0) // Output to input 0th of internal node 3
  445. .BuildInnerNode();
  446. CHECK_INNER_NODE_CONDITION(ret == ge::GRAPH_SUCCESS, fusion_rlt);
  447. node2->SetInputFormat("x", "NHWC");
  448. node2->SetOutputFormat("y", "NHWC");
  449. auto node3 = fusion_rlt->AddInnerNode("inner_node_3", "Identity"); // add inner node3
  450. CHECK_INNER_NODE_CONDITION(node3 != nullptr, fusion_rlt);
  451. ret = node3
  452. ->InsertInput("inner_node_2", 0) // The input comes from the 0th output of internal node 2
  453. .InsertOutput(ge::kOutputToFusionScope, 1) // Output to 1st of boundary (c)
  454. .BuildInnerNode();
  455. CHECK_INNER_NODE_CONDITION(ret == ge::GRAPH_SUCCESS, fusion_rlt);
  456. scope_graph->impl_->AddFusionScopesResult(fusion_rlt);
  457. }
  458. void GenOriginContext(ge::TensorFlowModelParser *tensorflow_parser, const string &fusion_op_name) {
  459. // op_node_context for fusion op
  460. ge::OpNodeContext op_node_context;
  461. op_node_context.input_map["pre_node_a"].push_back({0, 0});
  462. op_node_context.input_map["pre_node_ctrl_in"].push_back({-1, -1}); // ctrl edges
  463. op_node_context.output_map["post_node_b"].push_back({0, 0});
  464. op_node_context.output_map["post_node_c"].push_back({1, 0});
  465. op_node_context.output_map["post_node_d"].push_back({-1, -1});
  466. op_node_context.output_map["_Retval"].push_back({0, 1});
  467. // ctrl edges
  468. tensorflow_parser->op_node_context_map_[fusion_op_name] = op_node_context;
  469. tensorflow_parser->SaveEdgesControlInfo(fusion_op_name, -1);
  470. // op_node_context for pre_node_a
  471. ge::OpNodeContext op_node_context_a;
  472. op_node_context_a.output_map[fusion_op_name].push_back({0, 0});
  473. tensorflow_parser->op_node_context_map_["pre_node_a"] = op_node_context_a;
  474. // op_node_context for pre_node_ctrl_in
  475. ge::OpNodeContext op_node_context_ctrl_in;
  476. op_node_context_ctrl_in.output_map[fusion_op_name].push_back({-1, -1}); // ctrl edges
  477. tensorflow_parser->op_node_context_map_["pre_node_ctrl_in"] = op_node_context_ctrl_in;
  478. // op_node_context for post_node_b
  479. ge::OpNodeContext op_node_context_b;
  480. op_node_context_b.input_map[fusion_op_name].push_back({0, 0});
  481. tensorflow_parser->op_node_context_map_["post_node_b"] = op_node_context_b;
  482. // op_node_context for post_node_c
  483. ge::OpNodeContext op_node_context_c;
  484. op_node_context_c.output_map["post_node_d"].push_back({0, 0});
  485. tensorflow_parser->op_node_context_map_["post_node_c"] = op_node_context_c;
  486. // op_node_context for post_node_d
  487. ge::OpNodeContext op_node_context_d;
  488. op_node_context_d.input_map[fusion_op_name].push_back({-1, -1}); // ctrl edges
  489. tensorflow_parser->op_node_context_map_["post_node_d"] = op_node_context_d;
  490. // op_node_context for Retval
  491. ge::OpNodeContext op_node_context_Retval;
  492. op_node_context_d.input_map["post_node_d"].push_back({-1, -1});
  493. op_node_context_c.output_map["fusion_op_name"].push_back({0,1});
  494. tensorflow_parser->op_node_context_map_["_Retval"] = op_node_context_Retval;
  495. tensorflow_parser->SaveEdgesControlInfo("op_node_context_Retval", -1);
  496. string fusion_op_type = ge::kScopeToMultiNodes;
  497. string description = "fusion op description";
  498. tensorflow_parser->fusion_op_type_map_[fusion_op_name].push_back(fusion_op_type);
  499. tensorflow_parser->fusion_op_type_map_[fusion_op_name].push_back(description);
  500. }
  501. void register_tbe_op() {
  502. std::vector<OpRegistrationData> registrationDatas = OpRegistry::Instance()->registrationDatas;
  503. for (OpRegistrationData reg_data : registrationDatas) {
  504. OpRegistrationTbe::Instance()->Finalize(reg_data);
  505. OpRegistry::Instance()->Register(reg_data);
  506. }
  507. OpRegistry::Instance()->registrationDatas.clear();
  508. }
  509. NodeDef *initNodeDef_axis_dims() {
  510. NodeDef *nodeDef = new NodeDef();
  511. google::protobuf::Map<std::string, tensorflow::AttrValue> *node_attr_map = nodeDef->mutable_attr();
  512. //设置T属性
  513. domi::tensorflow::AttrValue dtype_attr_value ;
  514. dtype_attr_value.set_type(domi::tensorflow::DT_FLOAT);
  515. (*node_attr_map)[TENSORFLOW_ATTR_T] = dtype_attr_value;
  516. //设置strides属性
  517. domi::tensorflow::AttrValue axis_attr_value;
  518. ::tensorflow::AttrValue_ListValue* list = axis_attr_value.mutable_list();
  519. list->add_i(1);
  520. list->add_i(2);
  521. (*node_attr_map)[ge::SQUEEZE_ATTR_AXIS] = axis_attr_value;
  522. (*node_attr_map)[ge::SQUEEZE_ATTR_DIMS] = axis_attr_value;
  523. return nodeDef;
  524. }
  525. NodeDef *initNodeDef_dims() {
  526. NodeDef *nodeDef = new NodeDef();
  527. ::google::protobuf::Map<std::string, tensorflow::AttrValue > *node_attr_map = nodeDef->mutable_attr();
  528. //设置T属性
  529. domi::tensorflow::AttrValue dtype_attr_value ;
  530. dtype_attr_value.set_type(domi::tensorflow::DT_FLOAT);
  531. (*node_attr_map)[TENSORFLOW_ATTR_T] = dtype_attr_value;
  532. //设置strides属性
  533. domi::tensorflow::AttrValue axis_attr_value;
  534. ::tensorflow::AttrValue_ListValue* list = axis_attr_value.mutable_list();
  535. list->add_i(1);
  536. list->add_i(2);
  537. (*node_attr_map)[ge::SQUEEZE_ATTR_DIMS] = axis_attr_value;
  538. return nodeDef;
  539. }
  540. void CreateOpDef(const string& _name, const string& _type, ge::OpDescPtr opDef) {
  541. tensorflow::OpDef tsOpDef;
  542. tsOpDef.set_name(_name);
  543. tensorflow::OpDef_ArgDef* outArgDef = tsOpDef.add_output_arg();
  544. outArgDef->set_name(_name);
  545. outArgDef->set_description("outArgDef");
  546. outArgDef->set_type((tensorflow::DataType)3);
  547. if ((_name == "A") || (_name == "B")) {
  548. tensorflow::OpDef_ArgDef* argDef1 = tsOpDef.add_output_arg();
  549. string name = _name+"t";
  550. argDef1->set_name(name);
  551. argDef1->set_description("this is a test 2");
  552. argDef1->set_type((tensorflow::DataType)3);
  553. }
  554. if ((_name == "C") ) {
  555. outArgDef->set_number_attr("num");
  556. }
  557. if ((_name == "D") ) {
  558. outArgDef->set_type_list_attr("type_list");
  559. }
  560. string strTsOpDef;
  561. tsOpDef.SerializeToString(&strTsOpDef);
  562. ge::AttrUtils::SetStr(opDef, "op_def", strTsOpDef);
  563. tensorflow::NodeDef nodedef;
  564. nodedef.set_name(_name);
  565. nodedef.set_op(_name);
  566. string name("op_def");
  567. tensorflow::AttrValue value;
  568. value.set_s(strTsOpDef);
  569. TensorFlowUtil::AddNodeAttr(name, value, &nodedef);
  570. value.set_i(1);
  571. TensorFlowUtil::AddNodeAttr("num", value, &nodedef);
  572. value.mutable_list();
  573. TensorFlowUtil::AddNodeAttr("type_list", value, &nodedef);
  574. string strNodeDef;
  575. nodedef.SerializeToString(&strNodeDef);
  576. ge::GeAttrValue::BYTES nodedefBytes;
  577. nodedefBytes = ge::GeAttrValue::BYTES::CopyFrom((uint8_t*)strNodeDef.data(), strNodeDef.length());
  578. ge::AttrUtils::SetBytes(opDef, "node_def", nodedefBytes);
  579. if ((_name== "S") || (_name == "K")) {
  580. int index = 0;
  581. ge::AttrUtils::SetInt(opDef, "T", 1);
  582. ge::AttrUtils::SetInt(opDef, "arg_index", index);
  583. ge::AttrUtils::SetInt(opDef, "ret_index", index);
  584. }
  585. }
  586. ge::NodePtr AddNode(ge::ComputeGraphPtr graph, const string& _name, const string& _type,int32_t i_n, int32_t o_n) {
  587. ge::OpDescPtr opDef = std::make_shared<ge::OpDesc>();
  588. opDef->SetName(_name);
  589. opDef->SetType(_type);
  590. for(int32_t i = 0; i < i_n; i++) {
  591. ge::GeTensorDesc input;
  592. input.SetDataType((ge::DataType)1);
  593. opDef->AddInputDesc(input);
  594. }
  595. for(int32_t i = 0;i < o_n; i++) {
  596. ge::GeTensorDesc output;
  597. output.SetDataType((ge::DataType)1);
  598. opDef->AddOutputDesc(output);
  599. }
  600. CreateOpDef(_name, _type, opDef);
  601. return graph->AddNode(opDef);
  602. }
  603. void MakeDagGraph(ge::ComputeGraphPtr graph, const string& input_node_type) {
  604. ge::NodePtr node_s = AddNode(graph, "S", parser::DATA,1,1);
  605. ge::NodePtr node_a = AddNode(graph, "A", "testa",1,2);
  606. ge::NodePtr node_b = AddNode(graph, "B", "testb",1,2);
  607. ge::NodePtr node_c = AddNode(graph, "C", "testc",1,1);
  608. ge::NodePtr node_d = AddNode(graph, "D", "testd",1,1);
  609. ge::NodePtr node_e = AddNode(graph, "E", "teste",1,1);
  610. ge::NodePtr node_f = AddNode(graph, "F", "testf",1,1);
  611. ge::NodePtr node_g = AddNode(graph, "G", "testg",2,1);
  612. ge::NodePtr node_h = AddNode(graph, "H", "testh",1,1);
  613. ge::NodePtr node_i = AddNode(graph, "I", "testi",1,1);
  614. ge::NodePtr node_j = AddNode(graph, "J", "testj",2,1);
  615. ge::NodePtr node_k = AddNode(graph, "K", parser::NETOUTPUT,1,1);
  616. ge::GraphUtils::AddEdge(node_s->GetOutDataAnchor(0), node_a->GetInDataAnchor(0));
  617. ge::GraphUtils::AddEdge(node_a->GetOutDataAnchor(0), node_b->GetInDataAnchor(0));
  618. ge::GraphUtils::AddEdge(node_a->GetOutDataAnchor(1), node_c->GetInDataAnchor(0));
  619. ge::GraphUtils::AddEdge(node_b->GetOutDataAnchor(0), node_d->GetInDataAnchor(0));
  620. ge::GraphUtils::AddEdge(node_b->GetOutDataAnchor(1), node_e->GetInDataAnchor(0));
  621. ge::GraphUtils::AddEdge(node_c->GetOutDataAnchor(0), node_g->GetInDataAnchor(0));
  622. ge::GraphUtils::AddEdge(node_d->GetOutDataAnchor(0), node_f->GetInDataAnchor(0));
  623. ge::GraphUtils::AddEdge(node_e->GetOutDataAnchor(0), node_g->GetInDataAnchor(1));
  624. ge::GraphUtils::AddEdge(node_f->GetOutDataAnchor(0), node_h->GetInDataAnchor(0));
  625. ge::GraphUtils::AddEdge(node_g->GetOutDataAnchor(0), node_j->GetInDataAnchor(0));
  626. ge::GraphUtils::AddEdge(node_h->GetOutDataAnchor(0), node_i->GetInDataAnchor(0));
  627. ge::GraphUtils::AddEdge(node_i->GetOutDataAnchor(0), node_j->GetInDataAnchor(1));
  628. ge::GraphUtils::AddEdge(node_j->GetOutDataAnchor(0), node_k->GetInDataAnchor(0));
  629. ge::GraphUtils::AddEdge(node_h->GetOutControlAnchor(), node_j->GetInControlAnchor());
  630. }
  631. void ChangeDataType(tensorflow::NodeDef* node_tf, int32_t data_type)
  632. {
  633. domi::tensorflow::AttrValue input_attr_value;
  634. google::protobuf::Map<std::string, tensorflow::AttrValue>* attr = node_tf->mutable_attr();
  635. google::protobuf::Map<std::string, tensorflow::AttrValue>::const_iterator it = attr->find(ge::ATTR_NAME_INPUT_TENSOR_DESC);
  636. if (it != attr->end()) {
  637. input_attr_value = it->second;
  638. }
  639. (*attr)[ge::ATTR_NAME_INPUT_TENSOR_DESC] = input_attr_value;
  640. }
  641. NodeDef* AddGraphNode(GraphDef *graph, string name, string optype, string input)
  642. {
  643. NodeDef * node_def = graph->add_node();
  644. node_def->set_name(name);
  645. node_def->set_op(optype);
  646. node_def->add_input(input);
  647. return node_def;
  648. }
  649. }
  650. namespace {
  651. REG_OP(Data)
  652. .INPUT(x, TensorType::ALL())
  653. .OUTPUT(y, TensorType::ALL())
  654. .ATTR(index, Int, 0)
  655. .OP_END_FACTORY_REG(Data)
  656. REG_OP(Add)
  657. .INPUT(x1, TensorType({DT_FLOAT, DT_INT32, DT_INT64, DT_FLOAT16, DT_INT16,
  658. DT_INT8, DT_UINT8, DT_DOUBLE, DT_COMPLEX128,
  659. DT_COMPLEX64, DT_STRING}))
  660. .INPUT(x2, TensorType({DT_FLOAT, DT_INT32, DT_INT64, DT_FLOAT16, DT_INT16,
  661. DT_INT8, DT_UINT8, DT_DOUBLE, DT_COMPLEX128,
  662. DT_COMPLEX64, DT_STRING}))
  663. .OUTPUT(y, TensorType({DT_FLOAT, DT_INT32, DT_INT64, DT_FLOAT16, DT_INT16,
  664. DT_INT8, DT_UINT8, DT_DOUBLE, DT_COMPLEX128,
  665. DT_COMPLEX64, DT_STRING}))
  666. .OP_END_FACTORY_REG(Add)
  667. }
  668. static Status FusionParserParams(const std::vector<const google::protobuf::Message *> inside_nodes, ge::Operator &op) {
  669. return domi::SUCCESS;
  670. }
  671. static MemBuffer* MemBufferFromFile(const char *path)
  672. {
  673. char path_temp[PATH_MAX + 1] = {0x00};
  674. if(strlen(path) > PATH_MAX || nullptr == realpath(path, path_temp)) {
  675. return nullptr;
  676. }
  677. FILE *fp = fopen(path_temp, "r+");
  678. if (fp == nullptr) {
  679. return nullptr;
  680. }
  681. // get model file length
  682. if (0 != fseek(fp, 0, SEEK_END)) {
  683. fclose(fp);
  684. return nullptr;
  685. }
  686. long file_length = ftell(fp);
  687. if (fseek(fp, 0, SEEK_SET)) {
  688. fclose(fp);
  689. return nullptr;
  690. }
  691. if (file_length <= 0) {
  692. fclose(fp);
  693. return nullptr;
  694. }
  695. // alloc model buffer
  696. void *data = malloc((unsigned int)file_length);
  697. if (!data) {
  698. fclose(fp);
  699. return nullptr;
  700. }
  701. // read file into memory
  702. uint32_t read_size = (uint32_t)fread(data, 1, (unsigned int)file_length, fp);
  703. // check if read success
  704. if ((long)read_size != file_length) {
  705. free(data);
  706. data = nullptr;
  707. fclose(fp);
  708. return nullptr;
  709. }
  710. // close model file
  711. fclose(fp);
  712. // create an MemBuffer
  713. MemBuffer* membuf = new MemBuffer();
  714. if (!membuf) {
  715. free(data);
  716. data = nullptr;
  717. return nullptr;
  718. }
  719. membuf->data = malloc((unsigned int)read_size);
  720. // set size && data
  721. membuf->size = (uint32_t)read_size;
  722. memcpy((char*)membuf->data, (char*)data, read_size);
  723. free(data);
  724. return membuf;
  725. }
  726. /// placeholder0 placeholder1
  727. /// | /\ /\ |
  728. /// | / \/ \ |
  729. /// | / /\ \ |
  730. /// | | / \ | |
  731. /// | add0 mul0 |
  732. /// | / /c | \ |
  733. /// mul1 --- / | add1
  734. /// \ | |
  735. /// \ ---- add2 |
  736. /// | |
  737. /// retval0 retval1
  738. void CreateGraphDef(domi::tensorflow::GraphDef &graph_def) {
  739. // 1. add node
  740. auto placeholder0 = graph_def.add_node();
  741. auto placeholder1 = graph_def.add_node();
  742. auto add0 = graph_def.add_node();
  743. auto add1 = graph_def.add_node();
  744. auto mul0 = graph_def.add_node();
  745. auto mul1 = graph_def.add_node();
  746. auto add2 = graph_def.add_node();
  747. auto retval0 = graph_def.add_node();
  748. auto retval1 = graph_def.add_node();
  749. auto softmax0 = graph_def.add_node();
  750. auto softmax1 = graph_def.add_node();
  751. // 2. set info
  752. placeholder0->set_name("placeholder0");
  753. placeholder0->set_op("PlaceHolder");
  754. placeholder1->set_name("placeholder1");
  755. placeholder1->set_op("PlaceHolder");
  756. add0->set_name("add0");
  757. add0->set_op("Add");
  758. add1->set_name("add1");
  759. add1->set_op("Add");
  760. add2->set_name("add2");
  761. add2->set_op("Add");
  762. mul0->set_name("mul0");
  763. mul0->set_op("Mul");
  764. mul1->set_name("mul1");
  765. mul1->set_op("Mul");
  766. retval0->set_name("retval0");
  767. retval0->set_op("_RetVal");
  768. retval1->set_name("retval1");
  769. retval1->set_op("_RetVal");
  770. retval0->set_name("retval0");
  771. retval0->set_op("_RetVal");
  772. retval1->set_name("retval1");
  773. retval1->set_op("_RetVal");
  774. softmax0->set_name("Softmax0");
  775. softmax0->set_op("Softmax");
  776. softmax1->set_name("Softmax1");
  777. softmax1->set_op("Softmax");
  778. // 3. add edges
  779. add0->add_input("placeholder0");
  780. add0->add_input("placeholder1");
  781. mul0->add_input("placeholder0");
  782. mul0->add_input("placeholder1");
  783. mul1->add_input("placeholder0");
  784. mul1->add_input("add0");
  785. mul1->add_input("^mul0");
  786. add1->add_input("mul0");
  787. add1->add_input("placeholder1");
  788. add2->add_input("mul1");
  789. add2->add_input("mul0");
  790. retval0->add_input("add2:0");
  791. retval1->add_input("add1:0");
  792. softmax0->add_input("add3:0");
  793. softmax0->add_input("add2:0");
  794. }
  795. TEST_F(STestTensorflowParser, tensorflow_parser_success) {
  796. RegisterCustomOp();
  797. std::string case_dir = __FILE__;
  798. ParserOperator unused("Add");
  799. case_dir = case_dir.substr(0, case_dir.find_last_of("/"));
  800. std::string model_file = case_dir + "/origin_models/tf_add.pb";
  801. std::map<ge::AscendString, ge::AscendString> parser_params;
  802. ge::Graph graph;
  803. auto ret = ge::aclgrphParseTensorFlow(model_file.c_str(), parser_params, graph);
  804. ASSERT_EQ(ret, SUCCESS);
  805. ge::ComputeGraphPtr compute_graph = ge::GraphUtils::GetComputeGraph(graph);
  806. auto output_nodes_info = compute_graph->GetGraphOutNodesInfo();
  807. ASSERT_EQ(output_nodes_info.size(), 1);
  808. EXPECT_EQ((output_nodes_info.at(0).first->GetName()), "add_test_1");
  809. EXPECT_EQ((output_nodes_info.at(0).second), 0);
  810. auto &net_out_name = ge::GetParserContext().net_out_nodes;
  811. ASSERT_EQ(net_out_name.size(), 1);
  812. EXPECT_EQ(net_out_name.at(0), "add_test_1:0");
  813. }
  814. TEST_F(STestTensorflowParser, tensorflow_model_Failed) {
  815. ge::Graph graph;
  816. std::string caseDir = __FILE__;
  817. std::size_t idx = caseDir.find_last_of("/");
  818. caseDir = caseDir.substr(0, idx);
  819. std::string modelFile = caseDir + "/origin_models/model.pb";
  820. auto status = ge::aclgrphParseTensorFlow(modelFile.c_str(), graph);
  821. EXPECT_EQ(status, ge::SUCCESS);
  822. modelFile = caseDir + "/origin_models/test_depth_wise_conv2d.pb";
  823. status = ge::aclgrphParseTensorFlow(modelFile.c_str(), graph);
  824. EXPECT_EQ(status, ge::GRAPH_FAILED);
  825. }
  826. TEST_F(STestTensorflowParser, tensorflow_model_not_exist) {
  827. ge::Graph graph;
  828. std::string caseDir = __FILE__;
  829. std::size_t idx = caseDir.find_last_of("/");
  830. caseDir = caseDir.substr(0, idx);
  831. // model file is not exist
  832. std::string modelFile = caseDir + "/origin_models/conv2d_explicit1_pad.pb";
  833. auto status = ge::aclgrphParseTensorFlow(modelFile.c_str(), graph);
  834. EXPECT_EQ(status, ge::GRAPH_FAILED);
  835. }
  836. TEST_F(STestTensorflowParser, parser_tensorflow_model) {
  837. std::string caseDir = __FILE__;
  838. std::size_t idx = caseDir.find_last_of("/");
  839. caseDir = caseDir.substr(0, idx);
  840. std::string modelFile = caseDir + "/origin_models/tf_add.pb";
  841. const char *model_file = modelFile.c_str();
  842. std::string op_name = "ge_ascend_irgraph";
  843. ge::Graph graph(op_name);
  844. std::map<ge::AscendString, ge::AscendString> parser_options = {
  845. {ge::AscendString(ge::ir_option::INPUT_FORMAT), ge::AscendString("NHWC")},
  846. };
  847. auto ret_graph = ge::aclgrphParseTensorFlow(model_file, parser_options, graph);
  848. EXPECT_EQ(ret_graph, ge::FAILED);
  849. // parser tensorflow model out_node_size is equal to index
  850. string graph_name;
  851. AclGrphParseUtil acl_graph_parse_util;
  852. std::map<AscendString, AscendString> out_nodes_with_node_and_index = {
  853. {AscendString(ge::ir_option::OUT_NODES), AscendString("Placeholder:0;Placeholder_1:1")}};
  854. ParerSTestsUtils::ClearParserInnerCtx();
  855. auto ret = acl_graph_parse_util.ParseParamsBeforeGraph(out_nodes_with_node_and_index, graph_name);
  856. ret_graph = ge::aclgrphParseTensorFlow(model_file, graph);
  857. EXPECT_EQ(ret_graph, domi::FAILED);
  858. // parser tensorflow model success
  859. modelFile = caseDir + "/origin_models/model.pb";
  860. model_file = modelFile.c_str();
  861. out_nodes_with_node_and_index = {{AscendString(ge::ir_option::OUT_NODES), AscendString("x:0;y:0")}};
  862. ParerSTestsUtils::ClearParserInnerCtx();
  863. ret = acl_graph_parse_util.ParseParamsBeforeGraph(out_nodes_with_node_and_index, graph_name);
  864. ret_graph = ge::aclgrphParseTensorFlow(model_file, graph);
  865. EXPECT_EQ(ret_graph, domi::SUCCESS);
  866. }
  867. TEST_F(STestTensorflowParser, tensorflow_parser_to_json)
  868. {
  869. TensorFlowModelParser modelParser;
  870. std::string caseDir = __FILE__;
  871. std::size_t idx = caseDir.find_last_of("/");
  872. caseDir = caseDir.substr(0, idx);
  873. std::string modelFile = caseDir + "/origin_models/tf_add.pb";
  874. std::string jsonFile = caseDir + "/origin_models/test.json";
  875. const char *model_file = modelFile.c_str();
  876. const char *json_file = jsonFile.c_str();
  877. Status ret = modelParser.ToJson(model_file, json_file);
  878. EXPECT_EQ(ret, SUCCESS);
  879. }
  880. TEST_F(STestTensorflowParser, tensorflow_parserfrommemory_failed)
  881. {
  882. TensorFlowModelParser modelParser;
  883. std::string caseDir = __FILE__;
  884. std::size_t idx = caseDir.find_last_of("/");
  885. caseDir = caseDir.substr(0, idx);
  886. std::string modelFile = caseDir + "/origin_models/tf_add.pb";
  887. const char *data = modelFile.c_str();
  888. uint32_t size = 1;
  889. ge::Graph graph;
  890. std::map<ge::AscendString, ge::AscendString> parser_params;
  891. Status ret = ge::aclgrphParseTensorFlow(modelFile.c_str(), parser_params, graph);
  892. ASSERT_EQ(ret, SUCCESS);
  893. modelFile = caseDir + "/origin_models/tf_add.pb";
  894. parser_params = {{AscendString(ge::ir_option::OUT_NODES), AscendString("Placeholder:0;Placeholder_1:0")}};
  895. ret = ge::aclgrphParseTensorFlow(modelFile.c_str(), parser_params, graph);
  896. ge::ComputeGraphPtr compute_graph = ge::GraphUtils::GetComputeGraph(graph);
  897. ret = modelParser.ParseFromMemory(data, size, compute_graph);
  898. EXPECT_EQ(ret, INTERNAL_ERROR);
  899. }
  900. TEST_F(STestTensorflowParser, modelparser_parsefrommemory_success)
  901. {
  902. std::string caseDir = __FILE__;
  903. std::size_t idx = caseDir.find_last_of("/");
  904. caseDir = caseDir.substr(0, idx);
  905. std::string modelFile = caseDir + "/origin_models/tf_add.pb";
  906. const char* tmp_tf_pb_model = modelFile.c_str();
  907. ge::Graph graph;
  908. std::map<ge::AscendString, ge::AscendString> parser_params;
  909. Status ret = ge::aclgrphParseTensorFlow(modelFile.c_str(), parser_params, graph);
  910. ASSERT_EQ(ret, SUCCESS);
  911. ge::ComputeGraphPtr compute_graph = ge::GraphUtils::GetComputeGraph(graph);
  912. TensorFlowModelParser modelParser;
  913. MemBuffer* memBuffer = MemBufferFromFile(tmp_tf_pb_model);
  914. PreChecker::Instance().HasError() == false;
  915. ret = modelParser.ParseFromMemory((char*)memBuffer->data, memBuffer->size, compute_graph);
  916. free(memBuffer->data);
  917. delete memBuffer;
  918. }
  919. TEST_F(STestTensorflowParser, weightsparser_parsefrommemory_success)
  920. {
  921. std::string caseDir = __FILE__;
  922. std::size_t idx = caseDir.find_last_of("/");
  923. caseDir = caseDir.substr(0, idx);
  924. std::string modelFile = caseDir + "/origin_models/tf_add.pb";
  925. const char* tmp_tf_pb_model = modelFile.c_str();
  926. ge::Graph graph;
  927. std::map<ge::AscendString, ge::AscendString> parser_params;
  928. Status ret = ge::aclgrphParseTensorFlow(modelFile.c_str(), parser_params, graph);
  929. ASSERT_EQ(ret, SUCCESS);
  930. ge::ComputeGraphPtr compute_graph = ge::GraphUtils::GetComputeGraph(graph);
  931. auto weights_parser = domi::WeightsParserFactory::Instance()->CreateWeightsParser(domi::TENSORFLOW);
  932. MemBuffer* memBuffer = MemBufferFromFile(tmp_tf_pb_model);
  933. ret = weights_parser->ParseFromMemory((char*)memBuffer->data, memBuffer->size, compute_graph);
  934. free(memBuffer->data);
  935. delete memBuffer;
  936. EXPECT_EQ(SUCCESS, ret);
  937. }
  938. std::string getGraphCallbackV2(string subgraph_name)
  939. {
  940. std::string caseDir = __FILE__;
  941. std::size_t idx = caseDir.find_last_of("/");
  942. caseDir = caseDir.substr(0, idx);
  943. subgraph_name = caseDir + "/origin_models/tf_add.pb";
  944. return subgraph_name;
  945. }
  946. TEST_F(STestTensorflowParser, parser_ParseProtoWithSubgraphV2)
  947. {
  948. std::string caseDir = __FILE__;
  949. std::size_t idx = caseDir.find_last_of("/");
  950. caseDir = caseDir.substr(0, idx);
  951. const std::string root_proto = caseDir + "/origin_models/tf_add.pb";
  952. ge::Graph graph;
  953. std::map<ge::AscendString, ge::AscendString> parser_params;
  954. Status ret = ge::aclgrphParseTensorFlow(root_proto.c_str(), parser_params, graph);
  955. ASSERT_EQ(ret, SUCCESS);
  956. ge::ComputeGraphPtr root_graph = ge::GraphUtils::GetComputeGraph(graph);
  957. domi::GetGraphCallbackV2 callback(&getGraphCallbackV2);
  958. TensorFlowModelParser parser;
  959. ret = parser.ParseProtoWithSubgraph(root_proto, callback, root_graph);
  960. }
  961. TEST_F(STestTensorflowParser, parser_ConvertToGeDataType)
  962. {
  963. // convert to ge type success
  964. const uint32_t type1 = domi::tensorflow::DataType::DT_FLOAT;
  965. TensorFlowModelParser parser;
  966. ge::DataType dataType = parser.ConvertToGeDataType(type1);
  967. ASSERT_EQ(dataType, ge::DataType::DT_FLOAT);
  968. const uint32_t type2 = 80; // invalid type
  969. dataType = parser.ConvertToGeDataType(type2);
  970. ASSERT_EQ(dataType, ge::DataType::DT_UNDEFINED);
  971. }
  972. TEST_F(STestTensorflowParser, tensorflow_ParserProto_failed)
  973. {
  974. std::string caseDir = __FILE__;
  975. std::size_t idx = caseDir.find_last_of("/");
  976. caseDir = caseDir.substr(0, idx);
  977. const std::string root_proto = caseDir + "/origin_models/avgpool3dgrad.pb.txt";
  978. domi::tensorflow::GraphDef graphDef;
  979. ge::Graph graph;
  980. std::map<ge::AscendString, ge::AscendString> parser_params;
  981. Status ret = ge::aclgrphParseTensorFlow(root_proto.c_str(), parser_params, graph);
  982. ASSERT_EQ(ret, SUCCESS);
  983. ge::ComputeGraphPtr root_graph = ge::GraphUtils::GetComputeGraph(graph);
  984. TensorFlowModelParser tensorflow_parser;
  985. ret = tensorflow_parser.ParseProto(reinterpret_cast<google::protobuf::Message *>(&graphDef), root_graph);
  986. EXPECT_EQ(PARAM_INVALID, ret);
  987. // proto解析失败
  988. bool protoRet = parser::ReadProtoFromText(root_proto.c_str(), &graphDef);
  989. ASSERT_EQ(protoRet, false);
  990. ret = tensorflow_parser.ParseProto(reinterpret_cast<google::protobuf::Message *>(&graphDef), root_graph);
  991. ASSERT_EQ(ret, PARAM_INVALID);
  992. std::string serialized_proto = "";
  993. ret = tensorflow_parser.ParseProto(serialized_proto, root_graph);
  994. ASSERT_EQ(ret, FAILED);
  995. }
  996. TEST_F(STestTensorflowParser, tensorflow_parserAllGraph_failed)
  997. {
  998. std::string caseDir = __FILE__;
  999. std::size_t idx = caseDir.find_last_of("/");
  1000. caseDir = caseDir.substr(0, idx);
  1001. const std::string root_proto = caseDir + "/origin_models/conv2d.pb";
  1002. domi::tensorflow::GraphDef graphDef;
  1003. CreateGraphDef(graphDef);
  1004. auto no_op = graphDef.add_node();
  1005. no_op->set_name("no_op");
  1006. no_op->set_op("NoOp");
  1007. no_op->add_input("placeholder0");
  1008. no_op->add_input("placeholder1");
  1009. ge::Graph graph;
  1010. std::map<ge::AscendString, ge::AscendString> parser_params;
  1011. Status ret = ge::aclgrphParseTensorFlow(root_proto.c_str(), parser_params, graph);
  1012. ASSERT_EQ(ret, SUCCESS);
  1013. ge::ComputeGraphPtr root_graph = ge::GraphUtils::GetComputeGraph(graph);
  1014. TensorFlowModelParser tensorflow_parser;
  1015. ret = tensorflow_parser.ParseAllGraph(reinterpret_cast<google::protobuf::Message *>(&graphDef), root_graph);
  1016. EXPECT_EQ(INTERNAL_ERROR, ret);
  1017. }
  1018. TEST_F(STestTensorflowParser, test_parse_acl_output_nodes)
  1019. {
  1020. AclGrphParseUtil acl_graph_parse_util;
  1021. string graph_name;
  1022. // case 1: Normal with 'node and index'
  1023. ParerSTestsUtils::ClearParserInnerCtx();
  1024. GetParserContext().type = domi::ONNX;
  1025. std::map<AscendString, AscendString> out_nodes_with_node_and_index = {
  1026. {AscendString(ge::ir_option::OUT_NODES), AscendString("Out1:0;Out2:1")}};
  1027. ParerSTestsUtils::ClearParserInnerCtx();
  1028. auto ret = acl_graph_parse_util.ParseParamsBeforeGraph(out_nodes_with_node_and_index, graph_name);
  1029. ASSERT_EQ(ret, SUCCESS);
  1030. EXPECT_EQ(ge::GetParserContext().user_out_nodes.size(), 2);
  1031. EXPECT_EQ(ge::GetParserContext().out_nodes_map.size(), 2);
  1032. EXPECT_EQ(ge::GetParserContext().user_out_tensors.size(), 0);
  1033. // case 2: Normal with 'tensor name'
  1034. ParerSTestsUtils::ClearParserInnerCtx();
  1035. GetParserContext().type = domi::ONNX;
  1036. std::map<AscendString, AscendString> out_nodes_with_tensor_name = {
  1037. {AscendString(ge::ir_option::OUT_NODES), AscendString("Out_tensor_1;Out_tensor_2")}};
  1038. ret = acl_graph_parse_util.ParseParamsBeforeGraph(out_nodes_with_tensor_name, graph_name);
  1039. ASSERT_EQ(ret, SUCCESS);
  1040. EXPECT_EQ(ge::GetParserContext().user_out_nodes.size(), 0);
  1041. EXPECT_EQ(ge::GetParserContext().out_nodes_map.size(), 0);
  1042. EXPECT_EQ(ge::GetParserContext().user_out_tensors.size(), 2);
  1043. // case 3: Failed with 'node and index' before 'tensor name'
  1044. ParerSTestsUtils::ClearParserInnerCtx();
  1045. GetParserContext().type = domi::ONNX;
  1046. std::map<AscendString, AscendString> out_nodes_mode_mixex_pre = {
  1047. {AscendString(ge::ir_option::OUT_NODES), AscendString("Out1:0;Out2:1;Out_tensor_1;Out_tensor_2")}};
  1048. ret = acl_graph_parse_util.ParseParamsBeforeGraph(out_nodes_mode_mixex_pre, graph_name);
  1049. ASSERT_EQ(ret, PARAM_INVALID);
  1050. EXPECT_EQ(ge::GetParserContext().user_out_nodes.size(), 2);
  1051. EXPECT_EQ(ge::GetParserContext().out_nodes_map.size(), 2);
  1052. EXPECT_EQ(ge::GetParserContext().user_out_tensors.size(), 0);
  1053. // case 4: Failed with 'node and index' inserted in 'tensor name'
  1054. ParerSTestsUtils::ClearParserInnerCtx();
  1055. GetParserContext().type = domi::ONNX;
  1056. std::map<AscendString, AscendString> out_nodes_mode_mixex_mid = {
  1057. {AscendString(ge::ir_option::OUT_NODES), AscendString("Out_tensor_1;Out1:0;Out2:1;Out_tensor_2")}};
  1058. ret = acl_graph_parse_util.ParseParamsBeforeGraph(out_nodes_mode_mixex_mid, graph_name);
  1059. ASSERT_EQ(ret, PARAM_INVALID);
  1060. EXPECT_EQ(ge::GetParserContext().user_out_nodes.size(), 0);
  1061. EXPECT_EQ(ge::GetParserContext().out_nodes_map.size(), 0);
  1062. EXPECT_EQ(ge::GetParserContext().user_out_tensors.size(), 1);
  1063. // case 5: Failed with 'node and index' after 'tensor name'
  1064. ParerSTestsUtils::ClearParserInnerCtx();
  1065. GetParserContext().type = domi::ONNX;
  1066. std::map<AscendString, AscendString> out_nodes_mode_mixex_post = {
  1067. {AscendString(ge::ir_option::OUT_NODES), AscendString("Out_tensor_1;Out_tensor_2;Out1:0;Out2:1")}};
  1068. ret = acl_graph_parse_util.ParseParamsBeforeGraph(out_nodes_mode_mixex_post, graph_name);
  1069. ASSERT_EQ(ret, PARAM_INVALID);
  1070. EXPECT_EQ(ge::GetParserContext().user_out_nodes.size(), 0);
  1071. EXPECT_EQ(ge::GetParserContext().out_nodes_map.size(), 0);
  1072. EXPECT_EQ(ge::GetParserContext().user_out_tensors.size(), 2);
  1073. }
  1074. TEST_F(STestTensorflowParser, parse_AutoMappingByOp) {
  1075. static const string KEY_STRING = "key_string";
  1076. static const string KEY_INT = "key_int";
  1077. static const string KEY_FLOAT = "key_float";
  1078. static const string KEY_BOOL = "key_bool";
  1079. static const string KEY_TYPE = "key_type";
  1080. static const string VALUE_STRING = "string";
  1081. static const int64_t VALUE_INT = 1;
  1082. static const float VALUE_FLOAT = 1.0;
  1083. static const bool VALUE_BOOL = true;
  1084. static const domi::tensorflow::DataType VALUE_TYPE = domi::tensorflow::DataType::DT_FLOAT;
  1085. static const string VALUE_NAME = "test_name";
  1086. ge::OpDescPtr op_desc = std::make_shared<ge::OpDesc>();
  1087. NodeDef node_def;
  1088. domi::tensorflow::AttrValue value;
  1089. ge::Operator op = ge::OpDescUtils::CreateOperatorFromOpDesc(op_desc);
  1090. node_def.set_name(VALUE_NAME);
  1091. value.set_s(VALUE_STRING);
  1092. TensorFlowUtil::AddNodeAttr(KEY_STRING, value, &node_def);
  1093. value.set_i(VALUE_INT);
  1094. TensorFlowUtil::AddNodeAttr(KEY_INT, value, &node_def);
  1095. value.set_f(VALUE_FLOAT);
  1096. TensorFlowUtil::AddNodeAttr(KEY_FLOAT, value, &node_def);
  1097. value.set_b(VALUE_BOOL);
  1098. TensorFlowUtil::AddNodeAttr(KEY_BOOL, value, &node_def);
  1099. value.set_type(VALUE_TYPE);
  1100. TensorFlowUtil::AddNodeAttr(KEY_TYPE, value, &node_def);
  1101. domi::Status status = domi::AutoMappingFn(reinterpret_cast<google::protobuf::Message *>(&node_def), op);
  1102. EXPECT_EQ(domi::SUCCESS, status);
  1103. EXPECT_EQ(VALUE_NAME, op_desc->GetName());
  1104. string value_string = "";
  1105. ge::AttrUtils::GetStr(op_desc, KEY_STRING, value_string);
  1106. EXPECT_EQ(VALUE_STRING, value_string);
  1107. int64_t value_int = 0;
  1108. ge::AttrUtils::GetInt(op_desc, KEY_INT, value_int);
  1109. EXPECT_EQ(VALUE_INT, value_int);
  1110. float value_float = 0.0;
  1111. ge::AttrUtils::GetFloat(op_desc, KEY_FLOAT, value_float);
  1112. EXPECT_EQ(VALUE_FLOAT, value_float);
  1113. bool value_bool = false;
  1114. ge::AttrUtils::GetBool(op_desc, KEY_BOOL, value_bool);
  1115. EXPECT_EQ(VALUE_BOOL, value_bool);
  1116. ge::DataType data_type = ge::DT_UNDEFINED;
  1117. ge::AttrUtils::GetDataType(op_desc, KEY_TYPE, data_type);
  1118. EXPECT_EQ(ge::DT_FLOAT, data_type);
  1119. // test AutoMappingByOpFn
  1120. ge::OpDescPtr op_desc_dest = std::make_shared<ge::OpDesc>();
  1121. ge::Operator op_dest = ge::OpDescUtils::CreateOperatorFromOpDesc(op_desc_dest);
  1122. status = domi::AutoMappingByOpFn(op, op_dest);
  1123. EXPECT_EQ(domi::SUCCESS, status);
  1124. EXPECT_EQ(VALUE_NAME, op_dest.GetName());
  1125. value_string = "";
  1126. ge::AttrUtils::GetStr(op_desc_dest, KEY_STRING, value_string);
  1127. EXPECT_EQ(VALUE_STRING, value_string);
  1128. value_int = 0;
  1129. ge::AttrUtils::GetInt(op_desc_dest, KEY_INT, value_int);
  1130. EXPECT_EQ(VALUE_INT, value_int);
  1131. value_float = 0.0;
  1132. ge::AttrUtils::GetFloat(op_desc_dest, KEY_FLOAT, value_float);
  1133. EXPECT_EQ(VALUE_FLOAT, value_float);
  1134. value_bool = false;
  1135. ge::AttrUtils::GetBool(op_desc_dest, KEY_BOOL, value_bool);
  1136. EXPECT_EQ(VALUE_BOOL, value_bool);
  1137. data_type = ge::DT_UNDEFINED;
  1138. ge::AttrUtils::GetDataType(op_desc_dest, KEY_TYPE, data_type);
  1139. EXPECT_EQ(ge::DT_FLOAT, data_type);
  1140. }
  1141. TEST_F(STestTensorflowParser, parse_ParseNodeDef)
  1142. {
  1143. NodeDef * node_def = new NodeDef();
  1144. node_def->set_name("test_name");
  1145. node_def->set_op("PlaceholderWithDefault");
  1146. bool isDatasetInit = true;
  1147. TensorFlowModelParser model_parser;
  1148. Status ret = model_parser.AdaptOpType(node_def, isDatasetInit);
  1149. EXPECT_EQ(domi::SUCCESS, ret);
  1150. node_def->set_op("Add");
  1151. ret = model_parser.AdaptOpType(node_def, isDatasetInit);
  1152. EXPECT_EQ(domi::SUCCESS, ret);
  1153. delete node_def;
  1154. }
  1155. TEST_F(STestTensorflowParser, parse_AddFmkNode)
  1156. {
  1157. TensorFlowModelParser modelParser;
  1158. std::string caseDir = __FILE__;
  1159. std::size_t idx = caseDir.find_last_of("/");
  1160. caseDir = caseDir.substr(0, idx);
  1161. std::string modelFile = caseDir + "/origin_models/tf_add.pb";
  1162. ge::Graph graph;
  1163. string graph_name;
  1164. AclGrphParseUtil acl_graph_parse_util;
  1165. std::map<ge::AscendString, ge::AscendString> parser_options = {{AscendString(ge::ir_option::OUT_NODES), AscendString("Placeholder:0;Placeholder_1:0")}};
  1166. ParerSTestsUtils::ClearParserInnerCtx();
  1167. Status ret = acl_graph_parse_util.ParseParamsBeforeGraph(parser_options, graph_name);
  1168. ret = aclgrphParseTensorFlow(modelFile.c_str(), parser_options, graph);
  1169. ASSERT_EQ(ret, SUCCESS);
  1170. ge::ComputeGraphPtr compute_graph = std::make_shared<ge::ComputeGraph>(GRAPH_DEFAULT_NAME);
  1171. tensorflow::GraphDef *graphDef = new (std::nothrow) tensorflow::GraphDef();
  1172. ScopePassManager pass_manager;
  1173. std::shared_ptr<ScopeGraph> scope_graph = pass_manager.BuildScopeGraph(graphDef);
  1174. std::string fusion_op_name = "fusion_op_name";
  1175. FusionScopesResult *fusion_rlt = new (std::nothrow) FusionScopesResult();
  1176. EXPECT_NE(fusion_rlt, nullptr);
  1177. fusion_rlt->Init();
  1178. GenFusionScopesResult(scope_graph, fusion_rlt, fusion_op_name);
  1179. GenOriginContext(&modelParser, fusion_op_name);
  1180. // origin inner node def
  1181. NodeDef* node_def = MallocNodeDef("scope_node_1", "Add");
  1182. EXPECT_NE(node_def, nullptr);
  1183. modelParser.fusion_op_nodedef_map_[fusion_op_name].push_back(node_def);
  1184. bool train_flag_backup = ge::GetParserContext().train_flag;
  1185. ge::GetParserContext().train_flag = true;
  1186. REGISTER_CUSTOM_OP("Identity")
  1187. .FrameworkType(domi::TENSORFLOW)
  1188. .OriginOpType("Identity")
  1189. .ParseParamsFn(ParseParams)
  1190. .ImplyType(ImplyType::TVM);
  1191. REGISTER_CUSTOM_OP("Constant")
  1192. .FrameworkType(domi::TENSORFLOW)
  1193. .OriginOpType("Const")
  1194. .ParseParamsFn(ParseParams)
  1195. .ImplyType(ImplyType::TVM);
  1196. register_tbe_op();
  1197. std::vector<std::string> node_name_list;
  1198. GenOriginNodeDef(&modelParser, node_name_list);
  1199. std::set<std::string> malloc_node_name_list(node_name_list.begin(), node_name_list.end());
  1200. node_name_list.push_back(fusion_op_name);
  1201. ret = modelParser.AddFmkNode(compute_graph, scope_graph, node_name_list, false);
  1202. EXPECT_EQ(ret, PARAM_INVALID);
  1203. EXPECT_EQ(modelParser.scope_inner_node_map_.size(), 0);
  1204. EXPECT_EQ(modelParser.nodedef_map_.size(), 5);
  1205. ret = modelParser.AddEdges(compute_graph);
  1206. EXPECT_EQ(ret, SUCCESS);
  1207. // release resource
  1208. delete graphDef;
  1209. delete node_def;
  1210. modelParser.DeleteFuisonNodeDef();
  1211. FreeNodeDefMap(&modelParser, malloc_node_name_list);
  1212. ge::GetParserContext().train_flag = train_flag_backup;
  1213. }
  1214. TEST_F(STestTensorflowParser, parse_AddScopeInnerNode)
  1215. {
  1216. TensorFlowModelParser modelParser;
  1217. std::string caseDir = __FILE__;
  1218. std::size_t idx = caseDir.find_last_of("/");
  1219. caseDir = caseDir.substr(0, idx);
  1220. std::string modelFile = caseDir + "/origin_models/tf_add.pb";
  1221. std::string op_name = "ge_ascend_irgraph";
  1222. ge::Graph graph(op_name);
  1223. ge::ComputeGraphPtr compute_graph = ge::GraphUtils::GetComputeGraph(graph);
  1224. std::map<ge::AscendString, ge::AscendString> parser_params = {
  1225. {AscendString(ge::ir_option::OUT_NODES), AscendString("Placeholder:0;Placeholder_1:0")}};
  1226. Status ret = ge::aclgrphParseTensorFlow(modelFile.c_str(), parser_params, graph);
  1227. EXPECT_EQ(ret, SUCCESS);
  1228. std::mutex graph_mutex;
  1229. tensorflow::NodeDef *node_def = initNodeDef();
  1230. node_def->set_name("FastrcnnPredictions");
  1231. node_def->set_op("FastrcnnPredictions");
  1232. // can't find in scope_inner_node_map
  1233. ret = modelParser.AddScopeInnerNode(&modelParser, compute_graph, &graph_mutex, node_def);
  1234. EXPECT_EQ(ret, PARAM_INVALID);
  1235. delete node_def;
  1236. }
  1237. TEST_F(STestTensorflowParser, dyncmic_rnn_scope_pass_plugin_test) {
  1238. ge::Graph graph;
  1239. std::cout << __FILE__ << std::endl;
  1240. std::string caseDir = __FILE__;
  1241. std::size_t idx = caseDir.find_last_of("/");
  1242. caseDir = caseDir.substr(0, idx);
  1243. std::string modelFile = caseDir + "/origin_models/tensor_array.pb";
  1244. std::map<ge::AscendString, ge::AscendString> params;
  1245. string key ="enable_scope_fusion_passes";
  1246. string value ="ScopeDynamicRNNPass";
  1247. params.insert(std::make_pair(ge::AscendString(key.c_str()), ge::AscendString(value.c_str())));
  1248. auto status = aclgrphParseTensorFlow(modelFile.c_str(), params, graph);
  1249. EXPECT_EQ(status, SUCCESS);
  1250. }
  1251. TEST_F(STestTensorflowParser, avgpool3dgrad_plugin_test_format_NDHWC) {
  1252. ge::Graph graph;
  1253. std::cout << __FILE__ << std::endl;
  1254. std::string caseDir = __FILE__;
  1255. std::size_t idx = caseDir.find_last_of("/");
  1256. caseDir = caseDir.substr(0, idx);
  1257. std::string modelFile = caseDir + "/origin_models/avgpool3dgrad_case_1.pb";
  1258. auto status = aclgrphParseTensorFlow(modelFile.c_str(), graph);
  1259. EXPECT_EQ(status, SUCCESS);
  1260. }
  1261. TEST_F(STestTensorflowParser, tensorflow_merge_test) {
  1262. ge::Graph graph;
  1263. std::cout << __FILE__ << std::endl;
  1264. std::string caseDir = __FILE__;
  1265. std::size_t idx = caseDir.find_last_of("/");
  1266. caseDir = caseDir.substr(0, idx);
  1267. std::string modelFile = caseDir + "/origin_models/merge.pb";
  1268. auto status = aclgrphParseTensorFlow(modelFile.c_str(), graph);
  1269. EXPECT_EQ(status, FAILED);
  1270. }
  1271. TEST_F(STestTensorflowParser, tensorflow_no_op_test) {
  1272. ge::Graph graph;
  1273. std::cout << __FILE__ << std::endl;
  1274. std::string caseDir = __FILE__;
  1275. std::size_t idx = caseDir.find_last_of("/");
  1276. caseDir = caseDir.substr(0, idx);
  1277. std::string modelFile = caseDir + "/origin_models/test_no_op.pb";
  1278. auto status = aclgrphParseTensorFlow(modelFile.c_str(), graph);
  1279. EXPECT_EQ(status, SUCCESS);
  1280. }
  1281. TEST_F(STestTensorflowParser, tensorflow_identity_test) {
  1282. ge::Graph graph;
  1283. std::cout << __FILE__ << std::endl;
  1284. std::string caseDir = __FILE__;
  1285. std::size_t idx = caseDir.find_last_of("/");
  1286. caseDir = caseDir.substr(0, idx);
  1287. std::string modelFile = caseDir + "/origin_models/test_identity.pb";
  1288. auto status = aclgrphParseTensorFlow(modelFile.c_str(), graph);
  1289. EXPECT_EQ(status, SUCCESS);
  1290. }
  1291. TEST_F(STestTensorflowParser, tensorflow_constant_test) {
  1292. ge::Graph graph;
  1293. std::cout << __FILE__ << std::endl;
  1294. std::string caseDir = __FILE__;
  1295. std::size_t idx = caseDir.find_last_of("/");
  1296. caseDir = caseDir.substr(0, idx);
  1297. std::string modelFile = caseDir + "/origin_models/test_constant.pb";
  1298. auto status = aclgrphParseTensorFlow(modelFile.c_str(), graph);
  1299. EXPECT_EQ(status, SUCCESS);
  1300. TensorFlowConstantParser constantParser;
  1301. ge::OpDescPtr op_dest = make_shared<ge::OpDesc>("constant", ge::parser::CONSTANT);
  1302. NodeDef* node_def = initNodeDef();
  1303. node_def->set_name("Constant");
  1304. auto params = constantParser.ParseParams(node_def, op_dest);
  1305. EXPECT_EQ(params, SUCCESS);
  1306. auto value = constantParser.ParseValue(node_def, op_dest);
  1307. EXPECT_EQ(value, SUCCESS);
  1308. ConstantOperator op;
  1309. auto type = constantParser.ParseDType(node_def, &op);
  1310. EXPECT_EQ(type, SUCCESS);
  1311. }
  1312. TEST_F(STestTensorflowParser, tensorflow_reshpae_test) {
  1313. ge::Graph graph;
  1314. std::cout << __FILE__ << std::endl;
  1315. std::string caseDir = __FILE__;
  1316. std::size_t idx = caseDir.find_last_of("/");
  1317. caseDir = caseDir.substr(0, idx);
  1318. std::string modelFile = caseDir + "/origin_models/test_reshape.pb";
  1319. auto status = aclgrphParseTensorFlow(modelFile.c_str(), graph);
  1320. EXPECT_EQ(status, SUCCESS);
  1321. TensorFlowReshapeParser parser;
  1322. NodeDef * nodeDef = new NodeDef();
  1323. ge::OpDescPtr opdef_ = make_shared<::ge::OpDesc>("","");
  1324. google::protobuf::Map<std::string, tensorflow::AttrValue > *attr_map = nodeDef->mutable_attr();
  1325. domi::tensorflow::AttrValue tshape_attr_value;
  1326. tshape_attr_value.set_type(domi::tensorflow::DT_INT32);
  1327. (*attr_map)[TENSORFLOW_ATTR_TSHAPE] = tshape_attr_value;
  1328. domi::tensorflow::AttrValue t_attr_value;
  1329. t_attr_value.set_type(domi::tensorflow::DT_FLOAT);
  1330. (*attr_map)[TENSORFLOW_ATTR_T] = t_attr_value;
  1331. Status ret = parser.ParseParams(nodeDef, opdef_);
  1332. EXPECT_EQ(domi::SUCCESS, ret);
  1333. delete nodeDef;
  1334. }
  1335. TEST_F(STestTensorflowParser, tensorflow_squeeze_test) {
  1336. ge::Graph graph;
  1337. std::cout << __FILE__ << std::endl;
  1338. std::string caseDir = __FILE__;
  1339. std::size_t idx = caseDir.find_last_of("/");
  1340. caseDir = caseDir.substr(0, idx);
  1341. std::string modelFile = caseDir + "/origin_models/test_sequeeze.pb";
  1342. auto status = aclgrphParseTensorFlow(modelFile.c_str(), graph);
  1343. EXPECT_EQ(status, SUCCESS);
  1344. TensorFlowSqueezeParser parser;
  1345. NodeDef *nodeDef = initNodeDef();
  1346. ge::OpDescPtr opDef = make_shared<::ge::OpDesc>("Squeeze","Squeeze");
  1347. Status ret = parser.ParseParams(nodeDef, opDef);
  1348. EXPECT_EQ(ret, SUCCESS);
  1349. NodeDef *nodeDef_dim = initNodeDef_dims();
  1350. ret = parser.ParseParams(nodeDef_dim, opDef);
  1351. EXPECT_EQ(SUCCESS, ret);
  1352. NodeDef *nodeDef_axis_dims = initNodeDef_axis_dims();
  1353. ret = parser.ParseParams(nodeDef_axis_dims, opDef);
  1354. EXPECT_EQ(GRAPH_PARAM_INVALID, ret);
  1355. static const string KEY_SHAPE_LIST = "key_shape_list";
  1356. static const string KEY_TENSOR_LIST = "key_tensor_list";
  1357. static const string KEY_DEFAULT = "key_default";
  1358. NodeDef *nodeDef2 = new NodeDef();
  1359. google::protobuf::Map<std::string, tensorflow::AttrValue> *node_attr_map = nodeDef2->mutable_attr();
  1360. domi::tensorflow::AttrValue dtype_attr_value ;
  1361. dtype_attr_value.set_type(domi::tensorflow::DT_FLOAT);
  1362. (*node_attr_map)[TENSORFLOW_ATTR_T] = dtype_attr_value;
  1363. //设置strides属性
  1364. tensorflow::AttrValue axis_attr_value;
  1365. tensorflow::AttrValue_ListValue *list = axis_attr_value.mutable_list();
  1366. list->add_i(1);
  1367. list->add_i(2);
  1368. (*node_attr_map)[ge::SQUEEZE_ATTR_AXIS] = axis_attr_value;
  1369. domi::tensorflow::AttrValue value;
  1370. domi::tensorflow::AttrValue df_attr_value;
  1371. df_attr_value.set_i((int64_t)ccTensorFormat_t::CC_TENSOR_NHWC);
  1372. domi::tensorflow::AttrValue pad_attr_value;
  1373. pad_attr_value.set_i((int64_t)tensorflow::DT_FLOAT);
  1374. domi::tensorflow::AttrValue shape;
  1375. shape.mutable_list()->add_i((int64)32);
  1376. shape.mutable_list()->add_i((int64)32);
  1377. shape.mutable_list()->add_i((int64)14);
  1378. static const string KEY_TYPE_LIST = "key_type_list";
  1379. const std::string ATTR_NAME_INPUT_TENSOR_DESC = "input_tensor_desc";
  1380. const std::string ATTR_NAME_OUTPUT_TENSOR_DESC = "output_tensor_desc";
  1381. static const domi::tensorflow::DataType VALUE_TYPE = domi::tensorflow::DataType::DT_FLOAT;
  1382. value.clear_value();
  1383. value.mutable_list()->add_type(VALUE_TYPE);
  1384. TensorFlowUtil::AddNodeAttr(KEY_TYPE_LIST, value, nodeDef2);
  1385. value.clear_value();
  1386. domi::tensorflow::NameAttrList name_attr_list;
  1387. name_attr_list.mutable_attr()->insert({"serialize_datatype", pad_attr_value});
  1388. name_attr_list.mutable_attr()->insert({"serialize_format", df_attr_value});
  1389. name_attr_list.mutable_attr()->insert({"serialize_shape", shape});
  1390. *(value.mutable_list()->add_func()) = name_attr_list;
  1391. nodeDef2->mutable_attr()->insert({ge::ATTR_NAME_INPUT_TENSOR_DESC, value});
  1392. nodeDef2->mutable_attr()->insert({ge::ATTR_NAME_OUTPUT_TENSOR_DESC, value});
  1393. ret = parser.ParseParams(nodeDef2, opDef);
  1394. EXPECT_EQ(domi::SUCCESS, ret);
  1395. GeTensorDesc ge_desc;
  1396. ge_desc.SetFormat(ge::FORMAT_C1HWNCoC0);
  1397. ge_desc.SetDataType(ge::DT_FLOAT);
  1398. ge_desc.SetShape(GeShape({1,1,1,1,1,1}));
  1399. ret = parser.ParseDesc(value, ge_desc);
  1400. EXPECT_EQ(ret, SUCCESS);
  1401. delete nodeDef2;
  1402. delete nodeDef_axis_dims;
  1403. delete nodeDef_dim;
  1404. delete nodeDef;
  1405. }
  1406. TEST_F(STestTensorflowParser, tensorflow_fill_test) {
  1407. ge::Graph graph;
  1408. std::cout << __FILE__ << std::endl;
  1409. std::string caseDir = __FILE__;
  1410. std::size_t idx = caseDir.find_last_of("/");
  1411. caseDir = caseDir.substr(0, idx);
  1412. std::string modelFile = caseDir + "/origin_models/test_fill.pb";
  1413. auto status = aclgrphParseTensorFlow(modelFile.c_str(), graph);
  1414. EXPECT_EQ(status, SUCCESS);
  1415. }
  1416. TEST_F(STestTensorflowParser, tensorflow_shape_n_test) {
  1417. ge::Graph graph;
  1418. std::cout << __FILE__ << std::endl;
  1419. std::string caseDir = __FILE__;
  1420. std::size_t idx = caseDir.find_last_of("/");
  1421. caseDir = caseDir.substr(0, idx);
  1422. std::string modelFile = caseDir + "/origin_models/test_shape_n.pb";
  1423. auto status = aclgrphParseTensorFlow(modelFile.c_str(), graph);
  1424. EXPECT_EQ(status, SUCCESS);
  1425. }
  1426. TEST_F(STestTensorflowParser, tensorflow_switch_test) {
  1427. ge::Graph graph;
  1428. std::cout << __FILE__ << std::endl;
  1429. std::string caseDir = __FILE__;
  1430. std::size_t idx = caseDir.find_last_of("/");
  1431. caseDir = caseDir.substr(0, idx);
  1432. std::string modelFile = caseDir + "/origin_models/test_switch.pb";
  1433. auto status = aclgrphParseTensorFlow(modelFile.c_str(), graph);
  1434. EXPECT_EQ(status, SUCCESS);
  1435. TensorFlowRefSwitchParser refSwitchParser;
  1436. ge::OpDescPtr op_dest = make_shared<ge::OpDesc>("constant", ge::parser::CONSTANT);
  1437. NodeDef* node_def = initNodeDef();
  1438. node_def->set_name("RefSwitch");
  1439. auto params = refSwitchParser.ParseParams(node_def, op_dest);
  1440. EXPECT_EQ(params, SUCCESS);
  1441. RefSwitchOperator op;
  1442. auto parseRet = refSwitchParser.ParseT(node_def, &op);
  1443. EXPECT_EQ(parseRet, SUCCESS);
  1444. }
  1445. TEST_F(STestTensorflowParser, tensorflow_enter_test) {
  1446. ge::Graph graph;
  1447. std::cout << __FILE__ << std::endl;
  1448. std::string caseDir = __FILE__;
  1449. std::size_t idx = caseDir.find_last_of("/");
  1450. caseDir = caseDir.substr(0, idx);
  1451. std::string modelFile = caseDir + "/origin_models/test_enter.pb";
  1452. auto status = aclgrphParseTensorFlow(modelFile.c_str(), graph);
  1453. EXPECT_EQ(status, SUCCESS);
  1454. TensorFlowEnterParser enterParser;
  1455. ge::OpDescPtr op_dest = make_shared<ge::OpDesc>("Enter", ge::parser::ENTER);
  1456. NodeDef* node_def = initNodeDef();
  1457. node_def->set_name("Enter");
  1458. Status ret = enterParser.ParseParams(node_def, op_dest);
  1459. EXPECT_EQ(ret, FAILED);
  1460. static const string KEY_SHAPE_LIST = "key_shape_list";
  1461. static const string KEY_TENSOR_LIST = "key_tensor_list";
  1462. static const string KEY_DEFAULT = "key_default";
  1463. google::protobuf::Map<std::string, tensorflow::AttrValue> *node_attr_map = node_def->mutable_attr();
  1464. domi::tensorflow::AttrValue dtype_attr_value;
  1465. dtype_attr_value.set_type(domi::tensorflow::DT_FLOAT);
  1466. (*node_attr_map)[TENSORFLOW_ATTR_T] = dtype_attr_value;
  1467. //设置strides属性
  1468. domi::tensorflow::AttrValue axis_attr_value;
  1469. ::tensorflow::AttrValue_ListValue* list = axis_attr_value.mutable_list();
  1470. list->add_i(1);
  1471. list->add_i(2);
  1472. (*node_attr_map)[ge::SQUEEZE_ATTR_AXIS] = axis_attr_value;
  1473. domi::tensorflow::AttrValue value;
  1474. domi::tensorflow::AttrValue df_attr_value;
  1475. df_attr_value.set_i((int64_t)ccTensorFormat_t::CC_TENSOR_NHWC);
  1476. domi::tensorflow::AttrValue pad_attr_value;
  1477. pad_attr_value.set_i((int64_t)tensorflow::DT_FLOAT);
  1478. domi::tensorflow::AttrValue shape;
  1479. shape.mutable_list()->add_i((int64)32);
  1480. shape.mutable_list()->add_i((int64)32);
  1481. shape.mutable_list()->add_i((int64)14);
  1482. static const string KEY_TYPE_LIST = "key_type_list";
  1483. const std::string ENTER_ATTR_FRAME_NAME = "frame_name";
  1484. const std::string ATTR_NAME_OUTPUT_TENSOR_DESC = "output_tensor_desc";
  1485. static const domi::tensorflow::DataType VALUE_TYPE = domi::tensorflow::DataType::DT_FLOAT;
  1486. value.clear_value();
  1487. value.mutable_list()->add_type(VALUE_TYPE);
  1488. TensorFlowUtil::AddNodeAttr(KEY_TYPE_LIST, value, node_def);
  1489. value.clear_value();
  1490. domi::tensorflow::NameAttrList name_attr_list;
  1491. name_attr_list.mutable_attr()->insert({"serialize_datatype", pad_attr_value});
  1492. name_attr_list.mutable_attr()->insert({"serialize_format", df_attr_value});
  1493. name_attr_list.mutable_attr()->insert({"serialize_shape", shape});
  1494. *(value.mutable_list()->add_func()) = name_attr_list;
  1495. node_def->mutable_attr()->insert({ge::ENTER_ATTR_FRAME_NAME, value});
  1496. node_def->mutable_attr()->insert({ge::ATTR_NAME_OUTPUT_TENSOR_DESC, value});
  1497. ret = enterParser.ParseParams(node_def, op_dest);
  1498. EXPECT_EQ(ret, FAILED);
  1499. }
  1500. TEST_F(STestTensorflowParser, tensorflow_VariableV2_test) {
  1501. ge::Graph graph;
  1502. std::string caseDir = __FILE__;
  1503. std::size_t idx = caseDir.find_last_of("/");
  1504. caseDir = caseDir.substr(0, idx);
  1505. std::string modelFile = caseDir + "/origin_models/test_VariableV2.pb";
  1506. auto status = aclgrphParseTensorFlow(modelFile.c_str(), graph);
  1507. EXPECT_EQ(status, SUCCESS);
  1508. }
  1509. TEST_F(STestTensorflowParser, tensorflow_fusion_op_parser_test)
  1510. {
  1511. TensorFlowFusionOpParser fusionOpParser;
  1512. ge::OpDescPtr op_dest = make_shared<ge::OpDesc>("FusionOp", ge::parser::CONSTANT);
  1513. int index = 0;
  1514. NodeDef* node_def = fusioninitNodeDef(index);
  1515. node_def->set_name("FusionOp");
  1516. auto ret = fusionOpParser.ParseParams(node_def, op_dest);
  1517. EXPECT_EQ(ret, SUCCESS);
  1518. int32_t param = 1;
  1519. ret = fusionOpParser.ParseParamFromConst(node_def, param);
  1520. EXPECT_EQ(ret, SUCCESS);
  1521. ret = fusionOpParser.ParseParamFromConst(node_def, param, index);
  1522. EXPECT_EQ(ret, SUCCESS);
  1523. float params = 0.0;
  1524. ret = fusionOpParser.ParseParamFromConst(node_def, params);
  1525. EXPECT_EQ(ret, SUCCESS);
  1526. index = 2;
  1527. node_def = fusioninitNodeDef(index);
  1528. ret = fusionOpParser.ParseParamFromConst(node_def, params, index);
  1529. EXPECT_EQ(ret, domi::PARAM_INVALID);
  1530. ret = fusionOpParser.ParseHalfFromConst(node_def, params, 0);
  1531. EXPECT_EQ(ret, SUCCESS);
  1532. ret = fusionOpParser.ParseHalfFromConst(node_def, params, 3);
  1533. EXPECT_EQ(ret, domi::PARAM_INVALID);
  1534. node_def = fusioninitNodeDef(0);
  1535. ret = fusionOpParser.ParseHalfFromConst(node_def, params, 3);
  1536. EXPECT_EQ(ret, domi::PARAM_INVALID);
  1537. static const float VALUE_FLOAT = 1.0;
  1538. ge::GeTensorPtr weight = nullptr;
  1539. ret = fusionOpParser.ParseWeightFromConst(node_def, weight);
  1540. EXPECT_EQ(ret, domi::SUCCESS);
  1541. EXPECT_NE(weight, nullptr);
  1542. ge::DataType ge_data_type = weight->GetTensorDesc().GetDataType();
  1543. EXPECT_EQ(ge_data_type, ge::DataType::DT_FLOAT);
  1544. const uint8_t* data_buff = weight->GetData().GetData();
  1545. size_t data_size = weight->GetData().size();
  1546. EXPECT_NE(data_buff, nullptr);
  1547. EXPECT_EQ(data_size, sizeof(float));
  1548. float value_float = *((float*)data_buff);
  1549. EXPECT_EQ(value_float, VALUE_FLOAT);
  1550. delete node_def;
  1551. }
  1552. TEST_F(STestTensorflowParser, tensorflow_auto_mapping_parser_adapter_test)
  1553. {
  1554. ge::OpDescPtr op_dest = nullptr;
  1555. Message *op_src = nullptr;
  1556. TensorFlowAutoMappingParserAdapter autoMappingParser;
  1557. NodeDef* node_def = initNodeDef();
  1558. Status ret = autoMappingParser.ParseParams(op_src, op_dest);
  1559. EXPECT_EQ(ret, PARAM_INVALID);
  1560. ret = autoMappingParser.ParseParams(node_def, op_dest);
  1561. EXPECT_EQ(ret, PARAM_INVALID);
  1562. op_dest = make_shared<ge::OpDesc>("AutoMapping", ge::parser::CONSTANT);
  1563. op_dest->SetType(ge::parser::EMPTY);
  1564. ret = autoMappingParser.ParseParams(node_def, op_dest);
  1565. EXPECT_EQ(ret, SUCCESS);
  1566. op_dest->SetType(ge::parser::IDENTITYN);
  1567. ret = autoMappingParser.ParseParams(node_def, op_dest);
  1568. EXPECT_EQ(ret, SUCCESS);
  1569. op_dest->SetType(ge::parser::SIZE);
  1570. ret = autoMappingParser.ParseParams(node_def, op_dest);
  1571. EXPECT_EQ(ret, SUCCESS);
  1572. op_dest->SetType(ge::parser::SHAPE);
  1573. ret = autoMappingParser.ParseParams(node_def, op_dest);
  1574. EXPECT_EQ(ret, SUCCESS);
  1575. }
  1576. TEST_F(STestTensorflowParser, tensorflow_fusion_custom_parser_adapter_test)
  1577. {
  1578. REGISTER_CUSTOM_OP("FusionCustom")
  1579. .FrameworkType(domi::TENSORFLOW)
  1580. .OriginOpType("FusionCustom")
  1581. .FusionParseParamsFn(FusionParserParams)
  1582. .ImplyType(ImplyType::TVM);
  1583. register_tbe_op();
  1584. auto graph = std::make_shared<ge::ComputeGraph>("FusionCustom");
  1585. auto op_desc = std::make_shared<ge::OpDesc>("FusionCustom", "FusionCustom");
  1586. auto node = graph->AddNode(op_desc);
  1587. NodeDef *node_def = new NodeDef();
  1588. std::vector<const NodeDef *> v_input_const1;
  1589. v_input_const1.push_back(node_def);
  1590. TensorFlowFusionCustomParserAdapter parser;
  1591. domi::Status status = parser.ParseParams(v_input_const1, node);
  1592. EXPECT_EQ(SUCCESS, status);
  1593. ge::Operator op_src("pool", "pooling");
  1594. std::vector<ge::Operator> v_input_const2;
  1595. v_input_const2.push_back(op_src);
  1596. Status ret = parser.ParseParams(v_input_const2, node);
  1597. EXPECT_EQ(FAILED, ret);
  1598. delete node_def;
  1599. }
  1600. TEST_F(STestTensorflowParser, tensorflow_custom_parser_adapter_test)
  1601. {
  1602. ge::Operator op_src("pool", "pooling");
  1603. ge::OpDescPtr op_dest = std::make_shared<ge::OpDesc>();
  1604. TensorFlowCustomParserAdapter parser;
  1605. Status ret = parser.ParseParams(op_src, op_dest);
  1606. EXPECT_EQ(ret, FAILED);
  1607. REGISTER_CUSTOM_OP("Variable")
  1608. .FrameworkType(domi::TENSORFLOW)
  1609. .OriginOpType("VariableV2")
  1610. .ParseParamsFn(ParseParams)
  1611. .ParseParamsByOperatorFn(ParseParamByOpFunc)
  1612. .ImplyType(ImplyType::CUSTOM);
  1613. register_tbe_op();
  1614. Operator opSrc(ge::parser::VARIABLE, "VariableV2");
  1615. ret = parser.ParseParams(opSrc, op_dest);
  1616. EXPECT_EQ(ret, SUCCESS);
  1617. }
  1618. TEST_F(STestTensorflowParser, tensorflow_graph_functiondef_FindAttrValue_test)
  1619. {
  1620. GraphToFunctionDef functionDef;
  1621. NodeDef *node_def = nullptr;
  1622. std::string attr_name = "Const";
  1623. tensorflow::AttrValue attr_value;
  1624. bool ret = functionDef.FindAttrValue(node_def, attr_name, attr_value);
  1625. EXPECT_EQ(ret, false);
  1626. node_def = initNodeDef();
  1627. attr_name = ge::ATTR_NAME_INPUT_TENSOR_DESC;
  1628. node_def->set_name("Const");
  1629. ret = functionDef.FindAttrValue(node_def, attr_name, attr_value);
  1630. EXPECT_EQ(ret, false);
  1631. }
  1632. TEST_F(STestTensorflowParser, tensorflow_graph_functiondef_BuildFunctionDef_test)
  1633. {
  1634. ge::ComputeGraphPtr subGraph = std::make_shared<ge::ComputeGraph>("default");
  1635. string inputNodeType = "DATA";
  1636. MakeDagGraph(subGraph, inputNodeType);
  1637. FunctionDefLibrary library;
  1638. tensorflow::NodeDef call_node_def;
  1639. call_node_def.set_op("fusionop");
  1640. call_node_def.set_name("fusionop");
  1641. vector<ge::InDataAnchorPtr> in_anchor;
  1642. vector<ge::OutDataAnchorPtr> out_anchor;
  1643. for (ge::NodePtr node : subGraph->GetAllNodes()) {
  1644. for (auto in : node->GetAllInDataAnchors()) {
  1645. if (in->GetPeerOutAnchor() != nullptr && in->GetPeerOutAnchor()->GetOwnerNode()->GetOpDesc()->GetType() == parser::DATA) {
  1646. in_anchor.push_back(in);
  1647. }
  1648. }
  1649. for (auto out : node->GetAllOutDataAnchors()) {
  1650. for (auto i : out->GetPeerInDataAnchors()) {
  1651. if (i->GetOwnerNode()->GetOpDesc()->GetType() == parser::NETOUTPUT) {
  1652. out_anchor.push_back(out);
  1653. }
  1654. }
  1655. }
  1656. }
  1657. Status ret = GraphToFunctionDef::BuildFunctionDef(subGraph,
  1658. "fusionop",
  1659. &library,
  1660. &call_node_def,
  1661. in_anchor,
  1662. out_anchor);
  1663. EXPECT_EQ(domi::INTERNAL_ERROR, ret);
  1664. }
  1665. TEST_F(STestTensorflowParser, tensorflow_CheckOpShapeDim_test)
  1666. {
  1667. NodeDef *node_def = initNodeDef();
  1668. std::set<int> dims;
  1669. dims.insert(1);
  1670. dims.insert(2);
  1671. bool valid = true;
  1672. TensorFlowModelParser parser;
  1673. Status ret = parser.CheckOpShapeDim(node_def, dims, valid);
  1674. EXPECT_EQ(ret, SUCCESS);
  1675. static const string KEY_SHAPE_LIST = "key_shape_list";
  1676. static const string KEY_TENSOR_LIST = "key_tensor_list";
  1677. static const string KEY_DEFAULT = "key_default";
  1678. google::protobuf::Map<std::string, tensorflow::AttrValue> *node_attr_map = node_def->mutable_attr();
  1679. domi::tensorflow::AttrValue dtype_attr_value;
  1680. dtype_attr_value.set_type(domi::tensorflow::DT_FLOAT);
  1681. (*node_attr_map)[TENSORFLOW_ATTR_T] = dtype_attr_value;
  1682. //设置strides属性
  1683. domi::tensorflow::AttrValue axis_attr_value;
  1684. ::tensorflow::AttrValue_ListValue* list = axis_attr_value.mutable_list();
  1685. list->add_i(1);
  1686. list->add_i(2);
  1687. (*node_attr_map)[ge::SQUEEZE_ATTR_AXIS] = axis_attr_value;
  1688. domi::tensorflow::AttrValue value;
  1689. domi::tensorflow::AttrValue df_attr_value;
  1690. df_attr_value.set_i((int64_t)ccTensorFormat_t::CC_TENSOR_NHWC);
  1691. domi::tensorflow::AttrValue pad_attr_value;
  1692. pad_attr_value.set_i((int64_t)tensorflow::DT_FLOAT);
  1693. domi::tensorflow::AttrValue shape;
  1694. shape.mutable_list()->add_i((int64)32);
  1695. shape.mutable_list()->add_i((int64)32);
  1696. shape.mutable_list()->add_i((int64)14);
  1697. static const string KEY_TYPE_LIST = "key_type_list";
  1698. const std::string ATTR_NAME_INPUT_TENSOR_DESC = "input_tensor_desc";
  1699. const std::string ATTR_NAME_OUTPUT_TENSOR_DESC = "output_tensor_desc";
  1700. static const domi::tensorflow::DataType VALUE_TYPE = domi::tensorflow::DataType::DT_FLOAT;
  1701. value.clear_value();
  1702. value.mutable_list()->add_type(VALUE_TYPE);
  1703. TensorFlowUtil::AddNodeAttr(KEY_TYPE_LIST, value, node_def);
  1704. value.clear_value();
  1705. domi::tensorflow::NameAttrList name_attr_list;
  1706. name_attr_list.mutable_attr()->insert({"serialize_datatype", pad_attr_value});
  1707. name_attr_list.mutable_attr()->insert({"serialize_format", df_attr_value});
  1708. name_attr_list.mutable_attr()->insert({"serialize_shape", shape});
  1709. *(value.mutable_list()->add_func()) = name_attr_list;
  1710. node_def->mutable_attr()->insert({ge::ATTR_NAME_INPUT_TENSOR_DESC, value});
  1711. node_def->mutable_attr()->insert({ge::ATTR_NAME_OUTPUT_TENSOR_DESC, value});
  1712. ret = parser.CheckOpShapeDim(node_def, dims, valid);
  1713. EXPECT_EQ(ret, SUCCESS);
  1714. }
  1715. TEST_F(STestTensorflowParser, tensorflow_Scope_pass_test)
  1716. {
  1717. ScopePassManager passmanager;
  1718. auto scope_graph = ge::parser::MakeShared<ge::ScopeGraph>();
  1719. if (scope_graph == nullptr) {
  1720. GELOGE(FAILED, "Scope graph make shared failed.");
  1721. return;
  1722. }
  1723. if (scope_graph->Init() != SUCCESS) {
  1724. GELOGE(FAILED, "Scope graph init failed.");
  1725. return;
  1726. }
  1727. ge::TensorFlowModelParser tf_model_parser;
  1728. std::vector<string> scope_passes_list = {"pass_1", "pass_2"};
  1729. tf_model_parser.RunScopeFusionPass(scope_passes_list, passmanager, scope_graph);
  1730. Status ret = tf_model_parser.RunScopeFusionPass(scope_passes_list, passmanager, scope_graph);
  1731. EXPECT_NE(ge::SUCCESS, ret);
  1732. }
  1733. TEST_F(STestTensorflowParser, tensorflow_variable_v2_parser_test)
  1734. {
  1735. TensorFlowCustomParserAdapter parser;
  1736. ge::OpDescPtr op_dest = std::make_shared<ge::OpDesc>();
  1737. NodeDef *node_def = initNodeDef();
  1738. TensorFlowModelParser modelParser;
  1739. std::shared_ptr<OpParserFactory> factory = OpParserFactory::Instance(domi::TENSORFLOW);
  1740. std::shared_ptr<OpParser> op_parser = factory->CreateOpParser("Variable");
  1741. shared_ptr<TensorFlowOpParser> tensorflow_op_parser = std::dynamic_pointer_cast<TensorFlowOpParser>(op_parser);
  1742. Status ret = tensorflow_op_parser->ParseParams(node_def, op_dest);
  1743. EXPECT_EQ(ret, PARAM_INVALID);
  1744. node_def->set_name("TemporaryVariable");
  1745. node_def->set_op("TemporaryVariable");
  1746. op_parser = factory->CreateOpParser("TemporaryVariable");
  1747. tensorflow_op_parser = std::dynamic_pointer_cast<TensorFlowOpParser>(op_parser);
  1748. ret = tensorflow_op_parser->ParseParams(node_def, op_dest);
  1749. EXPECT_EQ(ret, PARAM_INVALID);
  1750. NodeDef *nodeDef_temporaryVariable = initOpNodeDef_TemporaryVariable();
  1751. op_parser = factory->CreateOpParser("TemporaryVariable");
  1752. tensorflow_op_parser = std::dynamic_pointer_cast<TensorFlowOpParser>(op_parser);
  1753. ret = tensorflow_op_parser->ParseParams(nodeDef_temporaryVariable, op_dest);
  1754. EXPECT_EQ(ret, SUCCESS);
  1755. NodeDef *nodeDef_VariableV2 = initOpNodeDef_VariableV2();
  1756. op_parser = factory->CreateOpParser("Variable");
  1757. tensorflow_op_parser = std::dynamic_pointer_cast<TensorFlowOpParser>(op_parser);
  1758. ret = tensorflow_op_parser->ParseParams(nodeDef_VariableV2, op_dest);
  1759. EXPECT_EQ(ret, SUCCESS);
  1760. }
  1761. TEST_F(STestTensorflowParser, tensorflow_var_is_initialized_op_test)
  1762. {
  1763. TensorFlowCustomParserAdapter parser;
  1764. ge::OpDescPtr op_dest = std::make_shared<ge::OpDesc>();
  1765. NodeDef *node_def = initNodeDef();
  1766. TensorFlowModelParser modelParser;
  1767. std::shared_ptr<OpParserFactory> factory = OpParserFactory::Instance(domi::TENSORFLOW);
  1768. std::shared_ptr<OpParser> op_parser = factory->CreateOpParser("VarIsInitializedOp");
  1769. shared_ptr<TensorFlowOpParser> tensorflow_op_parser = std::dynamic_pointer_cast<TensorFlowOpParser>(op_parser);
  1770. Status ret = tensorflow_op_parser->ParseParams(node_def, op_dest);
  1771. EXPECT_EQ(ret, SUCCESS);
  1772. }
  1773. TEST_F(STestTensorflowParser, tensorflow_arg_parser_test)
  1774. {
  1775. TensorFlowCustomParserAdapter parser;
  1776. ge::OpDescPtr op_dest = std::make_shared<ge::OpDesc>();
  1777. NodeDef *node_def = initNodeDef();
  1778. TensorFlowModelParser modelParser;
  1779. std::shared_ptr<OpParserFactory> factory = OpParserFactory::Instance(domi::TENSORFLOW);
  1780. std::shared_ptr<OpParser> op_parser = factory->CreateOpParser("_Arg");
  1781. shared_ptr<TensorFlowOpParser> tensorflow_op_parser = std::dynamic_pointer_cast<TensorFlowOpParser>(op_parser);
  1782. Status ret = tensorflow_op_parser->ParseParams(node_def, op_dest);
  1783. EXPECT_EQ(ret, SUCCESS);
  1784. static const string KEY_SHAPE_LIST = "key_shape_list";
  1785. static const string KEY_TENSOR_LIST = "key_tensor_list";
  1786. static const string KEY_DEFAULT = "key_default";
  1787. google::protobuf::Map<std::string, tensorflow::AttrValue> *node_attr_map = node_def->mutable_attr();
  1788. domi::tensorflow::AttrValue dtype_attr_value;
  1789. dtype_attr_value.set_type(domi::tensorflow::DT_FLOAT);
  1790. (*node_attr_map)[TENSORFLOW_ATTR_T] = dtype_attr_value;
  1791. //设置strides属性
  1792. domi::tensorflow::AttrValue axis_attr_value;
  1793. ::tensorflow::AttrValue_ListValue* list = axis_attr_value.mutable_list();
  1794. list->add_i(1);
  1795. list->add_i(2);
  1796. (*node_attr_map)[ge::SQUEEZE_ATTR_AXIS] = axis_attr_value;
  1797. domi::tensorflow::AttrValue value;
  1798. domi::tensorflow::AttrValue df_attr_value;
  1799. df_attr_value.set_i((int64_t)ccTensorFormat_t::CC_TENSOR_NHWC);
  1800. domi::tensorflow::AttrValue pad_attr_value;
  1801. pad_attr_value.set_i((int64_t)tensorflow::DT_FLOAT);
  1802. domi::tensorflow::AttrValue shape;
  1803. shape.mutable_list()->add_i((int64)32);
  1804. shape.mutable_list()->add_i((int64)32);
  1805. shape.mutable_list()->add_i((int64)14);
  1806. static const string KEY_TYPE_LIST = "key_type_list";
  1807. const std::string ATTR_NAME_INPUT_TENSOR_DESC = "input_tensor_desc";
  1808. const std::string ATTR_NAME_OUTPUT_TENSOR_DESC = "output_tensor_desc";
  1809. static const domi::tensorflow::DataType VALUE_TYPE = domi::tensorflow::DataType::DT_FLOAT;
  1810. value.clear_value();
  1811. value.mutable_list()->add_type(VALUE_TYPE);
  1812. TensorFlowUtil::AddNodeAttr(KEY_TYPE_LIST, value, node_def);
  1813. value.clear_value();
  1814. domi::tensorflow::NameAttrList name_attr_list;
  1815. name_attr_list.mutable_attr()->insert({"serialize_datatype", pad_attr_value});
  1816. name_attr_list.mutable_attr()->insert({"serialize_format", df_attr_value});
  1817. name_attr_list.mutable_attr()->insert({"serialize_shape", shape});
  1818. *(value.mutable_list()->add_func()) = name_attr_list;
  1819. node_def->mutable_attr()->insert({ge::ATTR_NAME_INPUT_TENSOR_DESC, value});
  1820. node_def->mutable_attr()->insert({ge::ATTR_NAME_OUTPUT_TENSOR_DESC, value});
  1821. ret = tensorflow_op_parser->ParseParams(node_def, op_dest);
  1822. EXPECT_EQ(ret, SUCCESS);
  1823. }
  1824. TEST_F(STestTensorflowParser, tensorflow_frameworkop_parser_test1)
  1825. {
  1826. TensorFlowCustomParserAdapter parser;
  1827. ge::OpDescPtr op_dest = std::make_shared<ge::OpDesc>();
  1828. NodeDef *node_def = initNodeDef();
  1829. TensorFlowModelParser modelParser;
  1830. std::shared_ptr<OpParserFactory> factory = OpParserFactory::Instance(domi::TENSORFLOW);
  1831. std::shared_ptr<OpParser> op_parser = factory->CreateOpParser("FrameworkOp");
  1832. shared_ptr<TensorFlowOpParser> tensorflow_op_parser = std::dynamic_pointer_cast<TensorFlowOpParser>(op_parser);
  1833. Status ret = tensorflow_op_parser->ParseParams(node_def, op_dest);
  1834. EXPECT_EQ(ret, PARAM_INVALID);
  1835. ChangeDataType(node_def, tensorflow::DT_UINT16);
  1836. ret = tensorflow_op_parser->ParseParams(node_def, op_dest);
  1837. EXPECT_EQ(ret, PARAM_INVALID);
  1838. }
  1839. TEST_F(STestTensorflowParser, tensorflow_frameworkop_parser_test2)
  1840. {
  1841. TensorFlowCustomParserAdapter parser;
  1842. ge::OpDescPtr op_dest = std::make_shared<ge::OpDesc>();
  1843. NodeDef *node_def = initNodeDef();
  1844. node_def->set_name("FrameworkOp");
  1845. node_def->set_op("_Retval");
  1846. TensorFlowModelParser modelParser;
  1847. std::shared_ptr<OpParserFactory> factory = OpParserFactory::Instance(domi::TENSORFLOW);
  1848. std::shared_ptr<OpParser> op_parser = factory->CreateOpParser("FrameworkOp");
  1849. shared_ptr<TensorFlowOpParser> tensorflow_op_parser = std::dynamic_pointer_cast<TensorFlowOpParser>(op_parser);
  1850. static const string KEY_SHAPE_LIST = "key_shape_list";
  1851. static const string KEY_TENSOR_LIST = "key_tensor_list";
  1852. static const string KEY_DEFAULT = "key_default";
  1853. google::protobuf::Map<std::string, tensorflow::AttrValue> *node_attr_map = node_def->mutable_attr();
  1854. domi::tensorflow::AttrValue dtype_attr_value;
  1855. dtype_attr_value.set_type(domi::tensorflow::DT_FLOAT);
  1856. (*node_attr_map)[TENSORFLOW_ATTR_T] = dtype_attr_value;
  1857. //设置strides属性
  1858. domi::tensorflow::AttrValue axis_attr_value;
  1859. ::tensorflow::AttrValue_ListValue* list = axis_attr_value.mutable_list();
  1860. list->add_i(1);
  1861. list->add_i(2);
  1862. (*node_attr_map)[ge::SQUEEZE_ATTR_AXIS] = axis_attr_value;
  1863. domi::tensorflow::AttrValue value;
  1864. domi::tensorflow::AttrValue df_attr_value;
  1865. df_attr_value.set_i((int64_t)ccTensorFormat_t::CC_TENSOR_NHWC);
  1866. domi::tensorflow::AttrValue pad_attr_value;
  1867. pad_attr_value.set_i((int64_t)tensorflow::DT_FLOAT);
  1868. domi::tensorflow::AttrValue shape;
  1869. shape.mutable_list()->add_i((int64)32);
  1870. shape.mutable_list()->add_i((int64)32);
  1871. shape.mutable_list()->add_i((int64)14);
  1872. static const string KEY_TYPE_LIST = "key_type_list";
  1873. const std::string ATTR_NAME_INPUT_TENSOR_DESC = "ATTR_NAME_FRAMEWORK_OP_DEF";
  1874. const std::string ATTR_NAME_OUTPUT_TENSOR_DESC = "output_tensor_desc";
  1875. static const domi::tensorflow::DataType VALUE_TYPE = domi::tensorflow::DataType::DT_FLOAT;
  1876. value.clear_value();
  1877. value.mutable_list()->add_type(VALUE_TYPE);
  1878. TensorFlowUtil::AddNodeAttr(KEY_TYPE_LIST, value, node_def);
  1879. value.clear_value();
  1880. domi::tensorflow::NameAttrList name_attr_list;
  1881. name_attr_list.mutable_attr()->insert({"serialize_datatype", pad_attr_value});
  1882. name_attr_list.mutable_attr()->insert({"serialize_format", df_attr_value});
  1883. name_attr_list.mutable_attr()->insert({"serialize_shape", shape});
  1884. *(value.mutable_list()->add_func()) = name_attr_list;
  1885. node_def->mutable_attr()->insert({ge::ATTR_NAME_INPUT_TENSOR_DESC, value});
  1886. node_def->mutable_attr()->insert({ge::ATTR_NAME_OUTPUT_TENSOR_DESC, value});
  1887. Status ret = tensorflow_op_parser->ParseParams(node_def, op_dest);
  1888. EXPECT_EQ(ret, SUCCESS);
  1889. }
  1890. TEST_F(STestTensorflowParser, tensorflow_reshape_parser_test)
  1891. {
  1892. TensorFlowCustomParserAdapter parser;
  1893. ge::OpDescPtr op_dest = std::make_shared<ge::OpDesc>();
  1894. NodeDef *node_def = initNodeDef();
  1895. TensorFlowModelParser modelParser;
  1896. std::shared_ptr<OpParserFactory> factory = OpParserFactory::Instance(domi::TENSORFLOW);
  1897. std::shared_ptr<OpParser> op_parser = factory->CreateOpParser("Reshape");
  1898. shared_ptr<TensorFlowOpParser> tensorflow_op_parser = std::dynamic_pointer_cast<TensorFlowOpParser>(op_parser);
  1899. Status ret = tensorflow_op_parser->ParseParams(node_def, op_dest);
  1900. EXPECT_EQ(ret, SUCCESS);
  1901. NodeDef * nodeDef = new NodeDef();
  1902. nodeDef->set_op("Reshape");
  1903. google::protobuf::Map< ::std::string, ::tensorflow::AttrValue >* node_attr_map = nodeDef->mutable_attr();
  1904. domi::tensorflow::AttrValue attr_value;
  1905. attr_value.mutable_list()->add_i((int64)32);
  1906. attr_value.mutable_list()->add_i((int64)32);
  1907. attr_value.mutable_list()->add_i((int64)14);
  1908. domi::tensorflow::AttrValue df_attr_value2;
  1909. df_attr_value2.set_s(TENSORFLOWF_TENSOR_NHWC);
  1910. (*node_attr_map)[TENSORFLOW_ATTR_DATA_FORMAT] = df_attr_value2;
  1911. domi::tensorflow::AttrValue df_attr_value;
  1912. df_attr_value.set_i((int64_t)ccTensorFormat_t::CC_TENSOR_NHWC);
  1913. //设置padding属性
  1914. domi::tensorflow::AttrValue pad_attr_value2;
  1915. pad_attr_value2.set_s(TENSORFLOWF_OP_PADDING_SAME);
  1916. (*node_attr_map)[TENSORFLOW_ATTR_PADDING] = pad_attr_value2;
  1917. domi::tensorflow::AttrValue pad_attr_value;
  1918. pad_attr_value.set_i((int64_t)tensorflow::DT_FLOAT);
  1919. domi::tensorflow::NameAttrList name_attr_list;
  1920. name_attr_list.mutable_attr()->insert({"serialize_shape", attr_value});
  1921. name_attr_list.mutable_attr()->insert({"serialize_format", df_attr_value});
  1922. name_attr_list.mutable_attr()->insert({"serialize_datatype", pad_attr_value});
  1923. *(attr_value.mutable_list()->add_func()) = name_attr_list;
  1924. GeTensorDesc ge_desc;
  1925. ge_desc.SetFormat(ge::FORMAT_C1HWNCoC0);
  1926. ge_desc.SetDataType(ge::DT_FLOAT);
  1927. ge_desc.SetShape(GeShape({1,1,1,1,1,1}));
  1928. TensorFlowReshapeParser reshapeParser;
  1929. ret = reshapeParser.ParseDesc(attr_value, ge_desc);
  1930. EXPECT_EQ(ret, SUCCESS);
  1931. }
  1932. TEST_F(STestTensorflowParser, tensorflow_DefunToPartitionedCall_parser_test)
  1933. {
  1934. TensorFlowModelParser parser;
  1935. NodeDef *node_def = initNodeDef();
  1936. node_def->set_name("ShapeN");
  1937. ge::OpDescPtr op = make_shared<ge::OpDesc>("ShapeN", ge::parser::PARTITIONEDCALL);
  1938. Status ret = parser.DefunToPartitionedCall(node_def, op);
  1939. EXPECT_EQ(ret, FAILED);
  1940. static const string KEY_SHAPE_LIST = "key_shape_list";
  1941. static const string KEY_TENSOR_LIST = "key_tensor_list";
  1942. static const string KEY_DEFAULT = "key_default";
  1943. google::protobuf::Map<std::string, tensorflow::AttrValue> *node_attr_map = node_def->mutable_attr();
  1944. domi::tensorflow::AttrValue dtype_attr_value;
  1945. dtype_attr_value.set_type(domi::tensorflow::DT_FLOAT);
  1946. (*node_attr_map)[TENSORFLOW_ATTR_T] = dtype_attr_value;
  1947. //设置strides属性
  1948. domi::tensorflow::AttrValue axis_attr_value;
  1949. ::tensorflow::AttrValue_ListValue* list = axis_attr_value.mutable_list();
  1950. list->add_i(1);
  1951. list->add_i(2);
  1952. (*node_attr_map)[ge::SQUEEZE_ATTR_AXIS] = axis_attr_value;
  1953. domi::tensorflow::AttrValue value;
  1954. domi::tensorflow::AttrValue df_attr_value;
  1955. df_attr_value.set_i((int64_t)ccTensorFormat_t::CC_TENSOR_NHWC);
  1956. domi::tensorflow::AttrValue pad_attr_value;
  1957. pad_attr_value.set_i((int64_t)tensorflow::DT_FLOAT);
  1958. domi::tensorflow::AttrValue shape;
  1959. shape.mutable_list()->add_i((int64)32);
  1960. shape.mutable_list()->add_i((int64)32);
  1961. shape.mutable_list()->add_i((int64)14);
  1962. static const string KEY_TYPE_LIST = "key_type_list";
  1963. static const domi::tensorflow::DataType VALUE_TYPE = domi::tensorflow::DataType::DT_FLOAT;
  1964. value.clear_value();
  1965. value.mutable_list()->add_type(VALUE_TYPE);
  1966. TensorFlowUtil::AddNodeAttr(KEY_TYPE_LIST, value, node_def);
  1967. value.clear_value();
  1968. domi::tensorflow::NameAttrList name_attr_list;
  1969. name_attr_list.mutable_attr()->insert({"serialize_datatype", pad_attr_value});
  1970. name_attr_list.mutable_attr()->insert({"serialize_format", df_attr_value});
  1971. name_attr_list.mutable_attr()->insert({"serialize_shape", shape});
  1972. *(value.mutable_list()->add_func()) = name_attr_list;
  1973. node_def->mutable_attr()->insert({"_disable_call_shape_inference", value});
  1974. node_def->mutable_attr()->insert({"_disable_call_shape_inference", value});
  1975. std::string fusion_op_name = "pre_node_a";
  1976. GenOriginContext(&parser, fusion_op_name);
  1977. node_def->set_name("pre_node_a");
  1978. ret = parser.DefunToPartitionedCall(node_def, op);
  1979. EXPECT_EQ(ret, SUCCESS);
  1980. }
  1981. TEST_F(STestTensorflowParser, tensorflow_TransNodeToOpDesc_parser_test)
  1982. {
  1983. TensorFlowModelParser parser;
  1984. NodeDef *node_def = initNodeDef();
  1985. node_def->set_name("ge::parser::DATA");
  1986. std::string op_type = "ge::parser::DATA";
  1987. ge::OpDescPtr op = make_shared<ge::OpDesc>("constant", ge::parser::CONSTANT);
  1988. Status ret = parser.TransNodeToOpDesc(node_def, op, op_type);
  1989. EXPECT_EQ(ret, FAILED);
  1990. }
  1991. domi::Status fusion_parse_param_by_op(const std::vector<ge::Operator> &op_src, ge::Operator &op) {
  1992. return domi::SUCCESS;
  1993. }
  1994. TEST_F(STestTensorflowParser, Fusion_node_parse_params_success) {
  1995. ge::ComputeGraphPtr compute_graph = std::make_shared<ge::ComputeGraph>(GRAPH_DEFAULT_NAME);
  1996. ModelParserFactory* factory = ModelParserFactory::Instance();
  1997. shared_ptr<ModelParser> model_parser= factory->CreateModelParser(domi::TENSORFLOW);
  1998. ASSERT_TRUE(NULL != model_parser);
  1999. TensorFlowModelParser tensorflow_parser;
  2000. domi::tensorflow::NodeDef node_def;
  2001. node_def.set_name("data");
  2002. node_def.set_op("FusionCustom");
  2003. FusionParseParamByOpFunc function = fusion_parse_param_by_op;
  2004. shared_ptr<ge::OpParserFactory> op_parser = ge::OpParserFactory::Instance(domi::TENSORFLOW);
  2005. shared_ptr<OpParser> fusion_op_parser = op_parser->CreateFusionOpParser("FusionCustom");
  2006. ge::ComputeGraphPtr graph = std::make_shared<ge::ComputeGraph>(GRAPH_DEFAULT_NAME);
  2007. ge::OpDescPtr op1 = std::make_shared<ge::OpDesc>("data", "FusionCustom");
  2008. ge::NodePtr node1 = std::make_shared<ge::Node>(op1, graph);
  2009. vector<const NodeDef *> node_defs;
  2010. node_defs.push_back(&node_def);
  2011. tensorflow_parser.fusion_op_nodedef_map_["data"] = node_defs;
  2012. Status ret = tensorflow_parser.FusionNodeParseParams(fusion_op_parser, &node_def, node1);
  2013. EXPECT_EQ(domi::SUCCESS, ret);
  2014. }
  2015. TEST_F(STestTensorflowParser, Tensorflow_recordFusionResult_parser_test)
  2016. {
  2017. auto scope_graph = ge::parser::MakeShared<ge::ScopeGraph>();
  2018. if (scope_graph == nullptr) {
  2019. GELOGE(FAILED, "Scope graph make shared failed.");
  2020. return;
  2021. }
  2022. if (scope_graph->Init() != SUCCESS) {
  2023. GELOGE(FAILED, "Scope graph init failed.");
  2024. return;
  2025. }
  2026. domi::tensorflow::NodeDef node_def;
  2027. node_def.set_name("OP");
  2028. FusionScopesResult *fusion_scope_rlt = new (std::nothrow) FusionScopesResult();
  2029. if (fusion_scope_rlt == nullptr) {
  2030. GELOGE(FAILED, "FusionScopesResult make shared failed.");
  2031. return;
  2032. }
  2033. fusion_scope_rlt->Init();
  2034. fusion_scope_rlt->SetName("OP");
  2035. auto &impl_scope_graph = scope_graph->impl_;
  2036. std::string scope_name = fusion_scope_rlt->Name();
  2037. impl_scope_graph->fusion_results_.insert(std::make_pair(scope_name, fusion_scope_rlt));
  2038. std::vector<ge::OperatorPtr> nodes;
  2039. ge::OperatorPtr op = ge::parser::MakeShared<ge::Operator>("op_name", "op_type");
  2040. if (op == nullptr) {
  2041. GELOGE(FAILED, "Operator make shared failed.");
  2042. return;
  2043. }
  2044. nodes.push_back(op);
  2045. fusion_scope_rlt->impl_->AddNodes(nodes);
  2046. ge::OpDescPtr opDesc = std::make_shared<ge::OpDesc>();
  2047. ge::TensorFlowModelParser tf_model_parser;
  2048. Status ret = tf_model_parser.RecordFusionResult(scope_graph, &node_def, opDesc);
  2049. EXPECT_EQ(SUCCESS, ret);
  2050. }
  2051. TEST_F(STestTensorflowParser, Tensorflow_UpdateFusionOpContext_test)
  2052. {
  2053. ModelParserFactory* factory = ModelParserFactory::Instance();
  2054. shared_ptr<domi::ModelParser> model_parser = factory->CreateModelParser(domi::TENSORFLOW);
  2055. TensorFlowModelParser tensorflow_parser;
  2056. ScopeFusionOpInfo info;
  2057. ge::OpNodeContext normal_op_node_context;
  2058. ge::OpNodeContext fusion_op_node_context;
  2059. /* 1.预置条件 */
  2060. tensorflow::GraphDef *graph = new tensorflow::GraphDef();
  2061. ScopePassManager passmanager;
  2062. shared_ptr<ScopeGraph> scope_graph = passmanager.BuildScopeGraph(graph);
  2063. NodeDef * node1 = graph->add_node();
  2064. node1->set_name("conv_conv5/BatchNorm/batchnorm/add");
  2065. node1->set_op("Add");
  2066. node1->add_input("conv_conv5/BatchNorm/moving_variance");
  2067. node1->add_input("conv_conv5/BatchNorm/batchnorm/add/y");
  2068. NodeDef * node2 = graph->add_node();
  2069. node2->set_name("conv_conv5/BatchNorm/moving_variance");
  2070. node2->set_op("Const");
  2071. NodeDef * node3 = graph->add_node();
  2072. node3->set_name("conv_conv5/BatchNorm/batchnorm/add/y");
  2073. node3->set_op("Const");
  2074. info.fusion_node_name = "conv_conv5/BatchNorm/batchnorm";
  2075. info.fusion_op_type = ge::parser::FUSIONBATCHNORM;
  2076. info.node_name = "conv_conv5/BatchNorm/batchnorm/add";
  2077. info.description = "";
  2078. info.scope_pass = false;
  2079. EXPECT_EQ(scope_graph->impl_->GetFusionScopesResults(nullptr), nullptr);
  2080. EXPECT_EQ(scope_graph->impl_->GetFusionScopesResults(node1), nullptr);
  2081. Status ret = tensorflow_parser.UpdateFusionOpContext(scope_graph, info, fusion_op_node_context, normal_op_node_context);
  2082. EXPECT_EQ(ret, domi::SUCCESS);
  2083. delete graph;
  2084. }
  2085. TEST_F(STestTensorflowParser, Tensorflow_GetInOutPutIndex_scope_pass)
  2086. {
  2087. ModelParserFactory* factory = ModelParserFactory::Instance();
  2088. shared_ptr<domi::ModelParser> model_parser = factory->CreateModelParser(domi::TENSORFLOW);
  2089. TensorFlowModelParser tensorflow_parser;
  2090. tensorflow::GraphDef *graph = new tensorflow::GraphDef();
  2091. ScopePassManager passmanager;
  2092. shared_ptr<ScopeGraph> scope_graph = passmanager.BuildScopeGraph(graph);
  2093. FusionScopesResult* fusion_rlt = new FusionScopesResult();
  2094. fusion_rlt->Init();
  2095. fusion_rlt->impl_->inputs_.insert(std::make_pair<string, vector<int32_t>>("fw/fw/ToInt32" ,{0}));
  2096. fusion_rlt->impl_->inputs_.insert(std::make_pair<string, vector<int32_t>>("bw/bw/ToInt32" ,{0}));
  2097. fusion_rlt->impl_->inputs_.insert(std::make_pair<string, vector<int32_t>>("bw/ReverseSequence" ,{0, 1}));
  2098. fusion_rlt->impl_->inputs_.insert(std::make_pair<string, vector<int32_t>>("bw/ReverseSequence" ,{1}));
  2099. fusion_rlt->impl_->outputs_.insert(std::make_pair<string, vector<int32_t>>("concat" ,{0}));
  2100. fusion_rlt->impl_->outputs_.insert(std::make_pair<string, vector<int32_t>>("fw/fw/while/Exit_3" ,{1}));
  2101. fusion_rlt->impl_->outputs_.insert(std::make_pair<string, vector<int32_t>>("fw/fw/while/Exit_4" ,{2}));
  2102. fusion_rlt->impl_->outputs_.insert(std::make_pair<string, vector<int32_t>>("bw/bw/while/Exit_3" ,{3}));
  2103. fusion_rlt->impl_->outputs_.insert(std::make_pair<string, vector<int32_t>>("bw/bw/while/Exit_4" ,{4}));
  2104. fusion_rlt->SetType("dynamic_rnn");
  2105. fusion_rlt->SetName("dynamic_rnn_node1");
  2106. scope_graph->impl_->AddFusionScopesResult(fusion_rlt);
  2107. ScopeFusionOpInfo info1;
  2108. info1.node_name = "fw/fw/ToInt32";
  2109. info1.fusion_node_name = "dynamic_rnn_node1";
  2110. info1.fusion_op_type = "dynamic_rnn";
  2111. info1.description = "";
  2112. info1.scope_pass = true;
  2113. bool ignore = false;
  2114. ignore = tensorflow_parser.FusionOpChildIgnore(scope_graph, info1);
  2115. EXPECT_EQ(true, !ignore);
  2116. ScopeFusionOpInfo info2;
  2117. info2.node_name = "fw/fw/others";
  2118. info2.fusion_node_name = "dynamic_rnn_node1";
  2119. info2.fusion_op_type = "dynamic_rnn";
  2120. info2.description = "";
  2121. info2.scope_pass = true;
  2122. ignore = tensorflow_parser.FusionOpChildIgnore(scope_graph, info2);
  2123. EXPECT_EQ(true, ignore);
  2124. ScopeFusionOpInfo input_node_info;
  2125. input_node_info.node_name = "fw/fw/ToInt32";
  2126. input_node_info.fusion_node_name = "dynamic_rnn_node1";
  2127. input_node_info.fusion_op_type = "dynamic_rnn";
  2128. input_node_info.description = "";
  2129. input_node_info.scope_pass = true;
  2130. ScopeFusionOpInfo output_node_info;
  2131. output_node_info.node_name = "fw/fw/while/Exit_3";
  2132. output_node_info.fusion_node_name = "dynamic_rnn_node1";
  2133. output_node_info.fusion_op_type = "dynamic_rnn";
  2134. output_node_info.description = "";
  2135. output_node_info.scope_pass = true;
  2136. int32_t old_index = 0, new_index = -1;
  2137. Status ret = tensorflow_parser.GetInPutIndex(scope_graph, input_node_info, old_index, new_index);
  2138. EXPECT_EQ(domi::SUCCESS, ret);
  2139. EXPECT_EQ(true, (new_index == 0));
  2140. ret = tensorflow_parser.GetOutPutIndex(scope_graph, output_node_info, old_index, new_index);
  2141. EXPECT_EQ(domi::SUCCESS, ret);
  2142. EXPECT_EQ(true, (new_index == 1));
  2143. delete graph;
  2144. }
  2145. TEST_F(STestTensorflowParser, Tensorflow_AddFusionNodeDef_add_fusion_op_succ)
  2146. {
  2147. ModelParserFactory* factory = ModelParserFactory::Instance();
  2148. shared_ptr<domi::ModelParser> model_parser = factory->CreateModelParser(domi::TENSORFLOW);
  2149. TensorFlowModelParser tensorflow_parser;
  2150. string fusion_op_name = "dropout";
  2151. string fusion_op_type = "Dropout";
  2152. string description = "test/dropout";
  2153. tensorflow_parser.fusion_op_type_map_[fusion_op_name].push_back(fusion_op_type);
  2154. tensorflow_parser.fusion_op_type_map_[fusion_op_name].push_back(description);
  2155. // op_node_context for fusion op
  2156. ge::OpNodeContext op_node_context;
  2157. op_node_context.input_map["pre_node_a"].push_back({0, 0});
  2158. op_node_context.input_map["pre_node_b"].push_back({0, 1});
  2159. tensorflow_parser.op_node_context_map_[fusion_op_name] = op_node_context;
  2160. // origin inner node def
  2161. NodeDef* node_def = new (std::nothrow) NodeDef();
  2162. node_def->set_name("scope_node_1");
  2163. node_def->set_op("Add");
  2164. tensorflow_parser.fusion_op_nodedef_map_[fusion_op_name].push_back(node_def);
  2165. ScopePassManager pass_manager;
  2166. tensorflow::GraphDef *graph = new (std::nothrow) tensorflow::GraphDef();
  2167. shared_ptr<ScopeGraph> scope_graph = pass_manager.BuildScopeGraph(graph);
  2168. vector<string> node_name_list = {fusion_op_name};
  2169. Status ret = tensorflow_parser.AddFusionNodeDef(scope_graph, node_name_list);
  2170. EXPECT_EQ(ret, SUCCESS);
  2171. EXPECT_EQ(tensorflow_parser.nodedef_map_.size(), 1);
  2172. auto fusion_node_def = tensorflow_parser.nodedef_map_[fusion_op_name];
  2173. EXPECT_NE(fusion_node_def, nullptr);
  2174. EXPECT_EQ(fusion_node_def->op(), fusion_op_type);
  2175. delete node_def;
  2176. delete graph;
  2177. tensorflow_parser.DeleteFuisonNodeDef();
  2178. }
  2179. TEST_F(STestTensorflowParser, remain_dpop_node)
  2180. {
  2181. ge::ComputeGraphPtr graph = std::make_shared<ge::ComputeGraph>(GRAPH_DEFAULT_NAME);
  2182. ge::OpDescPtr op = std::make_shared<ge::OpDesc>("dpop_123", "FrameworkOp");
  2183. ge::NodePtr node = std::make_shared<ge::Node>(op, graph);
  2184. graph->AddNode(node);
  2185. ModelParserFactory* factory = ModelParserFactory::Instance();
  2186. shared_ptr<domi::ModelParser> model_parser= factory->CreateModelParser(domi::TENSORFLOW);
  2187. ASSERT_TRUE(NULL != model_parser);
  2188. TensorFlowModelParser tensorflow_parser;
  2189. Status ret = tensorflow_parser.RemoveIsolateNode(graph);
  2190. EXPECT_EQ(domi::SUCCESS, ret);
  2191. }
  2192. TEST_F(STestTensorflowParser, tensorflow_UpdateEdgesControlInfo_test)
  2193. {
  2194. TensorFlowModelParser model_parser;
  2195. ge::ScopeFusionOpInfo info;
  2196. info.fusion_node_name = "conv_conv5/BatchNorm/batchnorm";
  2197. info.fusion_op_type = ge::parser::FUSIONBATCHNORM;
  2198. info.node_name = "conv_conv5/BatchNorm/batchnorm/add";
  2199. info.description = "";
  2200. info.scope_pass = false;
  2201. model_parser.UpdateEdgesControlInfo(info);
  2202. }
  2203. TEST_F(STestTensorflowParser, tensorflow_OptimizeIdentityByOutput_test)
  2204. {
  2205. TensorFlowModelParser model_parser;
  2206. NodeDef *node_def = new NodeDef();
  2207. node_def->set_name("Placeholder");
  2208. node_def->set_op("Placeholder_0");
  2209. std::map<string, NodeDef *> nodedef_map;
  2210. nodedef_map.emplace("Placeholder", node_def);
  2211. std::string curr_node_name = "Placeholder";
  2212. bool clear_input_flag = true;
  2213. Status ret = model_parser.OptimizeIdentityByOutput(nodedef_map, curr_node_name, clear_input_flag);
  2214. EXPECT_EQ(ret, INTERNAL_ERROR);
  2215. GraphDef graph;
  2216. curr_node_name = "pre_node_a";
  2217. nodedef_map.emplace("pre_node_a", node_def);
  2218. node_def->set_op("pre_node_a");
  2219. GenOriginContext(&model_parser, curr_node_name);
  2220. ret = model_parser.OptimizeIdentityByOutput(nodedef_map, curr_node_name, clear_input_flag);
  2221. EXPECT_EQ(ret, SUCCESS);
  2222. delete node_def;
  2223. }
  2224. TEST_F(STestTensorflowParser, tensorflow_OptimizeSnapShot_test)
  2225. {
  2226. TensorFlowModelParser model_parser;
  2227. tensorflow::NodeDef *curr_mode_def = initNodeDef();
  2228. std::map<string, NodeDef *> nodedef_map;
  2229. nodedef_map.emplace("pre_node_a", curr_mode_def);
  2230. std::pair<string, int> input_data;
  2231. std::vector<string> control_list;
  2232. std::string curr_node_name = "pre_node_a";
  2233. GenOriginContext(&model_parser, curr_node_name);
  2234. Status ret = model_parser.OptimizeSnapShot(curr_mode_def, nodedef_map, input_data, control_list);
  2235. EXPECT_EQ(ret, INTERNAL_ERROR);
  2236. curr_mode_def->set_name("pre_node_a");
  2237. GenOriginContext(&model_parser, curr_node_name);
  2238. ret = model_parser.OptimizeSnapShot(curr_mode_def, nodedef_map, input_data, control_list);
  2239. EXPECT_EQ(ret, SUCCESS);
  2240. }
  2241. TEST_F(STestTensorflowParser, tensorflow_GraphDefOptimizeSnapShot_test)
  2242. {
  2243. TensorFlowModelParser model_parser;
  2244. tensorflow::GraphDef graph_def;
  2245. tensorflow::NodeDef *curr_mode_def = initNodeDef();
  2246. std::map<string, NodeDef *> nodedef_map;
  2247. nodedef_map.emplace("pre_node_a", curr_mode_def);
  2248. std::vector<NodeDef *> nodedef_to_optimize;
  2249. nodedef_to_optimize.emplace_back(curr_mode_def);
  2250. Status ret = model_parser.GraphDefOptimizeSnapShot(&graph_def, nodedef_map, nodedef_to_optimize);
  2251. EXPECT_EQ(ret, FAILED);
  2252. }
  2253. TEST_F(STestTensorflowParser, tensorflow_SetDestNodeName_test)
  2254. {
  2255. TensorFlowModelParser model_parser;
  2256. GraphDef graph;
  2257. auto arg0 = AddNode(graph, "_Arg", "arg0");
  2258. auto identity0 = AddNode(graph, "Identity", "identity0");
  2259. auto add0 = AddNode(graph, "Add", "add0");
  2260. int32_t input_idx = 0;
  2261. bool is_control = true;
  2262. bool clear_input_flag = true;
  2263. AddInput(arg0, identity0, 0);
  2264. AddInput(identity0, add0, 0);
  2265. Status ret = model_parser.SetDestNodeName(identity0, add0, input_idx, is_control, clear_input_flag);
  2266. EXPECT_EQ(ret, SUCCESS);
  2267. }
  2268. TEST_F(STestTensorflowParser, tensorflow_OptimizeDestroyTemporaryVariable_test)
  2269. {
  2270. ModelParserFactory* factory = ModelParserFactory::Instance();
  2271. shared_ptr<domi::ModelParser> model_parser= factory->CreateModelParser(domi::TENSORFLOW);
  2272. TensorFlowModelParser tensorflow_parser;
  2273. GraphDef graph;
  2274. auto const0 = AddNode(graph, "Const", "Const0");
  2275. auto tmpVar0 = AddNode(graph, "TemporaryVariable", "TemporaryVariable0");
  2276. auto assign0 = AddNode(graph, "Assign", "Assign0");
  2277. auto destroy0 = AddNode(graph, "DestroyTemporaryVariable", "DestroyTemporaryVariable0");
  2278. auto add0 = AddNode(graph, "Add", "Add0");
  2279. google::protobuf::Map< std::string, tensorflow::AttrValue> *node_attr_map = tmpVar0->mutable_attr();
  2280. tensorflow::AttrValue var_name_attr_value;
  2281. var_name_attr_value.set_s("temporary_variable_name");
  2282. (*node_attr_map)[ge::VAR_ATTR_NAME] = var_name_attr_value;
  2283. google::protobuf::Map<std::string, tensorflow::AttrValue>* node_attr_map_destroy = destroy0->mutable_attr();
  2284. tensorflow::AttrValue var_name_attr_value_destroy;
  2285. var_name_attr_value_destroy.set_s("destroy_temporary_variable_name");
  2286. (*node_attr_map_destroy)[ge::VAR_ATTR_NAME] = var_name_attr_value_destroy;
  2287. AddInput(tmpVar0, assign0, 0);
  2288. AddInput(assign0, destroy0, 0);
  2289. AddInput(const0, add0, 0);
  2290. AddInput(destroy0, add0, 1);
  2291. GraphDef* graphDef = &graph;
  2292. int32_t no_input_node_size_original = 0;
  2293. for (int w = 0; w < graphDef->node_size(); w++) {
  2294. tensorflow::NodeDef* nodeTmp = graphDef->mutable_node(w);
  2295. if (nodeTmp->input_size() == 0) {
  2296. no_input_node_size_original++;
  2297. }
  2298. }
  2299. Status ret = tensorflow_parser.GraphDefOptimize(graphDef);
  2300. int32_t no_input_node_size_result = 0;
  2301. for (int w = 0; w < graphDef->node_size(); w++) {
  2302. tensorflow::NodeDef* nodeTmp = graphDef->mutable_node(w);
  2303. if (nodeTmp->input_size() == 0) {
  2304. no_input_node_size_result ++;
  2305. }
  2306. }
  2307. ASSERT_EQ(ret, domi::FAILED);
  2308. ASSERT_EQ(no_input_node_size_original, no_input_node_size_result);
  2309. }
  2310. TEST_F(STestTensorflowParser, tensorflow_OptimizeDestroyTemporaryVariable_test2)
  2311. {
  2312. ModelParserFactory* factory = ModelParserFactory::Instance();
  2313. shared_ptr<domi::ModelParser> model_parser= factory->CreateModelParser(domi::TENSORFLOW);
  2314. TensorFlowModelParser tensorflow_parser;
  2315. GraphDef graph;
  2316. auto const0 = AddNode(graph, "Const", "Const0");
  2317. auto tmpVar0 = AddNode(graph, "TemporaryVariable", "TemporaryVariable0");
  2318. auto assign0 = AddNode(graph, "Assign", "Assign0");
  2319. auto destroy0 = AddNode(graph, "DestroyTemporaryVariable", "DestroyTemporaryVariable0");
  2320. auto add0 = AddNode(graph, "Add", "Add0");
  2321. google::protobuf::Map<std::string, tensorflow::AttrValue> *node_attr_map = tmpVar0->mutable_attr();
  2322. tensorflow::AttrValue var_name_attr_value;
  2323. var_name_attr_value.set_s("temporary_variable_name");
  2324. (*node_attr_map)[ge::VAR_ATTR_NAME] = var_name_attr_value;
  2325. google::protobuf::Map<std::string, tensorflow::AttrValue> *node_attr_map_destroy = destroy0->mutable_attr();
  2326. tensorflow::AttrValue var_name_attr_value_destroy;
  2327. var_name_attr_value_destroy.set_s("temporary_variable_name");
  2328. (*node_attr_map_destroy)[ge::VAR_ATTR_NAME] = var_name_attr_value_destroy;
  2329. AddInput(tmpVar0, assign0, 0);
  2330. AddInput(assign0, destroy0, 0);
  2331. AddInput(const0, add0, 0);
  2332. AddInput(destroy0, add0, 1);
  2333. GraphDef* graphDef = &graph;
  2334. int32_t no_input_node_size_original = 0;
  2335. for (int w = 0; w < graphDef->node_size(); w++) {
  2336. tensorflow::NodeDef* nodeTmp = graphDef->mutable_node(w);
  2337. if (nodeTmp->input_size() == 0) {
  2338. no_input_node_size_original ++;
  2339. }
  2340. }
  2341. Status ret = tensorflow_parser.GraphDefOptimize(graphDef);
  2342. int32_t no_input_node_size_result = 0;
  2343. for (int w = 0; w < graphDef->node_size(); w++) {
  2344. tensorflow::NodeDef* nodeTmp = graphDef->mutable_node(w);
  2345. if (nodeTmp->input_size() == 0) {
  2346. no_input_node_size_result ++;
  2347. }
  2348. }
  2349. ASSERT_EQ(ret, domi::SUCCESS);
  2350. ASSERT_EQ(no_input_node_size_original, (no_input_node_size_result - 1));
  2351. }
  2352. TEST_F(STestTensorflowParser, tensorflow_AddControlEdgeAfterRemoveInputs_test)
  2353. {
  2354. tensorflow::GraphDef graph_def;
  2355. TensorFlowModelParser tensorflow_parser;
  2356. tensorflow::NodeDef *node_def = initNodeDef();
  2357. node_def->set_name("Add0");
  2358. node_def->set_op("add");
  2359. std::map<std::string, NodeDef *> all_node_map;
  2360. all_node_map.emplace("Add0", node_def);
  2361. std::vector<std::string> removed_inputs_vec;
  2362. removed_inputs_vec.emplace_back("Add0");
  2363. Status ret = tensorflow_parser.AddControlEdgeAfterRemoveInputs(&graph_def, node_def, all_node_map, removed_inputs_vec);
  2364. EXPECT_EQ(ret, SUCCESS);
  2365. }
  2366. TEST_F(STestTensorflowParser, tensorflow_GraphDefOptimizeIdentity_test)
  2367. {
  2368. tensorflow::GraphDef graph_def;
  2369. TensorFlowModelParser tensorflow_parser;
  2370. tensorflow::NodeDef *node_def = initNodeDef();
  2371. node_def->set_name("post_node_d");
  2372. std::map<string, NodeDef *> nodedef_map;
  2373. nodedef_map.emplace("post_node_d", node_def);
  2374. nodedef_map.emplace("post_node_a", node_def);
  2375. nodedef_map.emplace("post_node_b", node_def);
  2376. std::vector<NodeDef *> nodedef_to_optimize;
  2377. nodedef_to_optimize.emplace_back(node_def);
  2378. std::string curr_node_name = "post_node_b";
  2379. GenOriginContext(&tensorflow_parser, curr_node_name);
  2380. Status ret = tensorflow_parser.GraphDefOptimizeIdentity(&graph_def, nodedef_map, nodedef_to_optimize);
  2381. EXPECT_EQ(ret, ge::PARAM_INVALID);
  2382. }
  2383. TEST_F(STestTensorflowParser, tensorflow_optimizer_snapshot_no_retval_test) {
  2384. std::string caseDir = __FILE__;
  2385. std::size_t idx = caseDir.find_last_of("/");
  2386. caseDir = caseDir.substr(0, idx);
  2387. const std::string root_proto = caseDir + "/origin_models/test_snapshot.pb";
  2388. domi::tensorflow::GraphDef graphDef;
  2389. bool protoRet =
  2390. parser::ReadProtoFromBinaryFile(root_proto.c_str(), &graphDef);
  2391. ASSERT_EQ(protoRet, true);
  2392. TensorFlowModelParser tensorflow_parser;
  2393. ge::ComputeGraphPtr root_graph =
  2394. ge::parser::MakeShared<ge::ComputeGraph>("tmp_graph");
  2395. Status ret = tensorflow_parser.ParseProto(
  2396. reinterpret_cast<google::protobuf::Message *>(&graphDef), root_graph);
  2397. EXPECT_EQ(FAILED, ret);
  2398. }
  2399. TEST_F(STestTensorflowParser, tensorflow_RemoveInputs_test)
  2400. {
  2401. tensorflow::GraphDef graph_def;
  2402. tensorflow::NodeDef *node_def = initNodeDef();
  2403. node_def->set_name("OP");
  2404. node_def->add_input("OP/Input_1");
  2405. node_def->add_input("OP/Input_2");
  2406. std::set<uint32_t> remove_index_set;
  2407. std::map<std::string, NodeDef *> all_node_map;
  2408. TensorFlowModelParser model_parser;
  2409. Status ret = model_parser.RemoveInputs(&graph_def, node_def, remove_index_set, all_node_map);
  2410. EXPECT_EQ(ret, SUCCESS);
  2411. remove_index_set.emplace(0);
  2412. ret = model_parser.RemoveInputs(&graph_def, node_def, remove_index_set, all_node_map);
  2413. EXPECT_EQ(ret, FAILED);
  2414. }
  2415. TEST_F(STestTensorflowParser, tensorflow_UpdateInnerNodeContext_test)
  2416. {
  2417. std::string fusion_op_name = "post_node_a";
  2418. std::vector<std::string> inner_nodes_name;
  2419. inner_nodes_name.emplace_back("post_node_a");
  2420. TensorFlowModelParser model_parser;
  2421. Status ret = model_parser.UpdateInnerNodeContext(fusion_op_name, inner_nodes_name);
  2422. EXPECT_EQ(ret, INTERNAL_ERROR);
  2423. GenOriginContext(&model_parser, fusion_op_name);
  2424. ret = model_parser.UpdateInnerNodeContext(fusion_op_name, inner_nodes_name);
  2425. EXPECT_EQ(ret, SUCCESS);
  2426. }
  2427. TEST_F(STestTensorflowParser, tensorflow_UpdateInnerInputMap_test)
  2428. {
  2429. string fusion_op_name = "post_node_a";
  2430. OpNodeContext fusion_context;
  2431. std::vector<std::string> inner_nodes_name;
  2432. inner_nodes_name.emplace_back("post_node_a");
  2433. std::set<string> fusion_input_nodes;
  2434. fusion_input_nodes.insert("post_node_a");
  2435. TensorFlowModelParser model_parser;
  2436. GenOriginContext(&model_parser, fusion_op_name);
  2437. model_parser.UpdateInnerInputMap(fusion_op_name, fusion_context, inner_nodes_name, fusion_input_nodes);
  2438. }
  2439. TEST_F(STestTensorflowParser, tensorflow_UpdateInnerOutputMap_test)
  2440. {
  2441. string fusion_op_name = "post_node_a";
  2442. OpNodeContext fusion_context;
  2443. std::vector<std::string> inner_nodes_name;
  2444. inner_nodes_name.emplace_back("post_node_a");
  2445. std::set<string> fusion_output_nodes;
  2446. fusion_output_nodes.insert("post_node_a");
  2447. TensorFlowModelParser model_parser;
  2448. GenOriginContext(&model_parser, fusion_op_name);
  2449. model_parser.UpdateInnerOutputMap(fusion_op_name, fusion_context, inner_nodes_name, fusion_output_nodes);
  2450. }
  2451. TEST_F(STestTensorflowParser, tensorflow_ScopePassManager_AddPass_test)
  2452. {
  2453. ScopePassManager passmanager;
  2454. tensorflow::GraphDef *graph = new tensorflow::GraphDef();
  2455. shared_ptr<ScopeGraph> scope_graph = passmanager.BuildScopeGraph(graph);
  2456. unique_ptr<ScopeBasePass> pass;
  2457. pass.reset(new ScopeTestPass());
  2458. EXPECT_EQ(ge::SUCCESS, passmanager.AddPass(pass));
  2459. EXPECT_NE(ge::SUCCESS, passmanager.Run(scope_graph));
  2460. delete graph;
  2461. graph = nullptr;
  2462. }
  2463. TEST_F(STestTensorflowParser, tensorflow_CheckAttrHasType_test1)
  2464. {
  2465. tensorflow::AttrValue attr_value;
  2466. attr_value.mutable_list();
  2467. Status ret = TensorFlowUtil::CheckAttrHasType(attr_value, "int");
  2468. EXPECT_EQ(FAILED, ret);
  2469. attr_value.set_type(DT_INVALID);
  2470. ret = TensorFlowUtil::CheckAttrHasType(attr_value, "type");
  2471. EXPECT_EQ(FAILED, ret);
  2472. tensorflow::AttrValue attr_value2;
  2473. AttrValue_ListValue *list = attr_value2.mutable_list();
  2474. list->add_type(tensorflow::DT_FLOAT);
  2475. list->add_type((tensorflow::DataType)30);
  2476. ret = TensorFlowUtil::CheckAttrHasType(attr_value2, "list(type)");
  2477. EXPECT_EQ(FAILED, ret);
  2478. }
  2479. TEST_F(STestTensorflowParser, tensorflow_CheckAttrHasType_test2)
  2480. {
  2481. tensorflow::AttrValue attr_value;
  2482. AttrValue_ListValue * list = attr_value.mutable_list();
  2483. list->add_type(tensorflow::DT_FLOAT);
  2484. list->add_type(tensorflow::DT_INVALID);
  2485. Status ret = TensorFlowUtil::CheckAttrHasType(attr_value, "list(type)");
  2486. EXPECT_EQ(FAILED, ret);
  2487. attr_value.set_placeholder("test");
  2488. ret = TensorFlowUtil::CheckAttrHasType(attr_value, "");
  2489. EXPECT_EQ(FAILED, ret);
  2490. }
  2491. TEST_F(STestTensorflowParser, tensorflow_TransTensorDescriptor_test)
  2492. {
  2493. tensorflow::AttrValue attr_value;
  2494. AttrValue_ListValue *list = attr_value.mutable_list();
  2495. list->add_type(tensorflow::DT_FLOAT);
  2496. ParserOperator op;
  2497. uint32_t io = TENSORFLOW_NORMAL_INPUT_TENSOR_FLAG;
  2498. std::string type = ge::parser::FUSEDBATCHNORMGRAD;
  2499. Status ret = TensorFlowUtil::TransTensorDescriptor(attr_value, &op, io, type);
  2500. EXPECT_EQ(ret, SUCCESS);
  2501. io = TENSORFLOW_NORMAL_OUTPUT_TENSOR_FLAG;
  2502. ret = TensorFlowUtil::TransTensorDescriptor(attr_value, &op, io, type);
  2503. EXPECT_EQ(ret, SUCCESS);
  2504. }
  2505. TEST_F(STestTensorflowParser, tensorflow_GraphDefOptimizeDestroyTemporaryVariable_test)
  2506. {
  2507. tensorflow::GraphDef *graph_def = nullptr;
  2508. tensorflow::NodeDef *nodeCurrent = initNodeDef();
  2509. TensorFlowModelParser model_parser;
  2510. Status ret = model_parser.GraphDefOptimizeDestroyTemporaryVariable(graph_def, nodeCurrent);
  2511. EXPECT_EQ(ret, FAILED);
  2512. }
  2513. TEST_F(STestTensorflowParser, tensorflow_GetFunctionProto_test)
  2514. {
  2515. std::cout << __FILE__ << std::endl;
  2516. std::string caseDir = __FILE__;
  2517. std::size_t idx = caseDir.find_last_of("/");
  2518. caseDir = caseDir.substr(0, idx);
  2519. std::string file = caseDir + "/origin_models/test_enter.pb";
  2520. domi::tensorflow::GraphDefLibrary graph_def_library;
  2521. TensorFlowModelParser model_parser;
  2522. Status ret = model_parser.GetFunctionProto(file, graph_def_library);
  2523. EXPECT_EQ(ret, FAILED);
  2524. }
  2525. TEST_F(STestTensorflowParser, tensorflow_GetNodeFormat_test)
  2526. {
  2527. NodeDef *node_def1 = initNodeDef();
  2528. node_def1->set_op("NoOp");
  2529. node_def1->set_name("NoOp");
  2530. NodeDef *node_def2 = initNodeDef();
  2531. node_def2->set_op("Add");
  2532. node_def2->set_name("Add0");
  2533. TfTranspose pred_transpose = TO_NCHW;
  2534. domiTensorFormat_t format = domi::DOMI_TENSOR_NC1HWC0;
  2535. std::set<const NodeDef *> visited_node;
  2536. visited_node.emplace(node_def2);
  2537. TensorFlowModelParser model_parser;
  2538. Status ret = model_parser.GetNodeFormat(node_def1, pred_transpose, format, visited_node);
  2539. EXPECT_EQ(ret, FAILED);
  2540. delete node_def1;
  2541. delete node_def2;
  2542. }
  2543. TEST_F(STestTensorflowParser, tensorflow_GetFormatTranspose_test)
  2544. {
  2545. NodeDef *transpose_node = initNodeDef();
  2546. transpose_node->set_op("Transpose");
  2547. TfTranspose transpose_direc = NO_TRANSPOSE;
  2548. TensorFlowModelParser modelParser;
  2549. Status ret = modelParser.GetFormatTranspose(transpose_node, transpose_direc);
  2550. EXPECT_EQ(ret, FAILED);
  2551. ge::TensorFlowModelParser parser;
  2552. GraphDef graph;
  2553. auto arg0 = AddNode(graph, "_Arg", "arg0");
  2554. auto snapshot0 = AddNode(graph, "Snapshot", "snapshot0");
  2555. auto ret0 = AddNode(graph, "_Retval", "retval0");
  2556. auto arg1 = AddNode(graph, "_Arg", "arg1");
  2557. auto snapshot1 = AddNode(graph, "Snapshot", "snapshot1");
  2558. auto ret1 = AddNode(graph, "_Retval", "retval1");
  2559. auto arg2 = AddNode(graph, "_Arg", "arg2");
  2560. auto snapshot2 = AddNode(graph, "Snapshot", "snapshot2");
  2561. auto ret2 = AddNode(graph, "_Retval", "retval2");
  2562. AddInput(arg0, snapshot0, 0);
  2563. AddInput(snapshot0, ret0, 0);
  2564. AddInput(arg1, snapshot1, 0);
  2565. AddInput(snapshot1, ret1, 0);
  2566. AddInput(arg2, snapshot2, 0);
  2567. AddInput(snapshot2, ret2, 0);
  2568. AddInput(snapshot0, snapshot1, -1);
  2569. AddInput(snapshot1, snapshot2, -1);
  2570. ASSERT_EQ(parser.GraphDefOptimize(&graph), domi::SUCCESS);
  2571. ASSERT_EQ(ret1->input_size(), 2);
  2572. ret = modelParser.GetFormatTranspose(ret1, transpose_direc);
  2573. EXPECT_EQ(ret, SUCCESS);
  2574. delete transpose_node;
  2575. }
  2576. TEST_F(STestTensorflowParser, tensorflow_GetTensorflowGraphInOutMap_test)
  2577. {
  2578. TensorFlowModelParser model_parser;
  2579. tensorflow::GraphDef *graph = new tensorflow::GraphDef();
  2580. tensorflow::NodeDef *node_input = graph->add_node();
  2581. node_input->set_name("name_input");
  2582. node_input->set_op("op_input");
  2583. AddGraphNode(graph, "t_lstm/t_lstm_cell/Sigmoid5", "Sigmoid", "node_input");
  2584. AddGraphNode(graph, "t_lstm/t_lstm_cell/Sigmoid6", "Sigmoid", "node_input");
  2585. AddGraphNode(graph, "t_lstm/t_lstm_cell/Sigmoid7", "Sigmoid", "node_input");
  2586. AddGraphNode(graph, "t_lstm/t_lstm_cell/Mul5", "Mul", "node_input");
  2587. AddGraphNode(graph, "t_lstm/t_lstm_cell/Mul6", "Mul", "node_input");
  2588. AddGraphNode(graph, "t_lstm/t_lstm_cell/Mul7", "Mul", "node_input");
  2589. AddGraphNode(graph, "t_lstm/t_lstm_cell/Relu5", "Relu", "node_input");
  2590. AddGraphNode(graph, "t_lstm/t_lstm_cell/Relu6", "Relu", "node_input");
  2591. Status ret = model_parser.GetTensorflowGraphInOutMap(graph);
  2592. EXPECT_EQ(ret, SUCCESS);
  2593. delete graph;
  2594. }
  2595. TEST_F(STestTensorflowParser, tensorflow_RemoveIsolateNode_test)
  2596. {
  2597. TensorFlowModelParser model_parser;
  2598. tensorflow::GraphDef graph;
  2599. CreateGraphDef(graph);
  2600. Status ret = model_parser.RemoveIsolateNode(&graph);
  2601. EXPECT_EQ(ret, FAILED);
  2602. }
  2603. TEST_F(STestTensorflowParser, tensorflow_AddNodeToGraphAndMarkFormat_test)
  2604. {
  2605. TensorFlowModelParser model_parser;
  2606. ComputeGraphPtr graph = make_shared<ge::ComputeGraph>("default");
  2607. std::vector<std::string> op_node_name_list = {"Const", "placeholder0"};
  2608. GenOriginNodeDef(&model_parser, op_node_name_list);
  2609. Status ret = model_parser.AddNodeToGraphAndMarkFormat(graph, op_node_name_list);
  2610. EXPECT_EQ(ret, INTERNAL_ERROR);
  2611. }
  2612. TEST_F(STestTensorflowParser, tensorflow_ParserNodeDef1_test)
  2613. {
  2614. ge::ComputeGraphPtr compute_graph = std::make_shared<ge::ComputeGraph>(GRAPH_DEFAULT_NAME);
  2615. ModelParserFactory* factory = ModelParserFactory::Instance();
  2616. shared_ptr<ModelParser> model_parser= factory->CreateModelParser(domi::TENSORFLOW);
  2617. ASSERT_TRUE(NULL != model_parser);
  2618. TensorFlowModelParser tensorflow_parser;
  2619. tensorflow_parser.adaptedOpTypeMap_["test_name"] = "POOLING";
  2620. std::mutex graphMutex;
  2621. tensorflow::GraphDef *graph = new tensorflow::GraphDef();
  2622. ScopePassManager passmanager;
  2623. shared_ptr<ScopeGraph> scope_graph = passmanager.BuildScopeGraph(graph);
  2624. domi::tensorflow::NodeDef node_def;
  2625. node_def.set_name("test_name");
  2626. node_def.set_op("POOLING");
  2627. error_message::Context error_context;
  2628. Status ret = ge::TensorFlowModelParser::ParseNodeDef(&tensorflow_parser, compute_graph, &graphMutex, scope_graph, &node_def, error_context);
  2629. EXPECT_EQ(FAILED, ret);
  2630. delete graph;
  2631. }
  2632. TEST_F(STestTensorflowParser, tensorflow_ParserNodeDef2_test)
  2633. {
  2634. ge::ComputeGraphPtr compute_graph = std::make_shared<ge::ComputeGraph>(GRAPH_DEFAULT_NAME);
  2635. ModelParserFactory* factory = ModelParserFactory::Instance();
  2636. shared_ptr<ModelParser> model_parser= factory->CreateModelParser(domi::TENSORFLOW);
  2637. ASSERT_TRUE(NULL != model_parser);
  2638. TensorFlowModelParser tensorflow_parser;
  2639. tensorflow_parser.adaptedOpTypeMap_["Pooling"] = "Pooling";
  2640. std::mutex graphMutex;
  2641. tensorflow::GraphDef *graph = new tensorflow::GraphDef();
  2642. ScopePassManager passmanager;
  2643. shared_ptr<ScopeGraph> scope_graph = passmanager.BuildScopeGraph(graph);
  2644. REGISTER_CUSTOM_OP("Pooling")
  2645. .FrameworkType(domi::TENSORFLOW)
  2646. .OriginOpType("Pooling")
  2647. .ParseParamsFn(ParseParams)
  2648. .ImplyType(ImplyType::TVM);
  2649. register_tbe_op();
  2650. domi::tensorflow::NodeDef node_def;
  2651. node_def.set_name("Pooling");
  2652. node_def.set_op("Pooling");
  2653. error_message::Context error_context;
  2654. Status ret = ge::TensorFlowModelParser::ParseNodeDef(&tensorflow_parser, compute_graph, &graphMutex, scope_graph, &node_def, error_context);
  2655. EXPECT_EQ(FAILED, ret);
  2656. delete graph;
  2657. }
  2658. TEST_F(STestTensorflowParser, tensorflow_AddExternalGraph_test)
  2659. {
  2660. TensorFlowModelParser modelParser;
  2661. ge::ComputeGraphPtr subGraph = std::make_shared<ge::ComputeGraph>("default");
  2662. std::string inputNodeType = "DATA";
  2663. MakeDagGraph(subGraph, inputNodeType);
  2664. Status ret = modelParser.AddExternalGraph(subGraph);
  2665. EXPECT_EQ(ret, SUCCESS);
  2666. }
  2667. TEST_F(STestTensorflowParser, tensorflow_AddFmkNode_test)
  2668. {
  2669. TensorFlowModelParser model_parser;
  2670. ge::ComputeGraphPtr compute_graph = std::make_shared<ge::ComputeGraph>(GRAPH_DEFAULT_NAME);
  2671. tensorflow::GraphDef *graphDef = new (std::nothrow) tensorflow::GraphDef();
  2672. ScopePassManager pass_manager;
  2673. std::shared_ptr<ScopeGraph> scope_graph = pass_manager.BuildScopeGraph(graphDef);
  2674. std::vector<std::string> op_node_name_list = {"Const", "placeholder0"};
  2675. GenOriginNodeDef(&model_parser, op_node_name_list);
  2676. Status ret = model_parser.AddFmkNode(compute_graph, scope_graph, op_node_name_list, false);
  2677. EXPECT_EQ(ret, PARAM_INVALID);
  2678. delete graphDef;
  2679. }
  2680. TEST_F(STestTensorflowParser, tensorflow_OptimizeConstNodes4CustomOp_test)
  2681. {
  2682. TensorFlowModelParser model_parser;
  2683. tensorflow::GraphDef graph_def;
  2684. CreateGraphDef(graph_def);
  2685. Status ret = model_parser.OptimizeConstNodes4CustomOp(&graph_def);
  2686. EXPECT_EQ(ret, SUCCESS);
  2687. }
  2688. TEST_F(STestTensorflowParser, OptimizeConstNodes4CustomOp_success)
  2689. {
  2690. GraphDef graph;
  2691. auto bn = AddNode(graph, "FusedBatchNormV3", "FusedBatchNormV3_0");
  2692. auto bn_grad = AddNode(graph, "FusedBatchNormGradV3", "FusedBatchNormGradV3_0");
  2693. AddInput(bn, bn_grad, 0);
  2694. AddInput(bn, bn_grad, 1);
  2695. AddInput(bn, bn_grad, 2);
  2696. AddInput(bn, bn_grad, 3);
  2697. AddInput(bn, bn_grad, 5);
  2698. AddInput(bn, bn_grad, 5);
  2699. GraphDef* graphDef = &graph;
  2700. int before_bn_grad_input_size = bn_grad->input_size();
  2701. ASSERT_EQ(before_bn_grad_input_size, 6);
  2702. ModelParserFactory* factory = ModelParserFactory::Instance();
  2703. shared_ptr<domi::ModelParser> model_parser= factory->CreateModelParser(domi::TENSORFLOW);
  2704. ge::TensorFlowModelParser tensorflow_parser;
  2705. Status ret = tensorflow_parser.OptimizeConstNodes4CustomOp(graphDef);
  2706. int after_bn_grad_input_size = bn_grad->input_size();
  2707. ASSERT_EQ(after_bn_grad_input_size, 6);
  2708. ASSERT_EQ(ret, domi::SUCCESS);
  2709. REGISTER_CUSTOM_OP("BatchNormGrad")
  2710. .FrameworkType(domi::TENSORFLOW)
  2711. .OriginOpType({"FusedBatchNormGradV3", "FusedBatchNormGradV2", "FusedBatchNormGrad"})
  2712. .ParseParamsFn(AutoMappingFn)
  2713. .DelInputWithOriginalType(5, "FusedBatchNormGradV3")
  2714. .ImplyType(ImplyType::TVM);
  2715. register_tbe_op();
  2716. ret = tensorflow_parser.OptimizeConstNodes4CustomOp(graphDef);
  2717. after_bn_grad_input_size = bn_grad->input_size();
  2718. ASSERT_EQ(after_bn_grad_input_size, 6);
  2719. ASSERT_EQ(ret, domi::SUCCESS);
  2720. }
  2721. TEST_F(STestTensorflowParser, tensorflow_ParseOpParams_test)
  2722. {
  2723. TensorFlowModelParser model_parser;
  2724. tensorflow::NodeDef *node_def = initNodeDef();
  2725. node_def->set_name("Pooling");
  2726. node_def->set_op("Pooling");
  2727. ge::OpDescPtr op = std::make_shared<ge::OpDesc>();
  2728. std::shared_ptr<OpParserFactory> factory = OpParserFactory::Instance(domi::TENSORFLOW);
  2729. std::shared_ptr<OpParser> op_parser = factory->CreateOpParser("Pooling");
  2730. Status ret = model_parser.ParseOpParams(node_def, op, op_parser);
  2731. EXPECT_EQ(ret, FAILED);
  2732. node_def->set_name("TensorArrayWrite");
  2733. node_def->set_op("TensorArrayWriteV3");
  2734. op_parser = factory->CreateOpParser("TensorArrayWrite");
  2735. ret = model_parser.ParseOpParams(node_def, op, op_parser);
  2736. EXPECT_EQ(ret, SUCCESS);
  2737. delete node_def;
  2738. }
  2739. TEST_F(STestTensorflowParser, tensorflow_AddFusionInnerNodeDef_test)
  2740. {
  2741. TensorFlowModelParser model_parser;
  2742. ge::ComputeGraphPtr compute_graph = std::make_shared<ge::ComputeGraph>(GRAPH_DEFAULT_NAME);
  2743. tensorflow::GraphDef *graphDef = new (std::nothrow) tensorflow::GraphDef();
  2744. ScopePassManager pass_manager;
  2745. std::shared_ptr<ScopeGraph> scope_graph = pass_manager.BuildScopeGraph(graphDef);
  2746. std::vector<std::string> op_node_name_list = {"Const", "placeholder0"};
  2747. FusionScopesResult *fusion_scope_rlt = new (std::nothrow) FusionScopesResult();
  2748. fusion_scope_rlt->Init();
  2749. fusion_scope_rlt->SetName("FusionCustom");
  2750. auto &impl_scope_graph = scope_graph->impl_;
  2751. std::string scope_name = fusion_scope_rlt->Name();
  2752. impl_scope_graph->fusion_results_.insert(std::make_pair(scope_name, fusion_scope_rlt));
  2753. std::string fusion_op_name = "FusionCustom";
  2754. GenOriginNodeDef(&model_parser, op_node_name_list);
  2755. GenFusionScopesResult(scope_graph, fusion_scope_rlt, fusion_op_name);
  2756. Status ret = model_parser.AddFusionInnerNodeDef(scope_graph, fusion_op_name, op_node_name_list);
  2757. EXPECT_EQ(ret, INTERNAL_ERROR);
  2758. delete graphDef;
  2759. }
  2760. TEST_F(STestTensorflowParser, Scope_pass_test)
  2761. {
  2762. ScopePassManager passmanager;
  2763. tensorflow::GraphDef *graph = new tensorflow::GraphDef();
  2764. shared_ptr<ScopeGraph> scope_graph = passmanager.BuildScopeGraph(graph);
  2765. EXPECT_NE(nullptr, scope_graph);
  2766. unique_ptr<ScopeBasePass> pass;
  2767. pass.reset(new ScopeTestPass());
  2768. EXPECT_EQ(domi::SUCCESS, passmanager.AddPass(pass));
  2769. scope_graph = passmanager.BuildScopeGraph(graph);
  2770. EXPECT_NE(nullptr, scope_graph);
  2771. delete graph;
  2772. }
  2773. TEST_F(STestTensorflowParser, operator_attr_set_and_get)
  2774. {
  2775. TestOperator test_operator;
  2776. test_operator.Name("test_op");
  2777. EXPECT_EQ("test_op" , test_operator.GetName());
  2778. test_operator.Input(test_operator, 0);
  2779. test_operator.Input(test_operator, 1);
  2780. test_operator.GetOpAttrs();
  2781. int64_t pad = 1;
  2782. test_operator.Attr("pad", pad);
  2783. EXPECT_EQ(pad , test_operator.GetIntAttr("pad"));
  2784. bool bool_value = true;
  2785. test_operator.Attr("bool_value", bool_value);
  2786. EXPECT_EQ(bool_value , test_operator.GetBoolAttr("bool_value"));
  2787. float float_value = true;
  2788. test_operator.Attr("float_value", float_value);
  2789. EXPECT_EQ(float_value , test_operator.GetFloatAttr("float_value"));
  2790. std::string str_value = "test_string";
  2791. test_operator.Attr("str_value", str_value);
  2792. EXPECT_EQ(str_value , test_operator.GetStringAttr("str_value"));
  2793. BoolTuple boollist_value{true, false};
  2794. test_operator.Attr("boollist_value", boollist_value);
  2795. BoolTuple get_boollist_value = test_operator.GetBoolTupleAttr("boollist_value");
  2796. EXPECT_EQ(boollist_value[0] , get_boollist_value[0]);
  2797. StringTuple strlist_value{"a", "b"};
  2798. test_operator.Attr("strlist_value", strlist_value);
  2799. StringTuple get_strlist_value = test_operator.GetStringTupleAttr("strlist_value");
  2800. EXPECT_EQ(strlist_value[0] , get_strlist_value[0]);
  2801. int64_t num = 1;
  2802. IntTuple intlist{num, num};
  2803. test_operator.Attr("intlist", intlist);
  2804. IntTuple get_intlist = test_operator.GetIntTupleAttr("intlist");
  2805. EXPECT_EQ(intlist[0] , get_intlist[0]);
  2806. FloatTuple floatlist{1.1, 1.1};
  2807. test_operator.Attr("floatlist", floatlist);
  2808. FloatTuple get_floatlist = test_operator.GetFloatTupleAttr("floatlist");
  2809. EXPECT_EQ(floatlist[0] , get_floatlist[0]);
  2810. ge::OpDescPtr op_desc = std::make_shared<ge::OpDesc>();
  2811. ParserOperator *op = &test_operator;
  2812. Status ret = ConvertToOpDesc(*op, op_desc);
  2813. EXPECT_EQ(domi::SUCCESS , ret);
  2814. TestOperator test_operator_1;
  2815. ParserOperator *op_convert = &test_operator_1;
  2816. ret = ConvertFromOpDesc(op_desc, *op_convert);
  2817. EXPECT_EQ(domi::SUCCESS , ret);
  2818. op_desc = nullptr;
  2819. ret = ConvertFromOpDesc(op_desc, *op_convert);
  2820. EXPECT_EQ(FAILED , ret);
  2821. ret = ConvertToOpDesc(*op, op_desc);
  2822. EXPECT_EQ(FAILED, ret);
  2823. }
  2824. TEST_F(STestTensorflowParser, success_frameworkop_get)
  2825. {
  2826. FrameworkOpOperator *frameworkOp=new FrameworkOpOperator();
  2827. int64_t index = 1;
  2828. std::string opdef_string = "tensorflow_parser";
  2829. frameworkOp->GetFrameworkType();
  2830. frameworkOp->GetNodeDefPkg();
  2831. frameworkOp->FuncDefPkg("func");
  2832. frameworkOp->Index(index);
  2833. frameworkOp->TfOpDef(opdef_string);
  2834. EXPECT_EQ(SUCCESS, SUCCESS);
  2835. delete frameworkOp;
  2836. }
  2837. TEST_F(STestTensorflowParser, op_set_get_success)
  2838. {
  2839. ConstantOperator op;
  2840. vector<int64_t> v;
  2841. op.VectorAttr("key", v);
  2842. op.GetDType();
  2843. }
  2844. TEST_F(STestTensorflowParser, success_argop_get)
  2845. {
  2846. ArgOpOperator *argOp=new ArgOpOperator();
  2847. int64_t index = 1;
  2848. argOp->Index(index);
  2849. argOp->GetIndex();
  2850. EXPECT_EQ(domi::SUCCESS, SUCCESS);
  2851. delete argOp;
  2852. }
  2853. TEST_F(STestTensorflowParser, success_operator)
  2854. {
  2855. ParserOperator tfOperator;
  2856. ParserOperator in_op;
  2857. uint32_t index = 0;
  2858. std::string type = "add";
  2859. std::string key = "Add";
  2860. std::vector<int64_t> value;
  2861. int64_t tmp = 0;
  2862. value.emplace_back(tmp);
  2863. tfOperator.Input(in_op, index);
  2864. tfOperator.Type(type);
  2865. tfOperator.AttrVector(key, value);
  2866. }
  2867. TEST_F(STestTensorflowParser, success_shapen_get)
  2868. {
  2869. ShapeNOperator *shapen =new ShapeNOperator();
  2870. shapen->GetInType();
  2871. shapen->GetInType();
  2872. shapen->GetOutType();
  2873. EXPECT_EQ(domi::SUCCESS, domi::SUCCESS);
  2874. delete shapen;
  2875. }
  2876. TEST_F(STestTensorflowParser, success_VarIsInitializedOpOperator_get)
  2877. {
  2878. VarIsInitializedOpOperator op;
  2879. op.Name("x");
  2880. std::vector<int64_t> value;
  2881. op.VectorAttr("key", value);
  2882. }
  2883. TEST_F(STestTensorflowParser, success_variable_op_get)
  2884. {
  2885. VariableOperator op;
  2886. uint32_t mem_type = 1;
  2887. op.Name("x");
  2888. std::vector<int64_t> value;
  2889. op.Placement("shared_name");
  2890. op.MemType(mem_type);
  2891. }
  2892. TEST_F(STestTensorflowParser, param_success_get)
  2893. {
  2894. FillOperator* fillOp=new FillOperator();
  2895. fillOp->GetDataType();
  2896. fillOp->GetAlpha();
  2897. fillOp->GetBeta();
  2898. EXPECT_EQ(domi::SUCCESS, domi::SUCCESS);
  2899. delete fillOp;
  2900. }
  2901. TEST_F(STestTensorflowParser, tensorflow_Message2Operator_ParseOperatorAttrs_test)
  2902. {
  2903. Message2Operator mess2Op;
  2904. tensorflow::NodeDef *node_def = initNodeDef();
  2905. int depth = 6;
  2906. ge::OpDescPtr op_desc = std::make_shared<ge::OpDesc>();
  2907. ge::Operator ops = ge::OpDescUtils::CreateOperatorFromOpDesc(op_desc);
  2908. Status ret = mess2Op.ParseOperatorAttrs(node_def, depth, ops);
  2909. EXPECT_EQ(ret, FAILED);
  2910. depth = 4;
  2911. ret = mess2Op.ParseOperatorAttrs(node_def, depth, ops);
  2912. EXPECT_EQ(ret, SUCCESS);
  2913. }
  2914. TEST_F(STestTensorflowParser, tensorflow_Pb2Json_RepeatedEnum2Json_test)
  2915. {
  2916. Pb2Json toJson;
  2917. ProtobufEnumValueDescriptor *enum_value_desc = new google::protobuf::EnumValueDescriptor();
  2918. bool enum2str = true;
  2919. Json json;
  2920. ProtobufFieldDescriptor *field = nullptr;
  2921. toJson.RepeatedEnum2Json(enum_value_desc, enum2str, json);
  2922. toJson.Enum2Json(enum_value_desc, field, enum2str, json);
  2923. enum2str = false;
  2924. toJson.RepeatedEnum2Json(enum_value_desc, enum2str, json);
  2925. delete enum_value_desc;
  2926. }
  2927. TEST_F(STestTensorflowParser, tensorflow_Pb2Json_TypeBytes2String_test)
  2928. {
  2929. Pb2Json toJson;
  2930. std::string field_name = "offset";
  2931. std::string type_bytes = "offset";
  2932. toJson.TypeBytes2String(field_name, type_bytes);
  2933. field_name = "test";
  2934. toJson.TypeBytes2String(field_name, type_bytes);
  2935. }
  2936. TEST_F(STestTensorflowParser, tensorflow_Pb2Json_RepeatedMessage2Json_test)
  2937. {
  2938. Pb2Json toJson;
  2939. tensorflow::NodeDef *node_def = initNodeDef();
  2940. ProtobufFieldDescriptor *field = new google::protobuf::FieldDescriptor();
  2941. ProtobufReflection *reflection = nullptr;
  2942. set<string> black_fields;
  2943. black_fields.emplace("offset");
  2944. Json json;
  2945. bool enum2str = true;
  2946. toJson.RepeatedMessage2Json((*node_def), field, reflection, black_fields, json, enum2str);
  2947. delete field;
  2948. }
  2949. TEST_F(STestTensorflowParser, tensorflow_Pb2Json_OneField2Json_test)
  2950. {
  2951. Pb2Json toJson;
  2952. tensorflow::NodeDef *node_def = initNodeDef();
  2953. ProtobufFieldDescriptor *field = new google::protobuf::FieldDescriptor();
  2954. ProtobufReflection *reflection = nullptr;
  2955. set<string> black_fields;
  2956. black_fields.emplace("offset");
  2957. Json json;
  2958. bool enum2str = true;
  2959. Message2Operator mess2Op;
  2960. int depth = 4;
  2961. ge::OpDescPtr op_desc = std::make_shared<ge::OpDesc>("FusionCustom", "FusionCustom");
  2962. ge::Operator ops = ge::OpDescUtils::CreateOperatorFromOpDesc(op_desc);
  2963. field->CppTypeName(google::protobuf::FieldDescriptor::CPPTYPE_ENUM);
  2964. mess2Op.ParseField(reflection, node_def, field, depth, ops);
  2965. toJson.OneField2Json((*node_def), field, reflection, black_fields, json, enum2str);
  2966. delete field;
  2967. }
  2968. TEST_F(STestTensorflowParser, input_proto_real_path_success) {
  2969. const char *caffe_proto_path = "./caffe/caffe.proto";
  2970. const char *custom_proto_path = "./caffe/custom.proto";
  2971. ProtoFileParser proto_file_parser;
  2972. string fusion_proto_file;
  2973. auto ret = proto_file_parser.CombineProtoFile(caffe_proto_path, custom_proto_path, fusion_proto_file);
  2974. EXPECT_EQ(ret, FAILED);
  2975. ret = proto_file_parser.RecordProtoMessage(caffe_proto_path);
  2976. EXPECT_EQ(ret, FAILED);
  2977. ret = proto_file_parser.WriteProtoFile(caffe_proto_path, custom_proto_path);
  2978. EXPECT_EQ(ret, FAILED);
  2979. std::cout << __FILE__ << std::endl;
  2980. std::string caseDir = __FILE__;
  2981. std::size_t idx = caseDir.find_last_of("/");
  2982. caseDir = caseDir.substr(0, idx);
  2983. std::string proto_file = caseDir + "/origin_models/caffe.proto";
  2984. caffe_proto_path = proto_file.c_str();
  2985. ret = proto_file_parser.CombineProtoFile(caffe_proto_path, caffe_proto_path, fusion_proto_file);
  2986. EXPECT_EQ(ret, SUCCESS);
  2987. ret = proto_file_parser.WriteProtoFile(caffe_proto_path, custom_proto_path);
  2988. EXPECT_EQ(ret, FAILED);
  2989. std::string dest_line = "test";
  2990. ret = proto_file_parser.FindConflictLine(custom_proto_path, 0, dest_line);
  2991. EXPECT_EQ(ret, FAILED);
  2992. std::map<int, std::pair<string, string>> identifier_op_map;
  2993. std::map<std::string, std::pair<int, string>> op_identifier_map;
  2994. ret = proto_file_parser.ParseProtoFile(custom_proto_path, identifier_op_map, op_identifier_map);
  2995. EXPECT_EQ(ret, FAILED);
  2996. proto_file_parser.GetFusionProtoFile();
  2997. std::ofstream write_tmp;
  2998. ret = proto_file_parser.AddCustomAndConflictMessage(custom_proto_path, write_tmp);
  2999. EXPECT_EQ(ret, FAILED);
  3000. }
  3001. TEST_F(STestTensorflowParser, all_success)
  3002. {
  3003. PreChecker::OpId id1 = (void*)(intptr_t)1;
  3004. PreChecker::OpId id2 = (void*)(intptr_t)2;
  3005. PreChecker::OpId id3 = (void*)(intptr_t)3;
  3006. PreChecker::OpId id4 = (void*)(intptr_t)4;
  3007. PreChecker &checker = PreChecker::Instance();
  3008. EXPECT_EQ(checker.AddOp(id1, "name1", "type1"), SUCCESS);
  3009. EXPECT_EQ(checker.AddOp(id2, "name2", "type2"), SUCCESS);
  3010. EXPECT_EQ(checker.AddOp(id3, "name1", "type3"), SUCCESS);
  3011. EXPECT_EQ(checker.AddOp(id4, "name4", ge::parser::DETECTIONOUTPUT), SUCCESS);
  3012. EXPECT_EQ(checker.CheckName(id1), SUCCESS);
  3013. EXPECT_EQ(checker.CheckName(id2), SUCCESS);
  3014. EXPECT_EQ(checker.CheckName(id3), SUCCESS);
  3015. EXPECT_EQ(checker.CheckName(id4), SUCCESS);
  3016. EXPECT_EQ(checker.CheckType(id1), SUCCESS);
  3017. EXPECT_EQ(checker.CheckType(id2), SUCCESS);
  3018. EXPECT_EQ(checker.CheckType(id3), SUCCESS);
  3019. EXPECT_EQ(checker.CheckType(id4), SUCCESS);
  3020. EXPECT_EQ(checker.AddCause(id1, PreChecker::ErrorCode::OK, "msg"), SUCCESS);
  3021. EXPECT_EQ(checker.AddCause(id1, PreChecker::ErrorCode::PARAM_INVALID, "msg"), domi::SUCCESS);
  3022. PreChecker::Cause cause;
  3023. cause.code = PreChecker::ErrorCode::TYPE_AMBIGUOUS;
  3024. cause.message = "msg";
  3025. EXPECT_EQ(checker.AddCause(id1, cause), SUCCESS);
  3026. EXPECT_EQ(checker.HasError(), true);
  3027. EXPECT_EQ(checker.Save("check_result.json"), SUCCESS);
  3028. std::string msg = "msg";
  3029. Status ret = checker.Clear(id1, msg);
  3030. EXPECT_EQ(ret, SUCCESS);
  3031. checker.Clear();
  3032. checker.RefreshErrorMessageByName("name1",PreChecker::ErrorCode::PARAM_INVALID,"node repeated in");
  3033. }
  3034. TEST_F(STestTensorflowParser, tensorflow_tbe_tfplugin_loader_test)
  3035. {
  3036. TBEPluginLoader pluginLoad;
  3037. vector<string> fileList = {};
  3038. string caffeParserPath = "";
  3039. string full_name = "dabc";
  3040. string caffe_parser_so_suff = "abc";
  3041. pluginLoad.ProcessSoFullName(fileList, caffeParserPath, full_name, caffe_parser_so_suff);
  3042. ASSERT_EQ(caffeParserPath, full_name);
  3043. pluginLoad.ClearHandles_();
  3044. std::cout << __FILE__ << std::endl;
  3045. std::string caseDir = __FILE__;
  3046. std::size_t idx = caseDir.find_last_of("/");
  3047. caseDir = caseDir.substr(0, idx);
  3048. std::string proto_file = caseDir + "/origin_models/";
  3049. std::string path = proto_file;
  3050. std::string caffe_parser_path = path;
  3051. pluginLoad.FindParserSo(path, fileList, caffe_parser_path);
  3052. setenv("ASCEND_OPP_PATH", "aaa", 1);
  3053. std::string customop_path = "";
  3054. pluginLoad.GetCustomOpPath(customop_path);
  3055. ASSERT_EQ(customop_path, "aaa/framework/custom/:aaa/framework/built-in/tensorflow");
  3056. Status ret = pluginLoad.Finalize();
  3057. EXPECT_EQ(ret, SUCCESS);
  3058. }
  3059. TEST_F(STestTensorflowParser, tensorflow_data_op_parser_test)
  3060. {
  3061. std::vector<int64_t> shape = {1, 1, 224, 224};
  3062. ge::GeTensorDesc tensor_desc;
  3063. DataOpParser opParser;
  3064. Status ret = opParser.Init5DInputTensor(shape, tensor_desc);
  3065. EXPECT_EQ(ret, SUCCESS);
  3066. ret = opParser.Init5DOutputTensor(shape, tensor_desc);
  3067. EXPECT_EQ(ret, SUCCESS);
  3068. ge::OpDescPtr op = std::make_shared<ge::OpDesc>();
  3069. ret = opParser.ParseShape(shape, op);
  3070. }
  3071. TEST_F(STestTensorflowParser, read_proto_from_mem_test)
  3072. {
  3073. tensorflow::NodeDef *node_def = initNodeDef();
  3074. const char *data = nullptr;
  3075. int size = 3;
  3076. bool ret = parser::ReadProtoFromMem(data, size, node_def);
  3077. EXPECT_EQ(false, ret);
  3078. data = "not file";
  3079. ret = parser::ReadProtoFromMem(data, size, node_def);
  3080. EXPECT_EQ(false, ret);
  3081. }
  3082. TEST_F(STestTensorflowParser, tensorflow_GetOriginalType_test)
  3083. {
  3084. ge::ComputeGraphPtr graph = std::make_shared<ge::ComputeGraph>(GRAPH_DEFAULT_NAME);
  3085. ge::OpDescPtr op = std::make_shared<ge::OpDesc>("fusionCustom", parser::FRAMEWORKOP);
  3086. ge::NodePtr node = std::make_shared<ge::Node>(op, graph);
  3087. string type = parser::FRAMEWORKOP;
  3088. Status ret = parser::GetOriginalType(node, type);
  3089. EXPECT_EQ(ret, INTERNAL_ERROR);
  3090. }
  3091. TEST_F(STestTensorflowParser, tensorflow_ReadBytesFromBinaryFile_test)
  3092. {
  3093. const char *file_name = nullptr;
  3094. char *buffer = nullptr;
  3095. int length = 1;
  3096. bool ret = parser::ReadBytesFromBinaryFile(file_name, &buffer, length);
  3097. EXPECT_EQ(ret, false);
  3098. file_name = "./caffe.proto";
  3099. ret = parser::ReadBytesFromBinaryFile(file_name, &buffer, length);
  3100. EXPECT_EQ(ret, false);
  3101. std::cout << __FILE__ << std::endl;
  3102. std::string caseDir = __FILE__;
  3103. std::size_t idx = caseDir.find_last_of("/");
  3104. caseDir = caseDir.substr(0, idx);
  3105. std::string proto_file = caseDir + "/origin_models/caffe.proto";
  3106. file_name = proto_file.c_str();
  3107. ret = parser::ReadBytesFromBinaryFile(file_name, &buffer, length);
  3108. EXPECT_EQ(ret, true);
  3109. char path[4096 + 1] = { 0 };
  3110. memset(path, 'a', 4096);
  3111. std::string realPath = parser::RealPath(path);
  3112. EXPECT_EQ(realPath, "");
  3113. const char *real_path = nullptr;
  3114. realPath = parser::RealPath(real_path);
  3115. EXPECT_EQ(realPath, "");
  3116. }
  3117. TEST_F(STestTensorflowParser, tensorflow_AclGrphParseUtil_ParseAclInputFp16Nodes_test)
  3118. {
  3119. AclGrphParseUtil parserUtil;
  3120. ge::ComputeGraphPtr graph = std::make_shared<ge::ComputeGraph>(GRAPH_DEFAULT_NAME);
  3121. std::string input_fp16_nodes = "Add";
  3122. std::string is_input_adjust_hw_layout = "is_input_adjust_hw_layout";
  3123. Status ret = parserUtil.ParseAclInputFp16Nodes(graph, input_fp16_nodes, is_input_adjust_hw_layout);
  3124. EXPECT_EQ(ret, PARAM_INVALID);
  3125. is_input_adjust_hw_layout = "true";
  3126. ret = parserUtil.ParseAclInputFp16Nodes(graph, input_fp16_nodes, is_input_adjust_hw_layout);
  3127. EXPECT_EQ(ret, PARAM_INVALID);
  3128. vector<string> adjust_fp16_format_vec = {"true", "false"};
  3129. uint32_t index = 1;
  3130. ge::OpDescPtr op_desc = std::make_shared<ge::OpDesc>();
  3131. parserUtil.AddAttrsForInputNodes(adjust_fp16_format_vec, input_fp16_nodes, index, op_desc);
  3132. std::string is_output_fp16 = "is_output_fp16";
  3133. ret = parserUtil.ParseAclOutputFp16NodesFormat(is_output_fp16);
  3134. EXPECT_EQ(ret, PARAM_INVALID);
  3135. is_output_fp16 = "false";
  3136. ret = parserUtil.ParseAclOutputFp16NodesFormat(is_output_fp16);
  3137. EXPECT_EQ(ret, SUCCESS);
  3138. is_output_fp16 = "true";
  3139. ret = parserUtil.ParseAclOutputFp16NodesFormat(is_output_fp16);
  3140. EXPECT_EQ(ret, SUCCESS);
  3141. }
  3142. TEST_F(STestTensorflowParser, tensorflow_ModelSaver_test)
  3143. {
  3144. const char *file_path = nullptr;
  3145. const Json model = {{"a", "b"}};
  3146. Status ret = ge::parser::ModelSaver::SaveJsonToFile(file_path, model);
  3147. EXPECT_EQ(ret, FAILED);
  3148. file_path = "./origin_models/";
  3149. ret = ge::parser::ModelSaver::SaveJsonToFile(file_path, model);
  3150. EXPECT_EQ(ret, FAILED);
  3151. std::cout << __FILE__ << std::endl;
  3152. std::string caseDir = __FILE__;
  3153. std::size_t idx = caseDir.find_last_of("/");
  3154. caseDir = caseDir.substr(0, idx);
  3155. std::string proto_file = caseDir + "/origin_models/caffe.proto";
  3156. file_path = proto_file.c_str();
  3157. ret = ge::parser::ModelSaver::SaveJsonToFile(file_path, model);
  3158. char path[4096 + 1] = { 0 };
  3159. memset(path, 'a', 4096);
  3160. EXPECT_EQ(-1, ge::parser::ModelSaver::CreateDirectory(path));
  3161. EXPECT_EQ(-1, ge::parser::ModelSaver::CheckPath(path));
  3162. }
  3163. TEST_F(STestTensorflowParser, create_weights_parser_failed)
  3164. {
  3165. WeightsParserFactory* factory = WeightsParserFactory::Instance();
  3166. shared_ptr<WeightsParser> weight_parser = factory->CreateWeightsParser(FRAMEWORK_RESERVED);
  3167. ASSERT_TRUE(NULL == weight_parser);
  3168. ModelParserFactory *modelFactory = ModelParserFactory::Instance();
  3169. shared_ptr<ModelParser> model_parser = modelFactory->CreateModelParser(FRAMEWORK_RESERVED);
  3170. ASSERT_TRUE(NULL == model_parser);
  3171. std::shared_ptr<OpParserFactory> parserFactory = OpParserFactory::Instance(domi::FrameworkType::CAFFE);
  3172. std::shared_ptr<OpParser> fusion_op_parser = parserFactory->CreateFusionOpParser(ge::parser::DATA);
  3173. ASSERT_TRUE(NULL == fusion_op_parser);
  3174. std::shared_ptr<OpParser> op_parser = parserFactory->CreateOpParser("10");
  3175. ASSERT_TRUE(NULL == op_parser);
  3176. }
  3177. TEST_F(STestTensorflowParser, custom_parser_adapter_register)
  3178. {
  3179. using PARSER_CREATOR_FN = std::function<std::shared_ptr<OpParser>(void)>;
  3180. PARSER_CREATOR_FN func = CustomParserAdapterRegistry::Instance()->GetCreateFunc(domi::TENSORFLOW);
  3181. CustomParserAdapterRegistry::Instance()->Register(domi::TENSORFLOW, func);
  3182. CustomParserAdapterRegistry::Instance()->Register(domi::TENSORFLOW, func);
  3183. func = CustomParserAdapterRegistry::Instance()->GetCreateFunc(domi::FRAMEWORK_RESERVED);
  3184. ASSERT_EQ(nullptr, func);
  3185. }
  3186. TEST_F(STestTensorflowParser, tensorflow_parser_api_test)
  3187. {
  3188. std::map<std::string, std::string> options = {{"ge.runFlag", "1"}};
  3189. Status ret = ParserInitialize(options);
  3190. EXPECT_EQ(ret, SUCCESS);
  3191. ret = ParserInitialize(options);
  3192. EXPECT_EQ(ret, SUCCESS);
  3193. ret = ParserFinalize();
  3194. EXPECT_EQ(ret, SUCCESS);
  3195. ret = ParserFinalize();
  3196. EXPECT_EQ(ret, SUCCESS);
  3197. }
  3198. TEST_F(STestTensorflowParser, tensorflow_FP16_parser_test)
  3199. {
  3200. parser::fp16_t fp16;
  3201. fp16.ToDouble();
  3202. fp16.ToInt8();
  3203. fp16.ToUInt8();
  3204. fp16.ToInt16();
  3205. fp16.ToUInt16();
  3206. fp16.ToInt32();
  3207. fp16.ToUInt32();
  3208. fp16.IsInf();
  3209. fp16.operator+(fp16);
  3210. fp16.operator-(fp16);
  3211. fp16.operator*(fp16);
  3212. fp16.operator/(fp16);
  3213. fp16.operator+=(fp16);
  3214. fp16.operator-=(fp16);
  3215. fp16.operator*=(fp16);
  3216. fp16.operator/=(fp16);
  3217. fp16.operator==(fp16);
  3218. fp16.operator!=(fp16);
  3219. fp16.operator>(fp16);
  3220. fp16.operator>=(fp16);
  3221. fp16.operator<(fp16);
  3222. fp16.operator<=(fp16);
  3223. fp16.operator=(fp16);
  3224. float f_val = 0.1;
  3225. fp16.operator=(f_val);
  3226. double d_val = 0.2;
  3227. fp16.operator=(d_val);
  3228. int8_t i_val = 1;
  3229. fp16.operator=(i_val);
  3230. uint8_t ui_val = 2;
  3231. fp16.operator=(ui_val);
  3232. int16_t i_vals = 1;
  3233. fp16.operator=(i_vals);
  3234. uint16_t ui16_val = 1;
  3235. fp16.operator=(ui16_val);
  3236. ui16_val = 0;
  3237. fp16.operator=(ui16_val);
  3238. ui16_val = 100000;
  3239. fp16.operator=(ui16_val);
  3240. int32_t i32_val = 0;
  3241. fp16.operator=(i32_val);
  3242. i32_val = 1;
  3243. fp16.operator=(i32_val);
  3244. uint32_t ui32_val = 0;
  3245. fp16.operator=(ui32_val);
  3246. ui32_val = 1;
  3247. fp16.operator=(ui32_val);
  3248. }
  3249. } // namespace ge