xref: /linux/arch/riscv/kvm/mmu.c (revision 9cebfe6504488198b012e746bc6b313f88b95439)
1 // SPDX-License-Identifier: GPL-2.0
2 /*
3  * Copyright (C) 2019 Western Digital Corporation or its affiliates.
4  *
5  * Authors:
6  *     Anup Patel <anup.patel@wdc.com>
7  */
8 
9 #include <linux/errno.h>
10 #include <linux/hugetlb.h>
11 #include <linux/module.h>
12 #include <linux/uaccess.h>
13 #include <linux/vmalloc.h>
14 #include <linux/kvm_host.h>
15 #include <linux/sched/signal.h>
16 #include <asm/kvm_mmu.h>
17 #include <asm/kvm_nacl.h>
18 
19 static void mmu_wp_memory_region(struct kvm *kvm, int slot)
20 {
21 	struct kvm_memslots *slots = kvm_memslots(kvm);
22 	struct kvm_memory_slot *memslot = id_to_memslot(slots, slot);
23 	phys_addr_t start = memslot->base_gfn << PAGE_SHIFT;
24 	phys_addr_t end = (memslot->base_gfn + memslot->npages) << PAGE_SHIFT;
25 	struct kvm_gstage gstage;
26 	bool flush;
27 
28 	kvm_riscv_gstage_init(&gstage, kvm);
29 
30 	write_lock(&kvm->mmu_lock);
31 	flush = kvm_riscv_gstage_wp_range(&gstage, start, end);
32 	write_unlock(&kvm->mmu_lock);
33 	if (flush)
34 		kvm_flush_remote_tlbs_memslot(kvm, memslot);
35 }
36 
37 int kvm_riscv_mmu_ioremap(struct kvm *kvm, gpa_t gpa, phys_addr_t hpa,
38 			  unsigned long size, bool writable, bool in_atomic)
39 {
40 	int ret = 0;
41 	pgprot_t prot;
42 	unsigned long pfn;
43 	phys_addr_t addr, end;
44 	unsigned long pgd_levels = kvm->arch.pgd_levels;
45 	struct kvm_mmu_memory_cache pcache = {
46 		.gfp_custom = (in_atomic) ? GFP_ATOMIC | __GFP_ACCOUNT : 0,
47 		.gfp_zero = __GFP_ZERO,
48 	};
49 	struct kvm_gstage_mapping map;
50 	struct kvm_gstage gstage;
51 
52 	kvm_riscv_gstage_init(&gstage, kvm);
53 
54 	end = (gpa + size + PAGE_SIZE - 1) & PAGE_MASK;
55 	pfn = __phys_to_pfn(hpa);
56 	prot = pgprot_noncached(PAGE_WRITE);
57 
58 	for (addr = gpa; addr < end; addr += PAGE_SIZE) {
59 		map.addr = addr;
60 		map.pte = pfn_pte(pfn, prot);
61 		map.pte = pte_mkdirty(map.pte);
62 		map.level = 0;
63 
64 		if (!writable)
65 			map.pte = pte_wrprotect(map.pte);
66 
67 		ret = __kvm_mmu_topup_memory_cache(&pcache, pgd_levels, pgd_levels);
68 		if (ret)
69 			goto out;
70 
71 		write_lock(&kvm->mmu_lock);
72 		ret = kvm_riscv_gstage_set_pte(&gstage, &pcache, &map);
73 		write_unlock(&kvm->mmu_lock);
74 		if (ret)
75 			goto out;
76 
77 		pfn++;
78 	}
79 
80 out:
81 	kvm_mmu_free_memory_cache(&pcache);
82 	return ret;
83 }
84 
85 void kvm_riscv_mmu_iounmap(struct kvm *kvm, gpa_t gpa, unsigned long size)
86 {
87 	struct kvm_gstage gstage;
88 	bool flush;
89 
90 	kvm_riscv_gstage_init(&gstage, kvm);
91 
92 	write_lock(&kvm->mmu_lock);
93 	flush = kvm_riscv_gstage_unmap_range(&gstage, gpa, size, false);
94 	write_unlock(&kvm->mmu_lock);
95 
96 	if (flush)
97 		kvm_flush_remote_tlbs_range(kvm, gpa >> PAGE_SHIFT,
98 					    size >> PAGE_SHIFT);
99 }
100 
101 void kvm_arch_mmu_enable_log_dirty_pt_masked(struct kvm *kvm,
102 					     struct kvm_memory_slot *slot,
103 					     gfn_t gfn_offset,
104 					     unsigned long mask)
105 {
106 	phys_addr_t base_gfn = slot->base_gfn + gfn_offset;
107 	phys_addr_t start = (base_gfn +  __ffs(mask)) << PAGE_SHIFT;
108 	phys_addr_t end = (base_gfn + __fls(mask) + 1) << PAGE_SHIFT;
109 	struct kvm_gstage gstage;
110 	bool flush;
111 
112 	kvm_riscv_gstage_init(&gstage, kvm);
113 
114 	flush = kvm_riscv_gstage_wp_range(&gstage, start, end);
115 	if (flush)
116 		kvm_flush_remote_tlbs_range(kvm, start >> PAGE_SHIFT,
117 					    (end - start) >> PAGE_SHIFT);
118 }
119 
120 void kvm_arch_sync_dirty_log(struct kvm *kvm, struct kvm_memory_slot *memslot)
121 {
122 }
123 
124 void kvm_arch_free_memslot(struct kvm *kvm, struct kvm_memory_slot *free)
125 {
126 }
127 
128 void kvm_arch_memslots_updated(struct kvm *kvm, u64 gen)
129 {
130 }
131 
132 void kvm_arch_flush_shadow_all(struct kvm *kvm)
133 {
134 	kvm_riscv_mmu_free_pgd(kvm);
135 }
136 
137 void kvm_arch_flush_shadow_memslot(struct kvm *kvm,
138 				   struct kvm_memory_slot *slot)
139 {
140 	gpa_t gpa = slot->base_gfn << PAGE_SHIFT;
141 	phys_addr_t size = slot->npages << PAGE_SHIFT;
142 	struct kvm_gstage gstage;
143 	bool flush;
144 
145 	kvm_riscv_gstage_init(&gstage, kvm);
146 
147 	write_lock(&kvm->mmu_lock);
148 	flush = kvm_riscv_gstage_unmap_range(&gstage, gpa, size, false);
149 	write_unlock(&kvm->mmu_lock);
150 	if (flush)
151 		kvm_flush_remote_tlbs_range(kvm, gpa >> PAGE_SHIFT,
152 					    size >> PAGE_SHIFT);
153 }
154 
155 void kvm_arch_commit_memory_region(struct kvm *kvm,
156 				struct kvm_memory_slot *old,
157 				const struct kvm_memory_slot *new,
158 				enum kvm_mr_change change)
159 {
160 	/*
161 	 * At this point memslot has been committed and dirty pages will be
162 	 * tracked while the memory slot is write protected.
163 	 */
164 	if (change != KVM_MR_DELETE && new->flags & KVM_MEM_LOG_DIRTY_PAGES) {
165 		if (kvm_dirty_log_manual_protect_and_init_set(kvm))
166 			return;
167 		mmu_wp_memory_region(kvm, new->id);
168 	}
169 }
170 
171 int kvm_arch_prepare_memory_region(struct kvm *kvm,
172 				const struct kvm_memory_slot *old,
173 				struct kvm_memory_slot *new,
174 				enum kvm_mr_change change)
175 {
176 	hva_t hva, reg_end, size;
177 	bool writable;
178 	int ret = 0;
179 
180 	if (change != KVM_MR_CREATE && change != KVM_MR_MOVE &&
181 			change != KVM_MR_FLAGS_ONLY)
182 		return 0;
183 
184 	/*
185 	 * Prevent userspace from creating a memory region outside of the GPA
186 	 * space addressable by the KVM guest GPA space.
187 	 */
188 	if ((new->base_gfn + new->npages) >=
189 	     kvm_riscv_gstage_gpa_size(kvm->arch.pgd_levels) >> PAGE_SHIFT)
190 		return -EFAULT;
191 
192 	hva = new->userspace_addr;
193 	size = new->npages << PAGE_SHIFT;
194 	reg_end = hva + size;
195 	writable = !(new->flags & KVM_MEM_READONLY);
196 
197 	mmap_read_lock(current->mm);
198 
199 	/*
200 	 * A memory region could potentially cover multiple VMAs, and
201 	 * any holes between them, so iterate over all of them.
202 	 *
203 	 *     +--------------------------------------------+
204 	 * +---------------+----------------+   +----------------+
205 	 * |   : VMA 1     |      VMA 2     |   |    VMA 3  :    |
206 	 * +---------------+----------------+   +----------------+
207 	 *     |               memory region                |
208 	 *     +--------------------------------------------+
209 	 */
210 	do {
211 		struct vm_area_struct *vma;
212 		hva_t vm_end;
213 
214 		vma = find_vma_intersection(current->mm, hva, reg_end);
215 		if (!vma)
216 			break;
217 
218 		/*
219 		 * Mapping a read-only VMA is only allowed if the
220 		 * memory region is configured as read-only.
221 		 */
222 		if (writable && !(vma->vm_flags & VM_WRITE)) {
223 			ret = -EPERM;
224 			break;
225 		}
226 
227 		/* Take the intersection of this VMA with the memory region */
228 		vm_end = min(reg_end, vma->vm_end);
229 
230 		if (vma->vm_flags & VM_PFNMAP) {
231 			/* IO region dirty page logging not allowed */
232 			if (new->flags & KVM_MEM_LOG_DIRTY_PAGES) {
233 				ret = -EINVAL;
234 				goto out;
235 			}
236 		}
237 		hva = vm_end;
238 	} while (hva < reg_end);
239 
240 out:
241 	mmap_read_unlock(current->mm);
242 	return ret;
243 }
244 
245 bool kvm_unmap_gfn_range(struct kvm *kvm, struct kvm_gfn_range *range)
246 {
247 	struct kvm_gstage gstage;
248 	bool flush;
249 
250 	if (!kvm->arch.pgd)
251 		return false;
252 
253 	lockdep_assert_held_write(&kvm->mmu_lock);
254 
255 	kvm_riscv_gstage_init(&gstage, kvm);
256 	flush = kvm_riscv_gstage_unmap_range(&gstage, range->start << PAGE_SHIFT,
257 					     (range->end - range->start) << PAGE_SHIFT,
258 					     range->may_block);
259 	if (flush)
260 		kvm_flush_remote_tlbs_range(kvm, range->start,
261 					    range->end - range->start);
262 	return false;
263 }
264 
265 bool kvm_age_gfn(struct kvm *kvm, struct kvm_gfn_range *range)
266 {
267 	pte_t *ptep;
268 	u32 ptep_level = 0;
269 	u64 size = (range->end - range->start) << PAGE_SHIFT;
270 	struct kvm_gstage gstage;
271 
272 	if (!kvm->arch.pgd)
273 		return false;
274 
275 	WARN_ON(size != PAGE_SIZE && size != PMD_SIZE && size != PUD_SIZE);
276 
277 	kvm_riscv_gstage_init(&gstage, kvm);
278 	if (!kvm_riscv_gstage_get_leaf(&gstage, range->start << PAGE_SHIFT,
279 				       &ptep, &ptep_level))
280 		return false;
281 
282 	return ptep_test_and_clear_young(NULL, 0, ptep);
283 }
284 
285 bool kvm_test_age_gfn(struct kvm *kvm, struct kvm_gfn_range *range)
286 {
287 	pte_t *ptep;
288 	u32 ptep_level = 0;
289 	u64 size = (range->end - range->start) << PAGE_SHIFT;
290 	struct kvm_gstage gstage;
291 
292 	if (!kvm->arch.pgd)
293 		return false;
294 
295 	WARN_ON(size != PAGE_SIZE && size != PMD_SIZE && size != PUD_SIZE);
296 
297 	kvm_riscv_gstage_init(&gstage, kvm);
298 	if (!kvm_riscv_gstage_get_leaf(&gstage, range->start << PAGE_SHIFT,
299 				       &ptep, &ptep_level))
300 		return false;
301 
302 	return pte_young(ptep_get(ptep));
303 }
304 
305 static bool fault_supports_gstage_huge_mapping(struct kvm_memory_slot *memslot,
306 					       unsigned long hva,
307 					       unsigned long map_size)
308 {
309 	hva_t uaddr_start, uaddr_end;
310 	gpa_t gpa_start;
311 	size_t size;
312 
313 	size = memslot->npages * PAGE_SIZE;
314 	uaddr_start = memslot->userspace_addr;
315 	uaddr_end = uaddr_start + size;
316 
317 	gpa_start = memslot->base_gfn << PAGE_SHIFT;
318 
319 	/*
320 	 * Pages belonging to memslots that don't have the same alignment
321 	 * within a huge page for userspace and GPA cannot be mapped with
322 	 * g-stage block entries, because we'll end up mapping the wrong pages.
323 	 *
324 	 * Consider a layout like the following:
325 	 *
326 	 *    memslot->userspace_addr:
327 	 *    +-----+--------------------+--------------------+---+
328 	 *    |abcde|fgh  vs-stage block  |    vs-stage block tv|xyz|
329 	 *    +-----+--------------------+--------------------+---+
330 	 *
331 	 *    memslot->base_gfn << PAGE_SHIFT:
332 	 *      +---+--------------------+--------------------+-----+
333 	 *      |abc|def  g-stage block  |    g-stage block   |tvxyz|
334 	 *      +---+--------------------+--------------------+-----+
335 	 *
336 	 * If we create those g-stage blocks, we'll end up with this incorrect
337 	 * mapping:
338 	 *   d -> f
339 	 *   e -> g
340 	 *   f -> h
341 	 */
342 	if ((gpa_start & (map_size - 1)) != (uaddr_start & (map_size - 1)))
343 		return false;
344 
345 	/*
346 	 * Next, let's make sure we're not trying to map anything not covered
347 	 * by the memslot. This means we have to prohibit block size mappings
348 	 * for the beginning and end of a non-block aligned and non-block sized
349 	 * memory slot (illustrated by the head and tail parts of the
350 	 * userspace view above containing pages 'abcde' and 'xyz',
351 	 * respectively).
352 	 *
353 	 * Note that it doesn't matter if we do the check using the
354 	 * userspace_addr or the base_gfn, as both are equally aligned (per
355 	 * the check above) and equally sized.
356 	 */
357 	return (hva >= ALIGN(uaddr_start, map_size)) &&
358 	       (hva < ALIGN_DOWN(uaddr_end, map_size));
359 }
360 
361 static int get_hva_mapping_size(struct kvm *kvm,
362 				unsigned long hva)
363 {
364 	int size = PAGE_SIZE;
365 	unsigned long flags;
366 	pgd_t pgd;
367 	p4d_t p4d;
368 	pud_t pud;
369 	pmd_t pmd;
370 
371 	/*
372 	 * Disable IRQs to prevent concurrent tear down of host page tables,
373 	 * e.g. if the primary MMU promotes a P*D to a huge page and then frees
374 	 * the original page table.
375 	 */
376 	local_irq_save(flags);
377 
378 	/*
379 	 * Read each entry once.  As above, a non-leaf entry can be promoted to
380 	 * a huge page _during_ this walk.  Re-reading the entry could send the
381 	 * walk into the weeks, e.g. p*d_leaf() returns false (sees the old
382 	 * value) and then p*d_offset() walks into the target huge page instead
383 	 * of the old page table (sees the new value).
384 	 */
385 	pgd = pgdp_get(pgd_offset(kvm->mm, hva));
386 	if (pgd_none(pgd))
387 		goto out;
388 
389 	p4d = p4dp_get(p4d_offset(&pgd, hva));
390 	if (p4d_none(p4d) || !p4d_present(p4d))
391 		goto out;
392 
393 	pud = pudp_get(pud_offset(&p4d, hva));
394 	if (pud_none(pud) || !pud_present(pud))
395 		goto out;
396 
397 	if (pud_leaf(pud)) {
398 		size = PUD_SIZE;
399 		goto out;
400 	}
401 
402 	pmd = pmdp_get(pmd_offset(&pud, hva));
403 	if (pmd_none(pmd) || !pmd_present(pmd))
404 		goto out;
405 
406 	if (pmd_leaf(pmd))
407 		size = PMD_SIZE;
408 
409 out:
410 	local_irq_restore(flags);
411 	return size;
412 }
413 
414 static unsigned long transparent_hugepage_adjust(struct kvm *kvm,
415 						 struct kvm_memory_slot *memslot,
416 						 unsigned long hva,
417 						 kvm_pfn_t *hfnp, gpa_t *gpa)
418 {
419 	kvm_pfn_t hfn = *hfnp;
420 
421 	/*
422 	 * Make sure the adjustment is done only for THP pages. Also make
423 	 * sure that the HVA and GPA are sufficiently aligned and that the
424 	 * block map is contained within the memslot.
425 	 */
426 	if (fault_supports_gstage_huge_mapping(memslot, hva, PMD_SIZE)) {
427 		int sz;
428 
429 		sz = get_hva_mapping_size(kvm, hva);
430 		if (sz < PMD_SIZE)
431 			return sz;
432 
433 		*gpa &= PMD_MASK;
434 		hfn &= ~(PTRS_PER_PMD - 1);
435 		*hfnp = hfn;
436 
437 		return PMD_SIZE;
438 	}
439 
440 	return PAGE_SIZE;
441 }
442 
443 static unsigned long hugetlb_mapping_size(struct kvm_memory_slot *memslot,
444 					  unsigned long hva,
445 					  unsigned long map_size)
446 {
447 	switch (map_size) {
448 #ifndef CONFIG_32BIT
449 	case PUD_SIZE:
450 		if (fault_supports_gstage_huge_mapping(memslot, hva, PUD_SIZE))
451 			return PUD_SIZE;
452 		fallthrough;
453 #endif
454 	case PMD_SIZE:
455 		if (fault_supports_gstage_huge_mapping(memslot, hva, PMD_SIZE))
456 			return PMD_SIZE;
457 		fallthrough;
458 	case PAGE_SIZE:
459 		return PAGE_SIZE;
460 	default:
461 		return map_size;
462 	}
463 }
464 
465 static bool kvm_riscv_mmu_dirty_log_write_fault_fast(struct kvm *kvm,
466 						     struct kvm_memory_slot *memslot,
467 						     gpa_t gpa,
468 						     struct kvm_gstage_mapping *out_map)
469 {
470 	struct kvm_gstage gstage;
471 	unsigned long mmu_seq;
472 	pte_t old_pte, new_pte;
473 	pte_t *ptep;
474 	gfn_t gfn = gpa >> PAGE_SHIFT;
475 	u32 ptep_level;
476 	bool dirty_marked = false;
477 	bool ret;
478 
479 	kvm_riscv_gstage_init(&gstage, kvm);
480 	mmu_seq = kvm->mmu_invalidate_seq;
481 
482 	read_lock(&kvm->mmu_lock);
483 
484 	if (mmu_invalidate_retry_gfn(kvm, mmu_seq, gfn)) {
485 		ret = false;
486 		goto out_unlock;
487 	}
488 
489 	if (!kvm_riscv_gstage_get_leaf(&gstage, gpa, &ptep, &ptep_level) ||
490 	    ptep_level) {
491 		ret = false;
492 		goto out_unlock;
493 	}
494 
495 	for (;;) {
496 		old_pte = ptep_get(ptep);
497 		if (!(pte_val(old_pte) & _PAGE_LEAF)) {
498 			ret = false;
499 			break;
500 		}
501 
502 		if (!dirty_marked) {
503 			mark_page_dirty_in_slot(kvm, memslot, gfn);
504 			dirty_marked = true;
505 		}
506 
507 		if ((pte_val(old_pte) & (_PAGE_WRITE | _PAGE_DIRTY)) ==
508 		    (_PAGE_WRITE | _PAGE_DIRTY)) {
509 			new_pte = old_pte;
510 			ret = true;
511 			break;
512 		}
513 
514 		new_pte = pte_mkdirty(pte_mkwrite_novma(old_pte));
515 
516 		if (kvm_riscv_gstage_try_update_pte(&gstage, ptep_level, gpa,
517 						    ptep, old_pte, new_pte)) {
518 			ret = true;
519 			break;
520 		}
521 		cpu_relax();
522 	}
523 
524 out_unlock:
525 	read_unlock(&kvm->mmu_lock);
526 
527 	if (ret) {
528 		out_map->addr = gpa & PAGE_MASK;
529 		out_map->level = 0;
530 		out_map->pte = new_pte;
531 	}
532 
533 	return ret;
534 }
535 
536 int kvm_riscv_mmu_map(struct kvm_vcpu *vcpu, struct kvm_memory_slot *memslot,
537 		      gpa_t gpa, unsigned long hva, bool is_write,
538 		      struct kvm_gstage_mapping *out_map)
539 {
540 	int ret;
541 	kvm_pfn_t hfn;
542 	bool is_hugetlb;
543 	bool writable;
544 	short vma_pageshift;
545 	gfn_t gfn = gpa >> PAGE_SHIFT;
546 	struct vm_area_struct *vma;
547 	struct kvm *kvm = vcpu->kvm;
548 	struct kvm_mmu_memory_cache *pcache = &vcpu->arch.mmu_page_cache;
549 	bool logging = kvm_slot_dirty_track_enabled(memslot) &&
550 		       !(memslot->flags & KVM_MEM_READONLY);
551 	unsigned long vma_pagesize, mmu_seq;
552 	struct kvm_gstage gstage;
553 	struct page *page;
554 
555 	kvm_riscv_gstage_init(&gstage, kvm);
556 
557 	/* Setup initial state of output mapping */
558 	memset(out_map, 0, sizeof(*out_map));
559 
560 	if (is_write && logging &&
561 	    kvm_riscv_mmu_dirty_log_write_fault_fast(kvm, memslot, gpa, out_map))
562 		return 0;
563 
564 	/* We need minimum second+third level pages */
565 	ret = kvm_mmu_topup_memory_cache(pcache, kvm->arch.pgd_levels);
566 	if (ret) {
567 		kvm_err("Failed to topup G-stage cache\n");
568 		return ret;
569 	}
570 
571 	mmap_read_lock(current->mm);
572 
573 	vma = vma_lookup(current->mm, hva);
574 	if (unlikely(!vma)) {
575 		kvm_err("Failed to find VMA for hva 0x%lx\n", hva);
576 		mmap_read_unlock(current->mm);
577 		return -EFAULT;
578 	}
579 
580 	is_hugetlb = is_vm_hugetlb_page(vma);
581 	if (is_hugetlb)
582 		vma_pageshift = huge_page_shift(hstate_vma(vma));
583 	else
584 		vma_pageshift = PAGE_SHIFT;
585 	vma_pagesize = 1ULL << vma_pageshift;
586 	if (logging || (vma->vm_flags & VM_PFNMAP))
587 		vma_pagesize = PAGE_SIZE;
588 	else if (is_hugetlb)
589 		vma_pagesize = hugetlb_mapping_size(memslot, hva, vma_pagesize);
590 
591 	/*
592 	 * For hugetlb mappings, vma_pagesize might have been reduced from the
593 	 * VMA size to a smaller safe mapping size.
594 	 */
595 	if (vma_pagesize == PMD_SIZE || vma_pagesize == PUD_SIZE)
596 		gfn = ALIGN_DOWN(gpa, vma_pagesize) >> PAGE_SHIFT;
597 
598 	/*
599 	 * Read mmu_invalidate_seq so that KVM can detect if the results of
600 	 * vma_lookup() or __kvm_faultin_pfn() become stale prior to acquiring
601 	 * kvm->mmu_lock.
602 	 *
603 	 * Rely on mmap_read_unlock() for an implicit smp_rmb(), which pairs
604 	 * with the smp_wmb() in kvm_mmu_invalidate_end().
605 	 */
606 	mmu_seq = kvm->mmu_invalidate_seq;
607 	mmap_read_unlock(current->mm);
608 
609 	if (vma_pagesize != PUD_SIZE &&
610 	    vma_pagesize != PMD_SIZE &&
611 	    vma_pagesize != PAGE_SIZE) {
612 		kvm_err("Invalid VMA page size 0x%lx\n", vma_pagesize);
613 		return -EFAULT;
614 	}
615 
616 	hfn = __kvm_faultin_pfn(memslot, gfn, is_write ? FOLL_WRITE : 0,
617 				&writable, &page);
618 	if (hfn == KVM_PFN_ERR_HWPOISON) {
619 		send_sig_mceerr(BUS_MCEERR_AR, (void __user *)hva,
620 				vma_pageshift, current);
621 		return 0;
622 	}
623 	if (is_error_noslot_pfn(hfn))
624 		return -EFAULT;
625 
626 	/*
627 	 * If logging is active then we allow writable pages only
628 	 * for write faults.
629 	 */
630 	if (logging && !is_write)
631 		writable = false;
632 
633 	write_lock(&kvm->mmu_lock);
634 
635 	if (mmu_invalidate_retry(kvm, mmu_seq))
636 		goto out_unlock;
637 
638 	/*
639 	 * Check if we are backed by a THP and thus use block mapping if
640 	 * possible. Hugetlb mappings already selected their target size above,
641 	 * so do not promote them through the THP helper.
642 	 */
643 	if (!logging && !is_hugetlb && vma_pagesize == PAGE_SIZE)
644 		vma_pagesize = transparent_hugepage_adjust(kvm, memslot, hva, &hfn, &gpa);
645 
646 	if (writable) {
647 		mark_page_dirty_in_slot(kvm, memslot, gfn);
648 		ret = kvm_riscv_gstage_map_page(&gstage, pcache, gpa, hfn << PAGE_SHIFT,
649 						vma_pagesize, false, true, out_map);
650 	} else {
651 		ret = kvm_riscv_gstage_map_page(&gstage, pcache, gpa, hfn << PAGE_SHIFT,
652 						vma_pagesize, true, true, out_map);
653 	}
654 
655 	if (ret)
656 		kvm_err("Failed to map in G-stage\n");
657 
658 out_unlock:
659 	kvm_release_faultin_page(kvm, page, ret && ret != -EEXIST, writable);
660 	write_unlock(&kvm->mmu_lock);
661 	return ret;
662 }
663 
664 int kvm_riscv_mmu_alloc_pgd(struct kvm *kvm)
665 {
666 	struct page *pgd_page;
667 
668 	if (kvm->arch.pgd != NULL) {
669 		kvm_err("kvm_arch already initialized?\n");
670 		return -EINVAL;
671 	}
672 
673 	pgd_page = alloc_pages(GFP_KERNEL | __GFP_ZERO,
674 				get_order(kvm_riscv_gstage_pgd_size));
675 	if (!pgd_page)
676 		return -ENOMEM;
677 	kvm->arch.pgd = page_to_virt(pgd_page);
678 	kvm->arch.pgd_phys = page_to_phys(pgd_page);
679 	kvm->arch.pgd_levels = kvm_riscv_gstage_max_pgd_levels;
680 
681 	return 0;
682 }
683 
684 void kvm_riscv_mmu_free_pgd(struct kvm *kvm)
685 {
686 	struct kvm_gstage gstage;
687 	void *pgd = NULL;
688 	bool flush = false;
689 
690 	write_lock(&kvm->mmu_lock);
691 	if (kvm->arch.pgd) {
692 		kvm_riscv_gstage_init(&gstage, kvm);
693 		flush = kvm_riscv_gstage_unmap_range(&gstage, 0UL,
694 			kvm_riscv_gstage_gpa_size(kvm->arch.pgd_levels), false);
695 		pgd = READ_ONCE(kvm->arch.pgd);
696 		kvm->arch.pgd = NULL;
697 		kvm->arch.pgd_phys = 0;
698 		kvm->arch.pgd_levels = 0;
699 	}
700 	write_unlock(&kvm->mmu_lock);
701 
702 	if (flush)
703 		kvm_flush_remote_tlbs(kvm);
704 
705 	if (pgd)
706 		free_pages((unsigned long)pgd, get_order(kvm_riscv_gstage_pgd_size));
707 }
708 
709 void kvm_riscv_mmu_update_hgatp(struct kvm_vcpu *vcpu)
710 {
711 	struct kvm_arch *ka = &vcpu->kvm->arch;
712 	unsigned long hgatp = kvm_riscv_gstage_mode(ka->pgd_levels)
713 			      << HGATP_MODE_SHIFT;
714 
715 	hgatp |= (READ_ONCE(ka->vmid.vmid) << HGATP_VMID_SHIFT) & HGATP_VMID;
716 	hgatp |= (ka->pgd_phys >> PAGE_SHIFT) & HGATP_PPN;
717 
718 	ncsr_write(CSR_HGATP, hgatp);
719 
720 	if (!kvm_riscv_gstage_vmid_bits())
721 		kvm_riscv_local_hfence_gvma_all();
722 }
723