source: libcfa/src/concurrency/channel.hfa@ a882b68

ADT ast-experimental
Last change on this file since a882b68 was cb69fba, checked in by caparsons <caparson@…>, 2 years ago

did some cleanup of channels

  • Property mode set to 100644
File size: 15.6 KB
Line 
1#pragma once
2
3#include <locks.hfa>
4#include <list.hfa>
5#include <mutex_stmt.hfa>
6#include "select.hfa"
7
8// returns true if woken due to shutdown
9// blocks thread on list and releases passed lock
10static inline bool block( dlist( select_node ) & queue, void * elem_ptr, go_mutex & lock ) {
11 select_node sn{ active_thread(), elem_ptr };
12 insert_last( queue, sn );
13 unlock( lock );
14 park();
15 return sn.extra == 0p;
16}
17
18// Waituntil support (un)register_select helper routine
19// Sets select node avail if not special OR case and then unlocks
20static inline void __set_avail_then_unlock( select_node & node, go_mutex & mutex_lock ) {
21 if ( node.park_counter ) __make_select_node_available( node );
22 unlock( mutex_lock );
23}
24
25// void * used for some fields since exceptions don't work with parametric polymorphism currently
26exception channel_closed {
27 // on failed insert elem is a ptr to the element attempting to be inserted
28 // on failed remove elem ptr is 0p
29 // on resumption of a failed insert this elem will be inserted
30 // so a user may modify it in the resumption handler
31 void * elem;
32
33 // pointer to chan that is closed
34 void * closed_chan;
35};
36vtable(channel_closed) channel_closed_vt;
37
38// #define CHAN_STATS // define this to get channel stats printed in dtor
39
40forall( T ) {
41
42struct __attribute__((aligned(128))) channel {
43 size_t size, front, back, count;
44 T * buffer;
45 dlist( select_node ) prods, cons; // lists of blocked threads
46 go_mutex mutex_lock; // MX lock
47 bool closed; // indicates channel close/open
48 #ifdef CHAN_STATS
49 size_t blocks, operations; // counts total ops and ops resulting in a blocked thd
50 #endif
51};
52
53static inline void ?{}( channel(T) &c, size_t _size ) with(c) {
54 size = _size;
55 front = back = count = 0;
56 if ( size != 0 ) buffer = aalloc( size );
57 prods{};
58 cons{};
59 mutex_lock{};
60 closed = false;
61 #ifdef CHAN_STATS
62 blocks = 0;
63 operations = 0;
64 #endif
65}
66
67static inline void ?{}( channel(T) &c ){ ((channel(T) &)c){ 0 }; }
68static inline void ^?{}( channel(T) &c ) with(c) {
69 #ifdef CHAN_STATS
70 printf("Channel %p Blocks: %lu, Operations: %lu, %.2f%% of ops blocked\n", &c, blocks, operations, ((double)blocks)/operations * 100);
71 #endif
72 verifyf( cons`isEmpty && prods`isEmpty, "Attempted to delete channel with waiting threads (Deadlock).\n" );
73 if ( size != 0 ) delete( buffer );
74}
75static inline size_t get_count( channel(T) & chan ) with(chan) { return count; }
76static inline size_t get_size( channel(T) & chan ) with(chan) { return size; }
77static inline bool has_waiters( channel(T) & chan ) with(chan) { return !cons`isEmpty || !prods`isEmpty; }
78static inline bool has_waiting_consumers( channel(T) & chan ) with(chan) { return !cons`isEmpty; }
79static inline bool has_waiting_producers( channel(T) & chan ) with(chan) { return !prods`isEmpty; }
80
81// closes the channel and notifies all blocked threads
82static inline void close( channel(T) & chan ) with(chan) {
83 lock( mutex_lock );
84 closed = true;
85
86 // flush waiting consumers and producers
87 while ( has_waiting_consumers( chan ) ) {
88 if( !__handle_waituntil_OR( cons ) ) // ensure we only signal special OR case threads when they win the race
89 break; // if __handle_waituntil_OR returns false cons is empty so break
90 cons`first.extra = 0p;
91 wake_one( cons );
92 }
93 while ( has_waiting_producers( chan ) ) {
94 if( !__handle_waituntil_OR( prods ) ) // ensure we only signal special OR case threads when they win the race
95 break; // if __handle_waituntil_OR returns false prods is empty so break
96 prods`first.extra = 0p;
97 wake_one( prods );
98 }
99 unlock(mutex_lock);
100}
101
102static inline void is_closed( channel(T) & chan ) with(chan) { return closed; }
103
104// used to hand an element to a blocked consumer and signal it
105static inline void __cons_handoff( channel(T) & chan, T & elem ) with(chan) {
106 memcpy( cons`first.extra, (void *)&elem, sizeof(T) ); // do waiting consumer work
107 wake_one( cons );
108}
109
110// used to hand an element to a blocked producer and signal it
111static inline void __prods_handoff( channel(T) & chan, T & retval ) with(chan) {
112 memcpy( (void *)&retval, prods`first.extra, sizeof(T) );
113 wake_one( prods );
114}
115
116static inline void flush( channel(T) & chan, T elem ) with(chan) {
117 lock( mutex_lock );
118 while ( count == 0 && !cons`isEmpty ) {
119 __cons_handoff( chan, elem );
120 }
121 unlock( mutex_lock );
122}
123
124// handles buffer insert
125static inline void __buf_insert( channel(T) & chan, T & elem ) with(chan) {
126 memcpy( (void *)&buffer[back], (void *)&elem, sizeof(T) );
127 count += 1;
128 back++;
129 if ( back == size ) back = 0;
130}
131
132// needed to avoid an extra copy in closed case
133static inline bool __internal_try_insert( channel(T) & chan, T & elem ) with(chan) {
134 lock( mutex_lock );
135 #ifdef CHAN_STATS
136 operations++;
137 #endif
138
139 ConsEmpty: if ( !cons`isEmpty ) {
140 if ( !__handle_waituntil_OR( cons ) ) break ConsEmpty;
141 __cons_handoff( chan, elem );
142 unlock( mutex_lock );
143 return true;
144 }
145
146 if ( count == size ) { unlock( mutex_lock ); return false; }
147
148 __buf_insert( chan, elem );
149 unlock( mutex_lock );
150 return true;
151}
152
153// attempts a nonblocking insert
154// returns true if insert was successful, false otherwise
155static inline bool try_insert( channel(T) & chan, T elem ) { return __internal_try_insert( chan, elem ); }
156
157// handles closed case of insert routine
158static inline void __closed_insert( channel(T) & chan, T & elem ) with(chan) {
159 channel_closed except{ &channel_closed_vt, &elem, &chan };
160 throwResume except; // throw closed resumption
161 if ( !__internal_try_insert( chan, elem ) ) throw except; // if try to insert fails (would block), throw termination
162}
163
164static inline void insert( channel(T) & chan, T elem ) with(chan) {
165 // check for close before acquire mx
166 if ( unlikely(closed) ) {
167 __closed_insert( chan, elem );
168 return;
169 }
170
171 lock( mutex_lock );
172
173 #ifdef CHAN_STATS
174 if ( !closed ) operations++;
175 #endif
176
177 // if closed handle
178 if ( unlikely(closed) ) {
179 unlock( mutex_lock );
180 __closed_insert( chan, elem );
181 return;
182 }
183
184 // buffer count must be zero if cons are blocked (also handles zero-size case)
185 ConsEmpty: if ( !cons`isEmpty ) {
186 if ( !__handle_waituntil_OR( cons ) ) break ConsEmpty;
187 __cons_handoff( chan, elem );
188 unlock( mutex_lock );
189 return;
190 }
191
192 // wait if buffer is full, work will be completed by someone else
193 if ( count == size ) {
194 #ifdef CHAN_STATS
195 blocks++;
196 #endif
197
198 // check for if woken due to close
199 if ( unlikely( block( prods, &elem, mutex_lock ) ) )
200 __closed_insert( chan, elem );
201 return;
202 } // if
203
204 __buf_insert( chan, elem );
205 unlock( mutex_lock );
206}
207
208// does the buffer remove and potentially does waiting producer work
209static inline void __do_remove( channel(T) & chan, T & retval ) with(chan) {
210 memcpy( (void *)&retval, (void *)&buffer[front], sizeof(T) );
211 count -= 1;
212 front = (front + 1) % size;
213 if (count == size - 1 && !prods`isEmpty ) {
214 if ( !__handle_waituntil_OR( prods ) ) return;
215 __buf_insert( chan, *(T *)prods`first.extra ); // do waiting producer work
216 wake_one( prods );
217 }
218}
219
220// needed to avoid an extra copy in closed case and single return val case
221static inline bool __internal_try_remove( channel(T) & chan, T & retval ) with(chan) {
222 lock( mutex_lock );
223 #ifdef CHAN_STATS
224 operations++;
225 #endif
226
227 ZeroSize: if ( size == 0 && !prods`isEmpty ) {
228 if ( !__handle_waituntil_OR( prods ) ) break ZeroSize;
229 __prods_handoff( chan, retval );
230 unlock( mutex_lock );
231 return true;
232 }
233
234 if ( count == 0 ) { unlock( mutex_lock ); return false; }
235
236 __do_remove( chan, retval );
237 unlock( mutex_lock );
238 return true;
239}
240
241// attempts a nonblocking remove
242// returns [T, true] if insert was successful
243// returns [T, false] if insert was successful (T uninit)
244static inline [T, bool] try_remove( channel(T) & chan ) {
245 T retval;
246 bool success = __internal_try_remove( chan, retval );
247 return [ retval, success ];
248}
249
250static inline T try_remove( channel(T) & chan ) {
251 T retval;
252 __internal_try_remove( chan, retval );
253 return retval;
254}
255
256// handles closed case of insert routine
257static inline void __closed_remove( channel(T) & chan, T & retval ) with(chan) {
258 channel_closed except{ &channel_closed_vt, 0p, &chan };
259 throwResume except; // throw resumption
260 if ( !__internal_try_remove( chan, retval ) ) throw except; // if try to remove fails (would block), throw termination
261}
262
263static inline T remove( channel(T) & chan ) with(chan) {
264 T retval;
265 if ( unlikely(closed) ) {
266 __closed_remove( chan, retval );
267 return retval;
268 }
269 lock( mutex_lock );
270
271 #ifdef CHAN_STATS
272 if ( !closed ) operations++;
273 #endif
274
275 if ( unlikely(closed) ) {
276 unlock( mutex_lock );
277 __closed_remove( chan, retval );
278 return retval;
279 }
280
281 // have to check for the zero size channel case
282 ZeroSize: if ( size == 0 && !prods`isEmpty ) {
283 if ( !__handle_waituntil_OR( prods ) ) break ZeroSize;
284 __prods_handoff( chan, retval );
285 unlock( mutex_lock );
286 return retval;
287 }
288
289 // wait if buffer is empty, work will be completed by someone else
290 if ( count == 0 ) {
291 #ifdef CHAN_STATS
292 blocks++;
293 #endif
294 // check for if woken due to close
295 if ( unlikely( block( cons, &retval, mutex_lock ) ) )
296 __closed_remove( chan, retval );
297 return retval;
298 }
299
300 // Remove from buffer
301 __do_remove( chan, retval );
302 unlock( mutex_lock );
303 return retval;
304}
305
306///////////////////////////////////////////////////////////////////////////////////////////
307// The following is support for waituntil (select) statements
308///////////////////////////////////////////////////////////////////////////////////////////
309static inline bool unregister_chan( channel(T) & chan, select_node & node ) with(chan) {
310 if ( !node`isListed && !node.park_counter ) return false; // handle special OR case
311 lock( mutex_lock );
312 if ( node`isListed ) { // op wasn't performed
313 #ifdef CHAN_STATS
314 operations--;
315 #endif
316 remove( node );
317 unlock( mutex_lock );
318 return false;
319 }
320 unlock( mutex_lock );
321
322 // only return true when not special OR case, not exceptional calse and status is SAT
323 return ( node.extra == 0p || !node.park_counter ) ? false : *node.clause_status == __SELECT_SAT;
324}
325
326// type used by select statement to capture a chan read as the selected operation
327struct chan_read {
328 T & ret;
329 channel(T) & chan;
330};
331
332static inline void ?{}( chan_read(T) & cr, channel(T) & chan, T & ret ) {
333 &cr.chan = &chan;
334 &cr.ret = &ret;
335}
336static inline chan_read(T) ?<<?( T & ret, channel(T) & chan ) { chan_read(T) cr{ chan, ret }; return cr; }
337
338static inline void __handle_select_closed_read( chan_read(T) & this, select_node & node ) with(this.chan, this) {
339 __closed_remove( chan, ret );
340 // if we get here then the insert succeeded
341 __make_select_node_available( node );
342}
343
344static inline bool register_select( chan_read(T) & this, select_node & node ) with(this.chan, this) {
345 lock( mutex_lock );
346 node.extra = &ret; // set .extra so that if it == 0p later in on_selected it is due to channel close
347
348 #ifdef CHAN_STATS
349 if ( !closed ) operations++;
350 #endif
351
352 // check if we can complete operation. If so race to establish winner in special OR case
353 if ( !node.park_counter && ( count != 0 || !prods`isEmpty || unlikely(closed) ) ) {
354 if ( !__make_select_node_available( node ) ) { // we didn't win the race so give up on registering
355 unlock( mutex_lock );
356 return false;
357 }
358 }
359
360 if ( unlikely(closed) ) {
361 unlock( mutex_lock );
362 __handle_select_closed_read( this, node );
363 return true;
364 }
365
366 // have to check for the zero size channel case
367 ZeroSize: if ( size == 0 && !prods`isEmpty ) {
368 if ( !__handle_waituntil_OR( prods ) ) break ZeroSize;
369 __prods_handoff( chan, ret );
370 __set_avail_then_unlock( node, mutex_lock );
371 return true;
372 }
373
374 // wait if buffer is empty, work will be completed by someone else
375 if ( count == 0 ) {
376 #ifdef CHAN_STATS
377 blocks++;
378 #endif
379
380 insert_last( cons, node );
381 unlock( mutex_lock );
382 return false;
383 }
384
385 // Remove from buffer
386 __do_remove( chan, ret );
387 __set_avail_then_unlock( node, mutex_lock );
388 return true;
389}
390static inline bool unregister_select( chan_read(T) & this, select_node & node ) { return unregister_chan( this.chan, node ); }
391static inline bool on_selected( chan_read(T) & this, select_node & node ) with(this) {
392 if ( node.extra == 0p ) // check if woken up due to closed channel
393 __closed_remove( chan, ret );
394 // This is only reachable if not closed or closed exception was handled
395 return true;
396}
397
398// type used by select statement to capture a chan write as the selected operation
399struct chan_write {
400 T elem;
401 channel(T) & chan;
402};
403
404static inline void ?{}( chan_write(T) & cw, channel(T) & chan, T elem ) {
405 &cw.chan = &chan;
406 memcpy( (void *)&cw.elem, (void *)&elem, sizeof(T) );
407}
408static inline chan_write(T) ?>>?( T elem, channel(T) & chan ) { chan_write(T) cw{ chan, elem }; return cw; }
409
410static inline void __handle_select_closed_write( chan_write(T) & this, select_node & node ) with(this.chan, this) {
411 __closed_insert( chan, elem );
412 // if we get here then the insert succeeded
413 __make_select_node_available( node );
414}
415
416static inline bool register_select( chan_write(T) & this, select_node & node ) with(this.chan, this) {
417 lock( mutex_lock );
418 node.extra = &elem; // set .extra so that if it == 0p later in on_selected it is due to channel close
419
420 #ifdef CHAN_STATS
421 if ( !closed ) operations++;
422 #endif
423
424 // check if we can complete operation. If so race to establish winner in special OR case
425 if ( !node.park_counter && ( count != size || !cons`isEmpty || unlikely(closed) ) ) {
426 if ( !__make_select_node_available( node ) ) { // we didn't win the race so give up on registering
427 unlock( mutex_lock );
428 return false;
429 }
430 }
431
432 // if closed handle
433 if ( unlikely(closed) ) {
434 unlock( mutex_lock );
435 __handle_select_closed_write( this, node );
436 return true;
437 }
438
439 // handle blocked consumer case via handoff (buffer is implicitly empty)
440 ConsEmpty: if ( !cons`isEmpty ) {
441 if ( !__handle_waituntil_OR( cons ) ) break ConsEmpty;
442 __cons_handoff( chan, elem );
443 __set_avail_then_unlock( node, mutex_lock );
444 return true;
445 }
446
447 // insert node in list if buffer is full, work will be completed by someone else
448 if ( count == size ) {
449 #ifdef CHAN_STATS
450 blocks++;
451 #endif
452
453 insert_last( prods, node );
454 unlock( mutex_lock );
455 return false;
456 } // if
457
458 // otherwise carry out write either via normal insert
459 __buf_insert( chan, elem );
460 __set_avail_then_unlock( node, mutex_lock );
461 return true;
462}
463static inline bool unregister_select( chan_write(T) & this, select_node & node ) { return unregister_chan( this.chan, node ); }
464
465static inline bool on_selected( chan_write(T) & this, select_node & node ) with(this) {
466 if ( node.extra == 0p ) // check if woken up due to closed channel
467 __closed_insert( chan, elem );
468
469 // This is only reachable if not closed or closed exception was handled
470 return true;
471}
472
473
474} // forall( T )
475
476
477
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