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single_op_parser.cc 19 kB

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  1. /**
  2. * Copyright 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 "single_op_parser.h"
  17. #include <vector>
  18. #include <algorithm>
  19. #include <fstream>
  20. #include <sstream>
  21. #include <nlohmann/json.hpp>
  22. #include "framework/common/debug/ge_log.h"
  23. #include "common/util/error_manager/error_manager.h"
  24. #include "common/ge_inner_error_codes.h"
  25. #include "framework/common/util.h"
  26. #include "graph/utils/tensor_utils.h"
  27. #include "graph/utils/op_desc_utils.h"
  28. #include "graph/operator_factory_impl.h"
  29. using Json = nlohmann::json;
  30. using std::string;
  31. using std::vector;
  32. using std::map;
  33. namespace ge {
  34. namespace {
  35. constexpr char const *kKeyOp = "op";
  36. constexpr char const *kKeyInputDesc = "input_desc";
  37. constexpr char const *kKeyOutputDesc = "output_desc";
  38. constexpr char const *kKeyAttr = "attr";
  39. constexpr char const *kKeyName = "name";
  40. constexpr char const *kKeyType = "type";
  41. constexpr char const *kKeyShape = "shape";
  42. constexpr char const *kKeyShapeRange = "shape_range";
  43. constexpr char const *kKeyValue = "value";
  44. constexpr char const *kKeyFormat = "format";
  45. constexpr char const *kFileSuffix = ".om";
  46. constexpr int kDumpJsonIndent = 2;
  47. constexpr int kShapeRangePairSize = 2;
  48. constexpr int kShapeRangeLow = 0;
  49. constexpr int kShapeRangeHigh = 1;
  50. map<string, GeAttrValue::ValueType> kAttrTypeDict = {
  51. {"bool", GeAttrValue::VT_BOOL},
  52. {"int", GeAttrValue::VT_INT},
  53. {"float", GeAttrValue::VT_FLOAT},
  54. {"string", GeAttrValue::VT_STRING},
  55. {"list_bool", GeAttrValue::VT_LIST_BOOL},
  56. {"list_int", GeAttrValue::VT_LIST_INT},
  57. {"list_float", GeAttrValue::VT_LIST_FLOAT},
  58. {"list_string", GeAttrValue::VT_LIST_STRING},
  59. {"list_list_int", GeAttrValue::VT_LIST_LIST_INT},
  60. {"data_type", GeAttrValue::VT_DATA_TYPE},
  61. };
  62. map<string, DataType> kDataTypeDict = {
  63. {"bool", DT_BOOL},
  64. {"int8", DT_INT8},
  65. {"uint8", DT_UINT8},
  66. {"int16", DT_INT16},
  67. {"uint16", DT_UINT16},
  68. {"int32", DT_INT32},
  69. {"uint32", DT_UINT32},
  70. {"int64", DT_INT64},
  71. {"uint64", DT_UINT64},
  72. {"float16", DT_FLOAT16},
  73. {"half", DT_FLOAT16},
  74. {"fp16", DT_FLOAT16},
  75. {"float", DT_FLOAT},
  76. {"float32", DT_FLOAT},
  77. {"double", DT_DOUBLE},
  78. };
  79. map<string, Format> kFormatDict = {
  80. {"nchw", FORMAT_NCHW},
  81. {"nhwc", FORMAT_NHWC},
  82. {"nd", FORMAT_ND},
  83. {"fractal_nz", FORMAT_FRACTAL_NZ},
  84. {"fractal_z", FORMAT_FRACTAL_Z},
  85. {"nc1hwc0", FORMAT_NC1HWC0},
  86. };
  87. }
  88. template<typename T>
  89. void SetAttrValue(const Json &j, SingleOpAttr &attr) {
  90. attr.value.SetValue<T>(j.at(kKeyValue).get<T>());
  91. }
  92. template<typename T>
  93. T GetValue(const map<string, T> &dict, string &key, T default_val) {
  94. transform(key.begin(), key.end(), key.begin(), ::tolower);
  95. auto it = dict.find(key);
  96. if (it == dict.end()) {
  97. return default_val;
  98. }
  99. return it->second;
  100. }
  101. void from_json(const Json &j, SingleOpTensorDesc &desc) {
  102. desc.dims = j.at(kKeyShape).get<vector<int64_t>>();
  103. auto it = j.find(kKeyShapeRange);
  104. if (it != j.end()) {
  105. desc.dim_ranges = j.at(kKeyShapeRange).get<vector<std::vector<int64_t>>>();
  106. }
  107. string format_str = j.at(kKeyFormat).get<string>();
  108. string type_str = j.at(kKeyType).get<string>();
  109. desc.format = GetValue(kFormatDict, format_str, FORMAT_RESERVED);
  110. desc.type = GetValue(kDataTypeDict, type_str, DT_UNDEFINED);
  111. auto tensor_name = j.find(kKeyName);
  112. if (tensor_name != j.end()) {
  113. desc.name = tensor_name->get<string>();
  114. }
  115. }
  116. void from_json(const Json &j, SingleOpAttr &attr) {
  117. attr.name = j.at(kKeyName).get<string>();
  118. attr.type = j.at(kKeyType).get<string>();
  119. auto it = kAttrTypeDict.find(attr.type);
  120. if (it == kAttrTypeDict.end()) {
  121. GELOGE(UNSUPPORTED, "Parse attr[%s] failed. Unsupported type: %s", attr.name.c_str(), attr.type.c_str());
  122. return;
  123. }
  124. switch (it->second) {
  125. case GeAttrValue::VT_BOOL:
  126. SetAttrValue<bool>(j, attr);
  127. break;
  128. case GeAttrValue::VT_INT:
  129. SetAttrValue<int64_t>(j, attr);
  130. break;
  131. case GeAttrValue::VT_FLOAT:
  132. SetAttrValue<float>(j, attr);
  133. break;
  134. case GeAttrValue::VT_STRING:
  135. SetAttrValue<string>(j, attr);
  136. break;
  137. case GeAttrValue::VT_LIST_BOOL:
  138. SetAttrValue<vector<bool>>(j, attr);
  139. break;
  140. case GeAttrValue::VT_LIST_INT:
  141. SetAttrValue<vector<int64_t>>(j, attr);
  142. break;
  143. case GeAttrValue::VT_LIST_FLOAT:
  144. SetAttrValue<vector<float>>(j, attr);
  145. break;
  146. case GeAttrValue::VT_LIST_STRING:
  147. SetAttrValue<vector<string>>(j, attr);
  148. break;
  149. case GeAttrValue::VT_LIST_LIST_INT:
  150. SetAttrValue<vector<vector<int64_t>>>(j, attr);
  151. break;
  152. case GeAttrValue::VT_DATA_TYPE:
  153. SetAttrValue<DataType>(j, attr);
  154. break;
  155. default:
  156. GELOGE(UNSUPPORTED, "Parse attr[%s] failed. Unsupported type: %s", attr.name.c_str(), attr.type.c_str());
  157. break;
  158. }
  159. }
  160. void from_json(const Json &j, SingleOpDesc &desc) {
  161. desc.op = j.at(kKeyOp).get<string>();
  162. auto input_desc = j.find(kKeyInputDesc);
  163. if (input_desc != j.end()) {
  164. desc.input_desc = input_desc->get<vector<SingleOpTensorDesc>>();
  165. }
  166. auto output_desc = j.find(kKeyOutputDesc);
  167. if (output_desc != j.end()) {
  168. desc.output_desc = output_desc->get<vector<SingleOpTensorDesc>>();
  169. }
  170. auto attr_field = j.find(kKeyAttr);
  171. if (attr_field != j.end()) {
  172. desc.attrs = attr_field->get<vector<SingleOpAttr>>();
  173. }
  174. }
  175. Status SingleOpParser::ReadJsonFile(const std::string &file, Json &json_obj) {
  176. std::string real_path = RealPath(file.c_str());
  177. if (real_path.empty()) {
  178. ErrorManager::GetInstance().ATCReportErrMessage("E10023", {"value"}, {file});
  179. GELOGE(FAILED, "Input parameter[--singleop]'s value[%s] is not a valid path.", file.c_str());
  180. return INTERNAL_ERROR;
  181. }
  182. std::ifstream ifs(real_path);
  183. if (!ifs.is_open()) {
  184. ErrorManager::GetInstance().ATCReportErrMessage("E10024", {"value"}, {file});
  185. GELOGE(FAILED, "Open file[%s] provided in input parameter[--singleop] failed.", file.c_str());
  186. return FAILED;
  187. }
  188. try {
  189. ifs >> json_obj;
  190. } catch (const std::exception &e) {
  191. ErrorManager::GetInstance().ATCReportErrMessage("E10025", {"realpath", "errmsg"}, {real_path, e.what()});
  192. GELOGE(PARAM_INVALID, "Parse file[%s] provided in input parameter[--singleop] failed, exception = %s.",
  193. real_path.c_str(), e.what());
  194. return PARAM_INVALID;
  195. }
  196. ifs.close();
  197. return SUCCESS;
  198. }
  199. bool SingleOpParser::Validate(const SingleOpDesc &op_desc) {
  200. if (op_desc.op.empty()) {
  201. ErrorManager::GetInstance().ATCReportErrMessage("E10026");
  202. GELOGE(PARAM_INVALID, "Op name is empty");
  203. return false;
  204. }
  205. int index = 0;
  206. for (auto &tensor_desc : op_desc.input_desc) {
  207. if ((tensor_desc.type == DT_UNDEFINED && tensor_desc.format != FORMAT_RESERVED) ||
  208. (tensor_desc.type != DT_UNDEFINED && tensor_desc.format == FORMAT_RESERVED)){
  209. ErrorManager::GetInstance().ATCReportErrMessage("E10027", {"input", "type", "index"},
  210. {"intput", "datatype or format", std::to_string(index)});
  211. GELOGE(PARAM_INVALID, "Input's dataType or format is invalid when the index is %d", index);
  212. return false;
  213. }
  214. ++index;
  215. }
  216. index = 0;
  217. for (auto &tensor_desc : op_desc.output_desc) {
  218. if (tensor_desc.type == DT_UNDEFINED) {
  219. ErrorManager::GetInstance().ATCReportErrMessage("E10027", {"input", "type", "index"},
  220. {"output", "datatype", std::to_string(index)});
  221. GELOGE(PARAM_INVALID, "Output's dataType is invalid when the index is %d", index);
  222. return false;
  223. }
  224. if (tensor_desc.format == FORMAT_RESERVED) {
  225. ErrorManager::GetInstance().ATCReportErrMessage("E10027", {"input", "type", "index"},
  226. {"output", "format", std::to_string(index)});
  227. GELOGE(PARAM_INVALID, "Output's format is invalid when the index is %d", index);
  228. return false;
  229. }
  230. ++index;
  231. }
  232. for (auto &attr : op_desc.attrs) {
  233. if (attr.name.empty()) {
  234. ErrorManager::GetInstance().ATCReportErrMessage("E10029");
  235. GELOGE(PARAM_INVALID, "attr name is empty");
  236. return false;
  237. }
  238. if (attr.value.IsEmpty()) {
  239. ErrorManager::GetInstance().ATCReportErrMessage("E10030", {"attrname"}, {attr.name});
  240. GELOGE(PARAM_INVALID, "Parse attr \"%s\" failed. ", attr.name.c_str());
  241. return false;
  242. }
  243. }
  244. return true;
  245. }
  246. std::unique_ptr<OpDesc> SingleOpParser::CreateOpDesc(const string &op_type) {
  247. return std::unique_ptr<OpDesc>(new(std::nothrow) OpDesc(op_type, op_type));
  248. }
  249. Status SingleOpParser::ConvertToBuildParam(int index,
  250. const SingleOpDesc &single_op_desc,
  251. SingleOpBuildParam &build_param) {
  252. auto op_desc = CreateOpDesc(single_op_desc.op);
  253. if (op_desc == nullptr) {
  254. GELOGE(MEMALLOC_FAILED, "Failed to create instance of opDesc");
  255. return MEMALLOC_FAILED;
  256. }
  257. std::stringstream file_name;
  258. file_name << index;
  259. file_name << "_" << single_op_desc.op;
  260. for (auto &desc : single_op_desc.input_desc) {
  261. file_name << "_" << desc.type << "_" << desc.format;
  262. for (auto dim : desc.dims) {
  263. file_name << "_" << dim;
  264. }
  265. GeTensorDesc ge_tensor_desc(GeShape(desc.dims),
  266. desc.format,
  267. desc.type);
  268. ge_tensor_desc.SetOriginFormat(desc.format);
  269. GE_CHK_STATUS_RET_NOLOG(SetShapeRange(op_desc->GetName(), desc, ge_tensor_desc));
  270. TensorUtils::SetRealDimCnt(ge_tensor_desc, desc.dims.size());
  271. TensorUtils::SetInputTensor(ge_tensor_desc, true);
  272. TensorUtils::SetOutputTensor(ge_tensor_desc, false);
  273. if (desc.name.empty()) {
  274. op_desc->AddInputDesc(ge_tensor_desc);
  275. } else {
  276. op_desc->AddInputDesc(desc.name, ge_tensor_desc);
  277. }
  278. build_param.inputs.emplace_back(ge_tensor_desc);
  279. }
  280. for (auto &desc : single_op_desc.output_desc) {
  281. file_name << "_" << desc.type << "_" << desc.format;
  282. for (auto dim : desc.dims) {
  283. file_name << "_" << dim;
  284. }
  285. GeTensorDesc ge_tensor_desc(GeShape(desc.dims),
  286. desc.format,
  287. desc.type);
  288. ge_tensor_desc.SetOriginFormat(desc.format);
  289. GE_CHK_STATUS_RET_NOLOG(SetShapeRange(op_desc->GetName(), desc, ge_tensor_desc));
  290. TensorUtils::SetRealDimCnt(ge_tensor_desc, desc.dims.size());
  291. TensorUtils::SetInputTensor(ge_tensor_desc, false);
  292. TensorUtils::SetOutputTensor(ge_tensor_desc, true);
  293. if (desc.name.empty()) {
  294. op_desc->AddOutputDesc(ge_tensor_desc);
  295. } else {
  296. op_desc->AddOutputDesc(desc.name, ge_tensor_desc);
  297. }
  298. build_param.outputs.emplace_back(ge_tensor_desc);
  299. }
  300. for (const auto &attr : single_op_desc.attrs) {
  301. op_desc->SetAttr(attr.name, attr.value);
  302. }
  303. if (VerifyOpInputOutputSizeByIr(*op_desc) != SUCCESS) {
  304. GELOGE(PARAM_INVALID, "Verify op [%s] input or output size failed.", op_desc->GetType().c_str());
  305. return PARAM_INVALID;
  306. }
  307. file_name << kFileSuffix;
  308. build_param.file_name = file_name.str();
  309. build_param.op_desc.reset(op_desc.release());
  310. return SUCCESS;
  311. }
  312. Status SingleOpParser::VerifyOpInputOutputSizeByIr(const OpDesc &current_op_desc) {
  313. ge::Operator operator_ir = ge::OperatorFactory::CreateOperator("tmp_operator", current_op_desc.GetType());
  314. if (!operator_ir.IsEmpty()) {
  315. auto opdesc_ir = ge::OpDescUtils::GetOpDescFromOperator(operator_ir);
  316. GE_CHECK_NOTNULL(opdesc_ir);
  317. size_t current_opdesc_inputs_num = current_op_desc.GetInputsSize();
  318. size_t ir_opdesc_inputs_num = opdesc_ir->GetInputsSize();
  319. if (current_opdesc_inputs_num < ir_opdesc_inputs_num) {
  320. string reason = "is smaller than the ir needed input size " + std::to_string(ir_opdesc_inputs_num);
  321. ErrorManager::GetInstance().ATCReportErrMessage("E19014", {"opname", "value", "reason"},
  322. {current_op_desc.GetName(), "input size " + std::to_string(current_opdesc_inputs_num), reason});
  323. GELOGE(PARAM_INVALID, "This op [%s] input size %zu is smaller than the ir needed input size %zu",
  324. current_op_desc.GetName().c_str(), current_opdesc_inputs_num, ir_opdesc_inputs_num);
  325. return PARAM_INVALID;
  326. }
  327. size_t current_opdesc_outputs_num = current_op_desc.GetOutputsSize();
  328. size_t ir_opdesc_outputs_num = opdesc_ir->GetOutputsSize();
  329. if (current_opdesc_outputs_num < ir_opdesc_outputs_num) {
  330. string reason = "is smaller than the ir needed output size " + std::to_string(ir_opdesc_outputs_num);
  331. ErrorManager::GetInstance().ATCReportErrMessage("E19014", {"opname", "value", "reason"},
  332. {current_op_desc.GetName(), "output size " + std::to_string(current_opdesc_outputs_num), reason});
  333. GELOGE(PARAM_INVALID, "This op [%s] output size %zu is smaller than the ir needed output size %zu",
  334. current_op_desc.GetName().c_str(), current_opdesc_outputs_num, ir_opdesc_outputs_num);
  335. return PARAM_INVALID;
  336. }
  337. }
  338. return SUCCESS;
  339. }
  340. Status SingleOpParser::SetShapeRange(const std::string &op_name,
  341. const SingleOpTensorDesc &tensor_desc,
  342. GeTensorDesc &ge_tensor_desc) {
  343. auto num_shape_ranges = tensor_desc.dim_ranges.size();
  344. GELOGD("Number of shape ranges = %zu", num_shape_ranges);
  345. auto it = std::find(tensor_desc.dims.begin(), tensor_desc.dims.end(), ge::UNKNOWN_DIM_NUM);
  346. if (it != tensor_desc.dims.end()) {
  347. if (tensor_desc.dims != ge::UNKNOWN_RANK) {
  348. ErrorManager::GetInstance().ATCReportErrMessage("E19014", {"opname", "value", "reason"},
  349. {op_name,
  350. "shape",
  351. "has unknown rank but dim size is not one"});
  352. GELOGE(PARAM_INVALID, "Invalid tensor shape: [%s]", ge_tensor_desc.MutableShape().ToString().c_str());
  353. return PARAM_INVALID;
  354. }
  355. if (!tensor_desc.dim_ranges.empty()) {
  356. ErrorManager::GetInstance().ATCReportErrMessage("E19014", {"opname", "value", "reason"},
  357. {op_name,
  358. "shape range",
  359. "is not needed while the rank the shape is unknown"});
  360. GELOGE(PARAM_INVALID, "Shape range is not needed while the rank the shape is unknown");
  361. return PARAM_INVALID;
  362. }
  363. GELOGD("Shape is unknown rank, do not set shape range");
  364. return SUCCESS;
  365. }
  366. std::vector<std::pair<int64_t, int64_t>> shape_range;
  367. size_t range_index = 0;
  368. for (auto dim : tensor_desc.dims) {
  369. if (dim >= 0) {
  370. shape_range.emplace_back(dim, dim);
  371. GELOGD("Adding shape range: [%ld, %ld]", dim, dim);
  372. } else {
  373. GELOGD("To get shape range by index = %zu", range_index);
  374. if (range_index >= num_shape_ranges) {
  375. string reason = "is smaller than the unknown dim size " + std::to_string(++range_index);
  376. ErrorManager::GetInstance().ATCReportErrMessage("E19014", {"opname", "value", "reason"},
  377. {op_name,
  378. "shape range size " + std::to_string(num_shape_ranges),
  379. reason});
  380. GELOGE(PARAM_INVALID, "The number of shape_range mismatches that of unknown dims.");
  381. return PARAM_INVALID;
  382. }
  383. auto &range = tensor_desc.dim_ranges[range_index];
  384. if (range.size() != kShapeRangePairSize) {
  385. string reason = "has " + std::to_string(range.size()) + " item(s)";
  386. ErrorManager::GetInstance().ATCReportErrMessage("E19014", {"opname", "value", "reason"},
  387. {op_name,
  388. "shape range " + std::to_string(range_index),
  389. reason});
  390. GELOGE(PARAM_INVALID, "Invalid shape range entry. index = %zu, size = %zu", range_index, range.size());
  391. return PARAM_INVALID;
  392. }
  393. shape_range.emplace_back(range[kShapeRangeLow], range[kShapeRangeHigh]);
  394. GELOGD("Adding shape range: [%ld, %ld]", range[kShapeRangeLow], range[kShapeRangeHigh]);
  395. ++range_index;
  396. }
  397. }
  398. if (num_shape_ranges != range_index) {
  399. string reason = "is greater than the unknown dim size " + std::to_string(range_index);
  400. ErrorManager::GetInstance().ATCReportErrMessage("E19014", {"opname", "value", "reason"},
  401. {op_name,
  402. "shape range size " + std::to_string(num_shape_ranges),
  403. reason});
  404. GELOGE(PARAM_INVALID,
  405. "The number of shape_range(%zu) mismatches that of unknown dims(%zu).",
  406. num_shape_ranges,
  407. range_index);
  408. return PARAM_INVALID;
  409. }
  410. if (range_index > 0) {
  411. ge_tensor_desc.SetShapeRange(shape_range);
  412. }
  413. return SUCCESS;
  414. }
  415. Status SingleOpParser::ParseSingleOpList(const std::string &file, std::vector<SingleOpBuildParam> &op_list) {
  416. int index = 0;
  417. try {
  418. Json single_op_list_json;
  419. auto ret = ReadJsonFile(file, single_op_list_json);
  420. if (ret != SUCCESS) {
  421. return ret;
  422. }
  423. for (const Json &single_op_json : single_op_list_json) {
  424. SingleOpDesc single_op_desc;
  425. GELOGI("Parsing op[%d], jsonStr = %s", index, single_op_json.dump(kDumpJsonIndent).c_str());
  426. single_op_desc = single_op_json;
  427. if (!Validate(single_op_desc)) {
  428. GELOGE(PARAM_INVALID, "Validate the index[%d] of op failed when read json file[%s].", index, file.c_str());
  429. return PARAM_INVALID;
  430. }
  431. SingleOpBuildParam param;
  432. ret = ConvertToBuildParam(index, single_op_desc, param);
  433. if (ret != SUCCESS) {
  434. return ret;
  435. }
  436. op_list.emplace_back(param);
  437. GELOGI("Parse the index[%d] of op success", index);
  438. index += 1;
  439. }
  440. } catch (const nlohmann::json::exception &e) {
  441. ErrorManager::GetInstance().ATCReportErrMessage("E10032", {"index", "jsonfile", "exception"},
  442. {std::to_string(index), file, e.what()});
  443. GELOGE(PARAM_INVALID, "Parse the index[%d] of op failed when read json file[%s], exception %s",
  444. index, file.c_str(), e.what());
  445. return PARAM_INVALID;
  446. }
  447. return SUCCESS;
  448. }
  449. } // namespace ge

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