cpuid.c 25 KB

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  1. /*
  2. * Kernel-based Virtual Machine driver for Linux
  3. * cpuid support routines
  4. *
  5. * derived from arch/x86/kvm/x86.c
  6. *
  7. * Copyright 2011 Red Hat, Inc. and/or its affiliates.
  8. * Copyright IBM Corporation, 2008
  9. *
  10. * This work is licensed under the terms of the GNU GPL, version 2. See
  11. * the COPYING file in the top-level directory.
  12. *
  13. */
  14. #include <linux/kvm_host.h>
  15. #include <linux/export.h>
  16. #include <linux/vmalloc.h>
  17. #include <linux/uaccess.h>
  18. #include <linux/sched/stat.h>
  19. #include <asm/processor.h>
  20. #include <asm/user.h>
  21. #include <asm/fpu/xstate.h>
  22. #include "cpuid.h"
  23. #include "lapic.h"
  24. #include "mmu.h"
  25. #include "trace.h"
  26. #include "pmu.h"
  27. static u32 xstate_required_size(u64 xstate_bv, bool compacted)
  28. {
  29. int feature_bit = 0;
  30. u32 ret = XSAVE_HDR_SIZE + XSAVE_HDR_OFFSET;
  31. xstate_bv &= XFEATURE_MASK_EXTEND;
  32. while (xstate_bv) {
  33. if (xstate_bv & 0x1) {
  34. u32 eax, ebx, ecx, edx, offset;
  35. cpuid_count(0xD, feature_bit, &eax, &ebx, &ecx, &edx);
  36. offset = compacted ? ret : ebx;
  37. ret = max(ret, offset + eax);
  38. }
  39. xstate_bv >>= 1;
  40. feature_bit++;
  41. }
  42. return ret;
  43. }
  44. bool kvm_mpx_supported(void)
  45. {
  46. return ((host_xcr0 & (XFEATURE_MASK_BNDREGS | XFEATURE_MASK_BNDCSR))
  47. && kvm_x86_ops->mpx_supported());
  48. }
  49. EXPORT_SYMBOL_GPL(kvm_mpx_supported);
  50. u64 kvm_supported_xcr0(void)
  51. {
  52. u64 xcr0 = KVM_SUPPORTED_XCR0 & host_xcr0;
  53. if (!kvm_mpx_supported())
  54. xcr0 &= ~(XFEATURE_MASK_BNDREGS | XFEATURE_MASK_BNDCSR);
  55. return xcr0;
  56. }
  57. #define F(x) bit(X86_FEATURE_##x)
  58. /* For scattered features from cpufeatures.h; we currently expose none */
  59. #define KF(x) bit(KVM_CPUID_BIT_##x)
  60. int kvm_update_cpuid(struct kvm_vcpu *vcpu)
  61. {
  62. struct kvm_cpuid_entry2 *best;
  63. struct kvm_lapic *apic = vcpu->arch.apic;
  64. best = kvm_find_cpuid_entry(vcpu, 1, 0);
  65. if (!best)
  66. return 0;
  67. /* Update OSXSAVE bit */
  68. if (boot_cpu_has(X86_FEATURE_XSAVE) && best->function == 0x1) {
  69. best->ecx &= ~F(OSXSAVE);
  70. if (kvm_read_cr4_bits(vcpu, X86_CR4_OSXSAVE))
  71. best->ecx |= F(OSXSAVE);
  72. }
  73. best->edx &= ~F(APIC);
  74. if (vcpu->arch.apic_base & MSR_IA32_APICBASE_ENABLE)
  75. best->edx |= F(APIC);
  76. if (apic) {
  77. if (best->ecx & F(TSC_DEADLINE_TIMER))
  78. apic->lapic_timer.timer_mode_mask = 3 << 17;
  79. else
  80. apic->lapic_timer.timer_mode_mask = 1 << 17;
  81. }
  82. best = kvm_find_cpuid_entry(vcpu, 7, 0);
  83. if (best) {
  84. /* Update OSPKE bit */
  85. if (boot_cpu_has(X86_FEATURE_PKU) && best->function == 0x7) {
  86. best->ecx &= ~F(OSPKE);
  87. if (kvm_read_cr4_bits(vcpu, X86_CR4_PKE))
  88. best->ecx |= F(OSPKE);
  89. }
  90. }
  91. best = kvm_find_cpuid_entry(vcpu, 0xD, 0);
  92. if (!best) {
  93. vcpu->arch.guest_supported_xcr0 = 0;
  94. vcpu->arch.guest_xstate_size = XSAVE_HDR_SIZE + XSAVE_HDR_OFFSET;
  95. } else {
  96. vcpu->arch.guest_supported_xcr0 =
  97. (best->eax | ((u64)best->edx << 32)) &
  98. kvm_supported_xcr0();
  99. vcpu->arch.guest_xstate_size = best->ebx =
  100. xstate_required_size(vcpu->arch.xcr0, false);
  101. }
  102. best = kvm_find_cpuid_entry(vcpu, 0xD, 1);
  103. if (best && (best->eax & (F(XSAVES) | F(XSAVEC))))
  104. best->ebx = xstate_required_size(vcpu->arch.xcr0, true);
  105. /*
  106. * The existing code assumes virtual address is 48-bit or 57-bit in the
  107. * canonical address checks; exit if it is ever changed.
  108. */
  109. best = kvm_find_cpuid_entry(vcpu, 0x80000008, 0);
  110. if (best) {
  111. int vaddr_bits = (best->eax & 0xff00) >> 8;
  112. if (vaddr_bits != 48 && vaddr_bits != 57 && vaddr_bits != 0)
  113. return -EINVAL;
  114. }
  115. best = kvm_find_cpuid_entry(vcpu, KVM_CPUID_FEATURES, 0);
  116. if (kvm_hlt_in_guest(vcpu->kvm) && best &&
  117. (best->eax & (1 << KVM_FEATURE_PV_UNHALT)))
  118. best->eax &= ~(1 << KVM_FEATURE_PV_UNHALT);
  119. /* Update physical-address width */
  120. vcpu->arch.maxphyaddr = cpuid_query_maxphyaddr(vcpu);
  121. kvm_mmu_reset_context(vcpu);
  122. kvm_pmu_refresh(vcpu);
  123. return 0;
  124. }
  125. static int is_efer_nx(void)
  126. {
  127. unsigned long long efer = 0;
  128. rdmsrl_safe(MSR_EFER, &efer);
  129. return efer & EFER_NX;
  130. }
  131. static void cpuid_fix_nx_cap(struct kvm_vcpu *vcpu)
  132. {
  133. int i;
  134. struct kvm_cpuid_entry2 *e, *entry;
  135. entry = NULL;
  136. for (i = 0; i < vcpu->arch.cpuid_nent; ++i) {
  137. e = &vcpu->arch.cpuid_entries[i];
  138. if (e->function == 0x80000001) {
  139. entry = e;
  140. break;
  141. }
  142. }
  143. if (entry && (entry->edx & F(NX)) && !is_efer_nx()) {
  144. entry->edx &= ~F(NX);
  145. printk(KERN_INFO "kvm: guest NX capability removed\n");
  146. }
  147. }
  148. int cpuid_query_maxphyaddr(struct kvm_vcpu *vcpu)
  149. {
  150. struct kvm_cpuid_entry2 *best;
  151. best = kvm_find_cpuid_entry(vcpu, 0x80000000, 0);
  152. if (!best || best->eax < 0x80000008)
  153. goto not_found;
  154. best = kvm_find_cpuid_entry(vcpu, 0x80000008, 0);
  155. if (best)
  156. return best->eax & 0xff;
  157. not_found:
  158. return 36;
  159. }
  160. EXPORT_SYMBOL_GPL(cpuid_query_maxphyaddr);
  161. /* when an old userspace process fills a new kernel module */
  162. int kvm_vcpu_ioctl_set_cpuid(struct kvm_vcpu *vcpu,
  163. struct kvm_cpuid *cpuid,
  164. struct kvm_cpuid_entry __user *entries)
  165. {
  166. int r, i;
  167. struct kvm_cpuid_entry *cpuid_entries = NULL;
  168. r = -E2BIG;
  169. if (cpuid->nent > KVM_MAX_CPUID_ENTRIES)
  170. goto out;
  171. r = -ENOMEM;
  172. if (cpuid->nent) {
  173. cpuid_entries =
  174. vmalloc(array_size(sizeof(struct kvm_cpuid_entry),
  175. cpuid->nent));
  176. if (!cpuid_entries)
  177. goto out;
  178. r = -EFAULT;
  179. if (copy_from_user(cpuid_entries, entries,
  180. cpuid->nent * sizeof(struct kvm_cpuid_entry)))
  181. goto out;
  182. }
  183. for (i = 0; i < cpuid->nent; i++) {
  184. vcpu->arch.cpuid_entries[i].function = cpuid_entries[i].function;
  185. vcpu->arch.cpuid_entries[i].eax = cpuid_entries[i].eax;
  186. vcpu->arch.cpuid_entries[i].ebx = cpuid_entries[i].ebx;
  187. vcpu->arch.cpuid_entries[i].ecx = cpuid_entries[i].ecx;
  188. vcpu->arch.cpuid_entries[i].edx = cpuid_entries[i].edx;
  189. vcpu->arch.cpuid_entries[i].index = 0;
  190. vcpu->arch.cpuid_entries[i].flags = 0;
  191. vcpu->arch.cpuid_entries[i].padding[0] = 0;
  192. vcpu->arch.cpuid_entries[i].padding[1] = 0;
  193. vcpu->arch.cpuid_entries[i].padding[2] = 0;
  194. }
  195. vcpu->arch.cpuid_nent = cpuid->nent;
  196. cpuid_fix_nx_cap(vcpu);
  197. kvm_apic_set_version(vcpu);
  198. kvm_x86_ops->cpuid_update(vcpu);
  199. r = kvm_update_cpuid(vcpu);
  200. out:
  201. vfree(cpuid_entries);
  202. return r;
  203. }
  204. int kvm_vcpu_ioctl_set_cpuid2(struct kvm_vcpu *vcpu,
  205. struct kvm_cpuid2 *cpuid,
  206. struct kvm_cpuid_entry2 __user *entries)
  207. {
  208. int r;
  209. r = -E2BIG;
  210. if (cpuid->nent > KVM_MAX_CPUID_ENTRIES)
  211. goto out;
  212. r = -EFAULT;
  213. if (copy_from_user(&vcpu->arch.cpuid_entries, entries,
  214. cpuid->nent * sizeof(struct kvm_cpuid_entry2)))
  215. goto out;
  216. vcpu->arch.cpuid_nent = cpuid->nent;
  217. kvm_apic_set_version(vcpu);
  218. kvm_x86_ops->cpuid_update(vcpu);
  219. r = kvm_update_cpuid(vcpu);
  220. out:
  221. return r;
  222. }
  223. int kvm_vcpu_ioctl_get_cpuid2(struct kvm_vcpu *vcpu,
  224. struct kvm_cpuid2 *cpuid,
  225. struct kvm_cpuid_entry2 __user *entries)
  226. {
  227. int r;
  228. r = -E2BIG;
  229. if (cpuid->nent < vcpu->arch.cpuid_nent)
  230. goto out;
  231. r = -EFAULT;
  232. if (copy_to_user(entries, &vcpu->arch.cpuid_entries,
  233. vcpu->arch.cpuid_nent * sizeof(struct kvm_cpuid_entry2)))
  234. goto out;
  235. return 0;
  236. out:
  237. cpuid->nent = vcpu->arch.cpuid_nent;
  238. return r;
  239. }
  240. static void cpuid_mask(u32 *word, int wordnum)
  241. {
  242. *word &= boot_cpu_data.x86_capability[wordnum];
  243. }
  244. static void do_cpuid_1_ent(struct kvm_cpuid_entry2 *entry, u32 function,
  245. u32 index)
  246. {
  247. entry->function = function;
  248. entry->index = index;
  249. cpuid_count(entry->function, entry->index,
  250. &entry->eax, &entry->ebx, &entry->ecx, &entry->edx);
  251. entry->flags = 0;
  252. }
  253. static int __do_cpuid_ent_emulated(struct kvm_cpuid_entry2 *entry,
  254. u32 func, u32 index, int *nent, int maxnent)
  255. {
  256. switch (func) {
  257. case 0:
  258. entry->eax = 7;
  259. ++*nent;
  260. break;
  261. case 1:
  262. entry->ecx = F(MOVBE);
  263. ++*nent;
  264. break;
  265. case 7:
  266. entry->flags |= KVM_CPUID_FLAG_SIGNIFCANT_INDEX;
  267. if (index == 0)
  268. entry->ecx = F(RDPID);
  269. ++*nent;
  270. default:
  271. break;
  272. }
  273. entry->function = func;
  274. entry->index = index;
  275. return 0;
  276. }
  277. static inline int __do_cpuid_ent(struct kvm_cpuid_entry2 *entry, u32 function,
  278. u32 index, int *nent, int maxnent)
  279. {
  280. int r;
  281. unsigned f_nx = is_efer_nx() ? F(NX) : 0;
  282. #ifdef CONFIG_X86_64
  283. unsigned f_gbpages = (kvm_x86_ops->get_lpage_level() == PT_PDPE_LEVEL)
  284. ? F(GBPAGES) : 0;
  285. unsigned f_lm = F(LM);
  286. #else
  287. unsigned f_gbpages = 0;
  288. unsigned f_lm = 0;
  289. #endif
  290. unsigned f_rdtscp = kvm_x86_ops->rdtscp_supported() ? F(RDTSCP) : 0;
  291. unsigned f_invpcid = kvm_x86_ops->invpcid_supported() ? F(INVPCID) : 0;
  292. unsigned f_mpx = kvm_mpx_supported() ? F(MPX) : 0;
  293. unsigned f_xsaves = kvm_x86_ops->xsaves_supported() ? F(XSAVES) : 0;
  294. unsigned f_umip = kvm_x86_ops->umip_emulated() ? F(UMIP) : 0;
  295. /* cpuid 1.edx */
  296. const u32 kvm_cpuid_1_edx_x86_features =
  297. F(FPU) | F(VME) | F(DE) | F(PSE) |
  298. F(TSC) | F(MSR) | F(PAE) | F(MCE) |
  299. F(CX8) | F(APIC) | 0 /* Reserved */ | F(SEP) |
  300. F(MTRR) | F(PGE) | F(MCA) | F(CMOV) |
  301. F(PAT) | F(PSE36) | 0 /* PSN */ | F(CLFLUSH) |
  302. 0 /* Reserved, DS, ACPI */ | F(MMX) |
  303. F(FXSR) | F(XMM) | F(XMM2) | F(SELFSNOOP) |
  304. 0 /* HTT, TM, Reserved, PBE */;
  305. /* cpuid 0x80000001.edx */
  306. const u32 kvm_cpuid_8000_0001_edx_x86_features =
  307. F(FPU) | F(VME) | F(DE) | F(PSE) |
  308. F(TSC) | F(MSR) | F(PAE) | F(MCE) |
  309. F(CX8) | F(APIC) | 0 /* Reserved */ | F(SYSCALL) |
  310. F(MTRR) | F(PGE) | F(MCA) | F(CMOV) |
  311. F(PAT) | F(PSE36) | 0 /* Reserved */ |
  312. f_nx | 0 /* Reserved */ | F(MMXEXT) | F(MMX) |
  313. F(FXSR) | F(FXSR_OPT) | f_gbpages | f_rdtscp |
  314. 0 /* Reserved */ | f_lm | F(3DNOWEXT) | F(3DNOW);
  315. /* cpuid 1.ecx */
  316. const u32 kvm_cpuid_1_ecx_x86_features =
  317. /* NOTE: MONITOR (and MWAIT) are emulated as NOP,
  318. * but *not* advertised to guests via CPUID ! */
  319. F(XMM3) | F(PCLMULQDQ) | 0 /* DTES64, MONITOR */ |
  320. 0 /* DS-CPL, VMX, SMX, EST */ |
  321. 0 /* TM2 */ | F(SSSE3) | 0 /* CNXT-ID */ | 0 /* Reserved */ |
  322. F(FMA) | F(CX16) | 0 /* xTPR Update, PDCM */ |
  323. F(PCID) | 0 /* Reserved, DCA */ | F(XMM4_1) |
  324. F(XMM4_2) | F(X2APIC) | F(MOVBE) | F(POPCNT) |
  325. 0 /* Reserved*/ | F(AES) | F(XSAVE) | 0 /* OSXSAVE */ | F(AVX) |
  326. F(F16C) | F(RDRAND);
  327. /* cpuid 0x80000001.ecx */
  328. const u32 kvm_cpuid_8000_0001_ecx_x86_features =
  329. F(LAHF_LM) | F(CMP_LEGACY) | 0 /*SVM*/ | 0 /* ExtApicSpace */ |
  330. F(CR8_LEGACY) | F(ABM) | F(SSE4A) | F(MISALIGNSSE) |
  331. F(3DNOWPREFETCH) | F(OSVW) | 0 /* IBS */ | F(XOP) |
  332. 0 /* SKINIT, WDT, LWP */ | F(FMA4) | F(TBM) |
  333. F(TOPOEXT) | F(PERFCTR_CORE);
  334. /* cpuid 0x80000008.ebx */
  335. const u32 kvm_cpuid_8000_0008_ebx_x86_features =
  336. F(AMD_IBPB) | F(AMD_IBRS) | F(AMD_SSBD) | F(VIRT_SSBD) |
  337. F(AMD_SSB_NO);
  338. /* cpuid 0xC0000001.edx */
  339. const u32 kvm_cpuid_C000_0001_edx_x86_features =
  340. F(XSTORE) | F(XSTORE_EN) | F(XCRYPT) | F(XCRYPT_EN) |
  341. F(ACE2) | F(ACE2_EN) | F(PHE) | F(PHE_EN) |
  342. F(PMM) | F(PMM_EN);
  343. /* cpuid 7.0.ebx */
  344. const u32 kvm_cpuid_7_0_ebx_x86_features =
  345. F(FSGSBASE) | F(BMI1) | F(HLE) | F(AVX2) | F(SMEP) |
  346. F(BMI2) | F(ERMS) | f_invpcid | F(RTM) | f_mpx | F(RDSEED) |
  347. F(ADX) | F(SMAP) | F(AVX512IFMA) | F(AVX512F) | F(AVX512PF) |
  348. F(AVX512ER) | F(AVX512CD) | F(CLFLUSHOPT) | F(CLWB) | F(AVX512DQ) |
  349. F(SHA_NI) | F(AVX512BW) | F(AVX512VL);
  350. /* cpuid 0xD.1.eax */
  351. const u32 kvm_cpuid_D_1_eax_x86_features =
  352. F(XSAVEOPT) | F(XSAVEC) | F(XGETBV1) | f_xsaves;
  353. /* cpuid 7.0.ecx*/
  354. const u32 kvm_cpuid_7_0_ecx_x86_features =
  355. F(AVX512VBMI) | F(LA57) | F(PKU) | 0 /*OSPKE*/ |
  356. F(AVX512_VPOPCNTDQ) | F(UMIP) | F(AVX512_VBMI2) | F(GFNI) |
  357. F(VAES) | F(VPCLMULQDQ) | F(AVX512_VNNI) | F(AVX512_BITALG) |
  358. F(CLDEMOTE);
  359. /* cpuid 7.0.edx*/
  360. const u32 kvm_cpuid_7_0_edx_x86_features =
  361. F(AVX512_4VNNIW) | F(AVX512_4FMAPS) | F(SPEC_CTRL) |
  362. F(SPEC_CTRL_SSBD) | F(ARCH_CAPABILITIES);
  363. /* all calls to cpuid_count() should be made on the same cpu */
  364. get_cpu();
  365. r = -E2BIG;
  366. if (*nent >= maxnent)
  367. goto out;
  368. do_cpuid_1_ent(entry, function, index);
  369. ++*nent;
  370. switch (function) {
  371. case 0:
  372. entry->eax = min(entry->eax, (u32)0xd);
  373. break;
  374. case 1:
  375. entry->edx &= kvm_cpuid_1_edx_x86_features;
  376. cpuid_mask(&entry->edx, CPUID_1_EDX);
  377. entry->ecx &= kvm_cpuid_1_ecx_x86_features;
  378. cpuid_mask(&entry->ecx, CPUID_1_ECX);
  379. /* we support x2apic emulation even if host does not support
  380. * it since we emulate x2apic in software */
  381. entry->ecx |= F(X2APIC);
  382. break;
  383. /* function 2 entries are STATEFUL. That is, repeated cpuid commands
  384. * may return different values. This forces us to get_cpu() before
  385. * issuing the first command, and also to emulate this annoying behavior
  386. * in kvm_emulate_cpuid() using KVM_CPUID_FLAG_STATE_READ_NEXT */
  387. case 2: {
  388. int t, times = entry->eax & 0xff;
  389. entry->flags |= KVM_CPUID_FLAG_STATEFUL_FUNC;
  390. entry->flags |= KVM_CPUID_FLAG_STATE_READ_NEXT;
  391. for (t = 1; t < times; ++t) {
  392. if (*nent >= maxnent)
  393. goto out;
  394. do_cpuid_1_ent(&entry[t], function, 0);
  395. entry[t].flags |= KVM_CPUID_FLAG_STATEFUL_FUNC;
  396. ++*nent;
  397. }
  398. break;
  399. }
  400. /* function 4 has additional index. */
  401. case 4: {
  402. int i, cache_type;
  403. entry->flags |= KVM_CPUID_FLAG_SIGNIFCANT_INDEX;
  404. /* read more entries until cache_type is zero */
  405. for (i = 1; ; ++i) {
  406. if (*nent >= maxnent)
  407. goto out;
  408. cache_type = entry[i - 1].eax & 0x1f;
  409. if (!cache_type)
  410. break;
  411. do_cpuid_1_ent(&entry[i], function, i);
  412. entry[i].flags |=
  413. KVM_CPUID_FLAG_SIGNIFCANT_INDEX;
  414. ++*nent;
  415. }
  416. break;
  417. }
  418. case 6: /* Thermal management */
  419. entry->eax = 0x4; /* allow ARAT */
  420. entry->ebx = 0;
  421. entry->ecx = 0;
  422. entry->edx = 0;
  423. break;
  424. case 7: {
  425. entry->flags |= KVM_CPUID_FLAG_SIGNIFCANT_INDEX;
  426. /* Mask ebx against host capability word 9 */
  427. if (index == 0) {
  428. entry->ebx &= kvm_cpuid_7_0_ebx_x86_features;
  429. cpuid_mask(&entry->ebx, CPUID_7_0_EBX);
  430. // TSC_ADJUST is emulated
  431. entry->ebx |= F(TSC_ADJUST);
  432. entry->ecx &= kvm_cpuid_7_0_ecx_x86_features;
  433. cpuid_mask(&entry->ecx, CPUID_7_ECX);
  434. entry->ecx |= f_umip;
  435. /* PKU is not yet implemented for shadow paging. */
  436. if (!tdp_enabled || !boot_cpu_has(X86_FEATURE_OSPKE))
  437. entry->ecx &= ~F(PKU);
  438. entry->edx &= kvm_cpuid_7_0_edx_x86_features;
  439. cpuid_mask(&entry->edx, CPUID_7_EDX);
  440. /*
  441. * We emulate ARCH_CAPABILITIES in software even
  442. * if the host doesn't support it.
  443. */
  444. entry->edx |= F(ARCH_CAPABILITIES);
  445. } else {
  446. entry->ebx = 0;
  447. entry->ecx = 0;
  448. entry->edx = 0;
  449. }
  450. entry->eax = 0;
  451. break;
  452. }
  453. case 9:
  454. break;
  455. case 0xa: { /* Architectural Performance Monitoring */
  456. struct x86_pmu_capability cap;
  457. union cpuid10_eax eax;
  458. union cpuid10_edx edx;
  459. perf_get_x86_pmu_capability(&cap);
  460. /*
  461. * Only support guest architectural pmu on a host
  462. * with architectural pmu.
  463. */
  464. if (!cap.version)
  465. memset(&cap, 0, sizeof(cap));
  466. eax.split.version_id = min(cap.version, 2);
  467. eax.split.num_counters = cap.num_counters_gp;
  468. eax.split.bit_width = cap.bit_width_gp;
  469. eax.split.mask_length = cap.events_mask_len;
  470. edx.split.num_counters_fixed = cap.num_counters_fixed;
  471. edx.split.bit_width_fixed = cap.bit_width_fixed;
  472. edx.split.reserved = 0;
  473. entry->eax = eax.full;
  474. entry->ebx = cap.events_mask;
  475. entry->ecx = 0;
  476. entry->edx = edx.full;
  477. break;
  478. }
  479. /* function 0xb has additional index. */
  480. case 0xb: {
  481. int i, level_type;
  482. entry->flags |= KVM_CPUID_FLAG_SIGNIFCANT_INDEX;
  483. /* read more entries until level_type is zero */
  484. for (i = 1; ; ++i) {
  485. if (*nent >= maxnent)
  486. goto out;
  487. level_type = entry[i - 1].ecx & 0xff00;
  488. if (!level_type)
  489. break;
  490. do_cpuid_1_ent(&entry[i], function, i);
  491. entry[i].flags |=
  492. KVM_CPUID_FLAG_SIGNIFCANT_INDEX;
  493. ++*nent;
  494. }
  495. break;
  496. }
  497. case 0xd: {
  498. int idx, i;
  499. u64 supported = kvm_supported_xcr0();
  500. entry->eax &= supported;
  501. entry->ebx = xstate_required_size(supported, false);
  502. entry->ecx = entry->ebx;
  503. entry->edx &= supported >> 32;
  504. entry->flags |= KVM_CPUID_FLAG_SIGNIFCANT_INDEX;
  505. if (!supported)
  506. break;
  507. for (idx = 1, i = 1; idx < 64; ++idx) {
  508. u64 mask = ((u64)1 << idx);
  509. if (*nent >= maxnent)
  510. goto out;
  511. do_cpuid_1_ent(&entry[i], function, idx);
  512. if (idx == 1) {
  513. entry[i].eax &= kvm_cpuid_D_1_eax_x86_features;
  514. cpuid_mask(&entry[i].eax, CPUID_D_1_EAX);
  515. entry[i].ebx = 0;
  516. if (entry[i].eax & (F(XSAVES)|F(XSAVEC)))
  517. entry[i].ebx =
  518. xstate_required_size(supported,
  519. true);
  520. } else {
  521. if (entry[i].eax == 0 || !(supported & mask))
  522. continue;
  523. if (WARN_ON_ONCE(entry[i].ecx & 1))
  524. continue;
  525. }
  526. entry[i].ecx = 0;
  527. entry[i].edx = 0;
  528. entry[i].flags |=
  529. KVM_CPUID_FLAG_SIGNIFCANT_INDEX;
  530. ++*nent;
  531. ++i;
  532. }
  533. break;
  534. }
  535. case KVM_CPUID_SIGNATURE: {
  536. static const char signature[12] = "KVMKVMKVM\0\0";
  537. const u32 *sigptr = (const u32 *)signature;
  538. entry->eax = KVM_CPUID_FEATURES;
  539. entry->ebx = sigptr[0];
  540. entry->ecx = sigptr[1];
  541. entry->edx = sigptr[2];
  542. break;
  543. }
  544. case KVM_CPUID_FEATURES:
  545. entry->eax = (1 << KVM_FEATURE_CLOCKSOURCE) |
  546. (1 << KVM_FEATURE_NOP_IO_DELAY) |
  547. (1 << KVM_FEATURE_CLOCKSOURCE2) |
  548. (1 << KVM_FEATURE_ASYNC_PF) |
  549. (1 << KVM_FEATURE_PV_EOI) |
  550. (1 << KVM_FEATURE_CLOCKSOURCE_STABLE_BIT) |
  551. (1 << KVM_FEATURE_PV_UNHALT) |
  552. (1 << KVM_FEATURE_PV_TLB_FLUSH) |
  553. (1 << KVM_FEATURE_ASYNC_PF_VMEXIT) |
  554. (1 << KVM_FEATURE_PV_SEND_IPI);
  555. if (sched_info_on())
  556. entry->eax |= (1 << KVM_FEATURE_STEAL_TIME);
  557. entry->ebx = 0;
  558. entry->ecx = 0;
  559. entry->edx = 0;
  560. break;
  561. case 0x80000000:
  562. entry->eax = min(entry->eax, 0x8000001f);
  563. break;
  564. case 0x80000001:
  565. entry->edx &= kvm_cpuid_8000_0001_edx_x86_features;
  566. cpuid_mask(&entry->edx, CPUID_8000_0001_EDX);
  567. entry->ecx &= kvm_cpuid_8000_0001_ecx_x86_features;
  568. cpuid_mask(&entry->ecx, CPUID_8000_0001_ECX);
  569. break;
  570. case 0x80000007: /* Advanced power management */
  571. /* invariant TSC is CPUID.80000007H:EDX[8] */
  572. entry->edx &= (1 << 8);
  573. /* mask against host */
  574. entry->edx &= boot_cpu_data.x86_power;
  575. entry->eax = entry->ebx = entry->ecx = 0;
  576. break;
  577. case 0x80000008: {
  578. unsigned g_phys_as = (entry->eax >> 16) & 0xff;
  579. unsigned virt_as = max((entry->eax >> 8) & 0xff, 48U);
  580. unsigned phys_as = entry->eax & 0xff;
  581. if (!g_phys_as)
  582. g_phys_as = phys_as;
  583. entry->eax = g_phys_as | (virt_as << 8);
  584. entry->edx = 0;
  585. /*
  586. * IBRS, IBPB and VIRT_SSBD aren't necessarily present in
  587. * hardware cpuid
  588. */
  589. if (boot_cpu_has(X86_FEATURE_AMD_IBPB))
  590. entry->ebx |= F(AMD_IBPB);
  591. if (boot_cpu_has(X86_FEATURE_AMD_IBRS))
  592. entry->ebx |= F(AMD_IBRS);
  593. if (boot_cpu_has(X86_FEATURE_VIRT_SSBD))
  594. entry->ebx |= F(VIRT_SSBD);
  595. entry->ebx &= kvm_cpuid_8000_0008_ebx_x86_features;
  596. cpuid_mask(&entry->ebx, CPUID_8000_0008_EBX);
  597. /*
  598. * The preference is to use SPEC CTRL MSR instead of the
  599. * VIRT_SPEC MSR.
  600. */
  601. if (boot_cpu_has(X86_FEATURE_LS_CFG_SSBD) &&
  602. !boot_cpu_has(X86_FEATURE_AMD_SSBD))
  603. entry->ebx |= F(VIRT_SSBD);
  604. break;
  605. }
  606. case 0x80000019:
  607. entry->ecx = entry->edx = 0;
  608. break;
  609. case 0x8000001a:
  610. break;
  611. case 0x8000001d:
  612. break;
  613. /*Add support for Centaur's CPUID instruction*/
  614. case 0xC0000000:
  615. /*Just support up to 0xC0000004 now*/
  616. entry->eax = min(entry->eax, 0xC0000004);
  617. break;
  618. case 0xC0000001:
  619. entry->edx &= kvm_cpuid_C000_0001_edx_x86_features;
  620. cpuid_mask(&entry->edx, CPUID_C000_0001_EDX);
  621. break;
  622. case 3: /* Processor serial number */
  623. case 5: /* MONITOR/MWAIT */
  624. case 0xC0000002:
  625. case 0xC0000003:
  626. case 0xC0000004:
  627. default:
  628. entry->eax = entry->ebx = entry->ecx = entry->edx = 0;
  629. break;
  630. }
  631. kvm_x86_ops->set_supported_cpuid(function, entry);
  632. r = 0;
  633. out:
  634. put_cpu();
  635. return r;
  636. }
  637. static int do_cpuid_ent(struct kvm_cpuid_entry2 *entry, u32 func,
  638. u32 idx, int *nent, int maxnent, unsigned int type)
  639. {
  640. if (type == KVM_GET_EMULATED_CPUID)
  641. return __do_cpuid_ent_emulated(entry, func, idx, nent, maxnent);
  642. return __do_cpuid_ent(entry, func, idx, nent, maxnent);
  643. }
  644. #undef F
  645. struct kvm_cpuid_param {
  646. u32 func;
  647. u32 idx;
  648. bool has_leaf_count;
  649. bool (*qualifier)(const struct kvm_cpuid_param *param);
  650. };
  651. static bool is_centaur_cpu(const struct kvm_cpuid_param *param)
  652. {
  653. return boot_cpu_data.x86_vendor == X86_VENDOR_CENTAUR;
  654. }
  655. static bool sanity_check_entries(struct kvm_cpuid_entry2 __user *entries,
  656. __u32 num_entries, unsigned int ioctl_type)
  657. {
  658. int i;
  659. __u32 pad[3];
  660. if (ioctl_type != KVM_GET_EMULATED_CPUID)
  661. return false;
  662. /*
  663. * We want to make sure that ->padding is being passed clean from
  664. * userspace in case we want to use it for something in the future.
  665. *
  666. * Sadly, this wasn't enforced for KVM_GET_SUPPORTED_CPUID and so we
  667. * have to give ourselves satisfied only with the emulated side. /me
  668. * sheds a tear.
  669. */
  670. for (i = 0; i < num_entries; i++) {
  671. if (copy_from_user(pad, entries[i].padding, sizeof(pad)))
  672. return true;
  673. if (pad[0] || pad[1] || pad[2])
  674. return true;
  675. }
  676. return false;
  677. }
  678. int kvm_dev_ioctl_get_cpuid(struct kvm_cpuid2 *cpuid,
  679. struct kvm_cpuid_entry2 __user *entries,
  680. unsigned int type)
  681. {
  682. struct kvm_cpuid_entry2 *cpuid_entries;
  683. int limit, nent = 0, r = -E2BIG, i;
  684. u32 func;
  685. static const struct kvm_cpuid_param param[] = {
  686. { .func = 0, .has_leaf_count = true },
  687. { .func = 0x80000000, .has_leaf_count = true },
  688. { .func = 0xC0000000, .qualifier = is_centaur_cpu, .has_leaf_count = true },
  689. { .func = KVM_CPUID_SIGNATURE },
  690. { .func = KVM_CPUID_FEATURES },
  691. };
  692. if (cpuid->nent < 1)
  693. goto out;
  694. if (cpuid->nent > KVM_MAX_CPUID_ENTRIES)
  695. cpuid->nent = KVM_MAX_CPUID_ENTRIES;
  696. if (sanity_check_entries(entries, cpuid->nent, type))
  697. return -EINVAL;
  698. r = -ENOMEM;
  699. cpuid_entries = vzalloc(array_size(sizeof(struct kvm_cpuid_entry2),
  700. cpuid->nent));
  701. if (!cpuid_entries)
  702. goto out;
  703. r = 0;
  704. for (i = 0; i < ARRAY_SIZE(param); i++) {
  705. const struct kvm_cpuid_param *ent = &param[i];
  706. if (ent->qualifier && !ent->qualifier(ent))
  707. continue;
  708. r = do_cpuid_ent(&cpuid_entries[nent], ent->func, ent->idx,
  709. &nent, cpuid->nent, type);
  710. if (r)
  711. goto out_free;
  712. if (!ent->has_leaf_count)
  713. continue;
  714. limit = cpuid_entries[nent - 1].eax;
  715. for (func = ent->func + 1; func <= limit && nent < cpuid->nent && r == 0; ++func)
  716. r = do_cpuid_ent(&cpuid_entries[nent], func, ent->idx,
  717. &nent, cpuid->nent, type);
  718. if (r)
  719. goto out_free;
  720. }
  721. r = -EFAULT;
  722. if (copy_to_user(entries, cpuid_entries,
  723. nent * sizeof(struct kvm_cpuid_entry2)))
  724. goto out_free;
  725. cpuid->nent = nent;
  726. r = 0;
  727. out_free:
  728. vfree(cpuid_entries);
  729. out:
  730. return r;
  731. }
  732. static int move_to_next_stateful_cpuid_entry(struct kvm_vcpu *vcpu, int i)
  733. {
  734. struct kvm_cpuid_entry2 *e = &vcpu->arch.cpuid_entries[i];
  735. struct kvm_cpuid_entry2 *ej;
  736. int j = i;
  737. int nent = vcpu->arch.cpuid_nent;
  738. e->flags &= ~KVM_CPUID_FLAG_STATE_READ_NEXT;
  739. /* when no next entry is found, the current entry[i] is reselected */
  740. do {
  741. j = (j + 1) % nent;
  742. ej = &vcpu->arch.cpuid_entries[j];
  743. } while (ej->function != e->function);
  744. ej->flags |= KVM_CPUID_FLAG_STATE_READ_NEXT;
  745. return j;
  746. }
  747. /* find an entry with matching function, matching index (if needed), and that
  748. * should be read next (if it's stateful) */
  749. static int is_matching_cpuid_entry(struct kvm_cpuid_entry2 *e,
  750. u32 function, u32 index)
  751. {
  752. if (e->function != function)
  753. return 0;
  754. if ((e->flags & KVM_CPUID_FLAG_SIGNIFCANT_INDEX) && e->index != index)
  755. return 0;
  756. if ((e->flags & KVM_CPUID_FLAG_STATEFUL_FUNC) &&
  757. !(e->flags & KVM_CPUID_FLAG_STATE_READ_NEXT))
  758. return 0;
  759. return 1;
  760. }
  761. struct kvm_cpuid_entry2 *kvm_find_cpuid_entry(struct kvm_vcpu *vcpu,
  762. u32 function, u32 index)
  763. {
  764. int i;
  765. struct kvm_cpuid_entry2 *best = NULL;
  766. for (i = 0; i < vcpu->arch.cpuid_nent; ++i) {
  767. struct kvm_cpuid_entry2 *e;
  768. e = &vcpu->arch.cpuid_entries[i];
  769. if (is_matching_cpuid_entry(e, function, index)) {
  770. if (e->flags & KVM_CPUID_FLAG_STATEFUL_FUNC)
  771. move_to_next_stateful_cpuid_entry(vcpu, i);
  772. best = e;
  773. break;
  774. }
  775. }
  776. return best;
  777. }
  778. EXPORT_SYMBOL_GPL(kvm_find_cpuid_entry);
  779. /*
  780. * If no match is found, check whether we exceed the vCPU's limit
  781. * and return the content of the highest valid _standard_ leaf instead.
  782. * This is to satisfy the CPUID specification.
  783. */
  784. static struct kvm_cpuid_entry2* check_cpuid_limit(struct kvm_vcpu *vcpu,
  785. u32 function, u32 index)
  786. {
  787. struct kvm_cpuid_entry2 *maxlevel;
  788. maxlevel = kvm_find_cpuid_entry(vcpu, function & 0x80000000, 0);
  789. if (!maxlevel || maxlevel->eax >= function)
  790. return NULL;
  791. if (function & 0x80000000) {
  792. maxlevel = kvm_find_cpuid_entry(vcpu, 0, 0);
  793. if (!maxlevel)
  794. return NULL;
  795. }
  796. return kvm_find_cpuid_entry(vcpu, maxlevel->eax, index);
  797. }
  798. bool kvm_cpuid(struct kvm_vcpu *vcpu, u32 *eax, u32 *ebx,
  799. u32 *ecx, u32 *edx, bool check_limit)
  800. {
  801. u32 function = *eax, index = *ecx;
  802. struct kvm_cpuid_entry2 *best;
  803. bool entry_found = true;
  804. best = kvm_find_cpuid_entry(vcpu, function, index);
  805. if (!best) {
  806. entry_found = false;
  807. if (!check_limit)
  808. goto out;
  809. best = check_cpuid_limit(vcpu, function, index);
  810. }
  811. out:
  812. if (best) {
  813. *eax = best->eax;
  814. *ebx = best->ebx;
  815. *ecx = best->ecx;
  816. *edx = best->edx;
  817. } else
  818. *eax = *ebx = *ecx = *edx = 0;
  819. trace_kvm_cpuid(function, *eax, *ebx, *ecx, *edx, entry_found);
  820. return entry_found;
  821. }
  822. EXPORT_SYMBOL_GPL(kvm_cpuid);
  823. int kvm_emulate_cpuid(struct kvm_vcpu *vcpu)
  824. {
  825. u32 eax, ebx, ecx, edx;
  826. if (cpuid_fault_enabled(vcpu) && !kvm_require_cpl(vcpu, 0))
  827. return 1;
  828. eax = kvm_register_read(vcpu, VCPU_REGS_RAX);
  829. ecx = kvm_register_read(vcpu, VCPU_REGS_RCX);
  830. kvm_cpuid(vcpu, &eax, &ebx, &ecx, &edx, true);
  831. kvm_register_write(vcpu, VCPU_REGS_RAX, eax);
  832. kvm_register_write(vcpu, VCPU_REGS_RBX, ebx);
  833. kvm_register_write(vcpu, VCPU_REGS_RCX, ecx);
  834. kvm_register_write(vcpu, VCPU_REGS_RDX, edx);
  835. return kvm_skip_emulated_instruction(vcpu);
  836. }
  837. EXPORT_SYMBOL_GPL(kvm_emulate_cpuid);