processor.c 19 KB

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  1. // SPDX-License-Identifier: GPL-2.0
  2. /*
  3. * AArch64 code
  4. *
  5. * Copyright (C) 2018, Red Hat, Inc.
  6. */
  7. #include <linux/compiler.h>
  8. #include <assert.h>
  9. #include "guest_modes.h"
  10. #include "kvm_util.h"
  11. #include "processor.h"
  12. #include "ucall_common.h"
  13. #include "vgic.h"
  14. #include <linux/bitfield.h>
  15. #include <linux/sizes.h>
  16. #define DEFAULT_ARM64_GUEST_STACK_VADDR_MIN 0xac0000
  17. static vm_vaddr_t exception_handlers;
  18. static uint64_t pgd_index(struct kvm_vm *vm, vm_vaddr_t gva)
  19. {
  20. unsigned int shift = (vm->mmu.pgtable_levels - 1) * (vm->page_shift - 3) + vm->page_shift;
  21. uint64_t mask = (1UL << (vm->va_bits - shift)) - 1;
  22. return (gva >> shift) & mask;
  23. }
  24. static uint64_t pud_index(struct kvm_vm *vm, vm_vaddr_t gva)
  25. {
  26. unsigned int shift = 2 * (vm->page_shift - 3) + vm->page_shift;
  27. uint64_t mask = (1UL << (vm->page_shift - 3)) - 1;
  28. TEST_ASSERT(vm->mmu.pgtable_levels == 4,
  29. "Mode %d does not have 4 page table levels", vm->mode);
  30. return (gva >> shift) & mask;
  31. }
  32. static uint64_t pmd_index(struct kvm_vm *vm, vm_vaddr_t gva)
  33. {
  34. unsigned int shift = (vm->page_shift - 3) + vm->page_shift;
  35. uint64_t mask = (1UL << (vm->page_shift - 3)) - 1;
  36. TEST_ASSERT(vm->mmu.pgtable_levels >= 3,
  37. "Mode %d does not have >= 3 page table levels", vm->mode);
  38. return (gva >> shift) & mask;
  39. }
  40. static uint64_t pte_index(struct kvm_vm *vm, vm_vaddr_t gva)
  41. {
  42. uint64_t mask = (1UL << (vm->page_shift - 3)) - 1;
  43. return (gva >> vm->page_shift) & mask;
  44. }
  45. static inline bool use_lpa2_pte_format(struct kvm_vm *vm)
  46. {
  47. return (vm->page_size == SZ_4K || vm->page_size == SZ_16K) &&
  48. (vm->pa_bits > 48 || vm->va_bits > 48);
  49. }
  50. static uint64_t addr_pte(struct kvm_vm *vm, uint64_t pa, uint64_t attrs)
  51. {
  52. uint64_t pte;
  53. if (use_lpa2_pte_format(vm)) {
  54. pte = pa & PTE_ADDR_MASK_LPA2(vm->page_shift);
  55. pte |= FIELD_GET(GENMASK(51, 50), pa) << PTE_ADDR_51_50_LPA2_SHIFT;
  56. attrs &= ~PTE_ADDR_51_50_LPA2;
  57. } else {
  58. pte = pa & PTE_ADDR_MASK(vm->page_shift);
  59. if (vm->page_shift == 16)
  60. pte |= FIELD_GET(GENMASK(51, 48), pa) << PTE_ADDR_51_48_SHIFT;
  61. }
  62. pte |= attrs;
  63. return pte;
  64. }
  65. static uint64_t pte_addr(struct kvm_vm *vm, uint64_t pte)
  66. {
  67. uint64_t pa;
  68. if (use_lpa2_pte_format(vm)) {
  69. pa = pte & PTE_ADDR_MASK_LPA2(vm->page_shift);
  70. pa |= FIELD_GET(PTE_ADDR_51_50_LPA2, pte) << 50;
  71. } else {
  72. pa = pte & PTE_ADDR_MASK(vm->page_shift);
  73. if (vm->page_shift == 16)
  74. pa |= FIELD_GET(PTE_ADDR_51_48, pte) << 48;
  75. }
  76. return pa;
  77. }
  78. static uint64_t ptrs_per_pgd(struct kvm_vm *vm)
  79. {
  80. unsigned int shift = (vm->mmu.pgtable_levels - 1) * (vm->page_shift - 3) + vm->page_shift;
  81. return 1 << (vm->va_bits - shift);
  82. }
  83. static uint64_t __maybe_unused ptrs_per_pte(struct kvm_vm *vm)
  84. {
  85. return 1 << (vm->page_shift - 3);
  86. }
  87. void virt_arch_pgd_alloc(struct kvm_vm *vm)
  88. {
  89. size_t nr_pages = vm_page_align(vm, ptrs_per_pgd(vm) * 8) / vm->page_size;
  90. if (vm->mmu.pgd_created)
  91. return;
  92. vm->mmu.pgd = vm_phy_pages_alloc(vm, nr_pages,
  93. KVM_GUEST_PAGE_TABLE_MIN_PADDR,
  94. vm->memslots[MEM_REGION_PT]);
  95. vm->mmu.pgd_created = true;
  96. }
  97. static void _virt_pg_map(struct kvm_vm *vm, uint64_t vaddr, uint64_t paddr,
  98. uint64_t flags)
  99. {
  100. uint8_t attr_idx = flags & (PTE_ATTRINDX_MASK >> PTE_ATTRINDX_SHIFT);
  101. uint64_t pg_attr;
  102. uint64_t *ptep;
  103. TEST_ASSERT((vaddr % vm->page_size) == 0,
  104. "Virtual address not on page boundary,\n"
  105. " vaddr: 0x%lx vm->page_size: 0x%x", vaddr, vm->page_size);
  106. TEST_ASSERT(sparsebit_is_set(vm->vpages_valid,
  107. (vaddr >> vm->page_shift)),
  108. "Invalid virtual address, vaddr: 0x%lx", vaddr);
  109. TEST_ASSERT((paddr % vm->page_size) == 0,
  110. "Physical address not on page boundary,\n"
  111. " paddr: 0x%lx vm->page_size: 0x%x", paddr, vm->page_size);
  112. TEST_ASSERT((paddr >> vm->page_shift) <= vm->max_gfn,
  113. "Physical address beyond beyond maximum supported,\n"
  114. " paddr: 0x%lx vm->max_gfn: 0x%lx vm->page_size: 0x%x",
  115. paddr, vm->max_gfn, vm->page_size);
  116. ptep = addr_gpa2hva(vm, vm->mmu.pgd) + pgd_index(vm, vaddr) * 8;
  117. if (!*ptep)
  118. *ptep = addr_pte(vm, vm_alloc_page_table(vm),
  119. PGD_TYPE_TABLE | PTE_VALID);
  120. switch (vm->mmu.pgtable_levels) {
  121. case 4:
  122. ptep = addr_gpa2hva(vm, pte_addr(vm, *ptep)) + pud_index(vm, vaddr) * 8;
  123. if (!*ptep)
  124. *ptep = addr_pte(vm, vm_alloc_page_table(vm),
  125. PUD_TYPE_TABLE | PTE_VALID);
  126. /* fall through */
  127. case 3:
  128. ptep = addr_gpa2hva(vm, pte_addr(vm, *ptep)) + pmd_index(vm, vaddr) * 8;
  129. if (!*ptep)
  130. *ptep = addr_pte(vm, vm_alloc_page_table(vm),
  131. PMD_TYPE_TABLE | PTE_VALID);
  132. /* fall through */
  133. case 2:
  134. ptep = addr_gpa2hva(vm, pte_addr(vm, *ptep)) + pte_index(vm, vaddr) * 8;
  135. break;
  136. default:
  137. TEST_FAIL("Page table levels must be 2, 3, or 4");
  138. }
  139. pg_attr = PTE_AF | PTE_ATTRINDX(attr_idx) | PTE_TYPE_PAGE | PTE_VALID;
  140. if (!use_lpa2_pte_format(vm))
  141. pg_attr |= PTE_SHARED;
  142. *ptep = addr_pte(vm, paddr, pg_attr);
  143. }
  144. void virt_arch_pg_map(struct kvm_vm *vm, uint64_t vaddr, uint64_t paddr)
  145. {
  146. uint64_t attr_idx = MT_NORMAL;
  147. _virt_pg_map(vm, vaddr, paddr, attr_idx);
  148. }
  149. uint64_t *virt_get_pte_hva_at_level(struct kvm_vm *vm, vm_vaddr_t gva, int level)
  150. {
  151. uint64_t *ptep;
  152. if (!vm->mmu.pgd_created)
  153. goto unmapped_gva;
  154. ptep = addr_gpa2hva(vm, vm->mmu.pgd) + pgd_index(vm, gva) * 8;
  155. if (!ptep)
  156. goto unmapped_gva;
  157. if (level == 0)
  158. return ptep;
  159. switch (vm->mmu.pgtable_levels) {
  160. case 4:
  161. ptep = addr_gpa2hva(vm, pte_addr(vm, *ptep)) + pud_index(vm, gva) * 8;
  162. if (!ptep)
  163. goto unmapped_gva;
  164. if (level == 1)
  165. break;
  166. /* fall through */
  167. case 3:
  168. ptep = addr_gpa2hva(vm, pte_addr(vm, *ptep)) + pmd_index(vm, gva) * 8;
  169. if (!ptep)
  170. goto unmapped_gva;
  171. if (level == 2)
  172. break;
  173. /* fall through */
  174. case 2:
  175. ptep = addr_gpa2hva(vm, pte_addr(vm, *ptep)) + pte_index(vm, gva) * 8;
  176. if (!ptep)
  177. goto unmapped_gva;
  178. break;
  179. default:
  180. TEST_FAIL("Page table levels must be 2, 3, or 4");
  181. }
  182. return ptep;
  183. unmapped_gva:
  184. TEST_FAIL("No mapping for vm virtual address, gva: 0x%lx", gva);
  185. exit(EXIT_FAILURE);
  186. }
  187. uint64_t *virt_get_pte_hva(struct kvm_vm *vm, vm_vaddr_t gva)
  188. {
  189. return virt_get_pte_hva_at_level(vm, gva, 3);
  190. }
  191. vm_paddr_t addr_arch_gva2gpa(struct kvm_vm *vm, vm_vaddr_t gva)
  192. {
  193. uint64_t *ptep = virt_get_pte_hva(vm, gva);
  194. return pte_addr(vm, *ptep) + (gva & (vm->page_size - 1));
  195. }
  196. static void pte_dump(FILE *stream, struct kvm_vm *vm, uint8_t indent, uint64_t page, int level)
  197. {
  198. #ifdef DEBUG
  199. static const char * const type[] = { "", "pud", "pmd", "pte" };
  200. uint64_t pte, *ptep;
  201. if (level == 4)
  202. return;
  203. for (pte = page; pte < page + ptrs_per_pte(vm) * 8; pte += 8) {
  204. ptep = addr_gpa2hva(vm, pte);
  205. if (!*ptep)
  206. continue;
  207. fprintf(stream, "%*s%s: %lx: %lx at %p\n", indent, "", type[level], pte, *ptep, ptep);
  208. pte_dump(stream, vm, indent + 1, pte_addr(vm, *ptep), level + 1);
  209. }
  210. #endif
  211. }
  212. void virt_arch_dump(FILE *stream, struct kvm_vm *vm, uint8_t indent)
  213. {
  214. int level = 4 - (vm->mmu.pgtable_levels - 1);
  215. uint64_t pgd, *ptep;
  216. if (!vm->mmu.pgd_created)
  217. return;
  218. for (pgd = vm->mmu.pgd; pgd < vm->mmu.pgd + ptrs_per_pgd(vm) * 8; pgd += 8) {
  219. ptep = addr_gpa2hva(vm, pgd);
  220. if (!*ptep)
  221. continue;
  222. fprintf(stream, "%*spgd: %lx: %lx at %p\n", indent, "", pgd, *ptep, ptep);
  223. pte_dump(stream, vm, indent + 1, pte_addr(vm, *ptep), level);
  224. }
  225. }
  226. bool vm_supports_el2(struct kvm_vm *vm)
  227. {
  228. const char *value = getenv("NV");
  229. if (value && *value == '0')
  230. return false;
  231. return vm_check_cap(vm, KVM_CAP_ARM_EL2) && vm->arch.has_gic;
  232. }
  233. void kvm_get_default_vcpu_target(struct kvm_vm *vm, struct kvm_vcpu_init *init)
  234. {
  235. struct kvm_vcpu_init preferred = {};
  236. vm_ioctl(vm, KVM_ARM_PREFERRED_TARGET, &preferred);
  237. if (vm_supports_el2(vm))
  238. preferred.features[0] |= BIT(KVM_ARM_VCPU_HAS_EL2);
  239. *init = preferred;
  240. }
  241. void aarch64_vcpu_setup(struct kvm_vcpu *vcpu, struct kvm_vcpu_init *init)
  242. {
  243. struct kvm_vcpu_init default_init = { .target = -1, };
  244. struct kvm_vm *vm = vcpu->vm;
  245. uint64_t sctlr_el1, tcr_el1, ttbr0_el1;
  246. if (!init) {
  247. kvm_get_default_vcpu_target(vm, &default_init);
  248. init = &default_init;
  249. }
  250. vcpu_ioctl(vcpu, KVM_ARM_VCPU_INIT, init);
  251. vcpu->init = *init;
  252. /*
  253. * Enable FP/ASIMD to avoid trapping when accessing Q0-Q15
  254. * registers, which the variable argument list macros do.
  255. */
  256. vcpu_set_reg(vcpu, ctxt_reg_alias(vcpu, SYS_CPACR_EL1), 3 << 20);
  257. sctlr_el1 = vcpu_get_reg(vcpu, ctxt_reg_alias(vcpu, SYS_SCTLR_EL1));
  258. tcr_el1 = vcpu_get_reg(vcpu, ctxt_reg_alias(vcpu, SYS_TCR_EL1));
  259. /* Configure base granule size */
  260. switch (vm->mode) {
  261. case VM_MODE_PXXVYY_4K:
  262. TEST_FAIL("AArch64 does not support 4K sized pages "
  263. "with ANY-bit physical address ranges");
  264. case VM_MODE_P52V48_64K:
  265. case VM_MODE_P48V48_64K:
  266. case VM_MODE_P40V48_64K:
  267. case VM_MODE_P36V48_64K:
  268. tcr_el1 |= TCR_TG0_64K;
  269. break;
  270. case VM_MODE_P52V48_16K:
  271. case VM_MODE_P48V48_16K:
  272. case VM_MODE_P40V48_16K:
  273. case VM_MODE_P36V48_16K:
  274. case VM_MODE_P36V47_16K:
  275. tcr_el1 |= TCR_TG0_16K;
  276. break;
  277. case VM_MODE_P52V48_4K:
  278. case VM_MODE_P48V48_4K:
  279. case VM_MODE_P40V48_4K:
  280. case VM_MODE_P36V48_4K:
  281. tcr_el1 |= TCR_TG0_4K;
  282. break;
  283. default:
  284. TEST_FAIL("Unknown guest mode, mode: 0x%x", vm->mode);
  285. }
  286. ttbr0_el1 = vm->mmu.pgd & GENMASK(47, vm->page_shift);
  287. /* Configure output size */
  288. switch (vm->mode) {
  289. case VM_MODE_P52V48_4K:
  290. case VM_MODE_P52V48_16K:
  291. case VM_MODE_P52V48_64K:
  292. tcr_el1 |= TCR_IPS_52_BITS;
  293. ttbr0_el1 |= FIELD_GET(GENMASK(51, 48), vm->mmu.pgd) << 2;
  294. break;
  295. case VM_MODE_P48V48_4K:
  296. case VM_MODE_P48V48_16K:
  297. case VM_MODE_P48V48_64K:
  298. tcr_el1 |= TCR_IPS_48_BITS;
  299. break;
  300. case VM_MODE_P40V48_4K:
  301. case VM_MODE_P40V48_16K:
  302. case VM_MODE_P40V48_64K:
  303. tcr_el1 |= TCR_IPS_40_BITS;
  304. break;
  305. case VM_MODE_P36V48_4K:
  306. case VM_MODE_P36V48_16K:
  307. case VM_MODE_P36V48_64K:
  308. case VM_MODE_P36V47_16K:
  309. tcr_el1 |= TCR_IPS_36_BITS;
  310. break;
  311. default:
  312. TEST_FAIL("Unknown guest mode, mode: 0x%x", vm->mode);
  313. }
  314. sctlr_el1 |= SCTLR_ELx_M | SCTLR_ELx_C | SCTLR_ELx_I;
  315. tcr_el1 |= TCR_IRGN0_WBWA | TCR_ORGN0_WBWA | TCR_SH0_INNER;
  316. tcr_el1 |= TCR_T0SZ(vm->va_bits);
  317. tcr_el1 |= TCR_TBI1;
  318. tcr_el1 |= TCR_EPD1_MASK;
  319. if (use_lpa2_pte_format(vm))
  320. tcr_el1 |= TCR_DS;
  321. vcpu_set_reg(vcpu, ctxt_reg_alias(vcpu, SYS_SCTLR_EL1), sctlr_el1);
  322. vcpu_set_reg(vcpu, ctxt_reg_alias(vcpu, SYS_TCR_EL1), tcr_el1);
  323. vcpu_set_reg(vcpu, ctxt_reg_alias(vcpu, SYS_MAIR_EL1), DEFAULT_MAIR_EL1);
  324. vcpu_set_reg(vcpu, ctxt_reg_alias(vcpu, SYS_TTBR0_EL1), ttbr0_el1);
  325. vcpu_set_reg(vcpu, KVM_ARM64_SYS_REG(SYS_TPIDR_EL1), vcpu->id);
  326. if (!vcpu_has_el2(vcpu))
  327. return;
  328. vcpu_set_reg(vcpu, KVM_ARM64_SYS_REG(SYS_HCR_EL2),
  329. HCR_EL2_RW | HCR_EL2_TGE | HCR_EL2_E2H);
  330. }
  331. void vcpu_arch_dump(FILE *stream, struct kvm_vcpu *vcpu, uint8_t indent)
  332. {
  333. uint64_t pstate, pc;
  334. pstate = vcpu_get_reg(vcpu, ARM64_CORE_REG(regs.pstate));
  335. pc = vcpu_get_reg(vcpu, ARM64_CORE_REG(regs.pc));
  336. fprintf(stream, "%*spstate: 0x%.16lx pc: 0x%.16lx\n",
  337. indent, "", pstate, pc);
  338. }
  339. void vcpu_arch_set_entry_point(struct kvm_vcpu *vcpu, void *guest_code)
  340. {
  341. vcpu_set_reg(vcpu, ARM64_CORE_REG(regs.pc), (uint64_t)guest_code);
  342. }
  343. static struct kvm_vcpu *__aarch64_vcpu_add(struct kvm_vm *vm, uint32_t vcpu_id,
  344. struct kvm_vcpu_init *init)
  345. {
  346. size_t stack_size;
  347. uint64_t stack_vaddr;
  348. struct kvm_vcpu *vcpu = __vm_vcpu_add(vm, vcpu_id);
  349. stack_size = vm->page_size == 4096 ? DEFAULT_STACK_PGS * vm->page_size :
  350. vm->page_size;
  351. stack_vaddr = __vm_vaddr_alloc(vm, stack_size,
  352. DEFAULT_ARM64_GUEST_STACK_VADDR_MIN,
  353. MEM_REGION_DATA);
  354. aarch64_vcpu_setup(vcpu, init);
  355. vcpu_set_reg(vcpu, ctxt_reg_alias(vcpu, SYS_SP_EL1), stack_vaddr + stack_size);
  356. return vcpu;
  357. }
  358. struct kvm_vcpu *aarch64_vcpu_add(struct kvm_vm *vm, uint32_t vcpu_id,
  359. struct kvm_vcpu_init *init, void *guest_code)
  360. {
  361. struct kvm_vcpu *vcpu = __aarch64_vcpu_add(vm, vcpu_id, init);
  362. vcpu_arch_set_entry_point(vcpu, guest_code);
  363. return vcpu;
  364. }
  365. struct kvm_vcpu *vm_arch_vcpu_add(struct kvm_vm *vm, uint32_t vcpu_id)
  366. {
  367. return __aarch64_vcpu_add(vm, vcpu_id, NULL);
  368. }
  369. void vcpu_args_set(struct kvm_vcpu *vcpu, unsigned int num, ...)
  370. {
  371. va_list ap;
  372. int i;
  373. TEST_ASSERT(num >= 1 && num <= 8, "Unsupported number of args,\n"
  374. " num: %u", num);
  375. va_start(ap, num);
  376. for (i = 0; i < num; i++) {
  377. vcpu_set_reg(vcpu, ARM64_CORE_REG(regs.regs[i]),
  378. va_arg(ap, uint64_t));
  379. }
  380. va_end(ap);
  381. }
  382. void kvm_exit_unexpected_exception(int vector, uint64_t ec, bool valid_ec)
  383. {
  384. ucall(UCALL_UNHANDLED, 3, vector, ec, valid_ec);
  385. while (1)
  386. ;
  387. }
  388. void assert_on_unhandled_exception(struct kvm_vcpu *vcpu)
  389. {
  390. struct ucall uc;
  391. if (get_ucall(vcpu, &uc) != UCALL_UNHANDLED)
  392. return;
  393. if (uc.args[2]) /* valid_ec */ {
  394. assert(VECTOR_IS_SYNC(uc.args[0]));
  395. TEST_FAIL("Unexpected exception (vector:0x%lx, ec:0x%lx)",
  396. uc.args[0], uc.args[1]);
  397. } else {
  398. assert(!VECTOR_IS_SYNC(uc.args[0]));
  399. TEST_FAIL("Unexpected exception (vector:0x%lx)",
  400. uc.args[0]);
  401. }
  402. }
  403. struct handlers {
  404. handler_fn exception_handlers[VECTOR_NUM][ESR_ELx_EC_MAX + 1];
  405. };
  406. void vcpu_init_descriptor_tables(struct kvm_vcpu *vcpu)
  407. {
  408. extern char vectors;
  409. vcpu_set_reg(vcpu, ctxt_reg_alias(vcpu, SYS_VBAR_EL1), (uint64_t)&vectors);
  410. }
  411. void route_exception(struct ex_regs *regs, int vector)
  412. {
  413. struct handlers *handlers = (struct handlers *)exception_handlers;
  414. bool valid_ec;
  415. int ec = 0;
  416. switch (vector) {
  417. case VECTOR_SYNC_CURRENT:
  418. case VECTOR_SYNC_LOWER_64:
  419. ec = ESR_ELx_EC(read_sysreg(esr_el1));
  420. valid_ec = true;
  421. break;
  422. case VECTOR_IRQ_CURRENT:
  423. case VECTOR_IRQ_LOWER_64:
  424. case VECTOR_FIQ_CURRENT:
  425. case VECTOR_FIQ_LOWER_64:
  426. case VECTOR_ERROR_CURRENT:
  427. case VECTOR_ERROR_LOWER_64:
  428. ec = 0;
  429. valid_ec = false;
  430. break;
  431. default:
  432. valid_ec = false;
  433. goto unexpected_exception;
  434. }
  435. if (handlers && handlers->exception_handlers[vector][ec])
  436. return handlers->exception_handlers[vector][ec](regs);
  437. unexpected_exception:
  438. kvm_exit_unexpected_exception(vector, ec, valid_ec);
  439. }
  440. void vm_init_descriptor_tables(struct kvm_vm *vm)
  441. {
  442. vm->handlers = __vm_vaddr_alloc(vm, sizeof(struct handlers),
  443. vm->page_size, MEM_REGION_DATA);
  444. *(vm_vaddr_t *)addr_gva2hva(vm, (vm_vaddr_t)(&exception_handlers)) = vm->handlers;
  445. }
  446. void vm_install_sync_handler(struct kvm_vm *vm, int vector, int ec,
  447. void (*handler)(struct ex_regs *))
  448. {
  449. struct handlers *handlers = addr_gva2hva(vm, vm->handlers);
  450. assert(VECTOR_IS_SYNC(vector));
  451. assert(vector < VECTOR_NUM);
  452. assert(ec <= ESR_ELx_EC_MAX);
  453. handlers->exception_handlers[vector][ec] = handler;
  454. }
  455. void vm_install_exception_handler(struct kvm_vm *vm, int vector,
  456. void (*handler)(struct ex_regs *))
  457. {
  458. struct handlers *handlers = addr_gva2hva(vm, vm->handlers);
  459. assert(!VECTOR_IS_SYNC(vector));
  460. assert(vector < VECTOR_NUM);
  461. handlers->exception_handlers[vector][0] = handler;
  462. }
  463. uint32_t guest_get_vcpuid(void)
  464. {
  465. return read_sysreg(tpidr_el1);
  466. }
  467. static uint32_t max_ipa_for_page_size(uint32_t vm_ipa, uint32_t gran,
  468. uint32_t not_sup_val, uint32_t ipa52_min_val)
  469. {
  470. if (gran == not_sup_val)
  471. return 0;
  472. else if (gran >= ipa52_min_val && vm_ipa >= 52)
  473. return 52;
  474. else
  475. return min(vm_ipa, 48U);
  476. }
  477. void aarch64_get_supported_page_sizes(uint32_t ipa, uint32_t *ipa4k,
  478. uint32_t *ipa16k, uint32_t *ipa64k)
  479. {
  480. struct kvm_vcpu_init preferred_init;
  481. int kvm_fd, vm_fd, vcpu_fd, err;
  482. uint64_t val;
  483. uint32_t gran;
  484. struct kvm_one_reg reg = {
  485. .id = KVM_ARM64_SYS_REG(SYS_ID_AA64MMFR0_EL1),
  486. .addr = (uint64_t)&val,
  487. };
  488. kvm_fd = open_kvm_dev_path_or_exit();
  489. vm_fd = __kvm_ioctl(kvm_fd, KVM_CREATE_VM, (void *)(unsigned long)ipa);
  490. TEST_ASSERT(vm_fd >= 0, KVM_IOCTL_ERROR(KVM_CREATE_VM, vm_fd));
  491. vcpu_fd = ioctl(vm_fd, KVM_CREATE_VCPU, 0);
  492. TEST_ASSERT(vcpu_fd >= 0, KVM_IOCTL_ERROR(KVM_CREATE_VCPU, vcpu_fd));
  493. err = ioctl(vm_fd, KVM_ARM_PREFERRED_TARGET, &preferred_init);
  494. TEST_ASSERT(err == 0, KVM_IOCTL_ERROR(KVM_ARM_PREFERRED_TARGET, err));
  495. err = ioctl(vcpu_fd, KVM_ARM_VCPU_INIT, &preferred_init);
  496. TEST_ASSERT(err == 0, KVM_IOCTL_ERROR(KVM_ARM_VCPU_INIT, err));
  497. err = ioctl(vcpu_fd, KVM_GET_ONE_REG, &reg);
  498. TEST_ASSERT(err == 0, KVM_IOCTL_ERROR(KVM_GET_ONE_REG, vcpu_fd));
  499. gran = FIELD_GET(ID_AA64MMFR0_EL1_TGRAN4, val);
  500. *ipa4k = max_ipa_for_page_size(ipa, gran, ID_AA64MMFR0_EL1_TGRAN4_NI,
  501. ID_AA64MMFR0_EL1_TGRAN4_52_BIT);
  502. gran = FIELD_GET(ID_AA64MMFR0_EL1_TGRAN64, val);
  503. *ipa64k = max_ipa_for_page_size(ipa, gran, ID_AA64MMFR0_EL1_TGRAN64_NI,
  504. ID_AA64MMFR0_EL1_TGRAN64_IMP);
  505. gran = FIELD_GET(ID_AA64MMFR0_EL1_TGRAN16, val);
  506. *ipa16k = max_ipa_for_page_size(ipa, gran, ID_AA64MMFR0_EL1_TGRAN16_NI,
  507. ID_AA64MMFR0_EL1_TGRAN16_52_BIT);
  508. close(vcpu_fd);
  509. close(vm_fd);
  510. close(kvm_fd);
  511. }
  512. #define __smccc_call(insn, function_id, arg0, arg1, arg2, arg3, arg4, arg5, \
  513. arg6, res) \
  514. asm volatile("mov w0, %w[function_id]\n" \
  515. "mov x1, %[arg0]\n" \
  516. "mov x2, %[arg1]\n" \
  517. "mov x3, %[arg2]\n" \
  518. "mov x4, %[arg3]\n" \
  519. "mov x5, %[arg4]\n" \
  520. "mov x6, %[arg5]\n" \
  521. "mov x7, %[arg6]\n" \
  522. #insn "#0\n" \
  523. "mov %[res0], x0\n" \
  524. "mov %[res1], x1\n" \
  525. "mov %[res2], x2\n" \
  526. "mov %[res3], x3\n" \
  527. : [res0] "=r"(res->a0), [res1] "=r"(res->a1), \
  528. [res2] "=r"(res->a2), [res3] "=r"(res->a3) \
  529. : [function_id] "r"(function_id), [arg0] "r"(arg0), \
  530. [arg1] "r"(arg1), [arg2] "r"(arg2), [arg3] "r"(arg3), \
  531. [arg4] "r"(arg4), [arg5] "r"(arg5), [arg6] "r"(arg6) \
  532. : "x0", "x1", "x2", "x3", "x4", "x5", "x6", "x7")
  533. void smccc_hvc(uint32_t function_id, uint64_t arg0, uint64_t arg1,
  534. uint64_t arg2, uint64_t arg3, uint64_t arg4, uint64_t arg5,
  535. uint64_t arg6, struct arm_smccc_res *res)
  536. {
  537. __smccc_call(hvc, function_id, arg0, arg1, arg2, arg3, arg4, arg5,
  538. arg6, res);
  539. }
  540. void smccc_smc(uint32_t function_id, uint64_t arg0, uint64_t arg1,
  541. uint64_t arg2, uint64_t arg3, uint64_t arg4, uint64_t arg5,
  542. uint64_t arg6, struct arm_smccc_res *res)
  543. {
  544. __smccc_call(smc, function_id, arg0, arg1, arg2, arg3, arg4, arg5,
  545. arg6, res);
  546. }
  547. void kvm_selftest_arch_init(void)
  548. {
  549. /*
  550. * arm64 doesn't have a true default mode, so start by computing the
  551. * available IPA space and page sizes early.
  552. */
  553. guest_modes_append_default();
  554. }
  555. void vm_vaddr_populate_bitmap(struct kvm_vm *vm)
  556. {
  557. /*
  558. * arm64 selftests use only TTBR0_EL1, meaning that the valid VA space
  559. * is [0, 2^(64 - TCR_EL1.T0SZ)).
  560. */
  561. sparsebit_set_num(vm->vpages_valid, 0,
  562. (1ULL << vm->va_bits) >> vm->page_shift);
  563. }
  564. /* Helper to call wfi instruction. */
  565. void wfi(void)
  566. {
  567. asm volatile("wfi");
  568. }
  569. static bool request_mte;
  570. static bool request_vgic = true;
  571. void test_wants_mte(void)
  572. {
  573. request_mte = true;
  574. }
  575. void test_disable_default_vgic(void)
  576. {
  577. request_vgic = false;
  578. }
  579. void kvm_arch_vm_post_create(struct kvm_vm *vm, unsigned int nr_vcpus)
  580. {
  581. if (request_mte && vm_check_cap(vm, KVM_CAP_ARM_MTE))
  582. vm_enable_cap(vm, KVM_CAP_ARM_MTE, 0);
  583. if (request_vgic && kvm_supports_vgic_v3()) {
  584. vm->arch.gic_fd = __vgic_v3_setup(vm, nr_vcpus, 64);
  585. vm->arch.has_gic = true;
  586. }
  587. }
  588. void kvm_arch_vm_finalize_vcpus(struct kvm_vm *vm)
  589. {
  590. if (vm->arch.has_gic)
  591. __vgic_v3_init(vm->arch.gic_fd);
  592. }
  593. void kvm_arch_vm_release(struct kvm_vm *vm)
  594. {
  595. if (vm->arch.has_gic)
  596. close(vm->arch.gic_fd);
  597. }
  598. bool kvm_arch_has_default_irqchip(void)
  599. {
  600. return request_vgic && kvm_supports_vgic_v3();
  601. }