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oplib.cc 14 kB

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  1. /**
  2. * Copyright 2019 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 "backend/kernel_compiler/oplib/oplib.h"
  17. #include <memory>
  18. #include <map>
  19. #include <fstream>
  20. #include "utils/log_adapter.h"
  21. #include "utils/overload.h"
  22. #include "utils/ms_context.h"
  23. namespace mindspore {
  24. namespace kernel {
  25. constexpr auto kImplyType = "imply_type";
  26. constexpr auto kOpName = "op_name";
  27. constexpr auto kFusionType = "fusion_type";
  28. constexpr auto kAsyncFlag = "async_flag";
  29. constexpr auto kBinfileName = "binfile_name";
  30. constexpr auto kComputeCost = "compute_cost";
  31. constexpr auto kKernelName = "kernel_name";
  32. constexpr auto kPartialFlag = "partial_flag";
  33. constexpr auto kReshapeType = "reshape_type";
  34. constexpr auto kOpPattern = "op_pattern";
  35. constexpr auto kIsDynamicFormat = "is_dynamic_format";
  36. constexpr auto kDynamicFormat = "dynamicFormat";
  37. constexpr auto kFormatAgnostic = "formatAgnostic";
  38. constexpr auto kNeedCheckSupported = "need_check_supported";
  39. constexpr auto kBroadcast = "broadcast";
  40. constexpr auto kReduce = "reduce";
  41. constexpr auto kDynamicShape = "dynamic_shape";
  42. constexpr auto kDtypeFormat = "dtype_format";
  43. constexpr auto kAttr = "attr";
  44. constexpr auto kIputs = "inputs";
  45. constexpr auto kOutputs = "outputs";
  46. constexpr auto kAiCPU = "AiCPU";
  47. constexpr auto kAiCore = "AiCore";
  48. constexpr auto kCUDA = "CUDA";
  49. constexpr auto kTbe = "TBE";
  50. constexpr auto kAkg = "AKG";
  51. constexpr auto kName = "name";
  52. constexpr auto kParamType = "param_type";
  53. constexpr auto kDtype = "dtype";
  54. constexpr auto kType = "type";
  55. constexpr auto kValue = "value";
  56. constexpr auto kDefaultValue = "default_value";
  57. constexpr auto kIndex = "index";
  58. constexpr auto kFormat = "format";
  59. constexpr auto kNeedCompile = "need_compile";
  60. constexpr auto kShape = "shape";
  61. constexpr auto kProcessor = "processor";
  62. std::multimap<std::string, std::shared_ptr<OpInfo>> OpLib::op_info_;
  63. static std::string ImplTypeToStr(OpImplyType impl_type) {
  64. switch (impl_type) {
  65. case kTBE:
  66. return kTbe;
  67. case kAKG:
  68. return kAkg;
  69. case kAICPU:
  70. return kAiCPU;
  71. default:
  72. return "unknown";
  73. }
  74. }
  75. bool OpLib::RegOp(const std::string &json_string, const std::string &impl_path) {
  76. bool ret = false;
  77. try {
  78. auto op_json = nlohmann::json::parse(json_string);
  79. std::string imply_type_string = op_json.at(kImplyType);
  80. std::string op_name = op_json.at(kOpName);
  81. if (imply_type_string == kTbe) {
  82. OpImplyType imply_type = kTBE;
  83. ret = DecodeOpInfo(op_json, imply_type, impl_path);
  84. } else if (imply_type_string == kAkg) {
  85. OpImplyType imply_type = kAKG;
  86. ret = DecodeOpInfo(op_json, imply_type, impl_path);
  87. } else if (imply_type_string == kAiCPU) {
  88. OpImplyType imply_type = kAICPU;
  89. ret = DecodeOpInfo(op_json, imply_type, impl_path);
  90. } else {
  91. MS_LOG(ERROR) << "Not support imply_type";
  92. }
  93. if (!ret) {
  94. MS_LOG(ERROR) << "RegOp failed: op_name: " << op_name << " imply_type " << imply_type_string;
  95. }
  96. } catch (const std::exception &e) {
  97. MS_LOG(ERROR) << "get op json elements failed: " << e.what();
  98. }
  99. return ret;
  100. }
  101. void OpLib::DecodeTBESpecificInfo(const nlohmann::json &obj, const std::shared_ptr<OpInfo> &op_info) {
  102. const std::map<std::string, kernel::OpPattern> kOpPatternMap = {
  103. {kFormatAgnostic, kFormatAgnosticPattern}, {kBroadcast, kBroadcastPattern}, {kReduce, kReducePattern}};
  104. MS_EXCEPTION_IF_NULL(op_info);
  105. op_info->set_async_flag(obj.at(kAsyncFlag));
  106. op_info->set_binfile_name(obj.at(kBinfileName));
  107. op_info->set_compute_cost(obj.at(kComputeCost));
  108. op_info->set_kernel_name(obj.at(kKernelName));
  109. op_info->set_partial_flag(obj.at(kPartialFlag));
  110. op_info->set_need_check_supported(obj.at(kNeedCheckSupported));
  111. if (obj.find(kDynamicShape) != obj.end()) {
  112. op_info->set_dynamic_shape(obj.at(kDynamicShape));
  113. }
  114. if (obj.find(kIsDynamicFormat) != obj.end()) {
  115. op_info->set_is_dynamic_format(obj.at(kIsDynamicFormat));
  116. }
  117. if (obj.find(kOpPattern) != obj.end()) {
  118. std::string op_pattern = obj.at(kOpPattern);
  119. auto find_iter = kOpPatternMap.find(op_pattern);
  120. if (find_iter == kOpPatternMap.end()) {
  121. if (!op_pattern.empty()) {
  122. MS_LOG(WARNING) << "Op pattern set value error: " << op_pattern;
  123. }
  124. op_info->set_op_pattern(kCommonPattern);
  125. } else {
  126. op_info->set_op_pattern(find_iter->second);
  127. }
  128. }
  129. }
  130. void OpLib::DecodeAKGSpecificInfo(const nlohmann::json &obj, const std::shared_ptr<OpInfo> &op_info) {
  131. MS_EXCEPTION_IF_NULL(op_info);
  132. op_info->set_processor(obj.at(kProcessor));
  133. }
  134. bool OpLib::RegOpFromLocalInfo() {
  135. static bool has_load = false;
  136. if (has_load) {
  137. return true;
  138. }
  139. MS_LOG(INFO) << "Start";
  140. has_load = true;
  141. std::string dir = common::GetEnv("MINDSPORE_OP_INFO_PATH");
  142. if (dir.empty()) {
  143. MS_LOG(INFO) << "MindSpore op info path does not been set. use op info from python pass.";
  144. return true;
  145. }
  146. char real_path[PATH_MAX] = {0};
  147. if (dir.size() >= PATH_MAX) {
  148. MS_LOG(ERROR) << "Op info path is invalid: " << dir;
  149. return false;
  150. }
  151. #if defined(_WIN32) || defined(_WIN64)
  152. if (_fullpath(real_path, common::SafeCStr(dir), PATH_MAX) == nullptr) {
  153. MS_LOG(ERROR) << "Op info path is invalid: " << dir;
  154. return false;
  155. }
  156. #else
  157. if (realpath(common::SafeCStr(dir), real_path) == nullptr) {
  158. MS_LOG(ERROR) << "Op info path is invalid: " << dir;
  159. return false;
  160. }
  161. if (strlen(real_path) >= PATH_MAX) {
  162. MS_LOG(ERROR) << "Op info path is invalid, the absolute path length is greater than PATH_MAX";
  163. return false;
  164. }
  165. #endif
  166. MS_LOG(INFO) << "Start to read op info from local file.";
  167. std::ifstream file(real_path);
  168. if (!file.is_open()) {
  169. MS_LOG(ERROR) << "Find op info file failed.";
  170. return false;
  171. }
  172. std::string line;
  173. while (getline(file, line)) {
  174. if (!line.empty()) {
  175. (void)OpLib::RegOp(line, "");
  176. }
  177. }
  178. MS_LOG(INFO) << "End";
  179. return true;
  180. }
  181. bool OpLib::DecodeOpInfo(const nlohmann::json &obj, const mindspore::kernel::OpImplyType imply_type,
  182. const std::string &impl_path) {
  183. std::shared_ptr<OpInfo> op_info = std::make_shared<OpInfo>();
  184. MS_EXCEPTION_IF_NULL(op_info);
  185. op_info->set_op_name(obj.at(kOpName));
  186. op_info->set_impl_path(impl_path);
  187. op_info->set_imply_type(imply_type);
  188. op_info->set_fusion_type(obj.at(kFusionType));
  189. if (imply_type == kTBE) {
  190. DecodeTBESpecificInfo(obj, op_info);
  191. } else if (imply_type == kAKG) {
  192. DecodeAKGSpecificInfo(obj, op_info);
  193. }
  194. auto attrs = obj.at(kAttr);
  195. for (const auto &attr : attrs) {
  196. if (!DecodeAttr(attr, imply_type, op_info)) {
  197. MS_LOG(ERROR) << "DecodeAttr Failed";
  198. return false;
  199. }
  200. }
  201. nlohmann::json dtype_format;
  202. if (obj.find(kDtypeFormat) != obj.end()) {
  203. dtype_format = obj.at(kDtypeFormat);
  204. }
  205. auto inputs = obj.at(kIputs);
  206. for (const auto &input : inputs) {
  207. if (!DecodeInputOutput(input, imply_type, kInput, op_info, dtype_format)) {
  208. MS_LOG(ERROR) << "DecodeInputOutput Failed";
  209. return false;
  210. }
  211. }
  212. auto outputs = obj.at(kOutputs);
  213. for (const auto &output : outputs) {
  214. if (!DecodeInputOutput(output, imply_type, kOutput, op_info, dtype_format)) {
  215. MS_LOG(ERROR) << "DecodeInputOutput Failed";
  216. return false;
  217. }
  218. }
  219. if (CheckRepetition(op_info)) {
  220. MS_LOG(WARNING) << "This op info has been already registered. op name: " << op_info->op_name()
  221. << ", impl type: " << ImplTypeToStr(op_info->imply_type())
  222. << ", impl path: " << op_info->impl_path();
  223. return true;
  224. }
  225. if (!GetRefInfo(op_info)) {
  226. MS_LOG(ERROR) << "GetRefInfo Failed";
  227. return false;
  228. }
  229. op_info_.emplace(op_info->op_name(), op_info);
  230. return true;
  231. }
  232. bool OpLib::DecodeAttr(const nlohmann::json &obj, const OpImplyType imply_type,
  233. const std::shared_ptr<OpInfo> &op_info) {
  234. MS_EXCEPTION_IF_NULL(op_info);
  235. bool ret = true;
  236. try {
  237. std::shared_ptr<OpAttr> op_attr = std::make_shared<OpAttr>();
  238. MS_EXCEPTION_IF_NULL(op_attr);
  239. op_attr->set_name(obj.at(kName));
  240. if (imply_type != kAICPU) {
  241. op_attr->set_param_type(obj.at(kParamType));
  242. }
  243. op_attr->set_type(obj.at(kType));
  244. if (imply_type == kTBE) {
  245. op_attr->set_value(obj.at(kValue));
  246. }
  247. if (obj.find(kDefaultValue) != obj.end()) {
  248. op_attr->set_default_value(obj.at(kDefaultValue));
  249. }
  250. op_info->add_attrs_ptr(op_attr);
  251. } catch (const std::exception &e) {
  252. MS_LOG(ERROR) << "DecodeAttr failed:" << e.what();
  253. ret = false;
  254. }
  255. return ret;
  256. }
  257. bool OpLib::DecodeDtypeFormat(const nlohmann::json &dtype_format, const std::shared_ptr<OpIOInfo> &op_io,
  258. size_t index) {
  259. MS_EXCEPTION_IF_NULL(op_io);
  260. bool ret = true;
  261. try {
  262. std::vector<std::string> dtype;
  263. std::vector<std::string> format;
  264. for (const auto &it : dtype_format) {
  265. dtype.emplace_back(it[index][0]);
  266. format.emplace_back(it[index][1]);
  267. }
  268. op_io->set_dtypes(dtype);
  269. op_io->set_formats(format);
  270. } catch (const std::exception &e) {
  271. MS_LOG(ERROR) << "DecodeDtypeFormat failed" << e.what();
  272. ret = false;
  273. }
  274. return ret;
  275. }
  276. bool OpLib::DecodeInputOutput(const nlohmann::json &obj, const OpImplyType imply_type, const OpIOType io_type,
  277. const std::shared_ptr<OpInfo> &op_info, const nlohmann::json &dtype_format) {
  278. MS_EXCEPTION_IF_NULL(op_info);
  279. bool ret = true;
  280. try {
  281. std::shared_ptr<OpIOInfo> op_io = std::make_shared<OpIOInfo>();
  282. MS_EXCEPTION_IF_NULL(op_io);
  283. op_io->set_index(obj.at(kIndex));
  284. op_io->set_name(obj.at(kName));
  285. if (!dtype_format.empty()) {
  286. if (!DecodeDtypeFormat(dtype_format, op_io, op_info->inputs_ptr().size() + op_info->outputs_ptr().size())) {
  287. MS_LOG(ERROR) << "Decode dtype format failed";
  288. return false;
  289. }
  290. } else {
  291. op_io->set_dtypes(obj.at(kDtype));
  292. op_io->set_formats(obj.at(kFormat));
  293. }
  294. if (op_io->dtypes().size() != op_io->formats().size()) {
  295. MS_LOG(ERROR) << "op " << op_io->name() << " dtype size: " << op_io->dtypes()
  296. << " is not equal to format size: " << op_io->formats();
  297. return false;
  298. }
  299. if (obj.find(kParamType) != obj.end()) {
  300. op_io->set_param_type(obj.at(kParamType));
  301. }
  302. if (imply_type == kTBE) {
  303. if (obj.find(kNeedCompile) != obj.end()) {
  304. op_io->set_need_compile(obj.at(kNeedCompile));
  305. }
  306. if (obj.find(kShape) != obj.end()) {
  307. op_io->set_shape(obj.at(kShape));
  308. }
  309. if (obj.find(kReshapeType) != obj.end()) {
  310. op_io->set_reshape_type(obj.at(kReshapeType));
  311. }
  312. }
  313. if (io_type == kInput) {
  314. op_info->add_inputs_ptr(op_io);
  315. } else if (io_type == kOutput) {
  316. op_info->add_outputs_ptr(op_io);
  317. }
  318. } catch (const std::exception &e) {
  319. MS_LOG(ERROR) << "DecodeInputOutput failed" << e.what();
  320. ret = false;
  321. }
  322. return ret;
  323. }
  324. std::shared_ptr<OpInfo> OpLib::FindOp(const std::string &op_name, OpImplyType imply_type, bool is_dynamic_shape) {
  325. if (!OpLib::RegOpFromLocalInfo()) {
  326. MS_LOG(INFO) << "Warning reg local op info failed.";
  327. }
  328. auto context = MsContext::GetInstance();
  329. MS_EXCEPTION_IF_NULL(context);
  330. bool is_gpu = (context->get_param<std::string>(MS_CTX_DEVICE_TARGET) == kGPUDevice);
  331. if (is_gpu && (imply_type == kTBE || imply_type == kAICPU)) {
  332. MS_LOG(ERROR) << "FindOp failed: opname: " << op_name << ", imply_type: " << ImplTypeToStr(imply_type)
  333. << ", current op num: " << op_info_.size();
  334. return nullptr;
  335. }
  336. std::string target_processor = is_gpu ? kCUDA : kAiCore;
  337. for (auto [iter, end] = op_info_.equal_range(op_name); iter != end; ++iter) {
  338. auto &op_info = iter->second;
  339. MS_EXCEPTION_IF_NULL(op_info);
  340. if (op_info->imply_type() != imply_type) {
  341. continue;
  342. }
  343. if (imply_type == kAKG && op_info->processor() != target_processor) {
  344. continue;
  345. }
  346. if (is_dynamic_shape && !op_info->dynamic_shape()) {
  347. continue;
  348. }
  349. return op_info;
  350. }
  351. MS_LOG(INFO) << "FindOp failed: opname: " << op_name << ", imply_type: " << ImplTypeToStr(imply_type)
  352. << ", current op num: " << op_info_.size() << " is_dynamic_shape:" << is_dynamic_shape;
  353. return nullptr;
  354. }
  355. bool OpLib::GetRefInfo(const std::shared_ptr<OpInfo> &op_info) {
  356. MS_EXCEPTION_IF_NULL(op_info);
  357. const auto &output_infos = op_info->outputs_ptr();
  358. const auto &input_infos = op_info->inputs_ptr();
  359. for (size_t out_index = 0; out_index < output_infos.size(); out_index++) {
  360. MS_EXCEPTION_IF_NULL(output_infos[out_index]);
  361. const auto &out_name = output_infos[out_index]->name();
  362. for (size_t in_index = 0; in_index < input_infos.size(); in_index++) {
  363. MS_EXCEPTION_IF_NULL(input_infos[in_index]);
  364. const auto &in_name = input_infos[in_index]->name();
  365. if (out_name == in_name) {
  366. if (op_info->has_ref_index(out_index)) {
  367. MS_LOG(ERROR) << "The out_index " << out_index << " is already in ref_info";
  368. return false;
  369. }
  370. op_info->add_ref_pair(out_index, in_index);
  371. }
  372. }
  373. }
  374. return true;
  375. }
  376. bool OpLib::CheckRepetition(const std::shared_ptr<OpInfo> &op_info) {
  377. MS_EXCEPTION_IF_NULL(op_info);
  378. for (auto [iter, end] = op_info_.equal_range(op_info->op_name()); iter != end; ++iter) {
  379. auto &exist_op_info = iter->second;
  380. MS_EXCEPTION_IF_NULL(exist_op_info);
  381. if (exist_op_info->equals_to(op_info)) {
  382. return true;
  383. }
  384. }
  385. return false;
  386. }
  387. } // namespace kernel
  388. } // namespace mindspore