vmi.c 28 KB

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  1. /*
  2. * VMI specific paravirt-ops implementation
  3. *
  4. * Copyright (C) 2005, VMware, Inc.
  5. *
  6. * This program is free software; you can redistribute it and/or modify
  7. * it under the terms of the GNU General Public License as published by
  8. * the Free Software Foundation; either version 2 of the License, or
  9. * (at your option) any later version.
  10. *
  11. * This program is distributed in the hope that it will be useful, but
  12. * WITHOUT ANY WARRANTY; without even the implied warranty of
  13. * MERCHANTABILITY OR FITNESS FOR A PARTICULAR PURPOSE, GOOD TITLE or
  14. * NON INFRINGEMENT. See the GNU General Public License for more
  15. * details.
  16. *
  17. * You should have received a copy of the GNU General Public License
  18. * along with this program; if not, write to the Free Software
  19. * Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
  20. *
  21. * Send feedback to zach@vmware.com
  22. *
  23. */
  24. #include <linux/module.h>
  25. #include <linux/cpu.h>
  26. #include <linux/bootmem.h>
  27. #include <linux/mm.h>
  28. #include <linux/highmem.h>
  29. #include <linux/sched.h>
  30. #include <asm/vmi.h>
  31. #include <asm/io.h>
  32. #include <asm/fixmap.h>
  33. #include <asm/apicdef.h>
  34. #include <asm/apic.h>
  35. #include <asm/processor.h>
  36. #include <asm/timer.h>
  37. #include <asm/vmi_time.h>
  38. #include <asm/kmap_types.h>
  39. /* Convenient for calling VMI functions indirectly in the ROM */
  40. typedef u32 __attribute__((regparm(1))) (VROMFUNC)(void);
  41. typedef u64 __attribute__((regparm(2))) (VROMLONGFUNC)(int);
  42. #define call_vrom_func(rom,func) \
  43. (((VROMFUNC *)(rom->func))())
  44. #define call_vrom_long_func(rom,func,arg) \
  45. (((VROMLONGFUNC *)(rom->func)) (arg))
  46. static struct vrom_header *vmi_rom;
  47. static int disable_pge;
  48. static int disable_pse;
  49. static int disable_sep;
  50. static int disable_tsc;
  51. static int disable_mtrr;
  52. static int disable_noidle;
  53. static int disable_vmi_timer;
  54. /* Cached VMI operations */
  55. static struct {
  56. void (*cpuid)(void /* non-c */);
  57. void (*_set_ldt)(u32 selector);
  58. void (*set_tr)(u32 selector);
  59. void (*set_kernel_stack)(u32 selector, u32 esp0);
  60. void (*allocate_page)(u32, u32, u32, u32, u32);
  61. void (*release_page)(u32, u32);
  62. void (*set_pte)(pte_t, pte_t *, unsigned);
  63. void (*update_pte)(pte_t *, unsigned);
  64. void (*set_linear_mapping)(int, void *, u32, u32);
  65. void (*_flush_tlb)(int);
  66. void (*set_initial_ap_state)(int, int);
  67. void (*halt)(void);
  68. void (*set_lazy_mode)(int mode);
  69. } vmi_ops;
  70. /* Cached VMI operations */
  71. struct vmi_timer_ops vmi_timer_ops;
  72. /*
  73. * VMI patching routines.
  74. */
  75. #define MNEM_CALL 0xe8
  76. #define MNEM_JMP 0xe9
  77. #define MNEM_RET 0xc3
  78. #define IRQ_PATCH_INT_MASK 0
  79. #define IRQ_PATCH_DISABLE 5
  80. static inline void patch_offset(unsigned char *eip, unsigned char *dest)
  81. {
  82. *(unsigned long *)(eip+1) = dest-eip-5;
  83. }
  84. static unsigned patch_internal(int call, unsigned len, void *insns)
  85. {
  86. u64 reloc;
  87. struct vmi_relocation_info *const rel = (struct vmi_relocation_info *)&reloc;
  88. reloc = call_vrom_long_func(vmi_rom, get_reloc, call);
  89. switch(rel->type) {
  90. case VMI_RELOCATION_CALL_REL:
  91. BUG_ON(len < 5);
  92. *(char *)insns = MNEM_CALL;
  93. patch_offset(insns, rel->eip);
  94. return 5;
  95. case VMI_RELOCATION_JUMP_REL:
  96. BUG_ON(len < 5);
  97. *(char *)insns = MNEM_JMP;
  98. patch_offset(insns, rel->eip);
  99. return 5;
  100. case VMI_RELOCATION_NOP:
  101. /* obliterate the whole thing */
  102. return 0;
  103. case VMI_RELOCATION_NONE:
  104. /* leave native code in place */
  105. break;
  106. default:
  107. BUG();
  108. }
  109. return len;
  110. }
  111. /*
  112. * Apply patch if appropriate, return length of new instruction
  113. * sequence. The callee does nop padding for us.
  114. */
  115. static unsigned vmi_patch(u8 type, u16 clobbers, void *insns, unsigned len)
  116. {
  117. switch (type) {
  118. case PARAVIRT_PATCH(irq_disable):
  119. return patch_internal(VMI_CALL_DisableInterrupts, len, insns);
  120. case PARAVIRT_PATCH(irq_enable):
  121. return patch_internal(VMI_CALL_EnableInterrupts, len, insns);
  122. case PARAVIRT_PATCH(restore_fl):
  123. return patch_internal(VMI_CALL_SetInterruptMask, len, insns);
  124. case PARAVIRT_PATCH(save_fl):
  125. return patch_internal(VMI_CALL_GetInterruptMask, len, insns);
  126. case PARAVIRT_PATCH(iret):
  127. return patch_internal(VMI_CALL_IRET, len, insns);
  128. case PARAVIRT_PATCH(irq_enable_sysexit):
  129. return patch_internal(VMI_CALL_SYSEXIT, len, insns);
  130. default:
  131. break;
  132. }
  133. return len;
  134. }
  135. /* CPUID has non-C semantics, and paravirt-ops API doesn't match hardware ISA */
  136. static void vmi_cpuid(unsigned int *eax, unsigned int *ebx,
  137. unsigned int *ecx, unsigned int *edx)
  138. {
  139. int override = 0;
  140. if (*eax == 1)
  141. override = 1;
  142. asm volatile ("call *%6"
  143. : "=a" (*eax),
  144. "=b" (*ebx),
  145. "=c" (*ecx),
  146. "=d" (*edx)
  147. : "0" (*eax), "2" (*ecx), "r" (vmi_ops.cpuid));
  148. if (override) {
  149. if (disable_pse)
  150. *edx &= ~X86_FEATURE_PSE;
  151. if (disable_pge)
  152. *edx &= ~X86_FEATURE_PGE;
  153. if (disable_sep)
  154. *edx &= ~X86_FEATURE_SEP;
  155. if (disable_tsc)
  156. *edx &= ~X86_FEATURE_TSC;
  157. if (disable_mtrr)
  158. *edx &= ~X86_FEATURE_MTRR;
  159. }
  160. }
  161. static inline void vmi_maybe_load_tls(struct desc_struct *gdt, int nr, struct desc_struct *new)
  162. {
  163. if (gdt[nr].a != new->a || gdt[nr].b != new->b)
  164. write_gdt_entry(gdt, nr, new->a, new->b);
  165. }
  166. static void vmi_load_tls(struct thread_struct *t, unsigned int cpu)
  167. {
  168. struct desc_struct *gdt = get_cpu_gdt_table(cpu);
  169. vmi_maybe_load_tls(gdt, GDT_ENTRY_TLS_MIN + 0, &t->tls_array[0]);
  170. vmi_maybe_load_tls(gdt, GDT_ENTRY_TLS_MIN + 1, &t->tls_array[1]);
  171. vmi_maybe_load_tls(gdt, GDT_ENTRY_TLS_MIN + 2, &t->tls_array[2]);
  172. }
  173. static void vmi_set_ldt(const void *addr, unsigned entries)
  174. {
  175. unsigned cpu = smp_processor_id();
  176. u32 low, high;
  177. pack_descriptor(&low, &high, (unsigned long)addr,
  178. entries * sizeof(struct desc_struct) - 1,
  179. DESCTYPE_LDT, 0);
  180. write_gdt_entry(get_cpu_gdt_table(cpu), GDT_ENTRY_LDT, low, high);
  181. vmi_ops._set_ldt(entries ? GDT_ENTRY_LDT*sizeof(struct desc_struct) : 0);
  182. }
  183. static void vmi_set_tr(void)
  184. {
  185. vmi_ops.set_tr(GDT_ENTRY_TSS*sizeof(struct desc_struct));
  186. }
  187. static void vmi_load_esp0(struct tss_struct *tss,
  188. struct thread_struct *thread)
  189. {
  190. tss->x86_tss.esp0 = thread->esp0;
  191. /* This can only happen when SEP is enabled, no need to test "SEP"arately */
  192. if (unlikely(tss->x86_tss.ss1 != thread->sysenter_cs)) {
  193. tss->x86_tss.ss1 = thread->sysenter_cs;
  194. wrmsr(MSR_IA32_SYSENTER_CS, thread->sysenter_cs, 0);
  195. }
  196. vmi_ops.set_kernel_stack(__KERNEL_DS, tss->x86_tss.esp0);
  197. }
  198. static void vmi_flush_tlb_user(void)
  199. {
  200. vmi_ops._flush_tlb(VMI_FLUSH_TLB);
  201. }
  202. static void vmi_flush_tlb_kernel(void)
  203. {
  204. vmi_ops._flush_tlb(VMI_FLUSH_TLB | VMI_FLUSH_GLOBAL);
  205. }
  206. /* Stub to do nothing at all; used for delays and unimplemented calls */
  207. static void vmi_nop(void)
  208. {
  209. }
  210. #ifdef CONFIG_DEBUG_PAGE_TYPE
  211. #ifdef CONFIG_X86_PAE
  212. #define MAX_BOOT_PTS (2048+4+1)
  213. #else
  214. #define MAX_BOOT_PTS (1024+1)
  215. #endif
  216. /*
  217. * During boot, mem_map is not yet available in paging_init, so stash
  218. * all the boot page allocations here.
  219. */
  220. static struct {
  221. u32 pfn;
  222. int type;
  223. } boot_page_allocations[MAX_BOOT_PTS];
  224. static int num_boot_page_allocations;
  225. static int boot_allocations_applied;
  226. void vmi_apply_boot_page_allocations(void)
  227. {
  228. int i;
  229. BUG_ON(!mem_map);
  230. for (i = 0; i < num_boot_page_allocations; i++) {
  231. struct page *page = pfn_to_page(boot_page_allocations[i].pfn);
  232. page->type = boot_page_allocations[i].type;
  233. page->type = boot_page_allocations[i].type &
  234. ~(VMI_PAGE_ZEROED | VMI_PAGE_CLONE);
  235. }
  236. boot_allocations_applied = 1;
  237. }
  238. static void record_page_type(u32 pfn, int type)
  239. {
  240. BUG_ON(num_boot_page_allocations >= MAX_BOOT_PTS);
  241. boot_page_allocations[num_boot_page_allocations].pfn = pfn;
  242. boot_page_allocations[num_boot_page_allocations].type = type;
  243. num_boot_page_allocations++;
  244. }
  245. static void check_zeroed_page(u32 pfn, int type, struct page *page)
  246. {
  247. u32 *ptr;
  248. int i;
  249. int limit = PAGE_SIZE / sizeof(int);
  250. if (page_address(page))
  251. ptr = (u32 *)page_address(page);
  252. else
  253. ptr = (u32 *)__va(pfn << PAGE_SHIFT);
  254. /*
  255. * When cloning the root in non-PAE mode, only the userspace
  256. * pdes need to be zeroed.
  257. */
  258. if (type & VMI_PAGE_CLONE)
  259. limit = USER_PTRS_PER_PGD;
  260. for (i = 0; i < limit; i++)
  261. BUG_ON(ptr[i]);
  262. }
  263. /*
  264. * We stash the page type into struct page so we can verify the page
  265. * types are used properly.
  266. */
  267. static void vmi_set_page_type(u32 pfn, int type)
  268. {
  269. /* PAE can have multiple roots per page - don't track */
  270. if (PTRS_PER_PMD > 1 && (type & VMI_PAGE_PDP))
  271. return;
  272. if (boot_allocations_applied) {
  273. struct page *page = pfn_to_page(pfn);
  274. if (type != VMI_PAGE_NORMAL)
  275. BUG_ON(page->type);
  276. else
  277. BUG_ON(page->type == VMI_PAGE_NORMAL);
  278. page->type = type & ~(VMI_PAGE_ZEROED | VMI_PAGE_CLONE);
  279. if (type & VMI_PAGE_ZEROED)
  280. check_zeroed_page(pfn, type, page);
  281. } else {
  282. record_page_type(pfn, type);
  283. }
  284. }
  285. static void vmi_check_page_type(u32 pfn, int type)
  286. {
  287. /* PAE can have multiple roots per page - skip checks */
  288. if (PTRS_PER_PMD > 1 && (type & VMI_PAGE_PDP))
  289. return;
  290. type &= ~(VMI_PAGE_ZEROED | VMI_PAGE_CLONE);
  291. if (boot_allocations_applied) {
  292. struct page *page = pfn_to_page(pfn);
  293. BUG_ON((page->type ^ type) & VMI_PAGE_PAE);
  294. BUG_ON(type == VMI_PAGE_NORMAL && page->type);
  295. BUG_ON((type & page->type) == 0);
  296. }
  297. }
  298. #else
  299. #define vmi_set_page_type(p,t) do { } while (0)
  300. #define vmi_check_page_type(p,t) do { } while (0)
  301. #endif
  302. #ifdef CONFIG_HIGHPTE
  303. static void *vmi_kmap_atomic_pte(struct page *page, enum km_type type)
  304. {
  305. void *va = kmap_atomic(page, type);
  306. /*
  307. * Internally, the VMI ROM must map virtual addresses to physical
  308. * addresses for processing MMU updates. By the time MMU updates
  309. * are issued, this information is typically already lost.
  310. * Fortunately, the VMI provides a cache of mapping slots for active
  311. * page tables.
  312. *
  313. * We use slot zero for the linear mapping of physical memory, and
  314. * in HIGHPTE kernels, slot 1 and 2 for KM_PTE0 and KM_PTE1.
  315. *
  316. * args: SLOT VA COUNT PFN
  317. */
  318. BUG_ON(type != KM_PTE0 && type != KM_PTE1);
  319. vmi_ops.set_linear_mapping((type - KM_PTE0)+1, va, 1, page_to_pfn(page));
  320. return va;
  321. }
  322. #endif
  323. static void vmi_allocate_pt(struct mm_struct *mm, u32 pfn)
  324. {
  325. vmi_set_page_type(pfn, VMI_PAGE_L1);
  326. vmi_ops.allocate_page(pfn, VMI_PAGE_L1, 0, 0, 0);
  327. }
  328. static void vmi_allocate_pd(u32 pfn)
  329. {
  330. /*
  331. * This call comes in very early, before mem_map is setup.
  332. * It is called only for swapper_pg_dir, which already has
  333. * data on it.
  334. */
  335. vmi_set_page_type(pfn, VMI_PAGE_L2);
  336. vmi_ops.allocate_page(pfn, VMI_PAGE_L2, 0, 0, 0);
  337. }
  338. static void vmi_allocate_pd_clone(u32 pfn, u32 clonepfn, u32 start, u32 count)
  339. {
  340. vmi_set_page_type(pfn, VMI_PAGE_L2 | VMI_PAGE_CLONE);
  341. vmi_check_page_type(clonepfn, VMI_PAGE_L2);
  342. vmi_ops.allocate_page(pfn, VMI_PAGE_L2 | VMI_PAGE_CLONE, clonepfn, start, count);
  343. }
  344. static void vmi_release_pt(u32 pfn)
  345. {
  346. vmi_ops.release_page(pfn, VMI_PAGE_L1);
  347. vmi_set_page_type(pfn, VMI_PAGE_NORMAL);
  348. }
  349. static void vmi_release_pd(u32 pfn)
  350. {
  351. vmi_ops.release_page(pfn, VMI_PAGE_L2);
  352. vmi_set_page_type(pfn, VMI_PAGE_NORMAL);
  353. }
  354. /*
  355. * Helper macros for MMU update flags. We can defer updates until a flush
  356. * or page invalidation only if the update is to the current address space
  357. * (otherwise, there is no flush). We must check against init_mm, since
  358. * this could be a kernel update, which usually passes init_mm, although
  359. * sometimes this check can be skipped if we know the particular function
  360. * is only called on user mode PTEs. We could change the kernel to pass
  361. * current->active_mm here, but in particular, I was unsure if changing
  362. * mm/highmem.c to do this would still be correct on other architectures.
  363. */
  364. #define is_current_as(mm, mustbeuser) ((mm) == current->active_mm || \
  365. (!mustbeuser && (mm) == &init_mm))
  366. #define vmi_flags_addr(mm, addr, level, user) \
  367. ((level) | (is_current_as(mm, user) ? \
  368. (VMI_PAGE_CURRENT_AS | ((addr) & VMI_PAGE_VA_MASK)) : 0))
  369. #define vmi_flags_addr_defer(mm, addr, level, user) \
  370. ((level) | (is_current_as(mm, user) ? \
  371. (VMI_PAGE_DEFER | VMI_PAGE_CURRENT_AS | ((addr) & VMI_PAGE_VA_MASK)) : 0))
  372. static void vmi_update_pte(struct mm_struct *mm, unsigned long addr, pte_t *ptep)
  373. {
  374. vmi_check_page_type(__pa(ptep) >> PAGE_SHIFT, VMI_PAGE_PTE);
  375. vmi_ops.update_pte(ptep, vmi_flags_addr(mm, addr, VMI_PAGE_PT, 0));
  376. }
  377. static void vmi_update_pte_defer(struct mm_struct *mm, unsigned long addr, pte_t *ptep)
  378. {
  379. vmi_check_page_type(__pa(ptep) >> PAGE_SHIFT, VMI_PAGE_PTE);
  380. vmi_ops.update_pte(ptep, vmi_flags_addr_defer(mm, addr, VMI_PAGE_PT, 0));
  381. }
  382. static void vmi_set_pte(pte_t *ptep, pte_t pte)
  383. {
  384. /* XXX because of set_pmd_pte, this can be called on PT or PD layers */
  385. vmi_check_page_type(__pa(ptep) >> PAGE_SHIFT, VMI_PAGE_PTE | VMI_PAGE_PD);
  386. vmi_ops.set_pte(pte, ptep, VMI_PAGE_PT);
  387. }
  388. static void vmi_set_pte_at(struct mm_struct *mm, unsigned long addr, pte_t *ptep, pte_t pte)
  389. {
  390. vmi_check_page_type(__pa(ptep) >> PAGE_SHIFT, VMI_PAGE_PTE);
  391. vmi_ops.set_pte(pte, ptep, vmi_flags_addr(mm, addr, VMI_PAGE_PT, 0));
  392. }
  393. static void vmi_set_pmd(pmd_t *pmdp, pmd_t pmdval)
  394. {
  395. #ifdef CONFIG_X86_PAE
  396. const pte_t pte = { pmdval.pmd, pmdval.pmd >> 32 };
  397. vmi_check_page_type(__pa(pmdp) >> PAGE_SHIFT, VMI_PAGE_PMD);
  398. #else
  399. const pte_t pte = { pmdval.pud.pgd.pgd };
  400. vmi_check_page_type(__pa(pmdp) >> PAGE_SHIFT, VMI_PAGE_PGD);
  401. #endif
  402. vmi_ops.set_pte(pte, (pte_t *)pmdp, VMI_PAGE_PD);
  403. }
  404. #ifdef CONFIG_X86_PAE
  405. static void vmi_set_pte_atomic(pte_t *ptep, pte_t pteval)
  406. {
  407. /*
  408. * XXX This is called from set_pmd_pte, but at both PT
  409. * and PD layers so the VMI_PAGE_PT flag is wrong. But
  410. * it is only called for large page mapping changes,
  411. * the Xen backend, doesn't support large pages, and the
  412. * ESX backend doesn't depend on the flag.
  413. */
  414. set_64bit((unsigned long long *)ptep,pte_val(pteval));
  415. vmi_ops.update_pte(ptep, VMI_PAGE_PT);
  416. }
  417. static void vmi_set_pte_present(struct mm_struct *mm, unsigned long addr, pte_t *ptep, pte_t pte)
  418. {
  419. vmi_check_page_type(__pa(ptep) >> PAGE_SHIFT, VMI_PAGE_PTE);
  420. vmi_ops.set_pte(pte, ptep, vmi_flags_addr_defer(mm, addr, VMI_PAGE_PT, 1));
  421. }
  422. static void vmi_set_pud(pud_t *pudp, pud_t pudval)
  423. {
  424. /* Um, eww */
  425. const pte_t pte = { pudval.pgd.pgd, pudval.pgd.pgd >> 32 };
  426. vmi_check_page_type(__pa(pudp) >> PAGE_SHIFT, VMI_PAGE_PGD);
  427. vmi_ops.set_pte(pte, (pte_t *)pudp, VMI_PAGE_PDP);
  428. }
  429. static void vmi_pte_clear(struct mm_struct *mm, unsigned long addr, pte_t *ptep)
  430. {
  431. const pte_t pte = { 0 };
  432. vmi_check_page_type(__pa(ptep) >> PAGE_SHIFT, VMI_PAGE_PTE);
  433. vmi_ops.set_pte(pte, ptep, vmi_flags_addr(mm, addr, VMI_PAGE_PT, 0));
  434. }
  435. static void vmi_pmd_clear(pmd_t *pmd)
  436. {
  437. const pte_t pte = { 0 };
  438. vmi_check_page_type(__pa(pmd) >> PAGE_SHIFT, VMI_PAGE_PMD);
  439. vmi_ops.set_pte(pte, (pte_t *)pmd, VMI_PAGE_PD);
  440. }
  441. #endif
  442. #ifdef CONFIG_SMP
  443. static void __devinit
  444. vmi_startup_ipi_hook(int phys_apicid, unsigned long start_eip,
  445. unsigned long start_esp)
  446. {
  447. struct vmi_ap_state ap;
  448. /* Default everything to zero. This is fine for most GPRs. */
  449. memset(&ap, 0, sizeof(struct vmi_ap_state));
  450. ap.gdtr_limit = GDT_SIZE - 1;
  451. ap.gdtr_base = (unsigned long) get_cpu_gdt_table(phys_apicid);
  452. ap.idtr_limit = IDT_ENTRIES * 8 - 1;
  453. ap.idtr_base = (unsigned long) idt_table;
  454. ap.ldtr = 0;
  455. ap.cs = __KERNEL_CS;
  456. ap.eip = (unsigned long) start_eip;
  457. ap.ss = __KERNEL_DS;
  458. ap.esp = (unsigned long) start_esp;
  459. ap.ds = __USER_DS;
  460. ap.es = __USER_DS;
  461. ap.fs = __KERNEL_PERCPU;
  462. ap.gs = 0;
  463. ap.eflags = 0;
  464. #ifdef CONFIG_X86_PAE
  465. /* efer should match BSP efer. */
  466. if (cpu_has_nx) {
  467. unsigned l, h;
  468. rdmsr(MSR_EFER, l, h);
  469. ap.efer = (unsigned long long) h << 32 | l;
  470. }
  471. #endif
  472. ap.cr3 = __pa(swapper_pg_dir);
  473. /* Protected mode, paging, AM, WP, NE, MP. */
  474. ap.cr0 = 0x80050023;
  475. ap.cr4 = mmu_cr4_features;
  476. vmi_ops.set_initial_ap_state((u32)&ap, phys_apicid);
  477. }
  478. #endif
  479. static void vmi_set_lazy_mode(enum paravirt_lazy_mode mode)
  480. {
  481. static DEFINE_PER_CPU(enum paravirt_lazy_mode, lazy_mode);
  482. if (!vmi_ops.set_lazy_mode)
  483. return;
  484. /* Modes should never nest or overlap */
  485. BUG_ON(__get_cpu_var(lazy_mode) && !(mode == PARAVIRT_LAZY_NONE ||
  486. mode == PARAVIRT_LAZY_FLUSH));
  487. if (mode == PARAVIRT_LAZY_FLUSH) {
  488. vmi_ops.set_lazy_mode(0);
  489. vmi_ops.set_lazy_mode(__get_cpu_var(lazy_mode));
  490. } else {
  491. vmi_ops.set_lazy_mode(mode);
  492. __get_cpu_var(lazy_mode) = mode;
  493. }
  494. }
  495. static inline int __init check_vmi_rom(struct vrom_header *rom)
  496. {
  497. struct pci_header *pci;
  498. struct pnp_header *pnp;
  499. const char *manufacturer = "UNKNOWN";
  500. const char *product = "UNKNOWN";
  501. const char *license = "unspecified";
  502. if (rom->rom_signature != 0xaa55)
  503. return 0;
  504. if (rom->vrom_signature != VMI_SIGNATURE)
  505. return 0;
  506. if (rom->api_version_maj != VMI_API_REV_MAJOR ||
  507. rom->api_version_min+1 < VMI_API_REV_MINOR+1) {
  508. printk(KERN_WARNING "VMI: Found mismatched rom version %d.%d\n",
  509. rom->api_version_maj,
  510. rom->api_version_min);
  511. return 0;
  512. }
  513. /*
  514. * Relying on the VMI_SIGNATURE field is not 100% safe, so check
  515. * the PCI header and device type to make sure this is really a
  516. * VMI device.
  517. */
  518. if (!rom->pci_header_offs) {
  519. printk(KERN_WARNING "VMI: ROM does not contain PCI header.\n");
  520. return 0;
  521. }
  522. pci = (struct pci_header *)((char *)rom+rom->pci_header_offs);
  523. if (pci->vendorID != PCI_VENDOR_ID_VMWARE ||
  524. pci->deviceID != PCI_DEVICE_ID_VMWARE_VMI) {
  525. /* Allow it to run... anyways, but warn */
  526. printk(KERN_WARNING "VMI: ROM from unknown manufacturer\n");
  527. }
  528. if (rom->pnp_header_offs) {
  529. pnp = (struct pnp_header *)((char *)rom+rom->pnp_header_offs);
  530. if (pnp->manufacturer_offset)
  531. manufacturer = (const char *)rom+pnp->manufacturer_offset;
  532. if (pnp->product_offset)
  533. product = (const char *)rom+pnp->product_offset;
  534. }
  535. if (rom->license_offs)
  536. license = (char *)rom+rom->license_offs;
  537. printk(KERN_INFO "VMI: Found %s %s, API version %d.%d, ROM version %d.%d\n",
  538. manufacturer, product,
  539. rom->api_version_maj, rom->api_version_min,
  540. pci->rom_version_maj, pci->rom_version_min);
  541. /* Don't allow BSD/MIT here for now because we don't want to end up
  542. with any binary only shim layers */
  543. if (strcmp(license, "GPL") && strcmp(license, "GPL v2")) {
  544. printk(KERN_WARNING "VMI: Non GPL license `%s' found for ROM. Not used.\n",
  545. license);
  546. return 0;
  547. }
  548. return 1;
  549. }
  550. /*
  551. * Probe for the VMI option ROM
  552. */
  553. static inline int __init probe_vmi_rom(void)
  554. {
  555. unsigned long base;
  556. /* VMI ROM is in option ROM area, check signature */
  557. for (base = 0xC0000; base < 0xE0000; base += 2048) {
  558. struct vrom_header *romstart;
  559. romstart = (struct vrom_header *)isa_bus_to_virt(base);
  560. if (check_vmi_rom(romstart)) {
  561. vmi_rom = romstart;
  562. return 1;
  563. }
  564. }
  565. return 0;
  566. }
  567. /*
  568. * VMI setup common to all processors
  569. */
  570. void vmi_bringup(void)
  571. {
  572. /* We must establish the lowmem mapping for MMU ops to work */
  573. if (vmi_ops.set_linear_mapping)
  574. vmi_ops.set_linear_mapping(0, (void *)__PAGE_OFFSET, max_low_pfn, 0);
  575. }
  576. /*
  577. * Return a pointer to a VMI function or NULL if unimplemented
  578. */
  579. static void *vmi_get_function(int vmicall)
  580. {
  581. u64 reloc;
  582. const struct vmi_relocation_info *rel = (struct vmi_relocation_info *)&reloc;
  583. reloc = call_vrom_long_func(vmi_rom, get_reloc, vmicall);
  584. BUG_ON(rel->type == VMI_RELOCATION_JUMP_REL);
  585. if (rel->type == VMI_RELOCATION_CALL_REL)
  586. return (void *)rel->eip;
  587. else
  588. return NULL;
  589. }
  590. /*
  591. * Helper macro for making the VMI paravirt-ops fill code readable.
  592. * For unimplemented operations, fall back to default, unless nop
  593. * is returned by the ROM.
  594. */
  595. #define para_fill(opname, vmicall) \
  596. do { \
  597. reloc = call_vrom_long_func(vmi_rom, get_reloc, \
  598. VMI_CALL_##vmicall); \
  599. if (rel->type == VMI_RELOCATION_CALL_REL) \
  600. paravirt_ops.opname = (void *)rel->eip; \
  601. else if (rel->type == VMI_RELOCATION_NOP) \
  602. paravirt_ops.opname = (void *)vmi_nop; \
  603. else if (rel->type != VMI_RELOCATION_NONE) \
  604. printk(KERN_WARNING "VMI: Unknown relocation " \
  605. "type %d for " #vmicall"\n",\
  606. rel->type); \
  607. } while (0)
  608. /*
  609. * Helper macro for making the VMI paravirt-ops fill code readable.
  610. * For cached operations which do not match the VMI ROM ABI and must
  611. * go through a tranlation stub. Ignore NOPs, since it is not clear
  612. * a NOP * VMI function corresponds to a NOP paravirt-op when the
  613. * functions are not in 1-1 correspondence.
  614. */
  615. #define para_wrap(opname, wrapper, cache, vmicall) \
  616. do { \
  617. reloc = call_vrom_long_func(vmi_rom, get_reloc, \
  618. VMI_CALL_##vmicall); \
  619. BUG_ON(rel->type == VMI_RELOCATION_JUMP_REL); \
  620. if (rel->type == VMI_RELOCATION_CALL_REL) { \
  621. paravirt_ops.opname = wrapper; \
  622. vmi_ops.cache = (void *)rel->eip; \
  623. } \
  624. } while (0)
  625. /*
  626. * Activate the VMI interface and switch into paravirtualized mode
  627. */
  628. static inline int __init activate_vmi(void)
  629. {
  630. short kernel_cs;
  631. u64 reloc;
  632. const struct vmi_relocation_info *rel = (struct vmi_relocation_info *)&reloc;
  633. if (call_vrom_func(vmi_rom, vmi_init) != 0) {
  634. printk(KERN_ERR "VMI ROM failed to initialize!");
  635. return 0;
  636. }
  637. savesegment(cs, kernel_cs);
  638. paravirt_ops.paravirt_enabled = 1;
  639. paravirt_ops.kernel_rpl = kernel_cs & SEGMENT_RPL_MASK;
  640. paravirt_ops.patch = vmi_patch;
  641. paravirt_ops.name = "vmi";
  642. /*
  643. * Many of these operations are ABI compatible with VMI.
  644. * This means we can fill in the paravirt-ops with direct
  645. * pointers into the VMI ROM. If the calling convention for
  646. * these operations changes, this code needs to be updated.
  647. *
  648. * Exceptions
  649. * CPUID paravirt-op uses pointers, not the native ISA
  650. * halt has no VMI equivalent; all VMI halts are "safe"
  651. * no MSR support yet - just trap and emulate. VMI uses the
  652. * same ABI as the native ISA, but Linux wants exceptions
  653. * from bogus MSR read / write handled
  654. * rdpmc is not yet used in Linux
  655. */
  656. /* CPUID is special, so very special it gets wrapped like a present */
  657. para_wrap(cpuid, vmi_cpuid, cpuid, CPUID);
  658. para_fill(clts, CLTS);
  659. para_fill(get_debugreg, GetDR);
  660. para_fill(set_debugreg, SetDR);
  661. para_fill(read_cr0, GetCR0);
  662. para_fill(read_cr2, GetCR2);
  663. para_fill(read_cr3, GetCR3);
  664. para_fill(read_cr4, GetCR4);
  665. para_fill(write_cr0, SetCR0);
  666. para_fill(write_cr2, SetCR2);
  667. para_fill(write_cr3, SetCR3);
  668. para_fill(write_cr4, SetCR4);
  669. para_fill(save_fl, GetInterruptMask);
  670. para_fill(restore_fl, SetInterruptMask);
  671. para_fill(irq_disable, DisableInterrupts);
  672. para_fill(irq_enable, EnableInterrupts);
  673. para_fill(wbinvd, WBINVD);
  674. para_fill(read_tsc, RDTSC);
  675. /* The following we emulate with trap and emulate for now */
  676. /* paravirt_ops.read_msr = vmi_rdmsr */
  677. /* paravirt_ops.write_msr = vmi_wrmsr */
  678. /* paravirt_ops.rdpmc = vmi_rdpmc */
  679. /* TR interface doesn't pass TR value, wrap */
  680. para_wrap(load_tr_desc, vmi_set_tr, set_tr, SetTR);
  681. /* LDT is special, too */
  682. para_wrap(set_ldt, vmi_set_ldt, _set_ldt, SetLDT);
  683. para_fill(load_gdt, SetGDT);
  684. para_fill(load_idt, SetIDT);
  685. para_fill(store_gdt, GetGDT);
  686. para_fill(store_idt, GetIDT);
  687. para_fill(store_tr, GetTR);
  688. paravirt_ops.load_tls = vmi_load_tls;
  689. para_fill(write_ldt_entry, WriteLDTEntry);
  690. para_fill(write_gdt_entry, WriteGDTEntry);
  691. para_fill(write_idt_entry, WriteIDTEntry);
  692. para_wrap(load_esp0, vmi_load_esp0, set_kernel_stack, UpdateKernelStack);
  693. para_fill(set_iopl_mask, SetIOPLMask);
  694. para_fill(io_delay, IODelay);
  695. para_wrap(set_lazy_mode, vmi_set_lazy_mode, set_lazy_mode, SetLazyMode);
  696. /* user and kernel flush are just handled with different flags to FlushTLB */
  697. para_wrap(flush_tlb_user, vmi_flush_tlb_user, _flush_tlb, FlushTLB);
  698. para_wrap(flush_tlb_kernel, vmi_flush_tlb_kernel, _flush_tlb, FlushTLB);
  699. para_fill(flush_tlb_single, InvalPage);
  700. /*
  701. * Until a standard flag format can be agreed on, we need to
  702. * implement these as wrappers in Linux. Get the VMI ROM
  703. * function pointers for the two backend calls.
  704. */
  705. #ifdef CONFIG_X86_PAE
  706. vmi_ops.set_pte = vmi_get_function(VMI_CALL_SetPxELong);
  707. vmi_ops.update_pte = vmi_get_function(VMI_CALL_UpdatePxELong);
  708. #else
  709. vmi_ops.set_pte = vmi_get_function(VMI_CALL_SetPxE);
  710. vmi_ops.update_pte = vmi_get_function(VMI_CALL_UpdatePxE);
  711. #endif
  712. if (vmi_ops.set_pte) {
  713. paravirt_ops.set_pte = vmi_set_pte;
  714. paravirt_ops.set_pte_at = vmi_set_pte_at;
  715. paravirt_ops.set_pmd = vmi_set_pmd;
  716. #ifdef CONFIG_X86_PAE
  717. paravirt_ops.set_pte_atomic = vmi_set_pte_atomic;
  718. paravirt_ops.set_pte_present = vmi_set_pte_present;
  719. paravirt_ops.set_pud = vmi_set_pud;
  720. paravirt_ops.pte_clear = vmi_pte_clear;
  721. paravirt_ops.pmd_clear = vmi_pmd_clear;
  722. #endif
  723. }
  724. if (vmi_ops.update_pte) {
  725. paravirt_ops.pte_update = vmi_update_pte;
  726. paravirt_ops.pte_update_defer = vmi_update_pte_defer;
  727. }
  728. vmi_ops.allocate_page = vmi_get_function(VMI_CALL_AllocatePage);
  729. if (vmi_ops.allocate_page) {
  730. paravirt_ops.alloc_pt = vmi_allocate_pt;
  731. paravirt_ops.alloc_pd = vmi_allocate_pd;
  732. paravirt_ops.alloc_pd_clone = vmi_allocate_pd_clone;
  733. }
  734. vmi_ops.release_page = vmi_get_function(VMI_CALL_ReleasePage);
  735. if (vmi_ops.release_page) {
  736. paravirt_ops.release_pt = vmi_release_pt;
  737. paravirt_ops.release_pd = vmi_release_pd;
  738. }
  739. /* Set linear is needed in all cases */
  740. vmi_ops.set_linear_mapping = vmi_get_function(VMI_CALL_SetLinearMapping);
  741. #ifdef CONFIG_HIGHPTE
  742. if (vmi_ops.set_linear_mapping)
  743. paravirt_ops.kmap_atomic_pte = vmi_kmap_atomic_pte;
  744. #endif
  745. /*
  746. * These MUST always be patched. Don't support indirect jumps
  747. * through these operations, as the VMI interface may use either
  748. * a jump or a call to get to these operations, depending on
  749. * the backend. They are performance critical anyway, so requiring
  750. * a patch is not a big problem.
  751. */
  752. paravirt_ops.irq_enable_sysexit = (void *)0xfeedbab0;
  753. paravirt_ops.iret = (void *)0xbadbab0;
  754. #ifdef CONFIG_SMP
  755. para_wrap(startup_ipi_hook, vmi_startup_ipi_hook, set_initial_ap_state, SetInitialAPState);
  756. #endif
  757. #ifdef CONFIG_X86_LOCAL_APIC
  758. para_fill(apic_read, APICRead);
  759. para_fill(apic_write, APICWrite);
  760. para_fill(apic_write_atomic, APICWrite);
  761. #endif
  762. /*
  763. * Check for VMI timer functionality by probing for a cycle frequency method
  764. */
  765. reloc = call_vrom_long_func(vmi_rom, get_reloc, VMI_CALL_GetCycleFrequency);
  766. if (!disable_vmi_timer && rel->type != VMI_RELOCATION_NONE) {
  767. vmi_timer_ops.get_cycle_frequency = (void *)rel->eip;
  768. vmi_timer_ops.get_cycle_counter =
  769. vmi_get_function(VMI_CALL_GetCycleCounter);
  770. vmi_timer_ops.get_wallclock =
  771. vmi_get_function(VMI_CALL_GetWallclockTime);
  772. vmi_timer_ops.wallclock_updated =
  773. vmi_get_function(VMI_CALL_WallclockUpdated);
  774. vmi_timer_ops.set_alarm = vmi_get_function(VMI_CALL_SetAlarm);
  775. vmi_timer_ops.cancel_alarm =
  776. vmi_get_function(VMI_CALL_CancelAlarm);
  777. paravirt_ops.time_init = vmi_time_init;
  778. paravirt_ops.get_wallclock = vmi_get_wallclock;
  779. paravirt_ops.set_wallclock = vmi_set_wallclock;
  780. #ifdef CONFIG_X86_LOCAL_APIC
  781. paravirt_ops.setup_boot_clock = vmi_time_bsp_init;
  782. paravirt_ops.setup_secondary_clock = vmi_time_ap_init;
  783. #endif
  784. paravirt_ops.sched_clock = vmi_sched_clock;
  785. paravirt_ops.get_cpu_khz = vmi_cpu_khz;
  786. /* We have true wallclock functions; disable CMOS clock sync */
  787. no_sync_cmos_clock = 1;
  788. } else {
  789. disable_noidle = 1;
  790. disable_vmi_timer = 1;
  791. }
  792. para_fill(safe_halt, Halt);
  793. /*
  794. * Alternative instruction rewriting doesn't happen soon enough
  795. * to convert VMI_IRET to a call instead of a jump; so we have
  796. * to do this before IRQs get reenabled. Fortunately, it is
  797. * idempotent.
  798. */
  799. apply_paravirt(__parainstructions, __parainstructions_end);
  800. vmi_bringup();
  801. return 1;
  802. }
  803. #undef para_fill
  804. void __init vmi_init(void)
  805. {
  806. unsigned long flags;
  807. if (!vmi_rom)
  808. probe_vmi_rom();
  809. else
  810. check_vmi_rom(vmi_rom);
  811. /* In case probing for or validating the ROM failed, basil */
  812. if (!vmi_rom)
  813. return;
  814. reserve_top_address(-vmi_rom->virtual_top);
  815. local_irq_save(flags);
  816. activate_vmi();
  817. #ifdef CONFIG_X86_IO_APIC
  818. /* This is virtual hardware; timer routing is wired correctly */
  819. no_timer_check = 1;
  820. #endif
  821. local_irq_restore(flags & X86_EFLAGS_IF);
  822. }
  823. static int __init parse_vmi(char *arg)
  824. {
  825. if (!arg)
  826. return -EINVAL;
  827. if (!strcmp(arg, "disable_pge")) {
  828. clear_bit(X86_FEATURE_PGE, boot_cpu_data.x86_capability);
  829. disable_pge = 1;
  830. } else if (!strcmp(arg, "disable_pse")) {
  831. clear_bit(X86_FEATURE_PSE, boot_cpu_data.x86_capability);
  832. disable_pse = 1;
  833. } else if (!strcmp(arg, "disable_sep")) {
  834. clear_bit(X86_FEATURE_SEP, boot_cpu_data.x86_capability);
  835. disable_sep = 1;
  836. } else if (!strcmp(arg, "disable_tsc")) {
  837. clear_bit(X86_FEATURE_TSC, boot_cpu_data.x86_capability);
  838. disable_tsc = 1;
  839. } else if (!strcmp(arg, "disable_mtrr")) {
  840. clear_bit(X86_FEATURE_MTRR, boot_cpu_data.x86_capability);
  841. disable_mtrr = 1;
  842. } else if (!strcmp(arg, "disable_timer")) {
  843. disable_vmi_timer = 1;
  844. disable_noidle = 1;
  845. } else if (!strcmp(arg, "disable_noidle"))
  846. disable_noidle = 1;
  847. return 0;
  848. }
  849. early_param("vmi", parse_vmi);