source: mainline/uspace/lib/c/generic/async.c@ 36f0738

lfn serial ticket/834-toolchain-update topic/msim-upgrade topic/simplify-dev-export
Last change on this file since 36f0738 was cde999a, checked in by Jiří Zárevúcky <zarevucky.jiri@…>, 7 years ago

Fix comments to stop referring to error codes as negative.

  • Property mode set to 100644
File size: 79.8 KB
RevLine 
[06502f7d]1/*
[df4ed85]2 * Copyright (c) 2006 Ondrej Palkovsky
[06502f7d]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.
[b2951e2]27 */
28
[a46da63]29/** @addtogroup libc
[b2951e2]30 * @{
31 */
32/** @file
[c07544d3]33 */
[06502f7d]34
[80649a91]35/**
36 * Asynchronous library
37 *
[c07544d3]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.
[80649a91]41 *
[79ae36dd]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.
[80649a91]45 *
[9591265]46 * Example of use (pseudo C):
[c07544d3]47 *
[80649a91]48 * 1) Multithreaded client application
[9591265]49 *
[c07544d3]50 * fibril_create(fibril1, ...);
51 * fibril_create(fibril2, ...);
52 * ...
53 *
54 * int fibril1(void *arg)
55 * {
[79ae36dd]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 *
[c07544d3]66 * async_wait_for(c1);
67 * async_wait_for(c2);
68 * ...
69 * }
[80649a91]70 *
71 *
72 * 2) Multithreaded server application
73 *
[c07544d3]74 * main()
75 * {
76 * async_manager();
77 * }
78 *
[01c3bb4]79 * port_handler(ichandle, *icall)
[c07544d3]80 * {
81 * if (want_refuse) {
[01c3bb4]82 * async_answer_0(ichandle, ELIMIT);
[c07544d3]83 * return;
84 * }
[01c3bb4]85 * async_answer_0(ichandle, EOK);
[80649a91]86 *
[01c3bb4]87 * chandle = async_get_call(&call);
88 * somehow_handle_the_call(chandle, call);
89 * async_answer_2(chandle, 1, 2, 3);
[53ca318]90 *
[01c3bb4]91 * chandle = async_get_call(&call);
[c07544d3]92 * ...
93 * }
[a2cd194]94 *
[80649a91]95 */
[9591265]96
[64d2b10]97#define LIBC_ASYNC_C_
98#include <ipc/ipc.h>
[80649a91]99#include <async.h>
[b76a7329]100#include "private/async.h"
[64d2b10]101#undef LIBC_ASYNC_C_
102
[8820544]103#include <ipc/irq.h>
104#include <ipc/event.h>
[64d2b10]105#include <futex.h>
[bc1f1c2]106#include <fibril.h>
[d9c8c81]107#include <adt/hash_table.h>
[853802e]108#include <adt/hash.h>
[d9c8c81]109#include <adt/list.h>
[80649a91]110#include <assert.h>
111#include <errno.h>
[daa90e8]112#include <sys/time.h>
[c0699467]113#include <libarch/barrier.h>
[3e6a98c5]114#include <stdbool.h>
[38d150e]115#include <stdlib.h>
[79ae36dd]116#include <mem.h>
117#include <stdlib.h>
[e2ab36f1]118#include <macros.h>
[101516d]119#include <as.h>
[ae6021d]120#include <abi/mm/as.h>
[d7978525]121#include "private/libc.h"
[80649a91]122
[5da7199]123/** Session data */
124struct async_sess {
125 /** List of inactive exchanges */
126 list_t exch_list;
127
[566992e1]128 /** Session interface */
129 iface_t iface;
130
[5da7199]131 /** Exchange management style */
132 exch_mgmt_t mgmt;
133
134 /** Session identification */
135 int phone;
136
137 /** First clone connection argument */
138 sysarg_t arg1;
139
140 /** Second clone connection argument */
141 sysarg_t arg2;
142
143 /** Third clone connection argument */
144 sysarg_t arg3;
145
146 /** Exchange mutex */
147 fibril_mutex_t mutex;
148
149 /** Number of opened exchanges */
150 atomic_t refcnt;
151
152 /** Mutex for stateful connections */
153 fibril_mutex_t remote_state_mtx;
154
155 /** Data for stateful connections */
156 void *remote_state_data;
157};
158
159/** Exchange data */
160struct async_exch {
161 /** Link into list of inactive exchanges */
162 link_t sess_link;
163
164 /** Link into global list of inactive exchanges */
165 link_t global_link;
166
167 /** Session pointer */
168 async_sess_t *sess;
169
170 /** Exchange identification */
171 int phone;
172};
173
[79ae36dd]174/** Async framework global futex */
[927a181e]175futex_t async_futex = FUTEX_INITIALIZER;
[80649a91]176
[8619f25]177/** Number of threads waiting for IPC in the kernel. */
178atomic_t threads_in_ipc_wait = { 0 };
179
[79ae36dd]180/** Naming service session */
181async_sess_t *session_ns;
[01ff41c]182
[79ae36dd]183/** Call data */
[80649a91]184typedef struct {
185 link_t link;
[79ae36dd]186
[01c3bb4]187 cap_handle_t chandle;
[80649a91]188 ipc_call_t call;
189} msg_t;
190
[5da7199]191/** Message data */
192typedef struct {
193 awaiter_t wdata;
194
195 /** If reply was received. */
196 bool done;
[57dea62]197
[47c9a8c]198 /** If the message / reply should be discarded on arrival. */
199 bool forget;
[57dea62]200
[47c9a8c]201 /** If already destroyed. */
202 bool destroyed;
[5da7199]203
204 /** Pointer to where the answer data is stored. */
205 ipc_call_t *dataptr;
206
[25a179e]207 int retval;
[5da7199]208} amsg_t;
209
[79ae36dd]210/* Client connection data */
[c80fdd0]211typedef struct {
[062d900]212 ht_link_t link;
[79ae36dd]213
[649f087]214 task_id_t in_task_id;
[79ae36dd]215 atomic_t refcnt;
[c80fdd0]216 void *data;
217} client_t;
218
[79ae36dd]219/* Server connection data */
[80649a91]220typedef struct {
[49d072e]221 awaiter_t wdata;
[c07544d3]222
[e70bfa5]223 /** Hash table link. */
[062d900]224 ht_link_t link;
[c07544d3]225
[e2ab36f1]226 /** Incoming client task ID. */
227 task_id_t in_task_id;
[79ae36dd]228
[e70bfa5]229 /** Incoming phone hash. */
[96b02eb9]230 sysarg_t in_phone_hash;
[c07544d3]231
[23882034]232 /** Link to the client tracking structure. */
233 client_t *client;
[47b7006]234
[e70bfa5]235 /** Messages that should be delivered to this fibril. */
[b72efe8]236 list_t msg_queue;
[c07544d3]237
[e70bfa5]238 /** Identification of the opening call. */
[01c3bb4]239 cap_handle_t chandle;
[b688fd8]240
[e70bfa5]241 /** Call data of the opening call. */
[80649a91]242 ipc_call_t call;
[c07544d3]243
[e70bfa5]244 /** Identification of the closing call. */
[01c3bb4]245 cap_handle_t close_chandle;
[c07544d3]246
[e70bfa5]247 /** Fibril function that will be used to handle the connection. */
[b688fd8]248 async_port_handler_t handler;
249
250 /** Client data */
251 void *data;
[80649a91]252} connection_t;
253
[566992e1]254/** Interface data */
255typedef struct {
256 ht_link_t link;
257
258 /** Interface ID */
259 iface_t iface;
260
261 /** Futex protecting the hash table */
262 futex_t futex;
263
264 /** Interface ports */
265 hash_table_t port_hash_table;
266
267 /** Next available port ID */
268 port_id_t port_id_avail;
269} interface_t;
270
271/* Port data */
272typedef struct {
273 ht_link_t link;
274
275 /** Port ID */
276 port_id_t id;
277
278 /** Port connection handler */
279 async_port_handler_t handler;
280
281 /** Client data */
282 void *data;
283} port_t;
284
[8820544]285/* Notification data */
286typedef struct {
287 ht_link_t link;
288
289 /** Notification method */
290 sysarg_t imethod;
291
292 /** Notification handler */
293 async_notification_handler_t handler;
294
295 /** Notification data */
296 void *data;
297} notification_t;
298
[bc1f1c2]299/** Identifier of the incoming connection handled by the current fibril. */
[79ae36dd]300static fibril_local connection_t *fibril_connection;
[e70bfa5]301
[47c9a8c]302static void to_event_initialize(to_event_t *to)
303{
[aeeddeb]304 struct timeval tv = { 0, 0 };
[57dea62]305
[47c9a8c]306 to->inlist = false;
307 to->occurred = false;
308 link_initialize(&to->link);
309 to->expires = tv;
310}
311
312static void wu_event_initialize(wu_event_t *wu)
313{
314 wu->inlist = false;
315 link_initialize(&wu->link);
316}
317
318void awaiter_initialize(awaiter_t *aw)
319{
320 aw->fid = 0;
321 aw->active = false;
322 to_event_initialize(&aw->to_event);
323 wu_event_initialize(&aw->wu_event);
324}
325
326static amsg_t *amsg_create(void)
327{
[57dea62]328 amsg_t *msg = malloc(sizeof(amsg_t));
[47c9a8c]329 if (msg) {
330 msg->done = false;
331 msg->forget = false;
332 msg->destroyed = false;
333 msg->dataptr = NULL;
[25a179e]334 msg->retval = EINVAL;
[47c9a8c]335 awaiter_initialize(&msg->wdata);
336 }
[57dea62]337
[47c9a8c]338 return msg;
339}
340
341static void amsg_destroy(amsg_t *msg)
342{
343 assert(!msg->destroyed);
344 msg->destroyed = true;
345 free(msg);
346}
347
[46eec3b]348static void *default_client_data_constructor(void)
349{
350 return NULL;
351}
352
353static void default_client_data_destructor(void *data)
354{
355}
356
357static async_client_data_ctor_t async_client_data_create =
358 default_client_data_constructor;
359static async_client_data_dtor_t async_client_data_destroy =
360 default_client_data_destructor;
361
362void async_set_client_data_constructor(async_client_data_ctor_t ctor)
363{
[f302586]364 assert(async_client_data_create == default_client_data_constructor);
[46eec3b]365 async_client_data_create = ctor;
366}
367
368void async_set_client_data_destructor(async_client_data_dtor_t dtor)
369{
[f302586]370 assert(async_client_data_destroy == default_client_data_destructor);
[46eec3b]371 async_client_data_destroy = dtor;
372}
373
[b688fd8]374/** Default fallback fibril function.
[47b7006]375 *
[01c3bb4]376 * This fallback fibril function gets called on incomming connections that do
377 * not have a specific handler defined.
[47b7006]378 *
[01c3bb4]379 * @param chandle Handle of the incoming call.
380 * @param call Data of the incoming call.
381 * @param arg Local argument
[47b7006]382 *
383 */
[01c3bb4]384static void default_fallback_port_handler(cap_handle_t chandle,
385 ipc_call_t *call, void *arg)
[47b7006]386{
[01c3bb4]387 ipc_answer_0(chandle, ENOENT);
[47b7006]388}
[36c9234]389
[b688fd8]390static async_port_handler_t fallback_port_handler =
391 default_fallback_port_handler;
392static void *fallback_port_data = NULL;
[da0c91e7]393
[566992e1]394static hash_table_t interface_hash_table;
395
396static size_t interface_key_hash(void *key)
397{
398 iface_t iface = *(iface_t *) key;
399 return iface;
400}
401
402static size_t interface_hash(const ht_link_t *item)
403{
404 interface_t *interface = hash_table_get_inst(item, interface_t, link);
405 return interface_key_hash(&interface->iface);
406}
407
408static bool interface_key_equal(void *key, const ht_link_t *item)
409{
410 iface_t iface = *(iface_t *) key;
411 interface_t *interface = hash_table_get_inst(item, interface_t, link);
412 return iface == interface->iface;
413}
414
415/** Operations for the port hash table. */
416static hash_table_ops_t interface_hash_table_ops = {
417 .hash = interface_hash,
418 .key_hash = interface_key_hash,
419 .key_equal = interface_key_equal,
420 .equal = NULL,
421 .remove_callback = NULL
422};
423
424static size_t port_key_hash(void *key)
425{
426 port_id_t port_id = *(port_id_t *) key;
427 return port_id;
428}
429
430static size_t port_hash(const ht_link_t *item)
431{
432 port_t *port = hash_table_get_inst(item, port_t, link);
433 return port_key_hash(&port->id);
434}
435
436static bool port_key_equal(void *key, const ht_link_t *item)
437{
438 port_id_t port_id = *(port_id_t *) key;
439 port_t *port = hash_table_get_inst(item, port_t, link);
440 return port_id == port->id;
441}
442
443/** Operations for the port hash table. */
444static hash_table_ops_t port_hash_table_ops = {
445 .hash = port_hash,
446 .key_hash = port_key_hash,
447 .key_equal = port_key_equal,
448 .equal = NULL,
449 .remove_callback = NULL
450};
451
452static interface_t *async_new_interface(iface_t iface)
453{
454 interface_t *interface =
455 (interface_t *) malloc(sizeof(interface_t));
456 if (!interface)
457 return NULL;
458
459 bool ret = hash_table_create(&interface->port_hash_table, 0, 0,
460 &port_hash_table_ops);
461 if (!ret) {
462 free(interface);
463 return NULL;
464 }
465
466 interface->iface = iface;
467 futex_initialize(&interface->futex, 1);
468 interface->port_id_avail = 0;
469
470 hash_table_insert(&interface_hash_table, &interface->link);
471
472 return interface;
473}
474
475static port_t *async_new_port(interface_t *interface,
476 async_port_handler_t handler, void *data)
477{
478 port_t *port = (port_t *) malloc(sizeof(port_t));
479 if (!port)
480 return NULL;
481
482 futex_down(&interface->futex);
483
484 port_id_t id = interface->port_id_avail;
485 interface->port_id_avail++;
486
487 port->id = id;
488 port->handler = handler;
489 port->data = data;
490
491 hash_table_insert(&interface->port_hash_table, &port->link);
492
493 futex_up(&interface->futex);
494
495 return port;
496}
497
[79ae36dd]498/** Mutex protecting inactive_exch_list and avail_phone_cv.
499 *
500 */
501static FIBRIL_MUTEX_INITIALIZE(async_sess_mutex);
502
503/** List of all currently inactive exchanges.
504 *
505 */
506static LIST_INITIALIZE(inactive_exch_list);
507
508/** Condition variable to wait for a phone to become available.
509 *
510 */
511static FIBRIL_CONDVAR_INITIALIZE(avail_phone_cv);
512
[566992e1]513int async_create_port(iface_t iface, async_port_handler_t handler,
514 void *data, port_id_t *port_id)
515{
516 if ((iface & IFACE_MOD_MASK) == IFACE_MOD_CALLBACK)
517 return EINVAL;
518
519 interface_t *interface;
520
521 futex_down(&async_futex);
522
523 ht_link_t *link = hash_table_find(&interface_hash_table, &iface);
524 if (link)
525 interface = hash_table_get_inst(link, interface_t, link);
526 else
527 interface = async_new_interface(iface);
528
529 if (!interface) {
530 futex_up(&async_futex);
531 return ENOMEM;
532 }
533
534 port_t *port = async_new_port(interface, handler, data);
535 if (!port) {
536 futex_up(&async_futex);
537 return ENOMEM;
538 }
539
540 *port_id = port->id;
541
542 futex_up(&async_futex);
543
544 return EOK;
545}
546
[b688fd8]547void async_set_fallback_port_handler(async_port_handler_t handler, void *data)
548{
549 assert(handler != NULL);
550
551 fallback_port_handler = handler;
552 fallback_port_data = data;
553}
554
[c80fdd0]555static hash_table_t client_hash_table;
[c07544d3]556static hash_table_t conn_hash_table;
[8820544]557static hash_table_t notification_hash_table;
[c07544d3]558static LIST_INITIALIZE(timeout_list);
559
[8820544]560static sysarg_t notification_avail = 0;
561
562static size_t client_key_hash(void *key)
[c80fdd0]563{
[8820544]564 task_id_t in_task_id = *(task_id_t *) key;
565 return in_task_id;
[c80fdd0]566}
567
[062d900]568static size_t client_hash(const ht_link_t *item)
[c80fdd0]569{
[062d900]570 client_t *client = hash_table_get_inst(item, client_t, link);
571 return client_key_hash(&client->in_task_id);
[c80fdd0]572}
573
[8820544]574static bool client_key_equal(void *key, const ht_link_t *item)
[c80fdd0]575{
[8820544]576 task_id_t in_task_id = *(task_id_t *) key;
[062d900]577 client_t *client = hash_table_get_inst(item, client_t, link);
[8820544]578 return in_task_id == client->in_task_id;
[c80fdd0]579}
580
581/** Operations for the client hash table. */
[062d900]582static hash_table_ops_t client_hash_table_ops = {
[c80fdd0]583 .hash = client_hash,
[062d900]584 .key_hash = client_key_hash,
585 .key_equal = client_key_equal,
[4e00f87]586 .equal = NULL,
587 .remove_callback = NULL
[c80fdd0]588};
[80649a91]589
[853802e]590typedef struct {
591 task_id_t task_id;
592 sysarg_t phone_hash;
593} conn_key_t;
594
595/** Compute hash into the connection hash table
[e70bfa5]596 *
[853802e]597 * The hash is based on the source task ID and the source phone hash. The task
598 * ID is included in the hash because a phone hash alone might not be unique
599 * while we still track connections for killed tasks due to kernel's recycling
600 * of phone structures.
601 *
602 * @param key Pointer to the connection key structure.
[c07544d3]603 *
604 * @return Index into the connection hash table.
[e70bfa5]605 *
606 */
[062d900]607static size_t conn_key_hash(void *key)
[450cd3a]608{
[853802e]609 conn_key_t *ck = (conn_key_t *) key;
610
611 size_t hash = 0;
612 hash = hash_combine(hash, LOWER32(ck->task_id));
613 hash = hash_combine(hash, UPPER32(ck->task_id));
614 hash = hash_combine(hash, ck->phone_hash);
615 return hash;
[450cd3a]616}
[06502f7d]617
[062d900]618static size_t conn_hash(const ht_link_t *item)
[450cd3a]619{
[062d900]620 connection_t *conn = hash_table_get_inst(item, connection_t, link);
[853802e]621 return conn_key_hash(&(conn_key_t){
622 .task_id = conn->in_task_id,
623 .phone_hash = conn->in_phone_hash
624 });
[450cd3a]625}
[06502f7d]626
[062d900]627static bool conn_key_equal(void *key, const ht_link_t *item)
[450cd3a]628{
[853802e]629 conn_key_t *ck = (conn_key_t *) key;
[062d900]630 connection_t *conn = hash_table_get_inst(item, connection_t, link);
[853802e]631 return ((ck->task_id == conn->in_task_id) &&
632 (ck->phone_hash == conn->in_phone_hash));
[450cd3a]633}
634
[e70bfa5]635/** Operations for the connection hash table. */
[062d900]636static hash_table_ops_t conn_hash_table_ops = {
[80649a91]637 .hash = conn_hash,
[062d900]638 .key_hash = conn_key_hash,
639 .key_equal = conn_key_equal,
[4e00f87]640 .equal = NULL,
641 .remove_callback = NULL
[80649a91]642};
643
[9ef495f]644static client_t *async_client_get(task_id_t client_id, bool create)
645{
646 client_t *client = NULL;
647
648 futex_down(&async_futex);
649 ht_link_t *link = hash_table_find(&client_hash_table, &client_id);
650 if (link) {
651 client = hash_table_get_inst(link, client_t, link);
652 atomic_inc(&client->refcnt);
653 } else if (create) {
654 client = malloc(sizeof(client_t));
655 if (client) {
656 client->in_task_id = client_id;
657 client->data = async_client_data_create();
658
659 atomic_set(&client->refcnt, 1);
660 hash_table_insert(&client_hash_table, &client->link);
661 }
662 }
663
664 futex_up(&async_futex);
665 return client;
666}
667
668static void async_client_put(client_t *client)
669{
670 bool destroy;
671
672 futex_down(&async_futex);
673
674 if (atomic_predec(&client->refcnt) == 0) {
675 hash_table_remove(&client_hash_table, &client->in_task_id);
676 destroy = true;
677 } else
678 destroy = false;
679
680 futex_up(&async_futex);
681
682 if (destroy) {
683 if (client->data)
684 async_client_data_destroy(client->data);
685
686 free(client);
687 }
688}
689
690/** Wrapper for client connection fibril.
691 *
692 * When a new connection arrives, a fibril with this implementing
693 * function is created.
694 *
695 * @param arg Connection structure pointer.
696 *
697 * @return Always zero.
698 *
699 */
700static int connection_fibril(void *arg)
701{
702 assert(arg);
703
704 /*
705 * Setup fibril-local connection pointer.
706 */
707 fibril_connection = (connection_t *) arg;
708
709 /*
710 * Add our reference for the current connection in the client task
711 * tracking structure. If this is the first reference, create and
712 * hash in a new tracking structure.
713 */
714
715 client_t *client = async_client_get(fibril_connection->in_task_id, true);
716 if (!client) {
[01c3bb4]717 ipc_answer_0(fibril_connection->chandle, ENOMEM);
[9ef495f]718 return 0;
719 }
720
721 fibril_connection->client = client;
722
723 /*
724 * Call the connection handler function.
725 */
[01c3bb4]726 fibril_connection->handler(fibril_connection->chandle,
[9ef495f]727 &fibril_connection->call, fibril_connection->data);
728
729 /*
730 * Remove the reference for this client task connection.
731 */
732 async_client_put(client);
733
734 /*
735 * Remove myself from the connection hash table.
736 */
737 futex_down(&async_futex);
[853802e]738 hash_table_remove(&conn_hash_table, &(conn_key_t){
739 .task_id = fibril_connection->in_task_id,
740 .phone_hash = fibril_connection->in_phone_hash
741 });
[9ef495f]742 futex_up(&async_futex);
743
744 /*
745 * Answer all remaining messages with EHANGUP.
746 */
747 while (!list_empty(&fibril_connection->msg_queue)) {
748 msg_t *msg =
749 list_get_instance(list_first(&fibril_connection->msg_queue),
750 msg_t, link);
751
752 list_remove(&msg->link);
[01c3bb4]753 ipc_answer_0(msg->chandle, EHANGUP);
[9ef495f]754 free(msg);
755 }
756
757 /*
758 * If the connection was hung-up, answer the last call,
759 * i.e. IPC_M_PHONE_HUNGUP.
760 */
[01c3bb4]761 if (fibril_connection->close_chandle)
762 ipc_answer_0(fibril_connection->close_chandle, EOK);
[9ef495f]763
764 free(fibril_connection);
[d5c1051]765 return EOK;
[9ef495f]766}
767
768/** Create a new fibril for a new connection.
769 *
[01c3bb4]770 * Create new fibril for connection, fill in connection structures and insert it
771 * into the hash table, so that later we can easily do routing of messages to
772 * particular fibrils.
[9ef495f]773 *
[01c3bb4]774 * @param in_task_id Identification of the incoming connection.
775 * @param in_phone_hash Identification of the incoming connection.
776 * @param chandle Handle of the opening IPC_M_CONNECT_ME_TO call.
777 * If chandle is CAP_NIL, the connection was opened by
778 * accepting the IPC_M_CONNECT_TO_ME call and this
779 * function is called directly by the server.
780 * @param call Call data of the opening call.
781 * @param handler Connection handler.
782 * @param data Client argument to pass to the connection handler.
[9ef495f]783 *
[01c3bb4]784 * @return New fibril id or NULL on failure.
[9ef495f]785 *
786 */
787static fid_t async_new_connection(task_id_t in_task_id, sysarg_t in_phone_hash,
[01c3bb4]788 cap_handle_t chandle, ipc_call_t *call, async_port_handler_t handler,
[9ef495f]789 void *data)
790{
791 connection_t *conn = malloc(sizeof(*conn));
792 if (!conn) {
[01c3bb4]793 if (chandle != CAP_NIL)
794 ipc_answer_0(chandle, ENOMEM);
[9ef495f]795
796 return (uintptr_t) NULL;
797 }
798
799 conn->in_task_id = in_task_id;
800 conn->in_phone_hash = in_phone_hash;
801 list_initialize(&conn->msg_queue);
[01c3bb4]802 conn->chandle = chandle;
803 conn->close_chandle = CAP_NIL;
[9ef495f]804 conn->handler = handler;
805 conn->data = data;
806
807 if (call)
808 conn->call = *call;
809
810 /* We will activate the fibril ASAP */
811 conn->wdata.active = true;
812 conn->wdata.fid = fibril_create(connection_fibril, conn);
813
814 if (conn->wdata.fid == 0) {
815 free(conn);
816
[01c3bb4]817 if (chandle != CAP_NIL)
818 ipc_answer_0(chandle, ENOMEM);
[9ef495f]819
820 return (uintptr_t) NULL;
821 }
822
823 /* Add connection to the connection hash table */
824
825 futex_down(&async_futex);
826 hash_table_insert(&conn_hash_table, &conn->link);
827 futex_up(&async_futex);
828
829 fibril_add_ready(conn->wdata.fid);
830
831 return conn->wdata.fid;
832}
833
[78bb04b]834/** Wrapper for making IPC_M_CONNECT_TO_ME calls using the async framework.
835 *
836 * Ask through phone for a new connection to some service.
837 *
838 * @param exch Exchange for sending the message.
839 * @param iface Callback interface.
840 * @param arg1 User defined argument.
841 * @param arg2 User defined argument.
842 * @param handler Callback handler.
843 * @param data Handler data.
844 * @param port_id ID of the newly created port.
845 *
[cde999a]846 * @return Zero on success or an error code.
[78bb04b]847 *
848 */
849int async_create_callback_port(async_exch_t *exch, iface_t iface, sysarg_t arg1,
850 sysarg_t arg2, async_port_handler_t handler, void *data, port_id_t *port_id)
851{
852 if ((iface & IFACE_MOD_CALLBACK) != IFACE_MOD_CALLBACK)
853 return EINVAL;
854
855 if (exch == NULL)
856 return ENOENT;
857
858 ipc_call_t answer;
859 aid_t req = async_send_3(exch, IPC_M_CONNECT_TO_ME, iface, arg1, arg2,
860 &answer);
861
[25a179e]862 int ret;
[78bb04b]863 async_wait_for(req, &ret);
864 if (ret != EOK)
865 return (int) ret;
866
867 sysarg_t phone_hash = IPC_GET_ARG5(answer);
868 interface_t *interface;
869
870 futex_down(&async_futex);
871
872 ht_link_t *link = hash_table_find(&interface_hash_table, &iface);
873 if (link)
874 interface = hash_table_get_inst(link, interface_t, link);
875 else
876 interface = async_new_interface(iface);
877
878 if (!interface) {
879 futex_up(&async_futex);
880 return ENOMEM;
881 }
882
883 port_t *port = async_new_port(interface, handler, data);
884 if (!port) {
885 futex_up(&async_futex);
886 return ENOMEM;
887 }
888
889 *port_id = port->id;
890
891 futex_up(&async_futex);
892
893 fid_t fid = async_new_connection(answer.in_task_id, phone_hash,
[01c3bb4]894 CAP_NIL, NULL, handler, data);
[78bb04b]895 if (fid == (uintptr_t) NULL)
896 return ENOMEM;
897
898 return EOK;
899}
900
[8820544]901static size_t notification_key_hash(void *key)
902{
903 sysarg_t id = *(sysarg_t *) key;
904 return id;
905}
906
907static size_t notification_hash(const ht_link_t *item)
908{
909 notification_t *notification =
910 hash_table_get_inst(item, notification_t, link);
911 return notification_key_hash(&notification->imethod);
912}
913
914static bool notification_key_equal(void *key, const ht_link_t *item)
915{
916 sysarg_t id = *(sysarg_t *) key;
917 notification_t *notification =
918 hash_table_get_inst(item, notification_t, link);
919 return id == notification->imethod;
920}
921
922/** Operations for the notification hash table. */
923static hash_table_ops_t notification_hash_table_ops = {
924 .hash = notification_hash,
925 .key_hash = notification_key_hash,
926 .key_equal = notification_key_equal,
927 .equal = NULL,
928 .remove_callback = NULL
929};
930
[e70bfa5]931/** Sort in current fibril's timeout request.
[49d072e]932 *
[c07544d3]933 * @param wd Wait data of the current fibril.
934 *
[49d072e]935 */
[b6ee5b1]936void async_insert_timeout(awaiter_t *wd)
[49d072e]937{
[79ae36dd]938 assert(wd);
939
[f53cc81]940 wd->to_event.occurred = false;
941 wd->to_event.inlist = true;
[c07544d3]942
[b72efe8]943 link_t *tmp = timeout_list.head.next;
944 while (tmp != &timeout_list.head) {
[47b7006]945 awaiter_t *cur
946 = list_get_instance(tmp, awaiter_t, to_event.link);
[c07544d3]947
[f53cc81]948 if (tv_gteq(&cur->to_event.expires, &wd->to_event.expires))
[49d072e]949 break;
[47b7006]950
[49d072e]951 tmp = tmp->next;
952 }
[c07544d3]953
[b72efe8]954 list_insert_before(&wd->to_event.link, tmp);
[49d072e]955}
956
[e70bfa5]957/** Try to route a call to an appropriate connection fibril.
[80649a91]958 *
[36c9234]959 * If the proper connection fibril is found, a message with the call is added to
960 * its message queue. If the fibril was not active, it is activated and all
961 * timeouts are unregistered.
962 *
[01c3bb4]963 * @param chandle Handle of the incoming call.
964 * @param call Data of the incoming call.
[c07544d3]965 *
966 * @return False if the call doesn't match any connection.
[47b7006]967 * @return True if the call was passed to the respective connection fibril.
[36c9234]968 *
[80649a91]969 */
[01c3bb4]970static bool route_call(cap_handle_t chandle, ipc_call_t *call)
[450cd3a]971{
[79ae36dd]972 assert(call);
973
[01ff41c]974 futex_down(&async_futex);
[c07544d3]975
[853802e]976 ht_link_t *link = hash_table_find(&conn_hash_table, &(conn_key_t){
977 .task_id = call->in_task_id,
978 .phone_hash = call->in_phone_hash
979 });
[8820544]980 if (!link) {
[01ff41c]981 futex_up(&async_futex);
[c07544d3]982 return false;
[450cd3a]983 }
[c07544d3]984
[8820544]985 connection_t *conn = hash_table_get_inst(link, connection_t, link);
[c07544d3]986
987 msg_t *msg = malloc(sizeof(*msg));
988 if (!msg) {
989 futex_up(&async_futex);
990 return false;
991 }
992
[01c3bb4]993 msg->chandle = chandle;
[80649a91]994 msg->call = *call;
995 list_append(&msg->link, &conn->msg_queue);
[c07544d3]996
[228e490]997 if (IPC_GET_IMETHOD(*call) == IPC_M_PHONE_HUNGUP)
[01c3bb4]998 conn->close_chandle = chandle;
[80649a91]999
[36c9234]1000 /* If the connection fibril is waiting for an event, activate it */
[49d072e]1001 if (!conn->wdata.active) {
[c07544d3]1002
[49d072e]1003 /* If in timeout list, remove it */
[f53cc81]1004 if (conn->wdata.to_event.inlist) {
1005 conn->wdata.to_event.inlist = false;
1006 list_remove(&conn->wdata.to_event.link);
[49d072e]1007 }
[c07544d3]1008
1009 conn->wdata.active = true;
[bc1f1c2]1010 fibril_add_ready(conn->wdata.fid);
[80649a91]1011 }
[c07544d3]1012
[01ff41c]1013 futex_up(&async_futex);
[c07544d3]1014 return true;
1015}
[80649a91]1016
[c170438]1017/** Process notification.
[c07544d3]1018 *
[c170438]1019 * @param call Data of the incoming call.
[58563585]1020 *
[c07544d3]1021 */
[01c3bb4]1022static void process_notification(ipc_call_t *call)
[c07544d3]1023{
[8820544]1024 async_notification_handler_t handler = NULL;
1025 void *data = NULL;
[c170438]1026
1027 assert(call);
[8820544]1028
1029 futex_down(&async_futex);
1030
1031 ht_link_t *link = hash_table_find(&notification_hash_table,
[c170438]1032 &IPC_GET_IMETHOD(*call));
[8820544]1033 if (link) {
1034 notification_t *notification =
1035 hash_table_get_inst(link, notification_t, link);
1036 handler = notification->handler;
1037 data = notification->data;
1038 }
1039
1040 futex_up(&async_futex);
1041
1042 if (handler)
[01c3bb4]1043 handler(call, data);
[80649a91]1044}
1045
[8820544]1046/** Subscribe to IRQ notification.
1047 *
1048 * @param inr IRQ number.
1049 * @param handler Notification handler.
1050 * @param data Notification handler client data.
1051 * @param ucode Top-half pseudocode handler.
1052 *
[071a1ddb]1053 * @param[out] handle IRQ capability handle on success.
1054 *
[cde999a]1055 * @return An error code.
[8820544]1056 *
1057 */
[24abb85d]1058int async_irq_subscribe(int inr, async_notification_handler_t handler,
[071a1ddb]1059 void *data, const irq_code_t *ucode, cap_handle_t *handle)
[8820544]1060{
1061 notification_t *notification =
1062 (notification_t *) malloc(sizeof(notification_t));
1063 if (!notification)
1064 return ENOMEM;
1065
1066 futex_down(&async_futex);
1067
1068 sysarg_t imethod = notification_avail;
1069 notification_avail++;
1070
1071 notification->imethod = imethod;
1072 notification->handler = handler;
1073 notification->data = data;
1074
1075 hash_table_insert(&notification_hash_table, &notification->link);
1076
1077 futex_up(&async_futex);
1078
[9233e9d]1079 cap_handle_t cap;
1080 int rc = ipc_irq_subscribe(inr, imethod, ucode, &cap);
[071a1ddb]1081 if (rc == EOK && handle != NULL) {
1082 *handle = cap;
[9233e9d]1083 }
[071a1ddb]1084 return rc;
[8820544]1085}
1086
1087/** Unsubscribe from IRQ notification.
1088 *
[3f74275]1089 * @param cap IRQ capability handle.
[8820544]1090 *
[cde999a]1091 * @return Zero on success or an error code.
[8820544]1092 *
1093 */
[e9d15d9]1094int async_irq_unsubscribe(int cap)
[8820544]1095{
1096 // TODO: Remove entry from hash table
1097 // to avoid memory leak
1098
[e9d15d9]1099 return ipc_irq_unsubscribe(cap);
[8820544]1100}
1101
1102/** Subscribe to event notifications.
1103 *
1104 * @param evno Event type to subscribe.
1105 * @param handler Notification handler.
1106 * @param data Notification handler client data.
1107 *
[cde999a]1108 * @return Zero on success or an error code.
[8820544]1109 *
1110 */
1111int async_event_subscribe(event_type_t evno,
1112 async_notification_handler_t handler, void *data)
1113{
1114 notification_t *notification =
1115 (notification_t *) malloc(sizeof(notification_t));
1116 if (!notification)
1117 return ENOMEM;
1118
1119 futex_down(&async_futex);
1120
1121 sysarg_t imethod = notification_avail;
1122 notification_avail++;
1123
1124 notification->imethod = imethod;
1125 notification->handler = handler;
1126 notification->data = data;
1127
1128 hash_table_insert(&notification_hash_table, &notification->link);
1129
1130 futex_up(&async_futex);
1131
1132 return ipc_event_subscribe(evno, imethod);
1133}
1134
1135/** Subscribe to task event notifications.
1136 *
1137 * @param evno Event type to subscribe.
1138 * @param handler Notification handler.
1139 * @param data Notification handler client data.
1140 *
[cde999a]1141 * @return Zero on success or an error code.
[8820544]1142 *
1143 */
1144int async_event_task_subscribe(event_task_type_t evno,
1145 async_notification_handler_t handler, void *data)
1146{
1147 notification_t *notification =
1148 (notification_t *) malloc(sizeof(notification_t));
1149 if (!notification)
1150 return ENOMEM;
1151
1152 futex_down(&async_futex);
1153
1154 sysarg_t imethod = notification_avail;
1155 notification_avail++;
1156
1157 notification->imethod = imethod;
1158 notification->handler = handler;
1159 notification->data = data;
1160
1161 hash_table_insert(&notification_hash_table, &notification->link);
1162
1163 futex_up(&async_futex);
1164
1165 return ipc_event_task_subscribe(evno, imethod);
1166}
1167
1168/** Unmask event notifications.
1169 *
1170 * @param evno Event type to unmask.
1171 *
1172 * @return Value returned by the kernel.
1173 *
1174 */
1175int async_event_unmask(event_type_t evno)
1176{
1177 return ipc_event_unmask(evno);
1178}
1179
1180/** Unmask task event notifications.
1181 *
1182 * @param evno Event type to unmask.
1183 *
1184 * @return Value returned by the kernel.
1185 *
1186 */
1187int async_event_task_unmask(event_task_type_t evno)
1188{
1189 return ipc_event_task_unmask(evno);
1190}
1191
[e70bfa5]1192/** Return new incoming message for the current (fibril-local) connection.
1193 *
[01c3bb4]1194 * @param call Storage where the incoming call data will be stored.
1195 * @param usecs Timeout in microseconds. Zero denotes no timeout.
[e70bfa5]1196 *
[01c3bb4]1197 * @return If no timeout was specified, then a handle of the incoming call is
1198 * returned. If a timeout is specified, then a handle of the incoming
1199 * call is returned unless the timeout expires prior to receiving a
1200 * message. In that case zero CAP_NIL is returned.
[e70bfa5]1201 */
[01c3bb4]1202cap_handle_t async_get_call_timeout(ipc_call_t *call, suseconds_t usecs)
[80649a91]1203{
[79ae36dd]1204 assert(call);
1205 assert(fibril_connection);
[c07544d3]1206
1207 /* Why doing this?
[79ae36dd]1208 * GCC 4.1.0 coughs on fibril_connection-> dereference.
[6c46350]1209 * GCC 4.1.1 happilly puts the rdhwr instruction in delay slot.
[c07544d3]1210 * I would never expect to find so many errors in
1211 * a compiler.
[6c46350]1212 */
[79ae36dd]1213 connection_t *conn = fibril_connection;
[c07544d3]1214
[01ff41c]1215 futex_down(&async_futex);
[c07544d3]1216
[49d072e]1217 if (usecs) {
[45cbcaf4]1218 getuptime(&conn->wdata.to_event.expires);
[7f9d97f3]1219 tv_add_diff(&conn->wdata.to_event.expires, usecs);
[c07544d3]1220 } else
[f53cc81]1221 conn->wdata.to_event.inlist = false;
[c07544d3]1222
[e70bfa5]1223 /* If nothing in queue, wait until something arrives */
[6c46350]1224 while (list_empty(&conn->msg_queue)) {
[01c3bb4]1225 if (conn->close_chandle) {
[8c8f8d6]1226 /*
1227 * Handle the case when the connection was already
1228 * closed by the client but the server did not notice
1229 * the first IPC_M_PHONE_HUNGUP call and continues to
1230 * call async_get_call_timeout(). Repeat
[47b7006]1231 * IPC_M_PHONE_HUNGUP until the caller notices.
[8c8f8d6]1232 */
1233 memset(call, 0, sizeof(ipc_call_t));
[228e490]1234 IPC_SET_IMETHOD(*call, IPC_M_PHONE_HUNGUP);
[8c8f8d6]1235 futex_up(&async_futex);
[01c3bb4]1236 return conn->close_chandle;
[8c8f8d6]1237 }
[47b7006]1238
[085bd54]1239 if (usecs)
[b6ee5b1]1240 async_insert_timeout(&conn->wdata);
[c07544d3]1241
1242 conn->wdata.active = false;
1243
[c7509e5]1244 /*
1245 * Note: the current fibril will be rescheduled either due to a
1246 * timeout or due to an arriving message destined to it. In the
1247 * former case, handle_expired_timeouts() and, in the latter
1248 * case, route_call() will perform the wakeup.
1249 */
[116d3f6f]1250 fibril_switch(FIBRIL_TO_MANAGER);
[c07544d3]1251
[e70bfa5]1252 /*
[c07544d3]1253 * Futex is up after getting back from async_manager.
1254 * Get it again.
[c7509e5]1255 */
[49d072e]1256 futex_down(&async_futex);
[f53cc81]1257 if ((usecs) && (conn->wdata.to_event.occurred)
[c07544d3]1258 && (list_empty(&conn->msg_queue))) {
[e70bfa5]1259 /* If we timed out -> exit */
[49d072e]1260 futex_up(&async_futex);
[01c3bb4]1261 return CAP_NIL;
[49d072e]1262 }
[450cd3a]1263 }
1264
[57dea62]1265 msg_t *msg = list_get_instance(list_first(&conn->msg_queue),
1266 msg_t, link);
[80649a91]1267 list_remove(&msg->link);
[c07544d3]1268
[01c3bb4]1269 cap_handle_t chandle = msg->chandle;
[80649a91]1270 *call = msg->call;
1271 free(msg);
1272
[01ff41c]1273 futex_up(&async_futex);
[01c3bb4]1274 return chandle;
[80649a91]1275}
1276
[455f190]1277void *async_get_client_data(void)
1278{
1279 assert(fibril_connection);
1280 return fibril_connection->client->data;
1281}
1282
[e2ab36f1]1283void *async_get_client_data_by_id(task_id_t client_id)
[455f190]1284{
[e2ab36f1]1285 client_t *client = async_client_get(client_id, false);
[455f190]1286 if (!client)
1287 return NULL;
[57dea62]1288
[455f190]1289 if (!client->data) {
1290 async_client_put(client);
1291 return NULL;
1292 }
[57dea62]1293
[455f190]1294 return client->data;
1295}
1296
[e2ab36f1]1297void async_put_client_data_by_id(task_id_t client_id)
[455f190]1298{
[e2ab36f1]1299 client_t *client = async_client_get(client_id, false);
[57dea62]1300
[455f190]1301 assert(client);
1302 assert(client->data);
[57dea62]1303
[cdc8ee2d]1304 /* Drop the reference we got in async_get_client_data_by_hash(). */
1305 async_client_put(client);
[57dea62]1306
[cdc8ee2d]1307 /* Drop our own reference we got at the beginning of this function. */
[455f190]1308 async_client_put(client);
1309}
1310
[566992e1]1311static port_t *async_find_port(iface_t iface, port_id_t port_id)
1312{
1313 port_t *port = NULL;
1314
1315 futex_down(&async_futex);
1316
1317 ht_link_t *link = hash_table_find(&interface_hash_table, &iface);
1318 if (link) {
1319 interface_t *interface =
1320 hash_table_get_inst(link, interface_t, link);
1321
1322 link = hash_table_find(&interface->port_hash_table, &port_id);
1323 if (link)
1324 port = hash_table_get_inst(link, port_t, link);
1325 }
1326
1327 futex_up(&async_futex);
1328
1329 return port;
1330}
1331
[36c9234]1332/** Handle a call that was received.
1333 *
1334 * If the call has the IPC_M_CONNECT_ME_TO method, a new connection is created.
1335 * Otherwise the call is routed to its connection fibril.
1336 *
[01c3bb4]1337 * @param chandle Handle of the incoming call.
1338 * @param call Data of the incoming call.
[6b21292]1339 *
[36c9234]1340 */
[01c3bb4]1341static void handle_call(cap_handle_t chandle, ipc_call_t *call)
[80649a91]1342{
[79ae36dd]1343 assert(call);
1344
[b688fd8]1345 /* Kernel notification */
[addbce4]1346 if ((chandle == CAP_NIL) && (call->flags & IPC_CALL_NOTIF)) {
[c170438]1347 fibril_t *fibril = (fibril_t *) __tcb_get()->fibril_data;
1348 unsigned oldsw = fibril->switches;
[58563585]1349
[01c3bb4]1350 process_notification(call);
[58563585]1351
[c170438]1352 if (oldsw != fibril->switches) {
1353 /*
1354 * The notification handler did not execute atomically
1355 * and so the current manager fibril assumed the role of
1356 * a notification fibril. While waiting for its
1357 * resources, it switched to another manager fibril that
1358 * had already existed or it created a new one. We
1359 * therefore know there is at least yet another
1360 * manager fibril that can take over. We now kill the
1361 * current 'notification' fibril to prevent fibril
1362 * population explosion.
1363 */
1364 futex_down(&async_futex);
1365 fibril_switch(FIBRIL_FROM_DEAD);
1366 }
[58563585]1367
[47b7006]1368 return;
[6b21292]1369 }
1370
[566992e1]1371 /* New connection */
1372 if (IPC_GET_IMETHOD(*call) == IPC_M_CONNECT_ME_TO) {
1373 iface_t iface = (iface_t) IPC_GET_ARG1(*call);
1374 sysarg_t in_phone_hash = IPC_GET_ARG5(*call);
1375
[01c3bb4]1376 async_port_handler_t handler = fallback_port_handler;
[566992e1]1377 void *data = fallback_port_data;
1378
1379 // TODO: Currently ignores all ports but the first one
1380 port_t *port = async_find_port(iface, 0);
1381 if (port) {
1382 handler = port->handler;
1383 data = port->data;
1384 }
1385
[01c3bb4]1386 async_new_connection(call->in_task_id, in_phone_hash, chandle,
[566992e1]1387 call, handler, data);
1388 return;
1389 }
1390
[36c9234]1391 /* Try to route the call through the connection hash table */
[01c3bb4]1392 if (route_call(chandle, call))
[47b7006]1393 return;
[6b21292]1394
[44c6d88d]1395 /* Unknown call from unknown phone - hang it up */
[01c3bb4]1396 ipc_answer_0(chandle, EHANGUP);
[450cd3a]1397}
1398
[f2f0392]1399/** Fire all timeouts that expired. */
[c042bdd]1400static void handle_expired_timeouts(void)
1401{
1402 struct timeval tv;
[45cbcaf4]1403 getuptime(&tv);
[c07544d3]1404
[c042bdd]1405 futex_down(&async_futex);
[c07544d3]1406
[b72efe8]1407 link_t *cur = list_first(&timeout_list);
1408 while (cur != NULL) {
[47b7006]1409 awaiter_t *waiter =
1410 list_get_instance(cur, awaiter_t, to_event.link);
[c07544d3]1411
[f53cc81]1412 if (tv_gt(&waiter->to_event.expires, &tv))
[c042bdd]1413 break;
[47b7006]1414
[f53cc81]1415 list_remove(&waiter->to_event.link);
1416 waiter->to_event.inlist = false;
1417 waiter->to_event.occurred = true;
[c07544d3]1418
[36c9234]1419 /*
[c07544d3]1420 * Redundant condition?
1421 * The fibril should not be active when it gets here.
[c042bdd]1422 */
[49d072e]1423 if (!waiter->active) {
[c07544d3]1424 waiter->active = true;
[bc1f1c2]1425 fibril_add_ready(waiter->fid);
[c042bdd]1426 }
[b72efe8]1427
1428 cur = list_first(&timeout_list);
[c042bdd]1429 }
[c07544d3]1430
[c042bdd]1431 futex_up(&async_futex);
1432}
1433
[36c9234]1434/** Endless loop dispatching incoming calls and answers.
1435 *
[c07544d3]1436 * @return Never returns.
1437 *
[36c9234]1438 */
[085bd54]1439static int async_manager_worker(void)
[80649a91]1440{
[c07544d3]1441 while (true) {
[116d3f6f]1442 if (fibril_switch(FIBRIL_FROM_MANAGER)) {
[47b7006]1443 futex_up(&async_futex);
[36c9234]1444 /*
1445 * async_futex is always held when entering a manager
1446 * fibril.
[a46da63]1447 */
[80649a91]1448 continue;
1449 }
[c07544d3]1450
[c042bdd]1451 futex_down(&async_futex);
[c07544d3]1452
1453 suseconds_t timeout;
[1db6dfd]1454 unsigned int flags = SYNCH_FLAGS_NONE;
[c042bdd]1455 if (!list_empty(&timeout_list)) {
[b72efe8]1456 awaiter_t *waiter = list_get_instance(
1457 list_first(&timeout_list), awaiter_t, to_event.link);
[c07544d3]1458
1459 struct timeval tv;
[45cbcaf4]1460 getuptime(&tv);
[c07544d3]1461
[f53cc81]1462 if (tv_gteq(&tv, &waiter->to_event.expires)) {
[6c46350]1463 futex_up(&async_futex);
[c042bdd]1464 handle_expired_timeouts();
[1db6dfd]1465 /*
1466 * Notice that even if the event(s) already
1467 * expired (and thus the other fibril was
1468 * supposed to be running already),
1469 * we check for incoming IPC.
1470 *
1471 * Otherwise, a fibril that continuously
1472 * creates (almost) expired events could
1473 * prevent IPC retrieval from the kernel.
1474 */
1475 timeout = 0;
1476 flags = SYNCH_FLAGS_NON_BLOCKING;
1477
1478 } else {
[7f9d97f3]1479 timeout = tv_sub_diff(&waiter->to_event.expires,
1480 &tv);
[1db6dfd]1481 futex_up(&async_futex);
1482 }
1483 } else {
1484 futex_up(&async_futex);
[0b99e40]1485 timeout = SYNCH_NO_TIMEOUT;
[1db6dfd]1486 }
[47b7006]1487
[8619f25]1488 atomic_inc(&threads_in_ipc_wait);
[c07544d3]1489
1490 ipc_call_t call;
[6deb2cd]1491 int rc = ipc_wait_cycle(&call, timeout, flags);
[c07544d3]1492
[8619f25]1493 atomic_dec(&threads_in_ipc_wait);
[47b7006]1494
[6deb2cd]1495 assert(rc == EOK);
[01c3bb4]1496
[6deb2cd]1497 if (call.cap_handle == CAP_NIL) {
[a1026da]1498 if ((call.flags &
1499 (IPC_CALL_NOTIF | IPC_CALL_ANSWERED)) == 0) {
1500 /* Neither a notification nor an answer. */
[01c3bb4]1501 handle_expired_timeouts();
1502 continue;
1503 }
[0b99e40]1504 }
[01c3bb4]1505
[addbce4]1506 if (call.flags & IPC_CALL_ANSWERED)
[80649a91]1507 continue;
[01c3bb4]1508
[6deb2cd]1509 handle_call(call.cap_handle, &call);
[80649a91]1510 }
[01c3bb4]1511
[a46da63]1512 return 0;
[80649a91]1513}
1514
[36c9234]1515/** Function to start async_manager as a standalone fibril.
[c07544d3]1516 *
[36c9234]1517 * When more kernel threads are used, one async manager should exist per thread.
1518 *
[c07544d3]1519 * @param arg Unused.
1520 * @return Never returns.
[36c9234]1521 *
[a2cd194]1522 */
[9591265]1523static int async_manager_fibril(void *arg)
[80649a91]1524{
[a46da63]1525 futex_up(&async_futex);
[c07544d3]1526
[36c9234]1527 /*
1528 * async_futex is always locked when entering manager
1529 */
[085bd54]1530 async_manager_worker();
[a46da63]1531
1532 return 0;
[80649a91]1533}
[450cd3a]1534
[36c9234]1535/** Add one manager to manager list. */
[80649a91]1536void async_create_manager(void)
[450cd3a]1537{
[c170438]1538 fid_t fid = fibril_create_generic(async_manager_fibril, NULL, PAGE_SIZE);
[86d7bfa]1539 if (fid != 0)
1540 fibril_add_manager(fid);
[80649a91]1541}
1542
1543/** Remove one manager from manager list */
1544void async_destroy_manager(void)
1545{
[bc1f1c2]1546 fibril_remove_manager();
[80649a91]1547}
1548
[36c9234]1549/** Initialize the async framework.
1550 *
1551 */
[47b7006]1552void __async_init(void)
[80649a91]1553{
[566992e1]1554 if (!hash_table_create(&interface_hash_table, 0, 0,
1555 &interface_hash_table_ops))
1556 abort();
1557
[062d900]1558 if (!hash_table_create(&client_hash_table, 0, 0, &client_hash_table_ops))
[47b7006]1559 abort();
[80649a91]1560
[062d900]1561 if (!hash_table_create(&conn_hash_table, 0, 0, &conn_hash_table_ops))
[47b7006]1562 abort();
[79ae36dd]1563
[8820544]1564 if (!hash_table_create(&notification_hash_table, 0, 0,
1565 &notification_hash_table_ops))
1566 abort();
1567
[79ae36dd]1568 session_ns = (async_sess_t *) malloc(sizeof(async_sess_t));
1569 if (session_ns == NULL)
1570 abort();
1571
[566992e1]1572 session_ns->iface = 0;
[79ae36dd]1573 session_ns->mgmt = EXCHANGE_ATOMIC;
1574 session_ns->phone = PHONE_NS;
1575 session_ns->arg1 = 0;
1576 session_ns->arg2 = 0;
1577 session_ns->arg3 = 0;
1578
[58cbf8d5]1579 fibril_mutex_initialize(&session_ns->remote_state_mtx);
1580 session_ns->remote_state_data = NULL;
1581
[79ae36dd]1582 list_initialize(&session_ns->exch_list);
1583 fibril_mutex_initialize(&session_ns->mutex);
1584 atomic_set(&session_ns->refcnt, 0);
[450cd3a]1585}
[01ff41c]1586
[36c9234]1587/** Reply received callback.
[01ff41c]1588 *
[36c9234]1589 * This function is called whenever a reply for an asynchronous message sent out
1590 * by the asynchronous framework is received.
1591 *
1592 * Notify the fibril which is waiting for this message that it has arrived.
1593 *
[c07544d3]1594 * @param arg Pointer to the asynchronous message record.
1595 * @param retval Value returned in the answer.
1596 * @param data Call data of the answer.
[47b7006]1597 *
[01ff41c]1598 */
[79ae36dd]1599void reply_received(void *arg, int retval, ipc_call_t *data)
[01ff41c]1600{
[79ae36dd]1601 assert(arg);
1602
[9db9b10]1603 futex_down(&async_futex);
1604
[c07544d3]1605 amsg_t *msg = (amsg_t *) arg;
[01ff41c]1606 msg->retval = retval;
[c07544d3]1607
[36c9234]1608 /* Copy data after futex_down, just in case the call was detached */
[9db9b10]1609 if ((msg->dataptr) && (data))
[c07544d3]1610 *msg->dataptr = *data;
1611
[c042bdd]1612 write_barrier();
[c07544d3]1613
[c042bdd]1614 /* Remove message from timeout list */
[f53cc81]1615 if (msg->wdata.to_event.inlist)
1616 list_remove(&msg->wdata.to_event.link);
[c07544d3]1617
1618 msg->done = true;
[57dea62]1619
[47c9a8c]1620 if (msg->forget) {
1621 assert(msg->wdata.active);
1622 amsg_destroy(msg);
1623 } else if (!msg->wdata.active) {
[c07544d3]1624 msg->wdata.active = true;
[bc1f1c2]1625 fibril_add_ready(msg->wdata.fid);
[01ff41c]1626 }
[57dea62]1627
[01ff41c]1628 futex_up(&async_futex);
1629}
1630
[36c9234]1631/** Send message and return id of the sent message.
1632 *
1633 * The return value can be used as input for async_wait() to wait for
1634 * completion.
[01ff41c]1635 *
[79ae36dd]1636 * @param exch Exchange for sending the message.
1637 * @param imethod Service-defined interface and method.
[c07544d3]1638 * @param arg1 Service-defined payload argument.
1639 * @param arg2 Service-defined payload argument.
1640 * @param arg3 Service-defined payload argument.
1641 * @param arg4 Service-defined payload argument.
[01c3bb4]1642 * @param dataptr If non-NULL, storage where the reply data will be stored.
[c07544d3]1643 *
1644 * @return Hash of the sent message or 0 on error.
[36c9234]1645 *
[01ff41c]1646 */
[79ae36dd]1647aid_t async_send_fast(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
[96b02eb9]1648 sysarg_t arg2, sysarg_t arg3, sysarg_t arg4, ipc_call_t *dataptr)
[01ff41c]1649{
[79ae36dd]1650 if (exch == NULL)
1651 return 0;
[c07544d3]1652
[47c9a8c]1653 amsg_t *msg = amsg_create();
[79ae36dd]1654 if (msg == NULL)
[c07544d3]1655 return 0;
[6b21292]1656
[01ff41c]1657 msg->dataptr = dataptr;
[c07544d3]1658 msg->wdata.active = true;
1659
[79ae36dd]1660 ipc_call_async_4(exch->phone, imethod, arg1, arg2, arg3, arg4, msg,
[dcc150cb]1661 reply_received);
[6b21292]1662
[01ff41c]1663 return (aid_t) msg;
1664}
1665
[90f5d64]1666/** Send message and return id of the sent message
1667 *
[36c9234]1668 * The return value can be used as input for async_wait() to wait for
1669 * completion.
1670 *
[79ae36dd]1671 * @param exch Exchange for sending the message.
1672 * @param imethod Service-defined interface and method.
[c07544d3]1673 * @param arg1 Service-defined payload argument.
1674 * @param arg2 Service-defined payload argument.
1675 * @param arg3 Service-defined payload argument.
1676 * @param arg4 Service-defined payload argument.
1677 * @param arg5 Service-defined payload argument.
1678 * @param dataptr If non-NULL, storage where the reply data will be
1679 * stored.
1680 *
1681 * @return Hash of the sent message or 0 on error.
[36c9234]1682 *
[90f5d64]1683 */
[79ae36dd]1684aid_t async_send_slow(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
[96b02eb9]1685 sysarg_t arg2, sysarg_t arg3, sysarg_t arg4, sysarg_t arg5,
[0cc4313]1686 ipc_call_t *dataptr)
[90f5d64]1687{
[79ae36dd]1688 if (exch == NULL)
1689 return 0;
1690
[47c9a8c]1691 amsg_t *msg = amsg_create();
[79ae36dd]1692 if (msg == NULL)
[c07544d3]1693 return 0;
1694
[90f5d64]1695 msg->dataptr = dataptr;
[c07544d3]1696 msg->wdata.active = true;
[6b21292]1697
[79ae36dd]1698 ipc_call_async_5(exch->phone, imethod, arg1, arg2, arg3, arg4, arg5,
[dcc150cb]1699 msg, reply_received);
[6b21292]1700
[90f5d64]1701 return (aid_t) msg;
1702}
1703
[36c9234]1704/** Wait for a message sent by the async framework.
[01ff41c]1705 *
[c07544d3]1706 * @param amsgid Hash of the message to wait for.
1707 * @param retval Pointer to storage where the retval of the answer will
1708 * be stored.
1709 *
[01ff41c]1710 */
[25a179e]1711void async_wait_for(aid_t amsgid, int *retval)
[01ff41c]1712{
[79ae36dd]1713 assert(amsgid);
1714
[01ff41c]1715 amsg_t *msg = (amsg_t *) amsgid;
[c07544d3]1716
[01ff41c]1717 futex_down(&async_futex);
[57dea62]1718
[47c9a8c]1719 assert(!msg->forget);
1720 assert(!msg->destroyed);
[57dea62]1721
[01ff41c]1722 if (msg->done) {
1723 futex_up(&async_futex);
1724 goto done;
1725 }
[c07544d3]1726
[bc1f1c2]1727 msg->wdata.fid = fibril_get_id();
[c07544d3]1728 msg->wdata.active = false;
[f53cc81]1729 msg->wdata.to_event.inlist = false;
[c07544d3]1730
[36c9234]1731 /* Leave the async_futex locked when entering this function */
[116d3f6f]1732 fibril_switch(FIBRIL_TO_MANAGER);
[c07544d3]1733
1734 /* Futex is up automatically after fibril_switch */
1735
[01ff41c]1736done:
1737 if (retval)
1738 *retval = msg->retval;
[c07544d3]1739
[47c9a8c]1740 amsg_destroy(msg);
[01ff41c]1741}
[0b99e40]1742
[36c9234]1743/** Wait for a message sent by the async framework, timeout variant.
[47c9a8c]1744 *
1745 * If the wait times out, the caller may choose to either wait again by calling
1746 * async_wait_for() or async_wait_timeout(), or forget the message via
1747 * async_forget().
[c042bdd]1748 *
[c07544d3]1749 * @param amsgid Hash of the message to wait for.
1750 * @param retval Pointer to storage where the retval of the answer will
1751 * be stored.
1752 * @param timeout Timeout in microseconds.
1753 *
1754 * @return Zero on success, ETIMEOUT if the timeout has expired.
[c042bdd]1755 *
1756 */
[25a179e]1757int async_wait_timeout(aid_t amsgid, int *retval, suseconds_t timeout)
[c042bdd]1758{
[79ae36dd]1759 assert(amsgid);
1760
[c042bdd]1761 amsg_t *msg = (amsg_t *) amsgid;
[57dea62]1762
[c042bdd]1763 futex_down(&async_futex);
[57dea62]1764
[47c9a8c]1765 assert(!msg->forget);
1766 assert(!msg->destroyed);
[57dea62]1767
[c042bdd]1768 if (msg->done) {
1769 futex_up(&async_futex);
1770 goto done;
1771 }
[c07544d3]1772
[1db6dfd]1773 /*
1774 * Negative timeout is converted to zero timeout to avoid
1775 * using tv_add with negative augmenter.
1776 */
1777 if (timeout < 0)
1778 timeout = 0;
[57dea62]1779
[45cbcaf4]1780 getuptime(&msg->wdata.to_event.expires);
[7f9d97f3]1781 tv_add_diff(&msg->wdata.to_event.expires, timeout);
[c07544d3]1782
[1db6dfd]1783 /*
1784 * Current fibril is inserted as waiting regardless of the
1785 * "size" of the timeout.
1786 *
1787 * Checking for msg->done and immediately bailing out when
1788 * timeout == 0 would mean that the manager fibril would never
1789 * run (consider single threaded program).
1790 * Thus the IPC answer would be never retrieved from the kernel.
1791 *
1792 * Notice that the actual delay would be very small because we
1793 * - switch to manager fibril
1794 * - the manager sees expired timeout
1795 * - and thus adds us back to ready queue
1796 * - manager switches back to some ready fibril
1797 * (prior it, it checks for incoming IPC).
1798 *
1799 */
[bc1f1c2]1800 msg->wdata.fid = fibril_get_id();
[c07544d3]1801 msg->wdata.active = false;
[b6ee5b1]1802 async_insert_timeout(&msg->wdata);
[c07544d3]1803
[36c9234]1804 /* Leave the async_futex locked when entering this function */
[116d3f6f]1805 fibril_switch(FIBRIL_TO_MANAGER);
[c07544d3]1806
1807 /* Futex is up automatically after fibril_switch */
1808
[c042bdd]1809 if (!msg->done)
1810 return ETIMEOUT;
[c07544d3]1811
[c042bdd]1812done:
1813 if (retval)
1814 *retval = msg->retval;
[c07544d3]1815
[47c9a8c]1816 amsg_destroy(msg);
[c07544d3]1817
[c042bdd]1818 return 0;
1819}
[47c9a8c]1820
1821/** Discard the message / reply on arrival.
1822 *
1823 * The message will be marked to be discarded once the reply arrives in
1824 * reply_received(). It is not allowed to call async_wait_for() or
1825 * async_wait_timeout() on this message after a call to this function.
1826 *
1827 * @param amsgid Hash of the message to forget.
1828 */
1829void async_forget(aid_t amsgid)
1830{
1831 amsg_t *msg = (amsg_t *) amsgid;
[57dea62]1832
[47c9a8c]1833 assert(msg);
1834 assert(!msg->forget);
1835 assert(!msg->destroyed);
[57dea62]1836
[47c9a8c]1837 futex_down(&async_futex);
[57dea62]1838
[375e501]1839 if (msg->done) {
[47c9a8c]1840 amsg_destroy(msg);
[375e501]1841 } else {
1842 msg->dataptr = NULL;
[47c9a8c]1843 msg->forget = true;
[375e501]1844 }
[57dea62]1845
[47c9a8c]1846 futex_up(&async_futex);
1847}
[0b99e40]1848
[36c9234]1849/** Wait for specified time.
[44c6d88d]1850 *
[36c9234]1851 * The current fibril is suspended but the thread continues to execute.
1852 *
[c07544d3]1853 * @param timeout Duration of the wait in microseconds.
1854 *
[44c6d88d]1855 */
1856void async_usleep(suseconds_t timeout)
1857{
[47c9a8c]1858 amsg_t *msg = amsg_create();
[44c6d88d]1859 if (!msg)
1860 return;
[6b21292]1861
[bc1f1c2]1862 msg->wdata.fid = fibril_get_id();
[6b21292]1863
[45cbcaf4]1864 getuptime(&msg->wdata.to_event.expires);
[7f9d97f3]1865 tv_add_diff(&msg->wdata.to_event.expires, timeout);
[6b21292]1866
[44c6d88d]1867 futex_down(&async_futex);
[c07544d3]1868
[b6ee5b1]1869 async_insert_timeout(&msg->wdata);
[c07544d3]1870
[36c9234]1871 /* Leave the async_futex locked when entering this function */
[116d3f6f]1872 fibril_switch(FIBRIL_TO_MANAGER);
[c07544d3]1873
1874 /* Futex is up automatically after fibril_switch() */
1875
[47c9a8c]1876 amsg_destroy(msg);
[44c6d88d]1877}
[da0c91e7]1878
[39026d7c]1879/** Delay execution for the specified number of seconds
1880 *
1881 * @param sec Number of seconds to sleep
1882 */
1883void async_sleep(unsigned int sec)
1884{
1885 /*
1886 * Sleep in 1000 second steps to support
1887 * full argument range
1888 */
1889
1890 while (sec > 0) {
1891 unsigned int period = (sec > 1000) ? 1000 : sec;
1892
1893 async_usleep(period * 1000000);
1894 sec -= period;
1895 }
1896}
1897
[0cc4313]1898/** Pseudo-synchronous message sending - fast version.
1899 *
1900 * Send message asynchronously and return only after the reply arrives.
1901 *
1902 * This function can only transfer 4 register payload arguments. For
1903 * transferring more arguments, see the slower async_req_slow().
1904 *
[79ae36dd]1905 * @param exch Exchange for sending the message.
1906 * @param imethod Interface and method of the call.
[c07544d3]1907 * @param arg1 Service-defined payload argument.
1908 * @param arg2 Service-defined payload argument.
1909 * @param arg3 Service-defined payload argument.
1910 * @param arg4 Service-defined payload argument.
1911 * @param r1 If non-NULL, storage for the 1st reply argument.
1912 * @param r2 If non-NULL, storage for the 2nd reply argument.
1913 * @param r3 If non-NULL, storage for the 3rd reply argument.
1914 * @param r4 If non-NULL, storage for the 4th reply argument.
1915 * @param r5 If non-NULL, storage for the 5th reply argument.
1916 *
[cde999a]1917 * @return Return code of the reply or an error code.
[c07544d3]1918 *
[0cc4313]1919 */
[25a179e]1920int async_req_fast(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
[96b02eb9]1921 sysarg_t arg2, sysarg_t arg3, sysarg_t arg4, sysarg_t *r1, sysarg_t *r2,
1922 sysarg_t *r3, sysarg_t *r4, sysarg_t *r5)
[085bd54]1923{
[79ae36dd]1924 if (exch == NULL)
1925 return ENOENT;
1926
[0cc4313]1927 ipc_call_t result;
[79ae36dd]1928 aid_t aid = async_send_4(exch, imethod, arg1, arg2, arg3, arg4,
[0cc4313]1929 &result);
[c07544d3]1930
[25a179e]1931 int rc;
[79ae36dd]1932 async_wait_for(aid, &rc);
[c07544d3]1933
1934 if (r1)
[0cc4313]1935 *r1 = IPC_GET_ARG1(result);
[c07544d3]1936
[0cc4313]1937 if (r2)
1938 *r2 = IPC_GET_ARG2(result);
[c07544d3]1939
[0cc4313]1940 if (r3)
1941 *r3 = IPC_GET_ARG3(result);
[c07544d3]1942
[0cc4313]1943 if (r4)
1944 *r4 = IPC_GET_ARG4(result);
[c07544d3]1945
[0cc4313]1946 if (r5)
1947 *r5 = IPC_GET_ARG5(result);
[c07544d3]1948
[0cc4313]1949 return rc;
[085bd54]1950}
1951
[0cc4313]1952/** Pseudo-synchronous message sending - slow version.
1953 *
1954 * Send message asynchronously and return only after the reply arrives.
1955 *
[79ae36dd]1956 * @param exch Exchange for sending the message.
1957 * @param imethod Interface and method of the call.
[c07544d3]1958 * @param arg1 Service-defined payload argument.
1959 * @param arg2 Service-defined payload argument.
1960 * @param arg3 Service-defined payload argument.
1961 * @param arg4 Service-defined payload argument.
1962 * @param arg5 Service-defined payload argument.
1963 * @param r1 If non-NULL, storage for the 1st reply argument.
1964 * @param r2 If non-NULL, storage for the 2nd reply argument.
1965 * @param r3 If non-NULL, storage for the 3rd reply argument.
1966 * @param r4 If non-NULL, storage for the 4th reply argument.
1967 * @param r5 If non-NULL, storage for the 5th reply argument.
1968 *
[cde999a]1969 * @return Return code of the reply or an error code.
[c07544d3]1970 *
[0cc4313]1971 */
[25a179e]1972int async_req_slow(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
[96b02eb9]1973 sysarg_t arg2, sysarg_t arg3, sysarg_t arg4, sysarg_t arg5, sysarg_t *r1,
1974 sysarg_t *r2, sysarg_t *r3, sysarg_t *r4, sysarg_t *r5)
[085bd54]1975{
[79ae36dd]1976 if (exch == NULL)
1977 return ENOENT;
1978
[0cc4313]1979 ipc_call_t result;
[79ae36dd]1980 aid_t aid = async_send_5(exch, imethod, arg1, arg2, arg3, arg4, arg5,
[0cc4313]1981 &result);
[c07544d3]1982
[25a179e]1983 int rc;
[79ae36dd]1984 async_wait_for(aid, &rc);
[c07544d3]1985
1986 if (r1)
[0cc4313]1987 *r1 = IPC_GET_ARG1(result);
[c07544d3]1988
[0cc4313]1989 if (r2)
1990 *r2 = IPC_GET_ARG2(result);
[c07544d3]1991
[0cc4313]1992 if (r3)
1993 *r3 = IPC_GET_ARG3(result);
[c07544d3]1994
[0cc4313]1995 if (r4)
1996 *r4 = IPC_GET_ARG4(result);
[c07544d3]1997
[0cc4313]1998 if (r5)
1999 *r5 = IPC_GET_ARG5(result);
[c07544d3]2000
[0cc4313]2001 return rc;
[085bd54]2002}
[b2951e2]2003
[79ae36dd]2004void async_msg_0(async_exch_t *exch, sysarg_t imethod)
[64d2b10]2005{
[79ae36dd]2006 if (exch != NULL)
[dcc150cb]2007 ipc_call_async_0(exch->phone, imethod, NULL, NULL);
[64d2b10]2008}
2009
[79ae36dd]2010void async_msg_1(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1)
[64d2b10]2011{
[79ae36dd]2012 if (exch != NULL)
[dcc150cb]2013 ipc_call_async_1(exch->phone, imethod, arg1, NULL, NULL);
[64d2b10]2014}
2015
[79ae36dd]2016void async_msg_2(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
2017 sysarg_t arg2)
[64d2b10]2018{
[79ae36dd]2019 if (exch != NULL)
[dcc150cb]2020 ipc_call_async_2(exch->phone, imethod, arg1, arg2, NULL, NULL);
[64d2b10]2021}
2022
[79ae36dd]2023void async_msg_3(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
2024 sysarg_t arg2, sysarg_t arg3)
[64d2b10]2025{
[79ae36dd]2026 if (exch != NULL)
2027 ipc_call_async_3(exch->phone, imethod, arg1, arg2, arg3, NULL,
[dcc150cb]2028 NULL);
[64d2b10]2029}
2030
[79ae36dd]2031void async_msg_4(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
2032 sysarg_t arg2, sysarg_t arg3, sysarg_t arg4)
[64d2b10]2033{
[79ae36dd]2034 if (exch != NULL)
2035 ipc_call_async_4(exch->phone, imethod, arg1, arg2, arg3, arg4,
[dcc150cb]2036 NULL, NULL);
[64d2b10]2037}
2038
[79ae36dd]2039void async_msg_5(async_exch_t *exch, sysarg_t imethod, sysarg_t arg1,
2040 sysarg_t arg2, sysarg_t arg3, sysarg_t arg4, sysarg_t arg5)
[64d2b10]2041{
[79ae36dd]2042 if (exch != NULL)
2043 ipc_call_async_5(exch->phone, imethod, arg1, arg2, arg3, arg4,
[dcc150cb]2044 arg5, NULL, NULL);
[64d2b10]2045}
2046
[25a179e]2047int async_answer_0(cap_handle_t chandle, int retval)
[64d2b10]2048{
[01c3bb4]2049 return ipc_answer_0(chandle, retval);
[64d2b10]2050}
2051
[25a179e]2052int async_answer_1(cap_handle_t chandle, int retval, sysarg_t arg1)
[64d2b10]2053{
[01c3bb4]2054 return ipc_answer_1(chandle, retval, arg1);
[64d2b10]2055}
2056
[25a179e]2057int async_answer_2(cap_handle_t chandle, int retval, sysarg_t arg1,
[64d2b10]2058 sysarg_t arg2)
2059{
[01c3bb4]2060 return ipc_answer_2(chandle, retval, arg1, arg2);
[64d2b10]2061}
2062
[25a179e]2063int async_answer_3(cap_handle_t chandle, int retval, sysarg_t arg1,
[64d2b10]2064 sysarg_t arg2, sysarg_t arg3)
2065{
[01c3bb4]2066 return ipc_answer_3(chandle, retval, arg1, arg2, arg3);
[64d2b10]2067}
2068
[25a179e]2069int async_answer_4(cap_handle_t chandle, int retval, sysarg_t arg1,
[64d2b10]2070 sysarg_t arg2, sysarg_t arg3, sysarg_t arg4)
2071{
[01c3bb4]2072 return ipc_answer_4(chandle, retval, arg1, arg2, arg3, arg4);
[64d2b10]2073}
2074
[25a179e]2075int async_answer_5(cap_handle_t chandle, int retval, sysarg_t arg1,
[64d2b10]2076 sysarg_t arg2, sysarg_t arg3, sysarg_t arg4, sysarg_t arg5)
2077{
[01c3bb4]2078 return ipc_answer_5(chandle, retval, arg1, arg2, arg3, arg4, arg5);
[64d2b10]2079}
2080
[01c3bb4]2081int async_forward_fast(cap_handle_t chandle, async_exch_t *exch,
[79ae36dd]2082 sysarg_t imethod, sysarg_t arg1, sysarg_t arg2, unsigned int mode)
[64d2b10]2083{
[79ae36dd]2084 if (exch == NULL)
2085 return ENOENT;
2086
[01c3bb4]2087 return ipc_forward_fast(chandle, exch->phone, imethod, arg1, arg2, mode);
[64d2b10]2088}
2089
[01c3bb4]2090int async_forward_slow(cap_handle_t chandle, async_exch_t *exch,
[79ae36dd]2091 sysarg_t imethod, sysarg_t arg1, sysarg_t arg2, sysarg_t arg3,
2092 sysarg_t arg4, sysarg_t arg5, unsigned int mode)
[64d2b10]2093{
[79ae36dd]2094 if (exch == NULL)
2095 return ENOENT;
2096
[01c3bb4]2097 return ipc_forward_slow(chandle, exch->phone, imethod, arg1, arg2, arg3,
[79ae36dd]2098 arg4, arg5, mode);
[64d2b10]2099}
2100
[007e6efa]2101/** Wrapper for making IPC_M_CONNECT_TO_ME calls using the async framework.
2102 *
2103 * Ask through phone for a new connection to some service.
2104 *
[79ae36dd]2105 * @param exch Exchange for sending the message.
[007e6efa]2106 * @param arg1 User defined argument.
2107 * @param arg2 User defined argument.
2108 * @param arg3 User defined argument.
2109 *
[cde999a]2110 * @return Zero on success or an error code.
[007e6efa]2111 *
2112 */
[79ae36dd]2113int async_connect_to_me(async_exch_t *exch, sysarg_t arg1, sysarg_t arg2,
[f9b2cb4c]2114 sysarg_t arg3)
[007e6efa]2115{
[79ae36dd]2116 if (exch == NULL)
2117 return ENOENT;
2118
[ab34cc9]2119 ipc_call_t answer;
[f9b2cb4c]2120 aid_t req = async_send_3(exch, IPC_M_CONNECT_TO_ME, arg1, arg2, arg3,
[ab34cc9]2121 &answer);
[f9b2cb4c]2122
[25a179e]2123 int rc;
[ab34cc9]2124 async_wait_for(req, &rc);
[007e6efa]2125 if (rc != EOK)
[ab34cc9]2126 return (int) rc;
[007e6efa]2127
2128 return EOK;
2129}
2130
[79ae36dd]2131static int async_connect_me_to_internal(int phone, sysarg_t arg1, sysarg_t arg2,
[a99cbc1e]2132 sysarg_t arg3, sysarg_t arg4, int *out_phone)
[f74392f]2133{
[79ae36dd]2134 ipc_call_t result;
2135
[a99cbc1e]2136 // XXX: Workaround for GCC's inability to infer association between
2137 // rc == EOK and *out_phone being assigned.
2138 *out_phone = -1;
2139
[47c9a8c]2140 amsg_t *msg = amsg_create();
2141 if (!msg)
[79ae36dd]2142 return ENOENT;
2143
2144 msg->dataptr = &result;
2145 msg->wdata.active = true;
2146
2147 ipc_call_async_4(phone, IPC_M_CONNECT_ME_TO, arg1, arg2, arg3, arg4,
[dcc150cb]2148 msg, reply_received);
[79ae36dd]2149
[25a179e]2150 int rc;
[79ae36dd]2151 async_wait_for((aid_t) msg, &rc);
[f74392f]2152
[007e6efa]2153 if (rc != EOK)
[f74392f]2154 return rc;
[007e6efa]2155
[a99cbc1e]2156 *out_phone = (int) IPC_GET_ARG5(result);
2157 return EOK;
[79ae36dd]2158}
2159
2160/** Wrapper for making IPC_M_CONNECT_ME_TO calls using the async framework.
2161 *
2162 * Ask through for a new connection to some service.
2163 *
2164 * @param mgmt Exchange management style.
2165 * @param exch Exchange for sending the message.
2166 * @param arg1 User defined argument.
2167 * @param arg2 User defined argument.
2168 * @param arg3 User defined argument.
2169 *
2170 * @return New session on success or NULL on error.
2171 *
2172 */
2173async_sess_t *async_connect_me_to(exch_mgmt_t mgmt, async_exch_t *exch,
2174 sysarg_t arg1, sysarg_t arg2, sysarg_t arg3)
2175{
2176 if (exch == NULL) {
2177 errno = ENOENT;
2178 return NULL;
2179 }
2180
2181 async_sess_t *sess = (async_sess_t *) malloc(sizeof(async_sess_t));
2182 if (sess == NULL) {
2183 errno = ENOMEM;
2184 return NULL;
2185 }
2186
[a99cbc1e]2187 int phone;
2188 int rc = async_connect_me_to_internal(exch->phone, arg1, arg2, arg3,
2189 0, &phone);
2190 if (rc != EOK) {
2191 errno = rc;
[79ae36dd]2192 free(sess);
2193 return NULL;
2194 }
2195
[566992e1]2196 sess->iface = 0;
[79ae36dd]2197 sess->mgmt = mgmt;
2198 sess->phone = phone;
2199 sess->arg1 = arg1;
2200 sess->arg2 = arg2;
2201 sess->arg3 = arg3;
2202
[58cbf8d5]2203 fibril_mutex_initialize(&sess->remote_state_mtx);
2204 sess->remote_state_data = NULL;
2205
[79ae36dd]2206 list_initialize(&sess->exch_list);
2207 fibril_mutex_initialize(&sess->mutex);
2208 atomic_set(&sess->refcnt, 0);
2209
2210 return sess;
[f74392f]2211}
2212
[0dd16778]2213/** Wrapper for making IPC_M_CONNECT_ME_TO calls using the async framework.
2214 *
2215 * Ask through phone for a new connection to some service and block until
2216 * success.
2217 *
2218 * @param exch Exchange for sending the message.
2219 * @param iface Connection interface.
2220 * @param arg2 User defined argument.
2221 * @param arg3 User defined argument.
2222 *
2223 * @return New session on success or NULL on error.
2224 *
2225 */
2226async_sess_t *async_connect_me_to_iface(async_exch_t *exch, iface_t iface,
2227 sysarg_t arg2, sysarg_t arg3)
2228{
2229 if (exch == NULL) {
2230 errno = ENOENT;
2231 return NULL;
2232 }
2233
2234 async_sess_t *sess = (async_sess_t *) malloc(sizeof(async_sess_t));
2235 if (sess == NULL) {
2236 errno = ENOMEM;
2237 return NULL;
2238 }
2239
[a99cbc1e]2240 int phone;
2241 int rc = async_connect_me_to_internal(exch->phone, iface, arg2,
2242 arg3, 0, &phone);
2243 if (rc != EOK) {
2244 errno = rc;
[0dd16778]2245 free(sess);
2246 return NULL;
2247 }
2248
2249 sess->iface = iface;
2250 sess->phone = phone;
2251 sess->arg1 = iface;
2252 sess->arg2 = arg2;
2253 sess->arg3 = arg3;
2254
2255 fibril_mutex_initialize(&sess->remote_state_mtx);
2256 sess->remote_state_data = NULL;
2257
2258 list_initialize(&sess->exch_list);
2259 fibril_mutex_initialize(&sess->mutex);
2260 atomic_set(&sess->refcnt, 0);
2261
2262 return sess;
2263}
2264
[93ad49a8]2265/** Set arguments for new connections.
[0f4532e]2266 *
2267 * FIXME This is an ugly hack to work around the problem that parallel
2268 * exchanges are implemented using parallel connections. When we create
[93ad49a8]2269 * a callback session, the framework does not know arguments for the new
2270 * connections.
[0f4532e]2271 *
2272 * The proper solution seems to be to implement parallel exchanges using
2273 * tagging.
2274 */
[93ad49a8]2275void async_sess_args_set(async_sess_t *sess, sysarg_t arg1, sysarg_t arg2,
2276 sysarg_t arg3)
[0f4532e]2277{
[93ad49a8]2278 sess->arg1 = arg1;
2279 sess->arg2 = arg2;
2280 sess->arg3 = arg3;
[0f4532e]2281}
2282
[f74392f]2283/** Wrapper for making IPC_M_CONNECT_ME_TO calls using the async framework.
[007e6efa]2284 *
[f74392f]2285 * Ask through phone for a new connection to some service and block until
2286 * success.
2287 *
[79ae36dd]2288 * @param mgmt Exchange management style.
2289 * @param exch Exchange for sending the message.
2290 * @param arg1 User defined argument.
2291 * @param arg2 User defined argument.
2292 * @param arg3 User defined argument.
[007e6efa]2293 *
[79ae36dd]2294 * @return New session on success or NULL on error.
[f74392f]2295 *
2296 */
[79ae36dd]2297async_sess_t *async_connect_me_to_blocking(exch_mgmt_t mgmt, async_exch_t *exch,
2298 sysarg_t arg1, sysarg_t arg2, sysarg_t arg3)
[f74392f]2299{
[79ae36dd]2300 if (exch == NULL) {
2301 errno = ENOENT;
2302 return NULL;
2303 }
[f74392f]2304
[79ae36dd]2305 async_sess_t *sess = (async_sess_t *) malloc(sizeof(async_sess_t));
2306 if (sess == NULL) {
2307 errno = ENOMEM;
2308 return NULL;
2309 }
[007e6efa]2310
[a99cbc1e]2311 int phone;
2312 int rc = async_connect_me_to_internal(exch->phone, arg1, arg2, arg3,
2313 IPC_FLAG_BLOCKING, &phone);
[79ae36dd]2314
[a99cbc1e]2315 if (rc != EOK) {
2316 errno = rc;
[79ae36dd]2317 free(sess);
2318 return NULL;
2319 }
2320
[566992e1]2321 sess->iface = 0;
[79ae36dd]2322 sess->mgmt = mgmt;
2323 sess->phone = phone;
2324 sess->arg1 = arg1;
2325 sess->arg2 = arg2;
2326 sess->arg3 = arg3;
2327
[58cbf8d5]2328 fibril_mutex_initialize(&sess->remote_state_mtx);
2329 sess->remote_state_data = NULL;
2330
[79ae36dd]2331 list_initialize(&sess->exch_list);
2332 fibril_mutex_initialize(&sess->mutex);
2333 atomic_set(&sess->refcnt, 0);
2334
2335 return sess;
[f74392f]2336}
2337
[566992e1]2338/** Wrapper for making IPC_M_CONNECT_ME_TO calls using the async framework.
2339 *
2340 * Ask through phone for a new connection to some service and block until
2341 * success.
2342 *
2343 * @param exch Exchange for sending the message.
2344 * @param iface Connection interface.
2345 * @param arg2 User defined argument.
2346 * @param arg3 User defined argument.
2347 *
2348 * @return New session on success or NULL on error.
2349 *
2350 */
2351async_sess_t *async_connect_me_to_blocking_iface(async_exch_t *exch, iface_t iface,
2352 sysarg_t arg2, sysarg_t arg3)
2353{
2354 if (exch == NULL) {
2355 errno = ENOENT;
2356 return NULL;
2357 }
2358
2359 async_sess_t *sess = (async_sess_t *) malloc(sizeof(async_sess_t));
2360 if (sess == NULL) {
2361 errno = ENOMEM;
2362 return NULL;
2363 }
2364
[a99cbc1e]2365 int phone;
2366 int rc = async_connect_me_to_internal(exch->phone, iface, arg2,
2367 arg3, IPC_FLAG_BLOCKING, &phone);
2368 if (rc != EOK) {
2369 errno = rc;
[566992e1]2370 free(sess);
2371 return NULL;
2372 }
2373
2374 sess->iface = iface;
2375 sess->phone = phone;
2376 sess->arg1 = iface;
2377 sess->arg2 = arg2;
2378 sess->arg3 = arg3;
2379
2380 fibril_mutex_initialize(&sess->remote_state_mtx);
2381 sess->remote_state_data = NULL;
2382
2383 list_initialize(&sess->exch_list);
2384 fibril_mutex_initialize(&sess->mutex);
2385 atomic_set(&sess->refcnt, 0);
2386
2387 return sess;
2388}
2389
[64d2b10]2390/** Connect to a task specified by id.
2391 *
2392 */
[79ae36dd]2393async_sess_t *async_connect_kbox(task_id_t id)
[64d2b10]2394{
[79ae36dd]2395 async_sess_t *sess = (async_sess_t *) malloc(sizeof(async_sess_t));
2396 if (sess == NULL) {
2397 errno = ENOMEM;
2398 return NULL;
2399 }
2400
[569a51a]2401 cap_handle_t phone;
2402 int rc = ipc_connect_kbox(id, &phone);
2403 if (rc != EOK) {
2404 errno = rc;
[79ae36dd]2405 free(sess);
2406 return NULL;
2407 }
2408
[566992e1]2409 sess->iface = 0;
[79ae36dd]2410 sess->mgmt = EXCHANGE_ATOMIC;
2411 sess->phone = phone;
2412 sess->arg1 = 0;
2413 sess->arg2 = 0;
2414 sess->arg3 = 0;
2415
[58cbf8d5]2416 fibril_mutex_initialize(&sess->remote_state_mtx);
2417 sess->remote_state_data = NULL;
2418
[79ae36dd]2419 list_initialize(&sess->exch_list);
2420 fibril_mutex_initialize(&sess->mutex);
2421 atomic_set(&sess->refcnt, 0);
2422
2423 return sess;
2424}
2425
2426static int async_hangup_internal(int phone)
2427{
2428 return ipc_hangup(phone);
[64d2b10]2429}
2430
2431/** Wrapper for ipc_hangup.
2432 *
[79ae36dd]2433 * @param sess Session to hung up.
[64d2b10]2434 *
[cde999a]2435 * @return Zero on success or an error code.
[64d2b10]2436 *
2437 */
[79ae36dd]2438int async_hangup(async_sess_t *sess)
[64d2b10]2439{
[36e2b55]2440 async_exch_t *exch;
2441
[79ae36dd]2442 assert(sess);
2443
2444 if (atomic_get(&sess->refcnt) > 0)
2445 return EBUSY;
2446
[36e2b55]2447 fibril_mutex_lock(&async_sess_mutex);
[972c60ce]2448
[cff3fb6]2449 int rc = async_hangup_internal(sess->phone);
[36e2b55]2450
2451 while (!list_empty(&sess->exch_list)) {
2452 exch = (async_exch_t *)
2453 list_get_instance(list_first(&sess->exch_list),
2454 async_exch_t, sess_link);
2455
2456 list_remove(&exch->sess_link);
2457 list_remove(&exch->global_link);
2458 async_hangup_internal(exch->phone);
2459 free(exch);
2460 }
[4c50c8d]2461
2462 free(sess);
[36e2b55]2463
2464 fibril_mutex_unlock(&async_sess_mutex);
2465
[79ae36dd]2466 return rc;
[64d2b10]2467}
2468
2469/** Interrupt one thread of this task from waiting for IPC. */
2470void async_poke(void)
2471{
2472 ipc_poke();
2473}
2474
[79ae36dd]2475/** Start new exchange in a session.
2476 *
2477 * @param session Session.
2478 *
2479 * @return New exchange or NULL on error.
2480 *
2481 */
2482async_exch_t *async_exchange_begin(async_sess_t *sess)
2483{
2484 if (sess == NULL)
2485 return NULL;
2486
[566992e1]2487 exch_mgmt_t mgmt = sess->mgmt;
2488 if (sess->iface != 0)
2489 mgmt = sess->iface & IFACE_EXCHANGE_MASK;
2490
2491 async_exch_t *exch = NULL;
[79ae36dd]2492
2493 fibril_mutex_lock(&async_sess_mutex);
2494
2495 if (!list_empty(&sess->exch_list)) {
2496 /*
2497 * There are inactive exchanges in the session.
2498 */
2499 exch = (async_exch_t *)
[b72efe8]2500 list_get_instance(list_first(&sess->exch_list),
2501 async_exch_t, sess_link);
2502
[79ae36dd]2503 list_remove(&exch->sess_link);
2504 list_remove(&exch->global_link);
2505 } else {
2506 /*
2507 * There are no available exchanges in the session.
2508 */
2509
[566992e1]2510 if ((mgmt == EXCHANGE_ATOMIC) ||
2511 (mgmt == EXCHANGE_SERIALIZE)) {
[79ae36dd]2512 exch = (async_exch_t *) malloc(sizeof(async_exch_t));
2513 if (exch != NULL) {
[b72efe8]2514 link_initialize(&exch->sess_link);
2515 link_initialize(&exch->global_link);
[79ae36dd]2516 exch->sess = sess;
2517 exch->phone = sess->phone;
2518 }
[566992e1]2519 } else if (mgmt == EXCHANGE_PARALLEL) {
2520 int phone;
[a99cbc1e]2521 int rc;
[566992e1]2522
2523 retry:
[79ae36dd]2524 /*
2525 * Make a one-time attempt to connect a new data phone.
2526 */
[a99cbc1e]2527 rc = async_connect_me_to_internal(sess->phone, sess->arg1,
2528 sess->arg2, sess->arg3, 0, &phone);
2529 if (rc == EOK) {
[79ae36dd]2530 exch = (async_exch_t *) malloc(sizeof(async_exch_t));
2531 if (exch != NULL) {
[b72efe8]2532 link_initialize(&exch->sess_link);
2533 link_initialize(&exch->global_link);
[79ae36dd]2534 exch->sess = sess;
2535 exch->phone = phone;
2536 } else
2537 async_hangup_internal(phone);
2538 } else if (!list_empty(&inactive_exch_list)) {
2539 /*
2540 * We did not manage to connect a new phone. But we
2541 * can try to close some of the currently inactive
2542 * connections in other sessions and try again.
2543 */
2544 exch = (async_exch_t *)
[b72efe8]2545 list_get_instance(list_first(&inactive_exch_list),
2546 async_exch_t, global_link);
2547
[79ae36dd]2548 list_remove(&exch->sess_link);
2549 list_remove(&exch->global_link);
2550 async_hangup_internal(exch->phone);
2551 free(exch);
2552 goto retry;
2553 } else {
2554 /*
2555 * Wait for a phone to become available.
2556 */
2557 fibril_condvar_wait(&avail_phone_cv, &async_sess_mutex);
2558 goto retry;
2559 }
2560 }
2561 }
2562
2563 fibril_mutex_unlock(&async_sess_mutex);
2564
2565 if (exch != NULL) {
2566 atomic_inc(&sess->refcnt);
2567
[566992e1]2568 if (mgmt == EXCHANGE_SERIALIZE)
[79ae36dd]2569 fibril_mutex_lock(&sess->mutex);
2570 }
2571
2572 return exch;
2573}
2574
2575/** Finish an exchange.
2576 *
2577 * @param exch Exchange to finish.
2578 *
2579 */
2580void async_exchange_end(async_exch_t *exch)
2581{
2582 if (exch == NULL)
2583 return;
2584
2585 async_sess_t *sess = exch->sess;
[3ca2e36]2586 assert(sess != NULL);
[79ae36dd]2587
[566992e1]2588 exch_mgmt_t mgmt = sess->mgmt;
2589 if (sess->iface != 0)
2590 mgmt = sess->iface & IFACE_EXCHANGE_MASK;
2591
[1c6436a]2592 atomic_dec(&sess->refcnt);
2593
[566992e1]2594 if (mgmt == EXCHANGE_SERIALIZE)
[79ae36dd]2595 fibril_mutex_unlock(&sess->mutex);
2596
2597 fibril_mutex_lock(&async_sess_mutex);
2598
2599 list_append(&exch->sess_link, &sess->exch_list);
2600 list_append(&exch->global_link, &inactive_exch_list);
2601 fibril_condvar_signal(&avail_phone_cv);
2602
2603 fibril_mutex_unlock(&async_sess_mutex);
2604}
2605
[47b7006]2606/** Wrapper for IPC_M_SHARE_IN calls using the async framework.
2607 *
[79ae36dd]2608 * @param exch Exchange for sending the message.
2609 * @param size Size of the destination address space area.
2610 * @param arg User defined argument.
2611 * @param flags Storage for the received flags. Can be NULL.
[df956b9b]2612 * @param dst Address of the storage for the destination address space area
2613 * base address. Cannot be NULL.
[0da4e41]2614 *
[cde999a]2615 * @return Zero on success or an error code from errno.h.
[0da4e41]2616 *
2617 */
[fbcdeb8]2618int async_share_in_start(async_exch_t *exch, size_t size, sysarg_t arg,
2619 unsigned int *flags, void **dst)
[0da4e41]2620{
[79ae36dd]2621 if (exch == NULL)
2622 return ENOENT;
2623
[fbcdeb8]2624 sysarg_t _flags = 0;
2625 sysarg_t _dst = (sysarg_t) -1;
2626 int res = async_req_2_4(exch, IPC_M_SHARE_IN, (sysarg_t) size,
2627 arg, NULL, &_flags, NULL, &_dst);
[47b7006]2628
[0da4e41]2629 if (flags)
[fbcdeb8]2630 *flags = (unsigned int) _flags;
[47b7006]2631
[fbcdeb8]2632 *dst = (void *) _dst;
[0da4e41]2633 return res;
2634}
2635
2636/** Wrapper for receiving the IPC_M_SHARE_IN calls using the async framework.
2637 *
[47b7006]2638 * This wrapper only makes it more comfortable to receive IPC_M_SHARE_IN
2639 * calls so that the user doesn't have to remember the meaning of each IPC
2640 * argument.
[0da4e41]2641 *
2642 * So far, this wrapper is to be used from within a connection fibril.
2643 *
[01c3bb4]2644 * @param chandle Storage for the handle of the IPC_M_SHARE_IN call.
2645 * @param size Destination address space area size.
[47b7006]2646 *
2647 * @return True on success, false on failure.
[0da4e41]2648 *
2649 */
[01c3bb4]2650bool async_share_in_receive(cap_handle_t *chandle, size_t *size)
[0da4e41]2651{
[01c3bb4]2652 assert(chandle);
[0da4e41]2653 assert(size);
[47b7006]2654
2655 ipc_call_t data;
[01c3bb4]2656 *chandle = async_get_call(&data);
[47b7006]2657
[228e490]2658 if (IPC_GET_IMETHOD(data) != IPC_M_SHARE_IN)
[47b7006]2659 return false;
2660
[fbcdeb8]2661 *size = (size_t) IPC_GET_ARG1(data);
[47b7006]2662 return true;
[0da4e41]2663}
2664
2665/** Wrapper for answering the IPC_M_SHARE_IN calls using the async framework.
2666 *
[fbcdeb8]2667 * This wrapper only makes it more comfortable to answer IPC_M_SHARE_IN
[47b7006]2668 * calls so that the user doesn't have to remember the meaning of each IPC
2669 * argument.
[0da4e41]2670 *
[01c3bb4]2671 * @param chandle Handle of the IPC_M_DATA_READ call to answer.
2672 * @param src Source address space base.
2673 * @param flags Flags to be used for sharing. Bits can be only cleared.
[47b7006]2674 *
2675 * @return Zero on success or a value from @ref errno.h on failure.
[0da4e41]2676 *
2677 */
[01c3bb4]2678int async_share_in_finalize(cap_handle_t chandle, void *src, unsigned int flags)
[0da4e41]2679{
[01c3bb4]2680 return ipc_answer_3(chandle, EOK, (sysarg_t) src, (sysarg_t) flags,
[d7978525]2681 (sysarg_t) __entry);
[0da4e41]2682}
2683
[47b7006]2684/** Wrapper for IPC_M_SHARE_OUT calls using the async framework.
[0da4e41]2685 *
[79ae36dd]2686 * @param exch Exchange for sending the message.
2687 * @param src Source address space area base address.
2688 * @param flags Flags to be used for sharing. Bits can be only cleared.
[47b7006]2689 *
[cde999a]2690 * @return Zero on success or an error code from errno.h.
[0da4e41]2691 *
2692 */
[79ae36dd]2693int async_share_out_start(async_exch_t *exch, void *src, unsigned int flags)
[0da4e41]2694{
[79ae36dd]2695 if (exch == NULL)
2696 return ENOENT;
2697
2698 return async_req_3_0(exch, IPC_M_SHARE_OUT, (sysarg_t) src, 0,
[96b02eb9]2699 (sysarg_t) flags);
[0da4e41]2700}
2701
2702/** Wrapper for receiving the IPC_M_SHARE_OUT calls using the async framework.
2703 *
[47b7006]2704 * This wrapper only makes it more comfortable to receive IPC_M_SHARE_OUT
2705 * calls so that the user doesn't have to remember the meaning of each IPC
2706 * argument.
[0da4e41]2707 *
2708 * So far, this wrapper is to be used from within a connection fibril.
2709 *
[01c3bb4]2710 * @param chandle Storage for the hash of the IPC_M_SHARE_OUT call.
2711 * @param size Storage for the source address space area size.
2712 * @param flags Storage for the sharing flags.
[47b7006]2713 *
2714 * @return True on success, false on failure.
[0da4e41]2715 *
2716 */
[01c3bb4]2717bool async_share_out_receive(cap_handle_t *chandle, size_t *size,
2718 unsigned int *flags)
[0da4e41]2719{
[01c3bb4]2720 assert(chandle);
[0da4e41]2721 assert(size);
2722 assert(flags);
[47b7006]2723
2724 ipc_call_t data;
[01c3bb4]2725 *chandle = async_get_call(&data);
[47b7006]2726
[228e490]2727 if (IPC_GET_IMETHOD(data) != IPC_M_SHARE_OUT)
[47b7006]2728 return false;
2729
[0da4e41]2730 *size = (size_t) IPC_GET_ARG2(data);
[47b7006]2731 *flags = (unsigned int) IPC_GET_ARG3(data);
2732 return true;
[0da4e41]2733}
2734
2735/** Wrapper for answering the IPC_M_SHARE_OUT calls using the async framework.
2736 *
[47b7006]2737 * This wrapper only makes it more comfortable to answer IPC_M_SHARE_OUT
2738 * calls so that the user doesn't have to remember the meaning of each IPC
2739 * argument.
[0da4e41]2740 *
[01c3bb4]2741 * @param chandle Handle of the IPC_M_DATA_WRITE call to answer.
2742 * @param dst Address of the storage for the destination address space area
2743 * base address.
[47b7006]2744 *
[01c3bb4]2745 * @return Zero on success or a value from @ref errno.h on failure.
[0da4e41]2746 *
2747 */
[01c3bb4]2748int async_share_out_finalize(cap_handle_t chandle, void **dst)
[0da4e41]2749{
[01c3bb4]2750 return ipc_answer_2(chandle, EOK, (sysarg_t) __entry, (sysarg_t) dst);
[0da4e41]2751}
2752
[8bf1eeb]2753/** Start IPC_M_DATA_READ using the async framework.
2754 *
[79ae36dd]2755 * @param exch Exchange for sending the message.
2756 * @param dst Address of the beginning of the destination buffer.
2757 * @param size Size of the destination buffer (in bytes).
[8bf1eeb]2758 * @param dataptr Storage of call data (arg 2 holds actual data size).
[79ae36dd]2759 *
[8bf1eeb]2760 * @return Hash of the sent message or 0 on error.
[79ae36dd]2761 *
[8bf1eeb]2762 */
[79ae36dd]2763aid_t async_data_read(async_exch_t *exch, void *dst, size_t size,
2764 ipc_call_t *dataptr)
[8bf1eeb]2765{
[79ae36dd]2766 return async_send_2(exch, IPC_M_DATA_READ, (sysarg_t) dst,
[8bf1eeb]2767 (sysarg_t) size, dataptr);
2768}
2769
[47b7006]2770/** Wrapper for IPC_M_DATA_READ calls using the async framework.
[0da4e41]2771 *
[79ae36dd]2772 * @param exch Exchange for sending the message.
2773 * @param dst Address of the beginning of the destination buffer.
2774 * @param size Size of the destination buffer.
[47b7006]2775 *
[cde999a]2776 * @return Zero on success or an error code from errno.h.
[0da4e41]2777 *
2778 */
[79ae36dd]2779int async_data_read_start(async_exch_t *exch, void *dst, size_t size)
[0da4e41]2780{
[79ae36dd]2781 if (exch == NULL)
2782 return ENOENT;
2783
2784 return async_req_2_0(exch, IPC_M_DATA_READ, (sysarg_t) dst,
2785 (sysarg_t) size);
[0da4e41]2786}
2787
2788/** Wrapper for receiving the IPC_M_DATA_READ calls using the async framework.
2789 *
[47b7006]2790 * This wrapper only makes it more comfortable to receive IPC_M_DATA_READ
2791 * calls so that the user doesn't have to remember the meaning of each IPC
2792 * argument.
[0da4e41]2793 *
2794 * So far, this wrapper is to be used from within a connection fibril.
2795 *
[01c3bb4]2796 * @param chandle Storage for the handle of the IPC_M_DATA_READ.
2797 * @param size Storage for the maximum size. Can be NULL.
[47b7006]2798 *
2799 * @return True on success, false on failure.
[0da4e41]2800 *
2801 */
[01c3bb4]2802bool async_data_read_receive(cap_handle_t *chandle, size_t *size)
[d768d4c8]2803{
2804 ipc_call_t data;
[01c3bb4]2805 return async_data_read_receive_call(chandle, &data, size);
[d768d4c8]2806}
2807
2808/** Wrapper for receiving the IPC_M_DATA_READ calls using the async framework.
2809 *
2810 * This wrapper only makes it more comfortable to receive IPC_M_DATA_READ
2811 * calls so that the user doesn't have to remember the meaning of each IPC
2812 * argument.
2813 *
2814 * So far, this wrapper is to be used from within a connection fibril.
2815 *
[01c3bb4]2816 * @param chandle Storage for the handle of the IPC_M_DATA_READ.
2817 * @param size Storage for the maximum size. Can be NULL.
[d768d4c8]2818 *
2819 * @return True on success, false on failure.
2820 *
2821 */
[01c3bb4]2822bool async_data_read_receive_call(cap_handle_t *chandle, ipc_call_t *data,
[d768d4c8]2823 size_t *size)
[0da4e41]2824{
[01c3bb4]2825 assert(chandle);
[d768d4c8]2826 assert(data);
[47b7006]2827
[01c3bb4]2828 *chandle = async_get_call(data);
[47b7006]2829
[d768d4c8]2830 if (IPC_GET_IMETHOD(*data) != IPC_M_DATA_READ)
[47b7006]2831 return false;
2832
[0da4e41]2833 if (size)
[d768d4c8]2834 *size = (size_t) IPC_GET_ARG2(*data);
[47b7006]2835
2836 return true;
[0da4e41]2837}
2838
2839/** Wrapper for answering the IPC_M_DATA_READ calls using the async framework.
2840 *
[47b7006]2841 * This wrapper only makes it more comfortable to answer IPC_M_DATA_READ
2842 * calls so that the user doesn't have to remember the meaning of each IPC
2843 * argument.
[0da4e41]2844 *
[01c3bb4]2845 * @param chandle Handle of the IPC_M_DATA_READ call to answer.
2846 * @param src Source address for the IPC_M_DATA_READ call.
2847 * @param size Size for the IPC_M_DATA_READ call. Can be smaller than
2848 * the maximum size announced by the sender.
[47b7006]2849 *
[01c3bb4]2850 * @return Zero on success or a value from @ref errno.h on failure.
[0da4e41]2851 *
2852 */
[01c3bb4]2853int async_data_read_finalize(cap_handle_t chandle, const void *src, size_t size)
[0da4e41]2854{
[01c3bb4]2855 return ipc_answer_2(chandle, EOK, (sysarg_t) src, (sysarg_t) size);
[0da4e41]2856}
2857
[b4cbef1]2858/** Wrapper for forwarding any read request
2859 *
2860 */
[79ae36dd]2861int async_data_read_forward_fast(async_exch_t *exch, sysarg_t imethod,
2862 sysarg_t arg1, sysarg_t arg2, sysarg_t arg3, sysarg_t arg4,
2863 ipc_call_t *dataptr)
[b4cbef1]2864{
[79ae36dd]2865 if (exch == NULL)
2866 return ENOENT;
2867
[01c3bb4]2868 cap_handle_t chandle;
2869 if (!async_data_read_receive(&chandle, NULL)) {
2870 ipc_answer_0(chandle, EINVAL);
[b4cbef1]2871 return EINVAL;
2872 }
2873
[79ae36dd]2874 aid_t msg = async_send_fast(exch, imethod, arg1, arg2, arg3, arg4,
[b4cbef1]2875 dataptr);
2876 if (msg == 0) {
[01c3bb4]2877 ipc_answer_0(chandle, EINVAL);
[b4cbef1]2878 return EINVAL;
2879 }
2880
[01c3bb4]2881 int retval = ipc_forward_fast(chandle, exch->phone, 0, 0, 0,
[b4cbef1]2882 IPC_FF_ROUTE_FROM_ME);
2883 if (retval != EOK) {
[ab9f443]2884 async_forget(msg);
[01c3bb4]2885 ipc_answer_0(chandle, retval);
[b4cbef1]2886 return retval;
2887 }
2888
[25a179e]2889 int rc;
[b4cbef1]2890 async_wait_for(msg, &rc);
2891
2892 return (int) rc;
2893}
2894
[47b7006]2895/** Wrapper for IPC_M_DATA_WRITE calls using the async framework.
[0da4e41]2896 *
[79ae36dd]2897 * @param exch Exchange for sending the message.
2898 * @param src Address of the beginning of the source buffer.
2899 * @param size Size of the source buffer.
[b4cbef1]2900 *
[cde999a]2901 * @return Zero on success or an error code from errno.h.
[0da4e41]2902 *
2903 */
[79ae36dd]2904int async_data_write_start(async_exch_t *exch, const void *src, size_t size)
[0da4e41]2905{
[79ae36dd]2906 if (exch == NULL)
2907 return ENOENT;
2908
2909 return async_req_2_0(exch, IPC_M_DATA_WRITE, (sysarg_t) src,
2910 (sysarg_t) size);
[0da4e41]2911}
2912
2913/** Wrapper for receiving the IPC_M_DATA_WRITE calls using the async framework.
2914 *
[47b7006]2915 * This wrapper only makes it more comfortable to receive IPC_M_DATA_WRITE
2916 * calls so that the user doesn't have to remember the meaning of each IPC
2917 * argument.
[0da4e41]2918 *
2919 * So far, this wrapper is to be used from within a connection fibril.
2920 *
[01c3bb4]2921 * @param chandle Storage for the handle of the IPC_M_DATA_WRITE.
2922 * @param size Storage for the suggested size. May be NULL.
[b4cbef1]2923 *
[01c3bb4]2924 * @return True on success, false on failure.
[0da4e41]2925 *
2926 */
[01c3bb4]2927bool async_data_write_receive(cap_handle_t *chandle, size_t *size)
[5ae1c51]2928{
2929 ipc_call_t data;
[01c3bb4]2930 return async_data_write_receive_call(chandle, &data, size);
[5ae1c51]2931}
2932
2933/** Wrapper for receiving the IPC_M_DATA_WRITE calls using the async framework.
2934 *
2935 * This wrapper only makes it more comfortable to receive IPC_M_DATA_WRITE
2936 * calls so that the user doesn't have to remember the meaning of each IPC
2937 * argument.
2938 *
2939 * So far, this wrapper is to be used from within a connection fibril.
2940 *
[01c3bb4]2941 * @param chandle Storage for the handle of the IPC_M_DATA_WRITE.
2942 * @param data Storage for the ipc call data.
2943 * @param size Storage for the suggested size. May be NULL.
[5ae1c51]2944 *
2945 * @return True on success, false on failure.
2946 *
2947 */
[01c3bb4]2948bool async_data_write_receive_call(cap_handle_t *chandle, ipc_call_t *data,
[5ae1c51]2949 size_t *size)
[0da4e41]2950{
[01c3bb4]2951 assert(chandle);
[5ae1c51]2952 assert(data);
[b4cbef1]2953
[01c3bb4]2954 *chandle = async_get_call(data);
[47b7006]2955
[5ae1c51]2956 if (IPC_GET_IMETHOD(*data) != IPC_M_DATA_WRITE)
[47b7006]2957 return false;
[b4cbef1]2958
[0da4e41]2959 if (size)
[5ae1c51]2960 *size = (size_t) IPC_GET_ARG2(*data);
[b4cbef1]2961
[47b7006]2962 return true;
[0da4e41]2963}
2964
2965/** Wrapper for answering the IPC_M_DATA_WRITE calls using the async framework.
2966 *
[47b7006]2967 * This wrapper only makes it more comfortable to answer IPC_M_DATA_WRITE
2968 * calls so that the user doesn't have to remember the meaning of each IPC
2969 * argument.
[0da4e41]2970 *
[01c3bb4]2971 * @param chandle Handle of the IPC_M_DATA_WRITE call to answer.
2972 * @param dst Final destination address for the IPC_M_DATA_WRITE call.
2973 * @param size Final size for the IPC_M_DATA_WRITE call.
[b4cbef1]2974 *
[01c3bb4]2975 * @return Zero on success or a value from @ref errno.h on failure.
[0da4e41]2976 *
2977 */
[01c3bb4]2978int async_data_write_finalize(cap_handle_t chandle, void *dst, size_t size)
[0da4e41]2979{
[01c3bb4]2980 return ipc_answer_2(chandle, EOK, (sysarg_t) dst, (sysarg_t) size);
[0da4e41]2981}
2982
[eda925a]2983/** Wrapper for receiving binary data or strings
[8aa42e3]2984 *
2985 * This wrapper only makes it more comfortable to use async_data_write_*
[eda925a]2986 * functions to receive binary data or strings.
[8aa42e3]2987 *
[472c09d]2988 * @param data Pointer to data pointer (which should be later disposed
2989 * by free()). If the operation fails, the pointer is not
2990 * touched.
[eda925a]2991 * @param nullterm If true then the received data is always zero terminated.
2992 * This also causes to allocate one extra byte beyond the
2993 * raw transmitted data.
[b4cbef1]2994 * @param min_size Minimum size (in bytes) of the data to receive.
[472c09d]2995 * @param max_size Maximum size (in bytes) of the data to receive. 0 means
2996 * no limit.
[eda925a]2997 * @param granulariy If non-zero then the size of the received data has to
[472c09d]2998 * be divisible by this value.
2999 * @param received If not NULL, the size of the received data is stored here.
[8aa42e3]3000 *
3001 * @return Zero on success or a value from @ref errno.h on failure.
3002 *
3003 */
[eda925a]3004int async_data_write_accept(void **data, const bool nullterm,
3005 const size_t min_size, const size_t max_size, const size_t granularity,
3006 size_t *received)
[8aa42e3]3007{
[79ae36dd]3008 assert(data);
3009
[01c3bb4]3010 cap_handle_t chandle;
[8aa42e3]3011 size_t size;
[01c3bb4]3012 if (!async_data_write_receive(&chandle, &size)) {
3013 ipc_answer_0(chandle, EINVAL);
[8aa42e3]3014 return EINVAL;
3015 }
3016
[b4cbef1]3017 if (size < min_size) {
[01c3bb4]3018 ipc_answer_0(chandle, EINVAL);
[b4cbef1]3019 return EINVAL;
3020 }
3021
[8aa42e3]3022 if ((max_size > 0) && (size > max_size)) {
[01c3bb4]3023 ipc_answer_0(chandle, EINVAL);
[8aa42e3]3024 return EINVAL;
3025 }
3026
[472c09d]3027 if ((granularity > 0) && ((size % granularity) != 0)) {
[01c3bb4]3028 ipc_answer_0(chandle, EINVAL);
[472c09d]3029 return EINVAL;
3030 }
3031
[57dea62]3032 void *arg_data;
[eda925a]3033
3034 if (nullterm)
[57dea62]3035 arg_data = malloc(size + 1);
[eda925a]3036 else
[57dea62]3037 arg_data = malloc(size);
[eda925a]3038
[57dea62]3039 if (arg_data == NULL) {
[01c3bb4]3040 ipc_answer_0(chandle, ENOMEM);
[8aa42e3]3041 return ENOMEM;
3042 }
3043
[01c3bb4]3044 int rc = async_data_write_finalize(chandle, arg_data, size);
[8aa42e3]3045 if (rc != EOK) {
[57dea62]3046 free(arg_data);
[8aa42e3]3047 return rc;
3048 }
3049
[eda925a]3050 if (nullterm)
[57dea62]3051 ((char *) arg_data)[size] = 0;
[8aa42e3]3052
[57dea62]3053 *data = arg_data;
[472c09d]3054 if (received != NULL)
3055 *received = size;
3056
[8aa42e3]3057 return EOK;
3058}
3059
[b4cbef1]3060/** Wrapper for voiding any data that is about to be received
3061 *
3062 * This wrapper can be used to void any pending data
3063 *
3064 * @param retval Error value from @ref errno.h to be returned to the caller.
3065 *
3066 */
[25a179e]3067void async_data_write_void(int retval)
[b4cbef1]3068{
[01c3bb4]3069 cap_handle_t chandle;
3070 async_data_write_receive(&chandle, NULL);
3071 ipc_answer_0(chandle, retval);
[b4cbef1]3072}
3073
3074/** Wrapper for forwarding any data that is about to be received
3075 *
3076 */
[79ae36dd]3077int async_data_write_forward_fast(async_exch_t *exch, sysarg_t imethod,
3078 sysarg_t arg1, sysarg_t arg2, sysarg_t arg3, sysarg_t arg4,
3079 ipc_call_t *dataptr)
[b4cbef1]3080{
[79ae36dd]3081 if (exch == NULL)
3082 return ENOENT;
3083
[01c3bb4]3084 cap_handle_t chandle;
3085 if (!async_data_write_receive(&chandle, NULL)) {
3086 ipc_answer_0(chandle, EINVAL);
[b4cbef1]3087 return EINVAL;
3088 }
3089
[79ae36dd]3090 aid_t msg = async_send_fast(exch, imethod, arg1, arg2, arg3, arg4,
[b4cbef1]3091 dataptr);
3092 if (msg == 0) {
[01c3bb4]3093 ipc_answer_0(chandle, EINVAL);
[b4cbef1]3094 return EINVAL;
3095 }
3096
[01c3bb4]3097 int retval = ipc_forward_fast(chandle, exch->phone, 0, 0, 0,
[b4cbef1]3098 IPC_FF_ROUTE_FROM_ME);
3099 if (retval != EOK) {
[ab9f443]3100 async_forget(msg);
[01c3bb4]3101 ipc_answer_0(chandle, retval);
[b4cbef1]3102 return retval;
3103 }
3104
[25a179e]3105 int rc;
[b4cbef1]3106 async_wait_for(msg, &rc);
3107
3108 return (int) rc;
3109}
3110
[79ae36dd]3111/** Wrapper for receiving the IPC_M_CONNECT_TO_ME calls.
3112 *
3113 * If the current call is IPC_M_CONNECT_TO_ME then a new
3114 * async session is created for the accepted phone.
3115 *
3116 * @param mgmt Exchange management style.
3117 *
[8869f7b]3118 * @return New async session.
3119 * @return NULL on failure.
[79ae36dd]3120 *
3121 */
3122async_sess_t *async_callback_receive(exch_mgmt_t mgmt)
3123{
3124 /* Accept the phone */
3125 ipc_call_t call;
[01c3bb4]3126 cap_handle_t chandle = async_get_call(&call);
3127 cap_handle_t phandle = (cap_handle_t) IPC_GET_ARG5(call);
[79ae36dd]3128
[01c3bb4]3129 if ((IPC_GET_IMETHOD(call) != IPC_M_CONNECT_TO_ME) || (phandle < 0)) {
3130 async_answer_0(chandle, EINVAL);
[79ae36dd]3131 return NULL;
3132 }
3133
3134 async_sess_t *sess = (async_sess_t *) malloc(sizeof(async_sess_t));
3135 if (sess == NULL) {
[01c3bb4]3136 async_answer_0(chandle, ENOMEM);
[79ae36dd]3137 return NULL;
3138 }
3139
[566992e1]3140 sess->iface = 0;
[79ae36dd]3141 sess->mgmt = mgmt;
[01c3bb4]3142 sess->phone = phandle;
[79ae36dd]3143 sess->arg1 = 0;
3144 sess->arg2 = 0;
3145 sess->arg3 = 0;
3146
[58cbf8d5]3147 fibril_mutex_initialize(&sess->remote_state_mtx);
3148 sess->remote_state_data = NULL;
3149
[79ae36dd]3150 list_initialize(&sess->exch_list);
3151 fibril_mutex_initialize(&sess->mutex);
3152 atomic_set(&sess->refcnt, 0);
3153
3154 /* Acknowledge the connected phone */
[01c3bb4]3155 async_answer_0(chandle, EOK);
[79ae36dd]3156
3157 return sess;
3158}
3159
[8869f7b]3160/** Wrapper for receiving the IPC_M_CONNECT_TO_ME calls.
3161 *
3162 * If the call is IPC_M_CONNECT_TO_ME then a new
3163 * async session is created. However, the phone is
3164 * not accepted automatically.
3165 *
3166 * @param mgmt Exchange management style.
3167 * @param call Call data.
3168 *
3169 * @return New async session.
3170 * @return NULL on failure.
3171 * @return NULL if the call is not IPC_M_CONNECT_TO_ME.
3172 *
3173 */
3174async_sess_t *async_callback_receive_start(exch_mgmt_t mgmt, ipc_call_t *call)
3175{
[01c3bb4]3176 cap_handle_t phandle = (cap_handle_t) IPC_GET_ARG5(*call);
[8869f7b]3177
[01c3bb4]3178 if ((IPC_GET_IMETHOD(*call) != IPC_M_CONNECT_TO_ME) || (phandle < 0))
[8869f7b]3179 return NULL;
3180
3181 async_sess_t *sess = (async_sess_t *) malloc(sizeof(async_sess_t));
3182 if (sess == NULL)
3183 return NULL;
3184
[566992e1]3185 sess->iface = 0;
[8869f7b]3186 sess->mgmt = mgmt;
[01c3bb4]3187 sess->phone = phandle;
[8869f7b]3188 sess->arg1 = 0;
3189 sess->arg2 = 0;
3190 sess->arg3 = 0;
3191
[58cbf8d5]3192 fibril_mutex_initialize(&sess->remote_state_mtx);
3193 sess->remote_state_data = NULL;
3194
[8869f7b]3195 list_initialize(&sess->exch_list);
3196 fibril_mutex_initialize(&sess->mutex);
3197 atomic_set(&sess->refcnt, 0);
3198
3199 return sess;
3200}
3201
[2c4aa39]3202int async_state_change_start(async_exch_t *exch, sysarg_t arg1, sysarg_t arg2,
3203 sysarg_t arg3, async_exch_t *other_exch)
3204{
3205 return async_req_5_0(exch, IPC_M_STATE_CHANGE_AUTHORIZE,
3206 arg1, arg2, arg3, 0, other_exch->phone);
3207}
3208
[01c3bb4]3209bool async_state_change_receive(cap_handle_t *chandle, sysarg_t *arg1,
[2c4aa39]3210 sysarg_t *arg2, sysarg_t *arg3)
3211{
[01c3bb4]3212 assert(chandle);
[57dea62]3213
[2c4aa39]3214 ipc_call_t call;
[01c3bb4]3215 *chandle = async_get_call(&call);
[57dea62]3216
[2c4aa39]3217 if (IPC_GET_IMETHOD(call) != IPC_M_STATE_CHANGE_AUTHORIZE)
3218 return false;
3219
3220 if (arg1)
3221 *arg1 = IPC_GET_ARG1(call);
3222 if (arg2)
3223 *arg2 = IPC_GET_ARG2(call);
3224 if (arg3)
3225 *arg3 = IPC_GET_ARG3(call);
[57dea62]3226
[2c4aa39]3227 return true;
3228}
3229
[01c3bb4]3230int async_state_change_finalize(cap_handle_t chandle, async_exch_t *other_exch)
[2c4aa39]3231{
[01c3bb4]3232 return ipc_answer_1(chandle, EOK, other_exch->phone);
[2c4aa39]3233}
3234
[58cbf8d5]3235/** Lock and get session remote state
3236 *
3237 * Lock and get the local replica of the remote state
3238 * in stateful sessions. The call should be paired
3239 * with async_remote_state_release*().
3240 *
3241 * @param[in] sess Stateful session.
3242 *
3243 * @return Local replica of the remote state.
3244 *
3245 */
3246void *async_remote_state_acquire(async_sess_t *sess)
3247{
3248 fibril_mutex_lock(&sess->remote_state_mtx);
3249 return sess->remote_state_data;
3250}
3251
3252/** Update the session remote state
3253 *
3254 * Update the local replica of the remote state
3255 * in stateful sessions. The remote state must
3256 * be already locked.
3257 *
3258 * @param[in] sess Stateful session.
3259 * @param[in] state New local replica of the remote state.
3260 *
3261 */
3262void async_remote_state_update(async_sess_t *sess, void *state)
3263{
3264 assert(fibril_mutex_is_locked(&sess->remote_state_mtx));
3265 sess->remote_state_data = state;
3266}
3267
3268/** Release the session remote state
3269 *
3270 * Unlock the local replica of the remote state
3271 * in stateful sessions.
3272 *
3273 * @param[in] sess Stateful session.
3274 *
3275 */
3276void async_remote_state_release(async_sess_t *sess)
3277{
3278 assert(fibril_mutex_is_locked(&sess->remote_state_mtx));
3279
3280 fibril_mutex_unlock(&sess->remote_state_mtx);
3281}
3282
3283/** Release the session remote state and end an exchange
3284 *
3285 * Unlock the local replica of the remote state
3286 * in stateful sessions. This is convenience function
3287 * which gets the session pointer from the exchange
3288 * and also ends the exchange.
3289 *
3290 * @param[in] exch Stateful session's exchange.
3291 *
3292 */
3293void async_remote_state_release_exchange(async_exch_t *exch)
3294{
3295 if (exch == NULL)
3296 return;
3297
3298 async_sess_t *sess = exch->sess;
3299 assert(fibril_mutex_is_locked(&sess->remote_state_mtx));
3300
3301 async_exchange_end(exch);
3302 fibril_mutex_unlock(&sess->remote_state_mtx);
3303}
3304
[101516d]3305void *async_as_area_create(void *base, size_t size, unsigned int flags,
[ae6021d]3306 async_sess_t *pager, sysarg_t id1, sysarg_t id2, sysarg_t id3)
3307{
3308 as_area_pager_info_t pager_info = {
3309 .pager = pager->phone,
3310 .id1 = id1,
3311 .id2 = id2,
3312 .id3 = id3
3313 };
3314 return as_area_create(base, size, flags, &pager_info);
[101516d]3315}
3316
[a46da63]3317/** @}
[b2951e2]3318 */
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