]> git.proxmox.com Git - mirror_ubuntu-artful-kernel.git/blame - drivers/pci/pci.c
PCI: Avoid slot reset if bridge itself is broken
[mirror_ubuntu-artful-kernel.git] / drivers / pci / pci.c
CommitLineData
1da177e4 1/*
1da177e4
LT
2 * PCI Bus Services, see include/linux/pci.h for further explanation.
3 *
4 * Copyright 1993 -- 1997 Drew Eckhardt, Frederic Potter,
5 * David Mosberger-Tang
6 *
7 * Copyright 1997 -- 2000 Martin Mares <mj@ucw.cz>
8 */
9
2ab51dde 10#include <linux/acpi.h>
1da177e4
LT
11#include <linux/kernel.h>
12#include <linux/delay.h>
9d26d3a8 13#include <linux/dmi.h>
1da177e4 14#include <linux/init.h>
7c674700
LP
15#include <linux/of.h>
16#include <linux/of_pci.h>
1da177e4 17#include <linux/pci.h>
075c1771 18#include <linux/pm.h>
5a0e3ad6 19#include <linux/slab.h>
1da177e4
LT
20#include <linux/module.h>
21#include <linux/spinlock.h>
4e57b681 22#include <linux/string.h>
229f5afd 23#include <linux/log2.h>
7d715a6c 24#include <linux/pci-aspm.h>
c300bd2f 25#include <linux/pm_wakeup.h>
8dd7f803 26#include <linux/interrupt.h>
32a9a682 27#include <linux/device.h>
b67ea761 28#include <linux/pm_runtime.h>
608c3881 29#include <linux/pci_hotplug.h>
4d3f1384 30#include <linux/vmalloc.h>
4ebeb1ec 31#include <linux/pci-ats.h>
32a9a682 32#include <asm/setup.h>
2a2aca31 33#include <asm/dma.h>
b07461a8 34#include <linux/aer.h>
bc56b9e0 35#include "pci.h"
1da177e4 36
00240c38
AS
37const char *pci_power_names[] = {
38 "error", "D0", "D1", "D2", "D3hot", "D3cold", "unknown",
39};
40EXPORT_SYMBOL_GPL(pci_power_names);
41
93177a74
RW
42int isa_dma_bridge_buggy;
43EXPORT_SYMBOL(isa_dma_bridge_buggy);
44
45int pci_pci_problems;
46EXPORT_SYMBOL(pci_pci_problems);
47
1ae861e6
RW
48unsigned int pci_pm_d3_delay;
49
df17e62e
MG
50static void pci_pme_list_scan(struct work_struct *work);
51
52static LIST_HEAD(pci_pme_list);
53static DEFINE_MUTEX(pci_pme_list_mutex);
54static DECLARE_DELAYED_WORK(pci_pme_work, pci_pme_list_scan);
55
56struct pci_pme_device {
57 struct list_head list;
58 struct pci_dev *dev;
59};
60
61#define PME_TIMEOUT 1000 /* How long between PME checks */
62
1ae861e6
RW
63static void pci_dev_d3_sleep(struct pci_dev *dev)
64{
65 unsigned int delay = dev->d3_delay;
66
67 if (delay < pci_pm_d3_delay)
68 delay = pci_pm_d3_delay;
69
50b2b540
AH
70 if (delay)
71 msleep(delay);
1ae861e6 72}
1da177e4 73
32a2eea7
JG
74#ifdef CONFIG_PCI_DOMAINS
75int pci_domains_supported = 1;
76#endif
77
4516a618
AN
78#define DEFAULT_CARDBUS_IO_SIZE (256)
79#define DEFAULT_CARDBUS_MEM_SIZE (64*1024*1024)
80/* pci=cbmemsize=nnM,cbiosize=nn can override this */
81unsigned long pci_cardbus_io_size = DEFAULT_CARDBUS_IO_SIZE;
82unsigned long pci_cardbus_mem_size = DEFAULT_CARDBUS_MEM_SIZE;
83
28760489
EB
84#define DEFAULT_HOTPLUG_IO_SIZE (256)
85#define DEFAULT_HOTPLUG_MEM_SIZE (2*1024*1024)
86/* pci=hpmemsize=nnM,hpiosize=nn can override this */
87unsigned long pci_hotplug_io_size = DEFAULT_HOTPLUG_IO_SIZE;
88unsigned long pci_hotplug_mem_size = DEFAULT_HOTPLUG_MEM_SIZE;
89
e16b4660
KB
90#define DEFAULT_HOTPLUG_BUS_SIZE 1
91unsigned long pci_hotplug_bus_size = DEFAULT_HOTPLUG_BUS_SIZE;
92
27d868b5 93enum pcie_bus_config_types pcie_bus_config = PCIE_BUS_DEFAULT;
b03e7495 94
ac1aa47b
JB
95/*
96 * The default CLS is used if arch didn't set CLS explicitly and not
97 * all pci devices agree on the same value. Arch can override either
98 * the dfl or actual value as it sees fit. Don't forget this is
99 * measured in 32-bit words, not bytes.
100 */
15856ad5 101u8 pci_dfl_cache_line_size = L1_CACHE_BYTES >> 2;
ac1aa47b
JB
102u8 pci_cache_line_size;
103
96c55900
MS
104/*
105 * If we set up a device for bus mastering, we need to check the latency
106 * timer as certain BIOSes forget to set it properly.
107 */
108unsigned int pcibios_max_latency = 255;
109
6748dcc2
RW
110/* If set, the PCIe ARI capability will not be used. */
111static bool pcie_ari_disabled;
112
9d26d3a8
MW
113/* Disable bridge_d3 for all PCIe ports */
114static bool pci_bridge_d3_disable;
115/* Force bridge_d3 for all PCIe ports */
116static bool pci_bridge_d3_force;
117
118static int __init pcie_port_pm_setup(char *str)
119{
120 if (!strcmp(str, "off"))
121 pci_bridge_d3_disable = true;
122 else if (!strcmp(str, "force"))
123 pci_bridge_d3_force = true;
124 return 1;
125}
126__setup("pcie_port_pm=", pcie_port_pm_setup);
127
1da177e4
LT
128/**
129 * pci_bus_max_busnr - returns maximum PCI bus number of given bus' children
130 * @bus: pointer to PCI bus structure to search
131 *
132 * Given a PCI bus, returns the highest PCI bus number present in the set
133 * including the given PCI bus and its list of child PCI buses.
134 */
07656d83 135unsigned char pci_bus_max_busnr(struct pci_bus *bus)
1da177e4 136{
94e6a9b9 137 struct pci_bus *tmp;
1da177e4
LT
138 unsigned char max, n;
139
b918c62e 140 max = bus->busn_res.end;
94e6a9b9
YW
141 list_for_each_entry(tmp, &bus->children, node) {
142 n = pci_bus_max_busnr(tmp);
3c78bc61 143 if (n > max)
1da177e4
LT
144 max = n;
145 }
146 return max;
147}
b82db5ce 148EXPORT_SYMBOL_GPL(pci_bus_max_busnr);
1da177e4 149
1684f5dd
AM
150#ifdef CONFIG_HAS_IOMEM
151void __iomem *pci_ioremap_bar(struct pci_dev *pdev, int bar)
152{
1f7bf3bf
BH
153 struct resource *res = &pdev->resource[bar];
154
1684f5dd
AM
155 /*
156 * Make sure the BAR is actually a memory resource, not an IO resource
157 */
646c0282 158 if (res->flags & IORESOURCE_UNSET || !(res->flags & IORESOURCE_MEM)) {
1f7bf3bf 159 dev_warn(&pdev->dev, "can't ioremap BAR %d: %pR\n", bar, res);
1684f5dd
AM
160 return NULL;
161 }
1f7bf3bf 162 return ioremap_nocache(res->start, resource_size(res));
1684f5dd
AM
163}
164EXPORT_SYMBOL_GPL(pci_ioremap_bar);
c43996f4
LR
165
166void __iomem *pci_ioremap_wc_bar(struct pci_dev *pdev, int bar)
167{
168 /*
169 * Make sure the BAR is actually a memory resource, not an IO resource
170 */
171 if (!(pci_resource_flags(pdev, bar) & IORESOURCE_MEM)) {
172 WARN_ON(1);
173 return NULL;
174 }
175 return ioremap_wc(pci_resource_start(pdev, bar),
176 pci_resource_len(pdev, bar));
177}
178EXPORT_SYMBOL_GPL(pci_ioremap_wc_bar);
1684f5dd
AM
179#endif
180
687d5fe3
ME
181
182static int __pci_find_next_cap_ttl(struct pci_bus *bus, unsigned int devfn,
183 u8 pos, int cap, int *ttl)
24a4e377
RD
184{
185 u8 id;
55db3208
SS
186 u16 ent;
187
188 pci_bus_read_config_byte(bus, devfn, pos, &pos);
24a4e377 189
687d5fe3 190 while ((*ttl)--) {
24a4e377
RD
191 if (pos < 0x40)
192 break;
193 pos &= ~3;
55db3208
SS
194 pci_bus_read_config_word(bus, devfn, pos, &ent);
195
196 id = ent & 0xff;
24a4e377
RD
197 if (id == 0xff)
198 break;
199 if (id == cap)
200 return pos;
55db3208 201 pos = (ent >> 8);
24a4e377
RD
202 }
203 return 0;
204}
205
687d5fe3
ME
206static int __pci_find_next_cap(struct pci_bus *bus, unsigned int devfn,
207 u8 pos, int cap)
208{
209 int ttl = PCI_FIND_CAP_TTL;
210
211 return __pci_find_next_cap_ttl(bus, devfn, pos, cap, &ttl);
212}
213
24a4e377
RD
214int pci_find_next_capability(struct pci_dev *dev, u8 pos, int cap)
215{
216 return __pci_find_next_cap(dev->bus, dev->devfn,
217 pos + PCI_CAP_LIST_NEXT, cap);
218}
219EXPORT_SYMBOL_GPL(pci_find_next_capability);
220
d3bac118
ME
221static int __pci_bus_find_cap_start(struct pci_bus *bus,
222 unsigned int devfn, u8 hdr_type)
1da177e4
LT
223{
224 u16 status;
1da177e4
LT
225
226 pci_bus_read_config_word(bus, devfn, PCI_STATUS, &status);
227 if (!(status & PCI_STATUS_CAP_LIST))
228 return 0;
229
230 switch (hdr_type) {
231 case PCI_HEADER_TYPE_NORMAL:
232 case PCI_HEADER_TYPE_BRIDGE:
d3bac118 233 return PCI_CAPABILITY_LIST;
1da177e4 234 case PCI_HEADER_TYPE_CARDBUS:
d3bac118 235 return PCI_CB_CAPABILITY_LIST;
1da177e4 236 }
d3bac118
ME
237
238 return 0;
1da177e4
LT
239}
240
241/**
f7625980 242 * pci_find_capability - query for devices' capabilities
1da177e4
LT
243 * @dev: PCI device to query
244 * @cap: capability code
245 *
246 * Tell if a device supports a given PCI capability.
247 * Returns the address of the requested capability structure within the
248 * device's PCI configuration space or 0 in case the device does not
249 * support it. Possible values for @cap:
250 *
f7625980
BH
251 * %PCI_CAP_ID_PM Power Management
252 * %PCI_CAP_ID_AGP Accelerated Graphics Port
253 * %PCI_CAP_ID_VPD Vital Product Data
254 * %PCI_CAP_ID_SLOTID Slot Identification
1da177e4 255 * %PCI_CAP_ID_MSI Message Signalled Interrupts
f7625980 256 * %PCI_CAP_ID_CHSWP CompactPCI HotSwap
1da177e4
LT
257 * %PCI_CAP_ID_PCIX PCI-X
258 * %PCI_CAP_ID_EXP PCI Express
259 */
260int pci_find_capability(struct pci_dev *dev, int cap)
261{
d3bac118
ME
262 int pos;
263
264 pos = __pci_bus_find_cap_start(dev->bus, dev->devfn, dev->hdr_type);
265 if (pos)
266 pos = __pci_find_next_cap(dev->bus, dev->devfn, pos, cap);
267
268 return pos;
1da177e4 269}
b7fe9434 270EXPORT_SYMBOL(pci_find_capability);
1da177e4
LT
271
272/**
f7625980 273 * pci_bus_find_capability - query for devices' capabilities
1da177e4
LT
274 * @bus: the PCI bus to query
275 * @devfn: PCI device to query
276 * @cap: capability code
277 *
278 * Like pci_find_capability() but works for pci devices that do not have a
f7625980 279 * pci_dev structure set up yet.
1da177e4
LT
280 *
281 * Returns the address of the requested capability structure within the
282 * device's PCI configuration space or 0 in case the device does not
283 * support it.
284 */
285int pci_bus_find_capability(struct pci_bus *bus, unsigned int devfn, int cap)
286{
d3bac118 287 int pos;
1da177e4
LT
288 u8 hdr_type;
289
290 pci_bus_read_config_byte(bus, devfn, PCI_HEADER_TYPE, &hdr_type);
291
d3bac118
ME
292 pos = __pci_bus_find_cap_start(bus, devfn, hdr_type & 0x7f);
293 if (pos)
294 pos = __pci_find_next_cap(bus, devfn, pos, cap);
295
296 return pos;
1da177e4 297}
b7fe9434 298EXPORT_SYMBOL(pci_bus_find_capability);
1da177e4
LT
299
300/**
44a9a36f 301 * pci_find_next_ext_capability - Find an extended capability
1da177e4 302 * @dev: PCI device to query
44a9a36f 303 * @start: address at which to start looking (0 to start at beginning of list)
1da177e4
LT
304 * @cap: capability code
305 *
44a9a36f 306 * Returns the address of the next matching extended capability structure
1da177e4 307 * within the device's PCI configuration space or 0 if the device does
44a9a36f
BH
308 * not support it. Some capabilities can occur several times, e.g., the
309 * vendor-specific capability, and this provides a way to find them all.
1da177e4 310 */
44a9a36f 311int pci_find_next_ext_capability(struct pci_dev *dev, int start, int cap)
1da177e4
LT
312{
313 u32 header;
557848c3
ZY
314 int ttl;
315 int pos = PCI_CFG_SPACE_SIZE;
1da177e4 316
557848c3
ZY
317 /* minimum 8 bytes per capability */
318 ttl = (PCI_CFG_SPACE_EXP_SIZE - PCI_CFG_SPACE_SIZE) / 8;
319
320 if (dev->cfg_size <= PCI_CFG_SPACE_SIZE)
1da177e4
LT
321 return 0;
322
44a9a36f
BH
323 if (start)
324 pos = start;
325
1da177e4
LT
326 if (pci_read_config_dword(dev, pos, &header) != PCIBIOS_SUCCESSFUL)
327 return 0;
328
329 /*
330 * If we have no capabilities, this is indicated by cap ID,
331 * cap version and next pointer all being 0.
332 */
333 if (header == 0)
334 return 0;
335
336 while (ttl-- > 0) {
44a9a36f 337 if (PCI_EXT_CAP_ID(header) == cap && pos != start)
1da177e4
LT
338 return pos;
339
340 pos = PCI_EXT_CAP_NEXT(header);
557848c3 341 if (pos < PCI_CFG_SPACE_SIZE)
1da177e4
LT
342 break;
343
344 if (pci_read_config_dword(dev, pos, &header) != PCIBIOS_SUCCESSFUL)
345 break;
346 }
347
348 return 0;
349}
44a9a36f
BH
350EXPORT_SYMBOL_GPL(pci_find_next_ext_capability);
351
352/**
353 * pci_find_ext_capability - Find an extended capability
354 * @dev: PCI device to query
355 * @cap: capability code
356 *
357 * Returns the address of the requested extended capability structure
358 * within the device's PCI configuration space or 0 if the device does
359 * not support it. Possible values for @cap:
360 *
361 * %PCI_EXT_CAP_ID_ERR Advanced Error Reporting
362 * %PCI_EXT_CAP_ID_VC Virtual Channel
363 * %PCI_EXT_CAP_ID_DSN Device Serial Number
364 * %PCI_EXT_CAP_ID_PWR Power Budgeting
365 */
366int pci_find_ext_capability(struct pci_dev *dev, int cap)
367{
368 return pci_find_next_ext_capability(dev, 0, cap);
369}
3a720d72 370EXPORT_SYMBOL_GPL(pci_find_ext_capability);
1da177e4 371
687d5fe3
ME
372static int __pci_find_next_ht_cap(struct pci_dev *dev, int pos, int ht_cap)
373{
374 int rc, ttl = PCI_FIND_CAP_TTL;
375 u8 cap, mask;
376
377 if (ht_cap == HT_CAPTYPE_SLAVE || ht_cap == HT_CAPTYPE_HOST)
378 mask = HT_3BIT_CAP_MASK;
379 else
380 mask = HT_5BIT_CAP_MASK;
381
382 pos = __pci_find_next_cap_ttl(dev->bus, dev->devfn, pos,
383 PCI_CAP_ID_HT, &ttl);
384 while (pos) {
385 rc = pci_read_config_byte(dev, pos + 3, &cap);
386 if (rc != PCIBIOS_SUCCESSFUL)
387 return 0;
388
389 if ((cap & mask) == ht_cap)
390 return pos;
391
47a4d5be
BG
392 pos = __pci_find_next_cap_ttl(dev->bus, dev->devfn,
393 pos + PCI_CAP_LIST_NEXT,
687d5fe3
ME
394 PCI_CAP_ID_HT, &ttl);
395 }
396
397 return 0;
398}
399/**
400 * pci_find_next_ht_capability - query a device's Hypertransport capabilities
401 * @dev: PCI device to query
402 * @pos: Position from which to continue searching
403 * @ht_cap: Hypertransport capability code
404 *
405 * To be used in conjunction with pci_find_ht_capability() to search for
406 * all capabilities matching @ht_cap. @pos should always be a value returned
407 * from pci_find_ht_capability().
408 *
409 * NB. To be 100% safe against broken PCI devices, the caller should take
410 * steps to avoid an infinite loop.
411 */
412int pci_find_next_ht_capability(struct pci_dev *dev, int pos, int ht_cap)
413{
414 return __pci_find_next_ht_cap(dev, pos + PCI_CAP_LIST_NEXT, ht_cap);
415}
416EXPORT_SYMBOL_GPL(pci_find_next_ht_capability);
417
418/**
419 * pci_find_ht_capability - query a device's Hypertransport capabilities
420 * @dev: PCI device to query
421 * @ht_cap: Hypertransport capability code
422 *
423 * Tell if a device supports a given Hypertransport capability.
424 * Returns an address within the device's PCI configuration space
425 * or 0 in case the device does not support the request capability.
426 * The address points to the PCI capability, of type PCI_CAP_ID_HT,
427 * which has a Hypertransport capability matching @ht_cap.
428 */
429int pci_find_ht_capability(struct pci_dev *dev, int ht_cap)
430{
431 int pos;
432
433 pos = __pci_bus_find_cap_start(dev->bus, dev->devfn, dev->hdr_type);
434 if (pos)
435 pos = __pci_find_next_ht_cap(dev, pos, ht_cap);
436
437 return pos;
438}
439EXPORT_SYMBOL_GPL(pci_find_ht_capability);
440
1da177e4
LT
441/**
442 * pci_find_parent_resource - return resource region of parent bus of given region
443 * @dev: PCI device structure contains resources to be searched
444 * @res: child resource record for which parent is sought
445 *
446 * For given resource region of given device, return the resource
f44116ae 447 * region of parent bus the given region is contained in.
1da177e4 448 */
3c78bc61
RD
449struct resource *pci_find_parent_resource(const struct pci_dev *dev,
450 struct resource *res)
1da177e4
LT
451{
452 const struct pci_bus *bus = dev->bus;
f44116ae 453 struct resource *r;
1da177e4 454 int i;
1da177e4 455
89a74ecc 456 pci_bus_for_each_resource(bus, r, i) {
1da177e4
LT
457 if (!r)
458 continue;
31342330 459 if (resource_contains(r, res)) {
f44116ae
BH
460
461 /*
462 * If the window is prefetchable but the BAR is
463 * not, the allocator made a mistake.
464 */
465 if (r->flags & IORESOURCE_PREFETCH &&
466 !(res->flags & IORESOURCE_PREFETCH))
467 return NULL;
468
469 /*
470 * If we're below a transparent bridge, there may
471 * be both a positively-decoded aperture and a
472 * subtractively-decoded region that contain the BAR.
473 * We want the positively-decoded one, so this depends
474 * on pci_bus_for_each_resource() giving us those
475 * first.
476 */
477 return r;
478 }
1da177e4 479 }
f44116ae 480 return NULL;
1da177e4 481}
b7fe9434 482EXPORT_SYMBOL(pci_find_parent_resource);
1da177e4 483
afd29f90
MW
484/**
485 * pci_find_resource - Return matching PCI device resource
486 * @dev: PCI device to query
487 * @res: Resource to look for
488 *
489 * Goes over standard PCI resources (BARs) and checks if the given resource
490 * is partially or fully contained in any of them. In that case the
491 * matching resource is returned, %NULL otherwise.
492 */
493struct resource *pci_find_resource(struct pci_dev *dev, struct resource *res)
494{
495 int i;
496
497 for (i = 0; i < PCI_ROM_RESOURCE; i++) {
498 struct resource *r = &dev->resource[i];
499
500 if (r->start && resource_contains(r, res))
501 return r;
502 }
503
504 return NULL;
505}
506EXPORT_SYMBOL(pci_find_resource);
507
c56d4450
HS
508/**
509 * pci_find_pcie_root_port - return PCIe Root Port
510 * @dev: PCI device to query
511 *
512 * Traverse up the parent chain and return the PCIe Root Port PCI Device
513 * for a given PCI Device.
514 */
515struct pci_dev *pci_find_pcie_root_port(struct pci_dev *dev)
516{
b6f6d56c 517 struct pci_dev *bridge, *highest_pcie_bridge = dev;
c56d4450
HS
518
519 bridge = pci_upstream_bridge(dev);
520 while (bridge && pci_is_pcie(bridge)) {
521 highest_pcie_bridge = bridge;
522 bridge = pci_upstream_bridge(bridge);
523 }
524
b6f6d56c
TR
525 if (pci_pcie_type(highest_pcie_bridge) != PCI_EXP_TYPE_ROOT_PORT)
526 return NULL;
c56d4450 527
b6f6d56c 528 return highest_pcie_bridge;
c56d4450
HS
529}
530EXPORT_SYMBOL(pci_find_pcie_root_port);
531
157e876f
AW
532/**
533 * pci_wait_for_pending - wait for @mask bit(s) to clear in status word @pos
534 * @dev: the PCI device to operate on
535 * @pos: config space offset of status word
536 * @mask: mask of bit(s) to care about in status word
537 *
538 * Return 1 when mask bit(s) in status word clear, 0 otherwise.
539 */
540int pci_wait_for_pending(struct pci_dev *dev, int pos, u16 mask)
541{
542 int i;
543
544 /* Wait for Transaction Pending bit clean */
545 for (i = 0; i < 4; i++) {
546 u16 status;
547 if (i)
548 msleep((1 << (i - 1)) * 100);
549
550 pci_read_config_word(dev, pos, &status);
551 if (!(status & mask))
552 return 1;
553 }
554
555 return 0;
556}
557
064b53db 558/**
70675e0b 559 * pci_restore_bars - restore a device's BAR values (e.g. after wake-up)
064b53db
JL
560 * @dev: PCI device to have its BARs restored
561 *
562 * Restore the BAR values for a given device, so as to make it
563 * accessible by its driver.
564 */
3c78bc61 565static void pci_restore_bars(struct pci_dev *dev)
064b53db 566{
bc5f5a82 567 int i;
064b53db 568
bc5f5a82 569 for (i = 0; i < PCI_BRIDGE_RESOURCES; i++)
14add80b 570 pci_update_resource(dev, i);
064b53db
JL
571}
572
299f2ffe 573static const struct pci_platform_pm_ops *pci_platform_pm;
961d9120 574
299f2ffe 575int pci_set_platform_pm(const struct pci_platform_pm_ops *ops)
961d9120 576{
cc7cc02b 577 if (!ops->is_manageable || !ops->set_state || !ops->get_state ||
0847684c 578 !ops->choose_state || !ops->set_wakeup || !ops->need_resume)
961d9120
RW
579 return -EINVAL;
580 pci_platform_pm = ops;
581 return 0;
582}
583
584static inline bool platform_pci_power_manageable(struct pci_dev *dev)
585{
586 return pci_platform_pm ? pci_platform_pm->is_manageable(dev) : false;
587}
588
589static inline int platform_pci_set_power_state(struct pci_dev *dev,
3c78bc61 590 pci_power_t t)
961d9120
RW
591{
592 return pci_platform_pm ? pci_platform_pm->set_state(dev, t) : -ENOSYS;
593}
594
cc7cc02b
LW
595static inline pci_power_t platform_pci_get_power_state(struct pci_dev *dev)
596{
597 return pci_platform_pm ? pci_platform_pm->get_state(dev) : PCI_UNKNOWN;
598}
599
961d9120
RW
600static inline pci_power_t platform_pci_choose_state(struct pci_dev *dev)
601{
602 return pci_platform_pm ?
603 pci_platform_pm->choose_state(dev) : PCI_POWER_ERROR;
604}
8f7020d3 605
0847684c 606static inline int platform_pci_set_wakeup(struct pci_dev *dev, bool enable)
eb9d0fe4
RW
607{
608 return pci_platform_pm ?
0847684c 609 pci_platform_pm->set_wakeup(dev, enable) : -ENODEV;
b67ea761
RW
610}
611
bac2a909
RW
612static inline bool platform_pci_need_resume(struct pci_dev *dev)
613{
614 return pci_platform_pm ? pci_platform_pm->need_resume(dev) : false;
615}
616
1da177e4 617/**
44e4e66e
RW
618 * pci_raw_set_power_state - Use PCI PM registers to set the power state of
619 * given PCI device
620 * @dev: PCI device to handle.
44e4e66e 621 * @state: PCI power state (D0, D1, D2, D3hot) to put the device into.
1da177e4 622 *
44e4e66e
RW
623 * RETURN VALUE:
624 * -EINVAL if the requested state is invalid.
625 * -EIO if device does not support PCI PM or its PM capabilities register has a
626 * wrong version, or device doesn't support the requested state.
627 * 0 if device already is in the requested state.
628 * 0 if device's power state has been successfully changed.
1da177e4 629 */
f00a20ef 630static int pci_raw_set_power_state(struct pci_dev *dev, pci_power_t state)
1da177e4 631{
337001b6 632 u16 pmcsr;
44e4e66e 633 bool need_restore = false;
1da177e4 634
4a865905
RW
635 /* Check if we're already there */
636 if (dev->current_state == state)
637 return 0;
638
337001b6 639 if (!dev->pm_cap)
cca03dec
AL
640 return -EIO;
641
44e4e66e
RW
642 if (state < PCI_D0 || state > PCI_D3hot)
643 return -EINVAL;
644
1da177e4 645 /* Validate current state:
f7625980 646 * Can enter D0 from any state, but if we can only go deeper
1da177e4
LT
647 * to sleep if we're already in a low power state
648 */
4a865905 649 if (state != PCI_D0 && dev->current_state <= PCI_D3cold
44e4e66e 650 && dev->current_state > state) {
227f0647
RD
651 dev_err(&dev->dev, "invalid power transition (from state %d to %d)\n",
652 dev->current_state, state);
1da177e4 653 return -EINVAL;
44e4e66e 654 }
1da177e4 655
1da177e4 656 /* check if this device supports the desired state */
337001b6
RW
657 if ((state == PCI_D1 && !dev->d1_support)
658 || (state == PCI_D2 && !dev->d2_support))
3fe9d19f 659 return -EIO;
1da177e4 660
337001b6 661 pci_read_config_word(dev, dev->pm_cap + PCI_PM_CTRL, &pmcsr);
064b53db 662
32a36585 663 /* If we're (effectively) in D3, force entire word to 0.
1da177e4
LT
664 * This doesn't affect PME_Status, disables PME_En, and
665 * sets PowerState to 0.
666 */
32a36585 667 switch (dev->current_state) {
d3535fbb
JL
668 case PCI_D0:
669 case PCI_D1:
670 case PCI_D2:
671 pmcsr &= ~PCI_PM_CTRL_STATE_MASK;
672 pmcsr |= state;
673 break;
f62795f1
RW
674 case PCI_D3hot:
675 case PCI_D3cold:
32a36585
JL
676 case PCI_UNKNOWN: /* Boot-up */
677 if ((pmcsr & PCI_PM_CTRL_STATE_MASK) == PCI_D3hot
f00a20ef 678 && !(pmcsr & PCI_PM_CTRL_NO_SOFT_RESET))
44e4e66e 679 need_restore = true;
32a36585 680 /* Fall-through: force to D0 */
32a36585 681 default:
d3535fbb 682 pmcsr = 0;
32a36585 683 break;
1da177e4
LT
684 }
685
686 /* enter specified state */
337001b6 687 pci_write_config_word(dev, dev->pm_cap + PCI_PM_CTRL, pmcsr);
1da177e4
LT
688
689 /* Mandatory power management transition delays */
690 /* see PCI PM 1.1 5.6.1 table 18 */
691 if (state == PCI_D3hot || dev->current_state == PCI_D3hot)
1ae861e6 692 pci_dev_d3_sleep(dev);
1da177e4 693 else if (state == PCI_D2 || dev->current_state == PCI_D2)
aa8c6c93 694 udelay(PCI_PM_D2_DELAY);
1da177e4 695
e13cdbd7
RW
696 pci_read_config_word(dev, dev->pm_cap + PCI_PM_CTRL, &pmcsr);
697 dev->current_state = (pmcsr & PCI_PM_CTRL_STATE_MASK);
698 if (dev->current_state != state && printk_ratelimit())
227f0647
RD
699 dev_info(&dev->dev, "Refused to change power state, currently in D%d\n",
700 dev->current_state);
064b53db 701
448bd857
HY
702 /*
703 * According to section 5.4.1 of the "PCI BUS POWER MANAGEMENT
064b53db
JL
704 * INTERFACE SPECIFICATION, REV. 1.2", a device transitioning
705 * from D3hot to D0 _may_ perform an internal reset, thereby
706 * going to "D0 Uninitialized" rather than "D0 Initialized".
707 * For example, at least some versions of the 3c905B and the
708 * 3c556B exhibit this behaviour.
709 *
710 * At least some laptop BIOSen (e.g. the Thinkpad T21) leave
711 * devices in a D3hot state at boot. Consequently, we need to
712 * restore at least the BARs so that the device will be
713 * accessible to its driver.
714 */
715 if (need_restore)
716 pci_restore_bars(dev);
717
f00a20ef 718 if (dev->bus->self)
7d715a6c
SL
719 pcie_aspm_pm_state_change(dev->bus->self);
720
1da177e4
LT
721 return 0;
722}
723
44e4e66e 724/**
a6a64026 725 * pci_update_current_state - Read power state of given device and cache it
44e4e66e 726 * @dev: PCI device to handle.
f06fc0b6 727 * @state: State to cache in case the device doesn't have the PM capability
a6a64026
LW
728 *
729 * The power state is read from the PMCSR register, which however is
730 * inaccessible in D3cold. The platform firmware is therefore queried first
731 * to detect accessibility of the register. In case the platform firmware
732 * reports an incorrect state or the device isn't power manageable by the
733 * platform at all, we try to detect D3cold by testing accessibility of the
734 * vendor ID in config space.
44e4e66e 735 */
73410429 736void pci_update_current_state(struct pci_dev *dev, pci_power_t state)
44e4e66e 737{
a6a64026
LW
738 if (platform_pci_get_power_state(dev) == PCI_D3cold ||
739 !pci_device_is_present(dev)) {
740 dev->current_state = PCI_D3cold;
741 } else if (dev->pm_cap) {
44e4e66e
RW
742 u16 pmcsr;
743
337001b6 744 pci_read_config_word(dev, dev->pm_cap + PCI_PM_CTRL, &pmcsr);
44e4e66e 745 dev->current_state = (pmcsr & PCI_PM_CTRL_STATE_MASK);
f06fc0b6
RW
746 } else {
747 dev->current_state = state;
44e4e66e
RW
748 }
749}
750
db288c9c
RW
751/**
752 * pci_power_up - Put the given device into D0 forcibly
753 * @dev: PCI device to power up
754 */
755void pci_power_up(struct pci_dev *dev)
756{
757 if (platform_pci_power_manageable(dev))
758 platform_pci_set_power_state(dev, PCI_D0);
759
760 pci_raw_set_power_state(dev, PCI_D0);
761 pci_update_current_state(dev, PCI_D0);
762}
763
0e5dd46b
RW
764/**
765 * pci_platform_power_transition - Use platform to change device power state
766 * @dev: PCI device to handle.
767 * @state: State to put the device into.
768 */
769static int pci_platform_power_transition(struct pci_dev *dev, pci_power_t state)
770{
771 int error;
772
773 if (platform_pci_power_manageable(dev)) {
774 error = platform_pci_set_power_state(dev, state);
775 if (!error)
776 pci_update_current_state(dev, state);
769ba721 777 } else
0e5dd46b 778 error = -ENODEV;
769ba721
RW
779
780 if (error && !dev->pm_cap) /* Fall back to PCI_D0 */
781 dev->current_state = PCI_D0;
0e5dd46b
RW
782
783 return error;
784}
785
0b950f0f
SH
786/**
787 * pci_wakeup - Wake up a PCI device
788 * @pci_dev: Device to handle.
789 * @ign: ignored parameter
790 */
791static int pci_wakeup(struct pci_dev *pci_dev, void *ign)
792{
793 pci_wakeup_event(pci_dev);
794 pm_request_resume(&pci_dev->dev);
795 return 0;
796}
797
798/**
799 * pci_wakeup_bus - Walk given bus and wake up devices on it
800 * @bus: Top bus of the subtree to walk.
801 */
802static void pci_wakeup_bus(struct pci_bus *bus)
803{
804 if (bus)
805 pci_walk_bus(bus, pci_wakeup, NULL);
806}
807
0e5dd46b
RW
808/**
809 * __pci_start_power_transition - Start power transition of a PCI device
810 * @dev: PCI device to handle.
811 * @state: State to put the device into.
812 */
813static void __pci_start_power_transition(struct pci_dev *dev, pci_power_t state)
814{
448bd857 815 if (state == PCI_D0) {
0e5dd46b 816 pci_platform_power_transition(dev, PCI_D0);
448bd857
HY
817 /*
818 * Mandatory power management transition delays, see
819 * PCI Express Base Specification Revision 2.0 Section
820 * 6.6.1: Conventional Reset. Do not delay for
821 * devices powered on/off by corresponding bridge,
822 * because have already delayed for the bridge.
823 */
824 if (dev->runtime_d3cold) {
50b2b540
AH
825 if (dev->d3cold_delay)
826 msleep(dev->d3cold_delay);
448bd857
HY
827 /*
828 * When powering on a bridge from D3cold, the
829 * whole hierarchy may be powered on into
830 * D0uninitialized state, resume them to give
831 * them a chance to suspend again
832 */
833 pci_wakeup_bus(dev->subordinate);
834 }
835 }
836}
837
838/**
839 * __pci_dev_set_current_state - Set current state of a PCI device
840 * @dev: Device to handle
841 * @data: pointer to state to be set
842 */
843static int __pci_dev_set_current_state(struct pci_dev *dev, void *data)
844{
845 pci_power_t state = *(pci_power_t *)data;
846
847 dev->current_state = state;
848 return 0;
849}
850
851/**
852 * __pci_bus_set_current_state - Walk given bus and set current state of devices
853 * @bus: Top bus of the subtree to walk.
854 * @state: state to be set
855 */
856static void __pci_bus_set_current_state(struct pci_bus *bus, pci_power_t state)
857{
858 if (bus)
859 pci_walk_bus(bus, __pci_dev_set_current_state, &state);
0e5dd46b
RW
860}
861
862/**
863 * __pci_complete_power_transition - Complete power transition of a PCI device
864 * @dev: PCI device to handle.
865 * @state: State to put the device into.
866 *
867 * This function should not be called directly by device drivers.
868 */
869int __pci_complete_power_transition(struct pci_dev *dev, pci_power_t state)
870{
448bd857
HY
871 int ret;
872
db288c9c 873 if (state <= PCI_D0)
448bd857
HY
874 return -EINVAL;
875 ret = pci_platform_power_transition(dev, state);
876 /* Power off the bridge may power off the whole hierarchy */
877 if (!ret && state == PCI_D3cold)
878 __pci_bus_set_current_state(dev->subordinate, PCI_D3cold);
879 return ret;
0e5dd46b
RW
880}
881EXPORT_SYMBOL_GPL(__pci_complete_power_transition);
882
44e4e66e
RW
883/**
884 * pci_set_power_state - Set the power state of a PCI device
885 * @dev: PCI device to handle.
886 * @state: PCI power state (D0, D1, D2, D3hot) to put the device into.
887 *
877d0310 888 * Transition a device to a new power state, using the platform firmware and/or
44e4e66e
RW
889 * the device's PCI PM registers.
890 *
891 * RETURN VALUE:
892 * -EINVAL if the requested state is invalid.
893 * -EIO if device does not support PCI PM or its PM capabilities register has a
894 * wrong version, or device doesn't support the requested state.
895 * 0 if device already is in the requested state.
896 * 0 if device's power state has been successfully changed.
897 */
898int pci_set_power_state(struct pci_dev *dev, pci_power_t state)
899{
337001b6 900 int error;
44e4e66e
RW
901
902 /* bound the state we're entering */
448bd857
HY
903 if (state > PCI_D3cold)
904 state = PCI_D3cold;
44e4e66e
RW
905 else if (state < PCI_D0)
906 state = PCI_D0;
907 else if ((state == PCI_D1 || state == PCI_D2) && pci_no_d1d2(dev))
908 /*
909 * If the device or the parent bridge do not support PCI PM,
910 * ignore the request if we're doing anything other than putting
911 * it into D0 (which would only happen on boot).
912 */
913 return 0;
914
db288c9c
RW
915 /* Check if we're already there */
916 if (dev->current_state == state)
917 return 0;
918
0e5dd46b
RW
919 __pci_start_power_transition(dev, state);
920
979b1791
AC
921 /* This device is quirked not to be put into D3, so
922 don't put it in D3 */
448bd857 923 if (state >= PCI_D3hot && (dev->dev_flags & PCI_DEV_FLAGS_NO_D3))
979b1791 924 return 0;
44e4e66e 925
448bd857
HY
926 /*
927 * To put device in D3cold, we put device into D3hot in native
928 * way, then put device into D3cold with platform ops
929 */
930 error = pci_raw_set_power_state(dev, state > PCI_D3hot ?
931 PCI_D3hot : state);
44e4e66e 932
0e5dd46b
RW
933 if (!__pci_complete_power_transition(dev, state))
934 error = 0;
44e4e66e
RW
935
936 return error;
937}
b7fe9434 938EXPORT_SYMBOL(pci_set_power_state);
44e4e66e 939
1da177e4
LT
940/**
941 * pci_choose_state - Choose the power state of a PCI device
942 * @dev: PCI device to be suspended
943 * @state: target sleep state for the whole system. This is the value
944 * that is passed to suspend() function.
945 *
946 * Returns PCI power state suitable for given device and given system
947 * message.
948 */
949
950pci_power_t pci_choose_state(struct pci_dev *dev, pm_message_t state)
951{
ab826ca4 952 pci_power_t ret;
0f64474b 953
728cdb75 954 if (!dev->pm_cap)
1da177e4
LT
955 return PCI_D0;
956
961d9120
RW
957 ret = platform_pci_choose_state(dev);
958 if (ret != PCI_POWER_ERROR)
959 return ret;
ca078bae
PM
960
961 switch (state.event) {
962 case PM_EVENT_ON:
963 return PCI_D0;
964 case PM_EVENT_FREEZE:
b887d2e6
DB
965 case PM_EVENT_PRETHAW:
966 /* REVISIT both freeze and pre-thaw "should" use D0 */
ca078bae 967 case PM_EVENT_SUSPEND:
3a2d5b70 968 case PM_EVENT_HIBERNATE:
ca078bae 969 return PCI_D3hot;
1da177e4 970 default:
80ccba11
BH
971 dev_info(&dev->dev, "unrecognized suspend event %d\n",
972 state.event);
1da177e4
LT
973 BUG();
974 }
975 return PCI_D0;
976}
1da177e4
LT
977EXPORT_SYMBOL(pci_choose_state);
978
89858517
YZ
979#define PCI_EXP_SAVE_REGS 7
980
fd0f7f73
AW
981static struct pci_cap_saved_state *_pci_find_saved_cap(struct pci_dev *pci_dev,
982 u16 cap, bool extended)
34a4876e
YL
983{
984 struct pci_cap_saved_state *tmp;
34a4876e 985
b67bfe0d 986 hlist_for_each_entry(tmp, &pci_dev->saved_cap_space, next) {
fd0f7f73 987 if (tmp->cap.cap_extended == extended && tmp->cap.cap_nr == cap)
34a4876e
YL
988 return tmp;
989 }
990 return NULL;
991}
992
fd0f7f73
AW
993struct pci_cap_saved_state *pci_find_saved_cap(struct pci_dev *dev, char cap)
994{
995 return _pci_find_saved_cap(dev, cap, false);
996}
997
998struct pci_cap_saved_state *pci_find_saved_ext_cap(struct pci_dev *dev, u16 cap)
999{
1000 return _pci_find_saved_cap(dev, cap, true);
1001}
1002
b56a5a23
MT
1003static int pci_save_pcie_state(struct pci_dev *dev)
1004{
59875ae4 1005 int i = 0;
b56a5a23
MT
1006 struct pci_cap_saved_state *save_state;
1007 u16 *cap;
1008
59875ae4 1009 if (!pci_is_pcie(dev))
b56a5a23
MT
1010 return 0;
1011
9f35575d 1012 save_state = pci_find_saved_cap(dev, PCI_CAP_ID_EXP);
b56a5a23 1013 if (!save_state) {
e496b617 1014 dev_err(&dev->dev, "buffer not found in %s\n", __func__);
b56a5a23
MT
1015 return -ENOMEM;
1016 }
63f4898a 1017
59875ae4
JL
1018 cap = (u16 *)&save_state->cap.data[0];
1019 pcie_capability_read_word(dev, PCI_EXP_DEVCTL, &cap[i++]);
1020 pcie_capability_read_word(dev, PCI_EXP_LNKCTL, &cap[i++]);
1021 pcie_capability_read_word(dev, PCI_EXP_SLTCTL, &cap[i++]);
1022 pcie_capability_read_word(dev, PCI_EXP_RTCTL, &cap[i++]);
1023 pcie_capability_read_word(dev, PCI_EXP_DEVCTL2, &cap[i++]);
1024 pcie_capability_read_word(dev, PCI_EXP_LNKCTL2, &cap[i++]);
1025 pcie_capability_read_word(dev, PCI_EXP_SLTCTL2, &cap[i++]);
9cb604ed 1026
b56a5a23
MT
1027 return 0;
1028}
1029
1030static void pci_restore_pcie_state(struct pci_dev *dev)
1031{
59875ae4 1032 int i = 0;
b56a5a23
MT
1033 struct pci_cap_saved_state *save_state;
1034 u16 *cap;
1035
1036 save_state = pci_find_saved_cap(dev, PCI_CAP_ID_EXP);
59875ae4 1037 if (!save_state)
9cb604ed
MS
1038 return;
1039
59875ae4
JL
1040 cap = (u16 *)&save_state->cap.data[0];
1041 pcie_capability_write_word(dev, PCI_EXP_DEVCTL, cap[i++]);
1042 pcie_capability_write_word(dev, PCI_EXP_LNKCTL, cap[i++]);
1043 pcie_capability_write_word(dev, PCI_EXP_SLTCTL, cap[i++]);
1044 pcie_capability_write_word(dev, PCI_EXP_RTCTL, cap[i++]);
1045 pcie_capability_write_word(dev, PCI_EXP_DEVCTL2, cap[i++]);
1046 pcie_capability_write_word(dev, PCI_EXP_LNKCTL2, cap[i++]);
1047 pcie_capability_write_word(dev, PCI_EXP_SLTCTL2, cap[i++]);
b56a5a23
MT
1048}
1049
cc692a5f
SH
1050
1051static int pci_save_pcix_state(struct pci_dev *dev)
1052{
63f4898a 1053 int pos;
cc692a5f 1054 struct pci_cap_saved_state *save_state;
cc692a5f
SH
1055
1056 pos = pci_find_capability(dev, PCI_CAP_ID_PCIX);
0a1a9b49 1057 if (!pos)
cc692a5f
SH
1058 return 0;
1059
f34303de 1060 save_state = pci_find_saved_cap(dev, PCI_CAP_ID_PCIX);
cc692a5f 1061 if (!save_state) {
e496b617 1062 dev_err(&dev->dev, "buffer not found in %s\n", __func__);
cc692a5f
SH
1063 return -ENOMEM;
1064 }
cc692a5f 1065
24a4742f
AW
1066 pci_read_config_word(dev, pos + PCI_X_CMD,
1067 (u16 *)save_state->cap.data);
63f4898a 1068
cc692a5f
SH
1069 return 0;
1070}
1071
1072static void pci_restore_pcix_state(struct pci_dev *dev)
1073{
1074 int i = 0, pos;
1075 struct pci_cap_saved_state *save_state;
1076 u16 *cap;
1077
1078 save_state = pci_find_saved_cap(dev, PCI_CAP_ID_PCIX);
1079 pos = pci_find_capability(dev, PCI_CAP_ID_PCIX);
0a1a9b49 1080 if (!save_state || !pos)
cc692a5f 1081 return;
24a4742f 1082 cap = (u16 *)&save_state->cap.data[0];
cc692a5f
SH
1083
1084 pci_write_config_word(dev, pos + PCI_X_CMD, cap[i++]);
cc692a5f
SH
1085}
1086
1087
1da177e4
LT
1088/**
1089 * pci_save_state - save the PCI configuration space of a device before suspending
1090 * @dev: - PCI device that we're dealing with
1da177e4 1091 */
3c78bc61 1092int pci_save_state(struct pci_dev *dev)
1da177e4
LT
1093{
1094 int i;
1095 /* XXX: 100% dword access ok here? */
1096 for (i = 0; i < 16; i++)
9e0b5b2c 1097 pci_read_config_dword(dev, i * 4, &dev->saved_config_space[i]);
aa8c6c93 1098 dev->state_saved = true;
79e50e72
QL
1099
1100 i = pci_save_pcie_state(dev);
1101 if (i != 0)
b56a5a23 1102 return i;
79e50e72
QL
1103
1104 i = pci_save_pcix_state(dev);
1105 if (i != 0)
cc692a5f 1106 return i;
79e50e72 1107
754834b9 1108 return pci_save_vc_state(dev);
1da177e4 1109}
b7fe9434 1110EXPORT_SYMBOL(pci_save_state);
1da177e4 1111
ebfc5b80
RW
1112static void pci_restore_config_dword(struct pci_dev *pdev, int offset,
1113 u32 saved_val, int retry)
1114{
1115 u32 val;
1116
1117 pci_read_config_dword(pdev, offset, &val);
1118 if (val == saved_val)
1119 return;
1120
1121 for (;;) {
227f0647
RD
1122 dev_dbg(&pdev->dev, "restoring config space at offset %#x (was %#x, writing %#x)\n",
1123 offset, val, saved_val);
ebfc5b80
RW
1124 pci_write_config_dword(pdev, offset, saved_val);
1125 if (retry-- <= 0)
1126 return;
1127
1128 pci_read_config_dword(pdev, offset, &val);
1129 if (val == saved_val)
1130 return;
1131
1132 mdelay(1);
1133 }
1134}
1135
a6cb9ee7
RW
1136static void pci_restore_config_space_range(struct pci_dev *pdev,
1137 int start, int end, int retry)
ebfc5b80
RW
1138{
1139 int index;
1140
1141 for (index = end; index >= start; index--)
1142 pci_restore_config_dword(pdev, 4 * index,
1143 pdev->saved_config_space[index],
1144 retry);
1145}
1146
a6cb9ee7
RW
1147static void pci_restore_config_space(struct pci_dev *pdev)
1148{
1149 if (pdev->hdr_type == PCI_HEADER_TYPE_NORMAL) {
1150 pci_restore_config_space_range(pdev, 10, 15, 0);
1151 /* Restore BARs before the command register. */
1152 pci_restore_config_space_range(pdev, 4, 9, 10);
1153 pci_restore_config_space_range(pdev, 0, 3, 0);
1154 } else {
1155 pci_restore_config_space_range(pdev, 0, 15, 0);
1156 }
1157}
1158
f7625980 1159/**
1da177e4
LT
1160 * pci_restore_state - Restore the saved state of a PCI device
1161 * @dev: - PCI device that we're dealing with
1da177e4 1162 */
1d3c16a8 1163void pci_restore_state(struct pci_dev *dev)
1da177e4 1164{
c82f63e4 1165 if (!dev->state_saved)
1d3c16a8 1166 return;
4b77b0a2 1167
b56a5a23
MT
1168 /* PCI Express register must be restored first */
1169 pci_restore_pcie_state(dev);
4ebeb1ec
CT
1170 pci_restore_pasid_state(dev);
1171 pci_restore_pri_state(dev);
1900ca13 1172 pci_restore_ats_state(dev);
425c1b22 1173 pci_restore_vc_state(dev);
b56a5a23 1174
b07461a8
TI
1175 pci_cleanup_aer_error_status_regs(dev);
1176
a6cb9ee7 1177 pci_restore_config_space(dev);
ebfc5b80 1178
cc692a5f 1179 pci_restore_pcix_state(dev);
41017f0c 1180 pci_restore_msi_state(dev);
ccbc175a
AD
1181
1182 /* Restore ACS and IOV configuration state */
1183 pci_enable_acs(dev);
8c5cdb6a 1184 pci_restore_iov_state(dev);
8fed4b65 1185
4b77b0a2 1186 dev->state_saved = false;
1da177e4 1187}
b7fe9434 1188EXPORT_SYMBOL(pci_restore_state);
1da177e4 1189
ffbdd3f7
AW
1190struct pci_saved_state {
1191 u32 config_space[16];
1192 struct pci_cap_saved_data cap[0];
1193};
1194
1195/**
1196 * pci_store_saved_state - Allocate and return an opaque struct containing
1197 * the device saved state.
1198 * @dev: PCI device that we're dealing with
1199 *
f7625980 1200 * Return NULL if no state or error.
ffbdd3f7
AW
1201 */
1202struct pci_saved_state *pci_store_saved_state(struct pci_dev *dev)
1203{
1204 struct pci_saved_state *state;
1205 struct pci_cap_saved_state *tmp;
1206 struct pci_cap_saved_data *cap;
ffbdd3f7
AW
1207 size_t size;
1208
1209 if (!dev->state_saved)
1210 return NULL;
1211
1212 size = sizeof(*state) + sizeof(struct pci_cap_saved_data);
1213
b67bfe0d 1214 hlist_for_each_entry(tmp, &dev->saved_cap_space, next)
ffbdd3f7
AW
1215 size += sizeof(struct pci_cap_saved_data) + tmp->cap.size;
1216
1217 state = kzalloc(size, GFP_KERNEL);
1218 if (!state)
1219 return NULL;
1220
1221 memcpy(state->config_space, dev->saved_config_space,
1222 sizeof(state->config_space));
1223
1224 cap = state->cap;
b67bfe0d 1225 hlist_for_each_entry(tmp, &dev->saved_cap_space, next) {
ffbdd3f7
AW
1226 size_t len = sizeof(struct pci_cap_saved_data) + tmp->cap.size;
1227 memcpy(cap, &tmp->cap, len);
1228 cap = (struct pci_cap_saved_data *)((u8 *)cap + len);
1229 }
1230 /* Empty cap_save terminates list */
1231
1232 return state;
1233}
1234EXPORT_SYMBOL_GPL(pci_store_saved_state);
1235
1236/**
1237 * pci_load_saved_state - Reload the provided save state into struct pci_dev.
1238 * @dev: PCI device that we're dealing with
1239 * @state: Saved state returned from pci_store_saved_state()
1240 */
98d9b271
KRW
1241int pci_load_saved_state(struct pci_dev *dev,
1242 struct pci_saved_state *state)
ffbdd3f7
AW
1243{
1244 struct pci_cap_saved_data *cap;
1245
1246 dev->state_saved = false;
1247
1248 if (!state)
1249 return 0;
1250
1251 memcpy(dev->saved_config_space, state->config_space,
1252 sizeof(state->config_space));
1253
1254 cap = state->cap;
1255 while (cap->size) {
1256 struct pci_cap_saved_state *tmp;
1257
fd0f7f73 1258 tmp = _pci_find_saved_cap(dev, cap->cap_nr, cap->cap_extended);
ffbdd3f7
AW
1259 if (!tmp || tmp->cap.size != cap->size)
1260 return -EINVAL;
1261
1262 memcpy(tmp->cap.data, cap->data, tmp->cap.size);
1263 cap = (struct pci_cap_saved_data *)((u8 *)cap +
1264 sizeof(struct pci_cap_saved_data) + cap->size);
1265 }
1266
1267 dev->state_saved = true;
1268 return 0;
1269}
98d9b271 1270EXPORT_SYMBOL_GPL(pci_load_saved_state);
ffbdd3f7
AW
1271
1272/**
1273 * pci_load_and_free_saved_state - Reload the save state pointed to by state,
1274 * and free the memory allocated for it.
1275 * @dev: PCI device that we're dealing with
1276 * @state: Pointer to saved state returned from pci_store_saved_state()
1277 */
1278int pci_load_and_free_saved_state(struct pci_dev *dev,
1279 struct pci_saved_state **state)
1280{
1281 int ret = pci_load_saved_state(dev, *state);
1282 kfree(*state);
1283 *state = NULL;
1284 return ret;
1285}
1286EXPORT_SYMBOL_GPL(pci_load_and_free_saved_state);
1287
8a9d5609
BH
1288int __weak pcibios_enable_device(struct pci_dev *dev, int bars)
1289{
1290 return pci_enable_resources(dev, bars);
1291}
1292
38cc1302
HS
1293static int do_pci_enable_device(struct pci_dev *dev, int bars)
1294{
1295 int err;
1f6ae47e 1296 struct pci_dev *bridge;
1e2571a7
BH
1297 u16 cmd;
1298 u8 pin;
38cc1302
HS
1299
1300 err = pci_set_power_state(dev, PCI_D0);
1301 if (err < 0 && err != -EIO)
1302 return err;
1f6ae47e
VS
1303
1304 bridge = pci_upstream_bridge(dev);
1305 if (bridge)
1306 pcie_aspm_powersave_config_link(bridge);
1307
38cc1302
HS
1308 err = pcibios_enable_device(dev, bars);
1309 if (err < 0)
1310 return err;
1311 pci_fixup_device(pci_fixup_enable, dev);
1312
866d5417
BH
1313 if (dev->msi_enabled || dev->msix_enabled)
1314 return 0;
1315
1e2571a7
BH
1316 pci_read_config_byte(dev, PCI_INTERRUPT_PIN, &pin);
1317 if (pin) {
1318 pci_read_config_word(dev, PCI_COMMAND, &cmd);
1319 if (cmd & PCI_COMMAND_INTX_DISABLE)
1320 pci_write_config_word(dev, PCI_COMMAND,
1321 cmd & ~PCI_COMMAND_INTX_DISABLE);
1322 }
1323
38cc1302
HS
1324 return 0;
1325}
1326
1327/**
0b62e13b 1328 * pci_reenable_device - Resume abandoned device
38cc1302
HS
1329 * @dev: PCI device to be resumed
1330 *
1331 * Note this function is a backend of pci_default_resume and is not supposed
1332 * to be called by normal code, write proper resume handler and use it instead.
1333 */
0b62e13b 1334int pci_reenable_device(struct pci_dev *dev)
38cc1302 1335{
296ccb08 1336 if (pci_is_enabled(dev))
38cc1302
HS
1337 return do_pci_enable_device(dev, (1 << PCI_NUM_RESOURCES) - 1);
1338 return 0;
1339}
b7fe9434 1340EXPORT_SYMBOL(pci_reenable_device);
38cc1302 1341
928bea96
YL
1342static void pci_enable_bridge(struct pci_dev *dev)
1343{
79272138 1344 struct pci_dev *bridge;
928bea96
YL
1345 int retval;
1346
79272138
BH
1347 bridge = pci_upstream_bridge(dev);
1348 if (bridge)
1349 pci_enable_bridge(bridge);
928bea96 1350
cf3e1feb 1351 if (pci_is_enabled(dev)) {
fbeeb822 1352 if (!dev->is_busmaster)
cf3e1feb 1353 pci_set_master(dev);
928bea96 1354 return;
cf3e1feb
YL
1355 }
1356
928bea96
YL
1357 retval = pci_enable_device(dev);
1358 if (retval)
1359 dev_err(&dev->dev, "Error enabling bridge (%d), continuing\n",
1360 retval);
1361 pci_set_master(dev);
1362}
1363
b4b4fbba 1364static int pci_enable_device_flags(struct pci_dev *dev, unsigned long flags)
1da177e4 1365{
79272138 1366 struct pci_dev *bridge;
1da177e4 1367 int err;
b718989d 1368 int i, bars = 0;
1da177e4 1369
97c145f7
JB
1370 /*
1371 * Power state could be unknown at this point, either due to a fresh
1372 * boot or a device removal call. So get the current power state
1373 * so that things like MSI message writing will behave as expected
1374 * (e.g. if the device really is in D0 at enable time).
1375 */
1376 if (dev->pm_cap) {
1377 u16 pmcsr;
1378 pci_read_config_word(dev, dev->pm_cap + PCI_PM_CTRL, &pmcsr);
1379 dev->current_state = (pmcsr & PCI_PM_CTRL_STATE_MASK);
1380 }
1381
cc7ba39b 1382 if (atomic_inc_return(&dev->enable_cnt) > 1)
9fb625c3
HS
1383 return 0; /* already enabled */
1384
79272138
BH
1385 bridge = pci_upstream_bridge(dev);
1386 if (bridge)
1387 pci_enable_bridge(bridge);
928bea96 1388
497f16f2
YL
1389 /* only skip sriov related */
1390 for (i = 0; i <= PCI_ROM_RESOURCE; i++)
1391 if (dev->resource[i].flags & flags)
1392 bars |= (1 << i);
1393 for (i = PCI_BRIDGE_RESOURCES; i < DEVICE_COUNT_RESOURCE; i++)
b718989d
BH
1394 if (dev->resource[i].flags & flags)
1395 bars |= (1 << i);
1396
38cc1302 1397 err = do_pci_enable_device(dev, bars);
95a62965 1398 if (err < 0)
38cc1302 1399 atomic_dec(&dev->enable_cnt);
9fb625c3 1400 return err;
1da177e4
LT
1401}
1402
b718989d
BH
1403/**
1404 * pci_enable_device_io - Initialize a device for use with IO space
1405 * @dev: PCI device to be initialized
1406 *
1407 * Initialize device before it's used by a driver. Ask low-level code
1408 * to enable I/O resources. Wake up the device if it was suspended.
1409 * Beware, this function can fail.
1410 */
1411int pci_enable_device_io(struct pci_dev *dev)
1412{
b4b4fbba 1413 return pci_enable_device_flags(dev, IORESOURCE_IO);
b718989d 1414}
b7fe9434 1415EXPORT_SYMBOL(pci_enable_device_io);
b718989d
BH
1416
1417/**
1418 * pci_enable_device_mem - Initialize a device for use with Memory space
1419 * @dev: PCI device to be initialized
1420 *
1421 * Initialize device before it's used by a driver. Ask low-level code
1422 * to enable Memory resources. Wake up the device if it was suspended.
1423 * Beware, this function can fail.
1424 */
1425int pci_enable_device_mem(struct pci_dev *dev)
1426{
b4b4fbba 1427 return pci_enable_device_flags(dev, IORESOURCE_MEM);
b718989d 1428}
b7fe9434 1429EXPORT_SYMBOL(pci_enable_device_mem);
b718989d 1430
bae94d02
IPG
1431/**
1432 * pci_enable_device - Initialize device before it's used by a driver.
1433 * @dev: PCI device to be initialized
1434 *
1435 * Initialize device before it's used by a driver. Ask low-level code
1436 * to enable I/O and memory. Wake up the device if it was suspended.
1437 * Beware, this function can fail.
1438 *
1439 * Note we don't actually enable the device many times if we call
1440 * this function repeatedly (we just increment the count).
1441 */
1442int pci_enable_device(struct pci_dev *dev)
1443{
b4b4fbba 1444 return pci_enable_device_flags(dev, IORESOURCE_MEM | IORESOURCE_IO);
bae94d02 1445}
b7fe9434 1446EXPORT_SYMBOL(pci_enable_device);
bae94d02 1447
9ac7849e
TH
1448/*
1449 * Managed PCI resources. This manages device on/off, intx/msi/msix
1450 * on/off and BAR regions. pci_dev itself records msi/msix status, so
1451 * there's no need to track it separately. pci_devres is initialized
1452 * when a device is enabled using managed PCI device enable interface.
1453 */
1454struct pci_devres {
7f375f32
TH
1455 unsigned int enabled:1;
1456 unsigned int pinned:1;
9ac7849e
TH
1457 unsigned int orig_intx:1;
1458 unsigned int restore_intx:1;
1459 u32 region_mask;
1460};
1461
1462static void pcim_release(struct device *gendev, void *res)
1463{
f3d2f165 1464 struct pci_dev *dev = to_pci_dev(gendev);
9ac7849e
TH
1465 struct pci_devres *this = res;
1466 int i;
1467
1468 if (dev->msi_enabled)
1469 pci_disable_msi(dev);
1470 if (dev->msix_enabled)
1471 pci_disable_msix(dev);
1472
1473 for (i = 0; i < DEVICE_COUNT_RESOURCE; i++)
1474 if (this->region_mask & (1 << i))
1475 pci_release_region(dev, i);
1476
1477 if (this->restore_intx)
1478 pci_intx(dev, this->orig_intx);
1479
7f375f32 1480 if (this->enabled && !this->pinned)
9ac7849e
TH
1481 pci_disable_device(dev);
1482}
1483
07656d83 1484static struct pci_devres *get_pci_dr(struct pci_dev *pdev)
9ac7849e
TH
1485{
1486 struct pci_devres *dr, *new_dr;
1487
1488 dr = devres_find(&pdev->dev, pcim_release, NULL, NULL);
1489 if (dr)
1490 return dr;
1491
1492 new_dr = devres_alloc(pcim_release, sizeof(*new_dr), GFP_KERNEL);
1493 if (!new_dr)
1494 return NULL;
1495 return devres_get(&pdev->dev, new_dr, NULL, NULL);
1496}
1497
07656d83 1498static struct pci_devres *find_pci_dr(struct pci_dev *pdev)
9ac7849e
TH
1499{
1500 if (pci_is_managed(pdev))
1501 return devres_find(&pdev->dev, pcim_release, NULL, NULL);
1502 return NULL;
1503}
1504
1505/**
1506 * pcim_enable_device - Managed pci_enable_device()
1507 * @pdev: PCI device to be initialized
1508 *
1509 * Managed pci_enable_device().
1510 */
1511int pcim_enable_device(struct pci_dev *pdev)
1512{
1513 struct pci_devres *dr;
1514 int rc;
1515
1516 dr = get_pci_dr(pdev);
1517 if (unlikely(!dr))
1518 return -ENOMEM;
b95d58ea
TH
1519 if (dr->enabled)
1520 return 0;
9ac7849e
TH
1521
1522 rc = pci_enable_device(pdev);
1523 if (!rc) {
1524 pdev->is_managed = 1;
7f375f32 1525 dr->enabled = 1;
9ac7849e
TH
1526 }
1527 return rc;
1528}
b7fe9434 1529EXPORT_SYMBOL(pcim_enable_device);
9ac7849e
TH
1530
1531/**
1532 * pcim_pin_device - Pin managed PCI device
1533 * @pdev: PCI device to pin
1534 *
1535 * Pin managed PCI device @pdev. Pinned device won't be disabled on
1536 * driver detach. @pdev must have been enabled with
1537 * pcim_enable_device().
1538 */
1539void pcim_pin_device(struct pci_dev *pdev)
1540{
1541 struct pci_devres *dr;
1542
1543 dr = find_pci_dr(pdev);
7f375f32 1544 WARN_ON(!dr || !dr->enabled);
9ac7849e 1545 if (dr)
7f375f32 1546 dr->pinned = 1;
9ac7849e 1547}
b7fe9434 1548EXPORT_SYMBOL(pcim_pin_device);
9ac7849e 1549
eca0d467
MG
1550/*
1551 * pcibios_add_device - provide arch specific hooks when adding device dev
1552 * @dev: the PCI device being added
1553 *
1554 * Permits the platform to provide architecture specific functionality when
1555 * devices are added. This is the default implementation. Architecture
1556 * implementations can override this.
1557 */
3c78bc61 1558int __weak pcibios_add_device(struct pci_dev *dev)
eca0d467
MG
1559{
1560 return 0;
1561}
1562
6ae32c53
SO
1563/**
1564 * pcibios_release_device - provide arch specific hooks when releasing device dev
1565 * @dev: the PCI device being released
1566 *
1567 * Permits the platform to provide architecture specific functionality when
1568 * devices are released. This is the default implementation. Architecture
1569 * implementations can override this.
1570 */
1571void __weak pcibios_release_device(struct pci_dev *dev) {}
1572
1da177e4
LT
1573/**
1574 * pcibios_disable_device - disable arch specific PCI resources for device dev
1575 * @dev: the PCI device to disable
1576 *
1577 * Disables architecture specific PCI resources for the device. This
1578 * is the default implementation. Architecture implementations can
1579 * override this.
1580 */
ff3ce480 1581void __weak pcibios_disable_device(struct pci_dev *dev) {}
1da177e4 1582
a43ae58c
HG
1583/**
1584 * pcibios_penalize_isa_irq - penalize an ISA IRQ
1585 * @irq: ISA IRQ to penalize
1586 * @active: IRQ active or not
1587 *
1588 * Permits the platform to provide architecture-specific functionality when
1589 * penalizing ISA IRQs. This is the default implementation. Architecture
1590 * implementations can override this.
1591 */
1592void __weak pcibios_penalize_isa_irq(int irq, int active) {}
1593
fa58d305
RW
1594static void do_pci_disable_device(struct pci_dev *dev)
1595{
1596 u16 pci_command;
1597
1598 pci_read_config_word(dev, PCI_COMMAND, &pci_command);
1599 if (pci_command & PCI_COMMAND_MASTER) {
1600 pci_command &= ~PCI_COMMAND_MASTER;
1601 pci_write_config_word(dev, PCI_COMMAND, pci_command);
1602 }
1603
1604 pcibios_disable_device(dev);
1605}
1606
1607/**
1608 * pci_disable_enabled_device - Disable device without updating enable_cnt
1609 * @dev: PCI device to disable
1610 *
1611 * NOTE: This function is a backend of PCI power management routines and is
1612 * not supposed to be called drivers.
1613 */
1614void pci_disable_enabled_device(struct pci_dev *dev)
1615{
296ccb08 1616 if (pci_is_enabled(dev))
fa58d305
RW
1617 do_pci_disable_device(dev);
1618}
1619
1da177e4
LT
1620/**
1621 * pci_disable_device - Disable PCI device after use
1622 * @dev: PCI device to be disabled
1623 *
1624 * Signal to the system that the PCI device is not in use by the system
1625 * anymore. This only involves disabling PCI bus-mastering, if active.
bae94d02
IPG
1626 *
1627 * Note we don't actually disable the device until all callers of
ee6583f6 1628 * pci_enable_device() have called pci_disable_device().
1da177e4 1629 */
3c78bc61 1630void pci_disable_device(struct pci_dev *dev)
1da177e4 1631{
9ac7849e 1632 struct pci_devres *dr;
99dc804d 1633
9ac7849e
TH
1634 dr = find_pci_dr(dev);
1635 if (dr)
7f375f32 1636 dr->enabled = 0;
9ac7849e 1637
fd6dceab
KK
1638 dev_WARN_ONCE(&dev->dev, atomic_read(&dev->enable_cnt) <= 0,
1639 "disabling already-disabled device");
1640
cc7ba39b 1641 if (atomic_dec_return(&dev->enable_cnt) != 0)
bae94d02
IPG
1642 return;
1643
fa58d305 1644 do_pci_disable_device(dev);
1da177e4 1645
fa58d305 1646 dev->is_busmaster = 0;
1da177e4 1647}
b7fe9434 1648EXPORT_SYMBOL(pci_disable_device);
1da177e4 1649
f7bdd12d
BK
1650/**
1651 * pcibios_set_pcie_reset_state - set reset state for device dev
45e829ea 1652 * @dev: the PCIe device reset
f7bdd12d
BK
1653 * @state: Reset state to enter into
1654 *
1655 *
45e829ea 1656 * Sets the PCIe reset state for the device. This is the default
f7bdd12d
BK
1657 * implementation. Architecture implementations can override this.
1658 */
d6d88c83
BH
1659int __weak pcibios_set_pcie_reset_state(struct pci_dev *dev,
1660 enum pcie_reset_state state)
f7bdd12d
BK
1661{
1662 return -EINVAL;
1663}
1664
1665/**
1666 * pci_set_pcie_reset_state - set reset state for device dev
45e829ea 1667 * @dev: the PCIe device reset
f7bdd12d
BK
1668 * @state: Reset state to enter into
1669 *
1670 *
1671 * Sets the PCI reset state for the device.
1672 */
1673int pci_set_pcie_reset_state(struct pci_dev *dev, enum pcie_reset_state state)
1674{
1675 return pcibios_set_pcie_reset_state(dev, state);
1676}
b7fe9434 1677EXPORT_SYMBOL_GPL(pci_set_pcie_reset_state);
f7bdd12d 1678
58ff4633
RW
1679/**
1680 * pci_check_pme_status - Check if given device has generated PME.
1681 * @dev: Device to check.
1682 *
1683 * Check the PME status of the device and if set, clear it and clear PME enable
1684 * (if set). Return 'true' if PME status and PME enable were both set or
1685 * 'false' otherwise.
1686 */
1687bool pci_check_pme_status(struct pci_dev *dev)
1688{
1689 int pmcsr_pos;
1690 u16 pmcsr;
1691 bool ret = false;
1692
1693 if (!dev->pm_cap)
1694 return false;
1695
1696 pmcsr_pos = dev->pm_cap + PCI_PM_CTRL;
1697 pci_read_config_word(dev, pmcsr_pos, &pmcsr);
1698 if (!(pmcsr & PCI_PM_CTRL_PME_STATUS))
1699 return false;
1700
1701 /* Clear PME status. */
1702 pmcsr |= PCI_PM_CTRL_PME_STATUS;
1703 if (pmcsr & PCI_PM_CTRL_PME_ENABLE) {
1704 /* Disable PME to avoid interrupt flood. */
1705 pmcsr &= ~PCI_PM_CTRL_PME_ENABLE;
1706 ret = true;
1707 }
1708
1709 pci_write_config_word(dev, pmcsr_pos, pmcsr);
1710
1711 return ret;
1712}
1713
b67ea761
RW
1714/**
1715 * pci_pme_wakeup - Wake up a PCI device if its PME Status bit is set.
1716 * @dev: Device to handle.
379021d5 1717 * @pme_poll_reset: Whether or not to reset the device's pme_poll flag.
b67ea761
RW
1718 *
1719 * Check if @dev has generated PME and queue a resume request for it in that
1720 * case.
1721 */
379021d5 1722static int pci_pme_wakeup(struct pci_dev *dev, void *pme_poll_reset)
b67ea761 1723{
379021d5
RW
1724 if (pme_poll_reset && dev->pme_poll)
1725 dev->pme_poll = false;
1726
c125e96f 1727 if (pci_check_pme_status(dev)) {
c125e96f 1728 pci_wakeup_event(dev);
0f953bf6 1729 pm_request_resume(&dev->dev);
c125e96f 1730 }
b67ea761
RW
1731 return 0;
1732}
1733
1734/**
1735 * pci_pme_wakeup_bus - Walk given bus and wake up devices on it, if necessary.
1736 * @bus: Top bus of the subtree to walk.
1737 */
1738void pci_pme_wakeup_bus(struct pci_bus *bus)
1739{
1740 if (bus)
379021d5 1741 pci_walk_bus(bus, pci_pme_wakeup, (void *)true);
b67ea761
RW
1742}
1743
448bd857 1744
eb9d0fe4
RW
1745/**
1746 * pci_pme_capable - check the capability of PCI device to generate PME#
1747 * @dev: PCI device to handle.
eb9d0fe4
RW
1748 * @state: PCI state from which device will issue PME#.
1749 */
e5899e1b 1750bool pci_pme_capable(struct pci_dev *dev, pci_power_t state)
eb9d0fe4 1751{
337001b6 1752 if (!dev->pm_cap)
eb9d0fe4
RW
1753 return false;
1754
337001b6 1755 return !!(dev->pme_support & (1 << state));
eb9d0fe4 1756}
b7fe9434 1757EXPORT_SYMBOL(pci_pme_capable);
eb9d0fe4 1758
df17e62e
MG
1759static void pci_pme_list_scan(struct work_struct *work)
1760{
379021d5 1761 struct pci_pme_device *pme_dev, *n;
df17e62e
MG
1762
1763 mutex_lock(&pci_pme_list_mutex);
ce300008
BH
1764 list_for_each_entry_safe(pme_dev, n, &pci_pme_list, list) {
1765 if (pme_dev->dev->pme_poll) {
1766 struct pci_dev *bridge;
1767
1768 bridge = pme_dev->dev->bus->self;
1769 /*
1770 * If bridge is in low power state, the
1771 * configuration space of subordinate devices
1772 * may be not accessible
1773 */
1774 if (bridge && bridge->current_state != PCI_D0)
1775 continue;
1776 pci_pme_wakeup(pme_dev->dev, NULL);
1777 } else {
1778 list_del(&pme_dev->list);
1779 kfree(pme_dev);
379021d5 1780 }
df17e62e 1781 }
ce300008 1782 if (!list_empty(&pci_pme_list))
ea00353f
LW
1783 queue_delayed_work(system_freezable_wq, &pci_pme_work,
1784 msecs_to_jiffies(PME_TIMEOUT));
df17e62e
MG
1785 mutex_unlock(&pci_pme_list_mutex);
1786}
1787
2cef548a 1788static void __pci_pme_active(struct pci_dev *dev, bool enable)
eb9d0fe4
RW
1789{
1790 u16 pmcsr;
1791
ffaddbe8 1792 if (!dev->pme_support)
eb9d0fe4
RW
1793 return;
1794
337001b6 1795 pci_read_config_word(dev, dev->pm_cap + PCI_PM_CTRL, &pmcsr);
eb9d0fe4
RW
1796 /* Clear PME_Status by writing 1 to it and enable PME# */
1797 pmcsr |= PCI_PM_CTRL_PME_STATUS | PCI_PM_CTRL_PME_ENABLE;
1798 if (!enable)
1799 pmcsr &= ~PCI_PM_CTRL_PME_ENABLE;
1800
337001b6 1801 pci_write_config_word(dev, dev->pm_cap + PCI_PM_CTRL, pmcsr);
2cef548a
RW
1802}
1803
0ce3fcaf
RW
1804/**
1805 * pci_pme_restore - Restore PME configuration after config space restore.
1806 * @dev: PCI device to update.
1807 */
1808void pci_pme_restore(struct pci_dev *dev)
dc15e71e
RW
1809{
1810 u16 pmcsr;
1811
1812 if (!dev->pme_support)
1813 return;
1814
1815 pci_read_config_word(dev, dev->pm_cap + PCI_PM_CTRL, &pmcsr);
1816 if (dev->wakeup_prepared) {
1817 pmcsr |= PCI_PM_CTRL_PME_ENABLE;
0ce3fcaf 1818 pmcsr &= ~PCI_PM_CTRL_PME_STATUS;
dc15e71e
RW
1819 } else {
1820 pmcsr &= ~PCI_PM_CTRL_PME_ENABLE;
1821 pmcsr |= PCI_PM_CTRL_PME_STATUS;
1822 }
1823 pci_write_config_word(dev, dev->pm_cap + PCI_PM_CTRL, pmcsr);
1824}
1825
2cef548a
RW
1826/**
1827 * pci_pme_active - enable or disable PCI device's PME# function
1828 * @dev: PCI device to handle.
1829 * @enable: 'true' to enable PME# generation; 'false' to disable it.
1830 *
1831 * The caller must verify that the device is capable of generating PME# before
1832 * calling this function with @enable equal to 'true'.
1833 */
1834void pci_pme_active(struct pci_dev *dev, bool enable)
1835{
1836 __pci_pme_active(dev, enable);
eb9d0fe4 1837
6e965e0d
HY
1838 /*
1839 * PCI (as opposed to PCIe) PME requires that the device have
1840 * its PME# line hooked up correctly. Not all hardware vendors
1841 * do this, so the PME never gets delivered and the device
1842 * remains asleep. The easiest way around this is to
1843 * periodically walk the list of suspended devices and check
1844 * whether any have their PME flag set. The assumption is that
1845 * we'll wake up often enough anyway that this won't be a huge
1846 * hit, and the power savings from the devices will still be a
1847 * win.
1848 *
1849 * Although PCIe uses in-band PME message instead of PME# line
1850 * to report PME, PME does not work for some PCIe devices in
1851 * reality. For example, there are devices that set their PME
1852 * status bits, but don't really bother to send a PME message;
1853 * there are PCI Express Root Ports that don't bother to
1854 * trigger interrupts when they receive PME messages from the
1855 * devices below. So PME poll is used for PCIe devices too.
1856 */
df17e62e 1857
379021d5 1858 if (dev->pme_poll) {
df17e62e
MG
1859 struct pci_pme_device *pme_dev;
1860 if (enable) {
1861 pme_dev = kmalloc(sizeof(struct pci_pme_device),
1862 GFP_KERNEL);
0394cb19
BH
1863 if (!pme_dev) {
1864 dev_warn(&dev->dev, "can't enable PME#\n");
1865 return;
1866 }
df17e62e
MG
1867 pme_dev->dev = dev;
1868 mutex_lock(&pci_pme_list_mutex);
1869 list_add(&pme_dev->list, &pci_pme_list);
1870 if (list_is_singular(&pci_pme_list))
ea00353f
LW
1871 queue_delayed_work(system_freezable_wq,
1872 &pci_pme_work,
1873 msecs_to_jiffies(PME_TIMEOUT));
df17e62e
MG
1874 mutex_unlock(&pci_pme_list_mutex);
1875 } else {
1876 mutex_lock(&pci_pme_list_mutex);
1877 list_for_each_entry(pme_dev, &pci_pme_list, list) {
1878 if (pme_dev->dev == dev) {
1879 list_del(&pme_dev->list);
1880 kfree(pme_dev);
1881 break;
1882 }
1883 }
1884 mutex_unlock(&pci_pme_list_mutex);
1885 }
1886 }
1887
85b8582d 1888 dev_dbg(&dev->dev, "PME# %s\n", enable ? "enabled" : "disabled");
eb9d0fe4 1889}
b7fe9434 1890EXPORT_SYMBOL(pci_pme_active);
eb9d0fe4 1891
1da177e4 1892/**
bfb0d39a 1893 * __pci_enable_wake - enable PCI device as wakeup event source
075c1771
DB
1894 * @dev: PCI device affected
1895 * @state: PCI state from which device will issue wakeup events
1896 * @enable: True to enable event generation; false to disable
1897 *
1898 * This enables the device as a wakeup event source, or disables it.
1899 * When such events involves platform-specific hooks, those hooks are
1900 * called automatically by this routine.
1901 *
1902 * Devices with legacy power management (no standard PCI PM capabilities)
eb9d0fe4 1903 * always require such platform hooks.
075c1771 1904 *
eb9d0fe4
RW
1905 * RETURN VALUE:
1906 * 0 is returned on success
1907 * -EINVAL is returned if device is not supposed to wake up the system
1908 * Error code depending on the platform is returned if both the platform and
1909 * the native mechanism fail to enable the generation of wake-up events
1da177e4 1910 */
bfb0d39a 1911static int __pci_enable_wake(struct pci_dev *dev, pci_power_t state, bool enable)
1da177e4 1912{
5bcc2fb4 1913 int ret = 0;
075c1771 1914
0ce3fcaf
RW
1915 /* Don't do the same thing twice in a row for one device. */
1916 if (!!enable == !!dev->wakeup_prepared)
e80bb09d
RW
1917 return 0;
1918
eb9d0fe4
RW
1919 /*
1920 * According to "PCI System Architecture" 4th ed. by Tom Shanley & Don
1921 * Anderson we should be doing PME# wake enable followed by ACPI wake
1922 * enable. To disable wake-up we call the platform first, for symmetry.
075c1771 1923 */
1da177e4 1924
5bcc2fb4
RW
1925 if (enable) {
1926 int error;
1da177e4 1927
5bcc2fb4
RW
1928 if (pci_pme_capable(dev, state))
1929 pci_pme_active(dev, true);
1930 else
1931 ret = 1;
0847684c 1932 error = platform_pci_set_wakeup(dev, true);
5bcc2fb4
RW
1933 if (ret)
1934 ret = error;
e80bb09d
RW
1935 if (!ret)
1936 dev->wakeup_prepared = true;
5bcc2fb4 1937 } else {
0847684c 1938 platform_pci_set_wakeup(dev, false);
5bcc2fb4 1939 pci_pme_active(dev, false);
e80bb09d 1940 dev->wakeup_prepared = false;
5bcc2fb4 1941 }
1da177e4 1942
5bcc2fb4 1943 return ret;
eb9d0fe4 1944}
bfb0d39a
RW
1945
1946/**
1947 * pci_enable_wake - change wakeup settings for a PCI device
1948 * @pci_dev: Target device
1949 * @state: PCI state from which device will issue wakeup events
1950 * @enable: Whether or not to enable event generation
1951 *
1952 * If @enable is set, check device_may_wakeup() for the device before calling
1953 * __pci_enable_wake() for it.
1954 */
1955int pci_enable_wake(struct pci_dev *pci_dev, pci_power_t state, bool enable)
1956{
1957 if (enable && !device_may_wakeup(&pci_dev->dev))
1958 return -EINVAL;
1959
1960 return __pci_enable_wake(pci_dev, state, enable);
1961}
0847684c 1962EXPORT_SYMBOL(pci_enable_wake);
1da177e4 1963
0235c4fc
RW
1964/**
1965 * pci_wake_from_d3 - enable/disable device to wake up from D3_hot or D3_cold
1966 * @dev: PCI device to prepare
1967 * @enable: True to enable wake-up event generation; false to disable
1968 *
1969 * Many drivers want the device to wake up the system from D3_hot or D3_cold
1970 * and this function allows them to set that up cleanly - pci_enable_wake()
1971 * should not be called twice in a row to enable wake-up due to PCI PM vs ACPI
1972 * ordering constraints.
1973 *
bfb0d39a
RW
1974 * This function only returns error code if the device is not allowed to wake
1975 * up the system from sleep or it is not capable of generating PME# from both
1976 * D3_hot and D3_cold and the platform is unable to enable wake-up power for it.
0235c4fc
RW
1977 */
1978int pci_wake_from_d3(struct pci_dev *dev, bool enable)
1979{
1980 return pci_pme_capable(dev, PCI_D3cold) ?
1981 pci_enable_wake(dev, PCI_D3cold, enable) :
1982 pci_enable_wake(dev, PCI_D3hot, enable);
1983}
b7fe9434 1984EXPORT_SYMBOL(pci_wake_from_d3);
0235c4fc 1985
404cc2d8 1986/**
37139074
JB
1987 * pci_target_state - find an appropriate low power state for a given PCI dev
1988 * @dev: PCI device
666ff6f8 1989 * @wakeup: Whether or not wakeup functionality will be enabled for the device.
37139074
JB
1990 *
1991 * Use underlying platform code to find a supported low power state for @dev.
1992 * If the platform can't manage @dev, return the deepest state from which it
1993 * can generate wake events, based on any available PME info.
404cc2d8 1994 */
666ff6f8 1995static pci_power_t pci_target_state(struct pci_dev *dev, bool wakeup)
404cc2d8
RW
1996{
1997 pci_power_t target_state = PCI_D3hot;
404cc2d8
RW
1998
1999 if (platform_pci_power_manageable(dev)) {
2000 /*
2001 * Call the platform to choose the target state of the device
2002 * and enable wake-up from this state if supported.
2003 */
2004 pci_power_t state = platform_pci_choose_state(dev);
2005
2006 switch (state) {
2007 case PCI_POWER_ERROR:
2008 case PCI_UNKNOWN:
2009 break;
2010 case PCI_D1:
2011 case PCI_D2:
2012 if (pci_no_d1d2(dev))
2013 break;
2014 default:
2015 target_state = state;
404cc2d8 2016 }
4132a577
LW
2017
2018 return target_state;
2019 }
2020
2021 if (!dev->pm_cap)
d2abdf62 2022 target_state = PCI_D0;
4132a577
LW
2023
2024 /*
2025 * If the device is in D3cold even though it's not power-manageable by
2026 * the platform, it may have been powered down by non-standard means.
2027 * Best to let it slumber.
2028 */
2029 if (dev->current_state == PCI_D3cold)
2030 target_state = PCI_D3cold;
2031
666ff6f8 2032 if (wakeup) {
404cc2d8
RW
2033 /*
2034 * Find the deepest state from which the device can generate
2035 * wake-up events, make it the target state and enable device
2036 * to generate PME#.
2037 */
337001b6
RW
2038 if (dev->pme_support) {
2039 while (target_state
2040 && !(dev->pme_support & (1 << target_state)))
2041 target_state--;
404cc2d8
RW
2042 }
2043 }
2044
e5899e1b
RW
2045 return target_state;
2046}
2047
2048/**
2049 * pci_prepare_to_sleep - prepare PCI device for system-wide transition into a sleep state
2050 * @dev: Device to handle.
2051 *
2052 * Choose the power state appropriate for the device depending on whether
2053 * it can wake up the system and/or is power manageable by the platform
2054 * (PCI_D3hot is the default) and put the device into that state.
2055 */
2056int pci_prepare_to_sleep(struct pci_dev *dev)
2057{
666ff6f8
RW
2058 bool wakeup = device_may_wakeup(&dev->dev);
2059 pci_power_t target_state = pci_target_state(dev, wakeup);
e5899e1b
RW
2060 int error;
2061
2062 if (target_state == PCI_POWER_ERROR)
2063 return -EIO;
2064
666ff6f8 2065 pci_enable_wake(dev, target_state, wakeup);
c157dfa3 2066
404cc2d8
RW
2067 error = pci_set_power_state(dev, target_state);
2068
2069 if (error)
2070 pci_enable_wake(dev, target_state, false);
2071
2072 return error;
2073}
b7fe9434 2074EXPORT_SYMBOL(pci_prepare_to_sleep);
404cc2d8
RW
2075
2076/**
443bd1c4 2077 * pci_back_from_sleep - turn PCI device on during system-wide transition into working state
404cc2d8
RW
2078 * @dev: Device to handle.
2079 *
88393161 2080 * Disable device's system wake-up capability and put it into D0.
404cc2d8
RW
2081 */
2082int pci_back_from_sleep(struct pci_dev *dev)
2083{
2084 pci_enable_wake(dev, PCI_D0, false);
2085 return pci_set_power_state(dev, PCI_D0);
2086}
b7fe9434 2087EXPORT_SYMBOL(pci_back_from_sleep);
404cc2d8 2088
6cbf8214
RW
2089/**
2090 * pci_finish_runtime_suspend - Carry out PCI-specific part of runtime suspend.
2091 * @dev: PCI device being suspended.
2092 *
2093 * Prepare @dev to generate wake-up events at run time and put it into a low
2094 * power state.
2095 */
2096int pci_finish_runtime_suspend(struct pci_dev *dev)
2097{
666ff6f8 2098 pci_power_t target_state;
6cbf8214
RW
2099 int error;
2100
666ff6f8 2101 target_state = pci_target_state(dev, device_can_wakeup(&dev->dev));
6cbf8214
RW
2102 if (target_state == PCI_POWER_ERROR)
2103 return -EIO;
2104
448bd857
HY
2105 dev->runtime_d3cold = target_state == PCI_D3cold;
2106
bfb0d39a 2107 __pci_enable_wake(dev, target_state, pci_dev_run_wake(dev));
6cbf8214
RW
2108
2109 error = pci_set_power_state(dev, target_state);
2110
448bd857 2111 if (error) {
0847684c 2112 pci_enable_wake(dev, target_state, false);
448bd857
HY
2113 dev->runtime_d3cold = false;
2114 }
6cbf8214
RW
2115
2116 return error;
2117}
2118
b67ea761
RW
2119/**
2120 * pci_dev_run_wake - Check if device can generate run-time wake-up events.
2121 * @dev: Device to check.
2122 *
f7625980 2123 * Return true if the device itself is capable of generating wake-up events
b67ea761
RW
2124 * (through the platform or using the native PCIe PME) or if the device supports
2125 * PME and one of its upstream bridges can generate wake-up events.
2126 */
2127bool pci_dev_run_wake(struct pci_dev *dev)
2128{
2129 struct pci_bus *bus = dev->bus;
2130
b67ea761
RW
2131 if (!dev->pme_support)
2132 return false;
2133
666ff6f8 2134 /* PME-capable in principle, but not from the target power state */
7ff32c64 2135 if (!pci_pme_capable(dev, pci_target_state(dev, true)))
6496ebd7
AS
2136 return false;
2137
7ff32c64
KHF
2138 if (device_can_wakeup(&dev->dev))
2139 return true;
2140
b67ea761
RW
2141 while (bus->parent) {
2142 struct pci_dev *bridge = bus->self;
2143
de3ef1eb 2144 if (device_can_wakeup(&bridge->dev))
b67ea761
RW
2145 return true;
2146
2147 bus = bus->parent;
2148 }
2149
2150 /* We have reached the root bus. */
2151 if (bus->bridge)
de3ef1eb 2152 return device_can_wakeup(bus->bridge);
b67ea761
RW
2153
2154 return false;
2155}
2156EXPORT_SYMBOL_GPL(pci_dev_run_wake);
2157
bac2a909
RW
2158/**
2159 * pci_dev_keep_suspended - Check if the device can stay in the suspended state.
2160 * @pci_dev: Device to check.
2161 *
2162 * Return 'true' if the device is runtime-suspended, it doesn't have to be
2163 * reconfigured due to wakeup settings difference between system and runtime
2164 * suspend and the current power state of it is suitable for the upcoming
2165 * (system) transition.
2cef548a
RW
2166 *
2167 * If the device is not configured for system wakeup, disable PME for it before
2168 * returning 'true' to prevent it from waking up the system unnecessarily.
bac2a909
RW
2169 */
2170bool pci_dev_keep_suspended(struct pci_dev *pci_dev)
2171{
2172 struct device *dev = &pci_dev->dev;
666ff6f8 2173 bool wakeup = device_may_wakeup(dev);
bac2a909
RW
2174
2175 if (!pm_runtime_suspended(dev)
666ff6f8 2176 || pci_target_state(pci_dev, wakeup) != pci_dev->current_state
4d071c32
ID
2177 || platform_pci_need_resume(pci_dev)
2178 || (pci_dev->dev_flags & PCI_DEV_FLAGS_NEEDS_RESUME))
bac2a909
RW
2179 return false;
2180
2cef548a
RW
2181 /*
2182 * At this point the device is good to go unless it's been configured
2183 * to generate PME at the runtime suspend time, but it is not supposed
2184 * to wake up the system. In that case, simply disable PME for it
2185 * (it will have to be re-enabled on exit from system resume).
2186 *
2187 * If the device's power state is D3cold and the platform check above
2188 * hasn't triggered, the device's configuration is suitable and we don't
2189 * need to manipulate it at all.
2190 */
2191 spin_lock_irq(&dev->power.lock);
2192
2193 if (pm_runtime_suspended(dev) && pci_dev->current_state < PCI_D3cold &&
666ff6f8 2194 !wakeup)
2cef548a
RW
2195 __pci_pme_active(pci_dev, false);
2196
2197 spin_unlock_irq(&dev->power.lock);
2198 return true;
2199}
2200
2201/**
2202 * pci_dev_complete_resume - Finalize resume from system sleep for a device.
2203 * @pci_dev: Device to handle.
2204 *
2205 * If the device is runtime suspended and wakeup-capable, enable PME for it as
2206 * it might have been disabled during the prepare phase of system suspend if
2207 * the device was not configured for system wakeup.
2208 */
2209void pci_dev_complete_resume(struct pci_dev *pci_dev)
2210{
2211 struct device *dev = &pci_dev->dev;
2212
2213 if (!pci_dev_run_wake(pci_dev))
2214 return;
2215
2216 spin_lock_irq(&dev->power.lock);
2217
2218 if (pm_runtime_suspended(dev) && pci_dev->current_state < PCI_D3cold)
2219 __pci_pme_active(pci_dev, true);
2220
2221 spin_unlock_irq(&dev->power.lock);
bac2a909
RW
2222}
2223
b3c32c4f
HY
2224void pci_config_pm_runtime_get(struct pci_dev *pdev)
2225{
2226 struct device *dev = &pdev->dev;
2227 struct device *parent = dev->parent;
2228
2229 if (parent)
2230 pm_runtime_get_sync(parent);
2231 pm_runtime_get_noresume(dev);
2232 /*
2233 * pdev->current_state is set to PCI_D3cold during suspending,
2234 * so wait until suspending completes
2235 */
2236 pm_runtime_barrier(dev);
2237 /*
2238 * Only need to resume devices in D3cold, because config
2239 * registers are still accessible for devices suspended but
2240 * not in D3cold.
2241 */
2242 if (pdev->current_state == PCI_D3cold)
2243 pm_runtime_resume(dev);
2244}
2245
2246void pci_config_pm_runtime_put(struct pci_dev *pdev)
2247{
2248 struct device *dev = &pdev->dev;
2249 struct device *parent = dev->parent;
2250
2251 pm_runtime_put(dev);
2252 if (parent)
2253 pm_runtime_put_sync(parent);
2254}
2255
9d26d3a8
MW
2256/**
2257 * pci_bridge_d3_possible - Is it possible to put the bridge into D3
2258 * @bridge: Bridge to check
2259 *
2260 * This function checks if it is possible to move the bridge to D3.
2261 * Currently we only allow D3 for recent enough PCIe ports.
2262 */
c6a63307 2263bool pci_bridge_d3_possible(struct pci_dev *bridge)
9d26d3a8
MW
2264{
2265 unsigned int year;
2266
2267 if (!pci_is_pcie(bridge))
2268 return false;
2269
2270 switch (pci_pcie_type(bridge)) {
2271 case PCI_EXP_TYPE_ROOT_PORT:
2272 case PCI_EXP_TYPE_UPSTREAM:
2273 case PCI_EXP_TYPE_DOWNSTREAM:
2274 if (pci_bridge_d3_disable)
2275 return false;
97a90aee
LW
2276
2277 /*
d98e0929
BH
2278 * Hotplug interrupts cannot be delivered if the link is down,
2279 * so parents of a hotplug port must stay awake. In addition,
2280 * hotplug ports handled by firmware in System Management Mode
97a90aee 2281 * may not be put into D3 by the OS (Thunderbolt on non-Macs).
d98e0929 2282 * For simplicity, disallow in general for now.
97a90aee 2283 */
d98e0929 2284 if (bridge->is_hotplug_bridge)
97a90aee
LW
2285 return false;
2286
9d26d3a8
MW
2287 if (pci_bridge_d3_force)
2288 return true;
2289
2290 /*
2291 * It should be safe to put PCIe ports from 2015 or newer
2292 * to D3.
2293 */
2294 if (dmi_get_date(DMI_BIOS_DATE, &year, NULL, NULL) &&
2295 year >= 2015) {
2296 return true;
2297 }
2298 break;
2299 }
2300
2301 return false;
2302}
2303
2304static int pci_dev_check_d3cold(struct pci_dev *dev, void *data)
2305{
2306 bool *d3cold_ok = data;
9d26d3a8 2307
718a0609
LW
2308 if (/* The device needs to be allowed to go D3cold ... */
2309 dev->no_d3cold || !dev->d3cold_allowed ||
2310
2311 /* ... and if it is wakeup capable to do so from D3cold. */
2312 (device_may_wakeup(&dev->dev) &&
2313 !pci_pme_capable(dev, PCI_D3cold)) ||
2314
2315 /* If it is a bridge it must be allowed to go to D3. */
d98e0929 2316 !pci_power_manageable(dev))
9d26d3a8 2317
718a0609 2318 *d3cold_ok = false;
9d26d3a8 2319
718a0609 2320 return !*d3cold_ok;
9d26d3a8
MW
2321}
2322
2323/*
2324 * pci_bridge_d3_update - Update bridge D3 capabilities
2325 * @dev: PCI device which is changed
9d26d3a8
MW
2326 *
2327 * Update upstream bridge PM capabilities accordingly depending on if the
2328 * device PM configuration was changed or the device is being removed. The
2329 * change is also propagated upstream.
2330 */
1ed276a7 2331void pci_bridge_d3_update(struct pci_dev *dev)
9d26d3a8 2332{
1ed276a7 2333 bool remove = !device_is_registered(&dev->dev);
9d26d3a8
MW
2334 struct pci_dev *bridge;
2335 bool d3cold_ok = true;
2336
2337 bridge = pci_upstream_bridge(dev);
2338 if (!bridge || !pci_bridge_d3_possible(bridge))
2339 return;
2340
9d26d3a8 2341 /*
e8559b71
LW
2342 * If D3 is currently allowed for the bridge, removing one of its
2343 * children won't change that.
2344 */
2345 if (remove && bridge->bridge_d3)
2346 return;
2347
2348 /*
2349 * If D3 is currently allowed for the bridge and a child is added or
2350 * changed, disallowance of D3 can only be caused by that child, so
2351 * we only need to check that single device, not any of its siblings.
2352 *
2353 * If D3 is currently not allowed for the bridge, checking the device
2354 * first may allow us to skip checking its siblings.
9d26d3a8
MW
2355 */
2356 if (!remove)
2357 pci_dev_check_d3cold(dev, &d3cold_ok);
2358
e8559b71
LW
2359 /*
2360 * If D3 is currently not allowed for the bridge, this may be caused
2361 * either by the device being changed/removed or any of its siblings,
2362 * so we need to go through all children to find out if one of them
2363 * continues to block D3.
2364 */
2365 if (d3cold_ok && !bridge->bridge_d3)
9d26d3a8
MW
2366 pci_walk_bus(bridge->subordinate, pci_dev_check_d3cold,
2367 &d3cold_ok);
9d26d3a8
MW
2368
2369 if (bridge->bridge_d3 != d3cold_ok) {
2370 bridge->bridge_d3 = d3cold_ok;
2371 /* Propagate change to upstream bridges */
1ed276a7 2372 pci_bridge_d3_update(bridge);
9d26d3a8 2373 }
9d26d3a8
MW
2374}
2375
9d26d3a8
MW
2376/**
2377 * pci_d3cold_enable - Enable D3cold for device
2378 * @dev: PCI device to handle
2379 *
2380 * This function can be used in drivers to enable D3cold from the device
2381 * they handle. It also updates upstream PCI bridge PM capabilities
2382 * accordingly.
2383 */
2384void pci_d3cold_enable(struct pci_dev *dev)
2385{
2386 if (dev->no_d3cold) {
2387 dev->no_d3cold = false;
1ed276a7 2388 pci_bridge_d3_update(dev);
9d26d3a8
MW
2389 }
2390}
2391EXPORT_SYMBOL_GPL(pci_d3cold_enable);
2392
2393/**
2394 * pci_d3cold_disable - Disable D3cold for device
2395 * @dev: PCI device to handle
2396 *
2397 * This function can be used in drivers to disable D3cold from the device
2398 * they handle. It also updates upstream PCI bridge PM capabilities
2399 * accordingly.
2400 */
2401void pci_d3cold_disable(struct pci_dev *dev)
2402{
2403 if (!dev->no_d3cold) {
2404 dev->no_d3cold = true;
1ed276a7 2405 pci_bridge_d3_update(dev);
9d26d3a8
MW
2406 }
2407}
2408EXPORT_SYMBOL_GPL(pci_d3cold_disable);
2409
eb9d0fe4
RW
2410/**
2411 * pci_pm_init - Initialize PM functions of given PCI device
2412 * @dev: PCI device to handle.
2413 */
2414void pci_pm_init(struct pci_dev *dev)
2415{
2416 int pm;
2417 u16 pmc;
1da177e4 2418
bb910a70 2419 pm_runtime_forbid(&dev->dev);
967577b0
HY
2420 pm_runtime_set_active(&dev->dev);
2421 pm_runtime_enable(&dev->dev);
a1e4d72c 2422 device_enable_async_suspend(&dev->dev);
e80bb09d 2423 dev->wakeup_prepared = false;
bb910a70 2424
337001b6 2425 dev->pm_cap = 0;
ffaddbe8 2426 dev->pme_support = 0;
337001b6 2427
eb9d0fe4
RW
2428 /* find PCI PM capability in list */
2429 pm = pci_find_capability(dev, PCI_CAP_ID_PM);
2430 if (!pm)
50246dd4 2431 return;
eb9d0fe4
RW
2432 /* Check device's ability to generate PME# */
2433 pci_read_config_word(dev, pm + PCI_PM_PMC, &pmc);
075c1771 2434
eb9d0fe4
RW
2435 if ((pmc & PCI_PM_CAP_VER_MASK) > 3) {
2436 dev_err(&dev->dev, "unsupported PM cap regs version (%u)\n",
2437 pmc & PCI_PM_CAP_VER_MASK);
50246dd4 2438 return;
eb9d0fe4
RW
2439 }
2440
337001b6 2441 dev->pm_cap = pm;
1ae861e6 2442 dev->d3_delay = PCI_PM_D3_WAIT;
448bd857 2443 dev->d3cold_delay = PCI_PM_D3COLD_WAIT;
9d26d3a8 2444 dev->bridge_d3 = pci_bridge_d3_possible(dev);
4f9c1397 2445 dev->d3cold_allowed = true;
337001b6
RW
2446
2447 dev->d1_support = false;
2448 dev->d2_support = false;
2449 if (!pci_no_d1d2(dev)) {
c9ed77ee 2450 if (pmc & PCI_PM_CAP_D1)
337001b6 2451 dev->d1_support = true;
c9ed77ee 2452 if (pmc & PCI_PM_CAP_D2)
337001b6 2453 dev->d2_support = true;
c9ed77ee
BH
2454
2455 if (dev->d1_support || dev->d2_support)
2456 dev_printk(KERN_DEBUG, &dev->dev, "supports%s%s\n",
ec84f126
JB
2457 dev->d1_support ? " D1" : "",
2458 dev->d2_support ? " D2" : "");
337001b6
RW
2459 }
2460
2461 pmc &= PCI_PM_CAP_PME_MASK;
2462 if (pmc) {
10c3d71d
BH
2463 dev_printk(KERN_DEBUG, &dev->dev,
2464 "PME# supported from%s%s%s%s%s\n",
c9ed77ee
BH
2465 (pmc & PCI_PM_CAP_PME_D0) ? " D0" : "",
2466 (pmc & PCI_PM_CAP_PME_D1) ? " D1" : "",
2467 (pmc & PCI_PM_CAP_PME_D2) ? " D2" : "",
2468 (pmc & PCI_PM_CAP_PME_D3) ? " D3hot" : "",
2469 (pmc & PCI_PM_CAP_PME_D3cold) ? " D3cold" : "");
337001b6 2470 dev->pme_support = pmc >> PCI_PM_CAP_PME_SHIFT;
379021d5 2471 dev->pme_poll = true;
eb9d0fe4
RW
2472 /*
2473 * Make device's PM flags reflect the wake-up capability, but
2474 * let the user space enable it to wake up the system as needed.
2475 */
2476 device_set_wakeup_capable(&dev->dev, true);
eb9d0fe4 2477 /* Disable the PME# generation functionality */
337001b6 2478 pci_pme_active(dev, false);
eb9d0fe4 2479 }
1da177e4
LT
2480}
2481
938174e5
SS
2482static unsigned long pci_ea_flags(struct pci_dev *dev, u8 prop)
2483{
92efb1bd 2484 unsigned long flags = IORESOURCE_PCI_FIXED | IORESOURCE_PCI_EA_BEI;
938174e5
SS
2485
2486 switch (prop) {
2487 case PCI_EA_P_MEM:
2488 case PCI_EA_P_VF_MEM:
2489 flags |= IORESOURCE_MEM;
2490 break;
2491 case PCI_EA_P_MEM_PREFETCH:
2492 case PCI_EA_P_VF_MEM_PREFETCH:
2493 flags |= IORESOURCE_MEM | IORESOURCE_PREFETCH;
2494 break;
2495 case PCI_EA_P_IO:
2496 flags |= IORESOURCE_IO;
2497 break;
2498 default:
2499 return 0;
2500 }
2501
2502 return flags;
2503}
2504
2505static struct resource *pci_ea_get_resource(struct pci_dev *dev, u8 bei,
2506 u8 prop)
2507{
2508 if (bei <= PCI_EA_BEI_BAR5 && prop <= PCI_EA_P_IO)
2509 return &dev->resource[bei];
11183991
DD
2510#ifdef CONFIG_PCI_IOV
2511 else if (bei >= PCI_EA_BEI_VF_BAR0 && bei <= PCI_EA_BEI_VF_BAR5 &&
2512 (prop == PCI_EA_P_VF_MEM || prop == PCI_EA_P_VF_MEM_PREFETCH))
2513 return &dev->resource[PCI_IOV_RESOURCES +
2514 bei - PCI_EA_BEI_VF_BAR0];
2515#endif
938174e5
SS
2516 else if (bei == PCI_EA_BEI_ROM)
2517 return &dev->resource[PCI_ROM_RESOURCE];
2518 else
2519 return NULL;
2520}
2521
2522/* Read an Enhanced Allocation (EA) entry */
2523static int pci_ea_read(struct pci_dev *dev, int offset)
2524{
2525 struct resource *res;
2526 int ent_size, ent_offset = offset;
2527 resource_size_t start, end;
2528 unsigned long flags;
26635112 2529 u32 dw0, bei, base, max_offset;
938174e5
SS
2530 u8 prop;
2531 bool support_64 = (sizeof(resource_size_t) >= 8);
2532
2533 pci_read_config_dword(dev, ent_offset, &dw0);
2534 ent_offset += 4;
2535
2536 /* Entry size field indicates DWORDs after 1st */
2537 ent_size = ((dw0 & PCI_EA_ES) + 1) << 2;
2538
2539 if (!(dw0 & PCI_EA_ENABLE)) /* Entry not enabled */
2540 goto out;
2541
26635112
BH
2542 bei = (dw0 & PCI_EA_BEI) >> 4;
2543 prop = (dw0 & PCI_EA_PP) >> 8;
2544
938174e5
SS
2545 /*
2546 * If the Property is in the reserved range, try the Secondary
2547 * Property instead.
2548 */
2549 if (prop > PCI_EA_P_BRIDGE_IO && prop < PCI_EA_P_MEM_RESERVED)
26635112 2550 prop = (dw0 & PCI_EA_SP) >> 16;
938174e5
SS
2551 if (prop > PCI_EA_P_BRIDGE_IO)
2552 goto out;
2553
26635112 2554 res = pci_ea_get_resource(dev, bei, prop);
938174e5 2555 if (!res) {
26635112 2556 dev_err(&dev->dev, "Unsupported EA entry BEI: %u\n", bei);
938174e5
SS
2557 goto out;
2558 }
2559
2560 flags = pci_ea_flags(dev, prop);
2561 if (!flags) {
2562 dev_err(&dev->dev, "Unsupported EA properties: %#x\n", prop);
2563 goto out;
2564 }
2565
2566 /* Read Base */
2567 pci_read_config_dword(dev, ent_offset, &base);
2568 start = (base & PCI_EA_FIELD_MASK);
2569 ent_offset += 4;
2570
2571 /* Read MaxOffset */
2572 pci_read_config_dword(dev, ent_offset, &max_offset);
2573 ent_offset += 4;
2574
2575 /* Read Base MSBs (if 64-bit entry) */
2576 if (base & PCI_EA_IS_64) {
2577 u32 base_upper;
2578
2579 pci_read_config_dword(dev, ent_offset, &base_upper);
2580 ent_offset += 4;
2581
2582 flags |= IORESOURCE_MEM_64;
2583
2584 /* entry starts above 32-bit boundary, can't use */
2585 if (!support_64 && base_upper)
2586 goto out;
2587
2588 if (support_64)
2589 start |= ((u64)base_upper << 32);
2590 }
2591
2592 end = start + (max_offset | 0x03);
2593
2594 /* Read MaxOffset MSBs (if 64-bit entry) */
2595 if (max_offset & PCI_EA_IS_64) {
2596 u32 max_offset_upper;
2597
2598 pci_read_config_dword(dev, ent_offset, &max_offset_upper);
2599 ent_offset += 4;
2600
2601 flags |= IORESOURCE_MEM_64;
2602
2603 /* entry too big, can't use */
2604 if (!support_64 && max_offset_upper)
2605 goto out;
2606
2607 if (support_64)
2608 end += ((u64)max_offset_upper << 32);
2609 }
2610
2611 if (end < start) {
2612 dev_err(&dev->dev, "EA Entry crosses address boundary\n");
2613 goto out;
2614 }
2615
2616 if (ent_size != ent_offset - offset) {
2617 dev_err(&dev->dev,
2618 "EA Entry Size (%d) does not match length read (%d)\n",
2619 ent_size, ent_offset - offset);
2620 goto out;
2621 }
2622
2623 res->name = pci_name(dev);
2624 res->start = start;
2625 res->end = end;
2626 res->flags = flags;
597becb4
BH
2627
2628 if (bei <= PCI_EA_BEI_BAR5)
2629 dev_printk(KERN_DEBUG, &dev->dev, "BAR %d: %pR (from Enhanced Allocation, properties %#02x)\n",
2630 bei, res, prop);
2631 else if (bei == PCI_EA_BEI_ROM)
2632 dev_printk(KERN_DEBUG, &dev->dev, "ROM: %pR (from Enhanced Allocation, properties %#02x)\n",
2633 res, prop);
2634 else if (bei >= PCI_EA_BEI_VF_BAR0 && bei <= PCI_EA_BEI_VF_BAR5)
2635 dev_printk(KERN_DEBUG, &dev->dev, "VF BAR %d: %pR (from Enhanced Allocation, properties %#02x)\n",
2636 bei - PCI_EA_BEI_VF_BAR0, res, prop);
2637 else
2638 dev_printk(KERN_DEBUG, &dev->dev, "BEI %d res: %pR (from Enhanced Allocation, properties %#02x)\n",
2639 bei, res, prop);
2640
938174e5
SS
2641out:
2642 return offset + ent_size;
2643}
2644
dcbb408a 2645/* Enhanced Allocation Initialization */
938174e5
SS
2646void pci_ea_init(struct pci_dev *dev)
2647{
2648 int ea;
2649 u8 num_ent;
2650 int offset;
2651 int i;
2652
2653 /* find PCI EA capability in list */
2654 ea = pci_find_capability(dev, PCI_CAP_ID_EA);
2655 if (!ea)
2656 return;
2657
2658 /* determine the number of entries */
2659 pci_bus_read_config_byte(dev->bus, dev->devfn, ea + PCI_EA_NUM_ENT,
2660 &num_ent);
2661 num_ent &= PCI_EA_NUM_ENT_MASK;
2662
2663 offset = ea + PCI_EA_FIRST_ENT;
2664
2665 /* Skip DWORD 2 for type 1 functions */
2666 if (dev->hdr_type == PCI_HEADER_TYPE_BRIDGE)
2667 offset += 4;
2668
2669 /* parse each EA entry */
2670 for (i = 0; i < num_ent; ++i)
2671 offset = pci_ea_read(dev, offset);
2672}
2673
34a4876e
YL
2674static void pci_add_saved_cap(struct pci_dev *pci_dev,
2675 struct pci_cap_saved_state *new_cap)
2676{
2677 hlist_add_head(&new_cap->next, &pci_dev->saved_cap_space);
2678}
2679
63f4898a 2680/**
fd0f7f73
AW
2681 * _pci_add_cap_save_buffer - allocate buffer for saving given
2682 * capability registers
63f4898a
RW
2683 * @dev: the PCI device
2684 * @cap: the capability to allocate the buffer for
fd0f7f73 2685 * @extended: Standard or Extended capability ID
63f4898a
RW
2686 * @size: requested size of the buffer
2687 */
fd0f7f73
AW
2688static int _pci_add_cap_save_buffer(struct pci_dev *dev, u16 cap,
2689 bool extended, unsigned int size)
63f4898a
RW
2690{
2691 int pos;
2692 struct pci_cap_saved_state *save_state;
2693
fd0f7f73
AW
2694 if (extended)
2695 pos = pci_find_ext_capability(dev, cap);
2696 else
2697 pos = pci_find_capability(dev, cap);
2698
0a1a9b49 2699 if (!pos)
63f4898a
RW
2700 return 0;
2701
2702 save_state = kzalloc(sizeof(*save_state) + size, GFP_KERNEL);
2703 if (!save_state)
2704 return -ENOMEM;
2705
24a4742f 2706 save_state->cap.cap_nr = cap;
fd0f7f73 2707 save_state->cap.cap_extended = extended;
24a4742f 2708 save_state->cap.size = size;
63f4898a
RW
2709 pci_add_saved_cap(dev, save_state);
2710
2711 return 0;
2712}
2713
fd0f7f73
AW
2714int pci_add_cap_save_buffer(struct pci_dev *dev, char cap, unsigned int size)
2715{
2716 return _pci_add_cap_save_buffer(dev, cap, false, size);
2717}
2718
2719int pci_add_ext_cap_save_buffer(struct pci_dev *dev, u16 cap, unsigned int size)
2720{
2721 return _pci_add_cap_save_buffer(dev, cap, true, size);
2722}
2723
63f4898a
RW
2724/**
2725 * pci_allocate_cap_save_buffers - allocate buffers for saving capabilities
2726 * @dev: the PCI device
2727 */
2728void pci_allocate_cap_save_buffers(struct pci_dev *dev)
2729{
2730 int error;
2731
89858517
YZ
2732 error = pci_add_cap_save_buffer(dev, PCI_CAP_ID_EXP,
2733 PCI_EXP_SAVE_REGS * sizeof(u16));
63f4898a
RW
2734 if (error)
2735 dev_err(&dev->dev,
2736 "unable to preallocate PCI Express save buffer\n");
2737
2738 error = pci_add_cap_save_buffer(dev, PCI_CAP_ID_PCIX, sizeof(u16));
2739 if (error)
2740 dev_err(&dev->dev,
2741 "unable to preallocate PCI-X save buffer\n");
425c1b22
AW
2742
2743 pci_allocate_vc_save_buffers(dev);
63f4898a
RW
2744}
2745
f796841e
YL
2746void pci_free_cap_save_buffers(struct pci_dev *dev)
2747{
2748 struct pci_cap_saved_state *tmp;
b67bfe0d 2749 struct hlist_node *n;
f796841e 2750
b67bfe0d 2751 hlist_for_each_entry_safe(tmp, n, &dev->saved_cap_space, next)
f796841e
YL
2752 kfree(tmp);
2753}
2754
58c3a727 2755/**
31ab2476 2756 * pci_configure_ari - enable or disable ARI forwarding
58c3a727 2757 * @dev: the PCI device
b0cc6020
YW
2758 *
2759 * If @dev and its upstream bridge both support ARI, enable ARI in the
2760 * bridge. Otherwise, disable ARI in the bridge.
58c3a727 2761 */
31ab2476 2762void pci_configure_ari(struct pci_dev *dev)
58c3a727 2763{
58c3a727 2764 u32 cap;
8113587c 2765 struct pci_dev *bridge;
58c3a727 2766
6748dcc2 2767 if (pcie_ari_disabled || !pci_is_pcie(dev) || dev->devfn)
58c3a727
YZ
2768 return;
2769
8113587c 2770 bridge = dev->bus->self;
cb97ae34 2771 if (!bridge)
8113587c
ZY
2772 return;
2773
59875ae4 2774 pcie_capability_read_dword(bridge, PCI_EXP_DEVCAP2, &cap);
58c3a727
YZ
2775 if (!(cap & PCI_EXP_DEVCAP2_ARI))
2776 return;
2777
b0cc6020
YW
2778 if (pci_find_ext_capability(dev, PCI_EXT_CAP_ID_ARI)) {
2779 pcie_capability_set_word(bridge, PCI_EXP_DEVCTL2,
2780 PCI_EXP_DEVCTL2_ARI);
2781 bridge->ari_enabled = 1;
2782 } else {
2783 pcie_capability_clear_word(bridge, PCI_EXP_DEVCTL2,
2784 PCI_EXP_DEVCTL2_ARI);
2785 bridge->ari_enabled = 0;
2786 }
58c3a727
YZ
2787}
2788
5d990b62
CW
2789static int pci_acs_enable;
2790
2791/**
2792 * pci_request_acs - ask for ACS to be enabled if supported
2793 */
2794void pci_request_acs(void)
2795{
2796 pci_acs_enable = 1;
2797}
2798
ae21ee65 2799/**
2c744244 2800 * pci_std_enable_acs - enable ACS on devices using standard ACS capabilites
ae21ee65
AK
2801 * @dev: the PCI device
2802 */
c1d61c9b 2803static void pci_std_enable_acs(struct pci_dev *dev)
ae21ee65
AK
2804{
2805 int pos;
2806 u16 cap;
2807 u16 ctrl;
2808
ae21ee65
AK
2809 pos = pci_find_ext_capability(dev, PCI_EXT_CAP_ID_ACS);
2810 if (!pos)
c1d61c9b 2811 return;
ae21ee65
AK
2812
2813 pci_read_config_word(dev, pos + PCI_ACS_CAP, &cap);
2814 pci_read_config_word(dev, pos + PCI_ACS_CTRL, &ctrl);
2815
2816 /* Source Validation */
2817 ctrl |= (cap & PCI_ACS_SV);
2818
2819 /* P2P Request Redirect */
2820 ctrl |= (cap & PCI_ACS_RR);
2821
2822 /* P2P Completion Redirect */
2823 ctrl |= (cap & PCI_ACS_CR);
2824
2825 /* Upstream Forwarding */
2826 ctrl |= (cap & PCI_ACS_UF);
2827
2828 pci_write_config_word(dev, pos + PCI_ACS_CTRL, ctrl);
2c744244
AW
2829}
2830
2831/**
2832 * pci_enable_acs - enable ACS if hardware support it
2833 * @dev: the PCI device
2834 */
2835void pci_enable_acs(struct pci_dev *dev)
2836{
2837 if (!pci_acs_enable)
2838 return;
2839
c1d61c9b 2840 if (!pci_dev_specific_enable_acs(dev))
2c744244
AW
2841 return;
2842
c1d61c9b 2843 pci_std_enable_acs(dev);
ae21ee65
AK
2844}
2845
0a67119f
AW
2846static bool pci_acs_flags_enabled(struct pci_dev *pdev, u16 acs_flags)
2847{
2848 int pos;
83db7e0b 2849 u16 cap, ctrl;
0a67119f
AW
2850
2851 pos = pci_find_ext_capability(pdev, PCI_EXT_CAP_ID_ACS);
2852 if (!pos)
2853 return false;
2854
83db7e0b
AW
2855 /*
2856 * Except for egress control, capabilities are either required
2857 * or only required if controllable. Features missing from the
2858 * capability field can therefore be assumed as hard-wired enabled.
2859 */
2860 pci_read_config_word(pdev, pos + PCI_ACS_CAP, &cap);
2861 acs_flags &= (cap | PCI_ACS_EC);
2862
0a67119f
AW
2863 pci_read_config_word(pdev, pos + PCI_ACS_CTRL, &ctrl);
2864 return (ctrl & acs_flags) == acs_flags;
2865}
2866
ad805758
AW
2867/**
2868 * pci_acs_enabled - test ACS against required flags for a given device
2869 * @pdev: device to test
2870 * @acs_flags: required PCI ACS flags
2871 *
2872 * Return true if the device supports the provided flags. Automatically
2873 * filters out flags that are not implemented on multifunction devices.
0a67119f
AW
2874 *
2875 * Note that this interface checks the effective ACS capabilities of the
2876 * device rather than the actual capabilities. For instance, most single
2877 * function endpoints are not required to support ACS because they have no
2878 * opportunity for peer-to-peer access. We therefore return 'true'
2879 * regardless of whether the device exposes an ACS capability. This makes
2880 * it much easier for callers of this function to ignore the actual type
2881 * or topology of the device when testing ACS support.
ad805758
AW
2882 */
2883bool pci_acs_enabled(struct pci_dev *pdev, u16 acs_flags)
2884{
0a67119f 2885 int ret;
ad805758
AW
2886
2887 ret = pci_dev_specific_acs_enabled(pdev, acs_flags);
2888 if (ret >= 0)
2889 return ret > 0;
2890
0a67119f
AW
2891 /*
2892 * Conventional PCI and PCI-X devices never support ACS, either
2893 * effectively or actually. The shared bus topology implies that
2894 * any device on the bus can receive or snoop DMA.
2895 */
ad805758
AW
2896 if (!pci_is_pcie(pdev))
2897 return false;
2898
0a67119f
AW
2899 switch (pci_pcie_type(pdev)) {
2900 /*
2901 * PCI/X-to-PCIe bridges are not specifically mentioned by the spec,
f7625980 2902 * but since their primary interface is PCI/X, we conservatively
0a67119f
AW
2903 * handle them as we would a non-PCIe device.
2904 */
2905 case PCI_EXP_TYPE_PCIE_BRIDGE:
2906 /*
2907 * PCIe 3.0, 6.12.1 excludes ACS on these devices. "ACS is never
2908 * applicable... must never implement an ACS Extended Capability...".
2909 * This seems arbitrary, but we take a conservative interpretation
2910 * of this statement.
2911 */
2912 case PCI_EXP_TYPE_PCI_BRIDGE:
2913 case PCI_EXP_TYPE_RC_EC:
2914 return false;
2915 /*
2916 * PCIe 3.0, 6.12.1.1 specifies that downstream and root ports should
2917 * implement ACS in order to indicate their peer-to-peer capabilities,
2918 * regardless of whether they are single- or multi-function devices.
2919 */
2920 case PCI_EXP_TYPE_DOWNSTREAM:
2921 case PCI_EXP_TYPE_ROOT_PORT:
2922 return pci_acs_flags_enabled(pdev, acs_flags);
2923 /*
2924 * PCIe 3.0, 6.12.1.2 specifies ACS capabilities that should be
2925 * implemented by the remaining PCIe types to indicate peer-to-peer
f7625980 2926 * capabilities, but only when they are part of a multifunction
0a67119f
AW
2927 * device. The footnote for section 6.12 indicates the specific
2928 * PCIe types included here.
2929 */
2930 case PCI_EXP_TYPE_ENDPOINT:
2931 case PCI_EXP_TYPE_UPSTREAM:
2932 case PCI_EXP_TYPE_LEG_END:
2933 case PCI_EXP_TYPE_RC_END:
2934 if (!pdev->multifunction)
2935 break;
2936
0a67119f 2937 return pci_acs_flags_enabled(pdev, acs_flags);
ad805758
AW
2938 }
2939
0a67119f 2940 /*
f7625980 2941 * PCIe 3.0, 6.12.1.3 specifies no ACS capabilities are applicable
0a67119f
AW
2942 * to single function devices with the exception of downstream ports.
2943 */
ad805758
AW
2944 return true;
2945}
2946
2947/**
2948 * pci_acs_path_enable - test ACS flags from start to end in a hierarchy
2949 * @start: starting downstream device
2950 * @end: ending upstream device or NULL to search to the root bus
2951 * @acs_flags: required flags
2952 *
2953 * Walk up a device tree from start to end testing PCI ACS support. If
2954 * any step along the way does not support the required flags, return false.
2955 */
2956bool pci_acs_path_enabled(struct pci_dev *start,
2957 struct pci_dev *end, u16 acs_flags)
2958{
2959 struct pci_dev *pdev, *parent = start;
2960
2961 do {
2962 pdev = parent;
2963
2964 if (!pci_acs_enabled(pdev, acs_flags))
2965 return false;
2966
2967 if (pci_is_root_bus(pdev->bus))
2968 return (end == NULL);
2969
2970 parent = pdev->bus->self;
2971 } while (pdev != end);
2972
2973 return true;
2974}
2975
57c2cf71
BH
2976/**
2977 * pci_swizzle_interrupt_pin - swizzle INTx for device behind bridge
2978 * @dev: the PCI device
bb5c2de2 2979 * @pin: the INTx pin (1=INTA, 2=INTB, 3=INTC, 4=INTD)
57c2cf71
BH
2980 *
2981 * Perform INTx swizzling for a device behind one level of bridge. This is
2982 * required by section 9.1 of the PCI-to-PCI bridge specification for devices
46b952a3
MW
2983 * behind bridges on add-in cards. For devices with ARI enabled, the slot
2984 * number is always 0 (see the Implementation Note in section 2.2.8.1 of
2985 * the PCI Express Base Specification, Revision 2.1)
57c2cf71 2986 */
3df425f3 2987u8 pci_swizzle_interrupt_pin(const struct pci_dev *dev, u8 pin)
57c2cf71 2988{
46b952a3
MW
2989 int slot;
2990
2991 if (pci_ari_enabled(dev->bus))
2992 slot = 0;
2993 else
2994 slot = PCI_SLOT(dev->devfn);
2995
2996 return (((pin - 1) + slot) % 4) + 1;
57c2cf71
BH
2997}
2998
3c78bc61 2999int pci_get_interrupt_pin(struct pci_dev *dev, struct pci_dev **bridge)
1da177e4
LT
3000{
3001 u8 pin;
3002
514d207d 3003 pin = dev->pin;
1da177e4
LT
3004 if (!pin)
3005 return -1;
878f2e50 3006
8784fd4d 3007 while (!pci_is_root_bus(dev->bus)) {
57c2cf71 3008 pin = pci_swizzle_interrupt_pin(dev, pin);
1da177e4
LT
3009 dev = dev->bus->self;
3010 }
3011 *bridge = dev;
3012 return pin;
3013}
3014
68feac87
BH
3015/**
3016 * pci_common_swizzle - swizzle INTx all the way to root bridge
3017 * @dev: the PCI device
3018 * @pinp: pointer to the INTx pin value (1=INTA, 2=INTB, 3=INTD, 4=INTD)
3019 *
3020 * Perform INTx swizzling for a device. This traverses through all PCI-to-PCI
3021 * bridges all the way up to a PCI root bus.
3022 */
3023u8 pci_common_swizzle(struct pci_dev *dev, u8 *pinp)
3024{
3025 u8 pin = *pinp;
3026
1eb39487 3027 while (!pci_is_root_bus(dev->bus)) {
68feac87
BH
3028 pin = pci_swizzle_interrupt_pin(dev, pin);
3029 dev = dev->bus->self;
3030 }
3031 *pinp = pin;
3032 return PCI_SLOT(dev->devfn);
3033}
e6b29dea 3034EXPORT_SYMBOL_GPL(pci_common_swizzle);
68feac87 3035
1da177e4
LT
3036/**
3037 * pci_release_region - Release a PCI bar
3038 * @pdev: PCI device whose resources were previously reserved by pci_request_region
3039 * @bar: BAR to release
3040 *
3041 * Releases the PCI I/O and memory resources previously reserved by a
3042 * successful call to pci_request_region. Call this function only
3043 * after all use of the PCI regions has ceased.
3044 */
3045void pci_release_region(struct pci_dev *pdev, int bar)
3046{
9ac7849e
TH
3047 struct pci_devres *dr;
3048
1da177e4
LT
3049 if (pci_resource_len(pdev, bar) == 0)
3050 return;
3051 if (pci_resource_flags(pdev, bar) & IORESOURCE_IO)
3052 release_region(pci_resource_start(pdev, bar),
3053 pci_resource_len(pdev, bar));
3054 else if (pci_resource_flags(pdev, bar) & IORESOURCE_MEM)
3055 release_mem_region(pci_resource_start(pdev, bar),
3056 pci_resource_len(pdev, bar));
9ac7849e
TH
3057
3058 dr = find_pci_dr(pdev);
3059 if (dr)
3060 dr->region_mask &= ~(1 << bar);
1da177e4 3061}
b7fe9434 3062EXPORT_SYMBOL(pci_release_region);
1da177e4
LT
3063
3064/**
f5ddcac4 3065 * __pci_request_region - Reserved PCI I/O and memory resource
1da177e4
LT
3066 * @pdev: PCI device whose resources are to be reserved
3067 * @bar: BAR to be reserved
3068 * @res_name: Name to be associated with resource.
f5ddcac4 3069 * @exclusive: whether the region access is exclusive or not
1da177e4
LT
3070 *
3071 * Mark the PCI region associated with PCI device @pdev BR @bar as
3072 * being reserved by owner @res_name. Do not access any
3073 * address inside the PCI regions unless this call returns
3074 * successfully.
3075 *
f5ddcac4
RD
3076 * If @exclusive is set, then the region is marked so that userspace
3077 * is explicitly not allowed to map the resource via /dev/mem or
f7625980 3078 * sysfs MMIO access.
f5ddcac4 3079 *
1da177e4
LT
3080 * Returns 0 on success, or %EBUSY on error. A warning
3081 * message is also printed on failure.
3082 */
3c78bc61
RD
3083static int __pci_request_region(struct pci_dev *pdev, int bar,
3084 const char *res_name, int exclusive)
1da177e4 3085{
9ac7849e
TH
3086 struct pci_devres *dr;
3087
1da177e4
LT
3088 if (pci_resource_len(pdev, bar) == 0)
3089 return 0;
f7625980 3090
1da177e4
LT
3091 if (pci_resource_flags(pdev, bar) & IORESOURCE_IO) {
3092 if (!request_region(pci_resource_start(pdev, bar),
3093 pci_resource_len(pdev, bar), res_name))
3094 goto err_out;
3c78bc61 3095 } else if (pci_resource_flags(pdev, bar) & IORESOURCE_MEM) {
e8de1481
AV
3096 if (!__request_mem_region(pci_resource_start(pdev, bar),
3097 pci_resource_len(pdev, bar), res_name,
3098 exclusive))
1da177e4
LT
3099 goto err_out;
3100 }
9ac7849e
TH
3101
3102 dr = find_pci_dr(pdev);
3103 if (dr)
3104 dr->region_mask |= 1 << bar;
3105
1da177e4
LT
3106 return 0;
3107
3108err_out:
c7dabef8 3109 dev_warn(&pdev->dev, "BAR %d: can't reserve %pR\n", bar,
096e6f67 3110 &pdev->resource[bar]);
1da177e4
LT
3111 return -EBUSY;
3112}
3113
e8de1481 3114/**
f5ddcac4 3115 * pci_request_region - Reserve PCI I/O and memory resource
e8de1481
AV
3116 * @pdev: PCI device whose resources are to be reserved
3117 * @bar: BAR to be reserved
f5ddcac4 3118 * @res_name: Name to be associated with resource
e8de1481 3119 *
f5ddcac4 3120 * Mark the PCI region associated with PCI device @pdev BAR @bar as
e8de1481
AV
3121 * being reserved by owner @res_name. Do not access any
3122 * address inside the PCI regions unless this call returns
3123 * successfully.
3124 *
3125 * Returns 0 on success, or %EBUSY on error. A warning
3126 * message is also printed on failure.
3127 */
3128int pci_request_region(struct pci_dev *pdev, int bar, const char *res_name)
3129{
3130 return __pci_request_region(pdev, bar, res_name, 0);
3131}
b7fe9434 3132EXPORT_SYMBOL(pci_request_region);
e8de1481
AV
3133
3134/**
3135 * pci_request_region_exclusive - Reserved PCI I/O and memory resource
3136 * @pdev: PCI device whose resources are to be reserved
3137 * @bar: BAR to be reserved
3138 * @res_name: Name to be associated with resource.
3139 *
3140 * Mark the PCI region associated with PCI device @pdev BR @bar as
3141 * being reserved by owner @res_name. Do not access any
3142 * address inside the PCI regions unless this call returns
3143 * successfully.
3144 *
3145 * Returns 0 on success, or %EBUSY on error. A warning
3146 * message is also printed on failure.
3147 *
3148 * The key difference that _exclusive makes it that userspace is
3149 * explicitly not allowed to map the resource via /dev/mem or
f7625980 3150 * sysfs.
e8de1481 3151 */
3c78bc61
RD
3152int pci_request_region_exclusive(struct pci_dev *pdev, int bar,
3153 const char *res_name)
e8de1481
AV
3154{
3155 return __pci_request_region(pdev, bar, res_name, IORESOURCE_EXCLUSIVE);
3156}
b7fe9434
RD
3157EXPORT_SYMBOL(pci_request_region_exclusive);
3158
c87deff7
HS
3159/**
3160 * pci_release_selected_regions - Release selected PCI I/O and memory resources
3161 * @pdev: PCI device whose resources were previously reserved
3162 * @bars: Bitmask of BARs to be released
3163 *
3164 * Release selected PCI I/O and memory resources previously reserved.
3165 * Call this function only after all use of the PCI regions has ceased.
3166 */
3167void pci_release_selected_regions(struct pci_dev *pdev, int bars)
3168{
3169 int i;
3170
3171 for (i = 0; i < 6; i++)
3172 if (bars & (1 << i))
3173 pci_release_region(pdev, i);
3174}
b7fe9434 3175EXPORT_SYMBOL(pci_release_selected_regions);
c87deff7 3176
9738abed 3177static int __pci_request_selected_regions(struct pci_dev *pdev, int bars,
3c78bc61 3178 const char *res_name, int excl)
c87deff7
HS
3179{
3180 int i;
3181
3182 for (i = 0; i < 6; i++)
3183 if (bars & (1 << i))
e8de1481 3184 if (__pci_request_region(pdev, i, res_name, excl))
c87deff7
HS
3185 goto err_out;
3186 return 0;
3187
3188err_out:
3c78bc61 3189 while (--i >= 0)
c87deff7
HS
3190 if (bars & (1 << i))
3191 pci_release_region(pdev, i);
3192
3193 return -EBUSY;
3194}
1da177e4 3195
e8de1481
AV
3196
3197/**
3198 * pci_request_selected_regions - Reserve selected PCI I/O and memory resources
3199 * @pdev: PCI device whose resources are to be reserved
3200 * @bars: Bitmask of BARs to be requested
3201 * @res_name: Name to be associated with resource
3202 */
3203int pci_request_selected_regions(struct pci_dev *pdev, int bars,
3204 const char *res_name)
3205{
3206 return __pci_request_selected_regions(pdev, bars, res_name, 0);
3207}
b7fe9434 3208EXPORT_SYMBOL(pci_request_selected_regions);
e8de1481 3209
3c78bc61
RD
3210int pci_request_selected_regions_exclusive(struct pci_dev *pdev, int bars,
3211 const char *res_name)
e8de1481
AV
3212{
3213 return __pci_request_selected_regions(pdev, bars, res_name,
3214 IORESOURCE_EXCLUSIVE);
3215}
b7fe9434 3216EXPORT_SYMBOL(pci_request_selected_regions_exclusive);
e8de1481 3217
1da177e4
LT
3218/**
3219 * pci_release_regions - Release reserved PCI I/O and memory resources
3220 * @pdev: PCI device whose resources were previously reserved by pci_request_regions
3221 *
3222 * Releases all PCI I/O and memory resources previously reserved by a
3223 * successful call to pci_request_regions. Call this function only
3224 * after all use of the PCI regions has ceased.
3225 */
3226
3227void pci_release_regions(struct pci_dev *pdev)
3228{
c87deff7 3229 pci_release_selected_regions(pdev, (1 << 6) - 1);
1da177e4 3230}
b7fe9434 3231EXPORT_SYMBOL(pci_release_regions);
1da177e4
LT
3232
3233/**
3234 * pci_request_regions - Reserved PCI I/O and memory resources
3235 * @pdev: PCI device whose resources are to be reserved
3236 * @res_name: Name to be associated with resource.
3237 *
3238 * Mark all PCI regions associated with PCI device @pdev as
3239 * being reserved by owner @res_name. Do not access any
3240 * address inside the PCI regions unless this call returns
3241 * successfully.
3242 *
3243 * Returns 0 on success, or %EBUSY on error. A warning
3244 * message is also printed on failure.
3245 */
3c990e92 3246int pci_request_regions(struct pci_dev *pdev, const char *res_name)
1da177e4 3247{
c87deff7 3248 return pci_request_selected_regions(pdev, ((1 << 6) - 1), res_name);
1da177e4 3249}
b7fe9434 3250EXPORT_SYMBOL(pci_request_regions);
1da177e4 3251
e8de1481
AV
3252/**
3253 * pci_request_regions_exclusive - Reserved PCI I/O and memory resources
3254 * @pdev: PCI device whose resources are to be reserved
3255 * @res_name: Name to be associated with resource.
3256 *
3257 * Mark all PCI regions associated with PCI device @pdev as
3258 * being reserved by owner @res_name. Do not access any
3259 * address inside the PCI regions unless this call returns
3260 * successfully.
3261 *
3262 * pci_request_regions_exclusive() will mark the region so that
f7625980 3263 * /dev/mem and the sysfs MMIO access will not be allowed.
e8de1481
AV
3264 *
3265 * Returns 0 on success, or %EBUSY on error. A warning
3266 * message is also printed on failure.
3267 */
3268int pci_request_regions_exclusive(struct pci_dev *pdev, const char *res_name)
3269{
3270 return pci_request_selected_regions_exclusive(pdev,
3271 ((1 << 6) - 1), res_name);
3272}
b7fe9434 3273EXPORT_SYMBOL(pci_request_regions_exclusive);
e8de1481 3274
0c9f5ea1 3275#if defined(PCI_IOBASE) && !defined(CONFIG_LIBIO)
3276struct io_range {
3277 struct list_head list;
3278 phys_addr_t start;
3279 resource_size_t size;
3280};
3281
3282static LIST_HEAD(io_range_list);
3283static DEFINE_SPINLOCK(io_range_lock);
3284#endif
3285
c5076cfe
TN
3286/*
3287 * Record the PCI IO range (expressed as CPU physical address + size).
3288 * Return a negative value if an error has occured, zero otherwise
3289 */
369b6172 3290int pci_register_io_range(struct fwnode_handle *fwnode, phys_addr_t addr,
3291 resource_size_t size)
c5076cfe
TN
3292{
3293 int err = 0;
3294
3295#ifdef PCI_IOBASE
0c9f5ea1 3296#ifdef CONFIG_LIBIO
369b6172 3297 struct libio_range *range, *tmprange;
c5076cfe 3298
369b6172 3299 if (!size || addr + size < addr)
3300 return -EINVAL;
c5076cfe 3301
369b6172 3302 WARN_ON(!PAGE_ALIGNED(addr) || !PAGE_ALIGNED(size));
c5076cfe 3303
369b6172 3304 range = kzalloc(sizeof(*range), GFP_KERNEL);
3305 if (!range)
3306 return -ENOMEM;
3307 range->node = fwnode;
3308 range->flags = IO_CPU_MMIO;
c5076cfe 3309 range->size = size;
369b6172 3310 range->hw_start = addr;
c5076cfe 3311
369b6172 3312 tmprange = register_libio_range(range);
3313 if (tmprange != range) {
3314 kfree(range);
3315 if (IS_ERR(tmprange))
3316 return -EFAULT;
3317 }
0c9f5ea1 3318#else
3319 struct io_range *range;
3320 resource_size_t allocated_size = 0;
3321
3322 /* check if the range hasn't been previously recorded */
3323 spin_lock(&io_range_lock);
3324 list_for_each_entry(range, &io_range_list, list) {
3325 if (addr >= range->start && addr + size <= range->start + size) {
3326 /* range already registered, bail out */
3327 goto end_register;
3328 }
3329 allocated_size += range->size;
3330 }
3331
3332 /* range not registed yet, check for available space */
3333 if (allocated_size + size - 1 > IO_SPACE_LIMIT) {
3334 /* if it's too big check if 64K space can be reserved */
3335 if (allocated_size + SZ_64K - 1 > IO_SPACE_LIMIT) {
3336 err = -E2BIG;
3337 goto end_register;
3338 }
3339
3340 size = SZ_64K;
3341 pr_warn("Requested IO range too big, new size set to 64K\n");
3342 }
3343
3344 /* add the range to the list */
3345 range = kzalloc(sizeof(*range), GFP_ATOMIC);
3346 if (!range) {
3347 err = -ENOMEM;
3348 goto end_register;
3349 }
3350
3351 range->start = addr;
3352 range->size = size;
3353
3354 list_add_tail(&range->list, &io_range_list);
3355
3356end_register:
3357 spin_unlock(&io_range_lock);
3358#endif /* CONFIG_LIBIO */
3359#endif /* PCI_IOBASE */
c5076cfe
TN
3360
3361 return err;
3362}
3363
3364phys_addr_t pci_pio_to_address(unsigned long pio)
3365{
3366 phys_addr_t address = (phys_addr_t)OF_BAD_ADDR;
3367
3368#ifdef PCI_IOBASE
0c9f5ea1 3369#ifdef CONFIG_LIBIO
c5076cfe
TN
3370 if (pio > IO_SPACE_LIMIT)
3371 return address;
3372
369b6172 3373 address = libio_to_hwaddr(pio);
0c9f5ea1 3374#else
3375 struct io_range *range;
3376 resource_size_t allocated_size = 0;
3377
3378 if (pio > IO_SPACE_LIMIT)
3379 return address;
3380
3381 spin_lock(&io_range_lock);
3382 list_for_each_entry(range, &io_range_list, list) {
3383 if (pio >= allocated_size && pio < allocated_size + range->size) {
3384 address = range->start + pio - allocated_size;
3385 break;
3386 }
3387 allocated_size += range->size;
3388 }
3389 spin_unlock(&io_range_lock);
3390#endif /* CONFIG_LIBIO */
3391#endif /* PCI_IOBASE */
c5076cfe
TN
3392
3393 return address;
3394}
3395
3396unsigned long __weak pci_address_to_pio(phys_addr_t address)
3397{
3398#ifdef PCI_IOBASE
0c9f5ea1 3399#ifdef CONFIG_LIBIO
369b6172 3400 return libio_translate_cpuaddr(address);
c5076cfe 3401#else
0c9f5ea1 3402 struct io_range *res;
3403 resource_size_t offset = 0;
3404 unsigned long addr = -1;
3405
3406 spin_lock(&io_range_lock);
3407 list_for_each_entry(res, &io_range_list, list) {
3408 if (address >= res->start && address < res->start + res->size) {
3409 addr = address - res->start + offset;
3410 break;
3411 }
3412 offset += res->size;
3413 }
3414 spin_unlock(&io_range_lock);
3415
3416 return addr;
3417#endif
3418#else
3419#ifndef CONFIG_LIBIO
3420 if (address > IO_SPACE_LIMIT)
3421 return (unsigned long)-1;
3422#endif
c5076cfe
TN
3423 return (unsigned long) address;
3424#endif
3425}
3426
8b921acf
LD
3427/**
3428 * pci_remap_iospace - Remap the memory mapped I/O space
3429 * @res: Resource describing the I/O space
3430 * @phys_addr: physical address of range to be mapped
3431 *
3432 * Remap the memory mapped I/O space described by the @res
3433 * and the CPU physical address @phys_addr into virtual address space.
3434 * Only architectures that have memory mapped IO functions defined
3435 * (and the PCI_IOBASE value defined) should call this function.
3436 */
7b309aef 3437int pci_remap_iospace(const struct resource *res, phys_addr_t phys_addr)
8b921acf
LD
3438{
3439#if defined(PCI_IOBASE) && defined(CONFIG_MMU)
3440 unsigned long vaddr = (unsigned long)PCI_IOBASE + res->start;
3441
3442 if (!(res->flags & IORESOURCE_IO))
3443 return -EINVAL;
3444
3445 if (res->end > IO_SPACE_LIMIT)
3446 return -EINVAL;
3447
3448 return ioremap_page_range(vaddr, vaddr + resource_size(res), phys_addr,
3449 pgprot_device(PAGE_KERNEL));
3450#else
3451 /* this architecture does not have memory mapped I/O space,
3452 so this function should never be called */
3453 WARN_ONCE(1, "This architecture does not support memory mapped I/O\n");
3454 return -ENODEV;
3455#endif
3456}
f90b0875 3457EXPORT_SYMBOL(pci_remap_iospace);
8b921acf 3458
4d3f1384
SK
3459/**
3460 * pci_unmap_iospace - Unmap the memory mapped I/O space
3461 * @res: resource to be unmapped
3462 *
3463 * Unmap the CPU virtual address @res from virtual address space.
3464 * Only architectures that have memory mapped IO functions defined
3465 * (and the PCI_IOBASE value defined) should call this function.
3466 */
3467void pci_unmap_iospace(struct resource *res)
3468{
3469#if defined(PCI_IOBASE) && defined(CONFIG_MMU)
3470 unsigned long vaddr = (unsigned long)PCI_IOBASE + res->start;
3471
3472 unmap_kernel_range(vaddr, resource_size(res));
3473#endif
3474}
f90b0875 3475EXPORT_SYMBOL(pci_unmap_iospace);
4d3f1384 3476
490cb6dd
LP
3477/**
3478 * devm_pci_remap_cfgspace - Managed pci_remap_cfgspace()
3479 * @dev: Generic device to remap IO address for
3480 * @offset: Resource address to map
3481 * @size: Size of map
3482 *
3483 * Managed pci_remap_cfgspace(). Map is automatically unmapped on driver
3484 * detach.
3485 */
3486void __iomem *devm_pci_remap_cfgspace(struct device *dev,
3487 resource_size_t offset,
3488 resource_size_t size)
3489{
3490 void __iomem **ptr, *addr;
3491
3492 ptr = devres_alloc(devm_ioremap_release, sizeof(*ptr), GFP_KERNEL);
3493 if (!ptr)
3494 return NULL;
3495
3496 addr = pci_remap_cfgspace(offset, size);
3497 if (addr) {
3498 *ptr = addr;
3499 devres_add(dev, ptr);
3500 } else
3501 devres_free(ptr);
3502
3503 return addr;
3504}
3505EXPORT_SYMBOL(devm_pci_remap_cfgspace);
3506
3507/**
3508 * devm_pci_remap_cfg_resource - check, request region and ioremap cfg resource
3509 * @dev: generic device to handle the resource for
3510 * @res: configuration space resource to be handled
3511 *
3512 * Checks that a resource is a valid memory region, requests the memory
3513 * region and ioremaps with pci_remap_cfgspace() API that ensures the
3514 * proper PCI configuration space memory attributes are guaranteed.
3515 *
3516 * All operations are managed and will be undone on driver detach.
3517 *
3518 * Returns a pointer to the remapped memory or an ERR_PTR() encoded error code
3519 * on failure. Usage example:
3520 *
3521 * res = platform_get_resource(pdev, IORESOURCE_MEM, 0);
3522 * base = devm_pci_remap_cfg_resource(&pdev->dev, res);
3523 * if (IS_ERR(base))
3524 * return PTR_ERR(base);
3525 */
3526void __iomem *devm_pci_remap_cfg_resource(struct device *dev,
3527 struct resource *res)
3528{
3529 resource_size_t size;
3530 const char *name;
3531 void __iomem *dest_ptr;
3532
3533 BUG_ON(!dev);
3534
3535 if (!res || resource_type(res) != IORESOURCE_MEM) {
3536 dev_err(dev, "invalid resource\n");
3537 return IOMEM_ERR_PTR(-EINVAL);
3538 }
3539
3540 size = resource_size(res);
3541 name = res->name ?: dev_name(dev);
3542
3543 if (!devm_request_mem_region(dev, res->start, size, name)) {
3544 dev_err(dev, "can't request region for resource %pR\n", res);
3545 return IOMEM_ERR_PTR(-EBUSY);
3546 }
3547
3548 dest_ptr = devm_pci_remap_cfgspace(dev, res->start, size);
3549 if (!dest_ptr) {
3550 dev_err(dev, "ioremap failed for resource %pR\n", res);
3551 devm_release_mem_region(dev, res->start, size);
3552 dest_ptr = IOMEM_ERR_PTR(-ENOMEM);
3553 }
3554
3555 return dest_ptr;
3556}
3557EXPORT_SYMBOL(devm_pci_remap_cfg_resource);
3558
6a479079
BH
3559static void __pci_set_master(struct pci_dev *dev, bool enable)
3560{
3561 u16 old_cmd, cmd;
3562
3563 pci_read_config_word(dev, PCI_COMMAND, &old_cmd);
3564 if (enable)
3565 cmd = old_cmd | PCI_COMMAND_MASTER;
3566 else
3567 cmd = old_cmd & ~PCI_COMMAND_MASTER;
3568 if (cmd != old_cmd) {
3569 dev_dbg(&dev->dev, "%s bus mastering\n",
3570 enable ? "enabling" : "disabling");
3571 pci_write_config_word(dev, PCI_COMMAND, cmd);
3572 }
3573 dev->is_busmaster = enable;
3574}
e8de1481 3575
2b6f2c35
MS
3576/**
3577 * pcibios_setup - process "pci=" kernel boot arguments
3578 * @str: string used to pass in "pci=" kernel boot arguments
3579 *
3580 * Process kernel boot arguments. This is the default implementation.
3581 * Architecture specific implementations can override this as necessary.
3582 */
3583char * __weak __init pcibios_setup(char *str)
3584{
3585 return str;
3586}
3587
96c55900
MS
3588/**
3589 * pcibios_set_master - enable PCI bus-mastering for device dev
3590 * @dev: the PCI device to enable
3591 *
3592 * Enables PCI bus-mastering for the device. This is the default
3593 * implementation. Architecture specific implementations can override
3594 * this if necessary.
3595 */
3596void __weak pcibios_set_master(struct pci_dev *dev)
3597{
3598 u8 lat;
3599
f676678f
MS
3600 /* The latency timer doesn't apply to PCIe (either Type 0 or Type 1) */
3601 if (pci_is_pcie(dev))
3602 return;
3603
96c55900
MS
3604 pci_read_config_byte(dev, PCI_LATENCY_TIMER, &lat);
3605 if (lat < 16)
3606 lat = (64 <= pcibios_max_latency) ? 64 : pcibios_max_latency;
3607 else if (lat > pcibios_max_latency)
3608 lat = pcibios_max_latency;
3609 else
3610 return;
a006482b 3611
96c55900
MS
3612 pci_write_config_byte(dev, PCI_LATENCY_TIMER, lat);
3613}
3614
1da177e4
LT
3615/**
3616 * pci_set_master - enables bus-mastering for device dev
3617 * @dev: the PCI device to enable
3618 *
3619 * Enables bus-mastering on the device and calls pcibios_set_master()
3620 * to do the needed arch specific settings.
3621 */
6a479079 3622void pci_set_master(struct pci_dev *dev)
1da177e4 3623{
6a479079 3624 __pci_set_master(dev, true);
1da177e4
LT
3625 pcibios_set_master(dev);
3626}
b7fe9434 3627EXPORT_SYMBOL(pci_set_master);
1da177e4 3628
6a479079
BH
3629/**
3630 * pci_clear_master - disables bus-mastering for device dev
3631 * @dev: the PCI device to disable
3632 */
3633void pci_clear_master(struct pci_dev *dev)
3634{
3635 __pci_set_master(dev, false);
3636}
b7fe9434 3637EXPORT_SYMBOL(pci_clear_master);
6a479079 3638
1da177e4 3639/**
edb2d97e
MW
3640 * pci_set_cacheline_size - ensure the CACHE_LINE_SIZE register is programmed
3641 * @dev: the PCI device for which MWI is to be enabled
1da177e4 3642 *
edb2d97e
MW
3643 * Helper function for pci_set_mwi.
3644 * Originally copied from drivers/net/acenic.c.
1da177e4
LT
3645 * Copyright 1998-2001 by Jes Sorensen, <jes@trained-monkey.org>.
3646 *
3647 * RETURNS: An appropriate -ERRNO error value on error, or zero for success.
3648 */
15ea76d4 3649int pci_set_cacheline_size(struct pci_dev *dev)
1da177e4
LT
3650{
3651 u8 cacheline_size;
3652
3653 if (!pci_cache_line_size)
15ea76d4 3654 return -EINVAL;
1da177e4
LT
3655
3656 /* Validate current setting: the PCI_CACHE_LINE_SIZE must be
3657 equal to or multiple of the right value. */
3658 pci_read_config_byte(dev, PCI_CACHE_LINE_SIZE, &cacheline_size);
3659 if (cacheline_size >= pci_cache_line_size &&
3660 (cacheline_size % pci_cache_line_size) == 0)
3661 return 0;
3662
3663 /* Write the correct value. */
3664 pci_write_config_byte(dev, PCI_CACHE_LINE_SIZE, pci_cache_line_size);
3665 /* Read it back. */
3666 pci_read_config_byte(dev, PCI_CACHE_LINE_SIZE, &cacheline_size);
3667 if (cacheline_size == pci_cache_line_size)
3668 return 0;
3669
227f0647
RD
3670 dev_printk(KERN_DEBUG, &dev->dev, "cache line size of %d is not supported\n",
3671 pci_cache_line_size << 2);
1da177e4
LT
3672
3673 return -EINVAL;
3674}
15ea76d4
TH
3675EXPORT_SYMBOL_GPL(pci_set_cacheline_size);
3676
1da177e4
LT
3677/**
3678 * pci_set_mwi - enables memory-write-invalidate PCI transaction
3679 * @dev: the PCI device for which MWI is enabled
3680 *
694625c0 3681 * Enables the Memory-Write-Invalidate transaction in %PCI_COMMAND.
1da177e4
LT
3682 *
3683 * RETURNS: An appropriate -ERRNO error value on error, or zero for success.
3684 */
3c78bc61 3685int pci_set_mwi(struct pci_dev *dev)
1da177e4 3686{
b7fe9434
RD
3687#ifdef PCI_DISABLE_MWI
3688 return 0;
3689#else
1da177e4
LT
3690 int rc;
3691 u16 cmd;
3692
edb2d97e 3693 rc = pci_set_cacheline_size(dev);
1da177e4
LT
3694 if (rc)
3695 return rc;
3696
3697 pci_read_config_word(dev, PCI_COMMAND, &cmd);
3c78bc61 3698 if (!(cmd & PCI_COMMAND_INVALIDATE)) {
80ccba11 3699 dev_dbg(&dev->dev, "enabling Mem-Wr-Inval\n");
1da177e4
LT
3700 cmd |= PCI_COMMAND_INVALIDATE;
3701 pci_write_config_word(dev, PCI_COMMAND, cmd);
3702 }
1da177e4 3703 return 0;
b7fe9434 3704#endif
1da177e4 3705}
b7fe9434 3706EXPORT_SYMBOL(pci_set_mwi);
1da177e4 3707
694625c0
RD
3708/**
3709 * pci_try_set_mwi - enables memory-write-invalidate PCI transaction
3710 * @dev: the PCI device for which MWI is enabled
3711 *
3712 * Enables the Memory-Write-Invalidate transaction in %PCI_COMMAND.
3713 * Callers are not required to check the return value.
3714 *
3715 * RETURNS: An appropriate -ERRNO error value on error, or zero for success.
3716 */
3717int pci_try_set_mwi(struct pci_dev *dev)
3718{
b7fe9434
RD
3719#ifdef PCI_DISABLE_MWI
3720 return 0;
3721#else
3722 return pci_set_mwi(dev);
3723#endif
694625c0 3724}
b7fe9434 3725EXPORT_SYMBOL(pci_try_set_mwi);
694625c0 3726
1da177e4
LT
3727/**
3728 * pci_clear_mwi - disables Memory-Write-Invalidate for device dev
3729 * @dev: the PCI device to disable
3730 *
3731 * Disables PCI Memory-Write-Invalidate transaction on the device
3732 */
3c78bc61 3733void pci_clear_mwi(struct pci_dev *dev)
1da177e4 3734{
b7fe9434 3735#ifndef PCI_DISABLE_MWI
1da177e4
LT
3736 u16 cmd;
3737
3738 pci_read_config_word(dev, PCI_COMMAND, &cmd);
3739 if (cmd & PCI_COMMAND_INVALIDATE) {
3740 cmd &= ~PCI_COMMAND_INVALIDATE;
3741 pci_write_config_word(dev, PCI_COMMAND, cmd);
3742 }
b7fe9434 3743#endif
1da177e4 3744}
b7fe9434 3745EXPORT_SYMBOL(pci_clear_mwi);
1da177e4 3746
a04ce0ff
BR
3747/**
3748 * pci_intx - enables/disables PCI INTx for device dev
8f7020d3
RD
3749 * @pdev: the PCI device to operate on
3750 * @enable: boolean: whether to enable or disable PCI INTx
a04ce0ff
BR
3751 *
3752 * Enables/disables PCI INTx for device dev
3753 */
3c78bc61 3754void pci_intx(struct pci_dev *pdev, int enable)
a04ce0ff
BR
3755{
3756 u16 pci_command, new;
3757
3758 pci_read_config_word(pdev, PCI_COMMAND, &pci_command);
3759
3c78bc61 3760 if (enable)
a04ce0ff 3761 new = pci_command & ~PCI_COMMAND_INTX_DISABLE;
3c78bc61 3762 else
a04ce0ff 3763 new = pci_command | PCI_COMMAND_INTX_DISABLE;
a04ce0ff
BR
3764
3765 if (new != pci_command) {
9ac7849e
TH
3766 struct pci_devres *dr;
3767
2fd9d74b 3768 pci_write_config_word(pdev, PCI_COMMAND, new);
9ac7849e
TH
3769
3770 dr = find_pci_dr(pdev);
3771 if (dr && !dr->restore_intx) {
3772 dr->restore_intx = 1;
3773 dr->orig_intx = !enable;
3774 }
a04ce0ff
BR
3775 }
3776}
b7fe9434 3777EXPORT_SYMBOL_GPL(pci_intx);
a04ce0ff 3778
a2e27787
JK
3779static bool pci_check_and_set_intx_mask(struct pci_dev *dev, bool mask)
3780{
3781 struct pci_bus *bus = dev->bus;
3782 bool mask_updated = true;
3783 u32 cmd_status_dword;
3784 u16 origcmd, newcmd;
3785 unsigned long flags;
3786 bool irq_pending;
3787
3788 /*
3789 * We do a single dword read to retrieve both command and status.
3790 * Document assumptions that make this possible.
3791 */
3792 BUILD_BUG_ON(PCI_COMMAND % 4);
3793 BUILD_BUG_ON(PCI_COMMAND + 2 != PCI_STATUS);
3794
3795 raw_spin_lock_irqsave(&pci_lock, flags);
3796
3797 bus->ops->read(bus, dev->devfn, PCI_COMMAND, 4, &cmd_status_dword);
3798
3799 irq_pending = (cmd_status_dword >> 16) & PCI_STATUS_INTERRUPT;
3800
3801 /*
3802 * Check interrupt status register to see whether our device
3803 * triggered the interrupt (when masking) or the next IRQ is
3804 * already pending (when unmasking).
3805 */
3806 if (mask != irq_pending) {
3807 mask_updated = false;
3808 goto done;
3809 }
3810
3811 origcmd = cmd_status_dword;
3812 newcmd = origcmd & ~PCI_COMMAND_INTX_DISABLE;
3813 if (mask)
3814 newcmd |= PCI_COMMAND_INTX_DISABLE;
3815 if (newcmd != origcmd)
3816 bus->ops->write(bus, dev->devfn, PCI_COMMAND, 2, newcmd);
3817
3818done:
3819 raw_spin_unlock_irqrestore(&pci_lock, flags);
3820
3821 return mask_updated;
3822}
3823
3824/**
3825 * pci_check_and_mask_intx - mask INTx on pending interrupt
6e9292c5 3826 * @dev: the PCI device to operate on
a2e27787
JK
3827 *
3828 * Check if the device dev has its INTx line asserted, mask it and
99b3c58f 3829 * return true in that case. False is returned if no interrupt was
a2e27787
JK
3830 * pending.
3831 */
3832bool pci_check_and_mask_intx(struct pci_dev *dev)
3833{
3834 return pci_check_and_set_intx_mask(dev, true);
3835}
3836EXPORT_SYMBOL_GPL(pci_check_and_mask_intx);
3837
3838/**
ebd50b93 3839 * pci_check_and_unmask_intx - unmask INTx if no interrupt is pending
6e9292c5 3840 * @dev: the PCI device to operate on
a2e27787
JK
3841 *
3842 * Check if the device dev has its INTx line asserted, unmask it if not
3843 * and return true. False is returned and the mask remains active if
3844 * there was still an interrupt pending.
3845 */
3846bool pci_check_and_unmask_intx(struct pci_dev *dev)
3847{
3848 return pci_check_and_set_intx_mask(dev, false);
3849}
3850EXPORT_SYMBOL_GPL(pci_check_and_unmask_intx);
3851
3775a209
CL
3852/**
3853 * pci_wait_for_pending_transaction - waits for pending transaction
3854 * @dev: the PCI device to operate on
3855 *
3856 * Return 0 if transaction is pending 1 otherwise.
3857 */
3858int pci_wait_for_pending_transaction(struct pci_dev *dev)
8dd7f803 3859{
157e876f
AW
3860 if (!pci_is_pcie(dev))
3861 return 1;
8c1c699f 3862
d0b4cc4e
GS
3863 return pci_wait_for_pending(dev, pci_pcie_cap(dev) + PCI_EXP_DEVSTA,
3864 PCI_EXP_DEVSTA_TRPND);
3775a209
CL
3865}
3866EXPORT_SYMBOL(pci_wait_for_pending_transaction);
3867
5adecf81
AW
3868/*
3869 * We should only need to wait 100ms after FLR, but some devices take longer.
3870 * Wait for up to 1000ms for config space to return something other than -1.
3871 * Intel IGD requires this when an LCD panel is attached. We read the 2nd
3872 * dword because VFs don't implement the 1st dword.
3873 */
3874static void pci_flr_wait(struct pci_dev *dev)
3875{
3876 int i = 0;
3877 u32 id;
3878
3879 do {
3880 msleep(100);
3881 pci_read_config_dword(dev, PCI_COMMAND, &id);
3882 } while (i++ < 10 && id == ~0);
3883
3884 if (id == ~0)
3885 dev_warn(&dev->dev, "Failed to return from FLR\n");
3886 else if (i > 1)
3887 dev_info(&dev->dev, "Required additional %dms to return from FLR\n",
3888 (i - 1) * 100);
3889}
3890
a60a2b73
CH
3891/**
3892 * pcie_has_flr - check if a device supports function level resets
3893 * @dev: device to check
3894 *
3895 * Returns true if the device advertises support for PCIe function level
3896 * resets.
3897 */
3898static bool pcie_has_flr(struct pci_dev *dev)
3775a209
CL
3899{
3900 u32 cap;
3901
f65fd1aa 3902 if (dev->dev_flags & PCI_DEV_FLAGS_NO_FLR_RESET)
a60a2b73 3903 return false;
3775a209 3904
a60a2b73
CH
3905 pcie_capability_read_dword(dev, PCI_EXP_DEVCAP, &cap);
3906 return cap & PCI_EXP_DEVCAP_FLR;
3907}
3775a209 3908
a60a2b73
CH
3909/**
3910 * pcie_flr - initiate a PCIe function level reset
3911 * @dev: device to reset
3912 *
3913 * Initiate a function level reset on @dev. The caller should ensure the
3914 * device supports FLR before calling this function, e.g. by using the
3915 * pcie_has_flr() helper.
3916 */
3917void pcie_flr(struct pci_dev *dev)
3918{
3775a209 3919 if (!pci_wait_for_pending_transaction(dev))
bb383e28 3920 dev_err(&dev->dev, "timed out waiting for pending transaction; performing function level reset anyway\n");
8c1c699f 3921
59875ae4 3922 pcie_capability_set_word(dev, PCI_EXP_DEVCTL, PCI_EXP_DEVCTL_BCR_FLR);
5adecf81 3923 pci_flr_wait(dev);
8dd7f803 3924}
a60a2b73 3925EXPORT_SYMBOL_GPL(pcie_flr);
d91cdc74 3926
8c1c699f 3927static int pci_af_flr(struct pci_dev *dev, int probe)
1ca88797 3928{
8c1c699f 3929 int pos;
1ca88797
SY
3930 u8 cap;
3931
8c1c699f
YZ
3932 pos = pci_find_capability(dev, PCI_CAP_ID_AF);
3933 if (!pos)
1ca88797 3934 return -ENOTTY;
8c1c699f 3935
f65fd1aa
SN
3936 if (dev->dev_flags & PCI_DEV_FLAGS_NO_FLR_RESET)
3937 return -ENOTTY;
3938
8c1c699f 3939 pci_read_config_byte(dev, pos + PCI_AF_CAP, &cap);
1ca88797
SY
3940 if (!(cap & PCI_AF_CAP_TP) || !(cap & PCI_AF_CAP_FLR))
3941 return -ENOTTY;
3942
3943 if (probe)
3944 return 0;
3945
d066c946
AW
3946 /*
3947 * Wait for Transaction Pending bit to clear. A word-aligned test
3948 * is used, so we use the conrol offset rather than status and shift
3949 * the test bit to match.
3950 */
bb383e28 3951 if (!pci_wait_for_pending(dev, pos + PCI_AF_CTRL,
d066c946 3952 PCI_AF_STATUS_TP << 8))
bb383e28 3953 dev_err(&dev->dev, "timed out waiting for pending transaction; performing AF function level reset anyway\n");
5fe5db05 3954
8c1c699f 3955 pci_write_config_byte(dev, pos + PCI_AF_CTRL, PCI_AF_CTRL_FLR);
5adecf81 3956 pci_flr_wait(dev);
1ca88797
SY
3957 return 0;
3958}
3959
83d74e03
RW
3960/**
3961 * pci_pm_reset - Put device into PCI_D3 and back into PCI_D0.
3962 * @dev: Device to reset.
3963 * @probe: If set, only check if the device can be reset this way.
3964 *
3965 * If @dev supports native PCI PM and its PCI_PM_CTRL_NO_SOFT_RESET flag is
3966 * unset, it will be reinitialized internally when going from PCI_D3hot to
3967 * PCI_D0. If that's the case and the device is not in a low-power state
3968 * already, force it into PCI_D3hot and back to PCI_D0, causing it to be reset.
3969 *
3970 * NOTE: This causes the caller to sleep for twice the device power transition
3971 * cooldown period, which for the D0->D3hot and D3hot->D0 transitions is 10 ms
f7625980 3972 * by default (i.e. unless the @dev's d3_delay field has a different value).
83d74e03
RW
3973 * Moreover, only devices in D0 can be reset by this function.
3974 */
f85876ba 3975static int pci_pm_reset(struct pci_dev *dev, int probe)
d91cdc74 3976{
f85876ba
YZ
3977 u16 csr;
3978
51e53738 3979 if (!dev->pm_cap || dev->dev_flags & PCI_DEV_FLAGS_NO_PM_RESET)
f85876ba 3980 return -ENOTTY;
d91cdc74 3981
f85876ba
YZ
3982 pci_read_config_word(dev, dev->pm_cap + PCI_PM_CTRL, &csr);
3983 if (csr & PCI_PM_CTRL_NO_SOFT_RESET)
3984 return -ENOTTY;
d91cdc74 3985
f85876ba
YZ
3986 if (probe)
3987 return 0;
1ca88797 3988
f85876ba
YZ
3989 if (dev->current_state != PCI_D0)
3990 return -EINVAL;
3991
3992 csr &= ~PCI_PM_CTRL_STATE_MASK;
3993 csr |= PCI_D3hot;
3994 pci_write_config_word(dev, dev->pm_cap + PCI_PM_CTRL, csr);
1ae861e6 3995 pci_dev_d3_sleep(dev);
f85876ba
YZ
3996
3997 csr &= ~PCI_PM_CTRL_STATE_MASK;
3998 csr |= PCI_D0;
3999 pci_write_config_word(dev, dev->pm_cap + PCI_PM_CTRL, csr);
1ae861e6 4000 pci_dev_d3_sleep(dev);
f85876ba
YZ
4001
4002 return 0;
4003}
4004
9e33002f 4005void pci_reset_secondary_bus(struct pci_dev *dev)
c12ff1df
YZ
4006{
4007 u16 ctrl;
64e8674f
AW
4008
4009 pci_read_config_word(dev, PCI_BRIDGE_CONTROL, &ctrl);
4010 ctrl |= PCI_BRIDGE_CTL_BUS_RESET;
4011 pci_write_config_word(dev, PCI_BRIDGE_CONTROL, ctrl);
de0c548c
AW
4012 /*
4013 * PCI spec v3.0 7.6.4.2 requires minimum Trst of 1ms. Double
f7625980 4014 * this to 2ms to ensure that we meet the minimum requirement.
de0c548c
AW
4015 */
4016 msleep(2);
64e8674f
AW
4017
4018 ctrl &= ~PCI_BRIDGE_CTL_BUS_RESET;
4019 pci_write_config_word(dev, PCI_BRIDGE_CONTROL, ctrl);
de0c548c
AW
4020
4021 /*
4022 * Trhfa for conventional PCI is 2^25 clock cycles.
4023 * Assuming a minimum 33MHz clock this results in a 1s
4024 * delay before we can consider subordinate devices to
4025 * be re-initialized. PCIe has some ways to shorten this,
4026 * but we don't make use of them yet.
4027 */
4028 ssleep(1);
64e8674f 4029}
d92a208d 4030
9e33002f
GS
4031void __weak pcibios_reset_secondary_bus(struct pci_dev *dev)
4032{
4033 pci_reset_secondary_bus(dev);
4034}
4035
d92a208d
GS
4036/**
4037 * pci_reset_bridge_secondary_bus - Reset the secondary bus on a PCI bridge.
4038 * @dev: Bridge device
4039 *
4040 * Use the bridge control register to assert reset on the secondary bus.
4041 * Devices on the secondary bus are left in power-on state.
4042 */
4043void pci_reset_bridge_secondary_bus(struct pci_dev *dev)
4044{
4045 pcibios_reset_secondary_bus(dev);
4046}
64e8674f
AW
4047EXPORT_SYMBOL_GPL(pci_reset_bridge_secondary_bus);
4048
4049static int pci_parent_bus_reset(struct pci_dev *dev, int probe)
4050{
c12ff1df
YZ
4051 struct pci_dev *pdev;
4052
f331a859
AW
4053 if (pci_is_root_bus(dev->bus) || dev->subordinate ||
4054 !dev->bus->self || dev->dev_flags & PCI_DEV_FLAGS_NO_BUS_RESET)
c12ff1df
YZ
4055 return -ENOTTY;
4056
4057 list_for_each_entry(pdev, &dev->bus->devices, bus_list)
4058 if (pdev != dev)
4059 return -ENOTTY;
4060
4061 if (probe)
4062 return 0;
4063
64e8674f 4064 pci_reset_bridge_secondary_bus(dev->bus->self);
c12ff1df
YZ
4065
4066 return 0;
4067}
4068
608c3881
AW
4069static int pci_reset_hotplug_slot(struct hotplug_slot *hotplug, int probe)
4070{
4071 int rc = -ENOTTY;
4072
4073 if (!hotplug || !try_module_get(hotplug->ops->owner))
4074 return rc;
4075
4076 if (hotplug->ops->reset_slot)
4077 rc = hotplug->ops->reset_slot(hotplug, probe);
4078
4079 module_put(hotplug->ops->owner);
4080
4081 return rc;
4082}
4083
4084static int pci_dev_reset_slot_function(struct pci_dev *dev, int probe)
4085{
4086 struct pci_dev *pdev;
4087
f331a859
AW
4088 if (dev->subordinate || !dev->slot ||
4089 dev->dev_flags & PCI_DEV_FLAGS_NO_BUS_RESET)
608c3881
AW
4090 return -ENOTTY;
4091
4092 list_for_each_entry(pdev, &dev->bus->devices, bus_list)
4093 if (pdev != dev && pdev->slot == dev->slot)
4094 return -ENOTTY;
4095
4096 return pci_reset_hotplug_slot(dev->slot->hotplug, probe);
4097}
4098
77cb985a
AW
4099static void pci_dev_lock(struct pci_dev *dev)
4100{
4101 pci_cfg_access_lock(dev);
4102 /* block PM suspend, driver probe, etc. */
4103 device_lock(&dev->dev);
4104}
4105
61cf16d8
AW
4106/* Return 1 on successful lock, 0 on contention */
4107static int pci_dev_trylock(struct pci_dev *dev)
4108{
4109 if (pci_cfg_access_trylock(dev)) {
4110 if (device_trylock(&dev->dev))
4111 return 1;
4112 pci_cfg_access_unlock(dev);
4113 }
4114
4115 return 0;
4116}
4117
77cb985a
AW
4118static void pci_dev_unlock(struct pci_dev *dev)
4119{
4120 device_unlock(&dev->dev);
4121 pci_cfg_access_unlock(dev);
4122}
4123
775755ed 4124static void pci_dev_save_and_disable(struct pci_dev *dev)
3ebe7f9f
KB
4125{
4126 const struct pci_error_handlers *err_handler =
4127 dev->driver ? dev->driver->err_handler : NULL;
3ebe7f9f 4128
b014e96d 4129 /*
775755ed 4130 * dev->driver->err_handler->reset_prepare() is protected against
b014e96d
CH
4131 * races with ->remove() by the device lock, which must be held by
4132 * the caller.
4133 */
775755ed
CH
4134 if (err_handler && err_handler->reset_prepare)
4135 err_handler->reset_prepare(dev);
3ebe7f9f 4136
a6cbaade
AW
4137 /*
4138 * Wake-up device prior to save. PM registers default to D0 after
4139 * reset and a simple register restore doesn't reliably return
4140 * to a non-D0 state anyway.
4141 */
4142 pci_set_power_state(dev, PCI_D0);
4143
77cb985a
AW
4144 pci_save_state(dev);
4145 /*
4146 * Disable the device by clearing the Command register, except for
4147 * INTx-disable which is set. This not only disables MMIO and I/O port
4148 * BARs, but also prevents the device from being Bus Master, preventing
4149 * DMA from the device including MSI/MSI-X interrupts. For PCI 2.3
4150 * compliant devices, INTx-disable prevents legacy interrupts.
4151 */
4152 pci_write_config_word(dev, PCI_COMMAND, PCI_COMMAND_INTX_DISABLE);
4153}
4154
4155static void pci_dev_restore(struct pci_dev *dev)
4156{
775755ed
CH
4157 const struct pci_error_handlers *err_handler =
4158 dev->driver ? dev->driver->err_handler : NULL;
977f857c 4159
77cb985a 4160 pci_restore_state(dev);
77cb985a 4161
775755ed
CH
4162 /*
4163 * dev->driver->err_handler->reset_done() is protected against
4164 * races with ->remove() by the device lock, which must be held by
4165 * the caller.
4166 */
4167 if (err_handler && err_handler->reset_done)
4168 err_handler->reset_done(dev);
d91cdc74 4169}
3ebe7f9f 4170
d91cdc74 4171/**
8c1c699f
YZ
4172 * __pci_reset_function - reset a PCI device function
4173 * @dev: PCI device to reset
d91cdc74
SY
4174 *
4175 * Some devices allow an individual function to be reset without affecting
4176 * other functions in the same device. The PCI device must be responsive
4177 * to PCI config space in order to use this function.
4178 *
4179 * The device function is presumed to be unused when this function is called.
4180 * Resetting the device will make the contents of PCI configuration space
4181 * random, so any caller of this must be prepared to reinitialise the
4182 * device including MSI, bus mastering, BARs, decoding IO and memory spaces,
4183 * etc.
4184 *
8c1c699f 4185 * Returns 0 if the device function was successfully reset or negative if the
d91cdc74
SY
4186 * device doesn't support resetting a single function.
4187 */
8c1c699f 4188int __pci_reset_function(struct pci_dev *dev)
d91cdc74 4189{
52354b9d
CH
4190 int ret;
4191
4192 pci_dev_lock(dev);
4193 ret = __pci_reset_function_locked(dev);
4194 pci_dev_unlock(dev);
4195
4196 return ret;
d91cdc74 4197}
8c1c699f 4198EXPORT_SYMBOL_GPL(__pci_reset_function);
8dd7f803 4199
6fbf9e7a
KRW
4200/**
4201 * __pci_reset_function_locked - reset a PCI device function while holding
4202 * the @dev mutex lock.
4203 * @dev: PCI device to reset
4204 *
4205 * Some devices allow an individual function to be reset without affecting
4206 * other functions in the same device. The PCI device must be responsive
4207 * to PCI config space in order to use this function.
4208 *
4209 * The device function is presumed to be unused and the caller is holding
4210 * the device mutex lock when this function is called.
4211 * Resetting the device will make the contents of PCI configuration space
4212 * random, so any caller of this must be prepared to reinitialise the
4213 * device including MSI, bus mastering, BARs, decoding IO and memory spaces,
4214 * etc.
4215 *
4216 * Returns 0 if the device function was successfully reset or negative if the
4217 * device doesn't support resetting a single function.
4218 */
4219int __pci_reset_function_locked(struct pci_dev *dev)
4220{
52354b9d
CH
4221 int rc;
4222
4223 might_sleep();
4224
4225 rc = pci_dev_specific_reset(dev, 0);
4226 if (rc != -ENOTTY)
4227 return rc;
4228 if (pcie_has_flr(dev)) {
4229 pcie_flr(dev);
4230 return 0;
4231 }
4232 rc = pci_af_flr(dev, 0);
4233 if (rc != -ENOTTY)
4234 return rc;
4235 rc = pci_pm_reset(dev, 0);
4236 if (rc != -ENOTTY)
4237 return rc;
4238 rc = pci_dev_reset_slot_function(dev, 0);
4239 if (rc != -ENOTTY)
4240 return rc;
4241 return pci_parent_bus_reset(dev, 0);
6fbf9e7a
KRW
4242}
4243EXPORT_SYMBOL_GPL(__pci_reset_function_locked);
4244
711d5779
MT
4245/**
4246 * pci_probe_reset_function - check whether the device can be safely reset
4247 * @dev: PCI device to reset
4248 *
4249 * Some devices allow an individual function to be reset without affecting
4250 * other functions in the same device. The PCI device must be responsive
4251 * to PCI config space in order to use this function.
4252 *
4253 * Returns 0 if the device function can be reset or negative if the
4254 * device doesn't support resetting a single function.
4255 */
4256int pci_probe_reset_function(struct pci_dev *dev)
4257{
52354b9d
CH
4258 int rc;
4259
4260 might_sleep();
4261
4262 rc = pci_dev_specific_reset(dev, 1);
4263 if (rc != -ENOTTY)
4264 return rc;
4265 if (pcie_has_flr(dev))
4266 return 0;
4267 rc = pci_af_flr(dev, 1);
4268 if (rc != -ENOTTY)
4269 return rc;
4270 rc = pci_pm_reset(dev, 1);
4271 if (rc != -ENOTTY)
4272 return rc;
4273 rc = pci_dev_reset_slot_function(dev, 1);
4274 if (rc != -ENOTTY)
4275 return rc;
4276
4277 return pci_parent_bus_reset(dev, 1);
711d5779
MT
4278}
4279
8dd7f803 4280/**
8c1c699f
YZ
4281 * pci_reset_function - quiesce and reset a PCI device function
4282 * @dev: PCI device to reset
8dd7f803
SY
4283 *
4284 * Some devices allow an individual function to be reset without affecting
4285 * other functions in the same device. The PCI device must be responsive
4286 * to PCI config space in order to use this function.
4287 *
4288 * This function does not just reset the PCI portion of a device, but
4289 * clears all the state associated with the device. This function differs
8c1c699f 4290 * from __pci_reset_function in that it saves and restores device state
8dd7f803
SY
4291 * over the reset.
4292 *
8c1c699f 4293 * Returns 0 if the device function was successfully reset or negative if the
8dd7f803
SY
4294 * device doesn't support resetting a single function.
4295 */
4296int pci_reset_function(struct pci_dev *dev)
4297{
8c1c699f 4298 int rc;
8dd7f803 4299
52354b9d 4300 rc = pci_probe_reset_function(dev);
8c1c699f
YZ
4301 if (rc)
4302 return rc;
8dd7f803 4303
b014e96d 4304 pci_dev_lock(dev);
77cb985a 4305 pci_dev_save_and_disable(dev);
8dd7f803 4306
52354b9d 4307 rc = __pci_reset_function_locked(dev);
8dd7f803 4308
77cb985a 4309 pci_dev_restore(dev);
b014e96d 4310 pci_dev_unlock(dev);
8dd7f803 4311
8c1c699f 4312 return rc;
8dd7f803
SY
4313}
4314EXPORT_SYMBOL_GPL(pci_reset_function);
4315
a477b9cd
MZ
4316/**
4317 * pci_reset_function_locked - quiesce and reset a PCI device function
4318 * @dev: PCI device to reset
4319 *
4320 * Some devices allow an individual function to be reset without affecting
4321 * other functions in the same device. The PCI device must be responsive
4322 * to PCI config space in order to use this function.
4323 *
4324 * This function does not just reset the PCI portion of a device, but
4325 * clears all the state associated with the device. This function differs
4326 * from __pci_reset_function() in that it saves and restores device state
4327 * over the reset. It also differs from pci_reset_function() in that it
4328 * requires the PCI device lock to be held.
4329 *
4330 * Returns 0 if the device function was successfully reset or negative if the
4331 * device doesn't support resetting a single function.
4332 */
4333int pci_reset_function_locked(struct pci_dev *dev)
4334{
4335 int rc;
4336
4337 rc = pci_probe_reset_function(dev);
4338 if (rc)
4339 return rc;
4340
4341 pci_dev_save_and_disable(dev);
4342
4343 rc = __pci_reset_function_locked(dev);
4344
4345 pci_dev_restore(dev);
4346
4347 return rc;
4348}
4349EXPORT_SYMBOL_GPL(pci_reset_function_locked);
4350
61cf16d8
AW
4351/**
4352 * pci_try_reset_function - quiesce and reset a PCI device function
4353 * @dev: PCI device to reset
4354 *
4355 * Same as above, except return -EAGAIN if unable to lock device.
4356 */
4357int pci_try_reset_function(struct pci_dev *dev)
4358{
4359 int rc;
4360
52354b9d 4361 rc = pci_probe_reset_function(dev);
61cf16d8
AW
4362 if (rc)
4363 return rc;
4364
b014e96d
CH
4365 if (!pci_dev_trylock(dev))
4366 return -EAGAIN;
61cf16d8 4367
b014e96d 4368 pci_dev_save_and_disable(dev);
52354b9d 4369 rc = __pci_reset_function_locked(dev);
b014e96d 4370 pci_dev_unlock(dev);
61cf16d8
AW
4371
4372 pci_dev_restore(dev);
61cf16d8
AW
4373 return rc;
4374}
4375EXPORT_SYMBOL_GPL(pci_try_reset_function);
4376
f331a859
AW
4377/* Do any devices on or below this bus prevent a bus reset? */
4378static bool pci_bus_resetable(struct pci_bus *bus)
4379{
4380 struct pci_dev *dev;
4381
434e9e87
DD
4382
4383 if (bus->self && (bus->self->dev_flags & PCI_DEV_FLAGS_NO_BUS_RESET))
4384 return false;
4385
f331a859
AW
4386 list_for_each_entry(dev, &bus->devices, bus_list) {
4387 if (dev->dev_flags & PCI_DEV_FLAGS_NO_BUS_RESET ||
4388 (dev->subordinate && !pci_bus_resetable(dev->subordinate)))
4389 return false;
4390 }
4391
4392 return true;
4393}
4394
090a3c53
AW
4395/* Lock devices from the top of the tree down */
4396static void pci_bus_lock(struct pci_bus *bus)
4397{
4398 struct pci_dev *dev;
4399
4400 list_for_each_entry(dev, &bus->devices, bus_list) {
4401 pci_dev_lock(dev);
4402 if (dev->subordinate)
4403 pci_bus_lock(dev->subordinate);
4404 }
4405}
4406
4407/* Unlock devices from the bottom of the tree up */
4408static void pci_bus_unlock(struct pci_bus *bus)
4409{
4410 struct pci_dev *dev;
4411
4412 list_for_each_entry(dev, &bus->devices, bus_list) {
4413 if (dev->subordinate)
4414 pci_bus_unlock(dev->subordinate);
4415 pci_dev_unlock(dev);
4416 }
4417}
4418
61cf16d8
AW
4419/* Return 1 on successful lock, 0 on contention */
4420static int pci_bus_trylock(struct pci_bus *bus)
4421{
4422 struct pci_dev *dev;
4423
4424 list_for_each_entry(dev, &bus->devices, bus_list) {
4425 if (!pci_dev_trylock(dev))
4426 goto unlock;
4427 if (dev->subordinate) {
4428 if (!pci_bus_trylock(dev->subordinate)) {
4429 pci_dev_unlock(dev);
4430 goto unlock;
4431 }
4432 }
4433 }
4434 return 1;
4435
4436unlock:
4437 list_for_each_entry_continue_reverse(dev, &bus->devices, bus_list) {
4438 if (dev->subordinate)
4439 pci_bus_unlock(dev->subordinate);
4440 pci_dev_unlock(dev);
4441 }
4442 return 0;
4443}
4444
f331a859
AW
4445/* Do any devices on or below this slot prevent a bus reset? */
4446static bool pci_slot_resetable(struct pci_slot *slot)
4447{
4448 struct pci_dev *dev;
4449
4105f1af
JG
4450 if (slot->bus->self &&
4451 (slot->bus->self->dev_flags & PCI_DEV_FLAGS_NO_BUS_RESET))
4452 return false;
4453
f331a859
AW
4454 list_for_each_entry(dev, &slot->bus->devices, bus_list) {
4455 if (!dev->slot || dev->slot != slot)
4456 continue;
4457 if (dev->dev_flags & PCI_DEV_FLAGS_NO_BUS_RESET ||
4458 (dev->subordinate && !pci_bus_resetable(dev->subordinate)))
4459 return false;
4460 }
4461
4462 return true;
4463}
4464
090a3c53
AW
4465/* Lock devices from the top of the tree down */
4466static void pci_slot_lock(struct pci_slot *slot)
4467{
4468 struct pci_dev *dev;
4469
4470 list_for_each_entry(dev, &slot->bus->devices, bus_list) {
4471 if (!dev->slot || dev->slot != slot)
4472 continue;
4473 pci_dev_lock(dev);
4474 if (dev->subordinate)
4475 pci_bus_lock(dev->subordinate);
4476 }
4477}
4478
4479/* Unlock devices from the bottom of the tree up */
4480static void pci_slot_unlock(struct pci_slot *slot)
4481{
4482 struct pci_dev *dev;
4483
4484 list_for_each_entry(dev, &slot->bus->devices, bus_list) {
4485 if (!dev->slot || dev->slot != slot)
4486 continue;
4487 if (dev->subordinate)
4488 pci_bus_unlock(dev->subordinate);
4489 pci_dev_unlock(dev);
4490 }
4491}
4492
61cf16d8
AW
4493/* Return 1 on successful lock, 0 on contention */
4494static int pci_slot_trylock(struct pci_slot *slot)
4495{
4496 struct pci_dev *dev;
4497
4498 list_for_each_entry(dev, &slot->bus->devices, bus_list) {
4499 if (!dev->slot || dev->slot != slot)
4500 continue;
4501 if (!pci_dev_trylock(dev))
4502 goto unlock;
4503 if (dev->subordinate) {
4504 if (!pci_bus_trylock(dev->subordinate)) {
4505 pci_dev_unlock(dev);
4506 goto unlock;
4507 }
4508 }
4509 }
4510 return 1;
4511
4512unlock:
4513 list_for_each_entry_continue_reverse(dev,
4514 &slot->bus->devices, bus_list) {
4515 if (!dev->slot || dev->slot != slot)
4516 continue;
4517 if (dev->subordinate)
4518 pci_bus_unlock(dev->subordinate);
4519 pci_dev_unlock(dev);
4520 }
4521 return 0;
4522}
4523
090a3c53
AW
4524/* Save and disable devices from the top of the tree down */
4525static void pci_bus_save_and_disable(struct pci_bus *bus)
4526{
4527 struct pci_dev *dev;
4528
4529 list_for_each_entry(dev, &bus->devices, bus_list) {
b014e96d 4530 pci_dev_lock(dev);
090a3c53 4531 pci_dev_save_and_disable(dev);
b014e96d 4532 pci_dev_unlock(dev);
090a3c53
AW
4533 if (dev->subordinate)
4534 pci_bus_save_and_disable(dev->subordinate);
4535 }
4536}
4537
4538/*
4539 * Restore devices from top of the tree down - parent bridges need to be
4540 * restored before we can get to subordinate devices.
4541 */
4542static void pci_bus_restore(struct pci_bus *bus)
4543{
4544 struct pci_dev *dev;
4545
4546 list_for_each_entry(dev, &bus->devices, bus_list) {
b014e96d 4547 pci_dev_lock(dev);
090a3c53 4548 pci_dev_restore(dev);
b014e96d 4549 pci_dev_unlock(dev);
090a3c53
AW
4550 if (dev->subordinate)
4551 pci_bus_restore(dev->subordinate);
4552 }
4553}
4554
4555/* Save and disable devices from the top of the tree down */
4556static void pci_slot_save_and_disable(struct pci_slot *slot)
4557{
4558 struct pci_dev *dev;
4559
4560 list_for_each_entry(dev, &slot->bus->devices, bus_list) {
4561 if (!dev->slot || dev->slot != slot)
4562 continue;
4563 pci_dev_save_and_disable(dev);
4564 if (dev->subordinate)
4565 pci_bus_save_and_disable(dev->subordinate);
4566 }
4567}
4568
4569/*
4570 * Restore devices from top of the tree down - parent bridges need to be
4571 * restored before we can get to subordinate devices.
4572 */
4573static void pci_slot_restore(struct pci_slot *slot)
4574{
4575 struct pci_dev *dev;
4576
4577 list_for_each_entry(dev, &slot->bus->devices, bus_list) {
4578 if (!dev->slot || dev->slot != slot)
4579 continue;
4580 pci_dev_restore(dev);
4581 if (dev->subordinate)
4582 pci_bus_restore(dev->subordinate);
4583 }
4584}
4585
4586static int pci_slot_reset(struct pci_slot *slot, int probe)
4587{
4588 int rc;
4589
f331a859 4590 if (!slot || !pci_slot_resetable(slot))
090a3c53
AW
4591 return -ENOTTY;
4592
4593 if (!probe)
4594 pci_slot_lock(slot);
4595
4596 might_sleep();
4597
4598 rc = pci_reset_hotplug_slot(slot->hotplug, probe);
4599
4600 if (!probe)
4601 pci_slot_unlock(slot);
4602
4603 return rc;
4604}
4605
9a3d2b9b
AW
4606/**
4607 * pci_probe_reset_slot - probe whether a PCI slot can be reset
4608 * @slot: PCI slot to probe
4609 *
4610 * Return 0 if slot can be reset, negative if a slot reset is not supported.
4611 */
4612int pci_probe_reset_slot(struct pci_slot *slot)
4613{
4614 return pci_slot_reset(slot, 1);
4615}
4616EXPORT_SYMBOL_GPL(pci_probe_reset_slot);
4617
090a3c53
AW
4618/**
4619 * pci_reset_slot - reset a PCI slot
4620 * @slot: PCI slot to reset
4621 *
4622 * A PCI bus may host multiple slots, each slot may support a reset mechanism
4623 * independent of other slots. For instance, some slots may support slot power
4624 * control. In the case of a 1:1 bus to slot architecture, this function may
4625 * wrap the bus reset to avoid spurious slot related events such as hotplug.
4626 * Generally a slot reset should be attempted before a bus reset. All of the
4627 * function of the slot and any subordinate buses behind the slot are reset
4628 * through this function. PCI config space of all devices in the slot and
4629 * behind the slot is saved before and restored after reset.
4630 *
4631 * Return 0 on success, non-zero on error.
4632 */
4633int pci_reset_slot(struct pci_slot *slot)
4634{
4635 int rc;
4636
4637 rc = pci_slot_reset(slot, 1);
4638 if (rc)
4639 return rc;
4640
4641 pci_slot_save_and_disable(slot);
4642
4643 rc = pci_slot_reset(slot, 0);
4644
4645 pci_slot_restore(slot);
4646
4647 return rc;
4648}
4649EXPORT_SYMBOL_GPL(pci_reset_slot);
4650
61cf16d8
AW
4651/**
4652 * pci_try_reset_slot - Try to reset a PCI slot
4653 * @slot: PCI slot to reset
4654 *
4655 * Same as above except return -EAGAIN if the slot cannot be locked
4656 */
4657int pci_try_reset_slot(struct pci_slot *slot)
4658{
4659 int rc;
4660
4661 rc = pci_slot_reset(slot, 1);
4662 if (rc)
4663 return rc;
4664
4665 pci_slot_save_and_disable(slot);
4666
4667 if (pci_slot_trylock(slot)) {
4668 might_sleep();
4669 rc = pci_reset_hotplug_slot(slot->hotplug, 0);
4670 pci_slot_unlock(slot);
4671 } else
4672 rc = -EAGAIN;
4673
4674 pci_slot_restore(slot);
4675
4676 return rc;
4677}
4678EXPORT_SYMBOL_GPL(pci_try_reset_slot);
4679
090a3c53
AW
4680static int pci_bus_reset(struct pci_bus *bus, int probe)
4681{
f331a859 4682 if (!bus->self || !pci_bus_resetable(bus))
090a3c53
AW
4683 return -ENOTTY;
4684
4685 if (probe)
4686 return 0;
4687
4688 pci_bus_lock(bus);
4689
4690 might_sleep();
4691
4692 pci_reset_bridge_secondary_bus(bus->self);
4693
4694 pci_bus_unlock(bus);
4695
4696 return 0;
4697}
4698
9a3d2b9b
AW
4699/**
4700 * pci_probe_reset_bus - probe whether a PCI bus can be reset
4701 * @bus: PCI bus to probe
4702 *
4703 * Return 0 if bus can be reset, negative if a bus reset is not supported.
4704 */
4705int pci_probe_reset_bus(struct pci_bus *bus)
4706{
4707 return pci_bus_reset(bus, 1);
4708}
4709EXPORT_SYMBOL_GPL(pci_probe_reset_bus);
4710
090a3c53
AW
4711/**
4712 * pci_reset_bus - reset a PCI bus
4713 * @bus: top level PCI bus to reset
4714 *
4715 * Do a bus reset on the given bus and any subordinate buses, saving
4716 * and restoring state of all devices.
4717 *
4718 * Return 0 on success, non-zero on error.
4719 */
4720int pci_reset_bus(struct pci_bus *bus)
4721{
4722 int rc;
4723
4724 rc = pci_bus_reset(bus, 1);
4725 if (rc)
4726 return rc;
4727
4728 pci_bus_save_and_disable(bus);
4729
4730 rc = pci_bus_reset(bus, 0);
4731
4732 pci_bus_restore(bus);
4733
4734 return rc;
4735}
4736EXPORT_SYMBOL_GPL(pci_reset_bus);
4737
61cf16d8
AW
4738/**
4739 * pci_try_reset_bus - Try to reset a PCI bus
4740 * @bus: top level PCI bus to reset
4741 *
4742 * Same as above except return -EAGAIN if the bus cannot be locked
4743 */
4744int pci_try_reset_bus(struct pci_bus *bus)
4745{
4746 int rc;
4747
4748 rc = pci_bus_reset(bus, 1);
4749 if (rc)
4750 return rc;
4751
4752 pci_bus_save_and_disable(bus);
4753
4754 if (pci_bus_trylock(bus)) {
4755 might_sleep();
4756 pci_reset_bridge_secondary_bus(bus->self);
4757 pci_bus_unlock(bus);
4758 } else
4759 rc = -EAGAIN;
4760
4761 pci_bus_restore(bus);
4762
4763 return rc;
4764}
4765EXPORT_SYMBOL_GPL(pci_try_reset_bus);
4766
d556ad4b
PO
4767/**
4768 * pcix_get_max_mmrbc - get PCI-X maximum designed memory read byte count
4769 * @dev: PCI device to query
4770 *
4771 * Returns mmrbc: maximum designed memory read count in bytes
4772 * or appropriate error value.
4773 */
4774int pcix_get_max_mmrbc(struct pci_dev *dev)
4775{
7c9e2b1c 4776 int cap;
d556ad4b
PO
4777 u32 stat;
4778
4779 cap = pci_find_capability(dev, PCI_CAP_ID_PCIX);
4780 if (!cap)
4781 return -EINVAL;
4782
7c9e2b1c 4783 if (pci_read_config_dword(dev, cap + PCI_X_STATUS, &stat))
d556ad4b
PO
4784 return -EINVAL;
4785
25daeb55 4786 return 512 << ((stat & PCI_X_STATUS_MAX_READ) >> 21);
d556ad4b
PO
4787}
4788EXPORT_SYMBOL(pcix_get_max_mmrbc);
4789
4790/**
4791 * pcix_get_mmrbc - get PCI-X maximum memory read byte count
4792 * @dev: PCI device to query
4793 *
4794 * Returns mmrbc: maximum memory read count in bytes
4795 * or appropriate error value.
4796 */
4797int pcix_get_mmrbc(struct pci_dev *dev)
4798{
7c9e2b1c 4799 int cap;
bdc2bda7 4800 u16 cmd;
d556ad4b
PO
4801
4802 cap = pci_find_capability(dev, PCI_CAP_ID_PCIX);
4803 if (!cap)
4804 return -EINVAL;
4805
7c9e2b1c
DN
4806 if (pci_read_config_word(dev, cap + PCI_X_CMD, &cmd))
4807 return -EINVAL;
d556ad4b 4808
7c9e2b1c 4809 return 512 << ((cmd & PCI_X_CMD_MAX_READ) >> 2);
d556ad4b
PO
4810}
4811EXPORT_SYMBOL(pcix_get_mmrbc);
4812
4813/**
4814 * pcix_set_mmrbc - set PCI-X maximum memory read byte count
4815 * @dev: PCI device to query
4816 * @mmrbc: maximum memory read count in bytes
4817 * valid values are 512, 1024, 2048, 4096
4818 *
4819 * If possible sets maximum memory read byte count, some bridges have erratas
4820 * that prevent this.
4821 */
4822int pcix_set_mmrbc(struct pci_dev *dev, int mmrbc)
4823{
7c9e2b1c 4824 int cap;
bdc2bda7
DN
4825 u32 stat, v, o;
4826 u16 cmd;
d556ad4b 4827
229f5afd 4828 if (mmrbc < 512 || mmrbc > 4096 || !is_power_of_2(mmrbc))
7c9e2b1c 4829 return -EINVAL;
d556ad4b
PO
4830
4831 v = ffs(mmrbc) - 10;
4832
4833 cap = pci_find_capability(dev, PCI_CAP_ID_PCIX);
4834 if (!cap)
7c9e2b1c 4835 return -EINVAL;
d556ad4b 4836
7c9e2b1c
DN
4837 if (pci_read_config_dword(dev, cap + PCI_X_STATUS, &stat))
4838 return -EINVAL;
d556ad4b
PO
4839
4840 if (v > (stat & PCI_X_STATUS_MAX_READ) >> 21)
4841 return -E2BIG;
4842
7c9e2b1c
DN
4843 if (pci_read_config_word(dev, cap + PCI_X_CMD, &cmd))
4844 return -EINVAL;
d556ad4b
PO
4845
4846 o = (cmd & PCI_X_CMD_MAX_READ) >> 2;
4847 if (o != v) {
809a3bf9 4848 if (v > o && (dev->bus->bus_flags & PCI_BUS_FLAGS_NO_MMRBC))
d556ad4b
PO
4849 return -EIO;
4850
4851 cmd &= ~PCI_X_CMD_MAX_READ;
4852 cmd |= v << 2;
7c9e2b1c
DN
4853 if (pci_write_config_word(dev, cap + PCI_X_CMD, cmd))
4854 return -EIO;
d556ad4b 4855 }
7c9e2b1c 4856 return 0;
d556ad4b
PO
4857}
4858EXPORT_SYMBOL(pcix_set_mmrbc);
4859
4860/**
4861 * pcie_get_readrq - get PCI Express read request size
4862 * @dev: PCI device to query
4863 *
4864 * Returns maximum memory read request in bytes
4865 * or appropriate error value.
4866 */
4867int pcie_get_readrq(struct pci_dev *dev)
4868{
d556ad4b
PO
4869 u16 ctl;
4870
59875ae4 4871 pcie_capability_read_word(dev, PCI_EXP_DEVCTL, &ctl);
d556ad4b 4872
59875ae4 4873 return 128 << ((ctl & PCI_EXP_DEVCTL_READRQ) >> 12);
d556ad4b
PO
4874}
4875EXPORT_SYMBOL(pcie_get_readrq);
4876
4877/**
4878 * pcie_set_readrq - set PCI Express maximum memory read request
4879 * @dev: PCI device to query
42e61f4a 4880 * @rq: maximum memory read count in bytes
d556ad4b
PO
4881 * valid values are 128, 256, 512, 1024, 2048, 4096
4882 *
c9b378c7 4883 * If possible sets maximum memory read request in bytes
d556ad4b
PO
4884 */
4885int pcie_set_readrq(struct pci_dev *dev, int rq)
4886{
59875ae4 4887 u16 v;
d556ad4b 4888
229f5afd 4889 if (rq < 128 || rq > 4096 || !is_power_of_2(rq))
59875ae4 4890 return -EINVAL;
d556ad4b 4891
a1c473aa
BH
4892 /*
4893 * If using the "performance" PCIe config, we clamp the
4894 * read rq size to the max packet size to prevent the
4895 * host bridge generating requests larger than we can
4896 * cope with
4897 */
4898 if (pcie_bus_config == PCIE_BUS_PERFORMANCE) {
4899 int mps = pcie_get_mps(dev);
4900
a1c473aa
BH
4901 if (mps < rq)
4902 rq = mps;
4903 }
4904
4905 v = (ffs(rq) - 8) << 12;
d556ad4b 4906
59875ae4
JL
4907 return pcie_capability_clear_and_set_word(dev, PCI_EXP_DEVCTL,
4908 PCI_EXP_DEVCTL_READRQ, v);
d556ad4b
PO
4909}
4910EXPORT_SYMBOL(pcie_set_readrq);
4911
b03e7495
JM
4912/**
4913 * pcie_get_mps - get PCI Express maximum payload size
4914 * @dev: PCI device to query
4915 *
4916 * Returns maximum payload size in bytes
b03e7495
JM
4917 */
4918int pcie_get_mps(struct pci_dev *dev)
4919{
b03e7495
JM
4920 u16 ctl;
4921
59875ae4 4922 pcie_capability_read_word(dev, PCI_EXP_DEVCTL, &ctl);
b03e7495 4923
59875ae4 4924 return 128 << ((ctl & PCI_EXP_DEVCTL_PAYLOAD) >> 5);
b03e7495 4925}
f1c66c46 4926EXPORT_SYMBOL(pcie_get_mps);
b03e7495
JM
4927
4928/**
4929 * pcie_set_mps - set PCI Express maximum payload size
4930 * @dev: PCI device to query
47c08f31 4931 * @mps: maximum payload size in bytes
b03e7495
JM
4932 * valid values are 128, 256, 512, 1024, 2048, 4096
4933 *
4934 * If possible sets maximum payload size
4935 */
4936int pcie_set_mps(struct pci_dev *dev, int mps)
4937{
59875ae4 4938 u16 v;
b03e7495
JM
4939
4940 if (mps < 128 || mps > 4096 || !is_power_of_2(mps))
59875ae4 4941 return -EINVAL;
b03e7495
JM
4942
4943 v = ffs(mps) - 8;
f7625980 4944 if (v > dev->pcie_mpss)
59875ae4 4945 return -EINVAL;
b03e7495
JM
4946 v <<= 5;
4947
59875ae4
JL
4948 return pcie_capability_clear_and_set_word(dev, PCI_EXP_DEVCTL,
4949 PCI_EXP_DEVCTL_PAYLOAD, v);
b03e7495 4950}
f1c66c46 4951EXPORT_SYMBOL(pcie_set_mps);
b03e7495 4952
81377c8d
JK
4953/**
4954 * pcie_get_minimum_link - determine minimum link settings of a PCI device
4955 * @dev: PCI device to query
4956 * @speed: storage for minimum speed
4957 * @width: storage for minimum width
4958 *
4959 * This function will walk up the PCI device chain and determine the minimum
4960 * link width and speed of the device.
4961 */
4962int pcie_get_minimum_link(struct pci_dev *dev, enum pci_bus_speed *speed,
4963 enum pcie_link_width *width)
4964{
4965 int ret;
4966
4967 *speed = PCI_SPEED_UNKNOWN;
4968 *width = PCIE_LNK_WIDTH_UNKNOWN;
4969
4970 while (dev) {
4971 u16 lnksta;
4972 enum pci_bus_speed next_speed;
4973 enum pcie_link_width next_width;
4974
4975 ret = pcie_capability_read_word(dev, PCI_EXP_LNKSTA, &lnksta);
4976 if (ret)
4977 return ret;
4978
4979 next_speed = pcie_link_speed[lnksta & PCI_EXP_LNKSTA_CLS];
4980 next_width = (lnksta & PCI_EXP_LNKSTA_NLW) >>
4981 PCI_EXP_LNKSTA_NLW_SHIFT;
4982
4983 if (next_speed < *speed)
4984 *speed = next_speed;
4985
4986 if (next_width < *width)
4987 *width = next_width;
4988
4989 dev = dev->bus->self;
4990 }
4991
4992 return 0;
4993}
4994EXPORT_SYMBOL(pcie_get_minimum_link);
4995
c87deff7
HS
4996/**
4997 * pci_select_bars - Make BAR mask from the type of resource
f95d882d 4998 * @dev: the PCI device for which BAR mask is made
c87deff7
HS
4999 * @flags: resource type mask to be selected
5000 *
5001 * This helper routine makes bar mask from the type of resource.
5002 */
5003int pci_select_bars(struct pci_dev *dev, unsigned long flags)
5004{
5005 int i, bars = 0;
5006 for (i = 0; i < PCI_NUM_RESOURCES; i++)
5007 if (pci_resource_flags(dev, i) & flags)
5008 bars |= (1 << i);
5009 return bars;
5010}
b7fe9434 5011EXPORT_SYMBOL(pci_select_bars);
c87deff7 5012
95a8b6ef
MT
5013/* Some architectures require additional programming to enable VGA */
5014static arch_set_vga_state_t arch_set_vga_state;
5015
5016void __init pci_register_set_vga_state(arch_set_vga_state_t func)
5017{
5018 arch_set_vga_state = func; /* NULL disables */
5019}
5020
5021static int pci_set_vga_state_arch(struct pci_dev *dev, bool decode,
3c78bc61 5022 unsigned int command_bits, u32 flags)
95a8b6ef
MT
5023{
5024 if (arch_set_vga_state)
5025 return arch_set_vga_state(dev, decode, command_bits,
7ad35cf2 5026 flags);
95a8b6ef
MT
5027 return 0;
5028}
5029
deb2d2ec
BH
5030/**
5031 * pci_set_vga_state - set VGA decode state on device and parents if requested
19eea630
RD
5032 * @dev: the PCI device
5033 * @decode: true = enable decoding, false = disable decoding
5034 * @command_bits: PCI_COMMAND_IO and/or PCI_COMMAND_MEMORY
3f37d622 5035 * @flags: traverse ancestors and change bridges
3448a19d 5036 * CHANGE_BRIDGE_ONLY / CHANGE_BRIDGE
deb2d2ec
BH
5037 */
5038int pci_set_vga_state(struct pci_dev *dev, bool decode,
3448a19d 5039 unsigned int command_bits, u32 flags)
deb2d2ec
BH
5040{
5041 struct pci_bus *bus;
5042 struct pci_dev *bridge;
5043 u16 cmd;
95a8b6ef 5044 int rc;
deb2d2ec 5045
67ebd814 5046 WARN_ON((flags & PCI_VGA_STATE_CHANGE_DECODES) && (command_bits & ~(PCI_COMMAND_IO|PCI_COMMAND_MEMORY)));
deb2d2ec 5047
95a8b6ef 5048 /* ARCH specific VGA enables */
3448a19d 5049 rc = pci_set_vga_state_arch(dev, decode, command_bits, flags);
95a8b6ef
MT
5050 if (rc)
5051 return rc;
5052
3448a19d
DA
5053 if (flags & PCI_VGA_STATE_CHANGE_DECODES) {
5054 pci_read_config_word(dev, PCI_COMMAND, &cmd);
5055 if (decode == true)
5056 cmd |= command_bits;
5057 else
5058 cmd &= ~command_bits;
5059 pci_write_config_word(dev, PCI_COMMAND, cmd);
5060 }
deb2d2ec 5061
3448a19d 5062 if (!(flags & PCI_VGA_STATE_CHANGE_BRIDGE))
deb2d2ec
BH
5063 return 0;
5064
5065 bus = dev->bus;
5066 while (bus) {
5067 bridge = bus->self;
5068 if (bridge) {
5069 pci_read_config_word(bridge, PCI_BRIDGE_CONTROL,
5070 &cmd);
5071 if (decode == true)
5072 cmd |= PCI_BRIDGE_CTL_VGA;
5073 else
5074 cmd &= ~PCI_BRIDGE_CTL_VGA;
5075 pci_write_config_word(bridge, PCI_BRIDGE_CONTROL,
5076 cmd);
5077 }
5078 bus = bus->parent;
5079 }
5080 return 0;
5081}
5082
f0af9593
BH
5083/**
5084 * pci_add_dma_alias - Add a DMA devfn alias for a device
5085 * @dev: the PCI device for which alias is added
5086 * @devfn: alias slot and function
5087 *
5088 * This helper encodes 8-bit devfn as bit number in dma_alias_mask.
5089 * It should be called early, preferably as PCI fixup header quirk.
5090 */
5091void pci_add_dma_alias(struct pci_dev *dev, u8 devfn)
5092{
338c3149
JL
5093 if (!dev->dma_alias_mask)
5094 dev->dma_alias_mask = kcalloc(BITS_TO_LONGS(U8_MAX),
5095 sizeof(long), GFP_KERNEL);
5096 if (!dev->dma_alias_mask) {
5097 dev_warn(&dev->dev, "Unable to allocate DMA alias mask\n");
5098 return;
5099 }
5100
5101 set_bit(devfn, dev->dma_alias_mask);
48c83080
BH
5102 dev_info(&dev->dev, "Enabling fixed DMA alias to %02x.%d\n",
5103 PCI_SLOT(devfn), PCI_FUNC(devfn));
f0af9593
BH
5104}
5105
338c3149
JL
5106bool pci_devs_are_dma_aliases(struct pci_dev *dev1, struct pci_dev *dev2)
5107{
5108 return (dev1->dma_alias_mask &&
5109 test_bit(dev2->devfn, dev1->dma_alias_mask)) ||
5110 (dev2->dma_alias_mask &&
5111 test_bit(dev1->devfn, dev2->dma_alias_mask));
5112}
5113
8496e85c
RW
5114bool pci_device_is_present(struct pci_dev *pdev)
5115{
5116 u32 v;
5117
fe2bd75b
KB
5118 if (pci_dev_is_disconnected(pdev))
5119 return false;
8496e85c
RW
5120 return pci_bus_read_dev_vendor_id(pdev->bus, pdev->devfn, &v, 0);
5121}
5122EXPORT_SYMBOL_GPL(pci_device_is_present);
5123
08249651
RW
5124void pci_ignore_hotplug(struct pci_dev *dev)
5125{
5126 struct pci_dev *bridge = dev->bus->self;
5127
5128 dev->ignore_hotplug = 1;
5129 /* Propagate the "ignore hotplug" setting to the parent bridge. */
5130 if (bridge)
5131 bridge->ignore_hotplug = 1;
5132}
5133EXPORT_SYMBOL_GPL(pci_ignore_hotplug);
5134
0a701aa6
YX
5135resource_size_t __weak pcibios_default_alignment(void)
5136{
5137 return 0;
5138}
5139
32a9a682
YS
5140#define RESOURCE_ALIGNMENT_PARAM_SIZE COMMAND_LINE_SIZE
5141static char resource_alignment_param[RESOURCE_ALIGNMENT_PARAM_SIZE] = {0};
e9d1e492 5142static DEFINE_SPINLOCK(resource_alignment_lock);
32a9a682
YS
5143
5144/**
5145 * pci_specified_resource_alignment - get resource alignment specified by user.
5146 * @dev: the PCI device to get
e3adec72 5147 * @resize: whether or not to change resources' size when reassigning alignment
32a9a682
YS
5148 *
5149 * RETURNS: Resource alignment if it is specified.
5150 * Zero if it is not specified.
5151 */
e3adec72
YX
5152static resource_size_t pci_specified_resource_alignment(struct pci_dev *dev,
5153 bool *resize)
32a9a682
YS
5154{
5155 int seg, bus, slot, func, align_order, count;
644a544f 5156 unsigned short vendor, device, subsystem_vendor, subsystem_device;
0a701aa6 5157 resource_size_t align = pcibios_default_alignment();
32a9a682
YS
5158 char *p;
5159
5160 spin_lock(&resource_alignment_lock);
5161 p = resource_alignment_param;
0a701aa6 5162 if (!*p && !align)
f0b99f70
YX
5163 goto out;
5164 if (pci_has_flag(PCI_PROBE_ONLY)) {
0a701aa6 5165 align = 0;
f0b99f70
YX
5166 pr_info_once("PCI: Ignoring requested alignments (PCI_PROBE_ONLY)\n");
5167 goto out;
5168 }
5169
32a9a682
YS
5170 while (*p) {
5171 count = 0;
5172 if (sscanf(p, "%d%n", &align_order, &count) == 1 &&
5173 p[count] == '@') {
5174 p += count + 1;
5175 } else {
5176 align_order = -1;
5177 }
644a544f
KMEE
5178 if (strncmp(p, "pci:", 4) == 0) {
5179 /* PCI vendor/device (subvendor/subdevice) ids are specified */
5180 p += 4;
5181 if (sscanf(p, "%hx:%hx:%hx:%hx%n",
5182 &vendor, &device, &subsystem_vendor, &subsystem_device, &count) != 4) {
5183 if (sscanf(p, "%hx:%hx%n", &vendor, &device, &count) != 2) {
5184 printk(KERN_ERR "PCI: Can't parse resource_alignment parameter: pci:%s\n",
5185 p);
5186 break;
5187 }
5188 subsystem_vendor = subsystem_device = 0;
5189 }
5190 p += count;
5191 if ((!vendor || (vendor == dev->vendor)) &&
5192 (!device || (device == dev->device)) &&
5193 (!subsystem_vendor || (subsystem_vendor == dev->subsystem_vendor)) &&
5194 (!subsystem_device || (subsystem_device == dev->subsystem_device))) {
e3adec72 5195 *resize = true;
644a544f
KMEE
5196 if (align_order == -1)
5197 align = PAGE_SIZE;
5198 else
5199 align = 1 << align_order;
5200 /* Found */
32a9a682
YS
5201 break;
5202 }
5203 }
644a544f
KMEE
5204 else {
5205 if (sscanf(p, "%x:%x:%x.%x%n",
5206 &seg, &bus, &slot, &func, &count) != 4) {
5207 seg = 0;
5208 if (sscanf(p, "%x:%x.%x%n",
5209 &bus, &slot, &func, &count) != 3) {
5210 /* Invalid format */
5211 printk(KERN_ERR "PCI: Can't parse resource_alignment parameter: %s\n",
5212 p);
5213 break;
5214 }
5215 }
5216 p += count;
5217 if (seg == pci_domain_nr(dev->bus) &&
5218 bus == dev->bus->number &&
5219 slot == PCI_SLOT(dev->devfn) &&
5220 func == PCI_FUNC(dev->devfn)) {
e3adec72 5221 *resize = true;
644a544f
KMEE
5222 if (align_order == -1)
5223 align = PAGE_SIZE;
5224 else
5225 align = 1 << align_order;
5226 /* Found */
5227 break;
5228 }
32a9a682
YS
5229 }
5230 if (*p != ';' && *p != ',') {
5231 /* End of param or invalid format */
5232 break;
5233 }
5234 p++;
5235 }
f0b99f70 5236out:
32a9a682
YS
5237 spin_unlock(&resource_alignment_lock);
5238 return align;
5239}
5240
81a5e70e 5241static void pci_request_resource_alignment(struct pci_dev *dev, int bar,
e3adec72 5242 resource_size_t align, bool resize)
81a5e70e
BH
5243{
5244 struct resource *r = &dev->resource[bar];
5245 resource_size_t size;
5246
5247 if (!(r->flags & IORESOURCE_MEM))
5248 return;
5249
5250 if (r->flags & IORESOURCE_PCI_FIXED) {
5251 dev_info(&dev->dev, "BAR%d %pR: ignoring requested alignment %#llx\n",
5252 bar, r, (unsigned long long)align);
5253 return;
5254 }
5255
5256 size = resource_size(r);
0dde1c08
BH
5257 if (size >= align)
5258 return;
81a5e70e 5259
0dde1c08 5260 /*
e3adec72
YX
5261 * Increase the alignment of the resource. There are two ways we
5262 * can do this:
0dde1c08 5263 *
e3adec72
YX
5264 * 1) Increase the size of the resource. BARs are aligned on their
5265 * size, so when we reallocate space for this resource, we'll
5266 * allocate it with the larger alignment. This also prevents
5267 * assignment of any other BARs inside the alignment region, so
5268 * if we're requesting page alignment, this means no other BARs
5269 * will share the page.
5270 *
5271 * The disadvantage is that this makes the resource larger than
5272 * the hardware BAR, which may break drivers that compute things
5273 * based on the resource size, e.g., to find registers at a
5274 * fixed offset before the end of the BAR.
5275 *
5276 * 2) Retain the resource size, but use IORESOURCE_STARTALIGN and
5277 * set r->start to the desired alignment. By itself this
5278 * doesn't prevent other BARs being put inside the alignment
5279 * region, but if we realign *every* resource of every device in
5280 * the system, none of them will share an alignment region.
5281 *
5282 * When the user has requested alignment for only some devices via
5283 * the "pci=resource_alignment" argument, "resize" is true and we
5284 * use the first method. Otherwise we assume we're aligning all
5285 * devices and we use the second.
0dde1c08 5286 */
e3adec72 5287
0dde1c08
BH
5288 dev_info(&dev->dev, "BAR%d %pR: requesting alignment to %#llx\n",
5289 bar, r, (unsigned long long)align);
81a5e70e 5290
e3adec72
YX
5291 if (resize) {
5292 r->start = 0;
5293 r->end = align - 1;
5294 } else {
5295 r->flags &= ~IORESOURCE_SIZEALIGN;
5296 r->flags |= IORESOURCE_STARTALIGN;
5297 r->start = align;
5298 r->end = r->start + size - 1;
5299 }
0dde1c08 5300 r->flags |= IORESOURCE_UNSET;
81a5e70e
BH
5301}
5302
2069ecfb
YL
5303/*
5304 * This function disables memory decoding and releases memory resources
5305 * of the device specified by kernel's boot parameter 'pci=resource_alignment='.
5306 * It also rounds up size to specified alignment.
5307 * Later on, the kernel will assign page-aligned memory resource back
5308 * to the device.
5309 */
5310void pci_reassigndev_resource_alignment(struct pci_dev *dev)
5311{
5312 int i;
5313 struct resource *r;
81a5e70e 5314 resource_size_t align;
2069ecfb 5315 u16 command;
e3adec72 5316 bool resize = false;
2069ecfb 5317
62d9a78f
YX
5318 /*
5319 * VF BARs are read-only zero according to SR-IOV spec r1.1, sec
5320 * 3.4.1.11. Their resources are allocated from the space
5321 * described by the VF BARx register in the PF's SR-IOV capability.
5322 * We can't influence their alignment here.
5323 */
5324 if (dev->is_virtfn)
5325 return;
5326
10c463a7 5327 /* check if specified PCI is target device to reassign */
e3adec72 5328 align = pci_specified_resource_alignment(dev, &resize);
10c463a7 5329 if (!align)
2069ecfb
YL
5330 return;
5331
5332 if (dev->hdr_type == PCI_HEADER_TYPE_NORMAL &&
5333 (dev->class >> 8) == PCI_CLASS_BRIDGE_HOST) {
5334 dev_warn(&dev->dev,
5335 "Can't reassign resources to host bridge.\n");
5336 return;
5337 }
5338
5339 dev_info(&dev->dev,
5340 "Disabling memory decoding and releasing memory resources.\n");
5341 pci_read_config_word(dev, PCI_COMMAND, &command);
5342 command &= ~PCI_COMMAND_MEMORY;
5343 pci_write_config_word(dev, PCI_COMMAND, command);
5344
81a5e70e 5345 for (i = 0; i <= PCI_ROM_RESOURCE; i++)
e3adec72 5346 pci_request_resource_alignment(dev, i, align, resize);
f0b99f70 5347
81a5e70e
BH
5348 /*
5349 * Need to disable bridge's resource window,
2069ecfb
YL
5350 * to enable the kernel to reassign new resource
5351 * window later on.
5352 */
5353 if (dev->hdr_type == PCI_HEADER_TYPE_BRIDGE &&
5354 (dev->class >> 8) == PCI_CLASS_BRIDGE_PCI) {
5355 for (i = PCI_BRIDGE_RESOURCES; i < PCI_NUM_RESOURCES; i++) {
5356 r = &dev->resource[i];
5357 if (!(r->flags & IORESOURCE_MEM))
5358 continue;
bd064f0a 5359 r->flags |= IORESOURCE_UNSET;
2069ecfb
YL
5360 r->end = resource_size(r) - 1;
5361 r->start = 0;
5362 }
5363 pci_disable_bridge_window(dev);
5364 }
5365}
5366
9738abed 5367static ssize_t pci_set_resource_alignment_param(const char *buf, size_t count)
32a9a682
YS
5368{
5369 if (count > RESOURCE_ALIGNMENT_PARAM_SIZE - 1)
5370 count = RESOURCE_ALIGNMENT_PARAM_SIZE - 1;
5371 spin_lock(&resource_alignment_lock);
5372 strncpy(resource_alignment_param, buf, count);
5373 resource_alignment_param[count] = '\0';
5374 spin_unlock(&resource_alignment_lock);
5375 return count;
5376}
5377
9738abed 5378static ssize_t pci_get_resource_alignment_param(char *buf, size_t size)
32a9a682
YS
5379{
5380 size_t count;
5381 spin_lock(&resource_alignment_lock);
5382 count = snprintf(buf, size, "%s", resource_alignment_param);
5383 spin_unlock(&resource_alignment_lock);
5384 return count;
5385}
5386
5387static ssize_t pci_resource_alignment_show(struct bus_type *bus, char *buf)
5388{
5389 return pci_get_resource_alignment_param(buf, PAGE_SIZE);
5390}
5391
5392static ssize_t pci_resource_alignment_store(struct bus_type *bus,
5393 const char *buf, size_t count)
5394{
5395 return pci_set_resource_alignment_param(buf, count);
5396}
5397
21751a9a 5398static BUS_ATTR(resource_alignment, 0644, pci_resource_alignment_show,
32a9a682
YS
5399 pci_resource_alignment_store);
5400
5401static int __init pci_resource_alignment_sysfs_init(void)
5402{
5403 return bus_create_file(&pci_bus_type,
5404 &bus_attr_resource_alignment);
5405}
32a9a682
YS
5406late_initcall(pci_resource_alignment_sysfs_init);
5407
15856ad5 5408static void pci_no_domains(void)
32a2eea7
JG
5409{
5410#ifdef CONFIG_PCI_DOMAINS
5411 pci_domains_supported = 0;
5412#endif
5413}
5414
41e5c0f8
LD
5415#ifdef CONFIG_PCI_DOMAINS
5416static atomic_t __domain_nr = ATOMIC_INIT(-1);
5417
5418int pci_get_new_domain_nr(void)
5419{
5420 return atomic_inc_return(&__domain_nr);
5421}
7c674700
LP
5422
5423#ifdef CONFIG_PCI_DOMAINS_GENERIC
1a4f93f7 5424static int of_pci_bus_find_domain_nr(struct device *parent)
7c674700
LP
5425{
5426 static int use_dt_domains = -1;
54c6e2dd 5427 int domain = -1;
7c674700 5428
54c6e2dd
KHC
5429 if (parent)
5430 domain = of_get_pci_domain_nr(parent->of_node);
7c674700
LP
5431 /*
5432 * Check DT domain and use_dt_domains values.
5433 *
5434 * If DT domain property is valid (domain >= 0) and
5435 * use_dt_domains != 0, the DT assignment is valid since this means
5436 * we have not previously allocated a domain number by using
5437 * pci_get_new_domain_nr(); we should also update use_dt_domains to
5438 * 1, to indicate that we have just assigned a domain number from
5439 * DT.
5440 *
5441 * If DT domain property value is not valid (ie domain < 0), and we
5442 * have not previously assigned a domain number from DT
5443 * (use_dt_domains != 1) we should assign a domain number by
5444 * using the:
5445 *
5446 * pci_get_new_domain_nr()
5447 *
5448 * API and update the use_dt_domains value to keep track of method we
5449 * are using to assign domain numbers (use_dt_domains = 0).
5450 *
5451 * All other combinations imply we have a platform that is trying
5452 * to mix domain numbers obtained from DT and pci_get_new_domain_nr(),
5453 * which is a recipe for domain mishandling and it is prevented by
5454 * invalidating the domain value (domain = -1) and printing a
5455 * corresponding error.
5456 */
5457 if (domain >= 0 && use_dt_domains) {
5458 use_dt_domains = 1;
5459 } else if (domain < 0 && use_dt_domains != 1) {
5460 use_dt_domains = 0;
5461 domain = pci_get_new_domain_nr();
5462 } else {
5463 dev_err(parent, "Node %s has inconsistent \"linux,pci-domain\" property in DT\n",
5464 parent->of_node->full_name);
5465 domain = -1;
5466 }
5467
9c7cb891 5468 return domain;
7c674700 5469}
1a4f93f7
TN
5470
5471int pci_bus_find_domain_nr(struct pci_bus *bus, struct device *parent)
5472{
2ab51dde
TN
5473 return acpi_disabled ? of_pci_bus_find_domain_nr(parent) :
5474 acpi_pci_bus_find_domain_nr(bus);
7c674700
LP
5475}
5476#endif
41e5c0f8
LD
5477#endif
5478
0ef5f8f6 5479/**
642c92da 5480 * pci_ext_cfg_avail - can we access extended PCI config space?
0ef5f8f6
AP
5481 *
5482 * Returns 1 if we can access PCI extended config space (offsets
5483 * greater than 0xff). This is the default implementation. Architecture
5484 * implementations can override this.
5485 */
642c92da 5486int __weak pci_ext_cfg_avail(void)
0ef5f8f6
AP
5487{
5488 return 1;
5489}
5490
2d1c8618
BH
5491void __weak pci_fixup_cardbus(struct pci_bus *bus)
5492{
5493}
5494EXPORT_SYMBOL(pci_fixup_cardbus);
5495
ad04d31e 5496static int __init pci_setup(char *str)
1da177e4
LT
5497{
5498 while (str) {
5499 char *k = strchr(str, ',');
5500 if (k)
5501 *k++ = 0;
5502 if (*str && (str = pcibios_setup(str)) && *str) {
309e57df
MW
5503 if (!strcmp(str, "nomsi")) {
5504 pci_no_msi();
7f785763
RD
5505 } else if (!strcmp(str, "noaer")) {
5506 pci_no_aer();
b55438fd
YL
5507 } else if (!strncmp(str, "realloc=", 8)) {
5508 pci_realloc_get_opt(str + 8);
f483d392 5509 } else if (!strncmp(str, "realloc", 7)) {
b55438fd 5510 pci_realloc_get_opt("on");
32a2eea7
JG
5511 } else if (!strcmp(str, "nodomains")) {
5512 pci_no_domains();
6748dcc2
RW
5513 } else if (!strncmp(str, "noari", 5)) {
5514 pcie_ari_disabled = true;
4516a618
AN
5515 } else if (!strncmp(str, "cbiosize=", 9)) {
5516 pci_cardbus_io_size = memparse(str + 9, &str);
5517 } else if (!strncmp(str, "cbmemsize=", 10)) {
5518 pci_cardbus_mem_size = memparse(str + 10, &str);
32a9a682
YS
5519 } else if (!strncmp(str, "resource_alignment=", 19)) {
5520 pci_set_resource_alignment_param(str + 19,
5521 strlen(str + 19));
43c16408
AP
5522 } else if (!strncmp(str, "ecrc=", 5)) {
5523 pcie_ecrc_get_policy(str + 5);
28760489
EB
5524 } else if (!strncmp(str, "hpiosize=", 9)) {
5525 pci_hotplug_io_size = memparse(str + 9, &str);
5526 } else if (!strncmp(str, "hpmemsize=", 10)) {
5527 pci_hotplug_mem_size = memparse(str + 10, &str);
e16b4660
KB
5528 } else if (!strncmp(str, "hpbussize=", 10)) {
5529 pci_hotplug_bus_size =
5530 simple_strtoul(str + 10, &str, 0);
5531 if (pci_hotplug_bus_size > 0xff)
5532 pci_hotplug_bus_size = DEFAULT_HOTPLUG_BUS_SIZE;
5f39e670
JM
5533 } else if (!strncmp(str, "pcie_bus_tune_off", 17)) {
5534 pcie_bus_config = PCIE_BUS_TUNE_OFF;
b03e7495
JM
5535 } else if (!strncmp(str, "pcie_bus_safe", 13)) {
5536 pcie_bus_config = PCIE_BUS_SAFE;
5537 } else if (!strncmp(str, "pcie_bus_perf", 13)) {
5538 pcie_bus_config = PCIE_BUS_PERFORMANCE;
5f39e670
JM
5539 } else if (!strncmp(str, "pcie_bus_peer2peer", 18)) {
5540 pcie_bus_config = PCIE_BUS_PEER2PEER;
284f5f9d
BH
5541 } else if (!strncmp(str, "pcie_scan_all", 13)) {
5542 pci_add_flags(PCI_SCAN_ALL_PCIE_DEVS);
309e57df
MW
5543 } else {
5544 printk(KERN_ERR "PCI: Unknown option `%s'\n",
5545 str);
5546 }
1da177e4
LT
5547 }
5548 str = k;
5549 }
0637a70a 5550 return 0;
1da177e4 5551}
0637a70a 5552early_param("pci", pci_setup);