forked from huawei/mindspore2022
359 lines
11 KiB
C++
359 lines
11 KiB
C++
/**
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* Copyright 2019 Huawei Technologies Co., Ltd
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*
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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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*
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* http://www.apache.org/licenses/LICENSE-2.0
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*
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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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*/
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#include <algorithm>
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#include <functional>
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#include <set>
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#include "./securec.h"
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#include "minddata/dataset/util/task_manager.h"
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namespace mindspore {
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namespace dataset {
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// This takes the same parameter as Task constructor.
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Status TaskManager::CreateAsyncTask(const std::string &my_name, const std::function<Status()> &f, TaskGroup *vg,
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Task **task) {
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// We need to block destructor coming otherwise we will deadlock. We will grab the
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// stateLock in shared allowing CreateAsyncTask to run concurrently.
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SharedLock stateLck(&state_lock_);
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// Now double check the state
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if (ServiceState() == STATE::kStopInProg || ServiceState() == STATE::kStopped) {
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return Status(StatusCode::kInterrupted, __LINE__, __FILE__, "TaskManager is shutting down");
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}
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RETURN_IF_NOT_OK(GetFreeTask(my_name, f, task));
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if (vg == nullptr) {
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RETURN_STATUS_UNEXPECTED("TaskGroup is null");
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}
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// Previously there is a timing hole where the thread is spawn but hit error immediately before we can set
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// the TaskGroup pointer. We will do the set here before we call run(). The run() will do the registration.
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(*task)->set_task_group(vg);
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// Link to the master lru list.
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{
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UniqueLock lck(&lru_lock_);
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lru_.Append(*task);
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}
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// Link to the group list as well before we spawn.
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{
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UniqueLock lck(&vg->rw_lock_);
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vg->grp_list_.Append(*task);
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}
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// Track all the TaskGroup. Used for control-c
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{
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LockGuard lck(&tg_lock_);
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this->grp_list_.insert(vg);
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}
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RETURN_IF_NOT_OK((*task)->wp_.Register(vg));
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RETURN_IF_NOT_OK((*task)->Run());
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// Wait for the thread to initialize successfully.
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RETURN_IF_NOT_OK((*task)->Wait());
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return Status::OK();
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}
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Status TaskManager::join_all() {
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Status rc;
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Status rc2;
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SharedLock lck(&lru_lock_);
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for (Task &tk : lru_) {
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rc = tk.Join();
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if (rc.IsError()) {
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rc2 = rc;
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}
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}
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return rc2;
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}
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void TaskManager::interrupt_all() noexcept {
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global_interrupt_ = 1;
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LockGuard lck(&tg_lock_);
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for (TaskGroup *vg : grp_list_) {
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auto svc = vg->GetIntrpService();
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if (svc) {
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// Stop the interrupt service. No new request is accepted.
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svc->ServiceStop();
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svc->InterruptAll();
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}
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}
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master_->Interrupt();
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}
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Task *TaskManager::FindMe() {
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#if !defined(_WIN32) && !defined(_WIN64)
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return gMyTask;
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#else
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TaskManager &tm = TaskManager::GetInstance();
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SharedLock lock(&tm.lru_lock_);
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auto id = this_thread::get_id();
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auto tk = std::find_if(tm.lru_.begin(), tm.lru_.end(), [id](const Task &tk) { return tk.id_ == id; });
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if (tk != tm.lru_.end()) {
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return &(*tk);
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}
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// If we get here, either I am the watchdog or the master thread.
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if (tm.master_->id_ == id) {
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return tm.master_.get();
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} else if (tm.watchdog_ != nullptr && tm.watchdog_->id_ == id) {
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return tm.watchdog_;
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}
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MS_LOG(ERROR) << "Task not found.";
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return nullptr;
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#endif
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}
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TaskManager::TaskManager() try : global_interrupt_(0),
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lru_(&Task::node),
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free_lst_(&Task::free),
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watchdog_grp_(nullptr),
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watchdog_(nullptr) {
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auto alloc = Services::GetAllocator<Task>();
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// Create a dummy Task for the master thread (this thread)
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master_ = std::allocate_shared<Task>(alloc, "master", []() -> Status { return Status::OK(); });
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master_->id_ = this_thread::get_id();
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master_->running_ = true;
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master_->is_master_ = true;
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#if !defined(_WIN32) && !defined(_WIN64)
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gMyTask = master_.get();
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// Initialize the semaphore for the watchdog
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errno_t rc = sem_init(&sem_, 0, 0);
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if (rc == -1) {
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MS_LOG(ERROR) << "Unable to initialize a semaphore. Errno = " << rc << ".";
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std::terminate();
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}
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#endif
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} catch (const std::exception &e) {
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MS_LOG(ERROR) << "MindData initialization failed: " << e.what() << ".";
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std::terminate();
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}
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TaskManager::~TaskManager() {
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if (watchdog_) {
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WakeUpWatchDog();
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watchdog_->Join();
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// watchdog_grp_ and watchdog_ pointers come from Services::GetInstance().GetServiceMemPool() which we will free it
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// on shutdown. So no need to free these pointers one by one.
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watchdog_grp_ = nullptr;
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watchdog_ = nullptr;
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}
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#if !defined(_WIN32) && !defined(_WIN64)
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(void)sem_destroy(&sem_);
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#endif
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}
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Status TaskManager::DoServiceStart() {
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MS_LOG(INFO) << "Starting Task Manager.";
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#if !defined(_WIN32) && !defined(_WIN64)
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// Create a watchdog for control-c
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std::shared_ptr<MemoryPool> mp = Services::GetInstance().GetServiceMemPool();
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// A dummy group just for the watchdog. We aren't really using it. But most code assumes a thread must
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// belong to a group.
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auto f = std::bind(&TaskManager::WatchDog, this);
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Status rc;
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watchdog_grp_ = new (&rc, mp) TaskGroup();
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RETURN_IF_NOT_OK(rc);
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rc = watchdog_grp_->CreateAsyncTask("Watchdog", f, &watchdog_);
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if (rc.IsError()) {
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::operator delete(watchdog_grp_, mp);
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watchdog_grp_ = nullptr;
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return rc;
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}
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grp_list_.erase(watchdog_grp_);
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lru_.Remove(watchdog_);
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#endif
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return Status::OK();
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}
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Status TaskManager::DoServiceStop() {
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WakeUpWatchDog();
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interrupt_all();
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return Status::OK();
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}
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Status TaskManager::WatchDog() {
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TaskManager::FindMe()->Post();
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#if !defined(_WIN32) && !defined(_WIN64)
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errno_t err = sem_wait(&sem_);
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if (err == -1) {
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RETURN_STATUS_UNEXPECTED("Errno = " + std::to_string(errno));
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}
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// We are woken up by control-c and we are going to stop all threads that are running.
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// In addition, we also want to prevent new thread from creating. This can be done
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// easily by calling the parent function.
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RETURN_IF_NOT_OK(ServiceStop());
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#endif
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return Status::OK();
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}
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// Follow the group link and interrupt other
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// Task in the same group. It is used by
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// Watchdog only.
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void TaskManager::InterruptGroup(Task &curTk) {
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TaskGroup *vg = curTk.MyTaskGroup();
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vg->interrupt_all();
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}
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void TaskManager::InterruptMaster(const Status &rc) {
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TaskManager &tm = TaskManager::GetInstance();
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std::shared_ptr<Task> master = tm.master_;
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std::lock_guard<std::mutex> lck(master->mux_);
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master->Interrupt();
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if (rc.IsError() && master->rc_.IsOk()) {
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master->rc_ = rc;
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master->caught_severe_exception_ = true;
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}
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}
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Status TaskManager::GetMasterThreadRc() {
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TaskManager &tm = TaskManager::GetInstance();
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std::shared_ptr<Task> master = tm.master_;
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Status rc = tm.master_->GetTaskErrorIfAny();
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if (rc.IsError()) {
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// Reset the state once we retrieve the value.
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std::lock_guard<std::mutex> lck(master->mux_);
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master->rc_ = Status::OK();
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master->caught_severe_exception_ = false;
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master->ResetIntrpState();
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}
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return rc;
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}
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void TaskManager::ReturnFreeTask(Task *p) noexcept {
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// Take it out from lru_ if any
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{
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UniqueLock lck(&lru_lock_);
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auto it = std::find(lru_.begin(), lru_.end(), *p);
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if (it != lru_.end()) {
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lru_.Remove(p);
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}
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}
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// We need to deallocate the string resources associated with the Task class
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// before we cache its memory for future use.
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p->~Task();
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// Put it back into free list
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{
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LockGuard lck(&free_lock_);
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free_lst_.Append(p);
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}
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}
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Status TaskManager::GetFreeTask(const std::string &my_name, const std::function<Status()> &f, Task **p) {
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if (p == nullptr) {
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RETURN_STATUS_UNEXPECTED("p is null");
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}
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Task *q = nullptr;
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// First try the free list
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{
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LockGuard lck(&free_lock_);
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if (free_lst_.count > 0) {
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q = free_lst_.head;
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free_lst_.Remove(q);
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}
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}
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if (q) {
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new (q) Task(my_name, f);
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} else {
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std::shared_ptr<MemoryPool> mp = Services::GetInstance().GetServiceMemPool();
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Status rc;
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q = new (&rc, mp) Task(my_name, f);
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RETURN_IF_NOT_OK(rc);
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}
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*p = q;
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return Status::OK();
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}
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Status TaskGroup::CreateAsyncTask(const std::string &my_name, const std::function<Status()> &f, Task **ppTask) {
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auto pMytask = TaskManager::FindMe();
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// We need to block ~TaskGroup coming otherwise we will deadlock. We will grab the
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// stateLock in shared allowing CreateAsyncTask to run concurrently.
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SharedLock state_lck(&state_lock_);
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// Now double check the state
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if (ServiceState() != STATE::kRunning) {
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return Status(StatusCode::kInterrupted, __LINE__, __FILE__, "Taskgroup is shutting down");
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}
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TaskManager &dm = TaskManager::GetInstance();
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Task *pTask = nullptr;
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// If the group is already in error, early exit too.
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// We can't hold the rc_mux_ throughout because the thread spawned by CreateAsyncTask may hit error which
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// will try to shutdown the group and grab the rc_mux_ and we will deadlock.
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{
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std::unique_lock<std::mutex> rcLock(rc_mux_);
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if (rc_.IsError()) {
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return pMytask->IsMasterThread() ? rc_ : Status(StatusCode::kInterrupted);
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}
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}
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RETURN_IF_NOT_OK(dm.CreateAsyncTask(my_name, f, this, &pTask));
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if (ppTask) {
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*ppTask = pTask;
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}
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return Status::OK();
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}
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void TaskGroup::interrupt_all() noexcept {
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// There is a racing condition if we don't stop the interrupt service at this point. New resource
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// may come in and not being picked up after we call InterruptAll(). So stop new comers and then
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// interrupt any existing resources.
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(void)intrp_svc_->ServiceStop();
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intrp_svc_->InterruptAll();
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}
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Status TaskGroup::join_all(Task::WaitFlag wf) {
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Status rc;
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Status rc2;
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SharedLock lck(&rw_lock_);
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for (Task &tk : grp_list_) {
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rc = tk.Join(wf);
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if (rc.IsError()) {
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rc2 = rc;
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}
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}
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return rc2;
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}
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Status TaskGroup::DoServiceStop() {
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interrupt_all();
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return (join_all(Task::WaitFlag::kNonBlocking));
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}
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TaskGroup::TaskGroup() : grp_list_(&Task::group), intrp_svc_(nullptr) {
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auto alloc = Services::GetAllocator<IntrpService>();
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intrp_svc_ = std::allocate_shared<IntrpService>(alloc);
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(void)Service::ServiceStart();
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}
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TaskGroup::~TaskGroup() {
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(void)Service::ServiceStop();
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// The TaskGroup is going out of scope, and we can return the Task list to the free list.
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Task *cur = grp_list_.head;
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TaskManager &tm = TaskManager::GetInstance();
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while (cur) {
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Task *next = cur->group.next;
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grp_list_.Remove(cur);
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tm.ReturnFreeTask(cur);
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cur = next;
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}
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{
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LockGuard lck(&tm.tg_lock_);
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(void)tm.grp_list_.erase(this);
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}
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}
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Status TaskGroup::GetTaskErrorIfAny() {
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SharedLock lck(&rw_lock_);
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for (Task &tk : grp_list_) {
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RETURN_IF_NOT_OK(tk.GetTaskErrorIfAny());
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}
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return Status::OK();
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}
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std::shared_ptr<IntrpService> TaskGroup::GetIntrpService() { return intrp_svc_; }
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} // namespace dataset
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} // namespace mindspore
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