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graph_mem_assigner.cc 110 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/build/memory/graph_mem_assigner.h"
  17. #include <cstring>
  18. #include <set>
  19. #include "common/math/math_util.h"
  20. #include "common/util/error_manager/error_manager.h"
  21. #include "framework/common/debug/ge_log.h"
  22. #include "framework/common/debug/log.h"
  23. #include "graph/build/memory/hybrid_mem_assigner.h"
  24. #include "graph/build/memory/var_mem_assign_util.h"
  25. #include "graph/build/memory/block_mem_assigner.h"
  26. #include "graph/common/omg_util.h"
  27. #include "graph/debug/ge_attr_define.h"
  28. #include "graph/ge_attr_value.h"
  29. #include "graph/manager/graph_var_manager.h"
  30. #include "graph/utils/tensor_utils.h"
  31. #include "graph/utils/type_utils.h"
  32. #include "graph/build/memory/buffer_pool_mem_assigner.h"
  33. namespace {
  34. const int kAllInputAddrIsAtomic = -1;
  35. const int kVirtualInputNodeMemoryReuse = 0;
  36. const int kVirtualOutputNodeMemoryReuse = 1;
  37. const int kPrevNextDistanceNum = 2;
  38. const int64_t kInvalidStream = -1;
  39. const char *const kEngineNameGeLocal = "DNN_VM_GE_LOCAL_OP_STORE";
  40. // One state per bit cannot be repeated
  41. enum ContinuousType { kTypeInput = 1, kTypeInputNoPadding = 2, kTypeOutput = 4, kTypeOutputNoPadding = 8 };
  42. int64_t GetSymbolOutputOffset(const std::map<std::string, std::string> &anchor_to_symbol,
  43. const std::map<std::string, std::list<ge::NodeIndexIO>> &symbol_to_anchors,
  44. const ge::NodePtr &node, const uint32_t i) {
  45. ge::NodeIndexIO cur_node_index_io(node, i, ge::kOut);
  46. auto iter1 = anchor_to_symbol.find(cur_node_index_io.ToString());
  47. if (iter1 == anchor_to_symbol.end()) {
  48. return ge::kInvalidOffset;
  49. }
  50. auto out_symbol = iter1->second;
  51. auto iter2 = symbol_to_anchors.find(out_symbol);
  52. if (iter2 == symbol_to_anchors.end()) {
  53. return ge::kInvalidOffset;
  54. }
  55. for (const auto &node_index_io : iter2->second) {
  56. if (node_index_io.value_ == out_symbol) {
  57. vector<int64_t> output_list = node->GetOpDesc()->GetOutputOffset();
  58. vector<int64_t> symbol_output_list = node_index_io.node_->GetOpDesc()->GetOutputOffset();
  59. if (node_index_io.index_ >= symbol_output_list.size()) {
  60. return ge::kInvalidOffset;
  61. }
  62. GELOGD("Node %s %uth output offset is %ld, Symbol %s output offset is %ld.", node->GetName().c_str(), i,
  63. output_list[i], iter2->first.c_str(), symbol_output_list.at(node_index_io.index_));
  64. return symbol_output_list.at(node_index_io.index_);
  65. }
  66. }
  67. return ge::kInvalidOffset;
  68. }
  69. bool isVariableMemoryNode(const ge::NodePtr &node) {
  70. return (node->GetType() == ge::VARIABLE) || (node->GetType() == ge::CONSTANTOP);
  71. }
  72. } // namespace
  73. namespace ge {
  74. Status VariableMemoryAssigner::Assign() {
  75. Status result = ge::VarMemAssignUtil::AssignConstantOpMemory(compute_graph_);
  76. if (result != ge::SUCCESS) {
  77. return result;
  78. }
  79. result = ge::VarMemAssignUtil::AssignVarMemory(compute_graph_);
  80. if (result != ge::SUCCESS) {
  81. return result;
  82. }
  83. return ge::SUCCESS;
  84. }
  85. Status VariableMemoryAssigner::AssignVarAttr2Nodes() {
  86. Status result = ge::VarMemAssignUtil::AssignVarAttr2Nodes(compute_graph_);
  87. if (result != ge::SUCCESS) {
  88. return result;
  89. }
  90. return ge::SUCCESS;
  91. }
  92. Status VariableMemoryAssigner::AssignMemory2HasRefAttrNode() {
  93. Status result = ge::VarMemAssignUtil::AssignMemory2HasRefAttrNode(compute_graph_);
  94. if (result != ge::SUCCESS) {
  95. return result;
  96. }
  97. return ge::SUCCESS;
  98. }
  99. Status GraphMemoryAssigner::AssignMemory() {
  100. ge::HybridMemAssignerPtr mem_assigner(new(std::nothrow) HybridMemAssigner(compute_graph_));
  101. if (mem_assigner->Assign() != ge::SUCCESS) {
  102. GELOGE(ge::FAILED, "[Assign][GraphMem]graph_id:%u, graph_name:%s",
  103. compute_graph_->GetGraphID(), compute_graph_->GetName().c_str());
  104. return ge::FAILED;
  105. }
  106. for (auto pair : mem_assigner->GetMemOffsets()) {
  107. MemoryOffset offset(pair.first, pair.second);
  108. memory_offset_.emplace(pair.first, offset);
  109. }
  110. // base memtype offset must be exist
  111. auto it = mem_assigner->GetMemOffsets().find(RT_MEMORY_HBM);
  112. if (it == mem_assigner->GetMemOffsets().end()) {
  113. MemoryOffset memory_offset(RT_MEMORY_HBM, 0);
  114. memory_offset_.emplace(RT_MEMORY_HBM, memory_offset);
  115. }
  116. it = mem_assigner->GetMemOffsets().find(RT_MEMORY_P2P_DDR);
  117. if (it == mem_assigner->GetMemOffsets().end()) {
  118. MemoryOffset p2p_memory_offset(RT_MEMORY_P2P_DDR, 0);
  119. memory_offset_.emplace(RT_MEMORY_P2P_DDR, p2p_memory_offset);
  120. }
  121. auto session_id = compute_graph_->GetSessionID();
  122. int64_t var_size_before_assign = ge::VarManager::Instance(session_id)->GetVarMemSize(RT_MEMORY_HBM);
  123. auto variable_assigner =
  124. std::unique_ptr<ge::VariableMemoryAssigner>(new(std::nothrow) ge::VariableMemoryAssigner(compute_graph_));
  125. if (variable_assigner == nullptr) {
  126. GELOGE(ge::FAILED, "[New][Object:VariableMemoryAssigner]graph_id:%u, graph_name:%s",
  127. compute_graph_->GetGraphID(), compute_graph_->GetName().c_str());
  128. REPORT_CALL_ERROR("E19999", "New Object:VariableMemoryAssigner failed, "
  129. "graph_id:%u, graph_name:%s", compute_graph_->GetGraphID(), compute_graph_->GetName().c_str());
  130. return ge::FAILED;
  131. }
  132. if (variable_assigner->Assign() != ge::SUCCESS) {
  133. return ge::FAILED;
  134. }
  135. int64_t var_size_assign = ge::VarManager::Instance(session_id)->GetVarMemSize(RT_MEMORY_HBM) - var_size_before_assign;
  136. GELOGD("GraphMemoryAssigner::AssignMemory variable size = %ld", var_size_assign);
  137. mem_assigner_ = std::move(mem_assigner);
  138. return ge::SUCCESS;
  139. }
  140. ge::Status GraphMemoryAssigner::AssignVarAttr2Nodes() {
  141. auto variable_assigner =
  142. std::unique_ptr<ge::VariableMemoryAssigner>(new(std::nothrow) ge::VariableMemoryAssigner(compute_graph_));
  143. if (variable_assigner == nullptr) {
  144. GELOGE(ge::FAILED, "[New][Object:VariableMemoryAssigner]graph_id:%u, graph_name:%s",
  145. compute_graph_->GetGraphID(), compute_graph_->GetName().c_str());
  146. REPORT_CALL_ERROR("E19999", "New Object:VariableMemoryAssigner failed, "
  147. "graph_id:%u, graph_name:%s", compute_graph_->GetGraphID(), compute_graph_->GetName().c_str());
  148. return ge::FAILED;
  149. }
  150. if (variable_assigner->AssignVarAttr2Nodes() != ge::SUCCESS) {
  151. return ge::FAILED;
  152. }
  153. return ge::SUCCESS;
  154. }
  155. ge::Status GraphMemoryAssigner::AssignMemory2HasRefAttrNode() {
  156. auto variable_assigner =
  157. std::unique_ptr<ge::VariableMemoryAssigner>(new(std::nothrow) ge::VariableMemoryAssigner(compute_graph_));
  158. if (variable_assigner == nullptr) {
  159. GELOGE(ge::FAILED, "[New][Object:VariableMemoryAssigner]graph_id:%u, graph_name:%s",
  160. compute_graph_->GetGraphID(), compute_graph_->GetName().c_str());
  161. REPORT_CALL_ERROR("E19999", "New Object:VariableMemoryAssigner failed, "
  162. "graph_id:%u, graph_name:%s", compute_graph_->GetGraphID(), compute_graph_->GetName().c_str());
  163. }
  164. if (variable_assigner->AssignMemory2HasRefAttrNode() != ge::SUCCESS) {
  165. return ge::FAILED;
  166. }
  167. return ge::SUCCESS;
  168. }
  169. ge::Status CalculateTensorRealSizeAndOutSize(const ge::ConstGeTensorDescPtr &output_desc,
  170. int64_t dim_index, int64_t &output_mem_size,
  171. int64_t &batch_dim_num, int64_t &out_size) {
  172. graphStatus graph_status = ge::TensorUtils::GetSize(*output_desc, out_size);
  173. if (graph_status != GRAPH_SUCCESS) {
  174. GELOGE(FAILED, "[Get][TensorSize]");
  175. REPORT_CALL_ERROR("E19999", "Get tensor size failed");
  176. return FAILED;
  177. }
  178. GeShape output_shape = output_desc->GetShape();
  179. std::vector<int64_t> output_dims = output_shape.GetDims();
  180. if (dim_index >= static_cast<int64_t>(output_dims.size())) {
  181. REPORT_INNER_ERROR("E19999", "Inner param dim_index value:%ld invalid, bigger than dim size:%lu in shape:%s",
  182. dim_index, output_dims.size(), output_shape.ToString().c_str());
  183. GELOGE(FAILED, "[Check][Param:dim_index]value:%ld invalid, bigger than dim size:%lu in shape:%s",
  184. dim_index, output_dims.size(), output_shape.ToString().c_str());
  185. return FAILED;
  186. }
  187. for (int64_t index = 0; index < dim_index; index++) {
  188. FMK_INT64_MULCHECK(batch_dim_num, output_dims[index]);
  189. batch_dim_num *= output_dims[index];
  190. output_dims[index] = 1;
  191. }
  192. output_shape = GeShape(output_dims);
  193. Format out_format = output_desc->GetFormat();
  194. DataType data_type = output_desc->GetDataType();
  195. graph_status = ge::TensorUtils::CalcTensorMemSize(output_shape, out_format, data_type, output_mem_size);
  196. if (graph_status != GRAPH_SUCCESS) {
  197. GELOGE(graph_status, "[Calc][TensorSize]");
  198. return FAILED;
  199. }
  200. if (output_mem_size < 0) {
  201. REPORT_INNER_ERROR("E19999", "After calculating, tensor memory size:%ld invalid, less than 0. "
  202. "shape:%s, format:%s, dtype:%s, maybe has dynamic shape",
  203. output_mem_size,
  204. output_shape.ToString().c_str(),
  205. TypeUtils::FormatToSerialString(out_format).c_str(),
  206. TypeUtils::DataTypeToSerialString(data_type).c_str());
  207. GELOGE(FAILED, "[Check][TensorSize]value:%ld invalid after calc, less than 0. shape:%s, format:%s, dtype:%s, "
  208. "maybe has dynamic shape",
  209. output_mem_size,
  210. output_shape.ToString().c_str(),
  211. TypeUtils::FormatToSerialString(out_format).c_str(),
  212. TypeUtils::DataTypeToSerialString(data_type).c_str());
  213. return FAILED;
  214. }
  215. return SUCCESS;
  216. }
  217. Status GraphMemoryAssigner::ReAssignMemory(bool is_loop_graph, map<uint64_t, size_t> &mem_type_to_offset) {
  218. if (memory_offset_.empty()) {
  219. REPORT_INNER_ERROR("E19999", "InnerData memory_offset_ empty, not expected, graph_id:%u, graph_name:%s",
  220. compute_graph_->GetGraphID(), compute_graph_->GetName().c_str());
  221. GELOGE(FAILED, "[Check][InnerData:memory_offset_]empty is not expected, "
  222. "graph_id:%u, graph_name:%s", compute_graph_->GetGraphID(), compute_graph_->GetName().c_str());
  223. return ge::FAILED;
  224. }
  225. GE_CHK_STATUS_RET(ReAssignContinuousMemory(is_loop_graph),
  226. "[ReAssign][ContinuousMemory] Failed! graph:%s", compute_graph_->GetName().c_str());
  227. GE_CHK_STATUS_RET(ReAssignAtomicMemory(is_loop_graph),
  228. "[ReAssign][AtomicMemory] Failed! graph:%s", compute_graph_->GetName().c_str());
  229. GE_CHK_STATUS_RET(AssignBufferPoolMemory(),
  230. "[Assign][BufferPoolMemory] Failed! graph:%s", compute_graph_->GetName().c_str());
  231. size_t total_mem_offset = 0;
  232. for (auto pair : memory_offset_) {
  233. mem_type_to_offset[pair.first] = pair.second.mem_offset_;
  234. total_mem_offset += pair.second.mem_offset_;
  235. }
  236. auto session_id = compute_graph_->GetSessionID();
  237. if (total_mem_offset > VarManager::Instance(session_id)->GetGraphMemoryMaxSize()) {
  238. GELOGE(ge::FAILED, "[Check][TotalMemOffset] %zu is greater than memory manager malloc max size %zu, "
  239. "graph_id:%u, graph_name:%s, reduce your batchsize or scale your model may solve problem",
  240. total_mem_offset, VarManager::Instance(session_id)->GetGraphMemoryMaxSize(),
  241. compute_graph_->GetGraphID(), compute_graph_->GetName().c_str());
  242. for (auto iter : mem_type_to_offset) {
  243. ErrorManager::GetInstance().ATCReportErrMessage("E19022", {"memType", "size", "item", "maxsize"},
  244. {std::to_string(iter.first), std::to_string(iter.second), "featuremap",
  245. std::to_string(VarManager::Instance(session_id)->GetGraphMemoryMaxSize())});
  246. GEEVENT("[IMAS]AfterAssignMemory : %s memoffset[%zu], memtype[%ld]", compute_graph_->GetName().c_str(),
  247. iter.second, iter.first);
  248. }
  249. return ge::FAILED;
  250. }
  251. return SUCCESS;
  252. }
  253. Status GraphMemoryAssigner::AssignZeroCopyMemory(map<uint64_t, size_t> &mem_offset, size_t &zero_mem_copy_size) {
  254. BlockMemAssignerPtr priority_assigner = std::move(mem_assigner_->GetPriorityAssinger());
  255. if (priority_assigner == nullptr) {
  256. REPORT_INNER_ERROR("E19999", "InnerData priority_assigner nullptr, not expected, graph_id:%u, graph_name:%s",
  257. compute_graph_->GetGraphID(), compute_graph_->GetName().c_str());
  258. GELOGE(FAILED, "[Check][InnerData:priority_assigner]nullptr is invalid, "
  259. "graph_id:%u, graph_name:%s", compute_graph_->GetGraphID(), compute_graph_->GetName().c_str());
  260. return ge::FAILED;
  261. }
  262. size_t mem_offset_tmp = mem_offset[RT_MEMORY_HBM];
  263. // set offset for zero copy block
  264. for (auto &memory_block : priority_assigner->GetMemoryBlocks()) {
  265. if (memory_block == nullptr || memory_block->deleted_block_ || !memory_block->is_zero_copy_) {
  266. continue;
  267. }
  268. memory_block->Resize();
  269. memory_block->SetHeadOffset(mem_offset[RT_MEMORY_HBM]);
  270. mem_offset[RT_MEMORY_HBM] += memory_block->Size();
  271. memory_block->SetTailOffset(mem_offset[RT_MEMORY_HBM] - 1);
  272. }
  273. // set offset for zero copy nodes
  274. priority_assigner->SetOpMemOffset(true);
  275. zero_mem_copy_size = mem_offset[RT_MEMORY_HBM] - mem_offset_tmp;
  276. auto iter = memory_offset_.find(RT_MEMORY_HBM);
  277. if (iter == memory_offset_.end()) {
  278. REPORT_INNER_ERROR("E19999", "InnerData memory_offset_ does not have type[HBM], not expected, "
  279. "graph_id:%u, graph_name:%s", compute_graph_->GetGraphID(), compute_graph_->GetName().c_str());
  280. GELOGE(FAILED, "[Check][InnerData]memory_offset_ does not have memory type[HBM]"
  281. "graph_id:%u, graph_name:%s", compute_graph_->GetGraphID(), compute_graph_->GetName().c_str());
  282. return FAILED;
  283. }
  284. iter->second.mem_offset_ = mem_offset[RT_MEMORY_HBM];
  285. GELOGD("max_mem_offset:%zu, mem_offset:%zu, zero_mem_copy_size:%zu.", mem_offset[RT_MEMORY_HBM], mem_offset_tmp,
  286. zero_mem_copy_size);
  287. return SUCCESS;
  288. }
  289. uint32_t GetContinuousMemoryType(const OpDescPtr &op_desc) {
  290. if (op_desc == nullptr) {
  291. return 0;
  292. };
  293. bool is_continuous = false;
  294. uint32_t continuous_type = 0;
  295. // If GetBool fail, is_continuous is false.
  296. (void)ge::AttrUtils::GetBool(op_desc, ATTR_NAME_CONTINUOUS_INPUT, is_continuous);
  297. if (is_continuous) {
  298. continuous_type |= kTypeInput;
  299. } else {
  300. (void)ge::AttrUtils::GetBool(op_desc, ATTR_NAME_NOPADDING_CONTINUOUS_INPUT, is_continuous);
  301. if (is_continuous) {
  302. bool attr_reuse = false;
  303. (void)ge::AttrUtils::GetBool(op_desc, ATTR_NAME_OUTPUT_REUSE_INPUT, attr_reuse);
  304. if (attr_reuse) {
  305. continuous_type |= kTypeInputNoPadding;
  306. }
  307. }
  308. }
  309. is_continuous = false;
  310. (void)ge::AttrUtils::GetBool(op_desc, ATTR_NAME_CONTINUOUS_OUTPUT, is_continuous);
  311. if (is_continuous) {
  312. continuous_type |= kTypeOutput;
  313. } else {
  314. (void)ge::AttrUtils::GetBool(op_desc, ATTR_NAME_NOPADDING_CONTINUOUS_OUTPUT, is_continuous);
  315. if (is_continuous) {
  316. bool attr_reuse = false;
  317. (void)ge::AttrUtils::GetBool(op_desc, ATTR_NAME_OUTPUT_REUSE_INPUT, attr_reuse);
  318. if (attr_reuse) {
  319. continuous_type |= kTypeOutputNoPadding;
  320. }
  321. }
  322. }
  323. if (continuous_type != 0) {
  324. GELOGI("[Get][MemType:Continuous]Current node %s, value is %d", op_desc->GetName().c_str(), continuous_type);
  325. }
  326. return continuous_type;
  327. }
  328. Status GetMemorySize(const OpDescPtr &op_desc, const ge::ConstGeTensorDescPtr &output_desc, uint32_t continuous_type,
  329. int64_t &tensor_size, int64_t &nopadding_size) {
  330. if ((op_desc == nullptr) || (output_desc == nullptr)) {
  331. REPORT_INNER_ERROR("E19999", "InnerData param op_desc or output_desc is nullptr, not expected");
  332. GELOGE(FAILED, "[Check][Param]op_desc or output_desc is nullptr");
  333. }
  334. tensor_size = 0;
  335. nopadding_size = 0;
  336. bool is_nopadding = ((continuous_type & kTypeInputNoPadding) != 0) || ((continuous_type & kTypeOutputNoPadding) != 0);
  337. if (is_nopadding) {
  338. int64_t attr_dim_index;
  339. bool get_attr_dim_flag = ge::AttrUtils::GetInt(op_desc, ATTR_NAME_REUSE_INPUT_ON_DIM_INDEX, attr_dim_index);
  340. if (!get_attr_dim_flag) {
  341. REPORT_INNER_ERROR("E19999", "Get Attr:%s failed, op_name:%s",
  342. ATTR_NAME_REUSE_INPUT_ON_DIM_INDEX.c_str(), op_desc->GetName().c_str());
  343. GELOGE(FAILED, "[Get][Attr:%s]fail for op_name:%s",
  344. ATTR_NAME_REUSE_INPUT_ON_DIM_INDEX.c_str(), op_desc->GetName().c_str());
  345. return FAILED;
  346. }
  347. // Calculate tensor real size of each piece of data and out size of complete data
  348. int64_t batch_dim_num = 1;
  349. if (CalculateTensorRealSizeAndOutSize(output_desc, attr_dim_index, nopadding_size, batch_dim_num, tensor_size) !=
  350. SUCCESS) {
  351. REPORT_CALL_ERROR("E19999", "CalculateTensorRealSizeAndOutSize failed, attr_dim_index:%ld, op_name:%s",
  352. attr_dim_index, op_desc->GetName().c_str());
  353. GELOGE(FAILED, "[Calculate][NopaddingSize]failed for node %s, attr_dim_index:%ld",
  354. op_desc->GetName().c_str(), attr_dim_index);
  355. return FAILED;
  356. }
  357. } else {
  358. if (ge::TensorUtils::GetSize(*output_desc, tensor_size) != ge::SUCCESS) {
  359. REPORT_INNER_ERROR("E19999", "Get Tensor Size failed, op_name:%s", op_desc->GetName().c_str());
  360. GELOGE(FAILED, "[Get][TensorSize]failed in padding case, op_name:%s", op_desc->GetName().c_str());
  361. return FAILED;
  362. }
  363. }
  364. if ((tensor_size < 0) || (nopadding_size < 0)) {
  365. REPORT_INNER_ERROR("E19999", "GetMemorySize fail, "
  366. "tensor_size:%ld or nopadding_size:%ld less than 0, invalid, op_name:%s",
  367. tensor_size, nopadding_size, op_desc->GetName().c_str());
  368. GELOGE(FAILED, "[Get][MemorySize]tensor_size:%ld or nopadding_size:%ld less than 0, invalid, op_name:%s",
  369. tensor_size, nopadding_size, op_desc->GetName().c_str());
  370. return FAILED;
  371. }
  372. return SUCCESS;
  373. }
  374. void AlignMemOffset(int64_t &mem_align_size) {
  375. if (mem_align_size <= 0) {
  376. return;
  377. }
  378. mem_align_size = (mem_align_size + MEM_ALIGN_SIZE - 1) / MEM_ALIGN_SIZE * MEM_ALIGN_SIZE;
  379. }
  380. bool IsContinuousInputConflict(const ge::NodePtr &node, const OpDescPtr &peer_op_desc) {
  381. bool is_peer_output_continuous = false;
  382. // If GetBool fail, is_peer_output_continuous is false.
  383. (void) ge::AttrUtils::GetBool(peer_op_desc, ATTR_NAME_CONTINUOUS_OUTPUT, is_peer_output_continuous);
  384. // Get peer node output size, if size == 1(peer node has only one output), continuous input of the node and
  385. // continuous output of the previous node is the same, we can support it. If size != 1, there may be
  386. // conflict between the two, we can not support it.
  387. auto peer_output_size = peer_op_desc->GetOutputsSize();
  388. GE_IF_BOOL_EXEC(is_peer_output_continuous && (peer_output_size != 1),
  389. std::string error = "Current op" + FmtToStr(node->GetOpDesc()->GetName()) +
  390. " requires continuous input, while the previous op" + FmtToStr(peer_op_desc->GetName()) +
  391. " requires continuous output. There may be conflict between the two." +
  392. "This node is not supported now.";
  393. GE_ERRORLOG_AND_ERRORMSG(FAILED, error.c_str());
  394. return true;);
  395. bool is_peer_reference = false;
  396. // If GetBool fail, is_peer_reference is false.
  397. (void) AttrUtils::GetBool(peer_op_desc, ATTR_NAME_REFERENCE, is_peer_reference);
  398. GE_IF_BOOL_EXEC(is_peer_reference,
  399. std::string warning = "[Check][Continuous]Current op" + FmtToStr(node->GetOpDesc()->GetName()) +
  400. " requires continuous input, while the previous op" + FmtToStr(peer_op_desc->GetName()) +
  401. " is ref. There may be conflict between the two.";
  402. GELOGW("%s", warning.c_str());
  403. return false;);
  404. return false;
  405. }
  406. /// op1 -> node -> op2
  407. /// return true when node is ref from input, and op1 or op2 is reuse input from output
  408. bool GraphMemoryAssigner::IsRefFromInputOpCascade(const NodePtr &node) {
  409. std::unordered_set<int32_t> ref_input_index;
  410. int32_t reuse_in_index = -1;
  411. for (const auto &out_anchor : node->GetAllOutDataAnchors()) {
  412. bool reuse_input = GraphUtils::IsRefFromInput(out_anchor, reuse_in_index);
  413. if (reuse_input) {
  414. GELOGD("IsRefFromInputOpCascade: cur node:%s:%d is ref", node->GetName().c_str(), reuse_in_index);
  415. ref_input_index.insert(reuse_in_index);
  416. }
  417. }
  418. bool ref_from_input = !ref_input_index.empty();
  419. if (!ref_from_input) {
  420. return false;
  421. }
  422. for (const auto &in_anchor : node->GetAllInDataAnchors()) {
  423. const auto &peer_out_anchor = in_anchor->GetPeerOutAnchor();
  424. GE_IF_BOOL_EXEC(peer_out_anchor == nullptr, continue);
  425. auto in_node = peer_out_anchor->GetOwnerNode();
  426. if (isVariableMemoryNode(in_node) && (ref_input_index.count(in_anchor->GetIdx()) > 0)) {
  427. GELOGD("Reuse variable memory, input node:%s, type:%s.", in_node->GetName().c_str(), in_node->GetType().c_str());
  428. return false;
  429. }
  430. if (ref_from_input && GraphUtils::IsRefFromInput(peer_out_anchor, reuse_in_index)) {
  431. GELOGD("IsRefFromInputOpCascade: in node[%s] is ref, reuse index is:%d",
  432. in_node->GetName().c_str(), reuse_in_index);
  433. return true;
  434. }
  435. }
  436. for (const auto &out_anchor : node->GetAllOutDataAnchors()) {
  437. const auto &peer_in_anchors = out_anchor->GetPeerInDataAnchors();
  438. for (const auto &peer_in_anchor : peer_in_anchors) {
  439. auto peer_in_node = peer_in_anchor->GetOwnerNode();
  440. GE_IF_BOOL_EXEC(peer_in_node == nullptr, continue);
  441. for (const auto &peer_in_node_out_anchor : peer_in_node->GetAllOutDataAnchors()) {
  442. if (ref_from_input && GraphUtils::IsRefFromInput(peer_in_node_out_anchor, reuse_in_index)) {
  443. GELOGD("IsRefFromInputOpCascade: out node[%s] is ref, reuse index is:%d",
  444. peer_in_node_out_anchor->GetOwnerNode()->GetName().c_str(), reuse_in_index);
  445. return true;
  446. }
  447. }
  448. }
  449. }
  450. return false;
  451. }
  452. /// node:in0(in0 reuse out0) -> peer_node:out0
  453. /// update peer_node's 0th output offset with node's 0th output offset
  454. Status GraphMemoryAssigner::UpdateRefOpOffsetReverse(const NodePtr &node) {
  455. map<int32_t, int32_t> out2ins;
  456. GE_CHK_STATUS_RET(TryGetNodeRefIndexes(node, out2ins), "[Get][RefIndexes]fail for node:%s",
  457. node->GetName().c_str());
  458. auto op_desc = node->GetOpDesc();
  459. GE_CHECK_NOTNULL(op_desc);
  460. vector<int64_t> output_list = op_desc->GetOutputOffset();
  461. for (const auto &out2in : out2ins) {
  462. auto reuse_in_anchor = node->GetInDataAnchor(out2in.second);
  463. GE_CHECK_NOTNULL(reuse_in_anchor);
  464. auto peer_out_anchor = reuse_in_anchor->GetPeerOutAnchor();
  465. GE_CHECK_NOTNULL(peer_out_anchor);
  466. auto peer_node = peer_out_anchor->GetOwnerNode();
  467. GE_CHECK_NOTNULL(peer_node);
  468. if (isVariableMemoryNode(peer_node)) {
  469. GELOGW("Peer node to update is %s, skip it. Node name:%s.",
  470. peer_node->GetType().c_str(), peer_node->GetName().c_str());
  471. continue;
  472. }
  473. auto peer_op_desc = peer_node->GetOpDesc();
  474. GE_CHECK_NOTNULL(peer_op_desc);
  475. vector<int64_t> peer_output_list = peer_op_desc->GetOutputOffset();
  476. if ((peer_out_anchor->GetIdx() >= static_cast<int>(peer_output_list.size()))
  477. || (out2in.first >= static_cast<int32_t>(output_list.size()))) {
  478. GELOGW("out of range, peer_out_anchor:%d, peer_output_list size:%zu, out2in:%d, output_list size:%zu",
  479. peer_out_anchor->GetIdx(),
  480. peer_output_list.size(),
  481. out2in.first,
  482. output_list.size());
  483. continue;
  484. }
  485. peer_output_list.at(peer_out_anchor->GetIdx()) = output_list.at(out2in.first);
  486. peer_op_desc->SetOutputOffset(peer_output_list);
  487. GELOGD("UpdateRefOpOffsetReverse: Node[%s] output[%d] is set from node[%s] output index[%d] offset[%ld]",
  488. peer_node->GetName().c_str(),
  489. peer_out_anchor->GetIdx(),
  490. node->GetName().c_str(),
  491. out2in.first,
  492. output_list.at(out2in.first));
  493. }
  494. return SUCCESS;
  495. }
  496. Status GraphMemoryAssigner::ReAssignContinuousMemory(bool is_loop_graph) {
  497. Status ret;
  498. // Stored nodes which need assign continuous input memory in `reverse topo order`
  499. std::vector<NodePtr> nodes_stack;
  500. std::map<NodePtr, uint32_t> node_2_continuous_type;
  501. // Traverse nodes
  502. for (auto &node : compute_graph_->GetAllNodes()) {
  503. GE_CHECK_NOTNULL(node);
  504. uint32_t continuous_type;
  505. auto iter = node_2_continuous_type.find(node);
  506. if (iter == node_2_continuous_type.end()) {
  507. continuous_type = GetContinuousMemoryType(node->GetOpDesc());
  508. node_2_continuous_type.emplace(node, continuous_type);
  509. } else {
  510. continuous_type = iter->second;
  511. }
  512. // Assign continuous input memory
  513. bool continuous_input = ((continuous_type & kTypeInput) != 0) || ((continuous_type & kTypeInputNoPadding) != 0);
  514. if (IsRefFromInputOpCascade(node)) {
  515. nodes_stack.push_back(node);
  516. GELOGD("Ref: Push node:%s to stack", node->GetName().c_str());
  517. } else if (continuous_input) {
  518. if (AssignContinuousInputMemoryWithAtomicProcessDirectly(node, node_2_continuous_type)) {
  519. GE_CHK_STATUS_RET(AssignContinuousInputMemoryWithAtomicProcess(node, continuous_type),
  520. "[Assign][Memory:Continuous:Input]fail for node:%s", node->GetName().c_str())
  521. } else {
  522. nodes_stack.push_back(node);
  523. GELOGD("Continuous: Push node:%s to stack", node->GetName().c_str());
  524. }
  525. }
  526. // Assign continuous output memory
  527. int64_t memory_type = RT_MEMORY_HBM;
  528. bool continuous_output = ((continuous_type & kTypeOutput) != 0) || ((continuous_type & kTypeOutputNoPadding) != 0);
  529. if (continuous_output) {
  530. GE_CHK_STATUS_RET(GetNodeMemoryType(node, memory_type, "output"),
  531. "[Get][MemType]fail for node:%s", node->GetName().c_str());
  532. ret = AssignContinuousOutputMemory(node, memory_type, continuous_type);
  533. if (ret != ge::SUCCESS) {
  534. GELOGE(ret, "[Assign][Memory:Continuous:Ouput]fail for node:%s", node->GetName().c_str());
  535. return ret;
  536. }
  537. }
  538. }
  539. // Assign continuous input memory in `reverse topo order` which stored before
  540. while (!nodes_stack.empty()){
  541. auto node = nodes_stack.back();
  542. nodes_stack.pop_back();
  543. auto iter = node_2_continuous_type.find(node);
  544. if (iter == node_2_continuous_type.end()) {
  545. REPORT_INNER_ERROR("E19999", "Get ContinuousType from node_2_continuous_type map failed for node:%s",
  546. node->GetName().c_str());
  547. GELOGE(FAILED, "[Get][ContinuousType] find fail for node:%s", node->GetName().c_str());
  548. return FAILED;
  549. }
  550. if (((iter->second & kTypeInput) != 0) || ((iter->second & kTypeInputNoPadding) != 0)) {
  551. GE_CHK_STATUS_RET(AssignContinuousInputMemoryWithAtomicProcess(node, iter->second, true),
  552. "[Assign][Memory:Continuous:Input]fail for node:%s.", node->GetName().c_str())
  553. } else {
  554. GE_CHK_STATUS_RET(UpdateRefOpOffsetReverse(node),
  555. "[Update][Memory:Reference:Output]fail for node:%s", node->GetName().c_str())
  556. }
  557. }
  558. for (auto pair : memory_offset_) {
  559. GELOGD("[Reassign][Memory:Continuous]At last, memory type = %ld, mem offset = %zu", pair.first,
  560. pair.second.mem_offset_);
  561. }
  562. return ge::SUCCESS;
  563. }
  564. Status GraphMemoryAssigner::AssignContinuousInputMemory(const ge::NodePtr &node, int64_t &continuous_mem_start,
  565. int64_t &continuous_mem_size, int64_t memory_type, uint32_t continuous_type, bool reverse_refresh) {
  566. GELOGI("[Assign][Memory:Input:Continuous]start for Current node %s", node->GetName().c_str());
  567. auto iter = memory_offset_.find(memory_type);
  568. if (iter == memory_offset_.end()) {
  569. REPORT_INNER_ERROR("E19999", "find memory offset fail for mem_type:%ld, "
  570. "for node:%s, ", memory_type, node->GetName().c_str());
  571. GELOGE(FAILED, "[Find][MemOffset]fail for mem_type:%ld, when AssignContinuousInputMemory for node:%s",
  572. memory_type, node->GetName().c_str());
  573. return FAILED;
  574. }
  575. // The head and tail of hcom continuous input should be added 512
  576. iter->second.mem_offset_ += MEM_ALIGN_SIZE;
  577. continuous_mem_start = iter->second.mem_offset_;
  578. int64_t mem_offset = iter->second.mem_offset_;
  579. int64_t extra_memory_size = 0;
  580. bool is_continuous_input_allocated = false;
  581. auto op_desc = node->GetOpDesc();
  582. GE_CHECK_NOTNULL(op_desc);
  583. vector<int64_t> output_list_this = op_desc->GetOutputOffset();
  584. if (output_list_this.empty()) {
  585. REPORT_INNER_ERROR("E19999", "No output offset in node :%s, not expected",
  586. node->GetName().c_str());
  587. GELOGE(FAILED, "[Get][OutputOffset] empty is invalid, node:%s", node->GetName().c_str());
  588. return FAILED;
  589. }
  590. (void) ge::AttrUtils::GetBool(op_desc, ATTR_NAME_CONTINUOUS_INPUT_ALLOC, is_continuous_input_allocated);
  591. for (auto &in_data_anchor : node->GetAllInDataAnchors()) {
  592. GE_IF_BOOL_EXEC(in_data_anchor == nullptr, continue);
  593. auto peer_out_data_anchor = in_data_anchor->GetPeerOutAnchor();
  594. GE_IF_BOOL_EXEC(peer_out_data_anchor == nullptr, continue);
  595. auto peer_op_desc = peer_out_data_anchor->GetOwnerNode()->GetOpDesc();
  596. GE_IF_BOOL_EXEC(peer_op_desc == nullptr, continue);
  597. GE_IF_BOOL_EXEC(IsContinuousInputConflict(node, peer_op_desc), return PARAM_INVALID;);
  598. int64_t tensor_desc_size = 0;
  599. int64_t nopadding_size = 0;
  600. int64_t real_size = 0;
  601. std::vector<int64_t> offsets_of_fusion = {};
  602. bool lx_fusion = AttrUtils::GetListInt(peer_op_desc, ATTR_NAME_OUTPUT_OFFSET_FOR_BUFFER_FUSION, offsets_of_fusion);
  603. lx_fusion = lx_fusion && !offsets_of_fusion.empty();
  604. if (lx_fusion) {
  605. if (peer_out_data_anchor->GetIdx() >= static_cast<int>(offsets_of_fusion.size())) {
  606. std::string error = "fusion: peer node:" + FmtToStr(peer_op_desc->GetName()) +
  607. " anchor_index:" + FmtToStr(peer_out_data_anchor->GetIdx()) +
  608. " is out of range:" + FmtToStr(offsets_of_fusion.size());
  609. GE_ERRORLOG_AND_ERRORMSG(FAILED, error.c_str());
  610. return FAILED;
  611. }
  612. nopadding_size = offsets_of_fusion[peer_out_data_anchor->GetIdx()];
  613. tensor_desc_size = nopadding_size;
  614. } else {
  615. if (GetMemorySize(node->GetOpDesc(), peer_op_desc->GetOutputDescPtr(peer_out_data_anchor->GetIdx()),
  616. continuous_type, tensor_desc_size, nopadding_size) != ge::SUCCESS) {
  617. return FAILED;
  618. }
  619. }
  620. bool is_nopadding = ((continuous_type & kTypeInputNoPadding) != 0) || lx_fusion;
  621. vector<int64_t> output_list = peer_op_desc->GetOutputOffset();
  622. if (peer_out_data_anchor->GetIdx() >= static_cast<int>(output_list.size())) {
  623. std::string error = "peer node:" + FmtToStr(peer_op_desc->GetName()) +
  624. " anchor_index:" + FmtToStr(peer_out_data_anchor->GetIdx()) +
  625. " is out of range:" + FmtToStr(output_list.size());
  626. GE_ERRORLOG_AND_ERRORMSG(FAILED, error.c_str());
  627. return FAILED;
  628. }
  629. // when continuous input has been allocated first input is beginning offset
  630. bool is_allocated_first_input = is_continuous_input_allocated && (in_data_anchor->GetIdx() == 0);
  631. if (is_allocated_first_input) {
  632. std::map<int32_t, int32_t> out2ins;
  633. GE_CHK_STATUS_RET(TryGetNodeRefIndexes(node, out2ins), "[Get][RefIndexes]fail for node: %s",
  634. node->GetName().c_str());
  635. // output is beginning offset, set offset for input; only support this case now
  636. if ((out2ins.size() == 1) && (out2ins.begin()->second == 0) && (reverse_refresh)) {
  637. auto peer_output_offset = output_list.at(peer_out_data_anchor->GetIdx());
  638. output_list.at(peer_out_data_anchor->GetIdx()) = output_list_this.at(out2ins.begin()->first);
  639. peer_op_desc->SetOutputOffset(output_list);
  640. GELOGI("[Update][Offset]Node %s out %d ref in %d input node %s, use output offset %ld update %ld",
  641. node->GetName().c_str(), out2ins.begin()->first, out2ins.begin()->second,
  642. peer_op_desc->GetName().c_str(), output_list_this.at(out2ins.begin()->first), peer_output_offset);
  643. } else {
  644. GELOGD("Node %s out %d ref in %d input node %s with total ref numbers %zu.", node->GetName().c_str(),
  645. out2ins.begin()->first, out2ins.begin()->second, peer_op_desc->GetName().c_str(), out2ins.size());
  646. }
  647. // first input is beginning offset
  648. mem_offset = output_list.at(peer_out_data_anchor->GetIdx());
  649. continuous_mem_start = output_list.at(peer_out_data_anchor->GetIdx());
  650. } else {
  651. // set offset for input
  652. output_list.at(peer_out_data_anchor->GetIdx()) = mem_offset;
  653. peer_op_desc->SetOutputOffset(output_list);
  654. }
  655. int64_t align_size = tensor_desc_size;
  656. if (is_nopadding) {
  657. mem_offset += nopadding_size;
  658. extra_memory_size += (tensor_desc_size - nopadding_size);
  659. real_size = nopadding_size;
  660. } else {
  661. ge::AlignMemOffset(align_size);
  662. mem_offset += align_size;
  663. // The head and tail of hcom continuous input should be added 512
  664. extra_memory_size = MEM_ALIGN_SIZE;
  665. real_size = tensor_desc_size;
  666. }
  667. GELOGI("[IMAS]Continuous input : Set %s name[%s] optype[%s] output[%d] offset to [%zu] stream_id[%ld] memtype[%ld] "
  668. "size[%zu] realsize[%ld] nopadding size[%d]", node->GetOwnerComputeGraph()->GetName().c_str(),
  669. peer_op_desc->GetName().c_str(), node->GetType().c_str(), peer_out_data_anchor->GetIdx(),
  670. output_list.at(peer_out_data_anchor->GetIdx()), peer_op_desc->GetStreamId(), memory_type,
  671. is_continuous_input_allocated ? 0UL : align_size, real_size, is_nopadding);
  672. }
  673. mem_offset += extra_memory_size;
  674. ge::AlignMemOffset(mem_offset);
  675. continuous_mem_size = mem_offset - continuous_mem_start;
  676. if (is_continuous_input_allocated) {
  677. // not allocate memory here, so no need add 512 in header
  678. iter->second.mem_offset_ -= MEM_ALIGN_SIZE;
  679. } else {
  680. iter->second.mem_offset_ = mem_offset;
  681. }
  682. return SUCCESS;
  683. }
  684. Status GetFirstInputPeerOutOutputOffset(const ge::NodePtr &node, int64_t &mem_offset) {
  685. auto in_data_anchor_list = node->GetAllInDataAnchors();
  686. if (in_data_anchor_list.empty()) {
  687. REPORT_INNER_ERROR("E19999", "InAnchor list empty in node:%s, not expect",
  688. node->GetName().c_str());
  689. GELOGE(FAILED, "[Get][InAnchor]empty is invalid, node:%s", node->GetName().c_str());
  690. return FAILED;
  691. }
  692. auto peer_out_data_anchor = in_data_anchor_list.at(0)->GetPeerOutAnchor();
  693. GE_IF_BOOL_EXEC(peer_out_data_anchor == nullptr,
  694. REPORT_INNER_ERROR("E19999", "PeerAcnhor is null, not expect for node:%s",
  695. node->GetName().c_str());
  696. GELOGE(ge::FAILED, "[Check][PeerAnchor]null is invalid, node:%s", node->GetName().c_str());
  697. return ge::FAILED);
  698. auto peer_op_desc = peer_out_data_anchor->GetOwnerNode()->GetOpDesc();
  699. GE_IF_BOOL_EXEC(peer_op_desc == nullptr,
  700. REPORT_INNER_ERROR("E19999", "PeerOpDesc is null, not expect for node:%s",
  701. node->GetName().c_str());
  702. GELOGE(ge::FAILED, "[Check][PeerOpDesc]null is invalid, node:%s", node->GetName().c_str());
  703. return ge::FAILED);
  704. vector<int64_t> in_node_output_offsets = peer_op_desc->GetOutputOffset();
  705. if (peer_out_data_anchor->GetIdx() >= static_cast<int>(in_node_output_offsets.size())) {
  706. REPORT_INNER_ERROR("E19999", "PeerAnchorIndex:%d bigger than in_offset size:%lu, judge invalid for node:%s",
  707. peer_out_data_anchor->GetIdx(), in_node_output_offsets.size(), node->GetName().c_str());
  708. GELOGE(FAILED, "[Check][Index:PeerOutDataAnchor]PeerIndex:%d bigger than in_offset size:%lu, node:%s",
  709. peer_out_data_anchor->GetIdx(), in_node_output_offsets.size(), node->GetName().c_str());
  710. return FAILED;
  711. }
  712. mem_offset = in_node_output_offsets.at(peer_out_data_anchor->GetIdx());
  713. return SUCCESS;
  714. }
  715. Status GraphMemoryAssigner::AssignContinuousOutputMemory(const ge::NodePtr &node, int64_t memory_type,
  716. uint32_t continuous_type) {
  717. GELOGI("Current node %s needs continuous output.", node->GetName().c_str());
  718. auto out_op_desc = node->GetOpDesc();
  719. GE_IF_BOOL_EXEC(out_op_desc == nullptr,
  720. REPORT_INNER_ERROR("E19999", "OpDesc is null, not expect for node:%s",
  721. node->GetName().c_str());
  722. GELOGE(ge::FAILED, "[Check][OpDesc]null is invalid, node:%s", node->GetName().c_str()));
  723. vector<int64_t> output_list = out_op_desc->GetOutputOffset();
  724. if ((out_op_desc->GetOutputsSize() > output_list.size()) || (output_list.size() == 0)) {
  725. REPORT_INNER_ERROR("E19999", "Output size:%zu more than output offset size:%zu, invalid in node:%s",
  726. out_op_desc->GetOutputsSize(), output_list.size(), node->GetName().c_str());
  727. GELOGE(ge::FAILED, "[Check][InnerData]Output size:%zu more than output offset size:%zu, invalid in node:%s",
  728. out_op_desc->GetOutputsSize(), output_list.size(), node->GetName().c_str());
  729. return ge::FAILED;
  730. }
  731. int64_t mem_offset = 0;
  732. bool is_nopadding = ((continuous_type & kTypeOutputNoPadding) != 0);
  733. if (is_nopadding) {
  734. // out tensor memory must be reused input tensor memory
  735. if (GetFirstInputPeerOutOutputOffset(node, mem_offset) != SUCCESS) {
  736. return ge::FAILED;
  737. }
  738. } else {
  739. // Get the reference type of the node, default is false
  740. bool is_ref = false;
  741. // If GetBool fail, is_ref is false.
  742. (void) ge::AttrUtils::GetBool(node->GetOpDesc(), ATTR_NAME_REFERENCE, is_ref);
  743. // If the output is ref type and refers to the ref of an input, the name of the output
  744. // and the input are the same. Ge encounters ref type, finds matching relationship according
  745. // to the names of input and output, and allocates the same memory address, eg: HCOMBroadcast
  746. if (is_ref) {
  747. GELOGI("Current node %s no needs assign continuous output because reference input by name.",
  748. node->GetName().c_str());
  749. return SUCCESS;
  750. }
  751. mem_offset = output_list[0];
  752. }
  753. for (auto &out_data_anchor : node->GetAllOutDataAnchors()) {
  754. output_list[out_data_anchor->GetIdx()] = mem_offset;
  755. int64_t tensor_desc_size = 0;
  756. int64_t nopadding_size = 0;
  757. if (GetMemorySize(out_op_desc, out_op_desc->GetOutputDescPtr(out_data_anchor->GetIdx()), continuous_type,
  758. tensor_desc_size, nopadding_size) != ge::SUCCESS) {
  759. return FAILED;
  760. }
  761. if (is_nopadding) {
  762. mem_offset += nopadding_size;
  763. } else {
  764. mem_offset += tensor_desc_size;
  765. ge::AlignMemOffset(mem_offset);
  766. }
  767. GELOGI("[IMAS]Continuous output : Set %s name[%s] optype[%s] output[%d] offset to [%zu] stream_id[%ld] memtype[%ld]"
  768. " size[%zu] realsize[%ld] nopadding[%d].", node->GetOwnerComputeGraph()->GetName().c_str(),
  769. out_op_desc->GetName().c_str(), node->GetType().c_str(), out_data_anchor->GetIdx(),
  770. output_list[out_data_anchor->GetIdx()], out_op_desc->GetStreamId(), memory_type, 0UL,
  771. is_nopadding ? nopadding_size : tensor_desc_size, is_nopadding);
  772. }
  773. out_op_desc->SetOutputOffset(output_list);
  774. return ge::SUCCESS;
  775. }
  776. Status GraphMemoryAssigner::ReAssignAtomicMemory(bool is_loop_graph) {
  777. // key:dynamic batch, batch name
  778. map<string, map<NodePtr, vector<NodePtr>>> normal_atomic_and_clean_nodes_map;
  779. map<string, vector<NodePtr>> connecting_output_atomic_nodes;
  780. Status status = FilterAtomicNodesForMemoryAssign(normal_atomic_and_clean_nodes_map, connecting_output_atomic_nodes);
  781. if (status != SUCCESS) {
  782. GELOGE(status, "[Filter][AtomicNode]failed in graph_id:%u, graph_name:%s",
  783. compute_graph_->GetGraphID(), compute_graph_->GetName().c_str());
  784. return status;
  785. }
  786. auto mem_iter = memory_offset_.find(RT_MEMORY_HBM);
  787. if (mem_iter == memory_offset_.end()) {
  788. REPORT_INNER_ERROR("E19999", "InnerData memory_offset_ does not have type[HBM], not expected, "
  789. "graph_id:%u, graph_name:%s", compute_graph_->GetGraphID(), compute_graph_->GetName().c_str());
  790. GELOGE(FAILED, "[Check][InnerData]memory_offset_ does not have memory type[HBM]"
  791. "graph_id:%u, graph_name:%s", compute_graph_->GetGraphID(), compute_graph_->GetName().c_str());
  792. return FAILED;
  793. }
  794. int64_t batch_atomic_mem_start = static_cast<int64_t>(mem_iter->second.mem_offset_);
  795. int64_t batch_max_mem_offset = batch_atomic_mem_start;
  796. for (auto &iter_batch : normal_atomic_and_clean_nodes_map) {
  797. mem_iter->second.mem_offset_ = batch_atomic_mem_start;
  798. for (auto &iter : iter_batch.second) {
  799. int64_t atomic_mem_start = static_cast<int64_t>(mem_iter->second.mem_offset_);
  800. GELOGD("Begin to reAssign atomic memory, atomic address memory start = %ld", atomic_mem_start);
  801. for (auto &atomic_node : iter.second) {
  802. vector<int64_t> mem_offset_end;
  803. status = AssignAtomicOutputAndWorkspaceMemory(atomic_node, mem_offset_end);
  804. if (status != SUCCESS) {
  805. GELOGE(status, "[Assign][Memory]output atomic mem and workspace mem, fail for node name is %s.",
  806. atomic_node->GetName().c_str());
  807. return status;
  808. }
  809. }
  810. int64_t atomic_mem_size = static_cast<int64_t>(mem_iter->second.mem_offset_) - atomic_mem_start;
  811. if (atomic_mem_size != 0) {
  812. GE_CHK_STATUS_RET(SetAtomicCleanAttr(iter.first, {atomic_mem_start}, {atomic_mem_size}, RT_MEMORY_HBM),
  813. "[Set][Attr]fail for atomic addr clean node %s.", iter.first->GetName().c_str());
  814. }
  815. }
  816. batch_max_mem_offset = std::max(batch_max_mem_offset, static_cast<int64_t>(mem_iter->second.mem_offset_));
  817. }
  818. mem_iter->second.mem_offset_ = static_cast<size_t>(batch_max_mem_offset);
  819. batch_atomic_mem_start = batch_max_mem_offset;
  820. for (auto &iter_batch : connecting_output_atomic_nodes) {
  821. mem_iter->second.mem_offset_ = batch_atomic_mem_start;
  822. if (AssignConnectNetOutputAtomicMemory(iter_batch.second) != SUCCESS) {
  823. GELOGE(FAILED, "[Assign][Memory]for nodes that connect to netoutput failed."
  824. "graph_id:%u, graph_name:%s", compute_graph_->GetGraphID(), compute_graph_->GetName().c_str());
  825. return FAILED;
  826. }
  827. batch_max_mem_offset = std::max(batch_max_mem_offset, static_cast<int64_t>(mem_iter->second.mem_offset_));
  828. }
  829. mem_iter->second.mem_offset_ = static_cast<size_t>(batch_max_mem_offset);
  830. return SUCCESS;
  831. }
  832. Status GraphMemoryAssigner::FilterAtomicNodesForMemoryAssign(
  833. map<string, map<NodePtr, vector<NodePtr>>> &normal_atomic_nodes_map,
  834. map<string, vector<NodePtr>> &connecting_output_atomic_nodes) {
  835. GE_CHECK_NOTNULL(compute_graph_);
  836. for (const auto &node : compute_graph_->GetAllNodes()) {
  837. if (node->GetType() == ATOMICADDRCLEAN) {
  838. map<string, vector<NodePtr>> tmp_normal_atomic_nodes;
  839. const auto &out_control_anchor = node->GetOutControlAnchor();
  840. GE_CHECK_NOTNULL(out_control_anchor);
  841. for (const auto &peer_in_control_anchor : out_control_anchor->GetPeerInControlAnchors()) {
  842. if (peer_in_control_anchor != nullptr) {
  843. auto peer_in_node = peer_in_control_anchor->GetOwnerNode();
  844. auto peer_in_node_desc = peer_in_node->GetOpDesc();
  845. if (peer_in_node_desc != nullptr) {
  846. bool is_atomic_node = false;
  847. // If GetBool fail, is_atomic_node is false.
  848. (void) ge::AttrUtils::GetBool(peer_in_node_desc, ATOMIC_ATTR_IS_ATOMIC_NODE, is_atomic_node);
  849. if (is_atomic_node) {
  850. bool is_reference = false;
  851. // If GetBool fail, is_reference is false.
  852. (void) ge::AttrUtils::GetBool(peer_in_node_desc, ATTR_NAME_REFERENCE, is_reference);
  853. if (is_reference) {
  854. REPORT_INNER_ERROR("E19999", "Op:%s cannot have both atomic and is_reference attribute, "
  855. "not support now", peer_in_node_desc->GetName().c_str());
  856. GELOGE(FAILED, "[Check][Attr]Op:%s cannot have both atomic and is_reference attribute, "
  857. "not support now", peer_in_node_desc->GetName().c_str());
  858. return ge::PARAM_INVALID;
  859. }
  860. std::string batch_label;
  861. (void)ge::AttrUtils::GetStr(peer_in_node_desc, ATTR_NAME_BATCH_LABEL, batch_label);
  862. vector<int> is_connecting_output;
  863. // If GetBool fail, attr is_connecting_output is an empty vector.
  864. (void) ge::AttrUtils::GetListInt(peer_in_node_desc, ATTR_NAME_NODE_CONNECT_OUTPUT, is_connecting_output);
  865. if (is_connecting_output.empty()) {
  866. tmp_normal_atomic_nodes[batch_label].emplace_back(peer_in_node);
  867. continue;
  868. }
  869. connecting_output_atomic_nodes[batch_label].emplace_back(peer_in_node);
  870. tmp_normal_atomic_nodes[batch_label].clear();
  871. break;
  872. }
  873. }
  874. }
  875. }
  876. for (auto &it_atomic_node : tmp_normal_atomic_nodes) {
  877. if (!it_atomic_node.second.empty()) {
  878. normal_atomic_nodes_map[it_atomic_node.first][node] = it_atomic_node.second;
  879. }
  880. }
  881. }
  882. }
  883. return SUCCESS;
  884. }
  885. Status GraphMemoryAssigner::AssignAtomicOutputAndWorkspaceMemory(const ge::NodePtr &node,
  886. vector<int64_t> &mem_offset_end) {
  887. auto node_op_desc = node->GetOpDesc();
  888. // Assign atomic node output memory
  889. Status ret = AssignAtomicOutputMemory(node, mem_offset_end);
  890. if (ret != SUCCESS) {
  891. GELOGE(ret, "[Assign][Memory:Ouput:Atomic]Failed for node:%s.", node_op_desc->GetName().c_str());
  892. return ret;
  893. }
  894. // Check and assign atomic node workspace memory
  895. map<string, map<int64_t, int64_t>> atomic_workspace_info;
  896. atomic_workspace_info = node_op_desc->TryGetExtAttr(EXT_ATTR_ATOMIC_WORKSPACE_INFO, atomic_workspace_info);
  897. if (!atomic_workspace_info.empty()) {
  898. bool is_fusion_node = false;
  899. // If GetBool fail, is_fusion_node is false.
  900. (void) ge::AttrUtils::GetBool(node_op_desc, ATOMIC_ATTR_IS_FUSION_NODE, is_fusion_node);
  901. if (is_fusion_node) {
  902. // Assign fusion atomic node workspace memory
  903. ret = AssignFusionAtomicWorkspaceMemory(node_op_desc, atomic_workspace_info, mem_offset_end);
  904. } else {
  905. // Assign single ordinary atomic node workspace memory, not include fusion node
  906. ret = AssignOrdinaryAtomicWorkspaceMemory(node_op_desc, atomic_workspace_info, mem_offset_end);
  907. }
  908. if (ret != SUCCESS) {
  909. GELOGE(ret, "[Assign][Memory:Atomic:Workspace]fail for node:%s.", node_op_desc->GetName().c_str());
  910. return ret;
  911. }
  912. } else {
  913. GELOGW("Current atomic node %s does not have attr ATOMIC_WORKSPACE_INFO.", node->GetName().c_str());
  914. }
  915. return SUCCESS;
  916. }
  917. Status GraphMemoryAssigner::AssignConnectNetOutputAtomicMemory(vector<NodePtr> &connect_netoutput_nodes) {
  918. auto iter = memory_offset_.find(RT_MEMORY_HBM);
  919. if (iter == memory_offset_.end()) {
  920. REPORT_INNER_ERROR("E19999", "InnerData memory_offset_ does not have type[HBM], not expected, "
  921. "graph_id:%u, graph_name:%s", compute_graph_->GetGraphID(), compute_graph_->GetName().c_str());
  922. GELOGE(FAILED, "[Check][InnerData]memory_offset_ does not have memory type[HBM]"
  923. "graph_id:%u, graph_name:%s", compute_graph_->GetGraphID(), compute_graph_->GetName().c_str());
  924. return FAILED;
  925. }
  926. for (auto &node : connect_netoutput_nodes) {
  927. GE_CHECK_NOTNULL(node);
  928. if (node->GetOpDesc() == nullptr) {
  929. GELOGW("Current node %s op desc is nullptr, memory assignment is skipped.", node->GetName().c_str());
  930. continue;
  931. }
  932. // Atomic memory start addr
  933. int64_t original_atomic_mem_start = static_cast<int64_t>(iter->second.mem_offset_);
  934. GELOGD("Start to assign memory of atomic node, node name: %s, node type: %s, mem_offset: %ld.",
  935. node->GetName().c_str(), node->GetOpDesc()->GetType().c_str(), original_atomic_mem_start);
  936. vector<int64_t> mem_offset_end;
  937. if (AssignAtomicOutputAndWorkspaceMemory(node, mem_offset_end) != SUCCESS) {
  938. GELOGE(FAILED, "[Assign][Memory]output atomic mem and workspace mem, fail for node name is %s.",
  939. node->GetName().c_str());
  940. return FAILED;
  941. }
  942. // All atomic nodes use atomic_addr_clean op independently, so we need to set the attr separately.
  943. if (SetIndependentAtomicAttr(node, original_atomic_mem_start, mem_offset_end, RT_MEMORY_HBM) != SUCCESS) {
  944. GELOGE(FAILED, "[Set][Attr:IndependentAtomic]fail for node:%s", node->GetName().c_str());
  945. return FAILED;
  946. }
  947. }
  948. return SUCCESS;
  949. }
  950. Status GraphMemoryAssigner::AssignReferenceMemory() {
  951. for (auto &node : compute_graph_->GetDirectNode()) {
  952. // Get the reference type of the node, default is false
  953. bool is_ref = false;
  954. // If GetBool fail, is_ref is false.
  955. (void) ge::AttrUtils::GetBool(node->GetOpDesc(), ATTR_NAME_REFERENCE, is_ref);
  956. if (!is_ref) {
  957. continue;
  958. }
  959. GELOGI("Current node %s needs to support the reference relationship between output and input.",
  960. node->GetName().c_str());
  961. auto out_op_desc = node->GetOpDesc();
  962. GE_IF_BOOL_EXEC(out_op_desc == nullptr,
  963. REPORT_INNER_ERROR("E19999", "out_op_desc is null.");
  964. GELOGE(ge::FAILED, "[Check][Param] out_op_desc is null."); return ge::FAILED);
  965. vector<int64_t> output_list = out_op_desc->GetOutputOffset();
  966. if (out_op_desc->GetOutputsSize() > output_list.size()) {
  967. REPORT_INNER_ERROR("E19999", "Output size:%zu more than output offset size:%zu, judge invalid in node:%s",
  968. out_op_desc->GetOutputsSize(), output_list.size(), node->GetName().c_str());
  969. GELOGE(ge::FAILED, "[Check][InnerData]Output size:%zu more than output offset size:%zu, invalid in node:%s",
  970. out_op_desc->GetOutputsSize(), output_list.size(), node->GetName().c_str());
  971. return ge::FAILED;
  972. }
  973. map<string, int> input_name_index;
  974. for (const auto &input_name : out_op_desc->GetAllInputNames()) {
  975. int index = out_op_desc->GetInputIndexByName(input_name);
  976. input_name_index.emplace(input_name, index);
  977. }
  978. for (auto &out_data_anchor : node->GetAllOutDataAnchors()) {
  979. string out_data_anchor_name = out_op_desc->GetOutputNameByIndex(out_data_anchor->GetIdx());
  980. auto iter = input_name_index.find(out_data_anchor_name);
  981. if (iter != input_name_index.end()) {
  982. int index = iter->second;
  983. GELOGI("Reference memory: input anchor index = %d, input anchor name = %s, output anchor name = %s.", index,
  984. iter->first.c_str(), out_data_anchor_name.c_str());
  985. GE_CHECK_NOTNULL(node->GetInDataAnchor(index));
  986. auto peer_out_anchor = node->GetInDataAnchor(index)->GetPeerOutAnchor();
  987. GE_IF_BOOL_EXEC(peer_out_anchor == nullptr, continue);
  988. int peer_out_anchor_index = peer_out_anchor->GetIdx();
  989. auto peer_out_node = peer_out_anchor->GetOwnerNode();
  990. auto peer_out_op_desc = peer_out_node->GetOpDesc();
  991. GE_CHECK_NOTNULL(peer_out_op_desc);
  992. output_list[out_data_anchor->GetIdx()] = peer_out_op_desc->GetOutputOffset()[peer_out_anchor_index];
  993. GELOGI("Reference output : Set %s name[%s] output[%d] offset to [%ld] stream_id[%ld]",
  994. node->GetOwnerComputeGraph()->GetName().c_str(), peer_out_op_desc->GetName().c_str(),
  995. out_data_anchor->GetIdx(), output_list[out_data_anchor->GetIdx()], peer_out_op_desc->GetStreamId());
  996. } else {
  997. GELOGI("Reference output : origin %s name[%s] output[%d] offset is [%ld] stream_id[%ld]",
  998. node->GetOwnerComputeGraph()->GetName().c_str(), out_op_desc->GetName().c_str(),
  999. out_data_anchor->GetIdx(), output_list[out_data_anchor->GetIdx()], out_op_desc->GetStreamId());
  1000. }
  1001. }
  1002. out_op_desc->SetOutputOffset(output_list);
  1003. }
  1004. return ge::SUCCESS;
  1005. }
  1006. bool GraphMemoryAssigner::CheckInputIsSupportAtomic(const ge::NodePtr &node) {
  1007. for (auto &in_data_anchor : node->GetAllInDataAnchors()) {
  1008. auto peer_out_data_anchor = in_data_anchor->GetPeerOutAnchor();
  1009. if (peer_out_data_anchor == nullptr) {
  1010. continue;
  1011. }
  1012. auto peer_op_desc = peer_out_data_anchor->GetOwnerNode()->GetOpDesc();
  1013. if (peer_op_desc == nullptr) {
  1014. continue;
  1015. }
  1016. if ((peer_op_desc->GetType() == CONSTANTOP) || (peer_op_desc->GetType() == AIPP_DATA_TYPE) ||
  1017. (peer_op_desc->GetType() == VARIABLE)) {
  1018. REPORT_INNER_ERROR("E19999", "node(type:%s, name:%s) link to atomic node(name:%s), "
  1019. "this situation not supported now",
  1020. peer_op_desc->GetType().c_str(), peer_op_desc->GetName().c_str(), node->GetName().c_str());
  1021. GELOGE(ge::FAILED, "[Check][Link]node(type:%s, name:%s) link to atomic node(name:%s), "
  1022. "this situation not supported now",
  1023. peer_op_desc->GetType().c_str(), peer_op_desc->GetName().c_str(), node->GetName().c_str());
  1024. return false;
  1025. }
  1026. }
  1027. return true;
  1028. }
  1029. Status GraphMemoryAssigner::AssignAtomicOutputMemory(const ge::NodePtr &node, vector<int64_t> &mem_offset_end) {
  1030. auto op_desc = node->GetOpDesc();
  1031. GE_IF_BOOL_EXEC(op_desc == nullptr, GELOGE(ge::FAILED, "op_desc is null."); return ge::FAILED);
  1032. mem_offset_end.clear();
  1033. GELOGD("Begin to assign atomic output memory, node = %s.", op_desc->GetName().c_str());
  1034. vector<int64_t> atomic_output_index;
  1035. // If GetListInt fail, atomic_output_index is empty.
  1036. (void) ge::AttrUtils::GetListInt(op_desc, ATOMIC_ATTR_OUTPUT_INDEX, atomic_output_index);
  1037. // Check atomic output
  1038. vector<int64_t> output_list = op_desc->GetOutputOffset();
  1039. if (atomic_output_index.size() > output_list.size()) {
  1040. std::string error =
  1041. "Op:" + FmtToStr(node->GetName()) + "'s size:" + FmtToStr(atomic_output_index.size()) +
  1042. " of atomic_output_index is more than the size:" + FmtToStr(output_list.size()) + " of output_list";
  1043. GE_ERRORLOG_AND_ERRORMSG(FAILED, error.c_str());
  1044. return ge::FAILED;
  1045. }
  1046. auto output_list_size = static_cast<int64_t>(output_list.size());
  1047. auto iter = memory_offset_.find(RT_MEMORY_HBM);
  1048. if (iter == memory_offset_.end()) {
  1049. REPORT_INNER_ERROR("E19999", "InnerData memory_offset_ does not have type[HBM], not expected, "
  1050. "graph_id:%u, graph_name:%s", compute_graph_->GetGraphID(), compute_graph_->GetName().c_str());
  1051. GELOGE(FAILED, "[Check][InnerData]memory_offset_ does not have memory type[HBM]"
  1052. "graph_id:%u, graph_name:%s", compute_graph_->GetGraphID(), compute_graph_->GetName().c_str());
  1053. return FAILED;
  1054. }
  1055. for (auto &output_index : atomic_output_index) {
  1056. if (output_index >= output_list_size) {
  1057. std::string error =
  1058. "Op:" + FmtToStr(node->GetName()) + "'s atomic_output index:" + FmtToStr(output_index) +
  1059. " is more than the size:" + FmtToStr(output_list_size) + " of output_list.";
  1060. GE_ERRORLOG_AND_ERRORMSG(ge::PARAM_INVALID, error.c_str());
  1061. return ge::PARAM_INVALID;
  1062. }
  1063. // If the input of the cascade op needs to clear the atomic addr, there is no need to clear it separately here
  1064. bool is_assigned_mem = false;
  1065. if (GetMemoryAssignmentStatus(node, output_index, is_assigned_mem) != SUCCESS) {
  1066. GELOGE(ge::FAILED, "[Get][MemoryAssignmentStatus]fail for node %s, out_index:%ld",
  1067. node->GetName().c_str(), output_index);
  1068. return ge::FAILED;
  1069. }
  1070. // If you have already assigned an atomic address, skip it, and you don't need to reassign it.
  1071. if (is_assigned_mem) {
  1072. GELOGI(
  1073. "Node %s atomic output : we have assigned atomic memory as the input of next node in "
  1074. "ReAssignContinuousMemory function.",
  1075. op_desc->GetName().c_str());
  1076. continue;
  1077. }
  1078. auto output_desc = op_desc->GetAllOutputsDescPtr().at(output_index);
  1079. int64_t size = 0;
  1080. if (ge::TensorUtils::GetSize(*output_desc, size) != SUCCESS) {
  1081. GELOGI("Get size failed");
  1082. }
  1083. output_list[output_index] = iter->second.mem_offset_;
  1084. std::string batch_label;
  1085. (void)ge::AttrUtils::GetStr(op_desc, ATTR_NAME_BATCH_LABEL, batch_label);
  1086. GELOGI("[IMAS]Atomic output : Set %s name[%s] optype[%s] output[%ld] offset to [%zu] stream_id[%ld] memtype[%u] "
  1087. "size[%ld] real_size[%ld] batch[%s].", compute_graph_->GetName().c_str(), op_desc->GetName().c_str(),
  1088. node->GetType().c_str(), output_index, iter->second.mem_offset_, op_desc->GetStreamId(), RT_MEMORY_HBM,
  1089. size, size, batch_label.c_str());
  1090. iter->second.mem_offset_ += size;
  1091. AlignMemOffset(MEM_ALIGN_SIZE, RT_MEMORY_HBM);
  1092. mem_offset_end.emplace_back(iter->second.mem_offset_);
  1093. }
  1094. op_desc->SetOutputOffset(output_list);
  1095. return ge::SUCCESS;
  1096. }
  1097. Status GraphMemoryAssigner::GetMemoryAssignmentStatus(const ge::NodePtr &node, int64_t output_index,
  1098. bool &is_mem_assigned) {
  1099. if (static_cast<size_t>(output_index) >= node->GetAllOutDataAnchors().size()) {
  1100. std::string error =
  1101. "Op:" + FmtToStr(node->GetName()) + "'s output index:" + FmtToStr(output_index) +
  1102. " is more than the size:" + FmtToStr(node->GetAllOutDataAnchors().size()) + " of node's AllOutDataAnchors.";
  1103. GE_ERRORLOG_AND_ERRORMSG(ge::PARAM_INVALID, error.c_str());
  1104. return ge::PARAM_INVALID;
  1105. }
  1106. auto out_data_anchor = node->GetAllOutDataAnchors().at(output_index);
  1107. GE_CHECK_NOTNULL(out_data_anchor);
  1108. auto input_anchors = out_data_anchor->GetPeerInDataAnchors();
  1109. for (auto &input_anchor : input_anchors) {
  1110. auto output_node = input_anchor->GetOwnerNode();
  1111. /// Get input atomic attr of peer output op, if atomic_input_index[0] = -1, indicates that the atomic address
  1112. /// has been assigned
  1113. vector<int64_t> atomic_input_index;
  1114. (void) ge::AttrUtils::GetListInt(output_node->GetOpDesc(), ATOMIC_ATTR_INPUT_INDEX, atomic_input_index);
  1115. if (!atomic_input_index.empty() && (atomic_input_index[0] == kAllInputAddrIsAtomic)) {
  1116. is_mem_assigned = true;
  1117. break;
  1118. }
  1119. }
  1120. return SUCCESS;
  1121. }
  1122. Status GraphMemoryAssigner::AssignOrdinaryAtomicWorkspaceMemory(const ge::OpDescPtr &op_desc,
  1123. map<string, map<int64_t, int64_t>> &workspace_info,
  1124. vector<int64_t> &mem_offset_end) {
  1125. GELOGI("Begin to reassign normal atomic memory, node = %s.", op_desc->GetName().c_str());
  1126. auto mem_type_iter = memory_offset_.find(RT_MEMORY_HBM);
  1127. if (mem_type_iter == memory_offset_.end()) {
  1128. REPORT_INNER_ERROR("E19999", "InnerData memory_offset_ does not have type[HBM], not expected, "
  1129. "graph_id:%u, graph_name:%s", compute_graph_->GetGraphID(), compute_graph_->GetName().c_str());
  1130. GELOGE(FAILED, "[Check][InnerData]memory_offset_ does not have memory type[HBM]"
  1131. "graph_id:%u, graph_name:%s", compute_graph_->GetGraphID(), compute_graph_->GetName().c_str());
  1132. return FAILED;
  1133. }
  1134. vector<int64_t> workspace_vector = op_desc->GetWorkspace();
  1135. for (auto iter = workspace_info.begin(); iter != workspace_info.end(); ++iter) {
  1136. if (op_desc->GetName() != iter->first) {
  1137. std::string error = "The node name" + FmtToStr(op_desc->GetName()) +
  1138. " and the node name" + FmtToStr(iter->first) + " in workspace info are inconsistent.";
  1139. GE_ERRORLOG_AND_ERRORMSG(ge::PARAM_INVALID, error.c_str());
  1140. return ge::PARAM_INVALID;
  1141. }
  1142. if (iter->second.empty()) {
  1143. continue;
  1144. }
  1145. for (auto &info_iter : iter->second) {
  1146. auto workspace_index = static_cast<uint64_t>(info_iter.first);
  1147. auto workspace_size = info_iter.second;
  1148. if (workspace_index >= workspace_vector.size()) {
  1149. std::string error = "The workspace index:" + FmtToStr(workspace_index) +
  1150. " is more than the size:" + FmtToStr(workspace_vector.size()) + " of workspace vector in op:" +
  1151. op_desc->GetName().c_str();
  1152. GE_ERRORLOG_AND_ERRORMSG(ge::PARAM_INVALID, error.c_str());
  1153. return ge::PARAM_INVALID;
  1154. }
  1155. workspace_vector[workspace_index] = mem_type_iter->second.mem_offset_;
  1156. std::string batch_label;
  1157. (void)ge::AttrUtils::GetStr(op_desc, ATTR_NAME_BATCH_LABEL, batch_label);
  1158. GELOGI(
  1159. "[IMAS]Atomic ordinary workspace : Set %s name[%s] optype[%s] workspace[%lu] offset to [%zu] stream_id[%ld] "
  1160. "memtype[%u] size[%ld] real_size[%ld] batch[%s].",
  1161. compute_graph_->GetName().c_str(), op_desc->GetName().c_str(), op_desc->GetType().c_str(), workspace_index,
  1162. mem_type_iter->second.mem_offset_, op_desc->GetStreamId(), RT_MEMORY_HBM, workspace_size, workspace_size,
  1163. batch_label.c_str());
  1164. mem_type_iter->second.mem_offset_ += workspace_size;
  1165. AlignMemOffset(MEM_ALIGN_SIZE, RT_MEMORY_HBM);
  1166. mem_offset_end.emplace_back(mem_type_iter->second.mem_offset_);
  1167. }
  1168. }
  1169. op_desc->SetWorkspace(workspace_vector);
  1170. return SUCCESS;
  1171. }
  1172. Status GraphMemoryAssigner::AssignFusionAtomicWorkspaceMemory(const ge::OpDescPtr &op_desc,
  1173. map<string, map<int64_t, int64_t>> &workspace_info,
  1174. vector<int64_t> &mem_offset_end) {
  1175. GELOGI("Begin to reassign fusion atomic memory, node = %s.", op_desc->GetName().c_str());
  1176. auto mem_type_iter = memory_offset_.find(RT_MEMORY_HBM);
  1177. if (mem_type_iter == memory_offset_.end()) {
  1178. REPORT_INNER_ERROR("E19999", "InnerData memory_offset_ does not have type[HBM], not expected, "
  1179. "graph_id:%u, graph_name:%s", compute_graph_->GetGraphID(), compute_graph_->GetName().c_str());
  1180. GELOGE(FAILED, "[Check][InnerData]memory_offset_ does not have memory type[HBM]"
  1181. "graph_id:%u, graph_name:%s", compute_graph_->GetGraphID(), compute_graph_->GetName().c_str());
  1182. return FAILED;
  1183. }
  1184. map<string, map<int64_t, int64_t>> sub_node_workspace_offset;
  1185. for (auto &iter : workspace_info) {
  1186. if (iter.second.empty()) {
  1187. continue;
  1188. }
  1189. map<int64_t, int64_t> index_offset;
  1190. for (auto &info_iter : iter.second) {
  1191. auto workspace_index = static_cast<uint64_t>(info_iter.first);
  1192. auto workspace_size = info_iter.second;
  1193. size_t workspace_offset = mem_type_iter->second.mem_offset_;
  1194. std::string batch_label;
  1195. (void)ge::AttrUtils::GetStr(op_desc, ATTR_NAME_BATCH_LABEL, batch_label);
  1196. GELOGI(
  1197. "[IMAS]Atomic fusion workspace : Set %s name[%s] optype[%s] workspace[%lu] offset to [%zu] stream_id[%ld] "
  1198. "memtype[%u] ssize[%ld] real_size[%ld] batch[%s].", compute_graph_->GetName().c_str(),
  1199. op_desc->GetName().c_str(), op_desc->GetType().c_str(), workspace_index, mem_type_iter->second.mem_offset_,
  1200. op_desc->GetStreamId(), RT_MEMORY_HBM, workspace_size, workspace_size, batch_label.c_str());
  1201. mem_type_iter->second.mem_offset_ += workspace_size;
  1202. AlignMemOffset(MEM_ALIGN_SIZE, RT_MEMORY_HBM);
  1203. mem_offset_end.emplace_back(mem_type_iter->second.mem_offset_);
  1204. index_offset.insert(std::make_pair(workspace_index, workspace_offset));
  1205. }
  1206. sub_node_workspace_offset.insert(std::make_pair(iter.first, index_offset));
  1207. }
  1208. if (!(op_desc->SetExtAttr(EXT_ATTR_ATOMIC_WORKSPACE_OFFSET, sub_node_workspace_offset))) {
  1209. REPORT_INNER_ERROR("E19999", "Set Attr:%s fail for node:%s",
  1210. EXT_ATTR_ATOMIC_WORKSPACE_OFFSET.c_str(), op_desc->GetName().c_str());
  1211. GELOGE(FAILED, "[Set][Attr:%s]fail for node:%s.",
  1212. EXT_ATTR_ATOMIC_WORKSPACE_OFFSET.c_str(), op_desc->GetName().c_str());
  1213. return FAILED;
  1214. }
  1215. return SUCCESS;
  1216. }
  1217. Status GraphMemoryAssigner::CheckOffset() {
  1218. std::map<std::string, std::string> anchor_to_symbol;
  1219. std::map<std::string, std::list<NodeIndexIO>> symbol_to_anchors;
  1220. if (GraphUtils::GetRefMapping(compute_graph_, symbol_to_anchors, anchor_to_symbol) != GRAPH_SUCCESS) {
  1221. REPORT_CALL_ERROR("E19999", "Get ref-mapping for graph %s failed", compute_graph_->GetName().c_str());
  1222. GELOGE(FAILED, "[Get][RefMapping]fail for graph %s", compute_graph_->GetName().c_str());
  1223. return FAILED;
  1224. }
  1225. for (const ge::NodePtr &node : compute_graph_->GetAllNodes()) {
  1226. GE_CHECK_NOTNULL(node->GetOpDesc());
  1227. vector<int64_t> input_list = node->GetOpDesc()->GetInputOffset();
  1228. for (auto input : input_list) {
  1229. if (input == ge::kInvalidOffset) {
  1230. std::string error = "Invalid input offset" + FmtToStr(ge::kInvalidOffset) +
  1231. + " in node" + FmtToStr(node->GetName());
  1232. GE_ERRORLOG_AND_ERRORMSG(FAILED, error.c_str());
  1233. return FAILED;
  1234. }
  1235. }
  1236. bool need_update_output = false;
  1237. vector<int64_t> output_list = node->GetOpDesc()->GetOutputOffset();
  1238. for (uint32_t i = 0; i < output_list.size(); ++i) {
  1239. if (output_list[i] == ge::kInvalidOffset) {
  1240. std::string error = "Invalid output offset" + FmtToStr(ge::kInvalidOffset) +
  1241. + " in node" + FmtToStr(node->GetName());
  1242. GE_ERRORLOG_AND_ERRORMSG(FAILED, error.c_str());
  1243. return FAILED;
  1244. }
  1245. if (node->GetType() == IDENTITY || node->GetType() == READVARIABLEOP) {
  1246. auto symbol_offset = GetSymbolOutputOffset(anchor_to_symbol, symbol_to_anchors, node, i);
  1247. if (symbol_offset != ge::kInvalidOffset && output_list[i] != symbol_offset) {
  1248. output_list[i] = symbol_offset;
  1249. need_update_output = true;
  1250. }
  1251. }
  1252. }
  1253. if (need_update_output) {
  1254. node->GetOpDesc()->SetOutputOffset(output_list);
  1255. }
  1256. vector<int64_t> workspace_list = node->GetOpDesc()->GetWorkspace();
  1257. for (auto workspace : workspace_list) {
  1258. if (workspace == ge::kInvalidOffset) {
  1259. std::string error = "Invalid workspace" + FmtToStr(ge::kInvalidOffset) +
  1260. + " in node" + FmtToStr(node->GetName());
  1261. GE_ERRORLOG_AND_ERRORMSG(FAILED, error.c_str());
  1262. return FAILED;
  1263. }
  1264. }
  1265. // check reuse input and output
  1266. GE_CHK_STATUS_RET(CheckRefNodeOffset(node), "[Check][Offset]fail for node: %s", node->GetName().c_str());
  1267. }
  1268. return SUCCESS;
  1269. }
  1270. ge::Status GraphMemoryAssigner::CheckRefNodeOffset(const NodePtr &node) {
  1271. GE_CHECK_NOTNULL(node);
  1272. std::map<int32_t, int32_t> out2ins;
  1273. GE_CHK_STATUS_RET(TryGetNodeRefIndexes(node, out2ins), "[Get][RefIndexes]fail for node: %s", node->GetName().c_str());
  1274. auto opdesc = node->GetOpDesc();
  1275. GE_CHECK_NOTNULL(opdesc);
  1276. auto output_list = opdesc->GetOutputOffset();
  1277. auto input_list = opdesc->GetInputOffset();
  1278. for (const auto &out2in : out2ins) {
  1279. auto out_i = out2in.first;
  1280. if (static_cast<size_t>(out_i) >= output_list.size()) {
  1281. std::string error = "Node" + FmtToStr(opdesc->GetName()) + "output offset size" +
  1282. FmtToStr(output_list.size()) + "should bigger than ref out index" + FmtToStr(out_i);
  1283. GE_ERRORLOG_AND_ERRORMSG(ge::FAILED, error.c_str());
  1284. return ge::FAILED;
  1285. }
  1286. auto in_i = out2in.second;
  1287. if (static_cast<size_t>(in_i) >= input_list.size()) {
  1288. std::string error = "Node" + FmtToStr(opdesc->GetName()) + "input offset size" +
  1289. FmtToStr(input_list.size()) + "should bigger than ref input index" + FmtToStr(in_i);
  1290. GE_ERRORLOG_AND_ERRORMSG(ge::FAILED, error.c_str());
  1291. return ge::FAILED;
  1292. }
  1293. if (output_list[out_i] != input_list[in_i]) {
  1294. std::string error = "Node" + FmtToStr(opdesc->GetName()) + "input offset " + FmtToStr(input_list[in_i]) +
  1295. "should equal to output offset" + FmtToStr(output_list[out_i]) + "with ref in" +
  1296. FmtToStr(in_i) + "to output" + FmtToStr(out_i);
  1297. GE_ERRORLOG_AND_ERRORMSG(ge::FAILED, error.c_str());
  1298. return ge::FAILED;
  1299. }
  1300. }
  1301. return ge::SUCCESS;
  1302. }
  1303. ge::Status GraphMemoryAssigner::SetInputOffset() {
  1304. if (memory_offset_.empty()) {
  1305. REPORT_INNER_ERROR("E19999", "InnerData memory_offset_ empty, not expected, graph_id:%u, graph_name:%s",
  1306. compute_graph_->GetGraphID(), compute_graph_->GetName().c_str());
  1307. GELOGE(FAILED, "[Check][InnerData:memory_offset_]empty is not expected, "
  1308. "graph_id:%u, graph_name:%s", compute_graph_->GetGraphID(), compute_graph_->GetName().c_str());
  1309. }
  1310. for (auto pair : memory_offset_) {
  1311. if ((pair.first != RT_MEMORY_HBM) && (pair.second.mem_offset_ == 0)) {
  1312. continue;
  1313. }
  1314. GEEVENT("[IMAS]AfterAssignMemory : %s memoffset[%zu], memtype[%ld]", compute_graph_->GetName().c_str(),
  1315. pair.second.mem_offset_, pair.first);
  1316. }
  1317. for (const ge::NodePtr &node : compute_graph_->GetAllNodes()) {
  1318. if (UpdateOpInputOffset(node) != ge::SUCCESS) {
  1319. GELOGE(ge::FAILED, "[Update][Offset:Input]fail for op:%s", node->GetName().c_str());
  1320. return ge::FAILED;
  1321. }
  1322. }
  1323. return ge::SUCCESS;
  1324. }
  1325. NodePtr GraphMemoryAssigner::GetKnownInputNode(const NodePtr &node) const {
  1326. if (!node->GetOpDesc()->HasAttr(ATTR_NAME_PARENT_NODE_INDEX)) {
  1327. return node;
  1328. }
  1329. if (NodeUtils::IsDynamicShape(node)) {
  1330. return node;
  1331. }
  1332. return NodeUtils::GetParentInput(node);
  1333. }
  1334. ge::Status GraphMemoryAssigner::UpdateConstArgsOffset(const NodePtr &node, vector<int64_t> &input_list) const {
  1335. uint32_t parent_index = 0;
  1336. if (!AttrUtils::GetInt(node->GetOpDesc(), ATTR_NAME_PARENT_NODE_INDEX, parent_index)) {
  1337. return SUCCESS;
  1338. }
  1339. // Subgraph Data Node, check for constant input.
  1340. std::string op_type;
  1341. const auto &in_node = NodeUtils::GetParentInput(node);
  1342. if (NodeUtils::GetConstOpType(in_node, op_type)) {
  1343. input_list = in_node->GetOpDesc()->GetOutputOffset();
  1344. node->GetOpDesc()->SetOutputOffset(input_list); // Set Data output same as const output.
  1345. return SUCCESS; // Constant input.
  1346. }
  1347. // Memory allocated for dynamic shape subgraph Data.
  1348. if (NodeUtils::IsDynamicShape(node)) {
  1349. return SUCCESS;
  1350. }
  1351. const auto &owner = node->GetOwnerComputeGraph();
  1352. const auto &parent_desc = owner->GetParentNode()->GetOpDesc();
  1353. const auto parent_inputs = parent_desc->GetInputOffset();
  1354. if (parent_inputs.size() <= parent_index) {
  1355. std::string error = "Get Parent input offset failed, node is " + FmtToStr(node->GetName()) +
  1356. + ", input_size is " + FmtToStr(parent_inputs.size()) + ", parent index is " +
  1357. FmtToStr(parent_index);
  1358. GE_ERRORLOG_AND_ERRORMSG(FAILED, error.c_str());
  1359. return FAILED;
  1360. }
  1361. input_list = {parent_inputs[parent_index]};
  1362. node->GetOpDesc()->SetOutputOffset(input_list); // Set Data output same as parent input.
  1363. return SUCCESS;
  1364. }
  1365. ge::Status GraphMemoryAssigner::UpdateOpInputOffset(const NodePtr &node, vector<int64_t> &input_list) const {
  1366. vector<int64_t> origin_input_list;
  1367. vector<int64_t> memory_type;
  1368. auto tmp_op_desc = node->GetOpDesc();
  1369. origin_input_list = tmp_op_desc->GetInputOffset();
  1370. int64_t valid_input_index = 0;
  1371. bool has_mem_type_attr = ge::AttrUtils::GetListInt(tmp_op_desc, ATTR_NAME_INPUT_MEM_TYPE_LIST, memory_type);
  1372. std::map<int32_t, int32_t> out2ins;
  1373. GE_CHK_STATUS_RET(TryGetNodeRefIndexes(node, out2ins), "[Get][RefIndexes]fail for node: %s", node->GetName().c_str());
  1374. for (const auto &anchor : node->GetAllInDataAnchors()) {
  1375. vector<int64_t> output_list;
  1376. auto peer_out_anchor = anchor->GetPeerOutAnchor();
  1377. if (peer_out_anchor == nullptr) {
  1378. continue;
  1379. }
  1380. // If the current node not broadcast, the OutputOffset of the previous node is used to update the input_list
  1381. auto last_peer_out_node = peer_out_anchor->GetOwnerNode();
  1382. auto last_peer_out_op_desc = last_peer_out_node->GetOpDesc();
  1383. GE_CHECK_NOTNULL(last_peer_out_op_desc);
  1384. output_list = last_peer_out_op_desc->GetOutputOffset();
  1385. auto out_index = static_cast<unsigned long>(peer_out_anchor->GetIdx());
  1386. if (output_list.size() > static_cast<size_t>(out_index)) {
  1387. int64_t peer_out_inner_offset = 0;
  1388. if (ge::AttrUtils::GetInt(last_peer_out_op_desc->MutableOutputDesc(out_index), ATTR_NAME_INNER_OFFSET,
  1389. peer_out_inner_offset)) {
  1390. (void)ge::AttrUtils::SetInt(tmp_op_desc->MutableInputDesc(anchor->GetIdx()), ATTR_NAME_INNER_OFFSET,
  1391. peer_out_inner_offset);
  1392. }
  1393. bool is_l1_type = false;
  1394. int64_t input_offset = output_list.at(out_index);
  1395. if (has_mem_type_attr && !origin_input_list.empty()) {
  1396. auto input_size = tmp_op_desc->GetInputsSize();
  1397. auto ori_input_offset_list_size = origin_input_list.size();
  1398. auto mem_type_size = memory_type.size();
  1399. if ((input_size != mem_type_size) || (input_size != ori_input_offset_list_size)) {
  1400. std::string error = "Node" + FmtToStr(tmp_op_desc->GetName()) +
  1401. + " input_size" + FmtToStr(input_size) + " diff from memory_type_size" +
  1402. FmtToStr(mem_type_size) + " from ori_input_offset_list_size" +
  1403. FmtToStr(ori_input_offset_list_size);
  1404. GE_ERRORLOG_AND_ERRORMSG(ge::FAILED, error.c_str());
  1405. return ge::FAILED;
  1406. }
  1407. int64_t inner_offset = 0;
  1408. (void)ge::AttrUtils::GetInt(tmp_op_desc->MutableInputDesc(anchor->GetIdx()), ATTR_NAME_INNER_OFFSET,
  1409. inner_offset);
  1410. GELOGD("Node[%s] input[%d] has origin offset[%ld] origin_inner_offset[%ld]", tmp_op_desc->GetName().c_str(),
  1411. anchor->GetIdx(), origin_input_list[valid_input_index], inner_offset);
  1412. // L1 keep original input_offset
  1413. is_l1_type = (memory_type[valid_input_index] == RT_MEMORY_L1);
  1414. if (is_l1_type) {
  1415. input_offset = origin_input_list[valid_input_index];
  1416. } else {
  1417. // hbm input_offset = original input_offset + output_offset
  1418. if ((origin_input_list[valid_input_index] != 0) && (!tmp_op_desc->GetSubgraphInstanceNames().empty())) {
  1419. std::string error = "Node" + FmtToStr(tmp_op_desc->GetName()) +
  1420. +" has subgraphs which is conflict with has origin_input_list" +
  1421. FmtToStr(origin_input_list[valid_input_index]);
  1422. GE_ERRORLOG_AND_ERRORMSG(ge::FAILED, error.c_str());
  1423. return ge::FAILED;
  1424. }
  1425. input_offset = origin_input_list[valid_input_index] + output_list.at(out_index);
  1426. (void)ge::AttrUtils::SetInt(tmp_op_desc->MutableInputDesc(anchor->GetIdx()), ATTR_NAME_INNER_OFFSET,
  1427. origin_input_list[valid_input_index] + inner_offset);
  1428. }
  1429. }
  1430. const auto &in_node = GetKnownInputNode(peer_out_anchor->GetOwnerNode());
  1431. if (in_node->GetType() == CONSTANT) {
  1432. GeTensorDesc tensor_desc = tmp_op_desc->GetInputDesc(static_cast<uint32_t>(anchor->GetIdx()));
  1433. GE_CHK_STATUS(TensorUtils::GetDataOffset(tensor_desc, input_offset));
  1434. }
  1435. if (!is_l1_type) {
  1436. // update ref output_offset when input change
  1437. GE_CHK_STATUS_RET(UpdateRefOpOutputOffset(node, out2ins, anchor->GetIdx(), input_offset),
  1438. "[Update][RefOffset]fail for node: %s", node->GetName().c_str());
  1439. }
  1440. GELOGD("Node[%s] input[%d] is set from node[%s] out index[%lu] offset[%ld]", tmp_op_desc->GetName().c_str(),
  1441. anchor->GetIdx(), peer_out_anchor->GetOwnerNode()->GetOpDesc()->GetName().c_str(), out_index,
  1442. input_offset);
  1443. input_list.emplace_back(input_offset);
  1444. valid_input_index++;
  1445. }
  1446. }
  1447. return ge::SUCCESS;
  1448. }
  1449. ge::Status GraphMemoryAssigner::UpdateRefOpOutputOffset(const NodePtr &node, const std::map<int32_t, int32_t> &out2ins,
  1450. const int ref_in, const int64_t input_offset) const {
  1451. auto opdesc = node->GetOpDesc();
  1452. GE_CHECK_NOTNULL(opdesc);
  1453. int64_t inner_offset = 0;
  1454. bool has_inner_offset = ge::AttrUtils::GetInt(opdesc->MutableInputDesc(ref_in), ATTR_NAME_INNER_OFFSET, inner_offset);
  1455. for (const auto &out2in : out2ins) {
  1456. auto out_i = out2in.first;
  1457. auto in_i = out2in.second;
  1458. if (in_i == ref_in) {
  1459. auto origin_output_list = opdesc->GetOutputOffset();
  1460. if (static_cast<size_t>(out_i) >= origin_output_list.size()) {
  1461. std::string error = "Node" + FmtToStr(opdesc->GetName()) + "output offset size" +
  1462. FmtToStr(origin_output_list.size()) + "should bigger than ref out index" + FmtToStr(out_i);
  1463. GE_ERRORLOG_AND_ERRORMSG(ge::FAILED, error.c_str());
  1464. return ge::FAILED;
  1465. }
  1466. origin_output_list[out_i] = input_offset;
  1467. opdesc->SetOutputOffset(origin_output_list);
  1468. if (has_inner_offset) {
  1469. (void)ge::AttrUtils::SetInt(opdesc->MutableOutputDesc(out_i), ATTR_NAME_INNER_OFFSET, inner_offset);
  1470. }
  1471. GELOGI("Node[%s] output[%d] is updated from reuse input index[%d] to offset[%ld], inner_offset[%ld]", opdesc->GetName().c_str(),
  1472. out_i, ref_in, input_offset, inner_offset);
  1473. }
  1474. }
  1475. return ge::SUCCESS;
  1476. }
  1477. ge::Status GraphMemoryAssigner::UpdateOpInputOffset(const NodePtr &node) const {
  1478. GE_CHECK_NOTNULL(node->GetOpDesc());
  1479. vector<int64_t> input_list;
  1480. if (node->GetType() == HCOMBROADCAST || node->GetType() == HVDCALLBACKBROADCAST) {
  1481. for (const auto &anchor : node->GetAllInDataAnchors()) {
  1482. vector<int64_t> output_list;
  1483. auto peer_out_anchor = anchor->GetPeerOutAnchor();
  1484. if (peer_out_anchor == nullptr) {
  1485. continue;
  1486. }
  1487. auto last_peer_out_node = peer_out_anchor->GetOwnerNode();
  1488. // If the current node is broadcast and the preceding node is variable, because InputOffset has been set
  1489. // in function:AssignVarAttr2Nodes, then the InputOffset of the broadcast node is taken to update the input_list.
  1490. // Otherwise, the OutputOffset of the previous node is used to update the input_list.
  1491. if (last_peer_out_node->GetType() != VARIABLE) {
  1492. auto last_peer_out_op_desc = last_peer_out_node->GetOpDesc();
  1493. GE_CHECK_NOTNULL(last_peer_out_op_desc);
  1494. output_list = last_peer_out_op_desc->GetOutputOffset();
  1495. if (output_list.size() > static_cast<size_t>(peer_out_anchor->GetIdx())) {
  1496. input_list.emplace_back(output_list.at(peer_out_anchor->GetIdx()));
  1497. }
  1498. } else {
  1499. vector<int64_t> cur_node_input_list;
  1500. auto cur_node_op_desc = node->GetOpDesc();
  1501. GE_CHECK_NOTNULL(cur_node_op_desc);
  1502. cur_node_input_list = cur_node_op_desc->GetInputOffset();
  1503. if (cur_node_input_list.size() > static_cast<size_t>(anchor->GetIdx())) {
  1504. input_list.emplace_back(cur_node_input_list.at(anchor->GetIdx()));
  1505. }
  1506. }
  1507. }
  1508. } else if (node->GetType() == DATA_TYPE) {
  1509. if (UpdateConstArgsOffset(node, input_list) != SUCCESS) {
  1510. GELOGE(FAILED, "[Update][Offset:Input:Const]fail for node:%s ", node->GetName().c_str());
  1511. return FAILED;
  1512. }
  1513. } else {
  1514. if (UpdateOpInputOffset(node, input_list) != SUCCESS) {
  1515. GELOGE(FAILED, "[Update][Offset:Input]fail for node:%s", node->GetName().c_str());
  1516. return FAILED;
  1517. }
  1518. }
  1519. node->GetOpDesc()->SetInputOffset(input_list);
  1520. return SUCCESS;
  1521. }
  1522. Status GraphMemoryAssigner::SetIndependentAtomicAttr(const ge::NodePtr &node, int64_t atomic_mem_start,
  1523. const vector<int64_t> &mem_offset_end, int64_t memory_type) {
  1524. GELOGD("Start to set independent atomic attr, atomic_addr_clean memory offset start is %ld", atomic_mem_start);
  1525. // Parsing offset and size vectors
  1526. vector<int64_t> memory_offset_start;
  1527. vector<int64_t> memory_offset_size;
  1528. memory_offset_start.emplace_back(atomic_mem_start);
  1529. for (size_t i = 0; i < mem_offset_end.size(); ++i) {
  1530. memory_offset_start.emplace_back(mem_offset_end[i]);
  1531. // Number 1 means element index
  1532. auto size = memory_offset_start[i + 1] - memory_offset_start[i];
  1533. memory_offset_size.emplace_back(size);
  1534. }
  1535. memory_offset_start.pop_back();
  1536. const auto &in_control_anchor = node->GetInControlAnchor();
  1537. if (!memory_offset_size.empty() && in_control_anchor != nullptr) {
  1538. for (auto &peer_out_control_anchor : in_control_anchor->GetPeerOutControlAnchors()) {
  1539. if (peer_out_control_anchor == nullptr) {
  1540. continue;
  1541. }
  1542. auto peer_out_node = peer_out_control_anchor->GetOwnerNode();
  1543. auto peer_out_node_desc = peer_out_node->GetOpDesc();
  1544. if (peer_out_node_desc == nullptr) {
  1545. continue;
  1546. }
  1547. GELOGD("Current node memory_offset vector size is %zu, node name %s, node type is %s.", memory_offset_size.size(),
  1548. peer_out_node_desc->GetName().c_str(), peer_out_node_desc->GetType().c_str());
  1549. if (peer_out_node_desc->GetType() == ATOMICADDRCLEAN) {
  1550. if (SetAtomicCleanAttr(peer_out_node, memory_offset_start, memory_offset_size, memory_type) != SUCCESS) {
  1551. GELOGE(FAILED, "[Set][AtomicCleanAttr]fail for node:%s", peer_out_node->GetName().c_str());
  1552. return FAILED;
  1553. }
  1554. }
  1555. }
  1556. }
  1557. return SUCCESS;
  1558. }
  1559. ge::Status GraphMemoryAssigner::SetAtomicCleanAttr(const NodePtr &node, const vector<int64_t> &atomic_mem_start,
  1560. const vector<int64_t> &atomic_mem_size, int64_t memory_type) {
  1561. auto node_op_desc = node->GetOpDesc();
  1562. if (node_op_desc != nullptr) {
  1563. GELOGD("Node %s, set atomic clean attr start.", node->GetName().c_str());
  1564. vector<int64_t> workspace_vector = node_op_desc->GetWorkspace();
  1565. vector<int64_t> workspace_byte_vector = node_op_desc->GetWorkspaceBytes();
  1566. workspace_vector.insert(workspace_vector.end(), atomic_mem_start.begin(), atomic_mem_start.end());
  1567. workspace_byte_vector.insert(workspace_byte_vector.end(), atomic_mem_size.begin(), atomic_mem_size.end());
  1568. node_op_desc->SetWorkspace(workspace_vector);
  1569. node_op_desc->SetWorkspaceBytes(workspace_byte_vector);
  1570. std::vector<int64_t> mem_start_vector;
  1571. // If GetListInt fail, mem_start_vector is empty.
  1572. (void) ge::AttrUtils::GetListInt(node_op_desc, ATTR_NAME_AUTOMIC_ADD_START, mem_start_vector);
  1573. mem_start_vector.insert(mem_start_vector.end(), atomic_mem_start.begin(), atomic_mem_start.end());
  1574. GE_CHK_BOOL_EXEC(ge::AttrUtils::SetListInt(node_op_desc, ATTR_NAME_AUTOMIC_ADD_START, mem_start_vector),
  1575. REPORT_INNER_ERROR("E19999", "Set Attr:%s failed, op_name:%s",
  1576. ATTR_NAME_AUTOMIC_ADD_START.c_str(), node_op_desc->GetName().c_str());
  1577. GELOGE(FAILED, "[Set][Attr:%s]fail for op_name:%s",
  1578. ATTR_NAME_AUTOMIC_ADD_START.c_str(), node_op_desc->GetName().c_str());
  1579. return FAILED);
  1580. std::vector<int64_t> mem_size_vector;
  1581. // If GetListInt fail, mem_size_vector is empty.
  1582. (void) ge::AttrUtils::GetListInt(node_op_desc, ATTR_NAME_AUTOMIC_ADD_MEM_SIZE, mem_size_vector);
  1583. mem_size_vector.insert(mem_size_vector.end(), atomic_mem_size.begin(), atomic_mem_size.end());
  1584. GE_CHK_BOOL_EXEC(ge::AttrUtils::SetListInt(node_op_desc, ATTR_NAME_AUTOMIC_ADD_MEM_SIZE, mem_size_vector),
  1585. REPORT_INNER_ERROR("E19999", "Set Attr:%s failed, op_name:%s",
  1586. ATTR_NAME_AUTOMIC_ADD_MEM_SIZE.c_str(), node_op_desc->GetName().c_str());
  1587. GELOGE(FAILED, "[Set][Attr:%s]fail for op_name:%s",
  1588. ATTR_NAME_AUTOMIC_ADD_MEM_SIZE.c_str(), node_op_desc->GetName().c_str());
  1589. return FAILED);
  1590. std::stringstream ss;
  1591. for (auto iter : atomic_mem_start) {
  1592. ss << iter << " ";
  1593. }
  1594. string atomic_mem_start_str = ss.str();
  1595. ss.clear();
  1596. ss.str("");
  1597. for (auto iter : atomic_mem_size) {
  1598. ss << iter << " ";
  1599. }
  1600. string atomic_mem_size_str = ss.str();
  1601. GELOGI("[IMAS]SetAtomicCleanAttr : Set %s atomic_node name[%s] optype[%s] output[0] offset to [%s] streamid[%ld]"
  1602. " memtype[%ld] size[%s]",node->GetOwnerComputeGraph()->GetName().c_str(), node_op_desc->GetName().c_str(),
  1603. node->GetType().c_str(), atomic_mem_start_str.c_str(), node->GetOpDesc()->GetStreamId(), memory_type,
  1604. atomic_mem_size_str.c_str());
  1605. }
  1606. return SUCCESS;
  1607. }
  1608. void GraphMemoryAssigner::AlignMemOffset(const int64_t &mem_align_size, int64_t memory_type) {
  1609. if (mem_align_size <= 0) {
  1610. return;
  1611. }
  1612. auto iter = memory_offset_.find(memory_type);
  1613. if (iter == memory_offset_.end()) {
  1614. GELOGW("Memory offset don't have memory type[%ld].", memory_type);
  1615. return;
  1616. }
  1617. iter->second.mem_offset_ =
  1618. (iter->second.mem_offset_ + mem_align_size - 1) / mem_align_size * mem_align_size;
  1619. }
  1620. ge::Status GraphMemoryAssigner::GetNodeListMemoryType(const vector<NodePtr> &nodes, int32_t mem_reuse_model,
  1621. int64_t &memory_type) {
  1622. memory_type = RT_MEMORY_HBM;
  1623. // In the dynamic batch scenario, the memory attributes of nodes are the same.
  1624. for (auto &n : nodes) {
  1625. if (mem_reuse_model == kVirtualInputNodeMemoryReuse) {
  1626. GE_CHK_STATUS_RET(GetNodeMemoryType(n, memory_type, "input"),
  1627. "[Get][MemType:input]fail for node:%s", n->GetName().c_str())
  1628. break;
  1629. }
  1630. if (mem_reuse_model == kVirtualOutputNodeMemoryReuse) {
  1631. GE_CHK_STATUS_RET(GetNodeMemoryType(n, memory_type, "output"),
  1632. "[Get][MemType:output]fail for node:%s", n->GetName().c_str())
  1633. break;
  1634. }
  1635. }
  1636. return SUCCESS;
  1637. }
  1638. ge::Status GraphMemoryAssigner::GetNodeMemoryType(const NodePtr &node, int64_t &memory_type, string input_or_output) {
  1639. memory_type = RT_MEMORY_HBM;
  1640. vector<int64_t> mem_type_list;
  1641. if (input_or_output == "input") {
  1642. (void) ge::AttrUtils::GetListInt(node->GetOpDesc(), ATTR_NAME_INPUT_MEM_TYPE_LIST, mem_type_list);
  1643. }
  1644. if (input_or_output == "output") {
  1645. (void) ge::AttrUtils::GetListInt(node->GetOpDesc(), ATTR_NAME_OUTPUT_MEM_TYPE_LIST, mem_type_list);
  1646. }
  1647. if (mem_type_list.empty()) {
  1648. if (memory_offset_.find(memory_type) == memory_offset_.end()) {
  1649. std::string error = "Memory offset map does not have memory type" + FmtToStr(memory_type) +
  1650. + ", opname is " + FmtToStr(node->GetName()) + ", optype is " + FmtToStr(node->GetType());
  1651. GE_ERRORLOG_AND_ERRORMSG(FAILED, error.c_str());
  1652. return FAILED;
  1653. }
  1654. return SUCCESS;
  1655. }
  1656. if (mem_type_list.size() != node->GetAllInDataAnchorsSize()) {
  1657. std::string error = "The size" + FmtToStr(mem_type_list.size()) +
  1658. " of mem type list is not equal to the size of in data anchor" +
  1659. FmtToStr(node->GetAllInDataAnchorsSize()) + ", opname is " +
  1660. FmtToStr(node->GetName()) + ", optype is " + FmtToStr(node->GetType());
  1661. GE_ERRORLOG_AND_ERRORMSG(FAILED, error.c_str());
  1662. return FAILED;
  1663. }
  1664. if (!CheckContinuousMemType(mem_type_list)) {
  1665. GELOGE(FAILED, "[Check][MemType:Continuous]fail for node:%s", node->GetName().c_str());
  1666. return FAILED;
  1667. }
  1668. // It is continuous memory and memory type is the same, so use the first memory.
  1669. memory_type = mem_type_list[0];
  1670. return SUCCESS;
  1671. }
  1672. bool GraphMemoryAssigner::CheckContinuousMemType(vector<int64_t> mem_type_list) {
  1673. if (mem_type_list.size() == 0) {
  1674. return true;
  1675. }
  1676. int64_t mem_type_tmp = mem_type_list[0];
  1677. for (auto mem_type : mem_type_list) {
  1678. if (mem_type != mem_type_tmp) {
  1679. std::string error = "The memory is continuous, but the type of the input memory is inconsistent. They are " +
  1680. FmtToStr(mem_type_tmp) + " and " + FmtToStr(mem_type);
  1681. ErrorManager::GetInstance().ATCReportErrMessage("E10043", {"reason"}, {error});
  1682. GELOGW("The memory is continuous, but the type of the input memory is inconsistent. They are [%ld] and [%ld].",
  1683. mem_type_tmp, mem_type);
  1684. return false;
  1685. }
  1686. }
  1687. if (memory_offset_.find(mem_type_tmp) == memory_offset_.end()) {
  1688. std::string error = "Memory offset map does not have memory type" + FmtToStr(mem_type_tmp);
  1689. ErrorManager::GetInstance().ATCReportErrMessage("E10043", {"reason"}, {error});
  1690. GELOGW("Memory offset map does not have memory type[%ld].", mem_type_tmp);
  1691. return false;
  1692. }
  1693. return true;
  1694. }
  1695. void GraphMemoryAssigner::PrintMemoryOffset() {
  1696. for (auto pair : memory_offset_) {
  1697. // Assign memory of max batch nodes that have the same batch label.
  1698. GELOGD("Reassign memory for max batch virtual nodes, memory type = %ld, memory offset = %zu.",
  1699. pair.first, pair.second.mem_offset_);
  1700. }
  1701. }
  1702. ge::Status GraphMemoryAssigner::TryGetNodeRefIndexes(const NodePtr &node, map<int32_t, int32_t> &out2ins) const{
  1703. // data and netoutput no need check because only data's output or netoutput's input is used
  1704. if (node->GetType() == DATA || node->GetType() == NETOUTPUT) {
  1705. return ge::SUCCESS;
  1706. }
  1707. for (const auto &out_data_anchor : node->GetAllOutDataAnchors()) {
  1708. int32_t reuse_in_index = -1;
  1709. // nopadding means output[0] reuse input[0], but as history reason,
  1710. // other output index also return true for mem assign in block_mem_assigner
  1711. if (GraphUtils::IsNoPaddingRefFromInput(out_data_anchor, reuse_in_index)) {
  1712. out2ins.emplace(out_data_anchor->GetIdx(), reuse_in_index);
  1713. return ge::SUCCESS;
  1714. }
  1715. bool reuse_input_flag = GraphUtils::IsRefFromInput(out_data_anchor, reuse_in_index);
  1716. if (reuse_input_flag) {
  1717. if (node->GetInDataAnchor(reuse_in_index) != nullptr) {
  1718. out2ins.emplace(out_data_anchor->GetIdx(), reuse_in_index);
  1719. } else {
  1720. REPORT_INNER_ERROR("E19999", "Invalid reuse_input value %d on output %d of node %s, "
  1721. "please check attr reuse_input",
  1722. reuse_in_index, out_data_anchor->GetIdx(), node->GetName().c_str());
  1723. GELOGE(FAILED, "[Check][Attr]Invalid reuse_input value %d on output %d of node %s, "
  1724. "please check attr reuse_input",
  1725. reuse_in_index, out_data_anchor->GetIdx(), node->GetName().c_str());
  1726. return FAILED;
  1727. }
  1728. }
  1729. }
  1730. return ge::SUCCESS;
  1731. }
  1732. bool GraphMemoryAssigner::AssignContinuousInputMemoryWithAtomicProcessDirectly(
  1733. const NodePtr &input_continuous_node, map<NodePtr, uint32_t> &node_2_continuous_type) {
  1734. for (const auto &in_node : input_continuous_node->GetInDataNodes()) {
  1735. if (in_node->GetType() == VARIABLE) {
  1736. GELOGI("node %s 's precursor node %s is variable, do not store.", input_continuous_node->GetName().c_str(),
  1737. in_node->GetName().c_str());
  1738. return true;
  1739. }
  1740. auto iter = node_2_continuous_type.find(in_node);
  1741. // In node's topo order in the front, so function can not be exception
  1742. auto continuous_type = iter->second;
  1743. bool continuous_input = ((continuous_type & kTypeInput) != 0) || ((continuous_type & kTypeInputNoPadding) != 0);
  1744. if (continuous_input) {
  1745. GELOGI("[Store][Node] of %s cause it's precursor node %s need assign continuous input memory",
  1746. input_continuous_node->GetName().c_str(), in_node->GetName().c_str());
  1747. return false;
  1748. }
  1749. }
  1750. for (const auto &out_node : input_continuous_node->GetOutDataNodes()) {
  1751. auto continuous_type = GetContinuousMemoryType(out_node->GetOpDesc());
  1752. node_2_continuous_type.emplace(out_node, continuous_type);
  1753. bool continuous_input = ((continuous_type & kTypeInput) != 0) || ((continuous_type & kTypeInputNoPadding) != 0);
  1754. if (continuous_input) {
  1755. GELOGI("[Store][Node] of %s cause it's succeed node %s need assign continuous input memory",
  1756. input_continuous_node->GetName().c_str(), out_node->GetName().c_str());
  1757. return false;
  1758. }
  1759. }
  1760. return true;
  1761. }
  1762. ge::Status GraphMemoryAssigner::AssignContinuousInputMemoryWithAtomicProcess(const NodePtr &input_continuous_node,
  1763. uint32_t continuous_type,
  1764. bool reverse_refresh) {
  1765. int64_t mem_clean_start = 0;
  1766. int64_t mem_clean_size = 0;
  1767. int64_t memory_type = RT_MEMORY_HBM;
  1768. GE_CHK_STATUS_RET(GetNodeMemoryType(input_continuous_node, memory_type, "input"),
  1769. "[Get][MemType]fail for node:%s", input_continuous_node->GetName().c_str());
  1770. auto ret = AssignContinuousInputMemory(input_continuous_node, mem_clean_start, mem_clean_size, memory_type,
  1771. continuous_type, reverse_refresh);
  1772. if (ret != ge::SUCCESS) {
  1773. GELOGE(ret, "[Assign][Memory:Input:continuous]fail for node:%s", input_continuous_node->GetName().c_str());
  1774. return ret;
  1775. }
  1776. // Clean up atomic address, eg, hcom node
  1777. vector<int32_t> input_indexes;
  1778. // If GetListInt fail, input_indexes is empty.
  1779. (void)ge::AttrUtils::GetListInt(input_continuous_node->GetOpDesc(), ATOMIC_ATTR_INPUT_INDEX, input_indexes);
  1780. if (!input_indexes.empty() && input_indexes[0] == kAllInputAddrIsAtomic) {
  1781. // check whether there is an atomic conflict between the current node and the peer out node
  1782. if (!CheckInputIsSupportAtomic(input_continuous_node)) {
  1783. return ge::FAILED;
  1784. }
  1785. const auto &in_control_anchor = input_continuous_node->GetInControlAnchor();
  1786. GE_CHECK_NOTNULL(in_control_anchor);
  1787. for (const auto &peer_out_control_anchor : in_control_anchor->GetPeerOutControlAnchors()) {
  1788. GE_CHECK_NOTNULL(peer_out_control_anchor);
  1789. auto peer_out_node = peer_out_control_anchor->GetOwnerNode();
  1790. if (peer_out_node->GetType() == ATOMICADDRCLEAN) {
  1791. ret = SetAtomicCleanAttr(peer_out_node, {mem_clean_start}, {mem_clean_size}, memory_type);
  1792. if (ret != SUCCESS) {
  1793. GELOGE(ret, "[Set][AtomicCleanAttr]fail for node:%s", peer_out_node->GetName().c_str());
  1794. return ret;
  1795. }
  1796. }
  1797. }
  1798. }
  1799. return ge::SUCCESS;
  1800. }
  1801. Status GraphMemoryAssigner::AssignBufferPoolMemory() {
  1802. auto is_buffer_pool_mem_enable = [] (const ComputeGraphPtr &graph) -> bool {
  1803. for (NodePtr &node : graph->GetAllNodes()) {
  1804. auto op_desc = node->GetOpDesc();
  1805. if (op_desc == nullptr) {
  1806. continue;
  1807. }
  1808. bool has_attrs = op_desc->HasAttr(ATTR_NAME_BUFFER_POOL_ID) && op_desc->HasAttr(ATTR_NAME_BUFFER_POOL_SIZE);
  1809. if (has_attrs) {
  1810. return true;
  1811. }
  1812. }
  1813. return false;
  1814. };
  1815. auto root_graph = GraphUtils::FindRootGraph(compute_graph_);
  1816. GE_CHECK_NOTNULL(root_graph);
  1817. if (root_graph->GetGraphUnknownFlag()) {
  1818. GELOGI("[Check][Enable]Unknown root graph does not support buffer pool memory, graph:%s.",
  1819. compute_graph_->GetName().c_str());
  1820. return SUCCESS;
  1821. }
  1822. if (!is_buffer_pool_mem_enable(compute_graph_)) {
  1823. GELOGD("[Check][Enable]Buffer pool memory is not enable, graph:%s.", compute_graph_->GetName().c_str());
  1824. return SUCCESS;
  1825. }
  1826. map<int64_t, size_t> mem_type_to_offset;
  1827. for (const auto &pair : memory_offset_) {
  1828. mem_type_to_offset[pair.first] = pair.second.mem_offset_;
  1829. }
  1830. BufferPoolMemAssigner buffer_pool_mem_assigner(compute_graph_, mem_type_to_offset);
  1831. Status status = buffer_pool_mem_assigner.Assign();
  1832. if (status != SUCCESS) {
  1833. GELOGE(status, "[Assign][BufferPoolMem]Graph:%s.", compute_graph_->GetName().c_str());
  1834. REPORT_INNER_ERROR("E19999", "Failed to assign buffer pool memory, graph:%s.", compute_graph_->GetName().c_str());
  1835. return status;
  1836. }
  1837. int64_t mem_type = buffer_pool_mem_assigner.GetMemType();
  1838. auto iter = memory_offset_.find(mem_type);
  1839. if (iter == memory_offset_.end()) {
  1840. GELOGE(FAILED, "[Check][MemType]Memory type is not supported, graph:%s, mem type:%ld.",
  1841. compute_graph_->GetName().c_str(), mem_type);
  1842. REPORT_INNER_ERROR("E19999", "Memory type is not supported, graph:%s, mem type:%ld.",
  1843. compute_graph_->GetName().c_str(), mem_type);
  1844. return FAILED;
  1845. }
  1846. iter->second.mem_offset_ = buffer_pool_mem_assigner.GetMemOffset();
  1847. GELOGI("[Assign][BufferPoolMem]Assign buffer pool memory successfully, graph:%s, mem type:%ld, mem offset:%zu.",
  1848. compute_graph_->GetName().c_str(), mem_type, buffer_pool_mem_assigner.GetMemOffset());
  1849. return SUCCESS;
  1850. }
  1851. // if producer and customers in the same stream, or customers on the same stream when producer not assign a stream,
  1852. // then return false.
  1853. bool GraphMemoryAssigner::IsOutputVisitedByMultiStream(const NodePtr &peer_out_node, int64_t out_anchor_index) {
  1854. GE_IF_BOOL_EXEC(peer_out_node->GetOpDesc() == nullptr, return true);
  1855. int64_t unique_stream_id = peer_out_node->GetOpDesc()->GetStreamId();
  1856. GE_IF_BOOL_EXEC(peer_out_node->GetOutDataAnchor(out_anchor_index) == nullptr, return true);
  1857. for (const auto &in_data_anchor : peer_out_node->GetOutDataAnchor(out_anchor_index)->GetPeerInDataAnchors()) {
  1858. auto node = in_data_anchor->GetOwnerNode();
  1859. GE_IF_BOOL_EXEC(node == nullptr || node->GetOpDesc() == nullptr, continue);
  1860. if (node->GetOpDesc()->GetStreamId() == kInvalidStream) {
  1861. continue;
  1862. }
  1863. if (unique_stream_id == kInvalidStream) { // peer_out_node not belong to any stream
  1864. unique_stream_id = node->GetOpDesc()->GetStreamId();
  1865. continue;
  1866. }
  1867. if (node->GetOpDesc()->GetStreamId() != unique_stream_id) {
  1868. return true;
  1869. }
  1870. }
  1871. return false;
  1872. }
  1873. void GraphMemoryAssigner::UpdatePrevNodeInputDesc(const NodePtr &prev_node,
  1874. const vector<int64_t> &prev_node_input_index_vec,
  1875. int64_t distance) {
  1876. GE_IF_BOOL_EXEC(prev_node == nullptr, return);
  1877. auto prev_node_op_desc = prev_node->GetOpDesc();
  1878. GE_IF_BOOL_EXEC(prev_node_op_desc == nullptr, return);
  1879. for (const auto prev_node_input_index : prev_node_input_index_vec) {
  1880. auto input_desc = prev_node_op_desc->GetInputDesc(prev_node_input_index);
  1881. vector<int64_t> prev_next_distances;
  1882. if (!ge::AttrUtils::GetListInt(input_desc, ATTR_NAME_DATA_VISIT_DISTANCE, prev_next_distances)) {
  1883. GELOGW("Get [%s] input [%ld] ATTR_NAME_DATA_VISIT_DISTANCE failed",
  1884. prev_node_op_desc->GetName().c_str(),
  1885. prev_node_input_index);
  1886. continue;
  1887. }
  1888. if (prev_next_distances.size() == kPrevNextDistanceNum) {
  1889. prev_next_distances[1] = distance;
  1890. } else {
  1891. GELOGW("Size of prev_next_distances is not %d.", kPrevNextDistanceNum);
  1892. continue;
  1893. }
  1894. if (!ge::AttrUtils::SetListInt(input_desc, ATTR_NAME_DATA_VISIT_DISTANCE, prev_next_distances)) {
  1895. GELOGW("Set [%s] input [%ld] ATTR_NAME_DATA_VISIT_DISTANCE failed.",
  1896. prev_node_op_desc->GetName().c_str(),
  1897. prev_node_input_index);
  1898. continue;
  1899. }
  1900. if (prev_node_op_desc->UpdateInputDesc(prev_node_input_index, input_desc) != GRAPH_SUCCESS) {
  1901. GELOGW("Update [%s] input [%ld] ATTR_NAME_DATA_VISIT_DISTANCE failed.",
  1902. prev_node_op_desc->GetName().c_str(),
  1903. prev_node_input_index);
  1904. continue;
  1905. }
  1906. GELOGD("Set the next distance[%ld] to node[%s], input index[%ld]",
  1907. distance,
  1908. prev_node->GetName().c_str(),
  1909. prev_node_input_index);
  1910. }
  1911. return;
  1912. }
  1913. void GraphMemoryAssigner::UpdateCurNodeInputDesc(const NodePtr &cur_node,
  1914. int64_t cur_node_input_index,
  1915. int64_t distance) {
  1916. GE_IF_BOOL_EXEC(cur_node == nullptr, return);
  1917. GE_IF_BOOL_EXEC(cur_node->GetOpDesc() == nullptr, return);
  1918. auto input_desc = cur_node->GetOpDesc()->GetInputDesc(cur_node_input_index);
  1919. vector<int64_t> prev_next_distances{distance, -1};
  1920. if (!ge::AttrUtils::SetListInt(input_desc, ATTR_NAME_DATA_VISIT_DISTANCE, prev_next_distances)) {
  1921. GELOGW("Set [%s] input[%ld] ATTR_NAME_DATA_VISIT_DISTANCE failed.",
  1922. cur_node->GetOpDesc()->GetName().c_str(),
  1923. cur_node_input_index);
  1924. return;
  1925. }
  1926. if (cur_node->GetOpDesc()->UpdateInputDesc(cur_node_input_index, input_desc) != GRAPH_SUCCESS) {
  1927. GELOGW("Update [%s] input[%ld] ATTR_NAME_DATA_VISIT_DISTANCE failed.",
  1928. cur_node->GetOpDesc()->GetName().c_str(),
  1929. cur_node_input_index);
  1930. return;
  1931. }
  1932. GELOGD("Set the prev distance[%ld] to node[%s], input index[%ld]",
  1933. distance,
  1934. cur_node->GetName().c_str(),
  1935. cur_node_input_index);
  1936. return;
  1937. }
  1938. void GraphMemoryAssigner::CheckNeedCalcDistAndUpdateVisitInfo(
  1939. const NodePtr &peer_out_node,
  1940. const OutDataAnchorPtr &peer_out_anchor,
  1941. size_t matched_mem_offset,
  1942. map<size_t, pair<NodePtr, vector<int64_t>>> &mem_block_visit_info,
  1943. bool &is_need_calc_distance) {
  1944. auto iter = mem_block_visit_info.find(matched_mem_offset);
  1945. // cannot find visit info, peer_out_node must be a producer and this data is the first time to be visited.
  1946. if (iter == mem_block_visit_info.end()) {
  1947. if (IsOutputVisitedByMultiStream(peer_out_node, peer_out_anchor->GetIdx())) {
  1948. vector<int64_t> temp;
  1949. mem_block_visit_info.insert(std::make_pair(matched_mem_offset, std::make_pair(nullptr, temp)));
  1950. is_need_calc_distance = false;
  1951. return;
  1952. } else {
  1953. vector<int64_t> temp = {-1};
  1954. // producer's prev_node_index set to -1 as default
  1955. mem_block_visit_info.insert(std::make_pair(matched_mem_offset, std::make_pair(peer_out_node, temp)));
  1956. is_need_calc_distance = true;
  1957. return;
  1958. }
  1959. } else {
  1960. if (mem_block_visit_info[matched_mem_offset].first == nullptr) {
  1961. // multi-stream visit, no need to calculate
  1962. is_need_calc_distance = false;
  1963. return;
  1964. }
  1965. if (peer_out_node->GetOpDesc()->GetStreamId() !=
  1966. mem_block_visit_info[matched_mem_offset].first->GetOpDesc()->GetStreamId()) {
  1967. // cur node and peer_out_node not in the same stream, no need to calculate
  1968. is_need_calc_distance = false;
  1969. return;
  1970. }
  1971. }
  1972. is_need_calc_distance = true;
  1973. return;
  1974. }
  1975. // calculate distance, update visit info, update prev_node input desc, update cur node input desc
  1976. void GraphMemoryAssigner::CalcDistanceAndUpdateDesc(const map<string, int64_t> &node_index_in_stream,
  1977. const InDataAnchorPtr &in_data_anchor,
  1978. size_t matched_mem_offset,
  1979. NodePtr &node,
  1980. map<size_t, pair<NodePtr, vector<int64_t>>> &mem_block_visit_info,
  1981. bool &is_need_skip) {
  1982. int64_t distance = -1;
  1983. auto prev_node = mem_block_visit_info[matched_mem_offset].first;
  1984. auto prev_node_input_index_vec = mem_block_visit_info[matched_mem_offset].second;
  1985. GE_IF_BOOL_EXEC(prev_node == nullptr, is_need_skip = true; return);
  1986. if (prev_node_input_index_vec.size() == 1 && prev_node_input_index_vec[0] == -1) {
  1987. // prev_node is producer and the data is just be produced(not visited by other node)
  1988. GE_IF_BOOL_EXEC(prev_node->GetOpDesc() == nullptr, is_need_skip = true; return);
  1989. if (prev_node->GetOpDesc()->GetStreamId() == -1) { // producer not assigned a stream
  1990. distance = 0;
  1991. } else {
  1992. auto iter = node_index_in_stream.find(prev_node->GetName());
  1993. if (iter == node_index_in_stream.end()) {
  1994. distance = 0;
  1995. } else {
  1996. distance = node_index_in_stream.at(node->GetName()) - iter->second - 1;
  1997. }
  1998. }
  1999. mem_block_visit_info[matched_mem_offset].first = node;
  2000. mem_block_visit_info[matched_mem_offset].second.clear();
  2001. mem_block_visit_info[matched_mem_offset].second.push_back(in_data_anchor->GetIdx());
  2002. } else { // the data is visit by other customer just before.
  2003. if (prev_node_input_index_vec.empty()) {
  2004. GELOGW("Missing prev node[%s] input index.", prev_node->GetName().c_str());
  2005. is_need_skip = true;
  2006. return;
  2007. }
  2008. if (prev_node == node) { // scene: multiple anchors of a node access the same data
  2009. vector<int64_t> prev_next_distances;
  2010. GE_IF_BOOL_EXEC(prev_node->GetOpDesc() == nullptr, is_need_skip = true; return);
  2011. auto input_desc = prev_node->GetOpDesc()->GetInputDesc(prev_node_input_index_vec[0]);
  2012. if (!ge::AttrUtils::GetListInt(input_desc, ATTR_NAME_DATA_VISIT_DISTANCE, prev_next_distances)) {
  2013. GELOGW("Get ATTR_NAME_DATA_VISIT_DISTANCE failed.");
  2014. is_need_skip = true;
  2015. return;
  2016. }
  2017. if (prev_next_distances.size() != kPrevNextDistanceNum) {
  2018. GELOGW("Size of prev_next_distance is not %d.", kPrevNextDistanceNum);
  2019. is_need_skip = true;
  2020. return;
  2021. } else {
  2022. distance = prev_next_distances[0]; // use the same prev_distance as previous anchor
  2023. }
  2024. mem_block_visit_info[matched_mem_offset].second.push_back(in_data_anchor->GetIdx());
  2025. } else {
  2026. distance = node_index_in_stream.at(node->GetName()) - node_index_in_stream.at(prev_node->GetName()) - 1;
  2027. UpdatePrevNodeInputDesc(prev_node, prev_node_input_index_vec, distance);
  2028. mem_block_visit_info[matched_mem_offset].first = node;
  2029. mem_block_visit_info[matched_mem_offset].second.clear();
  2030. mem_block_visit_info[matched_mem_offset].second.push_back(in_data_anchor->GetIdx());
  2031. }
  2032. }
  2033. UpdateCurNodeInputDesc(node, in_data_anchor->GetIdx(), distance);
  2034. }
  2035. void GraphMemoryAssigner::DeleteVisitInfoWhenLifecycleEnded(
  2036. const NodePtr &node,
  2037. const InDataAnchorPtr &in_data_anchor,
  2038. size_t matched_mem_offset,
  2039. map<size_t, pair<NodePtr, vector<int64_t>>> &mem_block_visit_info) {
  2040. GE_IF_BOOL_EXEC(node->GetOpDesc() == nullptr, return);
  2041. auto input_desc = node->GetOpDesc()->GetInputDesc(in_data_anchor->GetIdx());
  2042. bool is_end_of_inputmem_lifecycle = false;
  2043. // if is_end_of_inputmem_lifecycle is true, indicating that cur node is the last customer of this data,
  2044. // then we need to delete the visit info of the block in case that the memblock be reused and visited.
  2045. if (ge::AttrUtils::GetBool(input_desc, ATTR_NAME_IS_END_OF_INPUTMEM_LIFECYCLE, is_end_of_inputmem_lifecycle) &&
  2046. is_end_of_inputmem_lifecycle) {
  2047. GELOGD("ATTR_NAME_IS_END_OF_INPUTMEM_LIFECYCLE is true, node name is [%s], in_data_anchor index is [%d]",
  2048. node->GetName().c_str(),
  2049. in_data_anchor->GetIdx());
  2050. auto iter = mem_block_visit_info.find(matched_mem_offset);
  2051. if (iter != mem_block_visit_info.end()) {
  2052. mem_block_visit_info.erase(iter);
  2053. }
  2054. }
  2055. }
  2056. void GraphMemoryAssigner::MarkNodeDistanceAttr(const ComputeGraphPtr &compute_graph,
  2057. NodePtr &node,
  2058. map<size_t, pair<NodePtr, vector<int64_t>>> &mem_block_visit_info,
  2059. const map<string, int64_t> &node_index_in_stream) {
  2060. GELOGD("Begin to mark node distance attr, node name is [%s]", node->GetName().c_str());
  2061. GE_IF_BOOL_EXEC(node == nullptr, return);
  2062. for (const auto &in_data_anchor : node->GetAllInDataAnchors()) {
  2063. auto peer_out_anchor = in_data_anchor->GetPeerOutAnchor();
  2064. GE_IF_BOOL_EXEC(peer_out_anchor == nullptr, continue);
  2065. auto peer_out_node = peer_out_anchor->GetOwnerNode();
  2066. GE_IF_BOOL_EXEC(peer_out_node == nullptr, continue);
  2067. GE_IF_BOOL_EXEC(peer_out_node->GetOpDesc() == nullptr, continue);
  2068. auto matched_mem_offset = peer_out_node->GetOpDesc()->GetOutputOffset().at(peer_out_anchor->GetIdx());
  2069. bool is_need_calc_distance = false;
  2070. CheckNeedCalcDistAndUpdateVisitInfo(peer_out_node, peer_out_anchor, matched_mem_offset,
  2071. mem_block_visit_info, is_need_calc_distance);
  2072. if (!is_need_calc_distance) {
  2073. continue;
  2074. }
  2075. bool is_need_skip = false;
  2076. CalcDistanceAndUpdateDesc(node_index_in_stream, in_data_anchor, matched_mem_offset, node,
  2077. mem_block_visit_info, is_need_skip);
  2078. if (is_need_skip) {
  2079. continue;
  2080. }
  2081. DeleteVisitInfoWhenLifecycleEnded(node, in_data_anchor, matched_mem_offset, mem_block_visit_info);
  2082. }
  2083. }
  2084. void GraphMemoryAssigner::MarkDistanceAttr() {
  2085. // key: mem_offset of the memory which we visited. value: node we visited and input index of this node
  2086. map<size_t, pair<NodePtr, vector<int64_t>>> mem_block_visit_info;
  2087. // key: node name, value: topo order of node in it's belonged stream(exclude ge_local_op)
  2088. map<string, int64_t> node_index_in_stream;
  2089. // key: stream id, value: cur nodes num in that stream
  2090. map<int64_t, int64_t> stream_nodes_num;
  2091. for (auto &node : compute_graph_->GetAllNodes()) {
  2092. auto node_op_desc = node->GetOpDesc();
  2093. GE_IF_BOOL_EXEC(node_op_desc == nullptr, return);
  2094. int64_t stream_id = node_op_desc->GetStreamId();
  2095. if (node_op_desc->GetOpKernelLibName() != kEngineNameGeLocal) {
  2096. if (stream_nodes_num.find(stream_id) == stream_nodes_num.end()) {
  2097. stream_nodes_num.insert(std::make_pair(stream_id, 1));
  2098. } else {
  2099. ++stream_nodes_num[stream_id];
  2100. }
  2101. node_index_in_stream.insert(std::make_pair(node->GetName(), stream_nodes_num[stream_id] - 1));
  2102. MarkNodeDistanceAttr(compute_graph_, node, mem_block_visit_info, node_index_in_stream);
  2103. } else {
  2104. GELOGD("node[%s] is ge_local_op, no need to calculate distance.", node->GetName().c_str());
  2105. }
  2106. }
  2107. }
  2108. } // 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