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1 /*
2 * drivers/pci/pci-driver.c
3 *
4 * (C) Copyright 2002-2004, 2007 Greg Kroah-Hartman <greg@kroah.com>
5 * (C) Copyright 2007 Novell Inc.
6 *
7 * Released under the GPL v2 only.
8 *
9 */
10
11 #include <linux/pci.h>
12 #include <linux/module.h>
13 #include <linux/init.h>
14 #include <linux/device.h>
15 #include <linux/mempolicy.h>
16 #include <linux/string.h>
17 #include <linux/slab.h>
18 #include <linux/sched.h>
19 #include <linux/cpu.h>
20 #include <linux/pm_runtime.h>
21 #include <linux/suspend.h>
22 #include <linux/kexec.h>
23 #include "pci.h"
24
25 struct pci_dynid {
26 struct list_head node;
27 struct pci_device_id id;
28 };
29
30 /**
31 * pci_add_dynid - add a new PCI device ID to this driver and re-probe devices
32 * @drv: target pci driver
33 * @vendor: PCI vendor ID
34 * @device: PCI device ID
35 * @subvendor: PCI subvendor ID
36 * @subdevice: PCI subdevice ID
37 * @class: PCI class
38 * @class_mask: PCI class mask
39 * @driver_data: private driver data
40 *
41 * Adds a new dynamic pci device ID to this driver and causes the
42 * driver to probe for all devices again. @drv must have been
43 * registered prior to calling this function.
44 *
45 * CONTEXT:
46 * Does GFP_KERNEL allocation.
47 *
48 * RETURNS:
49 * 0 on success, -errno on failure.
50 */
51 int pci_add_dynid(struct pci_driver *drv,
52 unsigned int vendor, unsigned int device,
53 unsigned int subvendor, unsigned int subdevice,
54 unsigned int class, unsigned int class_mask,
55 unsigned long driver_data)
56 {
57 struct pci_dynid *dynid;
58
59 dynid = kzalloc(sizeof(*dynid), GFP_KERNEL);
60 if (!dynid)
61 return -ENOMEM;
62
63 dynid->id.vendor = vendor;
64 dynid->id.device = device;
65 dynid->id.subvendor = subvendor;
66 dynid->id.subdevice = subdevice;
67 dynid->id.class = class;
68 dynid->id.class_mask = class_mask;
69 dynid->id.driver_data = driver_data;
70
71 spin_lock(&drv->dynids.lock);
72 list_add_tail(&dynid->node, &drv->dynids.list);
73 spin_unlock(&drv->dynids.lock);
74
75 return driver_attach(&drv->driver);
76 }
77 EXPORT_SYMBOL_GPL(pci_add_dynid);
78
79 static void pci_free_dynids(struct pci_driver *drv)
80 {
81 struct pci_dynid *dynid, *n;
82
83 spin_lock(&drv->dynids.lock);
84 list_for_each_entry_safe(dynid, n, &drv->dynids.list, node) {
85 list_del(&dynid->node);
86 kfree(dynid);
87 }
88 spin_unlock(&drv->dynids.lock);
89 }
90
91 /**
92 * store_new_id - sysfs frontend to pci_add_dynid()
93 * @driver: target device driver
94 * @buf: buffer for scanning device ID data
95 * @count: input size
96 *
97 * Allow PCI IDs to be added to an existing driver via sysfs.
98 */
99 static ssize_t new_id_store(struct device_driver *driver, const char *buf,
100 size_t count)
101 {
102 struct pci_driver *pdrv = to_pci_driver(driver);
103 const struct pci_device_id *ids = pdrv->id_table;
104 __u32 vendor, device, subvendor = PCI_ANY_ID,
105 subdevice = PCI_ANY_ID, class = 0, class_mask = 0;
106 unsigned long driver_data = 0;
107 int fields = 0;
108 int retval = 0;
109
110 fields = sscanf(buf, "%x %x %x %x %x %x %lx",
111 &vendor, &device, &subvendor, &subdevice,
112 &class, &class_mask, &driver_data);
113 if (fields < 2)
114 return -EINVAL;
115
116 if (fields != 7) {
117 struct pci_dev *pdev = kzalloc(sizeof(*pdev), GFP_KERNEL);
118 if (!pdev)
119 return -ENOMEM;
120
121 pdev->vendor = vendor;
122 pdev->device = device;
123 pdev->subsystem_vendor = subvendor;
124 pdev->subsystem_device = subdevice;
125 pdev->class = class;
126
127 if (pci_match_id(pdrv->id_table, pdev))
128 retval = -EEXIST;
129
130 kfree(pdev);
131
132 if (retval)
133 return retval;
134 }
135
136 /* Only accept driver_data values that match an existing id_table
137 entry */
138 if (ids) {
139 retval = -EINVAL;
140 while (ids->vendor || ids->subvendor || ids->class_mask) {
141 if (driver_data == ids->driver_data) {
142 retval = 0;
143 break;
144 }
145 ids++;
146 }
147 if (retval) /* No match */
148 return retval;
149 }
150
151 retval = pci_add_dynid(pdrv, vendor, device, subvendor, subdevice,
152 class, class_mask, driver_data);
153 if (retval)
154 return retval;
155 return count;
156 }
157 static DRIVER_ATTR_WO(new_id);
158
159 /**
160 * store_remove_id - remove a PCI device ID from this driver
161 * @driver: target device driver
162 * @buf: buffer for scanning device ID data
163 * @count: input size
164 *
165 * Removes a dynamic pci device ID to this driver.
166 */
167 static ssize_t remove_id_store(struct device_driver *driver, const char *buf,
168 size_t count)
169 {
170 struct pci_dynid *dynid, *n;
171 struct pci_driver *pdrv = to_pci_driver(driver);
172 __u32 vendor, device, subvendor = PCI_ANY_ID,
173 subdevice = PCI_ANY_ID, class = 0, class_mask = 0;
174 int fields = 0;
175 size_t retval = -ENODEV;
176
177 fields = sscanf(buf, "%x %x %x %x %x %x",
178 &vendor, &device, &subvendor, &subdevice,
179 &class, &class_mask);
180 if (fields < 2)
181 return -EINVAL;
182
183 spin_lock(&pdrv->dynids.lock);
184 list_for_each_entry_safe(dynid, n, &pdrv->dynids.list, node) {
185 struct pci_device_id *id = &dynid->id;
186 if ((id->vendor == vendor) &&
187 (id->device == device) &&
188 (subvendor == PCI_ANY_ID || id->subvendor == subvendor) &&
189 (subdevice == PCI_ANY_ID || id->subdevice == subdevice) &&
190 !((id->class ^ class) & class_mask)) {
191 list_del(&dynid->node);
192 kfree(dynid);
193 retval = count;
194 break;
195 }
196 }
197 spin_unlock(&pdrv->dynids.lock);
198
199 return retval;
200 }
201 static DRIVER_ATTR_WO(remove_id);
202
203 static struct attribute *pci_drv_attrs[] = {
204 &driver_attr_new_id.attr,
205 &driver_attr_remove_id.attr,
206 NULL,
207 };
208 ATTRIBUTE_GROUPS(pci_drv);
209
210 /**
211 * pci_match_id - See if a pci device matches a given pci_id table
212 * @ids: array of PCI device id structures to search in
213 * @dev: the PCI device structure to match against.
214 *
215 * Used by a driver to check whether a PCI device present in the
216 * system is in its list of supported devices. Returns the matching
217 * pci_device_id structure or %NULL if there is no match.
218 *
219 * Deprecated, don't use this as it will not catch any dynamic ids
220 * that a driver might want to check for.
221 */
222 const struct pci_device_id *pci_match_id(const struct pci_device_id *ids,
223 struct pci_dev *dev)
224 {
225 if (ids) {
226 while (ids->vendor || ids->subvendor || ids->class_mask) {
227 if (pci_match_one_device(ids, dev))
228 return ids;
229 ids++;
230 }
231 }
232 return NULL;
233 }
234 EXPORT_SYMBOL(pci_match_id);
235
236 static const struct pci_device_id pci_device_id_any = {
237 .vendor = PCI_ANY_ID,
238 .device = PCI_ANY_ID,
239 .subvendor = PCI_ANY_ID,
240 .subdevice = PCI_ANY_ID,
241 };
242
243 /**
244 * pci_match_device - Tell if a PCI device structure has a matching PCI device id structure
245 * @drv: the PCI driver to match against
246 * @dev: the PCI device structure to match against
247 *
248 * Used by a driver to check whether a PCI device present in the
249 * system is in its list of supported devices. Returns the matching
250 * pci_device_id structure or %NULL if there is no match.
251 */
252 static const struct pci_device_id *pci_match_device(struct pci_driver *drv,
253 struct pci_dev *dev)
254 {
255 struct pci_dynid *dynid;
256 const struct pci_device_id *found_id = NULL;
257
258 /* When driver_override is set, only bind to the matching driver */
259 if (dev->driver_override && strcmp(dev->driver_override, drv->name))
260 return NULL;
261
262 /* Look at the dynamic ids first, before the static ones */
263 spin_lock(&drv->dynids.lock);
264 list_for_each_entry(dynid, &drv->dynids.list, node) {
265 if (pci_match_one_device(&dynid->id, dev)) {
266 found_id = &dynid->id;
267 break;
268 }
269 }
270 spin_unlock(&drv->dynids.lock);
271
272 if (!found_id)
273 found_id = pci_match_id(drv->id_table, dev);
274
275 /* driver_override will always match, send a dummy id */
276 if (!found_id && dev->driver_override)
277 found_id = &pci_device_id_any;
278
279 return found_id;
280 }
281
282 struct drv_dev_and_id {
283 struct pci_driver *drv;
284 struct pci_dev *dev;
285 const struct pci_device_id *id;
286 };
287
288 static long local_pci_probe(void *_ddi)
289 {
290 struct drv_dev_and_id *ddi = _ddi;
291 struct pci_dev *pci_dev = ddi->dev;
292 struct pci_driver *pci_drv = ddi->drv;
293 struct device *dev = &pci_dev->dev;
294 int rc;
295
296 /*
297 * Unbound PCI devices are always put in D0, regardless of
298 * runtime PM status. During probe, the device is set to
299 * active and the usage count is incremented. If the driver
300 * supports runtime PM, it should call pm_runtime_put_noidle(),
301 * or any other runtime PM helper function decrementing the usage
302 * count, in its probe routine and pm_runtime_get_noresume() in
303 * its remove routine.
304 */
305 pm_runtime_get_sync(dev);
306 pci_dev->driver = pci_drv;
307 rc = pci_drv->probe(pci_dev, ddi->id);
308 if (!rc)
309 return rc;
310 if (rc < 0) {
311 pci_dev->driver = NULL;
312 pm_runtime_put_sync(dev);
313 return rc;
314 }
315 /*
316 * Probe function should return < 0 for failure, 0 for success
317 * Treat values > 0 as success, but warn.
318 */
319 dev_warn(dev, "Driver probe function unexpectedly returned %d\n", rc);
320 return 0;
321 }
322
323 static bool pci_physfn_is_probed(struct pci_dev *dev)
324 {
325 #ifdef CONFIG_PCI_IOV
326 return dev->is_virtfn && dev->physfn->is_probed;
327 #else
328 return false;
329 #endif
330 }
331
332 static int pci_call_probe(struct pci_driver *drv, struct pci_dev *dev,
333 const struct pci_device_id *id)
334 {
335 int error, node, cpu;
336 struct drv_dev_and_id ddi = { drv, dev, id };
337
338 /*
339 * Execute driver initialization on node where the device is
340 * attached. This way the driver likely allocates its local memory
341 * on the right node.
342 */
343 node = dev_to_node(&dev->dev);
344 dev->is_probed = 1;
345
346 cpu_hotplug_disable();
347
348 /*
349 * Prevent nesting work_on_cpu() for the case where a Virtual Function
350 * device is probed from work_on_cpu() of the Physical device.
351 */
352 if (node < 0 || node >= MAX_NUMNODES || !node_online(node) ||
353 pci_physfn_is_probed(dev))
354 cpu = nr_cpu_ids;
355 else
356 cpu = cpumask_any_and(cpumask_of_node(node), cpu_online_mask);
357
358 if (cpu < nr_cpu_ids)
359 error = work_on_cpu(cpu, local_pci_probe, &ddi);
360 else
361 error = local_pci_probe(&ddi);
362
363 dev->is_probed = 0;
364 cpu_hotplug_enable();
365 return error;
366 }
367
368 /**
369 * __pci_device_probe - check if a driver wants to claim a specific PCI device
370 * @drv: driver to call to check if it wants the PCI device
371 * @pci_dev: PCI device being probed
372 *
373 * returns 0 on success, else error.
374 * side-effect: pci_dev->driver is set to drv when drv claims pci_dev.
375 */
376 static int __pci_device_probe(struct pci_driver *drv, struct pci_dev *pci_dev)
377 {
378 const struct pci_device_id *id;
379 int error = 0;
380
381 if (!pci_dev->driver && drv->probe) {
382 error = -ENODEV;
383
384 id = pci_match_device(drv, pci_dev);
385 if (id)
386 error = pci_call_probe(drv, pci_dev, id);
387 }
388 return error;
389 }
390
391 int __weak pcibios_alloc_irq(struct pci_dev *dev)
392 {
393 return 0;
394 }
395
396 void __weak pcibios_free_irq(struct pci_dev *dev)
397 {
398 }
399
400 #ifdef CONFIG_PCI_IOV
401 static inline bool pci_device_can_probe(struct pci_dev *pdev)
402 {
403 return (!pdev->is_virtfn || pdev->physfn->sriov->drivers_autoprobe);
404 }
405 #else
406 static inline bool pci_device_can_probe(struct pci_dev *pdev)
407 {
408 return true;
409 }
410 #endif
411
412 static int pci_device_probe(struct device *dev)
413 {
414 int error;
415 struct pci_dev *pci_dev = to_pci_dev(dev);
416 struct pci_driver *drv = to_pci_driver(dev->driver);
417
418 pci_assign_irq(pci_dev);
419
420 error = pcibios_alloc_irq(pci_dev);
421 if (error < 0)
422 return error;
423
424 pci_dev_get(pci_dev);
425 if (pci_device_can_probe(pci_dev)) {
426 error = __pci_device_probe(drv, pci_dev);
427 if (error) {
428 pcibios_free_irq(pci_dev);
429 pci_dev_put(pci_dev);
430 }
431 }
432
433 return error;
434 }
435
436 static int pci_device_remove(struct device *dev)
437 {
438 struct pci_dev *pci_dev = to_pci_dev(dev);
439 struct pci_driver *drv = pci_dev->driver;
440
441 if (drv) {
442 if (drv->remove) {
443 pm_runtime_get_sync(dev);
444 drv->remove(pci_dev);
445 pm_runtime_put_noidle(dev);
446 }
447 pcibios_free_irq(pci_dev);
448 pci_dev->driver = NULL;
449 }
450
451 /* Undo the runtime PM settings in local_pci_probe() */
452 pm_runtime_put_sync(dev);
453
454 /*
455 * If the device is still on, set the power state as "unknown",
456 * since it might change by the next time we load the driver.
457 */
458 if (pci_dev->current_state == PCI_D0)
459 pci_dev->current_state = PCI_UNKNOWN;
460
461 /*
462 * We would love to complain here if pci_dev->is_enabled is set, that
463 * the driver should have called pci_disable_device(), but the
464 * unfortunate fact is there are too many odd BIOS and bridge setups
465 * that don't like drivers doing that all of the time.
466 * Oh well, we can dream of sane hardware when we sleep, no matter how
467 * horrible the crap we have to deal with is when we are awake...
468 */
469
470 pci_dev_put(pci_dev);
471 return 0;
472 }
473
474 static void pci_device_shutdown(struct device *dev)
475 {
476 struct pci_dev *pci_dev = to_pci_dev(dev);
477 struct pci_driver *drv = pci_dev->driver;
478
479 pm_runtime_resume(dev);
480
481 if (drv && drv->shutdown)
482 drv->shutdown(pci_dev);
483
484 /*
485 * If this is a kexec reboot, turn off Bus Master bit on the
486 * device to tell it to not continue to do DMA. Don't touch
487 * devices in D3cold or unknown states.
488 * If it is not a kexec reboot, firmware will hit the PCI
489 * devices with big hammer and stop their DMA any way.
490 */
491 if (kexec_in_progress && (pci_dev->current_state <= PCI_D3hot))
492 pci_clear_master(pci_dev);
493 }
494
495 #ifdef CONFIG_PM
496
497 /* Auxiliary functions used for system resume and run-time resume. */
498
499 /**
500 * pci_restore_standard_config - restore standard config registers of PCI device
501 * @pci_dev: PCI device to handle
502 */
503 static int pci_restore_standard_config(struct pci_dev *pci_dev)
504 {
505 pci_update_current_state(pci_dev, PCI_UNKNOWN);
506
507 if (pci_dev->current_state != PCI_D0) {
508 int error = pci_set_power_state(pci_dev, PCI_D0);
509 if (error)
510 return error;
511 }
512
513 pci_restore_state(pci_dev);
514 pci_pme_restore(pci_dev);
515 return 0;
516 }
517
518 #endif
519
520 #ifdef CONFIG_PM_SLEEP
521
522 static void pci_pm_default_resume_early(struct pci_dev *pci_dev)
523 {
524 pci_power_up(pci_dev);
525 pci_restore_state(pci_dev);
526 pci_pme_restore(pci_dev);
527 pci_fixup_device(pci_fixup_resume_early, pci_dev);
528 }
529
530 /*
531 * Default "suspend" method for devices that have no driver provided suspend,
532 * or not even a driver at all (second part).
533 */
534 static void pci_pm_set_unknown_state(struct pci_dev *pci_dev)
535 {
536 /*
537 * mark its power state as "unknown", since we don't know if
538 * e.g. the BIOS will change its device state when we suspend.
539 */
540 if (pci_dev->current_state == PCI_D0)
541 pci_dev->current_state = PCI_UNKNOWN;
542 }
543
544 /*
545 * Default "resume" method for devices that have no driver provided resume,
546 * or not even a driver at all (second part).
547 */
548 static int pci_pm_reenable_device(struct pci_dev *pci_dev)
549 {
550 int retval;
551
552 /* if the device was enabled before suspend, reenable */
553 retval = pci_reenable_device(pci_dev);
554 /*
555 * if the device was busmaster before the suspend, make it busmaster
556 * again
557 */
558 if (pci_dev->is_busmaster)
559 pci_set_master(pci_dev);
560
561 return retval;
562 }
563
564 static int pci_legacy_suspend(struct device *dev, pm_message_t state)
565 {
566 struct pci_dev *pci_dev = to_pci_dev(dev);
567 struct pci_driver *drv = pci_dev->driver;
568
569 if (drv && drv->suspend) {
570 pci_power_t prev = pci_dev->current_state;
571 int error;
572
573 error = drv->suspend(pci_dev, state);
574 suspend_report_result(drv->suspend, error);
575 if (error)
576 return error;
577
578 if (!pci_dev->state_saved && pci_dev->current_state != PCI_D0
579 && pci_dev->current_state != PCI_UNKNOWN) {
580 WARN_ONCE(pci_dev->current_state != prev,
581 "PCI PM: Device state not saved by %pF\n",
582 drv->suspend);
583 }
584 }
585
586 pci_fixup_device(pci_fixup_suspend, pci_dev);
587
588 return 0;
589 }
590
591 static int pci_legacy_suspend_late(struct device *dev, pm_message_t state)
592 {
593 struct pci_dev *pci_dev = to_pci_dev(dev);
594 struct pci_driver *drv = pci_dev->driver;
595
596 if (drv && drv->suspend_late) {
597 pci_power_t prev = pci_dev->current_state;
598 int error;
599
600 error = drv->suspend_late(pci_dev, state);
601 suspend_report_result(drv->suspend_late, error);
602 if (error)
603 return error;
604
605 if (!pci_dev->state_saved && pci_dev->current_state != PCI_D0
606 && pci_dev->current_state != PCI_UNKNOWN) {
607 WARN_ONCE(pci_dev->current_state != prev,
608 "PCI PM: Device state not saved by %pF\n",
609 drv->suspend_late);
610 goto Fixup;
611 }
612 }
613
614 if (!pci_dev->state_saved)
615 pci_save_state(pci_dev);
616
617 pci_pm_set_unknown_state(pci_dev);
618
619 Fixup:
620 pci_fixup_device(pci_fixup_suspend_late, pci_dev);
621
622 return 0;
623 }
624
625 static int pci_legacy_resume_early(struct device *dev)
626 {
627 struct pci_dev *pci_dev = to_pci_dev(dev);
628 struct pci_driver *drv = pci_dev->driver;
629
630 return drv && drv->resume_early ?
631 drv->resume_early(pci_dev) : 0;
632 }
633
634 static int pci_legacy_resume(struct device *dev)
635 {
636 struct pci_dev *pci_dev = to_pci_dev(dev);
637 struct pci_driver *drv = pci_dev->driver;
638
639 pci_fixup_device(pci_fixup_resume, pci_dev);
640
641 return drv && drv->resume ?
642 drv->resume(pci_dev) : pci_pm_reenable_device(pci_dev);
643 }
644
645 /* Auxiliary functions used by the new power management framework */
646
647 static void pci_pm_default_resume(struct pci_dev *pci_dev)
648 {
649 pci_fixup_device(pci_fixup_resume, pci_dev);
650 pci_enable_wake(pci_dev, PCI_D0, false);
651 }
652
653 static void pci_pm_default_suspend(struct pci_dev *pci_dev)
654 {
655 /* Disable non-bridge devices without PM support */
656 if (!pci_has_subordinate(pci_dev))
657 pci_disable_enabled_device(pci_dev);
658 }
659
660 static bool pci_has_legacy_pm_support(struct pci_dev *pci_dev)
661 {
662 struct pci_driver *drv = pci_dev->driver;
663 bool ret = drv && (drv->suspend || drv->suspend_late || drv->resume
664 || drv->resume_early);
665
666 /*
667 * Legacy PM support is used by default, so warn if the new framework is
668 * supported as well. Drivers are supposed to support either the
669 * former, or the latter, but not both at the same time.
670 */
671 WARN(ret && drv->driver.pm, "driver %s device %04x:%04x\n",
672 drv->name, pci_dev->vendor, pci_dev->device);
673
674 return ret;
675 }
676
677 /* New power management framework */
678
679 static int pci_pm_prepare(struct device *dev)
680 {
681 struct device_driver *drv = dev->driver;
682
683 if (drv && drv->pm && drv->pm->prepare) {
684 int error = drv->pm->prepare(dev);
685 if (error < 0)
686 return error;
687
688 if (!error && dev_pm_test_driver_flags(dev, DPM_FLAG_SMART_PREPARE))
689 return 0;
690 }
691 return pci_dev_keep_suspended(to_pci_dev(dev));
692 }
693
694 static void pci_pm_complete(struct device *dev)
695 {
696 struct pci_dev *pci_dev = to_pci_dev(dev);
697
698 pci_dev_complete_resume(pci_dev);
699 pm_generic_complete(dev);
700
701 /* Resume device if platform firmware has put it in reset-power-on */
702 if (pm_runtime_suspended(dev) && pm_resume_via_firmware()) {
703 pci_power_t pre_sleep_state = pci_dev->current_state;
704
705 pci_update_current_state(pci_dev, pci_dev->current_state);
706 if (pci_dev->current_state < pre_sleep_state)
707 pm_request_resume(dev);
708 }
709 }
710
711 #else /* !CONFIG_PM_SLEEP */
712
713 #define pci_pm_prepare NULL
714 #define pci_pm_complete NULL
715
716 #endif /* !CONFIG_PM_SLEEP */
717
718 #ifdef CONFIG_SUSPEND
719
720 static int pci_pm_suspend(struct device *dev)
721 {
722 struct pci_dev *pci_dev = to_pci_dev(dev);
723 const struct dev_pm_ops *pm = dev->driver ? dev->driver->pm : NULL;
724
725 pci_dev->skip_bus_pm = false;
726
727 if (pci_has_legacy_pm_support(pci_dev))
728 return pci_legacy_suspend(dev, PMSG_SUSPEND);
729
730 if (!pm) {
731 pci_pm_default_suspend(pci_dev);
732 return 0;
733 }
734
735 /*
736 * PCI devices suspended at run time may need to be resumed at this
737 * point, because in general it may be necessary to reconfigure them for
738 * system suspend. Namely, if the device is expected to wake up the
739 * system from the sleep state, it may have to be reconfigured for this
740 * purpose, or if the device is not expected to wake up the system from
741 * the sleep state, it should be prevented from signaling wakeup events
742 * going forward.
743 *
744 * Also if the driver of the device does not indicate that its system
745 * suspend callbacks can cope with runtime-suspended devices, it is
746 * better to resume the device from runtime suspend here.
747 */
748 if (!dev_pm_test_driver_flags(dev, DPM_FLAG_SMART_SUSPEND) ||
749 !pci_dev_keep_suspended(pci_dev)) {
750 pm_runtime_resume(dev);
751 pci_dev->state_saved = false;
752 }
753
754 if (pm->suspend) {
755 pci_power_t prev = pci_dev->current_state;
756 int error;
757
758 error = pm->suspend(dev);
759 suspend_report_result(pm->suspend, error);
760 if (error)
761 return error;
762
763 if (!pci_dev->state_saved && pci_dev->current_state != PCI_D0
764 && pci_dev->current_state != PCI_UNKNOWN) {
765 WARN_ONCE(pci_dev->current_state != prev,
766 "PCI PM: State of device not saved by %pF\n",
767 pm->suspend);
768 }
769 }
770
771 return 0;
772 }
773
774 static int pci_pm_suspend_late(struct device *dev)
775 {
776 if (dev_pm_smart_suspend_and_suspended(dev))
777 return 0;
778
779 pci_fixup_device(pci_fixup_suspend, to_pci_dev(dev));
780
781 return pm_generic_suspend_late(dev);
782 }
783
784 static int pci_pm_suspend_noirq(struct device *dev)
785 {
786 struct pci_dev *pci_dev = to_pci_dev(dev);
787 const struct dev_pm_ops *pm = dev->driver ? dev->driver->pm : NULL;
788
789 if (dev_pm_smart_suspend_and_suspended(dev)) {
790 dev->power.may_skip_resume = true;
791 return 0;
792 }
793
794 if (pci_has_legacy_pm_support(pci_dev))
795 return pci_legacy_suspend_late(dev, PMSG_SUSPEND);
796
797 if (!pm) {
798 pci_save_state(pci_dev);
799 goto Fixup;
800 }
801
802 if (pm->suspend_noirq) {
803 pci_power_t prev = pci_dev->current_state;
804 int error;
805
806 error = pm->suspend_noirq(dev);
807 suspend_report_result(pm->suspend_noirq, error);
808 if (error)
809 return error;
810
811 if (!pci_dev->state_saved && pci_dev->current_state != PCI_D0
812 && pci_dev->current_state != PCI_UNKNOWN) {
813 WARN_ONCE(pci_dev->current_state != prev,
814 "PCI PM: State of device not saved by %pF\n",
815 pm->suspend_noirq);
816 goto Fixup;
817 }
818 }
819
820 if (pci_dev->skip_bus_pm) {
821 /*
822 * The function is running for the second time in a row without
823 * going through full resume, which is possible only during
824 * suspend-to-idle in a spurious wakeup case. Moreover, the
825 * device was originally left in D0, so its power state should
826 * not be changed here and the device register values saved
827 * originally should be restored on resume again.
828 */
829 pci_dev->state_saved = true;
830 } else if (pci_dev->state_saved) {
831 if (pci_dev->current_state == PCI_D0)
832 pci_dev->skip_bus_pm = true;
833 } else {
834 pci_save_state(pci_dev);
835 if (pci_power_manageable(pci_dev))
836 pci_prepare_to_sleep(pci_dev);
837 }
838
839 dev_dbg(dev, "PCI PM: Suspend power state: %s\n",
840 pci_power_name(pci_dev->current_state));
841
842 pci_pm_set_unknown_state(pci_dev);
843
844 /*
845 * Some BIOSes from ASUS have a bug: If a USB EHCI host controller's
846 * PCI COMMAND register isn't 0, the BIOS assumes that the controller
847 * hasn't been quiesced and tries to turn it off. If the controller
848 * is already in D3, this can hang or cause memory corruption.
849 *
850 * Since the value of the COMMAND register doesn't matter once the
851 * device has been suspended, we can safely set it to 0 here.
852 */
853 if (pci_dev->class == PCI_CLASS_SERIAL_USB_EHCI)
854 pci_write_config_word(pci_dev, PCI_COMMAND, 0);
855
856 Fixup:
857 pci_fixup_device(pci_fixup_suspend_late, pci_dev);
858
859 /*
860 * If the target system sleep state is suspend-to-idle, it is sufficient
861 * to check whether or not the device's wakeup settings are good for
862 * runtime PM. Otherwise, the pm_resume_via_firmware() check will cause
863 * pci_pm_complete() to take care of fixing up the device's state
864 * anyway, if need be.
865 */
866 dev->power.may_skip_resume = device_may_wakeup(dev) ||
867 !device_can_wakeup(dev);
868
869 return 0;
870 }
871
872 static int pci_pm_resume_noirq(struct device *dev)
873 {
874 struct pci_dev *pci_dev = to_pci_dev(dev);
875 struct device_driver *drv = dev->driver;
876 int error = 0;
877
878 if (dev_pm_may_skip_resume(dev))
879 return 0;
880
881 /*
882 * Devices with DPM_FLAG_SMART_SUSPEND may be left in runtime suspend
883 * during system suspend, so update their runtime PM status to "active"
884 * as they are going to be put into D0 shortly.
885 */
886 if (dev_pm_smart_suspend_and_suspended(dev))
887 pm_runtime_set_active(dev);
888
889 pci_pm_default_resume_early(pci_dev);
890
891 if (pci_has_legacy_pm_support(pci_dev))
892 return pci_legacy_resume_early(dev);
893
894 if (drv && drv->pm && drv->pm->resume_noirq)
895 error = drv->pm->resume_noirq(dev);
896
897 return error;
898 }
899
900 static int pci_pm_resume(struct device *dev)
901 {
902 struct pci_dev *pci_dev = to_pci_dev(dev);
903 const struct dev_pm_ops *pm = dev->driver ? dev->driver->pm : NULL;
904 int error = 0;
905
906 /*
907 * This is necessary for the suspend error path in which resume is
908 * called without restoring the standard config registers of the device.
909 */
910 if (pci_dev->state_saved)
911 pci_restore_standard_config(pci_dev);
912
913 if (pci_has_legacy_pm_support(pci_dev))
914 return pci_legacy_resume(dev);
915
916 pci_pm_default_resume(pci_dev);
917
918 if (pm) {
919 if (pm->resume)
920 error = pm->resume(dev);
921 } else {
922 pci_pm_reenable_device(pci_dev);
923 }
924
925 return error;
926 }
927
928 #else /* !CONFIG_SUSPEND */
929
930 #define pci_pm_suspend NULL
931 #define pci_pm_suspend_late NULL
932 #define pci_pm_suspend_noirq NULL
933 #define pci_pm_resume NULL
934 #define pci_pm_resume_noirq NULL
935
936 #endif /* !CONFIG_SUSPEND */
937
938 #ifdef CONFIG_HIBERNATE_CALLBACKS
939
940
941 /*
942 * pcibios_pm_ops - provide arch-specific hooks when a PCI device is doing
943 * a hibernate transition
944 */
945 struct dev_pm_ops __weak pcibios_pm_ops;
946
947 static int pci_pm_freeze(struct device *dev)
948 {
949 struct pci_dev *pci_dev = to_pci_dev(dev);
950 const struct dev_pm_ops *pm = dev->driver ? dev->driver->pm : NULL;
951
952 if (pci_has_legacy_pm_support(pci_dev))
953 return pci_legacy_suspend(dev, PMSG_FREEZE);
954
955 if (!pm) {
956 pci_pm_default_suspend(pci_dev);
957 return 0;
958 }
959
960 /*
961 * This used to be done in pci_pm_prepare() for all devices and some
962 * drivers may depend on it, so do it here. Ideally, runtime-suspended
963 * devices should not be touched during freeze/thaw transitions,
964 * however.
965 */
966 if (!dev_pm_smart_suspend_and_suspended(dev)) {
967 pm_runtime_resume(dev);
968 pci_dev->state_saved = false;
969 }
970
971 if (pm->freeze) {
972 int error;
973
974 error = pm->freeze(dev);
975 suspend_report_result(pm->freeze, error);
976 if (error)
977 return error;
978 }
979
980 return 0;
981 }
982
983 static int pci_pm_freeze_late(struct device *dev)
984 {
985 if (dev_pm_smart_suspend_and_suspended(dev))
986 return 0;
987
988 return pm_generic_freeze_late(dev);;
989 }
990
991 static int pci_pm_freeze_noirq(struct device *dev)
992 {
993 struct pci_dev *pci_dev = to_pci_dev(dev);
994 struct device_driver *drv = dev->driver;
995
996 if (dev_pm_smart_suspend_and_suspended(dev))
997 return 0;
998
999 if (pci_has_legacy_pm_support(pci_dev))
1000 return pci_legacy_suspend_late(dev, PMSG_FREEZE);
1001
1002 if (drv && drv->pm && drv->pm->freeze_noirq) {
1003 int error;
1004
1005 error = drv->pm->freeze_noirq(dev);
1006 suspend_report_result(drv->pm->freeze_noirq, error);
1007 if (error)
1008 return error;
1009 }
1010
1011 if (!pci_dev->state_saved)
1012 pci_save_state(pci_dev);
1013
1014 pci_pm_set_unknown_state(pci_dev);
1015
1016 if (pcibios_pm_ops.freeze_noirq)
1017 return pcibios_pm_ops.freeze_noirq(dev);
1018
1019 return 0;
1020 }
1021
1022 static int pci_pm_thaw_noirq(struct device *dev)
1023 {
1024 struct pci_dev *pci_dev = to_pci_dev(dev);
1025 struct device_driver *drv = dev->driver;
1026 int error = 0;
1027
1028 /*
1029 * If the device is in runtime suspend, the code below may not work
1030 * correctly with it, so skip that code and make the PM core skip all of
1031 * the subsequent "thaw" callbacks for the device.
1032 */
1033 if (dev_pm_smart_suspend_and_suspended(dev)) {
1034 dev_pm_skip_next_resume_phases(dev);
1035 return 0;
1036 }
1037
1038 if (pcibios_pm_ops.thaw_noirq) {
1039 error = pcibios_pm_ops.thaw_noirq(dev);
1040 if (error)
1041 return error;
1042 }
1043
1044 if (pci_has_legacy_pm_support(pci_dev))
1045 return pci_legacy_resume_early(dev);
1046
1047 /*
1048 * pci_restore_state() requires the device to be in D0 (because of MSI
1049 * restoration among other things), so force it into D0 in case the
1050 * driver's "freeze" callbacks put it into a low-power state directly.
1051 */
1052 pci_set_power_state(pci_dev, PCI_D0);
1053 pci_restore_state(pci_dev);
1054
1055 if (drv && drv->pm && drv->pm->thaw_noirq)
1056 error = drv->pm->thaw_noirq(dev);
1057
1058 return error;
1059 }
1060
1061 static int pci_pm_thaw(struct device *dev)
1062 {
1063 struct pci_dev *pci_dev = to_pci_dev(dev);
1064 const struct dev_pm_ops *pm = dev->driver ? dev->driver->pm : NULL;
1065 int error = 0;
1066
1067 if (pci_has_legacy_pm_support(pci_dev))
1068 return pci_legacy_resume(dev);
1069
1070 if (pm) {
1071 if (pm->thaw)
1072 error = pm->thaw(dev);
1073 } else {
1074 pci_pm_reenable_device(pci_dev);
1075 }
1076
1077 pci_dev->state_saved = false;
1078
1079 return error;
1080 }
1081
1082 static int pci_pm_poweroff(struct device *dev)
1083 {
1084 struct pci_dev *pci_dev = to_pci_dev(dev);
1085 const struct dev_pm_ops *pm = dev->driver ? dev->driver->pm : NULL;
1086
1087 if (pci_has_legacy_pm_support(pci_dev))
1088 return pci_legacy_suspend(dev, PMSG_HIBERNATE);
1089
1090 if (!pm) {
1091 pci_pm_default_suspend(pci_dev);
1092 return 0;
1093 }
1094
1095 /* The reason to do that is the same as in pci_pm_suspend(). */
1096 if (!dev_pm_test_driver_flags(dev, DPM_FLAG_SMART_SUSPEND) ||
1097 !pci_dev_keep_suspended(pci_dev))
1098 pm_runtime_resume(dev);
1099
1100 pci_dev->state_saved = false;
1101 if (pm->poweroff) {
1102 int error;
1103
1104 error = pm->poweroff(dev);
1105 suspend_report_result(pm->poweroff, error);
1106 if (error)
1107 return error;
1108 }
1109
1110 return 0;
1111 }
1112
1113 static int pci_pm_poweroff_late(struct device *dev)
1114 {
1115 if (dev_pm_smart_suspend_and_suspended(dev))
1116 return 0;
1117
1118 pci_fixup_device(pci_fixup_suspend, to_pci_dev(dev));
1119
1120 return pm_generic_poweroff_late(dev);
1121 }
1122
1123 static int pci_pm_poweroff_noirq(struct device *dev)
1124 {
1125 struct pci_dev *pci_dev = to_pci_dev(dev);
1126 struct device_driver *drv = dev->driver;
1127
1128 if (dev_pm_smart_suspend_and_suspended(dev))
1129 return 0;
1130
1131 if (pci_has_legacy_pm_support(to_pci_dev(dev)))
1132 return pci_legacy_suspend_late(dev, PMSG_HIBERNATE);
1133
1134 if (!drv || !drv->pm) {
1135 pci_fixup_device(pci_fixup_suspend_late, pci_dev);
1136 return 0;
1137 }
1138
1139 if (drv->pm->poweroff_noirq) {
1140 int error;
1141
1142 error = drv->pm->poweroff_noirq(dev);
1143 suspend_report_result(drv->pm->poweroff_noirq, error);
1144 if (error)
1145 return error;
1146 }
1147
1148 if (!pci_dev->state_saved && !pci_has_subordinate(pci_dev))
1149 pci_prepare_to_sleep(pci_dev);
1150
1151 /*
1152 * The reason for doing this here is the same as for the analogous code
1153 * in pci_pm_suspend_noirq().
1154 */
1155 if (pci_dev->class == PCI_CLASS_SERIAL_USB_EHCI)
1156 pci_write_config_word(pci_dev, PCI_COMMAND, 0);
1157
1158 pci_fixup_device(pci_fixup_suspend_late, pci_dev);
1159
1160 if (pcibios_pm_ops.poweroff_noirq)
1161 return pcibios_pm_ops.poweroff_noirq(dev);
1162
1163 return 0;
1164 }
1165
1166 static int pci_pm_restore_noirq(struct device *dev)
1167 {
1168 struct pci_dev *pci_dev = to_pci_dev(dev);
1169 struct device_driver *drv = dev->driver;
1170 int error = 0;
1171
1172 /* This is analogous to the pci_pm_resume_noirq() case. */
1173 if (dev_pm_smart_suspend_and_suspended(dev))
1174 pm_runtime_set_active(dev);
1175
1176 if (pcibios_pm_ops.restore_noirq) {
1177 error = pcibios_pm_ops.restore_noirq(dev);
1178 if (error)
1179 return error;
1180 }
1181
1182 pci_pm_default_resume_early(pci_dev);
1183
1184 if (pci_has_legacy_pm_support(pci_dev))
1185 return pci_legacy_resume_early(dev);
1186
1187 if (drv && drv->pm && drv->pm->restore_noirq)
1188 error = drv->pm->restore_noirq(dev);
1189
1190 return error;
1191 }
1192
1193 static int pci_pm_restore(struct device *dev)
1194 {
1195 struct pci_dev *pci_dev = to_pci_dev(dev);
1196 const struct dev_pm_ops *pm = dev->driver ? dev->driver->pm : NULL;
1197 int error = 0;
1198
1199 /*
1200 * This is necessary for the hibernation error path in which restore is
1201 * called without restoring the standard config registers of the device.
1202 */
1203 if (pci_dev->state_saved)
1204 pci_restore_standard_config(pci_dev);
1205
1206 if (pci_has_legacy_pm_support(pci_dev))
1207 return pci_legacy_resume(dev);
1208
1209 pci_pm_default_resume(pci_dev);
1210
1211 if (pm) {
1212 if (pm->restore)
1213 error = pm->restore(dev);
1214 } else {
1215 pci_pm_reenable_device(pci_dev);
1216 }
1217
1218 return error;
1219 }
1220
1221 #else /* !CONFIG_HIBERNATE_CALLBACKS */
1222
1223 #define pci_pm_freeze NULL
1224 #define pci_pm_freeze_late NULL
1225 #define pci_pm_freeze_noirq NULL
1226 #define pci_pm_thaw NULL
1227 #define pci_pm_thaw_noirq NULL
1228 #define pci_pm_poweroff NULL
1229 #define pci_pm_poweroff_late NULL
1230 #define pci_pm_poweroff_noirq NULL
1231 #define pci_pm_restore NULL
1232 #define pci_pm_restore_noirq NULL
1233
1234 #endif /* !CONFIG_HIBERNATE_CALLBACKS */
1235
1236 #ifdef CONFIG_PM
1237
1238 static int pci_pm_runtime_suspend(struct device *dev)
1239 {
1240 struct pci_dev *pci_dev = to_pci_dev(dev);
1241 const struct dev_pm_ops *pm = dev->driver ? dev->driver->pm : NULL;
1242 pci_power_t prev = pci_dev->current_state;
1243 int error;
1244
1245 /*
1246 * If pci_dev->driver is not set (unbound), we leave the device in D0,
1247 * but it may go to D3cold when the bridge above it runtime suspends.
1248 * Save its config space in case that happens.
1249 */
1250 if (!pci_dev->driver) {
1251 pci_save_state(pci_dev);
1252 return 0;
1253 }
1254
1255 if (!pm || !pm->runtime_suspend)
1256 return -ENOSYS;
1257
1258 pci_dev->state_saved = false;
1259 error = pm->runtime_suspend(dev);
1260 if (error) {
1261 /*
1262 * -EBUSY and -EAGAIN is used to request the runtime PM core
1263 * to schedule a new suspend, so log the event only with debug
1264 * log level.
1265 */
1266 if (error == -EBUSY || error == -EAGAIN)
1267 dev_dbg(dev, "can't suspend now (%pf returned %d)\n",
1268 pm->runtime_suspend, error);
1269 else
1270 dev_err(dev, "can't suspend (%pf returned %d)\n",
1271 pm->runtime_suspend, error);
1272
1273 return error;
1274 }
1275
1276 pci_fixup_device(pci_fixup_suspend, pci_dev);
1277
1278 if (!pci_dev->state_saved && pci_dev->current_state != PCI_D0
1279 && pci_dev->current_state != PCI_UNKNOWN) {
1280 WARN_ONCE(pci_dev->current_state != prev,
1281 "PCI PM: State of device not saved by %pF\n",
1282 pm->runtime_suspend);
1283 return 0;
1284 }
1285
1286 if (!pci_dev->state_saved) {
1287 pci_save_state(pci_dev);
1288 pci_finish_runtime_suspend(pci_dev);
1289 }
1290
1291 return 0;
1292 }
1293
1294 static int pci_pm_runtime_resume(struct device *dev)
1295 {
1296 int rc;
1297 struct pci_dev *pci_dev = to_pci_dev(dev);
1298 const struct dev_pm_ops *pm = dev->driver ? dev->driver->pm : NULL;
1299
1300 /*
1301 * Restoring config space is necessary even if the device is not bound
1302 * to a driver because although we left it in D0, it may have gone to
1303 * D3cold when the bridge above it runtime suspended.
1304 */
1305 pci_restore_standard_config(pci_dev);
1306
1307 if (!pci_dev->driver)
1308 return 0;
1309
1310 if (!pm || !pm->runtime_resume)
1311 return -ENOSYS;
1312
1313 pci_fixup_device(pci_fixup_resume_early, pci_dev);
1314 pci_enable_wake(pci_dev, PCI_D0, false);
1315 pci_fixup_device(pci_fixup_resume, pci_dev);
1316
1317 rc = pm->runtime_resume(dev);
1318
1319 pci_dev->runtime_d3cold = false;
1320
1321 return rc;
1322 }
1323
1324 static int pci_pm_runtime_idle(struct device *dev)
1325 {
1326 struct pci_dev *pci_dev = to_pci_dev(dev);
1327 const struct dev_pm_ops *pm = dev->driver ? dev->driver->pm : NULL;
1328 int ret = 0;
1329
1330 /*
1331 * If pci_dev->driver is not set (unbound), the device should
1332 * always remain in D0 regardless of the runtime PM status
1333 */
1334 if (!pci_dev->driver)
1335 return 0;
1336
1337 if (!pm)
1338 return -ENOSYS;
1339
1340 if (pm->runtime_idle)
1341 ret = pm->runtime_idle(dev);
1342
1343 return ret;
1344 }
1345
1346 static const struct dev_pm_ops pci_dev_pm_ops = {
1347 .prepare = pci_pm_prepare,
1348 .complete = pci_pm_complete,
1349 .suspend = pci_pm_suspend,
1350 .suspend_late = pci_pm_suspend_late,
1351 .resume = pci_pm_resume,
1352 .freeze = pci_pm_freeze,
1353 .freeze_late = pci_pm_freeze_late,
1354 .thaw = pci_pm_thaw,
1355 .poweroff = pci_pm_poweroff,
1356 .poweroff_late = pci_pm_poweroff_late,
1357 .restore = pci_pm_restore,
1358 .suspend_noirq = pci_pm_suspend_noirq,
1359 .resume_noirq = pci_pm_resume_noirq,
1360 .freeze_noirq = pci_pm_freeze_noirq,
1361 .thaw_noirq = pci_pm_thaw_noirq,
1362 .poweroff_noirq = pci_pm_poweroff_noirq,
1363 .restore_noirq = pci_pm_restore_noirq,
1364 .runtime_suspend = pci_pm_runtime_suspend,
1365 .runtime_resume = pci_pm_runtime_resume,
1366 .runtime_idle = pci_pm_runtime_idle,
1367 };
1368
1369 #define PCI_PM_OPS_PTR (&pci_dev_pm_ops)
1370
1371 #else /* !CONFIG_PM */
1372
1373 #define pci_pm_runtime_suspend NULL
1374 #define pci_pm_runtime_resume NULL
1375 #define pci_pm_runtime_idle NULL
1376
1377 #define PCI_PM_OPS_PTR NULL
1378
1379 #endif /* !CONFIG_PM */
1380
1381 /**
1382 * __pci_register_driver - register a new pci driver
1383 * @drv: the driver structure to register
1384 * @owner: owner module of drv
1385 * @mod_name: module name string
1386 *
1387 * Adds the driver structure to the list of registered drivers.
1388 * Returns a negative value on error, otherwise 0.
1389 * If no error occurred, the driver remains registered even if
1390 * no device was claimed during registration.
1391 */
1392 int __pci_register_driver(struct pci_driver *drv, struct module *owner,
1393 const char *mod_name)
1394 {
1395 /* initialize common driver fields */
1396 drv->driver.name = drv->name;
1397 drv->driver.bus = &pci_bus_type;
1398 drv->driver.owner = owner;
1399 drv->driver.mod_name = mod_name;
1400 drv->driver.groups = drv->groups;
1401
1402 spin_lock_init(&drv->dynids.lock);
1403 INIT_LIST_HEAD(&drv->dynids.list);
1404
1405 /* register with core */
1406 return driver_register(&drv->driver);
1407 }
1408 EXPORT_SYMBOL(__pci_register_driver);
1409
1410 /**
1411 * pci_unregister_driver - unregister a pci driver
1412 * @drv: the driver structure to unregister
1413 *
1414 * Deletes the driver structure from the list of registered PCI drivers,
1415 * gives it a chance to clean up by calling its remove() function for
1416 * each device it was responsible for, and marks those devices as
1417 * driverless.
1418 */
1419
1420 void pci_unregister_driver(struct pci_driver *drv)
1421 {
1422 driver_unregister(&drv->driver);
1423 pci_free_dynids(drv);
1424 }
1425 EXPORT_SYMBOL(pci_unregister_driver);
1426
1427 static struct pci_driver pci_compat_driver = {
1428 .name = "compat"
1429 };
1430
1431 /**
1432 * pci_dev_driver - get the pci_driver of a device
1433 * @dev: the device to query
1434 *
1435 * Returns the appropriate pci_driver structure or %NULL if there is no
1436 * registered driver for the device.
1437 */
1438 struct pci_driver *pci_dev_driver(const struct pci_dev *dev)
1439 {
1440 if (dev->driver)
1441 return dev->driver;
1442 else {
1443 int i;
1444 for (i = 0; i <= PCI_ROM_RESOURCE; i++)
1445 if (dev->resource[i].flags & IORESOURCE_BUSY)
1446 return &pci_compat_driver;
1447 }
1448 return NULL;
1449 }
1450 EXPORT_SYMBOL(pci_dev_driver);
1451
1452 /**
1453 * pci_bus_match - Tell if a PCI device structure has a matching PCI device id structure
1454 * @dev: the PCI device structure to match against
1455 * @drv: the device driver to search for matching PCI device id structures
1456 *
1457 * Used by a driver to check whether a PCI device present in the
1458 * system is in its list of supported devices. Returns the matching
1459 * pci_device_id structure or %NULL if there is no match.
1460 */
1461 static int pci_bus_match(struct device *dev, struct device_driver *drv)
1462 {
1463 struct pci_dev *pci_dev = to_pci_dev(dev);
1464 struct pci_driver *pci_drv;
1465 const struct pci_device_id *found_id;
1466
1467 if (!pci_dev->match_driver)
1468 return 0;
1469
1470 pci_drv = to_pci_driver(drv);
1471 found_id = pci_match_device(pci_drv, pci_dev);
1472 if (found_id)
1473 return 1;
1474
1475 return 0;
1476 }
1477
1478 /**
1479 * pci_dev_get - increments the reference count of the pci device structure
1480 * @dev: the device being referenced
1481 *
1482 * Each live reference to a device should be refcounted.
1483 *
1484 * Drivers for PCI devices should normally record such references in
1485 * their probe() methods, when they bind to a device, and release
1486 * them by calling pci_dev_put(), in their disconnect() methods.
1487 *
1488 * A pointer to the device with the incremented reference counter is returned.
1489 */
1490 struct pci_dev *pci_dev_get(struct pci_dev *dev)
1491 {
1492 if (dev)
1493 get_device(&dev->dev);
1494 return dev;
1495 }
1496 EXPORT_SYMBOL(pci_dev_get);
1497
1498 /**
1499 * pci_dev_put - release a use of the pci device structure
1500 * @dev: device that's been disconnected
1501 *
1502 * Must be called when a user of a device is finished with it. When the last
1503 * user of the device calls this function, the memory of the device is freed.
1504 */
1505 void pci_dev_put(struct pci_dev *dev)
1506 {
1507 if (dev)
1508 put_device(&dev->dev);
1509 }
1510 EXPORT_SYMBOL(pci_dev_put);
1511
1512 static int pci_uevent(struct device *dev, struct kobj_uevent_env *env)
1513 {
1514 struct pci_dev *pdev;
1515
1516 if (!dev)
1517 return -ENODEV;
1518
1519 pdev = to_pci_dev(dev);
1520
1521 if (add_uevent_var(env, "PCI_CLASS=%04X", pdev->class))
1522 return -ENOMEM;
1523
1524 if (add_uevent_var(env, "PCI_ID=%04X:%04X", pdev->vendor, pdev->device))
1525 return -ENOMEM;
1526
1527 if (add_uevent_var(env, "PCI_SUBSYS_ID=%04X:%04X", pdev->subsystem_vendor,
1528 pdev->subsystem_device))
1529 return -ENOMEM;
1530
1531 if (add_uevent_var(env, "PCI_SLOT_NAME=%s", pci_name(pdev)))
1532 return -ENOMEM;
1533
1534 if (add_uevent_var(env, "MODALIAS=pci:v%08Xd%08Xsv%08Xsd%08Xbc%02Xsc%02Xi%02X",
1535 pdev->vendor, pdev->device,
1536 pdev->subsystem_vendor, pdev->subsystem_device,
1537 (u8)(pdev->class >> 16), (u8)(pdev->class >> 8),
1538 (u8)(pdev->class)))
1539 return -ENOMEM;
1540
1541 return 0;
1542 }
1543
1544 static int pci_bus_num_vf(struct device *dev)
1545 {
1546 return pci_num_vf(to_pci_dev(dev));
1547 }
1548
1549 struct bus_type pci_bus_type = {
1550 .name = "pci",
1551 .match = pci_bus_match,
1552 .uevent = pci_uevent,
1553 .probe = pci_device_probe,
1554 .remove = pci_device_remove,
1555 .shutdown = pci_device_shutdown,
1556 .dev_groups = pci_dev_groups,
1557 .bus_groups = pci_bus_groups,
1558 .drv_groups = pci_drv_groups,
1559 .pm = PCI_PM_OPS_PTR,
1560 .num_vf = pci_bus_num_vf,
1561 .force_dma = true,
1562 };
1563 EXPORT_SYMBOL(pci_bus_type);
1564
1565 static int __init pci_driver_init(void)
1566 {
1567 return bus_register(&pci_bus_type);
1568 }
1569 postcore_initcall(pci_driver_init);