xref: /openbmc/linux/drivers/s390/crypto/vfio_ap_ops.c (revision 4d75f5c664195b970e1cd2fd25b65b5eff257a0a)
1 // SPDX-License-Identifier: GPL-2.0+
2 /*
3  * Adjunct processor matrix VFIO device driver callbacks.
4  *
5  * Copyright IBM Corp. 2018
6  *
7  * Author(s): Tony Krowiak <akrowiak@linux.ibm.com>
8  *	      Halil Pasic <pasic@linux.ibm.com>
9  *	      Pierre Morel <pmorel@linux.ibm.com>
10  */
11 #include <linux/string.h>
12 #include <linux/vfio.h>
13 #include <linux/device.h>
14 #include <linux/list.h>
15 #include <linux/ctype.h>
16 #include <linux/bitops.h>
17 #include <linux/kvm_host.h>
18 #include <linux/module.h>
19 #include <linux/uuid.h>
20 #include <asm/kvm.h>
21 #include <asm/zcrypt.h>
22 
23 #include "vfio_ap_private.h"
24 #include "vfio_ap_debug.h"
25 
26 #define VFIO_AP_MDEV_TYPE_HWVIRT "passthrough"
27 #define VFIO_AP_MDEV_NAME_HWVIRT "VFIO AP Passthrough Device"
28 
29 #define AP_QUEUE_ASSIGNED "assigned"
30 #define AP_QUEUE_UNASSIGNED "unassigned"
31 #define AP_QUEUE_IN_USE "in use"
32 
33 #define AP_RESET_INTERVAL		20	/* Reset sleep interval (20ms)		*/
34 
35 static int vfio_ap_mdev_reset_queues(struct ap_matrix_mdev *matrix_mdev);
36 static int vfio_ap_mdev_reset_qlist(struct list_head *qlist);
37 static struct vfio_ap_queue *vfio_ap_find_queue(int apqn);
38 static const struct vfio_device_ops vfio_ap_matrix_dev_ops;
39 static void vfio_ap_mdev_reset_queue(struct vfio_ap_queue *q);
40 
41 /**
42  * get_update_locks_for_kvm: Acquire the locks required to dynamically update a
43  *			     KVM guest's APCB in the proper order.
44  *
45  * @kvm: a pointer to a struct kvm object containing the KVM guest's APCB.
46  *
47  * The proper locking order is:
48  * 1. matrix_dev->guests_lock: required to use the KVM pointer to update a KVM
49  *			       guest's APCB.
50  * 2. kvm->lock:	       required to update a guest's APCB
51  * 3. matrix_dev->mdevs_lock:  required to access data stored in a matrix_mdev
52  *
53  * Note: If @kvm is NULL, the KVM lock will not be taken.
54  */
get_update_locks_for_kvm(struct kvm * kvm)55 static inline void get_update_locks_for_kvm(struct kvm *kvm)
56 {
57 	mutex_lock(&matrix_dev->guests_lock);
58 	if (kvm)
59 		mutex_lock(&kvm->lock);
60 	mutex_lock(&matrix_dev->mdevs_lock);
61 }
62 
63 /**
64  * release_update_locks_for_kvm: Release the locks used to dynamically update a
65  *				 KVM guest's APCB in the proper order.
66  *
67  * @kvm: a pointer to a struct kvm object containing the KVM guest's APCB.
68  *
69  * The proper unlocking order is:
70  * 1. matrix_dev->mdevs_lock
71  * 2. kvm->lock
72  * 3. matrix_dev->guests_lock
73  *
74  * Note: If @kvm is NULL, the KVM lock will not be released.
75  */
release_update_locks_for_kvm(struct kvm * kvm)76 static inline void release_update_locks_for_kvm(struct kvm *kvm)
77 {
78 	mutex_unlock(&matrix_dev->mdevs_lock);
79 	if (kvm)
80 		mutex_unlock(&kvm->lock);
81 	mutex_unlock(&matrix_dev->guests_lock);
82 }
83 
84 /**
85  * get_update_locks_for_mdev: Acquire the locks required to dynamically update a
86  *			      KVM guest's APCB in the proper order.
87  *
88  * @matrix_mdev: a pointer to a struct ap_matrix_mdev object containing the AP
89  *		 configuration data to use to update a KVM guest's APCB.
90  *
91  * The proper locking order is:
92  * 1. matrix_dev->guests_lock: required to use the KVM pointer to update a KVM
93  *			       guest's APCB.
94  * 2. matrix_mdev->kvm->lock:  required to update a guest's APCB
95  * 3. matrix_dev->mdevs_lock:  required to access data stored in a matrix_mdev
96  *
97  * Note: If @matrix_mdev is NULL or is not attached to a KVM guest, the KVM
98  *	 lock will not be taken.
99  */
get_update_locks_for_mdev(struct ap_matrix_mdev * matrix_mdev)100 static inline void get_update_locks_for_mdev(struct ap_matrix_mdev *matrix_mdev)
101 {
102 	mutex_lock(&matrix_dev->guests_lock);
103 	if (matrix_mdev && matrix_mdev->kvm)
104 		mutex_lock(&matrix_mdev->kvm->lock);
105 	mutex_lock(&matrix_dev->mdevs_lock);
106 }
107 
108 /**
109  * release_update_locks_for_mdev: Release the locks used to dynamically update a
110  *				  KVM guest's APCB in the proper order.
111  *
112  * @matrix_mdev: a pointer to a struct ap_matrix_mdev object containing the AP
113  *		 configuration data to use to update a KVM guest's APCB.
114  *
115  * The proper unlocking order is:
116  * 1. matrix_dev->mdevs_lock
117  * 2. matrix_mdev->kvm->lock
118  * 3. matrix_dev->guests_lock
119  *
120  * Note: If @matrix_mdev is NULL or is not attached to a KVM guest, the KVM
121  *	 lock will not be released.
122  */
release_update_locks_for_mdev(struct ap_matrix_mdev * matrix_mdev)123 static inline void release_update_locks_for_mdev(struct ap_matrix_mdev *matrix_mdev)
124 {
125 	mutex_unlock(&matrix_dev->mdevs_lock);
126 	if (matrix_mdev && matrix_mdev->kvm)
127 		mutex_unlock(&matrix_mdev->kvm->lock);
128 	mutex_unlock(&matrix_dev->guests_lock);
129 }
130 
131 /**
132  * get_update_locks_by_apqn: Find the mdev to which an APQN is assigned and
133  *			     acquire the locks required to update the APCB of
134  *			     the KVM guest to which the mdev is attached.
135  *
136  * @apqn: the APQN of a queue device.
137  *
138  * The proper locking order is:
139  * 1. matrix_dev->guests_lock: required to use the KVM pointer to update a KVM
140  *			       guest's APCB.
141  * 2. matrix_mdev->kvm->lock:  required to update a guest's APCB
142  * 3. matrix_dev->mdevs_lock:  required to access data stored in a matrix_mdev
143  *
144  * Note: If @apqn is not assigned to a matrix_mdev, the matrix_mdev->kvm->lock
145  *	 will not be taken.
146  *
147  * Return: the ap_matrix_mdev object to which @apqn is assigned or NULL if @apqn
148  *	   is not assigned to an ap_matrix_mdev.
149  */
get_update_locks_by_apqn(int apqn)150 static struct ap_matrix_mdev *get_update_locks_by_apqn(int apqn)
151 {
152 	struct ap_matrix_mdev *matrix_mdev;
153 
154 	mutex_lock(&matrix_dev->guests_lock);
155 
156 	list_for_each_entry(matrix_mdev, &matrix_dev->mdev_list, node) {
157 		if (test_bit_inv(AP_QID_CARD(apqn), matrix_mdev->matrix.apm) &&
158 		    test_bit_inv(AP_QID_QUEUE(apqn), matrix_mdev->matrix.aqm)) {
159 			if (matrix_mdev->kvm)
160 				mutex_lock(&matrix_mdev->kvm->lock);
161 
162 			mutex_lock(&matrix_dev->mdevs_lock);
163 
164 			return matrix_mdev;
165 		}
166 	}
167 
168 	mutex_lock(&matrix_dev->mdevs_lock);
169 
170 	return NULL;
171 }
172 
173 /**
174  * get_update_locks_for_queue: get the locks required to update the APCB of the
175  *			       KVM guest to which the matrix mdev linked to a
176  *			       vfio_ap_queue object is attached.
177  *
178  * @q: a pointer to a vfio_ap_queue object.
179  *
180  * The proper locking order is:
181  * 1. q->matrix_dev->guests_lock: required to use the KVM pointer to update a
182  *				  KVM guest's APCB.
183  * 2. q->matrix_mdev->kvm->lock:  required to update a guest's APCB
184  * 3. matrix_dev->mdevs_lock:	  required to access data stored in matrix_mdev
185  *
186  * Note: if @queue is not linked to an ap_matrix_mdev object, the KVM lock
187  *	  will not be taken.
188  */
get_update_locks_for_queue(struct vfio_ap_queue * q)189 static inline void get_update_locks_for_queue(struct vfio_ap_queue *q)
190 {
191 	mutex_lock(&matrix_dev->guests_lock);
192 	if (q->matrix_mdev && q->matrix_mdev->kvm)
193 		mutex_lock(&q->matrix_mdev->kvm->lock);
194 	mutex_lock(&matrix_dev->mdevs_lock);
195 }
196 
197 /**
198  * vfio_ap_mdev_get_queue - retrieve a queue with a specific APQN from a
199  *			    hash table of queues assigned to a matrix mdev
200  * @matrix_mdev: the matrix mdev
201  * @apqn: The APQN of a queue device
202  *
203  * Return: the pointer to the vfio_ap_queue struct representing the queue or
204  *	   NULL if the queue is not assigned to @matrix_mdev
205  */
vfio_ap_mdev_get_queue(struct ap_matrix_mdev * matrix_mdev,int apqn)206 static struct vfio_ap_queue *vfio_ap_mdev_get_queue(
207 					struct ap_matrix_mdev *matrix_mdev,
208 					int apqn)
209 {
210 	struct vfio_ap_queue *q;
211 
212 	hash_for_each_possible(matrix_mdev->qtable.queues, q, mdev_qnode,
213 			       apqn) {
214 		if (q && q->apqn == apqn)
215 			return q;
216 	}
217 
218 	return NULL;
219 }
220 
221 /**
222  * vfio_ap_wait_for_irqclear - clears the IR bit or gives up after 5 tries
223  * @apqn: The AP Queue number
224  *
225  * Checks the IRQ bit for the status of this APQN using ap_tapq.
226  * Returns if the ap_tapq function succeeded and the bit is clear.
227  * Returns if ap_tapq function failed with invalid, deconfigured or
228  * checkstopped AP.
229  * Otherwise retries up to 5 times after waiting 20ms.
230  */
vfio_ap_wait_for_irqclear(int apqn)231 static void vfio_ap_wait_for_irqclear(int apqn)
232 {
233 	struct ap_queue_status status;
234 	int retry = 5;
235 
236 	do {
237 		status = ap_tapq(apqn, NULL);
238 		switch (status.response_code) {
239 		case AP_RESPONSE_NORMAL:
240 		case AP_RESPONSE_RESET_IN_PROGRESS:
241 			if (!status.irq_enabled)
242 				return;
243 			fallthrough;
244 		case AP_RESPONSE_BUSY:
245 			msleep(20);
246 			break;
247 		case AP_RESPONSE_Q_NOT_AVAIL:
248 		case AP_RESPONSE_DECONFIGURED:
249 		case AP_RESPONSE_CHECKSTOPPED:
250 		default:
251 			WARN_ONCE(1, "%s: tapq rc %02x: %04x\n", __func__,
252 				  status.response_code, apqn);
253 			return;
254 		}
255 	} while (--retry);
256 
257 	WARN_ONCE(1, "%s: tapq rc %02x: %04x could not clear IR bit\n",
258 		  __func__, status.response_code, apqn);
259 }
260 
261 /**
262  * vfio_ap_free_aqic_resources - free vfio_ap_queue resources
263  * @q: The vfio_ap_queue
264  *
265  * Unregisters the ISC in the GIB when the saved ISC not invalid.
266  * Unpins the guest's page holding the NIB when it exists.
267  * Resets the saved_iova and saved_isc to invalid values.
268  */
vfio_ap_free_aqic_resources(struct vfio_ap_queue * q)269 static void vfio_ap_free_aqic_resources(struct vfio_ap_queue *q)
270 {
271 	if (!q)
272 		return;
273 	if (q->saved_isc != VFIO_AP_ISC_INVALID &&
274 	    !WARN_ON(!(q->matrix_mdev && q->matrix_mdev->kvm))) {
275 		kvm_s390_gisc_unregister(q->matrix_mdev->kvm, q->saved_isc);
276 		q->saved_isc = VFIO_AP_ISC_INVALID;
277 	}
278 	if (q->saved_iova && !WARN_ON(!q->matrix_mdev)) {
279 		vfio_unpin_pages(&q->matrix_mdev->vdev, q->saved_iova, 1);
280 		q->saved_iova = 0;
281 	}
282 }
283 
284 /**
285  * vfio_ap_irq_disable - disables and clears an ap_queue interrupt
286  * @q: The vfio_ap_queue
287  *
288  * Uses ap_aqic to disable the interruption and in case of success, reset
289  * in progress or IRQ disable command already proceeded: calls
290  * vfio_ap_wait_for_irqclear() to check for the IRQ bit to be clear
291  * and calls vfio_ap_free_aqic_resources() to free the resources associated
292  * with the AP interrupt handling.
293  *
294  * In the case the AP is busy, or a reset is in progress,
295  * retries after 20ms, up to 5 times.
296  *
297  * Returns if ap_aqic function failed with invalid, deconfigured or
298  * checkstopped AP.
299  *
300  * Return: &struct ap_queue_status
301  */
vfio_ap_irq_disable(struct vfio_ap_queue * q)302 static struct ap_queue_status vfio_ap_irq_disable(struct vfio_ap_queue *q)
303 {
304 	union ap_qirq_ctrl aqic_gisa = { .value = 0 };
305 	struct ap_queue_status status;
306 	int retries = 5;
307 
308 	do {
309 		status = ap_aqic(q->apqn, aqic_gisa, 0);
310 		switch (status.response_code) {
311 		case AP_RESPONSE_OTHERWISE_CHANGED:
312 		case AP_RESPONSE_NORMAL:
313 			vfio_ap_wait_for_irqclear(q->apqn);
314 			goto end_free;
315 		case AP_RESPONSE_RESET_IN_PROGRESS:
316 		case AP_RESPONSE_BUSY:
317 			msleep(20);
318 			break;
319 		case AP_RESPONSE_Q_NOT_AVAIL:
320 		case AP_RESPONSE_DECONFIGURED:
321 		case AP_RESPONSE_CHECKSTOPPED:
322 		case AP_RESPONSE_INVALID_ADDRESS:
323 		default:
324 			/* All cases in default means AP not operational */
325 			WARN_ONCE(1, "%s: ap_aqic status %d\n", __func__,
326 				  status.response_code);
327 			goto end_free;
328 		}
329 	} while (retries--);
330 
331 	WARN_ONCE(1, "%s: ap_aqic status %d\n", __func__,
332 		  status.response_code);
333 end_free:
334 	vfio_ap_free_aqic_resources(q);
335 	return status;
336 }
337 
338 /**
339  * vfio_ap_validate_nib - validate a notification indicator byte (nib) address.
340  *
341  * @vcpu: the object representing the vcpu executing the PQAP(AQIC) instruction.
342  * @nib: the location for storing the nib address.
343  *
344  * When the PQAP(AQIC) instruction is executed, general register 2 contains the
345  * address of the notification indicator byte (nib) used for IRQ notification.
346  * This function parses and validates the nib from gr2.
347  *
348  * Return: returns zero if the nib address is a valid; otherwise, returns
349  *	   -EINVAL.
350  */
vfio_ap_validate_nib(struct kvm_vcpu * vcpu,dma_addr_t * nib)351 static int vfio_ap_validate_nib(struct kvm_vcpu *vcpu, dma_addr_t *nib)
352 {
353 	*nib = vcpu->run->s.regs.gprs[2];
354 
355 	if (!*nib)
356 		return -EINVAL;
357 	if (kvm_is_error_hva(gfn_to_hva(vcpu->kvm, *nib >> PAGE_SHIFT)))
358 		return -EINVAL;
359 
360 	return 0;
361 }
362 
ensure_nib_shared(unsigned long addr,struct gmap * gmap)363 static int ensure_nib_shared(unsigned long addr, struct gmap *gmap)
364 {
365 	int ret;
366 
367 	/*
368 	 * The nib has to be located in shared storage since guest and
369 	 * host access it. vfio_pin_pages() will do a pin shared and
370 	 * if that fails (possibly because it's not a shared page) it
371 	 * calls export. We try to do a second pin shared here so that
372 	 * the UV gives us an error code if we try to pin a non-shared
373 	 * page.
374 	 *
375 	 * If the page is already pinned shared the UV will return a success.
376 	 */
377 	ret = uv_pin_shared(addr);
378 	if (ret) {
379 		/* vfio_pin_pages() likely exported the page so let's re-import */
380 		gmap_convert_to_secure(gmap, addr);
381 	}
382 	return ret;
383 }
384 
385 /**
386  * vfio_ap_irq_enable - Enable Interruption for a APQN
387  *
388  * @q:	 the vfio_ap_queue holding AQIC parameters
389  * @isc: the guest ISC to register with the GIB interface
390  * @vcpu: the vcpu object containing the registers specifying the parameters
391  *	  passed to the PQAP(AQIC) instruction.
392  *
393  * Pin the NIB saved in *q
394  * Register the guest ISC to GIB interface and retrieve the
395  * host ISC to issue the host side PQAP/AQIC
396  *
397  * Response.status may be set to AP_RESPONSE_INVALID_ADDRESS in case the
398  * vfio_pin_pages failed.
399  *
400  * Otherwise return the ap_queue_status returned by the ap_aqic(),
401  * all retry handling will be done by the guest.
402  *
403  * Return: &struct ap_queue_status
404  */
vfio_ap_irq_enable(struct vfio_ap_queue * q,int isc,struct kvm_vcpu * vcpu)405 static struct ap_queue_status vfio_ap_irq_enable(struct vfio_ap_queue *q,
406 						 int isc,
407 						 struct kvm_vcpu *vcpu)
408 {
409 	union ap_qirq_ctrl aqic_gisa = { .value = 0 };
410 	struct ap_queue_status status = {};
411 	struct kvm_s390_gisa *gisa;
412 	struct page *h_page;
413 	int nisc;
414 	struct kvm *kvm;
415 	phys_addr_t h_nib;
416 	dma_addr_t nib;
417 	int ret;
418 
419 	/* Verify that the notification indicator byte address is valid */
420 	if (vfio_ap_validate_nib(vcpu, &nib)) {
421 		VFIO_AP_DBF_WARN("%s: invalid NIB address: nib=%pad, apqn=%#04x\n",
422 				 __func__, &nib, q->apqn);
423 
424 		status.response_code = AP_RESPONSE_INVALID_ADDRESS;
425 		return status;
426 	}
427 
428 	ret = vfio_pin_pages(&q->matrix_mdev->vdev, nib, 1,
429 			     IOMMU_READ | IOMMU_WRITE, &h_page);
430 	switch (ret) {
431 	case 1:
432 		break;
433 	default:
434 		VFIO_AP_DBF_WARN("%s: vfio_pin_pages failed: rc=%d,"
435 				 "nib=%pad, apqn=%#04x\n",
436 				 __func__, ret, &nib, q->apqn);
437 
438 		status.response_code = AP_RESPONSE_INVALID_ADDRESS;
439 		return status;
440 	}
441 
442 	kvm = q->matrix_mdev->kvm;
443 	gisa = kvm->arch.gisa_int.origin;
444 
445 	h_nib = page_to_phys(h_page) | (nib & ~PAGE_MASK);
446 	aqic_gisa.gisc = isc;
447 
448 	/* NIB in non-shared storage is a rc 6 for PV guests */
449 	if (kvm_s390_pv_cpu_is_protected(vcpu) &&
450 	    ensure_nib_shared(h_nib & PAGE_MASK, kvm->arch.gmap)) {
451 		vfio_unpin_pages(&q->matrix_mdev->vdev, nib, 1);
452 		status.response_code = AP_RESPONSE_INVALID_ADDRESS;
453 		return status;
454 	}
455 
456 	nisc = kvm_s390_gisc_register(kvm, isc);
457 	if (nisc < 0) {
458 		VFIO_AP_DBF_WARN("%s: gisc registration failed: nisc=%d, isc=%d, apqn=%#04x\n",
459 				 __func__, nisc, isc, q->apqn);
460 
461 		vfio_unpin_pages(&q->matrix_mdev->vdev, nib, 1);
462 		status.response_code = AP_RESPONSE_INVALID_GISA;
463 		return status;
464 	}
465 
466 	aqic_gisa.isc = nisc;
467 	aqic_gisa.ir = 1;
468 	aqic_gisa.gisa = virt_to_phys(gisa) >> 4;
469 
470 	status = ap_aqic(q->apqn, aqic_gisa, h_nib);
471 	switch (status.response_code) {
472 	case AP_RESPONSE_NORMAL:
473 		/* See if we did clear older IRQ configuration */
474 		vfio_ap_free_aqic_resources(q);
475 		q->saved_iova = nib;
476 		q->saved_isc = isc;
477 		break;
478 	case AP_RESPONSE_OTHERWISE_CHANGED:
479 		/* We could not modify IRQ settings: clear new configuration */
480 		vfio_unpin_pages(&q->matrix_mdev->vdev, nib, 1);
481 		kvm_s390_gisc_unregister(kvm, isc);
482 		break;
483 	default:
484 		pr_warn("%s: apqn %04x: response: %02x\n", __func__, q->apqn,
485 			status.response_code);
486 		vfio_ap_irq_disable(q);
487 		break;
488 	}
489 
490 	if (status.response_code != AP_RESPONSE_NORMAL) {
491 		VFIO_AP_DBF_WARN("%s: PQAP(AQIC) failed with status=%#02x: "
492 				 "zone=%#x, ir=%#x, gisc=%#x, f=%#x,"
493 				 "gisa=%#x, isc=%#x, apqn=%#04x\n",
494 				 __func__, status.response_code,
495 				 aqic_gisa.zone, aqic_gisa.ir, aqic_gisa.gisc,
496 				 aqic_gisa.gf, aqic_gisa.gisa, aqic_gisa.isc,
497 				 q->apqn);
498 	}
499 
500 	return status;
501 }
502 
503 /**
504  * vfio_ap_le_guid_to_be_uuid - convert a little endian guid array into an array
505  *				of big endian elements that can be passed by
506  *				value to an s390dbf sprintf event function to
507  *				format a UUID string.
508  *
509  * @guid: the object containing the little endian guid
510  * @uuid: a six-element array of long values that can be passed by value as
511  *	  arguments for a formatting string specifying a UUID.
512  *
513  * The S390 Debug Feature (s390dbf) allows the use of "%s" in the sprintf
514  * event functions if the memory for the passed string is available as long as
515  * the debug feature exists. Since a mediated device can be removed at any
516  * time, it's name can not be used because %s passes the reference to the string
517  * in memory and the reference will go stale once the device is removed .
518  *
519  * The s390dbf string formatting function allows a maximum of 9 arguments for a
520  * message to be displayed in the 'sprintf' view. In order to use the bytes
521  * comprising the mediated device's UUID to display the mediated device name,
522  * they will have to be converted into an array whose elements can be passed by
523  * value to sprintf. For example:
524  *
525  * guid array: { 83, 78, 17, 62, bb, f1, f0, 47, 91, 4d, 32, a2, 2e, 3a, 88, 04 }
526  * mdev name: 62177883-f1bb-47f0-914d-32a22e3a8804
527  * array returned: { 62177883, f1bb, 47f0, 914d, 32a2, 2e3a8804 }
528  * formatting string: "%08lx-%04lx-%04lx-%04lx-%02lx%04lx"
529  */
vfio_ap_le_guid_to_be_uuid(guid_t * guid,unsigned long * uuid)530 static void vfio_ap_le_guid_to_be_uuid(guid_t *guid, unsigned long *uuid)
531 {
532 	/*
533 	 * The input guid is ordered in little endian, so it needs to be
534 	 * reordered for displaying a UUID as a string. This specifies the
535 	 * guid indices in proper order.
536 	 */
537 	uuid[0] = le32_to_cpup((__le32 *)guid);
538 	uuid[1] = le16_to_cpup((__le16 *)&guid->b[4]);
539 	uuid[2] = le16_to_cpup((__le16 *)&guid->b[6]);
540 	uuid[3] = *((__u16 *)&guid->b[8]);
541 	uuid[4] = *((__u16 *)&guid->b[10]);
542 	uuid[5] = *((__u32 *)&guid->b[12]);
543 }
544 
545 /**
546  * handle_pqap - PQAP instruction callback
547  *
548  * @vcpu: The vcpu on which we received the PQAP instruction
549  *
550  * Get the general register contents to initialize internal variables.
551  * REG[0]: APQN
552  * REG[1]: IR and ISC
553  * REG[2]: NIB
554  *
555  * Response.status may be set to following Response Code:
556  * - AP_RESPONSE_Q_NOT_AVAIL: if the queue is not available
557  * - AP_RESPONSE_DECONFIGURED: if the queue is not configured
558  * - AP_RESPONSE_NORMAL (0) : in case of success
559  *   Check vfio_ap_setirq() and vfio_ap_clrirq() for other possible RC.
560  * We take the matrix_dev lock to ensure serialization on queues and
561  * mediated device access.
562  *
563  * Return: 0 if we could handle the request inside KVM.
564  * Otherwise, returns -EOPNOTSUPP to let QEMU handle the fault.
565  */
handle_pqap(struct kvm_vcpu * vcpu)566 static int handle_pqap(struct kvm_vcpu *vcpu)
567 {
568 	uint64_t status;
569 	uint16_t apqn;
570 	unsigned long uuid[6];
571 	struct vfio_ap_queue *q;
572 	struct ap_queue_status qstatus = {
573 			       .response_code = AP_RESPONSE_Q_NOT_AVAIL, };
574 	struct ap_matrix_mdev *matrix_mdev;
575 
576 	apqn = vcpu->run->s.regs.gprs[0] & 0xffff;
577 
578 	/* If we do not use the AIV facility just go to userland */
579 	if (!(vcpu->arch.sie_block->eca & ECA_AIV)) {
580 		VFIO_AP_DBF_WARN("%s: AIV facility not installed: apqn=0x%04x, eca=0x%04x\n",
581 				 __func__, apqn, vcpu->arch.sie_block->eca);
582 
583 		return -EOPNOTSUPP;
584 	}
585 
586 	mutex_lock(&matrix_dev->mdevs_lock);
587 
588 	if (!vcpu->kvm->arch.crypto.pqap_hook) {
589 		VFIO_AP_DBF_WARN("%s: PQAP(AQIC) hook not registered with the vfio_ap driver: apqn=0x%04x\n",
590 				 __func__, apqn);
591 
592 		goto out_unlock;
593 	}
594 
595 	matrix_mdev = container_of(vcpu->kvm->arch.crypto.pqap_hook,
596 				   struct ap_matrix_mdev, pqap_hook);
597 
598 	/* If the there is no guest using the mdev, there is nothing to do */
599 	if (!matrix_mdev->kvm) {
600 		vfio_ap_le_guid_to_be_uuid(&matrix_mdev->mdev->uuid, uuid);
601 		VFIO_AP_DBF_WARN("%s: mdev %08lx-%04lx-%04lx-%04lx-%04lx%08lx not in use: apqn=0x%04x\n",
602 				 __func__, uuid[0],  uuid[1], uuid[2],
603 				 uuid[3], uuid[4], uuid[5], apqn);
604 		goto out_unlock;
605 	}
606 
607 	q = vfio_ap_mdev_get_queue(matrix_mdev, apqn);
608 	if (!q) {
609 		VFIO_AP_DBF_WARN("%s: Queue %02x.%04x not bound to the vfio_ap driver\n",
610 				 __func__, AP_QID_CARD(apqn),
611 				 AP_QID_QUEUE(apqn));
612 		goto out_unlock;
613 	}
614 
615 	status = vcpu->run->s.regs.gprs[1];
616 
617 	/* If IR bit(16) is set we enable the interrupt */
618 	if ((status >> (63 - 16)) & 0x01)
619 		qstatus = vfio_ap_irq_enable(q, status & 0x07, vcpu);
620 	else
621 		qstatus = vfio_ap_irq_disable(q);
622 
623 out_unlock:
624 	memcpy(&vcpu->run->s.regs.gprs[1], &qstatus, sizeof(qstatus));
625 	vcpu->run->s.regs.gprs[1] >>= 32;
626 	mutex_unlock(&matrix_dev->mdevs_lock);
627 	return 0;
628 }
629 
vfio_ap_matrix_init(struct ap_config_info * info,struct ap_matrix * matrix)630 static void vfio_ap_matrix_init(struct ap_config_info *info,
631 				struct ap_matrix *matrix)
632 {
633 	matrix->apm_max = info->apxa ? info->na : 63;
634 	matrix->aqm_max = info->apxa ? info->nd : 15;
635 	matrix->adm_max = info->apxa ? info->nd : 15;
636 }
637 
vfio_ap_mdev_update_guest_apcb(struct ap_matrix_mdev * matrix_mdev)638 static void vfio_ap_mdev_update_guest_apcb(struct ap_matrix_mdev *matrix_mdev)
639 {
640 	if (matrix_mdev->kvm)
641 		kvm_arch_crypto_set_masks(matrix_mdev->kvm,
642 					  matrix_mdev->shadow_apcb.apm,
643 					  matrix_mdev->shadow_apcb.aqm,
644 					  matrix_mdev->shadow_apcb.adm);
645 }
646 
vfio_ap_mdev_filter_cdoms(struct ap_matrix_mdev * matrix_mdev)647 static bool vfio_ap_mdev_filter_cdoms(struct ap_matrix_mdev *matrix_mdev)
648 {
649 	DECLARE_BITMAP(prev_shadow_adm, AP_DOMAINS);
650 
651 	bitmap_copy(prev_shadow_adm, matrix_mdev->shadow_apcb.adm, AP_DOMAINS);
652 	bitmap_and(matrix_mdev->shadow_apcb.adm, matrix_mdev->matrix.adm,
653 		   (unsigned long *)matrix_dev->info.adm, AP_DOMAINS);
654 
655 	return !bitmap_equal(prev_shadow_adm, matrix_mdev->shadow_apcb.adm,
656 			     AP_DOMAINS);
657 }
658 
659 /*
660  * vfio_ap_mdev_filter_matrix - filter the APQNs assigned to the matrix mdev
661  *				to ensure no queue devices are passed through to
662  *				the guest that are not bound to the vfio_ap
663  *				device driver.
664  *
665  * @matrix_mdev: the matrix mdev whose matrix is to be filtered.
666  * @apm_filtered: a 256-bit bitmap for storing the APIDs filtered from the
667  *		  guest's AP configuration that are still in the host's AP
668  *		  configuration.
669  *
670  * Note: If an APQN referencing a queue device that is not bound to the vfio_ap
671  *	 driver, its APID will be filtered from the guest's APCB. The matrix
672  *	 structure precludes filtering an individual APQN, so its APID will be
673  *	 filtered. Consequently, all queues associated with the adapter that
674  *	 are in the host's AP configuration must be reset. If queues are
675  *	 subsequently made available again to the guest, they should re-appear
676  *	 in a reset state
677  *
678  * Return: a boolean value indicating whether the KVM guest's APCB was changed
679  *	   by the filtering or not.
680  */
vfio_ap_mdev_filter_matrix(struct ap_matrix_mdev * matrix_mdev,unsigned long * apm_filtered)681 static bool vfio_ap_mdev_filter_matrix(struct ap_matrix_mdev *matrix_mdev,
682 				       unsigned long *apm_filtered)
683 {
684 	unsigned long apid, apqi, apqn;
685 	DECLARE_BITMAP(prev_shadow_apm, AP_DEVICES);
686 	DECLARE_BITMAP(prev_shadow_aqm, AP_DOMAINS);
687 	struct vfio_ap_queue *q;
688 
689 	bitmap_copy(prev_shadow_apm, matrix_mdev->shadow_apcb.apm, AP_DEVICES);
690 	bitmap_copy(prev_shadow_aqm, matrix_mdev->shadow_apcb.aqm, AP_DOMAINS);
691 	vfio_ap_matrix_init(&matrix_dev->info, &matrix_mdev->shadow_apcb);
692 	bitmap_clear(apm_filtered, 0, AP_DEVICES);
693 
694 	/*
695 	 * Copy the adapters, domains and control domains to the shadow_apcb
696 	 * from the matrix mdev, but only those that are assigned to the host's
697 	 * AP configuration.
698 	 */
699 	bitmap_and(matrix_mdev->shadow_apcb.apm, matrix_mdev->matrix.apm,
700 		   (unsigned long *)matrix_dev->info.apm, AP_DEVICES);
701 	bitmap_and(matrix_mdev->shadow_apcb.aqm, matrix_mdev->matrix.aqm,
702 		   (unsigned long *)matrix_dev->info.aqm, AP_DOMAINS);
703 
704 	for_each_set_bit_inv(apid, matrix_mdev->shadow_apcb.apm, AP_DEVICES) {
705 		for_each_set_bit_inv(apqi, matrix_mdev->shadow_apcb.aqm,
706 				     AP_DOMAINS) {
707 			/*
708 			 * If the APQN is not bound to the vfio_ap device
709 			 * driver, then we can't assign it to the guest's
710 			 * AP configuration. The AP architecture won't
711 			 * allow filtering of a single APQN, so let's filter
712 			 * the APID since an adapter represents a physical
713 			 * hardware device.
714 			 */
715 			apqn = AP_MKQID(apid, apqi);
716 			q = vfio_ap_mdev_get_queue(matrix_mdev, apqn);
717 			if (!q || q->reset_status.response_code) {
718 				clear_bit_inv(apid, matrix_mdev->shadow_apcb.apm);
719 
720 				/*
721 				 * If the adapter was previously plugged into
722 				 * the guest, let's let the caller know that
723 				 * the APID was filtered.
724 				 */
725 				if (test_bit_inv(apid, prev_shadow_apm))
726 					set_bit_inv(apid, apm_filtered);
727 
728 				break;
729 			}
730 		}
731 	}
732 
733 	return !bitmap_equal(prev_shadow_apm, matrix_mdev->shadow_apcb.apm,
734 			     AP_DEVICES) ||
735 	       !bitmap_equal(prev_shadow_aqm, matrix_mdev->shadow_apcb.aqm,
736 			     AP_DOMAINS);
737 }
738 
vfio_ap_mdev_init_dev(struct vfio_device * vdev)739 static int vfio_ap_mdev_init_dev(struct vfio_device *vdev)
740 {
741 	struct ap_matrix_mdev *matrix_mdev =
742 		container_of(vdev, struct ap_matrix_mdev, vdev);
743 
744 	matrix_mdev->mdev = to_mdev_device(vdev->dev);
745 	vfio_ap_matrix_init(&matrix_dev->info, &matrix_mdev->matrix);
746 	matrix_mdev->pqap_hook = handle_pqap;
747 	vfio_ap_matrix_init(&matrix_dev->info, &matrix_mdev->shadow_apcb);
748 	hash_init(matrix_mdev->qtable.queues);
749 
750 	return 0;
751 }
752 
vfio_ap_mdev_probe(struct mdev_device * mdev)753 static int vfio_ap_mdev_probe(struct mdev_device *mdev)
754 {
755 	struct ap_matrix_mdev *matrix_mdev;
756 	int ret;
757 
758 	matrix_mdev = vfio_alloc_device(ap_matrix_mdev, vdev, &mdev->dev,
759 					&vfio_ap_matrix_dev_ops);
760 	if (IS_ERR(matrix_mdev))
761 		return PTR_ERR(matrix_mdev);
762 
763 	ret = vfio_register_emulated_iommu_dev(&matrix_mdev->vdev);
764 	if (ret)
765 		goto err_put_vdev;
766 	matrix_mdev->req_trigger = NULL;
767 	dev_set_drvdata(&mdev->dev, matrix_mdev);
768 	mutex_lock(&matrix_dev->mdevs_lock);
769 	list_add(&matrix_mdev->node, &matrix_dev->mdev_list);
770 	mutex_unlock(&matrix_dev->mdevs_lock);
771 	return 0;
772 
773 err_put_vdev:
774 	vfio_put_device(&matrix_mdev->vdev);
775 	return ret;
776 }
777 
vfio_ap_mdev_link_queue(struct ap_matrix_mdev * matrix_mdev,struct vfio_ap_queue * q)778 static void vfio_ap_mdev_link_queue(struct ap_matrix_mdev *matrix_mdev,
779 				    struct vfio_ap_queue *q)
780 {
781 	if (q) {
782 		q->matrix_mdev = matrix_mdev;
783 		hash_add(matrix_mdev->qtable.queues, &q->mdev_qnode, q->apqn);
784 	}
785 }
786 
vfio_ap_mdev_link_apqn(struct ap_matrix_mdev * matrix_mdev,int apqn)787 static void vfio_ap_mdev_link_apqn(struct ap_matrix_mdev *matrix_mdev, int apqn)
788 {
789 	struct vfio_ap_queue *q;
790 
791 	q = vfio_ap_find_queue(apqn);
792 	vfio_ap_mdev_link_queue(matrix_mdev, q);
793 }
794 
vfio_ap_unlink_queue_fr_mdev(struct vfio_ap_queue * q)795 static void vfio_ap_unlink_queue_fr_mdev(struct vfio_ap_queue *q)
796 {
797 	hash_del(&q->mdev_qnode);
798 }
799 
vfio_ap_unlink_mdev_fr_queue(struct vfio_ap_queue * q)800 static void vfio_ap_unlink_mdev_fr_queue(struct vfio_ap_queue *q)
801 {
802 	q->matrix_mdev = NULL;
803 }
804 
vfio_ap_mdev_unlink_fr_queues(struct ap_matrix_mdev * matrix_mdev)805 static void vfio_ap_mdev_unlink_fr_queues(struct ap_matrix_mdev *matrix_mdev)
806 {
807 	struct vfio_ap_queue *q;
808 	unsigned long apid, apqi;
809 
810 	for_each_set_bit_inv(apid, matrix_mdev->matrix.apm, AP_DEVICES) {
811 		for_each_set_bit_inv(apqi, matrix_mdev->matrix.aqm,
812 				     AP_DOMAINS) {
813 			q = vfio_ap_mdev_get_queue(matrix_mdev,
814 						   AP_MKQID(apid, apqi));
815 			if (q)
816 				q->matrix_mdev = NULL;
817 		}
818 	}
819 }
820 
vfio_ap_mdev_remove(struct mdev_device * mdev)821 static void vfio_ap_mdev_remove(struct mdev_device *mdev)
822 {
823 	struct ap_matrix_mdev *matrix_mdev = dev_get_drvdata(&mdev->dev);
824 
825 	vfio_unregister_group_dev(&matrix_mdev->vdev);
826 
827 	mutex_lock(&matrix_dev->guests_lock);
828 	mutex_lock(&matrix_dev->mdevs_lock);
829 	vfio_ap_mdev_reset_queues(matrix_mdev);
830 	vfio_ap_mdev_unlink_fr_queues(matrix_mdev);
831 	list_del(&matrix_mdev->node);
832 	mutex_unlock(&matrix_dev->mdevs_lock);
833 	mutex_unlock(&matrix_dev->guests_lock);
834 	vfio_put_device(&matrix_mdev->vdev);
835 }
836 
837 #define MDEV_SHARING_ERR "Userspace may not assign queue %02lx.%04lx to mdev: already assigned to %s"
838 
839 #define MDEV_IN_USE_ERR "Can not reserve queue %02lx.%04lx for host driver: in use by mdev"
840 
vfio_ap_mdev_log_sharing_err(struct ap_matrix_mdev * assignee,struct ap_matrix_mdev * assigned_to,unsigned long * apm,unsigned long * aqm)841 static void vfio_ap_mdev_log_sharing_err(struct ap_matrix_mdev *assignee,
842 					 struct ap_matrix_mdev *assigned_to,
843 					 unsigned long *apm, unsigned long *aqm)
844 {
845 	unsigned long apid, apqi;
846 
847 	for_each_set_bit_inv(apid, apm, AP_DEVICES) {
848 		for_each_set_bit_inv(apqi, aqm, AP_DOMAINS) {
849 			dev_warn(mdev_dev(assignee->mdev), MDEV_SHARING_ERR,
850 				 apid, apqi, dev_name(mdev_dev(assigned_to->mdev)));
851 		}
852 	}
853 }
854 
vfio_ap_mdev_log_in_use_err(struct ap_matrix_mdev * assignee,unsigned long * apm,unsigned long * aqm)855 static void vfio_ap_mdev_log_in_use_err(struct ap_matrix_mdev *assignee,
856 					unsigned long *apm, unsigned long *aqm)
857 {
858 	unsigned long apid, apqi;
859 
860 	for_each_set_bit_inv(apid, apm, AP_DEVICES) {
861 		for_each_set_bit_inv(apqi, aqm, AP_DOMAINS)
862 			dev_warn(mdev_dev(assignee->mdev), MDEV_IN_USE_ERR, apid, apqi);
863 	}
864 }
865 
866 /**
867  * vfio_ap_mdev_verify_no_sharing - verify APQNs are not shared by matrix mdevs
868  *
869  * @assignee: the matrix mdev to which @mdev_apm and @mdev_aqm are being
870  *	      assigned; or, NULL if this function was called by the AP bus
871  *	      driver in_use callback to verify none of the APQNs being reserved
872  *	      for the host device driver are in use by a vfio_ap mediated device
873  * @mdev_apm: mask indicating the APIDs of the APQNs to be verified
874  * @mdev_aqm: mask indicating the APQIs of the APQNs to be verified
875  *
876  * Verifies that each APQN derived from the Cartesian product of APIDs
877  * represented by the bits set in @mdev_apm and the APQIs of the bits set in
878  * @mdev_aqm is not assigned to a mediated device other than the mdev to which
879  * the APQN is being assigned (@assignee). AP queue sharing is not allowed.
880  *
881  * Return: 0 if the APQNs are not shared; otherwise return -EADDRINUSE.
882  */
vfio_ap_mdev_verify_no_sharing(struct ap_matrix_mdev * assignee,unsigned long * mdev_apm,unsigned long * mdev_aqm)883 static int vfio_ap_mdev_verify_no_sharing(struct ap_matrix_mdev *assignee,
884 					  unsigned long *mdev_apm,
885 					  unsigned long *mdev_aqm)
886 {
887 	struct ap_matrix_mdev *assigned_to;
888 	DECLARE_BITMAP(apm, AP_DEVICES);
889 	DECLARE_BITMAP(aqm, AP_DOMAINS);
890 
891 	list_for_each_entry(assigned_to, &matrix_dev->mdev_list, node) {
892 		/*
893 		 * If the mdev to which the mdev_apm and mdev_aqm is being
894 		 * assigned is the same as the mdev being verified
895 		 */
896 		if (assignee == assigned_to)
897 			continue;
898 
899 		memset(apm, 0, sizeof(apm));
900 		memset(aqm, 0, sizeof(aqm));
901 
902 		/*
903 		 * We work on full longs, as we can only exclude the leftover
904 		 * bits in non-inverse order. The leftover is all zeros.
905 		 */
906 		if (!bitmap_and(apm, mdev_apm, assigned_to->matrix.apm,	AP_DEVICES))
907 			continue;
908 
909 		if (!bitmap_and(aqm, mdev_aqm, assigned_to->matrix.aqm,	AP_DOMAINS))
910 			continue;
911 
912 		if (assignee)
913 			vfio_ap_mdev_log_sharing_err(assignee, assigned_to, apm, aqm);
914 		else
915 			vfio_ap_mdev_log_in_use_err(assigned_to, apm, aqm);
916 
917 		return -EADDRINUSE;
918 	}
919 
920 	return 0;
921 }
922 
923 /**
924  * vfio_ap_mdev_validate_masks - verify that the APQNs assigned to the mdev are
925  *				 not reserved for the default zcrypt driver and
926  *				 are not assigned to another mdev.
927  *
928  * @matrix_mdev: the mdev to which the APQNs being validated are assigned.
929  *
930  * Return: One of the following values:
931  * o the error returned from the ap_apqn_in_matrix_owned_by_def_drv() function,
932  *   most likely -EBUSY indicating the ap_perms_mutex lock is already held.
933  * o EADDRNOTAVAIL if an APQN assigned to @matrix_mdev is reserved for the
934  *		   zcrypt default driver.
935  * o EADDRINUSE if an APQN assigned to @matrix_mdev is assigned to another mdev
936  * o A zero indicating validation succeeded.
937  */
vfio_ap_mdev_validate_masks(struct ap_matrix_mdev * matrix_mdev)938 static int vfio_ap_mdev_validate_masks(struct ap_matrix_mdev *matrix_mdev)
939 {
940 	if (ap_apqn_in_matrix_owned_by_def_drv(matrix_mdev->matrix.apm,
941 					       matrix_mdev->matrix.aqm))
942 		return -EADDRNOTAVAIL;
943 
944 	return vfio_ap_mdev_verify_no_sharing(matrix_mdev,
945 					      matrix_mdev->matrix.apm,
946 					      matrix_mdev->matrix.aqm);
947 }
948 
vfio_ap_mdev_link_adapter(struct ap_matrix_mdev * matrix_mdev,unsigned long apid)949 static void vfio_ap_mdev_link_adapter(struct ap_matrix_mdev *matrix_mdev,
950 				      unsigned long apid)
951 {
952 	unsigned long apqi;
953 
954 	for_each_set_bit_inv(apqi, matrix_mdev->matrix.aqm, AP_DOMAINS)
955 		vfio_ap_mdev_link_apqn(matrix_mdev,
956 				       AP_MKQID(apid, apqi));
957 }
958 
collect_queues_to_reset(struct ap_matrix_mdev * matrix_mdev,unsigned long apid,struct list_head * qlist)959 static void collect_queues_to_reset(struct ap_matrix_mdev *matrix_mdev,
960 				    unsigned long apid,
961 				    struct list_head *qlist)
962 {
963 	struct vfio_ap_queue *q;
964 	unsigned long  apqi;
965 
966 	for_each_set_bit_inv(apqi, matrix_mdev->shadow_apcb.aqm, AP_DOMAINS) {
967 		q = vfio_ap_mdev_get_queue(matrix_mdev, AP_MKQID(apid, apqi));
968 		if (q)
969 			list_add_tail(&q->reset_qnode, qlist);
970 	}
971 }
972 
reset_queues_for_apid(struct ap_matrix_mdev * matrix_mdev,unsigned long apid)973 static void reset_queues_for_apid(struct ap_matrix_mdev *matrix_mdev,
974 				  unsigned long apid)
975 {
976 	struct list_head qlist;
977 
978 	INIT_LIST_HEAD(&qlist);
979 	collect_queues_to_reset(matrix_mdev, apid, &qlist);
980 	vfio_ap_mdev_reset_qlist(&qlist);
981 }
982 
reset_queues_for_apids(struct ap_matrix_mdev * matrix_mdev,unsigned long * apm_reset)983 static int reset_queues_for_apids(struct ap_matrix_mdev *matrix_mdev,
984 				  unsigned long *apm_reset)
985 {
986 	struct list_head qlist;
987 	unsigned long apid;
988 
989 	if (bitmap_empty(apm_reset, AP_DEVICES))
990 		return 0;
991 
992 	INIT_LIST_HEAD(&qlist);
993 
994 	for_each_set_bit_inv(apid, apm_reset, AP_DEVICES)
995 		collect_queues_to_reset(matrix_mdev, apid, &qlist);
996 
997 	return vfio_ap_mdev_reset_qlist(&qlist);
998 }
999 
1000 /**
1001  * assign_adapter_store - parses the APID from @buf and sets the
1002  * corresponding bit in the mediated matrix device's APM
1003  *
1004  * @dev:	the matrix device
1005  * @attr:	the mediated matrix device's assign_adapter attribute
1006  * @buf:	a buffer containing the AP adapter number (APID) to
1007  *		be assigned
1008  * @count:	the number of bytes in @buf
1009  *
1010  * Return: the number of bytes processed if the APID is valid; otherwise,
1011  * returns one of the following errors:
1012  *
1013  *	1. -EINVAL
1014  *	   The APID is not a valid number
1015  *
1016  *	2. -ENODEV
1017  *	   The APID exceeds the maximum value configured for the system
1018  *
1019  *	3. -EADDRNOTAVAIL
1020  *	   An APQN derived from the cross product of the APID being assigned
1021  *	   and the APQIs previously assigned is not bound to the vfio_ap device
1022  *	   driver; or, if no APQIs have yet been assigned, the APID is not
1023  *	   contained in an APQN bound to the vfio_ap device driver.
1024  *
1025  *	4. -EADDRINUSE
1026  *	   An APQN derived from the cross product of the APID being assigned
1027  *	   and the APQIs previously assigned is being used by another mediated
1028  *	   matrix device
1029  *
1030  *	5. -EAGAIN
1031  *	   A lock required to validate the mdev's AP configuration could not
1032  *	   be obtained.
1033  */
assign_adapter_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)1034 static ssize_t assign_adapter_store(struct device *dev,
1035 				    struct device_attribute *attr,
1036 				    const char *buf, size_t count)
1037 {
1038 	int ret;
1039 	unsigned long apid;
1040 	DECLARE_BITMAP(apm_filtered, AP_DEVICES);
1041 	struct ap_matrix_mdev *matrix_mdev = dev_get_drvdata(dev);
1042 
1043 	mutex_lock(&ap_perms_mutex);
1044 	get_update_locks_for_mdev(matrix_mdev);
1045 
1046 	ret = kstrtoul(buf, 0, &apid);
1047 	if (ret)
1048 		goto done;
1049 
1050 	if (apid > matrix_mdev->matrix.apm_max) {
1051 		ret = -ENODEV;
1052 		goto done;
1053 	}
1054 
1055 	if (test_bit_inv(apid, matrix_mdev->matrix.apm)) {
1056 		ret = count;
1057 		goto done;
1058 	}
1059 
1060 	set_bit_inv(apid, matrix_mdev->matrix.apm);
1061 
1062 	ret = vfio_ap_mdev_validate_masks(matrix_mdev);
1063 	if (ret) {
1064 		clear_bit_inv(apid, matrix_mdev->matrix.apm);
1065 		goto done;
1066 	}
1067 
1068 	vfio_ap_mdev_link_adapter(matrix_mdev, apid);
1069 
1070 	if (vfio_ap_mdev_filter_matrix(matrix_mdev, apm_filtered)) {
1071 		vfio_ap_mdev_update_guest_apcb(matrix_mdev);
1072 		reset_queues_for_apids(matrix_mdev, apm_filtered);
1073 	}
1074 
1075 	ret = count;
1076 done:
1077 	release_update_locks_for_mdev(matrix_mdev);
1078 	mutex_unlock(&ap_perms_mutex);
1079 
1080 	return ret;
1081 }
1082 static DEVICE_ATTR_WO(assign_adapter);
1083 
1084 static struct vfio_ap_queue
vfio_ap_unlink_apqn_fr_mdev(struct ap_matrix_mdev * matrix_mdev,unsigned long apid,unsigned long apqi)1085 *vfio_ap_unlink_apqn_fr_mdev(struct ap_matrix_mdev *matrix_mdev,
1086 			     unsigned long apid, unsigned long apqi)
1087 {
1088 	struct vfio_ap_queue *q = NULL;
1089 
1090 	q = vfio_ap_mdev_get_queue(matrix_mdev, AP_MKQID(apid, apqi));
1091 	/* If the queue is assigned to the matrix mdev, unlink it. */
1092 	if (q)
1093 		vfio_ap_unlink_queue_fr_mdev(q);
1094 
1095 	return q;
1096 }
1097 
1098 /**
1099  * vfio_ap_mdev_unlink_adapter - unlink all queues associated with unassigned
1100  *				 adapter from the matrix mdev to which the
1101  *				 adapter was assigned.
1102  * @matrix_mdev: the matrix mediated device to which the adapter was assigned.
1103  * @apid: the APID of the unassigned adapter.
1104  * @qlist: list for storing queues associated with unassigned adapter that
1105  *	   need to be reset.
1106  */
vfio_ap_mdev_unlink_adapter(struct ap_matrix_mdev * matrix_mdev,unsigned long apid,struct list_head * qlist)1107 static void vfio_ap_mdev_unlink_adapter(struct ap_matrix_mdev *matrix_mdev,
1108 					unsigned long apid,
1109 					struct list_head *qlist)
1110 {
1111 	unsigned long apqi;
1112 	struct vfio_ap_queue *q;
1113 
1114 	for_each_set_bit_inv(apqi, matrix_mdev->matrix.aqm, AP_DOMAINS) {
1115 		q = vfio_ap_unlink_apqn_fr_mdev(matrix_mdev, apid, apqi);
1116 
1117 		if (q && qlist) {
1118 			if (test_bit_inv(apid, matrix_mdev->shadow_apcb.apm) &&
1119 			    test_bit_inv(apqi, matrix_mdev->shadow_apcb.aqm))
1120 				list_add_tail(&q->reset_qnode, qlist);
1121 		}
1122 	}
1123 }
1124 
vfio_ap_mdev_hot_unplug_adapter(struct ap_matrix_mdev * matrix_mdev,unsigned long apid)1125 static void vfio_ap_mdev_hot_unplug_adapter(struct ap_matrix_mdev *matrix_mdev,
1126 					    unsigned long apid)
1127 {
1128 	struct vfio_ap_queue *q, *tmpq;
1129 	struct list_head qlist;
1130 
1131 	INIT_LIST_HEAD(&qlist);
1132 	vfio_ap_mdev_unlink_adapter(matrix_mdev, apid, &qlist);
1133 
1134 	if (test_bit_inv(apid, matrix_mdev->shadow_apcb.apm)) {
1135 		clear_bit_inv(apid, matrix_mdev->shadow_apcb.apm);
1136 		vfio_ap_mdev_update_guest_apcb(matrix_mdev);
1137 	}
1138 
1139 	vfio_ap_mdev_reset_qlist(&qlist);
1140 
1141 	list_for_each_entry_safe(q, tmpq, &qlist, reset_qnode) {
1142 		vfio_ap_unlink_mdev_fr_queue(q);
1143 		list_del(&q->reset_qnode);
1144 	}
1145 }
1146 
1147 /**
1148  * unassign_adapter_store - parses the APID from @buf and clears the
1149  * corresponding bit in the mediated matrix device's APM
1150  *
1151  * @dev:	the matrix device
1152  * @attr:	the mediated matrix device's unassign_adapter attribute
1153  * @buf:	a buffer containing the adapter number (APID) to be unassigned
1154  * @count:	the number of bytes in @buf
1155  *
1156  * Return: the number of bytes processed if the APID is valid; otherwise,
1157  * returns one of the following errors:
1158  *	-EINVAL if the APID is not a number
1159  *	-ENODEV if the APID it exceeds the maximum value configured for the
1160  *		system
1161  */
unassign_adapter_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)1162 static ssize_t unassign_adapter_store(struct device *dev,
1163 				      struct device_attribute *attr,
1164 				      const char *buf, size_t count)
1165 {
1166 	int ret;
1167 	unsigned long apid;
1168 	struct ap_matrix_mdev *matrix_mdev = dev_get_drvdata(dev);
1169 
1170 	get_update_locks_for_mdev(matrix_mdev);
1171 
1172 	ret = kstrtoul(buf, 0, &apid);
1173 	if (ret)
1174 		goto done;
1175 
1176 	if (apid > matrix_mdev->matrix.apm_max) {
1177 		ret = -ENODEV;
1178 		goto done;
1179 	}
1180 
1181 	if (!test_bit_inv(apid, matrix_mdev->matrix.apm)) {
1182 		ret = count;
1183 		goto done;
1184 	}
1185 
1186 	clear_bit_inv((unsigned long)apid, matrix_mdev->matrix.apm);
1187 	vfio_ap_mdev_hot_unplug_adapter(matrix_mdev, apid);
1188 	ret = count;
1189 done:
1190 	release_update_locks_for_mdev(matrix_mdev);
1191 	return ret;
1192 }
1193 static DEVICE_ATTR_WO(unassign_adapter);
1194 
vfio_ap_mdev_link_domain(struct ap_matrix_mdev * matrix_mdev,unsigned long apqi)1195 static void vfio_ap_mdev_link_domain(struct ap_matrix_mdev *matrix_mdev,
1196 				     unsigned long apqi)
1197 {
1198 	unsigned long apid;
1199 
1200 	for_each_set_bit_inv(apid, matrix_mdev->matrix.apm, AP_DEVICES)
1201 		vfio_ap_mdev_link_apqn(matrix_mdev,
1202 				       AP_MKQID(apid, apqi));
1203 }
1204 
1205 /**
1206  * assign_domain_store - parses the APQI from @buf and sets the
1207  * corresponding bit in the mediated matrix device's AQM
1208  *
1209  * @dev:	the matrix device
1210  * @attr:	the mediated matrix device's assign_domain attribute
1211  * @buf:	a buffer containing the AP queue index (APQI) of the domain to
1212  *		be assigned
1213  * @count:	the number of bytes in @buf
1214  *
1215  * Return: the number of bytes processed if the APQI is valid; otherwise returns
1216  * one of the following errors:
1217  *
1218  *	1. -EINVAL
1219  *	   The APQI is not a valid number
1220  *
1221  *	2. -ENODEV
1222  *	   The APQI exceeds the maximum value configured for the system
1223  *
1224  *	3. -EADDRNOTAVAIL
1225  *	   An APQN derived from the cross product of the APQI being assigned
1226  *	   and the APIDs previously assigned is not bound to the vfio_ap device
1227  *	   driver; or, if no APIDs have yet been assigned, the APQI is not
1228  *	   contained in an APQN bound to the vfio_ap device driver.
1229  *
1230  *	4. -EADDRINUSE
1231  *	   An APQN derived from the cross product of the APQI being assigned
1232  *	   and the APIDs previously assigned is being used by another mediated
1233  *	   matrix device
1234  *
1235  *	5. -EAGAIN
1236  *	   The lock required to validate the mdev's AP configuration could not
1237  *	   be obtained.
1238  */
assign_domain_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)1239 static ssize_t assign_domain_store(struct device *dev,
1240 				   struct device_attribute *attr,
1241 				   const char *buf, size_t count)
1242 {
1243 	int ret;
1244 	unsigned long apqi;
1245 	DECLARE_BITMAP(apm_filtered, AP_DEVICES);
1246 	struct ap_matrix_mdev *matrix_mdev = dev_get_drvdata(dev);
1247 
1248 	mutex_lock(&ap_perms_mutex);
1249 	get_update_locks_for_mdev(matrix_mdev);
1250 
1251 	ret = kstrtoul(buf, 0, &apqi);
1252 	if (ret)
1253 		goto done;
1254 
1255 	if (apqi > matrix_mdev->matrix.aqm_max) {
1256 		ret = -ENODEV;
1257 		goto done;
1258 	}
1259 
1260 	if (test_bit_inv(apqi, matrix_mdev->matrix.aqm)) {
1261 		ret = count;
1262 		goto done;
1263 	}
1264 
1265 	set_bit_inv(apqi, matrix_mdev->matrix.aqm);
1266 
1267 	ret = vfio_ap_mdev_validate_masks(matrix_mdev);
1268 	if (ret) {
1269 		clear_bit_inv(apqi, matrix_mdev->matrix.aqm);
1270 		goto done;
1271 	}
1272 
1273 	vfio_ap_mdev_link_domain(matrix_mdev, apqi);
1274 
1275 	if (vfio_ap_mdev_filter_matrix(matrix_mdev, apm_filtered)) {
1276 		vfio_ap_mdev_update_guest_apcb(matrix_mdev);
1277 		reset_queues_for_apids(matrix_mdev, apm_filtered);
1278 	}
1279 
1280 	ret = count;
1281 done:
1282 	release_update_locks_for_mdev(matrix_mdev);
1283 	mutex_unlock(&ap_perms_mutex);
1284 
1285 	return ret;
1286 }
1287 static DEVICE_ATTR_WO(assign_domain);
1288 
vfio_ap_mdev_unlink_domain(struct ap_matrix_mdev * matrix_mdev,unsigned long apqi,struct list_head * qlist)1289 static void vfio_ap_mdev_unlink_domain(struct ap_matrix_mdev *matrix_mdev,
1290 				       unsigned long apqi,
1291 				       struct list_head *qlist)
1292 {
1293 	unsigned long apid;
1294 	struct vfio_ap_queue *q;
1295 
1296 	for_each_set_bit_inv(apid, matrix_mdev->matrix.apm, AP_DEVICES) {
1297 		q = vfio_ap_unlink_apqn_fr_mdev(matrix_mdev, apid, apqi);
1298 
1299 		if (q && qlist) {
1300 			if (test_bit_inv(apid, matrix_mdev->shadow_apcb.apm) &&
1301 			    test_bit_inv(apqi, matrix_mdev->shadow_apcb.aqm))
1302 				list_add_tail(&q->reset_qnode, qlist);
1303 		}
1304 	}
1305 }
1306 
vfio_ap_mdev_hot_unplug_domain(struct ap_matrix_mdev * matrix_mdev,unsigned long apqi)1307 static void vfio_ap_mdev_hot_unplug_domain(struct ap_matrix_mdev *matrix_mdev,
1308 					   unsigned long apqi)
1309 {
1310 	struct vfio_ap_queue *q, *tmpq;
1311 	struct list_head qlist;
1312 
1313 	INIT_LIST_HEAD(&qlist);
1314 	vfio_ap_mdev_unlink_domain(matrix_mdev, apqi, &qlist);
1315 
1316 	if (test_bit_inv(apqi, matrix_mdev->shadow_apcb.aqm)) {
1317 		clear_bit_inv(apqi, matrix_mdev->shadow_apcb.aqm);
1318 		vfio_ap_mdev_update_guest_apcb(matrix_mdev);
1319 	}
1320 
1321 	vfio_ap_mdev_reset_qlist(&qlist);
1322 
1323 	list_for_each_entry_safe(q, tmpq, &qlist, reset_qnode) {
1324 		vfio_ap_unlink_mdev_fr_queue(q);
1325 		list_del(&q->reset_qnode);
1326 	}
1327 }
1328 
1329 /**
1330  * unassign_domain_store - parses the APQI from @buf and clears the
1331  * corresponding bit in the mediated matrix device's AQM
1332  *
1333  * @dev:	the matrix device
1334  * @attr:	the mediated matrix device's unassign_domain attribute
1335  * @buf:	a buffer containing the AP queue index (APQI) of the domain to
1336  *		be unassigned
1337  * @count:	the number of bytes in @buf
1338  *
1339  * Return: the number of bytes processed if the APQI is valid; otherwise,
1340  * returns one of the following errors:
1341  *	-EINVAL if the APQI is not a number
1342  *	-ENODEV if the APQI exceeds the maximum value configured for the system
1343  */
unassign_domain_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)1344 static ssize_t unassign_domain_store(struct device *dev,
1345 				     struct device_attribute *attr,
1346 				     const char *buf, size_t count)
1347 {
1348 	int ret;
1349 	unsigned long apqi;
1350 	struct ap_matrix_mdev *matrix_mdev = dev_get_drvdata(dev);
1351 
1352 	get_update_locks_for_mdev(matrix_mdev);
1353 
1354 	ret = kstrtoul(buf, 0, &apqi);
1355 	if (ret)
1356 		goto done;
1357 
1358 	if (apqi > matrix_mdev->matrix.aqm_max) {
1359 		ret = -ENODEV;
1360 		goto done;
1361 	}
1362 
1363 	if (!test_bit_inv(apqi, matrix_mdev->matrix.aqm)) {
1364 		ret = count;
1365 		goto done;
1366 	}
1367 
1368 	clear_bit_inv((unsigned long)apqi, matrix_mdev->matrix.aqm);
1369 	vfio_ap_mdev_hot_unplug_domain(matrix_mdev, apqi);
1370 	ret = count;
1371 
1372 done:
1373 	release_update_locks_for_mdev(matrix_mdev);
1374 	return ret;
1375 }
1376 static DEVICE_ATTR_WO(unassign_domain);
1377 
1378 /**
1379  * assign_control_domain_store - parses the domain ID from @buf and sets
1380  * the corresponding bit in the mediated matrix device's ADM
1381  *
1382  * @dev:	the matrix device
1383  * @attr:	the mediated matrix device's assign_control_domain attribute
1384  * @buf:	a buffer containing the domain ID to be assigned
1385  * @count:	the number of bytes in @buf
1386  *
1387  * Return: the number of bytes processed if the domain ID is valid; otherwise,
1388  * returns one of the following errors:
1389  *	-EINVAL if the ID is not a number
1390  *	-ENODEV if the ID exceeds the maximum value configured for the system
1391  */
assign_control_domain_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)1392 static ssize_t assign_control_domain_store(struct device *dev,
1393 					   struct device_attribute *attr,
1394 					   const char *buf, size_t count)
1395 {
1396 	int ret;
1397 	unsigned long id;
1398 	struct ap_matrix_mdev *matrix_mdev = dev_get_drvdata(dev);
1399 
1400 	get_update_locks_for_mdev(matrix_mdev);
1401 
1402 	ret = kstrtoul(buf, 0, &id);
1403 	if (ret)
1404 		goto done;
1405 
1406 	if (id > matrix_mdev->matrix.adm_max) {
1407 		ret = -ENODEV;
1408 		goto done;
1409 	}
1410 
1411 	if (test_bit_inv(id, matrix_mdev->matrix.adm)) {
1412 		ret = count;
1413 		goto done;
1414 	}
1415 
1416 	/* Set the bit in the ADM (bitmask) corresponding to the AP control
1417 	 * domain number (id). The bits in the mask, from most significant to
1418 	 * least significant, correspond to IDs 0 up to the one less than the
1419 	 * number of control domains that can be assigned.
1420 	 */
1421 	set_bit_inv(id, matrix_mdev->matrix.adm);
1422 	if (vfio_ap_mdev_filter_cdoms(matrix_mdev))
1423 		vfio_ap_mdev_update_guest_apcb(matrix_mdev);
1424 
1425 	ret = count;
1426 done:
1427 	release_update_locks_for_mdev(matrix_mdev);
1428 	return ret;
1429 }
1430 static DEVICE_ATTR_WO(assign_control_domain);
1431 
1432 /**
1433  * unassign_control_domain_store - parses the domain ID from @buf and
1434  * clears the corresponding bit in the mediated matrix device's ADM
1435  *
1436  * @dev:	the matrix device
1437  * @attr:	the mediated matrix device's unassign_control_domain attribute
1438  * @buf:	a buffer containing the domain ID to be unassigned
1439  * @count:	the number of bytes in @buf
1440  *
1441  * Return: the number of bytes processed if the domain ID is valid; otherwise,
1442  * returns one of the following errors:
1443  *	-EINVAL if the ID is not a number
1444  *	-ENODEV if the ID exceeds the maximum value configured for the system
1445  */
unassign_control_domain_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)1446 static ssize_t unassign_control_domain_store(struct device *dev,
1447 					     struct device_attribute *attr,
1448 					     const char *buf, size_t count)
1449 {
1450 	int ret;
1451 	unsigned long domid;
1452 	struct ap_matrix_mdev *matrix_mdev = dev_get_drvdata(dev);
1453 
1454 	get_update_locks_for_mdev(matrix_mdev);
1455 
1456 	ret = kstrtoul(buf, 0, &domid);
1457 	if (ret)
1458 		goto done;
1459 
1460 	if (domid > matrix_mdev->matrix.adm_max) {
1461 		ret = -ENODEV;
1462 		goto done;
1463 	}
1464 
1465 	if (!test_bit_inv(domid, matrix_mdev->matrix.adm)) {
1466 		ret = count;
1467 		goto done;
1468 	}
1469 
1470 	clear_bit_inv(domid, matrix_mdev->matrix.adm);
1471 
1472 	if (test_bit_inv(domid, matrix_mdev->shadow_apcb.adm)) {
1473 		clear_bit_inv(domid, matrix_mdev->shadow_apcb.adm);
1474 		vfio_ap_mdev_update_guest_apcb(matrix_mdev);
1475 	}
1476 
1477 	ret = count;
1478 done:
1479 	release_update_locks_for_mdev(matrix_mdev);
1480 	return ret;
1481 }
1482 static DEVICE_ATTR_WO(unassign_control_domain);
1483 
control_domains_show(struct device * dev,struct device_attribute * dev_attr,char * buf)1484 static ssize_t control_domains_show(struct device *dev,
1485 				    struct device_attribute *dev_attr,
1486 				    char *buf)
1487 {
1488 	unsigned long id;
1489 	int nchars = 0;
1490 	int n;
1491 	char *bufpos = buf;
1492 	struct ap_matrix_mdev *matrix_mdev = dev_get_drvdata(dev);
1493 	unsigned long max_domid = matrix_mdev->matrix.adm_max;
1494 
1495 	mutex_lock(&matrix_dev->mdevs_lock);
1496 	for_each_set_bit_inv(id, matrix_mdev->matrix.adm, max_domid + 1) {
1497 		n = sprintf(bufpos, "%04lx\n", id);
1498 		bufpos += n;
1499 		nchars += n;
1500 	}
1501 	mutex_unlock(&matrix_dev->mdevs_lock);
1502 
1503 	return nchars;
1504 }
1505 static DEVICE_ATTR_RO(control_domains);
1506 
vfio_ap_mdev_matrix_show(struct ap_matrix * matrix,char * buf)1507 static ssize_t vfio_ap_mdev_matrix_show(struct ap_matrix *matrix, char *buf)
1508 {
1509 	char *bufpos = buf;
1510 	unsigned long apid;
1511 	unsigned long apqi;
1512 	unsigned long apid1;
1513 	unsigned long apqi1;
1514 	unsigned long napm_bits = matrix->apm_max + 1;
1515 	unsigned long naqm_bits = matrix->aqm_max + 1;
1516 	int nchars = 0;
1517 	int n;
1518 
1519 	apid1 = find_first_bit_inv(matrix->apm, napm_bits);
1520 	apqi1 = find_first_bit_inv(matrix->aqm, naqm_bits);
1521 
1522 	if ((apid1 < napm_bits) && (apqi1 < naqm_bits)) {
1523 		for_each_set_bit_inv(apid, matrix->apm, napm_bits) {
1524 			for_each_set_bit_inv(apqi, matrix->aqm,
1525 					     naqm_bits) {
1526 				n = sprintf(bufpos, "%02lx.%04lx\n", apid,
1527 					    apqi);
1528 				bufpos += n;
1529 				nchars += n;
1530 			}
1531 		}
1532 	} else if (apid1 < napm_bits) {
1533 		for_each_set_bit_inv(apid, matrix->apm, napm_bits) {
1534 			n = sprintf(bufpos, "%02lx.\n", apid);
1535 			bufpos += n;
1536 			nchars += n;
1537 		}
1538 	} else if (apqi1 < naqm_bits) {
1539 		for_each_set_bit_inv(apqi, matrix->aqm, naqm_bits) {
1540 			n = sprintf(bufpos, ".%04lx\n", apqi);
1541 			bufpos += n;
1542 			nchars += n;
1543 		}
1544 	}
1545 
1546 	return nchars;
1547 }
1548 
matrix_show(struct device * dev,struct device_attribute * attr,char * buf)1549 static ssize_t matrix_show(struct device *dev, struct device_attribute *attr,
1550 			   char *buf)
1551 {
1552 	ssize_t nchars;
1553 	struct ap_matrix_mdev *matrix_mdev = dev_get_drvdata(dev);
1554 
1555 	mutex_lock(&matrix_dev->mdevs_lock);
1556 	nchars = vfio_ap_mdev_matrix_show(&matrix_mdev->matrix, buf);
1557 	mutex_unlock(&matrix_dev->mdevs_lock);
1558 
1559 	return nchars;
1560 }
1561 static DEVICE_ATTR_RO(matrix);
1562 
guest_matrix_show(struct device * dev,struct device_attribute * attr,char * buf)1563 static ssize_t guest_matrix_show(struct device *dev,
1564 				 struct device_attribute *attr, char *buf)
1565 {
1566 	ssize_t nchars;
1567 	struct ap_matrix_mdev *matrix_mdev = dev_get_drvdata(dev);
1568 
1569 	mutex_lock(&matrix_dev->mdevs_lock);
1570 	nchars = vfio_ap_mdev_matrix_show(&matrix_mdev->shadow_apcb, buf);
1571 	mutex_unlock(&matrix_dev->mdevs_lock);
1572 
1573 	return nchars;
1574 }
1575 static DEVICE_ATTR_RO(guest_matrix);
1576 
1577 static struct attribute *vfio_ap_mdev_attrs[] = {
1578 	&dev_attr_assign_adapter.attr,
1579 	&dev_attr_unassign_adapter.attr,
1580 	&dev_attr_assign_domain.attr,
1581 	&dev_attr_unassign_domain.attr,
1582 	&dev_attr_assign_control_domain.attr,
1583 	&dev_attr_unassign_control_domain.attr,
1584 	&dev_attr_control_domains.attr,
1585 	&dev_attr_matrix.attr,
1586 	&dev_attr_guest_matrix.attr,
1587 	NULL,
1588 };
1589 
1590 static struct attribute_group vfio_ap_mdev_attr_group = {
1591 	.attrs = vfio_ap_mdev_attrs
1592 };
1593 
1594 static const struct attribute_group *vfio_ap_mdev_attr_groups[] = {
1595 	&vfio_ap_mdev_attr_group,
1596 	NULL
1597 };
1598 
1599 /**
1600  * vfio_ap_mdev_set_kvm - sets all data for @matrix_mdev that are needed
1601  * to manage AP resources for the guest whose state is represented by @kvm
1602  *
1603  * @matrix_mdev: a mediated matrix device
1604  * @kvm: reference to KVM instance
1605  *
1606  * Return: 0 if no other mediated matrix device has a reference to @kvm;
1607  * otherwise, returns an -EPERM.
1608  */
vfio_ap_mdev_set_kvm(struct ap_matrix_mdev * matrix_mdev,struct kvm * kvm)1609 static int vfio_ap_mdev_set_kvm(struct ap_matrix_mdev *matrix_mdev,
1610 				struct kvm *kvm)
1611 {
1612 	struct ap_matrix_mdev *m;
1613 
1614 	if (kvm->arch.crypto.crycbd) {
1615 		down_write(&kvm->arch.crypto.pqap_hook_rwsem);
1616 		kvm->arch.crypto.pqap_hook = &matrix_mdev->pqap_hook;
1617 		up_write(&kvm->arch.crypto.pqap_hook_rwsem);
1618 
1619 		get_update_locks_for_kvm(kvm);
1620 
1621 		list_for_each_entry(m, &matrix_dev->mdev_list, node) {
1622 			if (m != matrix_mdev && m->kvm == kvm) {
1623 				release_update_locks_for_kvm(kvm);
1624 				return -EPERM;
1625 			}
1626 		}
1627 
1628 		kvm_get_kvm(kvm);
1629 		matrix_mdev->kvm = kvm;
1630 		vfio_ap_mdev_update_guest_apcb(matrix_mdev);
1631 
1632 		release_update_locks_for_kvm(kvm);
1633 	}
1634 
1635 	return 0;
1636 }
1637 
unmap_iova(struct ap_matrix_mdev * matrix_mdev,u64 iova,u64 length)1638 static void unmap_iova(struct ap_matrix_mdev *matrix_mdev, u64 iova, u64 length)
1639 {
1640 	struct ap_queue_table *qtable = &matrix_mdev->qtable;
1641 	struct vfio_ap_queue *q;
1642 	int loop_cursor;
1643 
1644 	hash_for_each(qtable->queues, loop_cursor, q, mdev_qnode) {
1645 		if (q->saved_iova >= iova && q->saved_iova < iova + length)
1646 			vfio_ap_irq_disable(q);
1647 	}
1648 }
1649 
vfio_ap_mdev_dma_unmap(struct vfio_device * vdev,u64 iova,u64 length)1650 static void vfio_ap_mdev_dma_unmap(struct vfio_device *vdev, u64 iova,
1651 				   u64 length)
1652 {
1653 	struct ap_matrix_mdev *matrix_mdev =
1654 		container_of(vdev, struct ap_matrix_mdev, vdev);
1655 
1656 	mutex_lock(&matrix_dev->mdevs_lock);
1657 
1658 	unmap_iova(matrix_mdev, iova, length);
1659 
1660 	mutex_unlock(&matrix_dev->mdevs_lock);
1661 }
1662 
1663 /**
1664  * vfio_ap_mdev_unset_kvm - performs clean-up of resources no longer needed
1665  * by @matrix_mdev.
1666  *
1667  * @matrix_mdev: a matrix mediated device
1668  */
vfio_ap_mdev_unset_kvm(struct ap_matrix_mdev * matrix_mdev)1669 static void vfio_ap_mdev_unset_kvm(struct ap_matrix_mdev *matrix_mdev)
1670 {
1671 	struct kvm *kvm = matrix_mdev->kvm;
1672 
1673 	if (kvm && kvm->arch.crypto.crycbd) {
1674 		down_write(&kvm->arch.crypto.pqap_hook_rwsem);
1675 		kvm->arch.crypto.pqap_hook = NULL;
1676 		up_write(&kvm->arch.crypto.pqap_hook_rwsem);
1677 
1678 		get_update_locks_for_kvm(kvm);
1679 
1680 		kvm_arch_crypto_clear_masks(kvm);
1681 		vfio_ap_mdev_reset_queues(matrix_mdev);
1682 		kvm_put_kvm(kvm);
1683 		matrix_mdev->kvm = NULL;
1684 
1685 		release_update_locks_for_kvm(kvm);
1686 	}
1687 }
1688 
vfio_ap_find_queue(int apqn)1689 static struct vfio_ap_queue *vfio_ap_find_queue(int apqn)
1690 {
1691 	struct ap_queue *queue;
1692 	struct vfio_ap_queue *q = NULL;
1693 
1694 	queue = ap_get_qdev(apqn);
1695 	if (!queue)
1696 		return NULL;
1697 
1698 	if (queue->ap_dev.device.driver == &matrix_dev->vfio_ap_drv->driver)
1699 		q = dev_get_drvdata(&queue->ap_dev.device);
1700 
1701 	put_device(&queue->ap_dev.device);
1702 
1703 	return q;
1704 }
1705 
apq_status_check(int apqn,struct ap_queue_status * status)1706 static int apq_status_check(int apqn, struct ap_queue_status *status)
1707 {
1708 	switch (status->response_code) {
1709 	case AP_RESPONSE_NORMAL:
1710 	case AP_RESPONSE_DECONFIGURED:
1711 		return 0;
1712 	case AP_RESPONSE_RESET_IN_PROGRESS:
1713 	case AP_RESPONSE_BUSY:
1714 		return -EBUSY;
1715 	case AP_RESPONSE_ASSOC_SECRET_NOT_UNIQUE:
1716 	case AP_RESPONSE_ASSOC_FAILED:
1717 		/*
1718 		 * These asynchronous response codes indicate a PQAP(AAPQ)
1719 		 * instruction to associate a secret with the guest failed. All
1720 		 * subsequent AP instructions will end with the asynchronous
1721 		 * response code until the AP queue is reset; so, let's return
1722 		 * a value indicating a reset needs to be performed again.
1723 		 */
1724 		return -EAGAIN;
1725 	default:
1726 		WARN(true,
1727 		     "failed to verify reset of queue %02x.%04x: TAPQ rc=%u\n",
1728 		     AP_QID_CARD(apqn), AP_QID_QUEUE(apqn),
1729 		     status->response_code);
1730 		return -EIO;
1731 	}
1732 }
1733 
1734 #define WAIT_MSG "Waited %dms for reset of queue %02x.%04x (%u, %u, %u)"
1735 
apq_reset_check(struct work_struct * reset_work)1736 static void apq_reset_check(struct work_struct *reset_work)
1737 {
1738 	int ret = -EBUSY, elapsed = 0;
1739 	struct ap_queue_status status;
1740 	struct vfio_ap_queue *q;
1741 
1742 	q = container_of(reset_work, struct vfio_ap_queue, reset_work);
1743 	memcpy(&status, &q->reset_status, sizeof(status));
1744 	while (true) {
1745 		msleep(AP_RESET_INTERVAL);
1746 		elapsed += AP_RESET_INTERVAL;
1747 		status = ap_tapq(q->apqn, NULL);
1748 		ret = apq_status_check(q->apqn, &status);
1749 		if (ret == -EIO)
1750 			return;
1751 		if (ret == -EBUSY) {
1752 			pr_notice_ratelimited(WAIT_MSG, elapsed,
1753 					      AP_QID_CARD(q->apqn),
1754 					      AP_QID_QUEUE(q->apqn),
1755 					      status.response_code,
1756 					      status.queue_empty,
1757 					      status.irq_enabled);
1758 		} else {
1759 			if (q->reset_status.response_code == AP_RESPONSE_RESET_IN_PROGRESS ||
1760 			    q->reset_status.response_code == AP_RESPONSE_BUSY ||
1761 			    q->reset_status.response_code == AP_RESPONSE_STATE_CHANGE_IN_PROGRESS ||
1762 			    ret == -EAGAIN) {
1763 				status = ap_zapq(q->apqn, 0);
1764 				memcpy(&q->reset_status, &status, sizeof(status));
1765 				continue;
1766 			}
1767 			/*
1768 			 * When an AP adapter is deconfigured, the
1769 			 * associated queues are reset, so let's set the
1770 			 * status response code to 0 so the queue may be
1771 			 * passed through (i.e., not filtered)
1772 			 */
1773 			if (status.response_code == AP_RESPONSE_DECONFIGURED)
1774 				q->reset_status.response_code = 0;
1775 			if (q->saved_isc != VFIO_AP_ISC_INVALID)
1776 				vfio_ap_free_aqic_resources(q);
1777 			break;
1778 		}
1779 	}
1780 }
1781 
vfio_ap_mdev_reset_queue(struct vfio_ap_queue * q)1782 static void vfio_ap_mdev_reset_queue(struct vfio_ap_queue *q)
1783 {
1784 	struct ap_queue_status status;
1785 
1786 	if (!q)
1787 		return;
1788 	status = ap_zapq(q->apqn, 0);
1789 	memcpy(&q->reset_status, &status, sizeof(status));
1790 	switch (status.response_code) {
1791 	case AP_RESPONSE_NORMAL:
1792 	case AP_RESPONSE_RESET_IN_PROGRESS:
1793 	case AP_RESPONSE_BUSY:
1794 	case AP_RESPONSE_STATE_CHANGE_IN_PROGRESS:
1795 		/*
1796 		 * Let's verify whether the ZAPQ completed successfully on a work queue.
1797 		 */
1798 		queue_work(system_long_wq, &q->reset_work);
1799 		break;
1800 	case AP_RESPONSE_DECONFIGURED:
1801 		/*
1802 		 * When an AP adapter is deconfigured, the associated
1803 		 * queues are reset, so let's set the status response code to 0
1804 		 * so the queue may be passed through (i.e., not filtered).
1805 		 */
1806 		q->reset_status.response_code = 0;
1807 		vfio_ap_free_aqic_resources(q);
1808 		break;
1809 	default:
1810 		WARN(true,
1811 		     "PQAP/ZAPQ for %02x.%04x failed with invalid rc=%u\n",
1812 		     AP_QID_CARD(q->apqn), AP_QID_QUEUE(q->apqn),
1813 		     status.response_code);
1814 	}
1815 }
1816 
vfio_ap_mdev_reset_queues(struct ap_matrix_mdev * matrix_mdev)1817 static int vfio_ap_mdev_reset_queues(struct ap_matrix_mdev *matrix_mdev)
1818 {
1819 	int ret = 0, loop_cursor;
1820 	struct vfio_ap_queue *q;
1821 
1822 	hash_for_each(matrix_mdev->qtable.queues, loop_cursor, q, mdev_qnode)
1823 		vfio_ap_mdev_reset_queue(q);
1824 
1825 	hash_for_each(matrix_mdev->qtable.queues, loop_cursor, q, mdev_qnode) {
1826 		flush_work(&q->reset_work);
1827 
1828 		if (q->reset_status.response_code)
1829 			ret = -EIO;
1830 	}
1831 
1832 	return ret;
1833 }
1834 
vfio_ap_mdev_reset_qlist(struct list_head * qlist)1835 static int vfio_ap_mdev_reset_qlist(struct list_head *qlist)
1836 {
1837 	int ret = 0;
1838 	struct vfio_ap_queue *q;
1839 
1840 	list_for_each_entry(q, qlist, reset_qnode)
1841 		vfio_ap_mdev_reset_queue(q);
1842 
1843 	list_for_each_entry(q, qlist, reset_qnode) {
1844 		flush_work(&q->reset_work);
1845 
1846 		if (q->reset_status.response_code)
1847 			ret = -EIO;
1848 	}
1849 
1850 	return ret;
1851 }
1852 
vfio_ap_mdev_open_device(struct vfio_device * vdev)1853 static int vfio_ap_mdev_open_device(struct vfio_device *vdev)
1854 {
1855 	struct ap_matrix_mdev *matrix_mdev =
1856 		container_of(vdev, struct ap_matrix_mdev, vdev);
1857 
1858 	if (!vdev->kvm)
1859 		return -EINVAL;
1860 
1861 	return vfio_ap_mdev_set_kvm(matrix_mdev, vdev->kvm);
1862 }
1863 
vfio_ap_mdev_close_device(struct vfio_device * vdev)1864 static void vfio_ap_mdev_close_device(struct vfio_device *vdev)
1865 {
1866 	struct ap_matrix_mdev *matrix_mdev =
1867 		container_of(vdev, struct ap_matrix_mdev, vdev);
1868 
1869 	vfio_ap_mdev_unset_kvm(matrix_mdev);
1870 }
1871 
vfio_ap_mdev_request(struct vfio_device * vdev,unsigned int count)1872 static void vfio_ap_mdev_request(struct vfio_device *vdev, unsigned int count)
1873 {
1874 	struct device *dev = vdev->dev;
1875 	struct ap_matrix_mdev *matrix_mdev;
1876 
1877 	matrix_mdev = container_of(vdev, struct ap_matrix_mdev, vdev);
1878 
1879 	if (matrix_mdev->req_trigger) {
1880 		if (!(count % 10))
1881 			dev_notice_ratelimited(dev,
1882 					       "Relaying device request to user (#%u)\n",
1883 					       count);
1884 
1885 		eventfd_signal(matrix_mdev->req_trigger, 1);
1886 	} else if (count == 0) {
1887 		dev_notice(dev,
1888 			   "No device request registered, blocked until released by user\n");
1889 	}
1890 }
1891 
vfio_ap_mdev_get_device_info(unsigned long arg)1892 static int vfio_ap_mdev_get_device_info(unsigned long arg)
1893 {
1894 	unsigned long minsz;
1895 	struct vfio_device_info info;
1896 
1897 	minsz = offsetofend(struct vfio_device_info, num_irqs);
1898 
1899 	if (copy_from_user(&info, (void __user *)arg, minsz))
1900 		return -EFAULT;
1901 
1902 	if (info.argsz < minsz)
1903 		return -EINVAL;
1904 
1905 	info.flags = VFIO_DEVICE_FLAGS_AP | VFIO_DEVICE_FLAGS_RESET;
1906 	info.num_regions = 0;
1907 	info.num_irqs = VFIO_AP_NUM_IRQS;
1908 
1909 	return copy_to_user((void __user *)arg, &info, minsz) ? -EFAULT : 0;
1910 }
1911 
vfio_ap_get_irq_info(unsigned long arg)1912 static ssize_t vfio_ap_get_irq_info(unsigned long arg)
1913 {
1914 	unsigned long minsz;
1915 	struct vfio_irq_info info;
1916 
1917 	minsz = offsetofend(struct vfio_irq_info, count);
1918 
1919 	if (copy_from_user(&info, (void __user *)arg, minsz))
1920 		return -EFAULT;
1921 
1922 	if (info.argsz < minsz || info.index >= VFIO_AP_NUM_IRQS)
1923 		return -EINVAL;
1924 
1925 	switch (info.index) {
1926 	case VFIO_AP_REQ_IRQ_INDEX:
1927 		info.count = 1;
1928 		info.flags = VFIO_IRQ_INFO_EVENTFD;
1929 		break;
1930 	default:
1931 		return -EINVAL;
1932 	}
1933 
1934 	return copy_to_user((void __user *)arg, &info, minsz) ? -EFAULT : 0;
1935 }
1936 
vfio_ap_irq_set_init(struct vfio_irq_set * irq_set,unsigned long arg)1937 static int vfio_ap_irq_set_init(struct vfio_irq_set *irq_set, unsigned long arg)
1938 {
1939 	int ret;
1940 	size_t data_size;
1941 	unsigned long minsz;
1942 
1943 	minsz = offsetofend(struct vfio_irq_set, count);
1944 
1945 	if (copy_from_user(irq_set, (void __user *)arg, minsz))
1946 		return -EFAULT;
1947 
1948 	ret = vfio_set_irqs_validate_and_prepare(irq_set, 1, VFIO_AP_NUM_IRQS,
1949 						 &data_size);
1950 	if (ret)
1951 		return ret;
1952 
1953 	if (!(irq_set->flags & VFIO_IRQ_SET_ACTION_TRIGGER))
1954 		return -EINVAL;
1955 
1956 	return 0;
1957 }
1958 
vfio_ap_set_request_irq(struct ap_matrix_mdev * matrix_mdev,unsigned long arg)1959 static int vfio_ap_set_request_irq(struct ap_matrix_mdev *matrix_mdev,
1960 				   unsigned long arg)
1961 {
1962 	s32 fd;
1963 	void __user *data;
1964 	unsigned long minsz;
1965 	struct eventfd_ctx *req_trigger;
1966 
1967 	minsz = offsetofend(struct vfio_irq_set, count);
1968 	data = (void __user *)(arg + minsz);
1969 
1970 	if (get_user(fd, (s32 __user *)data))
1971 		return -EFAULT;
1972 
1973 	if (fd == -1) {
1974 		if (matrix_mdev->req_trigger)
1975 			eventfd_ctx_put(matrix_mdev->req_trigger);
1976 		matrix_mdev->req_trigger = NULL;
1977 	} else if (fd >= 0) {
1978 		req_trigger = eventfd_ctx_fdget(fd);
1979 		if (IS_ERR(req_trigger))
1980 			return PTR_ERR(req_trigger);
1981 
1982 		if (matrix_mdev->req_trigger)
1983 			eventfd_ctx_put(matrix_mdev->req_trigger);
1984 
1985 		matrix_mdev->req_trigger = req_trigger;
1986 	} else {
1987 		return -EINVAL;
1988 	}
1989 
1990 	return 0;
1991 }
1992 
vfio_ap_set_irqs(struct ap_matrix_mdev * matrix_mdev,unsigned long arg)1993 static int vfio_ap_set_irqs(struct ap_matrix_mdev *matrix_mdev,
1994 			    unsigned long arg)
1995 {
1996 	int ret;
1997 	struct vfio_irq_set irq_set;
1998 
1999 	ret = vfio_ap_irq_set_init(&irq_set, arg);
2000 	if (ret)
2001 		return ret;
2002 
2003 	switch (irq_set.flags & VFIO_IRQ_SET_DATA_TYPE_MASK) {
2004 	case VFIO_IRQ_SET_DATA_EVENTFD:
2005 		switch (irq_set.index) {
2006 		case VFIO_AP_REQ_IRQ_INDEX:
2007 			return vfio_ap_set_request_irq(matrix_mdev, arg);
2008 		default:
2009 			return -EINVAL;
2010 		}
2011 	default:
2012 		return -EINVAL;
2013 	}
2014 }
2015 
vfio_ap_mdev_ioctl(struct vfio_device * vdev,unsigned int cmd,unsigned long arg)2016 static ssize_t vfio_ap_mdev_ioctl(struct vfio_device *vdev,
2017 				    unsigned int cmd, unsigned long arg)
2018 {
2019 	struct ap_matrix_mdev *matrix_mdev =
2020 		container_of(vdev, struct ap_matrix_mdev, vdev);
2021 	int ret;
2022 
2023 	mutex_lock(&matrix_dev->mdevs_lock);
2024 	switch (cmd) {
2025 	case VFIO_DEVICE_GET_INFO:
2026 		ret = vfio_ap_mdev_get_device_info(arg);
2027 		break;
2028 	case VFIO_DEVICE_RESET:
2029 		ret = vfio_ap_mdev_reset_queues(matrix_mdev);
2030 		break;
2031 	case VFIO_DEVICE_GET_IRQ_INFO:
2032 			ret = vfio_ap_get_irq_info(arg);
2033 			break;
2034 	case VFIO_DEVICE_SET_IRQS:
2035 		ret = vfio_ap_set_irqs(matrix_mdev, arg);
2036 		break;
2037 	default:
2038 		ret = -EOPNOTSUPP;
2039 		break;
2040 	}
2041 	mutex_unlock(&matrix_dev->mdevs_lock);
2042 
2043 	return ret;
2044 }
2045 
vfio_ap_mdev_for_queue(struct vfio_ap_queue * q)2046 static struct ap_matrix_mdev *vfio_ap_mdev_for_queue(struct vfio_ap_queue *q)
2047 {
2048 	struct ap_matrix_mdev *matrix_mdev;
2049 	unsigned long apid = AP_QID_CARD(q->apqn);
2050 	unsigned long apqi = AP_QID_QUEUE(q->apqn);
2051 
2052 	list_for_each_entry(matrix_mdev, &matrix_dev->mdev_list, node) {
2053 		if (test_bit_inv(apid, matrix_mdev->matrix.apm) &&
2054 		    test_bit_inv(apqi, matrix_mdev->matrix.aqm))
2055 			return matrix_mdev;
2056 	}
2057 
2058 	return NULL;
2059 }
2060 
status_show(struct device * dev,struct device_attribute * attr,char * buf)2061 static ssize_t status_show(struct device *dev,
2062 			   struct device_attribute *attr,
2063 			   char *buf)
2064 {
2065 	ssize_t nchars = 0;
2066 	struct vfio_ap_queue *q;
2067 	unsigned long apid, apqi;
2068 	struct ap_matrix_mdev *matrix_mdev;
2069 	struct ap_device *apdev = to_ap_dev(dev);
2070 
2071 	mutex_lock(&matrix_dev->mdevs_lock);
2072 	q = dev_get_drvdata(&apdev->device);
2073 	matrix_mdev = vfio_ap_mdev_for_queue(q);
2074 
2075 	/* If the queue is assigned to the matrix mediated device, then
2076 	 * determine whether it is passed through to a guest; otherwise,
2077 	 * indicate that it is unassigned.
2078 	 */
2079 	if (matrix_mdev) {
2080 		apid = AP_QID_CARD(q->apqn);
2081 		apqi = AP_QID_QUEUE(q->apqn);
2082 		/*
2083 		 * If the queue is passed through to the guest, then indicate
2084 		 * that it is in use; otherwise, indicate that it is
2085 		 * merely assigned to a matrix mediated device.
2086 		 */
2087 		if (matrix_mdev->kvm &&
2088 		    test_bit_inv(apid, matrix_mdev->shadow_apcb.apm) &&
2089 		    test_bit_inv(apqi, matrix_mdev->shadow_apcb.aqm))
2090 			nchars = scnprintf(buf, PAGE_SIZE, "%s\n",
2091 					   AP_QUEUE_IN_USE);
2092 		else
2093 			nchars = scnprintf(buf, PAGE_SIZE, "%s\n",
2094 					   AP_QUEUE_ASSIGNED);
2095 	} else {
2096 		nchars = scnprintf(buf, PAGE_SIZE, "%s\n",
2097 				   AP_QUEUE_UNASSIGNED);
2098 	}
2099 
2100 	mutex_unlock(&matrix_dev->mdevs_lock);
2101 
2102 	return nchars;
2103 }
2104 
2105 static DEVICE_ATTR_RO(status);
2106 
2107 static struct attribute *vfio_queue_attrs[] = {
2108 	&dev_attr_status.attr,
2109 	NULL,
2110 };
2111 
2112 static const struct attribute_group vfio_queue_attr_group = {
2113 	.attrs = vfio_queue_attrs,
2114 };
2115 
2116 static const struct vfio_device_ops vfio_ap_matrix_dev_ops = {
2117 	.init = vfio_ap_mdev_init_dev,
2118 	.open_device = vfio_ap_mdev_open_device,
2119 	.close_device = vfio_ap_mdev_close_device,
2120 	.ioctl = vfio_ap_mdev_ioctl,
2121 	.dma_unmap = vfio_ap_mdev_dma_unmap,
2122 	.bind_iommufd = vfio_iommufd_emulated_bind,
2123 	.unbind_iommufd = vfio_iommufd_emulated_unbind,
2124 	.attach_ioas = vfio_iommufd_emulated_attach_ioas,
2125 	.detach_ioas = vfio_iommufd_emulated_detach_ioas,
2126 	.request = vfio_ap_mdev_request
2127 };
2128 
2129 static struct mdev_driver vfio_ap_matrix_driver = {
2130 	.device_api = VFIO_DEVICE_API_AP_STRING,
2131 	.max_instances = MAX_ZDEV_ENTRIES_EXT,
2132 	.driver = {
2133 		.name = "vfio_ap_mdev",
2134 		.owner = THIS_MODULE,
2135 		.mod_name = KBUILD_MODNAME,
2136 		.dev_groups = vfio_ap_mdev_attr_groups,
2137 	},
2138 	.probe = vfio_ap_mdev_probe,
2139 	.remove = vfio_ap_mdev_remove,
2140 };
2141 
vfio_ap_mdev_register(void)2142 int vfio_ap_mdev_register(void)
2143 {
2144 	int ret;
2145 
2146 	ret = mdev_register_driver(&vfio_ap_matrix_driver);
2147 	if (ret)
2148 		return ret;
2149 
2150 	matrix_dev->mdev_type.sysfs_name = VFIO_AP_MDEV_TYPE_HWVIRT;
2151 	matrix_dev->mdev_type.pretty_name = VFIO_AP_MDEV_NAME_HWVIRT;
2152 	matrix_dev->mdev_types[0] = &matrix_dev->mdev_type;
2153 	ret = mdev_register_parent(&matrix_dev->parent, &matrix_dev->device,
2154 				   &vfio_ap_matrix_driver,
2155 				   matrix_dev->mdev_types, 1);
2156 	if (ret)
2157 		goto err_driver;
2158 	return 0;
2159 
2160 err_driver:
2161 	mdev_unregister_driver(&vfio_ap_matrix_driver);
2162 	return ret;
2163 }
2164 
vfio_ap_mdev_unregister(void)2165 void vfio_ap_mdev_unregister(void)
2166 {
2167 	mdev_unregister_parent(&matrix_dev->parent);
2168 	mdev_unregister_driver(&vfio_ap_matrix_driver);
2169 }
2170 
vfio_ap_mdev_probe_queue(struct ap_device * apdev)2171 int vfio_ap_mdev_probe_queue(struct ap_device *apdev)
2172 {
2173 	int ret;
2174 	struct vfio_ap_queue *q;
2175 	DECLARE_BITMAP(apm_filtered, AP_DEVICES);
2176 	struct ap_matrix_mdev *matrix_mdev;
2177 
2178 	ret = sysfs_create_group(&apdev->device.kobj, &vfio_queue_attr_group);
2179 	if (ret)
2180 		return ret;
2181 
2182 	q = kzalloc(sizeof(*q), GFP_KERNEL);
2183 	if (!q) {
2184 		ret = -ENOMEM;
2185 		goto err_remove_group;
2186 	}
2187 
2188 	q->apqn = to_ap_queue(&apdev->device)->qid;
2189 	q->saved_isc = VFIO_AP_ISC_INVALID;
2190 	memset(&q->reset_status, 0, sizeof(q->reset_status));
2191 	INIT_WORK(&q->reset_work, apq_reset_check);
2192 	matrix_mdev = get_update_locks_by_apqn(q->apqn);
2193 
2194 	if (matrix_mdev) {
2195 		vfio_ap_mdev_link_queue(matrix_mdev, q);
2196 
2197 		/*
2198 		 * If we're in the process of handling the adding of adapters or
2199 		 * domains to the host's AP configuration, then let the
2200 		 * vfio_ap device driver's on_scan_complete callback filter the
2201 		 * matrix and update the guest's AP configuration after all of
2202 		 * the new queue devices are probed.
2203 		 */
2204 		if (!bitmap_empty(matrix_mdev->apm_add, AP_DEVICES) ||
2205 		    !bitmap_empty(matrix_mdev->aqm_add, AP_DOMAINS))
2206 			goto done;
2207 
2208 		if (vfio_ap_mdev_filter_matrix(matrix_mdev, apm_filtered)) {
2209 			vfio_ap_mdev_update_guest_apcb(matrix_mdev);
2210 			reset_queues_for_apids(matrix_mdev, apm_filtered);
2211 		}
2212 	}
2213 
2214 done:
2215 	dev_set_drvdata(&apdev->device, q);
2216 	release_update_locks_for_mdev(matrix_mdev);
2217 
2218 	return ret;
2219 
2220 err_remove_group:
2221 	sysfs_remove_group(&apdev->device.kobj, &vfio_queue_attr_group);
2222 	return ret;
2223 }
2224 
vfio_ap_mdev_remove_queue(struct ap_device * apdev)2225 void vfio_ap_mdev_remove_queue(struct ap_device *apdev)
2226 {
2227 	unsigned long apid, apqi;
2228 	struct vfio_ap_queue *q;
2229 	struct ap_matrix_mdev *matrix_mdev;
2230 
2231 	sysfs_remove_group(&apdev->device.kobj, &vfio_queue_attr_group);
2232 	q = dev_get_drvdata(&apdev->device);
2233 	get_update_locks_for_queue(q);
2234 	matrix_mdev = q->matrix_mdev;
2235 	apid = AP_QID_CARD(q->apqn);
2236 	apqi = AP_QID_QUEUE(q->apqn);
2237 
2238 	if (matrix_mdev) {
2239 		/* If the queue is assigned to the guest's AP configuration */
2240 		if (test_bit_inv(apid, matrix_mdev->shadow_apcb.apm) &&
2241 		    test_bit_inv(apqi, matrix_mdev->shadow_apcb.aqm)) {
2242 			/*
2243 			 * Since the queues are defined via a matrix of adapters
2244 			 * and domains, it is not possible to hot unplug a
2245 			 * single queue; so, let's unplug the adapter.
2246 			 */
2247 			clear_bit_inv(apid, matrix_mdev->shadow_apcb.apm);
2248 			vfio_ap_mdev_update_guest_apcb(matrix_mdev);
2249 			reset_queues_for_apid(matrix_mdev, apid);
2250 			goto done;
2251 		}
2252 	}
2253 
2254 	/*
2255 	 * If the queue is not in the host's AP configuration, then resetting
2256 	 * it will fail with response code 01, (APQN not valid); so, let's make
2257 	 * sure it is in the host's config.
2258 	 */
2259 	if (test_bit_inv(apid, (unsigned long *)matrix_dev->info.apm) &&
2260 	    test_bit_inv(apqi, (unsigned long *)matrix_dev->info.aqm)) {
2261 		vfio_ap_mdev_reset_queue(q);
2262 		flush_work(&q->reset_work);
2263 	}
2264 
2265 done:
2266 	if (matrix_mdev)
2267 		vfio_ap_unlink_queue_fr_mdev(q);
2268 
2269 	dev_set_drvdata(&apdev->device, NULL);
2270 	kfree(q);
2271 	release_update_locks_for_mdev(matrix_mdev);
2272 }
2273 
2274 /**
2275  * vfio_ap_mdev_resource_in_use: check whether any of a set of APQNs is
2276  *				 assigned to a mediated device under the control
2277  *				 of the vfio_ap device driver.
2278  *
2279  * @apm: a bitmap specifying a set of APIDs comprising the APQNs to check.
2280  * @aqm: a bitmap specifying a set of APQIs comprising the APQNs to check.
2281  *
2282  * Return:
2283  *	* -EADDRINUSE if one or more of the APQNs specified via @apm/@aqm are
2284  *	  assigned to a mediated device under the control of the vfio_ap
2285  *	  device driver.
2286  *	* Otherwise, return 0.
2287  */
vfio_ap_mdev_resource_in_use(unsigned long * apm,unsigned long * aqm)2288 int vfio_ap_mdev_resource_in_use(unsigned long *apm, unsigned long *aqm)
2289 {
2290 	int ret;
2291 
2292 	mutex_lock(&matrix_dev->guests_lock);
2293 	mutex_lock(&matrix_dev->mdevs_lock);
2294 	ret = vfio_ap_mdev_verify_no_sharing(NULL, apm, aqm);
2295 	mutex_unlock(&matrix_dev->mdevs_lock);
2296 	mutex_unlock(&matrix_dev->guests_lock);
2297 
2298 	return ret;
2299 }
2300 
2301 /**
2302  * vfio_ap_mdev_hot_unplug_cfg - hot unplug the adapters, domains and control
2303  *				 domains that have been removed from the host's
2304  *				 AP configuration from a guest.
2305  *
2306  * @matrix_mdev: an ap_matrix_mdev object attached to a KVM guest.
2307  * @aprem: the adapters that have been removed from the host's AP configuration
2308  * @aqrem: the domains that have been removed from the host's AP configuration
2309  * @cdrem: the control domains that have been removed from the host's AP
2310  *	   configuration.
2311  */
vfio_ap_mdev_hot_unplug_cfg(struct ap_matrix_mdev * matrix_mdev,unsigned long * aprem,unsigned long * aqrem,unsigned long * cdrem)2312 static void vfio_ap_mdev_hot_unplug_cfg(struct ap_matrix_mdev *matrix_mdev,
2313 					unsigned long *aprem,
2314 					unsigned long *aqrem,
2315 					unsigned long *cdrem)
2316 {
2317 	int do_hotplug = 0;
2318 
2319 	if (!bitmap_empty(aprem, AP_DEVICES)) {
2320 		do_hotplug |= bitmap_andnot(matrix_mdev->shadow_apcb.apm,
2321 					    matrix_mdev->shadow_apcb.apm,
2322 					    aprem, AP_DEVICES);
2323 	}
2324 
2325 	if (!bitmap_empty(aqrem, AP_DOMAINS)) {
2326 		do_hotplug |= bitmap_andnot(matrix_mdev->shadow_apcb.aqm,
2327 					    matrix_mdev->shadow_apcb.aqm,
2328 					    aqrem, AP_DEVICES);
2329 	}
2330 
2331 	if (!bitmap_empty(cdrem, AP_DOMAINS))
2332 		do_hotplug |= bitmap_andnot(matrix_mdev->shadow_apcb.adm,
2333 					    matrix_mdev->shadow_apcb.adm,
2334 					    cdrem, AP_DOMAINS);
2335 
2336 	if (do_hotplug)
2337 		vfio_ap_mdev_update_guest_apcb(matrix_mdev);
2338 }
2339 
2340 /**
2341  * vfio_ap_mdev_cfg_remove - determines which guests are using the adapters,
2342  *			     domains and control domains that have been removed
2343  *			     from the host AP configuration and unplugs them
2344  *			     from those guests.
2345  *
2346  * @ap_remove:	bitmap specifying which adapters have been removed from the host
2347  *		config.
2348  * @aq_remove:	bitmap specifying which domains have been removed from the host
2349  *		config.
2350  * @cd_remove:	bitmap specifying which control domains have been removed from
2351  *		the host config.
2352  */
vfio_ap_mdev_cfg_remove(unsigned long * ap_remove,unsigned long * aq_remove,unsigned long * cd_remove)2353 static void vfio_ap_mdev_cfg_remove(unsigned long *ap_remove,
2354 				    unsigned long *aq_remove,
2355 				    unsigned long *cd_remove)
2356 {
2357 	struct ap_matrix_mdev *matrix_mdev;
2358 	DECLARE_BITMAP(aprem, AP_DEVICES);
2359 	DECLARE_BITMAP(aqrem, AP_DOMAINS);
2360 	DECLARE_BITMAP(cdrem, AP_DOMAINS);
2361 	int do_remove = 0;
2362 
2363 	list_for_each_entry(matrix_mdev, &matrix_dev->mdev_list, node) {
2364 		mutex_lock(&matrix_mdev->kvm->lock);
2365 		mutex_lock(&matrix_dev->mdevs_lock);
2366 
2367 		do_remove |= bitmap_and(aprem, ap_remove,
2368 					  matrix_mdev->matrix.apm,
2369 					  AP_DEVICES);
2370 		do_remove |= bitmap_and(aqrem, aq_remove,
2371 					  matrix_mdev->matrix.aqm,
2372 					  AP_DOMAINS);
2373 		do_remove |= bitmap_andnot(cdrem, cd_remove,
2374 					     matrix_mdev->matrix.adm,
2375 					     AP_DOMAINS);
2376 
2377 		if (do_remove)
2378 			vfio_ap_mdev_hot_unplug_cfg(matrix_mdev, aprem, aqrem,
2379 						    cdrem);
2380 
2381 		mutex_unlock(&matrix_dev->mdevs_lock);
2382 		mutex_unlock(&matrix_mdev->kvm->lock);
2383 	}
2384 }
2385 
2386 /**
2387  * vfio_ap_mdev_on_cfg_remove - responds to the removal of adapters, domains and
2388  *				control domains from the host AP configuration
2389  *				by unplugging them from the guests that are
2390  *				using them.
2391  * @cur_config_info: the current host AP configuration information
2392  * @prev_config_info: the previous host AP configuration information
2393  */
vfio_ap_mdev_on_cfg_remove(struct ap_config_info * cur_config_info,struct ap_config_info * prev_config_info)2394 static void vfio_ap_mdev_on_cfg_remove(struct ap_config_info *cur_config_info,
2395 				       struct ap_config_info *prev_config_info)
2396 {
2397 	int do_remove;
2398 	DECLARE_BITMAP(aprem, AP_DEVICES);
2399 	DECLARE_BITMAP(aqrem, AP_DOMAINS);
2400 	DECLARE_BITMAP(cdrem, AP_DOMAINS);
2401 
2402 	do_remove = bitmap_andnot(aprem,
2403 				  (unsigned long *)prev_config_info->apm,
2404 				  (unsigned long *)cur_config_info->apm,
2405 				  AP_DEVICES);
2406 	do_remove |= bitmap_andnot(aqrem,
2407 				   (unsigned long *)prev_config_info->aqm,
2408 				   (unsigned long *)cur_config_info->aqm,
2409 				   AP_DEVICES);
2410 	do_remove |= bitmap_andnot(cdrem,
2411 				   (unsigned long *)prev_config_info->adm,
2412 				   (unsigned long *)cur_config_info->adm,
2413 				   AP_DEVICES);
2414 
2415 	if (do_remove)
2416 		vfio_ap_mdev_cfg_remove(aprem, aqrem, cdrem);
2417 }
2418 
2419 /**
2420  * vfio_ap_filter_apid_by_qtype: filter APIDs from an AP mask for adapters that
2421  *				 are older than AP type 10 (CEX4).
2422  * @apm: a bitmap of the APIDs to examine
2423  * @aqm: a bitmap of the APQIs of the queues to query for the AP type.
2424  */
vfio_ap_filter_apid_by_qtype(unsigned long * apm,unsigned long * aqm)2425 static void vfio_ap_filter_apid_by_qtype(unsigned long *apm, unsigned long *aqm)
2426 {
2427 	bool apid_cleared;
2428 	struct ap_queue_status status;
2429 	unsigned long apid, apqi;
2430 	struct ap_tapq_gr2 info;
2431 
2432 	for_each_set_bit_inv(apid, apm, AP_DEVICES) {
2433 		apid_cleared = false;
2434 
2435 		for_each_set_bit_inv(apqi, aqm, AP_DOMAINS) {
2436 			status = ap_test_queue(AP_MKQID(apid, apqi), 1, &info);
2437 			switch (status.response_code) {
2438 			/*
2439 			 * According to the architecture in each case
2440 			 * below, the queue's info should be filled.
2441 			 */
2442 			case AP_RESPONSE_NORMAL:
2443 			case AP_RESPONSE_RESET_IN_PROGRESS:
2444 			case AP_RESPONSE_DECONFIGURED:
2445 			case AP_RESPONSE_CHECKSTOPPED:
2446 			case AP_RESPONSE_BUSY:
2447 				/*
2448 				 * The vfio_ap device driver only
2449 				 * supports CEX4 and newer adapters, so
2450 				 * remove the APID if the adapter is
2451 				 * older than a CEX4.
2452 				 */
2453 				if (info.at < AP_DEVICE_TYPE_CEX4) {
2454 					clear_bit_inv(apid, apm);
2455 					apid_cleared = true;
2456 				}
2457 
2458 				break;
2459 
2460 			default:
2461 				/*
2462 				 * If we don't know the adapter type,
2463 				 * clear its APID since it can't be
2464 				 * determined whether the vfio_ap
2465 				 * device driver supports it.
2466 				 */
2467 				clear_bit_inv(apid, apm);
2468 				apid_cleared = true;
2469 				break;
2470 			}
2471 
2472 			/*
2473 			 * If we've already cleared the APID from the apm, there
2474 			 * is no need to continue examining the remainin AP
2475 			 * queues to determine the type of the adapter.
2476 			 */
2477 			if (apid_cleared)
2478 				continue;
2479 		}
2480 	}
2481 }
2482 
2483 /**
2484  * vfio_ap_mdev_cfg_add - store bitmaps specifying the adapters, domains and
2485  *			  control domains that have been added to the host's
2486  *			  AP configuration for each matrix mdev to which they
2487  *			  are assigned.
2488  *
2489  * @apm_add: a bitmap specifying the adapters that have been added to the AP
2490  *	     configuration.
2491  * @aqm_add: a bitmap specifying the domains that have been added to the AP
2492  *	     configuration.
2493  * @adm_add: a bitmap specifying the control domains that have been added to the
2494  *	     AP configuration.
2495  */
vfio_ap_mdev_cfg_add(unsigned long * apm_add,unsigned long * aqm_add,unsigned long * adm_add)2496 static void vfio_ap_mdev_cfg_add(unsigned long *apm_add, unsigned long *aqm_add,
2497 				 unsigned long *adm_add)
2498 {
2499 	struct ap_matrix_mdev *matrix_mdev;
2500 
2501 	if (list_empty(&matrix_dev->mdev_list))
2502 		return;
2503 
2504 	vfio_ap_filter_apid_by_qtype(apm_add, aqm_add);
2505 
2506 	list_for_each_entry(matrix_mdev, &matrix_dev->mdev_list, node) {
2507 		bitmap_and(matrix_mdev->apm_add,
2508 			   matrix_mdev->matrix.apm, apm_add, AP_DEVICES);
2509 		bitmap_and(matrix_mdev->aqm_add,
2510 			   matrix_mdev->matrix.aqm, aqm_add, AP_DOMAINS);
2511 		bitmap_and(matrix_mdev->adm_add,
2512 			   matrix_mdev->matrix.adm, adm_add, AP_DEVICES);
2513 	}
2514 }
2515 
2516 /**
2517  * vfio_ap_mdev_on_cfg_add - responds to the addition of adapters, domains and
2518  *			     control domains to the host AP configuration
2519  *			     by updating the bitmaps that specify what adapters,
2520  *			     domains and control domains have been added so they
2521  *			     can be hot plugged into the guest when the AP bus
2522  *			     scan completes (see vfio_ap_on_scan_complete
2523  *			     function).
2524  * @cur_config_info: the current AP configuration information
2525  * @prev_config_info: the previous AP configuration information
2526  */
vfio_ap_mdev_on_cfg_add(struct ap_config_info * cur_config_info,struct ap_config_info * prev_config_info)2527 static void vfio_ap_mdev_on_cfg_add(struct ap_config_info *cur_config_info,
2528 				    struct ap_config_info *prev_config_info)
2529 {
2530 	bool do_add;
2531 	DECLARE_BITMAP(apm_add, AP_DEVICES);
2532 	DECLARE_BITMAP(aqm_add, AP_DOMAINS);
2533 	DECLARE_BITMAP(adm_add, AP_DOMAINS);
2534 
2535 	do_add = bitmap_andnot(apm_add,
2536 			       (unsigned long *)cur_config_info->apm,
2537 			       (unsigned long *)prev_config_info->apm,
2538 			       AP_DEVICES);
2539 	do_add |= bitmap_andnot(aqm_add,
2540 				(unsigned long *)cur_config_info->aqm,
2541 				(unsigned long *)prev_config_info->aqm,
2542 				AP_DOMAINS);
2543 	do_add |= bitmap_andnot(adm_add,
2544 				(unsigned long *)cur_config_info->adm,
2545 				(unsigned long *)prev_config_info->adm,
2546 				AP_DOMAINS);
2547 
2548 	if (do_add)
2549 		vfio_ap_mdev_cfg_add(apm_add, aqm_add, adm_add);
2550 }
2551 
2552 /**
2553  * vfio_ap_on_cfg_changed - handles notification of changes to the host AP
2554  *			    configuration.
2555  *
2556  * @cur_cfg_info: the current host AP configuration
2557  * @prev_cfg_info: the previous host AP configuration
2558  */
vfio_ap_on_cfg_changed(struct ap_config_info * cur_cfg_info,struct ap_config_info * prev_cfg_info)2559 void vfio_ap_on_cfg_changed(struct ap_config_info *cur_cfg_info,
2560 			    struct ap_config_info *prev_cfg_info)
2561 {
2562 	if (!cur_cfg_info || !prev_cfg_info)
2563 		return;
2564 
2565 	mutex_lock(&matrix_dev->guests_lock);
2566 
2567 	vfio_ap_mdev_on_cfg_remove(cur_cfg_info, prev_cfg_info);
2568 	vfio_ap_mdev_on_cfg_add(cur_cfg_info, prev_cfg_info);
2569 	memcpy(&matrix_dev->info, cur_cfg_info, sizeof(*cur_cfg_info));
2570 
2571 	mutex_unlock(&matrix_dev->guests_lock);
2572 }
2573 
vfio_ap_mdev_hot_plug_cfg(struct ap_matrix_mdev * matrix_mdev)2574 static void vfio_ap_mdev_hot_plug_cfg(struct ap_matrix_mdev *matrix_mdev)
2575 {
2576 	DECLARE_BITMAP(apm_filtered, AP_DEVICES);
2577 	bool filter_domains, filter_adapters, filter_cdoms, do_hotplug = false;
2578 
2579 	mutex_lock(&matrix_mdev->kvm->lock);
2580 	mutex_lock(&matrix_dev->mdevs_lock);
2581 
2582 	filter_adapters = bitmap_intersects(matrix_mdev->matrix.apm,
2583 					    matrix_mdev->apm_add, AP_DEVICES);
2584 	filter_domains = bitmap_intersects(matrix_mdev->matrix.aqm,
2585 					   matrix_mdev->aqm_add, AP_DOMAINS);
2586 	filter_cdoms = bitmap_intersects(matrix_mdev->matrix.adm,
2587 					 matrix_mdev->adm_add, AP_DOMAINS);
2588 
2589 	if (filter_adapters || filter_domains)
2590 		do_hotplug = vfio_ap_mdev_filter_matrix(matrix_mdev, apm_filtered);
2591 
2592 	if (filter_cdoms)
2593 		do_hotplug |= vfio_ap_mdev_filter_cdoms(matrix_mdev);
2594 
2595 	if (do_hotplug)
2596 		vfio_ap_mdev_update_guest_apcb(matrix_mdev);
2597 
2598 	reset_queues_for_apids(matrix_mdev, apm_filtered);
2599 
2600 	mutex_unlock(&matrix_dev->mdevs_lock);
2601 	mutex_unlock(&matrix_mdev->kvm->lock);
2602 }
2603 
vfio_ap_on_scan_complete(struct ap_config_info * new_config_info,struct ap_config_info * old_config_info)2604 void vfio_ap_on_scan_complete(struct ap_config_info *new_config_info,
2605 			      struct ap_config_info *old_config_info)
2606 {
2607 	struct ap_matrix_mdev *matrix_mdev;
2608 
2609 	mutex_lock(&matrix_dev->guests_lock);
2610 
2611 	list_for_each_entry(matrix_mdev, &matrix_dev->mdev_list, node) {
2612 		if (bitmap_empty(matrix_mdev->apm_add, AP_DEVICES) &&
2613 		    bitmap_empty(matrix_mdev->aqm_add, AP_DOMAINS) &&
2614 		    bitmap_empty(matrix_mdev->adm_add, AP_DOMAINS))
2615 			continue;
2616 
2617 		vfio_ap_mdev_hot_plug_cfg(matrix_mdev);
2618 		bitmap_clear(matrix_mdev->apm_add, 0, AP_DEVICES);
2619 		bitmap_clear(matrix_mdev->aqm_add, 0, AP_DOMAINS);
2620 		bitmap_clear(matrix_mdev->adm_add, 0, AP_DOMAINS);
2621 	}
2622 
2623 	mutex_unlock(&matrix_dev->guests_lock);
2624 }
2625