xref: /linux/drivers/iommu/iommufd/device.c (revision fab183d632628381b466a41479489541ac0e29a0)
1 // SPDX-License-Identifier: GPL-2.0-only
2 /* Copyright (c) 2021-2022, NVIDIA CORPORATION & AFFILIATES
3  */
4 #include <linux/iommu.h>
5 #include <linux/iommufd.h>
6 #include <linux/pci-ats.h>
7 #include <linux/slab.h>
8 #include <uapi/linux/iommufd.h>
9 
10 #include "../iommu-priv.h"
11 #include "io_pagetable.h"
12 #include "iommufd_private.h"
13 
14 static bool allow_unsafe_interrupts;
15 module_param(allow_unsafe_interrupts, bool, S_IRUGO | S_IWUSR);
16 MODULE_PARM_DESC(
17 	allow_unsafe_interrupts,
18 	"Allow IOMMUFD to bind to devices even if the platform cannot isolate "
19 	"the MSI interrupt window. Enabling this is a security weakness.");
20 
21 struct iommufd_attach {
22 	struct iommufd_hw_pagetable *hwpt;
23 	struct xarray device_array;
24 };
25 
26 /*
27  * Detect a noiommu device for the cdev path. We check dev->iommu rather than
28  * using device_iommu_mapped() (which checks dev->iommu_group) because when
29  * both group and cdev interfaces coexist, the group path assigns a fake
30  * noiommu iommu_group to the device. That would cause device_iommu_mapped()
31  * to return true and hide the noiommu case from the cdev path. dev->iommu is
32  * reliably NULL when no IOMMU driver is managing the device.
33  */
iommufd_device_is_noiommu(struct iommufd_device * idev)34 static bool iommufd_device_is_noiommu(struct iommufd_device *idev)
35 {
36 	return IS_ENABLED(CONFIG_IOMMUFD_NOIOMMU) && !idev->dev->iommu;
37 }
38 
iommufd_group_release(struct kref * kref)39 static void iommufd_group_release(struct kref *kref)
40 {
41 	struct iommufd_group *igroup =
42 		container_of(kref, struct iommufd_group, ref);
43 
44 	WARN_ON(!xa_empty(&igroup->pasid_attach));
45 
46 	if (igroup->group) {
47 		xa_cmpxchg(&igroup->ictx->groups, iommu_group_id(igroup->group),
48 			   igroup, NULL, GFP_KERNEL);
49 		iommu_group_put(igroup->group);
50 	}
51 	mutex_destroy(&igroup->lock);
52 	kfree(igroup);
53 }
54 
iommufd_put_group(struct iommufd_group * group)55 static void iommufd_put_group(struct iommufd_group *group)
56 {
57 	kref_put(&group->ref, iommufd_group_release);
58 }
59 
iommufd_group_try_get(struct iommufd_group * igroup,struct iommu_group * group)60 static bool iommufd_group_try_get(struct iommufd_group *igroup,
61 				  struct iommu_group *group)
62 {
63 	if (!igroup)
64 		return false;
65 	/*
66 	 * group ID's cannot be re-used until the group is put back which does
67 	 * not happen if we could get an igroup pointer under the xa_lock.
68 	 */
69 	if (WARN_ON(igroup->group != group))
70 		return false;
71 	return kref_get_unless_zero(&igroup->ref);
72 }
73 
iommufd_alloc_group(struct iommufd_ctx * ictx,struct iommu_group * group)74 static struct iommufd_group *iommufd_alloc_group(struct iommufd_ctx *ictx,
75 						 struct iommu_group *group)
76 {
77 	struct iommufd_group *new_igroup;
78 
79 	new_igroup = kzalloc_obj(*new_igroup, GFP_KERNEL);
80 	if (!new_igroup)
81 		return ERR_PTR(-ENOMEM);
82 
83 	kref_init(&new_igroup->ref);
84 	mutex_init(&new_igroup->lock);
85 	xa_init(&new_igroup->pasid_attach);
86 	new_igroup->sw_msi_start = PHYS_ADDR_MAX;
87 	/* group reference moves into new_igroup */
88 	new_igroup->group = group;
89 
90 	/*
91 	 * The ictx is not additionally refcounted here because all objects using
92 	 * an igroup must put it before their destroy completes.
93 	 */
94 	new_igroup->ictx = ictx;
95 	return new_igroup;
96 }
97 
98 /*
99  * iommufd needs to store some more data for each iommu_group, we keep a
100  * parallel xarray indexed by iommu_group id to hold this instead of putting it
101  * in the core structure. To keep things simple the iommufd_group memory is
102  * unique within the iommufd_ctx. This makes it easy to check there are no
103  * memory leaks.
104  */
iommufd_get_group(struct iommufd_ctx * ictx,struct device * dev)105 static struct iommufd_group *iommufd_get_group(struct iommufd_ctx *ictx,
106 					       struct device *dev)
107 {
108 	struct iommufd_group *new_igroup;
109 	struct iommufd_group *cur_igroup;
110 	struct iommufd_group *igroup;
111 	struct iommu_group *group;
112 	unsigned int id;
113 
114 	group = iommu_group_get(dev);
115 	if (!group)
116 		return ERR_PTR(-ENODEV);
117 
118 	id = iommu_group_id(group);
119 
120 	xa_lock(&ictx->groups);
121 	igroup = xa_load(&ictx->groups, id);
122 	if (iommufd_group_try_get(igroup, group)) {
123 		xa_unlock(&ictx->groups);
124 		iommu_group_put(group);
125 		return igroup;
126 	}
127 	xa_unlock(&ictx->groups);
128 
129 	new_igroup = iommufd_alloc_group(ictx, group);
130 	if (IS_ERR(new_igroup)) {
131 		iommu_group_put(group);
132 		return new_igroup;
133 	}
134 
135 	/*
136 	 * We dropped the lock so igroup is invalid. NULL is a safe and likely
137 	 * value to assume for the xa_cmpxchg algorithm.
138 	 */
139 	cur_igroup = NULL;
140 	xa_lock(&ictx->groups);
141 	while (true) {
142 		igroup = __xa_cmpxchg(&ictx->groups, id, cur_igroup, new_igroup,
143 				      GFP_KERNEL);
144 		if (xa_is_err(igroup)) {
145 			xa_unlock(&ictx->groups);
146 			iommufd_put_group(new_igroup);
147 			return ERR_PTR(xa_err(igroup));
148 		}
149 
150 		/* new_group was successfully installed */
151 		if (cur_igroup == igroup) {
152 			xa_unlock(&ictx->groups);
153 			return new_igroup;
154 		}
155 
156 		/* Check again if the current group is any good */
157 		if (iommufd_group_try_get(igroup, group)) {
158 			xa_unlock(&ictx->groups);
159 			iommufd_put_group(new_igroup);
160 			return igroup;
161 		}
162 		cur_igroup = igroup;
163 	}
164 }
165 
iommufd_device_remove_vdev(struct iommufd_device * idev)166 static void iommufd_device_remove_vdev(struct iommufd_device *idev)
167 {
168 	struct iommufd_vdevice *vdev;
169 
170 	mutex_lock(&idev->igroup->lock);
171 	/* prevent new references from vdev */
172 	idev->destroying = true;
173 	/* vdev has been completely destroyed by userspace */
174 	if (!idev->vdev)
175 		goto out_unlock;
176 
177 	vdev = idev->vdev;
178 
179 	/*
180 	 * An ongoing vdev destroy ioctl has removed the vdev from the object
181 	 * xarray, but has not finished iommufd_vdevice_destroy() yet as it
182 	 * needs the same mutex. We exit the locking then wait on wait_cnt
183 	 * reference for the vdev destruction.
184 	 */
185 	if (iommufd_try_inc_users(idev->ictx, &vdev->obj))
186 		goto out_unlock;
187 
188 	/*
189 	 * vdev is still alive. Hold a users refcount to prevent racing with
190 	 * userspace destruction, then use iommufd_object_tombstone_user() to
191 	 * destroy it and leave a tombstone.
192 	 */
193 	mutex_unlock(&idev->igroup->lock);
194 	iommufd_object_tombstone_user(idev->ictx, &vdev->obj);
195 	return;
196 
197 out_unlock:
198 	mutex_unlock(&idev->igroup->lock);
199 }
200 
iommufd_device_pre_destroy(struct iommufd_object * obj)201 void iommufd_device_pre_destroy(struct iommufd_object *obj)
202 {
203 	struct iommufd_device *idev =
204 		container_of(obj, struct iommufd_device, obj);
205 
206 	/* Release the wait_cnt reference on this */
207 	iommufd_device_remove_vdev(idev);
208 }
209 
iommufd_device_destroy(struct iommufd_object * obj)210 void iommufd_device_destroy(struct iommufd_object *obj)
211 {
212 	struct iommufd_device *idev =
213 		container_of(obj, struct iommufd_device, obj);
214 
215 	/* igroup is NULL when destroy called during bind error cleanup */
216 	if (!idev->igroup)
217 		return;
218 	if (!iommufd_device_is_noiommu(idev))
219 		iommu_device_release_dma_owner(idev->dev);
220 	iommufd_put_group(idev->igroup);
221 	if (!iommufd_selftest_is_mock_dev(idev->dev))
222 		iommufd_ctx_put(idev->ictx);
223 }
224 
iommufd_bind_iommu(struct iommufd_device * idev)225 static int iommufd_bind_iommu(struct iommufd_device *idev)
226 {
227 	struct iommufd_ctx *ictx = idev->ictx;
228 	struct device *dev = idev->dev;
229 	struct iommufd_group *igroup;
230 	int rc;
231 
232 	/*
233 	 * iommufd always sets IOMMU_CACHE because we offer no way for userspace
234 	 * to restore cache coherency.
235 	 */
236 	if (!device_iommu_capable(dev, IOMMU_CAP_CACHE_COHERENCY))
237 		return -EINVAL;
238 
239 	igroup = iommufd_get_group(ictx, dev);
240 	if (IS_ERR(igroup))
241 		return PTR_ERR(igroup);
242 
243 	/*
244 	 * For historical compat with VFIO the insecure interrupt path is
245 	 * allowed if the module parameter is set. Secure/Isolated means that a
246 	 * MemWr operation from the device (eg a simple DMA) cannot trigger an
247 	 * interrupt outside this iommufd context.
248 	 */
249 	if (!iommufd_selftest_is_mock_dev(dev) &&
250 	    !iommu_group_has_isolated_msi(igroup->group)) {
251 		if (!allow_unsafe_interrupts) {
252 			rc = -EPERM;
253 			goto out_group_put;
254 		}
255 
256 		dev_warn(
257 			dev,
258 			"MSI interrupts are not secure, they cannot be isolated by the platform. "
259 			"Check that platform features like interrupt remapping are enabled. "
260 			"Use the \"allow_unsafe_interrupts\" module parameter to override\n");
261 	}
262 
263 	rc = iommu_device_claim_dma_owner(dev, ictx);
264 	if (rc)
265 		goto out_group_put;
266 
267 	/* igroup refcount moves into iommufd_device */
268 	idev->igroup = igroup;
269 	idev->enforce_cache_coherency =
270 		device_iommu_capable(dev, IOMMU_CAP_ENFORCE_CACHE_COHERENCY);
271 	return 0;
272 
273 out_group_put:
274 	iommufd_put_group(igroup);
275 	return rc;
276 }
277 
278 /*
279  * Noiommu devices have no real IOMMU group. Create a dummy igroup so that
280  * internal code paths that expect idev->igroup to be present still work.
281  * A NULL igroup->group distinguishes this from a real IOMMU-backed group.
282  */
iommufd_bind_noiommu(struct iommufd_device * idev)283 static int iommufd_bind_noiommu(struct iommufd_device *idev)
284 {
285 	struct iommufd_group *igroup;
286 
287 	igroup = iommufd_alloc_group(idev->ictx, NULL);
288 	if (IS_ERR(igroup))
289 		return PTR_ERR(igroup);
290 	idev->igroup = igroup;
291 	return 0;
292 }
293 
294 /**
295  * iommufd_device_bind - Bind a physical device to an iommu fd
296  * @ictx: iommufd file descriptor
297  * @dev: Pointer to a physical device struct
298  * @id: Output ID number to return to userspace for this device
299  *
300  * A successful bind establishes an ownership over the device and returns
301  * struct iommufd_device pointer, otherwise returns error pointer.
302  *
303  * A driver using this API must set driver_managed_dma and must not touch
304  * the device until this routine succeeds and establishes ownership.
305  *
306  * Binding a PCI device places the entire RID under iommufd control.
307  *
308  * The caller must undo this with iommufd_device_unbind()
309  */
iommufd_device_bind(struct iommufd_ctx * ictx,struct device * dev,u32 * id)310 struct iommufd_device *iommufd_device_bind(struct iommufd_ctx *ictx,
311 					   struct device *dev, u32 *id)
312 {
313 	struct iommufd_device *idev;
314 	int rc;
315 
316 	idev = iommufd_object_alloc(ictx, idev, IOMMUFD_OBJ_DEVICE);
317 	if (IS_ERR(idev))
318 		return idev;
319 
320 	idev->ictx = ictx;
321 	idev->dev = dev;
322 
323 	if (!iommufd_device_is_noiommu(idev))
324 		rc = iommufd_bind_iommu(idev);
325 	else
326 		rc = iommufd_bind_noiommu(idev);
327 	if (rc)
328 		goto err_out;
329 
330 	/*
331 	 * Take a ctx reference after bind succeeds. This must happen here
332 	 * so that iommufd_device_destroy() can handle partial initialization
333 	 */
334 	if (!iommufd_selftest_is_mock_dev(dev))
335 		iommufd_ctx_get(ictx);
336 	/* The calling driver is a user until iommufd_device_unbind() */
337 	refcount_inc(&idev->obj.users);
338 
339 	/*
340 	 * If the caller fails after this success it must call
341 	 * iommufd_unbind_device() which is safe since we hold this refcount.
342 	 * This also means the device is a leaf in the graph and no other object
343 	 * can take a reference on it.
344 	 */
345 	iommufd_object_finalize(ictx, &idev->obj);
346 	*id = idev->obj.id;
347 	return idev;
348 
349 err_out:
350 	/*
351 	 * iommufd_device_destroy() handles partially initialized idev,
352 	 * so iommufd_object_abort_and_destroy() is safe to call here.
353 	 */
354 	iommufd_object_abort_and_destroy(ictx, &idev->obj);
355 	return ERR_PTR(rc);
356 
357 }
358 EXPORT_SYMBOL_NS_GPL(iommufd_device_bind, "IOMMUFD");
359 
360 /**
361  * iommufd_ctx_has_group - True if any device within the group is bound
362  *                         to the ictx
363  * @ictx: iommufd file descriptor
364  * @group: Pointer to a physical iommu_group struct
365  *
366  * True if any device within the group has been bound to this ictx, ex. via
367  * iommufd_device_bind(), therefore implying ictx ownership of the group.
368  */
iommufd_ctx_has_group(struct iommufd_ctx * ictx,struct iommu_group * group)369 bool iommufd_ctx_has_group(struct iommufd_ctx *ictx, struct iommu_group *group)
370 {
371 	struct iommufd_object *obj;
372 	unsigned long index;
373 
374 	if (!ictx || !group)
375 		return false;
376 
377 	xa_lock(&ictx->objects);
378 	xa_for_each(&ictx->objects, index, obj) {
379 		if (obj->type == IOMMUFD_OBJ_DEVICE &&
380 		    container_of(obj, struct iommufd_device, obj)
381 				    ->igroup->group == group) {
382 			xa_unlock(&ictx->objects);
383 			return true;
384 		}
385 	}
386 	xa_unlock(&ictx->objects);
387 	return false;
388 }
389 EXPORT_SYMBOL_NS_GPL(iommufd_ctx_has_group, "IOMMUFD");
390 
391 /**
392  * iommufd_device_unbind - Undo iommufd_device_bind()
393  * @idev: Device returned by iommufd_device_bind()
394  *
395  * Release the device from iommufd control. The DMA ownership will return back
396  * to unowned with DMA controlled by the DMA API. This invalidates the
397  * iommufd_device pointer, other APIs that consume it must not be called
398  * concurrently.
399  */
iommufd_device_unbind(struct iommufd_device * idev)400 void iommufd_device_unbind(struct iommufd_device *idev)
401 {
402 	iommufd_object_destroy_user(idev->ictx, &idev->obj);
403 }
404 EXPORT_SYMBOL_NS_GPL(iommufd_device_unbind, "IOMMUFD");
405 
iommufd_device_to_ictx(struct iommufd_device * idev)406 struct iommufd_ctx *iommufd_device_to_ictx(struct iommufd_device *idev)
407 {
408 	return idev->ictx;
409 }
410 EXPORT_SYMBOL_NS_GPL(iommufd_device_to_ictx, "IOMMUFD");
411 
iommufd_device_to_id(struct iommufd_device * idev)412 u32 iommufd_device_to_id(struct iommufd_device *idev)
413 {
414 	return idev->obj.id;
415 }
416 EXPORT_SYMBOL_NS_GPL(iommufd_device_to_id, "IOMMUFD");
417 
iommufd_group_device_num(struct iommufd_group * igroup,ioasid_t pasid)418 static unsigned int iommufd_group_device_num(struct iommufd_group *igroup,
419 					     ioasid_t pasid)
420 {
421 	struct iommufd_attach *attach;
422 	struct iommufd_device *idev;
423 	unsigned int count = 0;
424 	unsigned long index;
425 
426 	lockdep_assert_held(&igroup->lock);
427 
428 	attach = xa_load(&igroup->pasid_attach, pasid);
429 	if (attach)
430 		xa_for_each(&attach->device_array, index, idev)
431 			count++;
432 	return count;
433 }
434 
435 #ifdef CONFIG_IRQ_MSI_IOMMU
iommufd_group_setup_msi(struct iommufd_group * igroup,struct iommufd_hwpt_paging * hwpt_paging)436 static int iommufd_group_setup_msi(struct iommufd_group *igroup,
437 				   struct iommufd_hwpt_paging *hwpt_paging)
438 {
439 	struct iommufd_ctx *ictx = igroup->ictx;
440 	struct iommufd_sw_msi_map *cur;
441 
442 	if (igroup->sw_msi_start == PHYS_ADDR_MAX)
443 		return 0;
444 
445 	/*
446 	 * Install all the MSI pages the device has been using into the domain
447 	 */
448 	guard(mutex)(&ictx->sw_msi_lock);
449 	list_for_each_entry(cur, &ictx->sw_msi_list, sw_msi_item) {
450 		int rc;
451 
452 		if (cur->sw_msi_start != igroup->sw_msi_start ||
453 		    !test_bit(cur->id, igroup->required_sw_msi.bitmap))
454 			continue;
455 
456 		rc = iommufd_sw_msi_install(ictx, hwpt_paging, cur);
457 		if (rc)
458 			return rc;
459 	}
460 	return 0;
461 }
462 #else
463 static inline int
iommufd_group_setup_msi(struct iommufd_group * igroup,struct iommufd_hwpt_paging * hwpt_paging)464 iommufd_group_setup_msi(struct iommufd_group *igroup,
465 			struct iommufd_hwpt_paging *hwpt_paging)
466 {
467 	return 0;
468 }
469 #endif
470 
471 static bool
iommufd_group_first_attach(struct iommufd_group * igroup,ioasid_t pasid)472 iommufd_group_first_attach(struct iommufd_group *igroup, ioasid_t pasid)
473 {
474 	lockdep_assert_held(&igroup->lock);
475 	return !xa_load(&igroup->pasid_attach, pasid);
476 }
477 
478 static int
iommufd_device_attach_reserved_iova(struct iommufd_device * idev,struct iommufd_hwpt_paging * hwpt_paging)479 iommufd_device_attach_reserved_iova(struct iommufd_device *idev,
480 				    struct iommufd_hwpt_paging *hwpt_paging)
481 {
482 	struct iommufd_group *igroup = idev->igroup;
483 	int rc;
484 
485 	lockdep_assert_held(&igroup->lock);
486 
487 	rc = iopt_table_enforce_dev_resv_regions(&hwpt_paging->ioas->iopt,
488 						 idev->dev,
489 						 &igroup->sw_msi_start);
490 	if (rc)
491 		return rc;
492 
493 	if (iommufd_group_first_attach(igroup, IOMMU_NO_PASID)) {
494 		rc = iommufd_group_setup_msi(igroup, hwpt_paging);
495 		if (rc) {
496 			iopt_remove_reserved_iova(&hwpt_paging->ioas->iopt,
497 						  idev->dev);
498 			return rc;
499 		}
500 	}
501 	return 0;
502 }
503 
504 /* The device attach/detach/replace helpers for attach_handle */
505 
iommufd_device_is_attached(struct iommufd_device * idev,ioasid_t pasid)506 static bool iommufd_device_is_attached(struct iommufd_device *idev,
507 				       ioasid_t pasid)
508 {
509 	struct iommufd_attach *attach;
510 
511 	attach = xa_load(&idev->igroup->pasid_attach, pasid);
512 	return xa_load(&attach->device_array, idev->obj.id);
513 }
514 
iommufd_hwpt_pasid_compat(struct iommufd_hw_pagetable * hwpt,struct iommufd_device * idev,ioasid_t pasid)515 static int iommufd_hwpt_pasid_compat(struct iommufd_hw_pagetable *hwpt,
516 				     struct iommufd_device *idev,
517 				     ioasid_t pasid)
518 {
519 	struct iommufd_group *igroup = idev->igroup;
520 
521 	lockdep_assert_held(&igroup->lock);
522 
523 	if (pasid == IOMMU_NO_PASID) {
524 		unsigned long start = IOMMU_NO_PASID;
525 
526 		if (!hwpt->pasid_compat &&
527 		    xa_find_after(&igroup->pasid_attach,
528 				  &start, UINT_MAX, XA_PRESENT))
529 			return -EINVAL;
530 	} else {
531 		struct iommufd_attach *attach;
532 
533 		if (!hwpt->pasid_compat)
534 			return -EINVAL;
535 
536 		attach = xa_load(&igroup->pasid_attach, IOMMU_NO_PASID);
537 		if (attach && attach->hwpt && !attach->hwpt->pasid_compat)
538 			return -EINVAL;
539 	}
540 
541 	return 0;
542 }
543 
iommufd_hwpt_compatible_device(struct iommufd_hw_pagetable * hwpt,struct iommufd_device * idev)544 static bool iommufd_hwpt_compatible_device(struct iommufd_hw_pagetable *hwpt,
545 					   struct iommufd_device *idev)
546 {
547 	struct pci_dev *pdev;
548 
549 	if (!hwpt->fault || !dev_is_pci(idev->dev))
550 		return true;
551 
552 	/*
553 	 * Once we turn on PCI/PRI support for VF, the response failure code
554 	 * should not be forwarded to the hardware due to PRI being a shared
555 	 * resource between PF and VFs. There is no coordination for this
556 	 * shared capability. This waits for a vPRI reset to recover.
557 	 */
558 	pdev = to_pci_dev(idev->dev);
559 
560 	return (!pdev->is_virtfn || !pci_pri_supported(pdev));
561 }
562 
iommufd_hwpt_attach_device(struct iommufd_hw_pagetable * hwpt,struct iommufd_device * idev,ioasid_t pasid)563 static int iommufd_hwpt_attach_device(struct iommufd_hw_pagetable *hwpt,
564 				      struct iommufd_device *idev,
565 				      ioasid_t pasid)
566 {
567 	struct iommufd_attach_handle *handle;
568 	int rc;
569 
570 	if (!iommufd_hwpt_compatible_device(hwpt, idev))
571 		return -EINVAL;
572 
573 	rc = iommufd_hwpt_pasid_compat(hwpt, idev, pasid);
574 	if (rc)
575 		return rc;
576 
577 	if (iommufd_device_is_noiommu(idev))
578 		return 0;
579 
580 	handle = kzalloc_obj(*handle);
581 	if (!handle)
582 		return -ENOMEM;
583 
584 	handle->idev = idev;
585 	if (pasid == IOMMU_NO_PASID)
586 		rc = iommu_attach_group_handle(hwpt->domain, idev->igroup->group,
587 					       &handle->handle);
588 	else
589 		rc = iommu_attach_device_pasid(hwpt->domain, idev->dev, pasid,
590 					       &handle->handle);
591 	if (rc)
592 		goto out_free_handle;
593 
594 	return 0;
595 
596 out_free_handle:
597 	kfree(handle);
598 	return rc;
599 }
600 
601 static struct iommufd_attach_handle *
iommufd_device_get_attach_handle(struct iommufd_device * idev,ioasid_t pasid)602 iommufd_device_get_attach_handle(struct iommufd_device *idev, ioasid_t pasid)
603 {
604 	struct iommu_attach_handle *handle;
605 
606 	lockdep_assert_held(&idev->igroup->lock);
607 
608 	handle = iommu_attach_handle_get(idev->igroup->group, pasid, 0);
609 	if (IS_ERR(handle))
610 		return NULL;
611 	return to_iommufd_handle(handle);
612 }
613 
iommufd_hwpt_detach_device(struct iommufd_hw_pagetable * hwpt,struct iommufd_device * idev,ioasid_t pasid)614 static void iommufd_hwpt_detach_device(struct iommufd_hw_pagetable *hwpt,
615 				       struct iommufd_device *idev,
616 				       ioasid_t pasid)
617 {
618 	struct iommufd_attach_handle *handle;
619 
620 	if (iommufd_device_is_noiommu(idev))
621 		return;
622 
623 	handle = iommufd_device_get_attach_handle(idev, pasid);
624 	if (pasid == IOMMU_NO_PASID)
625 		iommu_detach_group_handle(hwpt->domain, idev->igroup->group);
626 	else
627 		iommu_detach_device_pasid(hwpt->domain, idev->dev, pasid);
628 
629 	iommufd_auto_response_faults(hwpt, handle);
630 	kfree(handle);
631 }
632 
iommufd_hwpt_replace_device(struct iommufd_device * idev,ioasid_t pasid,struct iommufd_hw_pagetable * hwpt,struct iommufd_hw_pagetable * old)633 static int iommufd_hwpt_replace_device(struct iommufd_device *idev,
634 				       ioasid_t pasid,
635 				       struct iommufd_hw_pagetable *hwpt,
636 				       struct iommufd_hw_pagetable *old)
637 {
638 	struct iommufd_attach_handle *handle, *old_handle;
639 	int rc;
640 
641 	if (!iommufd_hwpt_compatible_device(hwpt, idev))
642 		return -EINVAL;
643 
644 	rc = iommufd_hwpt_pasid_compat(hwpt, idev, pasid);
645 	if (rc)
646 		return rc;
647 
648 	if (iommufd_device_is_noiommu(idev))
649 		return 0;
650 
651 	old_handle = iommufd_device_get_attach_handle(idev, pasid);
652 
653 	handle = kzalloc_obj(*handle);
654 	if (!handle)
655 		return -ENOMEM;
656 
657 	handle->idev = idev;
658 	if (pasid == IOMMU_NO_PASID)
659 		rc = iommu_replace_group_handle(idev->igroup->group,
660 						hwpt->domain, &handle->handle);
661 	else
662 		rc = iommu_replace_device_pasid(hwpt->domain, idev->dev,
663 						pasid, &handle->handle);
664 	if (rc)
665 		goto out_free_handle;
666 
667 	iommufd_auto_response_faults(old, old_handle);
668 	kfree(old_handle);
669 
670 	return 0;
671 
672 out_free_handle:
673 	kfree(handle);
674 	return rc;
675 }
676 
iommufd_hw_pagetable_attach(struct iommufd_hw_pagetable * hwpt,struct iommufd_device * idev,ioasid_t pasid)677 int iommufd_hw_pagetable_attach(struct iommufd_hw_pagetable *hwpt,
678 				struct iommufd_device *idev, ioasid_t pasid)
679 {
680 	struct iommufd_hwpt_paging *hwpt_paging = find_hwpt_paging(hwpt);
681 	bool attach_resv = hwpt_paging && pasid == IOMMU_NO_PASID &&
682 			   !iommufd_device_is_noiommu(idev);
683 	struct iommufd_group *igroup = idev->igroup;
684 	struct iommufd_hw_pagetable *old_hwpt;
685 	struct iommufd_attach *attach;
686 	int rc;
687 
688 	mutex_lock(&igroup->lock);
689 
690 	attach = xa_cmpxchg(&igroup->pasid_attach, pasid, NULL,
691 			    XA_ZERO_ENTRY, GFP_KERNEL);
692 	if (xa_is_err(attach)) {
693 		rc = xa_err(attach);
694 		goto err_unlock;
695 	}
696 
697 	if (!attach) {
698 		attach = kzalloc_obj(*attach);
699 		if (!attach) {
700 			rc = -ENOMEM;
701 			goto err_release_pasid;
702 		}
703 		xa_init(&attach->device_array);
704 	}
705 
706 	old_hwpt = attach->hwpt;
707 
708 	rc = xa_insert(&attach->device_array, idev->obj.id, XA_ZERO_ENTRY,
709 		       GFP_KERNEL);
710 	if (rc) {
711 		WARN_ON(rc == -EBUSY && !old_hwpt);
712 		goto err_free_attach;
713 	}
714 
715 	if (old_hwpt && old_hwpt != hwpt) {
716 		rc = -EINVAL;
717 		goto err_release_devid;
718 	}
719 
720 	if (attach_resv) {
721 		rc = iommufd_device_attach_reserved_iova(idev, hwpt_paging);
722 		if (rc)
723 			goto err_release_devid;
724 	}
725 
726 	/*
727 	 * Only attach to the group once for the first device that is in the
728 	 * group. All the other devices will follow this attachment. The user
729 	 * should attach every device individually to the hwpt as the per-device
730 	 * reserved regions are only updated during individual device
731 	 * attachment.
732 	 */
733 	if (iommufd_group_first_attach(igroup, pasid)) {
734 		rc = iommufd_hwpt_attach_device(hwpt, idev, pasid);
735 		if (rc)
736 			goto err_unresv;
737 		attach->hwpt = hwpt;
738 		WARN_ON(xa_is_err(xa_store(&igroup->pasid_attach, pasid, attach,
739 					   GFP_KERNEL)));
740 	}
741 	refcount_inc(&hwpt->obj.users);
742 	WARN_ON(xa_is_err(xa_store(&attach->device_array, idev->obj.id,
743 				   idev, GFP_KERNEL)));
744 	mutex_unlock(&igroup->lock);
745 	return 0;
746 err_unresv:
747 	if (attach_resv)
748 		iopt_remove_reserved_iova(&hwpt_paging->ioas->iopt, idev->dev);
749 err_release_devid:
750 	xa_release(&attach->device_array, idev->obj.id);
751 err_free_attach:
752 	if (iommufd_group_first_attach(igroup, pasid))
753 		kfree(attach);
754 err_release_pasid:
755 	if (iommufd_group_first_attach(igroup, pasid))
756 		xa_release(&igroup->pasid_attach, pasid);
757 err_unlock:
758 	mutex_unlock(&igroup->lock);
759 	return rc;
760 }
761 
762 struct iommufd_hw_pagetable *
iommufd_hw_pagetable_detach(struct iommufd_device * idev,ioasid_t pasid)763 iommufd_hw_pagetable_detach(struct iommufd_device *idev, ioasid_t pasid)
764 {
765 	struct iommufd_group *igroup = idev->igroup;
766 	struct iommufd_hwpt_paging *hwpt_paging;
767 	struct iommufd_hw_pagetable *hwpt;
768 	struct iommufd_attach *attach;
769 
770 	mutex_lock(&igroup->lock);
771 	attach = xa_load(&igroup->pasid_attach, pasid);
772 	if (!attach) {
773 		mutex_unlock(&igroup->lock);
774 		return NULL;
775 	}
776 
777 	hwpt = attach->hwpt;
778 	hwpt_paging = find_hwpt_paging(hwpt);
779 
780 	xa_erase(&attach->device_array, idev->obj.id);
781 	if (xa_empty(&attach->device_array)) {
782 		iommufd_hwpt_detach_device(hwpt, idev, pasid);
783 		xa_erase(&igroup->pasid_attach, pasid);
784 		kfree(attach);
785 	}
786 	if (hwpt_paging && pasid == IOMMU_NO_PASID)
787 		iopt_remove_reserved_iova(&hwpt_paging->ioas->iopt, idev->dev);
788 	mutex_unlock(&igroup->lock);
789 
790 	iommufd_hw_pagetable_put(idev->ictx, hwpt);
791 
792 	/* Caller must destroy hwpt */
793 	return hwpt;
794 }
795 
796 static struct iommufd_hw_pagetable *
iommufd_device_do_attach(struct iommufd_device * idev,ioasid_t pasid,struct iommufd_hw_pagetable * hwpt)797 iommufd_device_do_attach(struct iommufd_device *idev, ioasid_t pasid,
798 			 struct iommufd_hw_pagetable *hwpt)
799 {
800 	int rc;
801 
802 	rc = iommufd_hw_pagetable_attach(hwpt, idev, pasid);
803 	if (rc)
804 		return ERR_PTR(rc);
805 	return NULL;
806 }
807 
808 static void
iommufd_group_remove_reserved_iova(struct iommufd_group * igroup,struct iommufd_hwpt_paging * hwpt_paging)809 iommufd_group_remove_reserved_iova(struct iommufd_group *igroup,
810 				   struct iommufd_hwpt_paging *hwpt_paging)
811 {
812 	struct iommufd_attach *attach;
813 	struct iommufd_device *cur;
814 	unsigned long index;
815 
816 	lockdep_assert_held(&igroup->lock);
817 
818 	attach = xa_load(&igroup->pasid_attach, IOMMU_NO_PASID);
819 	xa_for_each(&attach->device_array, index, cur)
820 		iopt_remove_reserved_iova(&hwpt_paging->ioas->iopt, cur->dev);
821 }
822 
823 static int
iommufd_group_do_replace_reserved_iova(struct iommufd_group * igroup,struct iommufd_hwpt_paging * hwpt_paging)824 iommufd_group_do_replace_reserved_iova(struct iommufd_group *igroup,
825 				       struct iommufd_hwpt_paging *hwpt_paging)
826 {
827 	struct iommufd_hwpt_paging *old_hwpt_paging;
828 	struct iommufd_attach *attach;
829 	struct iommufd_device *cur;
830 	unsigned long index;
831 	int rc;
832 
833 	lockdep_assert_held(&igroup->lock);
834 
835 	attach = xa_load(&igroup->pasid_attach, IOMMU_NO_PASID);
836 	old_hwpt_paging = find_hwpt_paging(attach->hwpt);
837 	if (!old_hwpt_paging || hwpt_paging->ioas != old_hwpt_paging->ioas) {
838 		xa_for_each(&attach->device_array, index, cur) {
839 			rc = iopt_table_enforce_dev_resv_regions(
840 				&hwpt_paging->ioas->iopt, cur->dev, NULL);
841 			if (rc)
842 				goto err_unresv;
843 		}
844 	}
845 
846 	rc = iommufd_group_setup_msi(igroup, hwpt_paging);
847 	if (rc)
848 		goto err_unresv;
849 	return 0;
850 
851 err_unresv:
852 	iommufd_group_remove_reserved_iova(igroup, hwpt_paging);
853 	return rc;
854 }
855 
856 static struct iommufd_hw_pagetable *
iommufd_device_do_replace(struct iommufd_device * idev,ioasid_t pasid,struct iommufd_hw_pagetable * hwpt)857 iommufd_device_do_replace(struct iommufd_device *idev, ioasid_t pasid,
858 			  struct iommufd_hw_pagetable *hwpt)
859 {
860 	struct iommufd_hwpt_paging *hwpt_paging = find_hwpt_paging(hwpt);
861 	bool attach_resv = hwpt_paging && pasid == IOMMU_NO_PASID &&
862 			   !iommufd_device_is_noiommu(idev);
863 	struct iommufd_hwpt_paging *old_hwpt_paging;
864 	struct iommufd_group *igroup = idev->igroup;
865 	struct iommufd_hw_pagetable *old_hwpt;
866 	struct iommufd_attach *attach;
867 	unsigned int num_devices;
868 	int rc;
869 
870 	mutex_lock(&igroup->lock);
871 
872 	attach = xa_load(&igroup->pasid_attach, pasid);
873 	if (!attach) {
874 		rc = -EINVAL;
875 		goto err_unlock;
876 	}
877 
878 	old_hwpt = attach->hwpt;
879 
880 	WARN_ON(!old_hwpt || xa_empty(&attach->device_array));
881 
882 	if (!iommufd_device_is_attached(idev, pasid)) {
883 		rc = -EINVAL;
884 		goto err_unlock;
885 	}
886 
887 	if (hwpt == old_hwpt) {
888 		mutex_unlock(&igroup->lock);
889 		return NULL;
890 	}
891 
892 	if (attach_resv) {
893 		rc = iommufd_group_do_replace_reserved_iova(igroup, hwpt_paging);
894 		if (rc)
895 			goto err_unlock;
896 	}
897 
898 	rc = iommufd_hwpt_replace_device(idev, pasid, hwpt, old_hwpt);
899 	if (rc)
900 		goto err_unresv;
901 
902 	old_hwpt_paging = find_hwpt_paging(old_hwpt);
903 	if (old_hwpt_paging && pasid == IOMMU_NO_PASID &&
904 	    (!hwpt_paging || hwpt_paging->ioas != old_hwpt_paging->ioas))
905 		iommufd_group_remove_reserved_iova(igroup, old_hwpt_paging);
906 
907 	attach->hwpt = hwpt;
908 
909 	num_devices = iommufd_group_device_num(igroup, pasid);
910 	/*
911 	 * Move the refcounts held by the device_array to the new hwpt. Retain a
912 	 * refcount for this thread as the caller will free it.
913 	 */
914 	refcount_add(num_devices, &hwpt->obj.users);
915 	if (num_devices > 1)
916 		WARN_ON(refcount_sub_and_test(num_devices - 1,
917 					      &old_hwpt->obj.users));
918 	mutex_unlock(&igroup->lock);
919 
920 	/* Caller must destroy old_hwpt */
921 	return old_hwpt;
922 err_unresv:
923 	if (attach_resv)
924 		iommufd_group_remove_reserved_iova(igroup, hwpt_paging);
925 err_unlock:
926 	mutex_unlock(&igroup->lock);
927 	return ERR_PTR(rc);
928 }
929 
930 typedef struct iommufd_hw_pagetable *(*attach_fn)(
931 	struct iommufd_device *idev, ioasid_t pasid,
932 	struct iommufd_hw_pagetable *hwpt);
933 
934 /*
935  * When automatically managing the domains we search for a compatible domain in
936  * the iopt and if one is found use it, otherwise create a new domain.
937  * Automatic domain selection will never pick a manually created domain.
938  */
939 static struct iommufd_hw_pagetable *
iommufd_device_auto_get_domain(struct iommufd_device * idev,ioasid_t pasid,struct iommufd_ioas * ioas,u32 * pt_id,attach_fn do_attach)940 iommufd_device_auto_get_domain(struct iommufd_device *idev, ioasid_t pasid,
941 			       struct iommufd_ioas *ioas, u32 *pt_id,
942 			       attach_fn do_attach)
943 {
944 	/*
945 	 * iommufd_hw_pagetable_attach() is called by
946 	 * iommufd_hwpt_paging_alloc() in immediate attachment mode, same as
947 	 * iommufd_device_do_attach(). So if we are in this mode then we prefer
948 	 * to use the immediate_attach path as it supports drivers that can't
949 	 * directly allocate a domain.
950 	 */
951 	bool immediate_attach = do_attach == iommufd_device_do_attach;
952 	struct iommufd_hw_pagetable *destroy_hwpt;
953 	struct iommufd_hwpt_paging *hwpt_paging;
954 	struct iommufd_hw_pagetable *hwpt;
955 
956 	/*
957 	 * There is no differentiation when domains are allocated, so any domain
958 	 * that is willing to attach to the device is interchangeable with any
959 	 * other.
960 	 */
961 	mutex_lock(&ioas->mutex);
962 	list_for_each_entry(hwpt_paging, &ioas->hwpt_list, hwpt_item) {
963 		if (!hwpt_paging->auto_domain)
964 			continue;
965 
966 		hwpt = &hwpt_paging->common;
967 		if (!iommufd_lock_obj(&hwpt->obj))
968 			continue;
969 		destroy_hwpt = (*do_attach)(idev, pasid, hwpt);
970 		if (IS_ERR(destroy_hwpt)) {
971 			iommufd_put_object(idev->ictx, &hwpt->obj);
972 			/*
973 			 * -EINVAL means the domain is incompatible with the
974 			 * device. Other error codes should propagate to
975 			 * userspace as failure. Success means the domain is
976 			 * attached.
977 			 */
978 			if (PTR_ERR(destroy_hwpt) == -EINVAL)
979 				continue;
980 			goto out_unlock;
981 		}
982 		*pt_id = hwpt->obj.id;
983 		iommufd_put_object(idev->ictx, &hwpt->obj);
984 		goto out_unlock;
985 	}
986 
987 	hwpt_paging = iommufd_hwpt_paging_alloc(idev->ictx, ioas, idev, pasid,
988 						0, immediate_attach, NULL);
989 	if (IS_ERR(hwpt_paging)) {
990 		destroy_hwpt = ERR_CAST(hwpt_paging);
991 		goto out_unlock;
992 	}
993 	hwpt = &hwpt_paging->common;
994 
995 	if (!immediate_attach) {
996 		destroy_hwpt = (*do_attach)(idev, pasid, hwpt);
997 		if (IS_ERR(destroy_hwpt))
998 			goto out_abort;
999 	} else {
1000 		destroy_hwpt = NULL;
1001 	}
1002 
1003 	hwpt_paging->auto_domain = true;
1004 	*pt_id = hwpt->obj.id;
1005 
1006 	iommufd_object_finalize(idev->ictx, &hwpt->obj);
1007 	mutex_unlock(&ioas->mutex);
1008 	return destroy_hwpt;
1009 
1010 out_abort:
1011 	iommufd_object_abort_and_destroy(idev->ictx, &hwpt->obj);
1012 out_unlock:
1013 	mutex_unlock(&ioas->mutex);
1014 	return destroy_hwpt;
1015 }
1016 
iommufd_device_change_pt(struct iommufd_device * idev,ioasid_t pasid,u32 * pt_id,attach_fn do_attach)1017 static int iommufd_device_change_pt(struct iommufd_device *idev,
1018 				    ioasid_t pasid,
1019 				    u32 *pt_id, attach_fn do_attach)
1020 {
1021 	struct iommufd_hw_pagetable *destroy_hwpt;
1022 	struct iommufd_object *pt_obj;
1023 
1024 	pt_obj = iommufd_get_object(idev->ictx, *pt_id, IOMMUFD_OBJ_ANY);
1025 	if (IS_ERR(pt_obj))
1026 		return PTR_ERR(pt_obj);
1027 
1028 	switch (pt_obj->type) {
1029 	case IOMMUFD_OBJ_HWPT_NESTED:
1030 	case IOMMUFD_OBJ_HWPT_PAGING: {
1031 		struct iommufd_hw_pagetable *hwpt =
1032 			container_of(pt_obj, struct iommufd_hw_pagetable, obj);
1033 
1034 		destroy_hwpt = (*do_attach)(idev, pasid, hwpt);
1035 		if (IS_ERR(destroy_hwpt))
1036 			goto out_put_pt_obj;
1037 		break;
1038 	}
1039 	case IOMMUFD_OBJ_IOAS: {
1040 		struct iommufd_ioas *ioas =
1041 			container_of(pt_obj, struct iommufd_ioas, obj);
1042 
1043 		destroy_hwpt = iommufd_device_auto_get_domain(idev, pasid, ioas,
1044 							      pt_id, do_attach);
1045 		if (IS_ERR(destroy_hwpt))
1046 			goto out_put_pt_obj;
1047 		break;
1048 	}
1049 	default:
1050 		destroy_hwpt = ERR_PTR(-EINVAL);
1051 		goto out_put_pt_obj;
1052 	}
1053 	iommufd_put_object(idev->ictx, pt_obj);
1054 
1055 	/* This destruction has to be after we unlock everything */
1056 	if (destroy_hwpt)
1057 		iommufd_hw_pagetable_put(idev->ictx, destroy_hwpt);
1058 	return 0;
1059 
1060 out_put_pt_obj:
1061 	iommufd_put_object(idev->ictx, pt_obj);
1062 	return PTR_ERR(destroy_hwpt);
1063 }
1064 
1065 /**
1066  * iommufd_device_attach - Connect a device/pasid to an iommu_domain
1067  * @idev: device to attach
1068  * @pasid: pasid to attach
1069  * @pt_id: Input an IOMMUFD_OBJ_IOAS, or IOMMUFD_OBJ_HWPT_PAGING
1070  *         Output the IOMMUFD_OBJ_HWPT_PAGING ID
1071  *
1072  * This connects the device/pasid to an iommu_domain, either automatically
1073  * or manually selected. Once this completes the device could do DMA with
1074  * @pasid. @pasid is IOMMU_NO_PASID if this attach is for no pasid usage.
1075  *
1076  * The caller should return the resulting pt_id back to userspace.
1077  * This function is undone by calling iommufd_device_detach().
1078  */
iommufd_device_attach(struct iommufd_device * idev,ioasid_t pasid,u32 * pt_id)1079 int iommufd_device_attach(struct iommufd_device *idev, ioasid_t pasid,
1080 			  u32 *pt_id)
1081 {
1082 	int rc;
1083 
1084 	rc = iommufd_device_change_pt(idev, pasid, pt_id,
1085 				      &iommufd_device_do_attach);
1086 	if (rc)
1087 		return rc;
1088 
1089 	/*
1090 	 * Pairs with iommufd_device_detach() - catches caller bugs attempting
1091 	 * to destroy a device with an attachment.
1092 	 */
1093 	refcount_inc(&idev->obj.users);
1094 	return 0;
1095 }
1096 EXPORT_SYMBOL_NS_GPL(iommufd_device_attach, "IOMMUFD");
1097 
1098 /**
1099  * iommufd_device_replace - Change the device/pasid's iommu_domain
1100  * @idev: device to change
1101  * @pasid: pasid to change
1102  * @pt_id: Input an IOMMUFD_OBJ_IOAS, or IOMMUFD_OBJ_HWPT_PAGING
1103  *         Output the IOMMUFD_OBJ_HWPT_PAGING ID
1104  *
1105  * This is the same as::
1106  *
1107  *   iommufd_device_detach();
1108  *   iommufd_device_attach();
1109  *
1110  * If it fails then no change is made to the attachment. The iommu driver may
1111  * implement this so there is no disruption in translation. This can only be
1112  * called if iommufd_device_attach() has already succeeded. @pasid is
1113  * IOMMU_NO_PASID for no pasid usage.
1114  */
iommufd_device_replace(struct iommufd_device * idev,ioasid_t pasid,u32 * pt_id)1115 int iommufd_device_replace(struct iommufd_device *idev, ioasid_t pasid,
1116 			   u32 *pt_id)
1117 {
1118 	return iommufd_device_change_pt(idev, pasid, pt_id,
1119 					&iommufd_device_do_replace);
1120 }
1121 EXPORT_SYMBOL_NS_GPL(iommufd_device_replace, "IOMMUFD");
1122 
1123 /**
1124  * iommufd_device_detach - Disconnect a device/pasid from an iommu_domain
1125  * @idev: device to detach
1126  * @pasid: pasid to detach
1127  *
1128  * Undo iommufd_device_attach(). This disconnects the idev from the previously
1129  * attached pt_id. The device returns back to a blocked DMA translation.
1130  * @pasid is IOMMU_NO_PASID for no pasid usage.
1131  */
iommufd_device_detach(struct iommufd_device * idev,ioasid_t pasid)1132 void iommufd_device_detach(struct iommufd_device *idev, ioasid_t pasid)
1133 {
1134 	struct iommufd_hw_pagetable *hwpt;
1135 
1136 	hwpt = iommufd_hw_pagetable_detach(idev, pasid);
1137 	if (!hwpt)
1138 		return;
1139 	refcount_dec(&idev->obj.users);
1140 }
1141 EXPORT_SYMBOL_NS_GPL(iommufd_device_detach, "IOMMUFD");
1142 
1143 /*
1144  * On success, it will refcount_inc() at a valid new_ioas and refcount_dec() at
1145  * a valid cur_ioas (access->ioas). A caller passing in a valid new_ioas should
1146  * call iommufd_put_object() if it does an iommufd_get_object() for a new_ioas.
1147  */
iommufd_access_change_ioas(struct iommufd_access * access,struct iommufd_ioas * new_ioas)1148 static int iommufd_access_change_ioas(struct iommufd_access *access,
1149 				      struct iommufd_ioas *new_ioas)
1150 {
1151 	u32 iopt_access_list_id = access->iopt_access_list_id;
1152 	struct iommufd_ioas *cur_ioas = access->ioas;
1153 	int rc;
1154 
1155 	lockdep_assert_held(&access->ioas_lock);
1156 
1157 	/* We are racing with a concurrent detach, bail */
1158 	if (cur_ioas != access->ioas_unpin)
1159 		return -EBUSY;
1160 
1161 	if (cur_ioas == new_ioas)
1162 		return 0;
1163 
1164 	/*
1165 	 * Set ioas to NULL to block any further iommufd_access_pin_pages().
1166 	 * iommufd_access_unpin_pages() can continue using access->ioas_unpin.
1167 	 */
1168 	access->ioas = NULL;
1169 
1170 	if (new_ioas) {
1171 		rc = iopt_add_access(&new_ioas->iopt, access);
1172 		if (rc) {
1173 			access->ioas = cur_ioas;
1174 			return rc;
1175 		}
1176 		refcount_inc(&new_ioas->obj.users);
1177 	}
1178 
1179 	if (cur_ioas) {
1180 		if (!iommufd_access_is_internal(access) && access->ops->unmap) {
1181 			mutex_unlock(&access->ioas_lock);
1182 			access->ops->unmap(access->data, 0, ULONG_MAX);
1183 			mutex_lock(&access->ioas_lock);
1184 		}
1185 		iopt_remove_access(&cur_ioas->iopt, access, iopt_access_list_id);
1186 		refcount_dec(&cur_ioas->obj.users);
1187 	}
1188 
1189 	access->ioas = new_ioas;
1190 	access->ioas_unpin = new_ioas;
1191 
1192 	return 0;
1193 }
1194 
iommufd_access_change_ioas_id(struct iommufd_access * access,u32 id)1195 static int iommufd_access_change_ioas_id(struct iommufd_access *access, u32 id)
1196 {
1197 	struct iommufd_ioas *ioas = iommufd_get_ioas(access->ictx, id);
1198 	int rc;
1199 
1200 	if (IS_ERR(ioas))
1201 		return PTR_ERR(ioas);
1202 	rc = iommufd_access_change_ioas(access, ioas);
1203 	iommufd_put_object(access->ictx, &ioas->obj);
1204 	return rc;
1205 }
1206 
iommufd_access_destroy_object(struct iommufd_object * obj)1207 void iommufd_access_destroy_object(struct iommufd_object *obj)
1208 {
1209 	struct iommufd_access *access =
1210 		container_of(obj, struct iommufd_access, obj);
1211 
1212 	mutex_lock(&access->ioas_lock);
1213 	if (access->ioas)
1214 		WARN_ON(iommufd_access_change_ioas(access, NULL));
1215 	mutex_unlock(&access->ioas_lock);
1216 	if (!iommufd_access_is_internal(access))
1217 		iommufd_ctx_put(access->ictx);
1218 }
1219 
__iommufd_access_create(struct iommufd_ctx * ictx)1220 static struct iommufd_access *__iommufd_access_create(struct iommufd_ctx *ictx)
1221 {
1222 	struct iommufd_access *access;
1223 
1224 	/*
1225 	 * There is no uAPI for the access object, but to keep things symmetric
1226 	 * use the object infrastructure anyhow.
1227 	 */
1228 	access = iommufd_object_alloc(ictx, access, IOMMUFD_OBJ_ACCESS);
1229 	if (IS_ERR(access))
1230 		return access;
1231 
1232 	/* The calling driver is a user until iommufd_access_destroy() */
1233 	refcount_inc(&access->obj.users);
1234 	mutex_init(&access->ioas_lock);
1235 	return access;
1236 }
1237 
iommufd_access_create_internal(struct iommufd_ctx * ictx)1238 struct iommufd_access *iommufd_access_create_internal(struct iommufd_ctx *ictx)
1239 {
1240 	struct iommufd_access *access;
1241 
1242 	access = __iommufd_access_create(ictx);
1243 	if (IS_ERR(access))
1244 		return access;
1245 	access->iova_alignment = PAGE_SIZE;
1246 
1247 	iommufd_object_finalize(ictx, &access->obj);
1248 	return access;
1249 }
1250 
1251 /**
1252  * iommufd_access_create - Create an iommufd_access
1253  * @ictx: iommufd file descriptor
1254  * @ops: Driver's ops to associate with the access
1255  * @data: Opaque data to pass into ops functions
1256  * @id: Output ID number to return to userspace for this access
1257  *
1258  * An iommufd_access allows a driver to read/write to the IOAS without using
1259  * DMA. The underlying CPU memory can be accessed using the
1260  * iommufd_access_pin_pages() or iommufd_access_rw() functions.
1261  *
1262  * The provided ops are required to use iommufd_access_pin_pages().
1263  */
1264 struct iommufd_access *
iommufd_access_create(struct iommufd_ctx * ictx,const struct iommufd_access_ops * ops,void * data,u32 * id)1265 iommufd_access_create(struct iommufd_ctx *ictx,
1266 		      const struct iommufd_access_ops *ops, void *data, u32 *id)
1267 {
1268 	struct iommufd_access *access;
1269 
1270 	access = __iommufd_access_create(ictx);
1271 	if (IS_ERR(access))
1272 		return access;
1273 
1274 	access->data = data;
1275 	access->ops = ops;
1276 
1277 	if (ops->needs_pin_pages)
1278 		access->iova_alignment = PAGE_SIZE;
1279 	else
1280 		access->iova_alignment = 1;
1281 
1282 	access->ictx = ictx;
1283 	iommufd_ctx_get(ictx);
1284 	iommufd_object_finalize(ictx, &access->obj);
1285 	*id = access->obj.id;
1286 	return access;
1287 }
1288 EXPORT_SYMBOL_NS_GPL(iommufd_access_create, "IOMMUFD");
1289 
1290 /**
1291  * iommufd_access_destroy - Destroy an iommufd_access
1292  * @access: The access to destroy
1293  *
1294  * The caller must stop using the access before destroying it.
1295  */
iommufd_access_destroy(struct iommufd_access * access)1296 void iommufd_access_destroy(struct iommufd_access *access)
1297 {
1298 	iommufd_object_destroy_user(access->ictx, &access->obj);
1299 }
1300 EXPORT_SYMBOL_NS_GPL(iommufd_access_destroy, "IOMMUFD");
1301 
iommufd_access_detach(struct iommufd_access * access)1302 void iommufd_access_detach(struct iommufd_access *access)
1303 {
1304 	mutex_lock(&access->ioas_lock);
1305 	if (WARN_ON(!access->ioas)) {
1306 		mutex_unlock(&access->ioas_lock);
1307 		return;
1308 	}
1309 	WARN_ON(iommufd_access_change_ioas(access, NULL));
1310 	mutex_unlock(&access->ioas_lock);
1311 }
1312 EXPORT_SYMBOL_NS_GPL(iommufd_access_detach, "IOMMUFD");
1313 
iommufd_access_attach(struct iommufd_access * access,u32 ioas_id)1314 int iommufd_access_attach(struct iommufd_access *access, u32 ioas_id)
1315 {
1316 	int rc;
1317 
1318 	mutex_lock(&access->ioas_lock);
1319 	if (WARN_ON(access->ioas)) {
1320 		mutex_unlock(&access->ioas_lock);
1321 		return -EINVAL;
1322 	}
1323 
1324 	rc = iommufd_access_change_ioas_id(access, ioas_id);
1325 	mutex_unlock(&access->ioas_lock);
1326 	return rc;
1327 }
1328 EXPORT_SYMBOL_NS_GPL(iommufd_access_attach, "IOMMUFD");
1329 
iommufd_access_attach_internal(struct iommufd_access * access,struct iommufd_ioas * ioas)1330 int iommufd_access_attach_internal(struct iommufd_access *access,
1331 				   struct iommufd_ioas *ioas)
1332 {
1333 	int rc;
1334 
1335 	mutex_lock(&access->ioas_lock);
1336 	if (WARN_ON(access->ioas)) {
1337 		mutex_unlock(&access->ioas_lock);
1338 		return -EINVAL;
1339 	}
1340 
1341 	rc = iommufd_access_change_ioas(access, ioas);
1342 	mutex_unlock(&access->ioas_lock);
1343 	return rc;
1344 }
1345 
iommufd_access_replace(struct iommufd_access * access,u32 ioas_id)1346 int iommufd_access_replace(struct iommufd_access *access, u32 ioas_id)
1347 {
1348 	int rc;
1349 
1350 	mutex_lock(&access->ioas_lock);
1351 	if (!access->ioas) {
1352 		mutex_unlock(&access->ioas_lock);
1353 		return -ENOENT;
1354 	}
1355 	rc = iommufd_access_change_ioas_id(access, ioas_id);
1356 	mutex_unlock(&access->ioas_lock);
1357 	return rc;
1358 }
1359 EXPORT_SYMBOL_NS_GPL(iommufd_access_replace, "IOMMUFD");
1360 
1361 /**
1362  * iommufd_access_notify_unmap - Notify users of an iopt to stop using it
1363  * @iopt: iopt to work on
1364  * @iova: Starting iova in the iopt
1365  * @length: Number of bytes
1366  *
1367  * After this function returns there should be no users attached to the pages
1368  * linked to this iopt that intersect with iova,length. Anyone that has attached
1369  * a user through iopt_access_pages() needs to detach it through
1370  * iommufd_access_unpin_pages() before this function returns.
1371  *
1372  * iommufd_access_destroy() will wait for any outstanding unmap callback to
1373  * complete. Once iommufd_access_destroy() no unmap ops are running or will
1374  * run in the future. Due to this a driver must not create locking that prevents
1375  * unmap to complete while iommufd_access_destroy() is running.
1376  */
iommufd_access_notify_unmap(struct io_pagetable * iopt,unsigned long iova,unsigned long length)1377 void iommufd_access_notify_unmap(struct io_pagetable *iopt, unsigned long iova,
1378 				 unsigned long length)
1379 {
1380 	struct iommufd_ioas *ioas =
1381 		container_of(iopt, struct iommufd_ioas, iopt);
1382 	struct iommufd_access *access;
1383 	unsigned long index;
1384 
1385 	xa_lock(&ioas->iopt.access_list);
1386 	xa_for_each(&ioas->iopt.access_list, index, access) {
1387 		if (iommufd_access_is_internal(access) ||
1388 		    !iommufd_lock_obj(&access->obj))
1389 			continue;
1390 		xa_unlock(&ioas->iopt.access_list);
1391 
1392 		access->ops->unmap(access->data, iova, length);
1393 
1394 		iommufd_put_object(access->ictx, &access->obj);
1395 		xa_lock(&ioas->iopt.access_list);
1396 	}
1397 	xa_unlock(&ioas->iopt.access_list);
1398 }
1399 
1400 /**
1401  * iommufd_access_unpin_pages() - Undo iommufd_access_pin_pages
1402  * @access: IOAS access to act on
1403  * @iova: Starting IOVA
1404  * @length: Number of bytes to access
1405  *
1406  * Return the struct page's. The caller must stop accessing them before calling
1407  * this. The iova/length must exactly match the one provided to access_pages.
1408  */
iommufd_access_unpin_pages(struct iommufd_access * access,unsigned long iova,unsigned long length)1409 void iommufd_access_unpin_pages(struct iommufd_access *access,
1410 				unsigned long iova, unsigned long length)
1411 {
1412 	bool internal = iommufd_access_is_internal(access);
1413 	struct iopt_area_contig_iter iter;
1414 	struct io_pagetable *iopt;
1415 	unsigned long last_iova;
1416 	struct iopt_area *area;
1417 
1418 	if (WARN_ON(!length) ||
1419 	    WARN_ON(check_add_overflow(iova, length - 1, &last_iova)))
1420 		return;
1421 
1422 	mutex_lock(&access->ioas_lock);
1423 	/*
1424 	 * The driver must be doing something wrong if it calls this before an
1425 	 * iommufd_access_attach() or after an iommufd_access_detach().
1426 	 */
1427 	if (WARN_ON(!access->ioas_unpin)) {
1428 		mutex_unlock(&access->ioas_lock);
1429 		return;
1430 	}
1431 	iopt = &access->ioas_unpin->iopt;
1432 
1433 	down_read(&iopt->iova_rwsem);
1434 	iopt_for_each_contig_area(&iter, area, iopt, iova, last_iova)
1435 		iopt_area_remove_access(
1436 			area, iopt_area_iova_to_index(area, iter.cur_iova),
1437 			iopt_area_iova_to_index(
1438 				area,
1439 				min(last_iova, iopt_area_last_iova(area))),
1440 			internal);
1441 	WARN_ON(!iopt_area_contig_done(&iter));
1442 	up_read(&iopt->iova_rwsem);
1443 	mutex_unlock(&access->ioas_lock);
1444 }
1445 EXPORT_SYMBOL_NS_GPL(iommufd_access_unpin_pages, "IOMMUFD");
1446 
iopt_area_contig_is_aligned(struct iopt_area_contig_iter * iter)1447 static bool iopt_area_contig_is_aligned(struct iopt_area_contig_iter *iter)
1448 {
1449 	if (iopt_area_start_byte(iter->area, iter->cur_iova) % PAGE_SIZE)
1450 		return false;
1451 
1452 	if (!iopt_area_contig_done(iter) &&
1453 	    (iopt_area_start_byte(iter->area, iopt_area_last_iova(iter->area)) %
1454 	     PAGE_SIZE) != (PAGE_SIZE - 1))
1455 		return false;
1456 	return true;
1457 }
1458 
check_area_prot(struct iopt_area * area,unsigned int flags)1459 static bool check_area_prot(struct iopt_area *area, unsigned int flags)
1460 {
1461 	if (flags & IOMMUFD_ACCESS_RW_WRITE)
1462 		return area->iommu_prot & IOMMU_WRITE;
1463 	return area->iommu_prot & IOMMU_READ;
1464 }
1465 
1466 /**
1467  * iommufd_access_pin_pages() - Return a list of pages under the iova
1468  * @access: IOAS access to act on
1469  * @iova: Starting IOVA
1470  * @length: Number of bytes to access
1471  * @out_pages: Output page list
1472  * @flags: IOPMMUFD_ACCESS_RW_* flags
1473  *
1474  * Reads @length bytes starting at iova and returns the struct page * pointers.
1475  * These can be kmap'd by the caller for CPU access.
1476  *
1477  * The caller must perform iommufd_access_unpin_pages() when done to balance
1478  * this.
1479  *
1480  * This API always requires a page aligned iova. This happens naturally if the
1481  * ioas alignment is >= PAGE_SIZE and the iova is PAGE_SIZE aligned. However
1482  * smaller alignments have corner cases where this API can fail on otherwise
1483  * aligned iova.
1484  */
iommufd_access_pin_pages(struct iommufd_access * access,unsigned long iova,unsigned long length,struct page ** out_pages,unsigned int flags)1485 int iommufd_access_pin_pages(struct iommufd_access *access, unsigned long iova,
1486 			     unsigned long length, struct page **out_pages,
1487 			     unsigned int flags)
1488 {
1489 	bool internal = iommufd_access_is_internal(access);
1490 	struct iopt_area_contig_iter iter;
1491 	struct io_pagetable *iopt;
1492 	unsigned long last_iova;
1493 	struct iopt_area *area;
1494 	int rc;
1495 
1496 	/* Driver's ops don't support pin_pages */
1497 	if (IS_ENABLED(CONFIG_IOMMUFD_TEST) &&
1498 	    WARN_ON(access->iova_alignment != PAGE_SIZE ||
1499 		    (!internal && !access->ops->unmap)))
1500 		return -EINVAL;
1501 
1502 	if (!length)
1503 		return -EINVAL;
1504 	if (check_add_overflow(iova, length - 1, &last_iova))
1505 		return -EOVERFLOW;
1506 
1507 	mutex_lock(&access->ioas_lock);
1508 	if (!access->ioas) {
1509 		mutex_unlock(&access->ioas_lock);
1510 		return -ENOENT;
1511 	}
1512 	iopt = &access->ioas->iopt;
1513 
1514 	down_read(&iopt->iova_rwsem);
1515 	iopt_for_each_contig_area(&iter, area, iopt, iova, last_iova) {
1516 		unsigned long last = min(last_iova, iopt_area_last_iova(area));
1517 		unsigned long last_index = iopt_area_iova_to_index(area, last);
1518 		unsigned long index =
1519 			iopt_area_iova_to_index(area, iter.cur_iova);
1520 
1521 		if (area->prevent_access ||
1522 		    !iopt_area_contig_is_aligned(&iter)) {
1523 			rc = -EINVAL;
1524 			goto err_remove;
1525 		}
1526 
1527 		if (!check_area_prot(area, flags)) {
1528 			rc = -EPERM;
1529 			goto err_remove;
1530 		}
1531 
1532 		rc = iopt_area_add_access(area, index, last_index, out_pages,
1533 					  flags, internal);
1534 		if (rc)
1535 			goto err_remove;
1536 		out_pages += last_index - index + 1;
1537 	}
1538 	if (!iopt_area_contig_done(&iter)) {
1539 		rc = -ENOENT;
1540 		goto err_remove;
1541 	}
1542 
1543 	up_read(&iopt->iova_rwsem);
1544 	mutex_unlock(&access->ioas_lock);
1545 	return 0;
1546 
1547 err_remove:
1548 	if (iova < iter.cur_iova) {
1549 		last_iova = iter.cur_iova - 1;
1550 		iopt_for_each_contig_area(&iter, area, iopt, iova, last_iova)
1551 			iopt_area_remove_access(
1552 				area,
1553 				iopt_area_iova_to_index(area, iter.cur_iova),
1554 				iopt_area_iova_to_index(
1555 					area, min(last_iova,
1556 						  iopt_area_last_iova(area))),
1557 				internal);
1558 	}
1559 	up_read(&iopt->iova_rwsem);
1560 	mutex_unlock(&access->ioas_lock);
1561 	return rc;
1562 }
1563 EXPORT_SYMBOL_NS_GPL(iommufd_access_pin_pages, "IOMMUFD");
1564 
1565 /**
1566  * iommufd_access_rw - Read or write data under the iova
1567  * @access: IOAS access to act on
1568  * @iova: Starting IOVA
1569  * @data: Kernel buffer to copy to/from
1570  * @length: Number of bytes to access
1571  * @flags: IOMMUFD_ACCESS_RW_* flags
1572  *
1573  * Copy kernel to/from data into the range given by IOVA/length. If flags
1574  * indicates IOMMUFD_ACCESS_RW_KTHREAD then a large copy can be optimized
1575  * by changing it into copy_to/from_user().
1576  */
iommufd_access_rw(struct iommufd_access * access,unsigned long iova,void * data,size_t length,unsigned int flags)1577 int iommufd_access_rw(struct iommufd_access *access, unsigned long iova,
1578 		      void *data, size_t length, unsigned int flags)
1579 {
1580 	struct iopt_area_contig_iter iter;
1581 	struct io_pagetable *iopt;
1582 	struct iopt_area *area;
1583 	unsigned long last_iova;
1584 	int rc = -EINVAL;
1585 
1586 	if (!length)
1587 		return -EINVAL;
1588 	if (check_add_overflow(iova, length - 1, &last_iova))
1589 		return -EOVERFLOW;
1590 
1591 	mutex_lock(&access->ioas_lock);
1592 	if (!access->ioas) {
1593 		mutex_unlock(&access->ioas_lock);
1594 		return -ENOENT;
1595 	}
1596 	iopt = &access->ioas->iopt;
1597 
1598 	down_read(&iopt->iova_rwsem);
1599 	iopt_for_each_contig_area(&iter, area, iopt, iova, last_iova) {
1600 		unsigned long last = min(last_iova, iopt_area_last_iova(area));
1601 		unsigned long bytes = (last - iter.cur_iova) + 1;
1602 
1603 		if (area->prevent_access) {
1604 			rc = -EINVAL;
1605 			goto err_out;
1606 		}
1607 
1608 		if (!check_area_prot(area, flags)) {
1609 			rc = -EPERM;
1610 			goto err_out;
1611 		}
1612 
1613 		rc = iopt_pages_rw_access(
1614 			area->pages, iopt_area_start_byte(area, iter.cur_iova),
1615 			data, bytes, flags);
1616 		if (rc)
1617 			goto err_out;
1618 		data += bytes;
1619 	}
1620 	if (!iopt_area_contig_done(&iter))
1621 		rc = -ENOENT;
1622 err_out:
1623 	up_read(&iopt->iova_rwsem);
1624 	mutex_unlock(&access->ioas_lock);
1625 	return rc;
1626 }
1627 EXPORT_SYMBOL_NS_GPL(iommufd_access_rw, "IOMMUFD");
1628 
iommufd_get_hw_info(struct iommufd_ucmd * ucmd)1629 int iommufd_get_hw_info(struct iommufd_ucmd *ucmd)
1630 {
1631 	const u32 SUPPORTED_FLAGS = IOMMU_HW_INFO_FLAG_INPUT_TYPE;
1632 	struct iommu_hw_info *cmd = ucmd->cmd;
1633 	void __user *user_ptr = u64_to_user_ptr(cmd->data_uptr);
1634 	const struct iommu_ops *ops;
1635 	struct iommufd_device *idev;
1636 	unsigned int data_len;
1637 	unsigned int copy_len;
1638 	void *data;
1639 	int rc;
1640 
1641 	if (cmd->flags & ~SUPPORTED_FLAGS)
1642 		return -EOPNOTSUPP;
1643 	if (cmd->__reserved[0] || cmd->__reserved[1] || cmd->__reserved[2])
1644 		return -EOPNOTSUPP;
1645 
1646 	/* Clear the type field since drivers don't support a random input */
1647 	if (!(cmd->flags & IOMMU_HW_INFO_FLAG_INPUT_TYPE))
1648 		cmd->in_data_type = IOMMU_HW_INFO_TYPE_DEFAULT;
1649 
1650 	idev = iommufd_get_device(ucmd, cmd->dev_id);
1651 	if (IS_ERR(idev))
1652 		return PTR_ERR(idev);
1653 
1654 	if (iommufd_device_is_noiommu(idev)) {
1655 		rc = -EOPNOTSUPP;
1656 		goto out_put;
1657 	}
1658 
1659 	ops = dev_iommu_ops(idev->dev);
1660 	if (ops->hw_info) {
1661 		data = ops->hw_info(idev->dev, &data_len, &cmd->out_data_type);
1662 		if (IS_ERR(data)) {
1663 			rc = PTR_ERR(data);
1664 			goto out_put;
1665 		}
1666 
1667 		/*
1668 		 * drivers that have hw_info callback should have a unique
1669 		 * iommu_hw_info_type.
1670 		 */
1671 		if (WARN_ON_ONCE(cmd->out_data_type ==
1672 				 IOMMU_HW_INFO_TYPE_NONE)) {
1673 			rc = -EOPNOTSUPP;
1674 			goto out_free;
1675 		}
1676 	} else {
1677 		cmd->out_data_type = IOMMU_HW_INFO_TYPE_NONE;
1678 		data_len = 0;
1679 		data = NULL;
1680 	}
1681 
1682 	copy_len = min(cmd->data_len, data_len);
1683 	if (copy_to_user(user_ptr, data, copy_len)) {
1684 		rc = -EFAULT;
1685 		goto out_free;
1686 	}
1687 
1688 	/*
1689 	 * Zero the trailing bytes if the user buffer is bigger than the
1690 	 * data size kernel actually has.
1691 	 */
1692 	if (copy_len < cmd->data_len) {
1693 		if (clear_user(user_ptr + copy_len, cmd->data_len - copy_len)) {
1694 			rc = -EFAULT;
1695 			goto out_free;
1696 		}
1697 	}
1698 
1699 	/*
1700 	 * We return the length the kernel supports so userspace may know what
1701 	 * the kernel capability is. It could be larger than the input buffer.
1702 	 */
1703 	cmd->data_len = data_len;
1704 
1705 	cmd->out_capabilities = 0;
1706 	if (device_iommu_capable(idev->dev, IOMMU_CAP_DIRTY_TRACKING))
1707 		cmd->out_capabilities |= IOMMU_HW_CAP_DIRTY_TRACKING;
1708 
1709 	/* Report when ATS cannot be used for this device */
1710 	if (!device_iommu_capable(idev->dev, IOMMU_CAP_PCI_ATS_SUPPORTED))
1711 		cmd->out_capabilities |= IOMMU_HW_CAP_PCI_ATS_NOT_SUPPORTED;
1712 
1713 	cmd->out_max_pasid_log2 = 0;
1714 	/*
1715 	 * Currently, all iommu drivers enable PASID in the probe_device()
1716 	 * op if iommu and device supports it. So the max_pasids stored in
1717 	 * dev->iommu indicates both PASID support and enable status. A
1718 	 * non-zero dev->iommu->max_pasids means PASID is supported and
1719 	 * enabled. The iommufd only reports PASID capability to userspace
1720 	 * if it's enabled.
1721 	 */
1722 	if (idev->dev->iommu->max_pasids) {
1723 		cmd->out_max_pasid_log2 = ilog2(idev->dev->iommu->max_pasids);
1724 
1725 		if (dev_is_pci(idev->dev)) {
1726 			struct pci_dev *pdev = to_pci_dev(idev->dev);
1727 			int ctrl;
1728 
1729 			ctrl = pci_pasid_status(pdev);
1730 
1731 			WARN_ON_ONCE(ctrl < 0 ||
1732 				     !(ctrl & PCI_PASID_CTRL_ENABLE));
1733 
1734 			if (ctrl & PCI_PASID_CTRL_EXEC)
1735 				cmd->out_capabilities |=
1736 						IOMMU_HW_CAP_PCI_PASID_EXEC;
1737 			if (ctrl & PCI_PASID_CTRL_PRIV)
1738 				cmd->out_capabilities |=
1739 						IOMMU_HW_CAP_PCI_PASID_PRIV;
1740 		}
1741 	}
1742 
1743 	rc = iommufd_ucmd_respond(ucmd, sizeof(*cmd));
1744 out_free:
1745 	kfree(data);
1746 out_put:
1747 	iommufd_put_object(ucmd->ictx, &idev->obj);
1748 	return rc;
1749 }
1750