1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3 * Copyright (C) 2007-2010 Advanced Micro Devices, Inc.
4 * Author: Joerg Roedel <jroedel@suse.de>
5 * Leo Duran <leo.duran@amd.com>
6 */
7
8 #define pr_fmt(fmt) "AMD-Vi: " fmt
9 #define dev_fmt(fmt) pr_fmt(fmt)
10
11 #include <linux/ratelimit.h>
12 #include <linux/pci.h>
13 #include <linux/acpi.h>
14 #include <linux/pci-ats.h>
15 #include <linux/bitmap.h>
16 #include <linux/slab.h>
17 #include <linux/string_choices.h>
18 #include <linux/debugfs.h>
19 #include <linux/scatterlist.h>
20 #include <linux/dma-map-ops.h>
21 #include <linux/dma-direct.h>
22 #include <linux/idr.h>
23 #include <linux/iommu-helper.h>
24 #include <linux/delay.h>
25 #include <linux/amd-iommu.h>
26 #include <linux/notifier.h>
27 #include <linux/export.h>
28 #include <linux/irq.h>
29 #include <linux/irqchip/irq-msi-lib.h>
30 #include <linux/msi.h>
31 #include <linux/irqdomain.h>
32 #include <linux/percpu.h>
33 #include <linux/cc_platform.h>
34 #include <asm/irq_remapping.h>
35 #include <asm/io_apic.h>
36 #include <asm/apic.h>
37 #include <asm/hw_irq.h>
38 #include <asm/proto.h>
39 #include <asm/iommu.h>
40 #include <asm/gart.h>
41 #include <asm/dma.h>
42 #include <uapi/linux/iommufd.h>
43 #include <linux/generic_pt/iommu.h>
44
45 #include "amd_iommu.h"
46 #include "iommufd.h"
47 #include "../irq_remapping.h"
48 #include "../iommu-pages.h"
49
50 #define CMD_SET_TYPE(cmd, t) ((cmd)->data[1] |= ((t) << 28))
51
52 /* Reserved IOVA ranges */
53 #define MSI_RANGE_START (0xfee00000)
54 #define MSI_RANGE_END (0xfeefffff)
55 #define HT_RANGE_START (0xfd00000000ULL)
56 #define HT_RANGE_END (0xffffffffffULL)
57
58 LIST_HEAD(ioapic_map);
59 LIST_HEAD(hpet_map);
60 LIST_HEAD(acpihid_map);
61
62 const struct iommu_ops amd_iommu_ops;
63
64 int amd_iommu_max_glx_val = -1;
65
66 /*
67 * AMD IOMMU allows up to 2^16 different protection domains. This is a bitmap
68 * to know which ones are already in use.
69 */
70 DEFINE_IDA(pdom_ids);
71
72 static int amd_iommu_attach_device(struct iommu_domain *dom, struct device *dev,
73 struct iommu_domain *old);
74
75 static void set_dte_entry(struct amd_iommu *iommu,
76 struct iommu_dev_data *dev_data,
77 phys_addr_t top_paddr, unsigned int top_level);
78
79 static int device_flush_dte(struct iommu_dev_data *dev_data);
80
81 static void amd_iommu_change_top(struct pt_iommu *iommu_table,
82 phys_addr_t top_paddr, unsigned int top_level);
83
84 static void iommu_flush_dte_sync(struct amd_iommu *iommu, u16 devid);
85
86 static struct iommu_dev_data *find_dev_data(struct amd_iommu *iommu, u16 devid);
87 static bool amd_iommu_enforce_cache_coherency(struct iommu_domain *domain);
88 static int amd_iommu_set_dirty_tracking(struct iommu_domain *domain,
89 bool enable);
90
91 static void clone_aliases(struct amd_iommu *iommu, struct device *dev);
92
93 static int iommu_completion_wait(struct amd_iommu *iommu);
94
95 static int __amd_iommu_complete_ppr(struct device *dev, u32 pasid,
96 int status, int tag, bool gn);
97
98 /****************************************************************************
99 *
100 * Helper functions
101 *
102 ****************************************************************************/
103
amd_iommu_atomic128_set(__int128 * ptr,__int128 val)104 static __always_inline void amd_iommu_atomic128_set(__int128 *ptr, __int128 val)
105 {
106 /*
107 * Note:
108 * We use arch_cmpxchg128_local() because:
109 * - Need cmpxchg16b instruction mainly for 128-bit store to DTE
110 * (not necessary for cmpxchg since this function is already
111 * protected by a spin_lock for this DTE).
112 * - Neither need LOCK_PREFIX nor try loop because of the spin_lock.
113 */
114 arch_cmpxchg128_local(ptr, *ptr, val);
115 }
116
write_dte_upper128(struct dev_table_entry * ptr,struct dev_table_entry * new)117 static void write_dte_upper128(struct dev_table_entry *ptr, struct dev_table_entry *new)
118 {
119 struct dev_table_entry old;
120
121 old.data128[1] = ptr->data128[1];
122 /*
123 * Preserve DTE_DATA2_INTR_MASK. This needs to be
124 * done here since it requires to be inside
125 * spin_lock(&dev_data->dte_lock) context.
126 */
127 new->data[2] &= ~DTE_DATA2_INTR_MASK;
128 new->data[2] |= old.data[2] & DTE_DATA2_INTR_MASK;
129
130 amd_iommu_atomic128_set(&ptr->data128[1], new->data128[1]);
131 }
132
write_dte_lower128(struct dev_table_entry * ptr,struct dev_table_entry * new)133 static void write_dte_lower128(struct dev_table_entry *ptr, struct dev_table_entry *new)
134 {
135 amd_iommu_atomic128_set(&ptr->data128[0], new->data128[0]);
136 }
137
138 /*
139 * Note:
140 * IOMMU reads the entire Device Table entry in a single 256-bit transaction
141 * but the driver is programming DTE using 2 128-bit cmpxchg. So, the driver
142 * need to ensure the following:
143 * - DTE[V|GV] bit is being written last when setting.
144 * - DTE[V|GV] bit is being written first when clearing.
145 *
146 * This function is used only by code, which updates DMA translation part of the DTE.
147 * So, only consider control bits related to DMA when updating the entry.
148 */
update_dte256(struct amd_iommu * iommu,struct iommu_dev_data * dev_data,struct dev_table_entry * new)149 static void update_dte256(struct amd_iommu *iommu, struct iommu_dev_data *dev_data,
150 struct dev_table_entry *new)
151 {
152 unsigned long flags;
153 struct dev_table_entry *dev_table = get_dev_table(iommu);
154 struct dev_table_entry *ptr = &dev_table[dev_data->devid];
155
156 spin_lock_irqsave(&dev_data->dte_lock, flags);
157
158 if (!(ptr->data[0] & DTE_FLAG_V)) {
159 /* Existing DTE is not valid. */
160 write_dte_upper128(ptr, new);
161 write_dte_lower128(ptr, new);
162 iommu_flush_dte_sync(iommu, dev_data->devid);
163 } else if (!(new->data[0] & DTE_FLAG_V)) {
164 /* Existing DTE is valid. New DTE is not valid. */
165 write_dte_lower128(ptr, new);
166 write_dte_upper128(ptr, new);
167 iommu_flush_dte_sync(iommu, dev_data->devid);
168 } else if (!FIELD_GET(DTE_FLAG_GV, ptr->data[0])) {
169 /*
170 * Both DTEs are valid.
171 * Existing DTE has no guest page table.
172 */
173 write_dte_upper128(ptr, new);
174 write_dte_lower128(ptr, new);
175 iommu_flush_dte_sync(iommu, dev_data->devid);
176 } else if (!FIELD_GET(DTE_FLAG_GV, new->data[0])) {
177 /*
178 * Both DTEs are valid.
179 * Existing DTE has guest page table,
180 * new DTE has no guest page table,
181 */
182 write_dte_lower128(ptr, new);
183 write_dte_upper128(ptr, new);
184 iommu_flush_dte_sync(iommu, dev_data->devid);
185 } else if (FIELD_GET(DTE_GPT_LEVEL_MASK, ptr->data[2]) !=
186 FIELD_GET(DTE_GPT_LEVEL_MASK, new->data[2])) {
187 /*
188 * Both DTEs are valid and have guest page table,
189 * but have different number of levels. So, we need
190 * to upadte both upper and lower 128-bit value, which
191 * require disabling and flushing.
192 */
193 struct dev_table_entry clear = {};
194
195 /* First disable DTE */
196 write_dte_lower128(ptr, &clear);
197 iommu_flush_dte_sync(iommu, dev_data->devid);
198
199 /* Then update DTE */
200 write_dte_upper128(ptr, new);
201 write_dte_lower128(ptr, new);
202 iommu_flush_dte_sync(iommu, dev_data->devid);
203 } else {
204 /*
205 * Both DTEs are valid and have guest page table,
206 * and same number of levels. We just need to only
207 * update the lower 128-bit. So no need to disable DTE.
208 */
209 write_dte_lower128(ptr, new);
210 }
211
212 spin_unlock_irqrestore(&dev_data->dte_lock, flags);
213 }
214
amd_iommu_update_dte(struct amd_iommu * iommu,struct iommu_dev_data * dev_data,struct dev_table_entry * new)215 void amd_iommu_update_dte(struct amd_iommu *iommu,
216 struct iommu_dev_data *dev_data,
217 struct dev_table_entry *new)
218 {
219 update_dte256(iommu, dev_data, new);
220 clone_aliases(iommu, dev_data->dev);
221 device_flush_dte(dev_data);
222 iommu_completion_wait(iommu);
223 }
224
get_dte256(struct amd_iommu * iommu,struct iommu_dev_data * dev_data,struct dev_table_entry * dte)225 static void get_dte256(struct amd_iommu *iommu, struct iommu_dev_data *dev_data,
226 struct dev_table_entry *dte)
227 {
228 unsigned long flags;
229 struct dev_table_entry *ptr;
230 struct dev_table_entry *dev_table = get_dev_table(iommu);
231
232 ptr = &dev_table[dev_data->devid];
233
234 spin_lock_irqsave(&dev_data->dte_lock, flags);
235 dte->data128[0] = ptr->data128[0];
236 dte->data128[1] = ptr->data128[1];
237 spin_unlock_irqrestore(&dev_data->dte_lock, flags);
238 }
239
pdom_is_v2_pgtbl_mode(struct protection_domain * pdom)240 static inline bool pdom_is_v2_pgtbl_mode(struct protection_domain *pdom)
241 {
242 return (pdom && (pdom->pd_mode == PD_MODE_V2));
243 }
244
pdom_is_in_pt_mode(struct protection_domain * pdom)245 static inline bool pdom_is_in_pt_mode(struct protection_domain *pdom)
246 {
247 return (pdom->domain.type == IOMMU_DOMAIN_IDENTITY);
248 }
249
250 /*
251 * We cannot support PASID w/ existing v1 page table in the same domain
252 * since it will be nested. However, existing domain w/ v2 page table
253 * or passthrough mode can be used for PASID.
254 */
pdom_is_sva_capable(struct protection_domain * pdom)255 static inline bool pdom_is_sva_capable(struct protection_domain *pdom)
256 {
257 return pdom_is_v2_pgtbl_mode(pdom) || pdom_is_in_pt_mode(pdom);
258 }
259
get_acpihid_device_id(struct device * dev,struct acpihid_map_entry ** entry)260 static inline int get_acpihid_device_id(struct device *dev,
261 struct acpihid_map_entry **entry)
262 {
263 struct acpi_device *adev = ACPI_COMPANION(dev);
264 struct acpihid_map_entry *p, *p1 = NULL;
265 int hid_count = 0;
266 bool fw_bug;
267
268 if (!adev)
269 return -ENODEV;
270
271 list_for_each_entry(p, &acpihid_map, list) {
272 if (acpi_dev_hid_uid_match(adev, p->hid,
273 p->uid[0] ? p->uid : NULL)) {
274 p1 = p;
275 fw_bug = false;
276 hid_count = 1;
277 break;
278 }
279
280 /*
281 * Count HID matches w/o UID, raise FW_BUG but allow exactly one match
282 */
283 if (acpi_dev_hid_match(adev, p->hid)) {
284 p1 = p;
285 hid_count++;
286 fw_bug = true;
287 }
288 }
289
290 if (!p1)
291 return -EINVAL;
292 if (fw_bug)
293 dev_err_once(dev, FW_BUG "No ACPI device matched UID, but %d device%s matched HID.\n",
294 hid_count, str_plural(hid_count));
295 if (hid_count > 1)
296 return -EINVAL;
297 if (entry)
298 *entry = p1;
299
300 return p1->devid;
301 }
302
get_device_sbdf_id(struct device * dev)303 static inline int get_device_sbdf_id(struct device *dev)
304 {
305 int sbdf;
306
307 if (dev_is_pci(dev))
308 sbdf = get_pci_sbdf_id(to_pci_dev(dev));
309 else
310 sbdf = get_acpihid_device_id(dev, NULL);
311
312 return sbdf;
313 }
314
get_dev_table(struct amd_iommu * iommu)315 struct dev_table_entry *get_dev_table(struct amd_iommu *iommu)
316 {
317 struct dev_table_entry *dev_table;
318 struct amd_iommu_pci_seg *pci_seg = iommu->pci_seg;
319
320 BUG_ON(pci_seg == NULL);
321 dev_table = pci_seg->dev_table;
322 BUG_ON(dev_table == NULL);
323
324 return dev_table;
325 }
326
get_device_segment(struct device * dev)327 static inline u16 get_device_segment(struct device *dev)
328 {
329 u16 seg;
330
331 if (dev_is_pci(dev)) {
332 struct pci_dev *pdev = to_pci_dev(dev);
333
334 seg = pci_domain_nr(pdev->bus);
335 } else {
336 u32 devid = get_acpihid_device_id(dev, NULL);
337
338 seg = PCI_SBDF_TO_SEGID(devid);
339 }
340
341 return seg;
342 }
343
344 /* Writes the specific IOMMU for a device into the PCI segment rlookup table */
amd_iommu_set_rlookup_table(struct amd_iommu * iommu,u16 devid)345 void amd_iommu_set_rlookup_table(struct amd_iommu *iommu, u16 devid)
346 {
347 struct amd_iommu_pci_seg *pci_seg = iommu->pci_seg;
348
349 pci_seg->rlookup_table[devid] = iommu;
350 }
351
__rlookup_amd_iommu(u16 seg,u16 devid)352 static struct amd_iommu *__rlookup_amd_iommu(u16 seg, u16 devid)
353 {
354 struct amd_iommu_pci_seg *pci_seg;
355
356 for_each_pci_segment(pci_seg) {
357 if (pci_seg->id != seg)
358 continue;
359 /* IVRS may not describe every device on the bus */
360 if (devid > pci_seg->last_bdf)
361 return NULL;
362 return pci_seg->rlookup_table[devid];
363 }
364 return NULL;
365 }
366
rlookup_amd_iommu(struct device * dev)367 static struct amd_iommu *rlookup_amd_iommu(struct device *dev)
368 {
369 u16 seg = get_device_segment(dev);
370 int devid = get_device_sbdf_id(dev);
371
372 if (devid < 0)
373 return NULL;
374 return __rlookup_amd_iommu(seg, PCI_SBDF_TO_DEVID(devid));
375 }
376
alloc_dev_data(struct amd_iommu * iommu,u16 devid)377 static struct iommu_dev_data *alloc_dev_data(struct amd_iommu *iommu, u16 devid)
378 {
379 struct iommu_dev_data *dev_data;
380 struct amd_iommu_pci_seg *pci_seg = iommu->pci_seg;
381
382 dev_data = kzalloc_obj(*dev_data);
383 if (!dev_data)
384 return NULL;
385
386 mutex_init(&dev_data->mutex);
387 spin_lock_init(&dev_data->dte_lock);
388 dev_data->devid = devid;
389 ratelimit_default_init(&dev_data->rs);
390
391 llist_add(&dev_data->dev_data_list, &pci_seg->dev_data_list);
392 return dev_data;
393 }
394
search_dev_data(struct amd_iommu * iommu,u16 devid)395 struct iommu_dev_data *search_dev_data(struct amd_iommu *iommu, u16 devid)
396 {
397 struct iommu_dev_data *dev_data;
398 struct llist_node *node;
399 struct amd_iommu_pci_seg *pci_seg = iommu->pci_seg;
400
401 if (llist_empty(&pci_seg->dev_data_list))
402 return NULL;
403
404 node = pci_seg->dev_data_list.first;
405 llist_for_each_entry(dev_data, node, dev_data_list) {
406 if (dev_data->devid == devid)
407 return dev_data;
408 }
409
410 return NULL;
411 }
412
clone_alias(struct pci_dev * pdev_origin,u16 alias,void * data)413 static int clone_alias(struct pci_dev *pdev_origin, u16 alias, void *data)
414 {
415 struct dev_table_entry new;
416 struct amd_iommu *iommu;
417 struct iommu_dev_data *dev_data, *alias_data;
418 struct pci_dev *pdev = data;
419 u16 devid = pci_dev_id(pdev);
420 int ret = 0;
421
422 if (devid == alias)
423 return 0;
424
425 iommu = rlookup_amd_iommu(&pdev->dev);
426 if (!iommu)
427 return 0;
428
429 /* Copy the data from pdev */
430 dev_data = dev_iommu_priv_get(&pdev->dev);
431 if (!dev_data) {
432 pr_err("%s : Failed to get dev_data for 0x%x\n", __func__, devid);
433 ret = -EINVAL;
434 goto out;
435 }
436 get_dte256(iommu, dev_data, &new);
437
438 /* Setup alias */
439 alias_data = find_dev_data(iommu, alias);
440 if (!alias_data) {
441 pr_err("%s : Failed to get alias dev_data for 0x%x\n", __func__, alias);
442 ret = -EINVAL;
443 goto out;
444 }
445 update_dte256(iommu, alias_data, &new);
446
447 amd_iommu_set_rlookup_table(iommu, alias);
448 out:
449 return ret;
450 }
451
clone_aliases(struct amd_iommu * iommu,struct device * dev)452 static void clone_aliases(struct amd_iommu *iommu, struct device *dev)
453 {
454 struct pci_dev *pdev;
455
456 if (!dev_is_pci(dev))
457 return;
458 pdev = to_pci_dev(dev);
459
460 /*
461 * The IVRS alias stored in the alias table may not be
462 * part of the PCI DMA aliases if its bus differs
463 * from the original device.
464 */
465 clone_alias(pdev, iommu->pci_seg->alias_table[pci_dev_id(pdev)], pdev);
466
467 pci_for_each_dma_alias(pdev, clone_alias, pdev);
468 }
469
setup_aliases(struct amd_iommu * iommu,struct device * dev)470 static void setup_aliases(struct amd_iommu *iommu, struct device *dev)
471 {
472 struct pci_dev *pdev = to_pci_dev(dev);
473 struct amd_iommu_pci_seg *pci_seg = iommu->pci_seg;
474 u16 ivrs_alias;
475
476 /* For ACPI HID devices, there are no aliases */
477 if (!dev_is_pci(dev))
478 return;
479
480 /*
481 * Add the IVRS alias to the pci aliases if it is on the same
482 * bus. The IVRS table may know about a quirk that we don't.
483 */
484 ivrs_alias = pci_seg->alias_table[pci_dev_id(pdev)];
485 if (ivrs_alias != pci_dev_id(pdev) &&
486 PCI_BUS_NUM(ivrs_alias) == pdev->bus->number)
487 pci_add_dma_alias(pdev, ivrs_alias & 0xff, 1);
488
489 clone_aliases(iommu, dev);
490 }
491
find_dev_data(struct amd_iommu * iommu,u16 devid)492 static struct iommu_dev_data *find_dev_data(struct amd_iommu *iommu, u16 devid)
493 {
494 struct iommu_dev_data *dev_data;
495
496 dev_data = search_dev_data(iommu, devid);
497
498 if (dev_data == NULL) {
499 dev_data = alloc_dev_data(iommu, devid);
500 if (!dev_data)
501 return NULL;
502
503 if (translation_pre_enabled(iommu))
504 dev_data->defer_attach = true;
505 }
506
507 return dev_data;
508 }
509
510 /*
511 * Find or create an IOMMU group for an acpihid device.
512 */
acpihid_device_group(struct device * dev)513 static struct iommu_group *acpihid_device_group(struct device *dev)
514 {
515 struct acpihid_map_entry *p, *entry = NULL;
516 int devid;
517
518 devid = get_acpihid_device_id(dev, &entry);
519 if (devid < 0)
520 return ERR_PTR(devid);
521
522 list_for_each_entry(p, &acpihid_map, list) {
523 if ((devid == p->devid) && p->group)
524 entry->group = p->group;
525 }
526
527 if (!entry->group)
528 entry->group = generic_device_group(dev);
529 else
530 iommu_group_ref_get(entry->group);
531
532 return entry->group;
533 }
534
pdev_pasid_supported(struct iommu_dev_data * dev_data)535 static inline bool pdev_pasid_supported(struct iommu_dev_data *dev_data)
536 {
537 return (dev_data->flags & AMD_IOMMU_DEVICE_FLAG_PASID_SUP);
538 }
539
pdev_get_caps(struct pci_dev * pdev)540 static u32 pdev_get_caps(struct pci_dev *pdev)
541 {
542 int features;
543 u32 flags = 0;
544
545 if (pci_ats_supported(pdev))
546 flags |= AMD_IOMMU_DEVICE_FLAG_ATS_SUP;
547
548 if (pci_pri_supported(pdev))
549 flags |= AMD_IOMMU_DEVICE_FLAG_PRI_SUP;
550
551 features = pci_pasid_features(pdev);
552 if (features >= 0) {
553 flags |= AMD_IOMMU_DEVICE_FLAG_PASID_SUP;
554
555 if (features & PCI_PASID_CAP_EXEC)
556 flags |= AMD_IOMMU_DEVICE_FLAG_EXEC_SUP;
557
558 if (features & PCI_PASID_CAP_PRIV)
559 flags |= AMD_IOMMU_DEVICE_FLAG_PRIV_SUP;
560 }
561
562 return flags;
563 }
564
pdev_enable_cap_ats(struct pci_dev * pdev)565 static inline int pdev_enable_cap_ats(struct pci_dev *pdev)
566 {
567 struct iommu_dev_data *dev_data = dev_iommu_priv_get(&pdev->dev);
568 int ret = -EINVAL;
569
570 if (dev_data->ats_enabled)
571 return 0;
572
573 if (amd_iommu_iotlb_sup &&
574 (dev_data->flags & AMD_IOMMU_DEVICE_FLAG_ATS_SUP)) {
575 ret = pci_enable_ats(pdev, PAGE_SHIFT);
576 if (!ret) {
577 dev_data->ats_enabled = 1;
578 dev_data->ats_qdep = pci_ats_queue_depth(pdev);
579 }
580 }
581
582 return ret;
583 }
584
pdev_disable_cap_ats(struct pci_dev * pdev)585 static inline void pdev_disable_cap_ats(struct pci_dev *pdev)
586 {
587 struct iommu_dev_data *dev_data = dev_iommu_priv_get(&pdev->dev);
588
589 if (dev_data->ats_enabled) {
590 pci_disable_ats(pdev);
591 dev_data->ats_enabled = 0;
592 }
593 }
594
pdev_enable_cap_pri(struct pci_dev * pdev)595 static inline int pdev_enable_cap_pri(struct pci_dev *pdev)
596 {
597 struct iommu_dev_data *dev_data = dev_iommu_priv_get(&pdev->dev);
598 int ret = -EINVAL;
599
600 if (dev_data->pri_enabled)
601 return 0;
602
603 if (!dev_data->ats_enabled)
604 return 0;
605
606 if (dev_data->flags & AMD_IOMMU_DEVICE_FLAG_PRI_SUP) {
607 /*
608 * First reset the PRI state of the device.
609 * FIXME: Hardcode number of outstanding requests for now
610 */
611 if (!pci_reset_pri(pdev) && !pci_enable_pri(pdev, 32)) {
612 dev_data->pri_enabled = 1;
613 dev_data->pri_tlp = pci_prg_resp_pasid_required(pdev);
614
615 ret = 0;
616 }
617 }
618
619 return ret;
620 }
621
pdev_disable_cap_pri(struct pci_dev * pdev)622 static inline void pdev_disable_cap_pri(struct pci_dev *pdev)
623 {
624 struct iommu_dev_data *dev_data = dev_iommu_priv_get(&pdev->dev);
625
626 if (dev_data->pri_enabled) {
627 pci_disable_pri(pdev);
628 dev_data->pri_enabled = 0;
629 }
630 }
631
pdev_enable_cap_pasid(struct pci_dev * pdev)632 static inline int pdev_enable_cap_pasid(struct pci_dev *pdev)
633 {
634 struct iommu_dev_data *dev_data = dev_iommu_priv_get(&pdev->dev);
635 int ret = -EINVAL;
636
637 if (dev_data->pasid_enabled)
638 return 0;
639
640 if (dev_data->flags & AMD_IOMMU_DEVICE_FLAG_PASID_SUP) {
641 /* Only allow access to user-accessible pages */
642 ret = pci_enable_pasid(pdev, 0);
643 if (!ret)
644 dev_data->pasid_enabled = 1;
645 }
646
647 return ret;
648 }
649
pdev_disable_cap_pasid(struct pci_dev * pdev)650 static inline void pdev_disable_cap_pasid(struct pci_dev *pdev)
651 {
652 struct iommu_dev_data *dev_data = dev_iommu_priv_get(&pdev->dev);
653
654 if (dev_data->pasid_enabled) {
655 pci_disable_pasid(pdev);
656 dev_data->pasid_enabled = 0;
657 }
658 }
659
pdev_enable_caps(struct pci_dev * pdev)660 static void pdev_enable_caps(struct pci_dev *pdev)
661 {
662 pdev_enable_cap_pasid(pdev);
663 pdev_enable_cap_ats(pdev);
664 pdev_enable_cap_pri(pdev);
665 }
666
pdev_disable_caps(struct pci_dev * pdev)667 static void pdev_disable_caps(struct pci_dev *pdev)
668 {
669 pdev_disable_cap_ats(pdev);
670 pdev_disable_cap_pasid(pdev);
671 pdev_disable_cap_pri(pdev);
672 }
673
674 /*
675 * This function checks if the driver got a valid device from the caller to
676 * avoid dereferencing invalid pointers.
677 */
check_device(struct device * dev)678 static bool check_device(struct device *dev)
679 {
680 struct amd_iommu_pci_seg *pci_seg;
681 struct amd_iommu *iommu;
682 int devid, sbdf;
683
684 if (!dev)
685 return false;
686
687 sbdf = get_device_sbdf_id(dev);
688 if (sbdf < 0)
689 return false;
690 devid = PCI_SBDF_TO_DEVID(sbdf);
691
692 iommu = rlookup_amd_iommu(dev);
693 if (!iommu)
694 return false;
695
696 /* Out of our scope? */
697 pci_seg = iommu->pci_seg;
698 if (devid > pci_seg->last_bdf)
699 return false;
700
701 return true;
702 }
703
iommu_init_device(struct amd_iommu * iommu,struct device * dev)704 static int iommu_init_device(struct amd_iommu *iommu, struct device *dev)
705 {
706 struct iommu_dev_data *dev_data;
707 int devid, sbdf;
708
709 if (dev_iommu_priv_get(dev))
710 return 0;
711
712 sbdf = get_device_sbdf_id(dev);
713 if (sbdf < 0)
714 return sbdf;
715
716 devid = PCI_SBDF_TO_DEVID(sbdf);
717 dev_data = find_dev_data(iommu, devid);
718 if (!dev_data)
719 return -ENOMEM;
720
721 dev_data->dev = dev;
722
723 /*
724 * The dev_iommu_priv_set() needes to be called before setup_aliases.
725 * Otherwise, subsequent call to dev_iommu_priv_get() will fail.
726 */
727 dev_iommu_priv_set(dev, dev_data);
728 setup_aliases(iommu, dev);
729
730 /*
731 * By default we use passthrough mode for IOMMUv2 capable device.
732 * But if amd_iommu=force_isolation is set (e.g. to debug DMA to
733 * invalid address), we ignore the capability for the device so
734 * it'll be forced to go into translation mode.
735 */
736 if ((iommu_default_passthrough() || !amd_iommu_force_isolation) &&
737 dev_is_pci(dev) && amd_iommu_gt_ppr_supported()) {
738 dev_data->flags = pdev_get_caps(to_pci_dev(dev));
739 }
740
741 return 0;
742 }
743
iommu_ignore_device(struct amd_iommu * iommu,struct device * dev)744 static void iommu_ignore_device(struct amd_iommu *iommu, struct device *dev)
745 {
746 struct amd_iommu_pci_seg *pci_seg = iommu->pci_seg;
747 struct dev_table_entry *dev_table = get_dev_table(iommu);
748 int devid, sbdf;
749
750 sbdf = get_device_sbdf_id(dev);
751 if (sbdf < 0)
752 return;
753
754 devid = PCI_SBDF_TO_DEVID(sbdf);
755 pci_seg->rlookup_table[devid] = NULL;
756 memset(&dev_table[devid], 0, sizeof(struct dev_table_entry));
757
758 setup_aliases(iommu, dev);
759 }
760
761
762 /****************************************************************************
763 *
764 * Interrupt handling functions
765 *
766 ****************************************************************************/
767
dump_dte_entry(struct amd_iommu * iommu,u16 devid)768 static void dump_dte_entry(struct amd_iommu *iommu, u16 devid)
769 {
770 int i;
771 struct dev_table_entry dte;
772 struct iommu_dev_data *dev_data = find_dev_data(iommu, devid);
773
774 get_dte256(iommu, dev_data, &dte);
775
776 for (i = 0; i < 4; ++i)
777 pr_err("DTE[%d]: %016llx\n", i, dte.data[i]);
778 }
779
dump_command(unsigned long phys_addr)780 static void dump_command(unsigned long phys_addr)
781 {
782 struct iommu_cmd *cmd = iommu_phys_to_virt(phys_addr);
783 int i;
784
785 for (i = 0; i < 4; ++i)
786 pr_err("CMD[%d]: %08x\n", i, cmd->data[i]);
787 }
788
amd_iommu_report_rmp_hw_error(struct amd_iommu * iommu,volatile u32 * event)789 static void amd_iommu_report_rmp_hw_error(struct amd_iommu *iommu, volatile u32 *event)
790 {
791 struct iommu_dev_data *dev_data = NULL;
792 int devid, vmg_tag, flags;
793 struct pci_dev *pdev;
794 u64 spa;
795
796 devid = (event[0] >> EVENT_DEVID_SHIFT) & EVENT_DEVID_MASK;
797 vmg_tag = (event[1]) & 0xFFFF;
798 flags = (event[1] >> EVENT_FLAGS_SHIFT) & EVENT_FLAGS_MASK;
799 spa = ((u64)event[3] << 32) | (event[2] & 0xFFFFFFF8);
800
801 pdev = pci_get_domain_bus_and_slot(iommu->pci_seg->id, PCI_BUS_NUM(devid),
802 devid & 0xff);
803 if (pdev)
804 dev_data = dev_iommu_priv_get(&pdev->dev);
805
806 if (dev_data) {
807 if (__ratelimit(&dev_data->rs)) {
808 pci_err(pdev, "Event logged [RMP_HW_ERROR vmg_tag=0x%04x, spa=0x%llx, flags=0x%04x]\n",
809 vmg_tag, spa, flags);
810 }
811 } else {
812 pr_err_ratelimited("Event logged [RMP_HW_ERROR device=%04x:%02x:%02x.%x, vmg_tag=0x%04x, spa=0x%llx, flags=0x%04x]\n",
813 iommu->pci_seg->id, PCI_BUS_NUM(devid), PCI_SLOT(devid), PCI_FUNC(devid),
814 vmg_tag, spa, flags);
815 }
816
817 if (pdev)
818 pci_dev_put(pdev);
819 }
820
amd_iommu_report_rmp_fault(struct amd_iommu * iommu,volatile u32 * event)821 static void amd_iommu_report_rmp_fault(struct amd_iommu *iommu, volatile u32 *event)
822 {
823 struct iommu_dev_data *dev_data = NULL;
824 int devid, flags_rmp, vmg_tag, flags;
825 struct pci_dev *pdev;
826 u64 gpa;
827
828 devid = (event[0] >> EVENT_DEVID_SHIFT) & EVENT_DEVID_MASK;
829 flags_rmp = (event[0] >> EVENT_FLAGS_SHIFT) & 0xFF;
830 vmg_tag = (event[1]) & 0xFFFF;
831 flags = (event[1] >> EVENT_FLAGS_SHIFT) & EVENT_FLAGS_MASK;
832 gpa = ((u64)event[3] << 32) | event[2];
833
834 pdev = pci_get_domain_bus_and_slot(iommu->pci_seg->id, PCI_BUS_NUM(devid),
835 devid & 0xff);
836 if (pdev)
837 dev_data = dev_iommu_priv_get(&pdev->dev);
838
839 if (dev_data) {
840 if (__ratelimit(&dev_data->rs)) {
841 pci_err(pdev, "Event logged [RMP_PAGE_FAULT vmg_tag=0x%04x, gpa=0x%llx, flags_rmp=0x%04x, flags=0x%04x]\n",
842 vmg_tag, gpa, flags_rmp, flags);
843 }
844 } else {
845 pr_err_ratelimited("Event logged [RMP_PAGE_FAULT device=%04x:%02x:%02x.%x, vmg_tag=0x%04x, gpa=0x%llx, flags_rmp=0x%04x, flags=0x%04x]\n",
846 iommu->pci_seg->id, PCI_BUS_NUM(devid), PCI_SLOT(devid), PCI_FUNC(devid),
847 vmg_tag, gpa, flags_rmp, flags);
848 }
849
850 if (pdev)
851 pci_dev_put(pdev);
852 }
853
854 #define IS_IOMMU_MEM_TRANSACTION(flags) \
855 (((flags) & EVENT_FLAG_I) == 0)
856
857 #define IS_WRITE_REQUEST(flags) \
858 ((flags) & EVENT_FLAG_RW)
859
amd_iommu_report_page_fault(struct amd_iommu * iommu,u16 devid,u16 domain_id,u64 address,int flags)860 static void amd_iommu_report_page_fault(struct amd_iommu *iommu,
861 u16 devid, u16 domain_id,
862 u64 address, int flags)
863 {
864 struct iommu_dev_data *dev_data = NULL;
865 struct pci_dev *pdev;
866
867 pdev = pci_get_domain_bus_and_slot(iommu->pci_seg->id, PCI_BUS_NUM(devid),
868 devid & 0xff);
869 if (pdev)
870 dev_data = dev_iommu_priv_get(&pdev->dev);
871
872 if (dev_data) {
873 /*
874 * If this is a DMA fault (for which the I(nterrupt)
875 * bit will be unset), allow report_iommu_fault() to
876 * prevent logging it.
877 */
878 if (IS_IOMMU_MEM_TRANSACTION(flags)) {
879 /* Device not attached to domain properly */
880 if (dev_data->domain == NULL) {
881 pr_err_ratelimited("Event logged [Device not attached to domain properly]\n");
882 pr_err_ratelimited(" device=%04x:%02x:%02x.%x domain=0x%04x\n",
883 iommu->pci_seg->id, PCI_BUS_NUM(devid), PCI_SLOT(devid),
884 PCI_FUNC(devid), domain_id);
885 goto out;
886 }
887
888 if (!report_iommu_fault(&dev_data->domain->domain,
889 &pdev->dev, address,
890 IS_WRITE_REQUEST(flags) ?
891 IOMMU_FAULT_WRITE :
892 IOMMU_FAULT_READ))
893 goto out;
894 }
895
896 if (__ratelimit(&dev_data->rs)) {
897 pci_err(pdev, "Event logged [IO_PAGE_FAULT domain=0x%04x address=0x%llx flags=0x%04x]\n",
898 domain_id, address, flags);
899 }
900 } else {
901 pr_err_ratelimited("Event logged [IO_PAGE_FAULT device=%04x:%02x:%02x.%x domain=0x%04x address=0x%llx flags=0x%04x]\n",
902 iommu->pci_seg->id, PCI_BUS_NUM(devid), PCI_SLOT(devid), PCI_FUNC(devid),
903 domain_id, address, flags);
904 }
905
906 out:
907 if (pdev)
908 pci_dev_put(pdev);
909 }
910
amd_iommu_report_ppr_err(struct amd_iommu * iommu,volatile u32 * event,u16 devid,u64 address,int flags)911 static void amd_iommu_report_ppr_err(struct amd_iommu *iommu, volatile u32 *event,
912 u16 devid, u64 address, int flags)
913 {
914 struct pci_dev *pdev;
915 struct device *dev = iommu->iommu.dev;
916 u32 pasid = PPR_PASID(*((u64 *)event));
917 int tag = event[1] & 0x03FF;
918 bool gn;
919
920 dev_err_ratelimited(dev, "Event logged [INVALID_PPR_REQUEST device=%04x:%02x:%02x.%x "
921 "pasid=0x%05x address=0x%llx flags=0x%04x tag=0x%03x]\n",
922 iommu->pci_seg->id, PCI_BUS_NUM(devid), PCI_SLOT(devid),
923 PCI_FUNC(devid), pasid, address, flags, tag);
924
925 /* Skip COMPLETE_PPR_REQUEST response if RX=1 */
926 if (flags & EVENT_FLAG_PPR_RX)
927 return;
928
929 pdev = pci_get_domain_bus_and_slot(iommu->pci_seg->id, PCI_BUS_NUM(devid),
930 devid & 0xff);
931 if (!pdev)
932 return;
933
934 if (!dev_iommu_priv_get(&pdev->dev)) {
935 pci_dev_put(pdev);
936 return;
937 }
938
939 gn = (flags & EVENT_FLAG_PPR_GN);
940
941 __amd_iommu_complete_ppr(&pdev->dev, pasid, IOMMU_PAGE_RESP_FAILURE, tag, gn);
942 pci_dev_put(pdev);
943 }
944
iommu_print_event(struct amd_iommu * iommu,void * __evt)945 static void iommu_print_event(struct amd_iommu *iommu, void *__evt)
946 {
947 struct device *dev = iommu->iommu.dev;
948 int type, devid, flags;
949 volatile u32 *event = __evt;
950 int count = 0;
951 u64 address, ctrl;
952 u32 pasid;
953
954 retry:
955 type = (event[1] >> EVENT_TYPE_SHIFT) & EVENT_TYPE_MASK;
956 devid = (event[0] >> EVENT_DEVID_SHIFT) & EVENT_DEVID_MASK;
957 pasid = (event[0] & EVENT_DOMID_MASK_HI) |
958 (event[1] & EVENT_DOMID_MASK_LO);
959 flags = (event[1] >> EVENT_FLAGS_SHIFT) & EVENT_FLAGS_MASK;
960 address = (u64)(((u64)event[3]) << 32) | event[2];
961 ctrl = readq(iommu->mmio_base + MMIO_CONTROL_OFFSET);
962
963 if (type == 0) {
964 /* Did we hit the erratum? */
965 if (++count == LOOP_TIMEOUT) {
966 pr_err("No event written to event log\n");
967 return;
968 }
969 udelay(1);
970 goto retry;
971 }
972
973 if (type == EVENT_TYPE_IO_FAULT) {
974 amd_iommu_report_page_fault(iommu, devid, pasid, address, flags);
975 return;
976 }
977
978 switch (type) {
979 case EVENT_TYPE_ILL_DEV:
980 dev_err(dev, "Event logged [ILLEGAL_DEV_TABLE_ENTRY device=%04x:%02x:%02x.%x pasid=0x%05x address=0x%llx flags=0x%04x]\n",
981 iommu->pci_seg->id, PCI_BUS_NUM(devid), PCI_SLOT(devid), PCI_FUNC(devid),
982 pasid, address, flags);
983 dev_err(dev, "Control Reg : 0x%llx\n", ctrl);
984 dump_dte_entry(iommu, devid);
985 break;
986 case EVENT_TYPE_DEV_TAB_ERR:
987 dev_err(dev, "Event logged [DEV_TAB_HARDWARE_ERROR device=%04x:%02x:%02x.%x "
988 "address=0x%llx flags=0x%04x]\n",
989 iommu->pci_seg->id, PCI_BUS_NUM(devid), PCI_SLOT(devid), PCI_FUNC(devid),
990 address, flags);
991 break;
992 case EVENT_TYPE_PAGE_TAB_ERR:
993 dev_err(dev, "Event logged [PAGE_TAB_HARDWARE_ERROR device=%04x:%02x:%02x.%x pasid=0x%04x address=0x%llx flags=0x%04x]\n",
994 iommu->pci_seg->id, PCI_BUS_NUM(devid), PCI_SLOT(devid), PCI_FUNC(devid),
995 pasid, address, flags);
996 break;
997 case EVENT_TYPE_ILL_CMD:
998 dev_err(dev, "Event logged [ILLEGAL_COMMAND_ERROR address=0x%llx]\n", address);
999 dump_command(address);
1000 break;
1001 case EVENT_TYPE_CMD_HARD_ERR:
1002 dev_err(dev, "Event logged [COMMAND_HARDWARE_ERROR address=0x%llx flags=0x%04x]\n",
1003 address, flags);
1004 break;
1005 case EVENT_TYPE_IOTLB_INV_TO:
1006 dev_err(dev, "Event logged [IOTLB_INV_TIMEOUT device=%04x:%02x:%02x.%x address=0x%llx]\n",
1007 iommu->pci_seg->id, PCI_BUS_NUM(devid), PCI_SLOT(devid), PCI_FUNC(devid),
1008 address);
1009 break;
1010 case EVENT_TYPE_INV_DEV_REQ:
1011 dev_err(dev, "Event logged [INVALID_DEVICE_REQUEST device=%04x:%02x:%02x.%x pasid=0x%05x address=0x%llx flags=0x%04x]\n",
1012 iommu->pci_seg->id, PCI_BUS_NUM(devid), PCI_SLOT(devid), PCI_FUNC(devid),
1013 pasid, address, flags);
1014 break;
1015 case EVENT_TYPE_RMP_FAULT:
1016 amd_iommu_report_rmp_fault(iommu, event);
1017 break;
1018 case EVENT_TYPE_RMP_HW_ERR:
1019 amd_iommu_report_rmp_hw_error(iommu, event);
1020 break;
1021 case EVENT_TYPE_INV_PPR_REQ:
1022 amd_iommu_report_ppr_err(iommu, event, devid, address, flags);
1023 break;
1024 default:
1025 dev_err(dev, "Event logged [UNKNOWN event[0]=0x%08x event[1]=0x%08x event[2]=0x%08x event[3]=0x%08x\n",
1026 event[0], event[1], event[2], event[3]);
1027 }
1028
1029 /*
1030 * To detect the hardware errata 732 we need to clear the
1031 * entry back to zero. This issue does not exist on SNP
1032 * enabled system. Also this buffer is not writeable on
1033 * SNP enabled system.
1034 */
1035 if (!amd_iommu_snp_en)
1036 memset(__evt, 0, 4 * sizeof(u32));
1037 }
1038
iommu_poll_events(struct amd_iommu * iommu)1039 static void iommu_poll_events(struct amd_iommu *iommu)
1040 {
1041 u32 head, tail;
1042
1043 head = readl(iommu->mmio_base + MMIO_EVT_HEAD_OFFSET);
1044 tail = readl(iommu->mmio_base + MMIO_EVT_TAIL_OFFSET);
1045
1046 while (head != tail) {
1047 iommu_print_event(iommu, iommu->evt_buf + head);
1048
1049 /* Update head pointer of hardware ring-buffer */
1050 head = (head + EVTLOG_ENTRY_SIZE) % amd_iommu_evtlog_size;
1051 writel(head, iommu->mmio_base + MMIO_EVT_HEAD_OFFSET);
1052 }
1053
1054 }
1055
1056 #ifdef CONFIG_IRQ_REMAP
1057 static int (*iommu_ga_log_notifier)(u32);
1058
amd_iommu_register_ga_log_notifier(int (* notifier)(u32))1059 int amd_iommu_register_ga_log_notifier(int (*notifier)(u32))
1060 {
1061 iommu_ga_log_notifier = notifier;
1062
1063 /*
1064 * Ensure all in-flight IRQ handlers run to completion before returning
1065 * to the caller, e.g. to ensure module code isn't unloaded while it's
1066 * being executed in the IRQ handler.
1067 */
1068 if (!notifier)
1069 synchronize_rcu();
1070
1071 return 0;
1072 }
1073 EXPORT_SYMBOL(amd_iommu_register_ga_log_notifier);
1074
iommu_poll_ga_log(struct amd_iommu * iommu)1075 static void iommu_poll_ga_log(struct amd_iommu *iommu)
1076 {
1077 u32 head, tail;
1078
1079 if (iommu->ga_log == NULL)
1080 return;
1081
1082 head = readl(iommu->mmio_base + MMIO_GA_HEAD_OFFSET);
1083 tail = readl(iommu->mmio_base + MMIO_GA_TAIL_OFFSET);
1084
1085 while (head != tail) {
1086 volatile u64 *raw;
1087 u64 log_entry;
1088
1089 raw = (u64 *)(iommu->ga_log + head);
1090
1091 /* Avoid memcpy function-call overhead */
1092 log_entry = *raw;
1093
1094 /* Update head pointer of hardware ring-buffer */
1095 head = (head + GA_ENTRY_SIZE) % GA_LOG_SIZE;
1096 writel(head, iommu->mmio_base + MMIO_GA_HEAD_OFFSET);
1097
1098 /* Handle GA entry */
1099 switch (GA_REQ_TYPE(log_entry)) {
1100 case GA_GUEST_NR:
1101 if (!iommu_ga_log_notifier)
1102 break;
1103
1104 pr_debug("%s: devid=%#x, ga_tag=%#x\n",
1105 __func__, GA_DEVID(log_entry),
1106 GA_TAG(log_entry));
1107
1108 if (iommu_ga_log_notifier(GA_TAG(log_entry)) != 0)
1109 pr_err("GA log notifier failed.\n");
1110 break;
1111 default:
1112 break;
1113 }
1114 }
1115 }
1116
1117 static void
amd_iommu_set_pci_msi_domain(struct device * dev,struct amd_iommu * iommu)1118 amd_iommu_set_pci_msi_domain(struct device *dev, struct amd_iommu *iommu)
1119 {
1120 if (!irq_remapping_enabled || !dev_is_pci(dev) ||
1121 !pci_dev_has_default_msi_parent_domain(to_pci_dev(dev)))
1122 return;
1123
1124 dev_set_msi_domain(dev, iommu->ir_domain);
1125 }
1126
1127 #else /* CONFIG_IRQ_REMAP */
1128 static inline void
amd_iommu_set_pci_msi_domain(struct device * dev,struct amd_iommu * iommu)1129 amd_iommu_set_pci_msi_domain(struct device *dev, struct amd_iommu *iommu) { }
1130 #endif /* !CONFIG_IRQ_REMAP */
1131
amd_iommu_handle_irq(void * data,const char * evt_type,u32 int_mask,u32 overflow_mask,void (* int_handler)(struct amd_iommu *),void (* overflow_handler)(struct amd_iommu *))1132 static void amd_iommu_handle_irq(void *data, const char *evt_type,
1133 u32 int_mask, u32 overflow_mask,
1134 void (*int_handler)(struct amd_iommu *),
1135 void (*overflow_handler)(struct amd_iommu *))
1136 {
1137 struct amd_iommu *iommu = (struct amd_iommu *) data;
1138 u32 status = readl(iommu->mmio_base + MMIO_STATUS_OFFSET);
1139 u32 mask = int_mask | overflow_mask;
1140
1141 while (status & mask) {
1142 /* Enable interrupt sources again */
1143 writel(mask, iommu->mmio_base + MMIO_STATUS_OFFSET);
1144
1145 if (int_handler) {
1146 pr_devel("Processing IOMMU (ivhd%d) %s Log\n",
1147 iommu->index, evt_type);
1148 int_handler(iommu);
1149 }
1150
1151 if ((status & overflow_mask) && overflow_handler)
1152 overflow_handler(iommu);
1153
1154 /*
1155 * Hardware bug: ERBT1312
1156 * When re-enabling interrupt (by writing 1
1157 * to clear the bit), the hardware might also try to set
1158 * the interrupt bit in the event status register.
1159 * In this scenario, the bit will be set, and disable
1160 * subsequent interrupts.
1161 *
1162 * Workaround: The IOMMU driver should read back the
1163 * status register and check if the interrupt bits are cleared.
1164 * If not, driver will need to go through the interrupt handler
1165 * again and re-clear the bits
1166 */
1167 status = readl(iommu->mmio_base + MMIO_STATUS_OFFSET);
1168 }
1169 }
1170
amd_iommu_int_thread_evtlog(int irq,void * data)1171 irqreturn_t amd_iommu_int_thread_evtlog(int irq, void *data)
1172 {
1173 amd_iommu_handle_irq(data, "Evt", MMIO_STATUS_EVT_INT_MASK,
1174 MMIO_STATUS_EVT_OVERFLOW_MASK,
1175 iommu_poll_events, amd_iommu_restart_event_logging);
1176
1177 return IRQ_HANDLED;
1178 }
1179
amd_iommu_int_thread_pprlog(int irq,void * data)1180 irqreturn_t amd_iommu_int_thread_pprlog(int irq, void *data)
1181 {
1182 amd_iommu_handle_irq(data, "PPR", MMIO_STATUS_PPR_INT_MASK,
1183 MMIO_STATUS_PPR_OVERFLOW_MASK,
1184 amd_iommu_poll_ppr_log, amd_iommu_restart_ppr_log);
1185
1186 return IRQ_HANDLED;
1187 }
1188
amd_iommu_int_thread_galog(int irq,void * data)1189 irqreturn_t amd_iommu_int_thread_galog(int irq, void *data)
1190 {
1191 #ifdef CONFIG_IRQ_REMAP
1192 amd_iommu_handle_irq(data, "GA", MMIO_STATUS_GALOG_INT_MASK,
1193 MMIO_STATUS_GALOG_OVERFLOW_MASK,
1194 iommu_poll_ga_log, amd_iommu_restart_ga_log);
1195 #endif
1196
1197 return IRQ_HANDLED;
1198 }
1199
amd_iommu_int_thread(int irq,void * data)1200 irqreturn_t amd_iommu_int_thread(int irq, void *data)
1201 {
1202 amd_iommu_int_thread_evtlog(irq, data);
1203 amd_iommu_int_thread_pprlog(irq, data);
1204 amd_iommu_int_thread_galog(irq, data);
1205
1206 return IRQ_HANDLED;
1207 }
1208
1209 /****************************************************************************
1210 *
1211 * IOMMU command queuing functions
1212 *
1213 ****************************************************************************/
1214
dump_command_buffer(struct amd_iommu * iommu)1215 static void dump_command_buffer(struct amd_iommu *iommu)
1216 {
1217 struct iommu_cmd *cmd;
1218 u32 head, tail;
1219 int i;
1220
1221 head = readl(iommu->mmio_base + MMIO_CMD_HEAD_OFFSET);
1222 tail = readl(iommu->mmio_base + MMIO_CMD_TAIL_OFFSET);
1223
1224 pr_err("CMD Buffer head=%llu tail=%llu\n", MMIO_CMD_BUFFER_HEAD(head),
1225 MMIO_CMD_BUFFER_TAIL(tail));
1226
1227 for (i = 0; i < CMD_BUFFER_ENTRIES; i++) {
1228 cmd = (struct iommu_cmd *)(iommu->cmd_buf + i * sizeof(*cmd));
1229 pr_err("%3d: %08x %08x %08x %08x\n", i, cmd->data[0], cmd->data[1], cmd->data[2],
1230 cmd->data[3]);
1231 }
1232 }
1233
wait_on_sem(struct amd_iommu * iommu,u64 data)1234 static int wait_on_sem(struct amd_iommu *iommu, u64 data)
1235 {
1236 int i = 0;
1237
1238 /*
1239 * cmd_sem holds a monotonically non-decreasing completion sequence
1240 * number.
1241 */
1242 while ((__s64)(READ_ONCE(*iommu->cmd_sem) - data) < 0 &&
1243 i < LOOP_TIMEOUT) {
1244 udelay(1);
1245 i += 1;
1246 }
1247
1248 if (i == LOOP_TIMEOUT) {
1249
1250 pr_alert("IOMMU %04x:%02x:%02x.%01x: Completion-Wait loop timed out\n",
1251 iommu->pci_seg->id, PCI_BUS_NUM(iommu->devid),
1252 PCI_SLOT(iommu->devid), PCI_FUNC(iommu->devid));
1253
1254 if (amd_iommu_dump)
1255 DO_ONCE_LITE(dump_command_buffer, iommu);
1256
1257 return -EIO;
1258 }
1259
1260 return 0;
1261 }
1262
copy_cmd_to_buffer(struct amd_iommu * iommu,struct iommu_cmd * cmd)1263 static void copy_cmd_to_buffer(struct amd_iommu *iommu,
1264 struct iommu_cmd *cmd)
1265 {
1266 u8 *target;
1267 u32 tail;
1268
1269 /* Copy command to buffer */
1270 tail = iommu->cmd_buf_tail;
1271 target = iommu->cmd_buf + tail;
1272 memcpy(target, cmd, sizeof(*cmd));
1273
1274 tail = (tail + sizeof(*cmd)) % CMD_BUFFER_SIZE;
1275 iommu->cmd_buf_tail = tail;
1276
1277 /* Tell the IOMMU about it */
1278 writel(tail, iommu->mmio_base + MMIO_CMD_TAIL_OFFSET);
1279 }
1280
build_completion_wait(struct iommu_cmd * cmd,struct amd_iommu * iommu,u64 data)1281 static void build_completion_wait(struct iommu_cmd *cmd,
1282 struct amd_iommu *iommu,
1283 u64 data)
1284 {
1285 u64 paddr = iommu->cmd_sem_paddr;
1286
1287 memset(cmd, 0, sizeof(*cmd));
1288 cmd->data[0] = lower_32_bits(paddr) | CMD_COMPL_WAIT_STORE_MASK;
1289 cmd->data[1] = upper_32_bits(paddr);
1290 cmd->data[2] = lower_32_bits(data);
1291 cmd->data[3] = upper_32_bits(data);
1292 CMD_SET_TYPE(cmd, CMD_COMPL_WAIT);
1293 }
1294
build_inv_dte(struct iommu_cmd * cmd,u16 devid)1295 static void build_inv_dte(struct iommu_cmd *cmd, u16 devid)
1296 {
1297 memset(cmd, 0, sizeof(*cmd));
1298 cmd->data[0] = devid;
1299 CMD_SET_TYPE(cmd, CMD_INV_DEV_ENTRY);
1300 }
1301
1302 /*
1303 * Builds an invalidation address which is suitable for one page or multiple
1304 * pages. Sets the size bit (S) as needed if more than one page is flushed.
1305 */
build_inv_address(u64 address,u64 last)1306 static inline u64 build_inv_address(u64 address, u64 last)
1307 {
1308 unsigned int sz_lg2;
1309
1310 address &= GENMASK_U64(63, 12);
1311 sz_lg2 = fls64(address ^ last);
1312 if (sz_lg2 <= 12)
1313 return address;
1314
1315 /*
1316 * Encode sz_lg2 according to Table 14: Example Page Size Encodings
1317 *
1318 * See "Note *":
1319 * Address bits 51:32 can be used to encode page sizes greater
1320 * that 4 Gbytes.
1321 * Which we take to mean that the highest page size has bit
1322 * [51]=0, [50:12]=1
1323 * and that coding happens when sz_lg2 is 52. Fall back to full
1324 * invalidation if the size is too big.
1325 *
1326 */
1327 if (unlikely(sz_lg2 > 52))
1328 return CMD_INV_IOMMU_ALL_PAGES_ADDRESS |
1329 CMD_INV_IOMMU_PAGES_SIZE_MASK;
1330
1331 /*
1332 * The sz_lg2 calculation with fls() ensures that:
1333 * address & BIT(sz_lg2 - 1) == 0
1334 * Therefore only the 1's need to be added. 8KB requires no 1's
1335 */
1336 if (sz_lg2 > 13)
1337 address |= GENMASK_U64(sz_lg2 - 2, 12);
1338 return address | CMD_INV_IOMMU_PAGES_SIZE_MASK;
1339 }
1340
build_inv_iommu_pages(struct iommu_cmd * cmd,u64 address,u64 last,u16 domid,ioasid_t pasid,u32 flags)1341 static void build_inv_iommu_pages(struct iommu_cmd *cmd, u64 address,
1342 u64 last, u16 domid, ioasid_t pasid,
1343 u32 flags)
1344 {
1345 u64 inv_address = build_inv_address(address, last);
1346
1347 memset(cmd, 0, sizeof(*cmd));
1348
1349 cmd->data[1] |= domid;
1350 cmd->data[2] = lower_32_bits(inv_address);
1351 cmd->data[3] = upper_32_bits(inv_address);
1352 cmd->data[2] |= flags;
1353 if (flags & CMD_INV_IOMMU_PAGES_GN_MASK)
1354 cmd->data[0] |= pasid;
1355 CMD_SET_TYPE(cmd, CMD_INV_IOMMU_PAGES);
1356 }
1357
build_inv_iotlb_pages(struct iommu_cmd * cmd,u16 devid,int qdep,u64 address,u64 last,ioasid_t pasid,bool gn)1358 static void build_inv_iotlb_pages(struct iommu_cmd *cmd, u16 devid, int qdep,
1359 u64 address, u64 last,
1360 ioasid_t pasid, bool gn)
1361 {
1362 u64 inv_address = build_inv_address(address, last);
1363
1364 memset(cmd, 0, sizeof(*cmd));
1365
1366 cmd->data[0] = devid;
1367 cmd->data[0] |= (qdep & 0xff) << 24;
1368 cmd->data[1] = devid;
1369 cmd->data[2] = lower_32_bits(inv_address);
1370 cmd->data[3] = upper_32_bits(inv_address);
1371 if (gn) {
1372 cmd->data[0] |= ((pasid >> 8) & 0xff) << 16;
1373 cmd->data[1] |= (pasid & 0xff) << 16;
1374 cmd->data[2] |= CMD_INV_IOMMU_PAGES_GN_MASK;
1375 }
1376
1377 CMD_SET_TYPE(cmd, CMD_INV_IOTLB_PAGES);
1378 }
1379
build_complete_ppr(struct iommu_cmd * cmd,u16 devid,u32 pasid,int status,int tag,bool gn)1380 static void build_complete_ppr(struct iommu_cmd *cmd, u16 devid, u32 pasid,
1381 int status, int tag, bool gn)
1382 {
1383 memset(cmd, 0, sizeof(*cmd));
1384
1385 cmd->data[0] = devid;
1386 if (gn) {
1387 cmd->data[1] = pasid;
1388 cmd->data[2] = CMD_INV_IOMMU_PAGES_GN_MASK;
1389 }
1390 cmd->data[3] = tag & 0x1ff;
1391 cmd->data[3] |= (status & PPR_STATUS_MASK) << PPR_STATUS_SHIFT;
1392
1393 CMD_SET_TYPE(cmd, CMD_COMPLETE_PPR);
1394 }
1395
build_inv_all(struct iommu_cmd * cmd)1396 static void build_inv_all(struct iommu_cmd *cmd)
1397 {
1398 memset(cmd, 0, sizeof(*cmd));
1399 CMD_SET_TYPE(cmd, CMD_INV_ALL);
1400 }
1401
build_inv_irt(struct iommu_cmd * cmd,u16 devid)1402 static void build_inv_irt(struct iommu_cmd *cmd, u16 devid)
1403 {
1404 memset(cmd, 0, sizeof(*cmd));
1405 cmd->data[0] = devid;
1406 CMD_SET_TYPE(cmd, CMD_INV_IRT);
1407 }
1408
1409 /*
1410 * Writes the command to the IOMMUs command buffer and informs the
1411 * hardware about the new command.
1412 */
__iommu_queue_command_sync(struct amd_iommu * iommu,struct iommu_cmd * cmd,bool sync)1413 static int __iommu_queue_command_sync(struct amd_iommu *iommu,
1414 struct iommu_cmd *cmd,
1415 bool sync)
1416 {
1417 unsigned int count = 0;
1418 u32 left, next_tail;
1419
1420 next_tail = (iommu->cmd_buf_tail + sizeof(*cmd)) % CMD_BUFFER_SIZE;
1421 again:
1422 left = (iommu->cmd_buf_head - next_tail) % CMD_BUFFER_SIZE;
1423
1424 if (left <= 0x20) {
1425 /* Skip udelay() the first time around */
1426 if (count++) {
1427 if (count == LOOP_TIMEOUT) {
1428 pr_err("Command buffer timeout\n");
1429 return -EIO;
1430 }
1431
1432 udelay(1);
1433 }
1434
1435 /* Update head and recheck remaining space */
1436 iommu->cmd_buf_head = readl(iommu->mmio_base +
1437 MMIO_CMD_HEAD_OFFSET);
1438
1439 goto again;
1440 }
1441
1442 copy_cmd_to_buffer(iommu, cmd);
1443
1444 /* Do we need to make sure all commands are processed? */
1445 iommu->need_sync = sync;
1446
1447 return 0;
1448 }
1449
iommu_queue_command_sync(struct amd_iommu * iommu,struct iommu_cmd * cmd,bool sync)1450 static int iommu_queue_command_sync(struct amd_iommu *iommu,
1451 struct iommu_cmd *cmd,
1452 bool sync)
1453 {
1454 unsigned long flags;
1455 int ret;
1456
1457 raw_spin_lock_irqsave(&iommu->lock, flags);
1458 ret = __iommu_queue_command_sync(iommu, cmd, sync);
1459 raw_spin_unlock_irqrestore(&iommu->lock, flags);
1460
1461 return ret;
1462 }
1463
iommu_queue_command(struct amd_iommu * iommu,struct iommu_cmd * cmd)1464 static int iommu_queue_command(struct amd_iommu *iommu, struct iommu_cmd *cmd)
1465 {
1466 return iommu_queue_command_sync(iommu, cmd, true);
1467 }
1468
get_cmdsem_val(struct amd_iommu * iommu)1469 static u64 get_cmdsem_val(struct amd_iommu *iommu)
1470 {
1471 lockdep_assert_held(&iommu->lock);
1472 return ++iommu->cmd_sem_val;
1473 }
1474
1475 /*
1476 * This function queues a completion wait command into the command
1477 * buffer of an IOMMU
1478 */
iommu_completion_wait(struct amd_iommu * iommu)1479 static int iommu_completion_wait(struct amd_iommu *iommu)
1480 {
1481 struct iommu_cmd cmd;
1482 unsigned long flags;
1483 int ret;
1484 u64 data;
1485
1486 raw_spin_lock_irqsave(&iommu->lock, flags);
1487
1488 if (!iommu->need_sync) {
1489 /*
1490 * No command has been queued since the last completion-wait.
1491 * A concurrent CPU may have already queued that CWAIT and
1492 * cleared need_sync; need_sync == false only means a covering
1493 * CWAIT is queued, not that all prior commands have completed.
1494 * Wait for the last allocated sequence number so that any
1495 * command queued before this call (possibly on another CPU)
1496 * is guaranteed to have completed before returning.
1497 */
1498 data = iommu->cmd_sem_val;
1499 raw_spin_unlock_irqrestore(&iommu->lock, flags);
1500 return wait_on_sem(iommu, data);
1501 }
1502
1503 data = get_cmdsem_val(iommu);
1504 build_completion_wait(&cmd, iommu, data);
1505
1506 ret = __iommu_queue_command_sync(iommu, &cmd, false);
1507 raw_spin_unlock_irqrestore(&iommu->lock, flags);
1508
1509 if (ret)
1510 return ret;
1511
1512 return wait_on_sem(iommu, data);
1513 }
1514
domain_flush_complete(struct protection_domain * domain)1515 static void domain_flush_complete(struct protection_domain *domain)
1516 {
1517 struct pdom_iommu_info *pdom_iommu_info;
1518 unsigned long i;
1519
1520 lockdep_assert_held(&domain->lock);
1521
1522 /*
1523 * Devices of this domain are behind this IOMMU
1524 * We need to wait for completion of all commands.
1525 */
1526 xa_for_each(&domain->iommu_array, i, pdom_iommu_info)
1527 iommu_completion_wait(pdom_iommu_info->iommu);
1528 }
1529
iommu_flush_dte(struct amd_iommu * iommu,u16 devid)1530 static int iommu_flush_dte(struct amd_iommu *iommu, u16 devid)
1531 {
1532 struct iommu_cmd cmd;
1533
1534 build_inv_dte(&cmd, devid);
1535
1536 return iommu_queue_command(iommu, &cmd);
1537 }
1538
iommu_flush_dte_sync(struct amd_iommu * iommu,u16 devid)1539 static void iommu_flush_dte_sync(struct amd_iommu *iommu, u16 devid)
1540 {
1541 int ret;
1542
1543 ret = iommu_flush_dte(iommu, devid);
1544 if (!ret)
1545 iommu_completion_wait(iommu);
1546 }
1547
amd_iommu_flush_dte_all(struct amd_iommu * iommu)1548 static void amd_iommu_flush_dte_all(struct amd_iommu *iommu)
1549 {
1550 u32 devid;
1551 u16 last_bdf = iommu->pci_seg->last_bdf;
1552
1553 for (devid = 0; devid <= last_bdf; ++devid)
1554 iommu_flush_dte(iommu, devid);
1555
1556 iommu_completion_wait(iommu);
1557 }
1558
1559 /*
1560 * This function uses heavy locking and may disable irqs for some time. But
1561 * this is no issue because it is only called during resume.
1562 */
amd_iommu_flush_tlb_all(struct amd_iommu * iommu)1563 static void amd_iommu_flush_tlb_all(struct amd_iommu *iommu)
1564 {
1565 u32 dom_id;
1566 u16 last_bdf = iommu->pci_seg->last_bdf;
1567
1568 for (dom_id = 0; dom_id <= last_bdf; ++dom_id) {
1569 struct iommu_cmd cmd;
1570 build_inv_iommu_pages(&cmd, 0, U64_MAX,
1571 dom_id, IOMMU_NO_PASID,
1572 CMD_INV_IOMMU_PAGES_PDE_MASK);
1573 iommu_queue_command(iommu, &cmd);
1574 }
1575
1576 iommu_completion_wait(iommu);
1577 }
1578
amd_iommu_flush_tlb_domid(struct amd_iommu * iommu,u32 dom_id)1579 static void amd_iommu_flush_tlb_domid(struct amd_iommu *iommu, u32 dom_id)
1580 {
1581 struct iommu_cmd cmd;
1582
1583 build_inv_iommu_pages(&cmd, 0, U64_MAX,
1584 dom_id, IOMMU_NO_PASID,
1585 CMD_INV_IOMMU_PAGES_PDE_MASK);
1586 iommu_queue_command(iommu, &cmd);
1587
1588 iommu_completion_wait(iommu);
1589 }
1590
iommu_flush_pages_v1_hdom_ids(struct protection_domain * pdom,u64 address,u64 last,u32 flags)1591 static int iommu_flush_pages_v1_hdom_ids(struct protection_domain *pdom,
1592 u64 address, u64 last, u32 flags)
1593 {
1594 int ret = 0;
1595 struct amd_iommu_viommu *aviommu;
1596
1597 list_for_each_entry(aviommu, &pdom->viommu_list, pdom_list) {
1598 unsigned long i;
1599 struct guest_domain_mapping_info *gdom_info;
1600 struct amd_iommu *iommu = container_of(aviommu->core.iommu_dev,
1601 struct amd_iommu, iommu);
1602
1603 xa_lock(&aviommu->gdomid_array);
1604 xa_for_each(&aviommu->gdomid_array, i, gdom_info) {
1605 struct iommu_cmd cmd;
1606
1607 pr_debug("%s: iommu=%#x, hdom_id=%#x\n", __func__,
1608 iommu->devid, gdom_info->hdom_id);
1609 build_inv_iommu_pages(&cmd, address, last, gdom_info->hdom_id,
1610 IOMMU_NO_PASID, flags);
1611 ret |= iommu_queue_command(iommu, &cmd);
1612 }
1613 xa_unlock(&aviommu->gdomid_array);
1614 }
1615 return ret;
1616 }
1617
amd_iommu_flush_all(struct amd_iommu * iommu)1618 static void amd_iommu_flush_all(struct amd_iommu *iommu)
1619 {
1620 struct iommu_cmd cmd;
1621
1622 build_inv_all(&cmd);
1623
1624 iommu_queue_command(iommu, &cmd);
1625 iommu_completion_wait(iommu);
1626 }
1627
iommu_flush_irt(struct amd_iommu * iommu,u16 devid)1628 static void iommu_flush_irt(struct amd_iommu *iommu, u16 devid)
1629 {
1630 struct iommu_cmd cmd;
1631
1632 build_inv_irt(&cmd, devid);
1633
1634 iommu_queue_command(iommu, &cmd);
1635 }
1636
amd_iommu_flush_irt_all(struct amd_iommu * iommu)1637 static void amd_iommu_flush_irt_all(struct amd_iommu *iommu)
1638 {
1639 u32 devid;
1640 u16 last_bdf = iommu->pci_seg->last_bdf;
1641
1642 if (iommu->irtcachedis_enabled)
1643 return;
1644
1645 for (devid = 0; devid <= last_bdf; devid++)
1646 iommu_flush_irt(iommu, devid);
1647
1648 iommu_completion_wait(iommu);
1649 }
1650
amd_iommu_flush_all_caches(struct amd_iommu * iommu)1651 void amd_iommu_flush_all_caches(struct amd_iommu *iommu)
1652 {
1653 if (check_feature(FEATURE_IA)) {
1654 amd_iommu_flush_all(iommu);
1655 } else {
1656 amd_iommu_flush_dte_all(iommu);
1657 amd_iommu_flush_irt_all(iommu);
1658 amd_iommu_flush_tlb_all(iommu);
1659 }
1660 }
1661
1662 /*
1663 * Command send function for flushing on-device TLB
1664 */
device_flush_iotlb(struct iommu_dev_data * dev_data,u64 address,u64 last,ioasid_t pasid,bool gn)1665 static int device_flush_iotlb(struct iommu_dev_data *dev_data, u64 address,
1666 u64 last, ioasid_t pasid, bool gn)
1667 {
1668 struct amd_iommu *iommu = get_amd_iommu_from_dev_data(dev_data);
1669 struct iommu_cmd cmd;
1670 int qdep = dev_data->ats_qdep;
1671
1672 build_inv_iotlb_pages(&cmd, dev_data->devid, qdep, address,
1673 last, pasid, gn);
1674
1675 return iommu_queue_command(iommu, &cmd);
1676 }
1677
device_flush_dte_alias(struct pci_dev * pdev,u16 alias,void * data)1678 static int device_flush_dte_alias(struct pci_dev *pdev, u16 alias, void *data)
1679 {
1680 struct amd_iommu *iommu = data;
1681
1682 return iommu_flush_dte(iommu, alias);
1683 }
1684
1685 /*
1686 * Command send function for invalidating a device table entry
1687 */
device_flush_dte(struct iommu_dev_data * dev_data)1688 static int device_flush_dte(struct iommu_dev_data *dev_data)
1689 {
1690 struct amd_iommu *iommu = get_amd_iommu_from_dev_data(dev_data);
1691 struct pci_dev *pdev = NULL;
1692 struct amd_iommu_pci_seg *pci_seg;
1693 u16 alias;
1694 int ret;
1695
1696 if (dev_is_pci(dev_data->dev))
1697 pdev = to_pci_dev(dev_data->dev);
1698
1699 if (pdev)
1700 ret = pci_for_each_dma_alias(pdev,
1701 device_flush_dte_alias, iommu);
1702 else
1703 ret = iommu_flush_dte(iommu, dev_data->devid);
1704 if (ret)
1705 return ret;
1706
1707 pci_seg = iommu->pci_seg;
1708 alias = pci_seg->alias_table[dev_data->devid];
1709 if (alias != dev_data->devid) {
1710 ret = iommu_flush_dte(iommu, alias);
1711 if (ret)
1712 return ret;
1713 }
1714
1715 if (dev_data->ats_enabled) {
1716 /* Invalidate the entire contents of an IOTLB */
1717 ret = device_flush_iotlb(dev_data, 0, U64_MAX,
1718 IOMMU_NO_PASID, false);
1719 }
1720
1721 return ret;
1722 }
1723
domain_flush_pages_v2(struct protection_domain * pdom,u64 address,u64 last,u32 flags)1724 static int domain_flush_pages_v2(struct protection_domain *pdom,
1725 u64 address, u64 last, u32 flags)
1726 {
1727 struct iommu_dev_data *dev_data;
1728 struct iommu_cmd cmd;
1729 int ret = 0;
1730
1731 lockdep_assert_held(&pdom->lock);
1732 list_for_each_entry(dev_data, &pdom->dev_list, list) {
1733 struct amd_iommu *iommu = get_amd_iommu_from_dev(dev_data->dev);
1734 u16 domid = dev_data->gcr3_info.domid;
1735
1736 build_inv_iommu_pages(&cmd, address, last, domid,
1737 IOMMU_NO_PASID,
1738 flags | CMD_INV_IOMMU_PAGES_GN_MASK);
1739
1740 ret |= iommu_queue_command(iommu, &cmd);
1741 }
1742
1743 return ret;
1744 }
1745
domain_flush_pages_v1(struct protection_domain * pdom,u64 address,u64 last,u32 flags)1746 static int domain_flush_pages_v1(struct protection_domain *pdom,
1747 u64 address, u64 last, u32 flags)
1748 {
1749 struct pdom_iommu_info *pdom_iommu_info;
1750 struct iommu_cmd cmd;
1751 int ret = 0;
1752 unsigned long i;
1753
1754 lockdep_assert_held(&pdom->lock);
1755
1756 build_inv_iommu_pages(&cmd, address, last,
1757 pdom->id, IOMMU_NO_PASID, flags);
1758
1759 xa_for_each(&pdom->iommu_array, i, pdom_iommu_info) {
1760 /*
1761 * Devices of this domain are behind this IOMMU
1762 * We need a TLB flush
1763 */
1764 ret |= iommu_queue_command(pdom_iommu_info->iommu, &cmd);
1765 }
1766
1767 /*
1768 * A domain w/ v1 table can be a nest parent, which can have
1769 * multiple nested domains. Each nested domain has 1:1 mapping
1770 * between gDomID and hDomID. Therefore, flush every hDomID
1771 * associated to this nest parent domain.
1772 *
1773 * See drivers/iommu/amd/nested.c: amd_iommu_alloc_domain_nested()
1774 */
1775 if (!list_empty(&pdom->viommu_list))
1776 ret |= iommu_flush_pages_v1_hdom_ids(pdom, address, last, flags);
1777
1778 return ret;
1779 }
1780
1781 /*
1782 * TLB invalidation function which is called from the mapping functions.
1783 * It flushes range of PTEs of the domain.
1784 */
__domain_flush_pages(struct protection_domain * domain,u64 address,u64 last,u32 flags)1785 static void __domain_flush_pages(struct protection_domain *domain,
1786 u64 address, u64 last, u32 flags)
1787 {
1788 struct iommu_dev_data *dev_data;
1789 int ret = 0;
1790 ioasid_t pasid = IOMMU_NO_PASID;
1791 bool gn = false;
1792
1793 lockdep_assert_held(&domain->lock);
1794
1795 if (pdom_is_v2_pgtbl_mode(domain)) {
1796 gn = true;
1797 ret = domain_flush_pages_v2(domain, address, last, flags);
1798 } else {
1799 ret = domain_flush_pages_v1(domain, address, last, flags);
1800 }
1801
1802 list_for_each_entry(dev_data, &domain->dev_list, list) {
1803
1804 if (!dev_data->ats_enabled)
1805 continue;
1806
1807 ret |= device_flush_iotlb(dev_data, address, last, pasid, gn);
1808 }
1809
1810 WARN_ON(ret);
1811 }
1812
amd_iommu_domain_flush_pages(struct protection_domain * domain,u64 address,u64 last,u32 flags)1813 void amd_iommu_domain_flush_pages(struct protection_domain *domain,
1814 u64 address, u64 last, u32 flags)
1815 {
1816 lockdep_assert_held(&domain->lock);
1817
1818 if (likely(!amd_iommu_np_cache) ||
1819 unlikely(address == 0 && last == U64_MAX)) {
1820 __domain_flush_pages(domain, address, last, flags);
1821
1822 /* Wait until IOMMU TLB and all device IOTLB flushes are complete */
1823 domain_flush_complete(domain);
1824
1825 return;
1826 }
1827
1828 /*
1829 * When NpCache is on, we infer that we run in a VM and use a vIOMMU.
1830 * In such setups it is best to avoid flushes of ranges which are not
1831 * naturally aligned, since it would lead to flushes of unmodified
1832 * PTEs. Such flushes would require the hypervisor to do more work than
1833 * necessary. Therefore, perform repeated flushes of aligned ranges
1834 * until you cover the range. Each iteration flushes the smaller
1835 * between the natural alignment of the address that we flush and the
1836 * greatest naturally aligned region that fits in the range.
1837 */
1838 while (address <= last) {
1839 unsigned int sz_lg2 = ilog2(last - address + 1);
1840 u64 flush_last;
1841
1842 if (likely(address))
1843 sz_lg2 = min_t(unsigned int, sz_lg2, __ffs64(address));
1844
1845 flush_last = address + (1ULL << sz_lg2) - 1;
1846 __domain_flush_pages(domain, address, flush_last, flags);
1847 if (check_add_overflow(flush_last, 1, &address))
1848 break;
1849 }
1850
1851 /* Wait until IOMMU TLB and all device IOTLB flushes are complete */
1852 domain_flush_complete(domain);
1853 }
1854
1855 /* Flush the whole IO/TLB for a given protection domain - including PDE */
amd_iommu_domain_flush_all(struct protection_domain * domain)1856 static void amd_iommu_domain_flush_all(struct protection_domain *domain)
1857 {
1858 amd_iommu_domain_flush_pages(domain, 0, U64_MAX,
1859 CMD_INV_IOMMU_PAGES_PDE_MASK);
1860 }
1861
amd_iommu_dev_flush_pasid_pages(struct iommu_dev_data * dev_data,ioasid_t pasid,u64 address,u64 last)1862 void amd_iommu_dev_flush_pasid_pages(struct iommu_dev_data *dev_data,
1863 ioasid_t pasid, u64 address, u64 last)
1864 {
1865 struct iommu_cmd cmd;
1866 struct amd_iommu *iommu = get_amd_iommu_from_dev(dev_data->dev);
1867
1868 build_inv_iommu_pages(&cmd, address, last,
1869 dev_data->gcr3_info.domid, pasid,
1870 CMD_INV_IOMMU_PAGES_GN_MASK |
1871 CMD_INV_IOMMU_PAGES_PDE_MASK);
1872 iommu_queue_command(iommu, &cmd);
1873
1874 if (dev_data->ats_enabled)
1875 device_flush_iotlb(dev_data, address, last, pasid, true);
1876
1877 iommu_completion_wait(iommu);
1878 }
1879
dev_flush_pasid_all(struct iommu_dev_data * dev_data,ioasid_t pasid)1880 static void dev_flush_pasid_all(struct iommu_dev_data *dev_data,
1881 ioasid_t pasid)
1882 {
1883 amd_iommu_dev_flush_pasid_pages(dev_data, pasid, 0, U64_MAX);
1884 }
1885
__amd_iommu_complete_ppr(struct device * dev,u32 pasid,int status,int tag,bool gn)1886 static int __amd_iommu_complete_ppr(struct device *dev, u32 pasid,
1887 int status, int tag, bool gn)
1888 {
1889 struct iommu_dev_data *dev_data;
1890 struct amd_iommu *iommu;
1891 struct iommu_cmd cmd;
1892
1893 dev_data = dev_iommu_priv_get(dev);
1894 iommu = get_amd_iommu_from_dev(dev);
1895
1896 build_complete_ppr(&cmd, dev_data->devid, pasid, status, tag, gn);
1897
1898 return iommu_queue_command(iommu, &cmd);
1899 }
1900
amd_iommu_complete_ppr(struct device * dev,u32 pasid,int status,int tag)1901 int amd_iommu_complete_ppr(struct device *dev, u32 pasid, int status, int tag)
1902 {
1903 struct iommu_dev_data *dev_data = dev_iommu_priv_get(dev);
1904 bool gn;
1905
1906 gn = pdom_is_v2_pgtbl_mode(dev_data->domain);
1907
1908 return __amd_iommu_complete_ppr(dev, pasid, status, tag, gn);
1909 }
1910
1911 /****************************************************************************
1912 *
1913 * The next functions belong to the domain allocation. A domain is
1914 * allocated for every IOMMU as the default domain. If device isolation
1915 * is enabled, every device get its own domain. The most important thing
1916 * about domains is the page table mapping the DMA address space they
1917 * contain.
1918 *
1919 ****************************************************************************/
amd_iommu_pdom_id_alloc(void)1920 int amd_iommu_pdom_id_alloc(void)
1921 {
1922 return ida_alloc_range(&pdom_ids, 1, MAX_DOMAIN_ID - 1, GFP_ATOMIC);
1923 }
1924
amd_iommu_pdom_id_reserve(u16 id,gfp_t gfp)1925 int amd_iommu_pdom_id_reserve(u16 id, gfp_t gfp)
1926 {
1927 return ida_alloc_range(&pdom_ids, id, id, gfp);
1928 }
1929
amd_iommu_pdom_id_free(int id)1930 void amd_iommu_pdom_id_free(int id)
1931 {
1932 ida_free(&pdom_ids, id);
1933 }
1934
amd_iommu_pdom_id_destroy(void)1935 void amd_iommu_pdom_id_destroy(void)
1936 {
1937 ida_destroy(&pdom_ids);
1938 }
1939
free_gcr3_tbl_level1(u64 * tbl)1940 static void free_gcr3_tbl_level1(u64 *tbl)
1941 {
1942 u64 *ptr;
1943 int i;
1944
1945 for (i = 0; i < 512; ++i) {
1946 if (!(tbl[i] & GCR3_VALID))
1947 continue;
1948
1949 ptr = iommu_phys_to_virt(tbl[i] & PAGE_MASK);
1950
1951 iommu_free_pages(ptr);
1952 }
1953 }
1954
free_gcr3_tbl_level2(u64 * tbl)1955 static void free_gcr3_tbl_level2(u64 *tbl)
1956 {
1957 u64 *ptr;
1958 int i;
1959
1960 for (i = 0; i < 512; ++i) {
1961 if (!(tbl[i] & GCR3_VALID))
1962 continue;
1963
1964 ptr = iommu_phys_to_virt(tbl[i] & PAGE_MASK);
1965
1966 free_gcr3_tbl_level1(ptr);
1967 }
1968 }
1969
free_gcr3_table(struct gcr3_tbl_info * gcr3_info)1970 static void free_gcr3_table(struct gcr3_tbl_info *gcr3_info)
1971 {
1972 if (gcr3_info->glx == 2)
1973 free_gcr3_tbl_level2(gcr3_info->gcr3_tbl);
1974 else if (gcr3_info->glx == 1)
1975 free_gcr3_tbl_level1(gcr3_info->gcr3_tbl);
1976 else
1977 WARN_ON_ONCE(gcr3_info->glx != 0);
1978
1979 gcr3_info->glx = 0;
1980
1981 /* Free per device domain ID */
1982 amd_iommu_pdom_id_free(gcr3_info->domid);
1983
1984 iommu_free_pages(gcr3_info->gcr3_tbl);
1985 gcr3_info->gcr3_tbl = NULL;
1986 }
1987
1988 /*
1989 * Number of GCR3 table levels required. Level must be 4-Kbyte
1990 * page and can contain up to 512 entries.
1991 */
get_gcr3_levels(int pasids)1992 static int get_gcr3_levels(int pasids)
1993 {
1994 int levels;
1995
1996 if (pasids == -1)
1997 return amd_iommu_max_glx_val;
1998
1999 levels = get_count_order(pasids);
2000
2001 return levels ? (DIV_ROUND_UP(levels, 9) - 1) : levels;
2002 }
2003
setup_gcr3_table(struct gcr3_tbl_info * gcr3_info,struct amd_iommu * iommu,int pasids)2004 static int setup_gcr3_table(struct gcr3_tbl_info *gcr3_info,
2005 struct amd_iommu *iommu, int pasids)
2006 {
2007 int levels = get_gcr3_levels(pasids);
2008 int nid = iommu ? dev_to_node(&iommu->dev->dev) : NUMA_NO_NODE;
2009 int domid;
2010
2011 if (levels > amd_iommu_max_glx_val)
2012 return -EINVAL;
2013
2014 if (gcr3_info->gcr3_tbl)
2015 return -EBUSY;
2016
2017 /* Allocate per device domain ID */
2018 domid = amd_iommu_pdom_id_alloc();
2019 if (domid <= 0)
2020 return -ENOSPC;
2021 gcr3_info->domid = domid;
2022
2023 gcr3_info->gcr3_tbl = iommu_alloc_pages_node_sz(nid, GFP_ATOMIC, SZ_4K);
2024 if (gcr3_info->gcr3_tbl == NULL) {
2025 amd_iommu_pdom_id_free(domid);
2026 return -ENOMEM;
2027 }
2028
2029 gcr3_info->glx = levels;
2030
2031 return 0;
2032 }
2033
__get_gcr3_pte(struct gcr3_tbl_info * gcr3_info,ioasid_t pasid,bool alloc)2034 static u64 *__get_gcr3_pte(struct gcr3_tbl_info *gcr3_info,
2035 ioasid_t pasid, bool alloc)
2036 {
2037 int index;
2038 u64 *pte;
2039 u64 *root = gcr3_info->gcr3_tbl;
2040 int level = gcr3_info->glx;
2041
2042 while (true) {
2043
2044 index = (pasid >> (9 * level)) & 0x1ff;
2045 pte = &root[index];
2046
2047 if (level == 0)
2048 break;
2049
2050 if (!(*pte & GCR3_VALID)) {
2051 if (!alloc)
2052 return NULL;
2053
2054 root = (void *)get_zeroed_page(GFP_ATOMIC);
2055 if (root == NULL)
2056 return NULL;
2057
2058 *pte = iommu_virt_to_phys(root) | GCR3_VALID;
2059 }
2060
2061 root = iommu_phys_to_virt(*pte & PAGE_MASK);
2062
2063 level -= 1;
2064 }
2065
2066 return pte;
2067 }
2068
update_gcr3(struct iommu_dev_data * dev_data,ioasid_t pasid,unsigned long gcr3,bool set)2069 static int update_gcr3(struct iommu_dev_data *dev_data,
2070 ioasid_t pasid, unsigned long gcr3, bool set)
2071 {
2072 struct gcr3_tbl_info *gcr3_info = &dev_data->gcr3_info;
2073 u64 *pte;
2074
2075 pte = __get_gcr3_pte(gcr3_info, pasid, true);
2076 if (pte == NULL)
2077 return -ENOMEM;
2078
2079 if (set)
2080 *pte = (gcr3 & PAGE_MASK) | GCR3_VALID;
2081 else
2082 *pte = 0;
2083
2084 dev_flush_pasid_all(dev_data, pasid);
2085 return 0;
2086 }
2087
amd_iommu_set_gcr3(struct iommu_dev_data * dev_data,ioasid_t pasid,unsigned long gcr3)2088 int amd_iommu_set_gcr3(struct iommu_dev_data *dev_data, ioasid_t pasid,
2089 unsigned long gcr3)
2090 {
2091 struct gcr3_tbl_info *gcr3_info = &dev_data->gcr3_info;
2092 int ret;
2093
2094 iommu_group_mutex_assert(dev_data->dev);
2095
2096 ret = update_gcr3(dev_data, pasid, gcr3, true);
2097 if (ret)
2098 return ret;
2099
2100 gcr3_info->pasid_cnt++;
2101 return ret;
2102 }
2103
amd_iommu_clear_gcr3(struct iommu_dev_data * dev_data,ioasid_t pasid)2104 int amd_iommu_clear_gcr3(struct iommu_dev_data *dev_data, ioasid_t pasid)
2105 {
2106 struct gcr3_tbl_info *gcr3_info = &dev_data->gcr3_info;
2107 int ret;
2108
2109 iommu_group_mutex_assert(dev_data->dev);
2110
2111 ret = update_gcr3(dev_data, pasid, 0, false);
2112 if (ret)
2113 return ret;
2114
2115 gcr3_info->pasid_cnt--;
2116 return ret;
2117 }
2118
2119 /*
2120 * Note:
2121 * The old value for GCR3 table and GPT have been cleared from caller.
2122 */
set_dte_gcr3_table(struct iommu_dev_data * dev_data,struct dev_table_entry * new)2123 static void set_dte_gcr3_table(struct iommu_dev_data *dev_data,
2124 struct dev_table_entry *new)
2125 {
2126 struct gcr3_tbl_info *gcr3_info = &dev_data->gcr3_info;
2127 u64 gcr3 = iommu_virt_to_phys(gcr3_info->gcr3_tbl);
2128
2129 new->data[0] |= DTE_FLAG_TV |
2130 (dev_data->ppr ? DTE_FLAG_PPR : 0) |
2131 (pdom_is_v2_pgtbl_mode(dev_data->domain) ? DTE_FLAG_GIOV : 0) |
2132 DTE_FLAG_GV |
2133 FIELD_PREP(DTE_GLX, gcr3_info->glx) |
2134 FIELD_PREP(DTE_GCR3_14_12, gcr3 >> 12) |
2135 DTE_FLAG_IR | DTE_FLAG_IW;
2136
2137 new->data[1] |= FIELD_PREP(DTE_DOMID_MASK, dev_data->gcr3_info.domid) |
2138 FIELD_PREP(DTE_GCR3_30_15, gcr3 >> 15) |
2139 (dev_data->ats_enabled ? DTE_FLAG_IOTLB : 0) |
2140 FIELD_PREP(DTE_GCR3_51_31, gcr3 >> 31);
2141
2142 /* Guest page table can only support 4 and 5 levels */
2143 if (amd_iommu_gpt_level == PAGE_MODE_5_LEVEL)
2144 new->data[2] |= FIELD_PREP(DTE_GPT_LEVEL_MASK, GUEST_PGTABLE_5_LEVEL);
2145 else
2146 new->data[2] |= FIELD_PREP(DTE_GPT_LEVEL_MASK, GUEST_PGTABLE_4_LEVEL);
2147 }
2148
amd_iommu_set_dte_v1(struct iommu_dev_data * dev_data,struct protection_domain * domain,u16 domid,struct pt_iommu_amdv1_hw_info * pt_info,struct dev_table_entry * new)2149 void amd_iommu_set_dte_v1(struct iommu_dev_data *dev_data,
2150 struct protection_domain *domain, u16 domid,
2151 struct pt_iommu_amdv1_hw_info *pt_info,
2152 struct dev_table_entry *new)
2153 {
2154 u64 host_pt_root = __sme_set(pt_info->host_pt_root);
2155
2156 /* Note Dirty tracking is used for v1 table only for now */
2157 new->data[0] |= DTE_FLAG_TV |
2158 FIELD_PREP(DTE_MODE_MASK, pt_info->mode) |
2159 (domain->dirty_tracking ? DTE_FLAG_HAD : 0) |
2160 FIELD_PREP(DTE_HOST_TRP, host_pt_root >> 12) |
2161 DTE_FLAG_IR | DTE_FLAG_IW;
2162
2163 new->data[1] |= FIELD_PREP(DTE_DOMID_MASK, domid) |
2164 (dev_data->ats_enabled ? DTE_FLAG_IOTLB : 0);
2165 }
2166
set_dte_v1(struct iommu_dev_data * dev_data,struct protection_domain * domain,u16 domid,phys_addr_t top_paddr,unsigned int top_level,struct dev_table_entry * new)2167 static void set_dte_v1(struct iommu_dev_data *dev_data,
2168 struct protection_domain *domain, u16 domid,
2169 phys_addr_t top_paddr, unsigned int top_level,
2170 struct dev_table_entry *new)
2171 {
2172 struct pt_iommu_amdv1_hw_info pt_info;
2173
2174 /*
2175 * When updating the IO pagetable, the new top and level
2176 * are provided as parameters. For other operations i.e.
2177 * device attach, retrieve the current pagetable info
2178 * via the IOMMU PT API.
2179 */
2180 if (top_paddr) {
2181 pt_info.host_pt_root = top_paddr;
2182 pt_info.mode = top_level + 1;
2183 } else {
2184 WARN_ON(top_paddr || top_level);
2185 pt_iommu_amdv1_hw_info(&domain->amdv1, &pt_info);
2186 }
2187
2188 amd_iommu_set_dte_v1(dev_data, domain, domid, &pt_info, new);
2189 }
2190
set_dte_passthrough(struct iommu_dev_data * dev_data,struct protection_domain * domain,struct dev_table_entry * new)2191 static void set_dte_passthrough(struct iommu_dev_data *dev_data,
2192 struct protection_domain *domain,
2193 struct dev_table_entry *new)
2194 {
2195 new->data[0] |= DTE_FLAG_TV | DTE_FLAG_IR | DTE_FLAG_IW;
2196
2197 new->data[1] |= FIELD_PREP(DTE_DOMID_MASK, domain->id) |
2198 (dev_data->ats_enabled ? DTE_FLAG_IOTLB : 0);
2199
2200 }
2201
set_dte_entry(struct amd_iommu * iommu,struct iommu_dev_data * dev_data,phys_addr_t top_paddr,unsigned int top_level)2202 static void set_dte_entry(struct amd_iommu *iommu,
2203 struct iommu_dev_data *dev_data,
2204 phys_addr_t top_paddr, unsigned int top_level)
2205 {
2206 u32 old_domid;
2207 struct dev_table_entry new = {};
2208 struct protection_domain *domain = dev_data->domain;
2209 struct gcr3_tbl_info *gcr3_info = &dev_data->gcr3_info;
2210 struct dev_table_entry *dte = &get_dev_table(iommu)[dev_data->devid];
2211
2212 amd_iommu_make_clear_dte(dev_data, &new);
2213
2214 old_domid = READ_ONCE(dte->data[1]) & DTE_DOMID_MASK;
2215 if (gcr3_info->gcr3_tbl)
2216 set_dte_gcr3_table(dev_data, &new);
2217 else if (domain->domain.type == IOMMU_DOMAIN_IDENTITY)
2218 set_dte_passthrough(dev_data, domain, &new);
2219 else if ((domain->domain.type & __IOMMU_DOMAIN_PAGING) &&
2220 domain->pd_mode == PD_MODE_V1)
2221 set_dte_v1(dev_data, domain, domain->id, top_paddr, top_level, &new);
2222 else
2223 WARN_ON(true);
2224
2225 amd_iommu_update_dte(iommu, dev_data, &new);
2226
2227 /*
2228 * A kdump kernel might be replacing a domain ID that was copied from
2229 * the previous kernel--if so, it needs to flush the translation cache
2230 * entries for the old domain ID that is being overwritten
2231 */
2232 if (old_domid) {
2233 amd_iommu_flush_tlb_domid(iommu, old_domid);
2234 }
2235 }
2236
2237 /*
2238 * Clear DMA-remap related flags to block all DMA (blockeded domain)
2239 */
clear_dte_entry(struct amd_iommu * iommu,struct iommu_dev_data * dev_data)2240 static void clear_dte_entry(struct amd_iommu *iommu, struct iommu_dev_data *dev_data)
2241 {
2242 struct dev_table_entry new = {};
2243
2244 amd_iommu_make_clear_dte(dev_data, &new);
2245 amd_iommu_update_dte(iommu, dev_data, &new);
2246 }
2247
2248 /* Update and flush DTE for the given device */
dev_update_dte(struct iommu_dev_data * dev_data,bool set)2249 static void dev_update_dte(struct iommu_dev_data *dev_data, bool set)
2250 {
2251 struct amd_iommu *iommu = get_amd_iommu_from_dev(dev_data->dev);
2252
2253 if (set)
2254 set_dte_entry(iommu, dev_data, 0, 0);
2255 else
2256 clear_dte_entry(iommu, dev_data);
2257 }
2258
2259 /*
2260 * If domain is SVA capable then initialize GCR3 table. Also if domain is
2261 * in v2 page table mode then update GCR3[0].
2262 */
init_gcr3_table(struct iommu_dev_data * dev_data,struct protection_domain * pdom)2263 static int init_gcr3_table(struct iommu_dev_data *dev_data,
2264 struct protection_domain *pdom)
2265 {
2266 struct amd_iommu *iommu = get_amd_iommu_from_dev_data(dev_data);
2267 int max_pasids = dev_data->max_pasids;
2268 struct pt_iommu_x86_64_hw_info pt_info;
2269 int ret = 0;
2270
2271 /*
2272 * If domain is in pt mode then setup GCR3 table only if device
2273 * is PASID capable
2274 */
2275 if (pdom_is_in_pt_mode(pdom) && !pdev_pasid_supported(dev_data))
2276 return ret;
2277
2278 /*
2279 * By default, setup GCR3 table to support MAX PASIDs
2280 * supported by the device/IOMMU.
2281 */
2282 ret = setup_gcr3_table(&dev_data->gcr3_info, iommu,
2283 max_pasids > 0 ? max_pasids : 1);
2284 if (ret)
2285 return ret;
2286
2287 /* Setup GCR3[0] only if domain is setup with v2 page table mode */
2288 if (!pdom_is_v2_pgtbl_mode(pdom))
2289 return ret;
2290
2291 pt_iommu_x86_64_hw_info(&pdom->amdv2, &pt_info);
2292 ret = update_gcr3(dev_data, 0, __sme_set(pt_info.gcr3_pt), true);
2293 if (ret)
2294 free_gcr3_table(&dev_data->gcr3_info);
2295
2296 return ret;
2297 }
2298
destroy_gcr3_table(struct iommu_dev_data * dev_data,struct protection_domain * pdom)2299 static void destroy_gcr3_table(struct iommu_dev_data *dev_data,
2300 struct protection_domain *pdom)
2301 {
2302 struct gcr3_tbl_info *gcr3_info = &dev_data->gcr3_info;
2303
2304 if (pdom_is_v2_pgtbl_mode(pdom))
2305 update_gcr3(dev_data, 0, 0, false);
2306
2307 if (gcr3_info->gcr3_tbl == NULL)
2308 return;
2309
2310 free_gcr3_table(gcr3_info);
2311 }
2312
pdom_attach_iommu(struct amd_iommu * iommu,struct protection_domain * pdom)2313 static int pdom_attach_iommu(struct amd_iommu *iommu,
2314 struct protection_domain *pdom)
2315 {
2316 struct pdom_iommu_info *pdom_iommu_info, *curr;
2317 unsigned long flags;
2318 int ret = 0;
2319
2320 spin_lock_irqsave(&pdom->lock, flags);
2321
2322 pdom_iommu_info = xa_load(&pdom->iommu_array, iommu->index);
2323 if (pdom_iommu_info) {
2324 pdom_iommu_info->refcnt++;
2325 goto out_unlock;
2326 }
2327
2328 pdom_iommu_info = kzalloc_obj(*pdom_iommu_info, GFP_ATOMIC);
2329 if (!pdom_iommu_info) {
2330 ret = -ENOMEM;
2331 goto out_unlock;
2332 }
2333
2334 pdom_iommu_info->iommu = iommu;
2335 pdom_iommu_info->refcnt = 1;
2336
2337 curr = xa_cmpxchg(&pdom->iommu_array, iommu->index,
2338 NULL, pdom_iommu_info, GFP_ATOMIC);
2339 if (curr) {
2340 kfree(pdom_iommu_info);
2341 ret = -ENOSPC;
2342 goto out_unlock;
2343 }
2344
2345 out_unlock:
2346 spin_unlock_irqrestore(&pdom->lock, flags);
2347 return ret;
2348 }
2349
pdom_detach_iommu(struct amd_iommu * iommu,struct protection_domain * pdom)2350 static void pdom_detach_iommu(struct amd_iommu *iommu,
2351 struct protection_domain *pdom)
2352 {
2353 struct pdom_iommu_info *pdom_iommu_info;
2354 unsigned long flags;
2355
2356 spin_lock_irqsave(&pdom->lock, flags);
2357
2358 pdom_iommu_info = xa_load(&pdom->iommu_array, iommu->index);
2359 if (!pdom_iommu_info) {
2360 spin_unlock_irqrestore(&pdom->lock, flags);
2361 return;
2362 }
2363
2364 pdom_iommu_info->refcnt--;
2365 if (pdom_iommu_info->refcnt == 0) {
2366 xa_erase(&pdom->iommu_array, iommu->index);
2367 kfree(pdom_iommu_info);
2368 }
2369
2370 spin_unlock_irqrestore(&pdom->lock, flags);
2371 }
2372
2373 /*
2374 * If a device is not yet associated with a domain, this function makes the
2375 * device visible in the domain
2376 */
attach_device(struct device * dev,struct protection_domain * domain)2377 static int attach_device(struct device *dev,
2378 struct protection_domain *domain)
2379 {
2380 struct iommu_dev_data *dev_data = dev_iommu_priv_get(dev);
2381 struct amd_iommu *iommu = get_amd_iommu_from_dev_data(dev_data);
2382 struct pci_dev *pdev;
2383 unsigned long flags;
2384 int ret = 0;
2385
2386 mutex_lock(&dev_data->mutex);
2387
2388 if (dev_data->domain != NULL) {
2389 ret = -EBUSY;
2390 goto out;
2391 }
2392
2393 /* Do reference counting */
2394 ret = pdom_attach_iommu(iommu, domain);
2395 if (ret)
2396 goto out;
2397
2398 /* Setup GCR3 table */
2399 if (pdom_is_sva_capable(domain)) {
2400 ret = init_gcr3_table(dev_data, domain);
2401 if (ret) {
2402 pdom_detach_iommu(iommu, domain);
2403 goto out;
2404 }
2405 }
2406
2407 pdev = dev_is_pci(dev_data->dev) ? to_pci_dev(dev_data->dev) : NULL;
2408 if (pdev && pdom_is_sva_capable(domain)) {
2409 pdev_enable_caps(pdev);
2410
2411 /*
2412 * Device can continue to function even if IOPF
2413 * enablement failed. Hence in error path just
2414 * disable device PRI support.
2415 */
2416 if (amd_iommu_iopf_add_device(iommu, dev_data))
2417 pdev_disable_cap_pri(pdev);
2418 } else if (pdev) {
2419 pdev_enable_cap_ats(pdev);
2420 }
2421
2422 /* Update data structures */
2423 dev_data->domain = domain;
2424 spin_lock_irqsave(&domain->lock, flags);
2425 list_add(&dev_data->list, &domain->dev_list);
2426 spin_unlock_irqrestore(&domain->lock, flags);
2427
2428 /* Update device table */
2429 dev_update_dte(dev_data, true);
2430
2431 out:
2432 mutex_unlock(&dev_data->mutex);
2433
2434 return ret;
2435 }
2436
2437 /*
2438 * Removes a device from a protection domain (with devtable_lock held)
2439 */
detach_device(struct device * dev)2440 static void detach_device(struct device *dev)
2441 {
2442 struct iommu_dev_data *dev_data = dev_iommu_priv_get(dev);
2443 struct amd_iommu *iommu = get_amd_iommu_from_dev_data(dev_data);
2444 struct protection_domain *domain = dev_data->domain;
2445 unsigned long flags;
2446
2447 mutex_lock(&dev_data->mutex);
2448
2449 /*
2450 * First check if the device is still attached. It might already
2451 * be detached from its domain because the generic
2452 * iommu_detach_group code detached it and we try again here in
2453 * our alias handling.
2454 */
2455 if (WARN_ON(!dev_data->domain))
2456 goto out;
2457
2458 /* Remove IOPF handler */
2459 if (dev_data->ppr) {
2460 iopf_queue_flush_dev(dev);
2461 amd_iommu_iopf_remove_device(iommu, dev_data);
2462 }
2463
2464 if (dev_is_pci(dev))
2465 pdev_disable_caps(to_pci_dev(dev));
2466
2467 /* Clear DTE and flush the entry */
2468 dev_update_dte(dev_data, false);
2469
2470 /* Flush IOTLB and wait for the flushes to finish */
2471 spin_lock_irqsave(&domain->lock, flags);
2472 amd_iommu_domain_flush_all(domain);
2473 list_del(&dev_data->list);
2474 spin_unlock_irqrestore(&domain->lock, flags);
2475
2476 /* Clear GCR3 table */
2477 if (pdom_is_sva_capable(domain))
2478 destroy_gcr3_table(dev_data, domain);
2479
2480 /* Update data structures */
2481 dev_data->domain = NULL;
2482
2483 /* decrease reference counters - needs to happen after the flushes */
2484 pdom_detach_iommu(iommu, domain);
2485
2486 out:
2487 mutex_unlock(&dev_data->mutex);
2488 }
2489
amd_iommu_probe_device(struct device * dev)2490 static struct iommu_device *amd_iommu_probe_device(struct device *dev)
2491 {
2492 struct iommu_device *iommu_dev;
2493 struct amd_iommu *iommu;
2494 struct iommu_dev_data *dev_data;
2495 int ret;
2496
2497 if (!check_device(dev))
2498 return ERR_PTR(-ENODEV);
2499
2500 iommu = rlookup_amd_iommu(dev);
2501 if (!iommu)
2502 return ERR_PTR(-ENODEV);
2503
2504 /* Not registered yet? */
2505 if (!iommu->iommu.ops)
2506 return ERR_PTR(-ENODEV);
2507
2508 if (dev_iommu_priv_get(dev))
2509 return &iommu->iommu;
2510
2511 ret = iommu_init_device(iommu, dev);
2512 if (ret) {
2513 dev_err(dev, "Failed to initialize - trying to proceed anyway\n");
2514 iommu_dev = ERR_PTR(ret);
2515 iommu_ignore_device(iommu, dev);
2516 goto out_err;
2517 }
2518
2519 amd_iommu_set_pci_msi_domain(dev, iommu);
2520 iommu_dev = &iommu->iommu;
2521
2522 /*
2523 * If IOMMU and device supports PASID then it will contain max
2524 * supported PASIDs, else it will be zero.
2525 */
2526 dev_data = dev_iommu_priv_get(dev);
2527 if (amd_iommu_pasid_supported() && dev_is_pci(dev) &&
2528 pdev_pasid_supported(dev_data)) {
2529 dev_data->max_pasids = min_t(u32, iommu->iommu.max_pasids,
2530 pci_max_pasids(to_pci_dev(dev)));
2531 }
2532
2533 if (amd_iommu_pgtable == PD_MODE_NONE) {
2534 pr_warn_once("%s: DMA translation not supported by iommu.\n",
2535 __func__);
2536 iommu_dev = ERR_PTR(-ENODEV);
2537 goto out_err;
2538 }
2539
2540 iommu_completion_wait(iommu);
2541
2542 if (FEATURE_NUM_INT_REMAP_SUP_2K(amd_iommu_efr2))
2543 dev_data->max_irqs = MAX_IRQS_PER_TABLE_2K;
2544 else
2545 dev_data->max_irqs = MAX_IRQS_PER_TABLE_512;
2546
2547 if (dev_is_pci(dev))
2548 pci_prepare_ats(to_pci_dev(dev), PAGE_SHIFT);
2549
2550 out_err:
2551 return iommu_dev;
2552 }
2553
amd_iommu_release_device(struct device * dev)2554 static void amd_iommu_release_device(struct device *dev)
2555 {
2556 struct iommu_dev_data *dev_data = dev_iommu_priv_get(dev);
2557
2558 WARN_ON(dev_data->domain);
2559
2560 /*
2561 * We keep dev_data around for unplugged devices and reuse it when the
2562 * device is re-plugged - not doing so would introduce a ton of races.
2563 */
2564 }
2565
amd_iommu_device_group(struct device * dev)2566 static struct iommu_group *amd_iommu_device_group(struct device *dev)
2567 {
2568 if (dev_is_pci(dev))
2569 return pci_device_group(dev);
2570
2571 return acpihid_device_group(dev);
2572 }
2573
2574 /*****************************************************************************
2575 *
2576 * The following functions belong to the exported interface of AMD IOMMU
2577 *
2578 * This interface allows access to lower level functions of the IOMMU
2579 * like protection domain handling and assignement of devices to domains
2580 * which is not possible with the dma_ops interface.
2581 *
2582 *****************************************************************************/
2583
protection_domain_init(struct protection_domain * domain)2584 static void protection_domain_init(struct protection_domain *domain)
2585 {
2586 spin_lock_init(&domain->lock);
2587 INIT_LIST_HEAD(&domain->dev_list);
2588 INIT_LIST_HEAD(&domain->dev_data_list);
2589 INIT_LIST_HEAD(&domain->viommu_list);
2590 xa_init(&domain->iommu_array);
2591 }
2592
protection_domain_alloc(void)2593 struct protection_domain *protection_domain_alloc(void)
2594 {
2595 struct protection_domain *domain;
2596 int domid;
2597
2598 domain = kzalloc_obj(*domain);
2599 if (!domain)
2600 return NULL;
2601
2602 domid = amd_iommu_pdom_id_alloc();
2603 if (domid <= 0) {
2604 kfree(domain);
2605 return NULL;
2606 }
2607 domain->id = domid;
2608
2609 protection_domain_init(domain);
2610
2611 return domain;
2612 }
2613
amd_iommu_hd_support(struct amd_iommu * iommu)2614 static bool amd_iommu_hd_support(struct amd_iommu *iommu)
2615 {
2616 if (amd_iommu_hatdis)
2617 return false;
2618
2619 return iommu && (iommu->features & FEATURE_HDSUP);
2620 }
2621
amd_iommu_get_top_lock(struct pt_iommu * iommupt)2622 static spinlock_t *amd_iommu_get_top_lock(struct pt_iommu *iommupt)
2623 {
2624 struct protection_domain *pdom =
2625 container_of(iommupt, struct protection_domain, iommu);
2626
2627 return &pdom->lock;
2628 }
2629
2630 /*
2631 * Update all HW references to the domain with a new pgtable configuration.
2632 */
amd_iommu_change_top(struct pt_iommu * iommu_table,phys_addr_t top_paddr,unsigned int top_level)2633 static void amd_iommu_change_top(struct pt_iommu *iommu_table,
2634 phys_addr_t top_paddr, unsigned int top_level)
2635 {
2636 struct protection_domain *pdom =
2637 container_of(iommu_table, struct protection_domain, iommu);
2638 struct iommu_dev_data *dev_data;
2639
2640 lockdep_assert_held(&pdom->lock);
2641
2642 /* Update the DTE for all devices attached to this domain */
2643 list_for_each_entry(dev_data, &pdom->dev_list, list) {
2644 struct amd_iommu *iommu = rlookup_amd_iommu(dev_data->dev);
2645
2646 /* Update the HW references with the new level and top ptr */
2647 set_dte_entry(iommu, dev_data, top_paddr, top_level);
2648 clone_aliases(iommu, dev_data->dev);
2649 }
2650
2651 list_for_each_entry(dev_data, &pdom->dev_list, list)
2652 device_flush_dte(dev_data);
2653
2654 domain_flush_complete(pdom);
2655 }
2656
2657 /*
2658 * amd_iommu_iotlb_sync_map() is used to generate flushes for non-present to
2659 * present (ie mapping) operations. It is a NOP if the IOMMU doesn't have non
2660 * present caching (like hypervisor shadowing).
2661 */
amd_iommu_iotlb_sync_map(struct iommu_domain * dom,unsigned long iova,size_t size)2662 static int amd_iommu_iotlb_sync_map(struct iommu_domain *dom,
2663 unsigned long iova, size_t size)
2664 {
2665 struct protection_domain *domain = to_pdomain(dom);
2666 unsigned long flags;
2667
2668 if (likely(!amd_iommu_np_cache))
2669 return 0;
2670
2671 spin_lock_irqsave(&domain->lock, flags);
2672 amd_iommu_domain_flush_pages(domain, iova, iova + size - 1,
2673 CMD_INV_IOMMU_PAGES_PDE_MASK);
2674 spin_unlock_irqrestore(&domain->lock, flags);
2675 return 0;
2676 }
2677
amd_iommu_flush_iotlb_all(struct iommu_domain * domain)2678 static void amd_iommu_flush_iotlb_all(struct iommu_domain *domain)
2679 {
2680 struct protection_domain *dom = to_pdomain(domain);
2681 unsigned long flags;
2682
2683 spin_lock_irqsave(&dom->lock, flags);
2684 amd_iommu_domain_flush_all(dom);
2685 spin_unlock_irqrestore(&dom->lock, flags);
2686 }
2687
amd_iommu_iotlb_sync(struct iommu_domain * domain,struct iommu_iotlb_gather * gather)2688 static void amd_iommu_iotlb_sync(struct iommu_domain *domain,
2689 struct iommu_iotlb_gather *gather)
2690 {
2691 struct protection_domain *dom = to_pdomain(domain);
2692 unsigned long flags;
2693
2694 spin_lock_irqsave(&dom->lock, flags);
2695 amd_iommu_domain_flush_pages(dom, gather->start, gather->end,
2696 iommu_pages_list_empty(&gather->freelist) ?
2697 0 : CMD_INV_IOMMU_PAGES_PDE_MASK);
2698 spin_unlock_irqrestore(&dom->lock, flags);
2699 iommu_put_pages_list(&gather->freelist);
2700 }
2701
2702 static const struct pt_iommu_driver_ops amd_hw_driver_ops_v1 = {
2703 .get_top_lock = amd_iommu_get_top_lock,
2704 .change_top = amd_iommu_change_top,
2705 };
2706
2707 static const struct iommu_domain_ops amdv1_ops = {
2708 IOMMU_PT_DOMAIN_OPS(amdv1),
2709 .iotlb_sync_map = amd_iommu_iotlb_sync_map,
2710 .flush_iotlb_all = amd_iommu_flush_iotlb_all,
2711 .iotlb_sync = amd_iommu_iotlb_sync,
2712 .attach_dev = amd_iommu_attach_device,
2713 .free = amd_iommu_domain_free,
2714 .enforce_cache_coherency = amd_iommu_enforce_cache_coherency,
2715 };
2716
2717 static const struct iommu_dirty_ops amdv1_dirty_ops = {
2718 IOMMU_PT_DIRTY_OPS(amdv1),
2719 .set_dirty_tracking = amd_iommu_set_dirty_tracking,
2720 };
2721
amd_iommu_domain_alloc_paging_v1(struct device * dev,u32 flags)2722 static struct iommu_domain *amd_iommu_domain_alloc_paging_v1(struct device *dev,
2723 u32 flags)
2724 {
2725 struct pt_iommu_amdv1_cfg cfg = {};
2726 struct protection_domain *domain;
2727 int ret;
2728
2729 if (amd_iommu_hatdis)
2730 return ERR_PTR(-EOPNOTSUPP);
2731
2732 domain = protection_domain_alloc();
2733 if (!domain)
2734 return ERR_PTR(-ENOMEM);
2735
2736 domain->pd_mode = PD_MODE_V1;
2737 domain->iommu.driver_ops = &amd_hw_driver_ops_v1;
2738 domain->iommu.nid = dev_to_node(dev);
2739 if (flags & IOMMU_HWPT_ALLOC_DIRTY_TRACKING)
2740 domain->domain.dirty_ops = &amdv1_dirty_ops;
2741
2742 /*
2743 * Someday FORCE_COHERENCE should be set by
2744 * amd_iommu_enforce_cache_coherency() like VT-d does.
2745 */
2746 cfg.common.features = BIT(PT_FEAT_DYNAMIC_TOP) |
2747 BIT(PT_FEAT_AMDV1_ENCRYPT_TABLES) |
2748 BIT(PT_FEAT_AMDV1_FORCE_COHERENCE);
2749
2750 /*
2751 * AMD's IOMMU can flush as many pages as necessary in a single flush.
2752 * Unless we run in a virtual machine, which can be inferred according
2753 * to whether "non-present cache" is on, it is probably best to prefer
2754 * (potentially) too extensive TLB flushing (i.e., more misses) over
2755 * multiple TLB flushes (i.e., more flushes). For virtual machines the
2756 * hypervisor needs to synchronize the host IOMMU PTEs with those of
2757 * the guest, and the trade-off is different: unnecessary TLB flushes
2758 * should be avoided.
2759 */
2760 if (amd_iommu_np_cache)
2761 cfg.common.features |= BIT(PT_FEAT_FLUSH_RANGE_NO_GAPS);
2762 else
2763 cfg.common.features |= BIT(PT_FEAT_FLUSH_RANGE);
2764
2765 cfg.common.hw_max_vasz_lg2 = amd_iommu_hpt_vasize;
2766 cfg.common.hw_max_oasz_lg2 = 52;
2767 cfg.starting_level = 2;
2768 domain->domain.ops = &amdv1_ops;
2769
2770 ret = pt_iommu_amdv1_init(&domain->amdv1, &cfg, GFP_KERNEL);
2771 if (ret) {
2772 amd_iommu_domain_free(&domain->domain);
2773 return ERR_PTR(ret);
2774 }
2775
2776 /*
2777 * Narrow the supported page sizes to those selected by the kernel
2778 * command line.
2779 */
2780 domain->domain.pgsize_bitmap &= amd_iommu_pgsize_bitmap;
2781 return &domain->domain;
2782 }
2783
2784 static const struct iommu_domain_ops amdv2_ops = {
2785 IOMMU_PT_DOMAIN_OPS(x86_64),
2786 .iotlb_sync_map = amd_iommu_iotlb_sync_map,
2787 .flush_iotlb_all = amd_iommu_flush_iotlb_all,
2788 .iotlb_sync = amd_iommu_iotlb_sync,
2789 .attach_dev = amd_iommu_attach_device,
2790 .free = amd_iommu_domain_free,
2791 /*
2792 * Note the AMDv2 page table format does not support a Force Coherency
2793 * bit, so enforce_cache_coherency should not be set. However VFIO is
2794 * not prepared to handle a case where some domains will support
2795 * enforcement and others do not. VFIO and iommufd will have to be fixed
2796 * before it can fully use the V2 page table. See the comment in
2797 * iommufd_hwpt_paging_alloc(). For now leave things as they have
2798 * historically been and lie about enforce_cache_coherencey.
2799 */
2800 .enforce_cache_coherency = amd_iommu_enforce_cache_coherency,
2801 };
2802
amd_iommu_domain_alloc_paging_v2(struct device * dev,u32 flags)2803 static struct iommu_domain *amd_iommu_domain_alloc_paging_v2(struct device *dev,
2804 u32 flags)
2805 {
2806 struct pt_iommu_x86_64_cfg cfg = {};
2807 struct protection_domain *domain;
2808 int ret;
2809
2810 if (!amd_iommu_v2_pgtbl_supported())
2811 return ERR_PTR(-EOPNOTSUPP);
2812
2813 domain = protection_domain_alloc();
2814 if (!domain)
2815 return ERR_PTR(-ENOMEM);
2816
2817 domain->pd_mode = PD_MODE_V2;
2818 domain->iommu.nid = dev_to_node(dev);
2819
2820 cfg.common.features = BIT(PT_FEAT_X86_64_AMD_ENCRYPT_TABLES);
2821 if (amd_iommu_np_cache)
2822 cfg.common.features |= BIT(PT_FEAT_FLUSH_RANGE_NO_GAPS);
2823 else
2824 cfg.common.features |= BIT(PT_FEAT_FLUSH_RANGE);
2825
2826 /*
2827 * The v2 table behaves differently if it is attached to PASID 0 vs a
2828 * non-zero PASID. On PASID 0 it has no sign extension and the full
2829 * 57/48 bits decode the lower addresses. Otherwise it behaves like a
2830 * normal sign extended x86 page table. Since we want the domain to work
2831 * in both modes the top bit is removed and PT_FEAT_SIGN_EXTEND is not
2832 * set which creates a table that is compatible in both modes.
2833 */
2834 if (amd_iommu_gpt_level == PAGE_MODE_5_LEVEL) {
2835 cfg.common.hw_max_vasz_lg2 = 56;
2836 cfg.top_level = 4;
2837 } else {
2838 cfg.common.hw_max_vasz_lg2 = 47;
2839 cfg.top_level = 3;
2840 }
2841 cfg.common.hw_max_oasz_lg2 = 52;
2842 domain->domain.ops = &amdv2_ops;
2843
2844 ret = pt_iommu_x86_64_init(&domain->amdv2, &cfg, GFP_KERNEL);
2845 if (ret) {
2846 amd_iommu_domain_free(&domain->domain);
2847 return ERR_PTR(ret);
2848 }
2849 return &domain->domain;
2850 }
2851
is_nest_parent_supported(u32 flags)2852 static inline bool is_nest_parent_supported(u32 flags)
2853 {
2854 /* Only allow nest parent when these features are supported */
2855 return check_feature(FEATURE_GT) &&
2856 check_feature(FEATURE_GIOSUP) &&
2857 check_feature2(FEATURE_GCR3TRPMODE);
2858 }
2859
2860 static struct iommu_domain *
amd_iommu_domain_alloc_paging_flags(struct device * dev,u32 flags,const struct iommu_user_data * user_data)2861 amd_iommu_domain_alloc_paging_flags(struct device *dev, u32 flags,
2862 const struct iommu_user_data *user_data)
2863
2864 {
2865 struct amd_iommu *iommu = get_amd_iommu_from_dev(dev);
2866 const u32 supported_flags = IOMMU_HWPT_ALLOC_DIRTY_TRACKING |
2867 IOMMU_HWPT_ALLOC_PASID |
2868 IOMMU_HWPT_ALLOC_NEST_PARENT;
2869
2870 if ((flags & ~supported_flags) || user_data)
2871 return ERR_PTR(-EOPNOTSUPP);
2872
2873 switch (flags & supported_flags) {
2874 case IOMMU_HWPT_ALLOC_DIRTY_TRACKING:
2875 case IOMMU_HWPT_ALLOC_NEST_PARENT:
2876 case IOMMU_HWPT_ALLOC_DIRTY_TRACKING | IOMMU_HWPT_ALLOC_NEST_PARENT:
2877 /*
2878 * Allocate domain with v1 page table for dirty tracking
2879 * and/or Nest parent.
2880 */
2881 if ((flags & IOMMU_HWPT_ALLOC_DIRTY_TRACKING) &&
2882 !amd_iommu_hd_support(iommu))
2883 break;
2884
2885 if ((flags & IOMMU_HWPT_ALLOC_NEST_PARENT) &&
2886 !is_nest_parent_supported(flags))
2887 break;
2888
2889 return amd_iommu_domain_alloc_paging_v1(dev, flags);
2890 case IOMMU_HWPT_ALLOC_PASID:
2891 /* Allocate domain with v2 page table if IOMMU supports PASID. */
2892 if (!amd_iommu_pasid_supported())
2893 break;
2894 return amd_iommu_domain_alloc_paging_v2(dev, flags);
2895 case 0: {
2896 struct iommu_domain *ret;
2897
2898 /* If nothing specific is required use the kernel commandline default */
2899 if (amd_iommu_pgtable == PD_MODE_V1) {
2900 ret = amd_iommu_domain_alloc_paging_v1(dev, flags);
2901 if (ret != ERR_PTR(-EOPNOTSUPP))
2902 return ret;
2903 return amd_iommu_domain_alloc_paging_v2(dev, flags);
2904 }
2905 ret = amd_iommu_domain_alloc_paging_v2(dev, flags);
2906 if (ret != ERR_PTR(-EOPNOTSUPP))
2907 return ret;
2908 return amd_iommu_domain_alloc_paging_v1(dev, flags);
2909 }
2910 default:
2911 break;
2912 }
2913 return ERR_PTR(-EOPNOTSUPP);
2914 }
2915
amd_iommu_domain_free(struct iommu_domain * dom)2916 void amd_iommu_domain_free(struct iommu_domain *dom)
2917 {
2918 struct protection_domain *domain = to_pdomain(dom);
2919
2920 WARN_ON(!list_empty(&domain->dev_list));
2921 pt_iommu_deinit(&domain->iommu);
2922 amd_iommu_pdom_id_free(domain->id);
2923 kfree(domain);
2924 }
2925
blocked_domain_attach_device(struct iommu_domain * domain,struct device * dev,struct iommu_domain * old)2926 static int blocked_domain_attach_device(struct iommu_domain *domain,
2927 struct device *dev,
2928 struct iommu_domain *old)
2929 {
2930 struct iommu_dev_data *dev_data = dev_iommu_priv_get(dev);
2931
2932 if (dev_data->domain)
2933 detach_device(dev);
2934
2935 /* Clear DTE and flush the entry */
2936 mutex_lock(&dev_data->mutex);
2937 dev_update_dte(dev_data, false);
2938 mutex_unlock(&dev_data->mutex);
2939
2940 return 0;
2941 }
2942
blocked_domain_set_dev_pasid(struct iommu_domain * domain,struct device * dev,ioasid_t pasid,struct iommu_domain * old)2943 static int blocked_domain_set_dev_pasid(struct iommu_domain *domain,
2944 struct device *dev, ioasid_t pasid,
2945 struct iommu_domain *old)
2946 {
2947 amd_iommu_remove_dev_pasid(dev, pasid, old);
2948 return 0;
2949 }
2950
2951 static struct iommu_domain blocked_domain = {
2952 .type = IOMMU_DOMAIN_BLOCKED,
2953 .ops = &(const struct iommu_domain_ops) {
2954 .attach_dev = blocked_domain_attach_device,
2955 .set_dev_pasid = blocked_domain_set_dev_pasid,
2956 }
2957 };
2958
2959 static struct protection_domain identity_domain;
2960
amd_iommu_identity_attach(struct iommu_domain * dom,struct device * dev,struct iommu_domain * old)2961 static int amd_iommu_identity_attach(struct iommu_domain *dom, struct device *dev,
2962 struct iommu_domain *old)
2963 {
2964 /*
2965 * Don't allow attaching a device to the identity domain if SNP is
2966 * enabled and SNP Mode0 support is not present.
2967 */
2968 if (amd_iommu_snp_en && !amd_iommu_snp_mode0_sup)
2969 return -EINVAL;
2970
2971 return amd_iommu_attach_device(dom, dev, old);
2972 }
2973
2974 static const struct iommu_domain_ops identity_domain_ops = {
2975 .attach_dev = amd_iommu_identity_attach,
2976 };
2977
amd_iommu_init_identity_domain(void)2978 void amd_iommu_init_identity_domain(void)
2979 {
2980 struct iommu_domain *domain = &identity_domain.domain;
2981
2982 domain->type = IOMMU_DOMAIN_IDENTITY;
2983 domain->ops = &identity_domain_ops;
2984 domain->owner = &amd_iommu_ops;
2985
2986 identity_domain.id = amd_iommu_pdom_id_alloc();
2987
2988 protection_domain_init(&identity_domain);
2989 }
2990
amd_iommu_attach_device(struct iommu_domain * dom,struct device * dev,struct iommu_domain * old)2991 static int amd_iommu_attach_device(struct iommu_domain *dom, struct device *dev,
2992 struct iommu_domain *old)
2993 {
2994 struct iommu_dev_data *dev_data = dev_iommu_priv_get(dev);
2995 struct protection_domain *domain = to_pdomain(dom);
2996 struct amd_iommu *iommu = get_amd_iommu_from_dev(dev);
2997 int ret;
2998
2999 /*
3000 * Skip attach device to domain if new domain is same as
3001 * devices current domain
3002 */
3003 if (dev_data->domain == domain)
3004 return 0;
3005
3006 dev_data->defer_attach = false;
3007
3008 /*
3009 * Restrict to devices with compatible IOMMU hardware support
3010 * when enforcement of dirty tracking is enabled.
3011 */
3012 if (dom->dirty_ops && !amd_iommu_hd_support(iommu))
3013 return -EINVAL;
3014
3015 if (dev_data->domain)
3016 detach_device(dev);
3017
3018 ret = attach_device(dev, domain);
3019
3020 #ifdef CONFIG_IRQ_REMAP
3021 if (AMD_IOMMU_GUEST_IR_VAPIC(amd_iommu_guest_ir)) {
3022 if (dom->type == IOMMU_DOMAIN_UNMANAGED)
3023 dev_data->use_vapic = 1;
3024 else
3025 dev_data->use_vapic = 0;
3026 }
3027 #endif
3028
3029 return ret;
3030 }
3031
amd_iommu_capable(struct device * dev,enum iommu_cap cap)3032 static bool amd_iommu_capable(struct device *dev, enum iommu_cap cap)
3033 {
3034 switch (cap) {
3035 case IOMMU_CAP_CACHE_COHERENCY:
3036 return true;
3037 case IOMMU_CAP_NOEXEC:
3038 return false;
3039 case IOMMU_CAP_PRE_BOOT_PROTECTION:
3040 return amdr_ivrs_remap_support;
3041 case IOMMU_CAP_ENFORCE_CACHE_COHERENCY:
3042 return true;
3043 case IOMMU_CAP_DIRTY_TRACKING: {
3044 struct amd_iommu *iommu = get_amd_iommu_from_dev(dev);
3045
3046 return amd_iommu_hd_support(iommu);
3047 }
3048 case IOMMU_CAP_PCI_ATS_SUPPORTED: {
3049 struct iommu_dev_data *dev_data = dev_iommu_priv_get(dev);
3050
3051 return amd_iommu_iotlb_sup &&
3052 (dev_data->flags & AMD_IOMMU_DEVICE_FLAG_ATS_SUP);
3053 }
3054 default:
3055 break;
3056 }
3057
3058 return false;
3059 }
3060
amd_iommu_set_dirty_tracking(struct iommu_domain * domain,bool enable)3061 static int amd_iommu_set_dirty_tracking(struct iommu_domain *domain,
3062 bool enable)
3063 {
3064 struct protection_domain *pdomain = to_pdomain(domain);
3065 struct dev_table_entry *dte;
3066 struct iommu_dev_data *dev_data;
3067 bool domain_flush = false;
3068 struct amd_iommu *iommu;
3069 unsigned long flags;
3070 u64 new;
3071
3072 spin_lock_irqsave(&pdomain->lock, flags);
3073 if (!(pdomain->dirty_tracking ^ enable)) {
3074 spin_unlock_irqrestore(&pdomain->lock, flags);
3075 return 0;
3076 }
3077
3078 list_for_each_entry(dev_data, &pdomain->dev_list, list) {
3079 spin_lock(&dev_data->dte_lock);
3080 iommu = get_amd_iommu_from_dev_data(dev_data);
3081 dte = &get_dev_table(iommu)[dev_data->devid];
3082 new = dte->data[0];
3083 new = (enable ? new | DTE_FLAG_HAD : new & ~DTE_FLAG_HAD);
3084 dte->data[0] = new;
3085 spin_unlock(&dev_data->dte_lock);
3086
3087 /* Flush device DTE */
3088 device_flush_dte(dev_data);
3089 domain_flush = true;
3090 }
3091
3092 /* Flush IOTLB to mark IOPTE dirty on the next translation(s) */
3093 if (domain_flush)
3094 amd_iommu_domain_flush_all(pdomain);
3095
3096 pdomain->dirty_tracking = enable;
3097 spin_unlock_irqrestore(&pdomain->lock, flags);
3098
3099 return 0;
3100 }
3101
amd_iommu_get_resv_regions(struct device * dev,struct list_head * head)3102 static void amd_iommu_get_resv_regions(struct device *dev,
3103 struct list_head *head)
3104 {
3105 struct iommu_resv_region *region;
3106 struct unity_map_entry *entry;
3107 struct amd_iommu *iommu;
3108 struct amd_iommu_pci_seg *pci_seg;
3109 int devid, sbdf;
3110
3111 sbdf = get_device_sbdf_id(dev);
3112 if (sbdf < 0)
3113 return;
3114
3115 devid = PCI_SBDF_TO_DEVID(sbdf);
3116 iommu = get_amd_iommu_from_dev(dev);
3117 pci_seg = iommu->pci_seg;
3118
3119 list_for_each_entry(entry, &pci_seg->unity_map, list) {
3120 int type, prot = 0;
3121 size_t length;
3122
3123 if (devid < entry->devid_start || devid > entry->devid_end)
3124 continue;
3125
3126 type = IOMMU_RESV_DIRECT;
3127 length = entry->address_end - entry->address_start;
3128 if (entry->prot & IOMMU_PROT_IR)
3129 prot |= IOMMU_READ;
3130 if (entry->prot & IOMMU_PROT_IW)
3131 prot |= IOMMU_WRITE;
3132
3133 region = iommu_alloc_resv_region(entry->address_start,
3134 length, prot, type,
3135 GFP_KERNEL);
3136 if (!region) {
3137 dev_err(dev, "Out of memory allocating dm-regions\n");
3138 return;
3139 }
3140 list_add_tail(®ion->list, head);
3141 }
3142
3143 region = iommu_alloc_resv_region(MSI_RANGE_START,
3144 MSI_RANGE_END - MSI_RANGE_START + 1,
3145 0, IOMMU_RESV_MSI, GFP_KERNEL);
3146 if (!region)
3147 return;
3148 list_add_tail(®ion->list, head);
3149
3150 if (amd_iommu_ht_range_ignore())
3151 return;
3152
3153 region = iommu_alloc_resv_region(HT_RANGE_START,
3154 HT_RANGE_END - HT_RANGE_START + 1,
3155 0, IOMMU_RESV_RESERVED, GFP_KERNEL);
3156 if (!region)
3157 return;
3158 list_add_tail(®ion->list, head);
3159 }
3160
amd_iommu_is_attach_deferred(struct device * dev)3161 static bool amd_iommu_is_attach_deferred(struct device *dev)
3162 {
3163 struct iommu_dev_data *dev_data = dev_iommu_priv_get(dev);
3164
3165 return dev_data->defer_attach;
3166 }
3167
amd_iommu_def_domain_type(struct device * dev)3168 static int amd_iommu_def_domain_type(struct device *dev)
3169 {
3170 struct iommu_dev_data *dev_data;
3171
3172 dev_data = dev_iommu_priv_get(dev);
3173 if (!dev_data)
3174 return 0;
3175
3176 /* Always use DMA domain for untrusted device */
3177 if (dev_is_pci(dev) && to_pci_dev(dev)->untrusted)
3178 return IOMMU_DOMAIN_DMA;
3179
3180 /*
3181 * Do not identity map IOMMUv2 capable devices when:
3182 * - memory encryption is active, because some of those devices
3183 * (AMD GPUs) don't have the encryption bit in their DMA-mask
3184 * and require remapping.
3185 * - SNP is enabled, because it prohibits DTE[Mode]=0.
3186 */
3187 if (pdev_pasid_supported(dev_data) &&
3188 !cc_platform_has(CC_ATTR_MEM_ENCRYPT) &&
3189 !amd_iommu_snp_en) {
3190 return IOMMU_DOMAIN_IDENTITY;
3191 }
3192
3193 return 0;
3194 }
3195
amd_iommu_enforce_cache_coherency(struct iommu_domain * domain)3196 static bool amd_iommu_enforce_cache_coherency(struct iommu_domain *domain)
3197 {
3198 /* IOMMU_PTE_FC is always set */
3199 return true;
3200 }
3201
3202 const struct iommu_ops amd_iommu_ops = {
3203 .capable = amd_iommu_capable,
3204 .hw_info = amd_iommufd_hw_info,
3205 .blocked_domain = &blocked_domain,
3206 .release_domain = &blocked_domain,
3207 .identity_domain = &identity_domain.domain,
3208 .domain_alloc_paging_flags = amd_iommu_domain_alloc_paging_flags,
3209 .domain_alloc_sva = amd_iommu_domain_alloc_sva,
3210 .probe_device = amd_iommu_probe_device,
3211 .release_device = amd_iommu_release_device,
3212 .device_group = amd_iommu_device_group,
3213 .get_resv_regions = amd_iommu_get_resv_regions,
3214 .is_attach_deferred = amd_iommu_is_attach_deferred,
3215 .def_domain_type = amd_iommu_def_domain_type,
3216 .page_response = amd_iommu_page_response,
3217 .get_viommu_size = amd_iommufd_get_viommu_size,
3218 .viommu_init = amd_iommufd_viommu_init,
3219 };
3220
3221 #ifdef CONFIG_IRQ_REMAP
3222
3223 /*****************************************************************************
3224 *
3225 * Interrupt Remapping Implementation
3226 *
3227 *****************************************************************************/
3228
3229 static struct irq_chip amd_ir_chip;
3230 static DEFINE_SPINLOCK(iommu_table_lock);
3231
iommu_flush_dev_irt(struct pci_dev * unused,u16 devid,void * data)3232 static int iommu_flush_dev_irt(struct pci_dev *unused, u16 devid, void *data)
3233 {
3234 int ret;
3235 struct iommu_cmd cmd;
3236 struct amd_iommu *iommu = data;
3237
3238 build_inv_irt(&cmd, devid);
3239 ret = __iommu_queue_command_sync(iommu, &cmd, true);
3240 return ret;
3241 }
3242
iommu_flush_irt_and_complete(struct amd_iommu * iommu,u16 devid)3243 static void iommu_flush_irt_and_complete(struct amd_iommu *iommu, u16 devid)
3244 {
3245 int ret;
3246 u64 data;
3247 unsigned long flags;
3248 struct iommu_cmd cmd;
3249 struct pci_dev *pdev = NULL;
3250 struct iommu_dev_data *dev_data = search_dev_data(iommu, devid);
3251
3252 if (iommu->irtcachedis_enabled)
3253 return;
3254
3255 if (dev_data && dev_data->dev && dev_is_pci(dev_data->dev))
3256 pdev = to_pci_dev(dev_data->dev);
3257
3258 raw_spin_lock_irqsave(&iommu->lock, flags);
3259 data = get_cmdsem_val(iommu);
3260 build_completion_wait(&cmd, iommu, data);
3261
3262 if (pdev)
3263 ret = pci_for_each_dma_alias(pdev, iommu_flush_dev_irt, iommu);
3264 else
3265 ret = iommu_flush_dev_irt(NULL, devid, iommu);
3266 if (ret)
3267 goto out_err;
3268
3269 ret = __iommu_queue_command_sync(iommu, &cmd, false);
3270 if (ret)
3271 goto out_err;
3272 raw_spin_unlock_irqrestore(&iommu->lock, flags);
3273
3274 wait_on_sem(iommu, data);
3275 return;
3276
3277 out_err:
3278 raw_spin_unlock_irqrestore(&iommu->lock, flags);
3279 }
3280
iommu_get_int_tablen(struct iommu_dev_data * dev_data)3281 static inline u8 iommu_get_int_tablen(struct iommu_dev_data *dev_data)
3282 {
3283 if (dev_data && dev_data->max_irqs == MAX_IRQS_PER_TABLE_2K)
3284 return DTE_INTTABLEN_2K;
3285 return DTE_INTTABLEN_512;
3286 }
3287
set_dte_irq_entry(struct amd_iommu * iommu,u16 devid,struct irq_remap_table * table)3288 static void set_dte_irq_entry(struct amd_iommu *iommu, u16 devid,
3289 struct irq_remap_table *table)
3290 {
3291 u64 new;
3292 struct dev_table_entry *dte = &get_dev_table(iommu)[devid];
3293 struct iommu_dev_data *dev_data = search_dev_data(iommu, devid);
3294
3295 if (dev_data)
3296 spin_lock(&dev_data->dte_lock);
3297
3298 new = READ_ONCE(dte->data[2]);
3299 new &= ~DTE_IRQ_PHYS_ADDR_MASK;
3300 new |= iommu_virt_to_phys(table->table);
3301 new |= DTE_IRQ_REMAP_INTCTL;
3302 new |= iommu_get_int_tablen(dev_data);
3303 new |= DTE_IRQ_REMAP_ENABLE;
3304 WRITE_ONCE(dte->data[2], new);
3305
3306 if (dev_data)
3307 spin_unlock(&dev_data->dte_lock);
3308 }
3309
get_irq_table(struct amd_iommu * iommu,u16 devid)3310 static struct irq_remap_table *get_irq_table(struct amd_iommu *iommu, u16 devid)
3311 {
3312 struct irq_remap_table *table;
3313 struct amd_iommu_pci_seg *pci_seg = iommu->pci_seg;
3314
3315 if (WARN_ONCE(!pci_seg->rlookup_table[devid],
3316 "%s: no iommu for devid %x:%x\n",
3317 __func__, pci_seg->id, devid))
3318 return NULL;
3319
3320 table = pci_seg->irq_lookup_table[devid];
3321 if (WARN_ONCE(!table, "%s: no table for devid %x:%x\n",
3322 __func__, pci_seg->id, devid))
3323 return NULL;
3324
3325 return table;
3326 }
3327
__alloc_irq_table(int nid,size_t size)3328 static struct irq_remap_table *__alloc_irq_table(int nid, size_t size)
3329 {
3330 struct irq_remap_table *table;
3331
3332 table = kzalloc_obj(*table);
3333 if (!table)
3334 return NULL;
3335
3336 table->table = iommu_alloc_pages_node_sz(
3337 nid, GFP_KERNEL, max(DTE_INTTAB_ALIGNMENT, size));
3338 if (!table->table) {
3339 kfree(table);
3340 return NULL;
3341 }
3342 raw_spin_lock_init(&table->lock);
3343
3344 return table;
3345 }
3346
set_remap_table_entry(struct amd_iommu * iommu,u16 devid,struct irq_remap_table * table)3347 static void set_remap_table_entry(struct amd_iommu *iommu, u16 devid,
3348 struct irq_remap_table *table)
3349 {
3350 struct amd_iommu_pci_seg *pci_seg = iommu->pci_seg;
3351
3352 pci_seg->irq_lookup_table[devid] = table;
3353 set_dte_irq_entry(iommu, devid, table);
3354 iommu_flush_dte(iommu, devid);
3355 }
3356
set_remap_table_entry_alias(struct pci_dev * pdev,u16 alias,void * data)3357 static int set_remap_table_entry_alias(struct pci_dev *pdev, u16 alias,
3358 void *data)
3359 {
3360 struct irq_remap_table *table = data;
3361 struct amd_iommu_pci_seg *pci_seg;
3362 struct amd_iommu *iommu = rlookup_amd_iommu(&pdev->dev);
3363
3364 if (!iommu)
3365 return -EINVAL;
3366
3367 pci_seg = iommu->pci_seg;
3368 pci_seg->irq_lookup_table[alias] = table;
3369 set_dte_irq_entry(iommu, alias, table);
3370 iommu_flush_dte(pci_seg->rlookup_table[alias], alias);
3371
3372 return 0;
3373 }
3374
get_irq_table_size(unsigned int max_irqs)3375 static inline size_t get_irq_table_size(unsigned int max_irqs)
3376 {
3377 if (!AMD_IOMMU_GUEST_IR_GA(amd_iommu_guest_ir))
3378 return max_irqs * sizeof(u32);
3379
3380 return max_irqs * (sizeof(u64) * 2);
3381 }
3382
alloc_irq_table(struct amd_iommu * iommu,u16 devid,struct pci_dev * pdev,unsigned int max_irqs)3383 static struct irq_remap_table *alloc_irq_table(struct amd_iommu *iommu,
3384 u16 devid, struct pci_dev *pdev,
3385 unsigned int max_irqs)
3386 {
3387 struct irq_remap_table *table = NULL;
3388 struct irq_remap_table *new_table = NULL;
3389 struct amd_iommu_pci_seg *pci_seg;
3390 unsigned long flags;
3391 int nid = iommu->dev ? dev_to_node(&iommu->dev->dev) : NUMA_NO_NODE;
3392 u16 alias;
3393
3394 spin_lock_irqsave(&iommu_table_lock, flags);
3395
3396 pci_seg = iommu->pci_seg;
3397 table = pci_seg->irq_lookup_table[devid];
3398 if (table)
3399 goto out_unlock;
3400
3401 alias = pci_seg->alias_table[devid];
3402 table = pci_seg->irq_lookup_table[alias];
3403 if (table) {
3404 set_remap_table_entry(iommu, devid, table);
3405 goto out_wait;
3406 }
3407 spin_unlock_irqrestore(&iommu_table_lock, flags);
3408
3409 /* Nothing there yet, allocate new irq remapping table */
3410 new_table = __alloc_irq_table(nid, get_irq_table_size(max_irqs));
3411 if (!new_table)
3412 return NULL;
3413
3414 spin_lock_irqsave(&iommu_table_lock, flags);
3415
3416 table = pci_seg->irq_lookup_table[devid];
3417 if (table)
3418 goto out_unlock;
3419
3420 table = pci_seg->irq_lookup_table[alias];
3421 if (table) {
3422 set_remap_table_entry(iommu, devid, table);
3423 goto out_wait;
3424 }
3425
3426 table = new_table;
3427 new_table = NULL;
3428
3429 if (pdev)
3430 pci_for_each_dma_alias(pdev, set_remap_table_entry_alias,
3431 table);
3432 else
3433 set_remap_table_entry(iommu, devid, table);
3434
3435 if (devid != alias)
3436 set_remap_table_entry(iommu, alias, table);
3437
3438 out_wait:
3439 iommu_completion_wait(iommu);
3440
3441 out_unlock:
3442 spin_unlock_irqrestore(&iommu_table_lock, flags);
3443
3444 if (new_table) {
3445 iommu_free_pages(new_table->table);
3446 kfree(new_table);
3447 }
3448 return table;
3449 }
3450
alloc_irq_index(struct amd_iommu * iommu,u16 devid,int count,bool align,struct pci_dev * pdev,unsigned long max_irqs)3451 static int alloc_irq_index(struct amd_iommu *iommu, u16 devid, int count,
3452 bool align, struct pci_dev *pdev,
3453 unsigned long max_irqs)
3454 {
3455 struct irq_remap_table *table;
3456 int index, c, alignment = 1;
3457 unsigned long flags;
3458
3459 table = alloc_irq_table(iommu, devid, pdev, max_irqs);
3460 if (!table)
3461 return -ENODEV;
3462
3463 if (align)
3464 alignment = roundup_pow_of_two(count);
3465
3466 raw_spin_lock_irqsave(&table->lock, flags);
3467
3468 /* Scan table for free entries */
3469 for (index = ALIGN(table->min_index, alignment), c = 0;
3470 index < max_irqs;) {
3471 if (!iommu->irte_ops->is_allocated(table, index)) {
3472 c += 1;
3473 } else {
3474 c = 0;
3475 index = ALIGN(index + 1, alignment);
3476 continue;
3477 }
3478
3479 if (c == count) {
3480 for (; c != 0; --c)
3481 iommu->irte_ops->set_allocated(table, index - c + 1);
3482
3483 index -= count - 1;
3484 goto out;
3485 }
3486
3487 index++;
3488 }
3489
3490 index = -ENOSPC;
3491
3492 out:
3493 raw_spin_unlock_irqrestore(&table->lock, flags);
3494
3495 return index;
3496 }
3497
__modify_irte_ga(struct amd_iommu * iommu,u16 devid,int index,struct irte_ga * irte)3498 static int __modify_irte_ga(struct amd_iommu *iommu, u16 devid, int index,
3499 struct irte_ga *irte)
3500 {
3501 struct irq_remap_table *table;
3502 struct irte_ga *entry;
3503 unsigned long flags;
3504 u128 old;
3505
3506 table = get_irq_table(iommu, devid);
3507 if (!table)
3508 return -ENOMEM;
3509
3510 raw_spin_lock_irqsave(&table->lock, flags);
3511
3512 entry = (struct irte_ga *)table->table;
3513 entry = &entry[index];
3514
3515 /*
3516 * We use cmpxchg16 to atomically update the 128-bit IRTE,
3517 * and it cannot be updated by the hardware or other processors
3518 * behind us, so the return value of cmpxchg16 should be the
3519 * same as the old value.
3520 */
3521 old = entry->irte;
3522 WARN_ON(!try_cmpxchg128(&entry->irte, &old, irte->irte));
3523
3524 raw_spin_unlock_irqrestore(&table->lock, flags);
3525
3526 return 0;
3527 }
3528
modify_irte_ga(struct amd_iommu * iommu,u16 devid,int index,struct irte_ga * irte)3529 static int modify_irte_ga(struct amd_iommu *iommu, u16 devid, int index,
3530 struct irte_ga *irte)
3531 {
3532 int ret;
3533
3534 ret = __modify_irte_ga(iommu, devid, index, irte);
3535 if (ret)
3536 return ret;
3537
3538 iommu_flush_irt_and_complete(iommu, devid);
3539
3540 return 0;
3541 }
3542
modify_irte(struct amd_iommu * iommu,u16 devid,int index,union irte * irte)3543 static int modify_irte(struct amd_iommu *iommu,
3544 u16 devid, int index, union irte *irte)
3545 {
3546 struct irq_remap_table *table;
3547 unsigned long flags;
3548
3549 table = get_irq_table(iommu, devid);
3550 if (!table)
3551 return -ENOMEM;
3552
3553 raw_spin_lock_irqsave(&table->lock, flags);
3554 table->table[index] = irte->val;
3555 raw_spin_unlock_irqrestore(&table->lock, flags);
3556
3557 iommu_flush_irt_and_complete(iommu, devid);
3558
3559 return 0;
3560 }
3561
free_irte(struct amd_iommu * iommu,u16 devid,int index)3562 static void free_irte(struct amd_iommu *iommu, u16 devid, int index)
3563 {
3564 struct irq_remap_table *table;
3565 unsigned long flags;
3566
3567 table = get_irq_table(iommu, devid);
3568 if (!table)
3569 return;
3570
3571 raw_spin_lock_irqsave(&table->lock, flags);
3572 iommu->irte_ops->clear_allocated(table, index);
3573 raw_spin_unlock_irqrestore(&table->lock, flags);
3574
3575 iommu_flush_irt_and_complete(iommu, devid);
3576 }
3577
irte_prepare(void * entry,u32 delivery_mode,bool dest_mode,u8 vector,u32 dest_apicid,int devid)3578 static void irte_prepare(void *entry,
3579 u32 delivery_mode, bool dest_mode,
3580 u8 vector, u32 dest_apicid, int devid)
3581 {
3582 union irte *irte = (union irte *) entry;
3583
3584 irte->val = 0;
3585 irte->fields.vector = vector;
3586 irte->fields.int_type = delivery_mode;
3587 irte->fields.destination = dest_apicid;
3588 irte->fields.dm = dest_mode;
3589 irte->fields.valid = 1;
3590 }
3591
irte_ga_prepare(void * entry,u32 delivery_mode,bool dest_mode,u8 vector,u32 dest_apicid,int devid)3592 static void irte_ga_prepare(void *entry,
3593 u32 delivery_mode, bool dest_mode,
3594 u8 vector, u32 dest_apicid, int devid)
3595 {
3596 struct irte_ga *irte = (struct irte_ga *) entry;
3597
3598 irte->lo.val = 0;
3599 irte->hi.val = 0;
3600 irte->lo.fields_remap.int_type = delivery_mode;
3601 irte->lo.fields_remap.dm = dest_mode;
3602 irte->hi.fields.vector = vector;
3603 irte->lo.fields_remap.destination = APICID_TO_IRTE_DEST_LO(dest_apicid);
3604 irte->hi.fields.destination = APICID_TO_IRTE_DEST_HI(dest_apicid);
3605 irte->lo.fields_remap.valid = 1;
3606 }
3607
irte_activate(struct amd_iommu * iommu,void * entry,u16 devid,u16 index)3608 static void irte_activate(struct amd_iommu *iommu, void *entry, u16 devid, u16 index)
3609 {
3610 union irte *irte = (union irte *) entry;
3611
3612 irte->fields.valid = 1;
3613 modify_irte(iommu, devid, index, irte);
3614 }
3615
irte_ga_activate(struct amd_iommu * iommu,void * entry,u16 devid,u16 index)3616 static void irte_ga_activate(struct amd_iommu *iommu, void *entry, u16 devid, u16 index)
3617 {
3618 struct irte_ga *irte = (struct irte_ga *) entry;
3619
3620 irte->lo.fields_remap.valid = 1;
3621 modify_irte_ga(iommu, devid, index, irte);
3622 }
3623
irte_deactivate(struct amd_iommu * iommu,void * entry,u16 devid,u16 index)3624 static void irte_deactivate(struct amd_iommu *iommu, void *entry, u16 devid, u16 index)
3625 {
3626 union irte *irte = (union irte *) entry;
3627
3628 irte->fields.valid = 0;
3629 modify_irte(iommu, devid, index, irte);
3630 }
3631
irte_ga_deactivate(struct amd_iommu * iommu,void * entry,u16 devid,u16 index)3632 static void irte_ga_deactivate(struct amd_iommu *iommu, void *entry, u16 devid, u16 index)
3633 {
3634 struct irte_ga *irte = (struct irte_ga *) entry;
3635
3636 irte->lo.fields_remap.valid = 0;
3637 modify_irte_ga(iommu, devid, index, irte);
3638 }
3639
irte_set_affinity(struct amd_iommu * iommu,void * entry,u16 devid,u16 index,u8 vector,u32 dest_apicid)3640 static void irte_set_affinity(struct amd_iommu *iommu, void *entry, u16 devid, u16 index,
3641 u8 vector, u32 dest_apicid)
3642 {
3643 union irte *irte = (union irte *) entry;
3644
3645 irte->fields.vector = vector;
3646 irte->fields.destination = dest_apicid;
3647 modify_irte(iommu, devid, index, irte);
3648 }
3649
irte_ga_set_affinity(struct amd_iommu * iommu,void * entry,u16 devid,u16 index,u8 vector,u32 dest_apicid)3650 static void irte_ga_set_affinity(struct amd_iommu *iommu, void *entry, u16 devid, u16 index,
3651 u8 vector, u32 dest_apicid)
3652 {
3653 struct irte_ga *irte = (struct irte_ga *) entry;
3654
3655 if (!irte->lo.fields_remap.guest_mode) {
3656 irte->hi.fields.vector = vector;
3657 irte->lo.fields_remap.destination =
3658 APICID_TO_IRTE_DEST_LO(dest_apicid);
3659 irte->hi.fields.destination =
3660 APICID_TO_IRTE_DEST_HI(dest_apicid);
3661 modify_irte_ga(iommu, devid, index, irte);
3662 }
3663 }
3664
3665 #define IRTE_ALLOCATED (~1U)
irte_set_allocated(struct irq_remap_table * table,int index)3666 static void irte_set_allocated(struct irq_remap_table *table, int index)
3667 {
3668 table->table[index] = IRTE_ALLOCATED;
3669 }
3670
irte_ga_set_allocated(struct irq_remap_table * table,int index)3671 static void irte_ga_set_allocated(struct irq_remap_table *table, int index)
3672 {
3673 struct irte_ga *ptr = (struct irte_ga *)table->table;
3674 struct irte_ga *irte = &ptr[index];
3675
3676 memset(&irte->lo.val, 0, sizeof(u64));
3677 memset(&irte->hi.val, 0, sizeof(u64));
3678 irte->hi.fields.vector = 0xff;
3679 }
3680
irte_is_allocated(struct irq_remap_table * table,int index)3681 static bool irte_is_allocated(struct irq_remap_table *table, int index)
3682 {
3683 union irte *ptr = (union irte *)table->table;
3684 union irte *irte = &ptr[index];
3685
3686 return irte->val != 0;
3687 }
3688
irte_ga_is_allocated(struct irq_remap_table * table,int index)3689 static bool irte_ga_is_allocated(struct irq_remap_table *table, int index)
3690 {
3691 struct irte_ga *ptr = (struct irte_ga *)table->table;
3692 struct irte_ga *irte = &ptr[index];
3693
3694 return irte->hi.fields.vector != 0;
3695 }
3696
irte_clear_allocated(struct irq_remap_table * table,int index)3697 static void irte_clear_allocated(struct irq_remap_table *table, int index)
3698 {
3699 table->table[index] = 0;
3700 }
3701
irte_ga_clear_allocated(struct irq_remap_table * table,int index)3702 static void irte_ga_clear_allocated(struct irq_remap_table *table, int index)
3703 {
3704 struct irte_ga *ptr = (struct irte_ga *)table->table;
3705 struct irte_ga *irte = &ptr[index];
3706
3707 memset(&irte->lo.val, 0, sizeof(u64));
3708 memset(&irte->hi.val, 0, sizeof(u64));
3709 }
3710
get_devid(struct irq_alloc_info * info)3711 static int get_devid(struct irq_alloc_info *info)
3712 {
3713 switch (info->type) {
3714 case X86_IRQ_ALLOC_TYPE_IOAPIC:
3715 return get_ioapic_devid(info->devid);
3716 case X86_IRQ_ALLOC_TYPE_HPET:
3717 return get_hpet_devid(info->devid);
3718 case X86_IRQ_ALLOC_TYPE_PCI_MSI:
3719 case X86_IRQ_ALLOC_TYPE_PCI_MSIX:
3720 return get_device_sbdf_id(msi_desc_to_dev(info->desc));
3721 default:
3722 WARN_ON_ONCE(1);
3723 return -1;
3724 }
3725 }
3726
3727 struct irq_remap_ops amd_iommu_irq_ops = {
3728 .prepare = amd_iommu_prepare,
3729 .enable = amd_iommu_enable,
3730 .disable = amd_iommu_disable,
3731 .reenable = amd_iommu_reenable,
3732 .enable_faulting = amd_iommu_enable_faulting,
3733 };
3734
fill_msi_msg(struct msi_msg * msg,u32 index)3735 static void fill_msi_msg(struct msi_msg *msg, u32 index)
3736 {
3737 msg->data = index;
3738 msg->address_lo = 0;
3739 msg->arch_addr_lo.base_address = X86_MSI_BASE_ADDRESS_LOW;
3740 /*
3741 * The struct msi_msg.dest_mode_logical is used to set the DM bit
3742 * in MSI Message Address Register. For device w/ 2K int-remap support,
3743 * this bit must be set to 1 regardless of the actual destination
3744 * mode, which is signified by the IRTE[DM].
3745 */
3746 if (FEATURE_NUM_INT_REMAP_SUP_2K(amd_iommu_efr2))
3747 msg->arch_addr_lo.dest_mode_logical = true;
3748 msg->address_hi = X86_MSI_BASE_ADDRESS_HIGH;
3749 }
3750
irq_remapping_prepare_irte(struct amd_ir_data * data,struct irq_cfg * irq_cfg,struct irq_alloc_info * info,int devid,int index,int sub_handle)3751 static void irq_remapping_prepare_irte(struct amd_ir_data *data,
3752 struct irq_cfg *irq_cfg,
3753 struct irq_alloc_info *info,
3754 int devid, int index, int sub_handle)
3755 {
3756 struct irq_2_irte *irte_info = &data->irq_2_irte;
3757 struct amd_iommu *iommu = data->iommu;
3758
3759 if (!iommu)
3760 return;
3761
3762 data->irq_2_irte.devid = devid;
3763 data->irq_2_irte.index = index + sub_handle;
3764 iommu->irte_ops->prepare(data->entry, APIC_DELIVERY_MODE_FIXED,
3765 apic->dest_mode_logical, irq_cfg->vector,
3766 irq_cfg->dest_apicid, devid);
3767
3768 switch (info->type) {
3769 case X86_IRQ_ALLOC_TYPE_IOAPIC:
3770 case X86_IRQ_ALLOC_TYPE_HPET:
3771 case X86_IRQ_ALLOC_TYPE_PCI_MSI:
3772 case X86_IRQ_ALLOC_TYPE_PCI_MSIX:
3773 fill_msi_msg(&data->msi_entry, irte_info->index);
3774 break;
3775
3776 default:
3777 BUG_ON(1);
3778 break;
3779 }
3780 }
3781
3782 struct amd_irte_ops irte_32_ops = {
3783 .prepare = irte_prepare,
3784 .activate = irte_activate,
3785 .deactivate = irte_deactivate,
3786 .set_affinity = irte_set_affinity,
3787 .set_allocated = irte_set_allocated,
3788 .is_allocated = irte_is_allocated,
3789 .clear_allocated = irte_clear_allocated,
3790 };
3791
3792 struct amd_irte_ops irte_128_ops = {
3793 .prepare = irte_ga_prepare,
3794 .activate = irte_ga_activate,
3795 .deactivate = irte_ga_deactivate,
3796 .set_affinity = irte_ga_set_affinity,
3797 .set_allocated = irte_ga_set_allocated,
3798 .is_allocated = irte_ga_is_allocated,
3799 .clear_allocated = irte_ga_clear_allocated,
3800 };
3801
irq_remapping_alloc(struct irq_domain * domain,unsigned int virq,unsigned int nr_irqs,void * arg)3802 static int irq_remapping_alloc(struct irq_domain *domain, unsigned int virq,
3803 unsigned int nr_irqs, void *arg)
3804 {
3805 struct irq_alloc_info *info = arg;
3806 struct irq_data *irq_data;
3807 struct amd_ir_data *data = NULL;
3808 struct amd_iommu *iommu;
3809 struct irq_cfg *cfg;
3810 struct iommu_dev_data *dev_data;
3811 unsigned long max_irqs;
3812 int i, ret, devid, seg, sbdf;
3813 int index;
3814
3815 if (!info)
3816 return -EINVAL;
3817 if (nr_irqs > 1 && info->type != X86_IRQ_ALLOC_TYPE_PCI_MSI)
3818 return -EINVAL;
3819
3820 sbdf = get_devid(info);
3821 if (sbdf < 0)
3822 return -EINVAL;
3823
3824 seg = PCI_SBDF_TO_SEGID(sbdf);
3825 devid = PCI_SBDF_TO_DEVID(sbdf);
3826 iommu = __rlookup_amd_iommu(seg, devid);
3827 if (!iommu)
3828 return -EINVAL;
3829
3830 dev_data = search_dev_data(iommu, devid);
3831 max_irqs = dev_data ? dev_data->max_irqs : MAX_IRQS_PER_TABLE_512;
3832
3833 ret = irq_domain_alloc_irqs_parent(domain, virq, nr_irqs, arg);
3834 if (ret < 0)
3835 return ret;
3836
3837 if (info->type == X86_IRQ_ALLOC_TYPE_IOAPIC) {
3838 struct irq_remap_table *table;
3839
3840 table = alloc_irq_table(iommu, devid, NULL, max_irqs);
3841 if (table) {
3842 if (!table->min_index) {
3843 /*
3844 * Keep the first 32 indexes free for IOAPIC
3845 * interrupts.
3846 */
3847 table->min_index = 32;
3848 for (i = 0; i < 32; ++i)
3849 iommu->irte_ops->set_allocated(table, i);
3850 }
3851 WARN_ON(table->min_index != 32);
3852 index = info->ioapic.pin;
3853 } else {
3854 index = -ENOMEM;
3855 }
3856 } else if (info->type == X86_IRQ_ALLOC_TYPE_PCI_MSI ||
3857 info->type == X86_IRQ_ALLOC_TYPE_PCI_MSIX) {
3858 bool align = (info->type == X86_IRQ_ALLOC_TYPE_PCI_MSI);
3859
3860 index = alloc_irq_index(iommu, devid, nr_irqs, align,
3861 msi_desc_to_pci_dev(info->desc),
3862 max_irqs);
3863 } else {
3864 index = alloc_irq_index(iommu, devid, nr_irqs, false, NULL,
3865 max_irqs);
3866 }
3867
3868 if (index < 0) {
3869 pr_warn("Failed to allocate IRTE\n");
3870 ret = index;
3871 goto out_free_parent;
3872 }
3873
3874 for (i = 0; i < nr_irqs; i++) {
3875 irq_data = irq_domain_get_irq_data(domain, virq + i);
3876 cfg = irq_data ? irqd_cfg(irq_data) : NULL;
3877 if (!cfg) {
3878 ret = -EINVAL;
3879 goto out_free_data;
3880 }
3881
3882 ret = -ENOMEM;
3883 data = kzalloc_obj(*data);
3884 if (!data)
3885 goto out_free_data;
3886
3887 if (!AMD_IOMMU_GUEST_IR_GA(amd_iommu_guest_ir))
3888 data->entry = kzalloc_obj(union irte);
3889 else
3890 data->entry = kzalloc_obj(struct irte_ga);
3891 if (!data->entry) {
3892 kfree(data);
3893 goto out_free_data;
3894 }
3895
3896 data->iommu = iommu;
3897 irq_data->hwirq = (devid << 16) + i;
3898 irq_data->chip_data = data;
3899 irq_data->chip = &amd_ir_chip;
3900 irq_remapping_prepare_irte(data, cfg, info, devid, index, i);
3901 }
3902
3903 return 0;
3904
3905 out_free_data:
3906 for (i--; i >= 0; i--) {
3907 irq_data = irq_domain_get_irq_data(domain, virq + i);
3908 if (irq_data)
3909 kfree(irq_data->chip_data);
3910 }
3911 for (i = 0; i < nr_irqs; i++)
3912 free_irte(iommu, devid, index + i);
3913 out_free_parent:
3914 irq_domain_free_irqs_common(domain, virq, nr_irqs);
3915 return ret;
3916 }
3917
irq_remapping_free(struct irq_domain * domain,unsigned int virq,unsigned int nr_irqs)3918 static void irq_remapping_free(struct irq_domain *domain, unsigned int virq,
3919 unsigned int nr_irqs)
3920 {
3921 struct irq_2_irte *irte_info;
3922 struct irq_data *irq_data;
3923 struct amd_ir_data *data;
3924 int i;
3925
3926 for (i = 0; i < nr_irqs; i++) {
3927 irq_data = irq_domain_get_irq_data(domain, virq + i);
3928 if (irq_data && irq_data->chip_data) {
3929 data = irq_data->chip_data;
3930 irte_info = &data->irq_2_irte;
3931 free_irte(data->iommu, irte_info->devid, irte_info->index);
3932 kfree(data->entry);
3933 kfree(data);
3934 }
3935 }
3936 irq_domain_free_irqs_common(domain, virq, nr_irqs);
3937 }
3938
3939 static void amd_ir_update_irte(struct irq_data *irqd, struct amd_iommu *iommu,
3940 struct amd_ir_data *ir_data,
3941 struct irq_2_irte *irte_info,
3942 struct irq_cfg *cfg);
3943
irq_remapping_activate(struct irq_domain * domain,struct irq_data * irq_data,bool reserve)3944 static int irq_remapping_activate(struct irq_domain *domain,
3945 struct irq_data *irq_data, bool reserve)
3946 {
3947 struct amd_ir_data *data = irq_data->chip_data;
3948 struct irq_2_irte *irte_info = &data->irq_2_irte;
3949 struct amd_iommu *iommu = data->iommu;
3950 struct irq_cfg *cfg = irqd_cfg(irq_data);
3951
3952 if (!iommu)
3953 return 0;
3954
3955 iommu->irte_ops->activate(iommu, data->entry, irte_info->devid,
3956 irte_info->index);
3957 amd_ir_update_irte(irq_data, iommu, data, irte_info, cfg);
3958 return 0;
3959 }
3960
irq_remapping_deactivate(struct irq_domain * domain,struct irq_data * irq_data)3961 static void irq_remapping_deactivate(struct irq_domain *domain,
3962 struct irq_data *irq_data)
3963 {
3964 struct amd_ir_data *data = irq_data->chip_data;
3965 struct irq_2_irte *irte_info = &data->irq_2_irte;
3966 struct amd_iommu *iommu = data->iommu;
3967
3968 if (iommu)
3969 iommu->irte_ops->deactivate(iommu, data->entry, irte_info->devid,
3970 irte_info->index);
3971 }
3972
irq_remapping_select(struct irq_domain * d,struct irq_fwspec * fwspec,enum irq_domain_bus_token bus_token)3973 static int irq_remapping_select(struct irq_domain *d, struct irq_fwspec *fwspec,
3974 enum irq_domain_bus_token bus_token)
3975 {
3976 struct amd_iommu *iommu;
3977 int devid = -1;
3978
3979 if (!amd_iommu_irq_remap)
3980 return 0;
3981
3982 if (x86_fwspec_is_ioapic(fwspec))
3983 devid = get_ioapic_devid(fwspec->param[0]);
3984 else if (x86_fwspec_is_hpet(fwspec))
3985 devid = get_hpet_devid(fwspec->param[0]);
3986
3987 if (devid < 0)
3988 return 0;
3989 iommu = __rlookup_amd_iommu((devid >> 16), (devid & 0xffff));
3990
3991 return iommu && iommu->ir_domain == d;
3992 }
3993
3994 static const struct irq_domain_ops amd_ir_domain_ops = {
3995 .select = irq_remapping_select,
3996 .alloc = irq_remapping_alloc,
3997 .free = irq_remapping_free,
3998 .activate = irq_remapping_activate,
3999 .deactivate = irq_remapping_deactivate,
4000 };
4001
__amd_iommu_update_ga(struct irte_ga * entry,int cpu,bool ga_log_intr)4002 static void __amd_iommu_update_ga(struct irte_ga *entry, int cpu,
4003 bool ga_log_intr)
4004 {
4005 if (cpu >= 0) {
4006 entry->lo.fields_vapic.destination =
4007 APICID_TO_IRTE_DEST_LO(cpu);
4008 entry->hi.fields.destination =
4009 APICID_TO_IRTE_DEST_HI(cpu);
4010 entry->lo.fields_vapic.is_run = true;
4011 entry->lo.fields_vapic.ga_log_intr = false;
4012 } else {
4013 entry->lo.fields_vapic.is_run = false;
4014 entry->lo.fields_vapic.ga_log_intr = ga_log_intr;
4015 }
4016 }
4017
4018 /*
4019 * Update the pCPU information for an IRTE that is configured to post IRQs to
4020 * a vCPU, without issuing an IOMMU invalidation for the IRTE.
4021 *
4022 * If the vCPU is associated with a pCPU (@cpu >= 0), configure the Destination
4023 * with the pCPU's APIC ID, set IsRun, and clear GALogIntr. If the vCPU isn't
4024 * associated with a pCPU (@cpu < 0), clear IsRun and set/clear GALogIntr based
4025 * on input from the caller (e.g. KVM only requests GALogIntr when the vCPU is
4026 * blocking and requires a notification wake event). I.e. treat vCPUs that are
4027 * associated with a pCPU as running. This API is intended to be used when a
4028 * vCPU is scheduled in/out (or stops running for any reason), to do a fast
4029 * update of IsRun, GALogIntr, and (conditionally) Destination.
4030 *
4031 * Per the IOMMU spec, the Destination, IsRun, and GATag fields are not cached
4032 * and thus don't require an invalidation to ensure the IOMMU consumes fresh
4033 * information.
4034 */
amd_iommu_update_ga(void * data,int cpu,bool ga_log_intr)4035 int amd_iommu_update_ga(void *data, int cpu, bool ga_log_intr)
4036 {
4037 struct amd_ir_data *ir_data = (struct amd_ir_data *)data;
4038 struct irte_ga *entry = (struct irte_ga *) ir_data->entry;
4039
4040 if (WARN_ON_ONCE(!AMD_IOMMU_GUEST_IR_VAPIC(amd_iommu_guest_ir)))
4041 return -EINVAL;
4042
4043 if (!entry || !entry->lo.fields_vapic.guest_mode)
4044 return 0;
4045
4046 if (!ir_data->iommu)
4047 return -ENODEV;
4048
4049 __amd_iommu_update_ga(entry, cpu, ga_log_intr);
4050
4051 return __modify_irte_ga(ir_data->iommu, ir_data->irq_2_irte.devid,
4052 ir_data->irq_2_irte.index, entry);
4053 }
4054 EXPORT_SYMBOL(amd_iommu_update_ga);
4055
amd_iommu_activate_guest_mode(void * data,int cpu,bool ga_log_intr)4056 int amd_iommu_activate_guest_mode(void *data, int cpu, bool ga_log_intr)
4057 {
4058 struct amd_ir_data *ir_data = (struct amd_ir_data *)data;
4059 struct irte_ga *entry = (struct irte_ga *) ir_data->entry;
4060 u64 valid;
4061
4062 if (WARN_ON_ONCE(!AMD_IOMMU_GUEST_IR_VAPIC(amd_iommu_guest_ir)))
4063 return -EINVAL;
4064
4065 if (!entry)
4066 return 0;
4067
4068 valid = entry->lo.fields_vapic.valid;
4069
4070 entry->lo.val = 0;
4071 entry->hi.val = 0;
4072
4073 entry->lo.fields_vapic.valid = valid;
4074 entry->lo.fields_vapic.guest_mode = 1;
4075 entry->hi.fields.ga_root_ptr = ir_data->ga_root_ptr;
4076 entry->hi.fields.vector = ir_data->ga_vector;
4077 entry->lo.fields_vapic.ga_tag = ir_data->ga_tag;
4078
4079 __amd_iommu_update_ga(entry, cpu, ga_log_intr);
4080
4081 return modify_irte_ga(ir_data->iommu, ir_data->irq_2_irte.devid,
4082 ir_data->irq_2_irte.index, entry);
4083 }
4084 EXPORT_SYMBOL(amd_iommu_activate_guest_mode);
4085
amd_iommu_deactivate_guest_mode(void * data)4086 int amd_iommu_deactivate_guest_mode(void *data)
4087 {
4088 struct amd_ir_data *ir_data = (struct amd_ir_data *)data;
4089 struct irte_ga *entry = (struct irte_ga *) ir_data->entry;
4090 struct irq_cfg *cfg = ir_data->cfg;
4091 u64 valid;
4092
4093 if (WARN_ON_ONCE(!AMD_IOMMU_GUEST_IR_VAPIC(amd_iommu_guest_ir)))
4094 return -EINVAL;
4095
4096 if (!entry || !entry->lo.fields_vapic.guest_mode)
4097 return 0;
4098
4099 valid = entry->lo.fields_remap.valid;
4100
4101 entry->lo.val = 0;
4102 entry->hi.val = 0;
4103
4104 entry->lo.fields_remap.valid = valid;
4105 entry->lo.fields_remap.dm = apic->dest_mode_logical;
4106 entry->lo.fields_remap.int_type = APIC_DELIVERY_MODE_FIXED;
4107 entry->hi.fields.vector = cfg->vector;
4108 entry->lo.fields_remap.destination =
4109 APICID_TO_IRTE_DEST_LO(cfg->dest_apicid);
4110 entry->hi.fields.destination =
4111 APICID_TO_IRTE_DEST_HI(cfg->dest_apicid);
4112
4113 return modify_irte_ga(ir_data->iommu, ir_data->irq_2_irte.devid,
4114 ir_data->irq_2_irte.index, entry);
4115 }
4116 EXPORT_SYMBOL(amd_iommu_deactivate_guest_mode);
4117
amd_ir_set_vcpu_affinity(struct irq_data * data,void * info)4118 static int amd_ir_set_vcpu_affinity(struct irq_data *data, void *info)
4119 {
4120 int ret;
4121 struct amd_iommu_pi_data *pi_data = info;
4122 struct amd_ir_data *ir_data = data->chip_data;
4123 struct irq_2_irte *irte_info = &ir_data->irq_2_irte;
4124 struct iommu_dev_data *dev_data;
4125
4126 if (WARN_ON_ONCE(!AMD_IOMMU_GUEST_IR_VAPIC(amd_iommu_guest_ir)))
4127 return -EINVAL;
4128
4129 if (ir_data->iommu == NULL)
4130 return -EINVAL;
4131
4132 dev_data = search_dev_data(ir_data->iommu, irte_info->devid);
4133
4134 /* Note:
4135 * This device has never been set up for guest mode.
4136 * we should not modify the IRTE
4137 */
4138 if (!dev_data || !dev_data->use_vapic)
4139 return -EINVAL;
4140
4141 ir_data->cfg = irqd_cfg(data);
4142
4143 if (pi_data) {
4144 pi_data->ir_data = ir_data;
4145
4146 ir_data->ga_root_ptr = (pi_data->vapic_addr >> 12);
4147 ir_data->ga_vector = pi_data->vector;
4148 ir_data->ga_tag = pi_data->ga_tag;
4149 if (pi_data->is_guest_mode)
4150 ret = amd_iommu_activate_guest_mode(ir_data, pi_data->cpu,
4151 pi_data->ga_log_intr);
4152 else
4153 ret = amd_iommu_deactivate_guest_mode(ir_data);
4154 } else {
4155 ret = amd_iommu_deactivate_guest_mode(ir_data);
4156 }
4157
4158 return ret;
4159 }
4160
4161
amd_ir_update_irte(struct irq_data * irqd,struct amd_iommu * iommu,struct amd_ir_data * ir_data,struct irq_2_irte * irte_info,struct irq_cfg * cfg)4162 static void amd_ir_update_irte(struct irq_data *irqd, struct amd_iommu *iommu,
4163 struct amd_ir_data *ir_data,
4164 struct irq_2_irte *irte_info,
4165 struct irq_cfg *cfg)
4166 {
4167
4168 /*
4169 * Atomically updates the IRTE with the new destination, vector
4170 * and flushes the interrupt entry cache.
4171 */
4172 iommu->irte_ops->set_affinity(iommu, ir_data->entry, irte_info->devid,
4173 irte_info->index, cfg->vector,
4174 cfg->dest_apicid);
4175 }
4176
amd_ir_set_affinity(struct irq_data * data,const struct cpumask * mask,bool force)4177 static int amd_ir_set_affinity(struct irq_data *data,
4178 const struct cpumask *mask, bool force)
4179 {
4180 struct amd_ir_data *ir_data = data->chip_data;
4181 struct irq_2_irte *irte_info = &ir_data->irq_2_irte;
4182 struct irq_cfg *cfg = irqd_cfg(data);
4183 struct irq_data *parent = data->parent_data;
4184 struct amd_iommu *iommu = ir_data->iommu;
4185 int ret;
4186
4187 if (!iommu)
4188 return -ENODEV;
4189
4190 ret = parent->chip->irq_set_affinity(parent, mask, force);
4191 if (ret < 0 || ret == IRQ_SET_MASK_OK_DONE)
4192 return ret;
4193
4194 amd_ir_update_irte(data, iommu, ir_data, irte_info, cfg);
4195 /*
4196 * After this point, all the interrupts will start arriving
4197 * at the new destination. So, time to cleanup the previous
4198 * vector allocation.
4199 */
4200 vector_schedule_cleanup(cfg);
4201
4202 return IRQ_SET_MASK_OK_DONE;
4203 }
4204
ir_compose_msi_msg(struct irq_data * irq_data,struct msi_msg * msg)4205 static void ir_compose_msi_msg(struct irq_data *irq_data, struct msi_msg *msg)
4206 {
4207 struct amd_ir_data *ir_data = irq_data->chip_data;
4208
4209 *msg = ir_data->msi_entry;
4210 }
4211
4212 static struct irq_chip amd_ir_chip = {
4213 .name = "AMD-IR",
4214 .irq_ack = apic_ack_irq,
4215 .irq_set_affinity = amd_ir_set_affinity,
4216 .irq_set_vcpu_affinity = amd_ir_set_vcpu_affinity,
4217 .irq_compose_msi_msg = ir_compose_msi_msg,
4218 };
4219
4220 static const struct msi_parent_ops amdvi_msi_parent_ops = {
4221 .supported_flags = X86_VECTOR_MSI_FLAGS_SUPPORTED | MSI_FLAG_MULTI_PCI_MSI,
4222 .bus_select_token = DOMAIN_BUS_AMDVI,
4223 .bus_select_mask = MATCH_PCI_MSI,
4224 .prefix = "IR-",
4225 .init_dev_msi_info = msi_parent_init_dev_msi_info,
4226 };
4227
amd_iommu_create_irq_domain(struct amd_iommu * iommu)4228 int amd_iommu_create_irq_domain(struct amd_iommu *iommu)
4229 {
4230 struct irq_domain_info info = {
4231 .fwnode = irq_domain_alloc_named_id_fwnode("AMD-IR", iommu->index),
4232 .ops = &amd_ir_domain_ops,
4233 .domain_flags = IRQ_DOMAIN_FLAG_ISOLATED_MSI,
4234 .host_data = iommu,
4235 .parent = arch_get_ir_parent_domain(),
4236 };
4237
4238 if (!info.fwnode)
4239 return -ENOMEM;
4240
4241 iommu->ir_domain = msi_create_parent_irq_domain(&info, &amdvi_msi_parent_ops);
4242 if (!iommu->ir_domain) {
4243 irq_domain_free_fwnode(info.fwnode);
4244 return -ENOMEM;
4245 }
4246 return 0;
4247 }
4248 #endif
4249
4250 MODULE_IMPORT_NS("GENERIC_PT_IOMMU");
4251