source: mainline/uspace/lib/c/generic/async/client.c

Last change on this file was ccbd2e1, checked in by Jiri Svoboda <jiri@…>, 5 years ago

Assert ipc_hangup succeeded. Do not hang up twice.

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File size: 37.2 KB
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1/*
2 * Copyright (c) 2006 Ondrej Palkovsky
3 * All rights reserved.
4 *
5 * Redistribution and use in source and binary forms, with or without
6 * modification, are permitted provided that the following conditions
7 * are met:
8 *
9 * - Redistributions of source code must retain the above copyright
10 * notice, this list of conditions and the following disclaimer.
11 * - Redistributions in binary form must reproduce the above copyright
12 * notice, this list of conditions and the following disclaimer in the
13 * documentation and/or other materials provided with the distribution.
14 * - The name of the author may not be used to endorse or promote products
15 * derived from this software without specific prior written permission.
16 *
17 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
18 * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
19 * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
20 * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
21 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
22 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
23 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
24 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
25 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
26 * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
27 */
28
29/** @addtogroup libc
30 * @{
31 */
32/** @file
33 */
34
35/**
36 * Asynchronous library
37 *
38 * The aim of this library is to provide a facility for writing programs which
39 * utilize the asynchronous nature of HelenOS IPC, yet using a normal way of
40 * programming.
41 *
42 * You should be able to write very simple multithreaded programs. The async
43 * framework will automatically take care of most of the synchronization
44 * problems.
45 *
46 * Example of use (pseudo C):
47 *
48 * 1) Multithreaded client application
49 *
50 * fibril_create(fibril1, ...);
51 * fibril_create(fibril2, ...);
52 * ...
53 *
54 * int fibril1(void *arg)
55 * {
56 * conn = async_connect_me_to(...);
57 *
58 * exch = async_exchange_begin(conn);
59 * c1 = async_send(exch);
60 * async_exchange_end(exch);
61 *
62 * exch = async_exchange_begin(conn);
63 * c2 = async_send(exch);
64 * async_exchange_end(exch);
65 *
66 * async_wait_for(c1);
67 * async_wait_for(c2);
68 * ...
69 * }
70 *
71 *
72 * 2) Multithreaded server application
73 *
74 * main()
75 * {
76 * async_manager();
77 * }
78 *
79 * port_handler(ichandle, *icall)
80 * {
81 * if (want_refuse) {
82 * async_answer_0(ichandle, ELIMIT);
83 * return;
84 * }
85 * async_answer_0(ichandle, EOK);
86 *
87 * chandle = async_get_call(&call);
88 * somehow_handle_the_call(chandle, call);
89 * async_answer_2(chandle, 1, 2, 3);
90 *
91 * chandle = async_get_call(&call);
92 * ...
93 * }
94 *
95 */
96
97#define _LIBC_ASYNC_C_
98#include <ipc/ipc.h>
99#include <async.h>
100#include "../private/async.h"
101#include "../private/ns.h"
102#undef _LIBC_ASYNC_C_
103
104#include <ipc/irq.h>
105#include <ipc/event.h>
106#include <fibril.h>
107#include <adt/hash_table.h>
108#include <adt/hash.h>
109#include <adt/list.h>
110#include <assert.h>
111#include <errno.h>
112#include <time.h>
113#include <barrier.h>
114#include <stdbool.h>
115#include <stdlib.h>
116#include <mem.h>
117#include <stdlib.h>
118#include <macros.h>
119#include <as.h>
120#include <abi/mm/as.h>
121#include "../private/libc.h"
122#include "../private/fibril.h"
123
124static fibril_rmutex_t message_mutex;
125
126/** Naming service session */
127async_sess_t session_ns;
128
129/** Message data */
130typedef struct {
131 fibril_event_t received;
132
133 /** If reply was received. */
134 bool done;
135
136 /** If the message / reply should be discarded on arrival. */
137 bool forget;
138
139 /** Pointer to where the answer data is stored. */
140 ipc_call_t *dataptr;
141
142 errno_t retval;
143} amsg_t;
144
145static amsg_t *amsg_create(void)
146{
147 return calloc(1, sizeof(amsg_t));
148}
149
150static void amsg_destroy(amsg_t *msg)
151{
152 free(msg);
153}
154
155/** Mutex protecting inactive_exch_list and avail_phone_cv.
156 *
157 */
158static FIBRIL_MUTEX_INITIALIZE(async_sess_mutex);
159
160/** List of all currently inactive exchanges.
161 *
162 */
163static LIST_INITIALIZE(inactive_exch_list);
164
165/** Condition variable to wait for a phone to become available.
166 *
167 */
168static FIBRIL_CONDVAR_INITIALIZE(avail_phone_cv);
169
170/** Initialize the async framework.
171 *
172 */
173void __async_client_init(void)
174{
175 if (fibril_rmutex_initialize(&message_mutex) != EOK)
176 abort();
177
178 session_ns.iface = 0;
179 session_ns.mgmt = EXCHANGE_ATOMIC;
180 session_ns.phone = PHONE_NS;
181 session_ns.arg1 = 0;
182 session_ns.arg2 = 0;
183 session_ns.arg3 = 0;
184
185 fibril_mutex_initialize(&session_ns.remote_state_mtx);
186 session_ns.remote_state_data = NULL;
187
188 list_initialize(&session_ns.exch_list);
189 fibril_mutex_initialize(&session_ns.mutex);
190 session_ns.exchanges = 0;
191}
192
193void __async_client_fini(void)
194{
195 fibril_rmutex_destroy(&message_mutex);
196}
197
198/** Reply received callback.
199 *
200 * This function is called whenever a reply for an asynchronous message sent out
201 * by the asynchronous framework is received.
202 *
203 * Notify the fibril which is waiting for this message that it has arrived.
204 *
205 * @param arg Pointer to the asynchronous message record.
206 * @param retval Value returned in the answer.
207 * @param data Call data of the answer.
208 *
209 */
210void async_reply_received(ipc_call_t *data)
211{
212 amsg_t *msg = (amsg_t *) data->answer_label;
213 if (!msg)
214 return;
215
216 fibril_rmutex_lock(&message_mutex);
217
218 msg->retval = ipc_get_retval(data);
219
220 /* Copy data inside lock, just in case the call was detached */
221 if ((msg->dataptr) && (data))
222 *msg->dataptr = *data;
223
224 msg->done = true;
225
226 if (msg->forget) {
227 amsg_destroy(msg);
228 } else {
229 fibril_notify(&msg->received);
230 }
231
232 fibril_rmutex_unlock(&message_mutex);
233}
234
235/** Send message and return id of the sent message.
236 *
237 * The return value can be used as input for async_wait() to wait for
238 * completion.
239 *
240 * @param exch Exchange for sending the message.
241 * @param imethod Service-defined interface and method.
242 * @param arg1 Service-defined payload argument.
243 * @param arg2 Service-defined payload argument.
244 * @param arg3 Service-defined payload argument.
245 * @param arg4 Service-defined payload argument.
246 * @param dataptr If non-NULL, storage where the reply data will be stored.
247 *
248 * @return Hash of the sent message or 0 on error.
249 *
250 */
251static aid_t async_send_fast(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
252 sysarg_t arg2, sysarg_t arg3, sysarg_t arg4, ipc_call_t *dataptr)
253{
254 if (exch == NULL)
255 return 0;
256
257 amsg_t *msg = amsg_create();
258 if (msg == NULL)
259 return 0;
260
261 msg->dataptr = dataptr;
262
263 errno_t rc = ipc_call_async_4(exch->phone, imethod, arg1, arg2, arg3,
264 arg4, msg);
265 if (rc != EOK) {
266 msg->retval = rc;
267 msg->done = true;
268 }
269
270 return (aid_t) msg;
271}
272
273/** Send message and return id of the sent message
274 *
275 * The return value can be used as input for async_wait() to wait for
276 * completion.
277 *
278 * @param exch Exchange for sending the message.
279 * @param imethod Service-defined interface and method.
280 * @param arg1 Service-defined payload argument.
281 * @param arg2 Service-defined payload argument.
282 * @param arg3 Service-defined payload argument.
283 * @param arg4 Service-defined payload argument.
284 * @param arg5 Service-defined payload argument.
285 * @param dataptr If non-NULL, storage where the reply data will be
286 * stored.
287 *
288 * @return Hash of the sent message or 0 on error.
289 *
290 */
291static aid_t async_send_slow(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
292 sysarg_t arg2, sysarg_t arg3, sysarg_t arg4, sysarg_t arg5,
293 ipc_call_t *dataptr)
294{
295 if (exch == NULL)
296 return 0;
297
298 amsg_t *msg = amsg_create();
299 if (msg == NULL)
300 return 0;
301
302 msg->dataptr = dataptr;
303
304 errno_t rc = ipc_call_async_5(exch->phone, imethod, arg1, arg2, arg3,
305 arg4, arg5, msg);
306 if (rc != EOK) {
307 msg->retval = rc;
308 msg->done = true;
309 }
310
311 return (aid_t) msg;
312}
313
314aid_t async_send_0(async_exch_t *exch, sysarg_t imethod, ipc_call_t *dataptr)
315{
316 return async_send_fast(exch, imethod, 0, 0, 0, 0, dataptr);
317}
318
319aid_t async_send_1(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
320 ipc_call_t *dataptr)
321{
322 return async_send_fast(exch, imethod, arg1, 0, 0, 0, dataptr);
323}
324
325aid_t async_send_2(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
326 sysarg_t arg2, ipc_call_t *dataptr)
327{
328 return async_send_fast(exch, imethod, arg1, arg2, 0, 0, dataptr);
329}
330
331aid_t async_send_3(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
332 sysarg_t arg2, sysarg_t arg3, ipc_call_t *dataptr)
333{
334 return async_send_fast(exch, imethod, arg1, arg2, arg3, 0, dataptr);
335}
336
337aid_t async_send_4(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
338 sysarg_t arg2, sysarg_t arg3, sysarg_t arg4, ipc_call_t *dataptr)
339{
340 return async_send_fast(exch, imethod, arg1, arg2, arg3, arg4, dataptr);
341}
342
343aid_t async_send_5(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
344 sysarg_t arg2, sysarg_t arg3, sysarg_t arg4, sysarg_t arg5,
345 ipc_call_t *dataptr)
346{
347 return async_send_slow(exch, imethod, arg1, arg2, arg3, arg4, arg5,
348 dataptr);
349}
350
351/** Wait for a message sent by the async framework.
352 *
353 * @param amsgid Hash of the message to wait for.
354 * @param retval Pointer to storage where the retval of the answer will
355 * be stored.
356 *
357 */
358void async_wait_for(aid_t amsgid, errno_t *retval)
359{
360 if (amsgid == 0) {
361 if (retval)
362 *retval = ENOMEM;
363 return;
364 }
365
366 amsg_t *msg = (amsg_t *) amsgid;
367 fibril_wait_for(&msg->received);
368
369 if (retval)
370 *retval = msg->retval;
371
372 amsg_destroy(msg);
373}
374
375/** Wait for a message sent by the async framework, timeout variant.
376 *
377 * If the wait times out, the caller may choose to either wait again by calling
378 * async_wait_for() or async_wait_timeout(), or forget the message via
379 * async_forget().
380 *
381 * @param amsgid Hash of the message to wait for.
382 * @param retval Pointer to storage where the retval of the answer will
383 * be stored.
384 * @param timeout Timeout in microseconds.
385 *
386 * @return Zero on success, ETIMEOUT if the timeout has expired.
387 *
388 */
389errno_t async_wait_timeout(aid_t amsgid, errno_t *retval, usec_t timeout)
390{
391 if (amsgid == 0) {
392 if (retval)
393 *retval = ENOMEM;
394 return EOK;
395 }
396
397 amsg_t *msg = (amsg_t *) amsgid;
398
399 /*
400 * Negative timeout is converted to zero timeout to avoid
401 * using tv_add with negative augmenter.
402 */
403 if (timeout < 0)
404 timeout = 0;
405
406 struct timespec expires;
407 getuptime(&expires);
408 ts_add_diff(&expires, USEC2NSEC(timeout));
409
410 errno_t rc = fibril_wait_timeout(&msg->received, &expires);
411 if (rc != EOK)
412 return rc;
413
414 if (retval)
415 *retval = msg->retval;
416
417 amsg_destroy(msg);
418
419 return EOK;
420}
421
422/** Discard the message / reply on arrival.
423 *
424 * The message will be marked to be discarded once the reply arrives in
425 * reply_received(). It is not allowed to call async_wait_for() or
426 * async_wait_timeout() on this message after a call to this function.
427 *
428 * @param amsgid Hash of the message to forget.
429 */
430void async_forget(aid_t amsgid)
431{
432 if (amsgid == 0)
433 return;
434
435 amsg_t *msg = (amsg_t *) amsgid;
436
437 assert(!msg->forget);
438
439 fibril_rmutex_lock(&message_mutex);
440
441 if (msg->done) {
442 amsg_destroy(msg);
443 } else {
444 msg->dataptr = NULL;
445 msg->forget = true;
446 }
447
448 fibril_rmutex_unlock(&message_mutex);
449}
450
451/** Pseudo-synchronous message sending - fast version.
452 *
453 * Send message asynchronously and return only after the reply arrives.
454 *
455 * This function can only transfer 4 register payload arguments. For
456 * transferring more arguments, see the slower async_req_slow().
457 *
458 * @param exch Exchange for sending the message.
459 * @param imethod Interface and method of the call.
460 * @param arg1 Service-defined payload argument.
461 * @param arg2 Service-defined payload argument.
462 * @param arg3 Service-defined payload argument.
463 * @param arg4 Service-defined payload argument.
464 * @param r1 If non-NULL, storage for the 1st reply argument.
465 * @param r2 If non-NULL, storage for the 2nd reply argument.
466 * @param r3 If non-NULL, storage for the 3rd reply argument.
467 * @param r4 If non-NULL, storage for the 4th reply argument.
468 * @param r5 If non-NULL, storage for the 5th reply argument.
469 *
470 * @return Return code of the reply or an error code.
471 *
472 */
473static errno_t async_req_fast(async_exch_t *exch, sysarg_t imethod,
474 sysarg_t arg1, sysarg_t arg2, sysarg_t arg3, sysarg_t arg4,
475 sysarg_t *r1, sysarg_t *r2, sysarg_t *r3, sysarg_t *r4, sysarg_t *r5)
476{
477 if (exch == NULL)
478 return ENOENT;
479
480 ipc_call_t result;
481 aid_t aid = async_send_4(exch, imethod, arg1, arg2, arg3, arg4,
482 &result);
483
484 errno_t rc;
485 async_wait_for(aid, &rc);
486
487 if (r1)
488 *r1 = ipc_get_arg1(&result);
489
490 if (r2)
491 *r2 = ipc_get_arg2(&result);
492
493 if (r3)
494 *r3 = ipc_get_arg3(&result);
495
496 if (r4)
497 *r4 = ipc_get_arg4(&result);
498
499 if (r5)
500 *r5 = ipc_get_arg5(&result);
501
502 return rc;
503}
504
505/** Pseudo-synchronous message sending - slow version.
506 *
507 * Send message asynchronously and return only after the reply arrives.
508 *
509 * @param exch Exchange for sending the message.
510 * @param imethod Interface and method of the call.
511 * @param arg1 Service-defined payload argument.
512 * @param arg2 Service-defined payload argument.
513 * @param arg3 Service-defined payload argument.
514 * @param arg4 Service-defined payload argument.
515 * @param arg5 Service-defined payload argument.
516 * @param r1 If non-NULL, storage for the 1st reply argument.
517 * @param r2 If non-NULL, storage for the 2nd reply argument.
518 * @param r3 If non-NULL, storage for the 3rd reply argument.
519 * @param r4 If non-NULL, storage for the 4th reply argument.
520 * @param r5 If non-NULL, storage for the 5th reply argument.
521 *
522 * @return Return code of the reply or an error code.
523 *
524 */
525static errno_t async_req_slow(async_exch_t *exch, sysarg_t imethod,
526 sysarg_t arg1, sysarg_t arg2, sysarg_t arg3, sysarg_t arg4, sysarg_t arg5,
527 sysarg_t *r1, sysarg_t *r2, sysarg_t *r3, sysarg_t *r4, sysarg_t *r5)
528{
529 if (exch == NULL)
530 return ENOENT;
531
532 ipc_call_t result;
533 aid_t aid = async_send_5(exch, imethod, arg1, arg2, arg3, arg4, arg5,
534 &result);
535
536 errno_t rc;
537 async_wait_for(aid, &rc);
538
539 if (r1)
540 *r1 = ipc_get_arg1(&result);
541
542 if (r2)
543 *r2 = ipc_get_arg2(&result);
544
545 if (r3)
546 *r3 = ipc_get_arg3(&result);
547
548 if (r4)
549 *r4 = ipc_get_arg4(&result);
550
551 if (r5)
552 *r5 = ipc_get_arg5(&result);
553
554 return rc;
555}
556
557errno_t async_req_0_0(async_exch_t *exch, sysarg_t imethod)
558{
559 return async_req_fast(exch, imethod, 0, 0, 0, 0, NULL, NULL, NULL, NULL,
560 NULL);
561}
562
563errno_t async_req_0_1(async_exch_t *exch, sysarg_t imethod, sysarg_t *r1)
564{
565 return async_req_fast(exch, imethod, 0, 0, 0, 0, r1, NULL, NULL, NULL,
566 NULL);
567}
568
569errno_t async_req_0_2(async_exch_t *exch, sysarg_t imethod, sysarg_t *r1,
570 sysarg_t *r2)
571{
572 return async_req_fast(exch, imethod, 0, 0, 0, 0, r1, r2, NULL, NULL, NULL);
573}
574
575errno_t async_req_0_3(async_exch_t *exch, sysarg_t imethod, sysarg_t *r1,
576 sysarg_t *r2, sysarg_t *r3)
577{
578 return async_req_fast(exch, imethod, 0, 0, 0, 0, r1, r2, r3, NULL, NULL);
579}
580
581errno_t async_req_0_4(async_exch_t *exch, sysarg_t imethod, sysarg_t *r1,
582 sysarg_t *r2, sysarg_t *r3, sysarg_t *r4)
583{
584 return async_req_fast(exch, imethod, 0, 0, 0, 0, r1, r2, r3, r4, NULL);
585}
586
587errno_t async_req_0_5(async_exch_t *exch, sysarg_t imethod, sysarg_t *r1,
588 sysarg_t *r2, sysarg_t *r3, sysarg_t *r4, sysarg_t *r5)
589{
590 return async_req_fast(exch, imethod, 0, 0, 0, 0, r1, r2, r3, r4, r5);
591}
592
593errno_t async_req_1_0(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1)
594{
595 return async_req_fast(exch, imethod, arg1, 0, 0, 0, NULL, NULL, NULL, NULL,
596 NULL);
597}
598
599errno_t async_req_1_1(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
600 sysarg_t *r1)
601{
602 return async_req_fast(exch, imethod, arg1, 0, 0, 0, r1, NULL, NULL, NULL,
603 NULL);
604}
605
606errno_t async_req_1_2(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
607 sysarg_t *r1, sysarg_t *r2)
608{
609 return async_req_fast(exch, imethod, arg1, 0, 0, 0, r1, r2, NULL, NULL,
610 NULL);
611}
612
613errno_t async_req_1_3(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
614 sysarg_t *r1, sysarg_t *r2, sysarg_t *r3)
615{
616 return async_req_fast(exch, imethod, arg1, 0, 0, 0, r1, r2, r3, NULL,
617 NULL);
618}
619
620errno_t async_req_1_4(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
621 sysarg_t *r1, sysarg_t *r2, sysarg_t *r3, sysarg_t *r4)
622{
623 return async_req_fast(exch, imethod, arg1, 0, 0, 0, r1, r2, r3, r4, NULL);
624}
625
626errno_t async_req_1_5(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
627 sysarg_t *r1, sysarg_t *r2, sysarg_t *r3, sysarg_t *r4, sysarg_t *r5)
628{
629 return async_req_fast(exch, imethod, arg1, 0, 0, 0, r1, r2, r3, r4, r5);
630}
631
632errno_t async_req_2_0(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
633 sysarg_t arg2)
634{
635 return async_req_fast(exch, imethod, arg1, arg2, 0, 0, NULL, NULL, NULL,
636 NULL, NULL);
637}
638
639errno_t async_req_2_1(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
640 sysarg_t arg2, sysarg_t *r1)
641{
642 return async_req_fast(exch, imethod, arg1, arg2, 0, 0, r1, NULL, NULL,
643 NULL, NULL);
644}
645
646errno_t async_req_2_2(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
647 sysarg_t arg2, sysarg_t *r1, sysarg_t *r2)
648{
649 return async_req_fast(exch, imethod, arg1, arg2, 0, 0, r1, r2, NULL,
650 NULL, NULL);
651}
652
653errno_t async_req_2_3(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
654 sysarg_t arg2, sysarg_t *r1, sysarg_t *r2, sysarg_t *r3)
655{
656 return async_req_fast(exch, imethod, arg1, arg2, 0, 0, r1, r2, r3, NULL,
657 NULL);
658}
659
660errno_t async_req_2_4(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
661 sysarg_t arg2, sysarg_t *r1, sysarg_t *r2, sysarg_t *r3, sysarg_t *r4)
662{
663 return async_req_fast(exch, imethod, arg1, arg2, 0, 0, r1, r2, r3, r4,
664 NULL);
665}
666
667errno_t async_req_2_5(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
668 sysarg_t arg2, sysarg_t *r1, sysarg_t *r2, sysarg_t *r3, sysarg_t *r4, sysarg_t *r5)
669{
670 return async_req_fast(exch, imethod, arg1, arg2, 0, 0, r1, r2, r3, r4, r5);
671}
672
673errno_t async_req_3_0(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
674 sysarg_t arg2, sysarg_t arg3)
675{
676 return async_req_fast(exch, imethod, arg1, arg2, arg3, 0, NULL, NULL, NULL,
677 NULL, NULL);
678}
679
680errno_t async_req_3_1(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
681 sysarg_t arg2, sysarg_t arg3, sysarg_t *r1)
682{
683 return async_req_fast(exch, imethod, arg1, arg2, arg3, 0, r1, NULL, NULL,
684 NULL, NULL);
685}
686
687errno_t async_req_3_2(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
688 sysarg_t arg2, sysarg_t arg3, sysarg_t *r1, sysarg_t *r2)
689{
690 return async_req_fast(exch, imethod, arg1, arg2, arg3, 0, r1, r2, NULL,
691 NULL, NULL);
692}
693
694errno_t async_req_3_3(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
695 sysarg_t arg2, sysarg_t arg3, sysarg_t *r1, sysarg_t *r2, sysarg_t *r3)
696{
697 return async_req_fast(exch, imethod, arg1, arg2, arg3, 0, r1, r2, r3, NULL,
698 NULL);
699}
700
701errno_t async_req_3_4(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
702 sysarg_t arg2, sysarg_t arg3, sysarg_t *r1, sysarg_t *r2, sysarg_t *r3,
703 sysarg_t *r4)
704{
705 return async_req_fast(exch, imethod, arg1, arg2, arg3, 0, r1, r2, r3, r4,
706 NULL);
707}
708
709errno_t async_req_3_5(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
710 sysarg_t arg2, sysarg_t arg3, sysarg_t *r1, sysarg_t *r2, sysarg_t *r3,
711 sysarg_t *r4, sysarg_t *r5)
712{
713 return async_req_fast(exch, imethod, arg1, arg2, arg3, 0, r1, r2, r3, r4,
714 r5);
715}
716
717errno_t async_req_4_0(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
718 sysarg_t arg2, sysarg_t arg3, sysarg_t arg4)
719{
720 return async_req_fast(exch, imethod, arg1, arg2, arg3, arg4, NULL, NULL,
721 NULL, NULL, NULL);
722}
723
724errno_t async_req_4_1(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
725 sysarg_t arg2, sysarg_t arg3, sysarg_t arg4, sysarg_t *r1)
726{
727 return async_req_fast(exch, imethod, arg1, arg2, arg3, arg4, r1, NULL,
728 NULL, NULL, NULL);
729}
730
731errno_t async_req_4_2(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
732 sysarg_t arg2, sysarg_t arg3, sysarg_t arg4, sysarg_t *r1, sysarg_t *r2)
733{
734 return async_req_fast(exch, imethod, arg1, arg2, arg3, arg4, r1, r2, NULL,
735 NULL, NULL);
736}
737
738errno_t async_req_4_3(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
739 sysarg_t arg2, sysarg_t arg3, sysarg_t arg4, sysarg_t *r1, sysarg_t *r2,
740 sysarg_t *r3)
741{
742 return async_req_fast(exch, imethod, arg1, arg2, arg3, arg4, r1, r2, r3,
743 NULL, NULL);
744}
745
746errno_t async_req_4_4(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
747 sysarg_t arg2, sysarg_t arg3, sysarg_t arg4, sysarg_t *r1, sysarg_t *r2,
748 sysarg_t *r3, sysarg_t *r4)
749{
750 return async_req_fast(exch, imethod, arg1, arg2, arg3, arg4, r1, r2, r3,
751 r4, NULL);
752}
753
754errno_t async_req_4_5(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
755 sysarg_t arg2, sysarg_t arg3, sysarg_t arg4, sysarg_t *r1, sysarg_t *r2,
756 sysarg_t *r3, sysarg_t *r4, sysarg_t *r5)
757{
758 return async_req_fast(exch, imethod, arg1, arg2, arg3, arg4, r1, r2, r3,
759 r4, r5);
760}
761
762errno_t async_req_5_0(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
763 sysarg_t arg2, sysarg_t arg3, sysarg_t arg4, sysarg_t arg5)
764{
765 return async_req_slow(exch, imethod, arg1, arg2, arg3, arg4, arg5, NULL,
766 NULL, NULL, NULL, NULL);
767}
768
769errno_t async_req_5_1(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
770 sysarg_t arg2, sysarg_t arg3, sysarg_t arg4, sysarg_t arg5, sysarg_t *r1)
771{
772 return async_req_slow(exch, imethod, arg1, arg2, arg3, arg4, arg5, r1,
773 NULL, NULL, NULL, NULL);
774}
775
776errno_t async_req_5_2(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
777 sysarg_t arg2, sysarg_t arg3, sysarg_t arg4, sysarg_t arg5, sysarg_t *r1,
778 sysarg_t *r2)
779{
780 return async_req_slow(exch, imethod, arg1, arg2, arg3, arg4, arg5, r1, r2,
781 NULL, NULL, NULL);
782}
783
784errno_t async_req_5_3(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
785 sysarg_t arg2, sysarg_t arg3, sysarg_t arg4, sysarg_t arg5, sysarg_t *r1,
786 sysarg_t *r2, sysarg_t *r3)
787{
788 return async_req_slow(exch, imethod, arg1, arg2, arg3, arg4, arg5, r1, r2,
789 r3, NULL, NULL);
790}
791
792errno_t async_req_5_4(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
793 sysarg_t arg2, sysarg_t arg3, sysarg_t arg4, sysarg_t arg5, sysarg_t *r1,
794 sysarg_t *r2, sysarg_t *r3, sysarg_t *r4)
795{
796 return async_req_slow(exch, imethod, arg1, arg2, arg3, arg4, arg5, r1, r2,
797 r3, r4, NULL);
798}
799
800errno_t async_req_5_5(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
801 sysarg_t arg2, sysarg_t arg3, sysarg_t arg4, sysarg_t arg5, sysarg_t *r1,
802 sysarg_t *r2, sysarg_t *r3, sysarg_t *r4, sysarg_t *r5)
803{
804 return async_req_slow(exch, imethod, arg1, arg2, arg3, arg4, arg5, r1, r2,
805 r3, r4, r5);
806}
807
808void async_msg_0(async_exch_t *exch, sysarg_t imethod)
809{
810 if (exch != NULL)
811 ipc_call_async_0(exch->phone, imethod, NULL);
812}
813
814void async_msg_1(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1)
815{
816 if (exch != NULL)
817 ipc_call_async_1(exch->phone, imethod, arg1, NULL);
818}
819
820void async_msg_2(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
821 sysarg_t arg2)
822{
823 if (exch != NULL)
824 ipc_call_async_2(exch->phone, imethod, arg1, arg2, NULL);
825}
826
827void async_msg_3(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
828 sysarg_t arg2, sysarg_t arg3)
829{
830 if (exch != NULL)
831 ipc_call_async_3(exch->phone, imethod, arg1, arg2, arg3, NULL);
832}
833
834void async_msg_4(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
835 sysarg_t arg2, sysarg_t arg3, sysarg_t arg4)
836{
837 if (exch != NULL)
838 ipc_call_async_4(exch->phone, imethod, arg1, arg2, arg3, arg4,
839 NULL);
840}
841
842void async_msg_5(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
843 sysarg_t arg2, sysarg_t arg3, sysarg_t arg4, sysarg_t arg5)
844{
845 if (exch != NULL)
846 ipc_call_async_5(exch->phone, imethod, arg1, arg2, arg3, arg4,
847 arg5, NULL);
848}
849
850static errno_t async_connect_me_to_internal(cap_phone_handle_t phone,
851 iface_t iface, sysarg_t arg2, sysarg_t arg3, sysarg_t flags,
852 cap_phone_handle_t *out_phone)
853{
854 ipc_call_t result;
855
856 // XXX: Workaround for GCC's inability to infer association between
857 // rc == EOK and *out_phone being assigned.
858 *out_phone = CAP_NIL;
859
860 amsg_t *msg = amsg_create();
861 if (!msg)
862 return ENOENT;
863
864 msg->dataptr = &result;
865
866 errno_t rc = ipc_call_async_4(phone, IPC_M_CONNECT_ME_TO,
867 (sysarg_t) iface, arg2, arg3, flags, msg);
868 if (rc != EOK) {
869 msg->retval = rc;
870 msg->done = true;
871 }
872
873 async_wait_for((aid_t) msg, &rc);
874
875 if (rc != EOK)
876 return rc;
877
878 *out_phone = (cap_phone_handle_t) ipc_get_arg5(&result);
879 return EOK;
880}
881
882/** Wrapper for making IPC_M_CONNECT_ME_TO calls using the async framework.
883 *
884 * Ask through phone for a new connection to some service and block until
885 * success.
886 *
887 * @param exch Exchange for sending the message.
888 * @param iface Connection interface.
889 * @param arg2 User defined argument.
890 * @param arg3 User defined argument.
891 * @param rc Placeholder for return code. Unused if NULL.
892 *
893 * @return New session on success or NULL on error.
894 *
895 */
896async_sess_t *async_connect_me_to(async_exch_t *exch, iface_t iface,
897 sysarg_t arg2, sysarg_t arg3, errno_t *rc)
898{
899 if (exch == NULL) {
900 if (rc != NULL)
901 *rc = ENOENT;
902
903 return NULL;
904 }
905
906 async_sess_t *sess = calloc(1, sizeof(async_sess_t));
907 if (sess == NULL) {
908 if (rc != NULL)
909 *rc = ENOMEM;
910
911 return NULL;
912 }
913
914 cap_phone_handle_t phone;
915 errno_t ret = async_connect_me_to_internal(exch->phone, iface, arg2,
916 arg3, 0, &phone);
917 if (ret != EOK) {
918 if (rc != NULL)
919 *rc = ret;
920
921 free(sess);
922 return NULL;
923 }
924
925 sess->iface = iface;
926 sess->phone = phone;
927 sess->arg1 = iface;
928 sess->arg2 = arg2;
929 sess->arg3 = arg3;
930
931 fibril_mutex_initialize(&sess->remote_state_mtx);
932 list_initialize(&sess->exch_list);
933 fibril_mutex_initialize(&sess->mutex);
934
935 return sess;
936}
937
938/** Set arguments for new connections.
939 *
940 * FIXME This is an ugly hack to work around the problem that parallel
941 * exchanges are implemented using parallel connections. When we create
942 * a callback session, the framework does not know arguments for the new
943 * connections.
944 *
945 * The proper solution seems to be to implement parallel exchanges using
946 * tagging.
947 *
948 */
949void async_sess_args_set(async_sess_t *sess, iface_t iface, sysarg_t arg2,
950 sysarg_t arg3)
951{
952 sess->arg1 = iface;
953 sess->arg2 = arg2;
954 sess->arg3 = arg3;
955}
956
957/** Wrapper for making IPC_M_CONNECT_ME_TO calls using the async framework.
958 *
959 * Ask through phone for a new connection to some service and block until
960 * success.
961 *
962 * @param exch Exchange for sending the message.
963 * @param iface Connection interface.
964 * @param arg2 User defined argument.
965 * @param arg3 User defined argument.
966 * @param rc Placeholder for return code. Unused if NULL.
967 *
968 * @return New session on success or NULL on error.
969 *
970 */
971async_sess_t *async_connect_me_to_blocking(async_exch_t *exch, iface_t iface,
972 sysarg_t arg2, sysarg_t arg3, errno_t *rc)
973{
974 if (exch == NULL) {
975 if (rc != NULL)
976 *rc = ENOENT;
977
978 return NULL;
979 }
980
981 async_sess_t *sess = calloc(1, sizeof(async_sess_t));
982 if (sess == NULL) {
983 if (rc != NULL)
984 *rc = ENOMEM;
985
986 return NULL;
987 }
988
989 cap_phone_handle_t phone;
990 errno_t ret = async_connect_me_to_internal(exch->phone, iface, arg2,
991 arg3, IPC_FLAG_BLOCKING, &phone);
992 if (ret != EOK) {
993 if (rc != NULL)
994 *rc = ret;
995
996 free(sess);
997 return NULL;
998 }
999
1000 sess->iface = iface;
1001 sess->phone = phone;
1002 sess->arg1 = iface;
1003 sess->arg2 = arg2;
1004 sess->arg3 = arg3;
1005
1006 fibril_mutex_initialize(&sess->remote_state_mtx);
1007 list_initialize(&sess->exch_list);
1008 fibril_mutex_initialize(&sess->mutex);
1009
1010 return sess;
1011}
1012
1013/** Connect to a task specified by id.
1014 *
1015 * @param id Task to which to connect.
1016 * @param rc Placeholder for return code. Unused if NULL.
1017 *
1018 * @return New session on success or NULL on error.
1019 *
1020 */
1021async_sess_t *async_connect_kbox(task_id_t id, errno_t *rc)
1022{
1023 async_sess_t *sess = calloc(1, sizeof(async_sess_t));
1024 if (sess == NULL) {
1025 if (rc != NULL)
1026 *rc = ENOMEM;
1027
1028 return NULL;
1029 }
1030
1031 cap_phone_handle_t phone;
1032 errno_t ret = ipc_connect_kbox(id, &phone);
1033 if (ret != EOK) {
1034 if (rc != NULL)
1035 *rc = ret;
1036
1037 free(sess);
1038 return NULL;
1039 }
1040
1041 sess->iface = 0;
1042 sess->mgmt = EXCHANGE_ATOMIC;
1043 sess->phone = phone;
1044
1045 fibril_mutex_initialize(&sess->remote_state_mtx);
1046 list_initialize(&sess->exch_list);
1047 fibril_mutex_initialize(&sess->mutex);
1048
1049 return sess;
1050}
1051
1052static void async_hangup_internal(cap_phone_handle_t phone)
1053{
1054 errno_t rc;
1055
1056 rc = ipc_hangup(phone);
1057 assert(rc == EOK);
1058 (void) rc;
1059}
1060
1061/** Wrapper for ipc_hangup.
1062 *
1063 * @param sess Session to hung up.
1064 */
1065void async_hangup(async_sess_t *sess)
1066{
1067 async_exch_t *exch;
1068
1069 assert(sess);
1070
1071 fibril_mutex_lock(&async_sess_mutex);
1072 assert(sess->exchanges == 0);
1073
1074 async_hangup_internal(sess->phone);
1075
1076 while (!list_empty(&sess->exch_list)) {
1077 exch = (async_exch_t *)
1078 list_get_instance(list_first(&sess->exch_list),
1079 async_exch_t, sess_link);
1080
1081 list_remove(&exch->sess_link);
1082 list_remove(&exch->global_link);
1083 if (sess->mgmt != EXCHANGE_ATOMIC &&
1084 sess->mgmt != EXCHANGE_SERIALIZE)
1085 async_hangup_internal(exch->phone);
1086 free(exch);
1087 }
1088
1089 free(sess);
1090
1091 fibril_mutex_unlock(&async_sess_mutex);
1092}
1093
1094/** Start new exchange in a session.
1095 *
1096 * @param session Session.
1097 *
1098 * @return New exchange or NULL on error.
1099 *
1100 */
1101async_exch_t *async_exchange_begin(async_sess_t *sess)
1102{
1103 if (sess == NULL)
1104 return NULL;
1105
1106 exch_mgmt_t mgmt = sess->mgmt;
1107 if (sess->iface != 0)
1108 mgmt = sess->iface & IFACE_EXCHANGE_MASK;
1109
1110 async_exch_t *exch = NULL;
1111
1112 fibril_mutex_lock(&async_sess_mutex);
1113
1114 if (!list_empty(&sess->exch_list)) {
1115 /*
1116 * There are inactive exchanges in the session.
1117 */
1118 exch = (async_exch_t *)
1119 list_get_instance(list_first(&sess->exch_list),
1120 async_exch_t, sess_link);
1121
1122 list_remove(&exch->sess_link);
1123 list_remove(&exch->global_link);
1124 } else {
1125 /*
1126 * There are no available exchanges in the session.
1127 */
1128
1129 if ((mgmt == EXCHANGE_ATOMIC) ||
1130 (mgmt == EXCHANGE_SERIALIZE)) {
1131 exch = (async_exch_t *) malloc(sizeof(async_exch_t));
1132 if (exch != NULL) {
1133 link_initialize(&exch->sess_link);
1134 link_initialize(&exch->global_link);
1135 exch->sess = sess;
1136 exch->phone = sess->phone;
1137 }
1138 } else if (mgmt == EXCHANGE_PARALLEL) {
1139 cap_phone_handle_t phone;
1140 errno_t rc;
1141
1142 retry:
1143 /*
1144 * Make a one-time attempt to connect a new data phone.
1145 */
1146 rc = async_connect_me_to_internal(sess->phone, sess->arg1,
1147 sess->arg2, sess->arg3, 0, &phone);
1148 if (rc == EOK) {
1149 exch = (async_exch_t *) malloc(sizeof(async_exch_t));
1150 if (exch != NULL) {
1151 link_initialize(&exch->sess_link);
1152 link_initialize(&exch->global_link);
1153 exch->sess = sess;
1154 exch->phone = phone;
1155 } else
1156 async_hangup_internal(phone);
1157 } else if (!list_empty(&inactive_exch_list)) {
1158 /*
1159 * We did not manage to connect a new phone. But we
1160 * can try to close some of the currently inactive
1161 * connections in other sessions and try again.
1162 */
1163 exch = (async_exch_t *)
1164 list_get_instance(list_first(&inactive_exch_list),
1165 async_exch_t, global_link);
1166
1167 list_remove(&exch->sess_link);
1168 list_remove(&exch->global_link);
1169 async_hangup_internal(exch->phone);
1170 free(exch);
1171 goto retry;
1172 } else {
1173 /*
1174 * Wait for a phone to become available.
1175 */
1176 fibril_condvar_wait(&avail_phone_cv, &async_sess_mutex);
1177 goto retry;
1178 }
1179 }
1180 }
1181
1182 if (exch != NULL)
1183 sess->exchanges++;
1184
1185 fibril_mutex_unlock(&async_sess_mutex);
1186
1187 if (exch != NULL && mgmt == EXCHANGE_SERIALIZE)
1188 fibril_mutex_lock(&sess->mutex);
1189
1190 return exch;
1191}
1192
1193/** Finish an exchange.
1194 *
1195 * @param exch Exchange to finish.
1196 *
1197 */
1198void async_exchange_end(async_exch_t *exch)
1199{
1200 if (exch == NULL)
1201 return;
1202
1203 async_sess_t *sess = exch->sess;
1204 assert(sess != NULL);
1205
1206 exch_mgmt_t mgmt = sess->mgmt;
1207 if (sess->iface != 0)
1208 mgmt = sess->iface & IFACE_EXCHANGE_MASK;
1209
1210 if (mgmt == EXCHANGE_SERIALIZE)
1211 fibril_mutex_unlock(&sess->mutex);
1212
1213 fibril_mutex_lock(&async_sess_mutex);
1214
1215 sess->exchanges--;
1216
1217 list_append(&exch->sess_link, &sess->exch_list);
1218 list_append(&exch->global_link, &inactive_exch_list);
1219 fibril_condvar_signal(&avail_phone_cv);
1220
1221 fibril_mutex_unlock(&async_sess_mutex);
1222}
1223
1224/** Wrapper for IPC_M_SHARE_IN calls using the async framework.
1225 *
1226 * @param exch Exchange for sending the message.
1227 * @param size Size of the destination address space area.
1228 * @param arg User defined argument.
1229 * @param flags Storage for the received flags. Can be NULL.
1230 * @param dst Address of the storage for the destination address space area
1231 * base address. Cannot be NULL.
1232 *
1233 * @return Zero on success or an error code from errno.h.
1234 *
1235 */
1236static errno_t async_share_in_start(async_exch_t *exch, size_t size,
1237 sysarg_t arg, unsigned int *flags, void **dst)
1238{
1239 if (exch == NULL)
1240 return ENOENT;
1241
1242 sysarg_t _flags = 0;
1243 sysarg_t _dst = (sysarg_t) -1;
1244 errno_t res = async_req_3_5(exch, IPC_M_SHARE_IN, (sysarg_t) size,
1245 (sysarg_t) __progsymbols.end, arg, NULL, &_flags, NULL, NULL,
1246 &_dst);
1247
1248 if (flags)
1249 *flags = (unsigned int) _flags;
1250
1251 *dst = (void *) _dst;
1252 return res;
1253}
1254
1255errno_t async_share_in_start_0_0(async_exch_t *exch, size_t size, void **dst)
1256{
1257 return async_share_in_start(exch, size, 0, NULL, dst);
1258}
1259
1260errno_t async_share_in_start_0_1(async_exch_t *exch, size_t size,
1261 unsigned int *flags, void **dst)
1262{
1263 return async_share_in_start(exch, size, 0, flags, dst);
1264}
1265
1266errno_t async_share_in_start_1_0(async_exch_t *exch, size_t size, sysarg_t arg,
1267 void **dst)
1268{
1269 return async_share_in_start(exch, size, arg, NULL, dst);
1270}
1271
1272errno_t async_share_in_start_1_1(async_exch_t *exch, size_t size, sysarg_t arg,
1273 unsigned int *flags, void **dst)
1274{
1275 return async_share_in_start(exch, size, arg, flags, dst);
1276}
1277
1278/** Wrapper for IPC_M_SHARE_OUT calls using the async framework.
1279 *
1280 * @param exch Exchange for sending the message.
1281 * @param src Source address space area base address.
1282 * @param flags Flags to be used for sharing. Bits can be only cleared.
1283 *
1284 * @return Zero on success or an error code from errno.h.
1285 *
1286 */
1287errno_t async_share_out_start(async_exch_t *exch, void *src, unsigned int flags)
1288{
1289 if (exch == NULL)
1290 return ENOENT;
1291
1292 return async_req_3_0(exch, IPC_M_SHARE_OUT, (sysarg_t) src, 0,
1293 (sysarg_t) flags);
1294}
1295
1296/** Start IPC_M_DATA_READ using the async framework.
1297 *
1298 * @param exch Exchange for sending the message.
1299 * @param dst Address of the beginning of the destination buffer.
1300 * @param size Size of the destination buffer (in bytes).
1301 * @param dataptr Storage of call data (arg 2 holds actual data size).
1302 *
1303 * @return Hash of the sent message or 0 on error.
1304 *
1305 */
1306aid_t async_data_read(async_exch_t *exch, void *dst, size_t size,
1307 ipc_call_t *dataptr)
1308{
1309 return async_send_2(exch, IPC_M_DATA_READ, (sysarg_t) dst,
1310 (sysarg_t) size, dataptr);
1311}
1312
1313/** Wrapper for IPC_M_DATA_READ calls using the async framework.
1314 *
1315 * @param exch Exchange for sending the message.
1316 * @param dst Address of the beginning of the destination buffer.
1317 * @param size Size of the destination buffer.
1318 *
1319 * @return Zero on success or an error code from errno.h.
1320 *
1321 */
1322errno_t async_data_read_start(async_exch_t *exch, void *dst, size_t size)
1323{
1324 if (exch == NULL)
1325 return ENOENT;
1326
1327 return async_req_2_0(exch, IPC_M_DATA_READ, (sysarg_t) dst,
1328 (sysarg_t) size);
1329}
1330
1331/** Wrapper for IPC_M_DATA_WRITE calls using the async framework.
1332 *
1333 * @param exch Exchange for sending the message.
1334 * @param src Address of the beginning of the source buffer.
1335 * @param size Size of the source buffer.
1336 *
1337 * @return Zero on success or an error code from errno.h.
1338 *
1339 */
1340errno_t async_data_write_start(async_exch_t *exch, const void *src, size_t size)
1341{
1342 if (exch == NULL)
1343 return ENOENT;
1344
1345 return async_req_2_0(exch, IPC_M_DATA_WRITE, (sysarg_t) src,
1346 (sysarg_t) size);
1347}
1348
1349errno_t async_state_change_start(async_exch_t *exch, sysarg_t arg1, sysarg_t arg2,
1350 sysarg_t arg3, async_exch_t *other_exch)
1351{
1352 return async_req_5_0(exch, IPC_M_STATE_CHANGE_AUTHORIZE,
1353 arg1, arg2, arg3, 0, cap_handle_raw(other_exch->phone));
1354}
1355
1356/** Lock and get session remote state
1357 *
1358 * Lock and get the local replica of the remote state
1359 * in stateful sessions. The call should be paired
1360 * with async_remote_state_release*().
1361 *
1362 * @param[in] sess Stateful session.
1363 *
1364 * @return Local replica of the remote state.
1365 *
1366 */
1367void *async_remote_state_acquire(async_sess_t *sess)
1368{
1369 fibril_mutex_lock(&sess->remote_state_mtx);
1370 return sess->remote_state_data;
1371}
1372
1373/** Update the session remote state
1374 *
1375 * Update the local replica of the remote state
1376 * in stateful sessions. The remote state must
1377 * be already locked.
1378 *
1379 * @param[in] sess Stateful session.
1380 * @param[in] state New local replica of the remote state.
1381 *
1382 */
1383void async_remote_state_update(async_sess_t *sess, void *state)
1384{
1385 assert(fibril_mutex_is_locked(&sess->remote_state_mtx));
1386 sess->remote_state_data = state;
1387}
1388
1389/** Release the session remote state
1390 *
1391 * Unlock the local replica of the remote state
1392 * in stateful sessions.
1393 *
1394 * @param[in] sess Stateful session.
1395 *
1396 */
1397void async_remote_state_release(async_sess_t *sess)
1398{
1399 assert(fibril_mutex_is_locked(&sess->remote_state_mtx));
1400
1401 fibril_mutex_unlock(&sess->remote_state_mtx);
1402}
1403
1404/** Release the session remote state and end an exchange
1405 *
1406 * Unlock the local replica of the remote state
1407 * in stateful sessions. This is convenience function
1408 * which gets the session pointer from the exchange
1409 * and also ends the exchange.
1410 *
1411 * @param[in] exch Stateful session's exchange.
1412 *
1413 */
1414void async_remote_state_release_exchange(async_exch_t *exch)
1415{
1416 if (exch == NULL)
1417 return;
1418
1419 async_sess_t *sess = exch->sess;
1420 assert(fibril_mutex_is_locked(&sess->remote_state_mtx));
1421
1422 async_exchange_end(exch);
1423 fibril_mutex_unlock(&sess->remote_state_mtx);
1424}
1425
1426void *async_as_area_create(void *base, size_t size, unsigned int flags,
1427 async_sess_t *pager, sysarg_t id1, sysarg_t id2, sysarg_t id3)
1428{
1429 as_area_pager_info_t pager_info = {
1430 .pager = pager->phone,
1431 .id1 = id1,
1432 .id2 = id2,
1433 .id3 = id3
1434 };
1435 return as_area_create(base, size, flags, &pager_info);
1436}
1437
1438/** @}
1439 */
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