xref: /openbmc/linux/arch/x86/kvm/svm/sev.c (revision 83f865d7)
1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3  * Kernel-based Virtual Machine driver for Linux
4  *
5  * AMD SVM-SEV support
6  *
7  * Copyright 2010 Red Hat, Inc. and/or its affiliates.
8  */
9 
10 #include <linux/kvm_types.h>
11 #include <linux/kvm_host.h>
12 #include <linux/kernel.h>
13 #include <linux/highmem.h>
14 #include <linux/psp-sev.h>
15 #include <linux/pagemap.h>
16 #include <linux/swap.h>
17 
18 #include "x86.h"
19 #include "svm.h"
20 
21 static int sev_flush_asids(void);
22 static DECLARE_RWSEM(sev_deactivate_lock);
23 static DEFINE_MUTEX(sev_bitmap_lock);
24 unsigned int max_sev_asid;
25 static unsigned int min_sev_asid;
26 static unsigned long *sev_asid_bitmap;
27 static unsigned long *sev_reclaim_asid_bitmap;
28 #define __sme_page_pa(x) __sme_set(page_to_pfn(x) << PAGE_SHIFT)
29 
30 struct enc_region {
31 	struct list_head list;
32 	unsigned long npages;
33 	struct page **pages;
34 	unsigned long uaddr;
35 	unsigned long size;
36 };
37 
38 static int sev_flush_asids(void)
39 {
40 	int ret, error = 0;
41 
42 	/*
43 	 * DEACTIVATE will clear the WBINVD indicator causing DF_FLUSH to fail,
44 	 * so it must be guarded.
45 	 */
46 	down_write(&sev_deactivate_lock);
47 
48 	wbinvd_on_all_cpus();
49 	ret = sev_guest_df_flush(&error);
50 
51 	up_write(&sev_deactivate_lock);
52 
53 	if (ret)
54 		pr_err("SEV: DF_FLUSH failed, ret=%d, error=%#x\n", ret, error);
55 
56 	return ret;
57 }
58 
59 /* Must be called with the sev_bitmap_lock held */
60 static bool __sev_recycle_asids(void)
61 {
62 	int pos;
63 
64 	/* Check if there are any ASIDs to reclaim before performing a flush */
65 	pos = find_next_bit(sev_reclaim_asid_bitmap,
66 			    max_sev_asid, min_sev_asid - 1);
67 	if (pos >= max_sev_asid)
68 		return false;
69 
70 	if (sev_flush_asids())
71 		return false;
72 
73 	bitmap_xor(sev_asid_bitmap, sev_asid_bitmap, sev_reclaim_asid_bitmap,
74 		   max_sev_asid);
75 	bitmap_zero(sev_reclaim_asid_bitmap, max_sev_asid);
76 
77 	return true;
78 }
79 
80 static int sev_asid_new(void)
81 {
82 	bool retry = true;
83 	int pos;
84 
85 	mutex_lock(&sev_bitmap_lock);
86 
87 	/*
88 	 * SEV-enabled guest must use asid from min_sev_asid to max_sev_asid.
89 	 */
90 again:
91 	pos = find_next_zero_bit(sev_asid_bitmap, max_sev_asid, min_sev_asid - 1);
92 	if (pos >= max_sev_asid) {
93 		if (retry && __sev_recycle_asids()) {
94 			retry = false;
95 			goto again;
96 		}
97 		mutex_unlock(&sev_bitmap_lock);
98 		return -EBUSY;
99 	}
100 
101 	__set_bit(pos, sev_asid_bitmap);
102 
103 	mutex_unlock(&sev_bitmap_lock);
104 
105 	return pos + 1;
106 }
107 
108 static int sev_get_asid(struct kvm *kvm)
109 {
110 	struct kvm_sev_info *sev = &to_kvm_svm(kvm)->sev_info;
111 
112 	return sev->asid;
113 }
114 
115 static void sev_asid_free(int asid)
116 {
117 	struct svm_cpu_data *sd;
118 	int cpu, pos;
119 
120 	mutex_lock(&sev_bitmap_lock);
121 
122 	pos = asid - 1;
123 	__set_bit(pos, sev_reclaim_asid_bitmap);
124 
125 	for_each_possible_cpu(cpu) {
126 		sd = per_cpu(svm_data, cpu);
127 		sd->sev_vmcbs[pos] = NULL;
128 	}
129 
130 	mutex_unlock(&sev_bitmap_lock);
131 }
132 
133 static void sev_unbind_asid(struct kvm *kvm, unsigned int handle)
134 {
135 	struct sev_data_decommission *decommission;
136 	struct sev_data_deactivate *data;
137 
138 	if (!handle)
139 		return;
140 
141 	data = kzalloc(sizeof(*data), GFP_KERNEL);
142 	if (!data)
143 		return;
144 
145 	/* deactivate handle */
146 	data->handle = handle;
147 
148 	/* Guard DEACTIVATE against WBINVD/DF_FLUSH used in ASID recycling */
149 	down_read(&sev_deactivate_lock);
150 	sev_guest_deactivate(data, NULL);
151 	up_read(&sev_deactivate_lock);
152 
153 	kfree(data);
154 
155 	decommission = kzalloc(sizeof(*decommission), GFP_KERNEL);
156 	if (!decommission)
157 		return;
158 
159 	/* decommission handle */
160 	decommission->handle = handle;
161 	sev_guest_decommission(decommission, NULL);
162 
163 	kfree(decommission);
164 }
165 
166 static int sev_guest_init(struct kvm *kvm, struct kvm_sev_cmd *argp)
167 {
168 	struct kvm_sev_info *sev = &to_kvm_svm(kvm)->sev_info;
169 	int asid, ret;
170 
171 	ret = -EBUSY;
172 	if (unlikely(sev->active))
173 		return ret;
174 
175 	asid = sev_asid_new();
176 	if (asid < 0)
177 		return ret;
178 
179 	ret = sev_platform_init(&argp->error);
180 	if (ret)
181 		goto e_free;
182 
183 	sev->active = true;
184 	sev->asid = asid;
185 	INIT_LIST_HEAD(&sev->regions_list);
186 
187 	return 0;
188 
189 e_free:
190 	sev_asid_free(asid);
191 	return ret;
192 }
193 
194 static int sev_bind_asid(struct kvm *kvm, unsigned int handle, int *error)
195 {
196 	struct sev_data_activate *data;
197 	int asid = sev_get_asid(kvm);
198 	int ret;
199 
200 	data = kzalloc(sizeof(*data), GFP_KERNEL_ACCOUNT);
201 	if (!data)
202 		return -ENOMEM;
203 
204 	/* activate ASID on the given handle */
205 	data->handle = handle;
206 	data->asid   = asid;
207 	ret = sev_guest_activate(data, error);
208 	kfree(data);
209 
210 	return ret;
211 }
212 
213 static int __sev_issue_cmd(int fd, int id, void *data, int *error)
214 {
215 	struct fd f;
216 	int ret;
217 
218 	f = fdget(fd);
219 	if (!f.file)
220 		return -EBADF;
221 
222 	ret = sev_issue_cmd_external_user(f.file, id, data, error);
223 
224 	fdput(f);
225 	return ret;
226 }
227 
228 static int sev_issue_cmd(struct kvm *kvm, int id, void *data, int *error)
229 {
230 	struct kvm_sev_info *sev = &to_kvm_svm(kvm)->sev_info;
231 
232 	return __sev_issue_cmd(sev->fd, id, data, error);
233 }
234 
235 static int sev_launch_start(struct kvm *kvm, struct kvm_sev_cmd *argp)
236 {
237 	struct kvm_sev_info *sev = &to_kvm_svm(kvm)->sev_info;
238 	struct sev_data_launch_start *start;
239 	struct kvm_sev_launch_start params;
240 	void *dh_blob, *session_blob;
241 	int *error = &argp->error;
242 	int ret;
243 
244 	if (!sev_guest(kvm))
245 		return -ENOTTY;
246 
247 	if (copy_from_user(&params, (void __user *)(uintptr_t)argp->data, sizeof(params)))
248 		return -EFAULT;
249 
250 	start = kzalloc(sizeof(*start), GFP_KERNEL_ACCOUNT);
251 	if (!start)
252 		return -ENOMEM;
253 
254 	dh_blob = NULL;
255 	if (params.dh_uaddr) {
256 		dh_blob = psp_copy_user_blob(params.dh_uaddr, params.dh_len);
257 		if (IS_ERR(dh_blob)) {
258 			ret = PTR_ERR(dh_blob);
259 			goto e_free;
260 		}
261 
262 		start->dh_cert_address = __sme_set(__pa(dh_blob));
263 		start->dh_cert_len = params.dh_len;
264 	}
265 
266 	session_blob = NULL;
267 	if (params.session_uaddr) {
268 		session_blob = psp_copy_user_blob(params.session_uaddr, params.session_len);
269 		if (IS_ERR(session_blob)) {
270 			ret = PTR_ERR(session_blob);
271 			goto e_free_dh;
272 		}
273 
274 		start->session_address = __sme_set(__pa(session_blob));
275 		start->session_len = params.session_len;
276 	}
277 
278 	start->handle = params.handle;
279 	start->policy = params.policy;
280 
281 	/* create memory encryption context */
282 	ret = __sev_issue_cmd(argp->sev_fd, SEV_CMD_LAUNCH_START, start, error);
283 	if (ret)
284 		goto e_free_session;
285 
286 	/* Bind ASID to this guest */
287 	ret = sev_bind_asid(kvm, start->handle, error);
288 	if (ret)
289 		goto e_free_session;
290 
291 	/* return handle to userspace */
292 	params.handle = start->handle;
293 	if (copy_to_user((void __user *)(uintptr_t)argp->data, &params, sizeof(params))) {
294 		sev_unbind_asid(kvm, start->handle);
295 		ret = -EFAULT;
296 		goto e_free_session;
297 	}
298 
299 	sev->handle = start->handle;
300 	sev->fd = argp->sev_fd;
301 
302 e_free_session:
303 	kfree(session_blob);
304 e_free_dh:
305 	kfree(dh_blob);
306 e_free:
307 	kfree(start);
308 	return ret;
309 }
310 
311 static struct page **sev_pin_memory(struct kvm *kvm, unsigned long uaddr,
312 				    unsigned long ulen, unsigned long *n,
313 				    int write)
314 {
315 	struct kvm_sev_info *sev = &to_kvm_svm(kvm)->sev_info;
316 	unsigned long npages, size;
317 	int npinned;
318 	unsigned long locked, lock_limit;
319 	struct page **pages;
320 	unsigned long first, last;
321 	int ret;
322 
323 	if (ulen == 0 || uaddr + ulen < uaddr)
324 		return ERR_PTR(-EINVAL);
325 
326 	/* Calculate number of pages. */
327 	first = (uaddr & PAGE_MASK) >> PAGE_SHIFT;
328 	last = ((uaddr + ulen - 1) & PAGE_MASK) >> PAGE_SHIFT;
329 	npages = (last - first + 1);
330 
331 	locked = sev->pages_locked + npages;
332 	lock_limit = rlimit(RLIMIT_MEMLOCK) >> PAGE_SHIFT;
333 	if (locked > lock_limit && !capable(CAP_IPC_LOCK)) {
334 		pr_err("SEV: %lu locked pages exceed the lock limit of %lu.\n", locked, lock_limit);
335 		return ERR_PTR(-ENOMEM);
336 	}
337 
338 	if (WARN_ON_ONCE(npages > INT_MAX))
339 		return ERR_PTR(-EINVAL);
340 
341 	/* Avoid using vmalloc for smaller buffers. */
342 	size = npages * sizeof(struct page *);
343 	if (size > PAGE_SIZE)
344 		pages = __vmalloc(size, GFP_KERNEL_ACCOUNT | __GFP_ZERO);
345 	else
346 		pages = kmalloc(size, GFP_KERNEL_ACCOUNT);
347 
348 	if (!pages)
349 		return ERR_PTR(-ENOMEM);
350 
351 	/* Pin the user virtual address. */
352 	npinned = pin_user_pages_fast(uaddr, npages, write ? FOLL_WRITE : 0, pages);
353 	if (npinned != npages) {
354 		pr_err("SEV: Failure locking %lu pages.\n", npages);
355 		ret = -ENOMEM;
356 		goto err;
357 	}
358 
359 	*n = npages;
360 	sev->pages_locked = locked;
361 
362 	return pages;
363 
364 err:
365 	if (npinned > 0)
366 		unpin_user_pages(pages, npinned);
367 
368 	kvfree(pages);
369 	return ERR_PTR(ret);
370 }
371 
372 static void sev_unpin_memory(struct kvm *kvm, struct page **pages,
373 			     unsigned long npages)
374 {
375 	struct kvm_sev_info *sev = &to_kvm_svm(kvm)->sev_info;
376 
377 	unpin_user_pages(pages, npages);
378 	kvfree(pages);
379 	sev->pages_locked -= npages;
380 }
381 
382 static void sev_clflush_pages(struct page *pages[], unsigned long npages)
383 {
384 	uint8_t *page_virtual;
385 	unsigned long i;
386 
387 	if (this_cpu_has(X86_FEATURE_SME_COHERENT) || npages == 0 ||
388 	    pages == NULL)
389 		return;
390 
391 	for (i = 0; i < npages; i++) {
392 		page_virtual = kmap_atomic(pages[i]);
393 		clflush_cache_range(page_virtual, PAGE_SIZE);
394 		kunmap_atomic(page_virtual);
395 	}
396 }
397 
398 static unsigned long get_num_contig_pages(unsigned long idx,
399 				struct page **inpages, unsigned long npages)
400 {
401 	unsigned long paddr, next_paddr;
402 	unsigned long i = idx + 1, pages = 1;
403 
404 	/* find the number of contiguous pages starting from idx */
405 	paddr = __sme_page_pa(inpages[idx]);
406 	while (i < npages) {
407 		next_paddr = __sme_page_pa(inpages[i++]);
408 		if ((paddr + PAGE_SIZE) == next_paddr) {
409 			pages++;
410 			paddr = next_paddr;
411 			continue;
412 		}
413 		break;
414 	}
415 
416 	return pages;
417 }
418 
419 static int sev_launch_update_data(struct kvm *kvm, struct kvm_sev_cmd *argp)
420 {
421 	unsigned long vaddr, vaddr_end, next_vaddr, npages, pages, size, i;
422 	struct kvm_sev_info *sev = &to_kvm_svm(kvm)->sev_info;
423 	struct kvm_sev_launch_update_data params;
424 	struct sev_data_launch_update_data *data;
425 	struct page **inpages;
426 	int ret;
427 
428 	if (!sev_guest(kvm))
429 		return -ENOTTY;
430 
431 	if (copy_from_user(&params, (void __user *)(uintptr_t)argp->data, sizeof(params)))
432 		return -EFAULT;
433 
434 	data = kzalloc(sizeof(*data), GFP_KERNEL_ACCOUNT);
435 	if (!data)
436 		return -ENOMEM;
437 
438 	vaddr = params.uaddr;
439 	size = params.len;
440 	vaddr_end = vaddr + size;
441 
442 	/* Lock the user memory. */
443 	inpages = sev_pin_memory(kvm, vaddr, size, &npages, 1);
444 	if (IS_ERR(inpages)) {
445 		ret = PTR_ERR(inpages);
446 		goto e_free;
447 	}
448 
449 	/*
450 	 * Flush (on non-coherent CPUs) before LAUNCH_UPDATE encrypts pages in
451 	 * place; the cache may contain the data that was written unencrypted.
452 	 */
453 	sev_clflush_pages(inpages, npages);
454 
455 	for (i = 0; vaddr < vaddr_end; vaddr = next_vaddr, i += pages) {
456 		int offset, len;
457 
458 		/*
459 		 * If the user buffer is not page-aligned, calculate the offset
460 		 * within the page.
461 		 */
462 		offset = vaddr & (PAGE_SIZE - 1);
463 
464 		/* Calculate the number of pages that can be encrypted in one go. */
465 		pages = get_num_contig_pages(i, inpages, npages);
466 
467 		len = min_t(size_t, ((pages * PAGE_SIZE) - offset), size);
468 
469 		data->handle = sev->handle;
470 		data->len = len;
471 		data->address = __sme_page_pa(inpages[i]) + offset;
472 		ret = sev_issue_cmd(kvm, SEV_CMD_LAUNCH_UPDATE_DATA, data, &argp->error);
473 		if (ret)
474 			goto e_unpin;
475 
476 		size -= len;
477 		next_vaddr = vaddr + len;
478 	}
479 
480 e_unpin:
481 	/* content of memory is updated, mark pages dirty */
482 	for (i = 0; i < npages; i++) {
483 		set_page_dirty_lock(inpages[i]);
484 		mark_page_accessed(inpages[i]);
485 	}
486 	/* unlock the user pages */
487 	sev_unpin_memory(kvm, inpages, npages);
488 e_free:
489 	kfree(data);
490 	return ret;
491 }
492 
493 static int sev_launch_measure(struct kvm *kvm, struct kvm_sev_cmd *argp)
494 {
495 	void __user *measure = (void __user *)(uintptr_t)argp->data;
496 	struct kvm_sev_info *sev = &to_kvm_svm(kvm)->sev_info;
497 	struct sev_data_launch_measure *data;
498 	struct kvm_sev_launch_measure params;
499 	void __user *p = NULL;
500 	void *blob = NULL;
501 	int ret;
502 
503 	if (!sev_guest(kvm))
504 		return -ENOTTY;
505 
506 	if (copy_from_user(&params, measure, sizeof(params)))
507 		return -EFAULT;
508 
509 	data = kzalloc(sizeof(*data), GFP_KERNEL_ACCOUNT);
510 	if (!data)
511 		return -ENOMEM;
512 
513 	/* User wants to query the blob length */
514 	if (!params.len)
515 		goto cmd;
516 
517 	p = (void __user *)(uintptr_t)params.uaddr;
518 	if (p) {
519 		if (params.len > SEV_FW_BLOB_MAX_SIZE) {
520 			ret = -EINVAL;
521 			goto e_free;
522 		}
523 
524 		ret = -ENOMEM;
525 		blob = kmalloc(params.len, GFP_KERNEL);
526 		if (!blob)
527 			goto e_free;
528 
529 		data->address = __psp_pa(blob);
530 		data->len = params.len;
531 	}
532 
533 cmd:
534 	data->handle = sev->handle;
535 	ret = sev_issue_cmd(kvm, SEV_CMD_LAUNCH_MEASURE, data, &argp->error);
536 
537 	/*
538 	 * If we query the session length, FW responded with expected data.
539 	 */
540 	if (!params.len)
541 		goto done;
542 
543 	if (ret)
544 		goto e_free_blob;
545 
546 	if (blob) {
547 		if (copy_to_user(p, blob, params.len))
548 			ret = -EFAULT;
549 	}
550 
551 done:
552 	params.len = data->len;
553 	if (copy_to_user(measure, &params, sizeof(params)))
554 		ret = -EFAULT;
555 e_free_blob:
556 	kfree(blob);
557 e_free:
558 	kfree(data);
559 	return ret;
560 }
561 
562 static int sev_launch_finish(struct kvm *kvm, struct kvm_sev_cmd *argp)
563 {
564 	struct kvm_sev_info *sev = &to_kvm_svm(kvm)->sev_info;
565 	struct sev_data_launch_finish *data;
566 	int ret;
567 
568 	if (!sev_guest(kvm))
569 		return -ENOTTY;
570 
571 	data = kzalloc(sizeof(*data), GFP_KERNEL_ACCOUNT);
572 	if (!data)
573 		return -ENOMEM;
574 
575 	data->handle = sev->handle;
576 	ret = sev_issue_cmd(kvm, SEV_CMD_LAUNCH_FINISH, data, &argp->error);
577 
578 	kfree(data);
579 	return ret;
580 }
581 
582 static int sev_guest_status(struct kvm *kvm, struct kvm_sev_cmd *argp)
583 {
584 	struct kvm_sev_info *sev = &to_kvm_svm(kvm)->sev_info;
585 	struct kvm_sev_guest_status params;
586 	struct sev_data_guest_status *data;
587 	int ret;
588 
589 	if (!sev_guest(kvm))
590 		return -ENOTTY;
591 
592 	data = kzalloc(sizeof(*data), GFP_KERNEL_ACCOUNT);
593 	if (!data)
594 		return -ENOMEM;
595 
596 	data->handle = sev->handle;
597 	ret = sev_issue_cmd(kvm, SEV_CMD_GUEST_STATUS, data, &argp->error);
598 	if (ret)
599 		goto e_free;
600 
601 	params.policy = data->policy;
602 	params.state = data->state;
603 	params.handle = data->handle;
604 
605 	if (copy_to_user((void __user *)(uintptr_t)argp->data, &params, sizeof(params)))
606 		ret = -EFAULT;
607 e_free:
608 	kfree(data);
609 	return ret;
610 }
611 
612 static int __sev_issue_dbg_cmd(struct kvm *kvm, unsigned long src,
613 			       unsigned long dst, int size,
614 			       int *error, bool enc)
615 {
616 	struct kvm_sev_info *sev = &to_kvm_svm(kvm)->sev_info;
617 	struct sev_data_dbg *data;
618 	int ret;
619 
620 	data = kzalloc(sizeof(*data), GFP_KERNEL_ACCOUNT);
621 	if (!data)
622 		return -ENOMEM;
623 
624 	data->handle = sev->handle;
625 	data->dst_addr = dst;
626 	data->src_addr = src;
627 	data->len = size;
628 
629 	ret = sev_issue_cmd(kvm,
630 			    enc ? SEV_CMD_DBG_ENCRYPT : SEV_CMD_DBG_DECRYPT,
631 			    data, error);
632 	kfree(data);
633 	return ret;
634 }
635 
636 static int __sev_dbg_decrypt(struct kvm *kvm, unsigned long src_paddr,
637 			     unsigned long dst_paddr, int sz, int *err)
638 {
639 	int offset;
640 
641 	/*
642 	 * Its safe to read more than we are asked, caller should ensure that
643 	 * destination has enough space.
644 	 */
645 	src_paddr = round_down(src_paddr, 16);
646 	offset = src_paddr & 15;
647 	sz = round_up(sz + offset, 16);
648 
649 	return __sev_issue_dbg_cmd(kvm, src_paddr, dst_paddr, sz, err, false);
650 }
651 
652 static int __sev_dbg_decrypt_user(struct kvm *kvm, unsigned long paddr,
653 				  unsigned long __user dst_uaddr,
654 				  unsigned long dst_paddr,
655 				  int size, int *err)
656 {
657 	struct page *tpage = NULL;
658 	int ret, offset;
659 
660 	/* if inputs are not 16-byte then use intermediate buffer */
661 	if (!IS_ALIGNED(dst_paddr, 16) ||
662 	    !IS_ALIGNED(paddr,     16) ||
663 	    !IS_ALIGNED(size,      16)) {
664 		tpage = (void *)alloc_page(GFP_KERNEL);
665 		if (!tpage)
666 			return -ENOMEM;
667 
668 		dst_paddr = __sme_page_pa(tpage);
669 	}
670 
671 	ret = __sev_dbg_decrypt(kvm, paddr, dst_paddr, size, err);
672 	if (ret)
673 		goto e_free;
674 
675 	if (tpage) {
676 		offset = paddr & 15;
677 		if (copy_to_user((void __user *)(uintptr_t)dst_uaddr,
678 				 page_address(tpage) + offset, size))
679 			ret = -EFAULT;
680 	}
681 
682 e_free:
683 	if (tpage)
684 		__free_page(tpage);
685 
686 	return ret;
687 }
688 
689 static int __sev_dbg_encrypt_user(struct kvm *kvm, unsigned long paddr,
690 				  unsigned long __user vaddr,
691 				  unsigned long dst_paddr,
692 				  unsigned long __user dst_vaddr,
693 				  int size, int *error)
694 {
695 	struct page *src_tpage = NULL;
696 	struct page *dst_tpage = NULL;
697 	int ret, len = size;
698 
699 	/* If source buffer is not aligned then use an intermediate buffer */
700 	if (!IS_ALIGNED(vaddr, 16)) {
701 		src_tpage = alloc_page(GFP_KERNEL);
702 		if (!src_tpage)
703 			return -ENOMEM;
704 
705 		if (copy_from_user(page_address(src_tpage),
706 				(void __user *)(uintptr_t)vaddr, size)) {
707 			__free_page(src_tpage);
708 			return -EFAULT;
709 		}
710 
711 		paddr = __sme_page_pa(src_tpage);
712 	}
713 
714 	/*
715 	 *  If destination buffer or length is not aligned then do read-modify-write:
716 	 *   - decrypt destination in an intermediate buffer
717 	 *   - copy the source buffer in an intermediate buffer
718 	 *   - use the intermediate buffer as source buffer
719 	 */
720 	if (!IS_ALIGNED(dst_vaddr, 16) || !IS_ALIGNED(size, 16)) {
721 		int dst_offset;
722 
723 		dst_tpage = alloc_page(GFP_KERNEL);
724 		if (!dst_tpage) {
725 			ret = -ENOMEM;
726 			goto e_free;
727 		}
728 
729 		ret = __sev_dbg_decrypt(kvm, dst_paddr,
730 					__sme_page_pa(dst_tpage), size, error);
731 		if (ret)
732 			goto e_free;
733 
734 		/*
735 		 *  If source is kernel buffer then use memcpy() otherwise
736 		 *  copy_from_user().
737 		 */
738 		dst_offset = dst_paddr & 15;
739 
740 		if (src_tpage)
741 			memcpy(page_address(dst_tpage) + dst_offset,
742 			       page_address(src_tpage), size);
743 		else {
744 			if (copy_from_user(page_address(dst_tpage) + dst_offset,
745 					   (void __user *)(uintptr_t)vaddr, size)) {
746 				ret = -EFAULT;
747 				goto e_free;
748 			}
749 		}
750 
751 		paddr = __sme_page_pa(dst_tpage);
752 		dst_paddr = round_down(dst_paddr, 16);
753 		len = round_up(size, 16);
754 	}
755 
756 	ret = __sev_issue_dbg_cmd(kvm, paddr, dst_paddr, len, error, true);
757 
758 e_free:
759 	if (src_tpage)
760 		__free_page(src_tpage);
761 	if (dst_tpage)
762 		__free_page(dst_tpage);
763 	return ret;
764 }
765 
766 static int sev_dbg_crypt(struct kvm *kvm, struct kvm_sev_cmd *argp, bool dec)
767 {
768 	unsigned long vaddr, vaddr_end, next_vaddr;
769 	unsigned long dst_vaddr;
770 	struct page **src_p, **dst_p;
771 	struct kvm_sev_dbg debug;
772 	unsigned long n;
773 	unsigned int size;
774 	int ret;
775 
776 	if (!sev_guest(kvm))
777 		return -ENOTTY;
778 
779 	if (copy_from_user(&debug, (void __user *)(uintptr_t)argp->data, sizeof(debug)))
780 		return -EFAULT;
781 
782 	if (!debug.len || debug.src_uaddr + debug.len < debug.src_uaddr)
783 		return -EINVAL;
784 	if (!debug.dst_uaddr)
785 		return -EINVAL;
786 
787 	vaddr = debug.src_uaddr;
788 	size = debug.len;
789 	vaddr_end = vaddr + size;
790 	dst_vaddr = debug.dst_uaddr;
791 
792 	for (; vaddr < vaddr_end; vaddr = next_vaddr) {
793 		int len, s_off, d_off;
794 
795 		/* lock userspace source and destination page */
796 		src_p = sev_pin_memory(kvm, vaddr & PAGE_MASK, PAGE_SIZE, &n, 0);
797 		if (IS_ERR(src_p))
798 			return PTR_ERR(src_p);
799 
800 		dst_p = sev_pin_memory(kvm, dst_vaddr & PAGE_MASK, PAGE_SIZE, &n, 1);
801 		if (IS_ERR(dst_p)) {
802 			sev_unpin_memory(kvm, src_p, n);
803 			return PTR_ERR(dst_p);
804 		}
805 
806 		/*
807 		 * Flush (on non-coherent CPUs) before DBG_{DE,EN}CRYPT read or modify
808 		 * the pages; flush the destination too so that future accesses do not
809 		 * see stale data.
810 		 */
811 		sev_clflush_pages(src_p, 1);
812 		sev_clflush_pages(dst_p, 1);
813 
814 		/*
815 		 * Since user buffer may not be page aligned, calculate the
816 		 * offset within the page.
817 		 */
818 		s_off = vaddr & ~PAGE_MASK;
819 		d_off = dst_vaddr & ~PAGE_MASK;
820 		len = min_t(size_t, (PAGE_SIZE - s_off), size);
821 
822 		if (dec)
823 			ret = __sev_dbg_decrypt_user(kvm,
824 						     __sme_page_pa(src_p[0]) + s_off,
825 						     dst_vaddr,
826 						     __sme_page_pa(dst_p[0]) + d_off,
827 						     len, &argp->error);
828 		else
829 			ret = __sev_dbg_encrypt_user(kvm,
830 						     __sme_page_pa(src_p[0]) + s_off,
831 						     vaddr,
832 						     __sme_page_pa(dst_p[0]) + d_off,
833 						     dst_vaddr,
834 						     len, &argp->error);
835 
836 		sev_unpin_memory(kvm, src_p, n);
837 		sev_unpin_memory(kvm, dst_p, n);
838 
839 		if (ret)
840 			goto err;
841 
842 		next_vaddr = vaddr + len;
843 		dst_vaddr = dst_vaddr + len;
844 		size -= len;
845 	}
846 err:
847 	return ret;
848 }
849 
850 static int sev_launch_secret(struct kvm *kvm, struct kvm_sev_cmd *argp)
851 {
852 	struct kvm_sev_info *sev = &to_kvm_svm(kvm)->sev_info;
853 	struct sev_data_launch_secret *data;
854 	struct kvm_sev_launch_secret params;
855 	struct page **pages;
856 	void *blob, *hdr;
857 	unsigned long n, i;
858 	int ret, offset;
859 
860 	if (!sev_guest(kvm))
861 		return -ENOTTY;
862 
863 	if (copy_from_user(&params, (void __user *)(uintptr_t)argp->data, sizeof(params)))
864 		return -EFAULT;
865 
866 	pages = sev_pin_memory(kvm, params.guest_uaddr, params.guest_len, &n, 1);
867 	if (IS_ERR(pages))
868 		return PTR_ERR(pages);
869 
870 	/*
871 	 * Flush (on non-coherent CPUs) before LAUNCH_SECRET encrypts pages in
872 	 * place; the cache may contain the data that was written unencrypted.
873 	 */
874 	sev_clflush_pages(pages, n);
875 
876 	/*
877 	 * The secret must be copied into contiguous memory region, lets verify
878 	 * that userspace memory pages are contiguous before we issue command.
879 	 */
880 	if (get_num_contig_pages(0, pages, n) != n) {
881 		ret = -EINVAL;
882 		goto e_unpin_memory;
883 	}
884 
885 	ret = -ENOMEM;
886 	data = kzalloc(sizeof(*data), GFP_KERNEL_ACCOUNT);
887 	if (!data)
888 		goto e_unpin_memory;
889 
890 	offset = params.guest_uaddr & (PAGE_SIZE - 1);
891 	data->guest_address = __sme_page_pa(pages[0]) + offset;
892 	data->guest_len = params.guest_len;
893 
894 	blob = psp_copy_user_blob(params.trans_uaddr, params.trans_len);
895 	if (IS_ERR(blob)) {
896 		ret = PTR_ERR(blob);
897 		goto e_free;
898 	}
899 
900 	data->trans_address = __psp_pa(blob);
901 	data->trans_len = params.trans_len;
902 
903 	hdr = psp_copy_user_blob(params.hdr_uaddr, params.hdr_len);
904 	if (IS_ERR(hdr)) {
905 		ret = PTR_ERR(hdr);
906 		goto e_free_blob;
907 	}
908 	data->hdr_address = __psp_pa(hdr);
909 	data->hdr_len = params.hdr_len;
910 
911 	data->handle = sev->handle;
912 	ret = sev_issue_cmd(kvm, SEV_CMD_LAUNCH_UPDATE_SECRET, data, &argp->error);
913 
914 	kfree(hdr);
915 
916 e_free_blob:
917 	kfree(blob);
918 e_free:
919 	kfree(data);
920 e_unpin_memory:
921 	/* content of memory is updated, mark pages dirty */
922 	for (i = 0; i < n; i++) {
923 		set_page_dirty_lock(pages[i]);
924 		mark_page_accessed(pages[i]);
925 	}
926 	sev_unpin_memory(kvm, pages, n);
927 	return ret;
928 }
929 
930 int svm_mem_enc_op(struct kvm *kvm, void __user *argp)
931 {
932 	struct kvm_sev_cmd sev_cmd;
933 	int r;
934 
935 	if (!svm_sev_enabled())
936 		return -ENOTTY;
937 
938 	if (!argp)
939 		return 0;
940 
941 	if (copy_from_user(&sev_cmd, argp, sizeof(struct kvm_sev_cmd)))
942 		return -EFAULT;
943 
944 	mutex_lock(&kvm->lock);
945 
946 	switch (sev_cmd.id) {
947 	case KVM_SEV_INIT:
948 		r = sev_guest_init(kvm, &sev_cmd);
949 		break;
950 	case KVM_SEV_LAUNCH_START:
951 		r = sev_launch_start(kvm, &sev_cmd);
952 		break;
953 	case KVM_SEV_LAUNCH_UPDATE_DATA:
954 		r = sev_launch_update_data(kvm, &sev_cmd);
955 		break;
956 	case KVM_SEV_LAUNCH_MEASURE:
957 		r = sev_launch_measure(kvm, &sev_cmd);
958 		break;
959 	case KVM_SEV_LAUNCH_FINISH:
960 		r = sev_launch_finish(kvm, &sev_cmd);
961 		break;
962 	case KVM_SEV_GUEST_STATUS:
963 		r = sev_guest_status(kvm, &sev_cmd);
964 		break;
965 	case KVM_SEV_DBG_DECRYPT:
966 		r = sev_dbg_crypt(kvm, &sev_cmd, true);
967 		break;
968 	case KVM_SEV_DBG_ENCRYPT:
969 		r = sev_dbg_crypt(kvm, &sev_cmd, false);
970 		break;
971 	case KVM_SEV_LAUNCH_SECRET:
972 		r = sev_launch_secret(kvm, &sev_cmd);
973 		break;
974 	default:
975 		r = -EINVAL;
976 		goto out;
977 	}
978 
979 	if (copy_to_user(argp, &sev_cmd, sizeof(struct kvm_sev_cmd)))
980 		r = -EFAULT;
981 
982 out:
983 	mutex_unlock(&kvm->lock);
984 	return r;
985 }
986 
987 int svm_register_enc_region(struct kvm *kvm,
988 			    struct kvm_enc_region *range)
989 {
990 	struct kvm_sev_info *sev = &to_kvm_svm(kvm)->sev_info;
991 	struct enc_region *region;
992 	int ret = 0;
993 
994 	if (!sev_guest(kvm))
995 		return -ENOTTY;
996 
997 	if (range->addr > ULONG_MAX || range->size > ULONG_MAX)
998 		return -EINVAL;
999 
1000 	region = kzalloc(sizeof(*region), GFP_KERNEL_ACCOUNT);
1001 	if (!region)
1002 		return -ENOMEM;
1003 
1004 	region->pages = sev_pin_memory(kvm, range->addr, range->size, &region->npages, 1);
1005 	if (IS_ERR(region->pages)) {
1006 		ret = PTR_ERR(region->pages);
1007 		goto e_free;
1008 	}
1009 
1010 	/*
1011 	 * The guest may change the memory encryption attribute from C=0 -> C=1
1012 	 * or vice versa for this memory range. Lets make sure caches are
1013 	 * flushed to ensure that guest data gets written into memory with
1014 	 * correct C-bit.
1015 	 */
1016 	sev_clflush_pages(region->pages, region->npages);
1017 
1018 	region->uaddr = range->addr;
1019 	region->size = range->size;
1020 
1021 	mutex_lock(&kvm->lock);
1022 	list_add_tail(&region->list, &sev->regions_list);
1023 	mutex_unlock(&kvm->lock);
1024 
1025 	return ret;
1026 
1027 e_free:
1028 	kfree(region);
1029 	return ret;
1030 }
1031 
1032 static struct enc_region *
1033 find_enc_region(struct kvm *kvm, struct kvm_enc_region *range)
1034 {
1035 	struct kvm_sev_info *sev = &to_kvm_svm(kvm)->sev_info;
1036 	struct list_head *head = &sev->regions_list;
1037 	struct enc_region *i;
1038 
1039 	list_for_each_entry(i, head, list) {
1040 		if (i->uaddr == range->addr &&
1041 		    i->size == range->size)
1042 			return i;
1043 	}
1044 
1045 	return NULL;
1046 }
1047 
1048 static void __unregister_enc_region_locked(struct kvm *kvm,
1049 					   struct enc_region *region)
1050 {
1051 	sev_unpin_memory(kvm, region->pages, region->npages);
1052 	list_del(&region->list);
1053 	kfree(region);
1054 }
1055 
1056 int svm_unregister_enc_region(struct kvm *kvm,
1057 			      struct kvm_enc_region *range)
1058 {
1059 	struct enc_region *region;
1060 	int ret;
1061 
1062 	mutex_lock(&kvm->lock);
1063 
1064 	if (!sev_guest(kvm)) {
1065 		ret = -ENOTTY;
1066 		goto failed;
1067 	}
1068 
1069 	region = find_enc_region(kvm, range);
1070 	if (!region) {
1071 		ret = -EINVAL;
1072 		goto failed;
1073 	}
1074 
1075 	/*
1076 	 * Ensure that all guest tagged cache entries are flushed before
1077 	 * releasing the pages back to the system for use. CLFLUSH will
1078 	 * not do this, so issue a WBINVD.
1079 	 */
1080 	wbinvd_on_all_cpus();
1081 
1082 	__unregister_enc_region_locked(kvm, region);
1083 
1084 	mutex_unlock(&kvm->lock);
1085 	return 0;
1086 
1087 failed:
1088 	mutex_unlock(&kvm->lock);
1089 	return ret;
1090 }
1091 
1092 void sev_vm_destroy(struct kvm *kvm)
1093 {
1094 	struct kvm_sev_info *sev = &to_kvm_svm(kvm)->sev_info;
1095 	struct list_head *head = &sev->regions_list;
1096 	struct list_head *pos, *q;
1097 
1098 	if (!sev_guest(kvm))
1099 		return;
1100 
1101 	mutex_lock(&kvm->lock);
1102 
1103 	/*
1104 	 * Ensure that all guest tagged cache entries are flushed before
1105 	 * releasing the pages back to the system for use. CLFLUSH will
1106 	 * not do this, so issue a WBINVD.
1107 	 */
1108 	wbinvd_on_all_cpus();
1109 
1110 	/*
1111 	 * if userspace was terminated before unregistering the memory regions
1112 	 * then lets unpin all the registered memory.
1113 	 */
1114 	if (!list_empty(head)) {
1115 		list_for_each_safe(pos, q, head) {
1116 			__unregister_enc_region_locked(kvm,
1117 				list_entry(pos, struct enc_region, list));
1118 			cond_resched();
1119 		}
1120 	}
1121 
1122 	mutex_unlock(&kvm->lock);
1123 
1124 	sev_unbind_asid(kvm, sev->handle);
1125 	sev_asid_free(sev->asid);
1126 }
1127 
1128 int __init sev_hardware_setup(void)
1129 {
1130 	struct sev_user_data_status *status;
1131 	int rc;
1132 
1133 	/* Maximum number of encrypted guests supported simultaneously */
1134 	max_sev_asid = cpuid_ecx(0x8000001F);
1135 
1136 	if (!svm_sev_enabled())
1137 		return 1;
1138 
1139 	/* Minimum ASID value that should be used for SEV guest */
1140 	min_sev_asid = cpuid_edx(0x8000001F);
1141 
1142 	/* Initialize SEV ASID bitmaps */
1143 	sev_asid_bitmap = bitmap_zalloc(max_sev_asid, GFP_KERNEL);
1144 	if (!sev_asid_bitmap)
1145 		return 1;
1146 
1147 	sev_reclaim_asid_bitmap = bitmap_zalloc(max_sev_asid, GFP_KERNEL);
1148 	if (!sev_reclaim_asid_bitmap)
1149 		return 1;
1150 
1151 	status = kmalloc(sizeof(*status), GFP_KERNEL);
1152 	if (!status)
1153 		return 1;
1154 
1155 	/*
1156 	 * Check SEV platform status.
1157 	 *
1158 	 * PLATFORM_STATUS can be called in any state, if we failed to query
1159 	 * the PLATFORM status then either PSP firmware does not support SEV
1160 	 * feature or SEV firmware is dead.
1161 	 */
1162 	rc = sev_platform_status(status, NULL);
1163 	if (rc)
1164 		goto err;
1165 
1166 	pr_info("SEV supported\n");
1167 
1168 err:
1169 	kfree(status);
1170 	return rc;
1171 }
1172 
1173 void sev_hardware_teardown(void)
1174 {
1175 	if (!svm_sev_enabled())
1176 		return;
1177 
1178 	bitmap_free(sev_asid_bitmap);
1179 	bitmap_free(sev_reclaim_asid_bitmap);
1180 
1181 	sev_flush_asids();
1182 }
1183 
1184 void pre_sev_run(struct vcpu_svm *svm, int cpu)
1185 {
1186 	struct svm_cpu_data *sd = per_cpu(svm_data, cpu);
1187 	int asid = sev_get_asid(svm->vcpu.kvm);
1188 
1189 	/* Assign the asid allocated with this SEV guest */
1190 	svm->vmcb->control.asid = asid;
1191 
1192 	/*
1193 	 * Flush guest TLB:
1194 	 *
1195 	 * 1) when different VMCB for the same ASID is to be run on the same host CPU.
1196 	 * 2) or this VMCB was executed on different host CPU in previous VMRUNs.
1197 	 */
1198 	if (sd->sev_vmcbs[asid] == svm->vmcb &&
1199 	    svm->vcpu.arch.last_vmentry_cpu == cpu)
1200 		return;
1201 
1202 	sd->sev_vmcbs[asid] = svm->vmcb;
1203 	svm->vmcb->control.tlb_ctl = TLB_CONTROL_FLUSH_ASID;
1204 	vmcb_mark_dirty(svm->vmcb, VMCB_ASID);
1205 }
1206