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model_manager.cc 71 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 "graph/load/model_manager/model_manager.h"
  17. #include <string>
  18. #include "aicpu/aicpu_schedule/aicpu_op_type_list.h"
  19. #include "common/model_parser/model_parser.h"
  20. #include "common/dump/dump_manager.h"
  21. #include "common/l2_cache_optimize.h"
  22. #include "common/profiling/profiling_manager.h"
  23. #include "graph/common/ge_call_wrapper.h"
  24. #include "graph/load/model_manager/davinci_model.h"
  25. #include "model/ge_root_model.h"
  26. #include "common/formats/utils/formats_trans_utils.h"
  27. namespace ge {
  28. thread_local uint32_t device_count = 0;
  29. namespace {
  30. const int kCmdParSize = 2;
  31. const int kDumpCmdPairSize = 2;
  32. const std::size_t kProfCmdParaMaxSize = 1000;
  33. const std::size_t kProfStartCmdParaSize = 2;
  34. const std::string kCmdTypeDump = "dump";
  35. const std::string kCmdTypeProfInit = "prof_init";
  36. const std::string kCmdTypeProfFinalize = "prof_finalize";
  37. const std::string kCmdTypeProfStart = "prof_start";
  38. const std::string kCmdTypeProfStop = "prof_stop";
  39. const std::string kCmdTypeProfModelSubscribe = "prof_model_subscribe";
  40. const std::string kCmdTypeProfModelUnsubscribe = "prof_model_cancel_subscribe";
  41. const char *const kBatchLoadBuf = "batchLoadsoFrombuf";
  42. const char *const kDeleteCustOp = "deleteCustOp";
  43. const int kTimeSpecNano = 1000000000;
  44. const int kTimeSpecMiro = 1000000;
  45. const int kOpNameMaxSize = 100;
  46. const uint64_t kInferSessionId = 0;
  47. #pragma pack(push, 1)
  48. struct CustAicpuSoBuf {
  49. uint64_t kernelSoBuf;
  50. uint32_t kernelSoBufLen;
  51. uint64_t kernelSoName;
  52. uint32_t kernelSoNameLen;
  53. };
  54. struct BatchLoadOpFromBufArgs {
  55. uint32_t soNum;
  56. uint64_t args;
  57. };
  58. #pragma pack(pop)
  59. } // namespace
  60. DumpProperties ModelManager::dump_properties_;
  61. std::mutex ModelManager::exeception_infos_mutex_;
  62. std::shared_ptr<ModelManager> ModelManager::GetInstance() {
  63. static const std::shared_ptr<ModelManager> instance_ptr =
  64. shared_ptr<ModelManager>(new (std::nothrow) ModelManager(), ModelManager::FinalizeForPtr);
  65. return instance_ptr;
  66. }
  67. ModelManager::ModelManager() {
  68. max_model_id_ = 0;
  69. session_id_bias_ = 0;
  70. }
  71. Status ModelManager::KernelLaunchEx(aicpu::FWKAdapter::FWKOperateType op_type, uint64_t session_id, uint32_t model_id,
  72. uint32_t sub_model_id) {
  73. STR_FWK_OP_KERNEL param_base = {};
  74. void *devicebase = nullptr;
  75. void *aicpu_kernel_addr = nullptr;
  76. const uint32_t kKernelType = 0;
  77. param_base.fwkKernelType = kKernelType;
  78. param_base.fwkKernelBase.fwk_kernel.opType = op_type;
  79. param_base.fwkKernelBase.fwk_kernel.sessionID = session_id;
  80. if (op_type == aicpu::FWKAdapter::FWKOperateType::FWK_ADPT_KERNEL_DESTROY) {
  81. std::vector<uint64_t> v_aicpu_kernel;
  82. std::string model_key = std::to_string(session_id) + "_" + std::to_string(model_id) + "_" +
  83. std::to_string(sub_model_id);
  84. std::lock_guard<std::recursive_mutex> lock(map_mutex_);
  85. auto iter = model_aicpu_kernel_.find(model_key);
  86. if (iter != model_aicpu_kernel_.end()) {
  87. GELOGD("kernel destroy session_id %lu, model_id %u, sub_model_id %u..", session_id, model_id, sub_model_id);
  88. v_aicpu_kernel = model_aicpu_kernel_.at(model_key);
  89. // Insert size of aicpu kernel vector in the first element
  90. v_aicpu_kernel.insert(v_aicpu_kernel.begin(), v_aicpu_kernel.size());
  91. auto kernel_size = sizeof(uint64_t) * (v_aicpu_kernel.size());
  92. rtError_t rt_ret = rtMalloc(&aicpu_kernel_addr, kernel_size, RT_MEMORY_HBM);
  93. GE_IF_BOOL_EXEC(rt_ret != RT_ERROR_NONE, GELOGE(RT_FAILED, "rtMalloc error, ret: 0x%X", rt_ret);
  94. return RT_ERROR_TO_GE_STATUS(rt_ret);)
  95. rt_ret = rtMemcpy(aicpu_kernel_addr, kernel_size, v_aicpu_kernel.data(), kernel_size, RT_MEMCPY_HOST_TO_DEVICE);
  96. GE_IF_BOOL_EXEC(rt_ret != RT_ERROR_NONE, GELOGE(RT_FAILED, "rtMemcpy to input_output_addr_ error: 0x%X", rt_ret);
  97. GE_CHK_RT(rtFree(aicpu_kernel_addr)); return RT_ERROR_TO_GE_STATUS(rt_ret);)
  98. uint64_t kernel_id_addr = static_cast<uint64_t>(reinterpret_cast<uintptr_t>(aicpu_kernel_addr));
  99. param_base.fwkKernelBase.fwk_kernel.kernelID = kernel_id_addr;
  100. // In the scene of loading once and running many times, the kernel needs to be destroyed many times,
  101. // and connot be removed from kernel map.
  102. }
  103. }
  104. rtError_t rt_ret = rtMalloc(&(devicebase), sizeof(STR_FWK_OP_KERNEL), RT_MEMORY_HBM);
  105. if (rt_ret != RT_ERROR_NONE) {
  106. GELOGE(RT_FAILED, "malloc device memory failed. ret: 0x%X", rt_ret);
  107. GE_IF_BOOL_EXEC(aicpu_kernel_addr != nullptr, GE_CHK_RT(rtFree(aicpu_kernel_addr)));
  108. return RT_ERROR_TO_GE_STATUS(rt_ret);
  109. }
  110. rt_ret =
  111. rtMemcpy(devicebase, sizeof(STR_FWK_OP_KERNEL), &param_base, sizeof(STR_FWK_OP_KERNEL), RT_MEMCPY_HOST_TO_DEVICE);
  112. if (rt_ret != RT_ERROR_NONE) {
  113. GELOGE(RT_FAILED, "memory copy to device failed. ret: 0x%X", rt_ret);
  114. GE_IF_BOOL_EXEC(aicpu_kernel_addr != nullptr, GE_CHK_RT(rtFree(aicpu_kernel_addr)));
  115. GE_CHK_RT(rtFree(devicebase));
  116. return RT_ERROR_TO_GE_STATUS(rt_ret);
  117. }
  118. rtStream_t stream = nullptr;
  119. rt_ret = rtStreamCreate(&stream, 0);
  120. if (rt_ret != RT_ERROR_NONE) {
  121. GELOGE(RT_FAILED, "create stream failed. ret: 0x%X", rt_ret);
  122. GE_IF_BOOL_EXEC(aicpu_kernel_addr != nullptr, GE_CHK_RT(rtFree(aicpu_kernel_addr)));
  123. GE_CHK_RT(rtFree(devicebase));
  124. return RT_ERROR_TO_GE_STATUS(rt_ret);
  125. }
  126. rt_ret = rtKernelLaunchEx(devicebase, sizeof(STR_FWK_OP_KERNEL), 0, stream);
  127. if (rt_ret != RT_ERROR_NONE) {
  128. GELOGE(RT_FAILED, "rtKernelLaunchEx failed. ret: 0x%X", rt_ret);
  129. GE_IF_BOOL_EXEC(aicpu_kernel_addr != nullptr, GE_CHK_RT(rtFree(aicpu_kernel_addr)));
  130. GE_CHK_RT(rtFree(devicebase));
  131. GE_CHK_RT(rtStreamDestroy(stream));
  132. return RT_ERROR_TO_GE_STATUS(rt_ret);
  133. }
  134. rt_ret = rtStreamSynchronize(stream);
  135. if (rt_ret != RT_ERROR_NONE) {
  136. GELOGE(RT_FAILED, "rtStreamSynchronize failed. ret: 0x%X", rt_ret);
  137. GE_IF_BOOL_EXEC(aicpu_kernel_addr != nullptr, GE_CHK_RT(rtFree(aicpu_kernel_addr)));
  138. GE_CHK_RT(rtFree(devicebase));
  139. GE_CHK_RT(rtStreamDestroy(stream));
  140. return RT_ERROR_TO_GE_STATUS(rt_ret);
  141. }
  142. if (aicpu_kernel_addr != nullptr) {
  143. rt_ret = rtFree(aicpu_kernel_addr);
  144. if (rt_ret != RT_ERROR_NONE) {
  145. GELOGE(RT_FAILED, "free memory failed. ret: 0x%X", rt_ret);
  146. GE_CHK_RT(rtFree(devicebase));
  147. GE_CHK_RT(rtStreamDestroy(stream));
  148. return RT_ERROR_TO_GE_STATUS(rt_ret);
  149. }
  150. }
  151. rt_ret = rtFree(devicebase);
  152. if (rt_ret != RT_ERROR_NONE) {
  153. GELOGE(RT_FAILED, "free memory failed. ret: 0x%X", rt_ret);
  154. GE_CHK_RT(rtStreamDestroy(stream));
  155. return RT_ERROR_TO_GE_STATUS(rt_ret);
  156. }
  157. rt_ret = rtStreamDestroy(stream);
  158. if (rt_ret != RT_ERROR_NONE) {
  159. GELOGE(RT_FAILED, "rtStreamDestroy failed. ret: 0x%X", rt_ret);
  160. return RT_ERROR_TO_GE_STATUS(rt_ret);
  161. }
  162. return SUCCESS;
  163. }
  164. void ModelManager::DestroyAicpuSession(uint64_t session_id) {
  165. std::lock_guard<std::recursive_mutex> lock(map_mutex_);
  166. auto it = sess_ids_.find(session_id);
  167. if (it == sess_ids_.end()) {
  168. GELOGI("The session: %lu not created.", session_id);
  169. return;
  170. } else {
  171. rtContext_t ctx = nullptr;
  172. bool has_ctx = (rtCtxGetCurrent(&ctx) == RT_ERROR_NONE);
  173. if (!has_ctx) {
  174. GELOGI("Set device %u.", GetContext().DeviceId());
  175. GE_CHK_RT(rtSetDevice(static_cast<int32_t>(GetContext().DeviceId())));
  176. }
  177. Status ret = KernelLaunchEx(aicpu::FWKAdapter::FWKOperateType::FWK_ADPT_SESSION_DESTROY, session_id, 0, 0);
  178. if (ret != SUCCESS) {
  179. GELOGW("The session: %lu destroy failed.", session_id);
  180. } else {
  181. (void)sess_ids_.erase(session_id);
  182. GELOGI("The session: %lu destroyed.", session_id);
  183. }
  184. if (!has_ctx) {
  185. GELOGI("Reset device %u.", GetContext().DeviceId());
  186. GE_CHK_RT(rtDeviceReset(static_cast<int32_t>(GetContext().DeviceId())));
  187. }
  188. }
  189. }
  190. ge::Status ModelManager::DestroyAicpuSessionForInfer(uint32_t model_id) {
  191. std::lock_guard<std::recursive_mutex> lock(map_mutex_);
  192. auto hybrid_davinci_model = hybrid_model_map_.find(model_id);
  193. if (hybrid_davinci_model != hybrid_model_map_.end()) {
  194. uint64_t session_id = hybrid_davinci_model->second->GetSessionId();
  195. DestroyAicpuSession(session_id);
  196. return SUCCESS;
  197. }
  198. auto it = model_map_.find(model_id);
  199. if (it == model_map_.end()) {
  200. GELOGE(ACL_ERROR_GE_EXEC_MODEL_ID_INVALID, "model id %u does not exists.", model_id);
  201. return ACL_ERROR_GE_EXEC_MODEL_ID_INVALID;
  202. }
  203. uint64_t session_id = it->second->GetSessionId();
  204. DestroyAicpuSession(session_id);
  205. return SUCCESS;
  206. }
  207. ge::Status ModelManager::DestroyAicpuKernel(uint64_t session_id, uint32_t model_id, uint32_t sub_model_id) {
  208. GELOGD("destroy aicpu kernel in session_id %lu, model_id %u.", session_id, model_id);
  209. std::lock_guard<std::recursive_mutex> lock(map_mutex_);
  210. std::string model_key = std::to_string(session_id) + "_" + std::to_string(model_id) + "_" +
  211. std::to_string(sub_model_id);
  212. if (model_aicpu_kernel_.find(model_key) != model_aicpu_kernel_.end()) {
  213. Status ret = KernelLaunchEx(aicpu::FWKAdapter::FWKOperateType::FWK_ADPT_KERNEL_DESTROY, session_id, model_id,
  214. sub_model_id);
  215. if (ret != SUCCESS) {
  216. GELOGE(FAILED, "Destroy aicpu kernel failed.");
  217. return FAILED;
  218. }
  219. }
  220. return SUCCESS;
  221. }
  222. ge::Status ModelManager::CreateAicpuKernel(uint64_t session_id, uint32_t model_id, uint32_t sub_model_id,
  223. uint64_t kernel_id) {
  224. std::lock_guard<std::recursive_mutex> lock(map_mutex_);
  225. std::vector<uint64_t> v_aicpu_kernel;
  226. std::string model_key = std::to_string(session_id) + "_" + std::to_string(model_id) + "_" +
  227. std::to_string(sub_model_id);
  228. if (model_aicpu_kernel_.find(model_key) != model_aicpu_kernel_.end()) {
  229. v_aicpu_kernel = model_aicpu_kernel_.at(model_key);
  230. }
  231. v_aicpu_kernel.push_back(kernel_id);
  232. model_aicpu_kernel_[model_key] = v_aicpu_kernel;
  233. return SUCCESS;
  234. }
  235. ModelManager::~ModelManager() {
  236. std::lock_guard<std::recursive_mutex> lock(map_mutex_);
  237. model_map_.clear();
  238. model_aicpu_kernel_.clear();
  239. cust_aicpu_so_.clear();
  240. GE_IF_BOOL_EXEC(device_count > 0, GE_CHK_RT(rtDeviceReset(0)));
  241. }
  242. ge::Status ModelManager::SetDynamicSize(uint32_t model_id, const std::vector<uint64_t> &batch_num,
  243. int32_t dynamic_type) {
  244. std::shared_ptr<DavinciModel> davinci_model = GetModel(model_id);
  245. GE_CHECK_NOTNULL(davinci_model);
  246. davinci_model->SetDynamicSize(batch_num, dynamic_type);
  247. return SUCCESS;
  248. }
  249. ge::Status ModelManager::DoLoadHybridModelOnline(uint32_t model_id, const string &om_name,
  250. const shared_ptr<ge::GeRootModel> &ge_root_model,
  251. const shared_ptr<ModelListener> &listener) {
  252. auto hybrid_model = hybrid::HybridDavinciModel::Create(ge_root_model);
  253. GE_CHECK_NOTNULL(hybrid_model);
  254. hybrid_model->SetListener(listener);
  255. hybrid_model->SetModelId(model_id);
  256. hybrid_model->SetDeviceId(GetContext().DeviceId());
  257. hybrid_model->SetOmName(om_name);
  258. GE_CHK_STATUS_RET(hybrid_model->Init(), "Failed to init hybrid model. model_id = %u", model_id);
  259. auto shared_model = std::shared_ptr<hybrid::HybridDavinciModel>(hybrid_model.release());
  260. InsertModel(model_id, shared_model);
  261. return SUCCESS;
  262. }
  263. bool ModelManager::IsNeedHybridLoad(ge::GeRootModel &ge_root_model) {
  264. auto root_graph = ge_root_model.GetRootGraph();
  265. if (root_graph == nullptr) {
  266. GELOGE(FAILED, "no model on root model");
  267. return false;
  268. }
  269. bool is_shape_unknown = root_graph->GetGraphUnknownFlag();
  270. bool is_dsp_partitioned_graph = false;
  271. (void)AttrUtils::GetBool(root_graph, ATTR_NAME_DYNAMIC_SHAPE_PARTITIONED, is_dsp_partitioned_graph);
  272. return is_shape_unknown || is_dsp_partitioned_graph || GetContext().GetHostExecFlag();
  273. }
  274. ///
  275. /// @ingroup domi_ome
  276. /// @brief load model online
  277. /// @return Status run result
  278. ///
  279. Status ModelManager::LoadModelOnline(uint32_t &model_id, const shared_ptr<ge::GeRootModel> &ge_root_model,
  280. std::shared_ptr<ModelListener> listener) {
  281. GE_CHK_BOOL_RET_STATUS(listener.get() != nullptr, PARAM_INVALID, "Param incorrect, listener is null");
  282. if (model_id == INVALID_MODEL_ID) {
  283. GenModelId(&model_id);
  284. GELOGD("Generate new model_id:%u", model_id);
  285. }
  286. auto name_to_model = ge_root_model->GetSubgraphInstanceNameToModel();
  287. string om_name;
  288. if (IsNeedHybridLoad(*ge_root_model)) {
  289. return DoLoadHybridModelOnline(model_id, om_name, ge_root_model, listener);
  290. }
  291. mmTimespec timespec = mmGetTickCount();
  292. std::shared_ptr<DavinciModel> davinci_model = MakeShared<DavinciModel>(0, listener);
  293. if (davinci_model == nullptr) {
  294. GELOGE(FAILED, "davinci_model is nullptr");
  295. return FAILED;
  296. }
  297. davinci_model->SetProfileTime(MODEL_LOAD_START, (timespec.tv_sec * kTimeSpecNano +
  298. timespec.tv_nsec)); // 1000 ^ 3 converts second to nanosecond
  299. davinci_model->SetId(model_id);
  300. davinci_model->SetDeviceId(GetContext().DeviceId());
  301. const DumpProperties &dump_properties = DumpManager::GetInstance().GetDumpProperties(GetContext().SessionId());
  302. davinci_model->SetDumpProperties(dump_properties);
  303. dump_properties_ = dump_properties;
  304. auto root_graph = ge_root_model->GetRootGraph();
  305. GE_CHECK_NOTNULL(root_graph);
  306. string root_model_name = root_graph->GetName();
  307. GeModelPtr ge_model = name_to_model[root_model_name];
  308. Status ret = SUCCESS;
  309. do {
  310. GE_TIMESTAMP_START(Assign);
  311. GE_IF_BOOL_EXEC(SUCCESS != (ret = davinci_model->Assign(ge_model)), GELOGW("assign model to modeldef failed.");
  312. break;);
  313. GE_TIMESTAMP_END(Assign, "GraphLoader::ModelAssign");
  314. /// In multi-threaded inference, using the same session_id among multiple threads may cause some threads to fail.
  315. /// These session_ids come from the same model, so the values of session_id are the same.
  316. /// Update session_id for infer in load model to avoid the same session_id.
  317. if (!ge_root_model->GetTrainFlag()) {
  318. uint64_t new_session_id;
  319. ret = GenSessionId(new_session_id);
  320. GE_CHK_BOOL_TRUE_EXEC_WITH_LOG(ret != SUCCESS, return ret, "Generate session_id for infer failed.");
  321. ret = davinci_model->UpdateSessionId(new_session_id);
  322. GE_CHK_BOOL_TRUE_EXEC_WITH_LOG(ret != SUCCESS, return ret, "Update session_id for infer failed.");
  323. ge_model->InsertSessionMap(model_id, new_session_id);
  324. GELOGD("Update new session id: %lu.", new_session_id);
  325. }
  326. GE_TIMESTAMP_START(Init);
  327. GE_IF_BOOL_EXEC(SUCCESS != (ret = davinci_model->Init()), GELOGW("DavinciInit failed."); break;);
  328. GE_TIMESTAMP_END(Init, "GraphLoader::ModelInit");
  329. InsertModel(model_id, davinci_model);
  330. GELOGI("Parse model %u success.", model_id);
  331. } while (0);
  332. return ret;
  333. }
  334. void ModelManager::InsertModel(uint32_t model_id, std::shared_ptr<DavinciModel> &davinci_model) {
  335. GE_CHK_BOOL_EXEC(davinci_model != nullptr, return, "davinci_model ptr is null, id: %u", model_id);
  336. std::lock_guard<std::recursive_mutex> lock(map_mutex_);
  337. model_map_[model_id] = davinci_model;
  338. }
  339. void ModelManager::InsertModel(uint32_t model_id, shared_ptr<hybrid::HybridDavinciModel> &hybrid_model) {
  340. GE_CHK_BOOL_EXEC(hybrid_model != nullptr, return, "hybrid_model ptr is null, id: %u", model_id);
  341. std::lock_guard<std::recursive_mutex> lock(map_mutex_);
  342. hybrid_model_map_[model_id] = hybrid_model;
  343. }
  344. Status ModelManager::DeleteModel(uint32_t id) {
  345. std::lock_guard<std::recursive_mutex> lock(map_mutex_);
  346. auto it = model_map_.find(id);
  347. auto hybrid_model_it = hybrid_model_map_.find(id);
  348. if (it != model_map_.end()) {
  349. uint64_t session_id = it->second->GetSessionId();
  350. std::string model_key = std::to_string(session_id) + "_" + std::to_string(id) + "_" +
  351. std::to_string(it->second->SubModelId());
  352. auto iter_aicpu_kernel = model_aicpu_kernel_.find(model_key);
  353. if (iter_aicpu_kernel != model_aicpu_kernel_.end()) {
  354. (void)model_aicpu_kernel_.erase(iter_aicpu_kernel);
  355. }
  356. (void)model_map_.erase(it);
  357. } else if (hybrid_model_it != hybrid_model_map_.end()) {
  358. (void)hybrid_model_map_.erase(hybrid_model_it);
  359. } else {
  360. GELOGE(ACL_ERROR_GE_EXEC_MODEL_ID_INVALID, "model id %u does not exists.", id);
  361. return ACL_ERROR_GE_EXEC_MODEL_ID_INVALID;
  362. }
  363. return SUCCESS;
  364. }
  365. std::shared_ptr<DavinciModel> ModelManager::GetModel(uint32_t id) {
  366. std::lock_guard<std::recursive_mutex> lock(map_mutex_);
  367. auto it = model_map_.find(id);
  368. return (it == model_map_.end()) ? nullptr : it->second;
  369. }
  370. std::shared_ptr<hybrid::HybridDavinciModel> ModelManager::GetHybridModel(uint32_t id) {
  371. std::lock_guard<std::recursive_mutex> lock(map_mutex_);
  372. auto it = hybrid_model_map_.find(id);
  373. return (it == hybrid_model_map_.end()) ? nullptr : it->second;
  374. }
  375. Status ModelManager::Unload(uint32_t model_id) {
  376. GE_CHK_STATUS_RET(DeleteModel(model_id), "failed to unload model id: %u", model_id);
  377. if (device_count > 0) {
  378. device_count--;
  379. GELOGI("Unload model %u success.", model_id);
  380. } else {
  381. GELOGI("Unload model %u success.no need reset device,device_count: %u", model_id, device_count);
  382. }
  383. std::lock_guard<std::mutex> lock(exeception_infos_mutex_);
  384. exception_infos_.clear();
  385. return SUCCESS;
  386. }
  387. Status ModelManager::UnloadModeldef(uint32_t model_id) {
  388. GE_CHK_STATUS_RET(DeleteModel(model_id), "failed to unload modeldef id: %u", model_id);
  389. return SUCCESS;
  390. }
  391. Status ModelManager::DataInput(const InputData &input_data, OutputData &output_data) {
  392. GELOGI("calling the DataInput");
  393. shared_ptr<InputDataWrapper> data_wrap(new (std::nothrow) InputDataWrapper());
  394. GE_CHECK_NOTNULL(data_wrap);
  395. Status status = data_wrap->Init(input_data, output_data);
  396. if (status != SUCCESS) {
  397. GELOGE(domi::PUSH_DATA_FAILED, "Init InputDataWrapper failed, input data index: %u.", input_data.index);
  398. return domi::PUSH_DATA_FAILED;
  399. }
  400. uint32_t model_id = input_data.model_id;
  401. output_data.model_id = model_id;
  402. std::shared_ptr<DavinciModel> model = GetModel(model_id);
  403. GE_CHK_BOOL_RET_STATUS(model != nullptr, PARAM_INVALID, "Invalid model id %u in InputData! ", model_id);
  404. GE_IF_BOOL_EXEC(model->GetDataInputTid() == 0, model->SetDataInputTid(mmGetTid()));
  405. DataInputer *inputer = model->GetDataInputer();
  406. GE_CHECK_NOTNULL(inputer);
  407. if (inputer->Push(data_wrap) != SUCCESS) {
  408. GELOGE(domi::DATA_QUEUE_ISFULL, "Data queue is full, please call again later, model_id %u ", model_id);
  409. return domi::DATA_QUEUE_ISFULL;
  410. }
  411. GELOGD("Data input success, model id:%u", model_id);
  412. return SUCCESS;
  413. }
  414. Status ModelManager::GetCurDynamicDims(const vector<vector<int64_t>> &user_real_input_dims,
  415. const vector<pair<string, vector<int64_t>>> &user_input_dims,
  416. vector<int32_t> &cur_dynamic_dims) {
  417. GELOGD("Start get cur dynamic dims.");
  418. if (user_real_input_dims.size() != user_input_dims.size()) {
  419. GELOGE(INTERNAL_ERROR,
  420. "The input count of user: %zu should be equal to the data count of graph: %zu",
  421. user_real_input_dims.size(), user_input_dims.size());
  422. return INTERNAL_ERROR;
  423. }
  424. for (size_t i = 0; i < user_input_dims.size(); ++i) {
  425. if (user_real_input_dims[i].size() != user_input_dims[i].second.size()) {
  426. GELOGE(INTERNAL_ERROR,
  427. "The shape size: %zu of dynamic input: %s should be equal to the shape size of input shape: %zu.",
  428. user_real_input_dims[i].size(), user_input_dims[i].first.c_str(), user_input_dims[i].second.size());
  429. return INTERNAL_ERROR;
  430. }
  431. for (size_t j = 0; j < user_input_dims.at(i).second.size(); ++j) {
  432. if (user_input_dims.at(i).second.at(j) < 0) {
  433. cur_dynamic_dims.emplace_back(static_cast<int32_t>(user_real_input_dims[i][j]));
  434. }
  435. }
  436. }
  437. GELOGD("Cur dynamic dims is %s.", formats::JoinToString(cur_dynamic_dims).c_str());
  438. bool cur_dynamic_dims_valid = false;
  439. std::vector<std::string> shape_strs = ge::StringUtils::Split(GetLocalOmgContext().dynamic_dims, ';');
  440. for (auto dynamic_dim : shape_strs) {
  441. if (dynamic_dim == formats::JoinToString(cur_dynamic_dims)) {
  442. cur_dynamic_dims_valid = true;
  443. break;
  444. }
  445. }
  446. if (!cur_dynamic_dims_valid) {
  447. GELOGE(INTERNAL_ERROR, "Cur dynamic dims is %s, not exist in options.",
  448. formats::JoinToString(cur_dynamic_dims).c_str());
  449. return INTERNAL_ERROR;
  450. }
  451. return SUCCESS;
  452. }
  453. ///
  454. /// @ingroup domi_ome
  455. /// @brief load Input and output TensorInfo for Model
  456. /// @return Status run result
  457. ///
  458. Status ModelManager::DataInputTensor(uint32_t model_id, const std::vector<InputTensorInfo> &inputs) {
  459. std::shared_ptr<DavinciModel> model = GetModel(model_id);
  460. auto hybrid_model = GetHybridModel(model_id);
  461. if (hybrid_model == nullptr) {
  462. GE_CHECK_NOTNULL(model);
  463. }
  464. InputData input_data;
  465. input_data.model_id = model_id;
  466. input_data.timeout = 0;
  467. input_data.timestamp = 0;
  468. input_data.index = 0;
  469. for (size_t i = 0; i < inputs.size(); ++i) {
  470. DataBuffer data;
  471. data.data = inputs[i].data;
  472. data.length = inputs[i].length;
  473. input_data.shapes.emplace_back(inputs[i].dims);
  474. input_data.blobs.push_back(data);
  475. }
  476. if (!GetLocalOmgContext().user_input_dims.empty() && GetLocalOmgContext().need_multi_batch) {
  477. std::vector<int32_t> cur_dynamic_dims;
  478. if (!GetLocalOmgContext().user_real_input_dims.empty()) {
  479. if (GetCurDynamicDims(GetLocalOmgContext().user_real_input_dims, GetLocalOmgContext().user_input_dims,
  480. cur_dynamic_dims) != SUCCESS) {
  481. GELOGE(INTERNAL_ERROR, "[Train_Dynamic] Failed to Parse real_dynamic_dims.");
  482. return INTERNAL_ERROR;
  483. }
  484. DataBuffer data;
  485. data.data = new(std::nothrow) int32_t[cur_dynamic_dims.size()];
  486. GE_CHECK_NOTNULL(data.data);
  487. uint32_t length = static_cast<uint32_t>(cur_dynamic_dims.size() * sizeof(int32_t));
  488. GE_CHK_BOOL_EXEC(memcpy_s(data.data, length, cur_dynamic_dims.data(), length) == EOK, return INTERNAL_ERROR,
  489. "Failed to memcpy data.");
  490. data.length = length;
  491. input_data.blobs.push_back(data);
  492. }
  493. }
  494. OutputData output_data;
  495. output_data.model_id = model_id;
  496. output_data.index = 0;
  497. shared_ptr<InputDataWrapper> data_wrap(new (std::nothrow) InputDataWrapper());
  498. GE_CHECK_NOTNULL(data_wrap);
  499. GE_CHK_STATUS_EXEC(data_wrap->Init(input_data, output_data), return domi::PUSH_DATA_FAILED,
  500. "Init InputDataWrapper failed,input data model_id is : %u.", model_id);
  501. if (hybrid_model != nullptr) {
  502. GE_CHK_STATUS_RET(hybrid_model->EnqueueData(data_wrap), "Data queue is full, please call again later, model_id %u ",
  503. model_id);
  504. return SUCCESS;
  505. }
  506. GE_CHK_BOOL_RET_STATUS(model != nullptr, PARAM_INVALID, "Invalid model id %u in InputData! ", model_id);
  507. DataInputer *inputer = model->GetDataInputer();
  508. GE_CHECK_NOTNULL(inputer);
  509. GE_CHK_STATUS_EXEC(inputer->Push(data_wrap), return domi::DATA_QUEUE_ISFULL,
  510. "Data queue is full, please call again later, model_id %u ", model_id);
  511. GELOGD("Data input success, model id:%u", model_id);
  512. return SUCCESS;
  513. }
  514. ///
  515. /// @ingroup domi_ome
  516. /// @brief create model thread, start to execute model
  517. /// @param [in] model_id Model ID to be started
  518. /// @return Status model run result
  519. /// @author
  520. ///
  521. Status ModelManager::Start(uint32_t model_id) {
  522. auto hybrid_model = GetHybridModel(model_id);
  523. if (hybrid_model != nullptr) {
  524. GE_CHK_STATUS_RET_NOLOG(hybrid_model->ModelRunStart());
  525. GELOGI("Start hybrid model %u success.", model_id);
  526. return SUCCESS;
  527. }
  528. std::shared_ptr<DavinciModel> davinci_model = GetModel(model_id);
  529. GE_CHK_BOOL_RET_STATUS(davinci_model != nullptr, PARAM_INVALID, "Invalid model id %u to start! ", model_id);
  530. Status status = davinci_model->ModelRunStart();
  531. if (status == SUCCESS) {
  532. GELOGI("Start model %u success.", model_id);
  533. }
  534. return status;
  535. }
  536. ///
  537. /// @ingroup domi_ome
  538. /// @brief Model ID stop
  539. /// @only when unloaded
  540. /// @param [in] model_id Model ID to be stopped
  541. /// @return Status model stop result
  542. /// @author
  543. ///
  544. Status ModelManager::Stop(uint32_t model_id) {
  545. auto hybrid_model = GetHybridModel(model_id);
  546. if (hybrid_model != nullptr) {
  547. GE_CHK_STATUS_RET_NOLOG(hybrid_model->ModelRunStop());
  548. GELOGI("Stop hybrid model %u success.", model_id);
  549. return SUCCESS;
  550. }
  551. std::shared_ptr<DavinciModel> davinci_model = GetModel(model_id);
  552. GE_CHK_BOOL_RET_STATUS(davinci_model != nullptr, PARAM_INVALID, "Invalid model id %u to stop!", model_id);
  553. Status status = davinci_model->ModelRunStop();
  554. if (status == SUCCESS) {
  555. GELOGI("Stop model %u success.", model_id);
  556. }
  557. return status;
  558. }
  559. ///
  560. /// @ingroup domi_ome
  561. /// @brief Command handle
  562. /// @iterator 1 only Ieference, Debug 2 modes
  563. /// @param [in] command command to handle
  564. /// @return Status command handle result
  565. /// @author
  566. ///
  567. Status ModelManager::HandleCommand(const Command &command) {
  568. static const std::map<std::string, std::function<uint32_t(const Command &)>> cmds = {
  569. {kCmdTypeDump, HandleDumpCommand}, {kCmdTypeProfInit, HandleProfInitCommand},
  570. {kCmdTypeProfFinalize, HandleProfFinalizeCommand}, {kCmdTypeProfStart, HandleProfStartCommand},
  571. {kCmdTypeProfStop, HandleProfStopCommand},
  572. {kCmdTypeProfModelSubscribe, HandleProfModelSubscribeCommand},
  573. {kCmdTypeProfModelUnsubscribe, HandleProfModelUnsubscribeCommand}};
  574. auto iter = cmds.find(command.cmd_type);
  575. if (iter == cmds.end()) {
  576. GELOGE(PARAM_INVALID, "Unsupported command: %s", command.cmd_type.c_str());
  577. return PARAM_INVALID;
  578. } else {
  579. return iter->second(command);
  580. }
  581. }
  582. Status ModelManager::GetModelByCmd(const Command &command,
  583. std::shared_ptr<DavinciModel> &davinci_model) {
  584. if (command.cmd_params.size() < kCmdParSize) {
  585. GELOGE(PARAM_INVALID, "When the cmd_type is '%s', the size of cmd_params must larger than 2.",
  586. command.cmd_type.c_str());
  587. return PARAM_INVALID;
  588. }
  589. std::string map_key = command.cmd_params[0];
  590. std::string value = command.cmd_params[1];
  591. if (map_key == PROFILE_MODEL_ID) {
  592. int32_t model_id = 0;
  593. try {
  594. model_id = std::stoi(value);
  595. } catch (std::invalid_argument &) {
  596. GELOGE(PARAM_INVALID, "Model id: %s is invalid.", value.c_str());
  597. return PARAM_INVALID;
  598. } catch (std::out_of_range &) {
  599. GELOGE(PARAM_INVALID, "Model id: %s is out of range.", value.c_str());
  600. return PARAM_INVALID;
  601. } catch (...) {
  602. GELOGE(FAILED, "Model id: %s cannot change to int.", value.c_str());
  603. return FAILED;
  604. }
  605. auto model_manager = ModelManager::GetInstance();
  606. GE_CHECK_NOTNULL(model_manager);
  607. davinci_model = model_manager->GetModel(static_cast<uint32_t>(model_id));
  608. if (davinci_model == nullptr) {
  609. GELOGE(FAILED, "Model id: %d is invaild or model is not loaded.", model_id);
  610. return FAILED;
  611. }
  612. } else {
  613. GELOGE(FAILED, "The model_id parameter is not found in the command.");
  614. return FAILED;
  615. }
  616. return SUCCESS;
  617. }
  618. Status ModelManager::HandleProfModelSubscribeCommand(const Command &command) {
  619. std::shared_ptr<DavinciModel> davinci_model = nullptr;
  620. Status ret = GetModelByCmd(command, davinci_model);
  621. if (ret != SUCCESS) {
  622. return ret;
  623. }
  624. if (ProfilingManager::Instance().ProfModelSubscribe(command.module_index,
  625. static_cast<void *>(davinci_model.get())) != SUCCESS) {
  626. GELOGE(FAILED, "Handle prof model subscribe failed.");
  627. return FAILED;
  628. }
  629. return SUCCESS;
  630. }
  631. Status ModelManager::HandleProfModelUnsubscribeCommand(const Command &command) {
  632. std::shared_ptr<DavinciModel> davinci_model = nullptr;
  633. Status ret = GetModelByCmd(command, davinci_model);
  634. if (ret != SUCCESS) {
  635. return ret;
  636. }
  637. if (ProfilingManager::Instance().ProfModelUnsubscribe(static_cast<void *>(davinci_model.get())) != SUCCESS) {
  638. GELOGE(FAILED, "Handle prof model unsubscribe failed.");
  639. return FAILED;
  640. }
  641. return SUCCESS;
  642. }
  643. Status ModelManager::HandleProfInitCommand(const Command &command) {
  644. uint64_t module_index = command.module_index;
  645. if (ProfilingManager::Instance().ProfInit(module_index) != SUCCESS) {
  646. GELOGE(FAILED, "Handle prof init failed.");
  647. return FAILED;
  648. }
  649. return SUCCESS;
  650. }
  651. Status ModelManager::HandleProfFinalizeCommand(const Command &command) {
  652. if (ProfilingManager::Instance().ProfFinalize() != SUCCESS) {
  653. GELOGE(FAILED, "Handle prof finalize failed.");
  654. return FAILED;
  655. }
  656. return SUCCESS;
  657. }
  658. /*
  659. * cmd para when prof start
  660. * "devNums:2"
  661. * "devIdList:1,2"
  662. * "profilingOption:PROF_OP_TRACE"
  663. * "aicoreMetrics:AICORE_ARITHMATIC_THROUGHPUT"
  664. */
  665. Status ModelManager::HandleProfStartCommand(const Command &command) {
  666. if (command.cmd_params.size() < kProfStartCmdParaSize) {
  667. GELOGE(PARAM_INVALID, "When the cmd_type is 'profile start', the size of cmd_params must larger than 2.");
  668. return PARAM_INVALID;
  669. }
  670. if (command.cmd_params.size() > kProfCmdParaMaxSize) {
  671. GELOGE(PARAM_INVALID, "Command para size[%zu] larger than max[1000].", command.cmd_params.size());
  672. return PARAM_INVALID;
  673. }
  674. std::map<std::string, std::string> cmd_params_map;
  675. uint32_t step = 2;
  676. for (uint32_t i = 0; i < command.cmd_params.size(); i += step) {
  677. if (i + 1 >= command.cmd_params.size()) {
  678. continue;
  679. }
  680. cmd_params_map[command.cmd_params[i]] = command.cmd_params[i + 1];
  681. }
  682. uint64_t module_index = command.module_index;
  683. if (ProfilingManager::Instance().ProfStartProfiling(module_index, cmd_params_map) != SUCCESS) {
  684. GELOGE(FAILED, "Handle prof start failed.");
  685. return FAILED;
  686. }
  687. return SUCCESS;
  688. }
  689. Status ModelManager::HandleProfStopCommand(const Command &command) {
  690. if (command.cmd_params.size() < kProfStartCmdParaSize) {
  691. GELOGE(PARAM_INVALID, "When the cmd_type is 'profile stop', the size of cmd_params must larger than 2.");
  692. return PARAM_INVALID;
  693. }
  694. if (command.cmd_params.size() > kProfCmdParaMaxSize) {
  695. GELOGE(PARAM_INVALID, "Command para size[%zu] larger than max[1000].", command.cmd_params.size());
  696. return PARAM_INVALID;
  697. }
  698. std::map<std::string, std::string> cmd_params_map;
  699. uint32_t step = 2;
  700. for (uint32_t i = 0; i < command.cmd_params.size(); i += step) {
  701. if (i + 1 >= command.cmd_params.size()) {
  702. continue;
  703. }
  704. cmd_params_map[command.cmd_params[i]] = command.cmd_params[i + 1];
  705. }
  706. uint64_t module_index = command.module_index;
  707. if (ProfilingManager::Instance().ProfStopProfiling(module_index, cmd_params_map) != SUCCESS) {
  708. GELOGE(FAILED, "Handle prof finalize failed.");
  709. return FAILED;
  710. }
  711. return SUCCESS;
  712. }
  713. static Status ParserPara(const Command &command, const string &dump_key, string &dump_value) {
  714. auto iter = std::find(command.cmd_params.begin(), command.cmd_params.end(), dump_key);
  715. if (iter != command.cmd_params.end()) {
  716. ++iter;
  717. if (iter == command.cmd_params.end()) {
  718. GELOGE(PARAM_INVALID, "Invalid access.");
  719. return PARAM_INVALID;
  720. }
  721. dump_value = *iter;
  722. }
  723. return SUCCESS;
  724. }
  725. Status ModelManager::HandleDumpCommand(const Command &command) {
  726. if (command.cmd_params.size() % kDumpCmdPairSize != 0) {
  727. GELOGE(PARAM_INVALID, "When the cmd_type is 'dump', the size of cmd_params must be a even number.");
  728. return PARAM_INVALID;
  729. }
  730. std::string dump_status("off");
  731. std::string dump_model(DUMP_ALL_MODEL);
  732. std::string dump_path("/");
  733. std::string dump_mode("output");
  734. std::set<std::string> dump_layers;
  735. auto ret = ParserPara(command, DUMP_STATUS, dump_status);
  736. if (ret != SUCCESS) {
  737. GELOGE(PARAM_INVALID, "parser dump status failed");
  738. return FAILED;
  739. }
  740. GELOGI("dump status = %s.", dump_status.c_str());
  741. ret = ParserPara(command, DUMP_MODEL, dump_model);
  742. if (ret != SUCCESS) {
  743. GELOGE(PARAM_INVALID, "parser dump model failed");
  744. return FAILED;
  745. }
  746. GELOGI("dump model = %s.", dump_model.c_str());
  747. if (dump_status == "off" || dump_status == "OFF") {
  748. dump_properties_.DeletePropertyValue(dump_model);
  749. return SUCCESS;
  750. }
  751. for (size_t i = 0; i < command.cmd_params.size() / kDumpCmdPairSize; ++i) {
  752. if (command.cmd_params.at(i * kDumpCmdPairSize).find(DUMP_LAYER) != std::string::npos) {
  753. GELOGI("dump layer: %s.", command.cmd_params.at(i * kDumpCmdPairSize + 1).c_str());
  754. dump_layers.insert(command.cmd_params.at(i * kDumpCmdPairSize + 1));
  755. }
  756. }
  757. ret = ParserPara(command, DUMP_FILE_PATH, dump_path);
  758. if (ret != SUCCESS) {
  759. GELOGE(PARAM_INVALID, "parser dump path failed");
  760. return FAILED;
  761. }
  762. if (!dump_path.empty() && dump_path[dump_path.size() - 1] != '/') {
  763. dump_path = dump_path + "/";
  764. }
  765. dump_path = dump_path + CurrentTimeInStr() + "/";
  766. GELOGI("dump path = %s.", dump_path.c_str());
  767. ret = ParserPara(command, DUMP_MODE, dump_mode);
  768. if (ret != SUCCESS) {
  769. GELOGE(PARAM_INVALID, "parser dump mode failed");
  770. return FAILED;
  771. }
  772. GELOGI("dump mode = %s", dump_mode.c_str());
  773. dump_properties_.AddPropertyValue(dump_model, dump_layers);
  774. dump_properties_.SetDumpPath(dump_path);
  775. dump_properties_.SetDumpMode(dump_mode);
  776. return SUCCESS;
  777. }
  778. Status ModelManager::GetMaxUsedMemory(const uint32_t model_id, uint64_t &max_size) {
  779. auto hybrid_model = GetHybridModel(model_id);
  780. if (hybrid_model != nullptr) {
  781. max_size = 0;
  782. return SUCCESS;
  783. }
  784. std::shared_ptr<DavinciModel> davinci_model = GetModel(model_id);
  785. GE_CHK_BOOL_RET_STATUS(davinci_model != nullptr, PARAM_INVALID, "GetMaxUsedMemory Failed, Invalid model id %u!",
  786. model_id);
  787. max_size = davinci_model->TotalMemSize();
  788. return SUCCESS;
  789. }
  790. Status ModelManager::GetInputOutputDescInfo(const uint32_t model_id, vector<InputOutputDescInfo> &input_desc,
  791. vector<InputOutputDescInfo> &output_desc) {
  792. std::shared_ptr<DavinciModel> davinci_model = GetModel(model_id);
  793. GE_CHK_BOOL_RET_STATUS(davinci_model != nullptr, PARAM_INVALID, "GetInputOutputDescInfo Failed, Invalid model id %u!",
  794. model_id);
  795. return davinci_model->GetInputOutputDescInfo(input_desc, output_desc);
  796. }
  797. Status ModelManager::GetInputOutputDescInfo(const uint32_t model_id, vector<InputOutputDescInfo> &input_desc,
  798. vector<InputOutputDescInfo> &output_desc,
  799. std::vector<uint32_t> &inputFormats, std::vector<uint32_t> &outputFormats,
  800. bool new_model_desc) {
  801. std::shared_ptr<hybrid::HybridDavinciModel> hybrid_davinci_model = GetHybridModel(model_id);
  802. if (hybrid_davinci_model != nullptr) {
  803. hybrid_davinci_model->SetModelDescVersion(new_model_desc);
  804. return hybrid_davinci_model->GetInputOutputDescInfo(input_desc, output_desc, inputFormats, outputFormats);
  805. }
  806. std::shared_ptr<DavinciModel> davinci_model = GetModel(model_id);
  807. GE_CHK_BOOL_RET_STATUS(davinci_model != nullptr, ACL_ERROR_GE_EXEC_MODEL_ID_INVALID,
  808. "GetInputOutputDescInfo Failed, Invalid model id %u!", model_id);
  809. return davinci_model->GetInputOutputDescInfo(input_desc, output_desc, inputFormats, outputFormats, new_model_desc);
  810. }
  811. ///
  812. /// @ingroup ge
  813. /// @brief Get dynamic batch_info
  814. /// @param [in] model_id
  815. /// @param [out] batch_info
  816. /// @return execute result
  817. ///
  818. Status ModelManager::GetDynamicBatchInfo(const uint32_t model_id, std::vector<std::vector<int64_t>> &batch_info,
  819. int32_t &dynamic_type) {
  820. std::shared_ptr<hybrid::HybridDavinciModel> hybrid_davinci_model = GetHybridModel(model_id);
  821. if (hybrid_davinci_model != nullptr) {
  822. return hybrid_davinci_model->GetDynamicBatchInfo(batch_info, dynamic_type);
  823. }
  824. std::shared_ptr<DavinciModel> davinci_model = GetModel(model_id);
  825. GE_CHK_BOOL_RET_STATUS(davinci_model != nullptr, ACL_ERROR_GE_EXEC_MODEL_ID_INVALID,
  826. "GetDynamicBatchInfo failed, Invalid model id %u!", model_id);
  827. return davinci_model->GetDynamicBatchInfo(batch_info, dynamic_type);
  828. }
  829. ///
  830. /// @ingroup ge
  831. /// @brief Get combined dynamic dims info
  832. /// @param [in] model_id
  833. /// @param [out] batch_info
  834. /// @return execute result
  835. ///
  836. Status ModelManager::GetCombinedDynamicDims(const uint32_t model_id, vector<vector<int64_t>> &batch_info) {
  837. std::shared_ptr<DavinciModel> davinci_model = GetModel(model_id);
  838. GE_CHK_BOOL_RET_STATUS(davinci_model != nullptr, ACL_ERROR_GE_EXEC_MODEL_ID_INVALID,
  839. "GetCombinedDynamicDims Failed, Invalid Model ID %u!", model_id);
  840. davinci_model->GetCombinedDynamicDims(batch_info);
  841. return SUCCESS;
  842. }
  843. ///
  844. /// @ingroup ge
  845. /// @brief Get user designate shape order
  846. /// @param [in] model_id
  847. /// @param [out] user_input_shape_order
  848. /// @return execute result
  849. ///
  850. Status ModelManager::GetUserDesignateShapeOrder(const uint32_t model_id,
  851. std::vector<std::string> &user_input_shape_order) {
  852. auto hybrid_davinci_model = GetHybridModel(model_id);
  853. if (hybrid_davinci_model != nullptr) {
  854. hybrid_davinci_model->GetUserDesignateShapeOrder(user_input_shape_order);
  855. return SUCCESS;
  856. }
  857. auto davinci_model = GetModel(model_id);
  858. GE_CHK_BOOL_RET_STATUS(davinci_model != nullptr, ACL_ERROR_GE_EXEC_MODEL_ID_INVALID,
  859. "GetUserDesignateShapeOrder Failed, Invalid Model ID %u!", model_id)
  860. davinci_model->GetUserDesignateShapeOrder(user_input_shape_order);
  861. return SUCCESS;
  862. }
  863. Status ModelManager::GetCurShape(const uint32_t model_id, std::vector<int64_t> &batch_info, int32_t &dynamic_type) {
  864. auto davinci_model = GetModel(model_id);
  865. GE_CHK_BOOL_RET_STATUS(davinci_model != nullptr, ACL_ERROR_GE_EXEC_MODEL_ID_INVALID,
  866. "GetCurShape Failed, Invalid Model ID %u!", model_id);
  867. davinci_model->GetCurShape(batch_info, dynamic_type);
  868. return SUCCESS;
  869. }
  870. Status ModelManager::GetModelAttr(uint32_t model_id, std::vector<string> &dynamic_output_shape_info) {
  871. std::shared_ptr<hybrid::HybridDavinciModel> hybrid_davinci_model = GetHybridModel(model_id);
  872. if (hybrid_davinci_model != nullptr) {
  873. hybrid_davinci_model->GetModelAttr(dynamic_output_shape_info);
  874. return SUCCESS;
  875. }
  876. std::shared_ptr<DavinciModel> davinci_model = GetModel(model_id);
  877. GE_CHK_BOOL_RET_STATUS(davinci_model != nullptr, ACL_ERROR_GE_EXEC_MODEL_ID_INVALID,
  878. "GetModelAttr Failed, Invalid Model ID %u!", model_id);
  879. davinci_model->GetModelAttr(dynamic_output_shape_info);
  880. return SUCCESS;
  881. }
  882. ///
  883. /// @ingroup ge
  884. /// @brief Get AIPP info
  885. /// @param [in] model_id
  886. /// @param [in] index
  887. /// @param [out] aipp_info
  888. /// @return execute result
  889. ///
  890. Status ModelManager::GetAippInfo(const uint32_t model_id, uint32_t index, AippConfigInfo &aipp_info) {
  891. std::shared_ptr<DavinciModel> davinci_model = GetModel(model_id);
  892. GE_CHK_BOOL_RET_STATUS(davinci_model != nullptr, ACL_ERROR_GE_EXEC_MODEL_ID_INVALID,
  893. "GetAIPPInfo failed, invalid model_id is %u.", model_id);
  894. return davinci_model->GetAippInfo(index, aipp_info);
  895. }
  896. Status ModelManager::GetAippType(uint32_t model_id, uint32_t index, InputAippType &type, size_t &aipp_index) {
  897. std::shared_ptr<DavinciModel> davinci_model = GetModel(model_id);
  898. GE_CHK_BOOL_RET_STATUS(davinci_model != nullptr, ACL_ERROR_GE_EXEC_MODEL_ID_INVALID,
  899. "GetAIPPInfo failed, invalid model_id is %u.", model_id);
  900. return davinci_model->GetAippType(index, type, aipp_index);
  901. }
  902. Status ModelManager::GenSessionId(uint64_t &session_id) {
  903. const uint64_t kSessionTimeMask = 0xffffffffffff0000;
  904. const uint64_t kSessionPidMask = 0x000000000000ff00;
  905. const uint64_t kSessionBiasMask = 0x00000000000000ff;
  906. const uint64_t kMaskPerOffset = 8;
  907. std::lock_guard<std::mutex> lock(session_id_create_mutex_);
  908. mmTimeval tv;
  909. if (mmGetTimeOfDay(&tv, nullptr) != 0) {
  910. GELOGE(INTERNAL_ERROR, "Failed to get current time.");
  911. return INTERNAL_ERROR;
  912. }
  913. uint64_t timestamp = static_cast<uint64_t>(tv.tv_sec * kTimeSpecMiro + tv.tv_usec); // 1000000us
  914. static uint32_t pid = mmGetPid();
  915. session_id_bias_++;
  916. session_id = ((timestamp<<kMaskPerOffset<<kMaskPerOffset) & kSessionTimeMask) +
  917. ((pid<<kMaskPerOffset) & kSessionPidMask) + (session_id_bias_ & kSessionBiasMask);
  918. GELOGD("Generate new session id: %lu.", session_id);
  919. return SUCCESS;
  920. }
  921. Status ModelManager::LoadModelOffline(uint32_t &model_id, const ModelData &model, shared_ptr<ModelListener> listener,
  922. void *dev_ptr, size_t mem_size, void *weight_ptr, size_t weight_size) {
  923. GE_CHK_BOOL_RET_STATUS(model.key.empty() || mmAccess2(model.key.c_str(), M_F_OK) == EN_OK,
  924. ACL_ERROR_GE_PARAM_INVALID, "Input key file path %s is invalid, %s", model.key.c_str(), strerror(errno));
  925. GenModelId(&model_id);
  926. mmTimespec timespec = mmGetTickCount();
  927. ModelHelper model_helper;
  928. Status ret = model_helper.LoadRootModel(model);
  929. if (ret != SUCCESS) {
  930. GELOGE(ret, "load model failed.");
  931. return ret;
  932. }
  933. if (model_helper.GetModelType()) {
  934. bool is_shape_unknown = false;
  935. GE_CHK_STATUS_RET(model_helper.GetGeRootModel()->CheckIsUnknownShape(is_shape_unknown),
  936. "CheckIsUnknownShape failed, model id:%u", model_id);
  937. if (is_shape_unknown || GetContext().GetHostExecFlag()) {
  938. return DoLoadHybridModelOnline(model_id, model.om_name, model_helper.GetGeRootModel(), listener);
  939. }
  940. }
  941. do {
  942. GeModelPtr ge_model = model_helper.GetGeModel();
  943. shared_ptr<DavinciModel> davinci_model = MakeShared<DavinciModel>(model.priority, listener);
  944. if (davinci_model == nullptr) {
  945. GELOGE(ACL_ERROR_GE_MEMORY_ALLOCATION, "Make shared failed");
  946. return ACL_ERROR_GE_MEMORY_ALLOCATION;
  947. }
  948. davinci_model->SetProfileTime(MODEL_LOAD_START, (timespec.tv_sec * kTimeSpecNano +
  949. timespec.tv_nsec)); // 1000 ^ 3 converts second to nanosecond
  950. ret = davinci_model->Assign(ge_model);
  951. if (ret != SUCCESS) {
  952. GELOGW("assign model failed.");
  953. break;
  954. }
  955. davinci_model->SetId(model_id);
  956. int32_t device_id = 0;
  957. rtError_t rt_ret = rtGetDevice(&device_id);
  958. if (rt_ret != RT_ERROR_NONE || device_id < 0) {
  959. GELOGE(rt_ret, "Call rtGetDevice failed, ret = 0x%X, device_id = %d.", rt_ret, device_id);
  960. return RT_ERROR_TO_GE_STATUS(rt_ret);
  961. }
  962. davinci_model->SetDeviceId(device_id);
  963. davinci_model->SetOmName(model.om_name);
  964. if (DumpManager::GetInstance().GetDumpProperties(kInferSessionId).IsDumpOpen()) {
  965. davinci_model->SetDumpProperties(DumpManager::GetInstance().GetDumpProperties(kInferSessionId));
  966. } else {
  967. davinci_model->SetDumpProperties(dump_properties_);
  968. }
  969. /// In multi-threaded inference, using the same session_id among multiple threads may cause some threads to fail.
  970. /// These session_ids come from the same model, so the values of session_id are the same.
  971. /// Update session_id for infer in load model to avoid the same session_id.
  972. uint64_t new_session_id;
  973. ret = GenSessionId(new_session_id);
  974. GE_CHK_BOOL_TRUE_EXEC_WITH_LOG(ret != SUCCESS, break, "Generate session_id for inference failed.");
  975. ret = davinci_model->UpdateSessionId(new_session_id);
  976. GE_CHK_BOOL_TRUE_EXEC_WITH_LOG(ret != SUCCESS, break, "Update session_id for inference failed.");
  977. ret = davinci_model->Init(dev_ptr, mem_size, weight_ptr, weight_size);
  978. GE_CHK_BOOL_TRUE_EXEC_WITH_LOG(ret != SUCCESS, break, "DavinciInit failed.");
  979. InsertModel(model_id, davinci_model);
  980. GELOGI("Parse model %u success.", model_id);
  981. GE_IF_BOOL_EXEC(ret == SUCCESS, device_count++);
  982. } while (0);
  983. return ret;
  984. }
  985. ///
  986. /// @ingroup ge
  987. /// @brief ACL case, Load task list with queue.
  988. /// @param [out] model_id: model id for manager.
  989. /// @param [in] model_data: Model data load from offline model file.
  990. /// @param [in] input_que_ids: input queue ids from user, num equals Data Op.
  991. /// @param [in] output_que_ids: input queue ids from user, num equals NetOutput Op.
  992. /// @return: 0 for success / others for fail
  993. ///
  994. Status ModelManager::LoadModelWithQ(uint32_t &model_id, const ModelData &model_data,
  995. const std::vector<uint32_t> &input_queue_ids,
  996. const std::vector<uint32_t> &output_queue_ids) {
  997. GE_CHK_BOOL_RET_STATUS(model_data.key.empty() || mmAccess2(model_data.key.c_str(), M_F_OK) == EN_OK,
  998. ACL_ERROR_GE_PARAM_INVALID, "input key file path %s is not valid, %s",
  999. model_data.key.c_str(), strerror(errno));
  1000. ModelHelper model_helper;
  1001. Status ret = model_helper.LoadModel(model_data);
  1002. if (ret != SUCCESS) {
  1003. GELOGE(ret, "load model failed.");
  1004. return ret;
  1005. }
  1006. shared_ptr<DavinciModel> davinci_model = MakeShared<DavinciModel>(model_data.priority, nullptr);
  1007. if (davinci_model == nullptr) {
  1008. GELOGE(ACL_ERROR_GE_MEMORY_ALLOCATION, "create model failed.");
  1009. return ACL_ERROR_GE_MEMORY_ALLOCATION;
  1010. }
  1011. ret = davinci_model->Assign(model_helper.GetGeModel());
  1012. if (ret != SUCCESS) {
  1013. GELOGE(ret, "assign model failed.");
  1014. return ret;
  1015. }
  1016. /// In multi-threaded inference, using the same session_id among multiple threads may cause some threads to fail.
  1017. /// These session_ids come from the same model, so the values of session_id are the same.
  1018. /// Update session_id for infer in load model to avoid the same session_id.
  1019. uint64_t new_session_id;
  1020. ret = GenSessionId(new_session_id);
  1021. GE_CHK_BOOL_TRUE_EXEC_WITH_LOG(ret != SUCCESS, return ret, "Generate session_id for infer failed.");
  1022. ret = davinci_model->UpdateSessionId(new_session_id);
  1023. GE_CHK_BOOL_TRUE_EXEC_WITH_LOG(ret != SUCCESS, return ret, "Update session_id for infer failed.");
  1024. GenModelId(&model_id);
  1025. davinci_model->SetId(model_id);
  1026. ret = davinci_model->SetQueIds(input_queue_ids, output_queue_ids);
  1027. if (ret != SUCCESS) {
  1028. GELOGE(ret, "set model queue ids failed.");
  1029. return ret;
  1030. }
  1031. davinci_model->SetDumpProperties(dump_properties_);
  1032. ret = davinci_model->Init();
  1033. if (ret != SUCCESS) {
  1034. GELOGE(ret, "init model failed.");
  1035. return ret;
  1036. }
  1037. InsertModel(model_id, davinci_model);
  1038. GELOGI("Parse model %u success.", model_id);
  1039. return SUCCESS;
  1040. }
  1041. ///
  1042. /// @ingroup domi_ome
  1043. /// @brief ACL case, not start new thread, return result
  1044. /// @param [in] model_id mode id
  1045. /// @param [in] stream model stream
  1046. /// @param [in] async_mode is asynchronize mode.
  1047. /// @param [in] input_data input data
  1048. /// @param [in] input_desc description of input data
  1049. /// @param [out] output_data output data
  1050. /// @param [out] output_desc description of output data
  1051. ///
  1052. Status ModelManager::ExecuteModel(uint32_t model_id, rtStream_t stream, bool async_mode, const InputData &input_data,
  1053. const std::vector<GeTensorDesc> &input_desc, OutputData &output_data,
  1054. std::vector<GeTensorDesc> &output_desc) {
  1055. std::shared_ptr<hybrid::HybridDavinciModel> hybrid_davinci_model = GetHybridModel(model_id);
  1056. if (hybrid_davinci_model != nullptr) {
  1057. auto inputs = input_data.blobs;
  1058. auto outputs = output_data.blobs;
  1059. Status status = hybrid_davinci_model->Execute(inputs, input_desc, outputs, output_desc, stream);
  1060. if (status == SUCCESS) {
  1061. GELOGI("Execute model %u success.", model_id);
  1062. }
  1063. return status;
  1064. }
  1065. std::shared_ptr<DavinciModel> davinci_model = GetModel(model_id);
  1066. GE_CHK_BOOL_RET_STATUS(davinci_model != nullptr, ACL_ERROR_GE_EXEC_MODEL_ID_INVALID,
  1067. "Invalid model id %u, check whether model has been loaded or not.", model_id);
  1068. if (davinci_model->NeedDestroyAicpuKernel()) {
  1069. GELOGI("Start to destroy specified aicpu kernel.");
  1070. // Zero copy is enabled by default, no need to judge.
  1071. uint64_t session_id_davinci = davinci_model->GetSessionId();
  1072. uint32_t model_id_davinci = davinci_model->GetModelId();
  1073. uint32_t sub_model_id = davinci_model->SubModelId();
  1074. Status status = DestroyAicpuKernel(session_id_davinci, model_id_davinci, sub_model_id);
  1075. if (status != SUCCESS) {
  1076. GELOGW("Destroy specified aicpu kernel failed, session id is %lu, model id is %u.", session_id_davinci,
  1077. model_id_davinci);
  1078. }
  1079. }
  1080. Status status = davinci_model->NnExecute(stream, async_mode, input_data, output_data);
  1081. if (status == SUCCESS) {
  1082. GELOGD("Execute model %u success.", model_id);
  1083. }
  1084. return status;
  1085. }
  1086. Status ModelManager::CreateAicpuSession(uint64_t session_id) {
  1087. std::lock_guard<std::recursive_mutex> lock(map_mutex_);
  1088. auto it = sess_ids_.find(session_id);
  1089. // never been created by any model
  1090. if (it == sess_ids_.end()) {
  1091. Status ret = KernelLaunchEx(aicpu::FWKAdapter::FWKOperateType::FWK_ADPT_SESSION_CREATE, session_id, 0, 0);
  1092. if (ret == SUCCESS) {
  1093. (void)sess_ids_.insert(session_id);
  1094. GELOGI("The session: %lu create success.", session_id);
  1095. }
  1096. return ret;
  1097. }
  1098. return SUCCESS;
  1099. }
  1100. Status ModelManager::LoadCustAicpuSo(const OpDescPtr &op_desc, const string &so_name, bool &loaded) {
  1101. GELOGD("LoadCustAicpuSo in, op name %s, so name %s", op_desc->GetName().c_str(), so_name.c_str());
  1102. std::lock_guard<std::mutex> lock(cust_aicpu_mutex_);
  1103. CustAICPUKernelPtr aicpu_kernel = op_desc->TryGetExtAttr(OP_EXTATTR_CUSTAICPU_KERNEL, CustAICPUKernelPtr());
  1104. if (aicpu_kernel == nullptr) {
  1105. GELOGI("cust aicpu op %s has no corresponding kernel!", op_desc->GetName().c_str());
  1106. return SUCCESS;
  1107. }
  1108. // get current context
  1109. rtContext_t rt_cur_ctx = nullptr;
  1110. auto rt_error = rtCtxGetCurrent(&rt_cur_ctx);
  1111. if (rt_error != RT_ERROR_NONE) {
  1112. GELOGE(RT_FAILED, "get current context failed, runtime result is %d", static_cast<int>(rt_error));
  1113. return RT_FAILED;
  1114. }
  1115. // use current context as resource key
  1116. uintptr_t resource_id = reinterpret_cast<uintptr_t>(rt_cur_ctx);
  1117. auto it = cust_aicpu_so_.find(resource_id);
  1118. if (it == cust_aicpu_so_.end()) {
  1119. std::map<string, CustAICPUKernelPtr> new_so_name;
  1120. new_so_name.insert({so_name, aicpu_kernel});
  1121. cust_aicpu_so_[resource_id] = new_so_name;
  1122. loaded = false;
  1123. GELOGD("LoadCustAicpuSo new aicpu so name %s, resource id %lu", so_name.c_str(), resource_id);
  1124. return SUCCESS;
  1125. }
  1126. auto it_so_name = it->second.find(so_name);
  1127. if (it_so_name == it->second.end()) {
  1128. it->second.insert({so_name, aicpu_kernel});
  1129. loaded = false;
  1130. GELOGD("LoadCustAicpuSo add aicpu so name %s, resource id %lu", so_name.c_str(), resource_id);
  1131. return SUCCESS;
  1132. }
  1133. loaded = true;
  1134. GELOGD("LoadCustAicpuSo so name %s has been loaded.", so_name.c_str());
  1135. return SUCCESS;
  1136. }
  1137. Status ModelManager::LaunchKernelCustAicpuSo(const string &kernel_name) {
  1138. GELOGD("Aicpu kernel launch task in, kernel name %s.", kernel_name.c_str());
  1139. std::lock_guard<std::mutex> lock(cust_aicpu_mutex_);
  1140. if (cust_aicpu_so_.size() == 0) return SUCCESS;
  1141. // get current context
  1142. rtContext_t rt_cur_ctx = nullptr;
  1143. auto rt_error = rtCtxGetCurrent(&rt_cur_ctx);
  1144. if (rt_error != RT_ERROR_NONE) {
  1145. GELOGE(RT_FAILED, "get current context failed, runtime result is %d", static_cast<int>(rt_error));
  1146. return RT_FAILED;
  1147. }
  1148. uintptr_t resource_id = reinterpret_cast<uintptr_t>(rt_cur_ctx);
  1149. auto it = cust_aicpu_so_.find(resource_id);
  1150. if (it == cust_aicpu_so_.end()) {
  1151. GELOGI("Cust aicpu so map is empty, context id %lu", resource_id);
  1152. return SUCCESS;
  1153. }
  1154. vector<void *> allocated_mem;
  1155. rtError_t status;
  1156. rtStream_t stream = nullptr;
  1157. vector<CustAicpuSoBuf> v_cust_so;
  1158. void *args = nullptr;
  1159. for (const auto &it_so : it->second) {
  1160. const void *aicpu_data = it_so.second->GetBinData();
  1161. uint32_t aicpu_data_length = it_so.second->GetBinDataSize();
  1162. string so_name = it_so.first;
  1163. void *d_aicpu_data = nullptr;
  1164. void *d_so_name = nullptr;
  1165. status = rtMalloc(&d_aicpu_data, aicpu_data_length, RT_MEMORY_HBM);
  1166. if (status != RT_ERROR_NONE) {
  1167. GELOGE(RT_FAILED, "Call rt failed, status: 0x%x", status);
  1168. return RT_ERROR_TO_GE_STATUS(status);
  1169. }
  1170. allocated_mem.push_back(d_aicpu_data);
  1171. status = rtMalloc(&d_so_name, so_name.size(), RT_MEMORY_HBM);
  1172. if (status != RT_ERROR_NONE) {
  1173. GELOGE(RT_FAILED, "Call rt failed, status: 0x%x", status);
  1174. return RT_ERROR_TO_GE_STATUS(status);
  1175. }
  1176. allocated_mem.push_back(d_so_name);
  1177. GE_CHK_RT(rtMemcpy(d_aicpu_data, aicpu_data_length, aicpu_data, aicpu_data_length, RT_MEMCPY_HOST_TO_DEVICE));
  1178. GE_CHK_RT(rtMemcpy(d_so_name, so_name.size(), reinterpret_cast<const void *>(so_name.c_str()),
  1179. so_name.size(), RT_MEMCPY_HOST_TO_DEVICE));
  1180. CustAicpuSoBuf cust_aicpu_so_buf;
  1181. cust_aicpu_so_buf.kernelSoBuf = static_cast<uint64_t>(reinterpret_cast<uintptr_t>(d_aicpu_data));
  1182. cust_aicpu_so_buf.kernelSoBufLen = aicpu_data_length;
  1183. cust_aicpu_so_buf.kernelSoName = static_cast<uint64_t>(reinterpret_cast<uintptr_t>(d_so_name));
  1184. cust_aicpu_so_buf.kernelSoNameLen = so_name.size();
  1185. v_cust_so.push_back(cust_aicpu_so_buf);
  1186. }
  1187. if (kernel_name == kDeleteCustOp) {
  1188. (void)cust_aicpu_so_.erase(it);
  1189. }
  1190. uint32_t args_size = sizeof(CustAicpuSoBuf) * v_cust_so.size();
  1191. status = rtMalloc(&args, args_size, RT_MEMORY_HBM);
  1192. if (status != RT_ERROR_NONE) {
  1193. GELOGE(RT_FAILED, "Call rt failed, status: 0x%x", status);
  1194. return RT_ERROR_TO_GE_STATUS(status);
  1195. }
  1196. allocated_mem.push_back(args);
  1197. GE_CHK_RT(rtMemcpy(args, args_size, v_cust_so.data(), args_size, RT_MEMCPY_HOST_TO_DEVICE));
  1198. BatchLoadOpFromBufArgs batch_cust_so;
  1199. batch_cust_so.soNum = v_cust_so.size();
  1200. batch_cust_so.args = static_cast<uint64_t>(reinterpret_cast<uintptr_t>(args));
  1201. void *batch_args = nullptr;
  1202. uint32_t batch_args_size = sizeof(BatchLoadOpFromBufArgs);
  1203. status = rtMalloc(&batch_args, batch_args_size, RT_MEMORY_HBM);
  1204. if (status != RT_ERROR_NONE) {
  1205. GELOGE(RT_FAILED, "Call rt failed, status: 0x%x", status);
  1206. return RT_ERROR_TO_GE_STATUS(status);
  1207. }
  1208. allocated_mem.push_back(batch_args);
  1209. GE_CHK_RT(rtMemcpy(batch_args, batch_args_size, static_cast<void *>(&batch_cust_so),
  1210. batch_args_size, RT_MEMCPY_HOST_TO_DEVICE));
  1211. GE_CHK_RT(rtStreamCreate(&stream, 0));
  1212. GE_CHK_RT(rtCpuKernelLaunch(nullptr, kernel_name.c_str(), 1, batch_args, batch_args_size, nullptr, stream));
  1213. status = rtStreamSynchronize(stream);
  1214. if (status != RT_ERROR_NONE) {
  1215. GELOGE(RT_FAILED, "Call rt stream sync failed, status: 0x%x", status);
  1216. return RT_ERROR_TO_GE_STATUS(status);
  1217. }
  1218. std::function<void()> callback = [&]() {
  1219. for (auto mem : allocated_mem) {
  1220. GE_CHK_RT(rtFree(mem));
  1221. }
  1222. GE_CHK_RT(rtStreamDestroy(stream));
  1223. };
  1224. GE_MAKE_GUARD(release, callback);
  1225. GELOGI("Cpu kernel launch task success.");
  1226. return SUCCESS;
  1227. }
  1228. Status ModelManager::ClearAicpuSo() {
  1229. GE_CHK_STATUS_RET(LaunchKernelCustAicpuSo(kDeleteCustOp), "delete cust op so failed.");
  1230. return SUCCESS;
  1231. }
  1232. Status ModelManager::LaunchCustAicpuSo() {
  1233. GE_CHK_STATUS_RET(LaunchKernelCustAicpuSo(kBatchLoadBuf), "launch cust op so failed.");
  1234. return SUCCESS;
  1235. }
  1236. ///
  1237. /// @ingroup ge
  1238. /// @brief get model memory size and weight
  1239. /// @param [in] const ModelData model: model type
  1240. /// @param [out] size_t memSize: model memory usage
  1241. /// size_t weightSize: model weight and memory size
  1242. /// @return SUCCESS success / others failure
  1243. ///
  1244. Status ModelManager::GetModelMemAndWeightSize(const ModelData &model, size_t &mem_size, size_t &weight_size) {
  1245. uint8_t *model_data = nullptr;
  1246. uint32_t model_len = 0;
  1247. Status ret = ModelParserBase::ParseModelContent(model, model_data, model_len);
  1248. GE_CHK_BOOL_TRUE_EXEC_WITH_LOG(ret != SUCCESS, return ACL_ERROR_GE_PARAM_INVALID, "parse model content failed!");
  1249. OmFileLoadHelper om_file_helper;
  1250. ret = om_file_helper.Init(model_data, model_len);
  1251. GE_CHK_BOOL_TRUE_EXEC_WITH_LOG(ret != SUCCESS, return ret, "om file helperInit failed!");
  1252. auto partition_table = reinterpret_cast<ModelPartitionTable *>(model_data);
  1253. if (partition_table->num == 1) {
  1254. GELOGE(ACL_ERROR_GE_PARAM_INVALID, "om model is error,please use executable om model");
  1255. return ACL_ERROR_GE_PARAM_INVALID;
  1256. }
  1257. ModelPartition task_partition;
  1258. if (om_file_helper.GetModelPartition(ModelPartitionType::TASK_INFO, task_partition) != SUCCESS) {
  1259. GELOGE(ACL_ERROR_GE_EXEC_LOAD_TASK_PARTITION_FAILED, "get task model partition failed.");
  1260. return ACL_ERROR_GE_EXEC_LOAD_TASK_PARTITION_FAILED;
  1261. }
  1262. std::shared_ptr<domi::ModelTaskDef> model_task_def = MakeShared<domi::ModelTaskDef>();
  1263. if (model_task_def == nullptr) {
  1264. return MEMALLOC_FAILED;
  1265. }
  1266. if (task_partition.size != 0) {
  1267. if (!ReadProtoFromArray(task_partition.data, static_cast<int>(task_partition.size), model_task_def.get())) {
  1268. GELOGE(ACL_ERROR_GE_EXEC_LOAD_TASK_PARTITION_FAILED, "ReadProtoFromArray failed.");
  1269. return ACL_ERROR_GE_EXEC_LOAD_TASK_PARTITION_FAILED;
  1270. }
  1271. }
  1272. ModelPartition partition_weight;
  1273. ret = om_file_helper.GetModelPartition(ModelPartitionType::WEIGHTS_DATA, partition_weight);
  1274. GE_CHK_BOOL_TRUE_EXEC_WITH_LOG(ret != SUCCESS, return ACL_ERROR_GE_EXEC_LOAD_WEIGHT_PARTITION_FAILED,
  1275. "Get weight partition failed. ret = %u", ret);
  1276. mem_size = model_task_def->memory_size();
  1277. weight_size = partition_weight.size;
  1278. return SUCCESS;
  1279. }
  1280. void ModelManager::GenModelId(uint32_t *id) {
  1281. if (id == nullptr) {
  1282. return;
  1283. }
  1284. std::lock_guard<std::recursive_mutex> lock(map_mutex_);
  1285. *id = ++max_model_id_;
  1286. }
  1287. Status ModelManager::GetOrigInputInfo(uint32_t model_id, uint32_t index, OriginInputInfo &orig_input_info) {
  1288. std::shared_ptr<DavinciModel> davinci_model = GetModel(model_id);
  1289. GE_CHK_BOOL_RET_STATUS(davinci_model != nullptr, ACL_ERROR_GE_EXEC_MODEL_ID_INVALID,
  1290. "GetOrigInputInfo failed, invalid model_id is %u.",
  1291. model_id);
  1292. return davinci_model->GetOrigInputInfo(index, orig_input_info);
  1293. }
  1294. Status ModelManager::GetAllAippInputOutputDims(uint32_t model_id, uint32_t index,
  1295. std::vector<InputOutputDims> &input_dims,
  1296. std::vector<InputOutputDims> &output_dims) {
  1297. std::shared_ptr<DavinciModel> davinci_model = GetModel(model_id);
  1298. GE_CHK_BOOL_RET_STATUS(davinci_model != nullptr, ACL_ERROR_GE_EXEC_MODEL_ID_INVALID,
  1299. "GetAllAippInputOutputDims failed, invalid model_id is %u.", model_id);
  1300. return davinci_model->GetAllAippInputOutputDims(index, input_dims, output_dims);
  1301. }
  1302. bool ModelManager::IsDynamicShape(uint32_t model_id) {
  1303. auto model = GetHybridModel(model_id);
  1304. return model != nullptr;
  1305. }
  1306. ge::Status ModelManager::SyncExecuteModel(uint32_t model_id, const vector<GeTensor> &inputs,
  1307. vector<GeTensor> &outputs) {
  1308. auto model = GetHybridModel(model_id);
  1309. if (model == nullptr) {
  1310. GELOGE(FAILED, "Hybrid model not found. model id = %u.", model_id);
  1311. return FAILED;
  1312. }
  1313. return model->Execute(inputs, outputs);
  1314. }
  1315. Status ModelManager::GetOpDescInfo(uint32_t device_id, uint32_t stream_id, uint32_t task_id, OpDescInfo &op_desc_info) {
  1316. for (const auto &model : model_map_) {
  1317. auto davinci_model = model.second;
  1318. if (davinci_model->GetDeviceId() == device_id) {
  1319. GELOGI("Start to GetOpDescInfo of device_id: %u.", device_id);
  1320. if (davinci_model->GetOpDescInfo(stream_id, task_id, op_desc_info)) {
  1321. GELOGI("Find specific node of stream_id: %u, task_id: %u.", stream_id, task_id);
  1322. return SUCCESS;
  1323. }
  1324. }
  1325. }
  1326. return FAILED;
  1327. }
  1328. Status ModelManager::EnableExceptionDump(const std::map<string, string> &options) {
  1329. auto iter = options.find(OPTION_EXEC_ENABLE_EXCEPTION_DUMP);
  1330. if (iter != options.end()) {
  1331. GELOGI("Find option enable_exeception_dump is %s", iter->second.c_str());
  1332. if (iter->second == "1") {
  1333. rtError_t rt_ret = rtSetTaskFailCallback(reinterpret_cast<rtTaskFailCallback>(ExceptionCallback));
  1334. if (rt_ret != RT_ERROR_NONE) {
  1335. GELOGE(RT_FAILED, "rtSetTaskFailCallback failed");
  1336. return RT_ERROR_TO_GE_STATUS(rt_ret);
  1337. }
  1338. } else {
  1339. GELOGI("Option enable exception dump is %s", iter->second.c_str());
  1340. }
  1341. } else {
  1342. GELOGI("Not find option enable exception dump");
  1343. }
  1344. return SUCCESS;
  1345. }
  1346. Status ModelManager::LaunchKernelCheckAicpuOp(std::vector<std::string> &aicpu_optype_list,
  1347. std::vector<std::string> &aicpu_tf_optype_list) {
  1348. std::string kernel_name = "checkOpType";
  1349. GELOGI("LaunchKernelCheckAicpuOpType in, kernel name %s", kernel_name.c_str());
  1350. std::lock_guard<std::mutex> lock(cust_aicpu_mutex_);
  1351. std::vector<SysOpInfo> req_aicpu_op_info_list;
  1352. std::vector<SysOpInfo> res_aicpu_op_info_list;
  1353. std::vector<ReturnCode> res_ret_code_list;
  1354. if (aicpu_optype_list.empty() && aicpu_tf_optype_list.empty()) {
  1355. GELOGI("No need to check aicpu op type.");
  1356. return SUCCESS;
  1357. }
  1358. vector<void *> allocated_mem;
  1359. rtError_t status;
  1360. rtStream_t stream = nullptr;
  1361. void *args = nullptr;
  1362. void *d_req_op_list = nullptr;
  1363. void *d_res_op_list = nullptr;
  1364. void *d_ret_code_list = nullptr;
  1365. size_t aicpu_op_nums = aicpu_optype_list.size();
  1366. size_t tf_op_nums = aicpu_tf_optype_list.size();
  1367. size_t op_nums = aicpu_op_nums + tf_op_nums;
  1368. std::function<void()> callback = [&]() {
  1369. for (auto mem : allocated_mem) {
  1370. GE_CHK_RT(rtFree(mem));
  1371. }
  1372. };
  1373. GE_MAKE_GUARD(release, callback);
  1374. // malloc sysOpInfoList in SysOpCheckInfo
  1375. status = rtMalloc(&d_req_op_list, op_nums * sizeof(SysOpInfo), RT_MEMORY_HBM);
  1376. if (status != RT_ERROR_NONE) {
  1377. GELOGE(RT_FAILED, "Call rt failed, status: 0x%x", status);
  1378. return RT_ERROR_TO_GE_STATUS(status);
  1379. }
  1380. allocated_mem.push_back(d_req_op_list);
  1381. // malloc sysOpInfoList in SysOpCheckResp
  1382. status = rtMalloc(&d_res_op_list, op_nums * sizeof(SysOpInfo), RT_MEMORY_HBM);
  1383. if (status != RT_ERROR_NONE) {
  1384. GELOGE(RT_FAILED, "Call rt failed, status: 0x%x", status);
  1385. return RT_ERROR_TO_GE_STATUS(status);
  1386. }
  1387. allocated_mem.push_back(d_res_op_list);
  1388. // malloc returnCodeList in SysOpCheckResp
  1389. status = rtMalloc(&d_ret_code_list, op_nums * sizeof(ReturnCode), RT_MEMORY_HBM);
  1390. if (status != RT_ERROR_NONE) {
  1391. GELOGE(RT_FAILED, "Call rt failed, status: 0x%x", status);
  1392. return RT_ERROR_TO_GE_STATUS(status);
  1393. }
  1394. allocated_mem.push_back(d_ret_code_list);
  1395. for (const auto &op_type : aicpu_optype_list) {
  1396. SysOpInfo op_info;
  1397. // malloc op_type name in SysOpInfo
  1398. void *d_op_type_name = nullptr;
  1399. status = rtMalloc(&d_op_type_name, op_type.length(), RT_MEMORY_HBM);
  1400. if (status != RT_ERROR_NONE) {
  1401. GELOGE(RT_FAILED, "Call rt failed, status: 0x%x", status);
  1402. return RT_ERROR_TO_GE_STATUS(status);
  1403. }
  1404. allocated_mem.push_back(d_op_type_name);
  1405. GE_CHK_RT(rtMemcpy(d_op_type_name, op_type.length(), op_type.c_str(), op_type.length(), RT_MEMCPY_HOST_TO_DEVICE));
  1406. op_info.opType = static_cast<uint64_t>(reinterpret_cast<uintptr_t>(d_op_type_name));
  1407. op_info.opLen = op_type.length();
  1408. op_info.kernelsType = CPU_KERNEL;
  1409. req_aicpu_op_info_list.emplace_back(op_info);
  1410. }
  1411. for (const auto &op_type : aicpu_tf_optype_list) {
  1412. SysOpInfo op_info;
  1413. // malloc op_type name in SysOpInfo
  1414. void *d_op_type_name = nullptr;
  1415. status = rtMalloc(&d_op_type_name, op_type.size(), RT_MEMORY_HBM);
  1416. if (status != RT_ERROR_NONE) {
  1417. GELOGE(RT_FAILED, "Call rt failed, status: 0x%x", status);
  1418. return RT_ERROR_TO_GE_STATUS(status);
  1419. }
  1420. allocated_mem.push_back(d_op_type_name);
  1421. GE_CHK_RT(rtMemcpy(d_op_type_name, op_type.size(), op_type.c_str(), op_type.size(), RT_MEMCPY_HOST_TO_DEVICE));
  1422. op_info.opType = static_cast<uint64_t>(reinterpret_cast<uintptr_t>(d_op_type_name));
  1423. op_info.opLen = op_type.size();
  1424. op_info.kernelsType = TF_KERNEL;
  1425. req_aicpu_op_info_list.emplace_back(op_info);
  1426. }
  1427. GELOGI("Check aicpu op all attr size: %zu, real attr size: %zu.", op_nums, req_aicpu_op_info_list.size());
  1428. GE_CHK_RT(rtMemcpy(d_req_op_list, sizeof(SysOpInfo) * req_aicpu_op_info_list.size(), req_aicpu_op_info_list.data(),
  1429. sizeof(SysOpInfo) * req_aicpu_op_info_list.size(), RT_MEMCPY_HOST_TO_DEVICE));
  1430. SysOpCheckInfo op_check_info_req = { 0 };
  1431. SysOpCheckResp op_check_info_res = { 0 };
  1432. op_check_info_req.opListNum = op_nums;
  1433. op_check_info_req.offSetLen = sizeof(SysOpCheckInfo);
  1434. op_check_info_req.sysOpInfoList = static_cast<uint64_t>(reinterpret_cast<uintptr_t>(d_req_op_list));
  1435. op_check_info_res.opListNum = 0;
  1436. op_check_info_res.isWithoutJson = 0;
  1437. op_check_info_res.returnCodeList = static_cast<uint64_t>(reinterpret_cast<uintptr_t>(d_ret_code_list));
  1438. op_check_info_res.sysOpInfoList = static_cast<uint64_t>(reinterpret_cast<uintptr_t>(d_res_op_list));
  1439. uint32_t args_size = sizeof(SysOpCheckInfo) + sizeof(SysOpCheckResp);
  1440. status = rtMalloc(&args, args_size, RT_MEMORY_HBM);
  1441. if (status != RT_ERROR_NONE) {
  1442. GELOGE(RT_FAILED, "Call rt failed, status: 0x%x", status);
  1443. return RT_ERROR_TO_GE_STATUS(status);
  1444. }
  1445. allocated_mem.push_back(args);
  1446. GE_CHK_RT(rtMemcpy(args, sizeof(SysOpCheckInfo), reinterpret_cast<void *>(&op_check_info_req), sizeof(SysOpCheckInfo),
  1447. RT_MEMCPY_HOST_TO_DEVICE));
  1448. GE_CHK_RT(rtMemcpy(
  1449. reinterpret_cast<void *>(static_cast<uintptr_t>(static_cast<uint64_t>(reinterpret_cast<uintptr_t>(args)) +
  1450. op_check_info_req.offSetLen)), sizeof(SysOpCheckResp), reinterpret_cast<void *>(&op_check_info_res),
  1451. sizeof(SysOpCheckResp), RT_MEMCPY_HOST_TO_DEVICE));
  1452. GE_CHK_RT(rtStreamCreate(&stream, 0));
  1453. GE_CHK_RT(rtCpuKernelLaunch(nullptr, kernel_name.c_str(), 1, args, args_size, nullptr, stream));
  1454. status = rtStreamSynchronize(stream);
  1455. if (status != RT_ERROR_NONE) {
  1456. GELOGE(RT_FAILED, "Call rt stream sync failed, status: 0x%x", status);
  1457. GE_CHK_RT(rtStreamDestroy(stream));
  1458. return RT_ERROR_TO_GE_STATUS(status);
  1459. }
  1460. // Check the response
  1461. SysOpCheckResp *d_op_check_info_res =
  1462. reinterpret_cast<SysOpCheckResp *>(reinterpret_cast<void *>(static_cast<uintptr_t>(static_cast<uint64_t>(
  1463. reinterpret_cast<uintptr_t>(args)) + op_check_info_req.offSetLen)));
  1464. (void)memset_s(&op_check_info_res, sizeof(SysOpCheckResp), 0, sizeof(SysOpCheckResp));
  1465. GE_CHK_RT(rtMemcpy(&op_check_info_res, sizeof(SysOpCheckResp), d_op_check_info_res, sizeof(SysOpCheckResp),
  1466. RT_MEMCPY_DEVICE_TO_HOST));
  1467. if (op_check_info_res.isWithoutJson) {
  1468. GELOGI("No need to check aicpu in this scenoria.");
  1469. GE_CHK_RT(rtStreamDestroy(stream));
  1470. return SUCCESS;
  1471. }
  1472. uint64_t res_op_nums = op_check_info_res.opListNum;
  1473. GELOGI("Check aicpu type, is without json: %d, res op num: %lu.", op_check_info_res.isWithoutJson, res_op_nums);
  1474. if (res_op_nums != 0) {
  1475. res_ret_code_list.clear();
  1476. res_ret_code_list.resize(res_op_nums);
  1477. res_aicpu_op_info_list.clear();
  1478. res_aicpu_op_info_list.resize(res_op_nums);
  1479. GE_CHK_RT(rtMemcpy(res_ret_code_list.data(), sizeof(ReturnCode) * res_op_nums,
  1480. reinterpret_cast<void *>(static_cast<uintptr_t>(op_check_info_res.returnCodeList)),
  1481. sizeof(ReturnCode) * res_op_nums, RT_MEMCPY_DEVICE_TO_HOST));
  1482. GE_CHK_RT(rtMemcpy(res_aicpu_op_info_list.data(), sizeof(SysOpInfo) * res_op_nums,
  1483. reinterpret_cast<void *>(static_cast<uintptr_t>(op_check_info_res.sysOpInfoList)),
  1484. sizeof(SysOpInfo) * res_op_nums, RT_MEMCPY_DEVICE_TO_HOST));
  1485. if (res_ret_code_list.size() != res_aicpu_op_info_list.size() || res_ret_code_list.size() != res_op_nums) {
  1486. GELOGE(FAILED, "Number of retcode is not equal to number of op type.");
  1487. GE_CHK_RT(rtStreamDestroy(stream));
  1488. return FAILED;
  1489. }
  1490. std::string fail_reason;
  1491. for (uint32_t i = 0; i < res_op_nums; i++) {
  1492. ReturnCode ret_code = res_ret_code_list.at(i);
  1493. SysOpInfo aicpu_info = res_aicpu_op_info_list.at(i);
  1494. GELOGI("Not support aicpu op type: %lu, kernel_type:%d, opLen:%lu, ret_code:%d", aicpu_info.opType,
  1495. aicpu_info.kernelsType, aicpu_info.opLen, ret_code);
  1496. std::vector<char> op_name;
  1497. op_name.clear();
  1498. op_name.resize(kOpNameMaxSize);
  1499. GE_CHK_RT(rtMemcpy(op_name.data(), aicpu_info.opLen, reinterpret_cast<void *>(aicpu_info.opType),
  1500. aicpu_info.opLen, RT_MEMCPY_DEVICE_TO_HOST));
  1501. std::string kernel_type =
  1502. (static_cast<OpKernelType>(aicpu_info.kernelsType) == TF_KERNEL) ? "TF_KERNEL" : "CPU_KERNEL";
  1503. string op_name_str(op_name.data());
  1504. fail_reason += "op_type: " + op_name_str + " kernel_type: " + kernel_type +
  1505. " ret code:" + std::to_string(static_cast<int>(ret_code)) +
  1506. "<0: op_type, 1: format, 2: datatype> \n";
  1507. }
  1508. fail_reason += "not support.";
  1509. GELOGE(FAILED, "Check aicpu op_type failed. details: %s", fail_reason.c_str());
  1510. GE_CHK_RT(rtStreamDestroy(stream));
  1511. return FAILED;
  1512. }
  1513. GE_CHK_RT(rtStreamDestroy(stream));
  1514. GELOGI("Cpu kernel launch check optype task success.");
  1515. return SUCCESS;
  1516. }
  1517. Status ModelManager::CheckAicpuOpList(GeModelPtr ge_model) {
  1518. std::vector<std::string> aicpu_optype_list;
  1519. std::vector<std::string> aicpu_tf_optype_list;
  1520. bool aicpu_need_check = ge::AttrUtils::GetListStr(ge_model, "needCheckCpu", aicpu_optype_list);
  1521. bool tf_need_check = ge::AttrUtils::GetListStr(ge_model, "needCheckTf", aicpu_tf_optype_list);
  1522. if (!aicpu_need_check && !tf_need_check) {
  1523. GELOGI("Graph:%s No need to check aicpu optype.", ge_model->GetGraph().GetName().c_str());
  1524. return SUCCESS;
  1525. }
  1526. GE_CHK_STATUS_RET(LaunchKernelCheckAicpuOp(aicpu_optype_list, aicpu_tf_optype_list),
  1527. "Launch check aicpu op type failed.");
  1528. return SUCCESS;
  1529. }
  1530. } // 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