tile / cpu topology: remove stale Macro arch_provides_topology_pointers
[deliverable/linux.git] / drivers / base / core.c
CommitLineData
1da177e4
LT
1/*
2 * drivers/base/core.c - core driver model code (device registration, etc)
3 *
4 * Copyright (c) 2002-3 Patrick Mochel
5 * Copyright (c) 2002-3 Open Source Development Labs
64bb5d2c
GKH
6 * Copyright (c) 2006 Greg Kroah-Hartman <gregkh@suse.de>
7 * Copyright (c) 2006 Novell, Inc.
1da177e4
LT
8 *
9 * This file is released under the GPLv2
10 *
11 */
12
1da177e4
LT
13#include <linux/device.h>
14#include <linux/err.h>
15#include <linux/init.h>
16#include <linux/module.h>
17#include <linux/slab.h>
18#include <linux/string.h>
23681e47 19#include <linux/kdev_t.h>
116af378 20#include <linux/notifier.h>
07d57a32
GL
21#include <linux/of.h>
22#include <linux/of_device.h>
da231fd5 23#include <linux/genhd.h>
815d2d50 24#include <linux/kallsyms.h>
f75b1c60 25#include <linux/mutex.h>
401097ea 26#include <linux/async.h>
af8db150 27#include <linux/pm_runtime.h>
c4e00daa 28#include <linux/netdevice.h>
1da177e4
LT
29
30#include "base.h"
31#include "power/power.h"
32
e52eec13
AK
33#ifdef CONFIG_SYSFS_DEPRECATED
34#ifdef CONFIG_SYSFS_DEPRECATED_V2
35long sysfs_deprecated = 1;
36#else
37long sysfs_deprecated = 0;
38#endif
39static __init int sysfs_deprecated_setup(char *arg)
40{
34da5e67 41 return kstrtol(arg, 10, &sysfs_deprecated);
e52eec13
AK
42}
43early_param("sysfs.deprecated", sysfs_deprecated_setup);
44#endif
45
4a3ad20c
GKH
46int (*platform_notify)(struct device *dev) = NULL;
47int (*platform_notify_remove)(struct device *dev) = NULL;
e105b8bf
DW
48static struct kobject *dev_kobj;
49struct kobject *sysfs_dev_char_kobj;
50struct kobject *sysfs_dev_block_kobj;
1da177e4 51
4e886c29
GKH
52#ifdef CONFIG_BLOCK
53static inline int device_is_not_partition(struct device *dev)
54{
55 return !(dev->type == &part_type);
56}
57#else
58static inline int device_is_not_partition(struct device *dev)
59{
60 return 1;
61}
62#endif
1da177e4 63
3e95637a
AS
64/**
65 * dev_driver_string - Return a device's driver name, if at all possible
66 * @dev: struct device to get the name of
67 *
68 * Will return the device's driver's name if it is bound to a device. If
9169c012 69 * the device is not bound to a driver, it will return the name of the bus
3e95637a
AS
70 * it is attached to. If it is not attached to a bus either, an empty
71 * string will be returned.
72 */
bf9ca69f 73const char *dev_driver_string(const struct device *dev)
3e95637a 74{
3589972e
AS
75 struct device_driver *drv;
76
77 /* dev->driver can change to NULL underneath us because of unbinding,
78 * so be careful about accessing it. dev->bus and dev->class should
79 * never change once they are set, so they don't need special care.
80 */
81 drv = ACCESS_ONCE(dev->driver);
82 return drv ? drv->name :
a456b702
JD
83 (dev->bus ? dev->bus->name :
84 (dev->class ? dev->class->name : ""));
3e95637a 85}
310a922d 86EXPORT_SYMBOL(dev_driver_string);
3e95637a 87
1da177e4
LT
88#define to_dev_attr(_attr) container_of(_attr, struct device_attribute, attr)
89
4a3ad20c
GKH
90static ssize_t dev_attr_show(struct kobject *kobj, struct attribute *attr,
91 char *buf)
1da177e4 92{
4a3ad20c 93 struct device_attribute *dev_attr = to_dev_attr(attr);
b0d1f807 94 struct device *dev = kobj_to_dev(kobj);
4a0c20bf 95 ssize_t ret = -EIO;
1da177e4
LT
96
97 if (dev_attr->show)
54b6f35c 98 ret = dev_attr->show(dev, dev_attr, buf);
815d2d50 99 if (ret >= (ssize_t)PAGE_SIZE) {
53a9c87e
GKH
100 print_symbol("dev_attr_show: %s returned bad count\n",
101 (unsigned long)dev_attr->show);
815d2d50 102 }
1da177e4
LT
103 return ret;
104}
105
4a3ad20c
GKH
106static ssize_t dev_attr_store(struct kobject *kobj, struct attribute *attr,
107 const char *buf, size_t count)
1da177e4 108{
4a3ad20c 109 struct device_attribute *dev_attr = to_dev_attr(attr);
b0d1f807 110 struct device *dev = kobj_to_dev(kobj);
4a0c20bf 111 ssize_t ret = -EIO;
1da177e4
LT
112
113 if (dev_attr->store)
54b6f35c 114 ret = dev_attr->store(dev, dev_attr, buf, count);
1da177e4
LT
115 return ret;
116}
117
52cf25d0 118static const struct sysfs_ops dev_sysfs_ops = {
1da177e4
LT
119 .show = dev_attr_show,
120 .store = dev_attr_store,
121};
122
ca22e56d
KS
123#define to_ext_attr(x) container_of(x, struct dev_ext_attribute, attr)
124
125ssize_t device_store_ulong(struct device *dev,
126 struct device_attribute *attr,
127 const char *buf, size_t size)
128{
129 struct dev_ext_attribute *ea = to_ext_attr(attr);
130 char *end;
131 unsigned long new = simple_strtoul(buf, &end, 0);
132 if (end == buf)
133 return -EINVAL;
134 *(unsigned long *)(ea->var) = new;
135 /* Always return full write size even if we didn't consume all */
136 return size;
137}
138EXPORT_SYMBOL_GPL(device_store_ulong);
139
140ssize_t device_show_ulong(struct device *dev,
141 struct device_attribute *attr,
142 char *buf)
143{
144 struct dev_ext_attribute *ea = to_ext_attr(attr);
145 return snprintf(buf, PAGE_SIZE, "%lx\n", *(unsigned long *)(ea->var));
146}
147EXPORT_SYMBOL_GPL(device_show_ulong);
148
149ssize_t device_store_int(struct device *dev,
150 struct device_attribute *attr,
151 const char *buf, size_t size)
152{
153 struct dev_ext_attribute *ea = to_ext_attr(attr);
154 char *end;
155 long new = simple_strtol(buf, &end, 0);
156 if (end == buf || new > INT_MAX || new < INT_MIN)
157 return -EINVAL;
158 *(int *)(ea->var) = new;
159 /* Always return full write size even if we didn't consume all */
160 return size;
161}
162EXPORT_SYMBOL_GPL(device_store_int);
163
164ssize_t device_show_int(struct device *dev,
165 struct device_attribute *attr,
166 char *buf)
167{
168 struct dev_ext_attribute *ea = to_ext_attr(attr);
169
170 return snprintf(buf, PAGE_SIZE, "%d\n", *(int *)(ea->var));
171}
172EXPORT_SYMBOL_GPL(device_show_int);
1da177e4 173
91872392
BP
174ssize_t device_store_bool(struct device *dev, struct device_attribute *attr,
175 const char *buf, size_t size)
176{
177 struct dev_ext_attribute *ea = to_ext_attr(attr);
178
179 if (strtobool(buf, ea->var) < 0)
180 return -EINVAL;
181
182 return size;
183}
184EXPORT_SYMBOL_GPL(device_store_bool);
185
186ssize_t device_show_bool(struct device *dev, struct device_attribute *attr,
187 char *buf)
188{
189 struct dev_ext_attribute *ea = to_ext_attr(attr);
190
191 return snprintf(buf, PAGE_SIZE, "%d\n", *(bool *)(ea->var));
192}
193EXPORT_SYMBOL_GPL(device_show_bool);
194
1da177e4 195/**
f8878dcb
RD
196 * device_release - free device structure.
197 * @kobj: device's kobject.
1da177e4 198 *
f8878dcb
RD
199 * This is called once the reference count for the object
200 * reaches 0. We forward the call to the device's release
201 * method, which should handle actually freeing the structure.
1da177e4 202 */
4a3ad20c 203static void device_release(struct kobject *kobj)
1da177e4 204{
b0d1f807 205 struct device *dev = kobj_to_dev(kobj);
fb069a5d 206 struct device_private *p = dev->p;
1da177e4 207
a525a3dd
ML
208 /*
209 * Some platform devices are driven without driver attached
210 * and managed resources may have been acquired. Make sure
211 * all resources are released.
212 *
213 * Drivers still can add resources into device after device
214 * is deleted but alive, so release devres here to avoid
215 * possible memory leak.
216 */
217 devres_release_all(dev);
218
1da177e4
LT
219 if (dev->release)
220 dev->release(dev);
f9f852df
KS
221 else if (dev->type && dev->type->release)
222 dev->type->release(dev);
2620efef
GKH
223 else if (dev->class && dev->class->dev_release)
224 dev->class->dev_release(dev);
f810a5cf
AV
225 else
226 WARN(1, KERN_ERR "Device '%s' does not have a release() "
4a3ad20c 227 "function, it is broken and must be fixed.\n",
1e0b2cf9 228 dev_name(dev));
fb069a5d 229 kfree(p);
1da177e4
LT
230}
231
bc451f20
EB
232static const void *device_namespace(struct kobject *kobj)
233{
b0d1f807 234 struct device *dev = kobj_to_dev(kobj);
bc451f20
EB
235 const void *ns = NULL;
236
237 if (dev->class && dev->class->ns_type)
238 ns = dev->class->namespace(dev);
239
240 return ns;
241}
242
8f4afc41 243static struct kobj_type device_ktype = {
1da177e4
LT
244 .release = device_release,
245 .sysfs_ops = &dev_sysfs_ops,
bc451f20 246 .namespace = device_namespace,
1da177e4
LT
247};
248
249
312c004d 250static int dev_uevent_filter(struct kset *kset, struct kobject *kobj)
1da177e4
LT
251{
252 struct kobj_type *ktype = get_ktype(kobj);
253
8f4afc41 254 if (ktype == &device_ktype) {
b0d1f807 255 struct device *dev = kobj_to_dev(kobj);
1da177e4
LT
256 if (dev->bus)
257 return 1;
23681e47
GKH
258 if (dev->class)
259 return 1;
1da177e4
LT
260 }
261 return 0;
262}
263
312c004d 264static const char *dev_uevent_name(struct kset *kset, struct kobject *kobj)
1da177e4 265{
b0d1f807 266 struct device *dev = kobj_to_dev(kobj);
1da177e4 267
23681e47
GKH
268 if (dev->bus)
269 return dev->bus->name;
270 if (dev->class)
271 return dev->class->name;
272 return NULL;
1da177e4
LT
273}
274
7eff2e7a
KS
275static int dev_uevent(struct kset *kset, struct kobject *kobj,
276 struct kobj_uevent_env *env)
1da177e4 277{
b0d1f807 278 struct device *dev = kobj_to_dev(kobj);
1da177e4
LT
279 int retval = 0;
280
6fcf53ac 281 /* add device node properties if present */
23681e47 282 if (MAJOR(dev->devt)) {
6fcf53ac
KS
283 const char *tmp;
284 const char *name;
2c9ede55 285 umode_t mode = 0;
4e4098a3
GKH
286 kuid_t uid = GLOBAL_ROOT_UID;
287 kgid_t gid = GLOBAL_ROOT_GID;
6fcf53ac 288
7eff2e7a
KS
289 add_uevent_var(env, "MAJOR=%u", MAJOR(dev->devt));
290 add_uevent_var(env, "MINOR=%u", MINOR(dev->devt));
3c2670e6 291 name = device_get_devnode(dev, &mode, &uid, &gid, &tmp);
6fcf53ac
KS
292 if (name) {
293 add_uevent_var(env, "DEVNAME=%s", name);
e454cea2
KS
294 if (mode)
295 add_uevent_var(env, "DEVMODE=%#o", mode & 0777);
4e4098a3
GKH
296 if (!uid_eq(uid, GLOBAL_ROOT_UID))
297 add_uevent_var(env, "DEVUID=%u", from_kuid(&init_user_ns, uid));
298 if (!gid_eq(gid, GLOBAL_ROOT_GID))
299 add_uevent_var(env, "DEVGID=%u", from_kgid(&init_user_ns, gid));
3c2670e6 300 kfree(tmp);
6fcf53ac 301 }
23681e47
GKH
302 }
303
414264f9 304 if (dev->type && dev->type->name)
7eff2e7a 305 add_uevent_var(env, "DEVTYPE=%s", dev->type->name);
414264f9 306
239378f1 307 if (dev->driver)
7eff2e7a 308 add_uevent_var(env, "DRIVER=%s", dev->driver->name);
239378f1 309
07d57a32
GL
310 /* Add common DT information about the device */
311 of_device_uevent(dev, env);
312
7eff2e7a 313 /* have the bus specific function add its stuff */
312c004d 314 if (dev->bus && dev->bus->uevent) {
7eff2e7a 315 retval = dev->bus->uevent(dev, env);
f9f852df 316 if (retval)
7dc72b28 317 pr_debug("device: '%s': %s: bus uevent() returned %d\n",
1e0b2cf9 318 dev_name(dev), __func__, retval);
1da177e4
LT
319 }
320
7eff2e7a 321 /* have the class specific function add its stuff */
2620efef 322 if (dev->class && dev->class->dev_uevent) {
7eff2e7a 323 retval = dev->class->dev_uevent(dev, env);
f9f852df 324 if (retval)
7dc72b28 325 pr_debug("device: '%s': %s: class uevent() "
1e0b2cf9 326 "returned %d\n", dev_name(dev),
2b3a302a 327 __func__, retval);
f9f852df
KS
328 }
329
eef35c2d 330 /* have the device type specific function add its stuff */
f9f852df 331 if (dev->type && dev->type->uevent) {
7eff2e7a 332 retval = dev->type->uevent(dev, env);
f9f852df 333 if (retval)
7dc72b28 334 pr_debug("device: '%s': %s: dev_type uevent() "
1e0b2cf9 335 "returned %d\n", dev_name(dev),
2b3a302a 336 __func__, retval);
2620efef
GKH
337 }
338
1da177e4
LT
339 return retval;
340}
341
9cd43611 342static const struct kset_uevent_ops device_uevent_ops = {
312c004d
KS
343 .filter = dev_uevent_filter,
344 .name = dev_uevent_name,
345 .uevent = dev_uevent,
1da177e4
LT
346};
347
16574dcc
KS
348static ssize_t show_uevent(struct device *dev, struct device_attribute *attr,
349 char *buf)
350{
351 struct kobject *top_kobj;
352 struct kset *kset;
7eff2e7a 353 struct kobj_uevent_env *env = NULL;
16574dcc
KS
354 int i;
355 size_t count = 0;
356 int retval;
357
358 /* search the kset, the device belongs to */
359 top_kobj = &dev->kobj;
5c5daf65
KS
360 while (!top_kobj->kset && top_kobj->parent)
361 top_kobj = top_kobj->parent;
16574dcc
KS
362 if (!top_kobj->kset)
363 goto out;
5c5daf65 364
16574dcc
KS
365 kset = top_kobj->kset;
366 if (!kset->uevent_ops || !kset->uevent_ops->uevent)
367 goto out;
368
369 /* respect filter */
370 if (kset->uevent_ops && kset->uevent_ops->filter)
371 if (!kset->uevent_ops->filter(kset, &dev->kobj))
372 goto out;
373
7eff2e7a
KS
374 env = kzalloc(sizeof(struct kobj_uevent_env), GFP_KERNEL);
375 if (!env)
c7308c81
GKH
376 return -ENOMEM;
377
16574dcc 378 /* let the kset specific function add its keys */
7eff2e7a 379 retval = kset->uevent_ops->uevent(kset, &dev->kobj, env);
16574dcc
KS
380 if (retval)
381 goto out;
382
383 /* copy keys to file */
7eff2e7a
KS
384 for (i = 0; i < env->envp_idx; i++)
385 count += sprintf(&buf[count], "%s\n", env->envp[i]);
16574dcc 386out:
7eff2e7a 387 kfree(env);
16574dcc
KS
388 return count;
389}
390
a7fd6706
KS
391static ssize_t store_uevent(struct device *dev, struct device_attribute *attr,
392 const char *buf, size_t count)
393{
60a96a59
KS
394 enum kobject_action action;
395
3f5468c9 396 if (kobject_action_type(buf, count, &action) == 0)
60a96a59 397 kobject_uevent(&dev->kobj, action);
3f5468c9
KS
398 else
399 dev_err(dev, "uevent: unknown action-string\n");
a7fd6706
KS
400 return count;
401}
402
ad6a1e1c
TH
403static struct device_attribute uevent_attr =
404 __ATTR(uevent, S_IRUGO | S_IWUSR, show_uevent, store_uevent);
405
4f3549d7
RW
406static ssize_t show_online(struct device *dev, struct device_attribute *attr,
407 char *buf)
408{
409 bool val;
410
411 lock_device_hotplug();
412 val = !dev->offline;
413 unlock_device_hotplug();
414 return sprintf(buf, "%u\n", val);
415}
416
417static ssize_t store_online(struct device *dev, struct device_attribute *attr,
418 const char *buf, size_t count)
419{
420 bool val;
421 int ret;
422
423 ret = strtobool(buf, &val);
424 if (ret < 0)
425 return ret;
426
427 lock_device_hotplug();
428 ret = val ? device_online(dev) : device_offline(dev);
429 unlock_device_hotplug();
430 return ret < 0 ? ret : count;
431}
432
433static struct device_attribute online_attr =
434 __ATTR(online, S_IRUGO | S_IWUSR, show_online, store_online);
435
621a1672
DT
436static int device_add_attributes(struct device *dev,
437 struct device_attribute *attrs)
de0ff00d 438{
621a1672 439 int error = 0;
de0ff00d 440 int i;
621a1672
DT
441
442 if (attrs) {
443 for (i = 0; attr_name(attrs[i]); i++) {
444 error = device_create_file(dev, &attrs[i]);
445 if (error)
446 break;
447 }
448 if (error)
449 while (--i >= 0)
450 device_remove_file(dev, &attrs[i]);
451 }
452 return error;
453}
454
455static void device_remove_attributes(struct device *dev,
456 struct device_attribute *attrs)
457{
458 int i;
459
460 if (attrs)
461 for (i = 0; attr_name(attrs[i]); i++)
462 device_remove_file(dev, &attrs[i]);
463}
464
c97415a7
SA
465static int device_add_bin_attributes(struct device *dev,
466 struct bin_attribute *attrs)
467{
468 int error = 0;
469 int i;
470
471 if (attrs) {
472 for (i = 0; attr_name(attrs[i]); i++) {
473 error = device_create_bin_file(dev, &attrs[i]);
474 if (error)
475 break;
476 }
477 if (error)
478 while (--i >= 0)
479 device_remove_bin_file(dev, &attrs[i]);
480 }
481 return error;
482}
483
484static void device_remove_bin_attributes(struct device *dev,
485 struct bin_attribute *attrs)
486{
487 int i;
488
489 if (attrs)
490 for (i = 0; attr_name(attrs[i]); i++)
491 device_remove_bin_file(dev, &attrs[i]);
492}
493
621a1672 494static int device_add_groups(struct device *dev,
a4dbd674 495 const struct attribute_group **groups)
621a1672 496{
de0ff00d 497 int error = 0;
621a1672 498 int i;
de0ff00d 499
621a1672
DT
500 if (groups) {
501 for (i = 0; groups[i]; i++) {
502 error = sysfs_create_group(&dev->kobj, groups[i]);
de0ff00d
GKH
503 if (error) {
504 while (--i >= 0)
4a3ad20c
GKH
505 sysfs_remove_group(&dev->kobj,
506 groups[i]);
621a1672 507 break;
de0ff00d
GKH
508 }
509 }
510 }
de0ff00d
GKH
511 return error;
512}
513
621a1672 514static void device_remove_groups(struct device *dev,
a4dbd674 515 const struct attribute_group **groups)
de0ff00d
GKH
516{
517 int i;
621a1672
DT
518
519 if (groups)
520 for (i = 0; groups[i]; i++)
521 sysfs_remove_group(&dev->kobj, groups[i]);
de0ff00d
GKH
522}
523
2620efef
GKH
524static int device_add_attrs(struct device *dev)
525{
526 struct class *class = dev->class;
aed65af1 527 const struct device_type *type = dev->type;
621a1672 528 int error;
2620efef 529
621a1672 530 if (class) {
d05a6f96 531 error = device_add_groups(dev, class->dev_groups);
f9f852df 532 if (error)
621a1672 533 return error;
d05a6f96
GKH
534 error = device_add_attributes(dev, class->dev_attrs);
535 if (error)
536 goto err_remove_class_groups;
c97415a7
SA
537 error = device_add_bin_attributes(dev, class->dev_bin_attrs);
538 if (error)
539 goto err_remove_class_attrs;
2620efef 540 }
f9f852df 541
621a1672
DT
542 if (type) {
543 error = device_add_groups(dev, type->groups);
f9f852df 544 if (error)
c97415a7 545 goto err_remove_class_bin_attrs;
f9f852df
KS
546 }
547
621a1672
DT
548 error = device_add_groups(dev, dev->groups);
549 if (error)
550 goto err_remove_type_groups;
551
4f3549d7
RW
552 if (device_supports_offline(dev) && !dev->offline_disabled) {
553 error = device_create_file(dev, &online_attr);
554 if (error)
555 goto err_remove_type_groups;
556 }
557
621a1672
DT
558 return 0;
559
560 err_remove_type_groups:
561 if (type)
562 device_remove_groups(dev, type->groups);
c97415a7
SA
563 err_remove_class_bin_attrs:
564 if (class)
565 device_remove_bin_attributes(dev, class->dev_bin_attrs);
621a1672
DT
566 err_remove_class_attrs:
567 if (class)
568 device_remove_attributes(dev, class->dev_attrs);
d05a6f96
GKH
569 err_remove_class_groups:
570 if (class)
571 device_remove_groups(dev, class->dev_groups);
621a1672 572
2620efef
GKH
573 return error;
574}
575
576static void device_remove_attrs(struct device *dev)
577{
578 struct class *class = dev->class;
aed65af1 579 const struct device_type *type = dev->type;
2620efef 580
4f3549d7 581 device_remove_file(dev, &online_attr);
621a1672 582 device_remove_groups(dev, dev->groups);
f9f852df 583
621a1672
DT
584 if (type)
585 device_remove_groups(dev, type->groups);
586
c97415a7 587 if (class) {
621a1672 588 device_remove_attributes(dev, class->dev_attrs);
c97415a7 589 device_remove_bin_attributes(dev, class->dev_bin_attrs);
d05a6f96 590 device_remove_groups(dev, class->dev_groups);
c97415a7 591 }
2620efef
GKH
592}
593
594
23681e47
GKH
595static ssize_t show_dev(struct device *dev, struct device_attribute *attr,
596 char *buf)
597{
598 return print_dev_t(buf, dev->devt);
599}
600
ad6a1e1c
TH
601static struct device_attribute devt_attr =
602 __ATTR(dev, S_IRUGO, show_dev, NULL);
603
ca22e56d 604/* /sys/devices/ */
881c6cfd 605struct kset *devices_kset;
1da177e4 606
1da177e4 607/**
4a3ad20c
GKH
608 * device_create_file - create sysfs attribute file for device.
609 * @dev: device.
610 * @attr: device attribute descriptor.
1da177e4 611 */
26579ab7
PC
612int device_create_file(struct device *dev,
613 const struct device_attribute *attr)
1da177e4
LT
614{
615 int error = 0;
8f46baaa
FB
616
617 if (dev) {
618 WARN(((attr->attr.mode & S_IWUGO) && !attr->store),
97521978 619 "Attribute %s: write permission without 'store'\n",
620 attr->attr.name);
8f46baaa 621 WARN(((attr->attr.mode & S_IRUGO) && !attr->show),
97521978 622 "Attribute %s: read permission without 'show'\n",
623 attr->attr.name);
1da177e4 624 error = sysfs_create_file(&dev->kobj, &attr->attr);
8f46baaa
FB
625 }
626
1da177e4
LT
627 return error;
628}
86df2687 629EXPORT_SYMBOL_GPL(device_create_file);
1da177e4
LT
630
631/**
4a3ad20c
GKH
632 * device_remove_file - remove sysfs attribute file.
633 * @dev: device.
634 * @attr: device attribute descriptor.
1da177e4 635 */
26579ab7
PC
636void device_remove_file(struct device *dev,
637 const struct device_attribute *attr)
1da177e4 638{
0c98b19f 639 if (dev)
1da177e4 640 sysfs_remove_file(&dev->kobj, &attr->attr);
1da177e4 641}
86df2687 642EXPORT_SYMBOL_GPL(device_remove_file);
1da177e4 643
2589f188
GKH
644/**
645 * device_create_bin_file - create sysfs binary attribute file for device.
646 * @dev: device.
647 * @attr: device binary attribute descriptor.
648 */
66ecb92b
PC
649int device_create_bin_file(struct device *dev,
650 const struct bin_attribute *attr)
2589f188
GKH
651{
652 int error = -EINVAL;
653 if (dev)
654 error = sysfs_create_bin_file(&dev->kobj, attr);
655 return error;
656}
657EXPORT_SYMBOL_GPL(device_create_bin_file);
658
659/**
660 * device_remove_bin_file - remove sysfs binary attribute file
661 * @dev: device.
662 * @attr: device binary attribute descriptor.
663 */
66ecb92b
PC
664void device_remove_bin_file(struct device *dev,
665 const struct bin_attribute *attr)
2589f188
GKH
666{
667 if (dev)
668 sysfs_remove_bin_file(&dev->kobj, attr);
669}
670EXPORT_SYMBOL_GPL(device_remove_bin_file);
671
d9a9cdfb 672/**
523ded71 673 * device_schedule_callback_owner - helper to schedule a callback for a device
d9a9cdfb
AS
674 * @dev: device.
675 * @func: callback function to invoke later.
523ded71 676 * @owner: module owning the callback routine
d9a9cdfb
AS
677 *
678 * Attribute methods must not unregister themselves or their parent device
679 * (which would amount to the same thing). Attempts to do so will deadlock,
680 * since unregistration is mutually exclusive with driver callbacks.
681 *
682 * Instead methods can call this routine, which will attempt to allocate
683 * and schedule a workqueue request to call back @func with @dev as its
684 * argument in the workqueue's process context. @dev will be pinned until
685 * @func returns.
686 *
523ded71
AS
687 * This routine is usually called via the inline device_schedule_callback(),
688 * which automatically sets @owner to THIS_MODULE.
689 *
d9a9cdfb 690 * Returns 0 if the request was submitted, -ENOMEM if storage could not
523ded71 691 * be allocated, -ENODEV if a reference to @owner isn't available.
d9a9cdfb
AS
692 *
693 * NOTE: This routine won't work if CONFIG_SYSFS isn't set! It uses an
694 * underlying sysfs routine (since it is intended for use by attribute
695 * methods), and if sysfs isn't available you'll get nothing but -ENOSYS.
696 */
523ded71
AS
697int device_schedule_callback_owner(struct device *dev,
698 void (*func)(struct device *), struct module *owner)
d9a9cdfb
AS
699{
700 return sysfs_schedule_callback(&dev->kobj,
523ded71 701 (void (*)(void *)) func, dev, owner);
d9a9cdfb 702}
523ded71 703EXPORT_SYMBOL_GPL(device_schedule_callback_owner);
d9a9cdfb 704
34bb61f9
JB
705static void klist_children_get(struct klist_node *n)
706{
f791b8c8
GKH
707 struct device_private *p = to_device_private_parent(n);
708 struct device *dev = p->device;
34bb61f9
JB
709
710 get_device(dev);
711}
712
713static void klist_children_put(struct klist_node *n)
714{
f791b8c8
GKH
715 struct device_private *p = to_device_private_parent(n);
716 struct device *dev = p->device;
34bb61f9
JB
717
718 put_device(dev);
719}
720
1da177e4 721/**
4a3ad20c
GKH
722 * device_initialize - init device structure.
723 * @dev: device.
1da177e4 724 *
5739411a
CH
725 * This prepares the device for use by other layers by initializing
726 * its fields.
4a3ad20c 727 * It is the first half of device_register(), if called by
5739411a
CH
728 * that function, though it can also be called separately, so one
729 * may use @dev's fields. In particular, get_device()/put_device()
730 * may be used for reference counting of @dev after calling this
731 * function.
732 *
b10d5efd
AS
733 * All fields in @dev must be initialized by the caller to 0, except
734 * for those explicitly set to some other value. The simplest
735 * approach is to use kzalloc() to allocate the structure containing
736 * @dev.
737 *
5739411a
CH
738 * NOTE: Use put_device() to give up your reference instead of freeing
739 * @dev directly once you have called this function.
1da177e4 740 */
1da177e4
LT
741void device_initialize(struct device *dev)
742{
881c6cfd 743 dev->kobj.kset = devices_kset;
f9cb074b 744 kobject_init(&dev->kobj, &device_ktype);
1da177e4 745 INIT_LIST_HEAD(&dev->dma_pools);
3142788b 746 mutex_init(&dev->mutex);
1704f47b 747 lockdep_set_novalidate_class(&dev->mutex);
9ac7849e
TH
748 spin_lock_init(&dev->devres_lock);
749 INIT_LIST_HEAD(&dev->devres_head);
3b98aeaf 750 device_pm_init(dev);
87348136 751 set_dev_node(dev, -1);
1da177e4 752}
86df2687 753EXPORT_SYMBOL_GPL(device_initialize);
1da177e4 754
d73ce004 755struct kobject *virtual_device_parent(struct device *dev)
f0ee61a6 756{
86406245 757 static struct kobject *virtual_dir = NULL;
f0ee61a6 758
86406245 759 if (!virtual_dir)
4ff6abff 760 virtual_dir = kobject_create_and_add("virtual",
881c6cfd 761 &devices_kset->kobj);
f0ee61a6 762
86406245 763 return virtual_dir;
f0ee61a6
GKH
764}
765
bc451f20
EB
766struct class_dir {
767 struct kobject kobj;
768 struct class *class;
769};
770
771#define to_class_dir(obj) container_of(obj, struct class_dir, kobj)
772
773static void class_dir_release(struct kobject *kobj)
774{
775 struct class_dir *dir = to_class_dir(kobj);
776 kfree(dir);
777}
778
779static const
780struct kobj_ns_type_operations *class_dir_child_ns_type(struct kobject *kobj)
40fa5422 781{
bc451f20
EB
782 struct class_dir *dir = to_class_dir(kobj);
783 return dir->class->ns_type;
784}
785
786static struct kobj_type class_dir_ktype = {
787 .release = class_dir_release,
788 .sysfs_ops = &kobj_sysfs_ops,
789 .child_ns_type = class_dir_child_ns_type
790};
791
792static struct kobject *
793class_dir_create_and_add(struct class *class, struct kobject *parent_kobj)
794{
795 struct class_dir *dir;
43968d2f
GKH
796 int retval;
797
bc451f20
EB
798 dir = kzalloc(sizeof(*dir), GFP_KERNEL);
799 if (!dir)
800 return NULL;
801
802 dir->class = class;
803 kobject_init(&dir->kobj, &class_dir_ktype);
804
6b6e39a6 805 dir->kobj.kset = &class->p->glue_dirs;
bc451f20
EB
806
807 retval = kobject_add(&dir->kobj, parent_kobj, "%s", class->name);
808 if (retval < 0) {
809 kobject_put(&dir->kobj);
810 return NULL;
811 }
812 return &dir->kobj;
813}
814
815
816static struct kobject *get_device_parent(struct device *dev,
817 struct device *parent)
818{
86406245 819 if (dev->class) {
77d3d7c1 820 static DEFINE_MUTEX(gdp_mutex);
86406245
KS
821 struct kobject *kobj = NULL;
822 struct kobject *parent_kobj;
823 struct kobject *k;
824
ead454fe 825#ifdef CONFIG_BLOCK
39aba963 826 /* block disks show up in /sys/block */
e52eec13 827 if (sysfs_deprecated && dev->class == &block_class) {
39aba963
KS
828 if (parent && parent->class == &block_class)
829 return &parent->kobj;
6b6e39a6 830 return &block_class.p->subsys.kobj;
39aba963 831 }
ead454fe 832#endif
e52eec13 833
86406245
KS
834 /*
835 * If we have no parent, we live in "virtual".
0f4dafc0
KS
836 * Class-devices with a non class-device as parent, live
837 * in a "glue" directory to prevent namespace collisions.
86406245
KS
838 */
839 if (parent == NULL)
840 parent_kobj = virtual_device_parent(dev);
24b1442d 841 else if (parent->class && !dev->class->ns_type)
86406245
KS
842 return &parent->kobj;
843 else
844 parent_kobj = &parent->kobj;
845
77d3d7c1
TH
846 mutex_lock(&gdp_mutex);
847
86406245 848 /* find our class-directory at the parent and reference it */
6b6e39a6
KS
849 spin_lock(&dev->class->p->glue_dirs.list_lock);
850 list_for_each_entry(k, &dev->class->p->glue_dirs.list, entry)
86406245
KS
851 if (k->parent == parent_kobj) {
852 kobj = kobject_get(k);
853 break;
854 }
6b6e39a6 855 spin_unlock(&dev->class->p->glue_dirs.list_lock);
77d3d7c1
TH
856 if (kobj) {
857 mutex_unlock(&gdp_mutex);
86406245 858 return kobj;
77d3d7c1 859 }
86406245
KS
860
861 /* or create a new class-directory at the parent device */
bc451f20 862 k = class_dir_create_and_add(dev->class, parent_kobj);
0f4dafc0 863 /* do not emit an uevent for this simple "glue" directory */
77d3d7c1 864 mutex_unlock(&gdp_mutex);
43968d2f 865 return k;
86406245
KS
866 }
867
ca22e56d
KS
868 /* subsystems can specify a default root directory for their devices */
869 if (!parent && dev->bus && dev->bus->dev_root)
870 return &dev->bus->dev_root->kobj;
871
86406245 872 if (parent)
c744aeae
CH
873 return &parent->kobj;
874 return NULL;
875}
da231fd5 876
63b6971a 877static void cleanup_glue_dir(struct device *dev, struct kobject *glue_dir)
da231fd5 878{
0f4dafc0 879 /* see if we live in a "glue" directory */
c1fe539a 880 if (!glue_dir || !dev->class ||
6b6e39a6 881 glue_dir->kset != &dev->class->p->glue_dirs)
da231fd5
KS
882 return;
883
0f4dafc0 884 kobject_put(glue_dir);
da231fd5 885}
63b6971a
CH
886
887static void cleanup_device_parent(struct device *dev)
888{
889 cleanup_glue_dir(dev, dev->kobj.parent);
890}
86406245 891
2ee97caf
CH
892static int device_add_class_symlinks(struct device *dev)
893{
894 int error;
895
896 if (!dev->class)
897 return 0;
da231fd5 898
1fbfee6c 899 error = sysfs_create_link(&dev->kobj,
6b6e39a6 900 &dev->class->p->subsys.kobj,
2ee97caf
CH
901 "subsystem");
902 if (error)
903 goto out;
da231fd5 904
4e886c29 905 if (dev->parent && device_is_not_partition(dev)) {
39aba963 906 error = sysfs_create_link(&dev->kobj, &dev->parent->kobj,
4f01a757
DT
907 "device");
908 if (error)
39aba963 909 goto out_subsys;
2ee97caf 910 }
2ee97caf 911
ead454fe 912#ifdef CONFIG_BLOCK
39aba963 913 /* /sys/block has directories and does not need symlinks */
e52eec13 914 if (sysfs_deprecated && dev->class == &block_class)
39aba963 915 return 0;
ead454fe 916#endif
39aba963 917
da231fd5 918 /* link in the class directory pointing to the device */
6b6e39a6 919 error = sysfs_create_link(&dev->class->p->subsys.kobj,
1e0b2cf9 920 &dev->kobj, dev_name(dev));
da231fd5 921 if (error)
39aba963 922 goto out_device;
da231fd5 923
da231fd5
KS
924 return 0;
925
39aba963
KS
926out_device:
927 sysfs_remove_link(&dev->kobj, "device");
da231fd5 928
2ee97caf
CH
929out_subsys:
930 sysfs_remove_link(&dev->kobj, "subsystem");
931out:
932 return error;
933}
934
935static void device_remove_class_symlinks(struct device *dev)
936{
937 if (!dev->class)
938 return;
da231fd5 939
4e886c29 940 if (dev->parent && device_is_not_partition(dev))
da231fd5 941 sysfs_remove_link(&dev->kobj, "device");
2ee97caf 942 sysfs_remove_link(&dev->kobj, "subsystem");
ead454fe 943#ifdef CONFIG_BLOCK
e52eec13 944 if (sysfs_deprecated && dev->class == &block_class)
39aba963 945 return;
ead454fe 946#endif
6b6e39a6 947 sysfs_delete_link(&dev->class->p->subsys.kobj, &dev->kobj, dev_name(dev));
2ee97caf
CH
948}
949
413c239f
SR
950/**
951 * dev_set_name - set a device name
952 * @dev: device
46232366 953 * @fmt: format string for the device's name
413c239f
SR
954 */
955int dev_set_name(struct device *dev, const char *fmt, ...)
956{
957 va_list vargs;
1fa5ae85 958 int err;
413c239f
SR
959
960 va_start(vargs, fmt);
1fa5ae85 961 err = kobject_set_name_vargs(&dev->kobj, fmt, vargs);
413c239f 962 va_end(vargs);
1fa5ae85 963 return err;
413c239f
SR
964}
965EXPORT_SYMBOL_GPL(dev_set_name);
966
e105b8bf
DW
967/**
968 * device_to_dev_kobj - select a /sys/dev/ directory for the device
969 * @dev: device
970 *
971 * By default we select char/ for new entries. Setting class->dev_obj
972 * to NULL prevents an entry from being created. class->dev_kobj must
973 * be set (or cleared) before any devices are registered to the class
974 * otherwise device_create_sys_dev_entry() and
0d4e293c
PK
975 * device_remove_sys_dev_entry() will disagree about the presence of
976 * the link.
e105b8bf
DW
977 */
978static struct kobject *device_to_dev_kobj(struct device *dev)
979{
980 struct kobject *kobj;
981
982 if (dev->class)
983 kobj = dev->class->dev_kobj;
984 else
985 kobj = sysfs_dev_char_kobj;
986
987 return kobj;
988}
989
990static int device_create_sys_dev_entry(struct device *dev)
991{
992 struct kobject *kobj = device_to_dev_kobj(dev);
993 int error = 0;
994 char devt_str[15];
995
996 if (kobj) {
997 format_dev_t(devt_str, dev->devt);
998 error = sysfs_create_link(kobj, &dev->kobj, devt_str);
999 }
1000
1001 return error;
1002}
1003
1004static void device_remove_sys_dev_entry(struct device *dev)
1005{
1006 struct kobject *kobj = device_to_dev_kobj(dev);
1007 char devt_str[15];
1008
1009 if (kobj) {
1010 format_dev_t(devt_str, dev->devt);
1011 sysfs_remove_link(kobj, devt_str);
1012 }
1013}
1014
b4028437
GKH
1015int device_private_init(struct device *dev)
1016{
1017 dev->p = kzalloc(sizeof(*dev->p), GFP_KERNEL);
1018 if (!dev->p)
1019 return -ENOMEM;
1020 dev->p->device = dev;
1021 klist_init(&dev->p->klist_children, klist_children_get,
1022 klist_children_put);
ef8a3fd6 1023 INIT_LIST_HEAD(&dev->p->deferred_probe);
b4028437
GKH
1024 return 0;
1025}
1026
1da177e4 1027/**
4a3ad20c
GKH
1028 * device_add - add device to device hierarchy.
1029 * @dev: device.
1da177e4 1030 *
4a3ad20c
GKH
1031 * This is part 2 of device_register(), though may be called
1032 * separately _iff_ device_initialize() has been called separately.
1da177e4 1033 *
5739411a 1034 * This adds @dev to the kobject hierarchy via kobject_add(), adds it
4a3ad20c
GKH
1035 * to the global and sibling lists for the device, then
1036 * adds it to the other relevant subsystems of the driver model.
5739411a 1037 *
b10d5efd
AS
1038 * Do not call this routine or device_register() more than once for
1039 * any device structure. The driver model core is not designed to work
1040 * with devices that get unregistered and then spring back to life.
1041 * (Among other things, it's very hard to guarantee that all references
1042 * to the previous incarnation of @dev have been dropped.) Allocate
1043 * and register a fresh new struct device instead.
1044 *
5739411a
CH
1045 * NOTE: _Never_ directly free @dev after calling this function, even
1046 * if it returned an error! Always use put_device() to give up your
1047 * reference instead.
1da177e4
LT
1048 */
1049int device_add(struct device *dev)
1050{
1051 struct device *parent = NULL;
ca22e56d 1052 struct kobject *kobj;
c47ed219 1053 struct class_interface *class_intf;
c906a48a 1054 int error = -EINVAL;
775b64d2 1055
1da177e4 1056 dev = get_device(dev);
c906a48a
GKH
1057 if (!dev)
1058 goto done;
1059
fb069a5d 1060 if (!dev->p) {
b4028437
GKH
1061 error = device_private_init(dev);
1062 if (error)
1063 goto done;
fb069a5d 1064 }
fb069a5d 1065
1fa5ae85
KS
1066 /*
1067 * for statically allocated devices, which should all be converted
1068 * some day, we need to initialize the name. We prevent reading back
1069 * the name, and force the use of dev_name()
1070 */
1071 if (dev->init_name) {
acc0e90f 1072 dev_set_name(dev, "%s", dev->init_name);
1fa5ae85
KS
1073 dev->init_name = NULL;
1074 }
c906a48a 1075
ca22e56d
KS
1076 /* subsystems can specify simple device enumeration */
1077 if (!dev_name(dev) && dev->bus && dev->bus->dev_name)
1078 dev_set_name(dev, "%s%u", dev->bus->dev_name, dev->id);
1079
e6309e75
TG
1080 if (!dev_name(dev)) {
1081 error = -EINVAL;
5c8563d7 1082 goto name_error;
e6309e75 1083 }
1da177e4 1084
1e0b2cf9 1085 pr_debug("device: '%s': %s\n", dev_name(dev), __func__);
c205ef48 1086
1da177e4 1087 parent = get_device(dev->parent);
ca22e56d
KS
1088 kobj = get_device_parent(dev, parent);
1089 if (kobj)
1090 dev->kobj.parent = kobj;
1da177e4 1091
0d358f22
YL
1092 /* use parent numa_node */
1093 if (parent)
1094 set_dev_node(dev, dev_to_node(parent));
1095
1da177e4 1096 /* first, register with generic layer. */
8a577ffc
KS
1097 /* we require the name to be set before, and pass NULL */
1098 error = kobject_add(&dev->kobj, dev->kobj.parent, NULL);
40fa5422 1099 if (error)
1da177e4 1100 goto Error;
a7fd6706 1101
37022644
BW
1102 /* notify platform of device entry */
1103 if (platform_notify)
1104 platform_notify(dev);
1105
ad6a1e1c 1106 error = device_create_file(dev, &uevent_attr);
a306eea4
CH
1107 if (error)
1108 goto attrError;
a7fd6706 1109
23681e47 1110 if (MAJOR(dev->devt)) {
ad6a1e1c
TH
1111 error = device_create_file(dev, &devt_attr);
1112 if (error)
a306eea4 1113 goto ueventattrError;
e105b8bf
DW
1114
1115 error = device_create_sys_dev_entry(dev);
1116 if (error)
1117 goto devtattrError;
2b2af54a
KS
1118
1119 devtmpfs_create_node(dev);
23681e47
GKH
1120 }
1121
2ee97caf
CH
1122 error = device_add_class_symlinks(dev);
1123 if (error)
1124 goto SymlinkError;
dc0afa83
CH
1125 error = device_add_attrs(dev);
1126 if (error)
2620efef 1127 goto AttrsError;
dc0afa83
CH
1128 error = bus_add_device(dev);
1129 if (error)
1da177e4 1130 goto BusError;
3b98aeaf 1131 error = dpm_sysfs_add(dev);
57eee3d2 1132 if (error)
3b98aeaf
AS
1133 goto DPMError;
1134 device_pm_add(dev);
ec0676ee
AS
1135
1136 /* Notify clients of device addition. This call must come
268863f4 1137 * after dpm_sysfs_add() and before kobject_uevent().
ec0676ee
AS
1138 */
1139 if (dev->bus)
1140 blocking_notifier_call_chain(&dev->bus->p->bus_notifier,
1141 BUS_NOTIFY_ADD_DEVICE, dev);
1142
83b5fb4c 1143 kobject_uevent(&dev->kobj, KOBJ_ADD);
2023c610 1144 bus_probe_device(dev);
1da177e4 1145 if (parent)
f791b8c8
GKH
1146 klist_add_tail(&dev->p->knode_parent,
1147 &parent->p->klist_children);
1da177e4 1148
5d9fd169 1149 if (dev->class) {
ca22e56d 1150 mutex_lock(&dev->class->p->mutex);
c47ed219 1151 /* tie the class to the device */
5a3ceb86 1152 klist_add_tail(&dev->knode_class,
6b6e39a6 1153 &dev->class->p->klist_devices);
c47ed219
GKH
1154
1155 /* notify any interfaces that the device is here */
184f1f77 1156 list_for_each_entry(class_intf,
ca22e56d 1157 &dev->class->p->interfaces, node)
c47ed219
GKH
1158 if (class_intf->add_dev)
1159 class_intf->add_dev(dev, class_intf);
ca22e56d 1160 mutex_unlock(&dev->class->p->mutex);
5d9fd169 1161 }
c906a48a 1162done:
1da177e4
LT
1163 put_device(dev);
1164 return error;
3b98aeaf 1165 DPMError:
57eee3d2
RW
1166 bus_remove_device(dev);
1167 BusError:
82f0cf9b 1168 device_remove_attrs(dev);
2620efef 1169 AttrsError:
2ee97caf
CH
1170 device_remove_class_symlinks(dev);
1171 SymlinkError:
ad72956d
KS
1172 if (MAJOR(dev->devt))
1173 devtmpfs_delete_node(dev);
e105b8bf
DW
1174 if (MAJOR(dev->devt))
1175 device_remove_sys_dev_entry(dev);
1176 devtattrError:
ad6a1e1c
TH
1177 if (MAJOR(dev->devt))
1178 device_remove_file(dev, &devt_attr);
a306eea4 1179 ueventattrError:
ad6a1e1c 1180 device_remove_file(dev, &uevent_attr);
23681e47 1181 attrError:
312c004d 1182 kobject_uevent(&dev->kobj, KOBJ_REMOVE);
1da177e4
LT
1183 kobject_del(&dev->kobj);
1184 Error:
63b6971a 1185 cleanup_device_parent(dev);
1da177e4
LT
1186 if (parent)
1187 put_device(parent);
5c8563d7
KS
1188name_error:
1189 kfree(dev->p);
1190 dev->p = NULL;
c906a48a 1191 goto done;
1da177e4 1192}
86df2687 1193EXPORT_SYMBOL_GPL(device_add);
1da177e4 1194
1da177e4 1195/**
4a3ad20c
GKH
1196 * device_register - register a device with the system.
1197 * @dev: pointer to the device structure
1da177e4 1198 *
4a3ad20c
GKH
1199 * This happens in two clean steps - initialize the device
1200 * and add it to the system. The two steps can be called
1201 * separately, but this is the easiest and most common.
1202 * I.e. you should only call the two helpers separately if
1203 * have a clearly defined need to use and refcount the device
1204 * before it is added to the hierarchy.
5739411a 1205 *
b10d5efd
AS
1206 * For more information, see the kerneldoc for device_initialize()
1207 * and device_add().
1208 *
5739411a
CH
1209 * NOTE: _Never_ directly free @dev after calling this function, even
1210 * if it returned an error! Always use put_device() to give up the
1211 * reference initialized in this function instead.
1da177e4 1212 */
1da177e4
LT
1213int device_register(struct device *dev)
1214{
1215 device_initialize(dev);
1216 return device_add(dev);
1217}
86df2687 1218EXPORT_SYMBOL_GPL(device_register);
1da177e4 1219
1da177e4 1220/**
4a3ad20c
GKH
1221 * get_device - increment reference count for device.
1222 * @dev: device.
1da177e4 1223 *
4a3ad20c
GKH
1224 * This simply forwards the call to kobject_get(), though
1225 * we do take care to provide for the case that we get a NULL
1226 * pointer passed in.
1da177e4 1227 */
4a3ad20c 1228struct device *get_device(struct device *dev)
1da177e4 1229{
b0d1f807 1230 return dev ? kobj_to_dev(kobject_get(&dev->kobj)) : NULL;
1da177e4 1231}
86df2687 1232EXPORT_SYMBOL_GPL(get_device);
1da177e4 1233
1da177e4 1234/**
4a3ad20c
GKH
1235 * put_device - decrement reference count.
1236 * @dev: device in question.
1da177e4 1237 */
4a3ad20c 1238void put_device(struct device *dev)
1da177e4 1239{
edfaa7c3 1240 /* might_sleep(); */
1da177e4
LT
1241 if (dev)
1242 kobject_put(&dev->kobj);
1243}
86df2687 1244EXPORT_SYMBOL_GPL(put_device);
1da177e4 1245
1da177e4 1246/**
4a3ad20c
GKH
1247 * device_del - delete device from system.
1248 * @dev: device.
1da177e4 1249 *
4a3ad20c
GKH
1250 * This is the first part of the device unregistration
1251 * sequence. This removes the device from the lists we control
1252 * from here, has it removed from the other driver model
1253 * subsystems it was added to in device_add(), and removes it
1254 * from the kobject hierarchy.
1da177e4 1255 *
4a3ad20c
GKH
1256 * NOTE: this should be called manually _iff_ device_add() was
1257 * also called manually.
1da177e4 1258 */
4a3ad20c 1259void device_del(struct device *dev)
1da177e4 1260{
4a3ad20c 1261 struct device *parent = dev->parent;
c47ed219 1262 struct class_interface *class_intf;
1da177e4 1263
ec0676ee
AS
1264 /* Notify clients of device removal. This call must come
1265 * before dpm_sysfs_remove().
1266 */
1267 if (dev->bus)
1268 blocking_notifier_call_chain(&dev->bus->p->bus_notifier,
1269 BUS_NOTIFY_DEL_DEVICE, dev);
3b98aeaf 1270 dpm_sysfs_remove(dev);
1da177e4 1271 if (parent)
f791b8c8 1272 klist_del(&dev->p->knode_parent);
e105b8bf 1273 if (MAJOR(dev->devt)) {
2b2af54a 1274 devtmpfs_delete_node(dev);
e105b8bf 1275 device_remove_sys_dev_entry(dev);
ad6a1e1c 1276 device_remove_file(dev, &devt_attr);
e105b8bf 1277 }
b9d9c82b 1278 if (dev->class) {
da231fd5 1279 device_remove_class_symlinks(dev);
99ef3ef8 1280
ca22e56d 1281 mutex_lock(&dev->class->p->mutex);
c47ed219 1282 /* notify any interfaces that the device is now gone */
184f1f77 1283 list_for_each_entry(class_intf,
ca22e56d 1284 &dev->class->p->interfaces, node)
c47ed219
GKH
1285 if (class_intf->remove_dev)
1286 class_intf->remove_dev(dev, class_intf);
1287 /* remove the device from the class list */
5a3ceb86 1288 klist_del(&dev->knode_class);
ca22e56d 1289 mutex_unlock(&dev->class->p->mutex);
b9d9c82b 1290 }
ad6a1e1c 1291 device_remove_file(dev, &uevent_attr);
2620efef 1292 device_remove_attrs(dev);
28953533 1293 bus_remove_device(dev);
4b6d1f12 1294 device_pm_remove(dev);
d1c3414c 1295 driver_deferred_probe_del(dev);
1da177e4
LT
1296
1297 /* Notify the platform of the removal, in case they
1298 * need to do anything...
1299 */
1300 if (platform_notify_remove)
1301 platform_notify_remove(dev);
312c004d 1302 kobject_uevent(&dev->kobj, KOBJ_REMOVE);
da231fd5 1303 cleanup_device_parent(dev);
1da177e4 1304 kobject_del(&dev->kobj);
da231fd5 1305 put_device(parent);
1da177e4 1306}
86df2687 1307EXPORT_SYMBOL_GPL(device_del);
1da177e4
LT
1308
1309/**
4a3ad20c
GKH
1310 * device_unregister - unregister device from system.
1311 * @dev: device going away.
1da177e4 1312 *
4a3ad20c
GKH
1313 * We do this in two parts, like we do device_register(). First,
1314 * we remove it from all the subsystems with device_del(), then
1315 * we decrement the reference count via put_device(). If that
1316 * is the final reference count, the device will be cleaned up
1317 * via device_release() above. Otherwise, the structure will
1318 * stick around until the final reference to the device is dropped.
1da177e4 1319 */
4a3ad20c 1320void device_unregister(struct device *dev)
1da177e4 1321{
1e0b2cf9 1322 pr_debug("device: '%s': %s\n", dev_name(dev), __func__);
1da177e4
LT
1323 device_del(dev);
1324 put_device(dev);
1325}
86df2687 1326EXPORT_SYMBOL_GPL(device_unregister);
1da177e4 1327
4a3ad20c 1328static struct device *next_device(struct klist_iter *i)
36239577 1329{
4a3ad20c 1330 struct klist_node *n = klist_next(i);
f791b8c8
GKH
1331 struct device *dev = NULL;
1332 struct device_private *p;
1333
1334 if (n) {
1335 p = to_device_private_parent(n);
1336 dev = p->device;
1337 }
1338 return dev;
36239577 1339}
1340
6fcf53ac 1341/**
e454cea2 1342 * device_get_devnode - path of device node file
6fcf53ac 1343 * @dev: device
e454cea2 1344 * @mode: returned file access mode
3c2670e6
KS
1345 * @uid: returned file owner
1346 * @gid: returned file group
6fcf53ac
KS
1347 * @tmp: possibly allocated string
1348 *
1349 * Return the relative path of a possible device node.
1350 * Non-default names may need to allocate a memory to compose
1351 * a name. This memory is returned in tmp and needs to be
1352 * freed by the caller.
1353 */
e454cea2 1354const char *device_get_devnode(struct device *dev,
4e4098a3 1355 umode_t *mode, kuid_t *uid, kgid_t *gid,
3c2670e6 1356 const char **tmp)
6fcf53ac
KS
1357{
1358 char *s;
1359
1360 *tmp = NULL;
1361
1362 /* the device type may provide a specific name */
e454cea2 1363 if (dev->type && dev->type->devnode)
3c2670e6 1364 *tmp = dev->type->devnode(dev, mode, uid, gid);
6fcf53ac
KS
1365 if (*tmp)
1366 return *tmp;
1367
1368 /* the class may provide a specific name */
e454cea2
KS
1369 if (dev->class && dev->class->devnode)
1370 *tmp = dev->class->devnode(dev, mode);
6fcf53ac
KS
1371 if (*tmp)
1372 return *tmp;
1373
1374 /* return name without allocation, tmp == NULL */
1375 if (strchr(dev_name(dev), '!') == NULL)
1376 return dev_name(dev);
1377
1378 /* replace '!' in the name with '/' */
1379 *tmp = kstrdup(dev_name(dev), GFP_KERNEL);
1380 if (!*tmp)
1381 return NULL;
1382 while ((s = strchr(*tmp, '!')))
1383 s[0] = '/';
1384 return *tmp;
1385}
1386
1da177e4 1387/**
4a3ad20c
GKH
1388 * device_for_each_child - device child iterator.
1389 * @parent: parent struct device.
4a3ad20c 1390 * @fn: function to be called for each device.
f8878dcb 1391 * @data: data for the callback.
1da177e4 1392 *
4a3ad20c
GKH
1393 * Iterate over @parent's child devices, and call @fn for each,
1394 * passing it @data.
1da177e4 1395 *
4a3ad20c
GKH
1396 * We check the return of @fn each time. If it returns anything
1397 * other than 0, we break out and return that value.
1da177e4 1398 */
4a3ad20c
GKH
1399int device_for_each_child(struct device *parent, void *data,
1400 int (*fn)(struct device *dev, void *data))
1da177e4 1401{
36239577 1402 struct klist_iter i;
4a3ad20c 1403 struct device *child;
1da177e4
LT
1404 int error = 0;
1405
014c90db
GKH
1406 if (!parent->p)
1407 return 0;
1408
f791b8c8 1409 klist_iter_init(&parent->p->klist_children, &i);
36239577 1410 while ((child = next_device(&i)) && !error)
1411 error = fn(child, data);
1412 klist_iter_exit(&i);
1da177e4
LT
1413 return error;
1414}
86df2687 1415EXPORT_SYMBOL_GPL(device_for_each_child);
1da177e4 1416
5ab69981
CH
1417/**
1418 * device_find_child - device iterator for locating a particular device.
1419 * @parent: parent struct device
5ab69981 1420 * @match: Callback function to check device
f8878dcb 1421 * @data: Data to pass to match function
5ab69981
CH
1422 *
1423 * This is similar to the device_for_each_child() function above, but it
1424 * returns a reference to a device that is 'found' for later use, as
1425 * determined by the @match callback.
1426 *
1427 * The callback should return 0 if the device doesn't match and non-zero
1428 * if it does. If the callback returns non-zero and a reference to the
1429 * current device can be obtained, this function will return to the caller
1430 * and not iterate over any more devices.
a4e2400a
FV
1431 *
1432 * NOTE: you will need to drop the reference with put_device() after use.
5ab69981 1433 */
4a3ad20c
GKH
1434struct device *device_find_child(struct device *parent, void *data,
1435 int (*match)(struct device *dev, void *data))
5ab69981
CH
1436{
1437 struct klist_iter i;
1438 struct device *child;
1439
1440 if (!parent)
1441 return NULL;
1442
f791b8c8 1443 klist_iter_init(&parent->p->klist_children, &i);
5ab69981
CH
1444 while ((child = next_device(&i)))
1445 if (match(child, data) && get_device(child))
1446 break;
1447 klist_iter_exit(&i);
1448 return child;
1449}
86df2687 1450EXPORT_SYMBOL_GPL(device_find_child);
5ab69981 1451
1da177e4
LT
1452int __init devices_init(void)
1453{
881c6cfd
GKH
1454 devices_kset = kset_create_and_add("devices", &device_uevent_ops, NULL);
1455 if (!devices_kset)
1456 return -ENOMEM;
e105b8bf
DW
1457 dev_kobj = kobject_create_and_add("dev", NULL);
1458 if (!dev_kobj)
1459 goto dev_kobj_err;
1460 sysfs_dev_block_kobj = kobject_create_and_add("block", dev_kobj);
1461 if (!sysfs_dev_block_kobj)
1462 goto block_kobj_err;
1463 sysfs_dev_char_kobj = kobject_create_and_add("char", dev_kobj);
1464 if (!sysfs_dev_char_kobj)
1465 goto char_kobj_err;
1466
881c6cfd 1467 return 0;
e105b8bf
DW
1468
1469 char_kobj_err:
1470 kobject_put(sysfs_dev_block_kobj);
1471 block_kobj_err:
1472 kobject_put(dev_kobj);
1473 dev_kobj_err:
1474 kset_unregister(devices_kset);
1475 return -ENOMEM;
1da177e4
LT
1476}
1477
4f3549d7
RW
1478static DEFINE_MUTEX(device_hotplug_lock);
1479
1480void lock_device_hotplug(void)
1481{
1482 mutex_lock(&device_hotplug_lock);
1483}
1484
1485void unlock_device_hotplug(void)
1486{
1487 mutex_unlock(&device_hotplug_lock);
1488}
1489
1490static int device_check_offline(struct device *dev, void *not_used)
1491{
1492 int ret;
1493
1494 ret = device_for_each_child(dev, NULL, device_check_offline);
1495 if (ret)
1496 return ret;
1497
1498 return device_supports_offline(dev) && !dev->offline ? -EBUSY : 0;
1499}
1500
1501/**
1502 * device_offline - Prepare the device for hot-removal.
1503 * @dev: Device to be put offline.
1504 *
1505 * Execute the device bus type's .offline() callback, if present, to prepare
1506 * the device for a subsequent hot-removal. If that succeeds, the device must
1507 * not be used until either it is removed or its bus type's .online() callback
1508 * is executed.
1509 *
1510 * Call under device_hotplug_lock.
1511 */
1512int device_offline(struct device *dev)
1513{
1514 int ret;
1515
1516 if (dev->offline_disabled)
1517 return -EPERM;
1518
1519 ret = device_for_each_child(dev, NULL, device_check_offline);
1520 if (ret)
1521 return ret;
1522
1523 device_lock(dev);
1524 if (device_supports_offline(dev)) {
1525 if (dev->offline) {
1526 ret = 1;
1527 } else {
1528 ret = dev->bus->offline(dev);
1529 if (!ret) {
1530 kobject_uevent(&dev->kobj, KOBJ_OFFLINE);
1531 dev->offline = true;
1532 }
1533 }
1534 }
1535 device_unlock(dev);
1536
1537 return ret;
1538}
1539
1540/**
1541 * device_online - Put the device back online after successful device_offline().
1542 * @dev: Device to be put back online.
1543 *
1544 * If device_offline() has been successfully executed for @dev, but the device
1545 * has not been removed subsequently, execute its bus type's .online() callback
1546 * to indicate that the device can be used again.
1547 *
1548 * Call under device_hotplug_lock.
1549 */
1550int device_online(struct device *dev)
1551{
1552 int ret = 0;
1553
1554 device_lock(dev);
1555 if (device_supports_offline(dev)) {
1556 if (dev->offline) {
1557 ret = dev->bus->online(dev);
1558 if (!ret) {
1559 kobject_uevent(&dev->kobj, KOBJ_ONLINE);
1560 dev->offline = false;
1561 }
1562 } else {
1563 ret = 1;
1564 }
1565 }
1566 device_unlock(dev);
1567
1568 return ret;
1569}
1570
7f100d15 1571struct root_device {
0aa0dc41
MM
1572 struct device dev;
1573 struct module *owner;
1574};
1575
93058424 1576static inline struct root_device *to_root_device(struct device *d)
481e2079
FW
1577{
1578 return container_of(d, struct root_device, dev);
1579}
0aa0dc41
MM
1580
1581static void root_device_release(struct device *dev)
1582{
1583 kfree(to_root_device(dev));
1584}
1585
1586/**
1587 * __root_device_register - allocate and register a root device
1588 * @name: root device name
1589 * @owner: owner module of the root device, usually THIS_MODULE
1590 *
1591 * This function allocates a root device and registers it
1592 * using device_register(). In order to free the returned
1593 * device, use root_device_unregister().
1594 *
1595 * Root devices are dummy devices which allow other devices
1596 * to be grouped under /sys/devices. Use this function to
1597 * allocate a root device and then use it as the parent of
1598 * any device which should appear under /sys/devices/{name}
1599 *
1600 * The /sys/devices/{name} directory will also contain a
1601 * 'module' symlink which points to the @owner directory
1602 * in sysfs.
1603 *
f0eae0ed
JN
1604 * Returns &struct device pointer on success, or ERR_PTR() on error.
1605 *
0aa0dc41
MM
1606 * Note: You probably want to use root_device_register().
1607 */
1608struct device *__root_device_register(const char *name, struct module *owner)
1609{
1610 struct root_device *root;
1611 int err = -ENOMEM;
1612
1613 root = kzalloc(sizeof(struct root_device), GFP_KERNEL);
1614 if (!root)
1615 return ERR_PTR(err);
1616
acc0e90f 1617 err = dev_set_name(&root->dev, "%s", name);
0aa0dc41
MM
1618 if (err) {
1619 kfree(root);
1620 return ERR_PTR(err);
1621 }
1622
1623 root->dev.release = root_device_release;
1624
1625 err = device_register(&root->dev);
1626 if (err) {
1627 put_device(&root->dev);
1628 return ERR_PTR(err);
1629 }
1630
1d9e882b 1631#ifdef CONFIG_MODULES /* gotta find a "cleaner" way to do this */
0aa0dc41
MM
1632 if (owner) {
1633 struct module_kobject *mk = &owner->mkobj;
1634
1635 err = sysfs_create_link(&root->dev.kobj, &mk->kobj, "module");
1636 if (err) {
1637 device_unregister(&root->dev);
1638 return ERR_PTR(err);
1639 }
1640 root->owner = owner;
1641 }
1642#endif
1643
1644 return &root->dev;
1645}
1646EXPORT_SYMBOL_GPL(__root_device_register);
1647
1648/**
1649 * root_device_unregister - unregister and free a root device
7cbcf225 1650 * @dev: device going away
0aa0dc41
MM
1651 *
1652 * This function unregisters and cleans up a device that was created by
1653 * root_device_register().
1654 */
1655void root_device_unregister(struct device *dev)
1656{
1657 struct root_device *root = to_root_device(dev);
1658
1659 if (root->owner)
1660 sysfs_remove_link(&root->dev.kobj, "module");
1661
1662 device_unregister(dev);
1663}
1664EXPORT_SYMBOL_GPL(root_device_unregister);
1665
23681e47
GKH
1666
1667static void device_create_release(struct device *dev)
1668{
1e0b2cf9 1669 pr_debug("device: '%s': %s\n", dev_name(dev), __func__);
23681e47
GKH
1670 kfree(dev);
1671}
1672
39ef3112
GR
1673static struct device *
1674device_create_groups_vargs(struct class *class, struct device *parent,
1675 dev_t devt, void *drvdata,
1676 const struct attribute_group **groups,
1677 const char *fmt, va_list args)
23681e47 1678{
23681e47
GKH
1679 struct device *dev = NULL;
1680 int retval = -ENODEV;
1681
1682 if (class == NULL || IS_ERR(class))
1683 goto error;
23681e47
GKH
1684
1685 dev = kzalloc(sizeof(*dev), GFP_KERNEL);
1686 if (!dev) {
1687 retval = -ENOMEM;
1688 goto error;
1689 }
1690
1691 dev->devt = devt;
1692 dev->class = class;
1693 dev->parent = parent;
39ef3112 1694 dev->groups = groups;
23681e47 1695 dev->release = device_create_release;
8882b394 1696 dev_set_drvdata(dev, drvdata);
23681e47 1697
1fa5ae85
KS
1698 retval = kobject_set_name_vargs(&dev->kobj, fmt, args);
1699 if (retval)
1700 goto error;
1701
23681e47
GKH
1702 retval = device_register(dev);
1703 if (retval)
1704 goto error;
1705
23681e47
GKH
1706 return dev;
1707
1708error:
286661b3 1709 put_device(dev);
23681e47
GKH
1710 return ERR_PTR(retval);
1711}
39ef3112
GR
1712
1713/**
1714 * device_create_vargs - creates a device and registers it with sysfs
1715 * @class: pointer to the struct class that this device should be registered to
1716 * @parent: pointer to the parent struct device of this new device, if any
1717 * @devt: the dev_t for the char device to be added
1718 * @drvdata: the data to be added to the device for callbacks
1719 * @fmt: string for the device's name
1720 * @args: va_list for the device's name
1721 *
1722 * This function can be used by char device classes. A struct device
1723 * will be created in sysfs, registered to the specified class.
1724 *
1725 * A "dev" file will be created, showing the dev_t for the device, if
1726 * the dev_t is not 0,0.
1727 * If a pointer to a parent struct device is passed in, the newly created
1728 * struct device will be a child of that device in sysfs.
1729 * The pointer to the struct device will be returned from the call.
1730 * Any further sysfs files that might be required can be created using this
1731 * pointer.
1732 *
1733 * Returns &struct device pointer on success, or ERR_PTR() on error.
1734 *
1735 * Note: the struct class passed to this function must have previously
1736 * been created with a call to class_create().
1737 */
1738struct device *device_create_vargs(struct class *class, struct device *parent,
1739 dev_t devt, void *drvdata, const char *fmt,
1740 va_list args)
1741{
1742 return device_create_groups_vargs(class, parent, devt, drvdata, NULL,
1743 fmt, args);
1744}
8882b394
GKH
1745EXPORT_SYMBOL_GPL(device_create_vargs);
1746
1747/**
4e106739 1748 * device_create - creates a device and registers it with sysfs
8882b394
GKH
1749 * @class: pointer to the struct class that this device should be registered to
1750 * @parent: pointer to the parent struct device of this new device, if any
1751 * @devt: the dev_t for the char device to be added
1752 * @drvdata: the data to be added to the device for callbacks
1753 * @fmt: string for the device's name
1754 *
1755 * This function can be used by char device classes. A struct device
1756 * will be created in sysfs, registered to the specified class.
1757 *
1758 * A "dev" file will be created, showing the dev_t for the device, if
1759 * the dev_t is not 0,0.
1760 * If a pointer to a parent struct device is passed in, the newly created
1761 * struct device will be a child of that device in sysfs.
1762 * The pointer to the struct device will be returned from the call.
1763 * Any further sysfs files that might be required can be created using this
1764 * pointer.
1765 *
f0eae0ed
JN
1766 * Returns &struct device pointer on success, or ERR_PTR() on error.
1767 *
8882b394
GKH
1768 * Note: the struct class passed to this function must have previously
1769 * been created with a call to class_create().
1770 */
4e106739
GKH
1771struct device *device_create(struct class *class, struct device *parent,
1772 dev_t devt, void *drvdata, const char *fmt, ...)
8882b394
GKH
1773{
1774 va_list vargs;
1775 struct device *dev;
1776
1777 va_start(vargs, fmt);
1778 dev = device_create_vargs(class, parent, devt, drvdata, fmt, vargs);
1779 va_end(vargs);
1780 return dev;
1781}
4e106739 1782EXPORT_SYMBOL_GPL(device_create);
8882b394 1783
39ef3112
GR
1784/**
1785 * device_create_with_groups - creates a device and registers it with sysfs
1786 * @class: pointer to the struct class that this device should be registered to
1787 * @parent: pointer to the parent struct device of this new device, if any
1788 * @devt: the dev_t for the char device to be added
1789 * @drvdata: the data to be added to the device for callbacks
1790 * @groups: NULL-terminated list of attribute groups to be created
1791 * @fmt: string for the device's name
1792 *
1793 * This function can be used by char device classes. A struct device
1794 * will be created in sysfs, registered to the specified class.
1795 * Additional attributes specified in the groups parameter will also
1796 * be created automatically.
1797 *
1798 * A "dev" file will be created, showing the dev_t for the device, if
1799 * the dev_t is not 0,0.
1800 * If a pointer to a parent struct device is passed in, the newly created
1801 * struct device will be a child of that device in sysfs.
1802 * The pointer to the struct device will be returned from the call.
1803 * Any further sysfs files that might be required can be created using this
1804 * pointer.
1805 *
1806 * Returns &struct device pointer on success, or ERR_PTR() on error.
1807 *
1808 * Note: the struct class passed to this function must have previously
1809 * been created with a call to class_create().
1810 */
1811struct device *device_create_with_groups(struct class *class,
1812 struct device *parent, dev_t devt,
1813 void *drvdata,
1814 const struct attribute_group **groups,
1815 const char *fmt, ...)
1816{
1817 va_list vargs;
1818 struct device *dev;
1819
1820 va_start(vargs, fmt);
1821 dev = device_create_groups_vargs(class, parent, devt, drvdata, groups,
1822 fmt, vargs);
1823 va_end(vargs);
1824 return dev;
1825}
1826EXPORT_SYMBOL_GPL(device_create_with_groups);
1827
9f3b795a 1828static int __match_devt(struct device *dev, const void *data)
23681e47 1829{
9f3b795a 1830 const dev_t *devt = data;
23681e47 1831
cd35449b 1832 return dev->devt == *devt;
775b64d2
RW
1833}
1834
1835/**
1836 * device_destroy - removes a device that was created with device_create()
1837 * @class: pointer to the struct class that this device was registered with
1838 * @devt: the dev_t of the device that was previously registered
1839 *
1840 * This call unregisters and cleans up a device that was created with a
1841 * call to device_create().
1842 */
1843void device_destroy(struct class *class, dev_t devt)
1844{
1845 struct device *dev;
23681e47 1846
695794ae 1847 dev = class_find_device(class, NULL, &devt, __match_devt);
cd35449b
DY
1848 if (dev) {
1849 put_device(dev);
23681e47 1850 device_unregister(dev);
cd35449b 1851 }
23681e47
GKH
1852}
1853EXPORT_SYMBOL_GPL(device_destroy);
a2de48ca
GKH
1854
1855/**
1856 * device_rename - renames a device
1857 * @dev: the pointer to the struct device to be renamed
1858 * @new_name: the new name of the device
030c1d2b
EB
1859 *
1860 * It is the responsibility of the caller to provide mutual
1861 * exclusion between two different calls of device_rename
1862 * on the same device to ensure that new_name is valid and
1863 * won't conflict with other devices.
c6c0ac66 1864 *
a5462516
TT
1865 * Note: Don't call this function. Currently, the networking layer calls this
1866 * function, but that will change. The following text from Kay Sievers offers
1867 * some insight:
1868 *
1869 * Renaming devices is racy at many levels, symlinks and other stuff are not
1870 * replaced atomically, and you get a "move" uevent, but it's not easy to
1871 * connect the event to the old and new device. Device nodes are not renamed at
1872 * all, there isn't even support for that in the kernel now.
1873 *
1874 * In the meantime, during renaming, your target name might be taken by another
1875 * driver, creating conflicts. Or the old name is taken directly after you
1876 * renamed it -- then you get events for the same DEVPATH, before you even see
1877 * the "move" event. It's just a mess, and nothing new should ever rely on
1878 * kernel device renaming. Besides that, it's not even implemented now for
1879 * other things than (driver-core wise very simple) network devices.
1880 *
1881 * We are currently about to change network renaming in udev to completely
1882 * disallow renaming of devices in the same namespace as the kernel uses,
1883 * because we can't solve the problems properly, that arise with swapping names
1884 * of multiple interfaces without races. Means, renaming of eth[0-9]* will only
1885 * be allowed to some other name than eth[0-9]*, for the aforementioned
1886 * reasons.
1887 *
1888 * Make up a "real" name in the driver before you register anything, or add
1889 * some other attributes for userspace to find the device, or use udev to add
1890 * symlinks -- but never rename kernel devices later, it's a complete mess. We
1891 * don't even want to get into that and try to implement the missing pieces in
1892 * the core. We really have other pieces to fix in the driver core mess. :)
a2de48ca 1893 */
6937e8f8 1894int device_rename(struct device *dev, const char *new_name)
a2de48ca 1895{
2ee97caf 1896 char *old_device_name = NULL;
a2de48ca
GKH
1897 int error;
1898
1899 dev = get_device(dev);
1900 if (!dev)
1901 return -EINVAL;
1902
1e0b2cf9 1903 pr_debug("device: '%s': %s: renaming to '%s'\n", dev_name(dev),
2b3a302a 1904 __func__, new_name);
a2de48ca 1905
1fa5ae85 1906 old_device_name = kstrdup(dev_name(dev), GFP_KERNEL);
2ee97caf
CH
1907 if (!old_device_name) {
1908 error = -ENOMEM;
1909 goto out;
a2de48ca 1910 }
a2de48ca 1911
f349cf34 1912 if (dev->class) {
6b6e39a6 1913 error = sysfs_rename_link(&dev->class->p->subsys.kobj,
f349cf34
EB
1914 &dev->kobj, old_device_name, new_name);
1915 if (error)
1916 goto out;
1917 }
39aba963 1918
a2de48ca 1919 error = kobject_rename(&dev->kobj, new_name);
1fa5ae85 1920 if (error)
2ee97caf 1921 goto out;
a2de48ca 1922
2ee97caf 1923out:
a2de48ca
GKH
1924 put_device(dev);
1925
2ee97caf 1926 kfree(old_device_name);
a2de48ca
GKH
1927
1928 return error;
1929}
a2807dbc 1930EXPORT_SYMBOL_GPL(device_rename);
8a82472f
CH
1931
1932static int device_move_class_links(struct device *dev,
1933 struct device *old_parent,
1934 struct device *new_parent)
1935{
f7f3461d 1936 int error = 0;
8a82472f 1937
f7f3461d
GKH
1938 if (old_parent)
1939 sysfs_remove_link(&dev->kobj, "device");
1940 if (new_parent)
1941 error = sysfs_create_link(&dev->kobj, &new_parent->kobj,
1942 "device");
1943 return error;
8a82472f
CH
1944}
1945
1946/**
1947 * device_move - moves a device to a new parent
1948 * @dev: the pointer to the struct device to be moved
c744aeae 1949 * @new_parent: the new parent of the device (can by NULL)
ffa6a705 1950 * @dpm_order: how to reorder the dpm_list
8a82472f 1951 */
ffa6a705
CH
1952int device_move(struct device *dev, struct device *new_parent,
1953 enum dpm_order dpm_order)
8a82472f
CH
1954{
1955 int error;
1956 struct device *old_parent;
c744aeae 1957 struct kobject *new_parent_kobj;
8a82472f
CH
1958
1959 dev = get_device(dev);
1960 if (!dev)
1961 return -EINVAL;
1962
ffa6a705 1963 device_pm_lock();
8a82472f 1964 new_parent = get_device(new_parent);
4a3ad20c 1965 new_parent_kobj = get_device_parent(dev, new_parent);
63b6971a 1966
1e0b2cf9
KS
1967 pr_debug("device: '%s': %s: moving to '%s'\n", dev_name(dev),
1968 __func__, new_parent ? dev_name(new_parent) : "<NULL>");
c744aeae 1969 error = kobject_move(&dev->kobj, new_parent_kobj);
8a82472f 1970 if (error) {
63b6971a 1971 cleanup_glue_dir(dev, new_parent_kobj);
8a82472f
CH
1972 put_device(new_parent);
1973 goto out;
1974 }
1975 old_parent = dev->parent;
1976 dev->parent = new_parent;
1977 if (old_parent)
f791b8c8 1978 klist_remove(&dev->p->knode_parent);
0d358f22 1979 if (new_parent) {
f791b8c8
GKH
1980 klist_add_tail(&dev->p->knode_parent,
1981 &new_parent->p->klist_children);
0d358f22
YL
1982 set_dev_node(dev, dev_to_node(new_parent));
1983 }
1984
bdd4034d
RV
1985 if (dev->class) {
1986 error = device_move_class_links(dev, old_parent, new_parent);
1987 if (error) {
1988 /* We ignore errors on cleanup since we're hosed anyway... */
1989 device_move_class_links(dev, new_parent, old_parent);
1990 if (!kobject_move(&dev->kobj, &old_parent->kobj)) {
1991 if (new_parent)
1992 klist_remove(&dev->p->knode_parent);
1993 dev->parent = old_parent;
1994 if (old_parent) {
1995 klist_add_tail(&dev->p->knode_parent,
1996 &old_parent->p->klist_children);
1997 set_dev_node(dev, dev_to_node(old_parent));
1998 }
0d358f22 1999 }
bdd4034d
RV
2000 cleanup_glue_dir(dev, new_parent_kobj);
2001 put_device(new_parent);
2002 goto out;
8a82472f 2003 }
8a82472f 2004 }
ffa6a705
CH
2005 switch (dpm_order) {
2006 case DPM_ORDER_NONE:
2007 break;
2008 case DPM_ORDER_DEV_AFTER_PARENT:
2009 device_pm_move_after(dev, new_parent);
2010 break;
2011 case DPM_ORDER_PARENT_BEFORE_DEV:
2012 device_pm_move_before(new_parent, dev);
2013 break;
2014 case DPM_ORDER_DEV_LAST:
2015 device_pm_move_last(dev);
2016 break;
2017 }
bdd4034d 2018
8a82472f
CH
2019 put_device(old_parent);
2020out:
ffa6a705 2021 device_pm_unlock();
8a82472f
CH
2022 put_device(dev);
2023 return error;
2024}
8a82472f 2025EXPORT_SYMBOL_GPL(device_move);
37b0c020
GKH
2026
2027/**
2028 * device_shutdown - call ->shutdown() on each device to shutdown.
2029 */
2030void device_shutdown(void)
2031{
6245838f
HD
2032 struct device *dev;
2033
2034 spin_lock(&devices_kset->list_lock);
2035 /*
2036 * Walk the devices list backward, shutting down each in turn.
2037 * Beware that device unplug events may also start pulling
2038 * devices offline, even as the system is shutting down.
2039 */
2040 while (!list_empty(&devices_kset->list)) {
2041 dev = list_entry(devices_kset->list.prev, struct device,
2042 kobj.entry);
d1c6c030
ML
2043
2044 /*
2045 * hold reference count of device's parent to
2046 * prevent it from being freed because parent's
2047 * lock is to be held
2048 */
2049 get_device(dev->parent);
6245838f
HD
2050 get_device(dev);
2051 /*
2052 * Make sure the device is off the kset list, in the
2053 * event that dev->*->shutdown() doesn't remove it.
2054 */
2055 list_del_init(&dev->kobj.entry);
2056 spin_unlock(&devices_kset->list_lock);
fe6b91f4 2057
d1c6c030
ML
2058 /* hold lock to avoid race with probe/release */
2059 if (dev->parent)
2060 device_lock(dev->parent);
2061 device_lock(dev);
2062
fe6b91f4
AS
2063 /* Don't allow any more runtime suspends */
2064 pm_runtime_get_noresume(dev);
2065 pm_runtime_barrier(dev);
37b0c020 2066
37b0c020 2067 if (dev->bus && dev->bus->shutdown) {
0246c4fa
SL
2068 if (initcall_debug)
2069 dev_info(dev, "shutdown\n");
37b0c020
GKH
2070 dev->bus->shutdown(dev);
2071 } else if (dev->driver && dev->driver->shutdown) {
0246c4fa
SL
2072 if (initcall_debug)
2073 dev_info(dev, "shutdown\n");
37b0c020
GKH
2074 dev->driver->shutdown(dev);
2075 }
d1c6c030
ML
2076
2077 device_unlock(dev);
2078 if (dev->parent)
2079 device_unlock(dev->parent);
2080
6245838f 2081 put_device(dev);
d1c6c030 2082 put_device(dev->parent);
6245838f
HD
2083
2084 spin_lock(&devices_kset->list_lock);
37b0c020 2085 }
6245838f 2086 spin_unlock(&devices_kset->list_lock);
401097ea 2087 async_synchronize_full();
37b0c020 2088}
99bcf217
JP
2089
2090/*
2091 * Device logging functions
2092 */
2093
2094#ifdef CONFIG_PRINTK
666f355f
JP
2095static int
2096create_syslog_header(const struct device *dev, char *hdr, size_t hdrlen)
99bcf217 2097{
c4e00daa 2098 const char *subsys;
798efc60 2099 size_t pos = 0;
99bcf217 2100
c4e00daa
KS
2101 if (dev->class)
2102 subsys = dev->class->name;
2103 else if (dev->bus)
2104 subsys = dev->bus->name;
2105 else
798efc60 2106 return 0;
c4e00daa 2107
798efc60 2108 pos += snprintf(hdr + pos, hdrlen - pos, "SUBSYSTEM=%s", subsys);
c4e00daa
KS
2109
2110 /*
2111 * Add device identifier DEVICE=:
2112 * b12:8 block dev_t
2113 * c127:3 char dev_t
2114 * n8 netdev ifindex
2115 * +sound:card0 subsystem:devname
2116 */
2117 if (MAJOR(dev->devt)) {
2118 char c;
2119
2120 if (strcmp(subsys, "block") == 0)
2121 c = 'b';
2122 else
2123 c = 'c';
798efc60
JP
2124 pos++;
2125 pos += snprintf(hdr + pos, hdrlen - pos,
2126 "DEVICE=%c%u:%u",
2127 c, MAJOR(dev->devt), MINOR(dev->devt));
c4e00daa
KS
2128 } else if (strcmp(subsys, "net") == 0) {
2129 struct net_device *net = to_net_dev(dev);
2130
798efc60
JP
2131 pos++;
2132 pos += snprintf(hdr + pos, hdrlen - pos,
2133 "DEVICE=n%u", net->ifindex);
c4e00daa 2134 } else {
798efc60
JP
2135 pos++;
2136 pos += snprintf(hdr + pos, hdrlen - pos,
2137 "DEVICE=+%s:%s", subsys, dev_name(dev));
c4e00daa 2138 }
af7f2158 2139
798efc60
JP
2140 return pos;
2141}
2142EXPORT_SYMBOL(create_syslog_header);
2143
05e4e5b8
JP
2144int dev_vprintk_emit(int level, const struct device *dev,
2145 const char *fmt, va_list args)
2146{
2147 char hdr[128];
2148 size_t hdrlen;
2149
2150 hdrlen = create_syslog_header(dev, hdr, sizeof(hdr));
2151
2152 return vprintk_emit(0, level, hdrlen ? hdr : NULL, hdrlen, fmt, args);
2153}
2154EXPORT_SYMBOL(dev_vprintk_emit);
2155
2156int dev_printk_emit(int level, const struct device *dev, const char *fmt, ...)
2157{
2158 va_list args;
2159 int r;
2160
2161 va_start(args, fmt);
2162
2163 r = dev_vprintk_emit(level, dev, fmt, args);
2164
2165 va_end(args);
2166
2167 return r;
2168}
2169EXPORT_SYMBOL(dev_printk_emit);
2170
798efc60
JP
2171static int __dev_printk(const char *level, const struct device *dev,
2172 struct va_format *vaf)
2173{
798efc60
JP
2174 if (!dev)
2175 return printk("%s(NULL device *): %pV", level, vaf);
2176
666f355f
JP
2177 return dev_printk_emit(level[1] - '0', dev,
2178 "%s %s: %pV",
2179 dev_driver_string(dev), dev_name(dev), vaf);
99bcf217
JP
2180}
2181
2182int dev_printk(const char *level, const struct device *dev,
2183 const char *fmt, ...)
2184{
2185 struct va_format vaf;
2186 va_list args;
2187 int r;
2188
2189 va_start(args, fmt);
2190
2191 vaf.fmt = fmt;
2192 vaf.va = &args;
2193
2194 r = __dev_printk(level, dev, &vaf);
798efc60 2195
99bcf217
JP
2196 va_end(args);
2197
2198 return r;
2199}
2200EXPORT_SYMBOL(dev_printk);
2201
2202#define define_dev_printk_level(func, kern_level) \
2203int func(const struct device *dev, const char *fmt, ...) \
2204{ \
2205 struct va_format vaf; \
2206 va_list args; \
2207 int r; \
2208 \
2209 va_start(args, fmt); \
2210 \
2211 vaf.fmt = fmt; \
2212 vaf.va = &args; \
2213 \
2214 r = __dev_printk(kern_level, dev, &vaf); \
798efc60 2215 \
99bcf217
JP
2216 va_end(args); \
2217 \
2218 return r; \
2219} \
2220EXPORT_SYMBOL(func);
2221
2222define_dev_printk_level(dev_emerg, KERN_EMERG);
2223define_dev_printk_level(dev_alert, KERN_ALERT);
2224define_dev_printk_level(dev_crit, KERN_CRIT);
2225define_dev_printk_level(dev_err, KERN_ERR);
2226define_dev_printk_level(dev_warn, KERN_WARNING);
2227define_dev_printk_level(dev_notice, KERN_NOTICE);
2228define_dev_printk_level(_dev_info, KERN_INFO);
2229
2230#endif
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