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ac5672f8
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1#ifndef _ASM_X86_PARAVIRT_TYPES_H
2#define _ASM_X86_PARAVIRT_TYPES_H
3
4/* Bitmask of what can be clobbered: usually at least eax. */
5#define CLBR_NONE 0
6#define CLBR_EAX (1 << 0)
7#define CLBR_ECX (1 << 1)
8#define CLBR_EDX (1 << 2)
9#define CLBR_EDI (1 << 3)
10
11#ifdef CONFIG_X86_32
12/* CLBR_ANY should match all regs platform has. For i386, that's just it */
13#define CLBR_ANY ((1 << 4) - 1)
14
15#define CLBR_ARG_REGS (CLBR_EAX | CLBR_EDX | CLBR_ECX)
16#define CLBR_RET_REG (CLBR_EAX | CLBR_EDX)
17#define CLBR_SCRATCH (0)
18#else
19#define CLBR_RAX CLBR_EAX
20#define CLBR_RCX CLBR_ECX
21#define CLBR_RDX CLBR_EDX
22#define CLBR_RDI CLBR_EDI
23#define CLBR_RSI (1 << 4)
24#define CLBR_R8 (1 << 5)
25#define CLBR_R9 (1 << 6)
26#define CLBR_R10 (1 << 7)
27#define CLBR_R11 (1 << 8)
28
29#define CLBR_ANY ((1 << 9) - 1)
30
31#define CLBR_ARG_REGS (CLBR_RDI | CLBR_RSI | CLBR_RDX | \
32 CLBR_RCX | CLBR_R8 | CLBR_R9)
33#define CLBR_RET_REG (CLBR_RAX)
34#define CLBR_SCRATCH (CLBR_R10 | CLBR_R11)
35
36#endif /* X86_64 */
37
38#define CLBR_CALLEE_SAVE ((CLBR_ARG_REGS | CLBR_SCRATCH) & ~CLBR_RET_REG)
39
40#ifndef __ASSEMBLY__
41
42#include <asm/desc_defs.h>
43#include <asm/kmap_types.h>
44
45struct page;
46struct thread_struct;
47struct desc_ptr;
48struct tss_struct;
49struct mm_struct;
50struct desc_struct;
51struct task_struct;
52struct cpumask;
53
54/*
55 * Wrapper type for pointers to code which uses the non-standard
56 * calling convention. See PV_CALL_SAVE_REGS_THUNK below.
57 */
58struct paravirt_callee_save {
59 void *func;
60};
61
62/* general info */
63struct pv_info {
64 unsigned int kernel_rpl;
65 int shared_kernel_pmd;
66 int paravirt_enabled;
67 const char *name;
68};
69
70struct pv_init_ops {
71 /*
72 * Patch may replace one of the defined code sequences with
73 * arbitrary code, subject to the same register constraints.
74 * This generally means the code is not free to clobber any
75 * registers other than EAX. The patch function should return
76 * the number of bytes of code generated, as we nop pad the
77 * rest in generic code.
78 */
79 unsigned (*patch)(u8 type, u16 clobber, void *insnbuf,
80 unsigned long addr, unsigned len);
81
82 /* Basic arch-specific setup */
83 void (*arch_setup)(void);
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84 void (*post_allocator_init)(void);
85
86 /* Print a banner to identify the environment */
87 void (*banner)(void);
88};
89
90
91struct pv_lazy_ops {
92 /* Set deferred update mode, used for batching operations. */
93 void (*enter)(void);
94 void (*leave)(void);
95};
96
97struct pv_time_ops {
98 void (*time_init)(void);
99
100 /* Set and set time of day */
101 unsigned long (*get_wallclock)(void);
102 int (*set_wallclock)(unsigned long);
103
104 unsigned long long (*sched_clock)(void);
105 unsigned long (*get_tsc_khz)(void);
106};
107
108struct pv_cpu_ops {
109 /* hooks for various privileged instructions */
110 unsigned long (*get_debugreg)(int regno);
111 void (*set_debugreg)(int regno, unsigned long value);
112
113 void (*clts)(void);
114
115 unsigned long (*read_cr0)(void);
116 void (*write_cr0)(unsigned long);
117
118 unsigned long (*read_cr4_safe)(void);
119 unsigned long (*read_cr4)(void);
120 void (*write_cr4)(unsigned long);
121
122#ifdef CONFIG_X86_64
123 unsigned long (*read_cr8)(void);
124 void (*write_cr8)(unsigned long);
125#endif
126
127 /* Segment descriptor handling */
128 void (*load_tr_desc)(void);
129 void (*load_gdt)(const struct desc_ptr *);
130 void (*load_idt)(const struct desc_ptr *);
131 void (*store_gdt)(struct desc_ptr *);
132 void (*store_idt)(struct desc_ptr *);
133 void (*set_ldt)(const void *desc, unsigned entries);
134 unsigned long (*store_tr)(void);
135 void (*load_tls)(struct thread_struct *t, unsigned int cpu);
136#ifdef CONFIG_X86_64
137 void (*load_gs_index)(unsigned int idx);
138#endif
139 void (*write_ldt_entry)(struct desc_struct *ldt, int entrynum,
140 const void *desc);
141 void (*write_gdt_entry)(struct desc_struct *,
142 int entrynum, const void *desc, int size);
143 void (*write_idt_entry)(gate_desc *,
144 int entrynum, const gate_desc *gate);
145 void (*alloc_ldt)(struct desc_struct *ldt, unsigned entries);
146 void (*free_ldt)(struct desc_struct *ldt, unsigned entries);
147
148 void (*load_sp0)(struct tss_struct *tss, struct thread_struct *t);
149
150 void (*set_iopl_mask)(unsigned mask);
151
152 void (*wbinvd)(void);
153 void (*io_delay)(void);
154
155 /* cpuid emulation, mostly so that caps bits can be disabled */
156 void (*cpuid)(unsigned int *eax, unsigned int *ebx,
157 unsigned int *ecx, unsigned int *edx);
158
159 /* MSR, PMC and TSR operations.
160 err = 0/-EFAULT. wrmsr returns 0/-EFAULT. */
161 u64 (*read_msr_amd)(unsigned int msr, int *err);
162 u64 (*read_msr)(unsigned int msr, int *err);
163 int (*write_msr)(unsigned int msr, unsigned low, unsigned high);
164
165 u64 (*read_tsc)(void);
166 u64 (*read_pmc)(int counter);
167 unsigned long long (*read_tscp)(unsigned int *aux);
168
169 /*
170 * Atomically enable interrupts and return to userspace. This
171 * is only ever used to return to 32-bit processes; in a
172 * 64-bit kernel, it's used for 32-on-64 compat processes, but
173 * never native 64-bit processes. (Jump, not call.)
174 */
175 void (*irq_enable_sysexit)(void);
176
177 /*
178 * Switch to usermode gs and return to 64-bit usermode using
179 * sysret. Only used in 64-bit kernels to return to 64-bit
180 * processes. Usermode register state, including %rsp, must
181 * already be restored.
182 */
183 void (*usergs_sysret64)(void);
184
185 /*
186 * Switch to usermode gs and return to 32-bit usermode using
187 * sysret. Used to return to 32-on-64 compat processes.
188 * Other usermode register state, including %esp, must already
189 * be restored.
190 */
191 void (*usergs_sysret32)(void);
192
193 /* Normal iret. Jump to this with the standard iret stack
194 frame set up. */
195 void (*iret)(void);
196
197 void (*swapgs)(void);
198
199 void (*start_context_switch)(struct task_struct *prev);
200 void (*end_context_switch)(struct task_struct *next);
201};
202
203struct pv_irq_ops {
204 void (*init_IRQ)(void);
205
206 /*
207 * Get/set interrupt state. save_fl and restore_fl are only
208 * expected to use X86_EFLAGS_IF; all other bits
209 * returned from save_fl are undefined, and may be ignored by
210 * restore_fl.
211 *
212 * NOTE: These functions callers expect the callee to preserve
213 * more registers than the standard C calling convention.
214 */
215 struct paravirt_callee_save save_fl;
216 struct paravirt_callee_save restore_fl;
217 struct paravirt_callee_save irq_disable;
218 struct paravirt_callee_save irq_enable;
219
220 void (*safe_halt)(void);
221 void (*halt)(void);
222
223#ifdef CONFIG_X86_64
224 void (*adjust_exception_frame)(void);
225#endif
226};
227
228struct pv_apic_ops {
229#ifdef CONFIG_X86_LOCAL_APIC
230 void (*setup_boot_clock)(void);
231 void (*setup_secondary_clock)(void);
232
233 void (*startup_ipi_hook)(int phys_apicid,
234 unsigned long start_eip,
235 unsigned long start_esp);
236#endif
237};
238
239struct pv_mmu_ops {
240 /*
241 * Called before/after init_mm pagetable setup. setup_start
242 * may reset %cr3, and may pre-install parts of the pagetable;
243 * pagetable setup is expected to preserve any existing
244 * mapping.
245 */
246 void (*pagetable_setup_start)(pgd_t *pgd_base);
247 void (*pagetable_setup_done)(pgd_t *pgd_base);
248
249 unsigned long (*read_cr2)(void);
250 void (*write_cr2)(unsigned long);
251
252 unsigned long (*read_cr3)(void);
253 void (*write_cr3)(unsigned long);
254
255 /*
256 * Hooks for intercepting the creation/use/destruction of an
257 * mm_struct.
258 */
259 void (*activate_mm)(struct mm_struct *prev,
260 struct mm_struct *next);
261 void (*dup_mmap)(struct mm_struct *oldmm,
262 struct mm_struct *mm);
263 void (*exit_mmap)(struct mm_struct *mm);
264
265
266 /* TLB operations */
267 void (*flush_tlb_user)(void);
268 void (*flush_tlb_kernel)(void);
269 void (*flush_tlb_single)(unsigned long addr);
270 void (*flush_tlb_others)(const struct cpumask *cpus,
271 struct mm_struct *mm,
272 unsigned long va);
273
274 /* Hooks for allocating and freeing a pagetable top-level */
275 int (*pgd_alloc)(struct mm_struct *mm);
276 void (*pgd_free)(struct mm_struct *mm, pgd_t *pgd);
277
278 /*
279 * Hooks for allocating/releasing pagetable pages when they're
280 * attached to a pagetable
281 */
282 void (*alloc_pte)(struct mm_struct *mm, unsigned long pfn);
283 void (*alloc_pmd)(struct mm_struct *mm, unsigned long pfn);
284 void (*alloc_pmd_clone)(unsigned long pfn, unsigned long clonepfn, unsigned long start, unsigned long count);
285 void (*alloc_pud)(struct mm_struct *mm, unsigned long pfn);
286 void (*release_pte)(unsigned long pfn);
287 void (*release_pmd)(unsigned long pfn);
288 void (*release_pud)(unsigned long pfn);
289
290 /* Pagetable manipulation functions */
291 void (*set_pte)(pte_t *ptep, pte_t pteval);
292 void (*set_pte_at)(struct mm_struct *mm, unsigned long addr,
293 pte_t *ptep, pte_t pteval);
294 void (*set_pmd)(pmd_t *pmdp, pmd_t pmdval);
295 void (*pte_update)(struct mm_struct *mm, unsigned long addr,
296 pte_t *ptep);
297 void (*pte_update_defer)(struct mm_struct *mm,
298 unsigned long addr, pte_t *ptep);
299
300 pte_t (*ptep_modify_prot_start)(struct mm_struct *mm, unsigned long addr,
301 pte_t *ptep);
302 void (*ptep_modify_prot_commit)(struct mm_struct *mm, unsigned long addr,
303 pte_t *ptep, pte_t pte);
304
305 struct paravirt_callee_save pte_val;
306 struct paravirt_callee_save make_pte;
307
308 struct paravirt_callee_save pgd_val;
309 struct paravirt_callee_save make_pgd;
310
311#if PAGETABLE_LEVELS >= 3
312#ifdef CONFIG_X86_PAE
313 void (*set_pte_atomic)(pte_t *ptep, pte_t pteval);
314 void (*pte_clear)(struct mm_struct *mm, unsigned long addr,
315 pte_t *ptep);
316 void (*pmd_clear)(pmd_t *pmdp);
317
318#endif /* CONFIG_X86_PAE */
319
320 void (*set_pud)(pud_t *pudp, pud_t pudval);
321
322 struct paravirt_callee_save pmd_val;
323 struct paravirt_callee_save make_pmd;
324
325#if PAGETABLE_LEVELS == 4
326 struct paravirt_callee_save pud_val;
327 struct paravirt_callee_save make_pud;
328
329 void (*set_pgd)(pgd_t *pudp, pgd_t pgdval);
330#endif /* PAGETABLE_LEVELS == 4 */
331#endif /* PAGETABLE_LEVELS >= 3 */
332
333#ifdef CONFIG_HIGHPTE
334 void *(*kmap_atomic_pte)(struct page *page, enum km_type type);
335#endif
336
337 struct pv_lazy_ops lazy_mode;
338
339 /* dom0 ops */
340
341 /* Sometimes the physical address is a pfn, and sometimes its
342 an mfn. We can tell which is which from the index. */
343 void (*set_fixmap)(unsigned /* enum fixed_addresses */ idx,
344 phys_addr_t phys, pgprot_t flags);
345};
346
347struct raw_spinlock;
348struct pv_lock_ops {
349 int (*spin_is_locked)(struct raw_spinlock *lock);
350 int (*spin_is_contended)(struct raw_spinlock *lock);
351 void (*spin_lock)(struct raw_spinlock *lock);
352 void (*spin_lock_flags)(struct raw_spinlock *lock, unsigned long flags);
353 int (*spin_trylock)(struct raw_spinlock *lock);
354 void (*spin_unlock)(struct raw_spinlock *lock);
355};
356
357/* This contains all the paravirt structures: we get a convenient
358 * number for each function using the offset which we use to indicate
359 * what to patch. */
360struct paravirt_patch_template {
361 struct pv_init_ops pv_init_ops;
362 struct pv_time_ops pv_time_ops;
363 struct pv_cpu_ops pv_cpu_ops;
364 struct pv_irq_ops pv_irq_ops;
365 struct pv_apic_ops pv_apic_ops;
366 struct pv_mmu_ops pv_mmu_ops;
367 struct pv_lock_ops pv_lock_ops;
368};
369
370extern struct pv_info pv_info;
371extern struct pv_init_ops pv_init_ops;
372extern struct pv_time_ops pv_time_ops;
373extern struct pv_cpu_ops pv_cpu_ops;
374extern struct pv_irq_ops pv_irq_ops;
375extern struct pv_apic_ops pv_apic_ops;
376extern struct pv_mmu_ops pv_mmu_ops;
377extern struct pv_lock_ops pv_lock_ops;
378
379#define PARAVIRT_PATCH(x) \
380 (offsetof(struct paravirt_patch_template, x) / sizeof(void *))
381
382#define paravirt_type(op) \
383 [paravirt_typenum] "i" (PARAVIRT_PATCH(op)), \
384 [paravirt_opptr] "i" (&(op))
385#define paravirt_clobber(clobber) \
386 [paravirt_clobber] "i" (clobber)
387
388/*
389 * Generate some code, and mark it as patchable by the
390 * apply_paravirt() alternate instruction patcher.
391 */
392#define _paravirt_alt(insn_string, type, clobber) \
393 "771:\n\t" insn_string "\n" "772:\n" \
394 ".pushsection .parainstructions,\"a\"\n" \
395 _ASM_ALIGN "\n" \
396 _ASM_PTR " 771b\n" \
397 " .byte " type "\n" \
398 " .byte 772b-771b\n" \
399 " .short " clobber "\n" \
400 ".popsection\n"
401
402/* Generate patchable code, with the default asm parameters. */
403#define paravirt_alt(insn_string) \
404 _paravirt_alt(insn_string, "%c[paravirt_typenum]", "%c[paravirt_clobber]")
405
406/* Simple instruction patching code. */
407#define DEF_NATIVE(ops, name, code) \
408 extern const char start_##ops##_##name[], end_##ops##_##name[]; \
409 asm("start_" #ops "_" #name ": " code "; end_" #ops "_" #name ":")
410
411unsigned paravirt_patch_nop(void);
412unsigned paravirt_patch_ident_32(void *insnbuf, unsigned len);
413unsigned paravirt_patch_ident_64(void *insnbuf, unsigned len);
414unsigned paravirt_patch_ignore(unsigned len);
415unsigned paravirt_patch_call(void *insnbuf,
416 const void *target, u16 tgt_clobbers,
417 unsigned long addr, u16 site_clobbers,
418 unsigned len);
419unsigned paravirt_patch_jmp(void *insnbuf, const void *target,
420 unsigned long addr, unsigned len);
421unsigned paravirt_patch_default(u8 type, u16 clobbers, void *insnbuf,
422 unsigned long addr, unsigned len);
423
424unsigned paravirt_patch_insns(void *insnbuf, unsigned len,
425 const char *start, const char *end);
426
427unsigned native_patch(u8 type, u16 clobbers, void *ibuf,
428 unsigned long addr, unsigned len);
429
430int paravirt_disable_iospace(void);
431
432/*
433 * This generates an indirect call based on the operation type number.
434 * The type number, computed in PARAVIRT_PATCH, is derived from the
435 * offset into the paravirt_patch_template structure, and can therefore be
436 * freely converted back into a structure offset.
437 */
438#define PARAVIRT_CALL "call *%c[paravirt_opptr];"
439
440/*
441 * These macros are intended to wrap calls through one of the paravirt
442 * ops structs, so that they can be later identified and patched at
443 * runtime.
444 *
445 * Normally, a call to a pv_op function is a simple indirect call:
446 * (pv_op_struct.operations)(args...).
447 *
448 * Unfortunately, this is a relatively slow operation for modern CPUs,
449 * because it cannot necessarily determine what the destination
450 * address is. In this case, the address is a runtime constant, so at
451 * the very least we can patch the call to e a simple direct call, or
452 * ideally, patch an inline implementation into the callsite. (Direct
453 * calls are essentially free, because the call and return addresses
454 * are completely predictable.)
455 *
456 * For i386, these macros rely on the standard gcc "regparm(3)" calling
457 * convention, in which the first three arguments are placed in %eax,
458 * %edx, %ecx (in that order), and the remaining arguments are placed
459 * on the stack. All caller-save registers (eax,edx,ecx) are expected
460 * to be modified (either clobbered or used for return values).
461 * X86_64, on the other hand, already specifies a register-based calling
462 * conventions, returning at %rax, with parameteres going on %rdi, %rsi,
463 * %rdx, and %rcx. Note that for this reason, x86_64 does not need any
464 * special handling for dealing with 4 arguments, unlike i386.
465 * However, x86_64 also have to clobber all caller saved registers, which
466 * unfortunately, are quite a bit (r8 - r11)
467 *
468 * The call instruction itself is marked by placing its start address
469 * and size into the .parainstructions section, so that
470 * apply_paravirt() in arch/i386/kernel/alternative.c can do the
471 * appropriate patching under the control of the backend pv_init_ops
472 * implementation.
473 *
474 * Unfortunately there's no way to get gcc to generate the args setup
475 * for the call, and then allow the call itself to be generated by an
476 * inline asm. Because of this, we must do the complete arg setup and
477 * return value handling from within these macros. This is fairly
478 * cumbersome.
479 *
480 * There are 5 sets of PVOP_* macros for dealing with 0-4 arguments.
481 * It could be extended to more arguments, but there would be little
482 * to be gained from that. For each number of arguments, there are
483 * the two VCALL and CALL variants for void and non-void functions.
484 *
485 * When there is a return value, the invoker of the macro must specify
486 * the return type. The macro then uses sizeof() on that type to
487 * determine whether its a 32 or 64 bit value, and places the return
488 * in the right register(s) (just %eax for 32-bit, and %edx:%eax for
489 * 64-bit). For x86_64 machines, it just returns at %rax regardless of
490 * the return value size.
491 *
492 * 64-bit arguments are passed as a pair of adjacent 32-bit arguments
493 * i386 also passes 64-bit arguments as a pair of adjacent 32-bit arguments
494 * in low,high order
495 *
496 * Small structures are passed and returned in registers. The macro
497 * calling convention can't directly deal with this, so the wrapper
498 * functions must do this.
499 *
500 * These PVOP_* macros are only defined within this header. This
501 * means that all uses must be wrapped in inline functions. This also
502 * makes sure the incoming and outgoing types are always correct.
503 */
504#ifdef CONFIG_X86_32
505#define PVOP_VCALL_ARGS \
506 unsigned long __eax = __eax, __edx = __edx, __ecx = __ecx
507#define PVOP_CALL_ARGS PVOP_VCALL_ARGS
508
509#define PVOP_CALL_ARG1(x) "a" ((unsigned long)(x))
510#define PVOP_CALL_ARG2(x) "d" ((unsigned long)(x))
511#define PVOP_CALL_ARG3(x) "c" ((unsigned long)(x))
512
513#define PVOP_VCALL_CLOBBERS "=a" (__eax), "=d" (__edx), \
514 "=c" (__ecx)
515#define PVOP_CALL_CLOBBERS PVOP_VCALL_CLOBBERS
516
517#define PVOP_VCALLEE_CLOBBERS "=a" (__eax), "=d" (__edx)
518#define PVOP_CALLEE_CLOBBERS PVOP_VCALLEE_CLOBBERS
519
520#define EXTRA_CLOBBERS
521#define VEXTRA_CLOBBERS
522#else /* CONFIG_X86_64 */
523#define PVOP_VCALL_ARGS \
524 unsigned long __edi = __edi, __esi = __esi, \
525 __edx = __edx, __ecx = __ecx
526#define PVOP_CALL_ARGS PVOP_VCALL_ARGS, __eax
527
528#define PVOP_CALL_ARG1(x) "D" ((unsigned long)(x))
529#define PVOP_CALL_ARG2(x) "S" ((unsigned long)(x))
530#define PVOP_CALL_ARG3(x) "d" ((unsigned long)(x))
531#define PVOP_CALL_ARG4(x) "c" ((unsigned long)(x))
532
533#define PVOP_VCALL_CLOBBERS "=D" (__edi), \
534 "=S" (__esi), "=d" (__edx), \
535 "=c" (__ecx)
536#define PVOP_CALL_CLOBBERS PVOP_VCALL_CLOBBERS, "=a" (__eax)
537
538#define PVOP_VCALLEE_CLOBBERS "=a" (__eax)
539#define PVOP_CALLEE_CLOBBERS PVOP_VCALLEE_CLOBBERS
540
541#define EXTRA_CLOBBERS , "r8", "r9", "r10", "r11"
542#define VEXTRA_CLOBBERS , "rax", "r8", "r9", "r10", "r11"
543#endif /* CONFIG_X86_32 */
544
545#ifdef CONFIG_PARAVIRT_DEBUG
546#define PVOP_TEST_NULL(op) BUG_ON(op == NULL)
547#else
548#define PVOP_TEST_NULL(op) ((void)op)
549#endif
550
551#define ____PVOP_CALL(rettype, op, clbr, call_clbr, extra_clbr, \
552 pre, post, ...) \
553 ({ \
554 rettype __ret; \
555 PVOP_CALL_ARGS; \
556 PVOP_TEST_NULL(op); \
557 /* This is 32-bit specific, but is okay in 64-bit */ \
558 /* since this condition will never hold */ \
559 if (sizeof(rettype) > sizeof(unsigned long)) { \
560 asm volatile(pre \
561 paravirt_alt(PARAVIRT_CALL) \
562 post \
563 : call_clbr \
564 : paravirt_type(op), \
565 paravirt_clobber(clbr), \
566 ##__VA_ARGS__ \
567 : "memory", "cc" extra_clbr); \
568 __ret = (rettype)((((u64)__edx) << 32) | __eax); \
569 } else { \
570 asm volatile(pre \
571 paravirt_alt(PARAVIRT_CALL) \
572 post \
573 : call_clbr \
574 : paravirt_type(op), \
575 paravirt_clobber(clbr), \
576 ##__VA_ARGS__ \
577 : "memory", "cc" extra_clbr); \
578 __ret = (rettype)__eax; \
579 } \
580 __ret; \
581 })
582
583#define __PVOP_CALL(rettype, op, pre, post, ...) \
584 ____PVOP_CALL(rettype, op, CLBR_ANY, PVOP_CALL_CLOBBERS, \
585 EXTRA_CLOBBERS, pre, post, ##__VA_ARGS__)
586
587#define __PVOP_CALLEESAVE(rettype, op, pre, post, ...) \
588 ____PVOP_CALL(rettype, op.func, CLBR_RET_REG, \
589 PVOP_CALLEE_CLOBBERS, , \
590 pre, post, ##__VA_ARGS__)
591
592
593#define ____PVOP_VCALL(op, clbr, call_clbr, extra_clbr, pre, post, ...) \
594 ({ \
595 PVOP_VCALL_ARGS; \
596 PVOP_TEST_NULL(op); \
597 asm volatile(pre \
598 paravirt_alt(PARAVIRT_CALL) \
599 post \
600 : call_clbr \
601 : paravirt_type(op), \
602 paravirt_clobber(clbr), \
603 ##__VA_ARGS__ \
604 : "memory", "cc" extra_clbr); \
605 })
606
607#define __PVOP_VCALL(op, pre, post, ...) \
608 ____PVOP_VCALL(op, CLBR_ANY, PVOP_VCALL_CLOBBERS, \
609 VEXTRA_CLOBBERS, \
610 pre, post, ##__VA_ARGS__)
611
612#define __PVOP_VCALLEESAVE(rettype, op, pre, post, ...) \
613 ____PVOP_CALL(rettype, op.func, CLBR_RET_REG, \
614 PVOP_VCALLEE_CLOBBERS, , \
615 pre, post, ##__VA_ARGS__)
616
617
618
619#define PVOP_CALL0(rettype, op) \
620 __PVOP_CALL(rettype, op, "", "")
621#define PVOP_VCALL0(op) \
622 __PVOP_VCALL(op, "", "")
623
624#define PVOP_CALLEE0(rettype, op) \
625 __PVOP_CALLEESAVE(rettype, op, "", "")
626#define PVOP_VCALLEE0(op) \
627 __PVOP_VCALLEESAVE(op, "", "")
628
629
630#define PVOP_CALL1(rettype, op, arg1) \
631 __PVOP_CALL(rettype, op, "", "", PVOP_CALL_ARG1(arg1))
632#define PVOP_VCALL1(op, arg1) \
633 __PVOP_VCALL(op, "", "", PVOP_CALL_ARG1(arg1))
634
635#define PVOP_CALLEE1(rettype, op, arg1) \
636 __PVOP_CALLEESAVE(rettype, op, "", "", PVOP_CALL_ARG1(arg1))
637#define PVOP_VCALLEE1(op, arg1) \
638 __PVOP_VCALLEESAVE(op, "", "", PVOP_CALL_ARG1(arg1))
639
640
641#define PVOP_CALL2(rettype, op, arg1, arg2) \
642 __PVOP_CALL(rettype, op, "", "", PVOP_CALL_ARG1(arg1), \
643 PVOP_CALL_ARG2(arg2))
644#define PVOP_VCALL2(op, arg1, arg2) \
645 __PVOP_VCALL(op, "", "", PVOP_CALL_ARG1(arg1), \
646 PVOP_CALL_ARG2(arg2))
647
648#define PVOP_CALLEE2(rettype, op, arg1, arg2) \
649 __PVOP_CALLEESAVE(rettype, op, "", "", PVOP_CALL_ARG1(arg1), \
650 PVOP_CALL_ARG2(arg2))
651#define PVOP_VCALLEE2(op, arg1, arg2) \
652 __PVOP_VCALLEESAVE(op, "", "", PVOP_CALL_ARG1(arg1), \
653 PVOP_CALL_ARG2(arg2))
654
655
656#define PVOP_CALL3(rettype, op, arg1, arg2, arg3) \
657 __PVOP_CALL(rettype, op, "", "", PVOP_CALL_ARG1(arg1), \
658 PVOP_CALL_ARG2(arg2), PVOP_CALL_ARG3(arg3))
659#define PVOP_VCALL3(op, arg1, arg2, arg3) \
660 __PVOP_VCALL(op, "", "", PVOP_CALL_ARG1(arg1), \
661 PVOP_CALL_ARG2(arg2), PVOP_CALL_ARG3(arg3))
662
663/* This is the only difference in x86_64. We can make it much simpler */
664#ifdef CONFIG_X86_32
665#define PVOP_CALL4(rettype, op, arg1, arg2, arg3, arg4) \
666 __PVOP_CALL(rettype, op, \
667 "push %[_arg4];", "lea 4(%%esp),%%esp;", \
668 PVOP_CALL_ARG1(arg1), PVOP_CALL_ARG2(arg2), \
669 PVOP_CALL_ARG3(arg3), [_arg4] "mr" ((u32)(arg4)))
670#define PVOP_VCALL4(op, arg1, arg2, arg3, arg4) \
671 __PVOP_VCALL(op, \
672 "push %[_arg4];", "lea 4(%%esp),%%esp;", \
673 "0" ((u32)(arg1)), "1" ((u32)(arg2)), \
674 "2" ((u32)(arg3)), [_arg4] "mr" ((u32)(arg4)))
675#else
676#define PVOP_CALL4(rettype, op, arg1, arg2, arg3, arg4) \
677 __PVOP_CALL(rettype, op, "", "", \
678 PVOP_CALL_ARG1(arg1), PVOP_CALL_ARG2(arg2), \
679 PVOP_CALL_ARG3(arg3), PVOP_CALL_ARG4(arg4))
680#define PVOP_VCALL4(op, arg1, arg2, arg3, arg4) \
681 __PVOP_VCALL(op, "", "", \
682 PVOP_CALL_ARG1(arg1), PVOP_CALL_ARG2(arg2), \
683 PVOP_CALL_ARG3(arg3), PVOP_CALL_ARG4(arg4))
684#endif
685
686/* Lazy mode for batching updates / context switch */
687enum paravirt_lazy_mode {
688 PARAVIRT_LAZY_NONE,
689 PARAVIRT_LAZY_MMU,
690 PARAVIRT_LAZY_CPU,
691};
692
693enum paravirt_lazy_mode paravirt_get_lazy_mode(void);
694void paravirt_start_context_switch(struct task_struct *prev);
695void paravirt_end_context_switch(struct task_struct *next);
696
697void paravirt_enter_lazy_mmu(void);
698void paravirt_leave_lazy_mmu(void);
699
700void _paravirt_nop(void);
701u32 _paravirt_ident_32(u32);
702u64 _paravirt_ident_64(u64);
703
704#define paravirt_nop ((void *)_paravirt_nop)
705
706/* These all sit in the .parainstructions section to tell us what to patch. */
707struct paravirt_patch_site {
708 u8 *instr; /* original instructions */
709 u8 instrtype; /* type of this instruction */
710 u8 len; /* length of original instruction */
711 u16 clobbers; /* what registers you may clobber */
712};
713
714extern struct paravirt_patch_site __parainstructions[],
715 __parainstructions_end[];
716
717#endif /* __ASSEMBLY__ */
718
719#endif /* _ASM_X86_PARAVIRT_TYPES_H */