vmx.c 109 KB

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  1. /*
  2. * Kernel-based Virtual Machine driver for Linux
  3. *
  4. * This module enables machines with Intel VT-x extensions to run virtual
  5. * machines without emulation or binary translation.
  6. *
  7. * Copyright (C) 2006 Qumranet, Inc.
  8. *
  9. * Authors:
  10. * Avi Kivity <avi@qumranet.com>
  11. * Yaniv Kamay <yaniv@qumranet.com>
  12. *
  13. * This work is licensed under the terms of the GNU GPL, version 2. See
  14. * the COPYING file in the top-level directory.
  15. *
  16. */
  17. #include "irq.h"
  18. #include "mmu.h"
  19. #include <linux/kvm_host.h>
  20. #include <linux/module.h>
  21. #include <linux/kernel.h>
  22. #include <linux/mm.h>
  23. #include <linux/highmem.h>
  24. #include <linux/sched.h>
  25. #include <linux/moduleparam.h>
  26. #include <linux/ftrace_event.h>
  27. #include <linux/slab.h>
  28. #include "kvm_cache_regs.h"
  29. #include "x86.h"
  30. #include <asm/io.h>
  31. #include <asm/desc.h>
  32. #include <asm/vmx.h>
  33. #include <asm/virtext.h>
  34. #include <asm/mce.h>
  35. #include "trace.h"
  36. #define __ex(x) __kvm_handle_fault_on_reboot(x)
  37. MODULE_AUTHOR("Qumranet");
  38. MODULE_LICENSE("GPL");
  39. static int __read_mostly bypass_guest_pf = 1;
  40. module_param(bypass_guest_pf, bool, S_IRUGO);
  41. static int __read_mostly enable_vpid = 1;
  42. module_param_named(vpid, enable_vpid, bool, 0444);
  43. static int __read_mostly flexpriority_enabled = 1;
  44. module_param_named(flexpriority, flexpriority_enabled, bool, S_IRUGO);
  45. static int __read_mostly enable_ept = 1;
  46. module_param_named(ept, enable_ept, bool, S_IRUGO);
  47. static int __read_mostly enable_unrestricted_guest = 1;
  48. module_param_named(unrestricted_guest,
  49. enable_unrestricted_guest, bool, S_IRUGO);
  50. static int __read_mostly emulate_invalid_guest_state = 0;
  51. module_param(emulate_invalid_guest_state, bool, S_IRUGO);
  52. #define KVM_GUEST_CR0_MASK_UNRESTRICTED_GUEST \
  53. (X86_CR0_WP | X86_CR0_NE | X86_CR0_NW | X86_CR0_CD)
  54. #define KVM_GUEST_CR0_MASK \
  55. (KVM_GUEST_CR0_MASK_UNRESTRICTED_GUEST | X86_CR0_PG | X86_CR0_PE)
  56. #define KVM_VM_CR0_ALWAYS_ON_UNRESTRICTED_GUEST \
  57. (X86_CR0_WP | X86_CR0_NE)
  58. #define KVM_VM_CR0_ALWAYS_ON \
  59. (KVM_VM_CR0_ALWAYS_ON_UNRESTRICTED_GUEST | X86_CR0_PG | X86_CR0_PE)
  60. #define KVM_CR4_GUEST_OWNED_BITS \
  61. (X86_CR4_PVI | X86_CR4_DE | X86_CR4_PCE | X86_CR4_OSFXSR \
  62. | X86_CR4_OSXMMEXCPT)
  63. #define KVM_PMODE_VM_CR4_ALWAYS_ON (X86_CR4_PAE | X86_CR4_VMXE)
  64. #define KVM_RMODE_VM_CR4_ALWAYS_ON (X86_CR4_VME | X86_CR4_PAE | X86_CR4_VMXE)
  65. #define RMODE_GUEST_OWNED_EFLAGS_BITS (~(X86_EFLAGS_IOPL | X86_EFLAGS_VM))
  66. /*
  67. * These 2 parameters are used to config the controls for Pause-Loop Exiting:
  68. * ple_gap: upper bound on the amount of time between two successive
  69. * executions of PAUSE in a loop. Also indicate if ple enabled.
  70. * According to test, this time is usually small than 41 cycles.
  71. * ple_window: upper bound on the amount of time a guest is allowed to execute
  72. * in a PAUSE loop. Tests indicate that most spinlocks are held for
  73. * less than 2^12 cycles
  74. * Time is measured based on a counter that runs at the same rate as the TSC,
  75. * refer SDM volume 3b section 21.6.13 & 22.1.3.
  76. */
  77. #define KVM_VMX_DEFAULT_PLE_GAP 41
  78. #define KVM_VMX_DEFAULT_PLE_WINDOW 4096
  79. static int ple_gap = KVM_VMX_DEFAULT_PLE_GAP;
  80. module_param(ple_gap, int, S_IRUGO);
  81. static int ple_window = KVM_VMX_DEFAULT_PLE_WINDOW;
  82. module_param(ple_window, int, S_IRUGO);
  83. struct vmcs {
  84. u32 revision_id;
  85. u32 abort;
  86. char data[0];
  87. };
  88. struct shared_msr_entry {
  89. unsigned index;
  90. u64 data;
  91. u64 mask;
  92. };
  93. struct vcpu_vmx {
  94. struct kvm_vcpu vcpu;
  95. struct list_head local_vcpus_link;
  96. unsigned long host_rsp;
  97. int launched;
  98. u8 fail;
  99. u32 idt_vectoring_info;
  100. struct shared_msr_entry *guest_msrs;
  101. int nmsrs;
  102. int save_nmsrs;
  103. #ifdef CONFIG_X86_64
  104. u64 msr_host_kernel_gs_base;
  105. u64 msr_guest_kernel_gs_base;
  106. #endif
  107. struct vmcs *vmcs;
  108. struct {
  109. int loaded;
  110. u16 fs_sel, gs_sel, ldt_sel;
  111. int gs_ldt_reload_needed;
  112. int fs_reload_needed;
  113. } host_state;
  114. struct {
  115. int vm86_active;
  116. ulong save_rflags;
  117. struct kvm_save_segment {
  118. u16 selector;
  119. unsigned long base;
  120. u32 limit;
  121. u32 ar;
  122. } tr, es, ds, fs, gs;
  123. struct {
  124. bool pending;
  125. u8 vector;
  126. unsigned rip;
  127. } irq;
  128. } rmode;
  129. int vpid;
  130. bool emulation_required;
  131. /* Support for vnmi-less CPUs */
  132. int soft_vnmi_blocked;
  133. ktime_t entry_time;
  134. s64 vnmi_blocked_time;
  135. u32 exit_reason;
  136. bool rdtscp_enabled;
  137. };
  138. static inline struct vcpu_vmx *to_vmx(struct kvm_vcpu *vcpu)
  139. {
  140. return container_of(vcpu, struct vcpu_vmx, vcpu);
  141. }
  142. static int init_rmode(struct kvm *kvm);
  143. static u64 construct_eptp(unsigned long root_hpa);
  144. static DEFINE_PER_CPU(struct vmcs *, vmxarea);
  145. static DEFINE_PER_CPU(struct vmcs *, current_vmcs);
  146. static DEFINE_PER_CPU(struct list_head, vcpus_on_cpu);
  147. static unsigned long *vmx_io_bitmap_a;
  148. static unsigned long *vmx_io_bitmap_b;
  149. static unsigned long *vmx_msr_bitmap_legacy;
  150. static unsigned long *vmx_msr_bitmap_longmode;
  151. static DECLARE_BITMAP(vmx_vpid_bitmap, VMX_NR_VPIDS);
  152. static DEFINE_SPINLOCK(vmx_vpid_lock);
  153. static struct vmcs_config {
  154. int size;
  155. int order;
  156. u32 revision_id;
  157. u32 pin_based_exec_ctrl;
  158. u32 cpu_based_exec_ctrl;
  159. u32 cpu_based_2nd_exec_ctrl;
  160. u32 vmexit_ctrl;
  161. u32 vmentry_ctrl;
  162. } vmcs_config;
  163. static struct vmx_capability {
  164. u32 ept;
  165. u32 vpid;
  166. } vmx_capability;
  167. #define VMX_SEGMENT_FIELD(seg) \
  168. [VCPU_SREG_##seg] = { \
  169. .selector = GUEST_##seg##_SELECTOR, \
  170. .base = GUEST_##seg##_BASE, \
  171. .limit = GUEST_##seg##_LIMIT, \
  172. .ar_bytes = GUEST_##seg##_AR_BYTES, \
  173. }
  174. static struct kvm_vmx_segment_field {
  175. unsigned selector;
  176. unsigned base;
  177. unsigned limit;
  178. unsigned ar_bytes;
  179. } kvm_vmx_segment_fields[] = {
  180. VMX_SEGMENT_FIELD(CS),
  181. VMX_SEGMENT_FIELD(DS),
  182. VMX_SEGMENT_FIELD(ES),
  183. VMX_SEGMENT_FIELD(FS),
  184. VMX_SEGMENT_FIELD(GS),
  185. VMX_SEGMENT_FIELD(SS),
  186. VMX_SEGMENT_FIELD(TR),
  187. VMX_SEGMENT_FIELD(LDTR),
  188. };
  189. static u64 host_efer;
  190. static void ept_save_pdptrs(struct kvm_vcpu *vcpu);
  191. /*
  192. * Keep MSR_K6_STAR at the end, as setup_msrs() will try to optimize it
  193. * away by decrementing the array size.
  194. */
  195. static const u32 vmx_msr_index[] = {
  196. #ifdef CONFIG_X86_64
  197. MSR_SYSCALL_MASK, MSR_LSTAR, MSR_CSTAR,
  198. #endif
  199. MSR_EFER, MSR_TSC_AUX, MSR_K6_STAR,
  200. };
  201. #define NR_VMX_MSR ARRAY_SIZE(vmx_msr_index)
  202. static inline int is_page_fault(u32 intr_info)
  203. {
  204. return (intr_info & (INTR_INFO_INTR_TYPE_MASK | INTR_INFO_VECTOR_MASK |
  205. INTR_INFO_VALID_MASK)) ==
  206. (INTR_TYPE_HARD_EXCEPTION | PF_VECTOR | INTR_INFO_VALID_MASK);
  207. }
  208. static inline int is_no_device(u32 intr_info)
  209. {
  210. return (intr_info & (INTR_INFO_INTR_TYPE_MASK | INTR_INFO_VECTOR_MASK |
  211. INTR_INFO_VALID_MASK)) ==
  212. (INTR_TYPE_HARD_EXCEPTION | NM_VECTOR | INTR_INFO_VALID_MASK);
  213. }
  214. static inline int is_invalid_opcode(u32 intr_info)
  215. {
  216. return (intr_info & (INTR_INFO_INTR_TYPE_MASK | INTR_INFO_VECTOR_MASK |
  217. INTR_INFO_VALID_MASK)) ==
  218. (INTR_TYPE_HARD_EXCEPTION | UD_VECTOR | INTR_INFO_VALID_MASK);
  219. }
  220. static inline int is_external_interrupt(u32 intr_info)
  221. {
  222. return (intr_info & (INTR_INFO_INTR_TYPE_MASK | INTR_INFO_VALID_MASK))
  223. == (INTR_TYPE_EXT_INTR | INTR_INFO_VALID_MASK);
  224. }
  225. static inline int is_machine_check(u32 intr_info)
  226. {
  227. return (intr_info & (INTR_INFO_INTR_TYPE_MASK | INTR_INFO_VECTOR_MASK |
  228. INTR_INFO_VALID_MASK)) ==
  229. (INTR_TYPE_HARD_EXCEPTION | MC_VECTOR | INTR_INFO_VALID_MASK);
  230. }
  231. static inline int cpu_has_vmx_msr_bitmap(void)
  232. {
  233. return vmcs_config.cpu_based_exec_ctrl & CPU_BASED_USE_MSR_BITMAPS;
  234. }
  235. static inline int cpu_has_vmx_tpr_shadow(void)
  236. {
  237. return vmcs_config.cpu_based_exec_ctrl & CPU_BASED_TPR_SHADOW;
  238. }
  239. static inline int vm_need_tpr_shadow(struct kvm *kvm)
  240. {
  241. return (cpu_has_vmx_tpr_shadow()) && (irqchip_in_kernel(kvm));
  242. }
  243. static inline int cpu_has_secondary_exec_ctrls(void)
  244. {
  245. return vmcs_config.cpu_based_exec_ctrl &
  246. CPU_BASED_ACTIVATE_SECONDARY_CONTROLS;
  247. }
  248. static inline bool cpu_has_vmx_virtualize_apic_accesses(void)
  249. {
  250. return vmcs_config.cpu_based_2nd_exec_ctrl &
  251. SECONDARY_EXEC_VIRTUALIZE_APIC_ACCESSES;
  252. }
  253. static inline bool cpu_has_vmx_flexpriority(void)
  254. {
  255. return cpu_has_vmx_tpr_shadow() &&
  256. cpu_has_vmx_virtualize_apic_accesses();
  257. }
  258. static inline bool cpu_has_vmx_ept_execute_only(void)
  259. {
  260. return !!(vmx_capability.ept & VMX_EPT_EXECUTE_ONLY_BIT);
  261. }
  262. static inline bool cpu_has_vmx_eptp_uncacheable(void)
  263. {
  264. return !!(vmx_capability.ept & VMX_EPTP_UC_BIT);
  265. }
  266. static inline bool cpu_has_vmx_eptp_writeback(void)
  267. {
  268. return !!(vmx_capability.ept & VMX_EPTP_WB_BIT);
  269. }
  270. static inline bool cpu_has_vmx_ept_2m_page(void)
  271. {
  272. return !!(vmx_capability.ept & VMX_EPT_2MB_PAGE_BIT);
  273. }
  274. static inline bool cpu_has_vmx_ept_1g_page(void)
  275. {
  276. return !!(vmx_capability.ept & VMX_EPT_1GB_PAGE_BIT);
  277. }
  278. static inline int cpu_has_vmx_invept_individual_addr(void)
  279. {
  280. return !!(vmx_capability.ept & VMX_EPT_EXTENT_INDIVIDUAL_BIT);
  281. }
  282. static inline int cpu_has_vmx_invept_context(void)
  283. {
  284. return !!(vmx_capability.ept & VMX_EPT_EXTENT_CONTEXT_BIT);
  285. }
  286. static inline int cpu_has_vmx_invept_global(void)
  287. {
  288. return !!(vmx_capability.ept & VMX_EPT_EXTENT_GLOBAL_BIT);
  289. }
  290. static inline int cpu_has_vmx_ept(void)
  291. {
  292. return vmcs_config.cpu_based_2nd_exec_ctrl &
  293. SECONDARY_EXEC_ENABLE_EPT;
  294. }
  295. static inline int cpu_has_vmx_unrestricted_guest(void)
  296. {
  297. return vmcs_config.cpu_based_2nd_exec_ctrl &
  298. SECONDARY_EXEC_UNRESTRICTED_GUEST;
  299. }
  300. static inline int cpu_has_vmx_ple(void)
  301. {
  302. return vmcs_config.cpu_based_2nd_exec_ctrl &
  303. SECONDARY_EXEC_PAUSE_LOOP_EXITING;
  304. }
  305. static inline int vm_need_virtualize_apic_accesses(struct kvm *kvm)
  306. {
  307. return flexpriority_enabled && irqchip_in_kernel(kvm);
  308. }
  309. static inline int cpu_has_vmx_vpid(void)
  310. {
  311. return vmcs_config.cpu_based_2nd_exec_ctrl &
  312. SECONDARY_EXEC_ENABLE_VPID;
  313. }
  314. static inline int cpu_has_vmx_rdtscp(void)
  315. {
  316. return vmcs_config.cpu_based_2nd_exec_ctrl &
  317. SECONDARY_EXEC_RDTSCP;
  318. }
  319. static inline int cpu_has_virtual_nmis(void)
  320. {
  321. return vmcs_config.pin_based_exec_ctrl & PIN_BASED_VIRTUAL_NMIS;
  322. }
  323. static inline bool report_flexpriority(void)
  324. {
  325. return flexpriority_enabled;
  326. }
  327. static int __find_msr_index(struct vcpu_vmx *vmx, u32 msr)
  328. {
  329. int i;
  330. for (i = 0; i < vmx->nmsrs; ++i)
  331. if (vmx_msr_index[vmx->guest_msrs[i].index] == msr)
  332. return i;
  333. return -1;
  334. }
  335. static inline void __invvpid(int ext, u16 vpid, gva_t gva)
  336. {
  337. struct {
  338. u64 vpid : 16;
  339. u64 rsvd : 48;
  340. u64 gva;
  341. } operand = { vpid, 0, gva };
  342. asm volatile (__ex(ASM_VMX_INVVPID)
  343. /* CF==1 or ZF==1 --> rc = -1 */
  344. "; ja 1f ; ud2 ; 1:"
  345. : : "a"(&operand), "c"(ext) : "cc", "memory");
  346. }
  347. static inline void __invept(int ext, u64 eptp, gpa_t gpa)
  348. {
  349. struct {
  350. u64 eptp, gpa;
  351. } operand = {eptp, gpa};
  352. asm volatile (__ex(ASM_VMX_INVEPT)
  353. /* CF==1 or ZF==1 --> rc = -1 */
  354. "; ja 1f ; ud2 ; 1:\n"
  355. : : "a" (&operand), "c" (ext) : "cc", "memory");
  356. }
  357. static struct shared_msr_entry *find_msr_entry(struct vcpu_vmx *vmx, u32 msr)
  358. {
  359. int i;
  360. i = __find_msr_index(vmx, msr);
  361. if (i >= 0)
  362. return &vmx->guest_msrs[i];
  363. return NULL;
  364. }
  365. static void vmcs_clear(struct vmcs *vmcs)
  366. {
  367. u64 phys_addr = __pa(vmcs);
  368. u8 error;
  369. asm volatile (__ex(ASM_VMX_VMCLEAR_RAX) "; setna %0"
  370. : "=g"(error) : "a"(&phys_addr), "m"(phys_addr)
  371. : "cc", "memory");
  372. if (error)
  373. printk(KERN_ERR "kvm: vmclear fail: %p/%llx\n",
  374. vmcs, phys_addr);
  375. }
  376. static void __vcpu_clear(void *arg)
  377. {
  378. struct vcpu_vmx *vmx = arg;
  379. int cpu = raw_smp_processor_id();
  380. if (vmx->vcpu.cpu == cpu)
  381. vmcs_clear(vmx->vmcs);
  382. if (per_cpu(current_vmcs, cpu) == vmx->vmcs)
  383. per_cpu(current_vmcs, cpu) = NULL;
  384. rdtscll(vmx->vcpu.arch.host_tsc);
  385. list_del(&vmx->local_vcpus_link);
  386. vmx->vcpu.cpu = -1;
  387. vmx->launched = 0;
  388. }
  389. static void vcpu_clear(struct vcpu_vmx *vmx)
  390. {
  391. if (vmx->vcpu.cpu == -1)
  392. return;
  393. smp_call_function_single(vmx->vcpu.cpu, __vcpu_clear, vmx, 1);
  394. }
  395. static inline void vpid_sync_vcpu_all(struct vcpu_vmx *vmx)
  396. {
  397. if (vmx->vpid == 0)
  398. return;
  399. __invvpid(VMX_VPID_EXTENT_SINGLE_CONTEXT, vmx->vpid, 0);
  400. }
  401. static inline void ept_sync_global(void)
  402. {
  403. if (cpu_has_vmx_invept_global())
  404. __invept(VMX_EPT_EXTENT_GLOBAL, 0, 0);
  405. }
  406. static inline void ept_sync_context(u64 eptp)
  407. {
  408. if (enable_ept) {
  409. if (cpu_has_vmx_invept_context())
  410. __invept(VMX_EPT_EXTENT_CONTEXT, eptp, 0);
  411. else
  412. ept_sync_global();
  413. }
  414. }
  415. static inline void ept_sync_individual_addr(u64 eptp, gpa_t gpa)
  416. {
  417. if (enable_ept) {
  418. if (cpu_has_vmx_invept_individual_addr())
  419. __invept(VMX_EPT_EXTENT_INDIVIDUAL_ADDR,
  420. eptp, gpa);
  421. else
  422. ept_sync_context(eptp);
  423. }
  424. }
  425. static unsigned long vmcs_readl(unsigned long field)
  426. {
  427. unsigned long value;
  428. asm volatile (__ex(ASM_VMX_VMREAD_RDX_RAX)
  429. : "=a"(value) : "d"(field) : "cc");
  430. return value;
  431. }
  432. static u16 vmcs_read16(unsigned long field)
  433. {
  434. return vmcs_readl(field);
  435. }
  436. static u32 vmcs_read32(unsigned long field)
  437. {
  438. return vmcs_readl(field);
  439. }
  440. static u64 vmcs_read64(unsigned long field)
  441. {
  442. #ifdef CONFIG_X86_64
  443. return vmcs_readl(field);
  444. #else
  445. return vmcs_readl(field) | ((u64)vmcs_readl(field+1) << 32);
  446. #endif
  447. }
  448. static noinline void vmwrite_error(unsigned long field, unsigned long value)
  449. {
  450. printk(KERN_ERR "vmwrite error: reg %lx value %lx (err %d)\n",
  451. field, value, vmcs_read32(VM_INSTRUCTION_ERROR));
  452. dump_stack();
  453. }
  454. static void vmcs_writel(unsigned long field, unsigned long value)
  455. {
  456. u8 error;
  457. asm volatile (__ex(ASM_VMX_VMWRITE_RAX_RDX) "; setna %0"
  458. : "=q"(error) : "a"(value), "d"(field) : "cc");
  459. if (unlikely(error))
  460. vmwrite_error(field, value);
  461. }
  462. static void vmcs_write16(unsigned long field, u16 value)
  463. {
  464. vmcs_writel(field, value);
  465. }
  466. static void vmcs_write32(unsigned long field, u32 value)
  467. {
  468. vmcs_writel(field, value);
  469. }
  470. static void vmcs_write64(unsigned long field, u64 value)
  471. {
  472. vmcs_writel(field, value);
  473. #ifndef CONFIG_X86_64
  474. asm volatile ("");
  475. vmcs_writel(field+1, value >> 32);
  476. #endif
  477. }
  478. static void vmcs_clear_bits(unsigned long field, u32 mask)
  479. {
  480. vmcs_writel(field, vmcs_readl(field) & ~mask);
  481. }
  482. static void vmcs_set_bits(unsigned long field, u32 mask)
  483. {
  484. vmcs_writel(field, vmcs_readl(field) | mask);
  485. }
  486. static void update_exception_bitmap(struct kvm_vcpu *vcpu)
  487. {
  488. u32 eb;
  489. eb = (1u << PF_VECTOR) | (1u << UD_VECTOR) | (1u << MC_VECTOR) |
  490. (1u << NM_VECTOR) | (1u << DB_VECTOR);
  491. if ((vcpu->guest_debug &
  492. (KVM_GUESTDBG_ENABLE | KVM_GUESTDBG_USE_SW_BP)) ==
  493. (KVM_GUESTDBG_ENABLE | KVM_GUESTDBG_USE_SW_BP))
  494. eb |= 1u << BP_VECTOR;
  495. if (to_vmx(vcpu)->rmode.vm86_active)
  496. eb = ~0;
  497. if (enable_ept)
  498. eb &= ~(1u << PF_VECTOR); /* bypass_guest_pf = 0 */
  499. if (vcpu->fpu_active)
  500. eb &= ~(1u << NM_VECTOR);
  501. vmcs_write32(EXCEPTION_BITMAP, eb);
  502. }
  503. static void reload_tss(void)
  504. {
  505. /*
  506. * VT restores TR but not its size. Useless.
  507. */
  508. struct descriptor_table gdt;
  509. struct desc_struct *descs;
  510. kvm_get_gdt(&gdt);
  511. descs = (void *)gdt.base;
  512. descs[GDT_ENTRY_TSS].type = 9; /* available TSS */
  513. load_TR_desc();
  514. }
  515. static bool update_transition_efer(struct vcpu_vmx *vmx, int efer_offset)
  516. {
  517. u64 guest_efer;
  518. u64 ignore_bits;
  519. guest_efer = vmx->vcpu.arch.efer;
  520. /*
  521. * NX is emulated; LMA and LME handled by hardware; SCE meaninless
  522. * outside long mode
  523. */
  524. ignore_bits = EFER_NX | EFER_SCE;
  525. #ifdef CONFIG_X86_64
  526. ignore_bits |= EFER_LMA | EFER_LME;
  527. /* SCE is meaningful only in long mode on Intel */
  528. if (guest_efer & EFER_LMA)
  529. ignore_bits &= ~(u64)EFER_SCE;
  530. #endif
  531. guest_efer &= ~ignore_bits;
  532. guest_efer |= host_efer & ignore_bits;
  533. vmx->guest_msrs[efer_offset].data = guest_efer;
  534. vmx->guest_msrs[efer_offset].mask = ~ignore_bits;
  535. return true;
  536. }
  537. static void vmx_save_host_state(struct kvm_vcpu *vcpu)
  538. {
  539. struct vcpu_vmx *vmx = to_vmx(vcpu);
  540. int i;
  541. if (vmx->host_state.loaded)
  542. return;
  543. vmx->host_state.loaded = 1;
  544. /*
  545. * Set host fs and gs selectors. Unfortunately, 22.2.3 does not
  546. * allow segment selectors with cpl > 0 or ti == 1.
  547. */
  548. vmx->host_state.ldt_sel = kvm_read_ldt();
  549. vmx->host_state.gs_ldt_reload_needed = vmx->host_state.ldt_sel;
  550. vmx->host_state.fs_sel = kvm_read_fs();
  551. if (!(vmx->host_state.fs_sel & 7)) {
  552. vmcs_write16(HOST_FS_SELECTOR, vmx->host_state.fs_sel);
  553. vmx->host_state.fs_reload_needed = 0;
  554. } else {
  555. vmcs_write16(HOST_FS_SELECTOR, 0);
  556. vmx->host_state.fs_reload_needed = 1;
  557. }
  558. vmx->host_state.gs_sel = kvm_read_gs();
  559. if (!(vmx->host_state.gs_sel & 7))
  560. vmcs_write16(HOST_GS_SELECTOR, vmx->host_state.gs_sel);
  561. else {
  562. vmcs_write16(HOST_GS_SELECTOR, 0);
  563. vmx->host_state.gs_ldt_reload_needed = 1;
  564. }
  565. #ifdef CONFIG_X86_64
  566. vmcs_writel(HOST_FS_BASE, read_msr(MSR_FS_BASE));
  567. vmcs_writel(HOST_GS_BASE, read_msr(MSR_GS_BASE));
  568. #else
  569. vmcs_writel(HOST_FS_BASE, segment_base(vmx->host_state.fs_sel));
  570. vmcs_writel(HOST_GS_BASE, segment_base(vmx->host_state.gs_sel));
  571. #endif
  572. #ifdef CONFIG_X86_64
  573. if (is_long_mode(&vmx->vcpu)) {
  574. rdmsrl(MSR_KERNEL_GS_BASE, vmx->msr_host_kernel_gs_base);
  575. wrmsrl(MSR_KERNEL_GS_BASE, vmx->msr_guest_kernel_gs_base);
  576. }
  577. #endif
  578. for (i = 0; i < vmx->save_nmsrs; ++i)
  579. kvm_set_shared_msr(vmx->guest_msrs[i].index,
  580. vmx->guest_msrs[i].data,
  581. vmx->guest_msrs[i].mask);
  582. }
  583. static void __vmx_load_host_state(struct vcpu_vmx *vmx)
  584. {
  585. unsigned long flags;
  586. if (!vmx->host_state.loaded)
  587. return;
  588. ++vmx->vcpu.stat.host_state_reload;
  589. vmx->host_state.loaded = 0;
  590. if (vmx->host_state.fs_reload_needed)
  591. kvm_load_fs(vmx->host_state.fs_sel);
  592. if (vmx->host_state.gs_ldt_reload_needed) {
  593. kvm_load_ldt(vmx->host_state.ldt_sel);
  594. /*
  595. * If we have to reload gs, we must take care to
  596. * preserve our gs base.
  597. */
  598. local_irq_save(flags);
  599. kvm_load_gs(vmx->host_state.gs_sel);
  600. #ifdef CONFIG_X86_64
  601. wrmsrl(MSR_GS_BASE, vmcs_readl(HOST_GS_BASE));
  602. #endif
  603. local_irq_restore(flags);
  604. }
  605. reload_tss();
  606. #ifdef CONFIG_X86_64
  607. if (is_long_mode(&vmx->vcpu)) {
  608. rdmsrl(MSR_KERNEL_GS_BASE, vmx->msr_guest_kernel_gs_base);
  609. wrmsrl(MSR_KERNEL_GS_BASE, vmx->msr_host_kernel_gs_base);
  610. }
  611. #endif
  612. }
  613. static void vmx_load_host_state(struct vcpu_vmx *vmx)
  614. {
  615. preempt_disable();
  616. __vmx_load_host_state(vmx);
  617. preempt_enable();
  618. }
  619. /*
  620. * Switches to specified vcpu, until a matching vcpu_put(), but assumes
  621. * vcpu mutex is already taken.
  622. */
  623. static void vmx_vcpu_load(struct kvm_vcpu *vcpu, int cpu)
  624. {
  625. struct vcpu_vmx *vmx = to_vmx(vcpu);
  626. u64 phys_addr = __pa(vmx->vmcs);
  627. u64 tsc_this, delta, new_offset;
  628. if (vcpu->cpu != cpu) {
  629. vcpu_clear(vmx);
  630. kvm_migrate_timers(vcpu);
  631. set_bit(KVM_REQ_TLB_FLUSH, &vcpu->requests);
  632. local_irq_disable();
  633. list_add(&vmx->local_vcpus_link,
  634. &per_cpu(vcpus_on_cpu, cpu));
  635. local_irq_enable();
  636. }
  637. if (per_cpu(current_vmcs, cpu) != vmx->vmcs) {
  638. u8 error;
  639. per_cpu(current_vmcs, cpu) = vmx->vmcs;
  640. asm volatile (__ex(ASM_VMX_VMPTRLD_RAX) "; setna %0"
  641. : "=g"(error) : "a"(&phys_addr), "m"(phys_addr)
  642. : "cc");
  643. if (error)
  644. printk(KERN_ERR "kvm: vmptrld %p/%llx fail\n",
  645. vmx->vmcs, phys_addr);
  646. }
  647. if (vcpu->cpu != cpu) {
  648. struct descriptor_table dt;
  649. unsigned long sysenter_esp;
  650. vcpu->cpu = cpu;
  651. /*
  652. * Linux uses per-cpu TSS and GDT, so set these when switching
  653. * processors.
  654. */
  655. vmcs_writel(HOST_TR_BASE, kvm_read_tr_base()); /* 22.2.4 */
  656. kvm_get_gdt(&dt);
  657. vmcs_writel(HOST_GDTR_BASE, dt.base); /* 22.2.4 */
  658. rdmsrl(MSR_IA32_SYSENTER_ESP, sysenter_esp);
  659. vmcs_writel(HOST_IA32_SYSENTER_ESP, sysenter_esp); /* 22.2.3 */
  660. /*
  661. * Make sure the time stamp counter is monotonous.
  662. */
  663. rdtscll(tsc_this);
  664. if (tsc_this < vcpu->arch.host_tsc) {
  665. delta = vcpu->arch.host_tsc - tsc_this;
  666. new_offset = vmcs_read64(TSC_OFFSET) + delta;
  667. vmcs_write64(TSC_OFFSET, new_offset);
  668. }
  669. }
  670. }
  671. static void vmx_vcpu_put(struct kvm_vcpu *vcpu)
  672. {
  673. __vmx_load_host_state(to_vmx(vcpu));
  674. }
  675. static void vmx_fpu_activate(struct kvm_vcpu *vcpu)
  676. {
  677. ulong cr0;
  678. if (vcpu->fpu_active)
  679. return;
  680. vcpu->fpu_active = 1;
  681. cr0 = vmcs_readl(GUEST_CR0);
  682. cr0 &= ~(X86_CR0_TS | X86_CR0_MP);
  683. cr0 |= kvm_read_cr0_bits(vcpu, X86_CR0_TS | X86_CR0_MP);
  684. vmcs_writel(GUEST_CR0, cr0);
  685. update_exception_bitmap(vcpu);
  686. vcpu->arch.cr0_guest_owned_bits = X86_CR0_TS;
  687. vmcs_writel(CR0_GUEST_HOST_MASK, ~vcpu->arch.cr0_guest_owned_bits);
  688. }
  689. static void vmx_decache_cr0_guest_bits(struct kvm_vcpu *vcpu);
  690. static void vmx_fpu_deactivate(struct kvm_vcpu *vcpu)
  691. {
  692. vmx_decache_cr0_guest_bits(vcpu);
  693. vmcs_set_bits(GUEST_CR0, X86_CR0_TS | X86_CR0_MP);
  694. update_exception_bitmap(vcpu);
  695. vcpu->arch.cr0_guest_owned_bits = 0;
  696. vmcs_writel(CR0_GUEST_HOST_MASK, ~vcpu->arch.cr0_guest_owned_bits);
  697. vmcs_writel(CR0_READ_SHADOW, vcpu->arch.cr0);
  698. }
  699. static unsigned long vmx_get_rflags(struct kvm_vcpu *vcpu)
  700. {
  701. unsigned long rflags, save_rflags;
  702. rflags = vmcs_readl(GUEST_RFLAGS);
  703. if (to_vmx(vcpu)->rmode.vm86_active) {
  704. rflags &= RMODE_GUEST_OWNED_EFLAGS_BITS;
  705. save_rflags = to_vmx(vcpu)->rmode.save_rflags;
  706. rflags |= save_rflags & ~RMODE_GUEST_OWNED_EFLAGS_BITS;
  707. }
  708. return rflags;
  709. }
  710. static void vmx_set_rflags(struct kvm_vcpu *vcpu, unsigned long rflags)
  711. {
  712. if (to_vmx(vcpu)->rmode.vm86_active) {
  713. to_vmx(vcpu)->rmode.save_rflags = rflags;
  714. rflags |= X86_EFLAGS_IOPL | X86_EFLAGS_VM;
  715. }
  716. vmcs_writel(GUEST_RFLAGS, rflags);
  717. }
  718. static u32 vmx_get_interrupt_shadow(struct kvm_vcpu *vcpu, int mask)
  719. {
  720. u32 interruptibility = vmcs_read32(GUEST_INTERRUPTIBILITY_INFO);
  721. int ret = 0;
  722. if (interruptibility & GUEST_INTR_STATE_STI)
  723. ret |= X86_SHADOW_INT_STI;
  724. if (interruptibility & GUEST_INTR_STATE_MOV_SS)
  725. ret |= X86_SHADOW_INT_MOV_SS;
  726. return ret & mask;
  727. }
  728. static void vmx_set_interrupt_shadow(struct kvm_vcpu *vcpu, int mask)
  729. {
  730. u32 interruptibility_old = vmcs_read32(GUEST_INTERRUPTIBILITY_INFO);
  731. u32 interruptibility = interruptibility_old;
  732. interruptibility &= ~(GUEST_INTR_STATE_STI | GUEST_INTR_STATE_MOV_SS);
  733. if (mask & X86_SHADOW_INT_MOV_SS)
  734. interruptibility |= GUEST_INTR_STATE_MOV_SS;
  735. if (mask & X86_SHADOW_INT_STI)
  736. interruptibility |= GUEST_INTR_STATE_STI;
  737. if ((interruptibility != interruptibility_old))
  738. vmcs_write32(GUEST_INTERRUPTIBILITY_INFO, interruptibility);
  739. }
  740. static void skip_emulated_instruction(struct kvm_vcpu *vcpu)
  741. {
  742. unsigned long rip;
  743. rip = kvm_rip_read(vcpu);
  744. rip += vmcs_read32(VM_EXIT_INSTRUCTION_LEN);
  745. kvm_rip_write(vcpu, rip);
  746. /* skipping an emulated instruction also counts */
  747. vmx_set_interrupt_shadow(vcpu, 0);
  748. }
  749. static void vmx_queue_exception(struct kvm_vcpu *vcpu, unsigned nr,
  750. bool has_error_code, u32 error_code)
  751. {
  752. struct vcpu_vmx *vmx = to_vmx(vcpu);
  753. u32 intr_info = nr | INTR_INFO_VALID_MASK;
  754. if (has_error_code) {
  755. vmcs_write32(VM_ENTRY_EXCEPTION_ERROR_CODE, error_code);
  756. intr_info |= INTR_INFO_DELIVER_CODE_MASK;
  757. }
  758. if (vmx->rmode.vm86_active) {
  759. vmx->rmode.irq.pending = true;
  760. vmx->rmode.irq.vector = nr;
  761. vmx->rmode.irq.rip = kvm_rip_read(vcpu);
  762. if (kvm_exception_is_soft(nr))
  763. vmx->rmode.irq.rip +=
  764. vmx->vcpu.arch.event_exit_inst_len;
  765. intr_info |= INTR_TYPE_SOFT_INTR;
  766. vmcs_write32(VM_ENTRY_INTR_INFO_FIELD, intr_info);
  767. vmcs_write32(VM_ENTRY_INSTRUCTION_LEN, 1);
  768. kvm_rip_write(vcpu, vmx->rmode.irq.rip - 1);
  769. return;
  770. }
  771. if (kvm_exception_is_soft(nr)) {
  772. vmcs_write32(VM_ENTRY_INSTRUCTION_LEN,
  773. vmx->vcpu.arch.event_exit_inst_len);
  774. intr_info |= INTR_TYPE_SOFT_EXCEPTION;
  775. } else
  776. intr_info |= INTR_TYPE_HARD_EXCEPTION;
  777. vmcs_write32(VM_ENTRY_INTR_INFO_FIELD, intr_info);
  778. }
  779. static bool vmx_rdtscp_supported(void)
  780. {
  781. return cpu_has_vmx_rdtscp();
  782. }
  783. /*
  784. * Swap MSR entry in host/guest MSR entry array.
  785. */
  786. static void move_msr_up(struct vcpu_vmx *vmx, int from, int to)
  787. {
  788. struct shared_msr_entry tmp;
  789. tmp = vmx->guest_msrs[to];
  790. vmx->guest_msrs[to] = vmx->guest_msrs[from];
  791. vmx->guest_msrs[from] = tmp;
  792. }
  793. /*
  794. * Set up the vmcs to automatically save and restore system
  795. * msrs. Don't touch the 64-bit msrs if the guest is in legacy
  796. * mode, as fiddling with msrs is very expensive.
  797. */
  798. static void setup_msrs(struct vcpu_vmx *vmx)
  799. {
  800. int save_nmsrs, index;
  801. unsigned long *msr_bitmap;
  802. vmx_load_host_state(vmx);
  803. save_nmsrs = 0;
  804. #ifdef CONFIG_X86_64
  805. if (is_long_mode(&vmx->vcpu)) {
  806. index = __find_msr_index(vmx, MSR_SYSCALL_MASK);
  807. if (index >= 0)
  808. move_msr_up(vmx, index, save_nmsrs++);
  809. index = __find_msr_index(vmx, MSR_LSTAR);
  810. if (index >= 0)
  811. move_msr_up(vmx, index, save_nmsrs++);
  812. index = __find_msr_index(vmx, MSR_CSTAR);
  813. if (index >= 0)
  814. move_msr_up(vmx, index, save_nmsrs++);
  815. index = __find_msr_index(vmx, MSR_TSC_AUX);
  816. if (index >= 0 && vmx->rdtscp_enabled)
  817. move_msr_up(vmx, index, save_nmsrs++);
  818. /*
  819. * MSR_K6_STAR is only needed on long mode guests, and only
  820. * if efer.sce is enabled.
  821. */
  822. index = __find_msr_index(vmx, MSR_K6_STAR);
  823. if ((index >= 0) && (vmx->vcpu.arch.efer & EFER_SCE))
  824. move_msr_up(vmx, index, save_nmsrs++);
  825. }
  826. #endif
  827. index = __find_msr_index(vmx, MSR_EFER);
  828. if (index >= 0 && update_transition_efer(vmx, index))
  829. move_msr_up(vmx, index, save_nmsrs++);
  830. vmx->save_nmsrs = save_nmsrs;
  831. if (cpu_has_vmx_msr_bitmap()) {
  832. if (is_long_mode(&vmx->vcpu))
  833. msr_bitmap = vmx_msr_bitmap_longmode;
  834. else
  835. msr_bitmap = vmx_msr_bitmap_legacy;
  836. vmcs_write64(MSR_BITMAP, __pa(msr_bitmap));
  837. }
  838. }
  839. /*
  840. * reads and returns guest's timestamp counter "register"
  841. * guest_tsc = host_tsc + tsc_offset -- 21.3
  842. */
  843. static u64 guest_read_tsc(void)
  844. {
  845. u64 host_tsc, tsc_offset;
  846. rdtscll(host_tsc);
  847. tsc_offset = vmcs_read64(TSC_OFFSET);
  848. return host_tsc + tsc_offset;
  849. }
  850. /*
  851. * writes 'guest_tsc' into guest's timestamp counter "register"
  852. * guest_tsc = host_tsc + tsc_offset ==> tsc_offset = guest_tsc - host_tsc
  853. */
  854. static void guest_write_tsc(u64 guest_tsc, u64 host_tsc)
  855. {
  856. vmcs_write64(TSC_OFFSET, guest_tsc - host_tsc);
  857. }
  858. /*
  859. * Reads an msr value (of 'msr_index') into 'pdata'.
  860. * Returns 0 on success, non-0 otherwise.
  861. * Assumes vcpu_load() was already called.
  862. */
  863. static int vmx_get_msr(struct kvm_vcpu *vcpu, u32 msr_index, u64 *pdata)
  864. {
  865. u64 data;
  866. struct shared_msr_entry *msr;
  867. if (!pdata) {
  868. printk(KERN_ERR "BUG: get_msr called with NULL pdata\n");
  869. return -EINVAL;
  870. }
  871. switch (msr_index) {
  872. #ifdef CONFIG_X86_64
  873. case MSR_FS_BASE:
  874. data = vmcs_readl(GUEST_FS_BASE);
  875. break;
  876. case MSR_GS_BASE:
  877. data = vmcs_readl(GUEST_GS_BASE);
  878. break;
  879. case MSR_KERNEL_GS_BASE:
  880. vmx_load_host_state(to_vmx(vcpu));
  881. data = to_vmx(vcpu)->msr_guest_kernel_gs_base;
  882. break;
  883. #endif
  884. case MSR_EFER:
  885. return kvm_get_msr_common(vcpu, msr_index, pdata);
  886. case MSR_IA32_TSC:
  887. data = guest_read_tsc();
  888. break;
  889. case MSR_IA32_SYSENTER_CS:
  890. data = vmcs_read32(GUEST_SYSENTER_CS);
  891. break;
  892. case MSR_IA32_SYSENTER_EIP:
  893. data = vmcs_readl(GUEST_SYSENTER_EIP);
  894. break;
  895. case MSR_IA32_SYSENTER_ESP:
  896. data = vmcs_readl(GUEST_SYSENTER_ESP);
  897. break;
  898. case MSR_TSC_AUX:
  899. if (!to_vmx(vcpu)->rdtscp_enabled)
  900. return 1;
  901. /* Otherwise falls through */
  902. default:
  903. vmx_load_host_state(to_vmx(vcpu));
  904. msr = find_msr_entry(to_vmx(vcpu), msr_index);
  905. if (msr) {
  906. vmx_load_host_state(to_vmx(vcpu));
  907. data = msr->data;
  908. break;
  909. }
  910. return kvm_get_msr_common(vcpu, msr_index, pdata);
  911. }
  912. *pdata = data;
  913. return 0;
  914. }
  915. /*
  916. * Writes msr value into into the appropriate "register".
  917. * Returns 0 on success, non-0 otherwise.
  918. * Assumes vcpu_load() was already called.
  919. */
  920. static int vmx_set_msr(struct kvm_vcpu *vcpu, u32 msr_index, u64 data)
  921. {
  922. struct vcpu_vmx *vmx = to_vmx(vcpu);
  923. struct shared_msr_entry *msr;
  924. u64 host_tsc;
  925. int ret = 0;
  926. switch (msr_index) {
  927. case MSR_EFER:
  928. vmx_load_host_state(vmx);
  929. ret = kvm_set_msr_common(vcpu, msr_index, data);
  930. break;
  931. #ifdef CONFIG_X86_64
  932. case MSR_FS_BASE:
  933. vmcs_writel(GUEST_FS_BASE, data);
  934. break;
  935. case MSR_GS_BASE:
  936. vmcs_writel(GUEST_GS_BASE, data);
  937. break;
  938. case MSR_KERNEL_GS_BASE:
  939. vmx_load_host_state(vmx);
  940. vmx->msr_guest_kernel_gs_base = data;
  941. break;
  942. #endif
  943. case MSR_IA32_SYSENTER_CS:
  944. vmcs_write32(GUEST_SYSENTER_CS, data);
  945. break;
  946. case MSR_IA32_SYSENTER_EIP:
  947. vmcs_writel(GUEST_SYSENTER_EIP, data);
  948. break;
  949. case MSR_IA32_SYSENTER_ESP:
  950. vmcs_writel(GUEST_SYSENTER_ESP, data);
  951. break;
  952. case MSR_IA32_TSC:
  953. rdtscll(host_tsc);
  954. guest_write_tsc(data, host_tsc);
  955. break;
  956. case MSR_IA32_CR_PAT:
  957. if (vmcs_config.vmentry_ctrl & VM_ENTRY_LOAD_IA32_PAT) {
  958. vmcs_write64(GUEST_IA32_PAT, data);
  959. vcpu->arch.pat = data;
  960. break;
  961. }
  962. ret = kvm_set_msr_common(vcpu, msr_index, data);
  963. break;
  964. case MSR_TSC_AUX:
  965. if (!vmx->rdtscp_enabled)
  966. return 1;
  967. /* Check reserved bit, higher 32 bits should be zero */
  968. if ((data >> 32) != 0)
  969. return 1;
  970. /* Otherwise falls through */
  971. default:
  972. msr = find_msr_entry(vmx, msr_index);
  973. if (msr) {
  974. vmx_load_host_state(vmx);
  975. msr->data = data;
  976. break;
  977. }
  978. ret = kvm_set_msr_common(vcpu, msr_index, data);
  979. }
  980. return ret;
  981. }
  982. static void vmx_cache_reg(struct kvm_vcpu *vcpu, enum kvm_reg reg)
  983. {
  984. __set_bit(reg, (unsigned long *)&vcpu->arch.regs_avail);
  985. switch (reg) {
  986. case VCPU_REGS_RSP:
  987. vcpu->arch.regs[VCPU_REGS_RSP] = vmcs_readl(GUEST_RSP);
  988. break;
  989. case VCPU_REGS_RIP:
  990. vcpu->arch.regs[VCPU_REGS_RIP] = vmcs_readl(GUEST_RIP);
  991. break;
  992. case VCPU_EXREG_PDPTR:
  993. if (enable_ept)
  994. ept_save_pdptrs(vcpu);
  995. break;
  996. default:
  997. break;
  998. }
  999. }
  1000. static void set_guest_debug(struct kvm_vcpu *vcpu, struct kvm_guest_debug *dbg)
  1001. {
  1002. if (vcpu->guest_debug & KVM_GUESTDBG_USE_HW_BP)
  1003. vmcs_writel(GUEST_DR7, dbg->arch.debugreg[7]);
  1004. else
  1005. vmcs_writel(GUEST_DR7, vcpu->arch.dr7);
  1006. update_exception_bitmap(vcpu);
  1007. }
  1008. static __init int cpu_has_kvm_support(void)
  1009. {
  1010. return cpu_has_vmx();
  1011. }
  1012. static __init int vmx_disabled_by_bios(void)
  1013. {
  1014. u64 msr;
  1015. rdmsrl(MSR_IA32_FEATURE_CONTROL, msr);
  1016. return (msr & (FEATURE_CONTROL_LOCKED |
  1017. FEATURE_CONTROL_VMXON_ENABLED))
  1018. == FEATURE_CONTROL_LOCKED;
  1019. /* locked but not enabled */
  1020. }
  1021. static int hardware_enable(void *garbage)
  1022. {
  1023. int cpu = raw_smp_processor_id();
  1024. u64 phys_addr = __pa(per_cpu(vmxarea, cpu));
  1025. u64 old;
  1026. if (read_cr4() & X86_CR4_VMXE)
  1027. return -EBUSY;
  1028. INIT_LIST_HEAD(&per_cpu(vcpus_on_cpu, cpu));
  1029. rdmsrl(MSR_IA32_FEATURE_CONTROL, old);
  1030. if ((old & (FEATURE_CONTROL_LOCKED |
  1031. FEATURE_CONTROL_VMXON_ENABLED))
  1032. != (FEATURE_CONTROL_LOCKED |
  1033. FEATURE_CONTROL_VMXON_ENABLED))
  1034. /* enable and lock */
  1035. wrmsrl(MSR_IA32_FEATURE_CONTROL, old |
  1036. FEATURE_CONTROL_LOCKED |
  1037. FEATURE_CONTROL_VMXON_ENABLED);
  1038. write_cr4(read_cr4() | X86_CR4_VMXE); /* FIXME: not cpu hotplug safe */
  1039. asm volatile (ASM_VMX_VMXON_RAX
  1040. : : "a"(&phys_addr), "m"(phys_addr)
  1041. : "memory", "cc");
  1042. ept_sync_global();
  1043. return 0;
  1044. }
  1045. static void vmclear_local_vcpus(void)
  1046. {
  1047. int cpu = raw_smp_processor_id();
  1048. struct vcpu_vmx *vmx, *n;
  1049. list_for_each_entry_safe(vmx, n, &per_cpu(vcpus_on_cpu, cpu),
  1050. local_vcpus_link)
  1051. __vcpu_clear(vmx);
  1052. }
  1053. /* Just like cpu_vmxoff(), but with the __kvm_handle_fault_on_reboot()
  1054. * tricks.
  1055. */
  1056. static void kvm_cpu_vmxoff(void)
  1057. {
  1058. asm volatile (__ex(ASM_VMX_VMXOFF) : : : "cc");
  1059. write_cr4(read_cr4() & ~X86_CR4_VMXE);
  1060. }
  1061. static void hardware_disable(void *garbage)
  1062. {
  1063. vmclear_local_vcpus();
  1064. kvm_cpu_vmxoff();
  1065. }
  1066. static __init int adjust_vmx_controls(u32 ctl_min, u32 ctl_opt,
  1067. u32 msr, u32 *result)
  1068. {
  1069. u32 vmx_msr_low, vmx_msr_high;
  1070. u32 ctl = ctl_min | ctl_opt;
  1071. rdmsr(msr, vmx_msr_low, vmx_msr_high);
  1072. ctl &= vmx_msr_high; /* bit == 0 in high word ==> must be zero */
  1073. ctl |= vmx_msr_low; /* bit == 1 in low word ==> must be one */
  1074. /* Ensure minimum (required) set of control bits are supported. */
  1075. if (ctl_min & ~ctl)
  1076. return -EIO;
  1077. *result = ctl;
  1078. return 0;
  1079. }
  1080. static __init int setup_vmcs_config(struct vmcs_config *vmcs_conf)
  1081. {
  1082. u32 vmx_msr_low, vmx_msr_high;
  1083. u32 min, opt, min2, opt2;
  1084. u32 _pin_based_exec_control = 0;
  1085. u32 _cpu_based_exec_control = 0;
  1086. u32 _cpu_based_2nd_exec_control = 0;
  1087. u32 _vmexit_control = 0;
  1088. u32 _vmentry_control = 0;
  1089. min = PIN_BASED_EXT_INTR_MASK | PIN_BASED_NMI_EXITING;
  1090. opt = PIN_BASED_VIRTUAL_NMIS;
  1091. if (adjust_vmx_controls(min, opt, MSR_IA32_VMX_PINBASED_CTLS,
  1092. &_pin_based_exec_control) < 0)
  1093. return -EIO;
  1094. min = CPU_BASED_HLT_EXITING |
  1095. #ifdef CONFIG_X86_64
  1096. CPU_BASED_CR8_LOAD_EXITING |
  1097. CPU_BASED_CR8_STORE_EXITING |
  1098. #endif
  1099. CPU_BASED_CR3_LOAD_EXITING |
  1100. CPU_BASED_CR3_STORE_EXITING |
  1101. CPU_BASED_USE_IO_BITMAPS |
  1102. CPU_BASED_MOV_DR_EXITING |
  1103. CPU_BASED_USE_TSC_OFFSETING |
  1104. CPU_BASED_MWAIT_EXITING |
  1105. CPU_BASED_MONITOR_EXITING |
  1106. CPU_BASED_INVLPG_EXITING;
  1107. opt = CPU_BASED_TPR_SHADOW |
  1108. CPU_BASED_USE_MSR_BITMAPS |
  1109. CPU_BASED_ACTIVATE_SECONDARY_CONTROLS;
  1110. if (adjust_vmx_controls(min, opt, MSR_IA32_VMX_PROCBASED_CTLS,
  1111. &_cpu_based_exec_control) < 0)
  1112. return -EIO;
  1113. #ifdef CONFIG_X86_64
  1114. if ((_cpu_based_exec_control & CPU_BASED_TPR_SHADOW))
  1115. _cpu_based_exec_control &= ~CPU_BASED_CR8_LOAD_EXITING &
  1116. ~CPU_BASED_CR8_STORE_EXITING;
  1117. #endif
  1118. if (_cpu_based_exec_control & CPU_BASED_ACTIVATE_SECONDARY_CONTROLS) {
  1119. min2 = 0;
  1120. opt2 = SECONDARY_EXEC_VIRTUALIZE_APIC_ACCESSES |
  1121. SECONDARY_EXEC_WBINVD_EXITING |
  1122. SECONDARY_EXEC_ENABLE_VPID |
  1123. SECONDARY_EXEC_ENABLE_EPT |
  1124. SECONDARY_EXEC_UNRESTRICTED_GUEST |
  1125. SECONDARY_EXEC_PAUSE_LOOP_EXITING |
  1126. SECONDARY_EXEC_RDTSCP;
  1127. if (adjust_vmx_controls(min2, opt2,
  1128. MSR_IA32_VMX_PROCBASED_CTLS2,
  1129. &_cpu_based_2nd_exec_control) < 0)
  1130. return -EIO;
  1131. }
  1132. #ifndef CONFIG_X86_64
  1133. if (!(_cpu_based_2nd_exec_control &
  1134. SECONDARY_EXEC_VIRTUALIZE_APIC_ACCESSES))
  1135. _cpu_based_exec_control &= ~CPU_BASED_TPR_SHADOW;
  1136. #endif
  1137. if (_cpu_based_2nd_exec_control & SECONDARY_EXEC_ENABLE_EPT) {
  1138. /* CR3 accesses and invlpg don't need to cause VM Exits when EPT
  1139. enabled */
  1140. _cpu_based_exec_control &= ~(CPU_BASED_CR3_LOAD_EXITING |
  1141. CPU_BASED_CR3_STORE_EXITING |
  1142. CPU_BASED_INVLPG_EXITING);
  1143. rdmsr(MSR_IA32_VMX_EPT_VPID_CAP,
  1144. vmx_capability.ept, vmx_capability.vpid);
  1145. }
  1146. min = 0;
  1147. #ifdef CONFIG_X86_64
  1148. min |= VM_EXIT_HOST_ADDR_SPACE_SIZE;
  1149. #endif
  1150. opt = VM_EXIT_SAVE_IA32_PAT | VM_EXIT_LOAD_IA32_PAT;
  1151. if (adjust_vmx_controls(min, opt, MSR_IA32_VMX_EXIT_CTLS,
  1152. &_vmexit_control) < 0)
  1153. return -EIO;
  1154. min = 0;
  1155. opt = VM_ENTRY_LOAD_IA32_PAT;
  1156. if (adjust_vmx_controls(min, opt, MSR_IA32_VMX_ENTRY_CTLS,
  1157. &_vmentry_control) < 0)
  1158. return -EIO;
  1159. rdmsr(MSR_IA32_VMX_BASIC, vmx_msr_low, vmx_msr_high);
  1160. /* IA-32 SDM Vol 3B: VMCS size is never greater than 4kB. */
  1161. if ((vmx_msr_high & 0x1fff) > PAGE_SIZE)
  1162. return -EIO;
  1163. #ifdef CONFIG_X86_64
  1164. /* IA-32 SDM Vol 3B: 64-bit CPUs always have VMX_BASIC_MSR[48]==0. */
  1165. if (vmx_msr_high & (1u<<16))
  1166. return -EIO;
  1167. #endif
  1168. /* Require Write-Back (WB) memory type for VMCS accesses. */
  1169. if (((vmx_msr_high >> 18) & 15) != 6)
  1170. return -EIO;
  1171. vmcs_conf->size = vmx_msr_high & 0x1fff;
  1172. vmcs_conf->order = get_order(vmcs_config.size);
  1173. vmcs_conf->revision_id = vmx_msr_low;
  1174. vmcs_conf->pin_based_exec_ctrl = _pin_based_exec_control;
  1175. vmcs_conf->cpu_based_exec_ctrl = _cpu_based_exec_control;
  1176. vmcs_conf->cpu_based_2nd_exec_ctrl = _cpu_based_2nd_exec_control;
  1177. vmcs_conf->vmexit_ctrl = _vmexit_control;
  1178. vmcs_conf->vmentry_ctrl = _vmentry_control;
  1179. return 0;
  1180. }
  1181. static struct vmcs *alloc_vmcs_cpu(int cpu)
  1182. {
  1183. int node = cpu_to_node(cpu);
  1184. struct page *pages;
  1185. struct vmcs *vmcs;
  1186. pages = alloc_pages_exact_node(node, GFP_KERNEL, vmcs_config.order);
  1187. if (!pages)
  1188. return NULL;
  1189. vmcs = page_address(pages);
  1190. memset(vmcs, 0, vmcs_config.size);
  1191. vmcs->revision_id = vmcs_config.revision_id; /* vmcs revision id */
  1192. return vmcs;
  1193. }
  1194. static struct vmcs *alloc_vmcs(void)
  1195. {
  1196. return alloc_vmcs_cpu(raw_smp_processor_id());
  1197. }
  1198. static void free_vmcs(struct vmcs *vmcs)
  1199. {
  1200. free_pages((unsigned long)vmcs, vmcs_config.order);
  1201. }
  1202. static void free_kvm_area(void)
  1203. {
  1204. int cpu;
  1205. for_each_possible_cpu(cpu) {
  1206. free_vmcs(per_cpu(vmxarea, cpu));
  1207. per_cpu(vmxarea, cpu) = NULL;
  1208. }
  1209. }
  1210. static __init int alloc_kvm_area(void)
  1211. {
  1212. int cpu;
  1213. for_each_possible_cpu(cpu) {
  1214. struct vmcs *vmcs;
  1215. vmcs = alloc_vmcs_cpu(cpu);
  1216. if (!vmcs) {
  1217. free_kvm_area();
  1218. return -ENOMEM;
  1219. }
  1220. per_cpu(vmxarea, cpu) = vmcs;
  1221. }
  1222. return 0;
  1223. }
  1224. static __init int hardware_setup(void)
  1225. {
  1226. if (setup_vmcs_config(&vmcs_config) < 0)
  1227. return -EIO;
  1228. if (boot_cpu_has(X86_FEATURE_NX))
  1229. kvm_enable_efer_bits(EFER_NX);
  1230. if (!cpu_has_vmx_vpid())
  1231. enable_vpid = 0;
  1232. if (!cpu_has_vmx_ept()) {
  1233. enable_ept = 0;
  1234. enable_unrestricted_guest = 0;
  1235. }
  1236. if (!cpu_has_vmx_unrestricted_guest())
  1237. enable_unrestricted_guest = 0;
  1238. if (!cpu_has_vmx_flexpriority())
  1239. flexpriority_enabled = 0;
  1240. if (!cpu_has_vmx_tpr_shadow())
  1241. kvm_x86_ops->update_cr8_intercept = NULL;
  1242. if (enable_ept && !cpu_has_vmx_ept_2m_page())
  1243. kvm_disable_largepages();
  1244. if (!cpu_has_vmx_ple())
  1245. ple_gap = 0;
  1246. return alloc_kvm_area();
  1247. }
  1248. static __exit void hardware_unsetup(void)
  1249. {
  1250. free_kvm_area();
  1251. }
  1252. static void fix_pmode_dataseg(int seg, struct kvm_save_segment *save)
  1253. {
  1254. struct kvm_vmx_segment_field *sf = &kvm_vmx_segment_fields[seg];
  1255. if (vmcs_readl(sf->base) == save->base && (save->base & AR_S_MASK)) {
  1256. vmcs_write16(sf->selector, save->selector);
  1257. vmcs_writel(sf->base, save->base);
  1258. vmcs_write32(sf->limit, save->limit);
  1259. vmcs_write32(sf->ar_bytes, save->ar);
  1260. } else {
  1261. u32 dpl = (vmcs_read16(sf->selector) & SELECTOR_RPL_MASK)
  1262. << AR_DPL_SHIFT;
  1263. vmcs_write32(sf->ar_bytes, 0x93 | dpl);
  1264. }
  1265. }
  1266. static void enter_pmode(struct kvm_vcpu *vcpu)
  1267. {
  1268. unsigned long flags;
  1269. struct vcpu_vmx *vmx = to_vmx(vcpu);
  1270. vmx->emulation_required = 1;
  1271. vmx->rmode.vm86_active = 0;
  1272. vmcs_writel(GUEST_TR_BASE, vmx->rmode.tr.base);
  1273. vmcs_write32(GUEST_TR_LIMIT, vmx->rmode.tr.limit);
  1274. vmcs_write32(GUEST_TR_AR_BYTES, vmx->rmode.tr.ar);
  1275. flags = vmcs_readl(GUEST_RFLAGS);
  1276. flags &= RMODE_GUEST_OWNED_EFLAGS_BITS;
  1277. flags |= vmx->rmode.save_rflags & ~RMODE_GUEST_OWNED_EFLAGS_BITS;
  1278. vmcs_writel(GUEST_RFLAGS, flags);
  1279. vmcs_writel(GUEST_CR4, (vmcs_readl(GUEST_CR4) & ~X86_CR4_VME) |
  1280. (vmcs_readl(CR4_READ_SHADOW) & X86_CR4_VME));
  1281. update_exception_bitmap(vcpu);
  1282. if (emulate_invalid_guest_state)
  1283. return;
  1284. fix_pmode_dataseg(VCPU_SREG_ES, &vmx->rmode.es);
  1285. fix_pmode_dataseg(VCPU_SREG_DS, &vmx->rmode.ds);
  1286. fix_pmode_dataseg(VCPU_SREG_GS, &vmx->rmode.gs);
  1287. fix_pmode_dataseg(VCPU_SREG_FS, &vmx->rmode.fs);
  1288. vmcs_write16(GUEST_SS_SELECTOR, 0);
  1289. vmcs_write32(GUEST_SS_AR_BYTES, 0x93);
  1290. vmcs_write16(GUEST_CS_SELECTOR,
  1291. vmcs_read16(GUEST_CS_SELECTOR) & ~SELECTOR_RPL_MASK);
  1292. vmcs_write32(GUEST_CS_AR_BYTES, 0x9b);
  1293. }
  1294. static gva_t rmode_tss_base(struct kvm *kvm)
  1295. {
  1296. if (!kvm->arch.tss_addr) {
  1297. struct kvm_memslots *slots;
  1298. gfn_t base_gfn;
  1299. slots = rcu_dereference(kvm->memslots);
  1300. base_gfn = kvm->memslots->memslots[0].base_gfn +
  1301. kvm->memslots->memslots[0].npages - 3;
  1302. return base_gfn << PAGE_SHIFT;
  1303. }
  1304. return kvm->arch.tss_addr;
  1305. }
  1306. static void fix_rmode_seg(int seg, struct kvm_save_segment *save)
  1307. {
  1308. struct kvm_vmx_segment_field *sf = &kvm_vmx_segment_fields[seg];
  1309. save->selector = vmcs_read16(sf->selector);
  1310. save->base = vmcs_readl(sf->base);
  1311. save->limit = vmcs_read32(sf->limit);
  1312. save->ar = vmcs_read32(sf->ar_bytes);
  1313. vmcs_write16(sf->selector, save->base >> 4);
  1314. vmcs_write32(sf->base, save->base & 0xfffff);
  1315. vmcs_write32(sf->limit, 0xffff);
  1316. vmcs_write32(sf->ar_bytes, 0xf3);
  1317. }
  1318. static void enter_rmode(struct kvm_vcpu *vcpu)
  1319. {
  1320. unsigned long flags;
  1321. struct vcpu_vmx *vmx = to_vmx(vcpu);
  1322. if (enable_unrestricted_guest)
  1323. return;
  1324. vmx->emulation_required = 1;
  1325. vmx->rmode.vm86_active = 1;
  1326. vmx->rmode.tr.base = vmcs_readl(GUEST_TR_BASE);
  1327. vmcs_writel(GUEST_TR_BASE, rmode_tss_base(vcpu->kvm));
  1328. vmx->rmode.tr.limit = vmcs_read32(GUEST_TR_LIMIT);
  1329. vmcs_write32(GUEST_TR_LIMIT, RMODE_TSS_SIZE - 1);
  1330. vmx->rmode.tr.ar = vmcs_read32(GUEST_TR_AR_BYTES);
  1331. vmcs_write32(GUEST_TR_AR_BYTES, 0x008b);
  1332. flags = vmcs_readl(GUEST_RFLAGS);
  1333. vmx->rmode.save_rflags = flags;
  1334. flags |= X86_EFLAGS_IOPL | X86_EFLAGS_VM;
  1335. vmcs_writel(GUEST_RFLAGS, flags);
  1336. vmcs_writel(GUEST_CR4, vmcs_readl(GUEST_CR4) | X86_CR4_VME);
  1337. update_exception_bitmap(vcpu);
  1338. if (emulate_invalid_guest_state)
  1339. goto continue_rmode;
  1340. vmcs_write16(GUEST_SS_SELECTOR, vmcs_readl(GUEST_SS_BASE) >> 4);
  1341. vmcs_write32(GUEST_SS_LIMIT, 0xffff);
  1342. vmcs_write32(GUEST_SS_AR_BYTES, 0xf3);
  1343. vmcs_write32(GUEST_CS_AR_BYTES, 0xf3);
  1344. vmcs_write32(GUEST_CS_LIMIT, 0xffff);
  1345. if (vmcs_readl(GUEST_CS_BASE) == 0xffff0000)
  1346. vmcs_writel(GUEST_CS_BASE, 0xf0000);
  1347. vmcs_write16(GUEST_CS_SELECTOR, vmcs_readl(GUEST_CS_BASE) >> 4);
  1348. fix_rmode_seg(VCPU_SREG_ES, &vmx->rmode.es);
  1349. fix_rmode_seg(VCPU_SREG_DS, &vmx->rmode.ds);
  1350. fix_rmode_seg(VCPU_SREG_GS, &vmx->rmode.gs);
  1351. fix_rmode_seg(VCPU_SREG_FS, &vmx->rmode.fs);
  1352. continue_rmode:
  1353. kvm_mmu_reset_context(vcpu);
  1354. init_rmode(vcpu->kvm);
  1355. }
  1356. static void vmx_set_efer(struct kvm_vcpu *vcpu, u64 efer)
  1357. {
  1358. struct vcpu_vmx *vmx = to_vmx(vcpu);
  1359. struct shared_msr_entry *msr = find_msr_entry(vmx, MSR_EFER);
  1360. if (!msr)
  1361. return;
  1362. /*
  1363. * Force kernel_gs_base reloading before EFER changes, as control
  1364. * of this msr depends on is_long_mode().
  1365. */
  1366. vmx_load_host_state(to_vmx(vcpu));
  1367. vcpu->arch.efer = efer;
  1368. if (efer & EFER_LMA) {
  1369. vmcs_write32(VM_ENTRY_CONTROLS,
  1370. vmcs_read32(VM_ENTRY_CONTROLS) |
  1371. VM_ENTRY_IA32E_MODE);
  1372. msr->data = efer;
  1373. } else {
  1374. vmcs_write32(VM_ENTRY_CONTROLS,
  1375. vmcs_read32(VM_ENTRY_CONTROLS) &
  1376. ~VM_ENTRY_IA32E_MODE);
  1377. msr->data = efer & ~EFER_LME;
  1378. }
  1379. setup_msrs(vmx);
  1380. }
  1381. #ifdef CONFIG_X86_64
  1382. static void enter_lmode(struct kvm_vcpu *vcpu)
  1383. {
  1384. u32 guest_tr_ar;
  1385. guest_tr_ar = vmcs_read32(GUEST_TR_AR_BYTES);
  1386. if ((guest_tr_ar & AR_TYPE_MASK) != AR_TYPE_BUSY_64_TSS) {
  1387. printk(KERN_DEBUG "%s: tss fixup for long mode. \n",
  1388. __func__);
  1389. vmcs_write32(GUEST_TR_AR_BYTES,
  1390. (guest_tr_ar & ~AR_TYPE_MASK)
  1391. | AR_TYPE_BUSY_64_TSS);
  1392. }
  1393. vcpu->arch.efer |= EFER_LMA;
  1394. vmx_set_efer(vcpu, vcpu->arch.efer);
  1395. }
  1396. static void exit_lmode(struct kvm_vcpu *vcpu)
  1397. {
  1398. vcpu->arch.efer &= ~EFER_LMA;
  1399. vmcs_write32(VM_ENTRY_CONTROLS,
  1400. vmcs_read32(VM_ENTRY_CONTROLS)
  1401. & ~VM_ENTRY_IA32E_MODE);
  1402. }
  1403. #endif
  1404. static void vmx_flush_tlb(struct kvm_vcpu *vcpu)
  1405. {
  1406. vpid_sync_vcpu_all(to_vmx(vcpu));
  1407. if (enable_ept)
  1408. ept_sync_context(construct_eptp(vcpu->arch.mmu.root_hpa));
  1409. }
  1410. static void vmx_decache_cr0_guest_bits(struct kvm_vcpu *vcpu)
  1411. {
  1412. ulong cr0_guest_owned_bits = vcpu->arch.cr0_guest_owned_bits;
  1413. vcpu->arch.cr0 &= ~cr0_guest_owned_bits;
  1414. vcpu->arch.cr0 |= vmcs_readl(GUEST_CR0) & cr0_guest_owned_bits;
  1415. }
  1416. static void vmx_decache_cr4_guest_bits(struct kvm_vcpu *vcpu)
  1417. {
  1418. ulong cr4_guest_owned_bits = vcpu->arch.cr4_guest_owned_bits;
  1419. vcpu->arch.cr4 &= ~cr4_guest_owned_bits;
  1420. vcpu->arch.cr4 |= vmcs_readl(GUEST_CR4) & cr4_guest_owned_bits;
  1421. }
  1422. static void ept_load_pdptrs(struct kvm_vcpu *vcpu)
  1423. {
  1424. if (!test_bit(VCPU_EXREG_PDPTR,
  1425. (unsigned long *)&vcpu->arch.regs_dirty))
  1426. return;
  1427. if (is_paging(vcpu) && is_pae(vcpu) && !is_long_mode(vcpu)) {
  1428. vmcs_write64(GUEST_PDPTR0, vcpu->arch.pdptrs[0]);
  1429. vmcs_write64(GUEST_PDPTR1, vcpu->arch.pdptrs[1]);
  1430. vmcs_write64(GUEST_PDPTR2, vcpu->arch.pdptrs[2]);
  1431. vmcs_write64(GUEST_PDPTR3, vcpu->arch.pdptrs[3]);
  1432. }
  1433. }
  1434. static void ept_save_pdptrs(struct kvm_vcpu *vcpu)
  1435. {
  1436. if (is_paging(vcpu) && is_pae(vcpu) && !is_long_mode(vcpu)) {
  1437. vcpu->arch.pdptrs[0] = vmcs_read64(GUEST_PDPTR0);
  1438. vcpu->arch.pdptrs[1] = vmcs_read64(GUEST_PDPTR1);
  1439. vcpu->arch.pdptrs[2] = vmcs_read64(GUEST_PDPTR2);
  1440. vcpu->arch.pdptrs[3] = vmcs_read64(GUEST_PDPTR3);
  1441. }
  1442. __set_bit(VCPU_EXREG_PDPTR,
  1443. (unsigned long *)&vcpu->arch.regs_avail);
  1444. __set_bit(VCPU_EXREG_PDPTR,
  1445. (unsigned long *)&vcpu->arch.regs_dirty);
  1446. }
  1447. static void vmx_set_cr4(struct kvm_vcpu *vcpu, unsigned long cr4);
  1448. static void ept_update_paging_mode_cr0(unsigned long *hw_cr0,
  1449. unsigned long cr0,
  1450. struct kvm_vcpu *vcpu)
  1451. {
  1452. if (!(cr0 & X86_CR0_PG)) {
  1453. /* From paging/starting to nonpaging */
  1454. vmcs_write32(CPU_BASED_VM_EXEC_CONTROL,
  1455. vmcs_read32(CPU_BASED_VM_EXEC_CONTROL) |
  1456. (CPU_BASED_CR3_LOAD_EXITING |
  1457. CPU_BASED_CR3_STORE_EXITING));
  1458. vcpu->arch.cr0 = cr0;
  1459. vmx_set_cr4(vcpu, kvm_read_cr4(vcpu));
  1460. } else if (!is_paging(vcpu)) {
  1461. /* From nonpaging to paging */
  1462. vmcs_write32(CPU_BASED_VM_EXEC_CONTROL,
  1463. vmcs_read32(CPU_BASED_VM_EXEC_CONTROL) &
  1464. ~(CPU_BASED_CR3_LOAD_EXITING |
  1465. CPU_BASED_CR3_STORE_EXITING));
  1466. vcpu->arch.cr0 = cr0;
  1467. vmx_set_cr4(vcpu, kvm_read_cr4(vcpu));
  1468. }
  1469. if (!(cr0 & X86_CR0_WP))
  1470. *hw_cr0 &= ~X86_CR0_WP;
  1471. }
  1472. static void vmx_set_cr0(struct kvm_vcpu *vcpu, unsigned long cr0)
  1473. {
  1474. struct vcpu_vmx *vmx = to_vmx(vcpu);
  1475. unsigned long hw_cr0;
  1476. if (enable_unrestricted_guest)
  1477. hw_cr0 = (cr0 & ~KVM_GUEST_CR0_MASK_UNRESTRICTED_GUEST)
  1478. | KVM_VM_CR0_ALWAYS_ON_UNRESTRICTED_GUEST;
  1479. else
  1480. hw_cr0 = (cr0 & ~KVM_GUEST_CR0_MASK) | KVM_VM_CR0_ALWAYS_ON;
  1481. if (vmx->rmode.vm86_active && (cr0 & X86_CR0_PE))
  1482. enter_pmode(vcpu);
  1483. if (!vmx->rmode.vm86_active && !(cr0 & X86_CR0_PE))
  1484. enter_rmode(vcpu);
  1485. #ifdef CONFIG_X86_64
  1486. if (vcpu->arch.efer & EFER_LME) {
  1487. if (!is_paging(vcpu) && (cr0 & X86_CR0_PG))
  1488. enter_lmode(vcpu);
  1489. if (is_paging(vcpu) && !(cr0 & X86_CR0_PG))
  1490. exit_lmode(vcpu);
  1491. }
  1492. #endif
  1493. if (enable_ept)
  1494. ept_update_paging_mode_cr0(&hw_cr0, cr0, vcpu);
  1495. if (!vcpu->fpu_active)
  1496. hw_cr0 |= X86_CR0_TS | X86_CR0_MP;
  1497. vmcs_writel(CR0_READ_SHADOW, cr0);
  1498. vmcs_writel(GUEST_CR0, hw_cr0);
  1499. vcpu->arch.cr0 = cr0;
  1500. }
  1501. static u64 construct_eptp(unsigned long root_hpa)
  1502. {
  1503. u64 eptp;
  1504. /* TODO write the value reading from MSR */
  1505. eptp = VMX_EPT_DEFAULT_MT |
  1506. VMX_EPT_DEFAULT_GAW << VMX_EPT_GAW_EPTP_SHIFT;
  1507. eptp |= (root_hpa & PAGE_MASK);
  1508. return eptp;
  1509. }
  1510. static void vmx_set_cr3(struct kvm_vcpu *vcpu, unsigned long cr3)
  1511. {
  1512. unsigned long guest_cr3;
  1513. u64 eptp;
  1514. guest_cr3 = cr3;
  1515. if (enable_ept) {
  1516. eptp = construct_eptp(cr3);
  1517. vmcs_write64(EPT_POINTER, eptp);
  1518. guest_cr3 = is_paging(vcpu) ? vcpu->arch.cr3 :
  1519. vcpu->kvm->arch.ept_identity_map_addr;
  1520. ept_load_pdptrs(vcpu);
  1521. }
  1522. vmx_flush_tlb(vcpu);
  1523. vmcs_writel(GUEST_CR3, guest_cr3);
  1524. }
  1525. static void vmx_set_cr4(struct kvm_vcpu *vcpu, unsigned long cr4)
  1526. {
  1527. unsigned long hw_cr4 = cr4 | (to_vmx(vcpu)->rmode.vm86_active ?
  1528. KVM_RMODE_VM_CR4_ALWAYS_ON : KVM_PMODE_VM_CR4_ALWAYS_ON);
  1529. vcpu->arch.cr4 = cr4;
  1530. if (enable_ept) {
  1531. if (!is_paging(vcpu)) {
  1532. hw_cr4 &= ~X86_CR4_PAE;
  1533. hw_cr4 |= X86_CR4_PSE;
  1534. } else if (!(cr4 & X86_CR4_PAE)) {
  1535. hw_cr4 &= ~X86_CR4_PAE;
  1536. }
  1537. }
  1538. vmcs_writel(CR4_READ_SHADOW, cr4);
  1539. vmcs_writel(GUEST_CR4, hw_cr4);
  1540. }
  1541. static u64 vmx_get_segment_base(struct kvm_vcpu *vcpu, int seg)
  1542. {
  1543. struct kvm_vmx_segment_field *sf = &kvm_vmx_segment_fields[seg];
  1544. return vmcs_readl(sf->base);
  1545. }
  1546. static void vmx_get_segment(struct kvm_vcpu *vcpu,
  1547. struct kvm_segment *var, int seg)
  1548. {
  1549. struct kvm_vmx_segment_field *sf = &kvm_vmx_segment_fields[seg];
  1550. u32 ar;
  1551. var->base = vmcs_readl(sf->base);
  1552. var->limit = vmcs_read32(sf->limit);
  1553. var->selector = vmcs_read16(sf->selector);
  1554. ar = vmcs_read32(sf->ar_bytes);
  1555. if ((ar & AR_UNUSABLE_MASK) && !emulate_invalid_guest_state)
  1556. ar = 0;
  1557. var->type = ar & 15;
  1558. var->s = (ar >> 4) & 1;
  1559. var->dpl = (ar >> 5) & 3;
  1560. var->present = (ar >> 7) & 1;
  1561. var->avl = (ar >> 12) & 1;
  1562. var->l = (ar >> 13) & 1;
  1563. var->db = (ar >> 14) & 1;
  1564. var->g = (ar >> 15) & 1;
  1565. var->unusable = (ar >> 16) & 1;
  1566. }
  1567. static int vmx_get_cpl(struct kvm_vcpu *vcpu)
  1568. {
  1569. if (!is_protmode(vcpu))
  1570. return 0;
  1571. if (vmx_get_rflags(vcpu) & X86_EFLAGS_VM) /* if virtual 8086 */
  1572. return 3;
  1573. return vmcs_read16(GUEST_CS_SELECTOR) & 3;
  1574. }
  1575. static u32 vmx_segment_access_rights(struct kvm_segment *var)
  1576. {
  1577. u32 ar;
  1578. if (var->unusable)
  1579. ar = 1 << 16;
  1580. else {
  1581. ar = var->type & 15;
  1582. ar |= (var->s & 1) << 4;
  1583. ar |= (var->dpl & 3) << 5;
  1584. ar |= (var->present & 1) << 7;
  1585. ar |= (var->avl & 1) << 12;
  1586. ar |= (var->l & 1) << 13;
  1587. ar |= (var->db & 1) << 14;
  1588. ar |= (var->g & 1) << 15;
  1589. }
  1590. if (ar == 0) /* a 0 value means unusable */
  1591. ar = AR_UNUSABLE_MASK;
  1592. return ar;
  1593. }
  1594. static void vmx_set_segment(struct kvm_vcpu *vcpu,
  1595. struct kvm_segment *var, int seg)
  1596. {
  1597. struct vcpu_vmx *vmx = to_vmx(vcpu);
  1598. struct kvm_vmx_segment_field *sf = &kvm_vmx_segment_fields[seg];
  1599. u32 ar;
  1600. if (vmx->rmode.vm86_active && seg == VCPU_SREG_TR) {
  1601. vmx->rmode.tr.selector = var->selector;
  1602. vmx->rmode.tr.base = var->base;
  1603. vmx->rmode.tr.limit = var->limit;
  1604. vmx->rmode.tr.ar = vmx_segment_access_rights(var);
  1605. return;
  1606. }
  1607. vmcs_writel(sf->base, var->base);
  1608. vmcs_write32(sf->limit, var->limit);
  1609. vmcs_write16(sf->selector, var->selector);
  1610. if (vmx->rmode.vm86_active && var->s) {
  1611. /*
  1612. * Hack real-mode segments into vm86 compatibility.
  1613. */
  1614. if (var->base == 0xffff0000 && var->selector == 0xf000)
  1615. vmcs_writel(sf->base, 0xf0000);
  1616. ar = 0xf3;
  1617. } else
  1618. ar = vmx_segment_access_rights(var);
  1619. /*
  1620. * Fix the "Accessed" bit in AR field of segment registers for older
  1621. * qemu binaries.
  1622. * IA32 arch specifies that at the time of processor reset the
  1623. * "Accessed" bit in the AR field of segment registers is 1. And qemu
  1624. * is setting it to 0 in the usedland code. This causes invalid guest
  1625. * state vmexit when "unrestricted guest" mode is turned on.
  1626. * Fix for this setup issue in cpu_reset is being pushed in the qemu
  1627. * tree. Newer qemu binaries with that qemu fix would not need this
  1628. * kvm hack.
  1629. */
  1630. if (enable_unrestricted_guest && (seg != VCPU_SREG_LDTR))
  1631. ar |= 0x1; /* Accessed */
  1632. vmcs_write32(sf->ar_bytes, ar);
  1633. }
  1634. static void vmx_get_cs_db_l_bits(struct kvm_vcpu *vcpu, int *db, int *l)
  1635. {
  1636. u32 ar = vmcs_read32(GUEST_CS_AR_BYTES);
  1637. *db = (ar >> 14) & 1;
  1638. *l = (ar >> 13) & 1;
  1639. }
  1640. static void vmx_get_idt(struct kvm_vcpu *vcpu, struct descriptor_table *dt)
  1641. {
  1642. dt->limit = vmcs_read32(GUEST_IDTR_LIMIT);
  1643. dt->base = vmcs_readl(GUEST_IDTR_BASE);
  1644. }
  1645. static void vmx_set_idt(struct kvm_vcpu *vcpu, struct descriptor_table *dt)
  1646. {
  1647. vmcs_write32(GUEST_IDTR_LIMIT, dt->limit);
  1648. vmcs_writel(GUEST_IDTR_BASE, dt->base);
  1649. }
  1650. static void vmx_get_gdt(struct kvm_vcpu *vcpu, struct descriptor_table *dt)
  1651. {
  1652. dt->limit = vmcs_read32(GUEST_GDTR_LIMIT);
  1653. dt->base = vmcs_readl(GUEST_GDTR_BASE);
  1654. }
  1655. static void vmx_set_gdt(struct kvm_vcpu *vcpu, struct descriptor_table *dt)
  1656. {
  1657. vmcs_write32(GUEST_GDTR_LIMIT, dt->limit);
  1658. vmcs_writel(GUEST_GDTR_BASE, dt->base);
  1659. }
  1660. static bool rmode_segment_valid(struct kvm_vcpu *vcpu, int seg)
  1661. {
  1662. struct kvm_segment var;
  1663. u32 ar;
  1664. vmx_get_segment(vcpu, &var, seg);
  1665. ar = vmx_segment_access_rights(&var);
  1666. if (var.base != (var.selector << 4))
  1667. return false;
  1668. if (var.limit != 0xffff)
  1669. return false;
  1670. if (ar != 0xf3)
  1671. return false;
  1672. return true;
  1673. }
  1674. static bool code_segment_valid(struct kvm_vcpu *vcpu)
  1675. {
  1676. struct kvm_segment cs;
  1677. unsigned int cs_rpl;
  1678. vmx_get_segment(vcpu, &cs, VCPU_SREG_CS);
  1679. cs_rpl = cs.selector & SELECTOR_RPL_MASK;
  1680. if (cs.unusable)
  1681. return false;
  1682. if (~cs.type & (AR_TYPE_CODE_MASK|AR_TYPE_ACCESSES_MASK))
  1683. return false;
  1684. if (!cs.s)
  1685. return false;
  1686. if (cs.type & AR_TYPE_WRITEABLE_MASK) {
  1687. if (cs.dpl > cs_rpl)
  1688. return false;
  1689. } else {
  1690. if (cs.dpl != cs_rpl)
  1691. return false;
  1692. }
  1693. if (!cs.present)
  1694. return false;
  1695. /* TODO: Add Reserved field check, this'll require a new member in the kvm_segment_field structure */
  1696. return true;
  1697. }
  1698. static bool stack_segment_valid(struct kvm_vcpu *vcpu)
  1699. {
  1700. struct kvm_segment ss;
  1701. unsigned int ss_rpl;
  1702. vmx_get_segment(vcpu, &ss, VCPU_SREG_SS);
  1703. ss_rpl = ss.selector & SELECTOR_RPL_MASK;
  1704. if (ss.unusable)
  1705. return true;
  1706. if (ss.type != 3 && ss.type != 7)
  1707. return false;
  1708. if (!ss.s)
  1709. return false;
  1710. if (ss.dpl != ss_rpl) /* DPL != RPL */
  1711. return false;
  1712. if (!ss.present)
  1713. return false;
  1714. return true;
  1715. }
  1716. static bool data_segment_valid(struct kvm_vcpu *vcpu, int seg)
  1717. {
  1718. struct kvm_segment var;
  1719. unsigned int rpl;
  1720. vmx_get_segment(vcpu, &var, seg);
  1721. rpl = var.selector & SELECTOR_RPL_MASK;
  1722. if (var.unusable)
  1723. return true;
  1724. if (!var.s)
  1725. return false;
  1726. if (!var.present)
  1727. return false;
  1728. if (~var.type & (AR_TYPE_CODE_MASK|AR_TYPE_WRITEABLE_MASK)) {
  1729. if (var.dpl < rpl) /* DPL < RPL */
  1730. return false;
  1731. }
  1732. /* TODO: Add other members to kvm_segment_field to allow checking for other access
  1733. * rights flags
  1734. */
  1735. return true;
  1736. }
  1737. static bool tr_valid(struct kvm_vcpu *vcpu)
  1738. {
  1739. struct kvm_segment tr;
  1740. vmx_get_segment(vcpu, &tr, VCPU_SREG_TR);
  1741. if (tr.unusable)
  1742. return false;
  1743. if (tr.selector & SELECTOR_TI_MASK) /* TI = 1 */
  1744. return false;
  1745. if (tr.type != 3 && tr.type != 11) /* TODO: Check if guest is in IA32e mode */
  1746. return false;
  1747. if (!tr.present)
  1748. return false;
  1749. return true;
  1750. }
  1751. static bool ldtr_valid(struct kvm_vcpu *vcpu)
  1752. {
  1753. struct kvm_segment ldtr;
  1754. vmx_get_segment(vcpu, &ldtr, VCPU_SREG_LDTR);
  1755. if (ldtr.unusable)
  1756. return true;
  1757. if (ldtr.selector & SELECTOR_TI_MASK) /* TI = 1 */
  1758. return false;
  1759. if (ldtr.type != 2)
  1760. return false;
  1761. if (!ldtr.present)
  1762. return false;
  1763. return true;
  1764. }
  1765. static bool cs_ss_rpl_check(struct kvm_vcpu *vcpu)
  1766. {
  1767. struct kvm_segment cs, ss;
  1768. vmx_get_segment(vcpu, &cs, VCPU_SREG_CS);
  1769. vmx_get_segment(vcpu, &ss, VCPU_SREG_SS);
  1770. return ((cs.selector & SELECTOR_RPL_MASK) ==
  1771. (ss.selector & SELECTOR_RPL_MASK));
  1772. }
  1773. /*
  1774. * Check if guest state is valid. Returns true if valid, false if
  1775. * not.
  1776. * We assume that registers are always usable
  1777. */
  1778. static bool guest_state_valid(struct kvm_vcpu *vcpu)
  1779. {
  1780. /* real mode guest state checks */
  1781. if (!is_protmode(vcpu)) {
  1782. if (!rmode_segment_valid(vcpu, VCPU_SREG_CS))
  1783. return false;
  1784. if (!rmode_segment_valid(vcpu, VCPU_SREG_SS))
  1785. return false;
  1786. if (!rmode_segment_valid(vcpu, VCPU_SREG_DS))
  1787. return false;
  1788. if (!rmode_segment_valid(vcpu, VCPU_SREG_ES))
  1789. return false;
  1790. if (!rmode_segment_valid(vcpu, VCPU_SREG_FS))
  1791. return false;
  1792. if (!rmode_segment_valid(vcpu, VCPU_SREG_GS))
  1793. return false;
  1794. } else {
  1795. /* protected mode guest state checks */
  1796. if (!cs_ss_rpl_check(vcpu))
  1797. return false;
  1798. if (!code_segment_valid(vcpu))
  1799. return false;
  1800. if (!stack_segment_valid(vcpu))
  1801. return false;
  1802. if (!data_segment_valid(vcpu, VCPU_SREG_DS))
  1803. return false;
  1804. if (!data_segment_valid(vcpu, VCPU_SREG_ES))
  1805. return false;
  1806. if (!data_segment_valid(vcpu, VCPU_SREG_FS))
  1807. return false;
  1808. if (!data_segment_valid(vcpu, VCPU_SREG_GS))
  1809. return false;
  1810. if (!tr_valid(vcpu))
  1811. return false;
  1812. if (!ldtr_valid(vcpu))
  1813. return false;
  1814. }
  1815. /* TODO:
  1816. * - Add checks on RIP
  1817. * - Add checks on RFLAGS
  1818. */
  1819. return true;
  1820. }
  1821. static int init_rmode_tss(struct kvm *kvm)
  1822. {
  1823. gfn_t fn = rmode_tss_base(kvm) >> PAGE_SHIFT;
  1824. u16 data = 0;
  1825. int ret = 0;
  1826. int r;
  1827. r = kvm_clear_guest_page(kvm, fn, 0, PAGE_SIZE);
  1828. if (r < 0)
  1829. goto out;
  1830. data = TSS_BASE_SIZE + TSS_REDIRECTION_SIZE;
  1831. r = kvm_write_guest_page(kvm, fn++, &data,
  1832. TSS_IOPB_BASE_OFFSET, sizeof(u16));
  1833. if (r < 0)
  1834. goto out;
  1835. r = kvm_clear_guest_page(kvm, fn++, 0, PAGE_SIZE);
  1836. if (r < 0)
  1837. goto out;
  1838. r = kvm_clear_guest_page(kvm, fn, 0, PAGE_SIZE);
  1839. if (r < 0)
  1840. goto out;
  1841. data = ~0;
  1842. r = kvm_write_guest_page(kvm, fn, &data,
  1843. RMODE_TSS_SIZE - 2 * PAGE_SIZE - 1,
  1844. sizeof(u8));
  1845. if (r < 0)
  1846. goto out;
  1847. ret = 1;
  1848. out:
  1849. return ret;
  1850. }
  1851. static int init_rmode_identity_map(struct kvm *kvm)
  1852. {
  1853. int i, r, ret;
  1854. pfn_t identity_map_pfn;
  1855. u32 tmp;
  1856. if (!enable_ept)
  1857. return 1;
  1858. if (unlikely(!kvm->arch.ept_identity_pagetable)) {
  1859. printk(KERN_ERR "EPT: identity-mapping pagetable "
  1860. "haven't been allocated!\n");
  1861. return 0;
  1862. }
  1863. if (likely(kvm->arch.ept_identity_pagetable_done))
  1864. return 1;
  1865. ret = 0;
  1866. identity_map_pfn = kvm->arch.ept_identity_map_addr >> PAGE_SHIFT;
  1867. r = kvm_clear_guest_page(kvm, identity_map_pfn, 0, PAGE_SIZE);
  1868. if (r < 0)
  1869. goto out;
  1870. /* Set up identity-mapping pagetable for EPT in real mode */
  1871. for (i = 0; i < PT32_ENT_PER_PAGE; i++) {
  1872. tmp = (i << 22) + (_PAGE_PRESENT | _PAGE_RW | _PAGE_USER |
  1873. _PAGE_ACCESSED | _PAGE_DIRTY | _PAGE_PSE);
  1874. r = kvm_write_guest_page(kvm, identity_map_pfn,
  1875. &tmp, i * sizeof(tmp), sizeof(tmp));
  1876. if (r < 0)
  1877. goto out;
  1878. }
  1879. kvm->arch.ept_identity_pagetable_done = true;
  1880. ret = 1;
  1881. out:
  1882. return ret;
  1883. }
  1884. static void seg_setup(int seg)
  1885. {
  1886. struct kvm_vmx_segment_field *sf = &kvm_vmx_segment_fields[seg];
  1887. unsigned int ar;
  1888. vmcs_write16(sf->selector, 0);
  1889. vmcs_writel(sf->base, 0);
  1890. vmcs_write32(sf->limit, 0xffff);
  1891. if (enable_unrestricted_guest) {
  1892. ar = 0x93;
  1893. if (seg == VCPU_SREG_CS)
  1894. ar |= 0x08; /* code segment */
  1895. } else
  1896. ar = 0xf3;
  1897. vmcs_write32(sf->ar_bytes, ar);
  1898. }
  1899. static int alloc_apic_access_page(struct kvm *kvm)
  1900. {
  1901. struct kvm_userspace_memory_region kvm_userspace_mem;
  1902. int r = 0;
  1903. mutex_lock(&kvm->slots_lock);
  1904. if (kvm->arch.apic_access_page)
  1905. goto out;
  1906. kvm_userspace_mem.slot = APIC_ACCESS_PAGE_PRIVATE_MEMSLOT;
  1907. kvm_userspace_mem.flags = 0;
  1908. kvm_userspace_mem.guest_phys_addr = 0xfee00000ULL;
  1909. kvm_userspace_mem.memory_size = PAGE_SIZE;
  1910. r = __kvm_set_memory_region(kvm, &kvm_userspace_mem, 0);
  1911. if (r)
  1912. goto out;
  1913. kvm->arch.apic_access_page = gfn_to_page(kvm, 0xfee00);
  1914. out:
  1915. mutex_unlock(&kvm->slots_lock);
  1916. return r;
  1917. }
  1918. static int alloc_identity_pagetable(struct kvm *kvm)
  1919. {
  1920. struct kvm_userspace_memory_region kvm_userspace_mem;
  1921. int r = 0;
  1922. mutex_lock(&kvm->slots_lock);
  1923. if (kvm->arch.ept_identity_pagetable)
  1924. goto out;
  1925. kvm_userspace_mem.slot = IDENTITY_PAGETABLE_PRIVATE_MEMSLOT;
  1926. kvm_userspace_mem.flags = 0;
  1927. kvm_userspace_mem.guest_phys_addr =
  1928. kvm->arch.ept_identity_map_addr;
  1929. kvm_userspace_mem.memory_size = PAGE_SIZE;
  1930. r = __kvm_set_memory_region(kvm, &kvm_userspace_mem, 0);
  1931. if (r)
  1932. goto out;
  1933. kvm->arch.ept_identity_pagetable = gfn_to_page(kvm,
  1934. kvm->arch.ept_identity_map_addr >> PAGE_SHIFT);
  1935. out:
  1936. mutex_unlock(&kvm->slots_lock);
  1937. return r;
  1938. }
  1939. static void allocate_vpid(struct vcpu_vmx *vmx)
  1940. {
  1941. int vpid;
  1942. vmx->vpid = 0;
  1943. if (!enable_vpid)
  1944. return;
  1945. spin_lock(&vmx_vpid_lock);
  1946. vpid = find_first_zero_bit(vmx_vpid_bitmap, VMX_NR_VPIDS);
  1947. if (vpid < VMX_NR_VPIDS) {
  1948. vmx->vpid = vpid;
  1949. __set_bit(vpid, vmx_vpid_bitmap);
  1950. }
  1951. spin_unlock(&vmx_vpid_lock);
  1952. }
  1953. static void __vmx_disable_intercept_for_msr(unsigned long *msr_bitmap, u32 msr)
  1954. {
  1955. int f = sizeof(unsigned long);
  1956. if (!cpu_has_vmx_msr_bitmap())
  1957. return;
  1958. /*
  1959. * See Intel PRM Vol. 3, 20.6.9 (MSR-Bitmap Address). Early manuals
  1960. * have the write-low and read-high bitmap offsets the wrong way round.
  1961. * We can control MSRs 0x00000000-0x00001fff and 0xc0000000-0xc0001fff.
  1962. */
  1963. if (msr <= 0x1fff) {
  1964. __clear_bit(msr, msr_bitmap + 0x000 / f); /* read-low */
  1965. __clear_bit(msr, msr_bitmap + 0x800 / f); /* write-low */
  1966. } else if ((msr >= 0xc0000000) && (msr <= 0xc0001fff)) {
  1967. msr &= 0x1fff;
  1968. __clear_bit(msr, msr_bitmap + 0x400 / f); /* read-high */
  1969. __clear_bit(msr, msr_bitmap + 0xc00 / f); /* write-high */
  1970. }
  1971. }
  1972. static void vmx_disable_intercept_for_msr(u32 msr, bool longmode_only)
  1973. {
  1974. if (!longmode_only)
  1975. __vmx_disable_intercept_for_msr(vmx_msr_bitmap_legacy, msr);
  1976. __vmx_disable_intercept_for_msr(vmx_msr_bitmap_longmode, msr);
  1977. }
  1978. /*
  1979. * Sets up the vmcs for emulated real mode.
  1980. */
  1981. static int vmx_vcpu_setup(struct vcpu_vmx *vmx)
  1982. {
  1983. u32 host_sysenter_cs, msr_low, msr_high;
  1984. u32 junk;
  1985. u64 host_pat, tsc_this, tsc_base;
  1986. unsigned long a;
  1987. struct descriptor_table dt;
  1988. int i;
  1989. unsigned long kvm_vmx_return;
  1990. u32 exec_control;
  1991. /* I/O */
  1992. vmcs_write64(IO_BITMAP_A, __pa(vmx_io_bitmap_a));
  1993. vmcs_write64(IO_BITMAP_B, __pa(vmx_io_bitmap_b));
  1994. if (cpu_has_vmx_msr_bitmap())
  1995. vmcs_write64(MSR_BITMAP, __pa(vmx_msr_bitmap_legacy));
  1996. vmcs_write64(VMCS_LINK_POINTER, -1ull); /* 22.3.1.5 */
  1997. /* Control */
  1998. vmcs_write32(PIN_BASED_VM_EXEC_CONTROL,
  1999. vmcs_config.pin_based_exec_ctrl);
  2000. exec_control = vmcs_config.cpu_based_exec_ctrl;
  2001. if (!vm_need_tpr_shadow(vmx->vcpu.kvm)) {
  2002. exec_control &= ~CPU_BASED_TPR_SHADOW;
  2003. #ifdef CONFIG_X86_64
  2004. exec_control |= CPU_BASED_CR8_STORE_EXITING |
  2005. CPU_BASED_CR8_LOAD_EXITING;
  2006. #endif
  2007. }
  2008. if (!enable_ept)
  2009. exec_control |= CPU_BASED_CR3_STORE_EXITING |
  2010. CPU_BASED_CR3_LOAD_EXITING |
  2011. CPU_BASED_INVLPG_EXITING;
  2012. vmcs_write32(CPU_BASED_VM_EXEC_CONTROL, exec_control);
  2013. if (cpu_has_secondary_exec_ctrls()) {
  2014. exec_control = vmcs_config.cpu_based_2nd_exec_ctrl;
  2015. if (!vm_need_virtualize_apic_accesses(vmx->vcpu.kvm))
  2016. exec_control &=
  2017. ~SECONDARY_EXEC_VIRTUALIZE_APIC_ACCESSES;
  2018. if (vmx->vpid == 0)
  2019. exec_control &= ~SECONDARY_EXEC_ENABLE_VPID;
  2020. if (!enable_ept) {
  2021. exec_control &= ~SECONDARY_EXEC_ENABLE_EPT;
  2022. enable_unrestricted_guest = 0;
  2023. }
  2024. if (!enable_unrestricted_guest)
  2025. exec_control &= ~SECONDARY_EXEC_UNRESTRICTED_GUEST;
  2026. if (!ple_gap)
  2027. exec_control &= ~SECONDARY_EXEC_PAUSE_LOOP_EXITING;
  2028. vmcs_write32(SECONDARY_VM_EXEC_CONTROL, exec_control);
  2029. }
  2030. if (ple_gap) {
  2031. vmcs_write32(PLE_GAP, ple_gap);
  2032. vmcs_write32(PLE_WINDOW, ple_window);
  2033. }
  2034. vmcs_write32(PAGE_FAULT_ERROR_CODE_MASK, !!bypass_guest_pf);
  2035. vmcs_write32(PAGE_FAULT_ERROR_CODE_MATCH, !!bypass_guest_pf);
  2036. vmcs_write32(CR3_TARGET_COUNT, 0); /* 22.2.1 */
  2037. vmcs_writel(HOST_CR0, read_cr0()); /* 22.2.3 */
  2038. vmcs_writel(HOST_CR4, read_cr4()); /* 22.2.3, 22.2.5 */
  2039. vmcs_writel(HOST_CR3, read_cr3()); /* 22.2.3 FIXME: shadow tables */
  2040. vmcs_write16(HOST_CS_SELECTOR, __KERNEL_CS); /* 22.2.4 */
  2041. vmcs_write16(HOST_DS_SELECTOR, __KERNEL_DS); /* 22.2.4 */
  2042. vmcs_write16(HOST_ES_SELECTOR, __KERNEL_DS); /* 22.2.4 */
  2043. vmcs_write16(HOST_FS_SELECTOR, kvm_read_fs()); /* 22.2.4 */
  2044. vmcs_write16(HOST_GS_SELECTOR, kvm_read_gs()); /* 22.2.4 */
  2045. vmcs_write16(HOST_SS_SELECTOR, __KERNEL_DS); /* 22.2.4 */
  2046. #ifdef CONFIG_X86_64
  2047. rdmsrl(MSR_FS_BASE, a);
  2048. vmcs_writel(HOST_FS_BASE, a); /* 22.2.4 */
  2049. rdmsrl(MSR_GS_BASE, a);
  2050. vmcs_writel(HOST_GS_BASE, a); /* 22.2.4 */
  2051. #else
  2052. vmcs_writel(HOST_FS_BASE, 0); /* 22.2.4 */
  2053. vmcs_writel(HOST_GS_BASE, 0); /* 22.2.4 */
  2054. #endif
  2055. vmcs_write16(HOST_TR_SELECTOR, GDT_ENTRY_TSS*8); /* 22.2.4 */
  2056. kvm_get_idt(&dt);
  2057. vmcs_writel(HOST_IDTR_BASE, dt.base); /* 22.2.4 */
  2058. asm("mov $.Lkvm_vmx_return, %0" : "=r"(kvm_vmx_return));
  2059. vmcs_writel(HOST_RIP, kvm_vmx_return); /* 22.2.5 */
  2060. vmcs_write32(VM_EXIT_MSR_STORE_COUNT, 0);
  2061. vmcs_write32(VM_EXIT_MSR_LOAD_COUNT, 0);
  2062. vmcs_write32(VM_ENTRY_MSR_LOAD_COUNT, 0);
  2063. rdmsr(MSR_IA32_SYSENTER_CS, host_sysenter_cs, junk);
  2064. vmcs_write32(HOST_IA32_SYSENTER_CS, host_sysenter_cs);
  2065. rdmsrl(MSR_IA32_SYSENTER_ESP, a);
  2066. vmcs_writel(HOST_IA32_SYSENTER_ESP, a); /* 22.2.3 */
  2067. rdmsrl(MSR_IA32_SYSENTER_EIP, a);
  2068. vmcs_writel(HOST_IA32_SYSENTER_EIP, a); /* 22.2.3 */
  2069. if (vmcs_config.vmexit_ctrl & VM_EXIT_LOAD_IA32_PAT) {
  2070. rdmsr(MSR_IA32_CR_PAT, msr_low, msr_high);
  2071. host_pat = msr_low | ((u64) msr_high << 32);
  2072. vmcs_write64(HOST_IA32_PAT, host_pat);
  2073. }
  2074. if (vmcs_config.vmentry_ctrl & VM_ENTRY_LOAD_IA32_PAT) {
  2075. rdmsr(MSR_IA32_CR_PAT, msr_low, msr_high);
  2076. host_pat = msr_low | ((u64) msr_high << 32);
  2077. /* Write the default value follow host pat */
  2078. vmcs_write64(GUEST_IA32_PAT, host_pat);
  2079. /* Keep arch.pat sync with GUEST_IA32_PAT */
  2080. vmx->vcpu.arch.pat = host_pat;
  2081. }
  2082. for (i = 0; i < NR_VMX_MSR; ++i) {
  2083. u32 index = vmx_msr_index[i];
  2084. u32 data_low, data_high;
  2085. int j = vmx->nmsrs;
  2086. if (rdmsr_safe(index, &data_low, &data_high) < 0)
  2087. continue;
  2088. if (wrmsr_safe(index, data_low, data_high) < 0)
  2089. continue;
  2090. vmx->guest_msrs[j].index = i;
  2091. vmx->guest_msrs[j].data = 0;
  2092. vmx->guest_msrs[j].mask = -1ull;
  2093. ++vmx->nmsrs;
  2094. }
  2095. vmcs_write32(VM_EXIT_CONTROLS, vmcs_config.vmexit_ctrl);
  2096. /* 22.2.1, 20.8.1 */
  2097. vmcs_write32(VM_ENTRY_CONTROLS, vmcs_config.vmentry_ctrl);
  2098. vmcs_writel(CR0_GUEST_HOST_MASK, ~0UL);
  2099. vmx->vcpu.arch.cr4_guest_owned_bits = KVM_CR4_GUEST_OWNED_BITS;
  2100. if (enable_ept)
  2101. vmx->vcpu.arch.cr4_guest_owned_bits |= X86_CR4_PGE;
  2102. vmcs_writel(CR4_GUEST_HOST_MASK, ~vmx->vcpu.arch.cr4_guest_owned_bits);
  2103. tsc_base = vmx->vcpu.kvm->arch.vm_init_tsc;
  2104. rdtscll(tsc_this);
  2105. if (tsc_this < vmx->vcpu.kvm->arch.vm_init_tsc)
  2106. tsc_base = tsc_this;
  2107. guest_write_tsc(0, tsc_base);
  2108. return 0;
  2109. }
  2110. static int init_rmode(struct kvm *kvm)
  2111. {
  2112. if (!init_rmode_tss(kvm))
  2113. return 0;
  2114. if (!init_rmode_identity_map(kvm))
  2115. return 0;
  2116. return 1;
  2117. }
  2118. static int vmx_vcpu_reset(struct kvm_vcpu *vcpu)
  2119. {
  2120. struct vcpu_vmx *vmx = to_vmx(vcpu);
  2121. u64 msr;
  2122. int ret, idx;
  2123. vcpu->arch.regs_avail = ~((1 << VCPU_REGS_RIP) | (1 << VCPU_REGS_RSP));
  2124. idx = srcu_read_lock(&vcpu->kvm->srcu);
  2125. if (!init_rmode(vmx->vcpu.kvm)) {
  2126. ret = -ENOMEM;
  2127. goto out;
  2128. }
  2129. vmx->rmode.vm86_active = 0;
  2130. vmx->soft_vnmi_blocked = 0;
  2131. vmx->vcpu.arch.regs[VCPU_REGS_RDX] = get_rdx_init_val();
  2132. kvm_set_cr8(&vmx->vcpu, 0);
  2133. msr = 0xfee00000 | MSR_IA32_APICBASE_ENABLE;
  2134. if (kvm_vcpu_is_bsp(&vmx->vcpu))
  2135. msr |= MSR_IA32_APICBASE_BSP;
  2136. kvm_set_apic_base(&vmx->vcpu, msr);
  2137. fx_init(&vmx->vcpu);
  2138. seg_setup(VCPU_SREG_CS);
  2139. /*
  2140. * GUEST_CS_BASE should really be 0xffff0000, but VT vm86 mode
  2141. * insists on having GUEST_CS_BASE == GUEST_CS_SELECTOR << 4. Sigh.
  2142. */
  2143. if (kvm_vcpu_is_bsp(&vmx->vcpu)) {
  2144. vmcs_write16(GUEST_CS_SELECTOR, 0xf000);
  2145. vmcs_writel(GUEST_CS_BASE, 0x000f0000);
  2146. } else {
  2147. vmcs_write16(GUEST_CS_SELECTOR, vmx->vcpu.arch.sipi_vector << 8);
  2148. vmcs_writel(GUEST_CS_BASE, vmx->vcpu.arch.sipi_vector << 12);
  2149. }
  2150. seg_setup(VCPU_SREG_DS);
  2151. seg_setup(VCPU_SREG_ES);
  2152. seg_setup(VCPU_SREG_FS);
  2153. seg_setup(VCPU_SREG_GS);
  2154. seg_setup(VCPU_SREG_SS);
  2155. vmcs_write16(GUEST_TR_SELECTOR, 0);
  2156. vmcs_writel(GUEST_TR_BASE, 0);
  2157. vmcs_write32(GUEST_TR_LIMIT, 0xffff);
  2158. vmcs_write32(GUEST_TR_AR_BYTES, 0x008b);
  2159. vmcs_write16(GUEST_LDTR_SELECTOR, 0);
  2160. vmcs_writel(GUEST_LDTR_BASE, 0);
  2161. vmcs_write32(GUEST_LDTR_LIMIT, 0xffff);
  2162. vmcs_write32(GUEST_LDTR_AR_BYTES, 0x00082);
  2163. vmcs_write32(GUEST_SYSENTER_CS, 0);
  2164. vmcs_writel(GUEST_SYSENTER_ESP, 0);
  2165. vmcs_writel(GUEST_SYSENTER_EIP, 0);
  2166. vmcs_writel(GUEST_RFLAGS, 0x02);
  2167. if (kvm_vcpu_is_bsp(&vmx->vcpu))
  2168. kvm_rip_write(vcpu, 0xfff0);
  2169. else
  2170. kvm_rip_write(vcpu, 0);
  2171. kvm_register_write(vcpu, VCPU_REGS_RSP, 0);
  2172. vmcs_writel(GUEST_DR7, 0x400);
  2173. vmcs_writel(GUEST_GDTR_BASE, 0);
  2174. vmcs_write32(GUEST_GDTR_LIMIT, 0xffff);
  2175. vmcs_writel(GUEST_IDTR_BASE, 0);
  2176. vmcs_write32(GUEST_IDTR_LIMIT, 0xffff);
  2177. vmcs_write32(GUEST_ACTIVITY_STATE, 0);
  2178. vmcs_write32(GUEST_INTERRUPTIBILITY_INFO, 0);
  2179. vmcs_write32(GUEST_PENDING_DBG_EXCEPTIONS, 0);
  2180. /* Special registers */
  2181. vmcs_write64(GUEST_IA32_DEBUGCTL, 0);
  2182. setup_msrs(vmx);
  2183. vmcs_write32(VM_ENTRY_INTR_INFO_FIELD, 0); /* 22.2.1 */
  2184. if (cpu_has_vmx_tpr_shadow()) {
  2185. vmcs_write64(VIRTUAL_APIC_PAGE_ADDR, 0);
  2186. if (vm_need_tpr_shadow(vmx->vcpu.kvm))
  2187. vmcs_write64(VIRTUAL_APIC_PAGE_ADDR,
  2188. page_to_phys(vmx->vcpu.arch.apic->regs_page));
  2189. vmcs_write32(TPR_THRESHOLD, 0);
  2190. }
  2191. if (vm_need_virtualize_apic_accesses(vmx->vcpu.kvm))
  2192. vmcs_write64(APIC_ACCESS_ADDR,
  2193. page_to_phys(vmx->vcpu.kvm->arch.apic_access_page));
  2194. if (vmx->vpid != 0)
  2195. vmcs_write16(VIRTUAL_PROCESSOR_ID, vmx->vpid);
  2196. vmx->vcpu.arch.cr0 = X86_CR0_NW | X86_CR0_CD | X86_CR0_ET;
  2197. vmx_set_cr0(&vmx->vcpu, kvm_read_cr0(vcpu)); /* enter rmode */
  2198. vmx_set_cr4(&vmx->vcpu, 0);
  2199. vmx_set_efer(&vmx->vcpu, 0);
  2200. vmx_fpu_activate(&vmx->vcpu);
  2201. update_exception_bitmap(&vmx->vcpu);
  2202. vpid_sync_vcpu_all(vmx);
  2203. ret = 0;
  2204. /* HACK: Don't enable emulation on guest boot/reset */
  2205. vmx->emulation_required = 0;
  2206. out:
  2207. srcu_read_unlock(&vcpu->kvm->srcu, idx);
  2208. return ret;
  2209. }
  2210. static void enable_irq_window(struct kvm_vcpu *vcpu)
  2211. {
  2212. u32 cpu_based_vm_exec_control;
  2213. cpu_based_vm_exec_control = vmcs_read32(CPU_BASED_VM_EXEC_CONTROL);
  2214. cpu_based_vm_exec_control |= CPU_BASED_VIRTUAL_INTR_PENDING;
  2215. vmcs_write32(CPU_BASED_VM_EXEC_CONTROL, cpu_based_vm_exec_control);
  2216. }
  2217. static void enable_nmi_window(struct kvm_vcpu *vcpu)
  2218. {
  2219. u32 cpu_based_vm_exec_control;
  2220. if (!cpu_has_virtual_nmis()) {
  2221. enable_irq_window(vcpu);
  2222. return;
  2223. }
  2224. cpu_based_vm_exec_control = vmcs_read32(CPU_BASED_VM_EXEC_CONTROL);
  2225. cpu_based_vm_exec_control |= CPU_BASED_VIRTUAL_NMI_PENDING;
  2226. vmcs_write32(CPU_BASED_VM_EXEC_CONTROL, cpu_based_vm_exec_control);
  2227. }
  2228. static void vmx_inject_irq(struct kvm_vcpu *vcpu)
  2229. {
  2230. struct vcpu_vmx *vmx = to_vmx(vcpu);
  2231. uint32_t intr;
  2232. int irq = vcpu->arch.interrupt.nr;
  2233. trace_kvm_inj_virq(irq);
  2234. ++vcpu->stat.irq_injections;
  2235. if (vmx->rmode.vm86_active) {
  2236. vmx->rmode.irq.pending = true;
  2237. vmx->rmode.irq.vector = irq;
  2238. vmx->rmode.irq.rip = kvm_rip_read(vcpu);
  2239. if (vcpu->arch.interrupt.soft)
  2240. vmx->rmode.irq.rip +=
  2241. vmx->vcpu.arch.event_exit_inst_len;
  2242. vmcs_write32(VM_ENTRY_INTR_INFO_FIELD,
  2243. irq | INTR_TYPE_SOFT_INTR | INTR_INFO_VALID_MASK);
  2244. vmcs_write32(VM_ENTRY_INSTRUCTION_LEN, 1);
  2245. kvm_rip_write(vcpu, vmx->rmode.irq.rip - 1);
  2246. return;
  2247. }
  2248. intr = irq | INTR_INFO_VALID_MASK;
  2249. if (vcpu->arch.interrupt.soft) {
  2250. intr |= INTR_TYPE_SOFT_INTR;
  2251. vmcs_write32(VM_ENTRY_INSTRUCTION_LEN,
  2252. vmx->vcpu.arch.event_exit_inst_len);
  2253. } else
  2254. intr |= INTR_TYPE_EXT_INTR;
  2255. vmcs_write32(VM_ENTRY_INTR_INFO_FIELD, intr);
  2256. }
  2257. static void vmx_inject_nmi(struct kvm_vcpu *vcpu)
  2258. {
  2259. struct vcpu_vmx *vmx = to_vmx(vcpu);
  2260. if (!cpu_has_virtual_nmis()) {
  2261. /*
  2262. * Tracking the NMI-blocked state in software is built upon
  2263. * finding the next open IRQ window. This, in turn, depends on
  2264. * well-behaving guests: They have to keep IRQs disabled at
  2265. * least as long as the NMI handler runs. Otherwise we may
  2266. * cause NMI nesting, maybe breaking the guest. But as this is
  2267. * highly unlikely, we can live with the residual risk.
  2268. */
  2269. vmx->soft_vnmi_blocked = 1;
  2270. vmx->vnmi_blocked_time = 0;
  2271. }
  2272. ++vcpu->stat.nmi_injections;
  2273. if (vmx->rmode.vm86_active) {
  2274. vmx->rmode.irq.pending = true;
  2275. vmx->rmode.irq.vector = NMI_VECTOR;
  2276. vmx->rmode.irq.rip = kvm_rip_read(vcpu);
  2277. vmcs_write32(VM_ENTRY_INTR_INFO_FIELD,
  2278. NMI_VECTOR | INTR_TYPE_SOFT_INTR |
  2279. INTR_INFO_VALID_MASK);
  2280. vmcs_write32(VM_ENTRY_INSTRUCTION_LEN, 1);
  2281. kvm_rip_write(vcpu, vmx->rmode.irq.rip - 1);
  2282. return;
  2283. }
  2284. vmcs_write32(VM_ENTRY_INTR_INFO_FIELD,
  2285. INTR_TYPE_NMI_INTR | INTR_INFO_VALID_MASK | NMI_VECTOR);
  2286. }
  2287. static int vmx_nmi_allowed(struct kvm_vcpu *vcpu)
  2288. {
  2289. if (!cpu_has_virtual_nmis() && to_vmx(vcpu)->soft_vnmi_blocked)
  2290. return 0;
  2291. return !(vmcs_read32(GUEST_INTERRUPTIBILITY_INFO) &
  2292. (GUEST_INTR_STATE_STI | GUEST_INTR_STATE_MOV_SS |
  2293. GUEST_INTR_STATE_NMI));
  2294. }
  2295. static bool vmx_get_nmi_mask(struct kvm_vcpu *vcpu)
  2296. {
  2297. if (!cpu_has_virtual_nmis())
  2298. return to_vmx(vcpu)->soft_vnmi_blocked;
  2299. else
  2300. return !!(vmcs_read32(GUEST_INTERRUPTIBILITY_INFO) &
  2301. GUEST_INTR_STATE_NMI);
  2302. }
  2303. static void vmx_set_nmi_mask(struct kvm_vcpu *vcpu, bool masked)
  2304. {
  2305. struct vcpu_vmx *vmx = to_vmx(vcpu);
  2306. if (!cpu_has_virtual_nmis()) {
  2307. if (vmx->soft_vnmi_blocked != masked) {
  2308. vmx->soft_vnmi_blocked = masked;
  2309. vmx->vnmi_blocked_time = 0;
  2310. }
  2311. } else {
  2312. if (masked)
  2313. vmcs_set_bits(GUEST_INTERRUPTIBILITY_INFO,
  2314. GUEST_INTR_STATE_NMI);
  2315. else
  2316. vmcs_clear_bits(GUEST_INTERRUPTIBILITY_INFO,
  2317. GUEST_INTR_STATE_NMI);
  2318. }
  2319. }
  2320. static int vmx_interrupt_allowed(struct kvm_vcpu *vcpu)
  2321. {
  2322. return (vmcs_readl(GUEST_RFLAGS) & X86_EFLAGS_IF) &&
  2323. !(vmcs_read32(GUEST_INTERRUPTIBILITY_INFO) &
  2324. (GUEST_INTR_STATE_STI | GUEST_INTR_STATE_MOV_SS));
  2325. }
  2326. static int vmx_set_tss_addr(struct kvm *kvm, unsigned int addr)
  2327. {
  2328. int ret;
  2329. struct kvm_userspace_memory_region tss_mem = {
  2330. .slot = TSS_PRIVATE_MEMSLOT,
  2331. .guest_phys_addr = addr,
  2332. .memory_size = PAGE_SIZE * 3,
  2333. .flags = 0,
  2334. };
  2335. ret = kvm_set_memory_region(kvm, &tss_mem, 0);
  2336. if (ret)
  2337. return ret;
  2338. kvm->arch.tss_addr = addr;
  2339. return 0;
  2340. }
  2341. static int handle_rmode_exception(struct kvm_vcpu *vcpu,
  2342. int vec, u32 err_code)
  2343. {
  2344. /*
  2345. * Instruction with address size override prefix opcode 0x67
  2346. * Cause the #SS fault with 0 error code in VM86 mode.
  2347. */
  2348. if (((vec == GP_VECTOR) || (vec == SS_VECTOR)) && err_code == 0)
  2349. if (emulate_instruction(vcpu, 0, 0, 0) == EMULATE_DONE)
  2350. return 1;
  2351. /*
  2352. * Forward all other exceptions that are valid in real mode.
  2353. * FIXME: Breaks guest debugging in real mode, needs to be fixed with
  2354. * the required debugging infrastructure rework.
  2355. */
  2356. switch (vec) {
  2357. case DB_VECTOR:
  2358. if (vcpu->guest_debug &
  2359. (KVM_GUESTDBG_SINGLESTEP | KVM_GUESTDBG_USE_HW_BP))
  2360. return 0;
  2361. kvm_queue_exception(vcpu, vec);
  2362. return 1;
  2363. case BP_VECTOR:
  2364. /*
  2365. * Update instruction length as we may reinject the exception
  2366. * from user space while in guest debugging mode.
  2367. */
  2368. to_vmx(vcpu)->vcpu.arch.event_exit_inst_len =
  2369. vmcs_read32(VM_EXIT_INSTRUCTION_LEN);
  2370. if (vcpu->guest_debug & KVM_GUESTDBG_USE_SW_BP)
  2371. return 0;
  2372. /* fall through */
  2373. case DE_VECTOR:
  2374. case OF_VECTOR:
  2375. case BR_VECTOR:
  2376. case UD_VECTOR:
  2377. case DF_VECTOR:
  2378. case SS_VECTOR:
  2379. case GP_VECTOR:
  2380. case MF_VECTOR:
  2381. kvm_queue_exception(vcpu, vec);
  2382. return 1;
  2383. }
  2384. return 0;
  2385. }
  2386. /*
  2387. * Trigger machine check on the host. We assume all the MSRs are already set up
  2388. * by the CPU and that we still run on the same CPU as the MCE occurred on.
  2389. * We pass a fake environment to the machine check handler because we want
  2390. * the guest to be always treated like user space, no matter what context
  2391. * it used internally.
  2392. */
  2393. static void kvm_machine_check(void)
  2394. {
  2395. #if defined(CONFIG_X86_MCE) && defined(CONFIG_X86_64)
  2396. struct pt_regs regs = {
  2397. .cs = 3, /* Fake ring 3 no matter what the guest ran on */
  2398. .flags = X86_EFLAGS_IF,
  2399. };
  2400. do_machine_check(&regs, 0);
  2401. #endif
  2402. }
  2403. static int handle_machine_check(struct kvm_vcpu *vcpu)
  2404. {
  2405. /* already handled by vcpu_run */
  2406. return 1;
  2407. }
  2408. static int handle_exception(struct kvm_vcpu *vcpu)
  2409. {
  2410. struct vcpu_vmx *vmx = to_vmx(vcpu);
  2411. struct kvm_run *kvm_run = vcpu->run;
  2412. u32 intr_info, ex_no, error_code;
  2413. unsigned long cr2, rip, dr6;
  2414. u32 vect_info;
  2415. enum emulation_result er;
  2416. vect_info = vmx->idt_vectoring_info;
  2417. intr_info = vmcs_read32(VM_EXIT_INTR_INFO);
  2418. if (is_machine_check(intr_info))
  2419. return handle_machine_check(vcpu);
  2420. if ((vect_info & VECTORING_INFO_VALID_MASK) &&
  2421. !is_page_fault(intr_info)) {
  2422. vcpu->run->exit_reason = KVM_EXIT_INTERNAL_ERROR;
  2423. vcpu->run->internal.suberror = KVM_INTERNAL_ERROR_SIMUL_EX;
  2424. vcpu->run->internal.ndata = 2;
  2425. vcpu->run->internal.data[0] = vect_info;
  2426. vcpu->run->internal.data[1] = intr_info;
  2427. return 0;
  2428. }
  2429. if ((intr_info & INTR_INFO_INTR_TYPE_MASK) == INTR_TYPE_NMI_INTR)
  2430. return 1; /* already handled by vmx_vcpu_run() */
  2431. if (is_no_device(intr_info)) {
  2432. vmx_fpu_activate(vcpu);
  2433. return 1;
  2434. }
  2435. if (is_invalid_opcode(intr_info)) {
  2436. er = emulate_instruction(vcpu, 0, 0, EMULTYPE_TRAP_UD);
  2437. if (er != EMULATE_DONE)
  2438. kvm_queue_exception(vcpu, UD_VECTOR);
  2439. return 1;
  2440. }
  2441. error_code = 0;
  2442. rip = kvm_rip_read(vcpu);
  2443. if (intr_info & INTR_INFO_DELIVER_CODE_MASK)
  2444. error_code = vmcs_read32(VM_EXIT_INTR_ERROR_CODE);
  2445. if (is_page_fault(intr_info)) {
  2446. /* EPT won't cause page fault directly */
  2447. if (enable_ept)
  2448. BUG();
  2449. cr2 = vmcs_readl(EXIT_QUALIFICATION);
  2450. trace_kvm_page_fault(cr2, error_code);
  2451. if (kvm_event_needs_reinjection(vcpu))
  2452. kvm_mmu_unprotect_page_virt(vcpu, cr2);
  2453. return kvm_mmu_page_fault(vcpu, cr2, error_code);
  2454. }
  2455. if (vmx->rmode.vm86_active &&
  2456. handle_rmode_exception(vcpu, intr_info & INTR_INFO_VECTOR_MASK,
  2457. error_code)) {
  2458. if (vcpu->arch.halt_request) {
  2459. vcpu->arch.halt_request = 0;
  2460. return kvm_emulate_halt(vcpu);
  2461. }
  2462. return 1;
  2463. }
  2464. ex_no = intr_info & INTR_INFO_VECTOR_MASK;
  2465. switch (ex_no) {
  2466. case DB_VECTOR:
  2467. dr6 = vmcs_readl(EXIT_QUALIFICATION);
  2468. if (!(vcpu->guest_debug &
  2469. (KVM_GUESTDBG_SINGLESTEP | KVM_GUESTDBG_USE_HW_BP))) {
  2470. vcpu->arch.dr6 = dr6 | DR6_FIXED_1;
  2471. kvm_queue_exception(vcpu, DB_VECTOR);
  2472. return 1;
  2473. }
  2474. kvm_run->debug.arch.dr6 = dr6 | DR6_FIXED_1;
  2475. kvm_run->debug.arch.dr7 = vmcs_readl(GUEST_DR7);
  2476. /* fall through */
  2477. case BP_VECTOR:
  2478. /*
  2479. * Update instruction length as we may reinject #BP from
  2480. * user space while in guest debugging mode. Reading it for
  2481. * #DB as well causes no harm, it is not used in that case.
  2482. */
  2483. vmx->vcpu.arch.event_exit_inst_len =
  2484. vmcs_read32(VM_EXIT_INSTRUCTION_LEN);
  2485. kvm_run->exit_reason = KVM_EXIT_DEBUG;
  2486. kvm_run->debug.arch.pc = vmcs_readl(GUEST_CS_BASE) + rip;
  2487. kvm_run->debug.arch.exception = ex_no;
  2488. break;
  2489. default:
  2490. kvm_run->exit_reason = KVM_EXIT_EXCEPTION;
  2491. kvm_run->ex.exception = ex_no;
  2492. kvm_run->ex.error_code = error_code;
  2493. break;
  2494. }
  2495. return 0;
  2496. }
  2497. static int handle_external_interrupt(struct kvm_vcpu *vcpu)
  2498. {
  2499. ++vcpu->stat.irq_exits;
  2500. return 1;
  2501. }
  2502. static int handle_triple_fault(struct kvm_vcpu *vcpu)
  2503. {
  2504. vcpu->run->exit_reason = KVM_EXIT_SHUTDOWN;
  2505. return 0;
  2506. }
  2507. static int handle_io(struct kvm_vcpu *vcpu)
  2508. {
  2509. unsigned long exit_qualification;
  2510. int size, in, string;
  2511. unsigned port;
  2512. ++vcpu->stat.io_exits;
  2513. exit_qualification = vmcs_readl(EXIT_QUALIFICATION);
  2514. string = (exit_qualification & 16) != 0;
  2515. if (string) {
  2516. if (emulate_instruction(vcpu, 0, 0, 0) == EMULATE_DO_MMIO)
  2517. return 0;
  2518. return 1;
  2519. }
  2520. size = (exit_qualification & 7) + 1;
  2521. in = (exit_qualification & 8) != 0;
  2522. port = exit_qualification >> 16;
  2523. skip_emulated_instruction(vcpu);
  2524. return kvm_emulate_pio(vcpu, in, size, port);
  2525. }
  2526. static void
  2527. vmx_patch_hypercall(struct kvm_vcpu *vcpu, unsigned char *hypercall)
  2528. {
  2529. /*
  2530. * Patch in the VMCALL instruction:
  2531. */
  2532. hypercall[0] = 0x0f;
  2533. hypercall[1] = 0x01;
  2534. hypercall[2] = 0xc1;
  2535. }
  2536. static int handle_cr(struct kvm_vcpu *vcpu)
  2537. {
  2538. unsigned long exit_qualification, val;
  2539. int cr;
  2540. int reg;
  2541. exit_qualification = vmcs_readl(EXIT_QUALIFICATION);
  2542. cr = exit_qualification & 15;
  2543. reg = (exit_qualification >> 8) & 15;
  2544. switch ((exit_qualification >> 4) & 3) {
  2545. case 0: /* mov to cr */
  2546. val = kvm_register_read(vcpu, reg);
  2547. trace_kvm_cr_write(cr, val);
  2548. switch (cr) {
  2549. case 0:
  2550. kvm_set_cr0(vcpu, val);
  2551. skip_emulated_instruction(vcpu);
  2552. return 1;
  2553. case 3:
  2554. kvm_set_cr3(vcpu, val);
  2555. skip_emulated_instruction(vcpu);
  2556. return 1;
  2557. case 4:
  2558. kvm_set_cr4(vcpu, val);
  2559. skip_emulated_instruction(vcpu);
  2560. return 1;
  2561. case 8: {
  2562. u8 cr8_prev = kvm_get_cr8(vcpu);
  2563. u8 cr8 = kvm_register_read(vcpu, reg);
  2564. kvm_set_cr8(vcpu, cr8);
  2565. skip_emulated_instruction(vcpu);
  2566. if (irqchip_in_kernel(vcpu->kvm))
  2567. return 1;
  2568. if (cr8_prev <= cr8)
  2569. return 1;
  2570. vcpu->run->exit_reason = KVM_EXIT_SET_TPR;
  2571. return 0;
  2572. }
  2573. };
  2574. break;
  2575. case 2: /* clts */
  2576. vmx_set_cr0(vcpu, kvm_read_cr0_bits(vcpu, ~X86_CR0_TS));
  2577. trace_kvm_cr_write(0, kvm_read_cr0(vcpu));
  2578. skip_emulated_instruction(vcpu);
  2579. vmx_fpu_activate(vcpu);
  2580. return 1;
  2581. case 1: /*mov from cr*/
  2582. switch (cr) {
  2583. case 3:
  2584. kvm_register_write(vcpu, reg, vcpu->arch.cr3);
  2585. trace_kvm_cr_read(cr, vcpu->arch.cr3);
  2586. skip_emulated_instruction(vcpu);
  2587. return 1;
  2588. case 8:
  2589. val = kvm_get_cr8(vcpu);
  2590. kvm_register_write(vcpu, reg, val);
  2591. trace_kvm_cr_read(cr, val);
  2592. skip_emulated_instruction(vcpu);
  2593. return 1;
  2594. }
  2595. break;
  2596. case 3: /* lmsw */
  2597. val = (exit_qualification >> LMSW_SOURCE_DATA_SHIFT) & 0x0f;
  2598. trace_kvm_cr_write(0, (kvm_read_cr0(vcpu) & ~0xful) | val);
  2599. kvm_lmsw(vcpu, val);
  2600. skip_emulated_instruction(vcpu);
  2601. return 1;
  2602. default:
  2603. break;
  2604. }
  2605. vcpu->run->exit_reason = 0;
  2606. pr_unimpl(vcpu, "unhandled control register: op %d cr %d\n",
  2607. (int)(exit_qualification >> 4) & 3, cr);
  2608. return 0;
  2609. }
  2610. static int check_dr_alias(struct kvm_vcpu *vcpu)
  2611. {
  2612. if (kvm_read_cr4_bits(vcpu, X86_CR4_DE)) {
  2613. kvm_queue_exception(vcpu, UD_VECTOR);
  2614. return -1;
  2615. }
  2616. return 0;
  2617. }
  2618. static int handle_dr(struct kvm_vcpu *vcpu)
  2619. {
  2620. unsigned long exit_qualification;
  2621. unsigned long val;
  2622. int dr, reg;
  2623. /* Do not handle if the CPL > 0, will trigger GP on re-entry */
  2624. if (!kvm_require_cpl(vcpu, 0))
  2625. return 1;
  2626. dr = vmcs_readl(GUEST_DR7);
  2627. if (dr & DR7_GD) {
  2628. /*
  2629. * As the vm-exit takes precedence over the debug trap, we
  2630. * need to emulate the latter, either for the host or the
  2631. * guest debugging itself.
  2632. */
  2633. if (vcpu->guest_debug & KVM_GUESTDBG_USE_HW_BP) {
  2634. vcpu->run->debug.arch.dr6 = vcpu->arch.dr6;
  2635. vcpu->run->debug.arch.dr7 = dr;
  2636. vcpu->run->debug.arch.pc =
  2637. vmcs_readl(GUEST_CS_BASE) +
  2638. vmcs_readl(GUEST_RIP);
  2639. vcpu->run->debug.arch.exception = DB_VECTOR;
  2640. vcpu->run->exit_reason = KVM_EXIT_DEBUG;
  2641. return 0;
  2642. } else {
  2643. vcpu->arch.dr7 &= ~DR7_GD;
  2644. vcpu->arch.dr6 |= DR6_BD;
  2645. vmcs_writel(GUEST_DR7, vcpu->arch.dr7);
  2646. kvm_queue_exception(vcpu, DB_VECTOR);
  2647. return 1;
  2648. }
  2649. }
  2650. exit_qualification = vmcs_readl(EXIT_QUALIFICATION);
  2651. dr = exit_qualification & DEBUG_REG_ACCESS_NUM;
  2652. reg = DEBUG_REG_ACCESS_REG(exit_qualification);
  2653. if (exit_qualification & TYPE_MOV_FROM_DR) {
  2654. switch (dr) {
  2655. case 0 ... 3:
  2656. val = vcpu->arch.db[dr];
  2657. break;
  2658. case 4:
  2659. if (check_dr_alias(vcpu) < 0)
  2660. return 1;
  2661. /* fall through */
  2662. case 6:
  2663. val = vcpu->arch.dr6;
  2664. break;
  2665. case 5:
  2666. if (check_dr_alias(vcpu) < 0)
  2667. return 1;
  2668. /* fall through */
  2669. default: /* 7 */
  2670. val = vcpu->arch.dr7;
  2671. break;
  2672. }
  2673. kvm_register_write(vcpu, reg, val);
  2674. } else {
  2675. val = vcpu->arch.regs[reg];
  2676. switch (dr) {
  2677. case 0 ... 3:
  2678. vcpu->arch.db[dr] = val;
  2679. if (!(vcpu->guest_debug & KVM_GUESTDBG_USE_HW_BP))
  2680. vcpu->arch.eff_db[dr] = val;
  2681. break;
  2682. case 4:
  2683. if (check_dr_alias(vcpu) < 0)
  2684. return 1;
  2685. /* fall through */
  2686. case 6:
  2687. if (val & 0xffffffff00000000ULL) {
  2688. kvm_inject_gp(vcpu, 0);
  2689. return 1;
  2690. }
  2691. vcpu->arch.dr6 = (val & DR6_VOLATILE) | DR6_FIXED_1;
  2692. break;
  2693. case 5:
  2694. if (check_dr_alias(vcpu) < 0)
  2695. return 1;
  2696. /* fall through */
  2697. default: /* 7 */
  2698. if (val & 0xffffffff00000000ULL) {
  2699. kvm_inject_gp(vcpu, 0);
  2700. return 1;
  2701. }
  2702. vcpu->arch.dr7 = (val & DR7_VOLATILE) | DR7_FIXED_1;
  2703. if (!(vcpu->guest_debug & KVM_GUESTDBG_USE_HW_BP)) {
  2704. vmcs_writel(GUEST_DR7, vcpu->arch.dr7);
  2705. vcpu->arch.switch_db_regs =
  2706. (val & DR7_BP_EN_MASK);
  2707. }
  2708. break;
  2709. }
  2710. }
  2711. skip_emulated_instruction(vcpu);
  2712. return 1;
  2713. }
  2714. static int handle_cpuid(struct kvm_vcpu *vcpu)
  2715. {
  2716. kvm_emulate_cpuid(vcpu);
  2717. return 1;
  2718. }
  2719. static int handle_rdmsr(struct kvm_vcpu *vcpu)
  2720. {
  2721. u32 ecx = vcpu->arch.regs[VCPU_REGS_RCX];
  2722. u64 data;
  2723. if (vmx_get_msr(vcpu, ecx, &data)) {
  2724. trace_kvm_msr_read_ex(ecx);
  2725. kvm_inject_gp(vcpu, 0);
  2726. return 1;
  2727. }
  2728. trace_kvm_msr_read(ecx, data);
  2729. /* FIXME: handling of bits 32:63 of rax, rdx */
  2730. vcpu->arch.regs[VCPU_REGS_RAX] = data & -1u;
  2731. vcpu->arch.regs[VCPU_REGS_RDX] = (data >> 32) & -1u;
  2732. skip_emulated_instruction(vcpu);
  2733. return 1;
  2734. }
  2735. static int handle_wrmsr(struct kvm_vcpu *vcpu)
  2736. {
  2737. u32 ecx = vcpu->arch.regs[VCPU_REGS_RCX];
  2738. u64 data = (vcpu->arch.regs[VCPU_REGS_RAX] & -1u)
  2739. | ((u64)(vcpu->arch.regs[VCPU_REGS_RDX] & -1u) << 32);
  2740. if (vmx_set_msr(vcpu, ecx, data) != 0) {
  2741. trace_kvm_msr_write_ex(ecx, data);
  2742. kvm_inject_gp(vcpu, 0);
  2743. return 1;
  2744. }
  2745. trace_kvm_msr_write(ecx, data);
  2746. skip_emulated_instruction(vcpu);
  2747. return 1;
  2748. }
  2749. static int handle_tpr_below_threshold(struct kvm_vcpu *vcpu)
  2750. {
  2751. return 1;
  2752. }
  2753. static int handle_interrupt_window(struct kvm_vcpu *vcpu)
  2754. {
  2755. u32 cpu_based_vm_exec_control;
  2756. /* clear pending irq */
  2757. cpu_based_vm_exec_control = vmcs_read32(CPU_BASED_VM_EXEC_CONTROL);
  2758. cpu_based_vm_exec_control &= ~CPU_BASED_VIRTUAL_INTR_PENDING;
  2759. vmcs_write32(CPU_BASED_VM_EXEC_CONTROL, cpu_based_vm_exec_control);
  2760. ++vcpu->stat.irq_window_exits;
  2761. /*
  2762. * If the user space waits to inject interrupts, exit as soon as
  2763. * possible
  2764. */
  2765. if (!irqchip_in_kernel(vcpu->kvm) &&
  2766. vcpu->run->request_interrupt_window &&
  2767. !kvm_cpu_has_interrupt(vcpu)) {
  2768. vcpu->run->exit_reason = KVM_EXIT_IRQ_WINDOW_OPEN;
  2769. return 0;
  2770. }
  2771. return 1;
  2772. }
  2773. static int handle_halt(struct kvm_vcpu *vcpu)
  2774. {
  2775. skip_emulated_instruction(vcpu);
  2776. return kvm_emulate_halt(vcpu);
  2777. }
  2778. static int handle_vmcall(struct kvm_vcpu *vcpu)
  2779. {
  2780. skip_emulated_instruction(vcpu);
  2781. kvm_emulate_hypercall(vcpu);
  2782. return 1;
  2783. }
  2784. static int handle_vmx_insn(struct kvm_vcpu *vcpu)
  2785. {
  2786. kvm_queue_exception(vcpu, UD_VECTOR);
  2787. return 1;
  2788. }
  2789. static int handle_invlpg(struct kvm_vcpu *vcpu)
  2790. {
  2791. unsigned long exit_qualification = vmcs_readl(EXIT_QUALIFICATION);
  2792. kvm_mmu_invlpg(vcpu, exit_qualification);
  2793. skip_emulated_instruction(vcpu);
  2794. return 1;
  2795. }
  2796. static int handle_wbinvd(struct kvm_vcpu *vcpu)
  2797. {
  2798. skip_emulated_instruction(vcpu);
  2799. /* TODO: Add support for VT-d/pass-through device */
  2800. return 1;
  2801. }
  2802. static int handle_apic_access(struct kvm_vcpu *vcpu)
  2803. {
  2804. unsigned long exit_qualification;
  2805. enum emulation_result er;
  2806. unsigned long offset;
  2807. exit_qualification = vmcs_readl(EXIT_QUALIFICATION);
  2808. offset = exit_qualification & 0xffful;
  2809. er = emulate_instruction(vcpu, 0, 0, 0);
  2810. if (er != EMULATE_DONE) {
  2811. printk(KERN_ERR
  2812. "Fail to handle apic access vmexit! Offset is 0x%lx\n",
  2813. offset);
  2814. return -ENOEXEC;
  2815. }
  2816. return 1;
  2817. }
  2818. static int handle_task_switch(struct kvm_vcpu *vcpu)
  2819. {
  2820. struct vcpu_vmx *vmx = to_vmx(vcpu);
  2821. unsigned long exit_qualification;
  2822. u16 tss_selector;
  2823. int reason, type, idt_v;
  2824. idt_v = (vmx->idt_vectoring_info & VECTORING_INFO_VALID_MASK);
  2825. type = (vmx->idt_vectoring_info & VECTORING_INFO_TYPE_MASK);
  2826. exit_qualification = vmcs_readl(EXIT_QUALIFICATION);
  2827. reason = (u32)exit_qualification >> 30;
  2828. if (reason == TASK_SWITCH_GATE && idt_v) {
  2829. switch (type) {
  2830. case INTR_TYPE_NMI_INTR:
  2831. vcpu->arch.nmi_injected = false;
  2832. if (cpu_has_virtual_nmis())
  2833. vmcs_set_bits(GUEST_INTERRUPTIBILITY_INFO,
  2834. GUEST_INTR_STATE_NMI);
  2835. break;
  2836. case INTR_TYPE_EXT_INTR:
  2837. case INTR_TYPE_SOFT_INTR:
  2838. kvm_clear_interrupt_queue(vcpu);
  2839. break;
  2840. case INTR_TYPE_HARD_EXCEPTION:
  2841. case INTR_TYPE_SOFT_EXCEPTION:
  2842. kvm_clear_exception_queue(vcpu);
  2843. break;
  2844. default:
  2845. break;
  2846. }
  2847. }
  2848. tss_selector = exit_qualification;
  2849. if (!idt_v || (type != INTR_TYPE_HARD_EXCEPTION &&
  2850. type != INTR_TYPE_EXT_INTR &&
  2851. type != INTR_TYPE_NMI_INTR))
  2852. skip_emulated_instruction(vcpu);
  2853. if (!kvm_task_switch(vcpu, tss_selector, reason))
  2854. return 0;
  2855. /* clear all local breakpoint enable flags */
  2856. vmcs_writel(GUEST_DR7, vmcs_readl(GUEST_DR7) & ~55);
  2857. /*
  2858. * TODO: What about debug traps on tss switch?
  2859. * Are we supposed to inject them and update dr6?
  2860. */
  2861. return 1;
  2862. }
  2863. static int handle_ept_violation(struct kvm_vcpu *vcpu)
  2864. {
  2865. unsigned long exit_qualification;
  2866. gpa_t gpa;
  2867. int gla_validity;
  2868. exit_qualification = vmcs_readl(EXIT_QUALIFICATION);
  2869. if (exit_qualification & (1 << 6)) {
  2870. printk(KERN_ERR "EPT: GPA exceeds GAW!\n");
  2871. return -EINVAL;
  2872. }
  2873. gla_validity = (exit_qualification >> 7) & 0x3;
  2874. if (gla_validity != 0x3 && gla_validity != 0x1 && gla_validity != 0) {
  2875. printk(KERN_ERR "EPT: Handling EPT violation failed!\n");
  2876. printk(KERN_ERR "EPT: GPA: 0x%lx, GVA: 0x%lx\n",
  2877. (long unsigned int)vmcs_read64(GUEST_PHYSICAL_ADDRESS),
  2878. vmcs_readl(GUEST_LINEAR_ADDRESS));
  2879. printk(KERN_ERR "EPT: Exit qualification is 0x%lx\n",
  2880. (long unsigned int)exit_qualification);
  2881. vcpu->run->exit_reason = KVM_EXIT_UNKNOWN;
  2882. vcpu->run->hw.hardware_exit_reason = EXIT_REASON_EPT_VIOLATION;
  2883. return 0;
  2884. }
  2885. gpa = vmcs_read64(GUEST_PHYSICAL_ADDRESS);
  2886. trace_kvm_page_fault(gpa, exit_qualification);
  2887. return kvm_mmu_page_fault(vcpu, gpa & PAGE_MASK, 0);
  2888. }
  2889. static u64 ept_rsvd_mask(u64 spte, int level)
  2890. {
  2891. int i;
  2892. u64 mask = 0;
  2893. for (i = 51; i > boot_cpu_data.x86_phys_bits; i--)
  2894. mask |= (1ULL << i);
  2895. if (level > 2)
  2896. /* bits 7:3 reserved */
  2897. mask |= 0xf8;
  2898. else if (level == 2) {
  2899. if (spte & (1ULL << 7))
  2900. /* 2MB ref, bits 20:12 reserved */
  2901. mask |= 0x1ff000;
  2902. else
  2903. /* bits 6:3 reserved */
  2904. mask |= 0x78;
  2905. }
  2906. return mask;
  2907. }
  2908. static void ept_misconfig_inspect_spte(struct kvm_vcpu *vcpu, u64 spte,
  2909. int level)
  2910. {
  2911. printk(KERN_ERR "%s: spte 0x%llx level %d\n", __func__, spte, level);
  2912. /* 010b (write-only) */
  2913. WARN_ON((spte & 0x7) == 0x2);
  2914. /* 110b (write/execute) */
  2915. WARN_ON((spte & 0x7) == 0x6);
  2916. /* 100b (execute-only) and value not supported by logical processor */
  2917. if (!cpu_has_vmx_ept_execute_only())
  2918. WARN_ON((spte & 0x7) == 0x4);
  2919. /* not 000b */
  2920. if ((spte & 0x7)) {
  2921. u64 rsvd_bits = spte & ept_rsvd_mask(spte, level);
  2922. if (rsvd_bits != 0) {
  2923. printk(KERN_ERR "%s: rsvd_bits = 0x%llx\n",
  2924. __func__, rsvd_bits);
  2925. WARN_ON(1);
  2926. }
  2927. if (level == 1 || (level == 2 && (spte & (1ULL << 7)))) {
  2928. u64 ept_mem_type = (spte & 0x38) >> 3;
  2929. if (ept_mem_type == 2 || ept_mem_type == 3 ||
  2930. ept_mem_type == 7) {
  2931. printk(KERN_ERR "%s: ept_mem_type=0x%llx\n",
  2932. __func__, ept_mem_type);
  2933. WARN_ON(1);
  2934. }
  2935. }
  2936. }
  2937. }
  2938. static int handle_ept_misconfig(struct kvm_vcpu *vcpu)
  2939. {
  2940. u64 sptes[4];
  2941. int nr_sptes, i;
  2942. gpa_t gpa;
  2943. gpa = vmcs_read64(GUEST_PHYSICAL_ADDRESS);
  2944. printk(KERN_ERR "EPT: Misconfiguration.\n");
  2945. printk(KERN_ERR "EPT: GPA: 0x%llx\n", gpa);
  2946. nr_sptes = kvm_mmu_get_spte_hierarchy(vcpu, gpa, sptes);
  2947. for (i = PT64_ROOT_LEVEL; i > PT64_ROOT_LEVEL - nr_sptes; --i)
  2948. ept_misconfig_inspect_spte(vcpu, sptes[i-1], i);
  2949. vcpu->run->exit_reason = KVM_EXIT_UNKNOWN;
  2950. vcpu->run->hw.hardware_exit_reason = EXIT_REASON_EPT_MISCONFIG;
  2951. return 0;
  2952. }
  2953. static int handle_nmi_window(struct kvm_vcpu *vcpu)
  2954. {
  2955. u32 cpu_based_vm_exec_control;
  2956. /* clear pending NMI */
  2957. cpu_based_vm_exec_control = vmcs_read32(CPU_BASED_VM_EXEC_CONTROL);
  2958. cpu_based_vm_exec_control &= ~CPU_BASED_VIRTUAL_NMI_PENDING;
  2959. vmcs_write32(CPU_BASED_VM_EXEC_CONTROL, cpu_based_vm_exec_control);
  2960. ++vcpu->stat.nmi_window_exits;
  2961. return 1;
  2962. }
  2963. static int handle_invalid_guest_state(struct kvm_vcpu *vcpu)
  2964. {
  2965. struct vcpu_vmx *vmx = to_vmx(vcpu);
  2966. enum emulation_result err = EMULATE_DONE;
  2967. int ret = 1;
  2968. while (!guest_state_valid(vcpu)) {
  2969. err = emulate_instruction(vcpu, 0, 0, 0);
  2970. if (err == EMULATE_DO_MMIO) {
  2971. ret = 0;
  2972. goto out;
  2973. }
  2974. if (err != EMULATE_DONE) {
  2975. vcpu->run->exit_reason = KVM_EXIT_INTERNAL_ERROR;
  2976. vcpu->run->internal.suberror = KVM_INTERNAL_ERROR_EMULATION;
  2977. vcpu->run->internal.ndata = 0;
  2978. ret = 0;
  2979. goto out;
  2980. }
  2981. if (signal_pending(current))
  2982. goto out;
  2983. if (need_resched())
  2984. schedule();
  2985. }
  2986. vmx->emulation_required = 0;
  2987. out:
  2988. return ret;
  2989. }
  2990. /*
  2991. * Indicate a busy-waiting vcpu in spinlock. We do not enable the PAUSE
  2992. * exiting, so only get here on cpu with PAUSE-Loop-Exiting.
  2993. */
  2994. static int handle_pause(struct kvm_vcpu *vcpu)
  2995. {
  2996. skip_emulated_instruction(vcpu);
  2997. kvm_vcpu_on_spin(vcpu);
  2998. return 1;
  2999. }
  3000. static int handle_invalid_op(struct kvm_vcpu *vcpu)
  3001. {
  3002. kvm_queue_exception(vcpu, UD_VECTOR);
  3003. return 1;
  3004. }
  3005. /*
  3006. * The exit handlers return 1 if the exit was handled fully and guest execution
  3007. * may resume. Otherwise they set the kvm_run parameter to indicate what needs
  3008. * to be done to userspace and return 0.
  3009. */
  3010. static int (*kvm_vmx_exit_handlers[])(struct kvm_vcpu *vcpu) = {
  3011. [EXIT_REASON_EXCEPTION_NMI] = handle_exception,
  3012. [EXIT_REASON_EXTERNAL_INTERRUPT] = handle_external_interrupt,
  3013. [EXIT_REASON_TRIPLE_FAULT] = handle_triple_fault,
  3014. [EXIT_REASON_NMI_WINDOW] = handle_nmi_window,
  3015. [EXIT_REASON_IO_INSTRUCTION] = handle_io,
  3016. [EXIT_REASON_CR_ACCESS] = handle_cr,
  3017. [EXIT_REASON_DR_ACCESS] = handle_dr,
  3018. [EXIT_REASON_CPUID] = handle_cpuid,
  3019. [EXIT_REASON_MSR_READ] = handle_rdmsr,
  3020. [EXIT_REASON_MSR_WRITE] = handle_wrmsr,
  3021. [EXIT_REASON_PENDING_INTERRUPT] = handle_interrupt_window,
  3022. [EXIT_REASON_HLT] = handle_halt,
  3023. [EXIT_REASON_INVLPG] = handle_invlpg,
  3024. [EXIT_REASON_VMCALL] = handle_vmcall,
  3025. [EXIT_REASON_VMCLEAR] = handle_vmx_insn,
  3026. [EXIT_REASON_VMLAUNCH] = handle_vmx_insn,
  3027. [EXIT_REASON_VMPTRLD] = handle_vmx_insn,
  3028. [EXIT_REASON_VMPTRST] = handle_vmx_insn,
  3029. [EXIT_REASON_VMREAD] = handle_vmx_insn,
  3030. [EXIT_REASON_VMRESUME] = handle_vmx_insn,
  3031. [EXIT_REASON_VMWRITE] = handle_vmx_insn,
  3032. [EXIT_REASON_VMOFF] = handle_vmx_insn,
  3033. [EXIT_REASON_VMON] = handle_vmx_insn,
  3034. [EXIT_REASON_TPR_BELOW_THRESHOLD] = handle_tpr_below_threshold,
  3035. [EXIT_REASON_APIC_ACCESS] = handle_apic_access,
  3036. [EXIT_REASON_WBINVD] = handle_wbinvd,
  3037. [EXIT_REASON_TASK_SWITCH] = handle_task_switch,
  3038. [EXIT_REASON_MCE_DURING_VMENTRY] = handle_machine_check,
  3039. [EXIT_REASON_EPT_VIOLATION] = handle_ept_violation,
  3040. [EXIT_REASON_EPT_MISCONFIG] = handle_ept_misconfig,
  3041. [EXIT_REASON_PAUSE_INSTRUCTION] = handle_pause,
  3042. [EXIT_REASON_MWAIT_INSTRUCTION] = handle_invalid_op,
  3043. [EXIT_REASON_MONITOR_INSTRUCTION] = handle_invalid_op,
  3044. };
  3045. static const int kvm_vmx_max_exit_handlers =
  3046. ARRAY_SIZE(kvm_vmx_exit_handlers);
  3047. /*
  3048. * The guest has exited. See if we can fix it or if we need userspace
  3049. * assistance.
  3050. */
  3051. static int vmx_handle_exit(struct kvm_vcpu *vcpu)
  3052. {
  3053. struct vcpu_vmx *vmx = to_vmx(vcpu);
  3054. u32 exit_reason = vmx->exit_reason;
  3055. u32 vectoring_info = vmx->idt_vectoring_info;
  3056. trace_kvm_exit(exit_reason, kvm_rip_read(vcpu));
  3057. /* If guest state is invalid, start emulating */
  3058. if (vmx->emulation_required && emulate_invalid_guest_state)
  3059. return handle_invalid_guest_state(vcpu);
  3060. /* Access CR3 don't cause VMExit in paging mode, so we need
  3061. * to sync with guest real CR3. */
  3062. if (enable_ept && is_paging(vcpu))
  3063. vcpu->arch.cr3 = vmcs_readl(GUEST_CR3);
  3064. if (unlikely(vmx->fail)) {
  3065. vcpu->run->exit_reason = KVM_EXIT_FAIL_ENTRY;
  3066. vcpu->run->fail_entry.hardware_entry_failure_reason
  3067. = vmcs_read32(VM_INSTRUCTION_ERROR);
  3068. return 0;
  3069. }
  3070. if ((vectoring_info & VECTORING_INFO_VALID_MASK) &&
  3071. (exit_reason != EXIT_REASON_EXCEPTION_NMI &&
  3072. exit_reason != EXIT_REASON_EPT_VIOLATION &&
  3073. exit_reason != EXIT_REASON_TASK_SWITCH))
  3074. printk(KERN_WARNING "%s: unexpected, valid vectoring info "
  3075. "(0x%x) and exit reason is 0x%x\n",
  3076. __func__, vectoring_info, exit_reason);
  3077. if (unlikely(!cpu_has_virtual_nmis() && vmx->soft_vnmi_blocked)) {
  3078. if (vmx_interrupt_allowed(vcpu)) {
  3079. vmx->soft_vnmi_blocked = 0;
  3080. } else if (vmx->vnmi_blocked_time > 1000000000LL &&
  3081. vcpu->arch.nmi_pending) {
  3082. /*
  3083. * This CPU don't support us in finding the end of an
  3084. * NMI-blocked window if the guest runs with IRQs
  3085. * disabled. So we pull the trigger after 1 s of
  3086. * futile waiting, but inform the user about this.
  3087. */
  3088. printk(KERN_WARNING "%s: Breaking out of NMI-blocked "
  3089. "state on VCPU %d after 1 s timeout\n",
  3090. __func__, vcpu->vcpu_id);
  3091. vmx->soft_vnmi_blocked = 0;
  3092. }
  3093. }
  3094. if (exit_reason < kvm_vmx_max_exit_handlers
  3095. && kvm_vmx_exit_handlers[exit_reason])
  3096. return kvm_vmx_exit_handlers[exit_reason](vcpu);
  3097. else {
  3098. vcpu->run->exit_reason = KVM_EXIT_UNKNOWN;
  3099. vcpu->run->hw.hardware_exit_reason = exit_reason;
  3100. }
  3101. return 0;
  3102. }
  3103. static void update_cr8_intercept(struct kvm_vcpu *vcpu, int tpr, int irr)
  3104. {
  3105. if (irr == -1 || tpr < irr) {
  3106. vmcs_write32(TPR_THRESHOLD, 0);
  3107. return;
  3108. }
  3109. vmcs_write32(TPR_THRESHOLD, irr);
  3110. }
  3111. static void vmx_complete_interrupts(struct vcpu_vmx *vmx)
  3112. {
  3113. u32 exit_intr_info;
  3114. u32 idt_vectoring_info = vmx->idt_vectoring_info;
  3115. bool unblock_nmi;
  3116. u8 vector;
  3117. int type;
  3118. bool idtv_info_valid;
  3119. exit_intr_info = vmcs_read32(VM_EXIT_INTR_INFO);
  3120. vmx->exit_reason = vmcs_read32(VM_EXIT_REASON);
  3121. /* Handle machine checks before interrupts are enabled */
  3122. if ((vmx->exit_reason == EXIT_REASON_MCE_DURING_VMENTRY)
  3123. || (vmx->exit_reason == EXIT_REASON_EXCEPTION_NMI
  3124. && is_machine_check(exit_intr_info)))
  3125. kvm_machine_check();
  3126. /* We need to handle NMIs before interrupts are enabled */
  3127. if ((exit_intr_info & INTR_INFO_INTR_TYPE_MASK) == INTR_TYPE_NMI_INTR &&
  3128. (exit_intr_info & INTR_INFO_VALID_MASK))
  3129. asm("int $2");
  3130. idtv_info_valid = idt_vectoring_info & VECTORING_INFO_VALID_MASK;
  3131. if (cpu_has_virtual_nmis()) {
  3132. unblock_nmi = (exit_intr_info & INTR_INFO_UNBLOCK_NMI) != 0;
  3133. vector = exit_intr_info & INTR_INFO_VECTOR_MASK;
  3134. /*
  3135. * SDM 3: 27.7.1.2 (September 2008)
  3136. * Re-set bit "block by NMI" before VM entry if vmexit caused by
  3137. * a guest IRET fault.
  3138. * SDM 3: 23.2.2 (September 2008)
  3139. * Bit 12 is undefined in any of the following cases:
  3140. * If the VM exit sets the valid bit in the IDT-vectoring
  3141. * information field.
  3142. * If the VM exit is due to a double fault.
  3143. */
  3144. if ((exit_intr_info & INTR_INFO_VALID_MASK) && unblock_nmi &&
  3145. vector != DF_VECTOR && !idtv_info_valid)
  3146. vmcs_set_bits(GUEST_INTERRUPTIBILITY_INFO,
  3147. GUEST_INTR_STATE_NMI);
  3148. } else if (unlikely(vmx->soft_vnmi_blocked))
  3149. vmx->vnmi_blocked_time +=
  3150. ktime_to_ns(ktime_sub(ktime_get(), vmx->entry_time));
  3151. vmx->vcpu.arch.nmi_injected = false;
  3152. kvm_clear_exception_queue(&vmx->vcpu);
  3153. kvm_clear_interrupt_queue(&vmx->vcpu);
  3154. if (!idtv_info_valid)
  3155. return;
  3156. vector = idt_vectoring_info & VECTORING_INFO_VECTOR_MASK;
  3157. type = idt_vectoring_info & VECTORING_INFO_TYPE_MASK;
  3158. switch (type) {
  3159. case INTR_TYPE_NMI_INTR:
  3160. vmx->vcpu.arch.nmi_injected = true;
  3161. /*
  3162. * SDM 3: 27.7.1.2 (September 2008)
  3163. * Clear bit "block by NMI" before VM entry if a NMI
  3164. * delivery faulted.
  3165. */
  3166. vmcs_clear_bits(GUEST_INTERRUPTIBILITY_INFO,
  3167. GUEST_INTR_STATE_NMI);
  3168. break;
  3169. case INTR_TYPE_SOFT_EXCEPTION:
  3170. vmx->vcpu.arch.event_exit_inst_len =
  3171. vmcs_read32(VM_EXIT_INSTRUCTION_LEN);
  3172. /* fall through */
  3173. case INTR_TYPE_HARD_EXCEPTION:
  3174. if (idt_vectoring_info & VECTORING_INFO_DELIVER_CODE_MASK) {
  3175. u32 err = vmcs_read32(IDT_VECTORING_ERROR_CODE);
  3176. kvm_queue_exception_e(&vmx->vcpu, vector, err);
  3177. } else
  3178. kvm_queue_exception(&vmx->vcpu, vector);
  3179. break;
  3180. case INTR_TYPE_SOFT_INTR:
  3181. vmx->vcpu.arch.event_exit_inst_len =
  3182. vmcs_read32(VM_EXIT_INSTRUCTION_LEN);
  3183. /* fall through */
  3184. case INTR_TYPE_EXT_INTR:
  3185. kvm_queue_interrupt(&vmx->vcpu, vector,
  3186. type == INTR_TYPE_SOFT_INTR);
  3187. break;
  3188. default:
  3189. break;
  3190. }
  3191. }
  3192. /*
  3193. * Failure to inject an interrupt should give us the information
  3194. * in IDT_VECTORING_INFO_FIELD. However, if the failure occurs
  3195. * when fetching the interrupt redirection bitmap in the real-mode
  3196. * tss, this doesn't happen. So we do it ourselves.
  3197. */
  3198. static void fixup_rmode_irq(struct vcpu_vmx *vmx)
  3199. {
  3200. vmx->rmode.irq.pending = 0;
  3201. if (kvm_rip_read(&vmx->vcpu) + 1 != vmx->rmode.irq.rip)
  3202. return;
  3203. kvm_rip_write(&vmx->vcpu, vmx->rmode.irq.rip);
  3204. if (vmx->idt_vectoring_info & VECTORING_INFO_VALID_MASK) {
  3205. vmx->idt_vectoring_info &= ~VECTORING_INFO_TYPE_MASK;
  3206. vmx->idt_vectoring_info |= INTR_TYPE_EXT_INTR;
  3207. return;
  3208. }
  3209. vmx->idt_vectoring_info =
  3210. VECTORING_INFO_VALID_MASK
  3211. | INTR_TYPE_EXT_INTR
  3212. | vmx->rmode.irq.vector;
  3213. }
  3214. #ifdef CONFIG_X86_64
  3215. #define R "r"
  3216. #define Q "q"
  3217. #else
  3218. #define R "e"
  3219. #define Q "l"
  3220. #endif
  3221. static void vmx_vcpu_run(struct kvm_vcpu *vcpu)
  3222. {
  3223. struct vcpu_vmx *vmx = to_vmx(vcpu);
  3224. /* Record the guest's net vcpu time for enforced NMI injections. */
  3225. if (unlikely(!cpu_has_virtual_nmis() && vmx->soft_vnmi_blocked))
  3226. vmx->entry_time = ktime_get();
  3227. /* Don't enter VMX if guest state is invalid, let the exit handler
  3228. start emulation until we arrive back to a valid state */
  3229. if (vmx->emulation_required && emulate_invalid_guest_state)
  3230. return;
  3231. if (test_bit(VCPU_REGS_RSP, (unsigned long *)&vcpu->arch.regs_dirty))
  3232. vmcs_writel(GUEST_RSP, vcpu->arch.regs[VCPU_REGS_RSP]);
  3233. if (test_bit(VCPU_REGS_RIP, (unsigned long *)&vcpu->arch.regs_dirty))
  3234. vmcs_writel(GUEST_RIP, vcpu->arch.regs[VCPU_REGS_RIP]);
  3235. /* When single-stepping over STI and MOV SS, we must clear the
  3236. * corresponding interruptibility bits in the guest state. Otherwise
  3237. * vmentry fails as it then expects bit 14 (BS) in pending debug
  3238. * exceptions being set, but that's not correct for the guest debugging
  3239. * case. */
  3240. if (vcpu->guest_debug & KVM_GUESTDBG_SINGLESTEP)
  3241. vmx_set_interrupt_shadow(vcpu, 0);
  3242. /*
  3243. * Loading guest fpu may have cleared host cr0.ts
  3244. */
  3245. vmcs_writel(HOST_CR0, read_cr0());
  3246. asm(
  3247. /* Store host registers */
  3248. "push %%"R"dx; push %%"R"bp;"
  3249. "push %%"R"cx \n\t"
  3250. "cmp %%"R"sp, %c[host_rsp](%0) \n\t"
  3251. "je 1f \n\t"
  3252. "mov %%"R"sp, %c[host_rsp](%0) \n\t"
  3253. __ex(ASM_VMX_VMWRITE_RSP_RDX) "\n\t"
  3254. "1: \n\t"
  3255. /* Reload cr2 if changed */
  3256. "mov %c[cr2](%0), %%"R"ax \n\t"
  3257. "mov %%cr2, %%"R"dx \n\t"
  3258. "cmp %%"R"ax, %%"R"dx \n\t"
  3259. "je 2f \n\t"
  3260. "mov %%"R"ax, %%cr2 \n\t"
  3261. "2: \n\t"
  3262. /* Check if vmlaunch of vmresume is needed */
  3263. "cmpl $0, %c[launched](%0) \n\t"
  3264. /* Load guest registers. Don't clobber flags. */
  3265. "mov %c[rax](%0), %%"R"ax \n\t"
  3266. "mov %c[rbx](%0), %%"R"bx \n\t"
  3267. "mov %c[rdx](%0), %%"R"dx \n\t"
  3268. "mov %c[rsi](%0), %%"R"si \n\t"
  3269. "mov %c[rdi](%0), %%"R"di \n\t"
  3270. "mov %c[rbp](%0), %%"R"bp \n\t"
  3271. #ifdef CONFIG_X86_64
  3272. "mov %c[r8](%0), %%r8 \n\t"
  3273. "mov %c[r9](%0), %%r9 \n\t"
  3274. "mov %c[r10](%0), %%r10 \n\t"
  3275. "mov %c[r11](%0), %%r11 \n\t"
  3276. "mov %c[r12](%0), %%r12 \n\t"
  3277. "mov %c[r13](%0), %%r13 \n\t"
  3278. "mov %c[r14](%0), %%r14 \n\t"
  3279. "mov %c[r15](%0), %%r15 \n\t"
  3280. #endif
  3281. "mov %c[rcx](%0), %%"R"cx \n\t" /* kills %0 (ecx) */
  3282. /* Enter guest mode */
  3283. "jne .Llaunched \n\t"
  3284. __ex(ASM_VMX_VMLAUNCH) "\n\t"
  3285. "jmp .Lkvm_vmx_return \n\t"
  3286. ".Llaunched: " __ex(ASM_VMX_VMRESUME) "\n\t"
  3287. ".Lkvm_vmx_return: "
  3288. /* Save guest registers, load host registers, keep flags */
  3289. "xchg %0, (%%"R"sp) \n\t"
  3290. "mov %%"R"ax, %c[rax](%0) \n\t"
  3291. "mov %%"R"bx, %c[rbx](%0) \n\t"
  3292. "push"Q" (%%"R"sp); pop"Q" %c[rcx](%0) \n\t"
  3293. "mov %%"R"dx, %c[rdx](%0) \n\t"
  3294. "mov %%"R"si, %c[rsi](%0) \n\t"
  3295. "mov %%"R"di, %c[rdi](%0) \n\t"
  3296. "mov %%"R"bp, %c[rbp](%0) \n\t"
  3297. #ifdef CONFIG_X86_64
  3298. "mov %%r8, %c[r8](%0) \n\t"
  3299. "mov %%r9, %c[r9](%0) \n\t"
  3300. "mov %%r10, %c[r10](%0) \n\t"
  3301. "mov %%r11, %c[r11](%0) \n\t"
  3302. "mov %%r12, %c[r12](%0) \n\t"
  3303. "mov %%r13, %c[r13](%0) \n\t"
  3304. "mov %%r14, %c[r14](%0) \n\t"
  3305. "mov %%r15, %c[r15](%0) \n\t"
  3306. #endif
  3307. "mov %%cr2, %%"R"ax \n\t"
  3308. "mov %%"R"ax, %c[cr2](%0) \n\t"
  3309. "pop %%"R"bp; pop %%"R"bp; pop %%"R"dx \n\t"
  3310. "setbe %c[fail](%0) \n\t"
  3311. : : "c"(vmx), "d"((unsigned long)HOST_RSP),
  3312. [launched]"i"(offsetof(struct vcpu_vmx, launched)),
  3313. [fail]"i"(offsetof(struct vcpu_vmx, fail)),
  3314. [host_rsp]"i"(offsetof(struct vcpu_vmx, host_rsp)),
  3315. [rax]"i"(offsetof(struct vcpu_vmx, vcpu.arch.regs[VCPU_REGS_RAX])),
  3316. [rbx]"i"(offsetof(struct vcpu_vmx, vcpu.arch.regs[VCPU_REGS_RBX])),
  3317. [rcx]"i"(offsetof(struct vcpu_vmx, vcpu.arch.regs[VCPU_REGS_RCX])),
  3318. [rdx]"i"(offsetof(struct vcpu_vmx, vcpu.arch.regs[VCPU_REGS_RDX])),
  3319. [rsi]"i"(offsetof(struct vcpu_vmx, vcpu.arch.regs[VCPU_REGS_RSI])),
  3320. [rdi]"i"(offsetof(struct vcpu_vmx, vcpu.arch.regs[VCPU_REGS_RDI])),
  3321. [rbp]"i"(offsetof(struct vcpu_vmx, vcpu.arch.regs[VCPU_REGS_RBP])),
  3322. #ifdef CONFIG_X86_64
  3323. [r8]"i"(offsetof(struct vcpu_vmx, vcpu.arch.regs[VCPU_REGS_R8])),
  3324. [r9]"i"(offsetof(struct vcpu_vmx, vcpu.arch.regs[VCPU_REGS_R9])),
  3325. [r10]"i"(offsetof(struct vcpu_vmx, vcpu.arch.regs[VCPU_REGS_R10])),
  3326. [r11]"i"(offsetof(struct vcpu_vmx, vcpu.arch.regs[VCPU_REGS_R11])),
  3327. [r12]"i"(offsetof(struct vcpu_vmx, vcpu.arch.regs[VCPU_REGS_R12])),
  3328. [r13]"i"(offsetof(struct vcpu_vmx, vcpu.arch.regs[VCPU_REGS_R13])),
  3329. [r14]"i"(offsetof(struct vcpu_vmx, vcpu.arch.regs[VCPU_REGS_R14])),
  3330. [r15]"i"(offsetof(struct vcpu_vmx, vcpu.arch.regs[VCPU_REGS_R15])),
  3331. #endif
  3332. [cr2]"i"(offsetof(struct vcpu_vmx, vcpu.arch.cr2))
  3333. : "cc", "memory"
  3334. , R"bx", R"di", R"si"
  3335. #ifdef CONFIG_X86_64
  3336. , "r8", "r9", "r10", "r11", "r12", "r13", "r14", "r15"
  3337. #endif
  3338. );
  3339. vcpu->arch.regs_avail = ~((1 << VCPU_REGS_RIP) | (1 << VCPU_REGS_RSP)
  3340. | (1 << VCPU_EXREG_PDPTR));
  3341. vcpu->arch.regs_dirty = 0;
  3342. vmx->idt_vectoring_info = vmcs_read32(IDT_VECTORING_INFO_FIELD);
  3343. if (vmx->rmode.irq.pending)
  3344. fixup_rmode_irq(vmx);
  3345. asm("mov %0, %%ds; mov %0, %%es" : : "r"(__USER_DS));
  3346. vmx->launched = 1;
  3347. vmx_complete_interrupts(vmx);
  3348. }
  3349. #undef R
  3350. #undef Q
  3351. static void vmx_free_vmcs(struct kvm_vcpu *vcpu)
  3352. {
  3353. struct vcpu_vmx *vmx = to_vmx(vcpu);
  3354. if (vmx->vmcs) {
  3355. vcpu_clear(vmx);
  3356. free_vmcs(vmx->vmcs);
  3357. vmx->vmcs = NULL;
  3358. }
  3359. }
  3360. static void vmx_free_vcpu(struct kvm_vcpu *vcpu)
  3361. {
  3362. struct vcpu_vmx *vmx = to_vmx(vcpu);
  3363. spin_lock(&vmx_vpid_lock);
  3364. if (vmx->vpid != 0)
  3365. __clear_bit(vmx->vpid, vmx_vpid_bitmap);
  3366. spin_unlock(&vmx_vpid_lock);
  3367. vmx_free_vmcs(vcpu);
  3368. kfree(vmx->guest_msrs);
  3369. kvm_vcpu_uninit(vcpu);
  3370. kmem_cache_free(kvm_vcpu_cache, vmx);
  3371. }
  3372. static struct kvm_vcpu *vmx_create_vcpu(struct kvm *kvm, unsigned int id)
  3373. {
  3374. int err;
  3375. struct vcpu_vmx *vmx = kmem_cache_zalloc(kvm_vcpu_cache, GFP_KERNEL);
  3376. int cpu;
  3377. if (!vmx)
  3378. return ERR_PTR(-ENOMEM);
  3379. allocate_vpid(vmx);
  3380. err = kvm_vcpu_init(&vmx->vcpu, kvm, id);
  3381. if (err)
  3382. goto free_vcpu;
  3383. vmx->guest_msrs = kmalloc(PAGE_SIZE, GFP_KERNEL);
  3384. if (!vmx->guest_msrs) {
  3385. err = -ENOMEM;
  3386. goto uninit_vcpu;
  3387. }
  3388. vmx->vmcs = alloc_vmcs();
  3389. if (!vmx->vmcs)
  3390. goto free_msrs;
  3391. vmcs_clear(vmx->vmcs);
  3392. cpu = get_cpu();
  3393. vmx_vcpu_load(&vmx->vcpu, cpu);
  3394. err = vmx_vcpu_setup(vmx);
  3395. vmx_vcpu_put(&vmx->vcpu);
  3396. put_cpu();
  3397. if (err)
  3398. goto free_vmcs;
  3399. if (vm_need_virtualize_apic_accesses(kvm))
  3400. if (alloc_apic_access_page(kvm) != 0)
  3401. goto free_vmcs;
  3402. if (enable_ept) {
  3403. if (!kvm->arch.ept_identity_map_addr)
  3404. kvm->arch.ept_identity_map_addr =
  3405. VMX_EPT_IDENTITY_PAGETABLE_ADDR;
  3406. if (alloc_identity_pagetable(kvm) != 0)
  3407. goto free_vmcs;
  3408. }
  3409. return &vmx->vcpu;
  3410. free_vmcs:
  3411. free_vmcs(vmx->vmcs);
  3412. free_msrs:
  3413. kfree(vmx->guest_msrs);
  3414. uninit_vcpu:
  3415. kvm_vcpu_uninit(&vmx->vcpu);
  3416. free_vcpu:
  3417. kmem_cache_free(kvm_vcpu_cache, vmx);
  3418. return ERR_PTR(err);
  3419. }
  3420. static void __init vmx_check_processor_compat(void *rtn)
  3421. {
  3422. struct vmcs_config vmcs_conf;
  3423. *(int *)rtn = 0;
  3424. if (setup_vmcs_config(&vmcs_conf) < 0)
  3425. *(int *)rtn = -EIO;
  3426. if (memcmp(&vmcs_config, &vmcs_conf, sizeof(struct vmcs_config)) != 0) {
  3427. printk(KERN_ERR "kvm: CPU %d feature inconsistency!\n",
  3428. smp_processor_id());
  3429. *(int *)rtn = -EIO;
  3430. }
  3431. }
  3432. static int get_ept_level(void)
  3433. {
  3434. return VMX_EPT_DEFAULT_GAW + 1;
  3435. }
  3436. static u64 vmx_get_mt_mask(struct kvm_vcpu *vcpu, gfn_t gfn, bool is_mmio)
  3437. {
  3438. u64 ret;
  3439. /* For VT-d and EPT combination
  3440. * 1. MMIO: always map as UC
  3441. * 2. EPT with VT-d:
  3442. * a. VT-d without snooping control feature: can't guarantee the
  3443. * result, try to trust guest.
  3444. * b. VT-d with snooping control feature: snooping control feature of
  3445. * VT-d engine can guarantee the cache correctness. Just set it
  3446. * to WB to keep consistent with host. So the same as item 3.
  3447. * 3. EPT without VT-d: always map as WB and set IPAT=1 to keep
  3448. * consistent with host MTRR
  3449. */
  3450. if (is_mmio)
  3451. ret = MTRR_TYPE_UNCACHABLE << VMX_EPT_MT_EPTE_SHIFT;
  3452. else if (vcpu->kvm->arch.iommu_domain &&
  3453. !(vcpu->kvm->arch.iommu_flags & KVM_IOMMU_CACHE_COHERENCY))
  3454. ret = kvm_get_guest_memory_type(vcpu, gfn) <<
  3455. VMX_EPT_MT_EPTE_SHIFT;
  3456. else
  3457. ret = (MTRR_TYPE_WRBACK << VMX_EPT_MT_EPTE_SHIFT)
  3458. | VMX_EPT_IPAT_BIT;
  3459. return ret;
  3460. }
  3461. #define _ER(x) { EXIT_REASON_##x, #x }
  3462. static const struct trace_print_flags vmx_exit_reasons_str[] = {
  3463. _ER(EXCEPTION_NMI),
  3464. _ER(EXTERNAL_INTERRUPT),
  3465. _ER(TRIPLE_FAULT),
  3466. _ER(PENDING_INTERRUPT),
  3467. _ER(NMI_WINDOW),
  3468. _ER(TASK_SWITCH),
  3469. _ER(CPUID),
  3470. _ER(HLT),
  3471. _ER(INVLPG),
  3472. _ER(RDPMC),
  3473. _ER(RDTSC),
  3474. _ER(VMCALL),
  3475. _ER(VMCLEAR),
  3476. _ER(VMLAUNCH),
  3477. _ER(VMPTRLD),
  3478. _ER(VMPTRST),
  3479. _ER(VMREAD),
  3480. _ER(VMRESUME),
  3481. _ER(VMWRITE),
  3482. _ER(VMOFF),
  3483. _ER(VMON),
  3484. _ER(CR_ACCESS),
  3485. _ER(DR_ACCESS),
  3486. _ER(IO_INSTRUCTION),
  3487. _ER(MSR_READ),
  3488. _ER(MSR_WRITE),
  3489. _ER(MWAIT_INSTRUCTION),
  3490. _ER(MONITOR_INSTRUCTION),
  3491. _ER(PAUSE_INSTRUCTION),
  3492. _ER(MCE_DURING_VMENTRY),
  3493. _ER(TPR_BELOW_THRESHOLD),
  3494. _ER(APIC_ACCESS),
  3495. _ER(EPT_VIOLATION),
  3496. _ER(EPT_MISCONFIG),
  3497. _ER(WBINVD),
  3498. { -1, NULL }
  3499. };
  3500. #undef _ER
  3501. static int vmx_get_lpage_level(void)
  3502. {
  3503. if (enable_ept && !cpu_has_vmx_ept_1g_page())
  3504. return PT_DIRECTORY_LEVEL;
  3505. else
  3506. /* For shadow and EPT supported 1GB page */
  3507. return PT_PDPE_LEVEL;
  3508. }
  3509. static inline u32 bit(int bitno)
  3510. {
  3511. return 1 << (bitno & 31);
  3512. }
  3513. static void vmx_cpuid_update(struct kvm_vcpu *vcpu)
  3514. {
  3515. struct kvm_cpuid_entry2 *best;
  3516. struct vcpu_vmx *vmx = to_vmx(vcpu);
  3517. u32 exec_control;
  3518. vmx->rdtscp_enabled = false;
  3519. if (vmx_rdtscp_supported()) {
  3520. exec_control = vmcs_read32(SECONDARY_VM_EXEC_CONTROL);
  3521. if (exec_control & SECONDARY_EXEC_RDTSCP) {
  3522. best = kvm_find_cpuid_entry(vcpu, 0x80000001, 0);
  3523. if (best && (best->edx & bit(X86_FEATURE_RDTSCP)))
  3524. vmx->rdtscp_enabled = true;
  3525. else {
  3526. exec_control &= ~SECONDARY_EXEC_RDTSCP;
  3527. vmcs_write32(SECONDARY_VM_EXEC_CONTROL,
  3528. exec_control);
  3529. }
  3530. }
  3531. }
  3532. }
  3533. static struct kvm_x86_ops vmx_x86_ops = {
  3534. .cpu_has_kvm_support = cpu_has_kvm_support,
  3535. .disabled_by_bios = vmx_disabled_by_bios,
  3536. .hardware_setup = hardware_setup,
  3537. .hardware_unsetup = hardware_unsetup,
  3538. .check_processor_compatibility = vmx_check_processor_compat,
  3539. .hardware_enable = hardware_enable,
  3540. .hardware_disable = hardware_disable,
  3541. .cpu_has_accelerated_tpr = report_flexpriority,
  3542. .vcpu_create = vmx_create_vcpu,
  3543. .vcpu_free = vmx_free_vcpu,
  3544. .vcpu_reset = vmx_vcpu_reset,
  3545. .prepare_guest_switch = vmx_save_host_state,
  3546. .vcpu_load = vmx_vcpu_load,
  3547. .vcpu_put = vmx_vcpu_put,
  3548. .set_guest_debug = set_guest_debug,
  3549. .get_msr = vmx_get_msr,
  3550. .set_msr = vmx_set_msr,
  3551. .get_segment_base = vmx_get_segment_base,
  3552. .get_segment = vmx_get_segment,
  3553. .set_segment = vmx_set_segment,
  3554. .get_cpl = vmx_get_cpl,
  3555. .get_cs_db_l_bits = vmx_get_cs_db_l_bits,
  3556. .decache_cr0_guest_bits = vmx_decache_cr0_guest_bits,
  3557. .decache_cr4_guest_bits = vmx_decache_cr4_guest_bits,
  3558. .set_cr0 = vmx_set_cr0,
  3559. .set_cr3 = vmx_set_cr3,
  3560. .set_cr4 = vmx_set_cr4,
  3561. .set_efer = vmx_set_efer,
  3562. .get_idt = vmx_get_idt,
  3563. .set_idt = vmx_set_idt,
  3564. .get_gdt = vmx_get_gdt,
  3565. .set_gdt = vmx_set_gdt,
  3566. .cache_reg = vmx_cache_reg,
  3567. .get_rflags = vmx_get_rflags,
  3568. .set_rflags = vmx_set_rflags,
  3569. .fpu_activate = vmx_fpu_activate,
  3570. .fpu_deactivate = vmx_fpu_deactivate,
  3571. .tlb_flush = vmx_flush_tlb,
  3572. .run = vmx_vcpu_run,
  3573. .handle_exit = vmx_handle_exit,
  3574. .skip_emulated_instruction = skip_emulated_instruction,
  3575. .set_interrupt_shadow = vmx_set_interrupt_shadow,
  3576. .get_interrupt_shadow = vmx_get_interrupt_shadow,
  3577. .patch_hypercall = vmx_patch_hypercall,
  3578. .set_irq = vmx_inject_irq,
  3579. .set_nmi = vmx_inject_nmi,
  3580. .queue_exception = vmx_queue_exception,
  3581. .interrupt_allowed = vmx_interrupt_allowed,
  3582. .nmi_allowed = vmx_nmi_allowed,
  3583. .get_nmi_mask = vmx_get_nmi_mask,
  3584. .set_nmi_mask = vmx_set_nmi_mask,
  3585. .enable_nmi_window = enable_nmi_window,
  3586. .enable_irq_window = enable_irq_window,
  3587. .update_cr8_intercept = update_cr8_intercept,
  3588. .set_tss_addr = vmx_set_tss_addr,
  3589. .get_tdp_level = get_ept_level,
  3590. .get_mt_mask = vmx_get_mt_mask,
  3591. .exit_reasons_str = vmx_exit_reasons_str,
  3592. .get_lpage_level = vmx_get_lpage_level,
  3593. .cpuid_update = vmx_cpuid_update,
  3594. .rdtscp_supported = vmx_rdtscp_supported,
  3595. };
  3596. static int __init vmx_init(void)
  3597. {
  3598. int r, i;
  3599. rdmsrl_safe(MSR_EFER, &host_efer);
  3600. for (i = 0; i < NR_VMX_MSR; ++i)
  3601. kvm_define_shared_msr(i, vmx_msr_index[i]);
  3602. vmx_io_bitmap_a = (unsigned long *)__get_free_page(GFP_KERNEL);
  3603. if (!vmx_io_bitmap_a)
  3604. return -ENOMEM;
  3605. vmx_io_bitmap_b = (unsigned long *)__get_free_page(GFP_KERNEL);
  3606. if (!vmx_io_bitmap_b) {
  3607. r = -ENOMEM;
  3608. goto out;
  3609. }
  3610. vmx_msr_bitmap_legacy = (unsigned long *)__get_free_page(GFP_KERNEL);
  3611. if (!vmx_msr_bitmap_legacy) {
  3612. r = -ENOMEM;
  3613. goto out1;
  3614. }
  3615. vmx_msr_bitmap_longmode = (unsigned long *)__get_free_page(GFP_KERNEL);
  3616. if (!vmx_msr_bitmap_longmode) {
  3617. r = -ENOMEM;
  3618. goto out2;
  3619. }
  3620. /*
  3621. * Allow direct access to the PC debug port (it is often used for I/O
  3622. * delays, but the vmexits simply slow things down).
  3623. */
  3624. memset(vmx_io_bitmap_a, 0xff, PAGE_SIZE);
  3625. clear_bit(0x80, vmx_io_bitmap_a);
  3626. memset(vmx_io_bitmap_b, 0xff, PAGE_SIZE);
  3627. memset(vmx_msr_bitmap_legacy, 0xff, PAGE_SIZE);
  3628. memset(vmx_msr_bitmap_longmode, 0xff, PAGE_SIZE);
  3629. set_bit(0, vmx_vpid_bitmap); /* 0 is reserved for host */
  3630. r = kvm_init(&vmx_x86_ops, sizeof(struct vcpu_vmx), THIS_MODULE);
  3631. if (r)
  3632. goto out3;
  3633. vmx_disable_intercept_for_msr(MSR_FS_BASE, false);
  3634. vmx_disable_intercept_for_msr(MSR_GS_BASE, false);
  3635. vmx_disable_intercept_for_msr(MSR_KERNEL_GS_BASE, true);
  3636. vmx_disable_intercept_for_msr(MSR_IA32_SYSENTER_CS, false);
  3637. vmx_disable_intercept_for_msr(MSR_IA32_SYSENTER_ESP, false);
  3638. vmx_disable_intercept_for_msr(MSR_IA32_SYSENTER_EIP, false);
  3639. if (enable_ept) {
  3640. bypass_guest_pf = 0;
  3641. kvm_mmu_set_base_ptes(VMX_EPT_READABLE_MASK |
  3642. VMX_EPT_WRITABLE_MASK);
  3643. kvm_mmu_set_mask_ptes(0ull, 0ull, 0ull, 0ull,
  3644. VMX_EPT_EXECUTABLE_MASK);
  3645. kvm_enable_tdp();
  3646. } else
  3647. kvm_disable_tdp();
  3648. if (bypass_guest_pf)
  3649. kvm_mmu_set_nonpresent_ptes(~0xffeull, 0ull);
  3650. return 0;
  3651. out3:
  3652. free_page((unsigned long)vmx_msr_bitmap_longmode);
  3653. out2:
  3654. free_page((unsigned long)vmx_msr_bitmap_legacy);
  3655. out1:
  3656. free_page((unsigned long)vmx_io_bitmap_b);
  3657. out:
  3658. free_page((unsigned long)vmx_io_bitmap_a);
  3659. return r;
  3660. }
  3661. static void __exit vmx_exit(void)
  3662. {
  3663. free_page((unsigned long)vmx_msr_bitmap_legacy);
  3664. free_page((unsigned long)vmx_msr_bitmap_longmode);
  3665. free_page((unsigned long)vmx_io_bitmap_b);
  3666. free_page((unsigned long)vmx_io_bitmap_a);
  3667. kvm_exit();
  3668. }
  3669. module_init(vmx_init)
  3670. module_exit(vmx_exit)