xref: /linux/drivers/pci/msi/msi.c (revision a625b2a387628df94e385faf5c81bf252f304ed9)
1 // SPDX-License-Identifier: GPL-2.0
2 /*
3  * PCI Message Signaled Interrupt (MSI)
4  *
5  * Copyright (C) 2003-2004 Intel
6  * Copyright (C) Tom Long Nguyen (tom.l.nguyen@intel.com)
7  * Copyright (C) 2016 Christoph Hellwig.
8  */
9 #include <linux/bitfield.h>
10 #include <linux/err.h>
11 #include <linux/export.h>
12 #include <linux/irq.h>
13 #include <linux/irqdomain.h>
14 
15 #include "../pci.h"
16 #include "msi.h"
17 
18 bool pci_msi_enable = true;
19 
20 /**
21  * pci_msi_supported - check whether MSI may be enabled on a device
22  * @dev: pointer to the pci_dev data structure of MSI device function
23  * @nvec: how many MSIs have been requested?
24  *
25  * Look at global flags, the device itself, and its parent buses
26  * to determine if MSI/-X are supported for the device. If MSI/-X is
27  * supported return 1, else return 0.
28  **/
pci_msi_supported(struct pci_dev * dev,int nvec)29 static int pci_msi_supported(struct pci_dev *dev, int nvec)
30 {
31 	struct pci_bus *bus;
32 
33 	/* MSI must be globally enabled and supported by the device */
34 	if (!pci_msi_enable)
35 		return 0;
36 
37 	if (!dev || dev->no_msi)
38 		return 0;
39 
40 	/*
41 	 * You can't ask to have 0 or less MSIs configured.
42 	 *  a) it's stupid ..
43 	 *  b) the list manipulation code assumes nvec >= 1.
44 	 */
45 	if (nvec < 1)
46 		return 0;
47 
48 	/*
49 	 * Any bridge which does NOT route MSI transactions from its
50 	 * secondary bus to its primary bus must set NO_MSI flag on
51 	 * the secondary pci_bus.
52 	 *
53 	 * The NO_MSI flag can either be set directly by:
54 	 * - arch-specific PCI host bus controller drivers (deprecated)
55 	 * - quirks for specific PCI bridges
56 	 *
57 	 * or indirectly by platform-specific PCI host bridge drivers by
58 	 * advertising the 'msi_domain' property, which results in
59 	 * the NO_MSI flag when no MSI domain is found for this bridge
60 	 * at probe time.
61 	 */
62 	for (bus = dev->bus; bus; bus = bus->parent)
63 		if (bus->bus_flags & PCI_BUS_FLAGS_NO_MSI)
64 			return 0;
65 
66 	return 1;
67 }
68 
pcim_msi_release(void * pcidev)69 static void pcim_msi_release(void *pcidev)
70 {
71 	struct pci_dev *dev = pcidev;
72 
73 	dev->is_msi_managed = false;
74 	pci_free_irq_vectors(dev);
75 }
76 
77 /*
78  * Needs to be separate from pcim_release to prevent an ordering problem
79  * vs. msi_device_data_release() in the MSI core code.
80  *
81  * TODO: Remove the legacy side-effect of pcim_enable_device() that
82  * activates automatic IRQ vector management. This design is dangerous
83  * and confusing because it switches normally un-managed functions
84  * into managed mode. Drivers should explicitly manage their IRQ vectors
85  * without this implicit behavior.
86  *
87  * The current implementation uses both pdev->is_managed and
88  * pdev->is_msi_managed flags, which adds unnecessary complexity.
89  * This should be simplified in a future kernel version.
90  */
pcim_setup_msi_release(struct pci_dev * dev)91 static int pcim_setup_msi_release(struct pci_dev *dev)
92 {
93 	int ret;
94 
95 	if (!pci_is_managed(dev) || dev->is_msi_managed)
96 		return 0;
97 
98 	ret = devm_add_action(&dev->dev, pcim_msi_release, dev);
99 	if (ret)
100 		return ret;
101 
102 	dev->is_msi_managed = true;
103 	return 0;
104 }
105 
106 /*
107  * Ordering vs. devres: msi device data has to be installed first so that
108  * pcim_msi_release() is invoked before it on device release.
109  */
pci_setup_msi_context(struct pci_dev * dev)110 static int pci_setup_msi_context(struct pci_dev *dev)
111 {
112 	int ret = msi_setup_device_data(&dev->dev);
113 
114 	if (ret)
115 		return ret;
116 
117 	return pcim_setup_msi_release(dev);
118 }
119 
120 /*
121  * Helper functions for mask/unmask and MSI message handling
122  */
123 
pci_msi_update_mask(struct msi_desc * desc,u32 clear,u32 set)124 void pci_msi_update_mask(struct msi_desc *desc, u32 clear, u32 set)
125 {
126 	struct pci_dev *dev = msi_desc_to_pci_dev(desc);
127 	raw_spinlock_t *lock = &dev->msi_lock;
128 	unsigned long flags;
129 
130 	if (!desc->pci.msi_attrib.can_mask)
131 		return;
132 
133 	raw_spin_lock_irqsave(lock, flags);
134 	desc->pci.msi_mask &= ~clear;
135 	desc->pci.msi_mask |= set;
136 	pci_write_config_dword(dev, desc->pci.mask_pos, desc->pci.msi_mask);
137 	raw_spin_unlock_irqrestore(lock, flags);
138 }
139 
140 /**
141  * pci_msi_mask_irq - Generic IRQ chip callback to mask PCI/MSI interrupts
142  * @data:	pointer to irqdata associated to that interrupt
143  */
pci_msi_mask_irq(struct irq_data * data)144 void pci_msi_mask_irq(struct irq_data *data)
145 {
146 	struct msi_desc *desc = irq_data_get_msi_desc(data);
147 
148 	__pci_msi_mask_desc(desc, BIT(data->irq - desc->irq));
149 }
150 EXPORT_SYMBOL_GPL(pci_msi_mask_irq);
151 
152 /**
153  * pci_msi_unmask_irq - Generic IRQ chip callback to unmask PCI/MSI interrupts
154  * @data:	pointer to irqdata associated to that interrupt
155  */
pci_msi_unmask_irq(struct irq_data * data)156 void pci_msi_unmask_irq(struct irq_data *data)
157 {
158 	struct msi_desc *desc = irq_data_get_msi_desc(data);
159 
160 	__pci_msi_unmask_desc(desc, BIT(data->irq - desc->irq));
161 }
162 EXPORT_SYMBOL_GPL(pci_msi_unmask_irq);
163 
__pci_read_msi_msg(struct msi_desc * entry,struct msi_msg * msg)164 void __pci_read_msi_msg(struct msi_desc *entry, struct msi_msg *msg)
165 {
166 	struct pci_dev *dev = msi_desc_to_pci_dev(entry);
167 
168 	BUG_ON(dev->current_state != PCI_D0);
169 
170 	if (entry->pci.msi_attrib.is_msix) {
171 		void __iomem *base = pci_msix_desc_addr(entry);
172 
173 		if (WARN_ON_ONCE(entry->pci.msi_attrib.is_virtual))
174 			return;
175 
176 		msg->address_lo = readl(base + PCI_MSIX_ENTRY_LOWER_ADDR);
177 		msg->address_hi = readl(base + PCI_MSIX_ENTRY_UPPER_ADDR);
178 		msg->data = readl(base + PCI_MSIX_ENTRY_DATA);
179 	} else {
180 		int pos = dev->msi_cap;
181 		u16 data;
182 
183 		pci_read_config_dword(dev, pos + PCI_MSI_ADDRESS_LO,
184 				      &msg->address_lo);
185 		if (entry->pci.msi_attrib.is_64) {
186 			pci_read_config_dword(dev, pos + PCI_MSI_ADDRESS_HI,
187 					      &msg->address_hi);
188 			pci_read_config_word(dev, pos + PCI_MSI_DATA_64, &data);
189 		} else {
190 			msg->address_hi = 0;
191 			pci_read_config_word(dev, pos + PCI_MSI_DATA_32, &data);
192 		}
193 		msg->data = data;
194 	}
195 }
196 
pci_write_msg_msi(struct pci_dev * dev,struct msi_desc * desc,struct msi_msg * msg)197 static inline void pci_write_msg_msi(struct pci_dev *dev, struct msi_desc *desc,
198 				     struct msi_msg *msg)
199 {
200 	int pos = dev->msi_cap;
201 	u16 msgctl;
202 
203 	pci_read_config_word(dev, pos + PCI_MSI_FLAGS, &msgctl);
204 	FIELD_MODIFY(PCI_MSI_FLAGS_QSIZE, &msgctl, desc->pci.msi_attrib.multiple);
205 	pci_write_config_word(dev, pos + PCI_MSI_FLAGS, msgctl);
206 
207 	pci_write_config_dword(dev, pos + PCI_MSI_ADDRESS_LO, msg->address_lo);
208 	if (desc->pci.msi_attrib.is_64) {
209 		pci_write_config_dword(dev, pos + PCI_MSI_ADDRESS_HI,  msg->address_hi);
210 		pci_write_config_word(dev, pos + PCI_MSI_DATA_64, msg->data);
211 	} else {
212 		pci_write_config_word(dev, pos + PCI_MSI_DATA_32, msg->data);
213 	}
214 	/* Ensure that the writes are visible in the device */
215 	pci_read_config_word(dev, pos + PCI_MSI_FLAGS, &msgctl);
216 }
217 
pci_write_msg_msix(struct msi_desc * desc,struct msi_msg * msg)218 static inline void pci_write_msg_msix(struct msi_desc *desc, struct msi_msg *msg)
219 {
220 	void __iomem *base = pci_msix_desc_addr(desc);
221 	u32 ctrl = desc->pci.msix_ctrl;
222 	bool unmasked = !(ctrl & PCI_MSIX_ENTRY_CTRL_MASKBIT);
223 
224 	if (desc->pci.msi_attrib.is_virtual)
225 		return;
226 	/*
227 	 * The specification mandates that the entry is masked
228 	 * when the message is modified:
229 	 *
230 	 * "If software changes the Address or Data value of an
231 	 * entry while the entry is unmasked, the result is
232 	 * undefined."
233 	 */
234 	if (unmasked)
235 		pci_msix_write_vector_ctrl(desc, ctrl | PCI_MSIX_ENTRY_CTRL_MASKBIT);
236 
237 	writel(msg->address_lo, base + PCI_MSIX_ENTRY_LOWER_ADDR);
238 	writel(msg->address_hi, base + PCI_MSIX_ENTRY_UPPER_ADDR);
239 	writel(msg->data, base + PCI_MSIX_ENTRY_DATA);
240 
241 	if (unmasked)
242 		pci_msix_write_vector_ctrl(desc, ctrl);
243 
244 	/* Ensure that the writes are visible in the device */
245 	readl(base + PCI_MSIX_ENTRY_DATA);
246 }
247 
__pci_write_msi_msg(struct msi_desc * entry,struct msi_msg * msg)248 void __pci_write_msi_msg(struct msi_desc *entry, struct msi_msg *msg)
249 {
250 	struct pci_dev *dev = msi_desc_to_pci_dev(entry);
251 
252 	if (dev->current_state != PCI_D0 || pci_dev_is_disconnected(dev)) {
253 		/* Don't touch the hardware now */
254 	} else if (entry->pci.msi_attrib.is_msix) {
255 		pci_write_msg_msix(entry, msg);
256 	} else {
257 		pci_write_msg_msi(dev, entry, msg);
258 	}
259 
260 	entry->msg = *msg;
261 
262 	if (entry->write_msi_msg)
263 		entry->write_msi_msg(entry, entry->write_msi_msg_data);
264 }
265 
pci_write_msi_msg(unsigned int irq,struct msi_msg * msg)266 void pci_write_msi_msg(unsigned int irq, struct msi_msg *msg)
267 {
268 	struct msi_desc *entry = irq_get_msi_desc(irq);
269 
270 	__pci_write_msi_msg(entry, msg);
271 }
272 EXPORT_SYMBOL_GPL(pci_write_msi_msg);
273 
274 
275 /* PCI/MSI specific functionality */
276 
pci_intx_for_msi(struct pci_dev * dev,int enable)277 static void pci_intx_for_msi(struct pci_dev *dev, int enable)
278 {
279 	if (!(dev->dev_flags & PCI_DEV_FLAGS_MSI_INTX_DISABLE_BUG))
280 		pci_intx(dev, enable);
281 }
282 
pci_msi_set_enable(struct pci_dev * dev,int enable)283 static void pci_msi_set_enable(struct pci_dev *dev, int enable)
284 {
285 	u16 control;
286 
287 	pci_read_config_word(dev, dev->msi_cap + PCI_MSI_FLAGS, &control);
288 	control &= ~PCI_MSI_FLAGS_ENABLE;
289 	if (enable)
290 		control |= PCI_MSI_FLAGS_ENABLE;
291 	pci_write_config_word(dev, dev->msi_cap + PCI_MSI_FLAGS, control);
292 }
293 
msi_setup_msi_desc(struct pci_dev * dev,int nvec,struct irq_affinity_desc * masks)294 static int msi_setup_msi_desc(struct pci_dev *dev, int nvec,
295 			      struct irq_affinity_desc *masks)
296 {
297 	struct msi_desc desc;
298 	u16 control;
299 
300 	/* MSI Entry Initialization */
301 	memset(&desc, 0, sizeof(desc));
302 
303 	pci_read_config_word(dev, dev->msi_cap + PCI_MSI_FLAGS, &control);
304 	/* Lies, damned lies, and MSIs */
305 	if (dev->dev_flags & PCI_DEV_FLAGS_HAS_MSI_MASKING)
306 		control |= PCI_MSI_FLAGS_MASKBIT;
307 	if (pci_msi_domain_supports(dev, MSI_FLAG_NO_MASK, DENY_LEGACY))
308 		control &= ~PCI_MSI_FLAGS_MASKBIT;
309 
310 	desc.nvec_used			= nvec;
311 	desc.pci.msi_attrib.is_64	= !!(control & PCI_MSI_FLAGS_64BIT);
312 	desc.pci.msi_attrib.can_mask	= !!(control & PCI_MSI_FLAGS_MASKBIT);
313 	desc.pci.msi_attrib.default_irq	= dev->irq;
314 	desc.pci.msi_attrib.multi_cap	= FIELD_GET(PCI_MSI_FLAGS_QMASK, control);
315 	desc.pci.msi_attrib.multiple	= ilog2(__roundup_pow_of_two(nvec));
316 	desc.affinity			= masks;
317 
318 	if (control & PCI_MSI_FLAGS_64BIT)
319 		desc.pci.mask_pos = dev->msi_cap + PCI_MSI_MASK_64;
320 	else
321 		desc.pci.mask_pos = dev->msi_cap + PCI_MSI_MASK_32;
322 
323 	/* Save the initial mask status */
324 	if (desc.pci.msi_attrib.can_mask)
325 		pci_read_config_dword(dev, desc.pci.mask_pos, &desc.pci.msi_mask);
326 
327 	return msi_insert_msi_desc(&dev->dev, &desc);
328 }
329 
msi_verify_entries(struct pci_dev * dev)330 static int msi_verify_entries(struct pci_dev *dev)
331 {
332 	struct msi_desc *entry;
333 	u64 address;
334 
335 	if (dev->msi_addr_mask == DMA_BIT_MASK(64))
336 		return 0;
337 
338 	msi_for_each_desc(entry, &dev->dev, MSI_DESC_ALL) {
339 		address = (u64)entry->msg.address_hi << 32 | entry->msg.address_lo;
340 		if (address & ~dev->msi_addr_mask) {
341 			pci_err(dev, "arch assigned 64-bit MSI address %#llx above device MSI address mask %#llx\n",
342 				address, dev->msi_addr_mask);
343 			break;
344 		}
345 	}
346 	return !entry ? 0 : -EIO;
347 }
348 
__msi_capability_init(struct pci_dev * dev,int nvec,struct irq_affinity_desc * masks)349 static int __msi_capability_init(struct pci_dev *dev, int nvec, struct irq_affinity_desc *masks)
350 {
351 	int ret = msi_setup_msi_desc(dev, nvec, masks);
352 	struct msi_desc *entry, desc;
353 
354 	if (ret)
355 		return ret;
356 
357 	/* All MSIs are unmasked by default; mask them all */
358 	entry = msi_first_desc(&dev->dev, MSI_DESC_ALL);
359 	pci_msi_mask(entry, msi_multi_mask(entry));
360 	/*
361 	 * Copy the MSI descriptor for the error path because
362 	 * pci_msi_setup_msi_irqs() will free it for the hierarchical
363 	 * interrupt domain case.
364 	 */
365 	memcpy(&desc, entry, sizeof(desc));
366 
367 	/* Configure MSI capability structure */
368 	ret = pci_msi_setup_msi_irqs(dev, nvec, PCI_CAP_ID_MSI);
369 	if (ret)
370 		goto err;
371 
372 	ret = msi_verify_entries(dev);
373 	if (ret)
374 		goto err;
375 
376 	/* Set MSI enabled bits	*/
377 	dev->msi_enabled = 1;
378 	pci_intx_for_msi(dev, 0);
379 	pci_msi_set_enable(dev, 1);
380 
381 	pcibios_free_irq(dev);
382 	dev->irq = entry->irq;
383 	return 0;
384 err:
385 	pci_msi_unmask(&desc, msi_multi_mask(&desc));
386 	pci_free_msi_irqs(dev);
387 	return ret;
388 }
389 
390 /**
391  * msi_capability_init - configure device's MSI capability structure
392  * @dev: pointer to the pci_dev data structure of MSI device function
393  * @nvec: number of interrupts to allocate
394  * @affd: description of automatic IRQ affinity assignments (may be %NULL)
395  *
396  * Setup the MSI capability structure of the device with the requested
397  * number of interrupts.  A return value of zero indicates the successful
398  * setup of an entry with the new MSI IRQ.  A negative return value indicates
399  * an error, and a positive return value indicates the number of interrupts
400  * which could have been allocated.
401  */
msi_capability_init(struct pci_dev * dev,int nvec,struct irq_affinity * affd)402 static int msi_capability_init(struct pci_dev *dev, int nvec,
403 			       struct irq_affinity *affd)
404 {
405 	/* Reject multi-MSI early on irq domain enabled architectures */
406 	if (nvec > 1 && !pci_msi_domain_supports(dev, MSI_FLAG_MULTI_PCI_MSI, ALLOW_LEGACY))
407 		return 1;
408 
409 	/*
410 	 * Disable MSI during setup in the hardware, but mark it enabled
411 	 * so that setup code can evaluate it.
412 	 */
413 	pci_msi_set_enable(dev, 0);
414 
415 	struct irq_affinity_desc *masks __free(kfree) =
416 		affd ? irq_create_affinity_masks(nvec, affd) : NULL;
417 
418 	guard(msi_descs_lock)(&dev->dev);
419 	return __msi_capability_init(dev, nvec, masks);
420 }
421 
__pci_enable_msi_range(struct pci_dev * dev,int minvec,int maxvec,struct irq_affinity * affd)422 int __pci_enable_msi_range(struct pci_dev *dev, int minvec, int maxvec,
423 			   struct irq_affinity *affd)
424 {
425 	int nvec;
426 	int rc;
427 
428 	if (!pci_msi_supported(dev, minvec) || dev->current_state != PCI_D0)
429 		return -EINVAL;
430 
431 	/* Check whether driver already requested MSI-X IRQs */
432 	if (dev->msix_enabled) {
433 		pci_info(dev, "can't enable MSI (MSI-X already enabled)\n");
434 		return -EINVAL;
435 	}
436 
437 	if (maxvec < minvec)
438 		return -ERANGE;
439 
440 	if (WARN_ON_ONCE(dev->msi_enabled))
441 		return -EINVAL;
442 
443 	/* Test for the availability of MSI support */
444 	if (!pci_msi_domain_supports(dev, 0, ALLOW_LEGACY))
445 		return -ENOTSUPP;
446 
447 	nvec = pci_msi_vec_count(dev);
448 	if (nvec < 0)
449 		return nvec;
450 	if (nvec < minvec)
451 		return -ENOSPC;
452 
453 	rc = pci_setup_msi_context(dev);
454 	if (rc)
455 		return rc;
456 
457 	if (!pci_setup_msi_device_domain(dev, nvec))
458 		return -ENODEV;
459 
460 	if (nvec > maxvec)
461 		nvec = maxvec;
462 
463 	for (;;) {
464 		if (affd) {
465 			nvec = irq_calc_affinity_vectors(minvec, nvec, affd);
466 			if (nvec < minvec)
467 				return -ENOSPC;
468 		}
469 
470 		rc = msi_capability_init(dev, nvec, affd);
471 		if (rc == 0)
472 			return nvec;
473 
474 		if (rc < 0)
475 			return rc;
476 		if (rc < minvec)
477 			return -ENOSPC;
478 
479 		nvec = rc;
480 	}
481 }
482 
483 /**
484  * pci_msi_vec_count - Return the number of MSI vectors a device can send
485  * @dev: device to report about
486  *
487  * This function returns the number of MSI vectors a device requested via
488  * Multiple Message Capable register. It returns a negative errno if the
489  * device is not capable sending MSI interrupts. Otherwise, the call succeeds
490  * and returns a power of two, up to a maximum of 2^5 (32), according to the
491  * MSI specification.
492  **/
pci_msi_vec_count(struct pci_dev * dev)493 int pci_msi_vec_count(struct pci_dev *dev)
494 {
495 	int ret;
496 	u16 msgctl;
497 
498 	if (!dev->msi_cap)
499 		return -EINVAL;
500 
501 	pci_read_config_word(dev, dev->msi_cap + PCI_MSI_FLAGS, &msgctl);
502 	ret = 1 << FIELD_GET(PCI_MSI_FLAGS_QMASK, msgctl);
503 
504 	return ret;
505 }
506 EXPORT_SYMBOL(pci_msi_vec_count);
507 
508 /*
509  * Architecture override returns true when the PCI MSI message should be
510  * written by the generic restore function.
511  */
arch_restore_msi_irqs(struct pci_dev * dev)512 bool __weak arch_restore_msi_irqs(struct pci_dev *dev)
513 {
514 	return true;
515 }
516 
__pci_restore_msi_state(struct pci_dev * dev)517 void __pci_restore_msi_state(struct pci_dev *dev)
518 {
519 	struct msi_desc *entry;
520 	u16 control;
521 
522 	if (!dev->msi_enabled)
523 		return;
524 
525 	entry = irq_get_msi_desc(dev->irq);
526 
527 	pci_intx_for_msi(dev, 0);
528 	pci_msi_set_enable(dev, 0);
529 	if (arch_restore_msi_irqs(dev))
530 		__pci_write_msi_msg(entry, &entry->msg);
531 
532 	pci_read_config_word(dev, dev->msi_cap + PCI_MSI_FLAGS, &control);
533 	pci_msi_update_mask(entry, 0, 0);
534 	FIELD_MODIFY(PCI_MSI_FLAGS_QSIZE, &control, entry->pci.msi_attrib.multiple);
535 	control |= PCI_MSI_FLAGS_ENABLE;
536 	pci_write_config_word(dev, dev->msi_cap + PCI_MSI_FLAGS, control);
537 }
538 
pci_msi_shutdown(struct pci_dev * dev)539 void pci_msi_shutdown(struct pci_dev *dev)
540 {
541 	struct msi_desc *desc;
542 
543 	if (!pci_msi_enable || !dev || !dev->msi_enabled)
544 		return;
545 
546 	pci_msi_set_enable(dev, 0);
547 	pci_intx_for_msi(dev, 1);
548 	dev->msi_enabled = 0;
549 
550 	/* Return the device with MSI unmasked as initial states */
551 	desc = msi_first_desc(&dev->dev, MSI_DESC_ALL);
552 	if (!WARN_ON_ONCE(!desc))
553 		pci_msi_unmask(desc, msi_multi_mask(desc));
554 
555 	/* Restore dev->irq to its default pin-assertion IRQ */
556 	dev->irq = desc->pci.msi_attrib.default_irq;
557 	pcibios_alloc_irq(dev);
558 }
559 
560 /* PCI/MSI-X specific functionality */
561 
pci_msix_clear_and_set_ctrl(struct pci_dev * dev,u16 clear,u16 set)562 static void pci_msix_clear_and_set_ctrl(struct pci_dev *dev, u16 clear, u16 set)
563 {
564 	u16 ctrl;
565 
566 	pci_read_config_word(dev, dev->msix_cap + PCI_MSIX_FLAGS, &ctrl);
567 	ctrl &= ~clear;
568 	ctrl |= set;
569 	pci_write_config_word(dev, dev->msix_cap + PCI_MSIX_FLAGS, ctrl);
570 }
571 
msix_map_region(struct pci_dev * dev,unsigned int nr_entries)572 static void __iomem *msix_map_region(struct pci_dev *dev,
573 				     unsigned int nr_entries)
574 {
575 	resource_size_t phys_addr;
576 	u32 table_offset;
577 	unsigned long flags;
578 	u8 bir;
579 
580 	pci_read_config_dword(dev, dev->msix_cap + PCI_MSIX_TABLE,
581 			      &table_offset);
582 	bir = (u8)(table_offset & PCI_MSIX_TABLE_BIR);
583 	flags = pci_resource_flags(dev, bir);
584 	if (!flags || (flags & IORESOURCE_UNSET))
585 		return NULL;
586 
587 	table_offset &= PCI_MSIX_TABLE_OFFSET;
588 	phys_addr = pci_resource_start(dev, bir) + table_offset;
589 
590 	return ioremap(phys_addr, nr_entries * PCI_MSIX_ENTRY_SIZE);
591 }
592 
593 /**
594  * msix_prepare_msi_desc - Prepare a half initialized MSI descriptor for operation
595  * @dev:	The PCI device for which the descriptor is prepared
596  * @desc:	The MSI descriptor for preparation
597  *
598  * This is separate from msix_setup_msi_descs() below to handle dynamic
599  * allocations for MSI-X after initial enablement.
600  *
601  * Ideally the whole MSI-X setup would work that way, but there is no way to
602  * support this for the legacy arch_setup_msi_irqs() mechanism and for the
603  * fake irq domains like the x86 XEN one. Sigh...
604  *
605  * The descriptor is zeroed and only @desc::msi_index and @desc::affinity
606  * are set. When called from msix_setup_msi_descs() then the is_virtual
607  * attribute is initialized as well.
608  *
609  * Fill in the rest.
610  */
msix_prepare_msi_desc(struct pci_dev * dev,struct msi_desc * desc)611 void msix_prepare_msi_desc(struct pci_dev *dev, struct msi_desc *desc)
612 {
613 	desc->nvec_used				= 1;
614 	desc->pci.msi_attrib.is_msix		= 1;
615 	desc->pci.msi_attrib.is_64		= 1;
616 	desc->pci.msi_attrib.default_irq	= dev->irq;
617 	desc->pci.mask_base			= dev->msix_base;
618 
619 
620 	if (!pci_msi_domain_supports(dev, MSI_FLAG_NO_MASK, DENY_LEGACY) &&
621 	    !desc->pci.msi_attrib.is_virtual) {
622 		void __iomem *addr = pci_msix_desc_addr(desc);
623 
624 		desc->pci.msi_attrib.can_mask = 1;
625 		/* Workaround for SUN NIU insanity, which requires write before read */
626 		if (dev->dev_flags & PCI_DEV_FLAGS_MSIX_TOUCH_ENTRY_DATA_FIRST)
627 			writel(0, addr + PCI_MSIX_ENTRY_DATA);
628 		desc->pci.msix_ctrl = readl(addr + PCI_MSIX_ENTRY_VECTOR_CTRL);
629 	}
630 }
631 
msix_setup_msi_descs(struct pci_dev * dev,struct msix_entry * entries,int nvec,struct irq_affinity_desc * masks)632 static int msix_setup_msi_descs(struct pci_dev *dev, struct msix_entry *entries,
633 				int nvec, struct irq_affinity_desc *masks)
634 {
635 	int ret = 0, i, vec_count = pci_msix_vec_count(dev);
636 	struct irq_affinity_desc *curmsk;
637 	struct msi_desc desc;
638 
639 	memset(&desc, 0, sizeof(desc));
640 
641 	for (i = 0, curmsk = masks; i < nvec; i++, curmsk++) {
642 		desc.msi_index = entries ? entries[i].entry : i;
643 		desc.affinity = masks ? curmsk : NULL;
644 		desc.pci.msi_attrib.is_virtual = desc.msi_index >= vec_count;
645 
646 		msix_prepare_msi_desc(dev, &desc);
647 
648 		ret = msi_insert_msi_desc(&dev->dev, &desc);
649 		if (ret)
650 			break;
651 	}
652 	return ret;
653 }
654 
msix_update_entries(struct pci_dev * dev,struct msix_entry * entries)655 static void msix_update_entries(struct pci_dev *dev, struct msix_entry *entries)
656 {
657 	struct msi_desc *desc;
658 
659 	if (entries) {
660 		msi_for_each_desc(desc, &dev->dev, MSI_DESC_ALL) {
661 			entries->vector = desc->irq;
662 			entries++;
663 		}
664 	}
665 }
666 
msix_mask_all(void __iomem * base,int tsize)667 static void msix_mask_all(void __iomem *base, int tsize)
668 {
669 	u32 ctrl = PCI_MSIX_ENTRY_CTRL_MASKBIT;
670 	int i;
671 
672 	for (i = 0; i < tsize; i++, base += PCI_MSIX_ENTRY_SIZE)
673 		writel(ctrl, base + PCI_MSIX_ENTRY_VECTOR_CTRL);
674 }
675 
676 DEFINE_FREE(free_msi_irqs, struct pci_dev *, if (_T) pci_free_msi_irqs(_T));
677 
__msix_setup_interrupts(struct pci_dev * __dev,struct msix_entry * entries,int nvec,struct irq_affinity_desc * masks)678 static int __msix_setup_interrupts(struct pci_dev *__dev, struct msix_entry *entries,
679 				   int nvec, struct irq_affinity_desc *masks)
680 {
681 	struct pci_dev *dev __free(free_msi_irqs) = __dev;
682 
683 	int ret = msix_setup_msi_descs(dev, entries, nvec, masks);
684 	if (ret)
685 		return ret;
686 
687 	ret = pci_msi_setup_msi_irqs(dev, nvec, PCI_CAP_ID_MSIX);
688 	if (ret)
689 		return ret;
690 
691 	/* Check if all MSI entries honor device restrictions */
692 	ret = msi_verify_entries(dev);
693 	if (ret)
694 		return ret;
695 
696 	msix_update_entries(dev, entries);
697 	retain_and_null_ptr(dev);
698 	return 0;
699 }
700 
msix_setup_interrupts(struct pci_dev * dev,struct msix_entry * entries,int nvec,struct irq_affinity * affd)701 static int msix_setup_interrupts(struct pci_dev *dev, struct msix_entry *entries,
702 				 int nvec, struct irq_affinity *affd)
703 {
704 	struct irq_affinity_desc *masks __free(kfree) =
705 		affd ? irq_create_affinity_masks(nvec, affd) : NULL;
706 
707 	guard(msi_descs_lock)(&dev->dev);
708 	return __msix_setup_interrupts(dev, entries, nvec, masks);
709 }
710 
711 /**
712  * msix_capability_init - configure device's MSI-X capability
713  * @dev: pointer to the pci_dev data structure of MSI-X device function
714  * @entries: pointer to an array of struct msix_entry entries
715  * @nvec: number of @entries
716  * @affd: Optional pointer to enable automatic affinity assignment
717  *
718  * Setup the MSI-X capability structure of device function with a
719  * single MSI-X IRQ. A return of zero indicates the successful setup of
720  * requested MSI-X entries with allocated IRQs or non-zero for otherwise.
721  **/
msix_capability_init(struct pci_dev * dev,struct msix_entry * entries,int nvec,struct irq_affinity * affd)722 static int msix_capability_init(struct pci_dev *dev, struct msix_entry *entries,
723 				int nvec, struct irq_affinity *affd)
724 {
725 	int ret, tsize;
726 	u16 control;
727 
728 	/*
729 	 * Some devices require MSI-X to be enabled before the MSI-X
730 	 * registers can be accessed.  Mask all the vectors to prevent
731 	 * interrupts coming in before they're fully set up.
732 	 */
733 	pci_msix_clear_and_set_ctrl(dev, 0, PCI_MSIX_FLAGS_MASKALL |
734 				    PCI_MSIX_FLAGS_ENABLE);
735 
736 	/* Mark it enabled so setup functions can query it */
737 	dev->msix_enabled = 1;
738 
739 	pci_read_config_word(dev, dev->msix_cap + PCI_MSIX_FLAGS, &control);
740 	/* Request & Map MSI-X table region */
741 	tsize = msix_table_size(control);
742 	dev->msix_base = msix_map_region(dev, tsize);
743 	if (!dev->msix_base) {
744 		ret = -ENOMEM;
745 		goto out_disable;
746 	}
747 
748 	ret = msix_setup_interrupts(dev, entries, nvec, affd);
749 	if (ret)
750 		goto out_disable;
751 
752 	/* Disable INTX */
753 	pci_intx_for_msi(dev, 0);
754 
755 	if (!pci_msi_domain_supports(dev, MSI_FLAG_NO_MASK, DENY_LEGACY)) {
756 		/*
757 		 * Ensure that all table entries are masked to prevent
758 		 * stale entries from firing in a crash kernel.
759 		 *
760 		 * Done late to deal with a broken Marvell NVME device
761 		 * which takes the MSI-X mask bits into account even
762 		 * when MSI-X is disabled, which prevents MSI delivery.
763 		 */
764 		msix_mask_all(dev->msix_base, tsize);
765 	}
766 	pci_msix_clear_and_set_ctrl(dev, PCI_MSIX_FLAGS_MASKALL, 0);
767 
768 	pcibios_free_irq(dev);
769 	return 0;
770 
771 out_disable:
772 	dev->msix_enabled = 0;
773 	pci_msix_clear_and_set_ctrl(dev, PCI_MSIX_FLAGS_MASKALL | PCI_MSIX_FLAGS_ENABLE, 0);
774 
775 	return ret;
776 }
777 
pci_msix_validate_entries(struct pci_dev * dev,struct msix_entry * entries,int nvec)778 static bool pci_msix_validate_entries(struct pci_dev *dev, struct msix_entry *entries, int nvec)
779 {
780 	bool nogap;
781 	int i, j;
782 
783 	if (!entries)
784 		return true;
785 
786 	nogap = pci_msi_domain_supports(dev, MSI_FLAG_MSIX_CONTIGUOUS, DENY_LEGACY);
787 
788 	for (i = 0; i < nvec; i++) {
789 		/* Check for duplicate entries */
790 		for (j = i + 1; j < nvec; j++) {
791 			if (entries[i].entry == entries[j].entry)
792 				return false;
793 		}
794 		/* Check for unsupported gaps */
795 		if (nogap && entries[i].entry != i)
796 			return false;
797 	}
798 	return true;
799 }
800 
__pci_enable_msix_range(struct pci_dev * dev,struct msix_entry * entries,int minvec,int maxvec,struct irq_affinity * affd,int flags)801 int __pci_enable_msix_range(struct pci_dev *dev, struct msix_entry *entries, int minvec,
802 			    int maxvec, struct irq_affinity *affd, int flags)
803 {
804 	int hwsize, rc, nvec = maxvec;
805 
806 	if (maxvec < minvec)
807 		return -ERANGE;
808 
809 	if (dev->msi_enabled) {
810 		pci_info(dev, "can't enable MSI-X (MSI already enabled)\n");
811 		return -EINVAL;
812 	}
813 
814 	if (WARN_ON_ONCE(dev->msix_enabled))
815 		return -EINVAL;
816 
817 	/* Check MSI-X early on irq domain enabled architectures */
818 	if (!pci_msi_domain_supports(dev, MSI_FLAG_PCI_MSIX, ALLOW_LEGACY))
819 		return -ENOTSUPP;
820 
821 	if (!pci_msi_supported(dev, nvec) || dev->current_state != PCI_D0)
822 		return -EINVAL;
823 
824 	hwsize = pci_msix_vec_count(dev);
825 	if (hwsize < 0)
826 		return hwsize;
827 
828 	if (!pci_msix_validate_entries(dev, entries, nvec))
829 		return -EINVAL;
830 
831 	if (hwsize < nvec) {
832 		/* Keep the IRQ virtual hackery working */
833 		if (flags & PCI_IRQ_VIRTUAL)
834 			hwsize = nvec;
835 		else
836 			nvec = hwsize;
837 	}
838 
839 	if (nvec < minvec)
840 		return -ENOSPC;
841 
842 	rc = pci_setup_msi_context(dev);
843 	if (rc)
844 		return rc;
845 
846 	if (!pci_setup_msix_device_domain(dev, hwsize))
847 		return -ENODEV;
848 
849 	for (;;) {
850 		if (affd) {
851 			nvec = irq_calc_affinity_vectors(minvec, nvec, affd);
852 			if (nvec < minvec)
853 				return -ENOSPC;
854 		}
855 
856 		rc = msix_capability_init(dev, entries, nvec, affd);
857 		if (rc == 0)
858 			return nvec;
859 
860 		if (rc < 0)
861 			return rc;
862 		if (rc < minvec)
863 			return -ENOSPC;
864 
865 		nvec = rc;
866 	}
867 }
868 
__pci_restore_msix_state(struct pci_dev * dev)869 void __pci_restore_msix_state(struct pci_dev *dev)
870 {
871 	struct msi_desc *entry;
872 	bool write_msg;
873 	u16 cmd;
874 
875 	if (!dev->msix_enabled)
876 		return;
877 
878 	/* route the table */
879 	pci_intx_for_msi(dev, 0);
880 	pci_msix_clear_and_set_ctrl(dev, 0,
881 				PCI_MSIX_FLAGS_ENABLE | PCI_MSIX_FLAGS_MASKALL);
882 
883 	/*
884 	 * The restored device state may not have Memory Space enabled.
885 	 * Since the MSI-X Table and PBA are in Memory Space, enable it
886 	 * while restoring them.
887 	 */
888 	pci_read_config_word(dev, PCI_COMMAND, &cmd);
889 	pci_write_config_word(dev, PCI_COMMAND, cmd | PCI_COMMAND_MEMORY);
890 
891 	write_msg = arch_restore_msi_irqs(dev);
892 
893 	scoped_guard (msi_descs_lock, &dev->dev) {
894 		msi_for_each_desc(entry, &dev->dev, MSI_DESC_ALL) {
895 			if (write_msg)
896 				__pci_write_msi_msg(entry, &entry->msg);
897 			pci_msix_write_vector_ctrl(entry, entry->pci.msix_ctrl);
898 		}
899 	}
900 
901 	pci_write_config_word(dev, PCI_COMMAND, cmd);
902 	pci_msix_clear_and_set_ctrl(dev, PCI_MSIX_FLAGS_MASKALL, 0);
903 }
904 
pci_msix_shutdown(struct pci_dev * dev)905 void pci_msix_shutdown(struct pci_dev *dev)
906 {
907 	struct msi_desc *desc;
908 
909 	if (!pci_msi_enable || !dev || !dev->msix_enabled)
910 		return;
911 
912 	if (pci_dev_is_disconnected(dev)) {
913 		dev->msix_enabled = 0;
914 		return;
915 	}
916 
917 	/* Return the device with MSI-X masked as initial states */
918 	msi_for_each_desc(desc, &dev->dev, MSI_DESC_ALL)
919 		pci_msix_mask(desc);
920 
921 	pci_msix_clear_and_set_ctrl(dev, PCI_MSIX_FLAGS_ENABLE, 0);
922 	pci_intx_for_msi(dev, 1);
923 	dev->msix_enabled = 0;
924 	pcibios_alloc_irq(dev);
925 }
926 
927 /* Common interfaces */
928 
pci_free_msi_irqs(struct pci_dev * dev)929 void pci_free_msi_irqs(struct pci_dev *dev)
930 {
931 	pci_msi_teardown_msi_irqs(dev);
932 
933 	if (dev->msix_base) {
934 		iounmap(dev->msix_base);
935 		dev->msix_base = NULL;
936 	}
937 }
938 
939 #ifdef CONFIG_PCIE_TPH
940 /**
941  * pci_msix_write_tph_tag - Update the TPH tag for a given MSI-X vector
942  * @pdev:	The PCIe device to update
943  * @index:	The MSI-X index to update
944  * @tag:	The tag to write
945  *
946  * Returns: 0 on success, error code on failure
947  */
pci_msix_write_tph_tag(struct pci_dev * pdev,unsigned int index,u16 tag)948 int pci_msix_write_tph_tag(struct pci_dev *pdev, unsigned int index, u16 tag)
949 {
950 	struct msi_desc *msi_desc;
951 	struct irq_desc *irq_desc;
952 	unsigned int virq;
953 
954 	if (!pdev->msix_enabled)
955 		return -ENXIO;
956 
957 	virq = msi_get_virq(&pdev->dev, index);
958 	if (!virq)
959 		return -ENXIO;
960 
961 	guard(msi_descs_lock)(&pdev->dev);
962 
963 	/*
964 	 * This is a horrible hack, but short of implementing a PCI
965 	 * specific interrupt chip callback and a huge pile of
966 	 * infrastructure, this is the minor nuisance. It provides the
967 	 * protection against concurrent operations on this entry and keeps
968 	 * the control word cache in sync.
969 	 */
970 	irq_desc = irq_to_desc(virq);
971 	if (!irq_desc)
972 		return -ENXIO;
973 
974 	guard(raw_spinlock_irq)(&irq_desc->lock);
975 	msi_desc = irq_data_get_msi_desc(&irq_desc->irq_data);
976 	if (!msi_desc || msi_desc->pci.msi_attrib.is_virtual)
977 		return -ENXIO;
978 
979 	FIELD_MODIFY(PCI_MSIX_ENTRY_CTRL_ST, &msi_desc->pci.msix_ctrl, tag);
980 	pci_msix_write_vector_ctrl(msi_desc, msi_desc->pci.msix_ctrl);
981 	/* Flush the write */
982 	readl(pci_msix_desc_addr(msi_desc));
983 	return 0;
984 }
985 #endif
986 
987 /* Misc. infrastructure */
988 
msi_desc_to_pci_dev(struct msi_desc * desc)989 struct pci_dev *msi_desc_to_pci_dev(struct msi_desc *desc)
990 {
991 	return to_pci_dev(desc->dev);
992 }
993 EXPORT_SYMBOL(msi_desc_to_pci_dev);
994 
pci_no_msi(void)995 void pci_no_msi(void)
996 {
997 	pci_msi_enable = false;
998 }
999