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Marc Zyngier37c43752012-12-10 15:35:24 +00001/*
2 * Copyright (C) 2012,2013 - ARM Ltd
3 * Author: Marc Zyngier <marc.zyngier@arm.com>
4 *
5 * This program is free software; you can redistribute it and/or modify
6 * it under the terms of the GNU General Public License version 2 as
7 * published by the Free Software Foundation.
8 *
9 * This program is distributed in the hope that it will be useful,
10 * but WITHOUT ANY WARRANTY; without even the implied warranty of
11 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
12 * GNU General Public License for more details.
13 *
14 * You should have received a copy of the GNU General Public License
15 * along with this program. If not, see <http://www.gnu.org/licenses/>.
16 */
17
18#ifndef __ARM64_KVM_MMU_H__
19#define __ARM64_KVM_MMU_H__
20
21#include <asm/page.h>
22#include <asm/memory.h>
23
24/*
25 * As we only have the TTBR0_EL2 register, we cannot express
26 * "negative" addresses. This makes it impossible to directly share
27 * mappings with the kernel.
28 *
29 * Instead, give the HYP mode its own VA region at a fixed offset from
30 * the kernel by just masking the top bits (which are all ones for a
31 * kernel address).
32 */
33#define HYP_PAGE_OFFSET_SHIFT VA_BITS
34#define HYP_PAGE_OFFSET_MASK ((UL(1) << HYP_PAGE_OFFSET_SHIFT) - 1)
35#define HYP_PAGE_OFFSET (PAGE_OFFSET & HYP_PAGE_OFFSET_MASK)
36
37/*
38 * Our virtual mapping for the idmap-ed MMU-enable code. Must be
39 * shared across all the page-tables. Conveniently, we use the last
40 * possible page, where no kernel mapping will ever exist.
41 */
42#define TRAMPOLINE_VA (HYP_PAGE_OFFSET_MASK & PAGE_MASK)
43
Christoffer Dall38f791a2014-10-10 12:14:28 +020044/*
45 * KVM_MMU_CACHE_MIN_PAGES is the number of stage2 page table translation
46 * levels in addition to the PGD and potentially the PUD which are
47 * pre-allocated (we pre-allocate the fake PGD and the PUD when the Stage-2
48 * tables use one level of tables less than the kernel.
49 */
50#ifdef CONFIG_ARM64_64K_PAGES
51#define KVM_MMU_CACHE_MIN_PAGES 1
52#else
53#define KVM_MMU_CACHE_MIN_PAGES 2
54#endif
55
Marc Zyngier37c43752012-12-10 15:35:24 +000056#ifdef __ASSEMBLY__
57
58/*
59 * Convert a kernel VA into a HYP VA.
60 * reg: VA to be converted.
61 */
62.macro kern_hyp_va reg
63 and \reg, \reg, #HYP_PAGE_OFFSET_MASK
64.endm
65
66#else
67
Christoffer Dall38f791a2014-10-10 12:14:28 +020068#include <asm/pgalloc.h>
Marc Zyngier37c43752012-12-10 15:35:24 +000069#include <asm/cachetype.h>
70#include <asm/cacheflush.h>
Ard Biesheuvele4c5a682015-03-19 16:42:28 +000071#include <asm/mmu_context.h>
72#include <asm/pgtable.h>
Marc Zyngier37c43752012-12-10 15:35:24 +000073
74#define KERN_TO_HYP(kva) ((unsigned long)kva - PAGE_OFFSET + HYP_PAGE_OFFSET)
75
76/*
Joel Schoppdbff1242014-07-09 11:17:04 -050077 * We currently only support a 40bit IPA.
Marc Zyngier37c43752012-12-10 15:35:24 +000078 */
Joel Schoppdbff1242014-07-09 11:17:04 -050079#define KVM_PHYS_SHIFT (40)
Marc Zyngier37c43752012-12-10 15:35:24 +000080#define KVM_PHYS_SIZE (1UL << KVM_PHYS_SHIFT)
81#define KVM_PHYS_MASK (KVM_PHYS_SIZE - 1UL)
82
Marc Zyngier37c43752012-12-10 15:35:24 +000083int create_hyp_mappings(void *from, void *to);
84int create_hyp_io_mappings(void *from, void *to, phys_addr_t);
85void free_boot_hyp_pgd(void);
86void free_hyp_pgds(void);
87
Christoffer Dall957db102014-11-27 10:35:03 +010088void stage2_unmap_vm(struct kvm *kvm);
Marc Zyngier37c43752012-12-10 15:35:24 +000089int kvm_alloc_stage2_pgd(struct kvm *kvm);
90void kvm_free_stage2_pgd(struct kvm *kvm);
91int kvm_phys_addr_ioremap(struct kvm *kvm, phys_addr_t guest_ipa,
Ard Biesheuvelc40f2f82014-09-17 14:56:18 -070092 phys_addr_t pa, unsigned long size, bool writable);
Marc Zyngier37c43752012-12-10 15:35:24 +000093
94int kvm_handle_guest_abort(struct kvm_vcpu *vcpu, struct kvm_run *run);
95
96void kvm_mmu_free_memory_caches(struct kvm_vcpu *vcpu);
97
98phys_addr_t kvm_mmu_get_httbr(void);
99phys_addr_t kvm_mmu_get_boot_httbr(void);
100phys_addr_t kvm_get_idmap_vector(void);
101int kvm_mmu_init(void);
102void kvm_clear_hyp_idmap(void);
103
104#define kvm_set_pte(ptep, pte) set_pte(ptep, pte)
Christoffer Dallad361f02012-11-01 17:14:45 +0100105#define kvm_set_pmd(pmdp, pmd) set_pmd(pmdp, pmd)
Marc Zyngier37c43752012-12-10 15:35:24 +0000106
Marc Zyngier37c43752012-12-10 15:35:24 +0000107static inline void kvm_clean_pgd(pgd_t *pgd) {}
Christoffer Dall38f791a2014-10-10 12:14:28 +0200108static inline void kvm_clean_pmd(pmd_t *pmd) {}
Marc Zyngier37c43752012-12-10 15:35:24 +0000109static inline void kvm_clean_pmd_entry(pmd_t *pmd) {}
110static inline void kvm_clean_pte(pte_t *pte) {}
111static inline void kvm_clean_pte_entry(pte_t *pte) {}
112
113static inline void kvm_set_s2pte_writable(pte_t *pte)
114{
115 pte_val(*pte) |= PTE_S2_RDWR;
116}
117
Christoffer Dallad361f02012-11-01 17:14:45 +0100118static inline void kvm_set_s2pmd_writable(pmd_t *pmd)
119{
120 pmd_val(*pmd) |= PMD_S2_RDWR;
121}
122
Mario Smarduch8199ed02015-01-15 15:58:59 -0800123static inline void kvm_set_s2pte_readonly(pte_t *pte)
124{
125 pte_val(*pte) = (pte_val(*pte) & ~PTE_S2_RDWR) | PTE_S2_RDONLY;
126}
127
128static inline bool kvm_s2pte_readonly(pte_t *pte)
129{
130 return (pte_val(*pte) & PTE_S2_RDWR) == PTE_S2_RDONLY;
131}
132
133static inline void kvm_set_s2pmd_readonly(pmd_t *pmd)
134{
135 pmd_val(*pmd) = (pmd_val(*pmd) & ~PMD_S2_RDWR) | PMD_S2_RDONLY;
136}
137
138static inline bool kvm_s2pmd_readonly(pmd_t *pmd)
139{
140 return (pmd_val(*pmd) & PMD_S2_RDWR) == PMD_S2_RDONLY;
141}
142
143
Marc Zyngiera3c8bd32014-02-18 14:29:03 +0000144#define kvm_pgd_addr_end(addr, end) pgd_addr_end(addr, end)
145#define kvm_pud_addr_end(addr, end) pud_addr_end(addr, end)
146#define kvm_pmd_addr_end(addr, end) pmd_addr_end(addr, end)
147
Christoffer Dall38f791a2014-10-10 12:14:28 +0200148/*
149 * In the case where PGDIR_SHIFT is larger than KVM_PHYS_SHIFT, we can address
150 * the entire IPA input range with a single pgd entry, and we would only need
151 * one pgd entry. Note that in this case, the pgd is actually not used by
152 * the MMU for Stage-2 translations, but is merely a fake pgd used as a data
153 * structure for the kernel pgtable macros to work.
154 */
155#if PGDIR_SHIFT > KVM_PHYS_SHIFT
156#define PTRS_PER_S2_PGD_SHIFT 0
157#else
158#define PTRS_PER_S2_PGD_SHIFT (KVM_PHYS_SHIFT - PGDIR_SHIFT)
159#endif
160#define PTRS_PER_S2_PGD (1 << PTRS_PER_S2_PGD_SHIFT)
161#define S2_PGD_ORDER get_order(PTRS_PER_S2_PGD * sizeof(pgd_t))
162
163/*
164 * If we are concatenating first level stage-2 page tables, we would have less
165 * than or equal to 16 pointers in the fake PGD, because that's what the
166 * architecture allows. In this case, (4 - CONFIG_ARM64_PGTABLE_LEVELS)
167 * represents the first level for the host, and we add 1 to go to the next
168 * level (which uses contatenation) for the stage-2 tables.
169 */
170#if PTRS_PER_S2_PGD <= 16
171#define KVM_PREALLOC_LEVEL (4 - CONFIG_ARM64_PGTABLE_LEVELS + 1)
172#else
173#define KVM_PREALLOC_LEVEL (0)
174#endif
175
176/**
177 * kvm_prealloc_hwpgd - allocate inital table for VTTBR
178 * @kvm: The KVM struct pointer for the VM.
179 * @pgd: The kernel pseudo pgd
180 *
181 * When the kernel uses more levels of page tables than the guest, we allocate
182 * a fake PGD and pre-populate it to point to the next-level page table, which
183 * will be the real initial page table pointed to by the VTTBR.
184 *
185 * When KVM_PREALLOC_LEVEL==2, we allocate a single page for the PMD and
186 * the kernel will use folded pud. When KVM_PREALLOC_LEVEL==1, we
187 * allocate 2 consecutive PUD pages.
188 */
189static inline int kvm_prealloc_hwpgd(struct kvm *kvm, pgd_t *pgd)
190{
191 unsigned int i;
192 unsigned long hwpgd;
193
194 if (KVM_PREALLOC_LEVEL == 0)
195 return 0;
196
197 hwpgd = __get_free_pages(GFP_KERNEL | __GFP_ZERO, PTRS_PER_S2_PGD_SHIFT);
198 if (!hwpgd)
199 return -ENOMEM;
200
201 for (i = 0; i < PTRS_PER_S2_PGD; i++) {
202 if (KVM_PREALLOC_LEVEL == 1)
203 pgd_populate(NULL, pgd + i,
204 (pud_t *)hwpgd + i * PTRS_PER_PUD);
205 else if (KVM_PREALLOC_LEVEL == 2)
206 pud_populate(NULL, pud_offset(pgd, 0) + i,
207 (pmd_t *)hwpgd + i * PTRS_PER_PMD);
208 }
209
210 return 0;
211}
212
213static inline void *kvm_get_hwpgd(struct kvm *kvm)
214{
215 pgd_t *pgd = kvm->arch.pgd;
216 pud_t *pud;
217
218 if (KVM_PREALLOC_LEVEL == 0)
219 return pgd;
220
221 pud = pud_offset(pgd, 0);
222 if (KVM_PREALLOC_LEVEL == 1)
223 return pud;
224
225 BUG_ON(KVM_PREALLOC_LEVEL != 2);
226 return pmd_offset(pud, 0);
227}
228
229static inline void kvm_free_hwpgd(struct kvm *kvm)
230{
231 if (KVM_PREALLOC_LEVEL > 0) {
232 unsigned long hwpgd = (unsigned long)kvm_get_hwpgd(kvm);
233 free_pages(hwpgd, PTRS_PER_S2_PGD_SHIFT);
234 }
235}
236
Christoffer Dall4f853a72014-05-09 23:31:31 +0200237static inline bool kvm_page_empty(void *ptr)
238{
239 struct page *ptr_page = virt_to_page(ptr);
240 return page_count(ptr_page) == 1;
241}
242
Christoffer Dall38f791a2014-10-10 12:14:28 +0200243#define kvm_pte_table_empty(kvm, ptep) kvm_page_empty(ptep)
244
245#ifdef __PAGETABLE_PMD_FOLDED
246#define kvm_pmd_table_empty(kvm, pmdp) (0)
Christoffer Dall4f853a72014-05-09 23:31:31 +0200247#else
Christoffer Dall38f791a2014-10-10 12:14:28 +0200248#define kvm_pmd_table_empty(kvm, pmdp) \
249 (kvm_page_empty(pmdp) && (!(kvm) || KVM_PREALLOC_LEVEL < 2))
Christoffer Dall4f853a72014-05-09 23:31:31 +0200250#endif
Christoffer Dall38f791a2014-10-10 12:14:28 +0200251
252#ifdef __PAGETABLE_PUD_FOLDED
253#define kvm_pud_table_empty(kvm, pudp) (0)
254#else
255#define kvm_pud_table_empty(kvm, pudp) \
256 (kvm_page_empty(pudp) && (!(kvm) || KVM_PREALLOC_LEVEL < 1))
257#endif
Christoffer Dall4f853a72014-05-09 23:31:31 +0200258
259
Marc Zyngier37c43752012-12-10 15:35:24 +0000260struct kvm;
261
Marc Zyngier2d58b732014-01-14 19:13:10 +0000262#define kvm_flush_dcache_to_poc(a,l) __flush_dcache_area((a), (l))
263
264static inline bool vcpu_has_cache_enabled(struct kvm_vcpu *vcpu)
Marc Zyngier37c43752012-12-10 15:35:24 +0000265{
Marc Zyngier2d58b732014-01-14 19:13:10 +0000266 return (vcpu_sys_reg(vcpu, SCTLR_EL1) & 0b101) == 0b101;
267}
268
Marc Zyngier0d3e4d42015-01-05 21:13:24 +0000269static inline void __coherent_cache_guest_page(struct kvm_vcpu *vcpu, pfn_t pfn,
270 unsigned long size,
271 bool ipa_uncached)
Marc Zyngier2d58b732014-01-14 19:13:10 +0000272{
Marc Zyngier0d3e4d42015-01-05 21:13:24 +0000273 void *va = page_address(pfn_to_page(pfn));
274
Laszlo Ersek840f4bf2014-11-17 14:58:52 +0000275 if (!vcpu_has_cache_enabled(vcpu) || ipa_uncached)
Marc Zyngier0d3e4d42015-01-05 21:13:24 +0000276 kvm_flush_dcache_to_poc(va, size);
Marc Zyngier2d58b732014-01-14 19:13:10 +0000277
Marc Zyngier37c43752012-12-10 15:35:24 +0000278 if (!icache_is_aliasing()) { /* PIPT */
Marc Zyngier0d3e4d42015-01-05 21:13:24 +0000279 flush_icache_range((unsigned long)va,
280 (unsigned long)va + size);
Marc Zyngier37c43752012-12-10 15:35:24 +0000281 } else if (!icache_is_aivivt()) { /* non ASID-tagged VIVT */
282 /* any kind of VIPT cache */
283 __flush_icache_all();
284 }
285}
286
Marc Zyngier363ef892014-12-19 16:48:06 +0000287static inline void __kvm_flush_dcache_pte(pte_t pte)
288{
289 struct page *page = pte_page(pte);
290 kvm_flush_dcache_to_poc(page_address(page), PAGE_SIZE);
291}
292
293static inline void __kvm_flush_dcache_pmd(pmd_t pmd)
294{
295 struct page *page = pmd_page(pmd);
296 kvm_flush_dcache_to_poc(page_address(page), PMD_SIZE);
297}
298
299static inline void __kvm_flush_dcache_pud(pud_t pud)
300{
301 struct page *page = pud_page(pud);
302 kvm_flush_dcache_to_poc(page_address(page), PUD_SIZE);
303}
304
Santosh Shilimkar4fda3422013-11-19 14:59:12 -0500305#define kvm_virt_to_phys(x) __virt_to_phys((unsigned long)(x))
Marc Zyngier37c43752012-12-10 15:35:24 +0000306
Marc Zyngier3c1e7162014-12-19 16:05:31 +0000307void kvm_set_way_flush(struct kvm_vcpu *vcpu);
308void kvm_toggle_cache(struct kvm_vcpu *vcpu, bool was_enabled);
Marc Zyngier9d218a12014-01-15 12:50:23 +0000309
Ard Biesheuvele4c5a682015-03-19 16:42:28 +0000310static inline bool __kvm_cpu_uses_extended_idmap(void)
311{
312 return __cpu_uses_extended_idmap();
313}
314
315static inline void __kvm_extend_hypmap(pgd_t *boot_hyp_pgd,
316 pgd_t *hyp_pgd,
317 pgd_t *merged_hyp_pgd,
318 unsigned long hyp_idmap_start)
319{
320 int idmap_idx;
321
322 /*
323 * Use the first entry to access the HYP mappings. It is
324 * guaranteed to be free, otherwise we wouldn't use an
325 * extended idmap.
326 */
327 VM_BUG_ON(pgd_val(merged_hyp_pgd[0]));
328 merged_hyp_pgd[0] = __pgd(__pa(hyp_pgd) | PMD_TYPE_TABLE);
329
330 /*
331 * Create another extended level entry that points to the boot HYP map,
332 * which contains an ID mapping of the HYP init code. We essentially
333 * merge the boot and runtime HYP maps by doing so, but they don't
334 * overlap anyway, so this is fine.
335 */
336 idmap_idx = hyp_idmap_start >> VA_BITS;
337 VM_BUG_ON(pgd_val(merged_hyp_pgd[idmap_idx]));
338 merged_hyp_pgd[idmap_idx] = __pgd(__pa(boot_hyp_pgd) | PMD_TYPE_TABLE);
339}
340
Marc Zyngier37c43752012-12-10 15:35:24 +0000341#endif /* __ASSEMBLY__ */
342#endif /* __ARM64_KVM_MMU_H__ */