xref: /openbmc/linux/arch/arm64/include/asm/kvm_mmu.h (revision e48d53a91f6e90873e21a5ca5e8c0d7a9f8936a4)
137c43753SMarc Zyngier /*
237c43753SMarc Zyngier  * Copyright (C) 2012,2013 - ARM Ltd
337c43753SMarc Zyngier  * Author: Marc Zyngier <marc.zyngier@arm.com>
437c43753SMarc Zyngier  *
537c43753SMarc Zyngier  * This program is free software; you can redistribute it and/or modify
637c43753SMarc Zyngier  * it under the terms of the GNU General Public License version 2 as
737c43753SMarc Zyngier  * published by the Free Software Foundation.
837c43753SMarc Zyngier  *
937c43753SMarc Zyngier  * This program is distributed in the hope that it will be useful,
1037c43753SMarc Zyngier  * but WITHOUT ANY WARRANTY; without even the implied warranty of
1137c43753SMarc Zyngier  * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
1237c43753SMarc Zyngier  * GNU General Public License for more details.
1337c43753SMarc Zyngier  *
1437c43753SMarc Zyngier  * You should have received a copy of the GNU General Public License
1537c43753SMarc Zyngier  * along with this program.  If not, see <http://www.gnu.org/licenses/>.
1637c43753SMarc Zyngier  */
1737c43753SMarc Zyngier 
1837c43753SMarc Zyngier #ifndef __ARM64_KVM_MMU_H__
1937c43753SMarc Zyngier #define __ARM64_KVM_MMU_H__
2037c43753SMarc Zyngier 
2137c43753SMarc Zyngier #include <asm/page.h>
2237c43753SMarc Zyngier #include <asm/memory.h>
2320475f78SVladimir Murzin #include <asm/cpufeature.h>
2437c43753SMarc Zyngier 
2537c43753SMarc Zyngier /*
26cedbb8b7SMarc Zyngier  * As ARMv8.0 only has the TTBR0_EL2 register, we cannot express
2737c43753SMarc Zyngier  * "negative" addresses. This makes it impossible to directly share
2837c43753SMarc Zyngier  * mappings with the kernel.
2937c43753SMarc Zyngier  *
3037c43753SMarc Zyngier  * Instead, give the HYP mode its own VA region at a fixed offset from
3137c43753SMarc Zyngier  * the kernel by just masking the top bits (which are all ones for a
3282a81bffSMarc Zyngier  * kernel address). We need to find out how many bits to mask.
33cedbb8b7SMarc Zyngier  *
3482a81bffSMarc Zyngier  * We want to build a set of page tables that cover both parts of the
3582a81bffSMarc Zyngier  * idmap (the trampoline page used to initialize EL2), and our normal
3682a81bffSMarc Zyngier  * runtime VA space, at the same time.
3782a81bffSMarc Zyngier  *
3882a81bffSMarc Zyngier  * Given that the kernel uses VA_BITS for its entire address space,
3982a81bffSMarc Zyngier  * and that half of that space (VA_BITS - 1) is used for the linear
4082a81bffSMarc Zyngier  * mapping, we can also limit the EL2 space to (VA_BITS - 1).
4182a81bffSMarc Zyngier  *
4282a81bffSMarc Zyngier  * The main question is "Within the VA_BITS space, does EL2 use the
4382a81bffSMarc Zyngier  * top or the bottom half of that space to shadow the kernel's linear
4482a81bffSMarc Zyngier  * mapping?". As we need to idmap the trampoline page, this is
4582a81bffSMarc Zyngier  * determined by the range in which this page lives.
4682a81bffSMarc Zyngier  *
4782a81bffSMarc Zyngier  * If the page is in the bottom half, we have to use the top half. If
4882a81bffSMarc Zyngier  * the page is in the top half, we have to use the bottom half:
4982a81bffSMarc Zyngier  *
502077be67SLaura Abbott  * T = __pa_symbol(__hyp_idmap_text_start)
5182a81bffSMarc Zyngier  * if (T & BIT(VA_BITS - 1))
5282a81bffSMarc Zyngier  *	HYP_VA_MIN = 0  //idmap in upper half
5382a81bffSMarc Zyngier  * else
5482a81bffSMarc Zyngier  *	HYP_VA_MIN = 1 << (VA_BITS - 1)
5582a81bffSMarc Zyngier  * HYP_VA_MAX = HYP_VA_MIN + (1 << (VA_BITS - 1)) - 1
5682a81bffSMarc Zyngier  *
5782a81bffSMarc Zyngier  * This of course assumes that the trampoline page exists within the
5882a81bffSMarc Zyngier  * VA_BITS range. If it doesn't, then it means we're in the odd case
5982a81bffSMarc Zyngier  * where the kernel idmap (as well as HYP) uses more levels than the
6082a81bffSMarc Zyngier  * kernel runtime page tables (as seen when the kernel is configured
6182a81bffSMarc Zyngier  * for 4k pages, 39bits VA, and yet memory lives just above that
6282a81bffSMarc Zyngier  * limit, forcing the idmap to use 4 levels of page tables while the
6382a81bffSMarc Zyngier  * kernel itself only uses 3). In this particular case, it doesn't
6482a81bffSMarc Zyngier  * matter which side of VA_BITS we use, as we're guaranteed not to
6582a81bffSMarc Zyngier  * conflict with anything.
6682a81bffSMarc Zyngier  *
6782a81bffSMarc Zyngier  * When using VHE, there are no separate hyp mappings and all KVM
6882a81bffSMarc Zyngier  * functionality is already mapped as part of the main kernel
6982a81bffSMarc Zyngier  * mappings, and none of this applies in that case.
7037c43753SMarc Zyngier  */
71d53d9bc6SMarc Zyngier 
7237c43753SMarc Zyngier #ifdef __ASSEMBLY__
7337c43753SMarc Zyngier 
74cedbb8b7SMarc Zyngier #include <asm/alternative.h>
75cedbb8b7SMarc Zyngier 
7637c43753SMarc Zyngier /*
7737c43753SMarc Zyngier  * Convert a kernel VA into a HYP VA.
7837c43753SMarc Zyngier  * reg: VA to be converted.
79fd81e6bfSMarc Zyngier  *
802b4d1606SMarc Zyngier  * The actual code generation takes place in kvm_update_va_mask, and
812b4d1606SMarc Zyngier  * the instructions below are only there to reserve the space and
822b4d1606SMarc Zyngier  * perform the register allocation (kvm_update_va_mask uses the
832b4d1606SMarc Zyngier  * specific registers encoded in the instructions).
8437c43753SMarc Zyngier  */
8537c43753SMarc Zyngier .macro kern_hyp_va	reg
862b4d1606SMarc Zyngier alternative_cb kvm_update_va_mask
87ed57cac8SMarc Zyngier 	and     \reg, \reg, #1		/* mask with va_mask */
88ed57cac8SMarc Zyngier 	ror	\reg, \reg, #1		/* rotate to the first tag bit */
89ed57cac8SMarc Zyngier 	add	\reg, \reg, #0		/* insert the low 12 bits of the tag */
90ed57cac8SMarc Zyngier 	add	\reg, \reg, #0, lsl 12	/* insert the top 12 bits of the tag */
91ed57cac8SMarc Zyngier 	ror	\reg, \reg, #63		/* rotate back */
922b4d1606SMarc Zyngier alternative_cb_end
9337c43753SMarc Zyngier .endm
9437c43753SMarc Zyngier 
9537c43753SMarc Zyngier #else
9637c43753SMarc Zyngier 
9738f791a4SChristoffer Dall #include <asm/pgalloc.h>
9802f7760eSWill Deacon #include <asm/cache.h>
9937c43753SMarc Zyngier #include <asm/cacheflush.h>
100e4c5a685SArd Biesheuvel #include <asm/mmu_context.h>
101e4c5a685SArd Biesheuvel #include <asm/pgtable.h>
10237c43753SMarc Zyngier 
1032b4d1606SMarc Zyngier void kvm_update_va_mask(struct alt_instr *alt,
1042b4d1606SMarc Zyngier 			__le32 *origptr, __le32 *updptr, int nr_inst);
1052b4d1606SMarc Zyngier 
106fd81e6bfSMarc Zyngier static inline unsigned long __kern_hyp_va(unsigned long v)
107fd81e6bfSMarc Zyngier {
108ed57cac8SMarc Zyngier 	asm volatile(ALTERNATIVE_CB("and %0, %0, #1\n"
109ed57cac8SMarc Zyngier 				    "ror %0, %0, #1\n"
110ed57cac8SMarc Zyngier 				    "add %0, %0, #0\n"
111ed57cac8SMarc Zyngier 				    "add %0, %0, #0, lsl 12\n"
112ed57cac8SMarc Zyngier 				    "ror %0, %0, #63\n",
1132b4d1606SMarc Zyngier 				    kvm_update_va_mask)
1142b4d1606SMarc Zyngier 		     : "+r" (v));
115fd81e6bfSMarc Zyngier 	return v;
116fd81e6bfSMarc Zyngier }
117fd81e6bfSMarc Zyngier 
11894d0e598SMarc Zyngier #define kern_hyp_va(v) 	((typeof(v))(__kern_hyp_va((unsigned long)(v))))
11937c43753SMarc Zyngier 
12037c43753SMarc Zyngier /*
12144a497abSMarc Zyngier  * Obtain the PC-relative address of a kernel symbol
12244a497abSMarc Zyngier  * s: symbol
12344a497abSMarc Zyngier  *
12444a497abSMarc Zyngier  * The goal of this macro is to return a symbol's address based on a
12544a497abSMarc Zyngier  * PC-relative computation, as opposed to a loading the VA from a
12644a497abSMarc Zyngier  * constant pool or something similar. This works well for HYP, as an
12744a497abSMarc Zyngier  * absolute VA is guaranteed to be wrong. Only use this if trying to
12844a497abSMarc Zyngier  * obtain the address of a symbol (i.e. not something you obtained by
12944a497abSMarc Zyngier  * following a pointer).
13044a497abSMarc Zyngier  */
13144a497abSMarc Zyngier #define hyp_symbol_addr(s)						\
13244a497abSMarc Zyngier 	({								\
13344a497abSMarc Zyngier 		typeof(s) *addr;					\
13444a497abSMarc Zyngier 		asm("adrp	%0, %1\n"				\
13544a497abSMarc Zyngier 		    "add	%0, %0, :lo12:%1\n"			\
13644a497abSMarc Zyngier 		    : "=r" (addr) : "S" (&s));				\
13744a497abSMarc Zyngier 		addr;							\
13844a497abSMarc Zyngier 	})
13944a497abSMarc Zyngier 
14044a497abSMarc Zyngier /*
141dbff124eSJoel Schopp  * We currently only support a 40bit IPA.
14237c43753SMarc Zyngier  */
143dbff124eSJoel Schopp #define KVM_PHYS_SHIFT	(40)
14437c43753SMarc Zyngier #define KVM_PHYS_SIZE	(1UL << KVM_PHYS_SHIFT)
14537c43753SMarc Zyngier #define KVM_PHYS_MASK	(KVM_PHYS_SIZE - 1UL)
14637c43753SMarc Zyngier 
147c0ef6326SSuzuki K Poulose #include <asm/stage2_pgtable.h>
148c0ef6326SSuzuki K Poulose 
149c8dddecdSMarc Zyngier int create_hyp_mappings(void *from, void *to, pgprot_t prot);
150807a3784SMarc Zyngier int create_hyp_io_mappings(phys_addr_t phys_addr, size_t size,
1511bb32a44SMarc Zyngier 			   void __iomem **kaddr,
1521bb32a44SMarc Zyngier 			   void __iomem **haddr);
153dc2e4633SMarc Zyngier int create_hyp_exec_mappings(phys_addr_t phys_addr, size_t size,
154dc2e4633SMarc Zyngier 			     void **haddr);
15537c43753SMarc Zyngier void free_hyp_pgds(void);
15637c43753SMarc Zyngier 
157957db105SChristoffer Dall void stage2_unmap_vm(struct kvm *kvm);
15837c43753SMarc Zyngier int kvm_alloc_stage2_pgd(struct kvm *kvm);
15937c43753SMarc Zyngier void kvm_free_stage2_pgd(struct kvm *kvm);
16037c43753SMarc Zyngier int kvm_phys_addr_ioremap(struct kvm *kvm, phys_addr_t guest_ipa,
161c40f2f8fSArd Biesheuvel 			  phys_addr_t pa, unsigned long size, bool writable);
16237c43753SMarc Zyngier 
16337c43753SMarc Zyngier int kvm_handle_guest_abort(struct kvm_vcpu *vcpu, struct kvm_run *run);
16437c43753SMarc Zyngier 
16537c43753SMarc Zyngier void kvm_mmu_free_memory_caches(struct kvm_vcpu *vcpu);
16637c43753SMarc Zyngier 
16737c43753SMarc Zyngier phys_addr_t kvm_mmu_get_httbr(void);
16837c43753SMarc Zyngier phys_addr_t kvm_get_idmap_vector(void);
16937c43753SMarc Zyngier int kvm_mmu_init(void);
17037c43753SMarc Zyngier void kvm_clear_hyp_idmap(void);
17137c43753SMarc Zyngier 
17237c43753SMarc Zyngier #define	kvm_set_pte(ptep, pte)		set_pte(ptep, pte)
173ad361f09SChristoffer Dall #define	kvm_set_pmd(pmdp, pmd)		set_pmd(pmdp, pmd)
17437c43753SMarc Zyngier 
17506485053SCatalin Marinas static inline pte_t kvm_s2pte_mkwrite(pte_t pte)
17637c43753SMarc Zyngier {
17706485053SCatalin Marinas 	pte_val(pte) |= PTE_S2_RDWR;
17806485053SCatalin Marinas 	return pte;
17937c43753SMarc Zyngier }
18037c43753SMarc Zyngier 
18106485053SCatalin Marinas static inline pmd_t kvm_s2pmd_mkwrite(pmd_t pmd)
182ad361f09SChristoffer Dall {
18306485053SCatalin Marinas 	pmd_val(pmd) |= PMD_S2_RDWR;
18406485053SCatalin Marinas 	return pmd;
185ad361f09SChristoffer Dall }
186ad361f09SChristoffer Dall 
187d0e22b4aSMarc Zyngier static inline pte_t kvm_s2pte_mkexec(pte_t pte)
188d0e22b4aSMarc Zyngier {
189d0e22b4aSMarc Zyngier 	pte_val(pte) &= ~PTE_S2_XN;
190d0e22b4aSMarc Zyngier 	return pte;
191d0e22b4aSMarc Zyngier }
192d0e22b4aSMarc Zyngier 
193d0e22b4aSMarc Zyngier static inline pmd_t kvm_s2pmd_mkexec(pmd_t pmd)
194d0e22b4aSMarc Zyngier {
195d0e22b4aSMarc Zyngier 	pmd_val(pmd) &= ~PMD_S2_XN;
196d0e22b4aSMarc Zyngier 	return pmd;
197d0e22b4aSMarc Zyngier }
198d0e22b4aSMarc Zyngier 
19920a004e7SWill Deacon static inline void kvm_set_s2pte_readonly(pte_t *ptep)
2008199ed0eSMario Smarduch {
2010966253dSCatalin Marinas 	pteval_t old_pteval, pteval;
20206485053SCatalin Marinas 
20320a004e7SWill Deacon 	pteval = READ_ONCE(pte_val(*ptep));
2040966253dSCatalin Marinas 	do {
2050966253dSCatalin Marinas 		old_pteval = pteval;
2060966253dSCatalin Marinas 		pteval &= ~PTE_S2_RDWR;
2070966253dSCatalin Marinas 		pteval |= PTE_S2_RDONLY;
20820a004e7SWill Deacon 		pteval = cmpxchg_relaxed(&pte_val(*ptep), old_pteval, pteval);
2090966253dSCatalin Marinas 	} while (pteval != old_pteval);
2108199ed0eSMario Smarduch }
2118199ed0eSMario Smarduch 
21220a004e7SWill Deacon static inline bool kvm_s2pte_readonly(pte_t *ptep)
2138199ed0eSMario Smarduch {
21420a004e7SWill Deacon 	return (READ_ONCE(pte_val(*ptep)) & PTE_S2_RDWR) == PTE_S2_RDONLY;
2158199ed0eSMario Smarduch }
2168199ed0eSMario Smarduch 
21720a004e7SWill Deacon static inline bool kvm_s2pte_exec(pte_t *ptep)
2187a3796d2SMarc Zyngier {
21920a004e7SWill Deacon 	return !(READ_ONCE(pte_val(*ptep)) & PTE_S2_XN);
2207a3796d2SMarc Zyngier }
2217a3796d2SMarc Zyngier 
22220a004e7SWill Deacon static inline void kvm_set_s2pmd_readonly(pmd_t *pmdp)
2238199ed0eSMario Smarduch {
22420a004e7SWill Deacon 	kvm_set_s2pte_readonly((pte_t *)pmdp);
2258199ed0eSMario Smarduch }
2268199ed0eSMario Smarduch 
22720a004e7SWill Deacon static inline bool kvm_s2pmd_readonly(pmd_t *pmdp)
2288199ed0eSMario Smarduch {
22920a004e7SWill Deacon 	return kvm_s2pte_readonly((pte_t *)pmdp);
23038f791a4SChristoffer Dall }
23138f791a4SChristoffer Dall 
23220a004e7SWill Deacon static inline bool kvm_s2pmd_exec(pmd_t *pmdp)
2337a3796d2SMarc Zyngier {
23420a004e7SWill Deacon 	return !(READ_ONCE(pmd_val(*pmdp)) & PMD_S2_XN);
2357a3796d2SMarc Zyngier }
2367a3796d2SMarc Zyngier 
2374f853a71SChristoffer Dall static inline bool kvm_page_empty(void *ptr)
2384f853a71SChristoffer Dall {
2394f853a71SChristoffer Dall 	struct page *ptr_page = virt_to_page(ptr);
2404f853a71SChristoffer Dall 	return page_count(ptr_page) == 1;
2414f853a71SChristoffer Dall }
2424f853a71SChristoffer Dall 
24366f877faSSuzuki K Poulose #define hyp_pte_table_empty(ptep) kvm_page_empty(ptep)
24438f791a4SChristoffer Dall 
24538f791a4SChristoffer Dall #ifdef __PAGETABLE_PMD_FOLDED
24666f877faSSuzuki K Poulose #define hyp_pmd_table_empty(pmdp) (0)
2474f853a71SChristoffer Dall #else
24866f877faSSuzuki K Poulose #define hyp_pmd_table_empty(pmdp) kvm_page_empty(pmdp)
2494f853a71SChristoffer Dall #endif
25038f791a4SChristoffer Dall 
25138f791a4SChristoffer Dall #ifdef __PAGETABLE_PUD_FOLDED
25266f877faSSuzuki K Poulose #define hyp_pud_table_empty(pudp) (0)
25338f791a4SChristoffer Dall #else
25466f877faSSuzuki K Poulose #define hyp_pud_table_empty(pudp) kvm_page_empty(pudp)
25538f791a4SChristoffer Dall #endif
2564f853a71SChristoffer Dall 
25737c43753SMarc Zyngier struct kvm;
25837c43753SMarc Zyngier 
2592d58b733SMarc Zyngier #define kvm_flush_dcache_to_poc(a,l)	__flush_dcache_area((a), (l))
2602d58b733SMarc Zyngier 
2612d58b733SMarc Zyngier static inline bool vcpu_has_cache_enabled(struct kvm_vcpu *vcpu)
2622d58b733SMarc Zyngier {
2638d404c4cSChristoffer Dall 	return (vcpu_read_sys_reg(vcpu, SCTLR_EL1) & 0b101) == 0b101;
2642d58b733SMarc Zyngier }
2652d58b733SMarc Zyngier 
26617ab9d57SMarc Zyngier static inline void __clean_dcache_guest_page(kvm_pfn_t pfn, unsigned long size)
26737c43753SMarc Zyngier {
2680d3e4d4fSMarc Zyngier 	void *va = page_address(pfn_to_page(pfn));
2690d3e4d4fSMarc Zyngier 
270*e48d53a9SMarc Zyngier 	/*
271*e48d53a9SMarc Zyngier 	 * With FWB, we ensure that the guest always accesses memory using
272*e48d53a9SMarc Zyngier 	 * cacheable attributes, and we don't have to clean to PoC when
273*e48d53a9SMarc Zyngier 	 * faulting in pages. Furthermore, FWB implies IDC, so cleaning to
274*e48d53a9SMarc Zyngier 	 * PoU is not required either in this case.
275*e48d53a9SMarc Zyngier 	 */
276*e48d53a9SMarc Zyngier 	if (cpus_have_const_cap(ARM64_HAS_STAGE2_FWB))
277*e48d53a9SMarc Zyngier 		return;
278*e48d53a9SMarc Zyngier 
2790d3e4d4fSMarc Zyngier 	kvm_flush_dcache_to_poc(va, size);
280a15f6939SMarc Zyngier }
2812d58b733SMarc Zyngier 
28217ab9d57SMarc Zyngier static inline void __invalidate_icache_guest_page(kvm_pfn_t pfn,
283a15f6939SMarc Zyngier 						  unsigned long size)
284a15f6939SMarc Zyngier {
28587da236eSWill Deacon 	if (icache_is_aliasing()) {
28637c43753SMarc Zyngier 		/* any kind of VIPT cache */
28737c43753SMarc Zyngier 		__flush_icache_all();
28887da236eSWill Deacon 	} else if (is_kernel_in_hyp_mode() || !icache_is_vpipt()) {
28987da236eSWill Deacon 		/* PIPT or VPIPT at EL2 (see comment in __kvm_tlb_flush_vmid_ipa) */
290a15f6939SMarc Zyngier 		void *va = page_address(pfn_to_page(pfn));
291a15f6939SMarc Zyngier 
2924fee9473SMarc Zyngier 		invalidate_icache_range((unsigned long)va,
29387da236eSWill Deacon 					(unsigned long)va + size);
29437c43753SMarc Zyngier 	}
29537c43753SMarc Zyngier }
29637c43753SMarc Zyngier 
297363ef89fSMarc Zyngier static inline void __kvm_flush_dcache_pte(pte_t pte)
298363ef89fSMarc Zyngier {
299*e48d53a9SMarc Zyngier 	if (!cpus_have_const_cap(ARM64_HAS_STAGE2_FWB)) {
300363ef89fSMarc Zyngier 		struct page *page = pte_page(pte);
301363ef89fSMarc Zyngier 		kvm_flush_dcache_to_poc(page_address(page), PAGE_SIZE);
302363ef89fSMarc Zyngier 	}
303*e48d53a9SMarc Zyngier }
304363ef89fSMarc Zyngier 
305363ef89fSMarc Zyngier static inline void __kvm_flush_dcache_pmd(pmd_t pmd)
306363ef89fSMarc Zyngier {
307*e48d53a9SMarc Zyngier 	if (!cpus_have_const_cap(ARM64_HAS_STAGE2_FWB)) {
308363ef89fSMarc Zyngier 		struct page *page = pmd_page(pmd);
309363ef89fSMarc Zyngier 		kvm_flush_dcache_to_poc(page_address(page), PMD_SIZE);
310363ef89fSMarc Zyngier 	}
311*e48d53a9SMarc Zyngier }
312363ef89fSMarc Zyngier 
313363ef89fSMarc Zyngier static inline void __kvm_flush_dcache_pud(pud_t pud)
314363ef89fSMarc Zyngier {
315*e48d53a9SMarc Zyngier 	if (!cpus_have_const_cap(ARM64_HAS_STAGE2_FWB)) {
316363ef89fSMarc Zyngier 		struct page *page = pud_page(pud);
317363ef89fSMarc Zyngier 		kvm_flush_dcache_to_poc(page_address(page), PUD_SIZE);
318363ef89fSMarc Zyngier 	}
319*e48d53a9SMarc Zyngier }
320363ef89fSMarc Zyngier 
3212077be67SLaura Abbott #define kvm_virt_to_phys(x)		__pa_symbol(x)
32237c43753SMarc Zyngier 
3233c1e7165SMarc Zyngier void kvm_set_way_flush(struct kvm_vcpu *vcpu);
3243c1e7165SMarc Zyngier void kvm_toggle_cache(struct kvm_vcpu *vcpu, bool was_enabled);
3259d218a1fSMarc Zyngier 
326e4c5a685SArd Biesheuvel static inline bool __kvm_cpu_uses_extended_idmap(void)
327e4c5a685SArd Biesheuvel {
328fa2a8445SKristina Martsenko 	return __cpu_uses_extended_idmap_level();
329fa2a8445SKristina Martsenko }
330fa2a8445SKristina Martsenko 
331fa2a8445SKristina Martsenko static inline unsigned long __kvm_idmap_ptrs_per_pgd(void)
332fa2a8445SKristina Martsenko {
333fa2a8445SKristina Martsenko 	return idmap_ptrs_per_pgd;
334e4c5a685SArd Biesheuvel }
335e4c5a685SArd Biesheuvel 
33619338304SKristina Martsenko /*
33719338304SKristina Martsenko  * Can't use pgd_populate here, because the extended idmap adds an extra level
33819338304SKristina Martsenko  * above CONFIG_PGTABLE_LEVELS (which is 2 or 3 if we're using the extended
33919338304SKristina Martsenko  * idmap), and pgd_populate is only available if CONFIG_PGTABLE_LEVELS = 4.
34019338304SKristina Martsenko  */
341e4c5a685SArd Biesheuvel static inline void __kvm_extend_hypmap(pgd_t *boot_hyp_pgd,
342e4c5a685SArd Biesheuvel 				       pgd_t *hyp_pgd,
343e4c5a685SArd Biesheuvel 				       pgd_t *merged_hyp_pgd,
344e4c5a685SArd Biesheuvel 				       unsigned long hyp_idmap_start)
345e4c5a685SArd Biesheuvel {
346e4c5a685SArd Biesheuvel 	int idmap_idx;
34775387b92SKristina Martsenko 	u64 pgd_addr;
348e4c5a685SArd Biesheuvel 
349e4c5a685SArd Biesheuvel 	/*
350e4c5a685SArd Biesheuvel 	 * Use the first entry to access the HYP mappings. It is
351e4c5a685SArd Biesheuvel 	 * guaranteed to be free, otherwise we wouldn't use an
352e4c5a685SArd Biesheuvel 	 * extended idmap.
353e4c5a685SArd Biesheuvel 	 */
354e4c5a685SArd Biesheuvel 	VM_BUG_ON(pgd_val(merged_hyp_pgd[0]));
35575387b92SKristina Martsenko 	pgd_addr = __phys_to_pgd_val(__pa(hyp_pgd));
35675387b92SKristina Martsenko 	merged_hyp_pgd[0] = __pgd(pgd_addr | PMD_TYPE_TABLE);
357e4c5a685SArd Biesheuvel 
358e4c5a685SArd Biesheuvel 	/*
359e4c5a685SArd Biesheuvel 	 * Create another extended level entry that points to the boot HYP map,
360e4c5a685SArd Biesheuvel 	 * which contains an ID mapping of the HYP init code. We essentially
361e4c5a685SArd Biesheuvel 	 * merge the boot and runtime HYP maps by doing so, but they don't
362e4c5a685SArd Biesheuvel 	 * overlap anyway, so this is fine.
363e4c5a685SArd Biesheuvel 	 */
364e4c5a685SArd Biesheuvel 	idmap_idx = hyp_idmap_start >> VA_BITS;
365e4c5a685SArd Biesheuvel 	VM_BUG_ON(pgd_val(merged_hyp_pgd[idmap_idx]));
36675387b92SKristina Martsenko 	pgd_addr = __phys_to_pgd_val(__pa(boot_hyp_pgd));
36775387b92SKristina Martsenko 	merged_hyp_pgd[idmap_idx] = __pgd(pgd_addr | PMD_TYPE_TABLE);
368e4c5a685SArd Biesheuvel }
369e4c5a685SArd Biesheuvel 
37020475f78SVladimir Murzin static inline unsigned int kvm_get_vmid_bits(void)
37120475f78SVladimir Murzin {
37246823dd1SDave Martin 	int reg = read_sanitised_ftr_reg(SYS_ID_AA64MMFR1_EL1);
37320475f78SVladimir Murzin 
37428c5dcb2SSuzuki K Poulose 	return (cpuid_feature_extract_unsigned_field(reg, ID_AA64MMFR1_VMIDBITS_SHIFT) == 2) ? 16 : 8;
37520475f78SVladimir Murzin }
37620475f78SVladimir Murzin 
377bf308242SAndre Przywara /*
378bf308242SAndre Przywara  * We are not in the kvm->srcu critical section most of the time, so we take
379bf308242SAndre Przywara  * the SRCU read lock here. Since we copy the data from the user page, we
380bf308242SAndre Przywara  * can immediately drop the lock again.
381bf308242SAndre Przywara  */
382bf308242SAndre Przywara static inline int kvm_read_guest_lock(struct kvm *kvm,
383bf308242SAndre Przywara 				      gpa_t gpa, void *data, unsigned long len)
384bf308242SAndre Przywara {
385bf308242SAndre Przywara 	int srcu_idx = srcu_read_lock(&kvm->srcu);
386bf308242SAndre Przywara 	int ret = kvm_read_guest(kvm, gpa, data, len);
387bf308242SAndre Przywara 
388bf308242SAndre Przywara 	srcu_read_unlock(&kvm->srcu, srcu_idx);
389bf308242SAndre Przywara 
390bf308242SAndre Przywara 	return ret;
391bf308242SAndre Przywara }
392bf308242SAndre Przywara 
393dee39247SMarc Zyngier #ifdef CONFIG_KVM_INDIRECT_VECTORS
394dee39247SMarc Zyngier /*
395dee39247SMarc Zyngier  * EL2 vectors can be mapped and rerouted in a number of ways,
396dee39247SMarc Zyngier  * depending on the kernel configuration and CPU present:
397dee39247SMarc Zyngier  *
398dee39247SMarc Zyngier  * - If the CPU has the ARM64_HARDEN_BRANCH_PREDICTOR cap, the
399dee39247SMarc Zyngier  *   hardening sequence is placed in one of the vector slots, which is
400dee39247SMarc Zyngier  *   executed before jumping to the real vectors.
401dee39247SMarc Zyngier  *
402dee39247SMarc Zyngier  * - If the CPU has both the ARM64_HARDEN_EL2_VECTORS cap and the
403dee39247SMarc Zyngier  *   ARM64_HARDEN_BRANCH_PREDICTOR cap, the slot containing the
404dee39247SMarc Zyngier  *   hardening sequence is mapped next to the idmap page, and executed
405dee39247SMarc Zyngier  *   before jumping to the real vectors.
406dee39247SMarc Zyngier  *
407dee39247SMarc Zyngier  * - If the CPU only has the ARM64_HARDEN_EL2_VECTORS cap, then an
408dee39247SMarc Zyngier  *   empty slot is selected, mapped next to the idmap page, and
409dee39247SMarc Zyngier  *   executed before jumping to the real vectors.
410dee39247SMarc Zyngier  *
411dee39247SMarc Zyngier  * Note that ARM64_HARDEN_EL2_VECTORS is somewhat incompatible with
412dee39247SMarc Zyngier  * VHE, as we don't have hypervisor-specific mappings. If the system
413dee39247SMarc Zyngier  * is VHE and yet selects this capability, it will be ignored.
414dee39247SMarc Zyngier  */
4156840bdd7SMarc Zyngier #include <asm/mmu.h>
4166840bdd7SMarc Zyngier 
417dee39247SMarc Zyngier extern void *__kvm_bp_vect_base;
418dee39247SMarc Zyngier extern int __kvm_harden_el2_vector_slot;
419dee39247SMarc Zyngier 
4206840bdd7SMarc Zyngier static inline void *kvm_get_hyp_vector(void)
4216840bdd7SMarc Zyngier {
4226840bdd7SMarc Zyngier 	struct bp_hardening_data *data = arm64_get_bp_hardening_data();
423dee39247SMarc Zyngier 	void *vect = kern_hyp_va(kvm_ksym_ref(__kvm_hyp_vector));
424dee39247SMarc Zyngier 	int slot = -1;
4256840bdd7SMarc Zyngier 
426dee39247SMarc Zyngier 	if (cpus_have_const_cap(ARM64_HARDEN_BRANCH_PREDICTOR) && data->fn) {
427dee39247SMarc Zyngier 		vect = kern_hyp_va(kvm_ksym_ref(__bp_harden_hyp_vecs_start));
428dee39247SMarc Zyngier 		slot = data->hyp_vectors_slot;
4296840bdd7SMarc Zyngier 	}
4306840bdd7SMarc Zyngier 
431dee39247SMarc Zyngier 	if (this_cpu_has_cap(ARM64_HARDEN_EL2_VECTORS) && !has_vhe()) {
432dee39247SMarc Zyngier 		vect = __kvm_bp_vect_base;
433dee39247SMarc Zyngier 		if (slot == -1)
434dee39247SMarc Zyngier 			slot = __kvm_harden_el2_vector_slot;
435dee39247SMarc Zyngier 	}
436dee39247SMarc Zyngier 
437dee39247SMarc Zyngier 	if (slot != -1)
438dee39247SMarc Zyngier 		vect += slot * SZ_2K;
439dee39247SMarc Zyngier 
4406840bdd7SMarc Zyngier 	return vect;
4416840bdd7SMarc Zyngier }
4426840bdd7SMarc Zyngier 
443dee39247SMarc Zyngier /*  This is only called on a !VHE system */
4446840bdd7SMarc Zyngier static inline int kvm_map_vectors(void)
4456840bdd7SMarc Zyngier {
446dee39247SMarc Zyngier 	/*
447dee39247SMarc Zyngier 	 * HBP  = ARM64_HARDEN_BRANCH_PREDICTOR
448dee39247SMarc Zyngier 	 * HEL2 = ARM64_HARDEN_EL2_VECTORS
449dee39247SMarc Zyngier 	 *
450dee39247SMarc Zyngier 	 * !HBP + !HEL2 -> use direct vectors
451dee39247SMarc Zyngier 	 *  HBP + !HEL2 -> use hardened vectors in place
452dee39247SMarc Zyngier 	 * !HBP +  HEL2 -> allocate one vector slot and use exec mapping
453dee39247SMarc Zyngier 	 *  HBP +  HEL2 -> use hardened vertors and use exec mapping
454dee39247SMarc Zyngier 	 */
455dee39247SMarc Zyngier 	if (cpus_have_const_cap(ARM64_HARDEN_BRANCH_PREDICTOR)) {
456dee39247SMarc Zyngier 		__kvm_bp_vect_base = kvm_ksym_ref(__bp_harden_hyp_vecs_start);
457dee39247SMarc Zyngier 		__kvm_bp_vect_base = kern_hyp_va(__kvm_bp_vect_base);
4586840bdd7SMarc Zyngier 	}
4596840bdd7SMarc Zyngier 
460dee39247SMarc Zyngier 	if (cpus_have_const_cap(ARM64_HARDEN_EL2_VECTORS)) {
461dee39247SMarc Zyngier 		phys_addr_t vect_pa = __pa_symbol(__bp_harden_hyp_vecs_start);
462dee39247SMarc Zyngier 		unsigned long size = (__bp_harden_hyp_vecs_end -
463dee39247SMarc Zyngier 				      __bp_harden_hyp_vecs_start);
464dee39247SMarc Zyngier 
465dee39247SMarc Zyngier 		/*
466dee39247SMarc Zyngier 		 * Always allocate a spare vector slot, as we don't
467dee39247SMarc Zyngier 		 * know yet which CPUs have a BP hardening slot that
468dee39247SMarc Zyngier 		 * we can reuse.
469dee39247SMarc Zyngier 		 */
470dee39247SMarc Zyngier 		__kvm_harden_el2_vector_slot = atomic_inc_return(&arm64_el2_vector_last_slot);
471dee39247SMarc Zyngier 		BUG_ON(__kvm_harden_el2_vector_slot >= BP_HARDEN_EL2_SLOTS);
472dee39247SMarc Zyngier 		return create_hyp_exec_mappings(vect_pa, size,
473dee39247SMarc Zyngier 						&__kvm_bp_vect_base);
474dee39247SMarc Zyngier 	}
475dee39247SMarc Zyngier 
476dee39247SMarc Zyngier 	return 0;
477dee39247SMarc Zyngier }
4786840bdd7SMarc Zyngier #else
4796840bdd7SMarc Zyngier static inline void *kvm_get_hyp_vector(void)
4806840bdd7SMarc Zyngier {
4813c5e8123SMarc Zyngier 	return kern_hyp_va(kvm_ksym_ref(__kvm_hyp_vector));
4826840bdd7SMarc Zyngier }
4836840bdd7SMarc Zyngier 
4846840bdd7SMarc Zyngier static inline int kvm_map_vectors(void)
4856840bdd7SMarc Zyngier {
4866840bdd7SMarc Zyngier 	return 0;
4876840bdd7SMarc Zyngier }
4886840bdd7SMarc Zyngier #endif
4896840bdd7SMarc Zyngier 
49055e3748eSMarc Zyngier #ifdef CONFIG_ARM64_SSBD
49155e3748eSMarc Zyngier DECLARE_PER_CPU_READ_MOSTLY(u64, arm64_ssbd_callback_required);
49255e3748eSMarc Zyngier 
49355e3748eSMarc Zyngier static inline int hyp_map_aux_data(void)
49455e3748eSMarc Zyngier {
49555e3748eSMarc Zyngier 	int cpu, err;
49655e3748eSMarc Zyngier 
49755e3748eSMarc Zyngier 	for_each_possible_cpu(cpu) {
49855e3748eSMarc Zyngier 		u64 *ptr;
49955e3748eSMarc Zyngier 
50055e3748eSMarc Zyngier 		ptr = per_cpu_ptr(&arm64_ssbd_callback_required, cpu);
50155e3748eSMarc Zyngier 		err = create_hyp_mappings(ptr, ptr + 1, PAGE_HYP);
50255e3748eSMarc Zyngier 		if (err)
50355e3748eSMarc Zyngier 			return err;
50455e3748eSMarc Zyngier 	}
50555e3748eSMarc Zyngier 	return 0;
50655e3748eSMarc Zyngier }
50755e3748eSMarc Zyngier #else
50855e3748eSMarc Zyngier static inline int hyp_map_aux_data(void)
50955e3748eSMarc Zyngier {
51055e3748eSMarc Zyngier 	return 0;
51155e3748eSMarc Zyngier }
51255e3748eSMarc Zyngier #endif
51355e3748eSMarc Zyngier 
514529c4b05SKristina Martsenko #define kvm_phys_to_vttbr(addr)		phys_to_ttbr(addr)
515529c4b05SKristina Martsenko 
51637c43753SMarc Zyngier #endif /* __ASSEMBLY__ */
51737c43753SMarc Zyngier #endif /* __ARM64_KVM_MMU_H__ */
518