aed3f11c373b0713d040640e3a3aa6f6cf3d7262
[deliverable/linux.git] / arch / x86 / kernel / entry_64.S
1 /*
2 * linux/arch/x86_64/entry.S
3 *
4 * Copyright (C) 1991, 1992 Linus Torvalds
5 * Copyright (C) 2000, 2001, 2002 Andi Kleen SuSE Labs
6 * Copyright (C) 2000 Pavel Machek <pavel@suse.cz>
7 */
8
9 /*
10 * entry.S contains the system-call and fault low-level handling routines.
11 *
12 * Some of this is documented in Documentation/x86/entry_64.txt
13 *
14 * NOTE: This code handles signal-recognition, which happens every time
15 * after an interrupt and after each system call.
16 *
17 * A note on terminology:
18 * - top of stack: Architecture defined interrupt frame from SS to RIP
19 * at the top of the kernel process stack.
20 * - partial stack frame: partially saved registers up to R11.
21 * - full stack frame: Like partial stack frame, but all register saved.
22 *
23 * Some macro usage:
24 * - CFI macros are used to generate dwarf2 unwind information for better
25 * backtraces. They don't change any code.
26 * - ENTRY/END Define functions in the symbol table.
27 * - FIXUP_TOP_OF_STACK/RESTORE_TOP_OF_STACK - Fix up the hardware stack
28 * frame that is otherwise undefined after a SYSCALL
29 * - TRACE_IRQ_* - Trace hard interrupt state for lock debugging.
30 * - idtentry - Define exception entry points.
31 */
32
33 #include <linux/linkage.h>
34 #include <asm/segment.h>
35 #include <asm/cache.h>
36 #include <asm/errno.h>
37 #include <asm/dwarf2.h>
38 #include <asm/calling.h>
39 #include <asm/asm-offsets.h>
40 #include <asm/msr.h>
41 #include <asm/unistd.h>
42 #include <asm/thread_info.h>
43 #include <asm/hw_irq.h>
44 #include <asm/page_types.h>
45 #include <asm/irqflags.h>
46 #include <asm/paravirt.h>
47 #include <asm/percpu.h>
48 #include <asm/asm.h>
49 #include <asm/context_tracking.h>
50 #include <asm/smap.h>
51 #include <asm/pgtable_types.h>
52 #include <linux/err.h>
53
54 /* Avoid __ASSEMBLER__'ifying <linux/audit.h> just for this. */
55 #include <linux/elf-em.h>
56 #define AUDIT_ARCH_X86_64 (EM_X86_64|__AUDIT_ARCH_64BIT|__AUDIT_ARCH_LE)
57 #define __AUDIT_ARCH_64BIT 0x80000000
58 #define __AUDIT_ARCH_LE 0x40000000
59
60 .code64
61 .section .entry.text, "ax"
62
63
64 #ifndef CONFIG_PREEMPT
65 #define retint_kernel retint_restore_args
66 #endif
67
68 #ifdef CONFIG_PARAVIRT
69 ENTRY(native_usergs_sysret64)
70 swapgs
71 sysretq
72 ENDPROC(native_usergs_sysret64)
73 #endif /* CONFIG_PARAVIRT */
74
75
76 .macro TRACE_IRQS_IRETQ
77 #ifdef CONFIG_TRACE_IRQFLAGS
78 bt $9,EFLAGS(%rsp) /* interrupts off? */
79 jnc 1f
80 TRACE_IRQS_ON
81 1:
82 #endif
83 .endm
84
85 /*
86 * When dynamic function tracer is enabled it will add a breakpoint
87 * to all locations that it is about to modify, sync CPUs, update
88 * all the code, sync CPUs, then remove the breakpoints. In this time
89 * if lockdep is enabled, it might jump back into the debug handler
90 * outside the updating of the IST protection. (TRACE_IRQS_ON/OFF).
91 *
92 * We need to change the IDT table before calling TRACE_IRQS_ON/OFF to
93 * make sure the stack pointer does not get reset back to the top
94 * of the debug stack, and instead just reuses the current stack.
95 */
96 #if defined(CONFIG_DYNAMIC_FTRACE) && defined(CONFIG_TRACE_IRQFLAGS)
97
98 .macro TRACE_IRQS_OFF_DEBUG
99 call debug_stack_set_zero
100 TRACE_IRQS_OFF
101 call debug_stack_reset
102 .endm
103
104 .macro TRACE_IRQS_ON_DEBUG
105 call debug_stack_set_zero
106 TRACE_IRQS_ON
107 call debug_stack_reset
108 .endm
109
110 .macro TRACE_IRQS_IRETQ_DEBUG
111 bt $9,EFLAGS(%rsp) /* interrupts off? */
112 jnc 1f
113 TRACE_IRQS_ON_DEBUG
114 1:
115 .endm
116
117 #else
118 # define TRACE_IRQS_OFF_DEBUG TRACE_IRQS_OFF
119 # define TRACE_IRQS_ON_DEBUG TRACE_IRQS_ON
120 # define TRACE_IRQS_IRETQ_DEBUG TRACE_IRQS_IRETQ
121 #endif
122
123 /*
124 * C code is not supposed to know that the iret frame is not populated.
125 * Every time a C function with an pt_regs argument is called from
126 * the SYSCALL based fast path FIXUP_TOP_OF_STACK is needed.
127 * RESTORE_TOP_OF_STACK syncs the syscall state after any possible ptregs
128 * manipulation.
129 */
130 .macro FIXUP_TOP_OF_STACK tmp offset=0
131 movq $__USER_DS,SS+\offset(%rsp)
132 movq $__USER_CS,CS+\offset(%rsp)
133 movq RIP+\offset(%rsp),\tmp /* get rip */
134 movq \tmp,RCX+\offset(%rsp) /* copy it to rcx as sysret would do */
135 movq EFLAGS+\offset(%rsp),\tmp /* ditto for rflags->r11 */
136 movq \tmp,R11+\offset(%rsp)
137 .endm
138
139 .macro RESTORE_TOP_OF_STACK tmp offset=0
140 /* nothing to do */
141 .endm
142
143 /*
144 * empty frame
145 */
146 .macro EMPTY_FRAME start=1 offset=0
147 .if \start
148 CFI_STARTPROC simple
149 CFI_SIGNAL_FRAME
150 CFI_DEF_CFA rsp,8+\offset
151 .else
152 CFI_DEF_CFA_OFFSET 8+\offset
153 .endif
154 .endm
155
156 /*
157 * initial frame state for interrupts (and exceptions without error code)
158 */
159 .macro INTR_FRAME start=1 offset=0
160 EMPTY_FRAME \start, 5*8+\offset
161 /*CFI_REL_OFFSET ss, 4*8+\offset*/
162 CFI_REL_OFFSET rsp, 3*8+\offset
163 /*CFI_REL_OFFSET rflags, 2*8+\offset*/
164 /*CFI_REL_OFFSET cs, 1*8+\offset*/
165 CFI_REL_OFFSET rip, 0*8+\offset
166 .endm
167
168 /*
169 * initial frame state for exceptions with error code (and interrupts
170 * with vector already pushed)
171 */
172 .macro XCPT_FRAME start=1 offset=0
173 INTR_FRAME \start, 1*8+\offset
174 .endm
175
176 /*
177 * frame that enables passing a complete pt_regs to a C function.
178 */
179 .macro DEFAULT_FRAME start=1 offset=0
180 XCPT_FRAME \start, ORIG_RAX+\offset
181 CFI_REL_OFFSET rdi, RDI+\offset
182 CFI_REL_OFFSET rsi, RSI+\offset
183 CFI_REL_OFFSET rdx, RDX+\offset
184 CFI_REL_OFFSET rcx, RCX+\offset
185 CFI_REL_OFFSET rax, RAX+\offset
186 CFI_REL_OFFSET r8, R8+\offset
187 CFI_REL_OFFSET r9, R9+\offset
188 CFI_REL_OFFSET r10, R10+\offset
189 CFI_REL_OFFSET r11, R11+\offset
190 CFI_REL_OFFSET rbx, RBX+\offset
191 CFI_REL_OFFSET rbp, RBP+\offset
192 CFI_REL_OFFSET r12, R12+\offset
193 CFI_REL_OFFSET r13, R13+\offset
194 CFI_REL_OFFSET r14, R14+\offset
195 CFI_REL_OFFSET r15, R15+\offset
196 .endm
197
198 /*
199 * 64bit SYSCALL instruction entry. Up to 6 arguments in registers.
200 *
201 * 64bit SYSCALL saves rip to rcx, clears rflags.RF, then saves rflags to r11,
202 * then loads new ss, cs, and rip from previously programmed MSRs.
203 * rflags gets masked by a value from another MSR (so CLD and CLAC
204 * are not needed). SYSCALL does not save anything on the stack
205 * and does not change rsp.
206 *
207 * Registers on entry:
208 * rax system call number
209 * rcx return address
210 * r11 saved rflags (note: r11 is callee-clobbered register in C ABI)
211 * rdi arg0
212 * rsi arg1
213 * rdx arg2
214 * r10 arg3 (needs to be moved to rcx to conform to C ABI)
215 * r8 arg4
216 * r9 arg5
217 * (note: r12-r15,rbp,rbx are callee-preserved in C ABI)
218 *
219 * Interrupts are off on entry.
220 * Only called from user space.
221 *
222 * When user can change the frames always force IRET. That is because
223 * it deals with uncanonical addresses better. SYSRET has trouble
224 * with them due to bugs in both AMD and Intel CPUs.
225 */
226
227 ENTRY(system_call)
228 CFI_STARTPROC simple
229 CFI_SIGNAL_FRAME
230 CFI_DEF_CFA rsp,KERNEL_STACK_OFFSET
231 CFI_REGISTER rip,rcx
232 /*CFI_REGISTER rflags,r11*/
233 SWAPGS_UNSAFE_STACK
234 /*
235 * A hypervisor implementation might want to use a label
236 * after the swapgs, so that it can do the swapgs
237 * for the guest and jump here on syscall.
238 */
239 GLOBAL(system_call_after_swapgs)
240
241 movq %rsp,PER_CPU_VAR(old_rsp)
242 /* kernel_stack is set so that 5 slots (iret frame) are preallocated */
243 movq PER_CPU_VAR(kernel_stack),%rsp
244 ALLOC_PT_GPREGS_ON_STACK 8 /* +8: space for orig_ax */
245 movq %rcx,RIP(%rsp)
246 movq PER_CPU_VAR(old_rsp),%rcx
247 movq %r11,EFLAGS(%rsp)
248 movq %rcx,RSP(%rsp)
249 /*
250 * No need to follow this irqs off/on section - it's straight
251 * and short:
252 */
253 ENABLE_INTERRUPTS(CLBR_NONE)
254 movq_cfi rax,ORIG_RAX
255 SAVE_C_REGS_EXCEPT_RAX_RCX_R11
256 movq $-ENOSYS,RAX(%rsp)
257 CFI_REL_OFFSET rip,RIP
258 testl $_TIF_WORK_SYSCALL_ENTRY,TI_flags+THREAD_INFO(%rsp,RIP)
259 jnz tracesys
260 system_call_fastpath:
261 #if __SYSCALL_MASK == ~0
262 cmpq $__NR_syscall_max,%rax
263 #else
264 andl $__SYSCALL_MASK,%eax
265 cmpl $__NR_syscall_max,%eax
266 #endif
267 ja ret_from_sys_call /* and return regs->ax */
268 movq %r10,%rcx
269 call *sys_call_table(,%rax,8) # XXX: rip relative
270 movq %rax,RAX(%rsp)
271 /*
272 * Syscall return path ending with SYSRET (fast path)
273 * Has incompletely filled pt_regs, iret frame is also incomplete.
274 */
275 ret_from_sys_call:
276 testl $_TIF_ALLWORK_MASK,TI_flags+THREAD_INFO(%rsp,RIP)
277 jnz int_ret_from_sys_call_fixup /* Go the the slow path */
278
279 LOCKDEP_SYS_EXIT
280 DISABLE_INTERRUPTS(CLBR_NONE)
281 TRACE_IRQS_OFF
282 CFI_REMEMBER_STATE
283 /*
284 * sysretq will re-enable interrupts:
285 */
286 TRACE_IRQS_ON
287 RESTORE_C_REGS_EXCEPT_RCX_R11
288 movq RIP(%rsp),%rcx
289 CFI_REGISTER rip,rcx
290 movq EFLAGS(%rsp),%r11
291 /*CFI_REGISTER rflags,r11*/
292 movq RSP(%rsp),%rsp
293 /*
294 * 64bit SYSRET restores rip from rcx,
295 * rflags from r11 (but RF and VM bits are forced to 0),
296 * cs and ss are loaded from MSRs.
297 */
298 USERGS_SYSRET64
299
300 CFI_RESTORE_STATE
301
302 int_ret_from_sys_call_fixup:
303 FIXUP_TOP_OF_STACK %r11
304 jmp int_ret_from_sys_call
305
306 /* Do syscall tracing */
307 tracesys:
308 movq %rsp, %rdi
309 movq $AUDIT_ARCH_X86_64, %rsi
310 call syscall_trace_enter_phase1
311 test %rax, %rax
312 jnz tracesys_phase2 /* if needed, run the slow path */
313 RESTORE_C_REGS_EXCEPT_RAX /* else restore clobbered regs */
314 movq ORIG_RAX(%rsp), %rax
315 jmp system_call_fastpath /* and return to the fast path */
316
317 tracesys_phase2:
318 SAVE_EXTRA_REGS
319 FIXUP_TOP_OF_STACK %rdi
320 movq %rsp, %rdi
321 movq $AUDIT_ARCH_X86_64, %rsi
322 movq %rax,%rdx
323 call syscall_trace_enter_phase2
324
325 /*
326 * Reload registers from stack in case ptrace changed them.
327 * We don't reload %rax because syscall_trace_entry_phase2() returned
328 * the value it wants us to use in the table lookup.
329 */
330 RESTORE_C_REGS_EXCEPT_RAX
331 RESTORE_EXTRA_REGS
332 #if __SYSCALL_MASK == ~0
333 cmpq $__NR_syscall_max,%rax
334 #else
335 andl $__SYSCALL_MASK,%eax
336 cmpl $__NR_syscall_max,%eax
337 #endif
338 ja int_ret_from_sys_call /* RAX(%rsp) is already set */
339 movq %r10,%rcx /* fixup for C */
340 call *sys_call_table(,%rax,8)
341 movq %rax,RAX(%rsp)
342 /* Use IRET because user could have changed frame */
343
344 /*
345 * Syscall return path ending with IRET.
346 * Has correct top of stack, but partial stack frame.
347 */
348 GLOBAL(int_ret_from_sys_call)
349 DISABLE_INTERRUPTS(CLBR_NONE)
350 TRACE_IRQS_OFF
351 movl $_TIF_ALLWORK_MASK,%edi
352 /* edi: mask to check */
353 GLOBAL(int_with_check)
354 LOCKDEP_SYS_EXIT_IRQ
355 GET_THREAD_INFO(%rcx)
356 movl TI_flags(%rcx),%edx
357 andl %edi,%edx
358 jnz int_careful
359 andl $~TS_COMPAT,TI_status(%rcx)
360 jmp retint_swapgs
361
362 /* Either reschedule or signal or syscall exit tracking needed. */
363 /* First do a reschedule test. */
364 /* edx: work, edi: workmask */
365 int_careful:
366 bt $TIF_NEED_RESCHED,%edx
367 jnc int_very_careful
368 TRACE_IRQS_ON
369 ENABLE_INTERRUPTS(CLBR_NONE)
370 pushq_cfi %rdi
371 SCHEDULE_USER
372 popq_cfi %rdi
373 DISABLE_INTERRUPTS(CLBR_NONE)
374 TRACE_IRQS_OFF
375 jmp int_with_check
376
377 /* handle signals and tracing -- both require a full stack frame */
378 int_very_careful:
379 TRACE_IRQS_ON
380 ENABLE_INTERRUPTS(CLBR_NONE)
381 SAVE_EXTRA_REGS
382 /* Check for syscall exit trace */
383 testl $_TIF_WORK_SYSCALL_EXIT,%edx
384 jz int_signal
385 pushq_cfi %rdi
386 leaq 8(%rsp),%rdi # &ptregs -> arg1
387 call syscall_trace_leave
388 popq_cfi %rdi
389 andl $~(_TIF_WORK_SYSCALL_EXIT|_TIF_SYSCALL_EMU),%edi
390 jmp int_restore_rest
391
392 int_signal:
393 testl $_TIF_DO_NOTIFY_MASK,%edx
394 jz 1f
395 movq %rsp,%rdi # &ptregs -> arg1
396 xorl %esi,%esi # oldset -> arg2
397 call do_notify_resume
398 1: movl $_TIF_WORK_MASK,%edi
399 int_restore_rest:
400 RESTORE_EXTRA_REGS
401 DISABLE_INTERRUPTS(CLBR_NONE)
402 TRACE_IRQS_OFF
403 jmp int_with_check
404 CFI_ENDPROC
405 END(system_call)
406
407 .macro FORK_LIKE func
408 ENTRY(stub_\func)
409 CFI_STARTPROC
410 DEFAULT_FRAME 0, 8 /* offset 8: return address */
411 SAVE_EXTRA_REGS 8
412 FIXUP_TOP_OF_STACK %r11, 8
413 call sys_\func
414 RESTORE_TOP_OF_STACK %r11, 8
415 ret
416 CFI_ENDPROC
417 END(stub_\func)
418 .endm
419
420 FORK_LIKE clone
421 FORK_LIKE fork
422 FORK_LIKE vfork
423
424 ENTRY(stub_execve)
425 CFI_STARTPROC
426 addq $8, %rsp
427 DEFAULT_FRAME 0
428 SAVE_EXTRA_REGS
429 FIXUP_TOP_OF_STACK %r11
430 call sys_execve
431 movq %rax,RAX(%rsp)
432 RESTORE_EXTRA_REGS
433 jmp int_ret_from_sys_call
434 CFI_ENDPROC
435 END(stub_execve)
436
437 ENTRY(stub_execveat)
438 CFI_STARTPROC
439 addq $8, %rsp
440 DEFAULT_FRAME 0
441 SAVE_EXTRA_REGS
442 FIXUP_TOP_OF_STACK %r11
443 call sys_execveat
444 RESTORE_TOP_OF_STACK %r11
445 movq %rax,RAX(%rsp)
446 RESTORE_EXTRA_REGS
447 jmp int_ret_from_sys_call
448 CFI_ENDPROC
449 END(stub_execveat)
450
451 /*
452 * sigreturn is special because it needs to restore all registers on return.
453 * This cannot be done with SYSRET, so use the IRET return path instead.
454 */
455 ENTRY(stub_rt_sigreturn)
456 CFI_STARTPROC
457 addq $8, %rsp
458 DEFAULT_FRAME 0
459 SAVE_EXTRA_REGS
460 FIXUP_TOP_OF_STACK %r11
461 call sys_rt_sigreturn
462 movq %rax,RAX(%rsp) # fixme, this could be done at the higher layer
463 RESTORE_EXTRA_REGS
464 jmp int_ret_from_sys_call
465 CFI_ENDPROC
466 END(stub_rt_sigreturn)
467
468 #ifdef CONFIG_X86_X32_ABI
469 ENTRY(stub_x32_rt_sigreturn)
470 CFI_STARTPROC
471 addq $8, %rsp
472 DEFAULT_FRAME 0
473 SAVE_EXTRA_REGS
474 FIXUP_TOP_OF_STACK %r11
475 call sys32_x32_rt_sigreturn
476 movq %rax,RAX(%rsp) # fixme, this could be done at the higher layer
477 RESTORE_EXTRA_REGS
478 jmp int_ret_from_sys_call
479 CFI_ENDPROC
480 END(stub_x32_rt_sigreturn)
481
482 ENTRY(stub_x32_execve)
483 CFI_STARTPROC
484 addq $8, %rsp
485 DEFAULT_FRAME 0
486 SAVE_EXTRA_REGS
487 FIXUP_TOP_OF_STACK %r11
488 call compat_sys_execve
489 RESTORE_TOP_OF_STACK %r11
490 movq %rax,RAX(%rsp)
491 RESTORE_EXTRA_REGS
492 jmp int_ret_from_sys_call
493 CFI_ENDPROC
494 END(stub_x32_execve)
495
496 ENTRY(stub_x32_execveat)
497 CFI_STARTPROC
498 addq $8, %rsp
499 DEFAULT_FRAME 0
500 SAVE_EXTRA_REGS
501 FIXUP_TOP_OF_STACK %r11
502 call compat_sys_execveat
503 RESTORE_TOP_OF_STACK %r11
504 movq %rax,RAX(%rsp)
505 RESTORE_EXTRA_REGS
506 jmp int_ret_from_sys_call
507 CFI_ENDPROC
508 END(stub_x32_execveat)
509
510 #endif
511
512 /*
513 * A newly forked process directly context switches into this address.
514 *
515 * rdi: prev task we switched from
516 */
517 ENTRY(ret_from_fork)
518 DEFAULT_FRAME
519
520 LOCK ; btr $TIF_FORK,TI_flags(%r8)
521
522 pushq_cfi $0x0002
523 popfq_cfi # reset kernel eflags
524
525 call schedule_tail # rdi: 'prev' task parameter
526
527 GET_THREAD_INFO(%rcx)
528
529 RESTORE_EXTRA_REGS
530
531 testl $3,CS(%rsp) # from kernel_thread?
532 jz 1f
533
534 /*
535 * By the time we get here, we have no idea whether our pt_regs,
536 * ti flags, and ti status came from the 64-bit SYSCALL fast path,
537 * the slow path, or one of the ia32entry paths.
538 * Use int_ret_from_sys_call to return, since it can safely handle
539 * all of the above.
540 */
541 jmp int_ret_from_sys_call
542
543 1:
544 movq %rbp, %rdi
545 call *%rbx
546 movl $0, RAX(%rsp)
547 RESTORE_EXTRA_REGS
548 jmp int_ret_from_sys_call
549 CFI_ENDPROC
550 END(ret_from_fork)
551
552 /*
553 * Build the entry stubs and pointer table with some assembler magic.
554 * We pack 7 stubs into a single 32-byte chunk, which will fit in a
555 * single cache line on all modern x86 implementations.
556 */
557 .section .init.rodata,"a"
558 ENTRY(interrupt)
559 .section .entry.text
560 .p2align 5
561 .p2align CONFIG_X86_L1_CACHE_SHIFT
562 ENTRY(irq_entries_start)
563 INTR_FRAME
564 vector=FIRST_EXTERNAL_VECTOR
565 .rept (FIRST_SYSTEM_VECTOR-FIRST_EXTERNAL_VECTOR+6)/7
566 .balign 32
567 .rept 7
568 .if vector < FIRST_SYSTEM_VECTOR
569 .if vector <> FIRST_EXTERNAL_VECTOR
570 CFI_ADJUST_CFA_OFFSET -8
571 .endif
572 1: pushq_cfi $(~vector+0x80) /* Note: always in signed byte range */
573 .if ((vector-FIRST_EXTERNAL_VECTOR)%7) <> 6
574 jmp 2f
575 .endif
576 .previous
577 .quad 1b
578 .section .entry.text
579 vector=vector+1
580 .endif
581 .endr
582 2: jmp common_interrupt
583 .endr
584 CFI_ENDPROC
585 END(irq_entries_start)
586
587 .previous
588 END(interrupt)
589 .previous
590
591 /*
592 * Interrupt entry/exit.
593 *
594 * Interrupt entry points save only callee clobbered registers in fast path.
595 *
596 * Entry runs with interrupts off.
597 */
598
599 /* 0(%rsp): ~(interrupt number) */
600 .macro interrupt func
601 cld
602 /*
603 * Since nothing in interrupt handling code touches r12...r15 members
604 * of "struct pt_regs", and since interrupts can nest, we can save
605 * four stack slots and simultaneously provide
606 * an unwind-friendly stack layout by saving "truncated" pt_regs
607 * exactly up to rbp slot, without these members.
608 */
609 ALLOC_PT_GPREGS_ON_STACK -RBP
610 SAVE_C_REGS -RBP
611 /* this goes to 0(%rsp) for unwinder, not for saving the value: */
612 SAVE_EXTRA_REGS_RBP -RBP
613
614 leaq -RBP(%rsp),%rdi /* arg1 for \func (pointer to pt_regs) */
615
616 testl $3, CS-RBP(%rsp)
617 je 1f
618 SWAPGS
619 1:
620 /*
621 * Save previous stack pointer, optionally switch to interrupt stack.
622 * irq_count is used to check if a CPU is already on an interrupt stack
623 * or not. While this is essentially redundant with preempt_count it is
624 * a little cheaper to use a separate counter in the PDA (short of
625 * moving irq_enter into assembly, which would be too much work)
626 */
627 movq %rsp, %rsi
628 incl PER_CPU_VAR(irq_count)
629 cmovzq PER_CPU_VAR(irq_stack_ptr),%rsp
630 CFI_DEF_CFA_REGISTER rsi
631 pushq %rsi
632 /*
633 * For debugger:
634 * "CFA (Current Frame Address) is the value on stack + offset"
635 */
636 CFI_ESCAPE 0x0f /* DW_CFA_def_cfa_expression */, 6, \
637 0x77 /* DW_OP_breg7 (rsp) */, 0, \
638 0x06 /* DW_OP_deref */, \
639 0x08 /* DW_OP_const1u */, SIZEOF_PTREGS-RBP, \
640 0x22 /* DW_OP_plus */
641 /* We entered an interrupt context - irqs are off: */
642 TRACE_IRQS_OFF
643
644 call \func
645 .endm
646
647 /*
648 * The interrupt stubs push (~vector+0x80) onto the stack and
649 * then jump to common_interrupt.
650 */
651 .p2align CONFIG_X86_L1_CACHE_SHIFT
652 common_interrupt:
653 XCPT_FRAME
654 ASM_CLAC
655 addq $-0x80,(%rsp) /* Adjust vector to [-256,-1] range */
656 interrupt do_IRQ
657 /* 0(%rsp): old_rsp */
658 ret_from_intr:
659 DISABLE_INTERRUPTS(CLBR_NONE)
660 TRACE_IRQS_OFF
661 decl PER_CPU_VAR(irq_count)
662
663 /* Restore saved previous stack */
664 popq %rsi
665 CFI_DEF_CFA rsi,SIZEOF_PTREGS-RBP /* reg/off reset after def_cfa_expr */
666 /* return code expects complete pt_regs - adjust rsp accordingly: */
667 leaq -RBP(%rsi),%rsp
668 CFI_DEF_CFA_REGISTER rsp
669 CFI_ADJUST_CFA_OFFSET RBP
670
671 exit_intr:
672 GET_THREAD_INFO(%rcx)
673 testl $3,CS(%rsp)
674 je retint_kernel
675
676 /* Interrupt came from user space */
677 /*
678 * Has a correct top of stack.
679 * %rcx: thread info. Interrupts off.
680 */
681 retint_with_reschedule:
682 movl $_TIF_WORK_MASK,%edi
683 retint_check:
684 LOCKDEP_SYS_EXIT_IRQ
685 movl TI_flags(%rcx),%edx
686 andl %edi,%edx
687 CFI_REMEMBER_STATE
688 jnz retint_careful
689
690 retint_swapgs: /* return to user-space */
691 /*
692 * The iretq could re-enable interrupts:
693 */
694 DISABLE_INTERRUPTS(CLBR_ANY)
695 TRACE_IRQS_IRETQ
696
697 /*
698 * Try to use SYSRET instead of IRET if we're returning to
699 * a completely clean 64-bit userspace context.
700 */
701 movq RCX(%rsp),%rcx
702 cmpq %rcx,RIP(%rsp) /* RCX == RIP */
703 jne opportunistic_sysret_failed
704
705 /*
706 * On Intel CPUs, sysret with non-canonical RCX/RIP will #GP
707 * in kernel space. This essentially lets the user take over
708 * the kernel, since userspace controls RSP. It's not worth
709 * testing for canonicalness exactly -- this check detects any
710 * of the 17 high bits set, which is true for non-canonical
711 * or kernel addresses. (This will pessimize vsyscall=native.
712 * Big deal.)
713 *
714 * If virtual addresses ever become wider, this will need
715 * to be updated to remain correct on both old and new CPUs.
716 */
717 .ifne __VIRTUAL_MASK_SHIFT - 47
718 .error "virtual address width changed -- sysret checks need update"
719 .endif
720 shr $__VIRTUAL_MASK_SHIFT, %rcx
721 jnz opportunistic_sysret_failed
722
723 cmpq $__USER_CS,CS(%rsp) /* CS must match SYSRET */
724 jne opportunistic_sysret_failed
725
726 movq R11(%rsp),%r11
727 cmpq %r11,EFLAGS(%rsp) /* R11 == RFLAGS */
728 jne opportunistic_sysret_failed
729
730 testq $X86_EFLAGS_RF,%r11 /* sysret can't restore RF */
731 jnz opportunistic_sysret_failed
732
733 /* nothing to check for RSP */
734
735 cmpq $__USER_DS,SS(%rsp) /* SS must match SYSRET */
736 jne opportunistic_sysret_failed
737
738 /*
739 * We win! This label is here just for ease of understanding
740 * perf profiles. Nothing jumps here.
741 */
742 irq_return_via_sysret:
743 CFI_REMEMBER_STATE
744 /* r11 is already restored (see code above) */
745 RESTORE_C_REGS_EXCEPT_R11
746 movq RSP(%rsp),%rsp
747 USERGS_SYSRET64
748 CFI_RESTORE_STATE
749
750 opportunistic_sysret_failed:
751 SWAPGS
752 jmp restore_args
753
754 retint_restore_args: /* return to kernel space */
755 DISABLE_INTERRUPTS(CLBR_ANY)
756 /*
757 * The iretq could re-enable interrupts:
758 */
759 TRACE_IRQS_IRETQ
760 restore_args:
761 RESTORE_C_REGS
762 REMOVE_PT_GPREGS_FROM_STACK 8
763
764 irq_return:
765 INTERRUPT_RETURN
766
767 ENTRY(native_iret)
768 /*
769 * Are we returning to a stack segment from the LDT? Note: in
770 * 64-bit mode SS:RSP on the exception stack is always valid.
771 */
772 #ifdef CONFIG_X86_ESPFIX64
773 testb $4,(SS-RIP)(%rsp)
774 jnz native_irq_return_ldt
775 #endif
776
777 .global native_irq_return_iret
778 native_irq_return_iret:
779 /*
780 * This may fault. Non-paranoid faults on return to userspace are
781 * handled by fixup_bad_iret. These include #SS, #GP, and #NP.
782 * Double-faults due to espfix64 are handled in do_double_fault.
783 * Other faults here are fatal.
784 */
785 iretq
786
787 #ifdef CONFIG_X86_ESPFIX64
788 native_irq_return_ldt:
789 pushq_cfi %rax
790 pushq_cfi %rdi
791 SWAPGS
792 movq PER_CPU_VAR(espfix_waddr),%rdi
793 movq %rax,(0*8)(%rdi) /* RAX */
794 movq (2*8)(%rsp),%rax /* RIP */
795 movq %rax,(1*8)(%rdi)
796 movq (3*8)(%rsp),%rax /* CS */
797 movq %rax,(2*8)(%rdi)
798 movq (4*8)(%rsp),%rax /* RFLAGS */
799 movq %rax,(3*8)(%rdi)
800 movq (6*8)(%rsp),%rax /* SS */
801 movq %rax,(5*8)(%rdi)
802 movq (5*8)(%rsp),%rax /* RSP */
803 movq %rax,(4*8)(%rdi)
804 andl $0xffff0000,%eax
805 popq_cfi %rdi
806 orq PER_CPU_VAR(espfix_stack),%rax
807 SWAPGS
808 movq %rax,%rsp
809 popq_cfi %rax
810 jmp native_irq_return_iret
811 #endif
812
813 /* edi: workmask, edx: work */
814 retint_careful:
815 CFI_RESTORE_STATE
816 bt $TIF_NEED_RESCHED,%edx
817 jnc retint_signal
818 TRACE_IRQS_ON
819 ENABLE_INTERRUPTS(CLBR_NONE)
820 pushq_cfi %rdi
821 SCHEDULE_USER
822 popq_cfi %rdi
823 GET_THREAD_INFO(%rcx)
824 DISABLE_INTERRUPTS(CLBR_NONE)
825 TRACE_IRQS_OFF
826 jmp retint_check
827
828 retint_signal:
829 testl $_TIF_DO_NOTIFY_MASK,%edx
830 jz retint_swapgs
831 TRACE_IRQS_ON
832 ENABLE_INTERRUPTS(CLBR_NONE)
833 SAVE_EXTRA_REGS
834 movq $-1,ORIG_RAX(%rsp)
835 xorl %esi,%esi # oldset
836 movq %rsp,%rdi # &pt_regs
837 call do_notify_resume
838 RESTORE_EXTRA_REGS
839 DISABLE_INTERRUPTS(CLBR_NONE)
840 TRACE_IRQS_OFF
841 GET_THREAD_INFO(%rcx)
842 jmp retint_with_reschedule
843
844 #ifdef CONFIG_PREEMPT
845 /* Returning to kernel space. Check if we need preemption */
846 /* rcx: threadinfo. interrupts off. */
847 ENTRY(retint_kernel)
848 cmpl $0,PER_CPU_VAR(__preempt_count)
849 jnz retint_restore_args
850 bt $9,EFLAGS(%rsp) /* interrupts off? */
851 jnc retint_restore_args
852 call preempt_schedule_irq
853 jmp exit_intr
854 #endif
855 CFI_ENDPROC
856 END(common_interrupt)
857
858 /*
859 * APIC interrupts.
860 */
861 .macro apicinterrupt3 num sym do_sym
862 ENTRY(\sym)
863 INTR_FRAME
864 ASM_CLAC
865 pushq_cfi $~(\num)
866 .Lcommon_\sym:
867 interrupt \do_sym
868 jmp ret_from_intr
869 CFI_ENDPROC
870 END(\sym)
871 .endm
872
873 #ifdef CONFIG_TRACING
874 #define trace(sym) trace_##sym
875 #define smp_trace(sym) smp_trace_##sym
876
877 .macro trace_apicinterrupt num sym
878 apicinterrupt3 \num trace(\sym) smp_trace(\sym)
879 .endm
880 #else
881 .macro trace_apicinterrupt num sym do_sym
882 .endm
883 #endif
884
885 .macro apicinterrupt num sym do_sym
886 apicinterrupt3 \num \sym \do_sym
887 trace_apicinterrupt \num \sym
888 .endm
889
890 #ifdef CONFIG_SMP
891 apicinterrupt3 IRQ_MOVE_CLEANUP_VECTOR \
892 irq_move_cleanup_interrupt smp_irq_move_cleanup_interrupt
893 apicinterrupt3 REBOOT_VECTOR \
894 reboot_interrupt smp_reboot_interrupt
895 #endif
896
897 #ifdef CONFIG_X86_UV
898 apicinterrupt3 UV_BAU_MESSAGE \
899 uv_bau_message_intr1 uv_bau_message_interrupt
900 #endif
901 apicinterrupt LOCAL_TIMER_VECTOR \
902 apic_timer_interrupt smp_apic_timer_interrupt
903 apicinterrupt X86_PLATFORM_IPI_VECTOR \
904 x86_platform_ipi smp_x86_platform_ipi
905
906 #ifdef CONFIG_HAVE_KVM
907 apicinterrupt3 POSTED_INTR_VECTOR \
908 kvm_posted_intr_ipi smp_kvm_posted_intr_ipi
909 #endif
910
911 #ifdef CONFIG_X86_MCE_THRESHOLD
912 apicinterrupt THRESHOLD_APIC_VECTOR \
913 threshold_interrupt smp_threshold_interrupt
914 #endif
915
916 #ifdef CONFIG_X86_THERMAL_VECTOR
917 apicinterrupt THERMAL_APIC_VECTOR \
918 thermal_interrupt smp_thermal_interrupt
919 #endif
920
921 #ifdef CONFIG_SMP
922 apicinterrupt CALL_FUNCTION_SINGLE_VECTOR \
923 call_function_single_interrupt smp_call_function_single_interrupt
924 apicinterrupt CALL_FUNCTION_VECTOR \
925 call_function_interrupt smp_call_function_interrupt
926 apicinterrupt RESCHEDULE_VECTOR \
927 reschedule_interrupt smp_reschedule_interrupt
928 #endif
929
930 apicinterrupt ERROR_APIC_VECTOR \
931 error_interrupt smp_error_interrupt
932 apicinterrupt SPURIOUS_APIC_VECTOR \
933 spurious_interrupt smp_spurious_interrupt
934
935 #ifdef CONFIG_IRQ_WORK
936 apicinterrupt IRQ_WORK_VECTOR \
937 irq_work_interrupt smp_irq_work_interrupt
938 #endif
939
940 /*
941 * Exception entry points.
942 */
943 #define CPU_TSS_IST(x) PER_CPU_VAR(cpu_tss) + (TSS_ist + ((x) - 1) * 8)
944
945 .macro idtentry sym do_sym has_error_code:req paranoid=0 shift_ist=-1
946 ENTRY(\sym)
947 /* Sanity check */
948 .if \shift_ist != -1 && \paranoid == 0
949 .error "using shift_ist requires paranoid=1"
950 .endif
951
952 .if \has_error_code
953 XCPT_FRAME
954 .else
955 INTR_FRAME
956 .endif
957
958 ASM_CLAC
959 PARAVIRT_ADJUST_EXCEPTION_FRAME
960
961 .ifeq \has_error_code
962 pushq_cfi $-1 /* ORIG_RAX: no syscall to restart */
963 .endif
964
965 ALLOC_PT_GPREGS_ON_STACK
966
967 .if \paranoid
968 .if \paranoid == 1
969 CFI_REMEMBER_STATE
970 testl $3, CS(%rsp) /* If coming from userspace, switch */
971 jnz 1f /* stacks. */
972 .endif
973 call paranoid_entry
974 .else
975 call error_entry
976 .endif
977 /* returned flag: ebx=0: need swapgs on exit, ebx=1: don't need it */
978
979 DEFAULT_FRAME 0
980
981 .if \paranoid
982 .if \shift_ist != -1
983 TRACE_IRQS_OFF_DEBUG /* reload IDT in case of recursion */
984 .else
985 TRACE_IRQS_OFF
986 .endif
987 .endif
988
989 movq %rsp,%rdi /* pt_regs pointer */
990
991 .if \has_error_code
992 movq ORIG_RAX(%rsp),%rsi /* get error code */
993 movq $-1,ORIG_RAX(%rsp) /* no syscall to restart */
994 .else
995 xorl %esi,%esi /* no error code */
996 .endif
997
998 .if \shift_ist != -1
999 subq $EXCEPTION_STKSZ, CPU_TSS_IST(\shift_ist)
1000 .endif
1001
1002 call \do_sym
1003
1004 .if \shift_ist != -1
1005 addq $EXCEPTION_STKSZ, CPU_TSS_IST(\shift_ist)
1006 .endif
1007
1008 /* these procedures expect "no swapgs" flag in ebx */
1009 .if \paranoid
1010 jmp paranoid_exit
1011 .else
1012 jmp error_exit
1013 .endif
1014
1015 .if \paranoid == 1
1016 CFI_RESTORE_STATE
1017 /*
1018 * Paranoid entry from userspace. Switch stacks and treat it
1019 * as a normal entry. This means that paranoid handlers
1020 * run in real process context if user_mode(regs).
1021 */
1022 1:
1023 call error_entry
1024
1025 DEFAULT_FRAME 0
1026
1027 movq %rsp,%rdi /* pt_regs pointer */
1028 call sync_regs
1029 movq %rax,%rsp /* switch stack */
1030
1031 movq %rsp,%rdi /* pt_regs pointer */
1032
1033 .if \has_error_code
1034 movq ORIG_RAX(%rsp),%rsi /* get error code */
1035 movq $-1,ORIG_RAX(%rsp) /* no syscall to restart */
1036 .else
1037 xorl %esi,%esi /* no error code */
1038 .endif
1039
1040 call \do_sym
1041
1042 jmp error_exit /* %ebx: no swapgs flag */
1043 .endif
1044
1045 CFI_ENDPROC
1046 END(\sym)
1047 .endm
1048
1049 #ifdef CONFIG_TRACING
1050 .macro trace_idtentry sym do_sym has_error_code:req
1051 idtentry trace(\sym) trace(\do_sym) has_error_code=\has_error_code
1052 idtentry \sym \do_sym has_error_code=\has_error_code
1053 .endm
1054 #else
1055 .macro trace_idtentry sym do_sym has_error_code:req
1056 idtentry \sym \do_sym has_error_code=\has_error_code
1057 .endm
1058 #endif
1059
1060 idtentry divide_error do_divide_error has_error_code=0
1061 idtentry overflow do_overflow has_error_code=0
1062 idtentry bounds do_bounds has_error_code=0
1063 idtentry invalid_op do_invalid_op has_error_code=0
1064 idtentry device_not_available do_device_not_available has_error_code=0
1065 idtentry double_fault do_double_fault has_error_code=1 paranoid=2
1066 idtentry coprocessor_segment_overrun do_coprocessor_segment_overrun has_error_code=0
1067 idtentry invalid_TSS do_invalid_TSS has_error_code=1
1068 idtentry segment_not_present do_segment_not_present has_error_code=1
1069 idtentry spurious_interrupt_bug do_spurious_interrupt_bug has_error_code=0
1070 idtentry coprocessor_error do_coprocessor_error has_error_code=0
1071 idtentry alignment_check do_alignment_check has_error_code=1
1072 idtentry simd_coprocessor_error do_simd_coprocessor_error has_error_code=0
1073
1074
1075 /* Reload gs selector with exception handling */
1076 /* edi: new selector */
1077 ENTRY(native_load_gs_index)
1078 CFI_STARTPROC
1079 pushfq_cfi
1080 DISABLE_INTERRUPTS(CLBR_ANY & ~CLBR_RDI)
1081 SWAPGS
1082 gs_change:
1083 movl %edi,%gs
1084 2: mfence /* workaround */
1085 SWAPGS
1086 popfq_cfi
1087 ret
1088 CFI_ENDPROC
1089 END(native_load_gs_index)
1090
1091 _ASM_EXTABLE(gs_change,bad_gs)
1092 .section .fixup,"ax"
1093 /* running with kernelgs */
1094 bad_gs:
1095 SWAPGS /* switch back to user gs */
1096 xorl %eax,%eax
1097 movl %eax,%gs
1098 jmp 2b
1099 .previous
1100
1101 /* Call softirq on interrupt stack. Interrupts are off. */
1102 ENTRY(do_softirq_own_stack)
1103 CFI_STARTPROC
1104 pushq_cfi %rbp
1105 CFI_REL_OFFSET rbp,0
1106 mov %rsp,%rbp
1107 CFI_DEF_CFA_REGISTER rbp
1108 incl PER_CPU_VAR(irq_count)
1109 cmove PER_CPU_VAR(irq_stack_ptr),%rsp
1110 push %rbp # backlink for old unwinder
1111 call __do_softirq
1112 leaveq
1113 CFI_RESTORE rbp
1114 CFI_DEF_CFA_REGISTER rsp
1115 CFI_ADJUST_CFA_OFFSET -8
1116 decl PER_CPU_VAR(irq_count)
1117 ret
1118 CFI_ENDPROC
1119 END(do_softirq_own_stack)
1120
1121 #ifdef CONFIG_XEN
1122 idtentry xen_hypervisor_callback xen_do_hypervisor_callback has_error_code=0
1123
1124 /*
1125 * A note on the "critical region" in our callback handler.
1126 * We want to avoid stacking callback handlers due to events occurring
1127 * during handling of the last event. To do this, we keep events disabled
1128 * until we've done all processing. HOWEVER, we must enable events before
1129 * popping the stack frame (can't be done atomically) and so it would still
1130 * be possible to get enough handler activations to overflow the stack.
1131 * Although unlikely, bugs of that kind are hard to track down, so we'd
1132 * like to avoid the possibility.
1133 * So, on entry to the handler we detect whether we interrupted an
1134 * existing activation in its critical region -- if so, we pop the current
1135 * activation and restart the handler using the previous one.
1136 */
1137 ENTRY(xen_do_hypervisor_callback) # do_hypervisor_callback(struct *pt_regs)
1138 CFI_STARTPROC
1139 /*
1140 * Since we don't modify %rdi, evtchn_do_upall(struct *pt_regs) will
1141 * see the correct pointer to the pt_regs
1142 */
1143 movq %rdi, %rsp # we don't return, adjust the stack frame
1144 CFI_ENDPROC
1145 DEFAULT_FRAME
1146 11: incl PER_CPU_VAR(irq_count)
1147 movq %rsp,%rbp
1148 CFI_DEF_CFA_REGISTER rbp
1149 cmovzq PER_CPU_VAR(irq_stack_ptr),%rsp
1150 pushq %rbp # backlink for old unwinder
1151 call xen_evtchn_do_upcall
1152 popq %rsp
1153 CFI_DEF_CFA_REGISTER rsp
1154 decl PER_CPU_VAR(irq_count)
1155 #ifndef CONFIG_PREEMPT
1156 call xen_maybe_preempt_hcall
1157 #endif
1158 jmp error_exit
1159 CFI_ENDPROC
1160 END(xen_do_hypervisor_callback)
1161
1162 /*
1163 * Hypervisor uses this for application faults while it executes.
1164 * We get here for two reasons:
1165 * 1. Fault while reloading DS, ES, FS or GS
1166 * 2. Fault while executing IRET
1167 * Category 1 we do not need to fix up as Xen has already reloaded all segment
1168 * registers that could be reloaded and zeroed the others.
1169 * Category 2 we fix up by killing the current process. We cannot use the
1170 * normal Linux return path in this case because if we use the IRET hypercall
1171 * to pop the stack frame we end up in an infinite loop of failsafe callbacks.
1172 * We distinguish between categories by comparing each saved segment register
1173 * with its current contents: any discrepancy means we in category 1.
1174 */
1175 ENTRY(xen_failsafe_callback)
1176 INTR_FRAME 1 (6*8)
1177 /*CFI_REL_OFFSET gs,GS*/
1178 /*CFI_REL_OFFSET fs,FS*/
1179 /*CFI_REL_OFFSET es,ES*/
1180 /*CFI_REL_OFFSET ds,DS*/
1181 CFI_REL_OFFSET r11,8
1182 CFI_REL_OFFSET rcx,0
1183 movw %ds,%cx
1184 cmpw %cx,0x10(%rsp)
1185 CFI_REMEMBER_STATE
1186 jne 1f
1187 movw %es,%cx
1188 cmpw %cx,0x18(%rsp)
1189 jne 1f
1190 movw %fs,%cx
1191 cmpw %cx,0x20(%rsp)
1192 jne 1f
1193 movw %gs,%cx
1194 cmpw %cx,0x28(%rsp)
1195 jne 1f
1196 /* All segments match their saved values => Category 2 (Bad IRET). */
1197 movq (%rsp),%rcx
1198 CFI_RESTORE rcx
1199 movq 8(%rsp),%r11
1200 CFI_RESTORE r11
1201 addq $0x30,%rsp
1202 CFI_ADJUST_CFA_OFFSET -0x30
1203 pushq_cfi $0 /* RIP */
1204 pushq_cfi %r11
1205 pushq_cfi %rcx
1206 jmp general_protection
1207 CFI_RESTORE_STATE
1208 1: /* Segment mismatch => Category 1 (Bad segment). Retry the IRET. */
1209 movq (%rsp),%rcx
1210 CFI_RESTORE rcx
1211 movq 8(%rsp),%r11
1212 CFI_RESTORE r11
1213 addq $0x30,%rsp
1214 CFI_ADJUST_CFA_OFFSET -0x30
1215 pushq_cfi $-1 /* orig_ax = -1 => not a system call */
1216 ALLOC_PT_GPREGS_ON_STACK
1217 SAVE_C_REGS
1218 SAVE_EXTRA_REGS
1219 jmp error_exit
1220 CFI_ENDPROC
1221 END(xen_failsafe_callback)
1222
1223 apicinterrupt3 HYPERVISOR_CALLBACK_VECTOR \
1224 xen_hvm_callback_vector xen_evtchn_do_upcall
1225
1226 #endif /* CONFIG_XEN */
1227
1228 #if IS_ENABLED(CONFIG_HYPERV)
1229 apicinterrupt3 HYPERVISOR_CALLBACK_VECTOR \
1230 hyperv_callback_vector hyperv_vector_handler
1231 #endif /* CONFIG_HYPERV */
1232
1233 idtentry debug do_debug has_error_code=0 paranoid=1 shift_ist=DEBUG_STACK
1234 idtentry int3 do_int3 has_error_code=0 paranoid=1 shift_ist=DEBUG_STACK
1235 idtentry stack_segment do_stack_segment has_error_code=1
1236 #ifdef CONFIG_XEN
1237 idtentry xen_debug do_debug has_error_code=0
1238 idtentry xen_int3 do_int3 has_error_code=0
1239 idtentry xen_stack_segment do_stack_segment has_error_code=1
1240 #endif
1241 idtentry general_protection do_general_protection has_error_code=1
1242 trace_idtentry page_fault do_page_fault has_error_code=1
1243 #ifdef CONFIG_KVM_GUEST
1244 idtentry async_page_fault do_async_page_fault has_error_code=1
1245 #endif
1246 #ifdef CONFIG_X86_MCE
1247 idtentry machine_check has_error_code=0 paranoid=1 do_sym=*machine_check_vector(%rip)
1248 #endif
1249
1250 /*
1251 * Save all registers in pt_regs, and switch gs if needed.
1252 * Use slow, but surefire "are we in kernel?" check.
1253 * Return: ebx=0: need swapgs on exit, ebx=1: otherwise
1254 */
1255 ENTRY(paranoid_entry)
1256 XCPT_FRAME 1 15*8
1257 cld
1258 SAVE_C_REGS 8
1259 SAVE_EXTRA_REGS 8
1260 movl $1,%ebx
1261 movl $MSR_GS_BASE,%ecx
1262 rdmsr
1263 testl %edx,%edx
1264 js 1f /* negative -> in kernel */
1265 SWAPGS
1266 xorl %ebx,%ebx
1267 1: ret
1268 CFI_ENDPROC
1269 END(paranoid_entry)
1270
1271 /*
1272 * "Paranoid" exit path from exception stack. This is invoked
1273 * only on return from non-NMI IST interrupts that came
1274 * from kernel space.
1275 *
1276 * We may be returning to very strange contexts (e.g. very early
1277 * in syscall entry), so checking for preemption here would
1278 * be complicated. Fortunately, we there's no good reason
1279 * to try to handle preemption here.
1280 */
1281 /* On entry, ebx is "no swapgs" flag (1: don't need swapgs, 0: need it) */
1282 ENTRY(paranoid_exit)
1283 DEFAULT_FRAME
1284 DISABLE_INTERRUPTS(CLBR_NONE)
1285 TRACE_IRQS_OFF_DEBUG
1286 testl %ebx,%ebx /* swapgs needed? */
1287 jnz paranoid_exit_no_swapgs
1288 TRACE_IRQS_IRETQ
1289 SWAPGS_UNSAFE_STACK
1290 jmp paranoid_exit_restore
1291 paranoid_exit_no_swapgs:
1292 TRACE_IRQS_IRETQ_DEBUG
1293 paranoid_exit_restore:
1294 RESTORE_EXTRA_REGS
1295 RESTORE_C_REGS
1296 REMOVE_PT_GPREGS_FROM_STACK 8
1297 INTERRUPT_RETURN
1298 CFI_ENDPROC
1299 END(paranoid_exit)
1300
1301 /*
1302 * Save all registers in pt_regs, and switch gs if needed.
1303 * Return: ebx=0: need swapgs on exit, ebx=1: otherwise
1304 */
1305 ENTRY(error_entry)
1306 XCPT_FRAME 1 15*8
1307 cld
1308 SAVE_C_REGS 8
1309 SAVE_EXTRA_REGS 8
1310 xorl %ebx,%ebx
1311 testl $3,CS+8(%rsp)
1312 je error_kernelspace
1313 error_swapgs:
1314 SWAPGS
1315 error_sti:
1316 TRACE_IRQS_OFF
1317 ret
1318
1319 /*
1320 * There are two places in the kernel that can potentially fault with
1321 * usergs. Handle them here. B stepping K8s sometimes report a
1322 * truncated RIP for IRET exceptions returning to compat mode. Check
1323 * for these here too.
1324 */
1325 error_kernelspace:
1326 CFI_REL_OFFSET rcx, RCX+8
1327 incl %ebx
1328 leaq native_irq_return_iret(%rip),%rcx
1329 cmpq %rcx,RIP+8(%rsp)
1330 je error_bad_iret
1331 movl %ecx,%eax /* zero extend */
1332 cmpq %rax,RIP+8(%rsp)
1333 je bstep_iret
1334 cmpq $gs_change,RIP+8(%rsp)
1335 je error_swapgs
1336 jmp error_sti
1337
1338 bstep_iret:
1339 /* Fix truncated RIP */
1340 movq %rcx,RIP+8(%rsp)
1341 /* fall through */
1342
1343 error_bad_iret:
1344 SWAPGS
1345 mov %rsp,%rdi
1346 call fixup_bad_iret
1347 mov %rax,%rsp
1348 decl %ebx /* Return to usergs */
1349 jmp error_sti
1350 CFI_ENDPROC
1351 END(error_entry)
1352
1353
1354 /* On entry, ebx is "no swapgs" flag (1: don't need swapgs, 0: need it) */
1355 ENTRY(error_exit)
1356 DEFAULT_FRAME
1357 movl %ebx,%eax
1358 RESTORE_EXTRA_REGS
1359 DISABLE_INTERRUPTS(CLBR_NONE)
1360 TRACE_IRQS_OFF
1361 GET_THREAD_INFO(%rcx)
1362 testl %eax,%eax
1363 jne retint_kernel
1364 LOCKDEP_SYS_EXIT_IRQ
1365 movl TI_flags(%rcx),%edx
1366 movl $_TIF_WORK_MASK,%edi
1367 andl %edi,%edx
1368 jnz retint_careful
1369 jmp retint_swapgs
1370 CFI_ENDPROC
1371 END(error_exit)
1372
1373 /*
1374 * Test if a given stack is an NMI stack or not.
1375 */
1376 .macro test_in_nmi reg stack nmi_ret normal_ret
1377 cmpq %\reg, \stack
1378 ja \normal_ret
1379 subq $EXCEPTION_STKSZ, %\reg
1380 cmpq %\reg, \stack
1381 jb \normal_ret
1382 jmp \nmi_ret
1383 .endm
1384
1385 /* runs on exception stack */
1386 ENTRY(nmi)
1387 INTR_FRAME
1388 PARAVIRT_ADJUST_EXCEPTION_FRAME
1389 /*
1390 * We allow breakpoints in NMIs. If a breakpoint occurs, then
1391 * the iretq it performs will take us out of NMI context.
1392 * This means that we can have nested NMIs where the next
1393 * NMI is using the top of the stack of the previous NMI. We
1394 * can't let it execute because the nested NMI will corrupt the
1395 * stack of the previous NMI. NMI handlers are not re-entrant
1396 * anyway.
1397 *
1398 * To handle this case we do the following:
1399 * Check the a special location on the stack that contains
1400 * a variable that is set when NMIs are executing.
1401 * The interrupted task's stack is also checked to see if it
1402 * is an NMI stack.
1403 * If the variable is not set and the stack is not the NMI
1404 * stack then:
1405 * o Set the special variable on the stack
1406 * o Copy the interrupt frame into a "saved" location on the stack
1407 * o Copy the interrupt frame into a "copy" location on the stack
1408 * o Continue processing the NMI
1409 * If the variable is set or the previous stack is the NMI stack:
1410 * o Modify the "copy" location to jump to the repeate_nmi
1411 * o return back to the first NMI
1412 *
1413 * Now on exit of the first NMI, we first clear the stack variable
1414 * The NMI stack will tell any nested NMIs at that point that it is
1415 * nested. Then we pop the stack normally with iret, and if there was
1416 * a nested NMI that updated the copy interrupt stack frame, a
1417 * jump will be made to the repeat_nmi code that will handle the second
1418 * NMI.
1419 */
1420
1421 /* Use %rdx as out temp variable throughout */
1422 pushq_cfi %rdx
1423 CFI_REL_OFFSET rdx, 0
1424
1425 /*
1426 * If %cs was not the kernel segment, then the NMI triggered in user
1427 * space, which means it is definitely not nested.
1428 */
1429 cmpl $__KERNEL_CS, 16(%rsp)
1430 jne first_nmi
1431
1432 /*
1433 * Check the special variable on the stack to see if NMIs are
1434 * executing.
1435 */
1436 cmpl $1, -8(%rsp)
1437 je nested_nmi
1438
1439 /*
1440 * Now test if the previous stack was an NMI stack.
1441 * We need the double check. We check the NMI stack to satisfy the
1442 * race when the first NMI clears the variable before returning.
1443 * We check the variable because the first NMI could be in a
1444 * breakpoint routine using a breakpoint stack.
1445 */
1446 lea 6*8(%rsp), %rdx
1447 test_in_nmi rdx, 4*8(%rsp), nested_nmi, first_nmi
1448 CFI_REMEMBER_STATE
1449
1450 nested_nmi:
1451 /*
1452 * Do nothing if we interrupted the fixup in repeat_nmi.
1453 * It's about to repeat the NMI handler, so we are fine
1454 * with ignoring this one.
1455 */
1456 movq $repeat_nmi, %rdx
1457 cmpq 8(%rsp), %rdx
1458 ja 1f
1459 movq $end_repeat_nmi, %rdx
1460 cmpq 8(%rsp), %rdx
1461 ja nested_nmi_out
1462
1463 1:
1464 /* Set up the interrupted NMIs stack to jump to repeat_nmi */
1465 leaq -1*8(%rsp), %rdx
1466 movq %rdx, %rsp
1467 CFI_ADJUST_CFA_OFFSET 1*8
1468 leaq -10*8(%rsp), %rdx
1469 pushq_cfi $__KERNEL_DS
1470 pushq_cfi %rdx
1471 pushfq_cfi
1472 pushq_cfi $__KERNEL_CS
1473 pushq_cfi $repeat_nmi
1474
1475 /* Put stack back */
1476 addq $(6*8), %rsp
1477 CFI_ADJUST_CFA_OFFSET -6*8
1478
1479 nested_nmi_out:
1480 popq_cfi %rdx
1481 CFI_RESTORE rdx
1482
1483 /* No need to check faults here */
1484 INTERRUPT_RETURN
1485
1486 CFI_RESTORE_STATE
1487 first_nmi:
1488 /*
1489 * Because nested NMIs will use the pushed location that we
1490 * stored in rdx, we must keep that space available.
1491 * Here's what our stack frame will look like:
1492 * +-------------------------+
1493 * | original SS |
1494 * | original Return RSP |
1495 * | original RFLAGS |
1496 * | original CS |
1497 * | original RIP |
1498 * +-------------------------+
1499 * | temp storage for rdx |
1500 * +-------------------------+
1501 * | NMI executing variable |
1502 * +-------------------------+
1503 * | copied SS |
1504 * | copied Return RSP |
1505 * | copied RFLAGS |
1506 * | copied CS |
1507 * | copied RIP |
1508 * +-------------------------+
1509 * | Saved SS |
1510 * | Saved Return RSP |
1511 * | Saved RFLAGS |
1512 * | Saved CS |
1513 * | Saved RIP |
1514 * +-------------------------+
1515 * | pt_regs |
1516 * +-------------------------+
1517 *
1518 * The saved stack frame is used to fix up the copied stack frame
1519 * that a nested NMI may change to make the interrupted NMI iret jump
1520 * to the repeat_nmi. The original stack frame and the temp storage
1521 * is also used by nested NMIs and can not be trusted on exit.
1522 */
1523 /* Do not pop rdx, nested NMIs will corrupt that part of the stack */
1524 movq (%rsp), %rdx
1525 CFI_RESTORE rdx
1526
1527 /* Set the NMI executing variable on the stack. */
1528 pushq_cfi $1
1529
1530 /*
1531 * Leave room for the "copied" frame
1532 */
1533 subq $(5*8), %rsp
1534 CFI_ADJUST_CFA_OFFSET 5*8
1535
1536 /* Copy the stack frame to the Saved frame */
1537 .rept 5
1538 pushq_cfi 11*8(%rsp)
1539 .endr
1540 CFI_DEF_CFA_OFFSET 5*8
1541
1542 /* Everything up to here is safe from nested NMIs */
1543
1544 /*
1545 * If there was a nested NMI, the first NMI's iret will return
1546 * here. But NMIs are still enabled and we can take another
1547 * nested NMI. The nested NMI checks the interrupted RIP to see
1548 * if it is between repeat_nmi and end_repeat_nmi, and if so
1549 * it will just return, as we are about to repeat an NMI anyway.
1550 * This makes it safe to copy to the stack frame that a nested
1551 * NMI will update.
1552 */
1553 repeat_nmi:
1554 /*
1555 * Update the stack variable to say we are still in NMI (the update
1556 * is benign for the non-repeat case, where 1 was pushed just above
1557 * to this very stack slot).
1558 */
1559 movq $1, 10*8(%rsp)
1560
1561 /* Make another copy, this one may be modified by nested NMIs */
1562 addq $(10*8), %rsp
1563 CFI_ADJUST_CFA_OFFSET -10*8
1564 .rept 5
1565 pushq_cfi -6*8(%rsp)
1566 .endr
1567 subq $(5*8), %rsp
1568 CFI_DEF_CFA_OFFSET 5*8
1569 end_repeat_nmi:
1570
1571 /*
1572 * Everything below this point can be preempted by a nested
1573 * NMI if the first NMI took an exception and reset our iret stack
1574 * so that we repeat another NMI.
1575 */
1576 pushq_cfi $-1 /* ORIG_RAX: no syscall to restart */
1577 ALLOC_PT_GPREGS_ON_STACK
1578
1579 /*
1580 * Use paranoid_entry to handle SWAPGS, but no need to use paranoid_exit
1581 * as we should not be calling schedule in NMI context.
1582 * Even with normal interrupts enabled. An NMI should not be
1583 * setting NEED_RESCHED or anything that normal interrupts and
1584 * exceptions might do.
1585 */
1586 call paranoid_entry
1587 DEFAULT_FRAME 0
1588
1589 /*
1590 * Save off the CR2 register. If we take a page fault in the NMI then
1591 * it could corrupt the CR2 value. If the NMI preempts a page fault
1592 * handler before it was able to read the CR2 register, and then the
1593 * NMI itself takes a page fault, the page fault that was preempted
1594 * will read the information from the NMI page fault and not the
1595 * origin fault. Save it off and restore it if it changes.
1596 * Use the r12 callee-saved register.
1597 */
1598 movq %cr2, %r12
1599
1600 /* paranoidentry do_nmi, 0; without TRACE_IRQS_OFF */
1601 movq %rsp,%rdi
1602 movq $-1,%rsi
1603 call do_nmi
1604
1605 /* Did the NMI take a page fault? Restore cr2 if it did */
1606 movq %cr2, %rcx
1607 cmpq %rcx, %r12
1608 je 1f
1609 movq %r12, %cr2
1610 1:
1611
1612 testl %ebx,%ebx /* swapgs needed? */
1613 jnz nmi_restore
1614 nmi_swapgs:
1615 SWAPGS_UNSAFE_STACK
1616 nmi_restore:
1617 RESTORE_EXTRA_REGS
1618 RESTORE_C_REGS
1619 /* Pop the extra iret frame at once */
1620 REMOVE_PT_GPREGS_FROM_STACK 6*8
1621
1622 /* Clear the NMI executing stack variable */
1623 movq $0, 5*8(%rsp)
1624 jmp irq_return
1625 CFI_ENDPROC
1626 END(nmi)
1627
1628 ENTRY(ignore_sysret)
1629 CFI_STARTPROC
1630 mov $-ENOSYS,%eax
1631 sysret
1632 CFI_ENDPROC
1633 END(ignore_sysret)
1634
This page took 0.063957 seconds and 4 git commands to generate.