entry_64.S 43.0 KB
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/*
 *  linux/arch/x86_64/entry.S
 *
 *  Copyright (C) 1991, 1992  Linus Torvalds
 *  Copyright (C) 2000, 2001, 2002  Andi Kleen SuSE Labs
 *  Copyright (C) 2000  Pavel Machek <pavel@suse.cz>
 */

/*
 * entry.S contains the system-call and fault low-level handling routines.
 *
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 * Some of this is documented in Documentation/x86/entry_64.txt
 *
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 * NOTE: This code handles signal-recognition, which happens every time
 * after an interrupt and after each system call.
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 *
 * Normal syscalls and interrupts don't save a full stack frame, this is
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 * only done for syscall tracing, signals or fork/exec et.al.
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 *
 * A note on terminology:
 * - top of stack: Architecture defined interrupt frame from SS to RIP
 * at the top of the kernel process stack.
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 * - partial stack frame: partially saved registers up to R11.
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 * - full stack frame: Like partial stack frame, but all register saved.
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 *
 * Some macro usage:
 * - CFI macros are used to generate dwarf2 unwind information for better
 * backtraces. They don't change any code.
 * - SAVE_ALL/RESTORE_ALL - Save/restore all registers
 * - SAVE_ARGS/RESTORE_ARGS - Save/restore registers that C functions modify.
 * There are unfortunately lots of special cases where some registers
 * not touched. The macro is a big mess that should be cleaned up.
 * - SAVE_REST/RESTORE_REST - Handle the registers not saved by SAVE_ARGS.
 * Gives a full stack frame.
 * - ENTRY/END Define functions in the symbol table.
 * - FIXUP_TOP_OF_STACK/RESTORE_TOP_OF_STACK - Fix up the hardware stack
 * frame that is otherwise undefined after a SYSCALL
 * - TRACE_IRQ_* - Trace hard interrupt state for lock debugging.
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 * - idtentry - Define exception entry points.
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 */

#include <linux/linkage.h>
#include <asm/segment.h>
#include <asm/cache.h>
#include <asm/errno.h>
#include <asm/dwarf2.h>
#include <asm/calling.h>
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#include <asm/asm-offsets.h>
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#include <asm/msr.h>
#include <asm/unistd.h>
#include <asm/thread_info.h>
#include <asm/hw_irq.h>
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#include <asm/page_types.h>
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#include <asm/irqflags.h>
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#include <asm/paravirt.h>
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#include <asm/percpu.h>
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#include <asm/asm.h>
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#include <asm/context_tracking.h>
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#include <asm/smap.h>
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#include <asm/pgtable_types.h>
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#include <linux/err.h>
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/* Avoid __ASSEMBLER__'ifying <linux/audit.h> just for this.  */
#include <linux/elf-em.h>
#define AUDIT_ARCH_X86_64	(EM_X86_64|__AUDIT_ARCH_64BIT|__AUDIT_ARCH_LE)
#define __AUDIT_ARCH_64BIT 0x80000000
#define __AUDIT_ARCH_LE	   0x40000000

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	.code64
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	.section .entry.text, "ax"

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#ifndef CONFIG_PREEMPT
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#define retint_kernel retint_restore_args
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#endif
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#ifdef CONFIG_PARAVIRT
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ENTRY(native_usergs_sysret64)
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	swapgs
	sysretq
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ENDPROC(native_usergs_sysret64)
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#endif /* CONFIG_PARAVIRT */

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.macro TRACE_IRQS_IRETQ offset=ARGOFFSET
#ifdef CONFIG_TRACE_IRQFLAGS
	bt   $9,EFLAGS-\offset(%rsp)	/* interrupts off? */
	jnc  1f
	TRACE_IRQS_ON
1:
#endif
.endm

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/*
 * When dynamic function tracer is enabled it will add a breakpoint
 * to all locations that it is about to modify, sync CPUs, update
 * all the code, sync CPUs, then remove the breakpoints. In this time
 * if lockdep is enabled, it might jump back into the debug handler
 * outside the updating of the IST protection. (TRACE_IRQS_ON/OFF).
 *
 * We need to change the IDT table before calling TRACE_IRQS_ON/OFF to
 * make sure the stack pointer does not get reset back to the top
 * of the debug stack, and instead just reuses the current stack.
 */
#if defined(CONFIG_DYNAMIC_FTRACE) && defined(CONFIG_TRACE_IRQFLAGS)

.macro TRACE_IRQS_OFF_DEBUG
	call debug_stack_set_zero
	TRACE_IRQS_OFF
	call debug_stack_reset
.endm

.macro TRACE_IRQS_ON_DEBUG
	call debug_stack_set_zero
	TRACE_IRQS_ON
	call debug_stack_reset
.endm

.macro TRACE_IRQS_IRETQ_DEBUG offset=ARGOFFSET
	bt   $9,EFLAGS-\offset(%rsp)	/* interrupts off? */
	jnc  1f
	TRACE_IRQS_ON_DEBUG
1:
.endm

#else
# define TRACE_IRQS_OFF_DEBUG		TRACE_IRQS_OFF
# define TRACE_IRQS_ON_DEBUG		TRACE_IRQS_ON
# define TRACE_IRQS_IRETQ_DEBUG		TRACE_IRQS_IRETQ
#endif

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/*
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 * C code is not supposed to know about undefined top of stack. Every time
 * a C function with an pt_regs argument is called from the SYSCALL based
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 * fast path FIXUP_TOP_OF_STACK is needed.
 * RESTORE_TOP_OF_STACK syncs the syscall state after any possible ptregs
 * manipulation.
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 */

	/* %rsp:at FRAMEEND */
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	.macro FIXUP_TOP_OF_STACK tmp offset=0
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	movq PER_CPU_VAR(old_rsp),\tmp
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	movq \tmp,RSP+\offset(%rsp)
	movq $__USER_DS,SS+\offset(%rsp)
	movq $__USER_CS,CS+\offset(%rsp)
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	movq RIP+\offset(%rsp),\tmp  /* get rip */
	movq \tmp,RCX+\offset(%rsp)  /* copy it to rcx as sysret would do */
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	movq R11+\offset(%rsp),\tmp  /* get eflags */
	movq \tmp,EFLAGS+\offset(%rsp)
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	.endm

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	.macro RESTORE_TOP_OF_STACK tmp offset=0
	movq RSP+\offset(%rsp),\tmp
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	movq \tmp,PER_CPU_VAR(old_rsp)
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	movq EFLAGS+\offset(%rsp),\tmp
	movq \tmp,R11+\offset(%rsp)
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	.endm

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/*
 * initial frame state for interrupts (and exceptions without error code)
 */
	.macro EMPTY_FRAME start=1 offset=0
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	.if \start
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	CFI_STARTPROC simple
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	CFI_SIGNAL_FRAME
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	CFI_DEF_CFA rsp,8+\offset
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	.else
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	CFI_DEF_CFA_OFFSET 8+\offset
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	.endif
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	.endm
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/*
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 * initial frame state for interrupts (and exceptions without error code)
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 */
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	.macro INTR_FRAME start=1 offset=0
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	EMPTY_FRAME \start, SS+8+\offset-RIP
	/*CFI_REL_OFFSET ss, SS+\offset-RIP*/
	CFI_REL_OFFSET rsp, RSP+\offset-RIP
	/*CFI_REL_OFFSET rflags, EFLAGS+\offset-RIP*/
	/*CFI_REL_OFFSET cs, CS+\offset-RIP*/
	CFI_REL_OFFSET rip, RIP+\offset-RIP
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	.endm

/*
 * initial frame state for exceptions with error code (and interrupts
 * with vector already pushed)
 */
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	.macro XCPT_FRAME start=1 offset=0
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	INTR_FRAME \start, RIP+\offset-ORIG_RAX
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	.endm

/*
 * frame that enables calling into C.
 */
	.macro PARTIAL_FRAME start=1 offset=0
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	XCPT_FRAME \start, ORIG_RAX+\offset-ARGOFFSET
	CFI_REL_OFFSET rdi, RDI+\offset-ARGOFFSET
	CFI_REL_OFFSET rsi, RSI+\offset-ARGOFFSET
	CFI_REL_OFFSET rdx, RDX+\offset-ARGOFFSET
	CFI_REL_OFFSET rcx, RCX+\offset-ARGOFFSET
	CFI_REL_OFFSET rax, RAX+\offset-ARGOFFSET
	CFI_REL_OFFSET r8, R8+\offset-ARGOFFSET
	CFI_REL_OFFSET r9, R9+\offset-ARGOFFSET
	CFI_REL_OFFSET r10, R10+\offset-ARGOFFSET
	CFI_REL_OFFSET r11, R11+\offset-ARGOFFSET
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	.endm

/*
 * frame that enables passing a complete pt_regs to a C function.
 */
	.macro DEFAULT_FRAME start=1 offset=0
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	PARTIAL_FRAME \start, R11+\offset-R15
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	CFI_REL_OFFSET rbx, RBX+\offset
	CFI_REL_OFFSET rbp, RBP+\offset
	CFI_REL_OFFSET r12, R12+\offset
	CFI_REL_OFFSET r13, R13+\offset
	CFI_REL_OFFSET r14, R14+\offset
	CFI_REL_OFFSET r15, R15+\offset
	.endm
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ENTRY(save_paranoid)
	XCPT_FRAME 1 RDI+8
	cld
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	movq %rdi, RDI+8(%rsp)
	movq %rsi, RSI+8(%rsp)
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	movq_cfi rdx, RDX+8
	movq_cfi rcx, RCX+8
	movq_cfi rax, RAX+8
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	movq %r8, R8+8(%rsp)
	movq %r9, R9+8(%rsp)
	movq %r10, R10+8(%rsp)
	movq %r11, R11+8(%rsp)
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	movq_cfi rbx, RBX+8
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	movq %rbp, RBP+8(%rsp)
	movq %r12, R12+8(%rsp)
	movq %r13, R13+8(%rsp)
	movq %r14, R14+8(%rsp)
	movq %r15, R15+8(%rsp)
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	movl $1,%ebx
	movl $MSR_GS_BASE,%ecx
	rdmsr
	testl %edx,%edx
	js 1f	/* negative -> in kernel */
	SWAPGS
	xorl %ebx,%ebx
1:	ret
	CFI_ENDPROC
END(save_paranoid)

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/*
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 * A newly forked process directly context switches into this address.
 *
 * rdi: prev task we switched from
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 */
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ENTRY(ret_from_fork)
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	DEFAULT_FRAME
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	LOCK ; btr $TIF_FORK,TI_flags(%r8)

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	pushq_cfi $0x0002
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	popfq_cfi				# reset kernel eflags
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	call schedule_tail			# rdi: 'prev' task parameter

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	GET_THREAD_INFO(%rcx)
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	RESTORE_REST
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	testl $3, CS-ARGOFFSET(%rsp)		# from kernel_thread?
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	jz   1f
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	/*
	 * By the time we get here, we have no idea whether our pt_regs,
	 * ti flags, and ti status came from the 64-bit SYSCALL fast path,
	 * the slow path, or one of the ia32entry paths.
	 * Use int_ret_from_sys_call to return, since it can safely handle
	 * all of the above.
	 */
	jmp  int_ret_from_sys_call
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1:
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	subq $REST_SKIP, %rsp	# leave space for volatiles
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	CFI_ADJUST_CFA_OFFSET	REST_SKIP
	movq %rbp, %rdi
	call *%rbx
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	movl $0, RAX(%rsp)
	RESTORE_REST
	jmp int_ret_from_sys_call
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	CFI_ENDPROC
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END(ret_from_fork)
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/*
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 * System call entry. Up to 6 arguments in registers are supported.
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 *
 * SYSCALL does not save anything on the stack and does not change the
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 * stack pointer.  However, it does mask the flags register for us, so
 * CLD and CLAC are not needed.
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 */
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/*
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 * Register setup:
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 * rax  system call number
 * rdi  arg0
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 * rcx  return address for syscall/sysret, C arg3
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 * rsi  arg1
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 * rdx  arg2
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 * r10  arg3 	(--> moved to rcx for C)
 * r8   arg4
 * r9   arg5
 * r11  eflags for syscall/sysret, temporary for C
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 * r12-r15,rbp,rbx saved by C code, not touched.
 *
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 * Interrupts are off on entry.
 * Only called from user space.
 *
 * XXX	if we had a free scratch register we could save the RSP into the stack frame
 *      and report it properly in ps. Unfortunately we haven't.
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 *
 * When user can change the frames always force IRET. That is because
 * it deals with uncanonical addresses better. SYSRET has trouble
 * with them due to bugs in both AMD and Intel CPUs.
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 */
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ENTRY(system_call)
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	CFI_STARTPROC	simple
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	CFI_SIGNAL_FRAME
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	CFI_DEF_CFA	rsp,KERNEL_STACK_OFFSET
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	CFI_REGISTER	rip,rcx
	/*CFI_REGISTER	rflags,r11*/
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	SWAPGS_UNSAFE_STACK
	/*
	 * A hypervisor implementation might want to use a label
	 * after the swapgs, so that it can do the swapgs
	 * for the guest and jump here on syscall.
	 */
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GLOBAL(system_call_after_swapgs)
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	movq	%rsp,PER_CPU_VAR(old_rsp)
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	movq	PER_CPU_VAR(kernel_stack),%rsp
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	/*
	 * No need to follow this irqs off/on section - it's straight
	 * and short:
	 */
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	ENABLE_INTERRUPTS(CLBR_NONE)
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	SAVE_ARGS 8, 0, rax_enosys=1
	movq_cfi rax,(ORIG_RAX-ARGOFFSET)
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	movq  %rcx,RIP-ARGOFFSET(%rsp)
	CFI_REL_OFFSET rip,RIP-ARGOFFSET
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	testl $_TIF_WORK_SYSCALL_ENTRY,TI_flags+THREAD_INFO(%rsp,RIP-ARGOFFSET)
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	jnz tracesys
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system_call_fastpath:
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#if __SYSCALL_MASK == ~0
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	cmpq $__NR_syscall_max,%rax
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#else
	andl $__SYSCALL_MASK,%eax
	cmpl $__NR_syscall_max,%eax
#endif
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	ja ret_from_sys_call  /* and return regs->ax */
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	movq %r10,%rcx
	call *sys_call_table(,%rax,8)  # XXX:	 rip relative
	movq %rax,RAX-ARGOFFSET(%rsp)
/*
 * Syscall return path ending with SYSRET (fast path)
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 * Has incomplete stack frame and undefined top of stack.
 */
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ret_from_sys_call:
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	LOCKDEP_SYS_EXIT
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	DISABLE_INTERRUPTS(CLBR_NONE)
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	TRACE_IRQS_OFF
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	/*
	 * We must check ti flags with interrupts (or at least preemption)
	 * off because we must *never* return to userspace without
	 * processing exit work that is enqueued if we're preempted here.
	 * In particular, returning to userspace with any of the one-shot
	 * flags (TIF_NOTIFY_RESUME, TIF_USER_RETURN_NOTIFY, etc) set is
	 * very bad.
	 */
	testl $_TIF_ALLWORK_MASK,TI_flags+THREAD_INFO(%rsp,RIP-ARGOFFSET)
	jnz int_ret_from_sys_call_fixup	/* Go the the slow path */

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	CFI_REMEMBER_STATE
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	/*
	 * sysretq will re-enable interrupts:
	 */
	TRACE_IRQS_ON
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	movq RIP-ARGOFFSET(%rsp),%rcx
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	CFI_REGISTER	rip,rcx
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	RESTORE_ARGS 1,-ARG_SKIP,0
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	/*CFI_REGISTER	rflags,r11*/
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	movq	PER_CPU_VAR(old_rsp), %rsp
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	USERGS_SYSRET64
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	CFI_RESTORE_STATE
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int_ret_from_sys_call_fixup:
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	FIXUP_TOP_OF_STACK %r11, -ARGOFFSET
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	jmp int_ret_from_sys_call_irqs_off
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	/* Do syscall tracing */
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tracesys:
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	leaq -REST_SKIP(%rsp), %rdi
	movq $AUDIT_ARCH_X86_64, %rsi
	call syscall_trace_enter_phase1
	test %rax, %rax
	jnz tracesys_phase2		/* if needed, run the slow path */
	LOAD_ARGS 0			/* else restore clobbered regs */
	jmp system_call_fastpath	/*      and return to the fast path */

tracesys_phase2:
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	SAVE_REST
	FIXUP_TOP_OF_STACK %rdi
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	movq %rsp, %rdi
	movq $AUDIT_ARCH_X86_64, %rsi
	movq %rax,%rdx
	call syscall_trace_enter_phase2

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	/*
	 * Reload arg registers from stack in case ptrace changed them.
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	 * We don't reload %rax because syscall_trace_entry_phase2() returned
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	 * the value it wants us to use in the table lookup.
	 */
	LOAD_ARGS ARGOFFSET, 1
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	RESTORE_REST
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#if __SYSCALL_MASK == ~0
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	cmpq $__NR_syscall_max,%rax
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#else
	andl $__SYSCALL_MASK,%eax
	cmpl $__NR_syscall_max,%eax
#endif
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	ja   int_ret_from_sys_call	/* RAX(%rsp) is already set */
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	movq %r10,%rcx	/* fixup for C */
	call *sys_call_table(,%rax,8)
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	movq %rax,RAX-ARGOFFSET(%rsp)
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	/* Use IRET because user could have changed frame */
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/*
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 * Syscall return path ending with IRET.
 * Has correct top of stack, but partial stack frame.
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 */
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GLOBAL(int_ret_from_sys_call)
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	DISABLE_INTERRUPTS(CLBR_NONE)
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	TRACE_IRQS_OFF
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int_ret_from_sys_call_irqs_off:
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	movl $_TIF_ALLWORK_MASK,%edi
	/* edi:	mask to check */
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GLOBAL(int_with_check)
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	LOCKDEP_SYS_EXIT_IRQ
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	GET_THREAD_INFO(%rcx)
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	movl TI_flags(%rcx),%edx
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	andl %edi,%edx
	jnz   int_careful
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	andl    $~TS_COMPAT,TI_status(%rcx)
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	jmp   retint_swapgs

	/* Either reschedule or signal or syscall exit tracking needed. */
	/* First do a reschedule test. */
	/* edx:	work, edi: workmask */
int_careful:
	bt $TIF_NEED_RESCHED,%edx
	jnc  int_very_careful
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	TRACE_IRQS_ON
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	ENABLE_INTERRUPTS(CLBR_NONE)
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	pushq_cfi %rdi
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	SCHEDULE_USER
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	popq_cfi %rdi
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	DISABLE_INTERRUPTS(CLBR_NONE)
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	TRACE_IRQS_OFF
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	jmp int_with_check

	/* handle signals and tracing -- both require a full stack frame */
int_very_careful:
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	TRACE_IRQS_ON
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	ENABLE_INTERRUPTS(CLBR_NONE)
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int_check_syscall_exit_work:
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	SAVE_REST
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	/* Check for syscall exit trace */
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	testl $_TIF_WORK_SYSCALL_EXIT,%edx
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	jz int_signal
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	pushq_cfi %rdi
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	leaq 8(%rsp),%rdi	# &ptregs -> arg1
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	call syscall_trace_leave
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	popq_cfi %rdi
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	andl $~(_TIF_WORK_SYSCALL_EXIT|_TIF_SYSCALL_EMU),%edi
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	jmp int_restore_rest
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int_signal:
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	testl $_TIF_DO_NOTIFY_MASK,%edx
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	jz 1f
	movq %rsp,%rdi		# &ptregs -> arg1
	xorl %esi,%esi		# oldset -> arg2
	call do_notify_resume
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1:	movl $_TIF_WORK_MASK,%edi
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int_restore_rest:
	RESTORE_REST
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	DISABLE_INTERRUPTS(CLBR_NONE)
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	TRACE_IRQS_OFF
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	jmp int_with_check
	CFI_ENDPROC
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END(system_call)
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	.macro FORK_LIKE func
ENTRY(stub_\func)
	CFI_STARTPROC
	popq	%r11			/* save return address */
	PARTIAL_FRAME 0
	SAVE_REST
	pushq	%r11			/* put it back on stack */
	FIXUP_TOP_OF_STACK %r11, 8
	DEFAULT_FRAME 0 8		/* offset 8: return address */
	call sys_\func
	RESTORE_TOP_OF_STACK %r11, 8
	ret $REST_SKIP		/* pop extended registers */
	CFI_ENDPROC
END(stub_\func)
	.endm

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	.macro FIXED_FRAME label,func
ENTRY(\label)
	CFI_STARTPROC
	PARTIAL_FRAME 0 8		/* offset 8: return address */
	FIXUP_TOP_OF_STACK %r11, 8-ARGOFFSET
	call \func
	RESTORE_TOP_OF_STACK %r11, 8-ARGOFFSET
	ret
	CFI_ENDPROC
END(\label)
	.endm

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	FORK_LIKE  clone
	FORK_LIKE  fork
	FORK_LIKE  vfork
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	FIXED_FRAME stub_iopl, sys_iopl
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ENTRY(stub_execve)
	CFI_STARTPROC
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	addq $8, %rsp
	PARTIAL_FRAME 0
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	SAVE_REST
	FIXUP_TOP_OF_STACK %r11
	call sys_execve
	movq %rax,RAX(%rsp)
	RESTORE_REST
	jmp int_ret_from_sys_call
	CFI_ENDPROC
546
END(stub_execve)
547

D
David Drysdale 已提交
548 549 550 551 552 553 554 555 556 557 558 559 560 561
ENTRY(stub_execveat)
	CFI_STARTPROC
	addq $8, %rsp
	PARTIAL_FRAME 0
	SAVE_REST
	FIXUP_TOP_OF_STACK %r11
	call sys_execveat
	RESTORE_TOP_OF_STACK %r11
	movq %rax,RAX(%rsp)
	RESTORE_REST
	jmp int_ret_from_sys_call
	CFI_ENDPROC
END(stub_execveat)

L
Linus Torvalds 已提交
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/*
 * sigreturn is special because it needs to restore all registers on return.
 * This cannot be done with SYSRET, so use the IRET return path instead.
565
 */
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ENTRY(stub_rt_sigreturn)
	CFI_STARTPROC
568
	addq $8, %rsp
569
	PARTIAL_FRAME 0
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	SAVE_REST
	FIXUP_TOP_OF_STACK %r11
	call sys_rt_sigreturn
	movq %rax,RAX(%rsp) # fixme, this could be done at the higher layer
	RESTORE_REST
	jmp int_ret_from_sys_call
	CFI_ENDPROC
577
END(stub_rt_sigreturn)
L
Linus Torvalds 已提交
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579 580 581 582 583 584 585 586 587 588 589 590 591 592
#ifdef CONFIG_X86_X32_ABI
ENTRY(stub_x32_rt_sigreturn)
	CFI_STARTPROC
	addq $8, %rsp
	PARTIAL_FRAME 0
	SAVE_REST
	FIXUP_TOP_OF_STACK %r11
	call sys32_x32_rt_sigreturn
	movq %rax,RAX(%rsp) # fixme, this could be done at the higher layer
	RESTORE_REST
	jmp int_ret_from_sys_call
	CFI_ENDPROC
END(stub_x32_rt_sigreturn)

H
H. Peter Anvin 已提交
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ENTRY(stub_x32_execve)
	CFI_STARTPROC
	addq $8, %rsp
	PARTIAL_FRAME 0
	SAVE_REST
	FIXUP_TOP_OF_STACK %r11
599
	call compat_sys_execve
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H. Peter Anvin 已提交
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	RESTORE_TOP_OF_STACK %r11
	movq %rax,RAX(%rsp)
	RESTORE_REST
	jmp int_ret_from_sys_call
	CFI_ENDPROC
END(stub_x32_execve)

D
David Drysdale 已提交
607 608 609 610 611 612 613 614 615 616 617 618 619 620
ENTRY(stub_x32_execveat)
	CFI_STARTPROC
	addq $8, %rsp
	PARTIAL_FRAME 0
	SAVE_REST
	FIXUP_TOP_OF_STACK %r11
	call compat_sys_execveat
	RESTORE_TOP_OF_STACK %r11
	movq %rax,RAX(%rsp)
	RESTORE_REST
	jmp int_ret_from_sys_call
	CFI_ENDPROC
END(stub_x32_execveat)

621 622
#endif

623 624 625 626 627 628 629
/*
 * Build the entry stubs and pointer table with some assembler magic.
 * We pack 7 stubs into a single 32-byte chunk, which will fit in a
 * single cache line on all modern x86 implementations.
 */
	.section .init.rodata,"a"
ENTRY(interrupt)
J
Jiri Olsa 已提交
630
	.section .entry.text
631 632 633 634 635
	.p2align 5
	.p2align CONFIG_X86_L1_CACHE_SHIFT
ENTRY(irq_entries_start)
	INTR_FRAME
vector=FIRST_EXTERNAL_VECTOR
636
.rept (FIRST_SYSTEM_VECTOR-FIRST_EXTERNAL_VECTOR+6)/7
637 638
	.balign 32
  .rept	7
639
    .if vector < FIRST_SYSTEM_VECTOR
640
      .if vector <> FIRST_EXTERNAL_VECTOR
641 642
	CFI_ADJUST_CFA_OFFSET -8
      .endif
643
1:	pushq_cfi $(~vector+0x80)	/* Note: always in signed byte range */
644
      .if ((vector-FIRST_EXTERNAL_VECTOR)%7) <> 6
645 646 647 648
	jmp 2f
      .endif
      .previous
	.quad 1b
J
Jiri Olsa 已提交
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      .section .entry.text
650 651 652 653 654 655 656 657 658 659 660 661
vector=vector+1
    .endif
  .endr
2:	jmp common_interrupt
.endr
	CFI_ENDPROC
END(irq_entries_start)

.previous
END(interrupt)
.previous

662
/*
L
Linus Torvalds 已提交
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 * Interrupt entry/exit.
 *
 * Interrupt entry points save only callee clobbered registers in fast path.
666 667 668
 *
 * Entry runs with interrupts off.
 */
L
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669

670
/* 0(%rsp): ~(interrupt number) */
L
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671
	.macro interrupt func
672 673 674
	/* reserve pt_regs for scratch regs and rbp */
	subq $ORIG_RAX-RBP, %rsp
	CFI_ADJUST_CFA_OFFSET ORIG_RAX-RBP
675 676 677 678 679 680 681 682 683 684 685 686 687 688 689 690 691 692 693 694 695 696 697 698 699 700 701 702 703 704 705 706 707 708 709 710 711 712 713 714 715 716
	cld
	/* start from rbp in pt_regs and jump over */
	movq_cfi rdi, (RDI-RBP)
	movq_cfi rsi, (RSI-RBP)
	movq_cfi rdx, (RDX-RBP)
	movq_cfi rcx, (RCX-RBP)
	movq_cfi rax, (RAX-RBP)
	movq_cfi  r8,  (R8-RBP)
	movq_cfi  r9,  (R9-RBP)
	movq_cfi r10, (R10-RBP)
	movq_cfi r11, (R11-RBP)

	/* Save rbp so that we can unwind from get_irq_regs() */
	movq_cfi rbp, 0

	/* Save previous stack value */
	movq %rsp, %rsi

	leaq -RBP(%rsp),%rdi	/* arg1 for handler */
	testl $3, CS-RBP(%rsi)
	je 1f
	SWAPGS
	/*
	 * irq_count is used to check if a CPU is already on an interrupt stack
	 * or not. While this is essentially redundant with preempt_count it is
	 * a little cheaper to use a separate counter in the PDA (short of
	 * moving irq_enter into assembly, which would be too much work)
	 */
1:	incl PER_CPU_VAR(irq_count)
	cmovzq PER_CPU_VAR(irq_stack_ptr),%rsp
	CFI_DEF_CFA_REGISTER	rsi

	/* Store previous stack value */
	pushq %rsi
	CFI_ESCAPE	0x0f /* DW_CFA_def_cfa_expression */, 6, \
			0x77 /* DW_OP_breg7 */, 0, \
			0x06 /* DW_OP_deref */, \
			0x08 /* DW_OP_const1u */, SS+8-RBP, \
			0x22 /* DW_OP_plus */
	/* We entered an interrupt context - irqs are off: */
	TRACE_IRQS_OFF

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	call \func
	.endm

720 721 722 723
	/*
	 * The interrupt stubs push (~vector+0x80) onto the stack and
	 * then jump to common_interrupt.
	 */
724 725
	.p2align CONFIG_X86_L1_CACHE_SHIFT
common_interrupt:
726
	XCPT_FRAME
727
	ASM_CLAC
728
	addq $-0x80,(%rsp)		/* Adjust vector to [-256,-1] range */
L
Linus Torvalds 已提交
729
	interrupt do_IRQ
730
	/* 0(%rsp): old_rsp-ARGOFFSET */
731
ret_from_intr:
732
	DISABLE_INTERRUPTS(CLBR_NONE)
733
	TRACE_IRQS_OFF
734
	decl PER_CPU_VAR(irq_count)
735

736 737
	/* Restore saved previous stack */
	popq %rsi
738
	CFI_DEF_CFA rsi,SS+8-RBP	/* reg/off reset after def_cfa_expr */
739
	leaq ARGOFFSET-RBP(%rsi), %rsp
740
	CFI_DEF_CFA_REGISTER	rsp
741
	CFI_ADJUST_CFA_OFFSET	RBP-ARGOFFSET
742

743
exit_intr:
L
Linus Torvalds 已提交
744 745 746
	GET_THREAD_INFO(%rcx)
	testl $3,CS-ARGOFFSET(%rsp)
	je retint_kernel
747

L
Linus Torvalds 已提交
748 749 750 751
	/* Interrupt came from user space */
	/*
	 * Has a correct top of stack, but a partial stack frame
	 * %rcx: thread info. Interrupts off.
752
	 */
L
Linus Torvalds 已提交
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retint_with_reschedule:
	movl $_TIF_WORK_MASK,%edi
755
retint_check:
756
	LOCKDEP_SYS_EXIT_IRQ
G
Glauber Costa 已提交
757
	movl TI_flags(%rcx),%edx
L
Linus Torvalds 已提交
758
	andl %edi,%edx
759
	CFI_REMEMBER_STATE
L
Linus Torvalds 已提交
760
	jnz  retint_careful
761 762

retint_swapgs:		/* return to user-space */
763 764 765
	/*
	 * The iretq could re-enable interrupts:
	 */
766
	DISABLE_INTERRUPTS(CLBR_ANY)
767
	TRACE_IRQS_IRETQ
768 769 770 771 772 773 774 775 776 777 778 779 780 781 782 783 784 785 786 787 788 789 790 791 792 793 794 795 796 797 798 799 800 801 802 803 804 805 806 807 808 809 810 811 812 813 814 815 816 817 818 819 820 821

	/*
	 * Try to use SYSRET instead of IRET if we're returning to
	 * a completely clean 64-bit userspace context.
	 */
	movq (RCX-R11)(%rsp), %rcx
	cmpq %rcx,(RIP-R11)(%rsp)		/* RCX == RIP */
	jne opportunistic_sysret_failed

	/*
	 * On Intel CPUs, sysret with non-canonical RCX/RIP will #GP
	 * in kernel space.  This essentially lets the user take over
	 * the kernel, since userspace controls RSP.  It's not worth
	 * testing for canonicalness exactly -- this check detects any
	 * of the 17 high bits set, which is true for non-canonical
	 * or kernel addresses.  (This will pessimize vsyscall=native.
	 * Big deal.)
	 *
	 * If virtual addresses ever become wider, this will need
	 * to be updated to remain correct on both old and new CPUs.
	 */
	.ifne __VIRTUAL_MASK_SHIFT - 47
	.error "virtual address width changed -- sysret checks need update"
	.endif
	shr $__VIRTUAL_MASK_SHIFT, %rcx
	jnz opportunistic_sysret_failed

	cmpq $__USER_CS,(CS-R11)(%rsp)		/* CS must match SYSRET */
	jne opportunistic_sysret_failed

	movq (R11-ARGOFFSET)(%rsp), %r11
	cmpq %r11,(EFLAGS-ARGOFFSET)(%rsp)	/* R11 == RFLAGS */
	jne opportunistic_sysret_failed

	testq $X86_EFLAGS_RF,%r11		/* sysret can't restore RF */
	jnz opportunistic_sysret_failed

	/* nothing to check for RSP */

	cmpq $__USER_DS,(SS-ARGOFFSET)(%rsp)	/* SS must match SYSRET */
	jne opportunistic_sysret_failed

	/*
	 * We win!  This label is here just for ease of understanding
	 * perf profiles.  Nothing jumps here.
	 */
irq_return_via_sysret:
	CFI_REMEMBER_STATE
	RESTORE_ARGS 1,8,1
	movq (RSP-RIP)(%rsp),%rsp
	USERGS_SYSRET64
	CFI_RESTORE_STATE

opportunistic_sysret_failed:
822
	SWAPGS
823 824
	jmp restore_args

825
retint_restore_args:	/* return to kernel space */
826
	DISABLE_INTERRUPTS(CLBR_ANY)
827 828 829 830 831
	/*
	 * The iretq could re-enable interrupts:
	 */
	TRACE_IRQS_IRETQ
restore_args:
832
	RESTORE_ARGS 1,8,1
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Ingo Molnar 已提交
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A
Adrian Bunk 已提交
834
irq_return:
835 836 837
	INTERRUPT_RETURN

ENTRY(native_iret)
838 839 840 841
	/*
	 * Are we returning to a stack segment from the LDT?  Note: in
	 * 64-bit mode SS:RSP on the exception stack is always valid.
	 */
842
#ifdef CONFIG_X86_ESPFIX64
843
	testb $4,(SS-RIP)(%rsp)
844
	jnz native_irq_return_ldt
845
#endif
846

847
.global native_irq_return_iret
848
native_irq_return_iret:
A
Andy Lutomirski 已提交
849 850 851 852 853 854
	/*
	 * This may fault.  Non-paranoid faults on return to userspace are
	 * handled by fixup_bad_iret.  These include #SS, #GP, and #NP.
	 * Double-faults due to espfix64 are handled in do_double_fault.
	 * Other faults here are fatal.
	 */
L
Linus Torvalds 已提交
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	iretq
I
Ingo Molnar 已提交
856

857
#ifdef CONFIG_X86_ESPFIX64
858
native_irq_return_ldt:
859 860 861 862 863 864 865 866 867 868 869 870 871 872 873 874 875 876 877 878 879
	pushq_cfi %rax
	pushq_cfi %rdi
	SWAPGS
	movq PER_CPU_VAR(espfix_waddr),%rdi
	movq %rax,(0*8)(%rdi)	/* RAX */
	movq (2*8)(%rsp),%rax	/* RIP */
	movq %rax,(1*8)(%rdi)
	movq (3*8)(%rsp),%rax	/* CS */
	movq %rax,(2*8)(%rdi)
	movq (4*8)(%rsp),%rax	/* RFLAGS */
	movq %rax,(3*8)(%rdi)
	movq (6*8)(%rsp),%rax	/* SS */
	movq %rax,(5*8)(%rdi)
	movq (5*8)(%rsp),%rax	/* RSP */
	movq %rax,(4*8)(%rdi)
	andl $0xffff0000,%eax
	popq_cfi %rdi
	orq PER_CPU_VAR(espfix_stack),%rax
	SWAPGS
	movq %rax,%rsp
	popq_cfi %rax
880
	jmp native_irq_return_iret
881
#endif
882

883
	/* edi: workmask, edx: work */
L
Linus Torvalds 已提交
884
retint_careful:
885
	CFI_RESTORE_STATE
L
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	bt    $TIF_NEED_RESCHED,%edx
	jnc   retint_signal
888
	TRACE_IRQS_ON
889
	ENABLE_INTERRUPTS(CLBR_NONE)
890
	pushq_cfi %rdi
891
	SCHEDULE_USER
892
	popq_cfi %rdi
L
Linus Torvalds 已提交
893
	GET_THREAD_INFO(%rcx)
894
	DISABLE_INTERRUPTS(CLBR_NONE)
895
	TRACE_IRQS_OFF
L
Linus Torvalds 已提交
896
	jmp retint_check
897

L
Linus Torvalds 已提交
898
retint_signal:
P
Peter Zijlstra 已提交
899
	testl $_TIF_DO_NOTIFY_MASK,%edx
900
	jz    retint_swapgs
901
	TRACE_IRQS_ON
902
	ENABLE_INTERRUPTS(CLBR_NONE)
L
Linus Torvalds 已提交
903
	SAVE_REST
904
	movq $-1,ORIG_RAX(%rsp)
905
	xorl %esi,%esi		# oldset
L
Linus Torvalds 已提交
906 907 908
	movq %rsp,%rdi		# &pt_regs
	call do_notify_resume
	RESTORE_REST
909
	DISABLE_INTERRUPTS(CLBR_NONE)
910
	TRACE_IRQS_OFF
911
	GET_THREAD_INFO(%rcx)
R
Roland McGrath 已提交
912
	jmp retint_with_reschedule
L
Linus Torvalds 已提交
913 914 915 916

#ifdef CONFIG_PREEMPT
	/* Returning to kernel space. Check if we need preemption */
	/* rcx:	 threadinfo. interrupts off. */
917
ENTRY(retint_kernel)
918
	cmpl $0,PER_CPU_VAR(__preempt_count)
L
Linus Torvalds 已提交
919 920 921 922 923
	jnz  retint_restore_args
	bt   $9,EFLAGS-ARGOFFSET(%rsp)	/* interrupts off? */
	jnc  retint_restore_args
	call preempt_schedule_irq
	jmp exit_intr
924
#endif
L
Linus Torvalds 已提交
925
	CFI_ENDPROC
926
END(common_interrupt)
927

L
Linus Torvalds 已提交
928 929
/*
 * APIC interrupts.
930
 */
931
.macro apicinterrupt3 num sym do_sym
932
ENTRY(\sym)
933
	INTR_FRAME
934
	ASM_CLAC
935
	pushq_cfi $~(\num)
936
.Lcommon_\sym:
937
	interrupt \do_sym
L
Linus Torvalds 已提交
938 939
	jmp ret_from_intr
	CFI_ENDPROC
940 941
END(\sym)
.endm
L
Linus Torvalds 已提交
942

943 944 945 946 947 948 949 950 951 952 953 954 955 956 957 958 959
#ifdef CONFIG_TRACING
#define trace(sym) trace_##sym
#define smp_trace(sym) smp_trace_##sym

.macro trace_apicinterrupt num sym
apicinterrupt3 \num trace(\sym) smp_trace(\sym)
.endm
#else
.macro trace_apicinterrupt num sym do_sym
.endm
#endif

.macro apicinterrupt num sym do_sym
apicinterrupt3 \num \sym \do_sym
trace_apicinterrupt \num \sym
.endm

960
#ifdef CONFIG_SMP
961
apicinterrupt3 IRQ_MOVE_CLEANUP_VECTOR \
962
	irq_move_cleanup_interrupt smp_irq_move_cleanup_interrupt
963
apicinterrupt3 REBOOT_VECTOR \
964
	reboot_interrupt smp_reboot_interrupt
965
#endif
L
Linus Torvalds 已提交
966

N
Nick Piggin 已提交
967
#ifdef CONFIG_X86_UV
968
apicinterrupt3 UV_BAU_MESSAGE \
969
	uv_bau_message_intr1 uv_bau_message_interrupt
N
Nick Piggin 已提交
970
#endif
971 972
apicinterrupt LOCAL_TIMER_VECTOR \
	apic_timer_interrupt smp_apic_timer_interrupt
973 974
apicinterrupt X86_PLATFORM_IPI_VECTOR \
	x86_platform_ipi smp_x86_platform_ipi
975

976
#ifdef CONFIG_HAVE_KVM
977
apicinterrupt3 POSTED_INTR_VECTOR \
978 979 980
	kvm_posted_intr_ipi smp_kvm_posted_intr_ipi
#endif

981
#ifdef CONFIG_X86_MCE_THRESHOLD
982
apicinterrupt THRESHOLD_APIC_VECTOR \
983
	threshold_interrupt smp_threshold_interrupt
984 985 986
#endif

#ifdef CONFIG_X86_THERMAL_VECTOR
987 988
apicinterrupt THERMAL_APIC_VECTOR \
	thermal_interrupt smp_thermal_interrupt
989
#endif
990

991 992 993 994 995 996 997 998
#ifdef CONFIG_SMP
apicinterrupt CALL_FUNCTION_SINGLE_VECTOR \
	call_function_single_interrupt smp_call_function_single_interrupt
apicinterrupt CALL_FUNCTION_VECTOR \
	call_function_interrupt smp_call_function_interrupt
apicinterrupt RESCHEDULE_VECTOR \
	reschedule_interrupt smp_reschedule_interrupt
#endif
L
Linus Torvalds 已提交
999

1000 1001 1002 1003
apicinterrupt ERROR_APIC_VECTOR \
	error_interrupt smp_error_interrupt
apicinterrupt SPURIOUS_APIC_VECTOR \
	spurious_interrupt smp_spurious_interrupt
1004

1005 1006 1007
#ifdef CONFIG_IRQ_WORK
apicinterrupt IRQ_WORK_VECTOR \
	irq_work_interrupt smp_irq_work_interrupt
I
Ingo Molnar 已提交
1008 1009
#endif

L
Linus Torvalds 已提交
1010 1011
/*
 * Exception entry points.
1012
 */
1013 1014 1015
#define INIT_TSS_IST(x) PER_CPU_VAR(init_tss) + (TSS_ist + ((x) - 1) * 8)

.macro idtentry sym do_sym has_error_code:req paranoid=0 shift_ist=-1
1016
ENTRY(\sym)
1017 1018 1019 1020 1021
	/* Sanity check */
	.if \shift_ist != -1 && \paranoid == 0
	.error "using shift_ist requires paranoid=1"
	.endif

1022 1023 1024
	.if \has_error_code
	XCPT_FRAME
	.else
1025
	INTR_FRAME
1026
	.endif
L
Linus Torvalds 已提交
1027

1028
	ASM_CLAC
1029
	PARAVIRT_ADJUST_EXCEPTION_FRAME
1030 1031 1032 1033 1034

	.ifeq \has_error_code
	pushq_cfi $-1			/* ORIG_RAX: no syscall to restart */
	.endif

1035 1036
	subq $ORIG_RAX-R15, %rsp
	CFI_ADJUST_CFA_OFFSET ORIG_RAX-R15
1037 1038

	.if \paranoid
1039 1040 1041 1042 1043
	.if \paranoid == 1
	CFI_REMEMBER_STATE
	testl $3, CS(%rsp)		/* If coming from userspace, switch */
	jnz 1f				/* stacks. */
	.endif
1044
	call save_paranoid
1045 1046 1047 1048
	.else
	call error_entry
	.endif

1049
	DEFAULT_FRAME 0
1050 1051

	.if \paranoid
1052 1053 1054
	.if \shift_ist != -1
	TRACE_IRQS_OFF_DEBUG		/* reload IDT in case of recursion */
	.else
1055
	TRACE_IRQS_OFF
1056
	.endif
1057
	.endif
1058 1059 1060 1061 1062 1063 1064 1065 1066 1067

	movq %rsp,%rdi			/* pt_regs pointer */

	.if \has_error_code
	movq ORIG_RAX(%rsp),%rsi	/* get error code */
	movq $-1,ORIG_RAX(%rsp)		/* no syscall to restart */
	.else
	xorl %esi,%esi			/* no error code */
	.endif

1068 1069 1070 1071
	.if \shift_ist != -1
	subq $EXCEPTION_STKSZ, INIT_TSS_IST(\shift_ist)
	.endif

1072
	call \do_sym
1073

1074 1075 1076 1077
	.if \shift_ist != -1
	addq $EXCEPTION_STKSZ, INIT_TSS_IST(\shift_ist)
	.endif

1078 1079 1080 1081 1082 1083
	.if \paranoid
	jmp paranoid_exit		/* %ebx: no swapgs flag */
	.else
	jmp error_exit			/* %ebx: no swapgs flag */
	.endif

1084 1085 1086 1087 1088 1089 1090 1091 1092 1093 1094 1095 1096 1097 1098 1099 1100 1101 1102 1103 1104 1105 1106 1107 1108 1109 1110 1111 1112 1113
	.if \paranoid == 1
	CFI_RESTORE_STATE
	/*
	 * Paranoid entry from userspace.  Switch stacks and treat it
	 * as a normal entry.  This means that paranoid handlers
	 * run in real process context if user_mode(regs).
	 */
1:
	call error_entry

	DEFAULT_FRAME 0

	movq %rsp,%rdi			/* pt_regs pointer */
	call sync_regs
	movq %rax,%rsp			/* switch stack */

	movq %rsp,%rdi			/* pt_regs pointer */

	.if \has_error_code
	movq ORIG_RAX(%rsp),%rsi	/* get error code */
	movq $-1,ORIG_RAX(%rsp)		/* no syscall to restart */
	.else
	xorl %esi,%esi			/* no error code */
	.endif

	call \do_sym

	jmp error_exit			/* %ebx: no swapgs flag */
	.endif

1114
	CFI_ENDPROC
1115
END(\sym)
1116
.endm
1117

1118
#ifdef CONFIG_TRACING
1119 1120 1121
.macro trace_idtentry sym do_sym has_error_code:req
idtentry trace(\sym) trace(\do_sym) has_error_code=\has_error_code
idtentry \sym \do_sym has_error_code=\has_error_code
1122 1123
.endm
#else
1124 1125
.macro trace_idtentry sym do_sym has_error_code:req
idtentry \sym \do_sym has_error_code=\has_error_code
1126 1127 1128
.endm
#endif

1129 1130 1131 1132 1133
idtentry divide_error do_divide_error has_error_code=0
idtentry overflow do_overflow has_error_code=0
idtentry bounds do_bounds has_error_code=0
idtentry invalid_op do_invalid_op has_error_code=0
idtentry device_not_available do_device_not_available has_error_code=0
1134
idtentry double_fault do_double_fault has_error_code=1 paranoid=2
1135 1136 1137 1138 1139 1140 1141
idtentry coprocessor_segment_overrun do_coprocessor_segment_overrun has_error_code=0
idtentry invalid_TSS do_invalid_TSS has_error_code=1
idtentry segment_not_present do_segment_not_present has_error_code=1
idtentry spurious_interrupt_bug do_spurious_interrupt_bug has_error_code=0
idtentry coprocessor_error do_coprocessor_error has_error_code=0
idtentry alignment_check do_alignment_check has_error_code=1
idtentry simd_coprocessor_error do_simd_coprocessor_error has_error_code=0
1142

1143

1144 1145
	/* Reload gs selector with exception handling */
	/* edi:  new selector */
1146
ENTRY(native_load_gs_index)
1147
	CFI_STARTPROC
1148
	pushfq_cfi
1149
	DISABLE_INTERRUPTS(CLBR_ANY & ~CLBR_RDI)
1150
	SWAPGS
1151
gs_change:
1152
	movl %edi,%gs
L
Linus Torvalds 已提交
1153
2:	mfence		/* workaround */
1154
	SWAPGS
1155
	popfq_cfi
1156
	ret
1157
	CFI_ENDPROC
1158
END(native_load_gs_index)
1159

1160
	_ASM_EXTABLE(gs_change,bad_gs)
1161
	.section .fixup,"ax"
L
Linus Torvalds 已提交
1162
	/* running with kernelgs */
1163
bad_gs:
1164
	SWAPGS			/* switch back to user gs */
L
Linus Torvalds 已提交
1165
	xorl %eax,%eax
1166 1167 1168
	movl %eax,%gs
	jmp  2b
	.previous
1169

1170
/* Call softirq on interrupt stack. Interrupts are off. */
1171
ENTRY(do_softirq_own_stack)
1172
	CFI_STARTPROC
1173
	pushq_cfi %rbp
1174 1175 1176
	CFI_REL_OFFSET rbp,0
	mov  %rsp,%rbp
	CFI_DEF_CFA_REGISTER rbp
1177
	incl PER_CPU_VAR(irq_count)
1178
	cmove PER_CPU_VAR(irq_stack_ptr),%rsp
1179
	push  %rbp			# backlink for old unwinder
1180
	call __do_softirq
1181
	leaveq
1182
	CFI_RESTORE		rbp
1183
	CFI_DEF_CFA_REGISTER	rsp
1184
	CFI_ADJUST_CFA_OFFSET   -8
1185
	decl PER_CPU_VAR(irq_count)
1186
	ret
1187
	CFI_ENDPROC
1188
END(do_softirq_own_stack)
1189

1190
#ifdef CONFIG_XEN
1191
idtentry xen_hypervisor_callback xen_do_hypervisor_callback has_error_code=0
1192 1193

/*
1194 1195 1196 1197 1198 1199 1200 1201 1202 1203 1204 1205
 * A note on the "critical region" in our callback handler.
 * We want to avoid stacking callback handlers due to events occurring
 * during handling of the last event. To do this, we keep events disabled
 * until we've done all processing. HOWEVER, we must enable events before
 * popping the stack frame (can't be done atomically) and so it would still
 * be possible to get enough handler activations to overflow the stack.
 * Although unlikely, bugs of that kind are hard to track down, so we'd
 * like to avoid the possibility.
 * So, on entry to the handler we detect whether we interrupted an
 * existing activation in its critical region -- if so, we pop the current
 * activation and restart the handler using the previous one.
 */
1206 1207
ENTRY(xen_do_hypervisor_callback)   # do_hypervisor_callback(struct *pt_regs)
	CFI_STARTPROC
1208 1209 1210 1211
/*
 * Since we don't modify %rdi, evtchn_do_upall(struct *pt_regs) will
 * see the correct pointer to the pt_regs
 */
1212 1213
	movq %rdi, %rsp            # we don't return, adjust the stack frame
	CFI_ENDPROC
1214
	DEFAULT_FRAME
1215
11:	incl PER_CPU_VAR(irq_count)
1216 1217
	movq %rsp,%rbp
	CFI_DEF_CFA_REGISTER rbp
1218
	cmovzq PER_CPU_VAR(irq_stack_ptr),%rsp
1219 1220 1221 1222
	pushq %rbp			# backlink for old unwinder
	call xen_evtchn_do_upcall
	popq %rsp
	CFI_DEF_CFA_REGISTER rsp
1223
	decl PER_CPU_VAR(irq_count)
1224 1225 1226
#ifndef CONFIG_PREEMPT
	call xen_maybe_preempt_hcall
#endif
1227 1228
	jmp  error_exit
	CFI_ENDPROC
1229
END(xen_do_hypervisor_callback)
1230 1231

/*
1232 1233 1234 1235 1236 1237 1238 1239 1240 1241 1242 1243
 * Hypervisor uses this for application faults while it executes.
 * We get here for two reasons:
 *  1. Fault while reloading DS, ES, FS or GS
 *  2. Fault while executing IRET
 * Category 1 we do not need to fix up as Xen has already reloaded all segment
 * registers that could be reloaded and zeroed the others.
 * Category 2 we fix up by killing the current process. We cannot use the
 * normal Linux return path in this case because if we use the IRET hypercall
 * to pop the stack frame we end up in an infinite loop of failsafe callbacks.
 * We distinguish between categories by comparing each saved segment register
 * with its current contents: any discrepancy means we in category 1.
 */
1244
ENTRY(xen_failsafe_callback)
1245 1246 1247 1248 1249 1250 1251
	INTR_FRAME 1 (6*8)
	/*CFI_REL_OFFSET gs,GS*/
	/*CFI_REL_OFFSET fs,FS*/
	/*CFI_REL_OFFSET es,ES*/
	/*CFI_REL_OFFSET ds,DS*/
	CFI_REL_OFFSET r11,8
	CFI_REL_OFFSET rcx,0
1252 1253 1254 1255 1256 1257 1258 1259 1260 1261 1262 1263 1264 1265 1266 1267 1268 1269 1270 1271
	movw %ds,%cx
	cmpw %cx,0x10(%rsp)
	CFI_REMEMBER_STATE
	jne 1f
	movw %es,%cx
	cmpw %cx,0x18(%rsp)
	jne 1f
	movw %fs,%cx
	cmpw %cx,0x20(%rsp)
	jne 1f
	movw %gs,%cx
	cmpw %cx,0x28(%rsp)
	jne 1f
	/* All segments match their saved values => Category 2 (Bad IRET). */
	movq (%rsp),%rcx
	CFI_RESTORE rcx
	movq 8(%rsp),%r11
	CFI_RESTORE r11
	addq $0x30,%rsp
	CFI_ADJUST_CFA_OFFSET -0x30
I
Ingo Molnar 已提交
1272 1273 1274
	pushq_cfi $0	/* RIP */
	pushq_cfi %r11
	pushq_cfi %rcx
1275
	jmp general_protection
1276 1277 1278 1279 1280 1281 1282 1283
	CFI_RESTORE_STATE
1:	/* Segment mismatch => Category 1 (Bad segment). Retry the IRET. */
	movq (%rsp),%rcx
	CFI_RESTORE rcx
	movq 8(%rsp),%r11
	CFI_RESTORE r11
	addq $0x30,%rsp
	CFI_ADJUST_CFA_OFFSET -0x30
1284
	pushq_cfi $-1 /* orig_ax = -1 => not a system call */
1285 1286 1287 1288 1289
	SAVE_ALL
	jmp error_exit
	CFI_ENDPROC
END(xen_failsafe_callback)

1290
apicinterrupt3 HYPERVISOR_CALLBACK_VECTOR \
1291 1292
	xen_hvm_callback_vector xen_evtchn_do_upcall

1293
#endif /* CONFIG_XEN */
1294

1295
#if IS_ENABLED(CONFIG_HYPERV)
1296
apicinterrupt3 HYPERVISOR_CALLBACK_VECTOR \
1297 1298 1299
	hyperv_callback_vector hyperv_vector_handler
#endif /* CONFIG_HYPERV */

1300 1301
idtentry debug do_debug has_error_code=0 paranoid=1 shift_ist=DEBUG_STACK
idtentry int3 do_int3 has_error_code=0 paranoid=1 shift_ist=DEBUG_STACK
1302
idtentry stack_segment do_stack_segment has_error_code=1
1303
#ifdef CONFIG_XEN
1304 1305 1306
idtentry xen_debug do_debug has_error_code=0
idtentry xen_int3 do_int3 has_error_code=0
idtentry xen_stack_segment do_stack_segment has_error_code=1
1307
#endif
1308 1309
idtentry general_protection do_general_protection has_error_code=1
trace_idtentry page_fault do_page_fault has_error_code=1
G
Gleb Natapov 已提交
1310
#ifdef CONFIG_KVM_GUEST
1311
idtentry async_page_fault do_async_page_fault has_error_code=1
G
Gleb Natapov 已提交
1312
#endif
1313
#ifdef CONFIG_X86_MCE
1314
idtentry machine_check has_error_code=0 paranoid=1 do_sym=*machine_check_vector(%rip)
1315 1316 1317
#endif

	/*
1318 1319 1320
	 * "Paranoid" exit path from exception stack.  This is invoked
	 * only on return from non-NMI IST interrupts that came
	 * from kernel space.
1321
	 *
1322 1323 1324 1325
	 * We may be returning to very strange contexts (e.g. very early
	 * in syscall entry), so checking for preemption here would
	 * be complicated.  Fortunately, we there's no good reason
	 * to try to handle preemption here.
1326 1327 1328 1329
	 */

	/* ebx:	no swapgs flag */
ENTRY(paranoid_exit)
1330
	DEFAULT_FRAME
1331
	DISABLE_INTERRUPTS(CLBR_NONE)
1332
	TRACE_IRQS_OFF_DEBUG
1333 1334 1335 1336
	testl %ebx,%ebx				/* swapgs needed? */
	jnz paranoid_restore
	TRACE_IRQS_IRETQ 0
	SWAPGS_UNSAFE_STACK
1337
	RESTORE_ALL 8
1338
	INTERRUPT_RETURN
1339
paranoid_restore:
1340
	TRACE_IRQS_IRETQ_DEBUG 0
1341
	RESTORE_ALL 8
1342
	INTERRUPT_RETURN
1343 1344 1345 1346 1347 1348 1349 1350 1351 1352 1353 1354
	CFI_ENDPROC
END(paranoid_exit)

/*
 * Exception entry point. This expects an error code/orig_rax on the stack.
 * returns in "no swapgs flag" in %ebx.
 */
ENTRY(error_entry)
	XCPT_FRAME
	CFI_ADJUST_CFA_OFFSET 15*8
	/* oldrax contains error code */
	cld
1355 1356 1357 1358 1359 1360 1361 1362 1363
	movq %rdi, RDI+8(%rsp)
	movq %rsi, RSI+8(%rsp)
	movq %rdx, RDX+8(%rsp)
	movq %rcx, RCX+8(%rsp)
	movq %rax, RAX+8(%rsp)
	movq  %r8,  R8+8(%rsp)
	movq  %r9,  R9+8(%rsp)
	movq %r10, R10+8(%rsp)
	movq %r11, R11+8(%rsp)
1364
	movq_cfi rbx, RBX+8
1365 1366 1367 1368 1369
	movq %rbp, RBP+8(%rsp)
	movq %r12, R12+8(%rsp)
	movq %r13, R13+8(%rsp)
	movq %r14, R14+8(%rsp)
	movq %r15, R15+8(%rsp)
1370 1371 1372 1373 1374 1375 1376 1377 1378 1379 1380
	xorl %ebx,%ebx
	testl $3,CS+8(%rsp)
	je error_kernelspace
error_swapgs:
	SWAPGS
error_sti:
	TRACE_IRQS_OFF
	ret

/*
 * There are two places in the kernel that can potentially fault with
A
Andy Lutomirski 已提交
1381 1382 1383
 * usergs. Handle them here.  B stepping K8s sometimes report a
 * truncated RIP for IRET exceptions returning to compat mode. Check
 * for these here too.
1384 1385
 */
error_kernelspace:
1386
	CFI_REL_OFFSET rcx, RCX+8
1387
	incl %ebx
1388
	leaq native_irq_return_iret(%rip),%rcx
1389
	cmpq %rcx,RIP+8(%rsp)
A
Andy Lutomirski 已提交
1390
	je error_bad_iret
1391 1392 1393
	movl %ecx,%eax	/* zero extend */
	cmpq %rax,RIP+8(%rsp)
	je bstep_iret
1394
	cmpq $gs_change,RIP+8(%rsp)
1395
	je error_swapgs
1396
	jmp error_sti
1397 1398 1399 1400

bstep_iret:
	/* Fix truncated RIP */
	movq %rcx,RIP+8(%rsp)
A
Andy Lutomirski 已提交
1401 1402 1403 1404 1405 1406 1407 1408 1409
	/* fall through */

error_bad_iret:
	SWAPGS
	mov %rsp,%rdi
	call fixup_bad_iret
	mov %rax,%rsp
	decl %ebx	/* Return to usergs */
	jmp error_sti
1410
	CFI_ENDPROC
1411 1412 1413 1414 1415 1416 1417 1418 1419 1420 1421 1422 1423 1424 1425 1426 1427 1428 1429 1430 1431 1432
END(error_entry)


/* ebx:	no swapgs flag (1: don't need swapgs, 0: need it) */
ENTRY(error_exit)
	DEFAULT_FRAME
	movl %ebx,%eax
	RESTORE_REST
	DISABLE_INTERRUPTS(CLBR_NONE)
	TRACE_IRQS_OFF
	GET_THREAD_INFO(%rcx)
	testl %eax,%eax
	jne retint_kernel
	LOCKDEP_SYS_EXIT_IRQ
	movl TI_flags(%rcx),%edx
	movl $_TIF_WORK_MASK,%edi
	andl %edi,%edx
	jnz retint_careful
	jmp retint_swapgs
	CFI_ENDPROC
END(error_exit)

1433 1434 1435 1436 1437 1438 1439 1440 1441 1442 1443
/*
 * Test if a given stack is an NMI stack or not.
 */
	.macro test_in_nmi reg stack nmi_ret normal_ret
	cmpq %\reg, \stack
	ja \normal_ret
	subq $EXCEPTION_STKSZ, %\reg
	cmpq %\reg, \stack
	jb \normal_ret
	jmp \nmi_ret
	.endm
1444 1445 1446 1447 1448

	/* runs on exception stack */
ENTRY(nmi)
	INTR_FRAME
	PARAVIRT_ADJUST_EXCEPTION_FRAME
1449 1450 1451 1452 1453 1454 1455 1456 1457 1458 1459 1460 1461 1462 1463 1464 1465 1466 1467 1468 1469 1470 1471 1472 1473 1474 1475 1476 1477 1478 1479 1480 1481 1482
	/*
	 * We allow breakpoints in NMIs. If a breakpoint occurs, then
	 * the iretq it performs will take us out of NMI context.
	 * This means that we can have nested NMIs where the next
	 * NMI is using the top of the stack of the previous NMI. We
	 * can't let it execute because the nested NMI will corrupt the
	 * stack of the previous NMI. NMI handlers are not re-entrant
	 * anyway.
	 *
	 * To handle this case we do the following:
	 *  Check the a special location on the stack that contains
	 *  a variable that is set when NMIs are executing.
	 *  The interrupted task's stack is also checked to see if it
	 *  is an NMI stack.
	 *  If the variable is not set and the stack is not the NMI
	 *  stack then:
	 *    o Set the special variable on the stack
	 *    o Copy the interrupt frame into a "saved" location on the stack
	 *    o Copy the interrupt frame into a "copy" location on the stack
	 *    o Continue processing the NMI
	 *  If the variable is set or the previous stack is the NMI stack:
	 *    o Modify the "copy" location to jump to the repeate_nmi
	 *    o return back to the first NMI
	 *
	 * Now on exit of the first NMI, we first clear the stack variable
	 * The NMI stack will tell any nested NMIs at that point that it is
	 * nested. Then we pop the stack normally with iret, and if there was
	 * a nested NMI that updated the copy interrupt stack frame, a
	 * jump will be made to the repeat_nmi code that will handle the second
	 * NMI.
	 */

	/* Use %rdx as out temp variable throughout */
	pushq_cfi %rdx
1483
	CFI_REL_OFFSET rdx, 0
1484

1485 1486 1487 1488
	/*
	 * If %cs was not the kernel segment, then the NMI triggered in user
	 * space, which means it is definitely not nested.
	 */
1489
	cmpl $__KERNEL_CS, 16(%rsp)
1490 1491
	jne first_nmi

1492 1493 1494 1495
	/*
	 * Check the special variable on the stack to see if NMIs are
	 * executing.
	 */
1496
	cmpl $1, -8(%rsp)
1497 1498 1499 1500 1501 1502 1503 1504 1505 1506 1507
	je nested_nmi

	/*
	 * Now test if the previous stack was an NMI stack.
	 * We need the double check. We check the NMI stack to satisfy the
	 * race when the first NMI clears the variable before returning.
	 * We check the variable because the first NMI could be in a
	 * breakpoint routine using a breakpoint stack.
	 */
	lea 6*8(%rsp), %rdx
	test_in_nmi rdx, 4*8(%rsp), nested_nmi, first_nmi
1508
	CFI_REMEMBER_STATE
1509 1510 1511 1512 1513 1514 1515 1516 1517 1518 1519 1520 1521 1522 1523 1524

nested_nmi:
	/*
	 * Do nothing if we interrupted the fixup in repeat_nmi.
	 * It's about to repeat the NMI handler, so we are fine
	 * with ignoring this one.
	 */
	movq $repeat_nmi, %rdx
	cmpq 8(%rsp), %rdx
	ja 1f
	movq $end_repeat_nmi, %rdx
	cmpq 8(%rsp), %rdx
	ja nested_nmi_out

1:
	/* Set up the interrupted NMIs stack to jump to repeat_nmi */
1525
	leaq -1*8(%rsp), %rdx
1526
	movq %rdx, %rsp
1527 1528
	CFI_ADJUST_CFA_OFFSET 1*8
	leaq -10*8(%rsp), %rdx
1529 1530 1531 1532 1533 1534 1535
	pushq_cfi $__KERNEL_DS
	pushq_cfi %rdx
	pushfq_cfi
	pushq_cfi $__KERNEL_CS
	pushq_cfi $repeat_nmi

	/* Put stack back */
1536 1537
	addq $(6*8), %rsp
	CFI_ADJUST_CFA_OFFSET -6*8
1538 1539 1540

nested_nmi_out:
	popq_cfi %rdx
1541
	CFI_RESTORE rdx
1542 1543 1544 1545

	/* No need to check faults here */
	INTERRUPT_RETURN

1546
	CFI_RESTORE_STATE
1547 1548 1549 1550 1551 1552 1553 1554 1555 1556 1557 1558 1559 1560 1561 1562 1563 1564 1565 1566 1567 1568
first_nmi:
	/*
	 * Because nested NMIs will use the pushed location that we
	 * stored in rdx, we must keep that space available.
	 * Here's what our stack frame will look like:
	 * +-------------------------+
	 * | original SS             |
	 * | original Return RSP     |
	 * | original RFLAGS         |
	 * | original CS             |
	 * | original RIP            |
	 * +-------------------------+
	 * | temp storage for rdx    |
	 * +-------------------------+
	 * | NMI executing variable  |
	 * +-------------------------+
	 * | copied SS               |
	 * | copied Return RSP       |
	 * | copied RFLAGS           |
	 * | copied CS               |
	 * | copied RIP              |
	 * +-------------------------+
1569 1570 1571 1572 1573 1574
	 * | Saved SS                |
	 * | Saved Return RSP        |
	 * | Saved RFLAGS            |
	 * | Saved CS                |
	 * | Saved RIP               |
	 * +-------------------------+
1575 1576 1577
	 * | pt_regs                 |
	 * +-------------------------+
	 *
1578 1579 1580
	 * The saved stack frame is used to fix up the copied stack frame
	 * that a nested NMI may change to make the interrupted NMI iret jump
	 * to the repeat_nmi. The original stack frame and the temp storage
1581 1582
	 * is also used by nested NMIs and can not be trusted on exit.
	 */
1583
	/* Do not pop rdx, nested NMIs will corrupt that part of the stack */
1584 1585 1586
	movq (%rsp), %rdx
	CFI_RESTORE rdx

1587 1588 1589
	/* Set the NMI executing variable on the stack. */
	pushq_cfi $1

1590 1591 1592 1593
	/*
	 * Leave room for the "copied" frame
	 */
	subq $(5*8), %rsp
1594
	CFI_ADJUST_CFA_OFFSET 5*8
1595

1596 1597
	/* Copy the stack frame to the Saved frame */
	.rept 5
1598
	pushq_cfi 11*8(%rsp)
1599
	.endr
1600 1601
	CFI_DEF_CFA_OFFSET SS+8-RIP

1602 1603
	/* Everything up to here is safe from nested NMIs */

1604 1605 1606 1607 1608 1609 1610 1611 1612 1613 1614 1615 1616 1617 1618
	/*
	 * If there was a nested NMI, the first NMI's iret will return
	 * here. But NMIs are still enabled and we can take another
	 * nested NMI. The nested NMI checks the interrupted RIP to see
	 * if it is between repeat_nmi and end_repeat_nmi, and if so
	 * it will just return, as we are about to repeat an NMI anyway.
	 * This makes it safe to copy to the stack frame that a nested
	 * NMI will update.
	 */
repeat_nmi:
	/*
	 * Update the stack variable to say we are still in NMI (the update
	 * is benign for the non-repeat case, where 1 was pushed just above
	 * to this very stack slot).
	 */
1619
	movq $1, 10*8(%rsp)
1620 1621

	/* Make another copy, this one may be modified by nested NMIs */
1622 1623
	addq $(10*8), %rsp
	CFI_ADJUST_CFA_OFFSET -10*8
1624
	.rept 5
1625
	pushq_cfi -6*8(%rsp)
1626
	.endr
1627
	subq $(5*8), %rsp
1628 1629
	CFI_DEF_CFA_OFFSET SS+8-RIP
end_repeat_nmi:
1630 1631 1632

	/*
	 * Everything below this point can be preempted by a nested
1633 1634
	 * NMI if the first NMI took an exception and reset our iret stack
	 * so that we repeat another NMI.
1635
	 */
1636
	pushq_cfi $-1		/* ORIG_RAX: no syscall to restart */
1637 1638
	subq $ORIG_RAX-R15, %rsp
	CFI_ADJUST_CFA_OFFSET ORIG_RAX-R15
1639 1640 1641 1642 1643 1644 1645
	/*
	 * Use save_paranoid to handle SWAPGS, but no need to use paranoid_exit
	 * as we should not be calling schedule in NMI context.
	 * Even with normal interrupts enabled. An NMI should not be
	 * setting NEED_RESCHED or anything that normal interrupts and
	 * exceptions might do.
	 */
1646 1647
	call save_paranoid
	DEFAULT_FRAME 0
1648 1649 1650 1651 1652 1653 1654 1655 1656 1657 1658 1659

	/*
	 * Save off the CR2 register. If we take a page fault in the NMI then
	 * it could corrupt the CR2 value. If the NMI preempts a page fault
	 * handler before it was able to read the CR2 register, and then the
	 * NMI itself takes a page fault, the page fault that was preempted
	 * will read the information from the NMI page fault and not the
	 * origin fault. Save it off and restore it if it changes.
	 * Use the r12 callee-saved register.
	 */
	movq %cr2, %r12

1660 1661 1662 1663
	/* paranoidentry do_nmi, 0; without TRACE_IRQS_OFF */
	movq %rsp,%rdi
	movq $-1,%rsi
	call do_nmi
1664 1665 1666 1667 1668 1669 1670 1671

	/* Did the NMI take a page fault? Restore cr2 if it did */
	movq %cr2, %rcx
	cmpq %rcx, %r12
	je 1f
	movq %r12, %cr2
1:
	
1672 1673 1674 1675 1676
	testl %ebx,%ebx				/* swapgs needed? */
	jnz nmi_restore
nmi_swapgs:
	SWAPGS_UNSAFE_STACK
nmi_restore:
1677 1678
	/* Pop the extra iret frame at once */
	RESTORE_ALL 6*8
1679

1680
	/* Clear the NMI executing stack variable */
1681
	movq $0, 5*8(%rsp)
1682
	jmp irq_return
1683
	CFI_ENDPROC
1684 1685 1686 1687 1688 1689 1690 1691 1692
END(nmi)

ENTRY(ignore_sysret)
	CFI_STARTPROC
	mov $-ENOSYS,%eax
	sysret
	CFI_ENDPROC
END(ignore_sysret)