[629c95a] | 1 | //
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| 2 | // Cforall Version 1.0.0 Copyright (C) 2021 University of Waterloo
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| 3 | //
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| 4 | // The contents of this file are covered under the licence agreement in the
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| 5 | // file "LICENCE" distributed with Cforall.
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| 6 | //
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| 7 | // channel.hfa -- LIBCFATHREAD
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| 8 | // Runtime locks that used with the runtime thread system.
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| 9 | //
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| 10 | // Author : Colby Alexander Parsons
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| 11 | // Created On : Thu Jan 21 19:46:50 2022
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| 12 | // Last Modified By :
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| 13 | // Last Modified On :
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| 14 | // Update Count :
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| 15 | //
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| 16 |
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[5e4a830] | 17 | #pragma once
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| 18 |
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[4a962d8] | 19 | #include <locks.hfa>
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[d30e3eb] | 20 | #include <list.hfa>
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[beeff61e] | 21 | #include "select.hfa"
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[a45e21c] | 22 |
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| 23 | // returns true if woken due to shutdown
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| 24 | // blocks thread on list and releases passed lock
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[beeff61e] | 25 | static inline bool block( dlist( select_node ) & queue, void * elem_ptr, go_mutex & lock ) {
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| 26 | select_node sn{ active_thread(), elem_ptr };
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| 27 | insert_last( queue, sn );
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[a45e21c] | 28 | unlock( lock );
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| 29 | park();
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[beeff61e] | 30 | return sn.extra == 0p;
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| 31 | }
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| 32 |
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| 33 | // Waituntil support (un)register_select helper routine
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| 34 | // Sets select node avail if not special OR case and then unlocks
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| 35 | static inline void __set_avail_then_unlock( select_node & node, go_mutex & mutex_lock ) {
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| 36 | if ( node.park_counter ) __make_select_node_available( node );
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| 37 | unlock( mutex_lock );
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[a45e21c] | 38 | }
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| 39 |
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| 40 | // void * used for some fields since exceptions don't work with parametric polymorphism currently
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| 41 | exception channel_closed {
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| 42 | // on failed insert elem is a ptr to the element attempting to be inserted
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| 43 | // on failed remove elem ptr is 0p
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| 44 | // on resumption of a failed insert this elem will be inserted
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| 45 | // so a user may modify it in the resumption handler
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| 46 | void * elem;
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| 47 |
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| 48 | // pointer to chan that is closed
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| 49 | void * closed_chan;
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| 50 | };
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| 51 | vtable(channel_closed) channel_closed_vt;
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| 52 |
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[ded6c2a6] | 53 | static inline bool is_insert( channel_closed & e ) { return e.elem != 0p; }
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| 54 | static inline bool is_remove( channel_closed & e ) { return e.elem == 0p; }
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[3eeeb88] | 55 |
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[a45e21c] | 56 | // #define CHAN_STATS // define this to get channel stats printed in dtor
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| 57 |
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[4a962d8] | 58 | forall( T ) {
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[6b33e89] | 59 | struct __attribute__((aligned(128))) channel {
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| 60 | size_t size, front, back, count;
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| 61 | T * buffer;
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| 62 | dlist( select_node ) prods, cons; // lists of blocked threads
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| 63 | go_mutex mutex_lock; // MX lock
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| 64 | bool closed; // indicates channel close/open
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| 65 | #ifdef CHAN_STATS
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| 66 | size_t p_blocks, p_ops, c_blocks, c_ops; // counts total ops and ops resulting in a blocked thd
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| 67 | #endif
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| 68 | };
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| 69 |
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| 70 | // type used by select statement to capture a chan read as the selected operation
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| 71 | struct chan_read {
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| 72 | T * ret;
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| 73 | channel(T) * chan;
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| 74 | };
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| 75 | __CFA_SELECT_GET_TYPE( chan_read(T) );
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| 76 |
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| 77 | // type used by select statement to capture a chan read as the selected operation that doesn't have a param to read to
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| 78 | struct chan_read_no_ret {
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| 79 | T retval;
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| 80 | chan_read( T ) c_read;
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| 81 | };
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| 82 | __CFA_SELECT_GET_TYPE( chan_read_no_ret(T) );
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| 83 |
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| 84 | // type used by select statement to capture a chan write as the selected operation
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| 85 | struct chan_write {
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| 86 | T elem;
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| 87 | channel(T) * chan;
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| 88 | };
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| 89 | __CFA_SELECT_GET_TYPE( chan_write(T) );
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| 90 | } // distribution
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| 91 |
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| 92 | static inline forall( T ) {
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| 93 | void ?{}( channel(T) & this, channel(T) this2 ) = void;
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| 94 | void ?=?( channel(T) & this, channel(T) this2 ) = void;
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| 95 |
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| 96 | void ?{}( channel(T) &c, size_t _size ) with(c) {
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| 97 | size = _size;
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| 98 | front = back = count = 0;
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| 99 | if ( size != 0 ) buffer = aalloc( size );
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| 100 | prods{};
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| 101 | cons{};
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| 102 | mutex_lock{};
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| 103 | closed = false;
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| 104 | #ifdef CHAN_STATS
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| 105 | p_blocks = 0;
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| 106 | p_ops = 0;
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| 107 | c_blocks = 0;
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| 108 | c_ops = 0;
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| 109 | #endif
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| 110 | }
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| 111 |
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| 112 | void ?{}( channel(T) &c ){ ((channel(T) &)c){ 0 }; }
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| 113 | void ^?{}( channel(T) &c ) with(c) {
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| 114 | #ifdef CHAN_STATS
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| 115 | printf("Channel %p Blocks: %lu,\t\tOperations: %lu,\t%.2f%% of ops blocked\n", &c, p_blocks + c_blocks, p_ops + c_ops, ((double)p_blocks + c_blocks)/(p_ops + c_ops) * 100);
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| 116 | printf("Channel %p Consumer Blocks: %lu,\tConsumer Ops: %lu,\t%.2f%% of Consumer ops blocked\n", &c, p_blocks, p_ops, ((double)p_blocks)/p_ops * 100);
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| 117 | printf("Channel %p Producer Blocks: %lu,\tProducer Ops: %lu,\t%.2f%% of Producer ops blocked\n", &c, c_blocks, c_ops, ((double)c_blocks)/c_ops * 100);
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| 118 | #endif
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| 119 | verifyf( __handle_waituntil_OR( cons ) || __handle_waituntil_OR( prods ) || isEmpty( cons ) && isEmpty( prods ),
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| 120 | "Attempted to delete channel with waiting threads (Deadlock).\n" );
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| 121 | if ( size != 0 ) delete( buffer );
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| 122 | }
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| 123 | size_t get_count( channel(T) & chan ) with(chan) { return __atomic_load_n( &count, __ATOMIC_RELAXED ); }
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| 124 | size_t get_size( channel(T) & chan ) with(chan) { return __atomic_load_n( &size, __ATOMIC_RELAXED ); }
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| 125 | bool has_waiters( channel(T) & chan ) with(chan) { return ! isEmpty( cons ) || ! isEmpty( prods ); }
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| 126 | bool has_waiting_consumers( channel(T) & chan ) with(chan) { return ! isEmpty( cons ); }
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| 127 | bool has_waiting_producers( channel(T) & chan ) with(chan) { return ! isEmpty( prods ); }
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| 128 |
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| 129 | // closes the channel and notifies all blocked threads
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| 130 | void close( channel(T) & chan ) with(chan) {
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| 131 | lock( mutex_lock );
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| 132 | closed = true;
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| 133 |
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| 134 | // flush waiting consumers and producers
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| 135 | while ( has_waiting_consumers( chan ) ) {
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| 136 | if( ! __handle_waituntil_OR( cons ) ) // ensure we only signal special OR case threads when they win the race
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| 137 | break; // if __handle_waituntil_OR returns false cons is empty so break
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| 138 | first( cons ).extra = 0p;
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| 139 | wake_one( cons );
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| 140 | }
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| 141 | while ( has_waiting_producers( chan ) ) {
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| 142 | if( ! __handle_waituntil_OR( prods ) ) // ensure we only signal special OR case threads when they win the race
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| 143 | break; // if __handle_waituntil_OR returns false prods is empty so break
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| 144 | first( prods ).extra = 0p;
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| 145 | wake_one( prods );
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| 146 | }
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| 147 | unlock(mutex_lock);
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| 148 | }
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| 149 |
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| 150 | void is_closed( channel(T) & chan ) with(chan) { return closed; }
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| 151 |
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| 152 | // used to hand an element to a blocked consumer and signal it
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| 153 | void __cons_handoff( channel(T) & chan, T & elem ) with(chan) {
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| 154 | memcpy( first( cons ).extra, (void *)&elem, sizeof(T) ); // do waiting consumer work
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| 155 | wake_one( cons );
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| 156 | }
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| 157 |
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| 158 | // used to hand an element to a blocked producer and signal it
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| 159 | void __prods_handoff( channel(T) & chan, T & retval ) with(chan) {
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| 160 | memcpy( (void *)&retval, first( prods ).extra, sizeof(T) );
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| 161 | wake_one( prods );
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| 162 | }
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| 163 |
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| 164 | void flush( channel(T) & chan, T elem ) with(chan) {
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| 165 | lock( mutex_lock );
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| 166 | while ( count == 0 && ! isEmpty( cons ) ) {
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| 167 | __cons_handoff( chan, elem );
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| 168 | }
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| 169 | unlock( mutex_lock );
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| 170 | }
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| 171 |
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| 172 | // handles buffer insert
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| 173 | void __buf_insert( channel(T) & chan, T & elem ) with(chan) {
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| 174 | memcpy( (void *)&buffer[back], (void *)&elem, sizeof(T) );
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| 175 | count += 1;
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| 176 | back++;
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| 177 | if ( back == size ) back = 0;
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| 178 | }
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| 179 |
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| 180 | // needed to avoid an extra copy in closed case
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| 181 | bool __internal_try_insert( channel(T) & chan, T & elem ) with(chan) {
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| 182 | lock( mutex_lock );
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| 183 | #ifdef CHAN_STATS
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| 184 | p_ops++;
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| 185 | #endif
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| 186 |
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| 187 | ConsEmpty:
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| 188 | if ( ! isEmpty( cons ) ) {
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| 189 | if ( ! __handle_waituntil_OR( cons ) ) break ConsEmpty;
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| 190 | __cons_handoff( chan, elem );
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| 191 | unlock( mutex_lock );
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| 192 | return true;
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| 193 | }
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| 194 |
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| 195 | if ( count == size ) { unlock( mutex_lock ); return false; }
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| 196 |
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| 197 | __buf_insert( chan, elem );
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| 198 | unlock( mutex_lock );
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| 199 | return true;
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| 200 | }
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| 201 |
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| 202 | // attempts a nonblocking insert
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| 203 | // returns true if insert was successful, false otherwise
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| 204 | bool try_insert( channel(T) & chan, T elem ) { return __internal_try_insert( chan, elem ); }
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| 205 |
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| 206 | // handles closed case of insert routine
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| 207 | void __closed_insert( channel(T) & chan, T & elem ) with(chan) {
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| 208 | channel_closed except{ &channel_closed_vt, &elem, &chan };
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| 209 | throwResume except; // throw closed resumption
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| 210 | if ( ! __internal_try_insert( chan, elem ) ) throw except; // if try to insert fails (would block), throw termination
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| 211 | }
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| 212 |
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| 213 | void insert( channel(T) & chan, T elem ) with(chan) {
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| 214 | // check for close before acquire mx
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| 215 | if ( unlikely(closed) ) {
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| 216 | __closed_insert( chan, elem );
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| 217 | return;
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| 218 | }
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| 219 |
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| 220 | lock( mutex_lock );
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| 221 |
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| 222 | #ifdef CHAN_STATS
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| 223 | if ( ! closed ) p_ops++;
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| 224 | #endif
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| 225 |
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| 226 | // if closed handle
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| 227 | if ( unlikely(closed) ) {
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| 228 | unlock( mutex_lock );
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| 229 | __closed_insert( chan, elem );
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| 230 | return;
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| 231 | }
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| 232 |
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| 233 | // buffer count must be zero if cons are blocked (also handles zero-size case)
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| 234 | ConsEmpty:
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| 235 | if ( ! isEmpty( cons ) ) {
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| 236 | if ( ! __handle_waituntil_OR( cons ) ) break ConsEmpty;
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| 237 | __cons_handoff( chan, elem );
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| 238 | unlock( mutex_lock );
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| 239 | return;
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| 240 | }
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| 241 |
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| 242 | // wait if buffer is full, work will be completed by someone else
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| 243 | if ( count == size ) {
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| 244 | #ifdef CHAN_STATS
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| 245 | p_blocks++;
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| 246 | #endif
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| 247 |
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| 248 | // check for if woken due to close
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| 249 | if ( unlikely( block( prods, &elem, mutex_lock ) ) )
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| 250 | __closed_insert( chan, elem );
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| 251 | return;
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| 252 | } // if
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| 253 |
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| 254 | __buf_insert( chan, elem );
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| 255 | unlock( mutex_lock );
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| 256 | }
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| 257 |
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| 258 | // does the buffer remove and potentially does waiting producer work
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| 259 | void __do_remove( channel(T) & chan, T & retval ) with(chan) {
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| 260 | memcpy( (void *)&retval, (void *)&buffer[front], sizeof(T) );
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| 261 | count -= 1;
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| 262 | front = (front + 1) % size;
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| 263 | if (count == size - 1 && ! isEmpty( prods ) ) {
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| 264 | if ( ! __handle_waituntil_OR( prods ) ) return;
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| 265 | __buf_insert( chan, *(T *)first( prods ).extra ); // do waiting producer work
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| 266 | wake_one( prods );
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| 267 | }
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| 268 | }
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| 269 |
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| 270 | // needed to avoid an extra copy in closed case and single return val case
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| 271 | bool __internal_try_remove( channel(T) & chan, T & retval ) with(chan) {
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| 272 | lock( mutex_lock );
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| 273 | #ifdef CHAN_STATS
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| 274 | c_ops++;
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| 275 | #endif
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| 276 |
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| 277 | ZeroSize:
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| 278 | if ( size == 0 && ! isEmpty( prods ) ) {
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| 279 | if ( ! __handle_waituntil_OR( prods ) ) break ZeroSize;
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| 280 | __prods_handoff( chan, retval );
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| 281 | unlock( mutex_lock );
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| 282 | return true;
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| 283 | }
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| 284 |
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| 285 | if ( count == 0 ) { unlock( mutex_lock ); return false; }
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| 286 |
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| 287 | __do_remove( chan, retval );
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| 288 | unlock( mutex_lock );
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| 289 | return true;
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| 290 | }
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| 291 |
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| 292 | // attempts a nonblocking remove
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| 293 | // returns [T, true] if insert was successful
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| 294 | // returns [T, false] if insert was successful (T uninit)
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| 295 | [T, bool] try_remove( channel(T) & chan ) {
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| 296 | T retval;
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| 297 | bool success = __internal_try_remove( chan, retval );
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| 298 | return [ retval, success ];
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| 299 | }
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| 300 |
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| 301 | T try_remove( channel(T) & chan ) {
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| 302 | T retval;
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| 303 | __internal_try_remove( chan, retval );
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| 304 | return retval;
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| 305 | }
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| 306 |
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| 307 | // handles closed case of insert routine
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| 308 | void __closed_remove( channel(T) & chan, T & retval ) with(chan) {
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| 309 | channel_closed except{ &channel_closed_vt, 0p, &chan };
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| 310 | throwResume except; // throw resumption
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| 311 | if ( ! __internal_try_remove( chan, retval ) ) throw except; // if try to remove fails (would block), throw termination
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| 312 | }
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| 313 |
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| 314 | T remove( channel(T) & chan ) with(chan) {
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| 315 | T retval;
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| 316 | if ( unlikely(closed) ) {
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| 317 | __closed_remove( chan, retval );
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| 318 | return retval;
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| 319 | }
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| 320 | lock( mutex_lock );
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| 321 |
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| 322 | #ifdef CHAN_STATS
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| 323 | if ( ! closed ) c_ops++;
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| 324 | #endif
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| 325 |
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| 326 | if ( unlikely(closed) ) {
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| 327 | unlock( mutex_lock );
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| 328 | __closed_remove( chan, retval );
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| 329 | return retval;
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| 330 | }
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| 331 |
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| 332 | // have to check for the zero size channel case
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| 333 | ZeroSize:
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| 334 | if ( size == 0 && ! isEmpty( prods ) ) {
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| 335 | if ( ! __handle_waituntil_OR( prods ) ) break ZeroSize;
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| 336 | __prods_handoff( chan, retval );
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| 337 | unlock( mutex_lock );
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| 338 | return retval;
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| 339 | }
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| 340 |
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| 341 | // wait if buffer is empty, work will be completed by someone else
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| 342 | if ( count == 0 ) {
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| 343 | #ifdef CHAN_STATS
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| 344 | c_blocks++;
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| 345 | #endif
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| 346 | // check for if woken due to close
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| 347 | if ( unlikely( block( cons, &retval, mutex_lock ) ) )
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| 348 | __closed_remove( chan, retval );
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| 349 | return retval;
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| 350 | }
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| 351 |
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| 352 | // Remove from buffer
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| 353 | __do_remove( chan, retval );
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| 354 | unlock( mutex_lock );
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| 355 | return retval;
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| 356 | }
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| 357 | void remove( channel(T) & chan ) { T elem = (T)remove( chan ); }
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| 358 |
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| 359 |
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| 360 | ///////////////////////////////////////////////////////////////////////////////////////////
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| 361 | // The following is Go-style operator support for channels
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| 362 | ///////////////////////////////////////////////////////////////////////////////////////////
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| 363 |
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| 364 | void ?<<?( channel(T) & chan, T elem ) { insert( chan, elem ); }
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| 365 | void ?<<?( T & ret, channel(T) & chan ) { ret = remove( chan ); }
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| 366 |
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| 367 | ///////////////////////////////////////////////////////////////////////////////////////////
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| 368 | // The following is support for waituntil (select) statements
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| 369 | ///////////////////////////////////////////////////////////////////////////////////////////
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| 370 | bool unregister_chan( channel(T) & chan, select_node & node ) with(chan) {
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| 371 | if ( ! isListed( node ) && ! node.park_counter ) return false; // handle special OR case
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| 372 | lock( mutex_lock );
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| 373 | if ( isListed( node ) ) { // op wasn't performed
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| 374 | remove( node );
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| 375 | unlock( mutex_lock );
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| 376 | return false;
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| 377 | }
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| 378 | unlock( mutex_lock );
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| 379 |
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| 380 | // only return true when not special OR case and status is SAT
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| 381 | return ! node.park_counter ? false : *node.clause_status == __SELECT_SAT;
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| 382 | }
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| 383 |
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| 384 | // special case of __handle_waituntil_OR, that does some work to avoid starvation/deadlock case
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| 385 | bool __handle_pending( dlist( select_node ) & queue, select_node & mine ) {
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| 386 | while ( ! isEmpty( queue ) ) {
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| 387 | // if node not a special OR case or if we win the special OR case race break
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| 388 | if ( ! first( queue ).clause_status || first( queue ).park_counter || __pending_set_other( first( queue ), mine, ((unsigned long int)(&(first( queue )))) ) )
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| 389 | return true;
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[6f774be] | 390 |
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[6b33e89] | 391 | // our node lost the race when toggling in __pending_set_other
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| 392 | if ( *mine.clause_status != __SELECT_PENDING )
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| 393 | return false;
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| 394 |
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| 395 | // otherwise we lost the special OR race so discard node
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| 396 | remove_first( queue );
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| 397 | }
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| 398 | return false;
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| 399 | }
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| 400 |
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| 401 | void ?{}( chan_read(T) & cr, channel(T) * chan, T * ret ) {
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| 402 | cr.chan = chan;
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| 403 | cr.ret = ret;
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| 404 | }
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| 405 | chan_read(T) ?<<?( T & ret, channel(T) & chan ) { chan_read(T) cr{ &chan, &ret }; return cr; }
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| 406 |
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| 407 | void __handle_select_closed_read( chan_read(T) & this, select_node & node ) with(*this.chan, this) {
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| 408 | __closed_remove( *chan, *ret );
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| 409 | // if we get here then the insert succeeded
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| 410 | __make_select_node_available( node );
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| 411 | }
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| 412 |
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| 413 | bool register_select( chan_read(T) & this, select_node & node ) with(*this.chan, this) {
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| 414 | lock( mutex_lock );
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| 415 | node.extra = ret; // set .extra so that if it == 0p later in on_selected it is due to channel close
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| 416 |
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| 417 | #ifdef CHAN_STATS
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| 418 | if ( ! closed ) c_ops++;
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| 419 | #endif
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| 420 |
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| 421 | if ( ! node.park_counter ) {
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| 422 | // are we special case OR and front of cons is also special case OR
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| 423 | if ( ! unlikely(closed) && ! isEmpty( prods ) && first( prods ).clause_status && ! first( prods ).park_counter ) {
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| 424 | if ( ! __make_select_node_pending( node ) ) {
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| 425 | unlock( mutex_lock );
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| 426 | return false;
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| 427 | }
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| 428 |
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| 429 | if ( __handle_pending( prods, node ) ) {
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| 430 | __prods_handoff( *chan, *ret );
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| 431 | __make_select_node_sat( node ); // need to to mark SAT now that we know operation is done or else threads could get stuck in __mark_select_node
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| 432 | unlock( mutex_lock );
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| 433 | return true;
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| 434 | }
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| 435 | if ( *node.clause_status == __SELECT_PENDING )
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| 436 | __make_select_node_unsat( node );
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| 437 | }
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| 438 | // check if we can complete operation. If so race to establish winner in special OR case
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| 439 | if ( count != 0 || ! isEmpty( prods ) || unlikely(closed) ) {
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| 440 | if ( ! __make_select_node_available( node ) ) { // we didn't win the race so give up on registering
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| 441 | unlock( mutex_lock );
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| 442 | return false;
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| 443 | }
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| 444 | }
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| 445 | }
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| 446 |
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| 447 | if ( unlikely(closed) ) {
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| 448 | unlock( mutex_lock );
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| 449 | __handle_select_closed_read( this, node );
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| 450 | return true;
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| 451 | }
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| 452 |
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| 453 | // have to check for the zero size channel case
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| 454 | ZeroSize:
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| 455 | if ( size == 0 && ! isEmpty( prods ) ) {
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| 456 | if ( ! __handle_waituntil_OR( prods ) ) break ZeroSize;
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| 457 | __prods_handoff( *chan, *ret );
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| 458 | __set_avail_then_unlock( node, mutex_lock );
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| 459 | return true;
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| 460 | }
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| 461 |
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| 462 | // wait if buffer is empty, work will be completed by someone else
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| 463 | if ( count == 0 ) {
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| 464 | #ifdef CHAN_STATS
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| 465 | c_blocks++;
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| 466 | #endif
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[beeff61e] | 467 |
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[6b33e89] | 468 | insert_last( cons, node );
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| 469 | unlock( mutex_lock );
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| 470 | return false;
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| 471 | }
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| 472 |
|
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| 473 | // Remove from buffer
|
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| 474 | __do_remove( *chan, *ret );
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| 475 | __set_avail_then_unlock( node, mutex_lock );
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| 476 | return true;
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| 477 | }
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| 478 | bool unregister_select( chan_read(T) & this, select_node & node ) { return unregister_chan( *this.chan, node ); }
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| 479 | bool on_selected( chan_read(T) & this, select_node & node ) with(this) {
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| 480 | if ( unlikely(node.extra == 0p) ) {
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| 481 | if ( ! exception_in_flight() ) __closed_remove( *chan, *ret ); // check if woken up due to closed channel
|
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| 482 | else return false;
|
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| 483 | }
|
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| 484 | // This is only reachable if not closed or closed exception was handled
|
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| 485 | return true;
|
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| 486 | }
|
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| 487 |
|
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| 488 | void ?{}( chan_read_no_ret(T) & this, channel(T) & chan ) {
|
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| 489 | this.c_read{ &chan, &this.retval };
|
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| 490 | }
|
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| 491 |
|
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| 492 | chan_read_no_ret(T) remove( channel(T) & chan ) { chan_read_no_ret(T) c_read{ chan }; return c_read; }
|
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| 493 | bool register_select( chan_read_no_ret(T) & this, select_node & node ) {
|
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| 494 | this.c_read.ret = &this.retval;
|
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| 495 | return register_select( this.c_read, node );
|
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| 496 | }
|
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| 497 | bool unregister_select( chan_read_no_ret(T) & this, select_node & node ) { return unregister_select( this.c_read, node ); }
|
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| 498 | bool on_selected( chan_read_no_ret(T) & this, select_node & node ) { return on_selected( this.c_read, node ); }
|
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| 499 |
|
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| 500 | void ?{}( chan_write(T) & cw, channel(T) * chan, T elem ) {
|
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| 501 | cw.chan = chan;
|
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| 502 | memcpy( (void *)&cw.elem, (void *)&elem, sizeof(T) );
|
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| 503 | }
|
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| 504 | chan_write(T) ?<<?( channel(T) & chan, T elem ) { chan_write(T) cw{ &chan, elem }; return cw; }
|
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| 505 | chan_write(T) insert( T elem, channel(T) & chan) { chan_write(T) cw{ &chan, elem }; return cw; }
|
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| 506 |
|
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| 507 | void __handle_select_closed_write( chan_write(T) & this, select_node & node ) with(*this.chan, this) {
|
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| 508 | __closed_insert( *chan, elem );
|
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| 509 | // if we get here then the insert succeeded
|
---|
| 510 | __make_select_node_available( node );
|
---|
| 511 | }
|
---|
| 512 |
|
---|
| 513 | bool register_select( chan_write(T) & this, select_node & node ) with(*this.chan, this) {
|
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| 514 | lock( mutex_lock );
|
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| 515 | node.extra = &elem; // set .extra so that if it == 0p later in on_selected it is due to channel close
|
---|
| 516 |
|
---|
| 517 | #ifdef CHAN_STATS
|
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| 518 | if ( ! closed ) p_ops++;
|
---|
| 519 | #endif
|
---|
| 520 |
|
---|
| 521 | // special OR case handling
|
---|
| 522 | if ( ! node.park_counter ) {
|
---|
| 523 | // are we special case OR and front of cons is also special case OR
|
---|
| 524 | if ( ! unlikely(closed) && ! isEmpty( cons ) && first( cons ).clause_status && ! first( cons ).park_counter ) {
|
---|
| 525 | if ( ! __make_select_node_pending( node ) ) {
|
---|
| 526 | unlock( mutex_lock );
|
---|
| 527 | return false;
|
---|
| 528 | }
|
---|
| 529 | if ( __handle_pending( cons, node ) ) {
|
---|
| 530 | __cons_handoff( *chan, elem );
|
---|
| 531 | __make_select_node_sat( node ); // need to to mark SAT now that we know operation is done or else threads could get stuck in __mark_select_node
|
---|
| 532 | unlock( mutex_lock );
|
---|
| 533 | return true;
|
---|
| 534 | }
|
---|
| 535 | if ( *node.clause_status == __SELECT_PENDING )
|
---|
| 536 | __make_select_node_unsat( node );
|
---|
| 537 | }
|
---|
| 538 | // check if we can complete operation. If so race to establish winner in special OR case
|
---|
| 539 | if ( count != size || ! isEmpty( cons ) || unlikely(closed) ) {
|
---|
| 540 | if ( ! __make_select_node_available( node ) ) { // we didn't win the race so give up on registering
|
---|
| 541 | unlock( mutex_lock );
|
---|
| 542 | return false;
|
---|
| 543 | }
|
---|
| 544 | }
|
---|
| 545 | }
|
---|
| 546 |
|
---|
| 547 | // if closed handle
|
---|
| 548 | if ( unlikely(closed) ) {
|
---|
| 549 | unlock( mutex_lock );
|
---|
| 550 | __handle_select_closed_write( this, node );
|
---|
| 551 | return true;
|
---|
| 552 | }
|
---|
| 553 |
|
---|
| 554 | // handle blocked consumer case via handoff (buffer is implicitly empty)
|
---|
| 555 | ConsEmpty:
|
---|
| 556 | if ( ! isEmpty( cons ) ) {
|
---|
| 557 | if ( ! __handle_waituntil_OR( cons ) ) break ConsEmpty;
|
---|
| 558 | __cons_handoff( *chan, elem );
|
---|
| 559 | __set_avail_then_unlock( node, mutex_lock );
|
---|
| 560 | return true;
|
---|
| 561 | }
|
---|
| 562 |
|
---|
| 563 | // insert node in list if buffer is full, work will be completed by someone else
|
---|
| 564 | if ( count == size ) {
|
---|
| 565 | #ifdef CHAN_STATS
|
---|
| 566 | p_blocks++;
|
---|
| 567 | #endif
|
---|
| 568 |
|
---|
| 569 | insert_last( prods, node );
|
---|
| 570 | unlock( mutex_lock );
|
---|
| 571 | return false;
|
---|
| 572 | } // if
|
---|
| 573 |
|
---|
| 574 | // otherwise carry out write either via normal insert
|
---|
| 575 | __buf_insert( *chan, elem );
|
---|
| 576 | __set_avail_then_unlock( node, mutex_lock );
|
---|
| 577 | return true;
|
---|
| 578 | }
|
---|
| 579 | bool unregister_select( chan_write(T) & this, select_node & node ) { return unregister_chan( *this.chan, node ); }
|
---|
| 580 |
|
---|
| 581 | bool on_selected( chan_write(T) & this, select_node & node ) with(this) {
|
---|
| 582 | if ( unlikely(node.extra == 0p) ) {
|
---|
| 583 | if ( ! exception_in_flight() ) __closed_insert( *chan, elem ); // check if woken up due to closed channel
|
---|
| 584 | else return false;
|
---|
| 585 | }
|
---|
| 586 | // This is only reachable if not closed or closed exception was handled
|
---|
| 587 | return true;
|
---|
| 588 | }
|
---|
| 589 | } // distribution
|
---|
[beeff61e] | 590 |
|
---|
| 591 |
|
---|