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699 lines
22 KiB
699 lines
22 KiB
/* Copyright (c) 2016 PaddlePaddle Authors. All Rights Reserved.
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Licensed under the Apache License, Version 2.0 (the "License");
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you may not use this file except in compliance with the License.
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You may obtain a copy of the License at
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http://www.apache.org/licenses/LICENSE-2.0
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Unless required by applicable law or agreed to in writing, software
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distributed under the License is distributed on an "AS IS" BASIS,
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WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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See the License for the specific language governing permissions and
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limitations under the License. */
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#include "paddle/fluid/framework/executor_thread_worker.h"
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#include <algorithm>
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#include <utility>
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#include "google/protobuf/io/zero_copy_stream_impl.h"
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#include "google/protobuf/message.h"
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#include "google/protobuf/text_format.h"
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#include "gflags/gflags.h"
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#include "paddle/fluid/framework/feed_fetch_method.h"
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#include "paddle/fluid/framework/feed_fetch_type.h"
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#include "paddle/fluid/framework/lod_rank_table.h"
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#include "paddle/fluid/framework/lod_tensor_array.h"
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#include "paddle/fluid/framework/op_registry.h"
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#include "paddle/fluid/framework/reader.h"
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#include "paddle/fluid/framework/variable_helper.h"
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#include "paddle/fluid/inference/io.h"
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#include "paddle/fluid/platform/cpu_helper.h"
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#include "paddle/fluid/platform/place.h"
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#include "paddle/fluid/platform/timer.h"
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#include "paddle/fluid/pybind/pybind.h"
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namespace paddle {
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namespace framework {
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#ifdef PADDLE_WITH_PSLIB
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int DensePullThread::start() {
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_running = true;
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_t = std::thread(&DensePullThread::run, this);
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return 0;
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}
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void DensePullThread::run() {
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while (_running) {
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_pull_dense_status.resize(0);
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for (auto& t : _dense_variable_name) {
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if (check_update_param(t.first)) {
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auto status = pull_dense(t.first);
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_pull_dense_status.emplace_back(std::move(status));
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reset_thread_version(t.first);
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}
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}
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if (_pull_dense_status.size() != 0) {
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wait_all();
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}
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usleep(_sleep_time_ms * 1000);
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}
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}
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bool DensePullThread::check_update_param(uint64_t table_id) {
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{
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std::lock_guard<std::mutex> lock(_mutex_for_version);
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auto& version = _training_versions[table_id];
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_current_version[table_id] =
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*(std::min_element(version.begin(), version.end()));
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}
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if (_current_version[table_id] - _last_versions[table_id] < _threshold) {
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return false;
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}
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return true;
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}
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void DensePullThread::reset_thread_version(uint64_t table_id) {
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std::lock_guard<std::mutex> lock(_mutex_for_version);
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_last_versions[table_id] = _current_version[table_id];
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}
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std::future<int32_t> DensePullThread::pull_dense(uint64_t table_id) {
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auto& regions = _regions[table_id];
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regions.clear();
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auto& variables = _dense_variable_name[table_id];
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regions.resize(variables.size());
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for (auto i = 0u; i < variables.size(); ++i) {
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auto& t = variables[i];
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Variable* var = _root_scope->FindVar(t);
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LoDTensor* tensor = var->GetMutable<LoDTensor>();
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float* w = tensor->data<float>();
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paddle::ps::Region reg(w, tensor->numel());
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regions[i] = std::move(reg);
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}
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return _ps_client->pull_dense(regions.data(), regions.size(), table_id);
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}
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void DensePullThread::wait_all() {
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for (auto& t : _pull_dense_status) {
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t.wait();
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auto status = t.get();
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if (status != 0) {
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LOG(WARNING) << "pull dense failed times:" << ++_pull_dense_fail_times;
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}
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}
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if (_pull_dense_fail_times > 20) {
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LOG(FATAL) << "pull dense failed times more than 20 times";
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exit(-1);
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}
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_pull_dense_status.resize(0);
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}
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void DensePullThread::increase_thread_version(int thread_id,
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uint64_t table_id) {
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std::lock_guard<std::mutex> lock(_mutex_for_version);
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_training_versions[table_id][thread_id]++;
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}
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#endif
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void ExecutorThreadWorker::CreateThreadOperators(const ProgramDesc& program) {
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auto& block = program.Block(0);
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op_names_.clear();
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for (auto& op_desc : block.AllOps()) {
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std::unique_ptr<OperatorBase> local_op = OpRegistry::CreateOp(*op_desc);
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op_names_.push_back(op_desc->Type());
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OperatorBase* local_op_ptr = local_op.release();
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ops_.push_back(local_op_ptr);
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continue;
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}
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}
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void ExecutorThreadWorker::CreateThreadResource(
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const framework::ProgramDesc& program,
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const paddle::platform::Place& place) {
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CreateThreadScope(program);
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CreateThreadOperators(program);
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SetMainProgram(program);
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SetPlace(place);
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}
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void ExecutorThreadWorker::CreateThreadScope(const ProgramDesc& program) {
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auto& block = program.Block(0);
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PADDLE_ENFORCE_NOT_NULL(
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root_scope_, "root_scope should be set before creating thread scope");
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thread_scope_ = &root_scope_->NewScope();
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for (auto& var : block.AllVars()) {
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if (var->Persistable()) {
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auto* ptr = root_scope_->Var(var->Name());
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InitializeVariable(ptr, var->GetType());
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} else {
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auto* ptr = thread_scope_->Var(var->Name());
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InitializeVariable(ptr, var->GetType());
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}
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}
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}
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void ExecutorThreadWorker::SetDataFeed(
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const std::shared_ptr<DataFeed>& datafeed) {
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thread_reader_ = datafeed;
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}
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void ExecutorThreadWorker::BindingDataFeedMemory() {
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const std::vector<std::string>& input_feed =
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thread_reader_->GetUseSlotAlias();
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for (auto name : input_feed) {
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thread_reader_->AddFeedVar(thread_scope_->Var(name), name);
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}
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}
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void ExecutorThreadWorker::SetFetchVarNames(
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const std::vector<std::string>& fetch_var_names) {
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fetch_var_names_.clear();
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fetch_var_names_.insert(fetch_var_names_.end(), fetch_var_names.begin(),
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fetch_var_names.end());
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}
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void ExecutorThreadWorker::SetDevice() {
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#if defined _WIN32 || defined __APPLE__
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return;
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#else
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static unsigned concurrency_cap = std::thread::hardware_concurrency();
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LOG(WARNING) << "concurrency capacity " << concurrency_cap;
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int thread_id = this->thread_id_;
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if (static_cast<unsigned>(thread_id) < concurrency_cap) {
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unsigned proc = thread_id;
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cpu_set_t mask;
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CPU_ZERO(&mask);
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CPU_SET(proc, &mask);
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if (-1 == sched_setaffinity(0, sizeof(mask), &mask)) {
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VLOG(1) << "WARNING: Failed to set thread affinity for thread "
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<< thread_id;
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} else {
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CPU_ZERO(&mask);
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if ((0 != sched_getaffinity(0, sizeof(mask), &mask)) ||
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(CPU_ISSET(proc, &mask) == 0)) {
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VLOG(3) << "WARNING: Failed to set thread affinity for thread "
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<< thread_id;
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}
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}
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} else {
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VLOG(1) << "WARNING: Failed to set thread affinity for thread "
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<< thread_id;
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}
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#endif
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}
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template <typename T>
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void print_lod_tensor(std::string var_name, const LoDTensor& lod_tensor) {
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auto inspect = lod_tensor.data<T>();
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auto element_num = lod_tensor.numel();
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std::ostringstream sstream;
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sstream << var_name << " (element num " << element_num << "): [";
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sstream << inspect[0];
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for (int j = 1; j < element_num; ++j) {
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sstream << " " << inspect[j];
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}
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sstream << "]";
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std::cout << sstream.str() << std::endl;
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}
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static void print_fetch_var(Scope* scope, const std::string& var_name) {
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auto& tensor = scope->FindVar(var_name)->Get<LoDTensor>();
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#define PrintLoDTensorCallback(cpp_type, proto_type) \
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do { \
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if (tensor.type() == proto_type) { \
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print_lod_tensor<cpp_type>(var_name, tensor); \
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return; \
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} \
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} while (0)
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_ForEachDataType_(PrintLoDTensorCallback);
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VLOG(1) << "print_fetch_var: unrecognized data type:" << tensor.type();
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}
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void ExecutorThreadWorker::TrainFilesWithTimer() {
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platform::SetNumThreads(1);
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SetDevice();
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thread_reader_->Start();
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std::vector<double> op_total_time;
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std::vector<std::string> op_name;
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for (auto& op : ops_) {
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op_name.push_back(op->Type());
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}
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op_total_time.resize(ops_.size());
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for (size_t i = 0; i < op_total_time.size(); ++i) {
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op_total_time[i] = 0.0;
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}
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platform::Timer timeline;
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double total_time = 0.0;
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double read_time = 0.0;
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int cur_batch;
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int batch_cnt = 0;
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timeline.Start();
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while ((cur_batch = thread_reader_->Next()) > 0) {
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timeline.Pause();
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read_time += timeline.ElapsedSec();
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total_time += timeline.ElapsedSec();
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for (size_t i = 0; i < ops_.size(); ++i) {
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timeline.Start();
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ops_[i]->Run(*thread_scope_, place_);
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timeline.Pause();
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op_total_time[i] += timeline.ElapsedSec();
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total_time += timeline.ElapsedSec();
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}
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++batch_cnt;
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thread_scope_->DropKids();
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if (thread_id_ == 0) {
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if (batch_cnt > 0 && batch_cnt % 100 == 0) {
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for (size_t i = 0; i < ops_.size(); ++i) {
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fprintf(stderr, "op_name:[%zu][%s], op_mean_time:[%fs]\n", i,
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op_name[i].c_str(), op_total_time[i] / batch_cnt);
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}
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fprintf(stderr, "mean read time: %fs\n", read_time / batch_cnt);
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int fetch_var_num = fetch_var_names_.size();
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for (int i = 0; i < fetch_var_num; ++i) {
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print_fetch_var(thread_scope_, fetch_var_names_[i]);
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}
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fprintf(stderr, "IO percent: %f\n", read_time / total_time);
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}
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}
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timeline.Start();
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}
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}
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void ExecutorThreadWorker::TrainFiles() {
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platform::SetNumThreads(1);
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// todo: configurable
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// SetDevice();
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int fetch_var_num = fetch_var_names_.size();
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fetch_values_.clear();
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fetch_values_.resize(fetch_var_num);
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thread_reader_->Start();
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int cur_batch;
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int batch_cnt = 0;
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while ((cur_batch = thread_reader_->Next()) > 0) {
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// executor run here
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for (auto& op : ops_) {
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op->Run(*thread_scope_, place_);
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}
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++batch_cnt;
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thread_scope_->DropKids();
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if (debug_ == false || thread_id_ != 0) {
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continue;
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}
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for (int i = 0; i < fetch_var_num; ++i) {
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print_fetch_var(thread_scope_, fetch_var_names_[i]);
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} // end for (int i = 0...)
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} // end while ()
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}
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void ExecutorThreadWorker::SetThreadId(int tid) { thread_id_ = tid; }
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void ExecutorThreadWorker::SetPlace(const platform::Place& place) {
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place_ = place;
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}
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void ExecutorThreadWorker::SetMainProgram(
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const ProgramDesc& main_program_desc) {
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main_program_.reset(new ProgramDesc(main_program_desc));
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}
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void ExecutorThreadWorker::SetRootScope(Scope* g_scope) {
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root_scope_ = g_scope;
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}
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#ifdef PADDLE_WITH_PSLIB
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// AsyncExecutor
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void AsyncExecutorThreadWorker::TrainFiles() {
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SetDevice();
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int fetch_var_num = fetch_var_names_.size();
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fetch_values_.clear();
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fetch_values_.resize(fetch_var_num);
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thread_reader_->Start();
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int cur_batch;
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int batch_cnt = 0;
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while ((cur_batch = thread_reader_->Next()) > 0) {
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// executor run here
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TrainOneNetwork();
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++batch_cnt;
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thread_scope_->DropKids();
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if (debug_ == false || thread_id_ != 0) {
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continue;
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}
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for (int i = 0; i < fetch_var_num; ++i) {
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print_fetch_var(thread_scope_, fetch_var_names_[i]);
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} // end for (int i = 0...)
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} // end while ()
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}
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void AsyncExecutorThreadWorker::SetPSlibPtr(
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std::shared_ptr<paddle::distributed::PSlib> pslib_ptr) {
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_pslib_ptr = pslib_ptr;
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}
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void AsyncExecutorThreadWorker::SetPullDenseThread(
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std::shared_ptr<DensePullThread> dpt) {
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_pull_dense_thread = dpt;
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}
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void AsyncExecutorThreadWorker::TrainOneNetwork() {
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PrepareParams();
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for (auto& op : ops_) {
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if (op->Type().find("sgd") != std::string::npos) {
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continue;
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}
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bool need_skip = false;
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for (auto t = 0u; t < _param_config->skip_op.size(); ++t) {
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if (op->Type().find(_param_config->skip_op[t]) != std::string::npos) {
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need_skip = true;
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break;
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}
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}
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if (!need_skip) {
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op->Run(*thread_scope_, place_);
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}
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}
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UpdateParams();
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}
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void AsyncExecutorThreadWorker::SetParamConfig(
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AsyncWorkerParamConfig* param_config) {
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_param_config = param_config;
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}
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void AsyncExecutorThreadWorker::PrepareParams() {
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for (auto table_id : _param_config->sparse_table_id) {
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PullSparse(table_id);
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for (auto& t : _pull_sparse_status) {
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t.wait();
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auto status = t.get();
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if (status != 0) {
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LOG(ERROR) << "pull sparse failed, status[" << status << "]";
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exit(-1);
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}
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}
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}
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_pull_sparse_status.resize(0);
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for (auto table_id : _param_config->sparse_table_id) {
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FillSparse(table_id);
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}
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}
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void AsyncExecutorThreadWorker::UpdateParams() {
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for (auto i : _param_config->sparse_table_id) {
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PushSparse(i);
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}
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for (auto i : _param_config->dense_table_id) {
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PushDense(i);
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}
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int32_t tmp_push_dense_wait_times = -1;
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int32_t tmp_push_sparse_wait_times = -1;
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static uint32_t push_dense_wait_times =
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static_cast<uint32_t>(tmp_push_dense_wait_times);
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static uint32_t push_sparse_wait_times =
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static_cast<uint32_t>(tmp_push_sparse_wait_times);
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if (_push_dense_status.size() >= push_dense_wait_times) {
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for (auto& t : _push_dense_status) {
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t.wait();
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}
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_push_dense_status.resize(0);
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}
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if (tmp_push_dense_wait_times == -1) {
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_push_dense_status.resize(0);
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}
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if (_push_sparse_status.size() >= push_sparse_wait_times) {
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for (auto& t : _push_sparse_status) {
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t.wait();
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}
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_push_sparse_status.resize(0);
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}
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if (tmp_push_sparse_wait_times == -1) {
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_push_sparse_status.resize(0);
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}
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for (auto dense_table_id : _param_config->dense_table_id) {
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_pull_dense_thread->increase_thread_version(thread_id_, dense_table_id);
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}
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}
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void AsyncExecutorThreadWorker::PushDense(int table_id) {
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std::vector<paddle::ps::Region> regions;
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for (auto& t : _param_config->dense_gradient_variable_name[table_id]) {
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Variable* var = thread_scope_->FindVar(t);
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CHECK(var != nullptr) << "var[" << t << "] not found";
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LoDTensor* tensor = var->GetMutable<LoDTensor>();
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int count = tensor->numel();
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float* g = tensor->data<float>();
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paddle::ps::Region reg(g, count);
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regions.emplace_back(std::move(reg));
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}
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auto status = _pslib_ptr->_worker_ptr->push_dense(regions.data(),
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regions.size(), table_id);
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_push_dense_status.push_back(std::move(status));
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}
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void AsyncExecutorThreadWorker::PullSparse(int table_id) {
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auto& features = _features[table_id];
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auto& feature_value = _feature_value[table_id];
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auto fea_dim = _param_config->fea_dim;
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// slot id starts from 1
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features.clear();
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features.resize(0);
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features.reserve(MAX_FEASIGN_NUM);
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const std::vector<std::string>& feed_vec = thread_reader_->GetUseSlotAlias();
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// slot_idx = 0 is label TODO
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for (auto slot_idx = 1u; slot_idx < feed_vec.size(); ++slot_idx) {
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Variable* var = thread_scope_->FindVar(feed_vec[slot_idx]);
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LoDTensor* tensor = var->GetMutable<LoDTensor>();
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int64_t* ids = tensor->data<int64_t>();
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int len = tensor->numel();
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for (auto i = 0u; i < len; ++i) {
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// todo(colourful-tree): current trick - filter feasign=use_slot_mod(
|
|
// bug: datafeed fill use_slot_mod for empty slot)
|
|
if (ids[i] == 0u) {
|
|
continue;
|
|
}
|
|
features.push_back(static_cast<uint64_t>(ids[i]));
|
|
}
|
|
}
|
|
check_pull_push_memory(features, &feature_value, fea_dim);
|
|
|
|
std::vector<float*> pull_feature_value;
|
|
for (auto i = 0u; i < features.size(); ++i) {
|
|
pull_feature_value.push_back(feature_value[i].data());
|
|
}
|
|
|
|
auto status = _pslib_ptr->_worker_ptr->pull_sparse(
|
|
pull_feature_value.data(), table_id, features.data(), features.size());
|
|
_pull_sparse_status.push_back(std::move(status));
|
|
|
|
auto& push_g = _feature_push_value[table_id];
|
|
check_pull_push_memory(features, &push_g, fea_dim);
|
|
collect_feasign_info(table_id);
|
|
}
|
|
|
|
void AsyncExecutorThreadWorker::FillSparse(int table_id) {
|
|
auto slot_dim = _param_config->slot_dim;
|
|
auto fea_dim = _param_config->fea_dim;
|
|
auto& features = _features[table_id];
|
|
auto& fea_value = _feature_value[table_id];
|
|
|
|
CHECK(features.size() > 0) << "feature size check failed";
|
|
|
|
auto fea_idx = 0u;
|
|
|
|
std::vector<float> init_value(fea_dim);
|
|
|
|
const std::vector<std::string>& feed_vec = thread_reader_->GetUseSlotAlias();
|
|
// slot_idx = 0 is label TODO
|
|
for (auto slot_idx = 1u; slot_idx < feed_vec.size(); ++slot_idx) {
|
|
Variable* var = thread_scope_->FindVar(feed_vec[slot_idx]);
|
|
LoDTensor* tensor = var->GetMutable<LoDTensor>();
|
|
int64_t* ids = tensor->data<int64_t>();
|
|
int len = tensor->numel();
|
|
Variable* var_emb = thread_scope_->FindVar(
|
|
_param_config->slot_input_vec[table_id][slot_idx - 1]);
|
|
LoDTensor* tensor_emb = var_emb->GetMutable<LoDTensor>();
|
|
float* ptr =
|
|
tensor_emb->mutable_data<float>({len, slot_dim}, platform::CPUPlace());
|
|
memset(ptr, 0, sizeof(float) * len * slot_dim);
|
|
auto& tensor_lod = tensor->lod()[0];
|
|
|
|
LoD data_lod{tensor_lod};
|
|
tensor_emb->set_lod(data_lod);
|
|
|
|
for (auto index = 0u; index < len; ++index) {
|
|
if (ids[index] == 0u) {
|
|
memcpy(ptr + slot_dim * index, init_value.data() + 2,
|
|
sizeof(float) * slot_dim);
|
|
continue;
|
|
}
|
|
memcpy(ptr + slot_dim * index, fea_value[fea_idx].data() + 2,
|
|
sizeof(float) * slot_dim);
|
|
fea_idx++;
|
|
}
|
|
}
|
|
}
|
|
|
|
void AsyncExecutorThreadWorker::PushSparse(int table_id) {
|
|
auto slot_dim = _param_config->slot_dim;
|
|
auto fea_dim = _param_config->fea_dim;
|
|
auto& features = _features[table_id];
|
|
auto& push_g = _feature_push_value[table_id];
|
|
check_pull_push_memory(features, &push_g, fea_dim);
|
|
CHECK(push_g.size() == features.size() + 1)
|
|
<< "push_g size:" << push_g.size()
|
|
<< " features size:" << features.size();
|
|
uint64_t fea_idx = 0u;
|
|
auto& fea_info = _fea_info[table_id];
|
|
int offset = 2;
|
|
const std::vector<std::string>& feed_vec = thread_reader_->GetUseSlotAlias();
|
|
// slot_idx = 0 is label
|
|
for (auto slot_idx = 1u; slot_idx < feed_vec.size(); ++slot_idx) {
|
|
if (_param_config->slot_alias_to_table.find(feed_vec[slot_idx]) ==
|
|
_param_config->slot_alias_to_table.end()) {
|
|
LOG(ERROR) << "ERROR slot_idx:" << slot_idx
|
|
<< " name:" << feed_vec[slot_idx];
|
|
} else if (_param_config->slot_alias_to_table[feed_vec[slot_idx]] !=
|
|
table_id) {
|
|
continue;
|
|
}
|
|
Variable* g_var = thread_scope_->FindVar(
|
|
_param_config->gradient_var[table_id][slot_idx - 1]);
|
|
CHECK(g_var != nullptr)
|
|
<< "var[" << _param_config->gradient_var[table_id][slot_idx - 1]
|
|
<< "] not found";
|
|
LoDTensor* g_tensor = g_var->GetMutable<LoDTensor>();
|
|
if (g_tensor == NULL) {
|
|
LOG(ERROR) << "var["
|
|
<< _param_config->gradient_var[table_id][slot_idx - 1]
|
|
<< "] not found";
|
|
exit(-1);
|
|
}
|
|
float* g = g_tensor->data<float>();
|
|
|
|
Variable* var = thread_scope_->FindVar(feed_vec[slot_idx]);
|
|
CHECK(var != nullptr) << "var[" << feed_vec[slot_idx] << "] not found";
|
|
LoDTensor* tensor = var->GetMutable<LoDTensor>();
|
|
if (tensor == NULL) {
|
|
LOG(ERROR) << "var[" << feed_vec[slot_idx] << "] not found";
|
|
exit(-1);
|
|
}
|
|
int len = tensor->numel();
|
|
CHECK(slot_dim * len == g_tensor->numel())
|
|
<< "len:" << len << " g_numel:" << g_tensor->numel();
|
|
CHECK(len == tensor->numel()) << "len:" << len
|
|
<< "t_numel:" << tensor->numel();
|
|
int64_t* ids = tensor->data<int64_t>();
|
|
for (auto id_idx = 0u; id_idx < len; ++id_idx) {
|
|
if (ids[id_idx] == 0) {
|
|
g += slot_dim;
|
|
continue;
|
|
}
|
|
memcpy(push_g[fea_idx].data() + offset, g, sizeof(float) * slot_dim);
|
|
push_g[fea_idx][0] = 1.0f;
|
|
CHECK(fea_idx < fea_info.size()) << "fea_idx:" << fea_idx
|
|
<< " size:" << fea_info.size();
|
|
push_g[fea_idx][1] = static_cast<float>(fea_info[fea_idx].label);
|
|
g += slot_dim;
|
|
fea_idx++;
|
|
}
|
|
}
|
|
CHECK(fea_idx == features.size()) << "fea_idx:" << fea_idx
|
|
<< " features size:" << features.size();
|
|
CHECK_GT(features.size(), 0);
|
|
|
|
std::vector<float*> push_g_vec;
|
|
for (auto i = 0u; i < features.size(); ++i) {
|
|
push_g_vec.push_back(push_g[i].data());
|
|
}
|
|
auto status = _pslib_ptr->_worker_ptr->push_sparse(
|
|
table_id, features.data(), (const float**)push_g_vec.data(),
|
|
features.size());
|
|
_push_sparse_status.push_back(std::move(status));
|
|
}
|
|
|
|
void AsyncExecutorThreadWorker::collect_feasign_info(int table_id) {
|
|
auto& fea_info = _fea_info[table_id];
|
|
auto& feature = _features[table_id];
|
|
fea_info.resize(feature.size());
|
|
const std::vector<std::string>& feed_vec = thread_reader_->GetUseSlotAlias();
|
|
Variable* var = thread_scope_->FindVar(feed_vec[0]);
|
|
LoDTensor* tensor = var->GetMutable<LoDTensor>();
|
|
int64_t* label = tensor->data<int64_t>();
|
|
|
|
int global_index = 0;
|
|
for (auto slot_idx = 1u; slot_idx < feed_vec.size(); ++slot_idx) {
|
|
Variable* var = thread_scope_->FindVar(feed_vec[slot_idx]);
|
|
LoDTensor* tensor = var->GetMutable<LoDTensor>();
|
|
int64_t* ids = tensor->data<int64_t>();
|
|
|
|
int fea_idx = 0;
|
|
for (auto ins_idx = 1u; ins_idx < tensor->lod()[0].size(); ++ins_idx) {
|
|
for (; fea_idx < tensor->lod()[0][ins_idx]; ++fea_idx) {
|
|
if (ids[fea_idx] == 0u) {
|
|
continue;
|
|
}
|
|
FeasignInfo info{slot_idx, ins_idx, label[ins_idx - 1]};
|
|
|
|
fea_info[global_index++] = std::move(info);
|
|
}
|
|
}
|
|
}
|
|
CHECK(global_index == feature.size())
|
|
<< "expect fea info size:" << feature.size() << " real:" << global_index;
|
|
}
|
|
|
|
void AsyncExecutorThreadWorker::check_pull_push_memory(
|
|
const std::vector<uint64_t>& features,
|
|
std::vector<std::vector<float>>* push_g, int dim) {
|
|
push_g->resize(features.size() + 1);
|
|
for (auto& t : *push_g) {
|
|
t.resize(dim);
|
|
}
|
|
}
|
|
|
|
void AsyncExecutorThreadWorker::check_pull_push_memory(
|
|
const std::vector<uint64_t>& features, std::vector<float*>* push_g,
|
|
int dim) {
|
|
if (features.size() > push_g->size()) {
|
|
push_g->reserve(features.size() + 1);
|
|
auto size = features.size() - push_g->size() + 1;
|
|
for (auto i = 0u; i < size; ++i) {
|
|
float* ptr = new float[dim];
|
|
push_g->push_back(ptr);
|
|
}
|
|
}
|
|
}
|
|
#endif
|
|
|
|
} // einit_modelnd namespace framework
|
|
} // end namespace paddle
|