source: mainline/uspace/srv/devman/devman.c@ 398c4d7

lfn serial ticket/834-toolchain-update topic/msim-upgrade topic/simplify-dev-export
Last change on this file since 398c4d7 was 398c4d7, checked in by Vojtech Horky <vojtechhorky@…>, 15 years ago

More conservative locking in devman

Add mutex guard when accessing driver_t structure during driver assigning.

Added missing async_wait_for and removed extra mutex_unlock.

To speed-up answer time, driver start is done in separate fibril to avoid
blocking IPC connection fibril.

  • Property mode set to 100644
File size: 30.2 KB
Line 
1/*
2 * Copyright (c) 2010 Lenka Trochtova
3 * All rights reserved.
4 *
5 * Redistribution and use in source and binary forms, with or without
6 * modification, are permitted provided that the following conditions
7 * are met:
8 *
9 * - Redistributions of source code must retain the above copyright
10 * notice, this list of conditions and the following disclaimer.
11 * - Redistributions in binary form must reproduce the above copyright
12 * notice, this list of conditions and the following disclaimer in the
13 * documentation and/or other materials provided with the distribution.
14 * - The name of the author may not be used to endorse or promote products
15 * derived from this software without specific prior written permission.
16 *
17 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
18 * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
19 * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
20 * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
21 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
22 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
23 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
24 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
25 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
26 * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
27 */
28
29/** @addtogroup devman
30 * @{
31 */
32
33#include <errno.h>
34#include <fcntl.h>
35#include <sys/stat.h>
36#include <ipc/driver.h>
37#include <ipc/devman.h>
38#include <devmap.h>
39#include <str_error.h>
40
41#include "devman.h"
42
43/* hash table operations */
44
45static hash_index_t devices_hash(unsigned long key[])
46{
47 return key[0] % DEVICE_BUCKETS;
48}
49
50static int devman_devices_compare(unsigned long key[], hash_count_t keys,
51 link_t *item)
52{
53 node_t *dev = hash_table_get_instance(item, node_t, devman_link);
54 return (dev->handle == (devman_handle_t) key[0]);
55}
56
57static int devmap_devices_compare(unsigned long key[], hash_count_t keys,
58 link_t *item)
59{
60 node_t *dev = hash_table_get_instance(item, node_t, devmap_link);
61 return (dev->devmap_handle == (devmap_handle_t) key[0]);
62}
63
64static void devices_remove_callback(link_t *item)
65{
66}
67
68static hash_table_operations_t devman_devices_ops = {
69 .hash = devices_hash,
70 .compare = devman_devices_compare,
71 .remove_callback = devices_remove_callback
72};
73
74static hash_table_operations_t devmap_devices_ops = {
75 .hash = devices_hash,
76 .compare = devmap_devices_compare,
77 .remove_callback = devices_remove_callback
78};
79
80/**
81 * Initialize the list of device driver's.
82 *
83 * @param drv_list the list of device driver's.
84 *
85 */
86void init_driver_list(driver_list_t *drv_list)
87{
88 assert(drv_list != NULL);
89
90 list_initialize(&drv_list->drivers);
91 fibril_mutex_initialize(&drv_list->drivers_mutex);
92}
93
94/** Allocate and initialize a new driver structure.
95 *
96 * @return Driver structure.
97 */
98driver_t *create_driver(void)
99{
100 driver_t *res = malloc(sizeof(driver_t));
101 if (res != NULL)
102 init_driver(res);
103 return res;
104}
105
106/** Add a driver to the list of drivers.
107 *
108 * @param drivers_list List of drivers.
109 * @param drv Driver structure.
110 */
111void add_driver(driver_list_t *drivers_list, driver_t *drv)
112{
113 fibril_mutex_lock(&drivers_list->drivers_mutex);
114 list_prepend(&drv->drivers, &drivers_list->drivers);
115 fibril_mutex_unlock(&drivers_list->drivers_mutex);
116
117 printf(NAME": the '%s' driver was added to the list of available "
118 "drivers.\n", drv->name);
119}
120
121/** Read match id at the specified position of a string and set the position in
122 * the string to the first character following the id.
123 *
124 * @param buf The position in the input string.
125 * @return The match id.
126 */
127char *read_match_id(char **buf)
128{
129 char *res = NULL;
130 size_t len = get_nonspace_len(*buf);
131
132 if (len > 0) {
133 res = malloc(len + 1);
134 if (res != NULL) {
135 str_ncpy(res, len + 1, *buf, len);
136 *buf += len;
137 }
138 }
139
140 return res;
141}
142
143/**
144 * Read match ids and associated match scores from a string.
145 *
146 * Each match score in the string is followed by its match id.
147 * The match ids and match scores are separated by whitespaces.
148 * Neither match ids nor match scores can contain whitespaces.
149 *
150 * @param buf The string from which the match ids are read.
151 * @param ids The list of match ids into which the match ids and
152 * scores are added.
153 * @return True if at least one match id and associated match score
154 * was successfully read, false otherwise.
155 */
156bool parse_match_ids(char *buf, match_id_list_t *ids)
157{
158 int score = 0;
159 char *id = NULL;
160 int ids_read = 0;
161
162 while (true) {
163 /* skip spaces */
164 if (!skip_spaces(&buf))
165 break;
166
167 /* read score */
168 score = strtoul(buf, &buf, 10);
169
170 /* skip spaces */
171 if (!skip_spaces(&buf))
172 break;
173
174 /* read id */
175 id = read_match_id(&buf);
176 if (NULL == id)
177 break;
178
179 /* create new match_id structure */
180 match_id_t *mid = create_match_id();
181 mid->id = id;
182 mid->score = score;
183
184 /* add it to the list */
185 add_match_id(ids, mid);
186
187 ids_read++;
188 }
189
190 return ids_read > 0;
191}
192
193/**
194 * Read match ids and associated match scores from a file.
195 *
196 * Each match score in the file is followed by its match id.
197 * The match ids and match scores are separated by whitespaces.
198 * Neither match ids nor match scores can contain whitespaces.
199 *
200 * @param buf The path to the file from which the match ids are read.
201 * @param ids The list of match ids into which the match ids and
202 * scores are added.
203 * @return True if at least one match id and associated match score
204 * was successfully read, false otherwise.
205 */
206bool read_match_ids(const char *conf_path, match_id_list_t *ids)
207{
208 printf(NAME ": read_match_ids conf_path = %s.\n", conf_path);
209
210 bool suc = false;
211 char *buf = NULL;
212 bool opened = false;
213 int fd;
214 size_t len = 0;
215
216 fd = open(conf_path, O_RDONLY);
217 if (fd < 0) {
218 printf(NAME ": unable to open %s\n", conf_path);
219 goto cleanup;
220 }
221 opened = true;
222
223 len = lseek(fd, 0, SEEK_END);
224 lseek(fd, 0, SEEK_SET);
225 if (len == 0) {
226 printf(NAME ": configuration file '%s' is empty.\n", conf_path);
227 goto cleanup;
228 }
229
230 buf = malloc(len + 1);
231 if (buf == NULL) {
232 printf(NAME ": memory allocation failed when parsing file "
233 "'%s'.\n", conf_path);
234 goto cleanup;
235 }
236
237 if (read(fd, buf, len) <= 0) {
238 printf(NAME ": unable to read file '%s'.\n", conf_path);
239 goto cleanup;
240 }
241 buf[len] = 0;
242
243 suc = parse_match_ids(buf, ids);
244
245cleanup:
246 free(buf);
247
248 if (opened)
249 close(fd);
250
251 return suc;
252}
253
254/**
255 * Get information about a driver.
256 *
257 * Each driver has its own directory in the base directory.
258 * The name of the driver's directory is the same as the name of the driver.
259 * The driver's directory contains driver's binary (named as the driver without
260 * extension) and the configuration file with match ids for device-to-driver
261 * matching (named as the driver with a special extension).
262 *
263 * This function searches for the driver's directory and containing
264 * configuration files. If all the files needed are found, they are parsed and
265 * the information about the driver is stored in the driver's structure.
266 *
267 * @param base_path The base directory, in which we look for driver's
268 * subdirectory.
269 * @param name The name of the driver.
270 * @param drv The driver structure to fill information in.
271 *
272 * @return True on success, false otherwise.
273 */
274bool get_driver_info(const char *base_path, const char *name, driver_t *drv)
275{
276 printf(NAME ": get_driver_info base_path = %s, name = %s.\n",
277 base_path, name);
278
279 assert(base_path != NULL && name != NULL && drv != NULL);
280
281 bool suc = false;
282 char *match_path = NULL;
283 size_t name_size = 0;
284
285 /* Read the list of match ids from the driver's configuration file. */
286 match_path = get_abs_path(base_path, name, MATCH_EXT);
287 if (match_path == NULL)
288 goto cleanup;
289
290 if (!read_match_ids(match_path, &drv->match_ids))
291 goto cleanup;
292
293 /* Allocate and fill driver's name. */
294 name_size = str_size(name) + 1;
295 drv->name = malloc(name_size);
296 if (drv->name == NULL)
297 goto cleanup;
298 str_cpy(drv->name, name_size, name);
299
300 /* Initialize path with driver's binary. */
301 drv->binary_path = get_abs_path(base_path, name, "");
302 if (drv->binary_path == NULL)
303 goto cleanup;
304
305 /* Check whether the driver's binary exists. */
306 struct stat s;
307 if (stat(drv->binary_path, &s) == ENOENT) { /* FIXME!! */
308 printf(NAME ": driver not found at path %s.", drv->binary_path);
309 goto cleanup;
310 }
311
312 suc = true;
313
314cleanup:
315 if (!suc) {
316 free(drv->binary_path);
317 free(drv->name);
318 /* Set the driver structure to the default state. */
319 init_driver(drv);
320 }
321
322 free(match_path);
323
324 return suc;
325}
326
327/** Lookup drivers in the directory.
328 *
329 * @param drivers_list The list of available drivers.
330 * @param dir_path The path to the directory where we search for drivers.
331 * @return Number of drivers which were found.
332 */
333int lookup_available_drivers(driver_list_t *drivers_list, const char *dir_path)
334{
335 printf(NAME ": lookup_available_drivers, dir = %s \n", dir_path);
336
337 int drv_cnt = 0;
338 DIR *dir = NULL;
339 struct dirent *diren;
340
341 dir = opendir(dir_path);
342
343 if (dir != NULL) {
344 driver_t *drv = create_driver();
345 while ((diren = readdir(dir))) {
346 if (get_driver_info(dir_path, diren->d_name, drv)) {
347 add_driver(drivers_list, drv);
348 drv_cnt++;
349 drv = create_driver();
350 }
351 }
352 delete_driver(drv);
353 closedir(dir);
354 }
355
356 return drv_cnt;
357}
358
359/** Create root device node in the device tree.
360 *
361 * @param tree The device tree.
362 * @return True on success, false otherwise.
363 */
364bool create_root_node(dev_tree_t *tree)
365{
366 node_t *node;
367
368 printf(NAME ": create_root_node\n");
369
370 node = create_dev_node();
371 if (node != NULL) {
372 insert_dev_node(tree, node, clone_string(""), NULL);
373 match_id_t *id = create_match_id();
374 id->id = clone_string("root");
375 id->score = 100;
376 add_match_id(&node->match_ids, id);
377 tree->root_node = node;
378 }
379
380 return node != NULL;
381}
382
383/** Lookup the best matching driver for the specified device in the list of
384 * drivers.
385 *
386 * A match between a device and a driver is found if one of the driver's match
387 * ids match one of the device's match ids. The score of the match is the
388 * product of the driver's and device's score associated with the matching id.
389 * The best matching driver for a device is the driver with the highest score
390 * of the match between the device and the driver.
391 *
392 * @param drivers_list The list of drivers, where we look for the driver
393 * suitable for handling the device.
394 * @param node The device node structure of the device.
395 * @return The best matching driver or NULL if no matching driver
396 * is found.
397 */
398driver_t *find_best_match_driver(driver_list_t *drivers_list, node_t *node)
399{
400 driver_t *best_drv = NULL, *drv = NULL;
401 int best_score = 0, score = 0;
402
403 fibril_mutex_lock(&drivers_list->drivers_mutex);
404
405 link_t *link = drivers_list->drivers.next;
406 while (link != &drivers_list->drivers) {
407 drv = list_get_instance(link, driver_t, drivers);
408 score = get_match_score(drv, node);
409 if (score > best_score) {
410 best_score = score;
411 best_drv = drv;
412 }
413 link = link->next;
414 }
415
416 fibril_mutex_unlock(&drivers_list->drivers_mutex);
417
418 return best_drv;
419}
420
421/** Assign a driver to a device.
422 *
423 * @param node The device's node in the device tree.
424 * @param drv The driver.
425 */
426void attach_driver(node_t *node, driver_t *drv)
427{
428 printf(NAME ": attach_driver %s to device %s\n",
429 drv->name, node->pathname);
430
431 fibril_mutex_lock(&drv->driver_mutex);
432
433 node->drv = drv;
434 list_append(&node->driver_devices, &drv->devices);
435
436 fibril_mutex_unlock(&drv->driver_mutex);
437}
438
439/** Start a driver
440 *
441 * The driver's mutex is assumed to be locked.
442 *
443 * @param drv The driver's structure.
444 * @return True if the driver's task is successfully spawned, false
445 * otherwise.
446 */
447bool start_driver(driver_t *drv)
448{
449 int rc;
450
451 printf(NAME ": start_driver '%s'\n", drv->name);
452
453 rc = task_spawnl(NULL, drv->binary_path, drv->binary_path, NULL);
454 if (rc != EOK) {
455 printf(NAME ": error spawning %s (%s)\n",
456 drv->name, str_error(rc));
457 return false;
458 }
459
460 drv->state = DRIVER_STARTING;
461 return true;
462}
463
464/** Find device driver in the list of device drivers.
465 *
466 * @param drv_list The list of device drivers.
467 * @param drv_name The name of the device driver which is searched.
468 * @return The device driver of the specified name, if it is in the
469 * list, NULL otherwise.
470 */
471driver_t *find_driver(driver_list_t *drv_list, const char *drv_name)
472{
473 driver_t *res = NULL;
474 driver_t *drv = NULL;
475 link_t *link;
476
477 fibril_mutex_lock(&drv_list->drivers_mutex);
478
479 link = drv_list->drivers.next;
480 while (link != &drv_list->drivers) {
481 drv = list_get_instance(link, driver_t, drivers);
482 if (str_cmp(drv->name, drv_name) == 0) {
483 res = drv;
484 break;
485 }
486
487 link = link->next;
488 }
489
490 fibril_mutex_unlock(&drv_list->drivers_mutex);
491
492 return res;
493}
494
495/** Remember the driver's phone.
496 *
497 * @param driver The driver.
498 * @param phone The phone to the driver.
499 */
500void set_driver_phone(driver_t *driver, ipcarg_t phone)
501{
502 fibril_mutex_lock(&driver->driver_mutex);
503 assert(driver->state == DRIVER_STARTING);
504 driver->phone = phone;
505 fibril_mutex_unlock(&driver->driver_mutex);
506}
507
508/** Notify driver about the devices to which it was assigned.
509 *
510 * @param driver The driver to which the devices are passed.
511 */
512static void pass_devices_to_driver(driver_t *driver, dev_tree_t *tree)
513{
514 node_t *dev;
515 link_t *link;
516 int phone;
517
518 printf(NAME ": pass_devices_to_driver(`%s')\n", driver->name);
519
520 fibril_mutex_lock(&driver->driver_mutex);
521
522 phone = async_connect_me_to(driver->phone, DRIVER_DEVMAN, 0, 0);
523
524 if (phone < 0) {
525 fibril_mutex_unlock(&driver->driver_mutex);
526 return;
527 }
528
529 /*
530 * Go through devices list as long as there is some device
531 * that has not been passed to the driver.
532 */
533 link = driver->devices.next;
534 while (link != &driver->devices) {
535 dev = list_get_instance(link, node_t, driver_devices);
536 if (dev->passed_to_driver) {
537 link = link->next;
538 continue;
539 }
540
541 /*
542 * We remove the device from the list to allow safe adding
543 * of new devices (no one will touch our item this way).
544 */
545 list_remove(link);
546
547 /*
548 * Unlock to avoid deadlock when adding device
549 * handled by itself.
550 */
551 fibril_mutex_unlock(&driver->driver_mutex);
552
553 add_device(phone, driver, dev, tree);
554
555 /*
556 * Lock again as we will work with driver's
557 * structure.
558 */
559 fibril_mutex_lock(&driver->driver_mutex);
560
561 /*
562 * Insert the device back.
563 * The order is not relevant here so no harm is done
564 * (actually, the order would be preserved in most cases).
565 */
566 list_append(link, &driver->devices);
567
568 /*
569 * Restart the cycle to go through all devices again.
570 */
571 link = driver->devices.next;
572 }
573
574 ipc_hangup(phone);
575
576 /*
577 * Once we passed all devices to the driver, we need to mark the
578 * driver as running.
579 * It is vital to do it here and inside critical section.
580 *
581 * If we would change the state earlier, other devices added to
582 * the driver would be added to the device list and started
583 * immediately and possibly started here as well.
584 */
585 printf(NAME ": driver %s goes into running state.\n", driver->name);
586 driver->state = DRIVER_RUNNING;
587
588 fibril_mutex_unlock(&driver->driver_mutex);
589}
590
591/** Finish the initialization of a driver after it has succesfully started
592 * and after it has registered itself by the device manager.
593 *
594 * Pass devices formerly matched to the driver to the driver and remember the
595 * driver is running and fully functional now.
596 *
597 * @param driver The driver which registered itself as running by the
598 * device manager.
599 */
600void initialize_running_driver(driver_t *driver, dev_tree_t *tree)
601{
602 printf(NAME ": initialize_running_driver (`%s')\n", driver->name);
603
604 /*
605 * Pass devices which have been already assigned to the driver to the
606 * driver.
607 */
608 pass_devices_to_driver(driver, tree);
609}
610
611/** Initialize device driver structure.
612 *
613 * @param drv The device driver structure.
614 */
615void init_driver(driver_t *drv)
616{
617 assert(drv != NULL);
618
619 memset(drv, 0, sizeof(driver_t));
620 list_initialize(&drv->match_ids.ids);
621 list_initialize(&drv->devices);
622 fibril_mutex_initialize(&drv->driver_mutex);
623}
624
625/** Device driver structure clean-up.
626 *
627 * @param drv The device driver structure.
628 */
629void clean_driver(driver_t *drv)
630{
631 assert(drv != NULL);
632
633 free_not_null(drv->name);
634 free_not_null(drv->binary_path);
635
636 clean_match_ids(&drv->match_ids);
637
638 init_driver(drv);
639}
640
641/** Delete device driver structure.
642 *
643 * @param drv The device driver structure.
644 */
645void delete_driver(driver_t *drv)
646{
647 assert(drv != NULL);
648
649 clean_driver(drv);
650 free(drv);
651}
652
653/** Create devmap path and name for the device. */
654static void devmap_register_tree_device(node_t *node, dev_tree_t *tree)
655{
656 char *devmap_pathname = NULL;
657 char *devmap_name = NULL;
658
659 asprintf(&devmap_name, "%s", node->pathname);
660 if (devmap_name == NULL)
661 return;
662
663 replace_char(devmap_name, '/', DEVMAP_SEPARATOR);
664
665 asprintf(&devmap_pathname, "%s/%s", DEVMAP_DEVICE_NAMESPACE,
666 devmap_name);
667 if (devmap_pathname == NULL) {
668 free(devmap_name);
669 return;
670 }
671
672 devmap_device_register(devmap_pathname, &node->devmap_handle);
673
674 tree_add_devmap_device(tree, node);
675
676 free(devmap_name);
677 free(devmap_pathname);
678}
679
680
681/** Pass a device to running driver.
682 *
683 * @param drv The driver's structure.
684 * @param node The device's node in the device tree.
685 */
686void add_device(int phone, driver_t *drv, node_t *node, dev_tree_t *tree)
687{
688 /*
689 * We do not expect to have driver's mutex locked as we do not
690 * access any structures that would affect driver_t.
691 */
692 printf(NAME ": add_device (driver `%s', device `%s')\n", drv->name,
693 node->name);
694
695 ipcarg_t rc;
696 ipc_call_t answer;
697
698 /* Send the device to the driver. */
699 devman_handle_t parent_handle;
700 if (node->parent) {
701 parent_handle = node->parent->handle;
702 } else {
703 parent_handle = 0;
704 }
705
706 aid_t req = async_send_2(phone, DRIVER_ADD_DEVICE, node->handle,
707 parent_handle, &answer);
708
709 /* Send the device's name to the driver. */
710 rc = async_data_write_start(phone, node->name,
711 str_size(node->name) + 1);
712 if (rc != EOK) {
713 /* TODO handle error */
714 }
715
716 /* Wait for answer from the driver. */
717 async_wait_for(req, &rc);
718
719 switch(rc) {
720 case EOK:
721 node->state = DEVICE_USABLE;
722 devmap_register_tree_device(node, tree);
723 break;
724 case ENOENT:
725 node->state = DEVICE_NOT_PRESENT;
726 break;
727 default:
728 node->state = DEVICE_INVALID;
729 }
730
731 node->passed_to_driver = true;
732
733 return;
734}
735
736/** Find suitable driver for a device and assign the driver to it.
737 *
738 * @param node The device node of the device in the device tree.
739 * @param drivers_list The list of available drivers.
740 * @return True if the suitable driver is found and
741 * successfully assigned to the device, false otherwise.
742 */
743bool assign_driver(node_t *node, driver_list_t *drivers_list, dev_tree_t *tree)
744{
745 /*
746 * Find the driver which is the most suitable for handling this device.
747 */
748 driver_t *drv = find_best_match_driver(drivers_list, node);
749 if (drv == NULL) {
750 printf(NAME ": no driver found for device '%s'.\n",
751 node->pathname);
752 return false;
753 }
754
755 /* Attach the driver to the device. */
756 attach_driver(node, drv);
757
758 fibril_mutex_lock(&drv->driver_mutex);
759 if (drv->state == DRIVER_NOT_STARTED) {
760 /* Start the driver. */
761 start_driver(drv);
762 }
763 fibril_mutex_unlock(&drv->driver_mutex);
764
765 fibril_mutex_lock(&drv->driver_mutex);
766 bool is_running = drv->state == DRIVER_RUNNING;
767 fibril_mutex_unlock(&drv->driver_mutex);
768
769 if (is_running) {
770 /* Notify the driver about the new device. */
771 int phone = async_connect_me_to(drv->phone, DRIVER_DEVMAN, 0, 0);
772 if (phone > 0) {
773 add_device(phone, drv, node, tree);
774 ipc_hangup(phone);
775 }
776 }
777
778 return true;
779}
780
781/** Initialize the device tree.
782 *
783 * Create root device node of the tree and assign driver to it.
784 *
785 * @param tree The device tree.
786 * @param drivers_list the list of available drivers.
787 * @return True on success, false otherwise.
788 */
789bool init_device_tree(dev_tree_t *tree, driver_list_t *drivers_list)
790{
791 printf(NAME ": init_device_tree.\n");
792
793 tree->current_handle = 0;
794
795 hash_table_create(&tree->devman_devices, DEVICE_BUCKETS, 1,
796 &devman_devices_ops);
797 hash_table_create(&tree->devmap_devices, DEVICE_BUCKETS, 1,
798 &devmap_devices_ops);
799
800 fibril_rwlock_initialize(&tree->rwlock);
801
802 /* Create root node and add it to the device tree. */
803 if (!create_root_node(tree))
804 return false;
805
806 /* Find suitable driver and start it. */
807 return assign_driver(tree->root_node, drivers_list, tree);
808}
809
810/* Device nodes */
811
812/** Create a new device node.
813 *
814 * @return A device node structure.
815 */
816node_t *create_dev_node(void)
817{
818 node_t *res = malloc(sizeof(node_t));
819
820 if (res != NULL) {
821 memset(res, 0, sizeof(node_t));
822 list_initialize(&res->children);
823 list_initialize(&res->match_ids.ids);
824 list_initialize(&res->classes);
825 }
826
827 return res;
828}
829
830/** Delete a device node.
831 *
832 * @param node The device node structure.
833 */
834void delete_dev_node(node_t *node)
835{
836 assert(list_empty(&node->children));
837 assert(node->parent == NULL);
838 assert(node->drv == NULL);
839
840 clean_match_ids(&node->match_ids);
841 free_not_null(node->name);
842 free_not_null(node->pathname);
843 free(node);
844}
845
846/** Find the device node structure of the device witch has the specified handle.
847 *
848 * Device tree's rwlock should be held at least for reading.
849 *
850 * @param tree The device tree where we look for the device node.
851 * @param handle The handle of the device.
852 * @return The device node.
853 */
854node_t *find_dev_node_no_lock(dev_tree_t *tree, devman_handle_t handle)
855{
856 unsigned long key = handle;
857 link_t *link = hash_table_find(&tree->devman_devices, &key);
858 return hash_table_get_instance(link, node_t, devman_link);
859}
860
861/** Find the device node structure of the device witch has the specified handle.
862 *
863 * @param tree The device tree where we look for the device node.
864 * @param handle The handle of the device.
865 * @return The device node.
866 */
867node_t *find_dev_node(dev_tree_t *tree, devman_handle_t handle)
868{
869 node_t *node = NULL;
870
871 fibril_rwlock_read_lock(&tree->rwlock);
872 node = find_dev_node_no_lock(tree, handle);
873 fibril_rwlock_read_unlock(&tree->rwlock);
874
875 return node;
876}
877
878
879/** Create and set device's full path in device tree.
880 *
881 * @param node The device's device node.
882 * @param parent The parent device node.
883 * @return True on success, false otherwise (insufficient
884 * resources etc.).
885 */
886static bool set_dev_path(node_t *node, node_t *parent)
887{
888 assert(node->name != NULL);
889
890 size_t pathsize = (str_size(node->name) + 1);
891 if (parent != NULL)
892 pathsize += str_size(parent->pathname) + 1;
893
894 node->pathname = (char *) malloc(pathsize);
895 if (node->pathname == NULL) {
896 printf(NAME ": failed to allocate device path.\n");
897 return false;
898 }
899
900 if (parent != NULL) {
901 str_cpy(node->pathname, pathsize, parent->pathname);
902 str_append(node->pathname, pathsize, "/");
903 str_append(node->pathname, pathsize, node->name);
904 } else {
905 str_cpy(node->pathname, pathsize, node->name);
906 }
907
908 return true;
909}
910
911/** Insert new device into device tree.
912 *
913 * The device tree's rwlock should be already held exclusively when calling this
914 * function.
915 *
916 * @param tree The device tree.
917 * @param node The newly added device node.
918 * @param dev_name The name of the newly added device.
919 * @param parent The parent device node.
920 *
921 * @return True on success, false otherwise (insufficient resources
922 * etc.).
923 */
924bool insert_dev_node(dev_tree_t *tree, node_t *node, char *dev_name,
925 node_t *parent)
926{
927 assert(node != NULL);
928 assert(tree != NULL);
929 assert(dev_name != NULL);
930
931 node->name = dev_name;
932 if (!set_dev_path(node, parent)) {
933 return false;
934 }
935
936 /* Add the node to the handle-to-node map. */
937 node->handle = ++tree->current_handle;
938 unsigned long key = node->handle;
939 hash_table_insert(&tree->devman_devices, &key, &node->devman_link);
940
941 /* Add the node to the list of its parent's children. */
942 node->parent = parent;
943 if (parent != NULL)
944 list_append(&node->sibling, &parent->children);
945
946 return true;
947}
948
949/** Find device node with a specified path in the device tree.
950 *
951 * @param path The path of the device node in the device tree.
952 * @param tree The device tree.
953 * @return The device node if it is present in the tree, NULL
954 * otherwise.
955 */
956node_t *find_dev_node_by_path(dev_tree_t *tree, char *path)
957{
958 fibril_rwlock_read_lock(&tree->rwlock);
959
960 node_t *dev = tree->root_node;
961 /*
962 * Relative path to the device from its parent (but with '/' at the
963 * beginning)
964 */
965 char *rel_path = path;
966 char *next_path_elem = NULL;
967 bool cont = (rel_path[0] == '/');
968
969 while (cont && dev != NULL) {
970 next_path_elem = get_path_elem_end(rel_path + 1);
971 if (next_path_elem[0] == '/') {
972 cont = true;
973 next_path_elem[0] = 0;
974 } else {
975 cont = false;
976 }
977
978 dev = find_node_child(dev, rel_path + 1);
979
980 if (cont) {
981 /* Restore the original path. */
982 next_path_elem[0] = '/';
983 }
984 rel_path = next_path_elem;
985 }
986
987 fibril_rwlock_read_unlock(&tree->rwlock);
988
989 return dev;
990}
991
992/** Find child device node with a specified name.
993 *
994 * Device tree rwlock should be held at least for reading.
995 *
996 * @param parent The parent device node.
997 * @param name The name of the child device node.
998 * @return The child device node.
999 */
1000node_t *find_node_child(node_t *parent, const char *name)
1001{
1002 node_t *dev;
1003 link_t *link;
1004
1005 link = parent->children.next;
1006
1007 while (link != &parent->children) {
1008 dev = list_get_instance(link, node_t, sibling);
1009
1010 if (str_cmp(name, dev->name) == 0)
1011 return dev;
1012
1013 link = link->next;
1014 }
1015
1016 return NULL;
1017}
1018
1019/* Device classes */
1020
1021/** Create device class.
1022 *
1023 * @return Device class.
1024 */
1025dev_class_t *create_dev_class(void)
1026{
1027 dev_class_t *cl;
1028
1029 cl = (dev_class_t *) malloc(sizeof(dev_class_t));
1030 if (cl != NULL) {
1031 memset(cl, 0, sizeof(dev_class_t));
1032 list_initialize(&cl->devices);
1033 fibril_mutex_initialize(&cl->mutex);
1034 }
1035
1036 return cl;
1037}
1038
1039/** Create device class info.
1040 *
1041 * @return Device class info.
1042 */
1043dev_class_info_t *create_dev_class_info(void)
1044{
1045 dev_class_info_t *info;
1046
1047 info = (dev_class_info_t *) malloc(sizeof(dev_class_info_t));
1048 if (info != NULL)
1049 memset(info, 0, sizeof(dev_class_info_t));
1050
1051 return info;
1052}
1053
1054size_t get_new_class_dev_idx(dev_class_t *cl)
1055{
1056 size_t dev_idx;
1057
1058 fibril_mutex_lock(&cl->mutex);
1059 dev_idx = ++cl->curr_dev_idx;
1060 fibril_mutex_unlock(&cl->mutex);
1061
1062 return dev_idx;
1063}
1064
1065
1066/** Create unique device name within the class.
1067 *
1068 * @param cl The class.
1069 * @param base_dev_name Contains the base name for the device if it was
1070 * specified by the driver when it registered the device by
1071 * the class; NULL if driver specified no base name.
1072 * @return The unique name for the device within the class.
1073 */
1074char *create_dev_name_for_class(dev_class_t *cl, const char *base_dev_name)
1075{
1076 char *dev_name;
1077 const char *base_name;
1078
1079 if (base_dev_name != NULL)
1080 base_name = base_dev_name;
1081 else
1082 base_name = cl->base_dev_name;
1083
1084 size_t idx = get_new_class_dev_idx(cl);
1085 asprintf(&dev_name, "%s%zu", base_name, idx);
1086
1087 return dev_name;
1088}
1089
1090/** Add the device to the class.
1091 *
1092 * The device may be added to multiple classes and a class may contain multiple
1093 * devices. The class and the device are associated with each other by the
1094 * dev_class_info_t structure.
1095 *
1096 * @param dev The device.
1097 * @param class The class.
1098 * @param base_dev_name The base name of the device within the class if
1099 * specified by the driver, NULL otherwise.
1100 * @return dev_class_info_t structure which associates the device
1101 * with the class.
1102 */
1103dev_class_info_t *add_device_to_class(node_t *dev, dev_class_t *cl,
1104 const char *base_dev_name)
1105{
1106 dev_class_info_t *info = create_dev_class_info();
1107
1108 if (info != NULL) {
1109 info->dev_class = cl;
1110 info->dev = dev;
1111
1112 /* Add the device to the class. */
1113 fibril_mutex_lock(&cl->mutex);
1114 list_append(&info->link, &cl->devices);
1115 fibril_mutex_unlock(&cl->mutex);
1116
1117 /* Add the class to the device. */
1118 list_append(&info->dev_classes, &dev->classes);
1119
1120 /* Create unique name for the device within the class. */
1121 info->dev_name = create_dev_name_for_class(cl, base_dev_name);
1122 }
1123
1124 return info;
1125}
1126
1127dev_class_t *get_dev_class(class_list_t *class_list, char *class_name)
1128{
1129 dev_class_t *cl;
1130
1131 fibril_rwlock_write_lock(&class_list->rwlock);
1132 cl = find_dev_class_no_lock(class_list, class_name);
1133 if (cl == NULL) {
1134 cl = create_dev_class();
1135 if (cl != NULL) {
1136 cl->name = class_name;
1137 cl->base_dev_name = "";
1138 add_dev_class_no_lock(class_list, cl);
1139 }
1140 }
1141
1142 fibril_rwlock_write_unlock(&class_list->rwlock);
1143 return cl;
1144}
1145
1146dev_class_t *find_dev_class_no_lock(class_list_t *class_list,
1147 const char *class_name)
1148{
1149 dev_class_t *cl;
1150 link_t *link = class_list->classes.next;
1151
1152 while (link != &class_list->classes) {
1153 cl = list_get_instance(link, dev_class_t, link);
1154 if (str_cmp(cl->name, class_name) == 0) {
1155 return cl;
1156 }
1157 link = link->next;
1158 }
1159
1160 return NULL;
1161}
1162
1163void add_dev_class_no_lock(class_list_t *class_list, dev_class_t *cl)
1164{
1165 list_append(&cl->link, &class_list->classes);
1166}
1167
1168void init_class_list(class_list_t *class_list)
1169{
1170 list_initialize(&class_list->classes);
1171 fibril_rwlock_initialize(&class_list->rwlock);
1172 hash_table_create(&class_list->devmap_devices, DEVICE_BUCKETS, 1,
1173 &devmap_devices_ops);
1174}
1175
1176
1177/* Devmap devices */
1178
1179node_t *find_devmap_tree_device(dev_tree_t *tree, devmap_handle_t devmap_handle)
1180{
1181 node_t *dev = NULL;
1182 link_t *link;
1183 unsigned long key = (unsigned long) devmap_handle;
1184
1185 fibril_rwlock_read_lock(&tree->rwlock);
1186 link = hash_table_find(&tree->devmap_devices, &key);
1187 if (link != NULL)
1188 dev = hash_table_get_instance(link, node_t, devmap_link);
1189 fibril_rwlock_read_unlock(&tree->rwlock);
1190
1191 return dev;
1192}
1193
1194node_t *find_devmap_class_device(class_list_t *classes,
1195 devmap_handle_t devmap_handle)
1196{
1197 node_t *dev = NULL;
1198 dev_class_info_t *cli;
1199 link_t *link;
1200 unsigned long key = (unsigned long)devmap_handle;
1201
1202 fibril_rwlock_read_lock(&classes->rwlock);
1203 link = hash_table_find(&classes->devmap_devices, &key);
1204 if (link != NULL) {
1205 cli = hash_table_get_instance(link, dev_class_info_t,
1206 devmap_link);
1207 dev = cli->dev;
1208 }
1209 fibril_rwlock_read_unlock(&classes->rwlock);
1210
1211 return dev;
1212}
1213
1214void class_add_devmap_device(class_list_t *class_list, dev_class_info_t *cli)
1215{
1216 unsigned long key = (unsigned long) cli->devmap_handle;
1217
1218 fibril_rwlock_write_lock(&class_list->rwlock);
1219 hash_table_insert(&class_list->devmap_devices, &key, &cli->devmap_link);
1220 fibril_rwlock_write_unlock(&class_list->rwlock);
1221}
1222
1223void tree_add_devmap_device(dev_tree_t *tree, node_t *node)
1224{
1225 unsigned long key = (unsigned long) node->devmap_handle;
1226 fibril_rwlock_write_lock(&tree->rwlock);
1227 hash_table_insert(&tree->devmap_devices, &key, &node->devmap_link);
1228 fibril_rwlock_write_unlock(&tree->rwlock);
1229}
1230
1231/** @}
1232 */
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