201 lines
7.1 KiB
C++
201 lines
7.1 KiB
C++
//////////////////////////////////////////////////////////////////////////////
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//
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// (C) Copyright Ion Gaztanaga 2005-2009. Distributed under the Boost
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// Software License, Version 1.0. (See accompanying file
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// LICENSE_1_0.txt or copy at http://www.boost.org/LICENSE_1_0.txt)
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//
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// See http://www.boost.org/libs/interprocess for documentation.
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//
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//////////////////////////////////////////////////////////////////////////////
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#include <boost/interprocess/detail/posix_time_types_wrk.hpp>
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#include <boost/interprocess/detail/move.hpp>
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namespace boost {
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namespace interprocess {
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inline interprocess_condition::interprocess_condition()
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{
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//Note that this class is initialized to zero.
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//So zeroed memory can be interpreted as an initialized
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//condition variable
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m_command = SLEEP;
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m_num_waiters = 0;
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}
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inline interprocess_condition::~interprocess_condition()
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{
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//Trivial destructor
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}
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inline void interprocess_condition::notify_one()
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{
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this->notify(NOTIFY_ONE);
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}
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inline void interprocess_condition::notify_all()
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{
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this->notify(NOTIFY_ALL);
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}
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inline void interprocess_condition::notify(boost::uint32_t command)
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{
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//This interprocess_mutex guarantees that no other thread can enter to the
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//do_timed_wait method logic, so that thread count will be
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//constant until the function writes a NOTIFY_ALL command.
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//It also guarantees that no other notification can be signaled
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//on this interprocess_condition before this one ends
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m_enter_mut.lock();
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//Return if there are no waiters
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if(!ipcdetail::atomic_read32(&m_num_waiters)) {
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m_enter_mut.unlock();
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return;
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}
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//Notify that all threads should execute wait logic
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while(SLEEP != ipcdetail::atomic_cas32(const_cast<boost::uint32_t*>(&m_command), command, SLEEP)){
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ipcdetail::thread_yield();
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}
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/*
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//Wait until the threads are woken
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while(SLEEP != ipcdetail::atomic_cas32(const_cast<boost::uint32_t*>(&m_command), 0)){
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ipcdetail::thread_yield();
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}
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*/
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//The enter interprocess_mutex will rest locked until the last waiting thread unlocks it
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}
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inline void interprocess_condition::do_wait(interprocess_mutex &mut)
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{
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this->do_timed_wait(false, boost::posix_time::ptime(), mut);
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}
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inline bool interprocess_condition::do_timed_wait
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(const boost::posix_time::ptime &abs_time, interprocess_mutex &mut)
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{
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return this->do_timed_wait(true, abs_time, mut);
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}
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inline bool interprocess_condition::do_timed_wait(bool tout_enabled,
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const boost::posix_time::ptime &abs_time,
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interprocess_mutex &mut)
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{
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boost::posix_time::ptime now = microsec_clock::universal_time();
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if(tout_enabled){
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if(now >= abs_time) return false;
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}
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typedef boost::interprocess::scoped_lock<interprocess_mutex> InternalLock;
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//The enter interprocess_mutex guarantees that while executing a notification,
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//no other thread can execute the do_timed_wait method.
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{
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//---------------------------------------------------------------
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InternalLock lock;
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if(tout_enabled){
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InternalLock dummy(m_enter_mut, abs_time);
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lock = boost::interprocess::move(dummy);
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}
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else{
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InternalLock dummy(m_enter_mut);
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lock = boost::interprocess::move(dummy);
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}
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if(!lock)
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return false;
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//---------------------------------------------------------------
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//We increment the waiting thread count protected so that it will be
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//always constant when another thread enters the notification logic.
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//The increment marks this thread as "waiting on interprocess_condition"
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ipcdetail::atomic_inc32(const_cast<boost::uint32_t*>(&m_num_waiters));
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//We unlock the external interprocess_mutex atomically with the increment
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mut.unlock();
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}
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//By default, we suppose that no timeout has happened
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bool timed_out = false, unlock_enter_mut= false;
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//Loop until a notification indicates that the thread should
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//exit or timeout occurs
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while(1){
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//The thread sleeps/spins until a interprocess_condition commands a notification
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//Notification occurred, we will lock the checking interprocess_mutex so that
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while(ipcdetail::atomic_read32(&m_command) == SLEEP){
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ipcdetail::thread_yield();
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//Check for timeout
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if(tout_enabled){
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now = microsec_clock::universal_time();
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if(now >= abs_time){
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//If we can lock the interprocess_mutex it means that no notification
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//is being executed in this interprocess_condition variable
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timed_out = m_enter_mut.try_lock();
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//If locking fails, indicates that another thread is executing
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//notification, so we play the notification game
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if(!timed_out){
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//There is an ongoing notification, we will try again later
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continue;
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}
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//No notification in execution, since enter interprocess_mutex is locked.
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//We will execute time-out logic, so we will decrement count,
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//release the enter interprocess_mutex and return false.
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break;
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}
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}
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}
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//If a timeout occurred, the interprocess_mutex will not execute checking logic
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if(tout_enabled && timed_out){
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//Decrement wait count
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ipcdetail::atomic_dec32(const_cast<boost::uint32_t*>(&m_num_waiters));
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unlock_enter_mut = true;
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break;
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}
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else{
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boost::uint32_t result = ipcdetail::atomic_cas32
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(const_cast<boost::uint32_t*>(&m_command), SLEEP, NOTIFY_ONE);
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if(result == SLEEP){
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//Other thread has been notified and since it was a NOTIFY one
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//command, this thread must sleep again
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continue;
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}
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else if(result == NOTIFY_ONE){
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//If it was a NOTIFY_ONE command, only this thread should
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//exit. This thread has atomically marked command as sleep before
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//so no other thread will exit.
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//Decrement wait count.
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unlock_enter_mut = true;
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ipcdetail::atomic_dec32(const_cast<boost::uint32_t*>(&m_num_waiters));
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break;
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}
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else{
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//If it is a NOTIFY_ALL command, all threads should return
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//from do_timed_wait function. Decrement wait count.
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unlock_enter_mut = 1 == ipcdetail::atomic_dec32(const_cast<boost::uint32_t*>(&m_num_waiters));
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//Check if this is the last thread of notify_all waiters
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//Only the last thread will release the interprocess_mutex
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if(unlock_enter_mut){
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ipcdetail::atomic_cas32(const_cast<boost::uint32_t*>(&m_command), SLEEP, NOTIFY_ALL);
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}
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break;
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}
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}
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}
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//Unlock the enter interprocess_mutex if it is a single notification, if this is
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//the last notified thread in a notify_all or a timeout has occurred
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if(unlock_enter_mut){
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m_enter_mut.unlock();
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}
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//Lock external again before returning from the method
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mut.lock();
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return !timed_out;
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}
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} //namespace interprocess
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} // namespace boost
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