xref: /linux/arch/arm64/kvm/hyp/nvhe/page_alloc.c (revision 3a2c4d55e32ad65efebdb6de44eef3bfa08bb49d)
1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3  * Copyright (C) 2020 Google LLC
4  * Author: Quentin Perret <qperret@google.com>
5  */
6 
7 #include <asm/kvm_hyp.h>
8 #include <nvhe/gfp.h>
9 
10 u64 __hyp_vmemmap;
11 
12 /*
13  * Index the hyp_vmemmap to find a potential buddy page, but make no assumption
14  * about its current state.
15  *
16  * Example buddy-tree for a 4-pages physically contiguous pool:
17  *
18  *                 o : Page 3
19  *                /
20  *               o-o : Page 2
21  *              /
22  *             /   o : Page 1
23  *            /   /
24  *           o---o-o : Page 0
25  *    Order  2   1 0
26  *
27  * Example of requests on this pool:
28  *   __find_buddy_nocheck(pool, page 0, order 0) => page 1
29  *   __find_buddy_nocheck(pool, page 0, order 1) => page 2
30  *   __find_buddy_nocheck(pool, page 1, order 0) => page 0
31  *   __find_buddy_nocheck(pool, page 2, order 0) => page 3
32  */
33 static struct hyp_page *__find_buddy_nocheck(struct hyp_pool *pool,
34 					     struct hyp_page *p,
35 					     u8 order)
36 {
37 	phys_addr_t addr = hyp_page_to_phys(p);
38 
39 	addr ^= (PAGE_SIZE << order);
40 
41 	/*
42 	 * Don't return a page outside the pool range -- it belongs to
43 	 * something else and may not be mapped in hyp_vmemmap.
44 	 */
45 	if (addr < pool->range_start || addr >= pool->range_end)
46 		return NULL;
47 
48 	return hyp_phys_to_page(addr);
49 }
50 
51 /* Find a buddy page currently available for allocation */
52 static struct hyp_page *__find_buddy_avail(struct hyp_pool *pool,
53 					   struct hyp_page *p,
54 					   u8 order)
55 {
56 	struct hyp_page *buddy = __find_buddy_nocheck(pool, p, order);
57 
58 	if (!buddy || buddy->order != order || buddy->refcount)
59 		return NULL;
60 
61 	return buddy;
62 
63 }
64 
65 /*
66  * Pages that are available for allocation are tracked in free-lists, so we use
67  * the pages themselves to store the list nodes to avoid wasting space. As the
68  * allocator always returns zeroed pages (which are zeroed on the hyp_put_page()
69  * path to optimize allocation speed), we also need to clean-up the list node in
70  * each page when we take it out of the list.
71  */
72 static inline void page_remove_from_list(struct hyp_page *p)
73 {
74 	struct list_head *node = hyp_page_to_virt(p);
75 
76 	__list_del_entry(node);
77 	memset(node, 0, sizeof(*node));
78 }
79 
80 static inline void page_add_to_list(struct hyp_page *p, struct list_head *head)
81 {
82 	struct list_head *node = hyp_page_to_virt(p);
83 
84 	INIT_LIST_HEAD(node);
85 	list_add_tail(node, head);
86 }
87 
88 static inline struct hyp_page *node_to_page(struct list_head *node)
89 {
90 	return hyp_virt_to_page(node);
91 }
92 
93 static void __hyp_attach_page(struct hyp_pool *pool,
94 			      struct hyp_page *p)
95 {
96 	phys_addr_t phys = hyp_page_to_phys(p);
97 	struct hyp_page *buddy;
98 	bool coalesce = true;
99 	u8 order = p->order;
100 
101 	/*
102 	 * 'external' pages are never coalesced and their ->order field
103 	 * untrusted as they bypass hyp_pool_init(). Enforce order-0.
104 	 */
105 	if (phys < pool->range_start || phys >= pool->range_end) {
106 		order = 0;
107 		coalesce = false;
108 	}
109 
110 	memset(hyp_page_to_virt(p), 0, PAGE_SIZE << order);
111 
112 	if (!coalesce)
113 		goto insert;
114 
115 	/*
116 	 * Only the first struct hyp_page of a high-order page (otherwise known
117 	 * as the 'head') should have p->order set. The non-head pages should
118 	 * have p->order = HYP_NO_ORDER. Here @p may no longer be the head
119 	 * after coalescing, so make sure to mark it HYP_NO_ORDER proactively.
120 	 */
121 	p->order = HYP_NO_ORDER;
122 	for (; (order + 1) <= pool->max_order; order++) {
123 		buddy = __find_buddy_avail(pool, p, order);
124 		if (!buddy)
125 			break;
126 
127 		/* Take the buddy out of its list, and coalesce with @p */
128 		page_remove_from_list(buddy);
129 		buddy->order = HYP_NO_ORDER;
130 		p = min(p, buddy);
131 	}
132 
133 insert:
134 	/* Mark the new head, and insert it */
135 	p->order = order;
136 	page_add_to_list(p, &pool->free_area[order]);
137 }
138 
139 static struct hyp_page *__hyp_extract_page(struct hyp_pool *pool,
140 					   struct hyp_page *p,
141 					   u8 order)
142 {
143 	struct hyp_page *buddy;
144 
145 	page_remove_from_list(p);
146 	while (p->order > order) {
147 		/*
148 		 * The buddy of order n - 1 currently has HYP_NO_ORDER as it
149 		 * is covered by a higher-level page (whose head is @p). Use
150 		 * __find_buddy_nocheck() to find it and inject it in the
151 		 * free_list[n - 1], effectively splitting @p in half.
152 		 */
153 		p->order--;
154 		buddy = __find_buddy_nocheck(pool, p, p->order);
155 		buddy->order = p->order;
156 		page_add_to_list(buddy, &pool->free_area[buddy->order]);
157 	}
158 
159 	return p;
160 }
161 
162 static void __hyp_put_page(struct hyp_pool *pool, struct hyp_page *p)
163 {
164 	if (hyp_page_ref_dec_and_test(p))
165 		__hyp_attach_page(pool, p);
166 }
167 
168 /*
169  * Changes to the buddy tree and page refcounts must be done with the hyp_pool
170  * lock held. If a refcount change requires an update to the buddy tree (e.g.
171  * hyp_put_page()), both operations must be done within the same critical
172  * section to guarantee transient states (e.g. a page with null refcount but
173  * not yet attached to a free list) can't be observed by well-behaved readers.
174  */
175 void hyp_put_page(struct hyp_pool *pool, void *addr)
176 {
177 	struct hyp_page *p = hyp_virt_to_page(addr);
178 
179 	hyp_spin_lock(&pool->lock);
180 	__hyp_put_page(pool, p);
181 	hyp_spin_unlock(&pool->lock);
182 }
183 
184 void hyp_get_page(struct hyp_pool *pool, void *addr)
185 {
186 	struct hyp_page *p = hyp_virt_to_page(addr);
187 
188 	hyp_spin_lock(&pool->lock);
189 	hyp_page_ref_inc(p);
190 	hyp_spin_unlock(&pool->lock);
191 }
192 
193 void hyp_split_page(struct hyp_page *p)
194 {
195 	u8 order = p->order;
196 	unsigned int i;
197 
198 	p->order = 0;
199 	for (i = 1; i < (1 << order); i++) {
200 		struct hyp_page *tail = p + i;
201 
202 		tail->order = 0;
203 		hyp_set_page_refcounted(tail);
204 	}
205 }
206 
207 void *hyp_alloc_pages(struct hyp_pool *pool, u8 order)
208 {
209 	struct hyp_page *p;
210 	u8 i = order;
211 
212 	hyp_spin_lock(&pool->lock);
213 
214 	/* Look for a high-enough-order page */
215 	while (i <= pool->max_order && list_empty(&pool->free_area[i]))
216 		i++;
217 	if (i > pool->max_order) {
218 		hyp_spin_unlock(&pool->lock);
219 		return NULL;
220 	}
221 
222 	/* Extract it from the tree at the right order */
223 	p = node_to_page(pool->free_area[i].next);
224 	p = __hyp_extract_page(pool, p, order);
225 
226 	hyp_set_page_refcounted(p);
227 	hyp_spin_unlock(&pool->lock);
228 
229 	return hyp_page_to_virt(p);
230 }
231 
232 int hyp_pool_init(struct hyp_pool *pool, u64 pfn, unsigned int nr_pages,
233 		  unsigned int reserved_pages)
234 {
235 	phys_addr_t phys = hyp_pfn_to_phys(pfn);
236 	struct hyp_page *p;
237 	int i;
238 
239 	hyp_spin_lock_init(&pool->lock);
240 	pool->max_order = min(MAX_PAGE_ORDER,
241 			      get_order(nr_pages << PAGE_SHIFT));
242 	for (i = 0; i <= pool->max_order; i++)
243 		INIT_LIST_HEAD(&pool->free_area[i]);
244 	pool->range_start = phys;
245 	pool->range_end = phys + (nr_pages << PAGE_SHIFT);
246 
247 	/* Init the vmemmap portion */
248 	p = hyp_phys_to_page(phys);
249 	for (i = 0; i < nr_pages; i++) {
250 		hyp_set_page_refcounted(&p[i]);
251 		p[i].order = 0;
252 	}
253 
254 	/* Attach the unused pages to the buddy tree */
255 	for (i = reserved_pages; i < nr_pages; i++)
256 		__hyp_put_page(pool, &p[i]);
257 
258 	return 0;
259 }
260