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memory_manager.cc 8.9 kB

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  1. /**
  2. * Copyright 2019 Huawei Technologies Co., Ltd
  3. *
  4. * Licensed under the Apache License, Version 2.0 (the "License");
  5. * you may not use this file except in compliance with the License.
  6. * You may obtain a copy of the License at
  7. *
  8. * http://www.apache.org/licenses/LICENSE-2.0
  9. *
  10. * Unless required by applicable law or agreed to in writing, software
  11. * distributed under the License is distributed on an "AS IS" BASIS,
  12. * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
  13. * See the License for the specific language governing permissions and
  14. * limitations under the License.
  15. */
  16. #include "runtime/device/memory_manager.h"
  17. #include <string>
  18. #include "backend/session/anf_runtime_algorithm.h"
  19. #ifdef ENABLE_DUMP_IR
  20. #include "debug/rdr/running_data_recorder.h"
  21. #endif
  22. #include "utils/ms_context.h"
  23. using mindspore::memreuse::BestFitMemReuse;
  24. using mindspore::memreuse::MemReuseUtilPtr;
  25. namespace mindspore {
  26. namespace device {
  27. size_t MemoryManager::GetCommonAlignSize(size_t input_size) {
  28. return (input_size + kMemAlignSize + 31) / kMemAlignSize * kMemAlignSize;
  29. }
  30. size_t MemoryManager::GetCommunicationAlignSize(size_t input_size) const {
  31. return (input_size + kMemAlignSize - 1) / kMemAlignSize * kMemAlignSize + 2 * kMemAlignSize;
  32. }
  33. void MemoryManager::MallocReusedDynamicMem(const session::KernelGraph *graph) {
  34. MS_EXCEPTION_IF_NULL(graph);
  35. MemReuseUtilPtr mem_reuse_util_ptr = std::make_shared<memreuse::MemReuseUtil>();
  36. MS_EXCEPTION_IF_NULL(mem_reuse_util_ptr);
  37. // set all infos
  38. mem_reuse_util_ptr->SetAllInfo(graph);
  39. auto bestfit_mem_reuse = std::make_shared<BestFitMemReuse>();
  40. MS_EXCEPTION_IF_NULL(bestfit_mem_reuse);
  41. bestfit_mem_reuse->Reuse(mem_reuse_util_ptr.get());
  42. size_t total_allocated_size = bestfit_mem_reuse->GetAllocatedSize();
  43. MS_LOG(INFO) << "TotalReuseDynamicSize [" << total_allocated_size << "]";
  44. mem_reuse_util_ptr_ = mem_reuse_util_ptr;
  45. auto base_ptr = MallocDynamicMem(total_allocated_size, false);
  46. MS_LOG(INFO) << "Reuse Memory from [" << reinterpret_cast<void *>(base_ptr) << "] to ["
  47. << reinterpret_cast<void *>(base_ptr + total_allocated_size) << "]";
  48. mem_reuse_util_ptr_->set_mem_base(base_ptr);
  49. }
  50. void MemoryManager::MallocSomasDynamicMem(const session::KernelGraph *graph) {
  51. MS_EXCEPTION_IF_NULL(graph);
  52. SomasPtr somas_reuse_util_ptr = std::make_shared<somas::Somas>();
  53. MS_EXCEPTION_IF_NULL(somas_reuse_util_ptr);
  54. somas_reuse_util_ptr_ = somas_reuse_util_ptr;
  55. if (!(somas_reuse_util_ptr->Allocate(graph))) {
  56. MS_LOG(EXCEPTION) << "Somas Allocate Failed.";
  57. }
  58. size_t total_allocated_size = somas_reuse_util_ptr->GetTotalMemSize();
  59. MS_LOG(INFO) << "Graph " << graph->graph_id() << ": TotalSomasReuseDynamicSize [" << total_allocated_size << "]";
  60. if (total_allocated_size > 0) {
  61. auto base_ptr = MallocDynamicMem(total_allocated_size, false);
  62. MS_LOG(INFO) << "Somas Reuse Memory Base Address [" << static_cast<void *>(base_ptr) << "], End Address ["
  63. << static_cast<void *>(base_ptr + total_allocated_size) << "]";
  64. somas_reuse_util_ptr->set_mem_base_addr(base_ptr);
  65. }
  66. auto context_ptr = MsContext::GetInstance();
  67. MS_EXCEPTION_IF_NULL(context_ptr);
  68. #ifdef ENABLE_DUMP_IR
  69. SubModuleId module = SubModuleId::SM_OPTIMIZER;
  70. std::string name = "somas_allocate_info." + std::to_string(graph->graph_id());
  71. mindspore::RDR::RecordString(module, name, somas_reuse_util_ptr_->SomasInfo());
  72. name = "somas_mem_info." + std::to_string(graph->graph_id());
  73. mindspore::RDR::RecordString(module, name, somas_reuse_util_ptr_->SomasMemory());
  74. #endif
  75. bool save_graphs = context_ptr->get_param<bool>(MS_CTX_SAVE_GRAPHS_FLAG);
  76. auto save_graphs_path = context_ptr->get_param<std::string>(MS_CTX_SAVE_GRAPHS_PATH);
  77. if (save_graphs_path.empty()) {
  78. save_graphs_path = ".";
  79. }
  80. if (save_graphs) {
  81. std::string file_path = save_graphs_path + "/" + "somas_allocate_info_" + std::to_string(graph->graph_id()) + ".ir";
  82. somas_reuse_util_ptr_->DumpSomasInfoIR(file_path);
  83. std::string mem_file_path = save_graphs_path + "/" + "somas_mem_info_" + std::to_string(graph->graph_id()) + ".ir";
  84. somas_reuse_util_ptr_->DumpSomasMemoryIR(mem_file_path);
  85. }
  86. }
  87. uint8_t *MemoryManager::MallocOutputMem(const AnfNodePtr &node, size_t index, MemType type, size_t size,
  88. const DeviceAddressPtr &address, bool comm_mem) {
  89. MS_EXCEPTION_IF_NULL(node);
  90. MS_EXCEPTION_IF_NULL(address);
  91. auto context_ptr = MsContext::GetInstance();
  92. MS_EXCEPTION_IF_NULL(context_ptr);
  93. uint8_t *ptr = nullptr;
  94. if (comm_mem) {
  95. bool communication_mem = false;
  96. if (context_ptr->get_param<bool>(MS_CTX_ENABLE_HCCL)) {
  97. communication_mem = true;
  98. }
  99. if (type == kStaticMem) {
  100. ptr = MallocStaticMem(size, communication_mem);
  101. address->from_mem_pool_ = true;
  102. if (communication_mem) {
  103. address->communication_ptr_ = ptr - kMemAlignSize;
  104. }
  105. } else if (type == kReuseDynamicCommMem) {
  106. MS_EXCEPTION_IF_NULL(mem_reuse_util_ptr_);
  107. ptr = mem_reuse_util_ptr_->GetNodeOutputPtr(node, index);
  108. } else if (type == kSomasReuseDynamicMem) {
  109. MS_EXCEPTION_IF_NULL(somas_reuse_util_ptr_);
  110. ptr = somas_reuse_util_ptr_->GetNodeOutputPtr(node, index);
  111. } else {
  112. ptr = MallocDynamicMem(size, communication_mem);
  113. }
  114. address->ptr_ = ptr;
  115. return ptr;
  116. }
  117. if (type == kStaticMem) {
  118. ptr = MallocStaticMem(size, false);
  119. address->from_mem_pool_ = true;
  120. } else if (type == kDynamicMem) {
  121. ptr = MallocDynamicMem(size, false);
  122. } else if (type == kReuseDynamicMem) {
  123. MS_EXCEPTION_IF_NULL(mem_reuse_util_ptr_);
  124. ptr = mem_reuse_util_ptr_->GetNodeOutputPtr(node, index);
  125. } else if (type == kSomasReuseDynamicMem) {
  126. MS_EXCEPTION_IF_NULL(somas_reuse_util_ptr_);
  127. ptr = somas_reuse_util_ptr_->GetNodeOutputPtr(node, index);
  128. }
  129. address->ptr_ = ptr;
  130. return ptr;
  131. }
  132. uint8_t *MemoryManager::MallocWorkSpaceMem(const AnfNodePtr &node, size_t index, MemType type, size_t size) {
  133. if (type == kReuseDynamicMem) {
  134. MS_EXCEPTION_IF_NULL(mem_reuse_util_ptr_);
  135. return mem_reuse_util_ptr_->GetNodeWorkSpacePtr(node, index);
  136. } else if (type == kSomasReuseDynamicMem) {
  137. MS_EXCEPTION_IF_NULL(somas_reuse_util_ptr_);
  138. return somas_reuse_util_ptr_->GetNodeWorkSpacePtr(node, index);
  139. }
  140. return MallocDynamicMem(size, false);
  141. }
  142. uint8_t *MemoryManager::MallocMem(MemType type, size_t size, const DeviceAddressPtr &address, uint32_t graph_id) {
  143. MS_EXCEPTION_IF_NULL(address);
  144. uint8_t *ptr = nullptr;
  145. if (type == kStaticMem) {
  146. ptr = MallocStaticMem(size, false, graph_id);
  147. address->from_mem_pool_ = true;
  148. } else if (type == kDynamicMem) {
  149. ptr = MallocDynamicMem(size, false);
  150. }
  151. address->ptr_ = ptr;
  152. return ptr;
  153. }
  154. uint8_t *MemoryManager::MallocDynamicMem(size_t size, bool communication_mem) { return nullptr; }
  155. bool MemoryManager::MallocMemFromMemPool(const DeviceAddressPtr address, size_t size) {
  156. auto device_ptr = MallocMemFromMemPool(size);
  157. if (!device_ptr) {
  158. return false;
  159. }
  160. address->ptr_ = device_ptr;
  161. address->size_ = size;
  162. address->from_mem_pool_ = true;
  163. return true;
  164. }
  165. void *MemoryManager::MallocMemFromMemPool(size_t size) {
  166. if (size == 0) {
  167. MS_LOG(ERROR) << "MallocMemFromMemPool size is 0.";
  168. }
  169. return nullptr;
  170. }
  171. void MemoryManager::FreeMemFromMemPool(const DeviceAddressPtr address) {
  172. MS_EXCEPTION_IF_NULL(address);
  173. MS_EXCEPTION_IF_NULL(address->ptr_);
  174. FreeMemFromMemPool(address->ptr_);
  175. address->ptr_ = nullptr;
  176. }
  177. void MemoryManager::FreeMemFromMemPool(void *device_ptr) {
  178. if (device_ptr == nullptr) {
  179. MS_LOG(ERROR) << "FreeMemFromMemPool device_ptr is null.";
  180. }
  181. }
  182. bool MemoryManager::MallocContinuousMemFromMemPool(const DeviceAddressPtrList addr_list, size_t total_size,
  183. std::vector<size_t> size_list) {
  184. auto device_ptr_list = MallocContinuousMemFromMemPool(total_size, size_list);
  185. if (device_ptr_list.size() == 0) {
  186. return false;
  187. }
  188. if (addr_list.size() != device_ptr_list.size()) {
  189. MS_LOG(EXCEPTION) << "The size of device list is not equal to the size of address list.";
  190. }
  191. for (size_t i = 0; i < addr_list.size(); i++) {
  192. MS_EXCEPTION_IF_NULL(device_ptr_list[i]);
  193. MS_EXCEPTION_IF_NULL(addr_list[i]);
  194. addr_list[i]->ptr_ = device_ptr_list[i];
  195. addr_list[i]->size_ = size_list[i];
  196. addr_list[i]->from_mem_pool_ = true;
  197. }
  198. return true;
  199. }
  200. std::vector<void *> MemoryManager::MallocContinuousMemFromMemPool(size_t total_size, std::vector<size_t> size_list) {
  201. if (total_size == 0) {
  202. MS_LOG(ERROR) << "MallocContinuousMemFromMemPool total_size is 0.";
  203. }
  204. std::vector<void *> device_ptr_list;
  205. device_ptr_list.emplace_back(nullptr);
  206. return device_ptr_list;
  207. }
  208. } // namespace device
  209. } // namespace mindspore