xref: /linux/drivers/pci/p2pdma.c (revision bf4afc53b77aeaa48b5409da5c8da6bb4eff7f43)
1 // SPDX-License-Identifier: GPL-2.0
2 /*
3  * PCI Peer 2 Peer DMA support.
4  *
5  * Copyright (c) 2016-2018, Logan Gunthorpe
6  * Copyright (c) 2016-2017, Microsemi Corporation
7  * Copyright (c) 2017, Christoph Hellwig
8  * Copyright (c) 2018, Eideticom Inc.
9  */
10 
11 #define pr_fmt(fmt) "pci-p2pdma: " fmt
12 #include <linux/ctype.h>
13 #include <linux/dma-map-ops.h>
14 #include <linux/pci-p2pdma.h>
15 #include <linux/module.h>
16 #include <linux/slab.h>
17 #include <linux/genalloc.h>
18 #include <linux/memremap.h>
19 #include <linux/percpu-refcount.h>
20 #include <linux/random.h>
21 #include <linux/seq_buf.h>
22 #include <linux/xarray.h>
23 
24 struct pci_p2pdma {
25 	struct gen_pool *pool;
26 	bool p2pmem_published;
27 	struct xarray map_types;
28 	struct p2pdma_provider mem[PCI_STD_NUM_BARS];
29 };
30 
31 struct pci_p2pdma_pagemap {
32 	struct dev_pagemap pgmap;
33 	struct p2pdma_provider *mem;
34 };
35 
to_p2p_pgmap(struct dev_pagemap * pgmap)36 static struct pci_p2pdma_pagemap *to_p2p_pgmap(struct dev_pagemap *pgmap)
37 {
38 	return container_of(pgmap, struct pci_p2pdma_pagemap, pgmap);
39 }
40 
size_show(struct device * dev,struct device_attribute * attr,char * buf)41 static ssize_t size_show(struct device *dev, struct device_attribute *attr,
42 			 char *buf)
43 {
44 	struct pci_dev *pdev = to_pci_dev(dev);
45 	struct pci_p2pdma *p2pdma;
46 	size_t size = 0;
47 
48 	rcu_read_lock();
49 	p2pdma = rcu_dereference(pdev->p2pdma);
50 	if (p2pdma && p2pdma->pool)
51 		size = gen_pool_size(p2pdma->pool);
52 	rcu_read_unlock();
53 
54 	return sysfs_emit(buf, "%zd\n", size);
55 }
56 static DEVICE_ATTR_RO(size);
57 
available_show(struct device * dev,struct device_attribute * attr,char * buf)58 static ssize_t available_show(struct device *dev, struct device_attribute *attr,
59 			      char *buf)
60 {
61 	struct pci_dev *pdev = to_pci_dev(dev);
62 	struct pci_p2pdma *p2pdma;
63 	size_t avail = 0;
64 
65 	rcu_read_lock();
66 	p2pdma = rcu_dereference(pdev->p2pdma);
67 	if (p2pdma && p2pdma->pool)
68 		avail = gen_pool_avail(p2pdma->pool);
69 	rcu_read_unlock();
70 
71 	return sysfs_emit(buf, "%zd\n", avail);
72 }
73 static DEVICE_ATTR_RO(available);
74 
published_show(struct device * dev,struct device_attribute * attr,char * buf)75 static ssize_t published_show(struct device *dev, struct device_attribute *attr,
76 			      char *buf)
77 {
78 	struct pci_dev *pdev = to_pci_dev(dev);
79 	struct pci_p2pdma *p2pdma;
80 	bool published = false;
81 
82 	rcu_read_lock();
83 	p2pdma = rcu_dereference(pdev->p2pdma);
84 	if (p2pdma)
85 		published = p2pdma->p2pmem_published;
86 	rcu_read_unlock();
87 
88 	return sysfs_emit(buf, "%d\n", published);
89 }
90 static DEVICE_ATTR_RO(published);
91 
p2pmem_alloc_mmap(struct file * filp,struct kobject * kobj,const struct bin_attribute * attr,struct vm_area_struct * vma)92 static int p2pmem_alloc_mmap(struct file *filp, struct kobject *kobj,
93 		const struct bin_attribute *attr, struct vm_area_struct *vma)
94 {
95 	struct pci_dev *pdev = to_pci_dev(kobj_to_dev(kobj));
96 	size_t len = vma->vm_end - vma->vm_start;
97 	struct pci_p2pdma *p2pdma;
98 	struct percpu_ref *ref;
99 	unsigned long vaddr;
100 	void *kaddr;
101 	int ret;
102 
103 	/* prevent private mappings from being established */
104 	if ((vma->vm_flags & VM_MAYSHARE) != VM_MAYSHARE) {
105 		pci_info_ratelimited(pdev,
106 				     "%s: fail, attempted private mapping\n",
107 				     current->comm);
108 		return -EINVAL;
109 	}
110 
111 	if (vma->vm_pgoff) {
112 		pci_info_ratelimited(pdev,
113 				     "%s: fail, attempted mapping with non-zero offset\n",
114 				     current->comm);
115 		return -EINVAL;
116 	}
117 
118 	rcu_read_lock();
119 	p2pdma = rcu_dereference(pdev->p2pdma);
120 	if (!p2pdma) {
121 		ret = -ENODEV;
122 		goto out;
123 	}
124 
125 	kaddr = (void *)gen_pool_alloc_owner(p2pdma->pool, len, (void **)&ref);
126 	if (!kaddr) {
127 		ret = -ENOMEM;
128 		goto out;
129 	}
130 
131 	/*
132 	 * vm_insert_page() can sleep, so a reference is taken to mapping
133 	 * such that rcu_read_unlock() can be done before inserting the
134 	 * pages
135 	 */
136 	if (unlikely(!percpu_ref_tryget_live_rcu(ref))) {
137 		ret = -ENODEV;
138 		goto out_free_mem;
139 	}
140 	rcu_read_unlock();
141 
142 	for (vaddr = vma->vm_start; vaddr < vma->vm_end; vaddr += PAGE_SIZE) {
143 		struct page *page = virt_to_page(kaddr);
144 
145 		/*
146 		 * Initialise the refcount for the freshly allocated page. As
147 		 * we have just allocated the page no one else should be
148 		 * using it.
149 		 */
150 		VM_WARN_ON_ONCE_PAGE(page_ref_count(page), page);
151 		set_page_count(page, 1);
152 		ret = vm_insert_page(vma, vaddr, page);
153 		if (ret) {
154 			gen_pool_free(p2pdma->pool, (uintptr_t)kaddr, len);
155 
156 			/*
157 			 * Reset the page count. We don't use put_page()
158 			 * because we don't want to trigger the
159 			 * p2pdma_folio_free() path.
160 			 */
161 			set_page_count(page, 0);
162 			percpu_ref_put(ref);
163 			return ret;
164 		}
165 		percpu_ref_get(ref);
166 		put_page(page);
167 		kaddr += PAGE_SIZE;
168 		len -= PAGE_SIZE;
169 	}
170 
171 	percpu_ref_put(ref);
172 
173 	return 0;
174 out_free_mem:
175 	gen_pool_free(p2pdma->pool, (uintptr_t)kaddr, len);
176 out:
177 	rcu_read_unlock();
178 	return ret;
179 }
180 
181 static const struct bin_attribute p2pmem_alloc_attr = {
182 	.attr = { .name = "allocate", .mode = 0660 },
183 	.mmap = p2pmem_alloc_mmap,
184 	/*
185 	 * Some places where we want to call mmap (ie. python) will check
186 	 * that the file size is greater than the mmap size before allowing
187 	 * the mmap to continue. To work around this, just set the size
188 	 * to be very large.
189 	 */
190 	.size = SZ_1T,
191 };
192 
193 static struct attribute *p2pmem_attrs[] = {
194 	&dev_attr_size.attr,
195 	&dev_attr_available.attr,
196 	&dev_attr_published.attr,
197 	NULL,
198 };
199 
200 static const struct bin_attribute *const p2pmem_bin_attrs[] = {
201 	&p2pmem_alloc_attr,
202 	NULL,
203 };
204 
205 static const struct attribute_group p2pmem_group = {
206 	.attrs = p2pmem_attrs,
207 	.bin_attrs = p2pmem_bin_attrs,
208 	.name = "p2pmem",
209 };
210 
p2pdma_folio_free(struct folio * folio)211 static void p2pdma_folio_free(struct folio *folio)
212 {
213 	struct page *page = &folio->page;
214 	struct pci_p2pdma_pagemap *pgmap = to_p2p_pgmap(page_pgmap(page));
215 	/* safe to dereference while a reference is held to the percpu ref */
216 	struct pci_p2pdma *p2pdma = rcu_dereference_protected(
217 		to_pci_dev(pgmap->mem->owner)->p2pdma, 1);
218 	struct percpu_ref *ref;
219 
220 	gen_pool_free_owner(p2pdma->pool, (uintptr_t)page_to_virt(page),
221 			    PAGE_SIZE, (void **)&ref);
222 	percpu_ref_put(ref);
223 }
224 
225 static const struct dev_pagemap_ops p2pdma_pgmap_ops = {
226 	.folio_free = p2pdma_folio_free,
227 };
228 
pci_p2pdma_release(void * data)229 static void pci_p2pdma_release(void *data)
230 {
231 	struct pci_dev *pdev = data;
232 	struct pci_p2pdma *p2pdma;
233 
234 	p2pdma = rcu_dereference_protected(pdev->p2pdma, 1);
235 	if (!p2pdma)
236 		return;
237 
238 	/* Flush and disable pci_alloc_p2p_mem() */
239 	pdev->p2pdma = NULL;
240 	if (p2pdma->pool)
241 		synchronize_rcu();
242 	xa_destroy(&p2pdma->map_types);
243 
244 	if (!p2pdma->pool)
245 		return;
246 
247 	gen_pool_destroy(p2pdma->pool);
248 	sysfs_remove_group(&pdev->dev.kobj, &p2pmem_group);
249 }
250 
251 /**
252  * pcim_p2pdma_init - Initialise peer-to-peer DMA providers
253  * @pdev: The PCI device to enable P2PDMA for
254  *
255  * This function initializes the peer-to-peer DMA infrastructure
256  * for a PCI device. It allocates and sets up the necessary data
257  * structures to support P2PDMA operations, including mapping type
258  * tracking.
259  */
pcim_p2pdma_init(struct pci_dev * pdev)260 int pcim_p2pdma_init(struct pci_dev *pdev)
261 {
262 	struct pci_p2pdma *p2p;
263 	int i, ret;
264 
265 	p2p = rcu_dereference_protected(pdev->p2pdma, 1);
266 	if (p2p)
267 		return 0;
268 
269 	p2p = devm_kzalloc(&pdev->dev, sizeof(*p2p), GFP_KERNEL);
270 	if (!p2p)
271 		return -ENOMEM;
272 
273 	xa_init(&p2p->map_types);
274 	/*
275 	 * Iterate over all standard PCI BARs and record only those that
276 	 * correspond to MMIO regions. Skip non-memory resources (e.g. I/O
277 	 * port BARs) since they cannot be used for peer-to-peer (P2P)
278 	 * transactions.
279 	 */
280 	for (i = 0; i < PCI_STD_NUM_BARS; i++) {
281 		if (!(pci_resource_flags(pdev, i) & IORESOURCE_MEM))
282 			continue;
283 
284 		p2p->mem[i].owner = &pdev->dev;
285 		p2p->mem[i].bus_offset =
286 			pci_bus_address(pdev, i) - pci_resource_start(pdev, i);
287 	}
288 
289 	ret = devm_add_action_or_reset(&pdev->dev, pci_p2pdma_release, pdev);
290 	if (ret)
291 		goto out_p2p;
292 
293 	rcu_assign_pointer(pdev->p2pdma, p2p);
294 	return 0;
295 
296 out_p2p:
297 	devm_kfree(&pdev->dev, p2p);
298 	return ret;
299 }
300 EXPORT_SYMBOL_GPL(pcim_p2pdma_init);
301 
302 /**
303  * pcim_p2pdma_provider - Get peer-to-peer DMA provider
304  * @pdev: The PCI device to enable P2PDMA for
305  * @bar: BAR index to get provider
306  *
307  * This function gets peer-to-peer DMA provider for a PCI device. The lifetime
308  * of the provider (and of course the MMIO) is bound to the lifetime of the
309  * driver. A driver calling this function must ensure that all references to the
310  * provider, and any DMA mappings created for any MMIO, are all cleaned up
311  * before the driver remove() completes.
312  *
313  * Since P2P is almost always shared with a second driver this means some system
314  * to notify, invalidate and revoke the MMIO's DMA must be in place to use this
315  * function. For example a revoke can be built using DMABUF.
316  */
pcim_p2pdma_provider(struct pci_dev * pdev,int bar)317 struct p2pdma_provider *pcim_p2pdma_provider(struct pci_dev *pdev, int bar)
318 {
319 	struct pci_p2pdma *p2p;
320 
321 	if (!(pci_resource_flags(pdev, bar) & IORESOURCE_MEM))
322 		return NULL;
323 
324 	p2p = rcu_dereference_protected(pdev->p2pdma, 1);
325 	if (WARN_ON(!p2p))
326 		/* Someone forgot to call to pcim_p2pdma_init() before */
327 		return NULL;
328 
329 	return &p2p->mem[bar];
330 }
331 EXPORT_SYMBOL_GPL(pcim_p2pdma_provider);
332 
pci_p2pdma_setup_pool(struct pci_dev * pdev)333 static int pci_p2pdma_setup_pool(struct pci_dev *pdev)
334 {
335 	struct pci_p2pdma *p2pdma;
336 	int ret;
337 
338 	p2pdma = rcu_dereference_protected(pdev->p2pdma, 1);
339 	if (p2pdma->pool)
340 		/* We already setup pools, do nothing, */
341 		return 0;
342 
343 	p2pdma->pool = gen_pool_create(PAGE_SHIFT, dev_to_node(&pdev->dev));
344 	if (!p2pdma->pool)
345 		return -ENOMEM;
346 
347 	ret = sysfs_create_group(&pdev->dev.kobj, &p2pmem_group);
348 	if (ret)
349 		goto out_pool_destroy;
350 
351 	return 0;
352 
353 out_pool_destroy:
354 	gen_pool_destroy(p2pdma->pool);
355 	p2pdma->pool = NULL;
356 	return ret;
357 }
358 
pci_p2pdma_unmap_mappings(void * data)359 static void pci_p2pdma_unmap_mappings(void *data)
360 {
361 	struct pci_p2pdma_pagemap *p2p_pgmap = data;
362 
363 	/*
364 	 * Removing the alloc attribute from sysfs will call
365 	 * unmap_mapping_range() on the inode, teardown any existing userspace
366 	 * mappings and prevent new ones from being created.
367 	 */
368 	sysfs_remove_file_from_group(&p2p_pgmap->mem->owner->kobj,
369 				     &p2pmem_alloc_attr.attr,
370 				     p2pmem_group.name);
371 }
372 
373 /**
374  * pci_p2pdma_add_resource - add memory for use as p2p memory
375  * @pdev: the device to add the memory to
376  * @bar: PCI BAR to add
377  * @size: size of the memory to add, may be zero to use the whole BAR
378  * @offset: offset into the PCI BAR
379  *
380  * The memory will be given ZONE_DEVICE struct pages so that it may
381  * be used with any DMA request.
382  */
pci_p2pdma_add_resource(struct pci_dev * pdev,int bar,size_t size,u64 offset)383 int pci_p2pdma_add_resource(struct pci_dev *pdev, int bar, size_t size,
384 			    u64 offset)
385 {
386 	struct pci_p2pdma_pagemap *p2p_pgmap;
387 	struct p2pdma_provider *mem;
388 	struct dev_pagemap *pgmap;
389 	struct pci_p2pdma *p2pdma;
390 	void *addr;
391 	int error;
392 
393 	if (!(pci_resource_flags(pdev, bar) & IORESOURCE_MEM))
394 		return -EINVAL;
395 
396 	if (offset >= pci_resource_len(pdev, bar))
397 		return -EINVAL;
398 
399 	if (!size)
400 		size = pci_resource_len(pdev, bar) - offset;
401 
402 	if (size + offset > pci_resource_len(pdev, bar))
403 		return -EINVAL;
404 
405 	error = pcim_p2pdma_init(pdev);
406 	if (error)
407 		return error;
408 
409 	error = pci_p2pdma_setup_pool(pdev);
410 	if (error)
411 		return error;
412 
413 	mem = pcim_p2pdma_provider(pdev, bar);
414 	/*
415 	 * We checked validity of BAR prior to call
416 	 * to pcim_p2pdma_provider. It should never return NULL.
417 	 */
418 	if (WARN_ON(!mem))
419 		return -EINVAL;
420 
421 	p2p_pgmap = devm_kzalloc(&pdev->dev, sizeof(*p2p_pgmap), GFP_KERNEL);
422 	if (!p2p_pgmap)
423 		return -ENOMEM;
424 
425 	pgmap = &p2p_pgmap->pgmap;
426 	pgmap->range.start = pci_resource_start(pdev, bar) + offset;
427 	pgmap->range.end = pgmap->range.start + size - 1;
428 	pgmap->nr_range = 1;
429 	pgmap->type = MEMORY_DEVICE_PCI_P2PDMA;
430 	pgmap->ops = &p2pdma_pgmap_ops;
431 	p2p_pgmap->mem = mem;
432 
433 	addr = devm_memremap_pages(&pdev->dev, pgmap);
434 	if (IS_ERR(addr)) {
435 		error = PTR_ERR(addr);
436 		goto pgmap_free;
437 	}
438 
439 	error = devm_add_action_or_reset(&pdev->dev, pci_p2pdma_unmap_mappings,
440 					 p2p_pgmap);
441 	if (error)
442 		goto pages_free;
443 
444 	p2pdma = rcu_dereference_protected(pdev->p2pdma, 1);
445 	error = gen_pool_add_owner(p2pdma->pool, (unsigned long)addr,
446 			pci_bus_address(pdev, bar) + offset,
447 			range_len(&pgmap->range), dev_to_node(&pdev->dev),
448 			&pgmap->ref);
449 	if (error)
450 		goto pages_free;
451 
452 	pci_info(pdev, "added peer-to-peer DMA memory %#llx-%#llx\n",
453 		 pgmap->range.start, pgmap->range.end);
454 
455 	return 0;
456 
457 pages_free:
458 	devm_memunmap_pages(&pdev->dev, pgmap);
459 pgmap_free:
460 	devm_kfree(&pdev->dev, p2p_pgmap);
461 	return error;
462 }
463 EXPORT_SYMBOL_GPL(pci_p2pdma_add_resource);
464 
465 /*
466  * Note this function returns the parent PCI device with a
467  * reference taken. It is the caller's responsibility to drop
468  * the reference.
469  */
find_parent_pci_dev(struct device * dev)470 static struct pci_dev *find_parent_pci_dev(struct device *dev)
471 {
472 	struct device *parent;
473 
474 	dev = get_device(dev);
475 
476 	while (dev) {
477 		if (dev_is_pci(dev))
478 			return to_pci_dev(dev);
479 
480 		parent = get_device(dev->parent);
481 		put_device(dev);
482 		dev = parent;
483 	}
484 
485 	return NULL;
486 }
487 
488 /*
489  * Check if a PCI bridge has its ACS redirection bits set to redirect P2P
490  * TLPs upstream via ACS. Returns 1 if the packets will be redirected
491  * upstream, 0 otherwise.
492  */
pci_bridge_has_acs_redir(struct pci_dev * pdev)493 static int pci_bridge_has_acs_redir(struct pci_dev *pdev)
494 {
495 	int pos;
496 	u16 ctrl;
497 
498 	pos = pdev->acs_cap;
499 	if (!pos)
500 		return 0;
501 
502 	pci_read_config_word(pdev, pos + PCI_ACS_CTRL, &ctrl);
503 
504 	if (ctrl & (PCI_ACS_RR | PCI_ACS_CR | PCI_ACS_EC))
505 		return 1;
506 
507 	return 0;
508 }
509 
seq_buf_print_bus_devfn(struct seq_buf * buf,struct pci_dev * pdev)510 static void seq_buf_print_bus_devfn(struct seq_buf *buf, struct pci_dev *pdev)
511 {
512 	if (!buf)
513 		return;
514 
515 	seq_buf_printf(buf, "%s;", pci_name(pdev));
516 }
517 
cpu_supports_p2pdma(void)518 static bool cpu_supports_p2pdma(void)
519 {
520 #ifdef CONFIG_X86
521 	struct cpuinfo_x86 *c = &cpu_data(0);
522 
523 	/* Any AMD CPU whose family ID is Zen or newer supports p2pdma */
524 	if (c->x86_vendor == X86_VENDOR_AMD && c->x86 >= 0x17)
525 		return true;
526 #endif
527 
528 	return false;
529 }
530 
531 static const struct pci_p2pdma_whitelist_entry {
532 	unsigned short vendor;
533 	unsigned short device;
534 	enum {
535 		REQ_SAME_HOST_BRIDGE	= 1 << 0,
536 	} flags;
537 } pci_p2pdma_whitelist[] = {
538 	/* Intel Xeon E5/Core i7 */
539 	{PCI_VENDOR_ID_INTEL,	0x3c00, REQ_SAME_HOST_BRIDGE},
540 	{PCI_VENDOR_ID_INTEL,	0x3c01, REQ_SAME_HOST_BRIDGE},
541 	/* Intel Xeon E7 v3/Xeon E5 v3/Core i7 */
542 	{PCI_VENDOR_ID_INTEL,	0x2f00, REQ_SAME_HOST_BRIDGE},
543 	{PCI_VENDOR_ID_INTEL,	0x2f01, REQ_SAME_HOST_BRIDGE},
544 	/* Intel Skylake-E */
545 	{PCI_VENDOR_ID_INTEL,	0x2030, 0},
546 	{PCI_VENDOR_ID_INTEL,	0x2031, 0},
547 	{PCI_VENDOR_ID_INTEL,	0x2032, 0},
548 	{PCI_VENDOR_ID_INTEL,	0x2033, 0},
549 	{PCI_VENDOR_ID_INTEL,	0x2020, 0},
550 	{PCI_VENDOR_ID_INTEL,	0x09a2, 0},
551 	{}
552 };
553 
554 /*
555  * If the first device on host's root bus is either devfn 00.0 or a PCIe
556  * Root Port, return it.  Otherwise return NULL.
557  *
558  * We often use a devfn 00.0 "host bridge" in the pci_p2pdma_whitelist[]
559  * (though there is no PCI/PCIe requirement for such a device).  On some
560  * platforms, e.g., Intel Skylake, there is no such host bridge device, and
561  * pci_p2pdma_whitelist[] may contain a Root Port at any devfn.
562  *
563  * This function is similar to pci_get_slot(host->bus, 0), but it does
564  * not take the pci_bus_sem lock since __host_bridge_whitelist() must not
565  * sleep.
566  *
567  * For this to be safe, the caller should hold a reference to a device on the
568  * bridge, which should ensure the host_bridge device will not be freed
569  * or removed from the head of the devices list.
570  */
pci_host_bridge_dev(struct pci_host_bridge * host)571 static struct pci_dev *pci_host_bridge_dev(struct pci_host_bridge *host)
572 {
573 	struct pci_dev *root;
574 
575 	root = list_first_entry_or_null(&host->bus->devices,
576 					struct pci_dev, bus_list);
577 
578 	if (!root)
579 		return NULL;
580 
581 	if (root->devfn == PCI_DEVFN(0, 0))
582 		return root;
583 
584 	if (pci_pcie_type(root) == PCI_EXP_TYPE_ROOT_PORT)
585 		return root;
586 
587 	return NULL;
588 }
589 
__host_bridge_whitelist(struct pci_host_bridge * host,bool same_host_bridge,bool warn)590 static bool __host_bridge_whitelist(struct pci_host_bridge *host,
591 				    bool same_host_bridge, bool warn)
592 {
593 	struct pci_dev *root = pci_host_bridge_dev(host);
594 	const struct pci_p2pdma_whitelist_entry *entry;
595 	unsigned short vendor, device;
596 
597 	if (!root)
598 		return false;
599 
600 	vendor = root->vendor;
601 	device = root->device;
602 
603 	for (entry = pci_p2pdma_whitelist; entry->vendor; entry++) {
604 		if (vendor != entry->vendor || device != entry->device)
605 			continue;
606 		if (entry->flags & REQ_SAME_HOST_BRIDGE && !same_host_bridge)
607 			return false;
608 
609 		return true;
610 	}
611 
612 	if (warn)
613 		pci_warn(root, "Host bridge not in P2PDMA whitelist: %04x:%04x\n",
614 			 vendor, device);
615 
616 	return false;
617 }
618 
619 /*
620  * If we can't find a common upstream bridge take a look at the root
621  * complex and compare it to a whitelist of known good hardware.
622  */
host_bridge_whitelist(struct pci_dev * a,struct pci_dev * b,bool warn)623 static bool host_bridge_whitelist(struct pci_dev *a, struct pci_dev *b,
624 				  bool warn)
625 {
626 	struct pci_host_bridge *host_a = pci_find_host_bridge(a->bus);
627 	struct pci_host_bridge *host_b = pci_find_host_bridge(b->bus);
628 
629 	if (host_a == host_b)
630 		return __host_bridge_whitelist(host_a, true, warn);
631 
632 	if (__host_bridge_whitelist(host_a, false, warn) &&
633 	    __host_bridge_whitelist(host_b, false, warn))
634 		return true;
635 
636 	return false;
637 }
638 
map_types_idx(struct pci_dev * client)639 static unsigned long map_types_idx(struct pci_dev *client)
640 {
641 	return (pci_domain_nr(client->bus) << 16) | pci_dev_id(client);
642 }
643 
644 /*
645  * Calculate the P2PDMA mapping type and distance between two PCI devices.
646  *
647  * If the two devices are the same PCI function, return
648  * PCI_P2PDMA_MAP_BUS_ADDR and a distance of 0.
649  *
650  * If they are two functions of the same device, return
651  * PCI_P2PDMA_MAP_BUS_ADDR and a distance of 2 (one hop up to the bridge,
652  * then one hop back down to another function of the same device).
653  *
654  * In the case where two devices are connected to the same PCIe switch,
655  * return a distance of 4. This corresponds to the following PCI tree:
656  *
657  *     -+  Root Port
658  *      \+ Switch Upstream Port
659  *       +-+ Switch Downstream Port 0
660  *       + \- Device A
661  *       \-+ Switch Downstream Port 1
662  *         \- Device B
663  *
664  * The distance is 4 because we traverse from Device A to Downstream Port 0
665  * to the common Switch Upstream Port, back down to Downstream Port 1 and
666  * then to Device B. The mapping type returned depends on the ACS
667  * redirection setting of the ports along the path.
668  *
669  * If ACS redirect is set on any port in the path, traffic between the
670  * devices will go through the host bridge, so return
671  * PCI_P2PDMA_MAP_THRU_HOST_BRIDGE; otherwise return
672  * PCI_P2PDMA_MAP_BUS_ADDR.
673  *
674  * Any two devices that have a data path that goes through the host bridge
675  * will consult a whitelist. If the host bridge is in the whitelist, return
676  * PCI_P2PDMA_MAP_THRU_HOST_BRIDGE with the distance set to the number of
677  * ports per above. If the device is not in the whitelist, return
678  * PCI_P2PDMA_MAP_NOT_SUPPORTED.
679  */
680 static enum pci_p2pdma_map_type
calc_map_type_and_dist(struct pci_dev * provider,struct pci_dev * client,int * dist,bool verbose)681 calc_map_type_and_dist(struct pci_dev *provider, struct pci_dev *client,
682 		int *dist, bool verbose)
683 {
684 	enum pci_p2pdma_map_type map_type = PCI_P2PDMA_MAP_THRU_HOST_BRIDGE;
685 	struct pci_dev *a = provider, *b = client, *bb;
686 	bool acs_redirects = false;
687 	struct pci_p2pdma *p2pdma;
688 	struct seq_buf acs_list;
689 	int acs_cnt = 0;
690 	int dist_a = 0;
691 	int dist_b = 0;
692 	char buf[128];
693 
694 	seq_buf_init(&acs_list, buf, sizeof(buf));
695 
696 	/*
697 	 * Note, we don't need to take references to devices returned by
698 	 * pci_upstream_bridge() seeing we hold a reference to a child
699 	 * device which will already hold a reference to the upstream bridge.
700 	 */
701 	while (a) {
702 		dist_b = 0;
703 
704 		if (pci_bridge_has_acs_redir(a)) {
705 			seq_buf_print_bus_devfn(&acs_list, a);
706 			acs_cnt++;
707 		}
708 
709 		bb = b;
710 
711 		while (bb) {
712 			if (a == bb)
713 				goto check_b_path_acs;
714 
715 			bb = pci_upstream_bridge(bb);
716 			dist_b++;
717 		}
718 
719 		a = pci_upstream_bridge(a);
720 		dist_a++;
721 	}
722 
723 	*dist = dist_a + dist_b;
724 	goto map_through_host_bridge;
725 
726 check_b_path_acs:
727 	bb = b;
728 
729 	while (bb) {
730 		if (a == bb)
731 			break;
732 
733 		if (pci_bridge_has_acs_redir(bb)) {
734 			seq_buf_print_bus_devfn(&acs_list, bb);
735 			acs_cnt++;
736 		}
737 
738 		bb = pci_upstream_bridge(bb);
739 	}
740 
741 	*dist = dist_a + dist_b;
742 
743 	if (!acs_cnt) {
744 		map_type = PCI_P2PDMA_MAP_BUS_ADDR;
745 		goto done;
746 	}
747 
748 	if (verbose) {
749 		acs_list.buffer[acs_list.len-1] = 0; /* drop final semicolon */
750 		pci_warn(client, "ACS redirect is set between the client and provider (%s)\n",
751 			 pci_name(provider));
752 		pci_warn(client, "to disable ACS redirect for this path, add the kernel parameter: pci=disable_acs_redir=%s\n",
753 			 acs_list.buffer);
754 	}
755 	acs_redirects = true;
756 
757 map_through_host_bridge:
758 	if (!cpu_supports_p2pdma() &&
759 	    !host_bridge_whitelist(provider, client, acs_redirects)) {
760 		if (verbose)
761 			pci_warn(client, "cannot be used for peer-to-peer DMA as the client and provider (%s) do not share an upstream bridge or whitelisted host bridge\n",
762 				 pci_name(provider));
763 		map_type = PCI_P2PDMA_MAP_NOT_SUPPORTED;
764 	}
765 done:
766 	rcu_read_lock();
767 	p2pdma = rcu_dereference(provider->p2pdma);
768 	if (p2pdma)
769 		xa_store(&p2pdma->map_types, map_types_idx(client),
770 			 xa_mk_value(map_type), GFP_ATOMIC);
771 	rcu_read_unlock();
772 	return map_type;
773 }
774 
775 /**
776  * pci_p2pdma_distance_many - Determine the cumulative distance between
777  *	a p2pdma provider and the clients in use.
778  * @provider: p2pdma provider to check against the client list
779  * @clients: array of devices to check (NULL-terminated)
780  * @num_clients: number of clients in the array
781  * @verbose: if true, print warnings for devices when we return -1
782  *
783  * Returns -1 if any of the clients are not compatible, otherwise returns a
784  * positive number where a lower number is the preferable choice. (If there's
785  * one client that's the same as the provider it will return 0, which is best
786  * choice).
787  *
788  * "compatible" means the provider and the clients are either all behind
789  * the same PCI root port or the host bridges connected to each of the devices
790  * are listed in the 'pci_p2pdma_whitelist'.
791  */
pci_p2pdma_distance_many(struct pci_dev * provider,struct device ** clients,int num_clients,bool verbose)792 int pci_p2pdma_distance_many(struct pci_dev *provider, struct device **clients,
793 			     int num_clients, bool verbose)
794 {
795 	enum pci_p2pdma_map_type map;
796 	bool not_supported = false;
797 	struct pci_dev *pci_client;
798 	int total_dist = 0;
799 	int i, distance;
800 
801 	if (num_clients == 0)
802 		return -1;
803 
804 	for (i = 0; i < num_clients; i++) {
805 		pci_client = find_parent_pci_dev(clients[i]);
806 		if (!pci_client) {
807 			if (verbose)
808 				dev_warn(clients[i],
809 					 "cannot be used for peer-to-peer DMA as it is not a PCI device\n");
810 			return -1;
811 		}
812 
813 		map = calc_map_type_and_dist(provider, pci_client, &distance,
814 					     verbose);
815 
816 		pci_dev_put(pci_client);
817 
818 		if (map == PCI_P2PDMA_MAP_NOT_SUPPORTED)
819 			not_supported = true;
820 
821 		if (not_supported && !verbose)
822 			break;
823 
824 		total_dist += distance;
825 	}
826 
827 	if (not_supported)
828 		return -1;
829 
830 	return total_dist;
831 }
832 EXPORT_SYMBOL_GPL(pci_p2pdma_distance_many);
833 
834 /**
835  * pci_has_p2pmem - check if a given PCI device has published any p2pmem
836  * @pdev: PCI device to check
837  */
pci_has_p2pmem(struct pci_dev * pdev)838 static bool pci_has_p2pmem(struct pci_dev *pdev)
839 {
840 	struct pci_p2pdma *p2pdma;
841 	bool res;
842 
843 	rcu_read_lock();
844 	p2pdma = rcu_dereference(pdev->p2pdma);
845 	res = p2pdma && p2pdma->p2pmem_published;
846 	rcu_read_unlock();
847 
848 	return res;
849 }
850 
851 /**
852  * pci_p2pmem_find_many - find a peer-to-peer DMA memory device compatible with
853  *	the specified list of clients and shortest distance
854  * @clients: array of devices to check (NULL-terminated)
855  * @num_clients: number of client devices in the list
856  *
857  * If multiple devices are behind the same switch, the one "closest" to the
858  * client devices in use will be chosen first. (So if one of the providers is
859  * the same as one of the clients, that provider will be used ahead of any
860  * other providers that are unrelated). If multiple providers are an equal
861  * distance away, one will be chosen at random.
862  *
863  * Returns a pointer to the PCI device with a reference taken (use pci_dev_put
864  * to return the reference) or NULL if no compatible device is found. The
865  * found provider will also be assigned to the client list.
866  */
pci_p2pmem_find_many(struct device ** clients,int num_clients)867 struct pci_dev *pci_p2pmem_find_many(struct device **clients, int num_clients)
868 {
869 	struct pci_dev *pdev = NULL;
870 	int distance;
871 	int closest_distance = INT_MAX;
872 	struct pci_dev **closest_pdevs;
873 	int dev_cnt = 0;
874 	const int max_devs = PAGE_SIZE / sizeof(*closest_pdevs);
875 	int i;
876 
877 	closest_pdevs = kmalloc(PAGE_SIZE, GFP_KERNEL);
878 	if (!closest_pdevs)
879 		return NULL;
880 
881 	for_each_pci_dev(pdev) {
882 		if (!pci_has_p2pmem(pdev))
883 			continue;
884 
885 		distance = pci_p2pdma_distance_many(pdev, clients,
886 						    num_clients, false);
887 		if (distance < 0 || distance > closest_distance)
888 			continue;
889 
890 		if (distance == closest_distance && dev_cnt >= max_devs)
891 			continue;
892 
893 		if (distance < closest_distance) {
894 			for (i = 0; i < dev_cnt; i++)
895 				pci_dev_put(closest_pdevs[i]);
896 
897 			dev_cnt = 0;
898 			closest_distance = distance;
899 		}
900 
901 		closest_pdevs[dev_cnt++] = pci_dev_get(pdev);
902 	}
903 
904 	if (dev_cnt)
905 		pdev = pci_dev_get(closest_pdevs[get_random_u32_below(dev_cnt)]);
906 
907 	for (i = 0; i < dev_cnt; i++)
908 		pci_dev_put(closest_pdevs[i]);
909 
910 	kfree(closest_pdevs);
911 	return pdev;
912 }
913 EXPORT_SYMBOL_GPL(pci_p2pmem_find_many);
914 
915 /**
916  * pci_alloc_p2pmem - allocate peer-to-peer DMA memory
917  * @pdev: the device to allocate memory from
918  * @size: number of bytes to allocate
919  *
920  * Returns the allocated memory or NULL on error.
921  */
pci_alloc_p2pmem(struct pci_dev * pdev,size_t size)922 void *pci_alloc_p2pmem(struct pci_dev *pdev, size_t size)
923 {
924 	void *ret = NULL;
925 	struct percpu_ref *ref;
926 	struct pci_p2pdma *p2pdma;
927 
928 	/*
929 	 * Pairs with synchronize_rcu() in pci_p2pdma_release() to
930 	 * ensure pdev->p2pdma is non-NULL for the duration of the
931 	 * read-lock.
932 	 */
933 	rcu_read_lock();
934 	p2pdma = rcu_dereference(pdev->p2pdma);
935 	if (unlikely(!p2pdma))
936 		goto out;
937 
938 	ret = (void *)gen_pool_alloc_owner(p2pdma->pool, size, (void **) &ref);
939 	if (!ret)
940 		goto out;
941 
942 	if (unlikely(!percpu_ref_tryget_live_rcu(ref))) {
943 		gen_pool_free(p2pdma->pool, (unsigned long) ret, size);
944 		ret = NULL;
945 	}
946 out:
947 	rcu_read_unlock();
948 	return ret;
949 }
950 EXPORT_SYMBOL_GPL(pci_alloc_p2pmem);
951 
952 /**
953  * pci_free_p2pmem - free peer-to-peer DMA memory
954  * @pdev: the device the memory was allocated from
955  * @addr: address of the memory that was allocated
956  * @size: number of bytes that were allocated
957  */
pci_free_p2pmem(struct pci_dev * pdev,void * addr,size_t size)958 void pci_free_p2pmem(struct pci_dev *pdev, void *addr, size_t size)
959 {
960 	struct percpu_ref *ref;
961 	struct pci_p2pdma *p2pdma = rcu_dereference_protected(pdev->p2pdma, 1);
962 
963 	gen_pool_free_owner(p2pdma->pool, (uintptr_t)addr, size,
964 			(void **) &ref);
965 	percpu_ref_put(ref);
966 }
967 EXPORT_SYMBOL_GPL(pci_free_p2pmem);
968 
969 /**
970  * pci_p2pmem_virt_to_bus - return the PCI bus address for a given virtual
971  *	address obtained with pci_alloc_p2pmem()
972  * @pdev: the device the memory was allocated from
973  * @addr: address of the memory that was allocated
974  */
pci_p2pmem_virt_to_bus(struct pci_dev * pdev,void * addr)975 pci_bus_addr_t pci_p2pmem_virt_to_bus(struct pci_dev *pdev, void *addr)
976 {
977 	struct pci_p2pdma *p2pdma;
978 
979 	if (!addr)
980 		return 0;
981 
982 	p2pdma = rcu_dereference_protected(pdev->p2pdma, 1);
983 	if (!p2pdma)
984 		return 0;
985 
986 	/*
987 	 * Note: when we added the memory to the pool we used the PCI
988 	 * bus address as the physical address. So gen_pool_virt_to_phys()
989 	 * actually returns the bus address despite the misleading name.
990 	 */
991 	return gen_pool_virt_to_phys(p2pdma->pool, (unsigned long)addr);
992 }
993 EXPORT_SYMBOL_GPL(pci_p2pmem_virt_to_bus);
994 
995 /**
996  * pci_p2pmem_alloc_sgl - allocate peer-to-peer DMA memory in a scatterlist
997  * @pdev: the device to allocate memory from
998  * @nents: the number of SG entries in the list
999  * @length: number of bytes to allocate
1000  *
1001  * Return: %NULL on error or &struct scatterlist pointer and @nents on success
1002  */
pci_p2pmem_alloc_sgl(struct pci_dev * pdev,unsigned int * nents,u32 length)1003 struct scatterlist *pci_p2pmem_alloc_sgl(struct pci_dev *pdev,
1004 					 unsigned int *nents, u32 length)
1005 {
1006 	struct scatterlist *sg;
1007 	void *addr;
1008 
1009 	sg = kmalloc_obj(*sg);
1010 	if (!sg)
1011 		return NULL;
1012 
1013 	sg_init_table(sg, 1);
1014 
1015 	addr = pci_alloc_p2pmem(pdev, length);
1016 	if (!addr)
1017 		goto out_free_sg;
1018 
1019 	sg_set_buf(sg, addr, length);
1020 	*nents = 1;
1021 	return sg;
1022 
1023 out_free_sg:
1024 	kfree(sg);
1025 	return NULL;
1026 }
1027 EXPORT_SYMBOL_GPL(pci_p2pmem_alloc_sgl);
1028 
1029 /**
1030  * pci_p2pmem_free_sgl - free a scatterlist allocated by pci_p2pmem_alloc_sgl()
1031  * @pdev: the device to allocate memory from
1032  * @sgl: the allocated scatterlist
1033  */
pci_p2pmem_free_sgl(struct pci_dev * pdev,struct scatterlist * sgl)1034 void pci_p2pmem_free_sgl(struct pci_dev *pdev, struct scatterlist *sgl)
1035 {
1036 	struct scatterlist *sg;
1037 	int count;
1038 
1039 	for_each_sg(sgl, sg, INT_MAX, count) {
1040 		if (!sg)
1041 			break;
1042 
1043 		pci_free_p2pmem(pdev, sg_virt(sg), sg->length);
1044 	}
1045 	kfree(sgl);
1046 }
1047 EXPORT_SYMBOL_GPL(pci_p2pmem_free_sgl);
1048 
1049 /**
1050  * pci_p2pmem_publish - publish the peer-to-peer DMA memory for use by
1051  *	other devices with pci_p2pmem_find()
1052  * @pdev: the device with peer-to-peer DMA memory to publish
1053  * @publish: set to true to publish the memory, false to unpublish it
1054  *
1055  * Published memory can be used by other PCI device drivers for
1056  * peer-2-peer DMA operations. Non-published memory is reserved for
1057  * exclusive use of the device driver that registers the peer-to-peer
1058  * memory.
1059  */
pci_p2pmem_publish(struct pci_dev * pdev,bool publish)1060 void pci_p2pmem_publish(struct pci_dev *pdev, bool publish)
1061 {
1062 	struct pci_p2pdma *p2pdma;
1063 
1064 	rcu_read_lock();
1065 	p2pdma = rcu_dereference(pdev->p2pdma);
1066 	if (p2pdma)
1067 		p2pdma->p2pmem_published = publish;
1068 	rcu_read_unlock();
1069 }
1070 EXPORT_SYMBOL_GPL(pci_p2pmem_publish);
1071 
1072 /**
1073  * pci_p2pdma_map_type - Determine the mapping type for P2PDMA transfers
1074  * @provider: P2PDMA provider structure
1075  * @dev: Target device for the transfer
1076  *
1077  * Determines how peer-to-peer DMA transfers should be mapped between
1078  * the provider and the target device. The mapping type indicates whether
1079  * the transfer can be done directly through PCI switches or must go
1080  * through the host bridge.
1081  */
pci_p2pdma_map_type(struct p2pdma_provider * provider,struct device * dev)1082 enum pci_p2pdma_map_type pci_p2pdma_map_type(struct p2pdma_provider *provider,
1083 					     struct device *dev)
1084 {
1085 	enum pci_p2pdma_map_type type = PCI_P2PDMA_MAP_NOT_SUPPORTED;
1086 	struct pci_dev *pdev = to_pci_dev(provider->owner);
1087 	struct pci_dev *client;
1088 	struct pci_p2pdma *p2pdma;
1089 	int dist;
1090 
1091 	if (!pdev->p2pdma)
1092 		return PCI_P2PDMA_MAP_NOT_SUPPORTED;
1093 
1094 	if (!dev_is_pci(dev))
1095 		return PCI_P2PDMA_MAP_NOT_SUPPORTED;
1096 
1097 	client = to_pci_dev(dev);
1098 
1099 	rcu_read_lock();
1100 	p2pdma = rcu_dereference(pdev->p2pdma);
1101 
1102 	if (p2pdma)
1103 		type = xa_to_value(xa_load(&p2pdma->map_types,
1104 					   map_types_idx(client)));
1105 	rcu_read_unlock();
1106 
1107 	if (type == PCI_P2PDMA_MAP_UNKNOWN)
1108 		return calc_map_type_and_dist(pdev, client, &dist, true);
1109 
1110 	return type;
1111 }
1112 
__pci_p2pdma_update_state(struct pci_p2pdma_map_state * state,struct device * dev,struct page * page)1113 void __pci_p2pdma_update_state(struct pci_p2pdma_map_state *state,
1114 		struct device *dev, struct page *page)
1115 {
1116 	struct pci_p2pdma_pagemap *p2p_pgmap = to_p2p_pgmap(page_pgmap(page));
1117 
1118 	if (state->mem == p2p_pgmap->mem)
1119 		return;
1120 
1121 	state->mem = p2p_pgmap->mem;
1122 	state->map = pci_p2pdma_map_type(p2p_pgmap->mem, dev);
1123 }
1124 
1125 /**
1126  * pci_p2pdma_enable_store - parse a configfs/sysfs attribute store
1127  *		to enable p2pdma
1128  * @page: contents of the value to be stored
1129  * @p2p_dev: returns the PCI device that was selected to be used
1130  *		(if one was specified in the stored value)
1131  * @use_p2pdma: returns whether to enable p2pdma or not
1132  *
1133  * Parses an attribute value to decide whether to enable p2pdma.
1134  * The value can select a PCI device (using its full BDF device
1135  * name) or a boolean (in any format kstrtobool() accepts). A false
1136  * value disables p2pdma, a true value expects the caller
1137  * to automatically find a compatible device and specifying a PCI device
1138  * expects the caller to use the specific provider.
1139  *
1140  * pci_p2pdma_enable_show() should be used as the show operation for
1141  * the attribute.
1142  *
1143  * Returns 0 on success
1144  */
pci_p2pdma_enable_store(const char * page,struct pci_dev ** p2p_dev,bool * use_p2pdma)1145 int pci_p2pdma_enable_store(const char *page, struct pci_dev **p2p_dev,
1146 			    bool *use_p2pdma)
1147 {
1148 	struct device *dev;
1149 
1150 	dev = bus_find_device_by_name(&pci_bus_type, NULL, page);
1151 	if (dev) {
1152 		*use_p2pdma = true;
1153 		*p2p_dev = to_pci_dev(dev);
1154 
1155 		if (!pci_has_p2pmem(*p2p_dev)) {
1156 			pci_err(*p2p_dev,
1157 				"PCI device has no peer-to-peer memory: %s\n",
1158 				page);
1159 			pci_dev_put(*p2p_dev);
1160 			return -ENODEV;
1161 		}
1162 
1163 		return 0;
1164 	} else if ((page[0] == '0' || page[0] == '1') && !iscntrl(page[1])) {
1165 		/*
1166 		 * If the user enters a PCI device that  doesn't exist
1167 		 * like "0000:01:00.1", we don't want kstrtobool to think
1168 		 * it's a '0' when it's clearly not what the user wanted.
1169 		 * So we require 0's and 1's to be exactly one character.
1170 		 */
1171 	} else if (!kstrtobool(page, use_p2pdma)) {
1172 		return 0;
1173 	}
1174 
1175 	pr_err("No such PCI device: %.*s\n", (int)strcspn(page, "\n"), page);
1176 	return -ENODEV;
1177 }
1178 EXPORT_SYMBOL_GPL(pci_p2pdma_enable_store);
1179 
1180 /**
1181  * pci_p2pdma_enable_show - show a configfs/sysfs attribute indicating
1182  *		whether p2pdma is enabled
1183  * @page: contents of the stored value
1184  * @p2p_dev: the selected p2p device (NULL if no device is selected)
1185  * @use_p2pdma: whether p2pdma has been enabled
1186  *
1187  * Attributes that use pci_p2pdma_enable_store() should use this function
1188  * to show the value of the attribute.
1189  *
1190  * Returns 0 on success
1191  */
pci_p2pdma_enable_show(char * page,struct pci_dev * p2p_dev,bool use_p2pdma)1192 ssize_t pci_p2pdma_enable_show(char *page, struct pci_dev *p2p_dev,
1193 			       bool use_p2pdma)
1194 {
1195 	if (!use_p2pdma)
1196 		return sprintf(page, "0\n");
1197 
1198 	if (!p2p_dev)
1199 		return sprintf(page, "1\n");
1200 
1201 	return sprintf(page, "%s\n", pci_name(p2p_dev));
1202 }
1203 EXPORT_SYMBOL_GPL(pci_p2pdma_enable_show);
1204