enlighten.c 30 KB

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  1. /*
  2. * Core of Xen paravirt_ops implementation.
  3. *
  4. * This file contains the xen_paravirt_ops structure itself, and the
  5. * implementations for:
  6. * - privileged instructions
  7. * - interrupt flags
  8. * - segment operations
  9. * - booting and setup
  10. *
  11. * Jeremy Fitzhardinge <jeremy@xensource.com>, XenSource Inc, 2007
  12. */
  13. #include <linux/kernel.h>
  14. #include <linux/init.h>
  15. #include <linux/smp.h>
  16. #include <linux/preempt.h>
  17. #include <linux/hardirq.h>
  18. #include <linux/percpu.h>
  19. #include <linux/delay.h>
  20. #include <linux/start_kernel.h>
  21. #include <linux/sched.h>
  22. #include <linux/bootmem.h>
  23. #include <linux/module.h>
  24. #include <linux/mm.h>
  25. #include <linux/page-flags.h>
  26. #include <linux/highmem.h>
  27. #include <linux/console.h>
  28. #include <xen/interface/xen.h>
  29. #include <xen/interface/physdev.h>
  30. #include <xen/interface/vcpu.h>
  31. #include <xen/interface/sched.h>
  32. #include <xen/features.h>
  33. #include <xen/page.h>
  34. #include <asm/paravirt.h>
  35. #include <asm/page.h>
  36. #include <asm/xen/hypercall.h>
  37. #include <asm/xen/hypervisor.h>
  38. #include <asm/fixmap.h>
  39. #include <asm/processor.h>
  40. #include <asm/setup.h>
  41. #include <asm/desc.h>
  42. #include <asm/pgtable.h>
  43. #include <asm/tlbflush.h>
  44. #include <asm/reboot.h>
  45. #include "xen-ops.h"
  46. #include "mmu.h"
  47. #include "multicalls.h"
  48. EXPORT_SYMBOL_GPL(hypercall_page);
  49. DEFINE_PER_CPU(struct vcpu_info *, xen_vcpu);
  50. DEFINE_PER_CPU(struct vcpu_info, xen_vcpu_info);
  51. /*
  52. * Note about cr3 (pagetable base) values:
  53. *
  54. * xen_cr3 contains the current logical cr3 value; it contains the
  55. * last set cr3. This may not be the current effective cr3, because
  56. * its update may be being lazily deferred. However, a vcpu looking
  57. * at its own cr3 can use this value knowing that it everything will
  58. * be self-consistent.
  59. *
  60. * xen_current_cr3 contains the actual vcpu cr3; it is set once the
  61. * hypercall to set the vcpu cr3 is complete (so it may be a little
  62. * out of date, but it will never be set early). If one vcpu is
  63. * looking at another vcpu's cr3 value, it should use this variable.
  64. */
  65. DEFINE_PER_CPU(unsigned long, xen_cr3); /* cr3 stored as physaddr */
  66. DEFINE_PER_CPU(unsigned long, xen_current_cr3); /* actual vcpu cr3 */
  67. struct start_info *xen_start_info;
  68. EXPORT_SYMBOL_GPL(xen_start_info);
  69. struct shared_info xen_dummy_shared_info;
  70. /*
  71. * Point at some empty memory to start with. We map the real shared_info
  72. * page as soon as fixmap is up and running.
  73. */
  74. struct shared_info *HYPERVISOR_shared_info = (void *)&xen_dummy_shared_info;
  75. /*
  76. * Flag to determine whether vcpu info placement is available on all
  77. * VCPUs. We assume it is to start with, and then set it to zero on
  78. * the first failure. This is because it can succeed on some VCPUs
  79. * and not others, since it can involve hypervisor memory allocation,
  80. * or because the guest failed to guarantee all the appropriate
  81. * constraints on all VCPUs (ie buffer can't cross a page boundary).
  82. *
  83. * Note that any particular CPU may be using a placed vcpu structure,
  84. * but we can only optimise if the all are.
  85. *
  86. * 0: not available, 1: available
  87. */
  88. static int have_vcpu_info_placement = 1;
  89. static void __init xen_vcpu_setup(int cpu)
  90. {
  91. struct vcpu_register_vcpu_info info;
  92. int err;
  93. struct vcpu_info *vcpup;
  94. BUG_ON(HYPERVISOR_shared_info == &xen_dummy_shared_info);
  95. per_cpu(xen_vcpu, cpu) = &HYPERVISOR_shared_info->vcpu_info[cpu];
  96. if (!have_vcpu_info_placement)
  97. return; /* already tested, not available */
  98. vcpup = &per_cpu(xen_vcpu_info, cpu);
  99. info.mfn = virt_to_mfn(vcpup);
  100. info.offset = offset_in_page(vcpup);
  101. printk(KERN_DEBUG "trying to map vcpu_info %d at %p, mfn %llx, offset %d\n",
  102. cpu, vcpup, info.mfn, info.offset);
  103. /* Check to see if the hypervisor will put the vcpu_info
  104. structure where we want it, which allows direct access via
  105. a percpu-variable. */
  106. err = HYPERVISOR_vcpu_op(VCPUOP_register_vcpu_info, cpu, &info);
  107. if (err) {
  108. printk(KERN_DEBUG "register_vcpu_info failed: err=%d\n", err);
  109. have_vcpu_info_placement = 0;
  110. } else {
  111. /* This cpu is using the registered vcpu info, even if
  112. later ones fail to. */
  113. per_cpu(xen_vcpu, cpu) = vcpup;
  114. printk(KERN_DEBUG "cpu %d using vcpu_info at %p\n",
  115. cpu, vcpup);
  116. }
  117. }
  118. static void __init xen_banner(void)
  119. {
  120. printk(KERN_INFO "Booting paravirtualized kernel on %s\n",
  121. pv_info.name);
  122. printk(KERN_INFO "Hypervisor signature: %s\n", xen_start_info->magic);
  123. }
  124. static void xen_cpuid(unsigned int *ax, unsigned int *bx,
  125. unsigned int *cx, unsigned int *dx)
  126. {
  127. unsigned maskedx = ~0;
  128. /*
  129. * Mask out inconvenient features, to try and disable as many
  130. * unsupported kernel subsystems as possible.
  131. */
  132. if (*ax == 1)
  133. maskedx = ~((1 << X86_FEATURE_APIC) | /* disable APIC */
  134. (1 << X86_FEATURE_ACPI) | /* disable ACPI */
  135. (1 << X86_FEATURE_MCE) | /* disable MCE */
  136. (1 << X86_FEATURE_MCA) | /* disable MCA */
  137. (1 << X86_FEATURE_ACC)); /* thermal monitoring */
  138. asm(XEN_EMULATE_PREFIX "cpuid"
  139. : "=a" (*ax),
  140. "=b" (*bx),
  141. "=c" (*cx),
  142. "=d" (*dx)
  143. : "0" (*ax), "2" (*cx));
  144. *dx &= maskedx;
  145. }
  146. static void xen_set_debugreg(int reg, unsigned long val)
  147. {
  148. HYPERVISOR_set_debugreg(reg, val);
  149. }
  150. static unsigned long xen_get_debugreg(int reg)
  151. {
  152. return HYPERVISOR_get_debugreg(reg);
  153. }
  154. static unsigned long xen_save_fl(void)
  155. {
  156. struct vcpu_info *vcpu;
  157. unsigned long flags;
  158. vcpu = x86_read_percpu(xen_vcpu);
  159. /* flag has opposite sense of mask */
  160. flags = !vcpu->evtchn_upcall_mask;
  161. /* convert to IF type flag
  162. -0 -> 0x00000000
  163. -1 -> 0xffffffff
  164. */
  165. return (-flags) & X86_EFLAGS_IF;
  166. }
  167. static void xen_restore_fl(unsigned long flags)
  168. {
  169. struct vcpu_info *vcpu;
  170. /* convert from IF type flag */
  171. flags = !(flags & X86_EFLAGS_IF);
  172. /* There's a one instruction preempt window here. We need to
  173. make sure we're don't switch CPUs between getting the vcpu
  174. pointer and updating the mask. */
  175. preempt_disable();
  176. vcpu = x86_read_percpu(xen_vcpu);
  177. vcpu->evtchn_upcall_mask = flags;
  178. preempt_enable_no_resched();
  179. /* Doesn't matter if we get preempted here, because any
  180. pending event will get dealt with anyway. */
  181. if (flags == 0) {
  182. preempt_check_resched();
  183. barrier(); /* unmask then check (avoid races) */
  184. if (unlikely(vcpu->evtchn_upcall_pending))
  185. force_evtchn_callback();
  186. }
  187. }
  188. static void xen_irq_disable(void)
  189. {
  190. /* There's a one instruction preempt window here. We need to
  191. make sure we're don't switch CPUs between getting the vcpu
  192. pointer and updating the mask. */
  193. preempt_disable();
  194. x86_read_percpu(xen_vcpu)->evtchn_upcall_mask = 1;
  195. preempt_enable_no_resched();
  196. }
  197. static void xen_irq_enable(void)
  198. {
  199. struct vcpu_info *vcpu;
  200. /* We don't need to worry about being preempted here, since
  201. either a) interrupts are disabled, so no preemption, or b)
  202. the caller is confused and is trying to re-enable interrupts
  203. on an indeterminate processor. */
  204. vcpu = x86_read_percpu(xen_vcpu);
  205. vcpu->evtchn_upcall_mask = 0;
  206. /* Doesn't matter if we get preempted here, because any
  207. pending event will get dealt with anyway. */
  208. barrier(); /* unmask then check (avoid races) */
  209. if (unlikely(vcpu->evtchn_upcall_pending))
  210. force_evtchn_callback();
  211. }
  212. static void xen_safe_halt(void)
  213. {
  214. /* Blocking includes an implicit local_irq_enable(). */
  215. if (HYPERVISOR_sched_op(SCHEDOP_block, NULL) != 0)
  216. BUG();
  217. }
  218. static void xen_halt(void)
  219. {
  220. if (irqs_disabled())
  221. HYPERVISOR_vcpu_op(VCPUOP_down, smp_processor_id(), NULL);
  222. else
  223. xen_safe_halt();
  224. }
  225. static void xen_leave_lazy(void)
  226. {
  227. paravirt_leave_lazy(paravirt_get_lazy_mode());
  228. xen_mc_flush();
  229. }
  230. static unsigned long xen_store_tr(void)
  231. {
  232. return 0;
  233. }
  234. static void xen_set_ldt(const void *addr, unsigned entries)
  235. {
  236. struct mmuext_op *op;
  237. struct multicall_space mcs = xen_mc_entry(sizeof(*op));
  238. op = mcs.args;
  239. op->cmd = MMUEXT_SET_LDT;
  240. op->arg1.linear_addr = (unsigned long)addr;
  241. op->arg2.nr_ents = entries;
  242. MULTI_mmuext_op(mcs.mc, op, 1, NULL, DOMID_SELF);
  243. xen_mc_issue(PARAVIRT_LAZY_CPU);
  244. }
  245. static void xen_load_gdt(const struct desc_ptr *dtr)
  246. {
  247. unsigned long *frames;
  248. unsigned long va = dtr->address;
  249. unsigned int size = dtr->size + 1;
  250. unsigned pages = (size + PAGE_SIZE - 1) / PAGE_SIZE;
  251. int f;
  252. struct multicall_space mcs;
  253. /* A GDT can be up to 64k in size, which corresponds to 8192
  254. 8-byte entries, or 16 4k pages.. */
  255. BUG_ON(size > 65536);
  256. BUG_ON(va & ~PAGE_MASK);
  257. mcs = xen_mc_entry(sizeof(*frames) * pages);
  258. frames = mcs.args;
  259. for (f = 0; va < dtr->address + size; va += PAGE_SIZE, f++) {
  260. frames[f] = virt_to_mfn(va);
  261. make_lowmem_page_readonly((void *)va);
  262. }
  263. MULTI_set_gdt(mcs.mc, frames, size / sizeof(struct desc_struct));
  264. xen_mc_issue(PARAVIRT_LAZY_CPU);
  265. }
  266. static void load_TLS_descriptor(struct thread_struct *t,
  267. unsigned int cpu, unsigned int i)
  268. {
  269. struct desc_struct *gdt = get_cpu_gdt_table(cpu);
  270. xmaddr_t maddr = virt_to_machine(&gdt[GDT_ENTRY_TLS_MIN+i]);
  271. struct multicall_space mc = __xen_mc_entry(0);
  272. MULTI_update_descriptor(mc.mc, maddr.maddr, t->tls_array[i]);
  273. }
  274. static void xen_load_tls(struct thread_struct *t, unsigned int cpu)
  275. {
  276. xen_mc_batch();
  277. load_TLS_descriptor(t, cpu, 0);
  278. load_TLS_descriptor(t, cpu, 1);
  279. load_TLS_descriptor(t, cpu, 2);
  280. xen_mc_issue(PARAVIRT_LAZY_CPU);
  281. /*
  282. * XXX sleazy hack: If we're being called in a lazy-cpu zone,
  283. * it means we're in a context switch, and %gs has just been
  284. * saved. This means we can zero it out to prevent faults on
  285. * exit from the hypervisor if the next process has no %gs.
  286. * Either way, it has been saved, and the new value will get
  287. * loaded properly. This will go away as soon as Xen has been
  288. * modified to not save/restore %gs for normal hypercalls.
  289. */
  290. if (paravirt_get_lazy_mode() == PARAVIRT_LAZY_CPU)
  291. loadsegment(gs, 0);
  292. }
  293. static void xen_write_ldt_entry(struct desc_struct *dt, int entrynum,
  294. const void *ptr)
  295. {
  296. unsigned long lp = (unsigned long)&dt[entrynum];
  297. xmaddr_t mach_lp = virt_to_machine(lp);
  298. u64 entry = *(u64 *)ptr;
  299. preempt_disable();
  300. xen_mc_flush();
  301. if (HYPERVISOR_update_descriptor(mach_lp.maddr, entry))
  302. BUG();
  303. preempt_enable();
  304. }
  305. static int cvt_gate_to_trap(int vector, u32 low, u32 high,
  306. struct trap_info *info)
  307. {
  308. u8 type, dpl;
  309. type = (high >> 8) & 0x1f;
  310. dpl = (high >> 13) & 3;
  311. if (type != 0xf && type != 0xe)
  312. return 0;
  313. info->vector = vector;
  314. info->address = (high & 0xffff0000) | (low & 0x0000ffff);
  315. info->cs = low >> 16;
  316. info->flags = dpl;
  317. /* interrupt gates clear IF */
  318. if (type == 0xe)
  319. info->flags |= 4;
  320. return 1;
  321. }
  322. /* Locations of each CPU's IDT */
  323. static DEFINE_PER_CPU(struct desc_ptr, idt_desc);
  324. /* Set an IDT entry. If the entry is part of the current IDT, then
  325. also update Xen. */
  326. static void xen_write_idt_entry(gate_desc *dt, int entrynum, const gate_desc *g)
  327. {
  328. unsigned long p = (unsigned long)&dt[entrynum];
  329. unsigned long start, end;
  330. preempt_disable();
  331. start = __get_cpu_var(idt_desc).address;
  332. end = start + __get_cpu_var(idt_desc).size + 1;
  333. xen_mc_flush();
  334. native_write_idt_entry(dt, entrynum, g);
  335. if (p >= start && (p + 8) <= end) {
  336. struct trap_info info[2];
  337. u32 *desc = (u32 *)g;
  338. info[1].address = 0;
  339. if (cvt_gate_to_trap(entrynum, desc[0], desc[1], &info[0]))
  340. if (HYPERVISOR_set_trap_table(info))
  341. BUG();
  342. }
  343. preempt_enable();
  344. }
  345. static void xen_convert_trap_info(const struct desc_ptr *desc,
  346. struct trap_info *traps)
  347. {
  348. unsigned in, out, count;
  349. count = (desc->size+1) / 8;
  350. BUG_ON(count > 256);
  351. for (in = out = 0; in < count; in++) {
  352. const u32 *entry = (u32 *)(desc->address + in * 8);
  353. if (cvt_gate_to_trap(in, entry[0], entry[1], &traps[out]))
  354. out++;
  355. }
  356. traps[out].address = 0;
  357. }
  358. void xen_copy_trap_info(struct trap_info *traps)
  359. {
  360. const struct desc_ptr *desc = &__get_cpu_var(idt_desc);
  361. xen_convert_trap_info(desc, traps);
  362. }
  363. /* Load a new IDT into Xen. In principle this can be per-CPU, so we
  364. hold a spinlock to protect the static traps[] array (static because
  365. it avoids allocation, and saves stack space). */
  366. static void xen_load_idt(const struct desc_ptr *desc)
  367. {
  368. static DEFINE_SPINLOCK(lock);
  369. static struct trap_info traps[257];
  370. spin_lock(&lock);
  371. __get_cpu_var(idt_desc) = *desc;
  372. xen_convert_trap_info(desc, traps);
  373. xen_mc_flush();
  374. if (HYPERVISOR_set_trap_table(traps))
  375. BUG();
  376. spin_unlock(&lock);
  377. }
  378. /* Write a GDT descriptor entry. Ignore LDT descriptors, since
  379. they're handled differently. */
  380. static void xen_write_gdt_entry(struct desc_struct *dt, int entry,
  381. const void *desc, int type)
  382. {
  383. preempt_disable();
  384. switch (type) {
  385. case DESC_LDT:
  386. case DESC_TSS:
  387. /* ignore */
  388. break;
  389. default: {
  390. xmaddr_t maddr = virt_to_machine(&dt[entry]);
  391. xen_mc_flush();
  392. if (HYPERVISOR_update_descriptor(maddr.maddr, *(u64 *)desc))
  393. BUG();
  394. }
  395. }
  396. preempt_enable();
  397. }
  398. static void xen_load_sp0(struct tss_struct *tss,
  399. struct thread_struct *thread)
  400. {
  401. struct multicall_space mcs = xen_mc_entry(0);
  402. MULTI_stack_switch(mcs.mc, __KERNEL_DS, thread->sp0);
  403. xen_mc_issue(PARAVIRT_LAZY_CPU);
  404. }
  405. static void xen_set_iopl_mask(unsigned mask)
  406. {
  407. struct physdev_set_iopl set_iopl;
  408. /* Force the change at ring 0. */
  409. set_iopl.iopl = (mask == 0) ? 1 : (mask >> 12) & 3;
  410. HYPERVISOR_physdev_op(PHYSDEVOP_set_iopl, &set_iopl);
  411. }
  412. static void xen_io_delay(void)
  413. {
  414. }
  415. #ifdef CONFIG_X86_LOCAL_APIC
  416. static u32 xen_apic_read(unsigned long reg)
  417. {
  418. return 0;
  419. }
  420. static void xen_apic_write(unsigned long reg, u32 val)
  421. {
  422. /* Warn to see if there's any stray references */
  423. WARN_ON(1);
  424. }
  425. #endif
  426. static void xen_flush_tlb(void)
  427. {
  428. struct mmuext_op *op;
  429. struct multicall_space mcs;
  430. preempt_disable();
  431. mcs = xen_mc_entry(sizeof(*op));
  432. op = mcs.args;
  433. op->cmd = MMUEXT_TLB_FLUSH_LOCAL;
  434. MULTI_mmuext_op(mcs.mc, op, 1, NULL, DOMID_SELF);
  435. xen_mc_issue(PARAVIRT_LAZY_MMU);
  436. preempt_enable();
  437. }
  438. static void xen_flush_tlb_single(unsigned long addr)
  439. {
  440. struct mmuext_op *op;
  441. struct multicall_space mcs;
  442. preempt_disable();
  443. mcs = xen_mc_entry(sizeof(*op));
  444. op = mcs.args;
  445. op->cmd = MMUEXT_INVLPG_LOCAL;
  446. op->arg1.linear_addr = addr & PAGE_MASK;
  447. MULTI_mmuext_op(mcs.mc, op, 1, NULL, DOMID_SELF);
  448. xen_mc_issue(PARAVIRT_LAZY_MMU);
  449. preempt_enable();
  450. }
  451. static void xen_flush_tlb_others(const cpumask_t *cpus, struct mm_struct *mm,
  452. unsigned long va)
  453. {
  454. struct {
  455. struct mmuext_op op;
  456. cpumask_t mask;
  457. } *args;
  458. cpumask_t cpumask = *cpus;
  459. struct multicall_space mcs;
  460. /*
  461. * A couple of (to be removed) sanity checks:
  462. *
  463. * - current CPU must not be in mask
  464. * - mask must exist :)
  465. */
  466. BUG_ON(cpus_empty(cpumask));
  467. BUG_ON(cpu_isset(smp_processor_id(), cpumask));
  468. BUG_ON(!mm);
  469. /* If a CPU which we ran on has gone down, OK. */
  470. cpus_and(cpumask, cpumask, cpu_online_map);
  471. if (cpus_empty(cpumask))
  472. return;
  473. mcs = xen_mc_entry(sizeof(*args));
  474. args = mcs.args;
  475. args->mask = cpumask;
  476. args->op.arg2.vcpumask = &args->mask;
  477. if (va == TLB_FLUSH_ALL) {
  478. args->op.cmd = MMUEXT_TLB_FLUSH_MULTI;
  479. } else {
  480. args->op.cmd = MMUEXT_INVLPG_MULTI;
  481. args->op.arg1.linear_addr = va;
  482. }
  483. MULTI_mmuext_op(mcs.mc, &args->op, 1, NULL, DOMID_SELF);
  484. xen_mc_issue(PARAVIRT_LAZY_MMU);
  485. }
  486. static void xen_clts(void)
  487. {
  488. struct multicall_space mcs;
  489. mcs = xen_mc_entry(0);
  490. MULTI_fpu_taskswitch(mcs.mc, 0);
  491. xen_mc_issue(PARAVIRT_LAZY_CPU);
  492. }
  493. static void xen_write_cr0(unsigned long cr0)
  494. {
  495. struct multicall_space mcs;
  496. /* Only pay attention to cr0.TS; everything else is
  497. ignored. */
  498. mcs = xen_mc_entry(0);
  499. MULTI_fpu_taskswitch(mcs.mc, (cr0 & X86_CR0_TS) != 0);
  500. xen_mc_issue(PARAVIRT_LAZY_CPU);
  501. }
  502. static void xen_write_cr2(unsigned long cr2)
  503. {
  504. x86_read_percpu(xen_vcpu)->arch.cr2 = cr2;
  505. }
  506. static unsigned long xen_read_cr2(void)
  507. {
  508. return x86_read_percpu(xen_vcpu)->arch.cr2;
  509. }
  510. static unsigned long xen_read_cr2_direct(void)
  511. {
  512. return x86_read_percpu(xen_vcpu_info.arch.cr2);
  513. }
  514. static void xen_write_cr4(unsigned long cr4)
  515. {
  516. cr4 &= ~X86_CR4_PGE;
  517. cr4 &= ~X86_CR4_PSE;
  518. native_write_cr4(cr4);
  519. }
  520. static unsigned long xen_read_cr3(void)
  521. {
  522. return x86_read_percpu(xen_cr3);
  523. }
  524. static void set_current_cr3(void *v)
  525. {
  526. x86_write_percpu(xen_current_cr3, (unsigned long)v);
  527. }
  528. static void xen_write_cr3(unsigned long cr3)
  529. {
  530. struct mmuext_op *op;
  531. struct multicall_space mcs;
  532. unsigned long mfn = pfn_to_mfn(PFN_DOWN(cr3));
  533. BUG_ON(preemptible());
  534. mcs = xen_mc_entry(sizeof(*op)); /* disables interrupts */
  535. /* Update while interrupts are disabled, so its atomic with
  536. respect to ipis */
  537. x86_write_percpu(xen_cr3, cr3);
  538. op = mcs.args;
  539. op->cmd = MMUEXT_NEW_BASEPTR;
  540. op->arg1.mfn = mfn;
  541. MULTI_mmuext_op(mcs.mc, op, 1, NULL, DOMID_SELF);
  542. /* Update xen_update_cr3 once the batch has actually
  543. been submitted. */
  544. xen_mc_callback(set_current_cr3, (void *)cr3);
  545. xen_mc_issue(PARAVIRT_LAZY_CPU); /* interrupts restored */
  546. }
  547. /* Early in boot, while setting up the initial pagetable, assume
  548. everything is pinned. */
  549. static __init void xen_alloc_pte_init(struct mm_struct *mm, u32 pfn)
  550. {
  551. #ifdef CONFIG_FLATMEM
  552. BUG_ON(mem_map); /* should only be used early */
  553. #endif
  554. make_lowmem_page_readonly(__va(PFN_PHYS(pfn)));
  555. }
  556. /* Early release_pte assumes that all pts are pinned, since there's
  557. only init_mm and anything attached to that is pinned. */
  558. static void xen_release_pte_init(u32 pfn)
  559. {
  560. make_lowmem_page_readwrite(__va(PFN_PHYS(pfn)));
  561. }
  562. static void pin_pagetable_pfn(unsigned cmd, unsigned long pfn)
  563. {
  564. struct mmuext_op op;
  565. op.cmd = cmd;
  566. op.arg1.mfn = pfn_to_mfn(pfn);
  567. if (HYPERVISOR_mmuext_op(&op, 1, NULL, DOMID_SELF))
  568. BUG();
  569. }
  570. /* This needs to make sure the new pte page is pinned iff its being
  571. attached to a pinned pagetable. */
  572. static void xen_alloc_ptpage(struct mm_struct *mm, u32 pfn, unsigned level)
  573. {
  574. struct page *page = pfn_to_page(pfn);
  575. if (PagePinned(virt_to_page(mm->pgd))) {
  576. SetPagePinned(page);
  577. if (!PageHighMem(page)) {
  578. make_lowmem_page_readonly(__va(PFN_PHYS(pfn)));
  579. if (level == PT_PTE)
  580. pin_pagetable_pfn(MMUEXT_PIN_L1_TABLE, pfn);
  581. } else
  582. /* make sure there are no stray mappings of
  583. this page */
  584. kmap_flush_unused();
  585. }
  586. }
  587. static void xen_alloc_pte(struct mm_struct *mm, u32 pfn)
  588. {
  589. xen_alloc_ptpage(mm, pfn, PT_PTE);
  590. }
  591. static void xen_alloc_pmd(struct mm_struct *mm, u32 pfn)
  592. {
  593. xen_alloc_ptpage(mm, pfn, PT_PMD);
  594. }
  595. /* This should never happen until we're OK to use struct page */
  596. static void xen_release_ptpage(u32 pfn, unsigned level)
  597. {
  598. struct page *page = pfn_to_page(pfn);
  599. if (PagePinned(page)) {
  600. if (!PageHighMem(page)) {
  601. if (level == PT_PTE)
  602. pin_pagetable_pfn(MMUEXT_UNPIN_TABLE, pfn);
  603. make_lowmem_page_readwrite(__va(PFN_PHYS(pfn)));
  604. }
  605. ClearPagePinned(page);
  606. }
  607. }
  608. static void xen_release_pte(u32 pfn)
  609. {
  610. xen_release_ptpage(pfn, PT_PTE);
  611. }
  612. static void xen_release_pmd(u32 pfn)
  613. {
  614. xen_release_ptpage(pfn, PT_PMD);
  615. }
  616. #ifdef CONFIG_HIGHPTE
  617. static void *xen_kmap_atomic_pte(struct page *page, enum km_type type)
  618. {
  619. pgprot_t prot = PAGE_KERNEL;
  620. if (PagePinned(page))
  621. prot = PAGE_KERNEL_RO;
  622. if (0 && PageHighMem(page))
  623. printk("mapping highpte %lx type %d prot %s\n",
  624. page_to_pfn(page), type,
  625. (unsigned long)pgprot_val(prot) & _PAGE_RW ? "WRITE" : "READ");
  626. return kmap_atomic_prot(page, type, prot);
  627. }
  628. #endif
  629. static __init pte_t mask_rw_pte(pte_t *ptep, pte_t pte)
  630. {
  631. /* If there's an existing pte, then don't allow _PAGE_RW to be set */
  632. if (pte_val_ma(*ptep) & _PAGE_PRESENT)
  633. pte = __pte_ma(((pte_val_ma(*ptep) & _PAGE_RW) | ~_PAGE_RW) &
  634. pte_val_ma(pte));
  635. return pte;
  636. }
  637. /* Init-time set_pte while constructing initial pagetables, which
  638. doesn't allow RO pagetable pages to be remapped RW */
  639. static __init void xen_set_pte_init(pte_t *ptep, pte_t pte)
  640. {
  641. pte = mask_rw_pte(ptep, pte);
  642. xen_set_pte(ptep, pte);
  643. }
  644. static __init void xen_pagetable_setup_start(pgd_t *base)
  645. {
  646. pgd_t *xen_pgd = (pgd_t *)xen_start_info->pt_base;
  647. int i;
  648. /* special set_pte for pagetable initialization */
  649. pv_mmu_ops.set_pte = xen_set_pte_init;
  650. init_mm.pgd = base;
  651. /*
  652. * copy top-level of Xen-supplied pagetable into place. This
  653. * is a stand-in while we copy the pmd pages.
  654. */
  655. memcpy(base, xen_pgd, PTRS_PER_PGD * sizeof(pgd_t));
  656. /*
  657. * For PAE, need to allocate new pmds, rather than
  658. * share Xen's, since Xen doesn't like pmd's being
  659. * shared between address spaces.
  660. */
  661. for (i = 0; i < PTRS_PER_PGD; i++) {
  662. if (pgd_val_ma(xen_pgd[i]) & _PAGE_PRESENT) {
  663. pmd_t *pmd = (pmd_t *)alloc_bootmem_low_pages(PAGE_SIZE);
  664. memcpy(pmd, (void *)pgd_page_vaddr(xen_pgd[i]),
  665. PAGE_SIZE);
  666. make_lowmem_page_readonly(pmd);
  667. set_pgd(&base[i], __pgd(1 + __pa(pmd)));
  668. } else
  669. pgd_clear(&base[i]);
  670. }
  671. /* make sure zero_page is mapped RO so we can use it in pagetables */
  672. make_lowmem_page_readonly(empty_zero_page);
  673. make_lowmem_page_readonly(base);
  674. /*
  675. * Switch to new pagetable. This is done before
  676. * pagetable_init has done anything so that the new pages
  677. * added to the table can be prepared properly for Xen.
  678. */
  679. xen_write_cr3(__pa(base));
  680. /* Unpin initial Xen pagetable */
  681. pin_pagetable_pfn(MMUEXT_UNPIN_TABLE,
  682. PFN_DOWN(__pa(xen_start_info->pt_base)));
  683. }
  684. static __init void setup_shared_info(void)
  685. {
  686. if (!xen_feature(XENFEAT_auto_translated_physmap)) {
  687. unsigned long addr = fix_to_virt(FIX_PARAVIRT_BOOTMAP);
  688. /*
  689. * Create a mapping for the shared info page.
  690. * Should be set_fixmap(), but shared_info is a machine
  691. * address with no corresponding pseudo-phys address.
  692. */
  693. set_pte_mfn(addr,
  694. PFN_DOWN(xen_start_info->shared_info),
  695. PAGE_KERNEL);
  696. HYPERVISOR_shared_info = (struct shared_info *)addr;
  697. } else
  698. HYPERVISOR_shared_info =
  699. (struct shared_info *)__va(xen_start_info->shared_info);
  700. #ifndef CONFIG_SMP
  701. /* In UP this is as good a place as any to set up shared info */
  702. xen_setup_vcpu_info_placement();
  703. #endif
  704. xen_setup_mfn_list_list();
  705. }
  706. static __init void xen_pagetable_setup_done(pgd_t *base)
  707. {
  708. /* This will work as long as patching hasn't happened yet
  709. (which it hasn't) */
  710. pv_mmu_ops.alloc_pte = xen_alloc_pte;
  711. pv_mmu_ops.alloc_pmd = xen_alloc_pmd;
  712. pv_mmu_ops.release_pte = xen_release_pte;
  713. pv_mmu_ops.release_pmd = xen_release_pmd;
  714. pv_mmu_ops.set_pte = xen_set_pte;
  715. setup_shared_info();
  716. /* Actually pin the pagetable down, but we can't set PG_pinned
  717. yet because the page structures don't exist yet. */
  718. pin_pagetable_pfn(MMUEXT_PIN_L3_TABLE, PFN_DOWN(__pa(base)));
  719. }
  720. /* This is called once we have the cpu_possible_map */
  721. void __init xen_setup_vcpu_info_placement(void)
  722. {
  723. int cpu;
  724. for_each_possible_cpu(cpu)
  725. xen_vcpu_setup(cpu);
  726. /* xen_vcpu_setup managed to place the vcpu_info within the
  727. percpu area for all cpus, so make use of it */
  728. if (have_vcpu_info_placement) {
  729. printk(KERN_INFO "Xen: using vcpu_info placement\n");
  730. pv_irq_ops.save_fl = xen_save_fl_direct;
  731. pv_irq_ops.restore_fl = xen_restore_fl_direct;
  732. pv_irq_ops.irq_disable = xen_irq_disable_direct;
  733. pv_irq_ops.irq_enable = xen_irq_enable_direct;
  734. pv_mmu_ops.read_cr2 = xen_read_cr2_direct;
  735. }
  736. }
  737. static unsigned xen_patch(u8 type, u16 clobbers, void *insnbuf,
  738. unsigned long addr, unsigned len)
  739. {
  740. char *start, *end, *reloc;
  741. unsigned ret;
  742. start = end = reloc = NULL;
  743. #define SITE(op, x) \
  744. case PARAVIRT_PATCH(op.x): \
  745. if (have_vcpu_info_placement) { \
  746. start = (char *)xen_##x##_direct; \
  747. end = xen_##x##_direct_end; \
  748. reloc = xen_##x##_direct_reloc; \
  749. } \
  750. goto patch_site
  751. switch (type) {
  752. SITE(pv_irq_ops, irq_enable);
  753. SITE(pv_irq_ops, irq_disable);
  754. SITE(pv_irq_ops, save_fl);
  755. SITE(pv_irq_ops, restore_fl);
  756. #undef SITE
  757. patch_site:
  758. if (start == NULL || (end-start) > len)
  759. goto default_patch;
  760. ret = paravirt_patch_insns(insnbuf, len, start, end);
  761. /* Note: because reloc is assigned from something that
  762. appears to be an array, gcc assumes it's non-null,
  763. but doesn't know its relationship with start and
  764. end. */
  765. if (reloc > start && reloc < end) {
  766. int reloc_off = reloc - start;
  767. long *relocp = (long *)(insnbuf + reloc_off);
  768. long delta = start - (char *)addr;
  769. *relocp += delta;
  770. }
  771. break;
  772. default_patch:
  773. default:
  774. ret = paravirt_patch_default(type, clobbers, insnbuf,
  775. addr, len);
  776. break;
  777. }
  778. return ret;
  779. }
  780. static const struct pv_info xen_info __initdata = {
  781. .paravirt_enabled = 1,
  782. .shared_kernel_pmd = 0,
  783. .name = "Xen",
  784. };
  785. static const struct pv_init_ops xen_init_ops __initdata = {
  786. .patch = xen_patch,
  787. .banner = xen_banner,
  788. .memory_setup = xen_memory_setup,
  789. .arch_setup = xen_arch_setup,
  790. .post_allocator_init = xen_mark_init_mm_pinned,
  791. };
  792. static const struct pv_time_ops xen_time_ops __initdata = {
  793. .time_init = xen_time_init,
  794. .set_wallclock = xen_set_wallclock,
  795. .get_wallclock = xen_get_wallclock,
  796. .get_cpu_khz = xen_cpu_khz,
  797. .sched_clock = xen_sched_clock,
  798. };
  799. static const struct pv_cpu_ops xen_cpu_ops __initdata = {
  800. .cpuid = xen_cpuid,
  801. .set_debugreg = xen_set_debugreg,
  802. .get_debugreg = xen_get_debugreg,
  803. .clts = xen_clts,
  804. .read_cr0 = native_read_cr0,
  805. .write_cr0 = xen_write_cr0,
  806. .read_cr4 = native_read_cr4,
  807. .read_cr4_safe = native_read_cr4_safe,
  808. .write_cr4 = xen_write_cr4,
  809. .wbinvd = native_wbinvd,
  810. .read_msr = native_read_msr_safe,
  811. .write_msr = native_write_msr_safe,
  812. .read_tsc = native_read_tsc,
  813. .read_pmc = native_read_pmc,
  814. .iret = xen_iret,
  815. .irq_enable_syscall_ret = xen_sysexit,
  816. .load_tr_desc = paravirt_nop,
  817. .set_ldt = xen_set_ldt,
  818. .load_gdt = xen_load_gdt,
  819. .load_idt = xen_load_idt,
  820. .load_tls = xen_load_tls,
  821. .store_gdt = native_store_gdt,
  822. .store_idt = native_store_idt,
  823. .store_tr = xen_store_tr,
  824. .write_ldt_entry = xen_write_ldt_entry,
  825. .write_gdt_entry = xen_write_gdt_entry,
  826. .write_idt_entry = xen_write_idt_entry,
  827. .load_sp0 = xen_load_sp0,
  828. .set_iopl_mask = xen_set_iopl_mask,
  829. .io_delay = xen_io_delay,
  830. .lazy_mode = {
  831. .enter = paravirt_enter_lazy_cpu,
  832. .leave = xen_leave_lazy,
  833. },
  834. };
  835. static const struct pv_irq_ops xen_irq_ops __initdata = {
  836. .init_IRQ = xen_init_IRQ,
  837. .save_fl = xen_save_fl,
  838. .restore_fl = xen_restore_fl,
  839. .irq_disable = xen_irq_disable,
  840. .irq_enable = xen_irq_enable,
  841. .safe_halt = xen_safe_halt,
  842. .halt = xen_halt,
  843. };
  844. static const struct pv_apic_ops xen_apic_ops __initdata = {
  845. #ifdef CONFIG_X86_LOCAL_APIC
  846. .apic_write = xen_apic_write,
  847. .apic_write_atomic = xen_apic_write,
  848. .apic_read = xen_apic_read,
  849. .setup_boot_clock = paravirt_nop,
  850. .setup_secondary_clock = paravirt_nop,
  851. .startup_ipi_hook = paravirt_nop,
  852. #endif
  853. };
  854. static const struct pv_mmu_ops xen_mmu_ops __initdata = {
  855. .pagetable_setup_start = xen_pagetable_setup_start,
  856. .pagetable_setup_done = xen_pagetable_setup_done,
  857. .read_cr2 = xen_read_cr2,
  858. .write_cr2 = xen_write_cr2,
  859. .read_cr3 = xen_read_cr3,
  860. .write_cr3 = xen_write_cr3,
  861. .flush_tlb_user = xen_flush_tlb,
  862. .flush_tlb_kernel = xen_flush_tlb,
  863. .flush_tlb_single = xen_flush_tlb_single,
  864. .flush_tlb_others = xen_flush_tlb_others,
  865. .pte_update = paravirt_nop,
  866. .pte_update_defer = paravirt_nop,
  867. .alloc_pte = xen_alloc_pte_init,
  868. .release_pte = xen_release_pte_init,
  869. .alloc_pmd = xen_alloc_pte_init,
  870. .alloc_pmd_clone = paravirt_nop,
  871. .release_pmd = xen_release_pte_init,
  872. #ifdef CONFIG_HIGHPTE
  873. .kmap_atomic_pte = xen_kmap_atomic_pte,
  874. #endif
  875. .set_pte = NULL, /* see xen_pagetable_setup_* */
  876. .set_pte_at = xen_set_pte_at,
  877. .set_pmd = xen_set_pmd,
  878. .pte_val = xen_pte_val,
  879. .pte_flags = native_pte_val,
  880. .pgd_val = xen_pgd_val,
  881. .make_pte = xen_make_pte,
  882. .make_pgd = xen_make_pgd,
  883. .set_pte_atomic = xen_set_pte_atomic,
  884. .set_pte_present = xen_set_pte_at,
  885. .set_pud = xen_set_pud,
  886. .pte_clear = xen_pte_clear,
  887. .pmd_clear = xen_pmd_clear,
  888. .make_pmd = xen_make_pmd,
  889. .pmd_val = xen_pmd_val,
  890. .activate_mm = xen_activate_mm,
  891. .dup_mmap = xen_dup_mmap,
  892. .exit_mmap = xen_exit_mmap,
  893. .lazy_mode = {
  894. .enter = paravirt_enter_lazy_mmu,
  895. .leave = xen_leave_lazy,
  896. },
  897. };
  898. #ifdef CONFIG_SMP
  899. static const struct smp_ops xen_smp_ops __initdata = {
  900. .smp_prepare_boot_cpu = xen_smp_prepare_boot_cpu,
  901. .smp_prepare_cpus = xen_smp_prepare_cpus,
  902. .cpu_up = xen_cpu_up,
  903. .smp_cpus_done = xen_smp_cpus_done,
  904. .smp_send_stop = xen_smp_send_stop,
  905. .smp_send_reschedule = xen_smp_send_reschedule,
  906. .smp_call_function_mask = xen_smp_call_function_mask,
  907. };
  908. #endif /* CONFIG_SMP */
  909. static void xen_reboot(int reason)
  910. {
  911. struct sched_shutdown r = { .reason = reason };
  912. #ifdef CONFIG_SMP
  913. smp_send_stop();
  914. #endif
  915. if (HYPERVISOR_sched_op(SCHEDOP_shutdown, &r))
  916. BUG();
  917. }
  918. static void xen_restart(char *msg)
  919. {
  920. xen_reboot(SHUTDOWN_reboot);
  921. }
  922. static void xen_emergency_restart(void)
  923. {
  924. xen_reboot(SHUTDOWN_reboot);
  925. }
  926. static void xen_machine_halt(void)
  927. {
  928. xen_reboot(SHUTDOWN_poweroff);
  929. }
  930. static void xen_crash_shutdown(struct pt_regs *regs)
  931. {
  932. xen_reboot(SHUTDOWN_crash);
  933. }
  934. static const struct machine_ops __initdata xen_machine_ops = {
  935. .restart = xen_restart,
  936. .halt = xen_machine_halt,
  937. .power_off = xen_machine_halt,
  938. .shutdown = xen_machine_halt,
  939. .crash_shutdown = xen_crash_shutdown,
  940. .emergency_restart = xen_emergency_restart,
  941. };
  942. static void __init xen_reserve_top(void)
  943. {
  944. unsigned long top = HYPERVISOR_VIRT_START;
  945. struct xen_platform_parameters pp;
  946. if (HYPERVISOR_xen_version(XENVER_platform_parameters, &pp) == 0)
  947. top = pp.virt_start;
  948. reserve_top_address(-top + 2 * PAGE_SIZE);
  949. }
  950. /* First C function to be called on Xen boot */
  951. asmlinkage void __init xen_start_kernel(void)
  952. {
  953. pgd_t *pgd;
  954. if (!xen_start_info)
  955. return;
  956. BUG_ON(memcmp(xen_start_info->magic, "xen-3", 5) != 0);
  957. /* Install Xen paravirt ops */
  958. pv_info = xen_info;
  959. pv_init_ops = xen_init_ops;
  960. pv_time_ops = xen_time_ops;
  961. pv_cpu_ops = xen_cpu_ops;
  962. pv_irq_ops = xen_irq_ops;
  963. pv_apic_ops = xen_apic_ops;
  964. pv_mmu_ops = xen_mmu_ops;
  965. machine_ops = xen_machine_ops;
  966. #ifdef CONFIG_SMP
  967. smp_ops = xen_smp_ops;
  968. #endif
  969. xen_setup_features();
  970. /* Get mfn list */
  971. if (!xen_feature(XENFEAT_auto_translated_physmap))
  972. xen_build_dynamic_phys_to_machine();
  973. pgd = (pgd_t *)xen_start_info->pt_base;
  974. init_pg_tables_end = __pa(pgd) + xen_start_info->nr_pt_frames*PAGE_SIZE;
  975. init_mm.pgd = pgd; /* use the Xen pagetables to start */
  976. /* keep using Xen gdt for now; no urgent need to change it */
  977. x86_write_percpu(xen_cr3, __pa(pgd));
  978. x86_write_percpu(xen_current_cr3, __pa(pgd));
  979. /* Don't do the full vcpu_info placement stuff until we have a
  980. possible map and a non-dummy shared_info. */
  981. per_cpu(xen_vcpu, 0) = &HYPERVISOR_shared_info->vcpu_info[0];
  982. pv_info.kernel_rpl = 1;
  983. if (xen_feature(XENFEAT_supervisor_mode_kernel))
  984. pv_info.kernel_rpl = 0;
  985. /* set the limit of our address space */
  986. xen_reserve_top();
  987. /* set up basic CPUID stuff */
  988. cpu_detect(&new_cpu_data);
  989. new_cpu_data.hard_math = 1;
  990. new_cpu_data.x86_capability[0] = cpuid_edx(1);
  991. /* Poke various useful things into boot_params */
  992. boot_params.hdr.type_of_loader = (9 << 4) | 0;
  993. boot_params.hdr.ramdisk_image = xen_start_info->mod_start
  994. ? __pa(xen_start_info->mod_start) : 0;
  995. boot_params.hdr.ramdisk_size = xen_start_info->mod_len;
  996. if (!is_initial_xendomain()) {
  997. add_preferred_console("xenboot", 0, NULL);
  998. add_preferred_console("tty", 0, NULL);
  999. add_preferred_console("hvc", 0, NULL);
  1000. }
  1001. /* Start the world */
  1002. start_kernel();
  1003. }