update boost
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@@ -16,6 +16,8 @@
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#include <boost/chrono/system_clocks.hpp>
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#include <boost/chrono/chrono_io.hpp>
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#include <algorithm> // std::min
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#include <boost/config/abi_prefix.hpp>
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namespace boost
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@@ -59,6 +61,45 @@ namespace detail
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}
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}; //end struct
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template <class Duration>
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chrono::time_point<chrono::steady_clock,Duration>
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limit_timepoint(chrono::time_point<chrono::steady_clock,Duration> const& tp)
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{
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// Clock == chrono::steady_clock
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return tp;
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}
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template <class Clock, class Duration>
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chrono::time_point<Clock,Duration>
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limit_timepoint(chrono::time_point<Clock,Duration> const& tp)
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{
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// Clock != chrono::steady_clock
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// The system time may jump while wait_until() is waiting. To compensate for this and time out near
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// the correct time, we limit how long wait_until() can wait before going around the loop again.
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const chrono::time_point<Clock,Duration> tpmax(chrono::time_point_cast<Duration>(Clock::now() + chrono::milliseconds(BOOST_THREAD_POLL_INTERVAL_MILLISECONDS)));
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return (std::min)(tp, tpmax);
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}
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template <class Duration>
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chrono::steady_clock::time_point
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convert_to_steady_clock_timepoint(chrono::time_point<chrono::steady_clock,Duration> const& tp)
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{
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// Clock == chrono::steady_clock
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return chrono::time_point_cast<chrono::steady_clock::duration>(tp);
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}
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template <class Clock, class Duration>
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chrono::steady_clock::time_point
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convert_to_steady_clock_timepoint(chrono::time_point<Clock,Duration> const& tp)
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{
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// Clock != chrono::steady_clock
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// The system time may jump while wait_until() is waiting. To compensate for this and time out near
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// the correct time, we limit how long wait_until() can wait before going around the loop again.
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const chrono::steady_clock::duration dura(chrono::duration_cast<chrono::steady_clock::duration>(tp - Clock::now()));
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const chrono::steady_clock::duration duramax(chrono::milliseconds(BOOST_THREAD_POLL_INTERVAL_MILLISECONDS));
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return chrono::steady_clock::now() + (std::min)(dura, duramax);
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}
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} //end detail namespace
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template <class T, class Clock = chrono::steady_clock, class TimePoint=typename Clock::time_point>
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@@ -88,8 +129,8 @@ namespace detail
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T pull();
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void pull(T& elem);
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template <class WClock, class Duration>
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queue_op_status pull_until(chrono::time_point<WClock,Duration> const& tp, T& elem);
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template <class Duration>
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queue_op_status pull_until(chrono::time_point<clock,Duration> const& tp, T& elem);
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template <class Rep, class Period>
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queue_op_status pull_for(chrono::duration<Rep,Period> const& dura, T& elem);
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@@ -122,8 +163,9 @@ namespace detail
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inline bool not_empty_and_time_reached(lock_guard<mutex>& lk) const;
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bool wait_to_pull(unique_lock<mutex>&);
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template <class WClock, class Duration>
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queue_op_status wait_to_pull_until(unique_lock<mutex>&, chrono::time_point<WClock, Duration> const& tp);
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queue_op_status wait_to_pull_until(unique_lock<mutex>&, TimePoint const& tp);
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template <class Rep, class Period>
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queue_op_status wait_to_pull_for(unique_lock<mutex>& lk, chrono::duration<Rep,Period> const& dura);
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T pull(unique_lock<mutex>&);
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T pull(lock_guard<mutex>&);
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@@ -228,14 +270,13 @@ namespace detail
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if (not_empty_and_time_reached(lk)) return false; // success
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if (super::closed(lk)) return true; // closed
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const time_point tp(super::data_.top().time);
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super::wait_until_closed_until(lk, tp);
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const time_point tpmin(detail::limit_timepoint(super::data_.top().time));
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super::cond_.wait_until(lk, tpmin);
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}
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}
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template <class T, class Clock, class TimePoint>
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template <class WClock, class Duration>
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queue_op_status sync_timed_queue<T, Clock, TimePoint>::wait_to_pull_until(unique_lock<mutex>& lk, chrono::time_point<WClock, Duration> const& tp)
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queue_op_status sync_timed_queue<T, Clock, TimePoint>::wait_to_pull_until(unique_lock<mutex>& lk, TimePoint const& tp)
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{
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for (;;)
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{
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@@ -249,8 +290,30 @@ namespace detail
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if (super::closed(lk)) return queue_op_status::closed;
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if (clock::now() >= tp) return super::empty(lk) ? queue_op_status::timeout : queue_op_status::not_ready;
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const time_point tpmin(tp < super::data_.top().time ? tp : super::data_.top().time);
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super::wait_until_closed_until(lk, tpmin);
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const time_point tpmin((std::min)(tp, detail::limit_timepoint(super::data_.top().time)));
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super::cond_.wait_until(lk, tpmin);
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}
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}
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template <class T, class Clock, class TimePoint>
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template <class Rep, class Period>
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queue_op_status sync_timed_queue<T, Clock, TimePoint>::wait_to_pull_for(unique_lock<mutex>& lk, chrono::duration<Rep,Period> const& dura)
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{
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const chrono::steady_clock::time_point tp(chrono::steady_clock::now() + chrono::duration_cast<chrono::steady_clock::duration>(dura));
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for (;;)
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{
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if (not_empty_and_time_reached(lk)) return queue_op_status::success;
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if (super::closed(lk)) return queue_op_status::closed;
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if (chrono::steady_clock::now() >= tp) return super::empty(lk) ? queue_op_status::timeout : queue_op_status::not_ready;
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super::wait_until_not_empty_or_closed_until(lk, tp);
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if (not_empty_and_time_reached(lk)) return queue_op_status::success;
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if (super::closed(lk)) return queue_op_status::closed;
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if (chrono::steady_clock::now() >= tp) return super::empty(lk) ? queue_op_status::timeout : queue_op_status::not_ready;
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const chrono::steady_clock::time_point tpmin((std::min)(tp, detail::convert_to_steady_clock_timepoint(super::data_.top().time)));
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super::cond_.wait_until(lk, tpmin);
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}
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}
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@@ -315,12 +378,12 @@ namespace detail
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//////////////////////
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template <class T, class Clock, class TimePoint>
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template <class WClock, class Duration>
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template <class Duration>
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queue_op_status
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sync_timed_queue<T, Clock, TimePoint>::pull_until(chrono::time_point<WClock, Duration> const& tp, T& elem)
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sync_timed_queue<T, Clock, TimePoint>::pull_until(chrono::time_point<clock,Duration> const& tp, T& elem)
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{
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unique_lock<mutex> lk(super::mtx_);
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const queue_op_status rc = wait_to_pull_until(lk, tp);
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const queue_op_status rc = wait_to_pull_until(lk, chrono::time_point_cast<typename time_point::duration>(tp));
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if (rc == queue_op_status::success) pull(lk, elem);
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return rc;
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}
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@@ -331,7 +394,10 @@ namespace detail
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queue_op_status
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sync_timed_queue<T, Clock, TimePoint>::pull_for(chrono::duration<Rep,Period> const& dura, T& elem)
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{
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return pull_until(chrono::steady_clock::now() + dura, elem);
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unique_lock<mutex> lk(super::mtx_);
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const queue_op_status rc = wait_to_pull_for(lk, dura);
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if (rc == queue_op_status::success) pull(lk, elem);
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return rc;
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}
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///////////////////////////
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