source: libcfa/src/concurrency/future.hfa@ d60a4c2

Last change on this file since d60a4c2 was 1c0a3a4, checked in by Peter A. Buhr <pabuhr@…>, 10 months ago

fix problem with future seperate compilation

  • Property mode set to 100644
File size: 8.7 KB
Line 
1//
2// Cforall Version 1.0.0 Copyright (C) 2020 University of Waterloo
3//
4// The contents of this file are covered under the licence agreement in the
5// file "LICENCE" distributed with Cforall.
6//
7// concurrency/future.hfa --
8//
9// Author : Thierry Delisle & Peiran Hong & Colby Parsons
10// Created On : Wed Jan 06 17:33:18 2021
11// Last Modified By : Peter A. Buhr
12// Last Modified On : Fri Nov 29 16:07:34 2024
13// Update Count : 30
14//
15
16#pragma once
17
18#include "bits/locks.hfa"
19#include "monitor.hfa"
20#include "select.hfa"
21#include "locks.hfa"
22
23//----------------------------------------------------------------------------
24// future
25// I don't use future_t here as I need to use a lock for this future since it supports multiple consumers.
26// future_t is lockfree and uses atomics which aren't needed given we use locks here
27forall( T ) {
28 enum { FUTURE_EMPTY = 0, FUTURE_FULFILLED = 1 };
29
30 struct future {
31 int state;
32 T result;
33 dlist( select_node ) waiters;
34 futex_mutex lock;
35 };
36 __CFA_SELECT_GET_TYPE( future(T) );
37
38 struct future_node {
39 inline select_node;
40 T * my_result;
41 };
42
43 static inline {
44
45 void ?{}( future_node(T) & this, thread$ * blocked_thread, T * my_result ) {
46 ((select_node &)this){ blocked_thread };
47 this.my_result = my_result;
48 }
49
50 void ?{}( future(T) & this ) {
51 this.waiters{};
52 this.state = FUTURE_EMPTY;
53 this.lock{};
54 }
55
56 // Reset future back to original state
57 void reset( future(T) & this ) with(this)
58 {
59 lock( lock );
60 if( ! waiters`isEmpty )
61 abort("Attempting to reset a future with blocked waiters");
62 state = FUTURE_EMPTY;
63 unlock( lock );
64 }
65
66 // check if the future is available
67 // currently no mutual exclusion because I can't see when you need this call to be synchronous or protected
68 bool available( future(T) & this ) { return __atomic_load_n( &this.state, __ATOMIC_RELAXED ); }
69
70
71 // memcpy wrapper to help copy values
72 void copy_T( T & from, T & to ) {
73 memcpy((void *)&to, (void *)&from, sizeof(T));
74 }
75
76 // internal helper to signal waiters off of the future
77 void _internal_flush( future(T) & this ) with(this) {
78 while( ! waiters`isEmpty ) {
79 if ( !__handle_waituntil_OR( waiters ) ) // handle special waituntil OR case
80 break; // if handle_OR returns false then waiters is empty so break
81 select_node &s = try_pop_front( waiters );
82
83 if ( s.clause_status == 0p ) // poke in result so that woken threads do not need to reacquire any locks
84 copy_T( result, *(((future_node(T) &)s).my_result) );
85
86 wake_one( waiters, s );
87 }
88 }
89
90 // Fulfil the future, returns whether or not someone was unblocked
91 bool fulfil( future(T) & this, T val ) with(this) {
92 lock( lock );
93 if( state != FUTURE_EMPTY )
94 abort("Attempting to fulfil a future that has already been fulfilled");
95
96 copy_T( val, result );
97
98 bool ret_val = ! waiters`isEmpty;
99 state = FUTURE_FULFILLED;
100 _internal_flush( this );
101 unlock( lock );
102 return ret_val;
103 }
104
105 // Wait for the future to be fulfilled
106 // Also return whether the thread had to block or not
107 [T, bool] get( future(T) & this ) with( this ) {
108 lock( lock );
109 T ret_val;
110 if( state == FUTURE_FULFILLED ) {
111 copy_T( result, ret_val );
112 unlock( lock );
113 return [ret_val, false];
114 }
115
116 future_node(T) node = { active_thread(), &ret_val };
117 insert_last( waiters, ((select_node &)node) );
118 unlock( lock );
119 park( );
120
121 return [ret_val, true];
122 }
123
124 // Wait for the future to be fulfilled
125 T get( future(T) & this ) {
126 [T, bool] tt;
127 tt = get(this);
128 return tt.0;
129 }
130
131 // Gets value if it is available and returns [ val, true ]
132 // otherwise returns [ default_val, false]
133 // will not block
134 [T, bool] try_get( future(T) & this ) with(this) {
135 lock( lock );
136 T ret_val;
137 if( state == FUTURE_FULFILLED ) {
138 copy_T( result, ret_val );
139 unlock( lock );
140 return [ret_val, true];
141 }
142 unlock( lock );
143
144 return [ret_val, false];
145 }
146
147 bool register_select( future(T) & this, select_node & s ) with(this) {
148 lock( lock );
149
150 // check if we can complete operation. If so race to establish winner in special OR case
151 if ( !s.park_counter && state != FUTURE_EMPTY ) {
152 if ( !__make_select_node_available( s ) ) { // we didn't win the race so give up on registering
153 unlock( lock );
154 return false;
155 }
156 }
157
158 // future not ready -> insert select node and return
159 if( state == FUTURE_EMPTY ) {
160 insert_last( waiters, s );
161 unlock( lock );
162 return false;
163 }
164
165 __make_select_node_available( s );
166 unlock( lock );
167 return true;
168 }
169
170 bool unregister_select( future(T) & this, select_node & s ) with(this) {
171 if ( ! s`isListed ) return false;
172 lock( lock );
173 if ( s`isListed ) remove( s );
174 unlock( lock );
175 return false;
176 }
177
178 bool on_selected( future(T) & this, select_node & node ) { return true; }
179 }
180}
181
182//--------------------------------------------------------------------------------------------------------
183// These futures below do not support select statements so they may not have as many features as 'future'
184// however the 'single_future' is cheap and cheerful and is most likely more performant than 'future'
185// since it uses raw atomics and no locks
186//
187// As far as 'multi_future' goes I can't see many use cases as it will be less performant than 'future'
188// since it is monitor based and also is not compatible with select statements
189//--------------------------------------------------------------------------------------------------------
190
191forall( T ) {
192 struct single_future {
193 inline future_t;
194 T result;
195 };
196
197 static inline {
198 // Reset future back to original state
199 void reset(single_future(T) & this) { reset( (future_t&)this ); }
200
201 // check if the future is available
202 bool available( single_future(T) & this ) { return available( (future_t&)this ); }
203
204 // Mark the future as abandoned, meaning it will be deleted by the server
205 // This doesn't work beause of the potential need for a destructor
206 void abandon( single_future(T) & this );
207
208 // Fulfil the future, returns whether or not someone was unblocked
209 thread$ * fulfil( single_future(T) & this, T result ) {
210 this.result = result;
211 return fulfil( (future_t&)this );
212 }
213
214 // Wait for the future to be fulfilled
215 // Also return whether the thread had to block or not
216 [T, bool] wait( single_future(T) & this ) {
217 bool r = wait( (future_t&)this );
218 return [this.result, r];
219 }
220
221 // Wait for the future to be fulfilled
222 T wait( single_future(T) & this ) {
223 [T, bool] tt;
224 tt = wait(this);
225 return tt.0;
226 }
227 }
228}
229
230forall( T ) {
231 monitor multi_future {
232 inline future_t;
233 condition blocked;
234 bool has_first;
235 T result;
236 };
237
238 static inline {
239 void ?{}(multi_future(T) & this) {
240 this.has_first = false;
241 }
242
243 bool $first( multi_future(T) & mutex this ) {
244 if (this.has_first) {
245 wait( this.blocked );
246 return false;
247 }
248
249 this.has_first = true;
250 return true;
251 }
252
253 void $first_done( multi_future(T) & mutex this ) {
254 this.has_first = false;
255 signal_all( this.blocked );
256 }
257
258 // Reset future back to original state
259 void reset(multi_future(T) & mutex this) {
260 if( this.has_first != false) abort("Attempting to reset a multi_future with at least one blocked threads");
261 if( !is_empty(this.blocked) ) abort("Attempting to reset a multi_future with multiple blocked threads");
262 reset( (future_t&)this );
263 }
264
265 // Fulfil the future, returns whether or not someone was unblocked
266 bool fulfil( multi_future(T) & this, T result ) {
267 this.result = result;
268 return fulfil( (future_t&)this ) != 0p;
269 }
270
271 // Wait for the future to be fulfilled
272 // Also return whether the thread had to block or not
273 [T, bool] wait( multi_future(T) & this ) {
274 bool sw = $first( this );
275 bool w = !sw;
276 if ( sw ) {
277 w = wait( (future_t&)this );
278 $first_done( this );
279 }
280
281 return [this.result, w];
282 }
283
284 // Wait for the future to be fulfilled
285 T wait( multi_future(T) & this ) {
286 return wait(this).0;
287 }
288 }
289}
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