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Merge branch 'for-linus' of git://git.kernel.org/pub/scm/linux/kernel/git/jikos/hid
[mirror_ubuntu-artful-kernel.git] / drivers / firewire / core-device.c
CommitLineData
c781c06d
KH
1/*
2 * Device probing and sysfs code.
19a15b93
KH
3 *
4 * Copyright (C) 2005-2006 Kristian Hoegsberg <krh@bitplanet.net>
5 *
6 * This program is free software; you can redistribute it and/or modify
7 * it under the terms of the GNU General Public License as published by
8 * the Free Software Foundation; either version 2 of the License, or
9 * (at your option) any later version.
10 *
11 * This program is distributed in the hope that it will be useful,
12 * but WITHOUT ANY WARRANTY; without even the implied warranty of
13 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 * GNU General Public License for more details.
15 *
16 * You should have received a copy of the GNU General Public License
17 * along with this program; if not, write to the Free Software Foundation,
18 * Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA.
19 */
20
d54423c6 21#include <linux/bug.h>
41f321c2 22#include <linux/ctype.h>
19a15b93 23#include <linux/delay.h>
41f321c2
SR
24#include <linux/device.h>
25#include <linux/errno.h>
77c9a5da
SR
26#include <linux/firewire.h>
27#include <linux/firewire-constants.h>
a3aca3da 28#include <linux/idr.h>
3d36a0df 29#include <linux/jiffies.h>
41f321c2
SR
30#include <linux/kobject.h>
31#include <linux/list.h>
b3b29888 32#include <linux/mod_devicetable.h>
e8ca9702 33#include <linux/module.h>
d67cfb96 34#include <linux/mutex.h>
badfcb24 35#include <linux/random.h>
6188e10d 36#include <linux/rwsem.h>
5a0e3ad6 37#include <linux/slab.h>
cf417e54 38#include <linux/spinlock.h>
41f321c2
SR
39#include <linux/string.h>
40#include <linux/workqueue.h>
41
60063497 42#include <linux/atomic.h>
e8ca9702 43#include <asm/byteorder.h>
41f321c2 44
77c9a5da 45#include "core.h"
19a15b93 46
13b302d0 47void fw_csr_iterator_init(struct fw_csr_iterator *ci, const u32 *p)
19a15b93
KH
48{
49 ci->p = p + 1;
50 ci->end = ci->p + (p[0] >> 16);
51}
19a15b93
KH
52EXPORT_SYMBOL(fw_csr_iterator_init);
53
54int fw_csr_iterator_next(struct fw_csr_iterator *ci, int *key, int *value)
55{
56 *key = *ci->p >> 24;
57 *value = *ci->p & 0xffffff;
58
59 return ci->p++ < ci->end;
60}
19a15b93
KH
61EXPORT_SYMBOL(fw_csr_iterator_next);
62
13b302d0 63static const u32 *search_leaf(const u32 *directory, int search_key)
1f8fef7b
CL
64{
65 struct fw_csr_iterator ci;
66 int last_key = 0, key, value;
67
68 fw_csr_iterator_init(&ci, directory);
69 while (fw_csr_iterator_next(&ci, &key, &value)) {
70 if (last_key == search_key &&
71 key == (CSR_DESCRIPTOR | CSR_LEAF))
72 return ci.p - 1 + value;
3c2c58cb 73
1f8fef7b
CL
74 last_key = key;
75 }
3c2c58cb 76
1f8fef7b
CL
77 return NULL;
78}
79
13b302d0 80static int textual_leaf_to_string(const u32 *block, char *buf, size_t size)
1f8fef7b 81{
3c2c58cb
SR
82 unsigned int quadlets, i;
83 char c;
1f8fef7b
CL
84
85 if (!size || !buf)
86 return -EINVAL;
87
3c2c58cb 88 quadlets = min(block[0] >> 16, 256U);
1f8fef7b
CL
89 if (quadlets < 2)
90 return -ENODATA;
91
92 if (block[1] != 0 || block[2] != 0)
93 /* unknown language/character set */
94 return -ENODATA;
95
96 block += 3;
97 quadlets -= 2;
3c2c58cb
SR
98 for (i = 0; i < quadlets * 4 && i < size - 1; i++) {
99 c = block[i / 4] >> (24 - 8 * (i % 4));
1f8fef7b
CL
100 if (c == '\0')
101 break;
3c2c58cb 102 buf[i] = c;
1f8fef7b 103 }
3c2c58cb
SR
104 buf[i] = '\0';
105
106 return i;
1f8fef7b
CL
107}
108
109/**
656b7afd
SR
110 * fw_csr_string() - reads a string from the configuration ROM
111 * @directory: e.g. root directory or unit directory
112 * @key: the key of the preceding directory entry
113 * @buf: where to put the string
114 * @size: size of @buf, in bytes
1f8fef7b 115 *
3c2c58cb
SR
116 * The string is taken from a minimal ASCII text descriptor leaf after
117 * the immediate entry with @key. The string is zero-terminated.
118 * Returns strlen(buf) or a negative error code.
1f8fef7b 119 */
13b302d0 120int fw_csr_string(const u32 *directory, int key, char *buf, size_t size)
1f8fef7b 121{
13b302d0 122 const u32 *leaf = search_leaf(directory, key);
1f8fef7b
CL
123 if (!leaf)
124 return -ENOENT;
3c2c58cb 125
1f8fef7b
CL
126 return textual_leaf_to_string(leaf, buf, size);
127}
128EXPORT_SYMBOL(fw_csr_string);
129
fe43d6d9 130static void get_ids(const u32 *directory, int *id)
19a15b93
KH
131{
132 struct fw_csr_iterator ci;
fe43d6d9 133 int key, value;
19a15b93 134
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KH
135 fw_csr_iterator_init(&ci, directory);
136 while (fw_csr_iterator_next(&ci, &key, &value)) {
fe43d6d9
SR
137 switch (key) {
138 case CSR_VENDOR: id[0] = value; break;
139 case CSR_MODEL: id[1] = value; break;
140 case CSR_SPECIFIER_ID: id[2] = value; break;
141 case CSR_VERSION: id[3] = value; break;
142 }
19a15b93 143 }
fe43d6d9 144}
19a15b93 145
fe43d6d9
SR
146static void get_modalias_ids(struct fw_unit *unit, int *id)
147{
148 get_ids(&fw_parent_device(unit)->config_rom[5], id);
149 get_ids(unit->directory, id);
150}
19a15b93 151
fe43d6d9
SR
152static bool match_ids(const struct ieee1394_device_id *id_table, int *id)
153{
154 int match = 0;
155
156 if (id[0] == id_table->vendor_id)
157 match |= IEEE1394_MATCH_VENDOR_ID;
158 if (id[1] == id_table->model_id)
159 match |= IEEE1394_MATCH_MODEL_ID;
160 if (id[2] == id_table->specifier_id)
161 match |= IEEE1394_MATCH_SPECIFIER_ID;
162 if (id[3] == id_table->version)
163 match |= IEEE1394_MATCH_VERSION;
164
165 return (match & id_table->match_flags) == id_table->match_flags;
19a15b93
KH
166}
167
fe43d6d9
SR
168static bool is_fw_unit(struct device *dev);
169
19a15b93
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170static int fw_unit_match(struct device *dev, struct device_driver *drv)
171{
fe43d6d9
SR
172 const struct ieee1394_device_id *id_table =
173 container_of(drv, struct fw_driver, driver)->id_table;
174 int id[] = {0, 0, 0, 0};
19a15b93
KH
175
176 /* We only allow binding to fw_units. */
177 if (!is_fw_unit(dev))
178 return 0;
179
fe43d6d9 180 get_modalias_ids(fw_unit(dev), id);
e41f8d70 181
fe43d6d9
SR
182 for (; id_table->match_flags != 0; id_table++)
183 if (match_ids(id_table, id))
19a15b93 184 return 1;
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KH
185
186 return 0;
187}
188
189static int get_modalias(struct fw_unit *unit, char *buffer, size_t buffer_size)
190{
5ae73518 191 int id[] = {0, 0, 0, 0};
19a15b93 192
fe43d6d9 193 get_modalias_ids(unit, id);
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KH
194
195 return snprintf(buffer, buffer_size,
196 "ieee1394:ven%08Xmo%08Xsp%08Xver%08X",
5ae73518 197 id[0], id[1], id[2], id[3]);
19a15b93
KH
198}
199
53dca511 200static int fw_unit_uevent(struct device *dev, struct kobj_uevent_env *env)
19a15b93
KH
201{
202 struct fw_unit *unit = fw_unit(dev);
203 char modalias[64];
19a15b93 204
2d826cc5 205 get_modalias(unit, modalias, sizeof(modalias));
19a15b93 206
7eff2e7a 207 if (add_uevent_var(env, "MODALIAS=%s", modalias))
19a15b93
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208 return -ENOMEM;
209
19a15b93
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210 return 0;
211}
212
213struct bus_type fw_bus_type = {
362c2c8c 214 .name = "firewire",
19a15b93 215 .match = fw_unit_match,
19a15b93 216};
19a15b93
KH
217EXPORT_SYMBOL(fw_bus_type);
218
19a15b93
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219int fw_device_enable_phys_dma(struct fw_device *device)
220{
b5d2a5e0
SR
221 int generation = device->generation;
222
223 /* device->node_id, accessed below, must not be older than generation */
224 smp_rmb();
225
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KH
226 return device->card->driver->enable_phys_dma(device->card,
227 device->node_id,
b5d2a5e0 228 generation);
19a15b93 229}
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230EXPORT_SYMBOL(fw_device_enable_phys_dma);
231
7feb9cce
KH
232struct config_rom_attribute {
233 struct device_attribute attr;
234 u32 key;
235};
236
53dca511
SR
237static ssize_t show_immediate(struct device *dev,
238 struct device_attribute *dattr, char *buf)
7feb9cce
KH
239{
240 struct config_rom_attribute *attr =
241 container_of(dattr, struct config_rom_attribute, attr);
242 struct fw_csr_iterator ci;
13b302d0 243 const u32 *dir;
c9755e14
SR
244 int key, value, ret = -ENOENT;
245
246 down_read(&fw_device_rwsem);
7feb9cce
KH
247
248 if (is_fw_unit(dev))
249 dir = fw_unit(dev)->directory;
250 else
251 dir = fw_device(dev)->config_rom + 5;
252
253 fw_csr_iterator_init(&ci, dir);
254 while (fw_csr_iterator_next(&ci, &key, &value))
c9755e14
SR
255 if (attr->key == key) {
256 ret = snprintf(buf, buf ? PAGE_SIZE : 0,
257 "0x%06x\n", value);
258 break;
259 }
260
261 up_read(&fw_device_rwsem);
7feb9cce 262
c9755e14 263 return ret;
7feb9cce
KH
264}
265
266#define IMMEDIATE_ATTR(name, key) \
267 { __ATTR(name, S_IRUGO, show_immediate, NULL), key }
268
53dca511
SR
269static ssize_t show_text_leaf(struct device *dev,
270 struct device_attribute *dattr, char *buf)
7feb9cce
KH
271{
272 struct config_rom_attribute *attr =
273 container_of(dattr, struct config_rom_attribute, attr);
13b302d0 274 const u32 *dir;
1f8fef7b
CL
275 size_t bufsize;
276 char dummy_buf[2];
277 int ret;
7feb9cce 278
c9755e14
SR
279 down_read(&fw_device_rwsem);
280
7feb9cce
KH
281 if (is_fw_unit(dev))
282 dir = fw_unit(dev)->directory;
283 else
284 dir = fw_device(dev)->config_rom + 5;
285
1f8fef7b
CL
286 if (buf) {
287 bufsize = PAGE_SIZE - 1;
288 } else {
289 buf = dummy_buf;
290 bufsize = 1;
7feb9cce
KH
291 }
292
1f8fef7b 293 ret = fw_csr_string(dir, attr->key, buf, bufsize);
7feb9cce 294
1f8fef7b
CL
295 if (ret >= 0) {
296 /* Strip trailing whitespace and add newline. */
297 while (ret > 0 && isspace(buf[ret - 1]))
298 ret--;
299 strcpy(buf + ret, "\n");
300 ret++;
c9755e14 301 }
7feb9cce 302
c9755e14 303 up_read(&fw_device_rwsem);
7feb9cce 304
c9755e14 305 return ret;
7feb9cce
KH
306}
307
308#define TEXT_LEAF_ATTR(name, key) \
309 { __ATTR(name, S_IRUGO, show_text_leaf, NULL), key }
310
311static struct config_rom_attribute config_rom_attributes[] = {
312 IMMEDIATE_ATTR(vendor, CSR_VENDOR),
313 IMMEDIATE_ATTR(hardware_version, CSR_HARDWARE_VERSION),
314 IMMEDIATE_ATTR(specifier_id, CSR_SPECIFIER_ID),
315 IMMEDIATE_ATTR(version, CSR_VERSION),
316 IMMEDIATE_ATTR(model, CSR_MODEL),
317 TEXT_LEAF_ATTR(vendor_name, CSR_VENDOR),
318 TEXT_LEAF_ATTR(model_name, CSR_MODEL),
319 TEXT_LEAF_ATTR(hardware_version_name, CSR_HARDWARE_VERSION),
320};
321
53dca511
SR
322static void init_fw_attribute_group(struct device *dev,
323 struct device_attribute *attrs,
324 struct fw_attribute_group *group)
7feb9cce
KH
325{
326 struct device_attribute *attr;
6f2e53d5
KH
327 int i, j;
328
329 for (j = 0; attrs[j].attr.name != NULL; j++)
330 group->attrs[j] = &attrs[j].attr;
7feb9cce
KH
331
332 for (i = 0; i < ARRAY_SIZE(config_rom_attributes); i++) {
333 attr = &config_rom_attributes[i].attr;
334 if (attr->show(dev, attr, NULL) < 0)
335 continue;
6f2e53d5 336 group->attrs[j++] = &attr->attr;
7feb9cce
KH
337 }
338
e5333db9 339 group->attrs[j] = NULL;
6f2e53d5
KH
340 group->groups[0] = &group->group;
341 group->groups[1] = NULL;
342 group->group.attrs = group->attrs;
a4dbd674 343 dev->groups = (const struct attribute_group **) group->groups;
7feb9cce
KH
344}
345
53dca511
SR
346static ssize_t modalias_show(struct device *dev,
347 struct device_attribute *attr, char *buf)
19a15b93
KH
348{
349 struct fw_unit *unit = fw_unit(dev);
350 int length;
351
352 length = get_modalias(unit, buf, PAGE_SIZE);
353 strcpy(buf + length, "\n");
354
355 return length + 1;
356}
357
53dca511
SR
358static ssize_t rom_index_show(struct device *dev,
359 struct device_attribute *attr, char *buf)
19a15b93 360{
21351dbe
KH
361 struct fw_device *device = fw_device(dev->parent);
362 struct fw_unit *unit = fw_unit(dev);
19a15b93 363
21351dbe
KH
364 return snprintf(buf, PAGE_SIZE, "%d\n",
365 (int)(unit->directory - device->config_rom));
19a15b93
KH
366}
367
21351dbe
KH
368static struct device_attribute fw_unit_attributes[] = {
369 __ATTR_RO(modalias),
370 __ATTR_RO(rom_index),
371 __ATTR_NULL,
19a15b93
KH
372};
373
53dca511
SR
374static ssize_t config_rom_show(struct device *dev,
375 struct device_attribute *attr, char *buf)
048961ef 376{
21351dbe 377 struct fw_device *device = fw_device(dev);
c9755e14 378 size_t length;
048961ef 379
c9755e14
SR
380 down_read(&fw_device_rwsem);
381 length = device->config_rom_length * 4;
382 memcpy(buf, device->config_rom, length);
383 up_read(&fw_device_rwsem);
21351dbe 384
c9755e14 385 return length;
048961ef
KH
386}
387
53dca511
SR
388static ssize_t guid_show(struct device *dev,
389 struct device_attribute *attr, char *buf)
bbd14945
KH
390{
391 struct fw_device *device = fw_device(dev);
c9755e14
SR
392 int ret;
393
394 down_read(&fw_device_rwsem);
395 ret = snprintf(buf, PAGE_SIZE, "0x%08x%08x\n",
396 device->config_rom[3], device->config_rom[4]);
397 up_read(&fw_device_rwsem);
bbd14945 398
c9755e14 399 return ret;
bbd14945
KH
400}
401
baedee17
CL
402static ssize_t is_local_show(struct device *dev,
403 struct device_attribute *attr, char *buf)
404{
405 struct fw_device *device = fw_device(dev);
406
407 return sprintf(buf, "%u\n", device->is_local);
408}
409
13b302d0 410static int units_sprintf(char *buf, const u32 *directory)
0210b66d
SR
411{
412 struct fw_csr_iterator ci;
413 int key, value;
414 int specifier_id = 0;
415 int version = 0;
416
417 fw_csr_iterator_init(&ci, directory);
418 while (fw_csr_iterator_next(&ci, &key, &value)) {
419 switch (key) {
420 case CSR_SPECIFIER_ID:
421 specifier_id = value;
422 break;
423 case CSR_VERSION:
424 version = value;
425 break;
426 }
427 }
428
429 return sprintf(buf, "0x%06x:0x%06x ", specifier_id, version);
430}
431
432static ssize_t units_show(struct device *dev,
433 struct device_attribute *attr, char *buf)
434{
435 struct fw_device *device = fw_device(dev);
436 struct fw_csr_iterator ci;
437 int key, value, i = 0;
438
439 down_read(&fw_device_rwsem);
440 fw_csr_iterator_init(&ci, &device->config_rom[5]);
441 while (fw_csr_iterator_next(&ci, &key, &value)) {
442 if (key != (CSR_UNIT | CSR_DIRECTORY))
443 continue;
444 i += units_sprintf(&buf[i], ci.p + value - 1);
445 if (i >= PAGE_SIZE - (8 + 1 + 8 + 1))
446 break;
447 }
448 up_read(&fw_device_rwsem);
449
450 if (i)
451 buf[i - 1] = '\n';
452
453 return i;
454}
455
21351dbe
KH
456static struct device_attribute fw_device_attributes[] = {
457 __ATTR_RO(config_rom),
bbd14945 458 __ATTR_RO(guid),
baedee17 459 __ATTR_RO(is_local),
0210b66d 460 __ATTR_RO(units),
21351dbe 461 __ATTR_NULL,
048961ef
KH
462};
463
53dca511
SR
464static int read_rom(struct fw_device *device,
465 int generation, int index, u32 *data)
19a15b93 466{
aaff1203
SR
467 u64 offset = (CSR_REGISTER_BASE | CSR_CONFIG_ROM) + index * 4;
468 int i, rcode;
b5d2a5e0
SR
469
470 /* device->node_id, accessed below, must not be older than generation */
471 smp_rmb();
19a15b93 472
aaff1203
SR
473 for (i = 10; i < 100; i += 10) {
474 rcode = fw_run_transaction(device->card,
475 TCODE_READ_QUADLET_REQUEST, device->node_id,
476 generation, device->max_speed, offset, data, 4);
477 if (rcode != RCODE_BUSY)
478 break;
479 msleep(i);
480 }
1e119fa9 481 be32_to_cpus(data);
19a15b93 482
1e119fa9 483 return rcode;
19a15b93
KH
484}
485
fd6e0c51 486#define MAX_CONFIG_ROM_SIZE 256
1dadff71 487
f8d2dc39
SR
488/*
489 * Read the bus info block, perform a speed probe, and read all of the rest of
490 * the config ROM. We do all this with a cached bus generation. If the bus
fd6e0c51 491 * generation changes under us, read_config_rom will fail and get retried.
f8d2dc39
SR
492 * It's better to start all over in this case because the node from which we
493 * are reading the ROM may have changed the ROM during the reset.
94fba9fb 494 * Returns either a result code or a negative error code.
f8d2dc39 495 */
fd6e0c51 496static int read_config_rom(struct fw_device *device, int generation)
19a15b93 497{
26b4950d 498 struct fw_card *card = device->card;
13b302d0
SR
499 const u32 *old_rom, *new_rom;
500 u32 *rom, *stack;
1dadff71 501 u32 sp, key;
94fba9fb 502 int i, end, length, ret;
1dadff71 503
fd6e0c51
SR
504 rom = kmalloc(sizeof(*rom) * MAX_CONFIG_ROM_SIZE +
505 sizeof(*stack) * MAX_CONFIG_ROM_SIZE, GFP_KERNEL);
1dadff71
SR
506 if (rom == NULL)
507 return -ENOMEM;
508
fd6e0c51
SR
509 stack = &rom[MAX_CONFIG_ROM_SIZE];
510 memset(rom, 0, sizeof(*rom) * MAX_CONFIG_ROM_SIZE);
19a15b93 511
f1397490
SR
512 device->max_speed = SCODE_100;
513
19a15b93
KH
514 /* First read the bus info block. */
515 for (i = 0; i < 5; i++) {
94fba9fb
CL
516 ret = read_rom(device, generation, i, &rom[i]);
517 if (ret != RCODE_COMPLETE)
1dadff71 518 goto out;
c781c06d 519 /*
d33ec3b5 520 * As per IEEE1212 7.2, during initialization, devices can
19a15b93
KH
521 * reply with a 0 for the first quadlet of the config
522 * rom to indicate that they are booting (for example,
523 * if the firmware is on the disk of a external
524 * harddisk). In that case we just fail, and the
c781c06d
KH
525 * retry mechanism will try again later.
526 */
94fba9fb
CL
527 if (i == 0 && rom[i] == 0) {
528 ret = RCODE_BUSY;
1dadff71 529 goto out;
94fba9fb 530 }
19a15b93
KH
531 }
532
f1397490
SR
533 device->max_speed = device->node->max_speed;
534
535 /*
536 * Determine the speed of
537 * - devices with link speed less than PHY speed,
538 * - devices with 1394b PHY (unless only connected to 1394a PHYs),
539 * - all devices if there are 1394b repeaters.
540 * Note, we cannot use the bus info block's link_spd as starting point
541 * because some buggy firmwares set it lower than necessary and because
542 * 1394-1995 nodes do not have the field.
543 */
544 if ((rom[2] & 0x7) < device->max_speed ||
545 device->max_speed == SCODE_BETA ||
26b4950d 546 card->beta_repeaters_present) {
f1397490
SR
547 u32 dummy;
548
549 /* for S1600 and S3200 */
550 if (device->max_speed == SCODE_BETA)
26b4950d 551 device->max_speed = card->link_speed;
f1397490
SR
552
553 while (device->max_speed > SCODE_100) {
f8d2dc39
SR
554 if (read_rom(device, generation, 0, &dummy) ==
555 RCODE_COMPLETE)
f1397490
SR
556 break;
557 device->max_speed--;
558 }
559 }
560
c781c06d
KH
561 /*
562 * Now parse the config rom. The config rom is a recursive
19a15b93
KH
563 * directory structure so we parse it using a stack of
564 * references to the blocks that make up the structure. We
565 * push a reference to the root directory on the stack to
c781c06d
KH
566 * start things off.
567 */
19a15b93
KH
568 length = i;
569 sp = 0;
570 stack[sp++] = 0xc0000005;
571 while (sp > 0) {
c781c06d
KH
572 /*
573 * Pop the next block reference of the stack. The
19a15b93
KH
574 * lower 24 bits is the offset into the config rom,
575 * the upper 8 bits are the type of the reference the
c781c06d
KH
576 * block.
577 */
19a15b93
KH
578 key = stack[--sp];
579 i = key & 0xffffff;
94fba9fb
CL
580 if (WARN_ON(i >= MAX_CONFIG_ROM_SIZE)) {
581 ret = -ENXIO;
1dadff71 582 goto out;
94fba9fb 583 }
19a15b93
KH
584
585 /* Read header quadlet for the block to get the length. */
94fba9fb
CL
586 ret = read_rom(device, generation, i, &rom[i]);
587 if (ret != RCODE_COMPLETE)
1dadff71 588 goto out;
19a15b93 589 end = i + (rom[i] >> 16) + 1;
fd6e0c51 590 if (end > MAX_CONFIG_ROM_SIZE) {
c781c06d 591 /*
2799d5c5
SR
592 * This block extends outside the config ROM which is
593 * a firmware bug. Ignore this whole block, i.e.
594 * simply set a fake block length of 0.
c781c06d 595 */
26b4950d
SR
596 fw_err(card, "skipped invalid ROM block %x at %llx\n",
597 rom[i],
598 i * 4 | CSR_REGISTER_BASE | CSR_CONFIG_ROM);
2799d5c5
SR
599 rom[i] = 0;
600 end = i;
601 }
602 i++;
19a15b93 603
c781c06d
KH
604 /*
605 * Now read in the block. If this is a directory
19a15b93 606 * block, check the entries as we read them to see if
c781c06d
KH
607 * it references another block, and push it in that case.
608 */
d54423c6 609 for (; i < end; i++) {
94fba9fb
CL
610 ret = read_rom(device, generation, i, &rom[i]);
611 if (ret != RCODE_COMPLETE)
1dadff71 612 goto out;
d54423c6 613
58aaa542 614 if ((key >> 30) != 3 || (rom[i] >> 30) < 2)
d54423c6
SR
615 continue;
616 /*
617 * Offset points outside the ROM. May be a firmware
618 * bug or an Extended ROM entry (IEEE 1212-2001 clause
619 * 7.7.18). Simply overwrite this pointer here by a
620 * fake immediate entry so that later iterators over
621 * the ROM don't have to check offsets all the time.
622 */
fd6e0c51 623 if (i + (rom[i] & 0xffffff) >= MAX_CONFIG_ROM_SIZE) {
26b4950d
SR
624 fw_err(card,
625 "skipped unsupported ROM entry %x at %llx\n",
626 rom[i],
627 i * 4 | CSR_REGISTER_BASE | CSR_CONFIG_ROM);
d54423c6
SR
628 rom[i] = 0;
629 continue;
630 }
631 stack[sp++] = i + rom[i];
19a15b93
KH
632 }
633 if (length < i)
634 length = i;
635 }
636
c9755e14
SR
637 old_rom = device->config_rom;
638 new_rom = kmemdup(rom, length * 4, GFP_KERNEL);
94fba9fb
CL
639 if (new_rom == NULL) {
640 ret = -ENOMEM;
1dadff71 641 goto out;
94fba9fb 642 }
c9755e14
SR
643
644 down_write(&fw_device_rwsem);
645 device->config_rom = new_rom;
19a15b93 646 device->config_rom_length = length;
c9755e14
SR
647 up_write(&fw_device_rwsem);
648
649 kfree(old_rom);
94fba9fb 650 ret = RCODE_COMPLETE;
837ec787
SR
651 device->max_rec = rom[2] >> 12 & 0xf;
652 device->cmc = rom[2] >> 30 & 1;
653 device->irmc = rom[2] >> 31 & 1;
1dadff71
SR
654 out:
655 kfree(rom);
19a15b93 656
1dadff71 657 return ret;
19a15b93
KH
658}
659
660static void fw_unit_release(struct device *dev)
661{
662 struct fw_unit *unit = fw_unit(dev);
663
21076226 664 fw_device_put(fw_parent_device(unit));
19a15b93
KH
665 kfree(unit);
666}
667
21351dbe 668static struct device_type fw_unit_type = {
21351dbe
KH
669 .uevent = fw_unit_uevent,
670 .release = fw_unit_release,
671};
672
099d5414 673static bool is_fw_unit(struct device *dev)
19a15b93 674{
21351dbe 675 return dev->type == &fw_unit_type;
19a15b93
KH
676}
677
678static void create_units(struct fw_device *device)
679{
680 struct fw_csr_iterator ci;
681 struct fw_unit *unit;
682 int key, value, i;
683
684 i = 0;
685 fw_csr_iterator_init(&ci, &device->config_rom[5]);
686 while (fw_csr_iterator_next(&ci, &key, &value)) {
687 if (key != (CSR_UNIT | CSR_DIRECTORY))
688 continue;
689
c781c06d
KH
690 /*
691 * Get the address of the unit directory and try to
692 * match the drivers id_tables against it.
693 */
2d826cc5 694 unit = kzalloc(sizeof(*unit), GFP_KERNEL);
cfb0c9d1 695 if (unit == NULL)
19a15b93 696 continue;
19a15b93
KH
697
698 unit->directory = ci.p + value - 1;
699 unit->device.bus = &fw_bus_type;
21351dbe 700 unit->device.type = &fw_unit_type;
19a15b93 701 unit->device.parent = &device->device;
a1f64819 702 dev_set_name(&unit->device, "%s.%d", dev_name(&device->device), i++);
19a15b93 703
e5333db9
SR
704 BUILD_BUG_ON(ARRAY_SIZE(unit->attribute_group.attrs) <
705 ARRAY_SIZE(fw_unit_attributes) +
706 ARRAY_SIZE(config_rom_attributes));
6f2e53d5
KH
707 init_fw_attribute_group(&unit->device,
708 fw_unit_attributes,
709 &unit->attribute_group);
e5333db9 710
7feb9cce
KH
711 if (device_register(&unit->device) < 0)
712 goto skip_unit;
713
21076226 714 fw_device_get(device);
7feb9cce
KH
715 continue;
716
7feb9cce
KH
717 skip_unit:
718 kfree(unit);
19a15b93
KH
719 }
720}
721
722static int shutdown_unit(struct device *device, void *data)
723{
21351dbe 724 device_unregister(device);
19a15b93
KH
725
726 return 0;
727}
728
c9755e14
SR
729/*
730 * fw_device_rwsem acts as dual purpose mutex:
731 * - serializes accesses to fw_device_idr,
732 * - serializes accesses to fw_device.config_rom/.config_rom_length and
733 * fw_unit.directory, unless those accesses happen at safe occasions
734 */
735DECLARE_RWSEM(fw_device_rwsem);
736
d6053e08 737DEFINE_IDR(fw_device_idr);
a3aca3da
KH
738int fw_cdev_major;
739
96b19062 740struct fw_device *fw_device_get_by_devt(dev_t devt)
a3aca3da
KH
741{
742 struct fw_device *device;
743
c9755e14 744 down_read(&fw_device_rwsem);
a3aca3da 745 device = idr_find(&fw_device_idr, MINOR(devt));
96b19062
SR
746 if (device)
747 fw_device_get(device);
c9755e14 748 up_read(&fw_device_rwsem);
a3aca3da
KH
749
750 return device;
751}
752
105e53f8
SR
753struct workqueue_struct *fw_workqueue;
754EXPORT_SYMBOL(fw_workqueue);
6ea9e7bb
SR
755
756static void fw_schedule_device_work(struct fw_device *device,
757 unsigned long delay)
758{
105e53f8 759 queue_delayed_work(fw_workqueue, &device->work, delay);
6ea9e7bb
SR
760}
761
3d36a0df
SR
762/*
763 * These defines control the retry behavior for reading the config
764 * rom. It shouldn't be necessary to tweak these; if the device
765 * doesn't respond to a config rom read within 10 seconds, it's not
766 * going to respond at all. As for the initial delay, a lot of
767 * devices will be able to respond within half a second after bus
768 * reset. On the other hand, it's not really worth being more
769 * aggressive than that, since it scales pretty well; if 10 devices
770 * are plugged in, they're all getting read within one second.
771 */
772
773#define MAX_RETRIES 10
774#define RETRY_DELAY (3 * HZ)
775#define INITIAL_DELAY (HZ / 2)
776#define SHUTDOWN_DELAY (2 * HZ)
777
19a15b93
KH
778static void fw_device_shutdown(struct work_struct *work)
779{
780 struct fw_device *device =
781 container_of(work, struct fw_device, work.work);
a3aca3da
KH
782 int minor = MINOR(device->device.devt);
783
e71084af
CL
784 if (time_before64(get_jiffies_64(),
785 device->card->reset_jiffies + SHUTDOWN_DELAY)
e747a5c0 786 && !list_empty(&device->card->link)) {
6ea9e7bb 787 fw_schedule_device_work(device, SHUTDOWN_DELAY);
3d36a0df
SR
788 return;
789 }
790
791 if (atomic_cmpxchg(&device->state,
792 FW_DEVICE_GONE,
793 FW_DEVICE_SHUTDOWN) != FW_DEVICE_GONE)
794 return;
795
2603bf21 796 fw_device_cdev_remove(device);
19a15b93
KH
797 device_for_each_child(&device->device, NULL, shutdown_unit);
798 device_unregister(&device->device);
96b19062 799
c9755e14 800 down_write(&fw_device_rwsem);
96b19062 801 idr_remove(&fw_device_idr, minor);
c9755e14 802 up_write(&fw_device_rwsem);
3d36a0df 803
96b19062 804 fw_device_put(device);
19a15b93
KH
805}
806
aed80892
SR
807static void fw_device_release(struct device *dev)
808{
809 struct fw_device *device = fw_device(dev);
810 struct fw_card *card = device->card;
811 unsigned long flags;
812
813 /*
814 * Take the card lock so we don't set this to NULL while a
815 * FW_NODE_UPDATED callback is being handled or while the
816 * bus manager work looks at this node.
817 */
818 spin_lock_irqsave(&card->lock, flags);
819 device->node->data = NULL;
820 spin_unlock_irqrestore(&card->lock, flags);
821
822 fw_node_put(device->node);
823 kfree(device->config_rom);
824 kfree(device);
825 fw_card_put(card);
826}
827
21351dbe 828static struct device_type fw_device_type = {
aed80892 829 .release = fw_device_release,
21351dbe
KH
830};
831
099d5414
SR
832static bool is_fw_device(struct device *dev)
833{
834 return dev->type == &fw_device_type;
835}
836
aed80892
SR
837static int update_unit(struct device *dev, void *data)
838{
839 struct fw_unit *unit = fw_unit(dev);
840 struct fw_driver *driver = (struct fw_driver *)dev->driver;
841
842 if (is_fw_unit(dev) && driver != NULL && driver->update != NULL) {
8e9394ce 843 device_lock(dev);
aed80892 844 driver->update(unit);
8e9394ce 845 device_unlock(dev);
aed80892
SR
846 }
847
848 return 0;
849}
850
851static void fw_device_update(struct work_struct *work)
852{
853 struct fw_device *device =
854 container_of(work, struct fw_device, work.work);
855
856 fw_device_cdev_update(device);
857 device_for_each_child(&device->device, NULL, update_unit);
858}
3d36a0df 859
c781c06d 860/*
3d36a0df
SR
861 * If a device was pending for deletion because its node went away but its
862 * bus info block and root directory header matches that of a newly discovered
863 * device, revive the existing fw_device.
864 * The newly allocated fw_device becomes obsolete instead.
c781c06d 865 */
3d36a0df
SR
866static int lookup_existing_device(struct device *dev, void *data)
867{
868 struct fw_device *old = fw_device(dev);
869 struct fw_device *new = data;
870 struct fw_card *card = new->card;
871 int match = 0;
872
099d5414
SR
873 if (!is_fw_device(dev))
874 return 0;
875
3d36a0df
SR
876 down_read(&fw_device_rwsem); /* serialize config_rom access */
877 spin_lock_irq(&card->lock); /* serialize node access */
878
879 if (memcmp(old->config_rom, new->config_rom, 6 * 4) == 0 &&
880 atomic_cmpxchg(&old->state,
881 FW_DEVICE_GONE,
882 FW_DEVICE_RUNNING) == FW_DEVICE_GONE) {
883 struct fw_node *current_node = new->node;
884 struct fw_node *obsolete_node = old->node;
885
886 new->node = obsolete_node;
887 new->node->data = new;
888 old->node = current_node;
889 old->node->data = old;
890
891 old->max_speed = new->max_speed;
892 old->node_id = current_node->node_id;
893 smp_wmb(); /* update node_id before generation */
894 old->generation = card->generation;
895 old->config_rom_retries = 0;
26b4950d 896 fw_notice(card, "rediscovered device %s\n", dev_name(dev));
19a15b93 897
3d36a0df 898 PREPARE_DELAYED_WORK(&old->work, fw_device_update);
6ea9e7bb 899 fw_schedule_device_work(old, 0);
3d36a0df
SR
900
901 if (current_node == card->root_node)
902 fw_schedule_bm_work(card, 0);
903
904 match = 1;
905 }
906
907 spin_unlock_irq(&card->lock);
908 up_read(&fw_device_rwsem);
909
910 return match;
911}
19a15b93 912
7889b60e
SR
913enum { BC_UNKNOWN = 0, BC_UNIMPLEMENTED, BC_IMPLEMENTED, };
914
099d5414 915static void set_broadcast_channel(struct fw_device *device, int generation)
7889b60e
SR
916{
917 struct fw_card *card = device->card;
918 __be32 data;
919 int rcode;
920
921 if (!card->broadcast_channel_allocated)
922 return;
923
837ec787
SR
924 /*
925 * The Broadcast_Channel Valid bit is required by nodes which want to
926 * transmit on this channel. Such transmissions are practically
927 * exclusive to IP over 1394 (RFC 2734). IP capable nodes are required
928 * to be IRM capable and have a max_rec of 8 or more. We use this fact
929 * to narrow down to which nodes we send Broadcast_Channel updates.
930 */
931 if (!device->irmc || device->max_rec < 8)
932 return;
933
934 /*
935 * Some 1394-1995 nodes crash if this 1394a-2000 register is written.
936 * Perform a read test first.
937 */
7889b60e
SR
938 if (device->bc_implemented == BC_UNKNOWN) {
939 rcode = fw_run_transaction(card, TCODE_READ_QUADLET_REQUEST,
940 device->node_id, generation, device->max_speed,
941 CSR_REGISTER_BASE + CSR_BROADCAST_CHANNEL,
942 &data, 4);
943 switch (rcode) {
944 case RCODE_COMPLETE:
945 if (data & cpu_to_be32(1 << 31)) {
946 device->bc_implemented = BC_IMPLEMENTED;
947 break;
948 }
949 /* else fall through to case address error */
950 case RCODE_ADDRESS_ERROR:
951 device->bc_implemented = BC_UNIMPLEMENTED;
952 }
953 }
954
955 if (device->bc_implemented == BC_IMPLEMENTED) {
956 data = cpu_to_be32(BROADCAST_CHANNEL_INITIAL |
957 BROADCAST_CHANNEL_VALID);
958 fw_run_transaction(card, TCODE_WRITE_QUADLET_REQUEST,
959 device->node_id, generation, device->max_speed,
960 CSR_REGISTER_BASE + CSR_BROADCAST_CHANNEL,
961 &data, 4);
962 }
963}
964
099d5414
SR
965int fw_device_set_broadcast_channel(struct device *dev, void *gen)
966{
967 if (is_fw_device(dev))
968 set_broadcast_channel(fw_device(dev), (long)gen);
969
970 return 0;
971}
972
19a15b93
KH
973static void fw_device_init(struct work_struct *work)
974{
19a15b93
KH
975 struct fw_device *device =
976 container_of(work, struct fw_device, work.work);
26b4950d 977 struct fw_card *card = device->card;
3d36a0df 978 struct device *revived_dev;
e1eff7a3 979 int minor, ret;
19a15b93 980
c781c06d
KH
981 /*
982 * All failure paths here set node->data to NULL, so that we
19a15b93 983 * don't try to do device_for_each_child() on a kfree()'d
c781c06d
KH
984 * device.
985 */
19a15b93 986
94fba9fb
CL
987 ret = read_config_rom(device, device->generation);
988 if (ret != RCODE_COMPLETE) {
855c603d
SR
989 if (device->config_rom_retries < MAX_RETRIES &&
990 atomic_read(&device->state) == FW_DEVICE_INITIALIZING) {
19a15b93 991 device->config_rom_retries++;
6ea9e7bb 992 fw_schedule_device_work(device, RETRY_DELAY);
19a15b93 993 } else {
115881d3 994 if (device->node->link_on)
94fba9fb
CL
995 fw_notice(card, "giving up on node %x: reading config rom failed: %s\n",
996 device->node_id,
997 fw_rcode_string(ret));
26b4950d
SR
998 if (device->node == card->root_node)
999 fw_schedule_bm_work(card, 0);
19a15b93
KH
1000 fw_device_release(&device->device);
1001 }
1002 return;
1003 }
1004
26b4950d 1005 revived_dev = device_find_child(card->device,
3d36a0df
SR
1006 device, lookup_existing_device);
1007 if (revived_dev) {
1008 put_device(revived_dev);
1009 fw_device_release(&device->device);
1010
1011 return;
1012 }
1013
62305823 1014 device_initialize(&device->device);
96b19062
SR
1015
1016 fw_device_get(device);
c9755e14 1017 down_write(&fw_device_rwsem);
37b61890
TH
1018 minor = idr_alloc(&fw_device_idr, device, 0, 1 << MINORBITS,
1019 GFP_KERNEL);
c9755e14 1020 up_write(&fw_device_rwsem);
96b19062 1021
37b61890 1022 if (minor < 0)
a3aca3da
KH
1023 goto error;
1024
19a15b93 1025 device->device.bus = &fw_bus_type;
21351dbe 1026 device->device.type = &fw_device_type;
26b4950d 1027 device->device.parent = card->device;
a3aca3da 1028 device->device.devt = MKDEV(fw_cdev_major, minor);
a1f64819 1029 dev_set_name(&device->device, "fw%d", minor);
19a15b93 1030
e5333db9
SR
1031 BUILD_BUG_ON(ARRAY_SIZE(device->attribute_group.attrs) <
1032 ARRAY_SIZE(fw_device_attributes) +
1033 ARRAY_SIZE(config_rom_attributes));
6f2e53d5
KH
1034 init_fw_attribute_group(&device->device,
1035 fw_device_attributes,
1036 &device->attribute_group);
e5333db9 1037
19a15b93 1038 if (device_add(&device->device)) {
26b4950d 1039 fw_err(card, "failed to add device\n");
a3aca3da 1040 goto error_with_cdev;
19a15b93
KH
1041 }
1042
19a15b93
KH
1043 create_units(device);
1044
c781c06d
KH
1045 /*
1046 * Transition the device to running state. If it got pulled
19a15b93
KH
1047 * out from under us while we did the intialization work, we
1048 * have to shut down the device again here. Normally, though,
1049 * fw_node_event will be responsible for shutting it down when
1050 * necessary. We have to use the atomic cmpxchg here to avoid
1051 * racing with the FW_NODE_DESTROYED case in
c781c06d
KH
1052 * fw_node_event().
1053 */
641f8791 1054 if (atomic_cmpxchg(&device->state,
3d36a0df
SR
1055 FW_DEVICE_INITIALIZING,
1056 FW_DEVICE_RUNNING) == FW_DEVICE_GONE) {
1057 PREPARE_DELAYED_WORK(&device->work, fw_device_shutdown);
6ea9e7bb 1058 fw_schedule_device_work(device, SHUTDOWN_DELAY);
fa6e697b 1059 } else {
26b4950d
SR
1060 fw_notice(card, "created device %s: GUID %08x%08x, S%d00\n",
1061 dev_name(&device->device),
1062 device->config_rom[3], device->config_rom[4],
1063 1 << device->max_speed);
c9755e14 1064 device->config_rom_retries = 0;
7889b60e 1065
099d5414 1066 set_broadcast_channel(device, device->generation);
badfcb24
CL
1067
1068 add_device_randomness(&device->config_rom[3], 8);
fa6e697b 1069 }
19a15b93 1070
c781c06d
KH
1071 /*
1072 * Reschedule the IRM work if we just finished reading the
19a15b93
KH
1073 * root node config rom. If this races with a bus reset we
1074 * just end up running the IRM work a couple of extra times -
c781c06d
KH
1075 * pretty harmless.
1076 */
26b4950d
SR
1077 if (device->node == card->root_node)
1078 fw_schedule_bm_work(card, 0);
19a15b93
KH
1079
1080 return;
1081
a3aca3da 1082 error_with_cdev:
c9755e14 1083 down_write(&fw_device_rwsem);
a3aca3da 1084 idr_remove(&fw_device_idr, minor);
c9755e14 1085 up_write(&fw_device_rwsem);
373b2edd 1086 error:
96b19062
SR
1087 fw_device_put(device); /* fw_device_idr's reference */
1088
1089 put_device(&device->device); /* our reference */
19a15b93
KH
1090}
1091
c9755e14 1092/* Reread and compare bus info block and header of root directory */
db7494e2
CL
1093static int reread_config_rom(struct fw_device *device, int generation,
1094 bool *changed)
c9755e14
SR
1095{
1096 u32 q;
db7494e2 1097 int i, rcode;
c9755e14
SR
1098
1099 for (i = 0; i < 6; i++) {
db7494e2
CL
1100 rcode = read_rom(device, generation, i, &q);
1101 if (rcode != RCODE_COMPLETE)
1102 return rcode;
c9755e14
SR
1103
1104 if (i == 0 && q == 0)
d33ec3b5 1105 /* inaccessible (see read_config_rom); retry later */
db7494e2 1106 return RCODE_BUSY;
c9755e14 1107
db7494e2
CL
1108 if (q != device->config_rom[i]) {
1109 *changed = true;
1110 return RCODE_COMPLETE;
1111 }
c9755e14
SR
1112 }
1113
db7494e2
CL
1114 *changed = false;
1115 return RCODE_COMPLETE;
c9755e14
SR
1116}
1117
1118static void fw_device_refresh(struct work_struct *work)
1119{
1120 struct fw_device *device =
1121 container_of(work, struct fw_device, work.work);
1122 struct fw_card *card = device->card;
db7494e2
CL
1123 int ret, node_id = device->node_id;
1124 bool changed;
c9755e14 1125
db7494e2 1126 ret = reread_config_rom(device, device->generation, &changed);
8527f8e2
CL
1127 if (ret != RCODE_COMPLETE)
1128 goto failed_config_rom;
c9755e14 1129
db7494e2 1130 if (!changed) {
c9755e14 1131 if (atomic_cmpxchg(&device->state,
3d36a0df
SR
1132 FW_DEVICE_INITIALIZING,
1133 FW_DEVICE_RUNNING) == FW_DEVICE_GONE)
c9755e14
SR
1134 goto gone;
1135
1136 fw_device_update(work);
1137 device->config_rom_retries = 0;
1138 goto out;
c9755e14
SR
1139 }
1140
1141 /*
1142 * Something changed. We keep things simple and don't investigate
1143 * further. We just destroy all previous units and create new ones.
1144 */
1145 device_for_each_child(&device->device, NULL, shutdown_unit);
1146
94fba9fb 1147 ret = read_config_rom(device, device->generation);
8527f8e2
CL
1148 if (ret != RCODE_COMPLETE)
1149 goto failed_config_rom;
c9755e14 1150
8b4f70ba 1151 fw_device_cdev_update(device);
c9755e14
SR
1152 create_units(device);
1153
0210b66d
SR
1154 /* Userspace may want to re-read attributes. */
1155 kobject_uevent(&device->device.kobj, KOBJ_CHANGE);
1156
c9755e14 1157 if (atomic_cmpxchg(&device->state,
3d36a0df
SR
1158 FW_DEVICE_INITIALIZING,
1159 FW_DEVICE_RUNNING) == FW_DEVICE_GONE)
c9755e14
SR
1160 goto gone;
1161
26b4950d 1162 fw_notice(card, "refreshed device %s\n", dev_name(&device->device));
c9755e14
SR
1163 device->config_rom_retries = 0;
1164 goto out;
1165
8527f8e2
CL
1166 failed_config_rom:
1167 if (device->config_rom_retries < MAX_RETRIES &&
1168 atomic_read(&device->state) == FW_DEVICE_INITIALIZING) {
1169 device->config_rom_retries++;
1170 fw_schedule_device_work(device, RETRY_DELAY);
1171 return;
1172 }
1173
94fba9fb
CL
1174 fw_notice(card, "giving up on refresh of device %s: %s\n",
1175 dev_name(&device->device), fw_rcode_string(ret));
c9755e14 1176 gone:
3d36a0df
SR
1177 atomic_set(&device->state, FW_DEVICE_GONE);
1178 PREPARE_DELAYED_WORK(&device->work, fw_device_shutdown);
6ea9e7bb 1179 fw_schedule_device_work(device, SHUTDOWN_DELAY);
c9755e14
SR
1180 out:
1181 if (node_id == card->root_node->node_id)
0fa1986f 1182 fw_schedule_bm_work(card, 0);
c9755e14
SR
1183}
1184
19a15b93
KH
1185void fw_node_event(struct fw_card *card, struct fw_node *node, int event)
1186{
1187 struct fw_device *device;
1188
19a15b93
KH
1189 switch (event) {
1190 case FW_NODE_CREATED:
115881d3
SR
1191 /*
1192 * Attempt to scan the node, regardless whether its self ID has
1193 * the L (link active) flag set or not. Some broken devices
1194 * send L=0 but have an up-and-running link; others send L=1
1195 * without actually having a link.
1196 */
c9755e14 1197 create:
19a15b93
KH
1198 device = kzalloc(sizeof(*device), GFP_ATOMIC);
1199 if (device == NULL)
1200 break;
1201
c781c06d
KH
1202 /*
1203 * Do minimal intialization of the device here, the
62305823
SR
1204 * rest will happen in fw_device_init().
1205 *
1206 * Attention: A lot of things, even fw_device_get(),
1207 * cannot be done before fw_device_init() finished!
1208 * You can basically just check device->state and
1209 * schedule work until then, but only while holding
1210 * card->lock.
c781c06d 1211 */
641f8791 1212 atomic_set(&device->state, FW_DEVICE_INITIALIZING);
459f7923 1213 device->card = fw_card_get(card);
19a15b93
KH
1214 device->node = fw_node_get(node);
1215 device->node_id = node->node_id;
1216 device->generation = card->generation;
92368890 1217 device->is_local = node == card->local_node;
d67cfb96 1218 mutex_init(&device->client_list_mutex);
97bd9efa 1219 INIT_LIST_HEAD(&device->client_list);
19a15b93 1220
c781c06d
KH
1221 /*
1222 * Set the node data to point back to this device so
19a15b93 1223 * FW_NODE_UPDATED callbacks can update the node_id
c781c06d
KH
1224 * and generation for the device.
1225 */
19a15b93
KH
1226 node->data = device;
1227
c781c06d
KH
1228 /*
1229 * Many devices are slow to respond after bus resets,
19a15b93
KH
1230 * especially if they are bus powered and go through
1231 * power-up after getting plugged in. We schedule the
c781c06d
KH
1232 * first config rom scan half a second after bus reset.
1233 */
19a15b93 1234 INIT_DELAYED_WORK(&device->work, fw_device_init);
6ea9e7bb 1235 fw_schedule_device_work(device, INITIAL_DELAY);
19a15b93
KH
1236 break;
1237
c9755e14 1238 case FW_NODE_INITIATED_RESET:
115881d3 1239 case FW_NODE_LINK_ON:
c9755e14
SR
1240 device = node->data;
1241 if (device == NULL)
1242 goto create;
1243
1244 device->node_id = node->node_id;
1245 smp_wmb(); /* update node_id before generation */
1246 device->generation = card->generation;
1247 if (atomic_cmpxchg(&device->state,
1248 FW_DEVICE_RUNNING,
1249 FW_DEVICE_INITIALIZING) == FW_DEVICE_RUNNING) {
1250 PREPARE_DELAYED_WORK(&device->work, fw_device_refresh);
6ea9e7bb 1251 fw_schedule_device_work(device,
92368890 1252 device->is_local ? 0 : INITIAL_DELAY);
c9755e14
SR
1253 }
1254 break;
1255
19a15b93 1256 case FW_NODE_UPDATED:
115881d3
SR
1257 device = node->data;
1258 if (device == NULL)
19a15b93
KH
1259 break;
1260
19a15b93 1261 device->node_id = node->node_id;
b5d2a5e0 1262 smp_wmb(); /* update node_id before generation */
19a15b93 1263 device->generation = card->generation;
5f480477
KH
1264 if (atomic_read(&device->state) == FW_DEVICE_RUNNING) {
1265 PREPARE_DELAYED_WORK(&device->work, fw_device_update);
6ea9e7bb 1266 fw_schedule_device_work(device, 0);
5f480477 1267 }
19a15b93
KH
1268 break;
1269
1270 case FW_NODE_DESTROYED:
1271 case FW_NODE_LINK_OFF:
1272 if (!node->data)
1273 break;
1274
c781c06d
KH
1275 /*
1276 * Destroy the device associated with the node. There
19a15b93
KH
1277 * are two cases here: either the device is fully
1278 * initialized (FW_DEVICE_RUNNING) or we're in the
1279 * process of reading its config rom
1280 * (FW_DEVICE_INITIALIZING). If it is fully
1281 * initialized we can reuse device->work to schedule a
1282 * full fw_device_shutdown(). If not, there's work
1283 * scheduled to read it's config rom, and we just put
1284 * the device in shutdown state to have that code fail
c781c06d
KH
1285 * to create the device.
1286 */
19a15b93 1287 device = node->data;
641f8791 1288 if (atomic_xchg(&device->state,
3d36a0df 1289 FW_DEVICE_GONE) == FW_DEVICE_RUNNING) {
5f480477 1290 PREPARE_DELAYED_WORK(&device->work, fw_device_shutdown);
6ea9e7bb 1291 fw_schedule_device_work(device,
e747a5c0 1292 list_empty(&card->link) ? 0 : SHUTDOWN_DELAY);
19a15b93
KH
1293 }
1294 break;
1295 }
1296}