entry_32.S 35.4 KB
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/* SPDX-License-Identifier: GPL-2.0 */
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/*
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 *  Copyright (C) 1991,1992  Linus Torvalds
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 *
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 * entry_32.S contains the system-call and low-level fault and trap handling routines.
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 *
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 * Stack layout while running C code:
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 *	ptrace needs to have all registers on the stack.
 *	If the order here is changed, it needs to be
 *	updated in fork.c:copy_process(), signal.c:do_signal(),
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 *	ptrace.c and ptrace.h
 *
 *	 0(%esp) - %ebx
 *	 4(%esp) - %ecx
 *	 8(%esp) - %edx
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 *	 C(%esp) - %esi
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 *	10(%esp) - %edi
 *	14(%esp) - %ebp
 *	18(%esp) - %eax
 *	1C(%esp) - %ds
 *	20(%esp) - %es
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 *	24(%esp) - %fs
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 *	28(%esp) - %gs		saved iff !CONFIG_X86_32_LAZY_GS
 *	2C(%esp) - orig_eax
 *	30(%esp) - %eip
 *	34(%esp) - %cs
 *	38(%esp) - %eflags
 *	3C(%esp) - %oldesp
 *	40(%esp) - %oldss
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 */

#include <linux/linkage.h>
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#include <linux/err.h>
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#include <asm/thread_info.h>
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#include <asm/irqflags.h>
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#include <asm/errno.h>
#include <asm/segment.h>
#include <asm/smp.h>
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#include <asm/percpu.h>
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#include <asm/processor-flags.h>
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#include <asm/irq_vectors.h>
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#include <asm/cpufeatures.h>
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#include <asm/alternative-asm.h>
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#include <asm/asm.h>
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#include <asm/smap.h>
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#include <asm/frame.h>
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#include <asm/nospec-branch.h>
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	.section .entry.text, "ax"

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/*
 * We use macros for low-level operations which need to be overridden
 * for paravirtualization.  The following will never clobber any registers:
 *   INTERRUPT_RETURN (aka. "iret")
 *   GET_CR0_INTO_EAX (aka. "movl %cr0, %eax")
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 *   ENABLE_INTERRUPTS_SYSEXIT (aka "sti; sysexit").
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 *
 * For DISABLE_INTERRUPTS/ENABLE_INTERRUPTS (aka "cli"/"sti"), you must
 * specify what registers can be overwritten (CLBR_NONE, CLBR_EAX/EDX/ECX/ANY).
 * Allowing a register to be clobbered can shrink the paravirt replacement
 * enough to patch inline, increasing performance.
 */

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#ifdef CONFIG_PREEMPT
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# define preempt_stop(clobbers)	DISABLE_INTERRUPTS(clobbers); TRACE_IRQS_OFF
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#else
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# define preempt_stop(clobbers)
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# define resume_kernel		restore_all_kernel
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#endif

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.macro TRACE_IRQS_IRET
#ifdef CONFIG_TRACE_IRQFLAGS
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	testl	$X86_EFLAGS_IF, PT_EFLAGS(%esp)     # interrupts off?
	jz	1f
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	TRACE_IRQS_ON
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#endif
.endm

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#define PTI_SWITCH_MASK         (1 << PAGE_SHIFT)

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/*
 * User gs save/restore
 *
 * %gs is used for userland TLS and kernel only uses it for stack
 * canary which is required to be at %gs:20 by gcc.  Read the comment
 * at the top of stackprotector.h for more info.
 *
 * Local labels 98 and 99 are used.
 */
#ifdef CONFIG_X86_32_LAZY_GS

 /* unfortunately push/pop can't be no-op */
.macro PUSH_GS
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	pushl	$0
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.endm
.macro POP_GS pop=0
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	addl	$(4 + \pop), %esp
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.endm
.macro POP_GS_EX
.endm

 /* all the rest are no-op */
.macro PTGS_TO_GS
.endm
.macro PTGS_TO_GS_EX
.endm
.macro GS_TO_REG reg
.endm
.macro REG_TO_PTGS reg
.endm
.macro SET_KERNEL_GS reg
.endm

#else	/* CONFIG_X86_32_LAZY_GS */

.macro PUSH_GS
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	pushl	%gs
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.endm

.macro POP_GS pop=0
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98:	popl	%gs
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  .if \pop <> 0
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	add	$\pop, %esp
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  .endif
.endm
.macro POP_GS_EX
.pushsection .fixup, "ax"
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99:	movl	$0, (%esp)
	jmp	98b
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.popsection
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	_ASM_EXTABLE(98b, 99b)
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.endm

.macro PTGS_TO_GS
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98:	mov	PT_GS(%esp), %gs
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.endm
.macro PTGS_TO_GS_EX
.pushsection .fixup, "ax"
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99:	movl	$0, PT_GS(%esp)
	jmp	98b
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.popsection
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	_ASM_EXTABLE(98b, 99b)
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.endm

.macro GS_TO_REG reg
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	movl	%gs, \reg
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.endm
.macro REG_TO_PTGS reg
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	movl	\reg, PT_GS(%esp)
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.endm
.macro SET_KERNEL_GS reg
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	movl	$(__KERNEL_STACK_CANARY), \reg
	movl	\reg, %gs
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.endm

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#endif /* CONFIG_X86_32_LAZY_GS */
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/* Unconditionally switch to user cr3 */
.macro SWITCH_TO_USER_CR3 scratch_reg:req
	ALTERNATIVE "jmp .Lend_\@", "", X86_FEATURE_PTI

	movl	%cr3, \scratch_reg
	orl	$PTI_SWITCH_MASK, \scratch_reg
	movl	\scratch_reg, %cr3
.Lend_\@:
.endm

/*
 * Switch to kernel cr3 if not already loaded and return current cr3 in
 * \scratch_reg
 */
.macro SWITCH_TO_KERNEL_CR3 scratch_reg:req
	ALTERNATIVE "jmp .Lend_\@", "", X86_FEATURE_PTI
	movl	%cr3, \scratch_reg
	/* Test if we are already on kernel CR3 */
	testl	$PTI_SWITCH_MASK, \scratch_reg
	jz	.Lend_\@
	andl	$(~PTI_SWITCH_MASK), \scratch_reg
	movl	\scratch_reg, %cr3
	/* Return original CR3 in \scratch_reg */
	orl	$PTI_SWITCH_MASK, \scratch_reg
.Lend_\@:
.endm

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.macro SAVE_ALL pt_regs_ax=%eax switch_stacks=0
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	cld
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	PUSH_GS
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	pushl	%fs
	pushl	%es
	pushl	%ds
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	pushl	\pt_regs_ax
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	pushl	%ebp
	pushl	%edi
	pushl	%esi
	pushl	%edx
	pushl	%ecx
	pushl	%ebx
	movl	$(__USER_DS), %edx
	movl	%edx, %ds
	movl	%edx, %es
	movl	$(__KERNEL_PERCPU), %edx
	movl	%edx, %fs
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	SET_KERNEL_GS %edx
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	/* Switch to kernel stack if necessary */
.if \switch_stacks > 0
	SWITCH_TO_KERNEL_STACK
.endif

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.endm
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.macro SAVE_ALL_NMI cr3_reg:req
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	SAVE_ALL
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	/*
	 * Now switch the CR3 when PTI is enabled.
	 *
	 * We can enter with either user or kernel cr3, the code will
	 * store the old cr3 in \cr3_reg and switches to the kernel cr3
	 * if necessary.
	 */
	SWITCH_TO_KERNEL_CR3 scratch_reg=\cr3_reg

.Lend_\@:
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.endm
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/*
 * This is a sneaky trick to help the unwinder find pt_regs on the stack.  The
 * frame pointer is replaced with an encoded pointer to pt_regs.  The encoding
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 * is just clearing the MSB, which makes it an invalid stack address and is also
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 * a signal to the unwinder that it's a pt_regs pointer in disguise.
 *
 * NOTE: This macro must be used *after* SAVE_ALL because it corrupts the
 * original rbp.
 */
.macro ENCODE_FRAME_POINTER
#ifdef CONFIG_FRAME_POINTER
	mov %esp, %ebp
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	andl $0x7fffffff, %ebp
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#endif
.endm

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.macro RESTORE_INT_REGS
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	popl	%ebx
	popl	%ecx
	popl	%edx
	popl	%esi
	popl	%edi
	popl	%ebp
	popl	%eax
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.endm
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.macro RESTORE_REGS pop=0
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	RESTORE_INT_REGS
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1:	popl	%ds
2:	popl	%es
3:	popl	%fs
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	POP_GS \pop
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.pushsection .fixup, "ax"
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4:	movl	$0, (%esp)
	jmp	1b
5:	movl	$0, (%esp)
	jmp	2b
6:	movl	$0, (%esp)
	jmp	3b
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.popsection
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	_ASM_EXTABLE(1b, 4b)
	_ASM_EXTABLE(2b, 5b)
	_ASM_EXTABLE(3b, 6b)
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	POP_GS_EX
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.endm
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.macro RESTORE_ALL_NMI cr3_reg:req pop=0
	/*
	 * Now switch the CR3 when PTI is enabled.
	 *
	 * We enter with kernel cr3 and switch the cr3 to the value
	 * stored on \cr3_reg, which is either a user or a kernel cr3.
	 */
	ALTERNATIVE "jmp .Lswitched_\@", "", X86_FEATURE_PTI

	testl	$PTI_SWITCH_MASK, \cr3_reg
	jz	.Lswitched_\@

	/* User cr3 in \cr3_reg - write it to hardware cr3 */
	movl	\cr3_reg, %cr3

.Lswitched_\@:

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	RESTORE_REGS pop=\pop
.endm

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.macro CHECK_AND_APPLY_ESPFIX
#ifdef CONFIG_X86_ESPFIX32
#define GDT_ESPFIX_SS PER_CPU_VAR(gdt_page) + (GDT_ENTRY_ESPFIX_SS * 8)

	ALTERNATIVE	"jmp .Lend_\@", "", X86_BUG_ESPFIX

	movl	PT_EFLAGS(%esp), %eax		# mix EFLAGS, SS and CS
	/*
	 * Warning: PT_OLDSS(%esp) contains the wrong/random values if we
	 * are returning to the kernel.
	 * See comments in process.c:copy_thread() for details.
	 */
	movb	PT_OLDSS(%esp), %ah
	movb	PT_CS(%esp), %al
	andl	$(X86_EFLAGS_VM | (SEGMENT_TI_MASK << 8) | SEGMENT_RPL_MASK), %eax
	cmpl	$((SEGMENT_LDT << 8) | USER_RPL), %eax
	jne	.Lend_\@	# returning to user-space with LDT SS

	/*
	 * Setup and switch to ESPFIX stack
	 *
	 * We're returning to userspace with a 16 bit stack. The CPU will not
	 * restore the high word of ESP for us on executing iret... This is an
	 * "official" bug of all the x86-compatible CPUs, which we can work
	 * around to make dosemu and wine happy. We do this by preloading the
	 * high word of ESP with the high word of the userspace ESP while
	 * compensating for the offset by changing to the ESPFIX segment with
	 * a base address that matches for the difference.
	 */
	mov	%esp, %edx			/* load kernel esp */
	mov	PT_OLDESP(%esp), %eax		/* load userspace esp */
	mov	%dx, %ax			/* eax: new kernel esp */
	sub	%eax, %edx			/* offset (low word is 0) */
	shr	$16, %edx
	mov	%dl, GDT_ESPFIX_SS + 4		/* bits 16..23 */
	mov	%dh, GDT_ESPFIX_SS + 7		/* bits 24..31 */
	pushl	$__ESPFIX_SS
	pushl	%eax				/* new kernel esp */
	/*
	 * Disable interrupts, but do not irqtrace this section: we
	 * will soon execute iret and the tracer was already set to
	 * the irqstate after the IRET:
	 */
	DISABLE_INTERRUPTS(CLBR_ANY)
	lss	(%esp), %esp			/* switch to espfix segment */
.Lend_\@:
#endif /* CONFIG_X86_ESPFIX32 */
.endm
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/*
 * Called with pt_regs fully populated and kernel segments loaded,
 * so we can access PER_CPU and use the integer registers.
 *
 * We need to be very careful here with the %esp switch, because an NMI
 * can happen everywhere. If the NMI handler finds itself on the
 * entry-stack, it will overwrite the task-stack and everything we
 * copied there. So allocate the stack-frame on the task-stack and
 * switch to it before we do any copying.
 */
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#define CS_FROM_ENTRY_STACK	(1 << 31)
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#define CS_FROM_USER_CR3	(1 << 30)
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.macro SWITCH_TO_KERNEL_STACK

	ALTERNATIVE     "", "jmp .Lend_\@", X86_FEATURE_XENPV

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	SWITCH_TO_KERNEL_CR3 scratch_reg=%eax

	/*
	 * %eax now contains the entry cr3 and we carry it forward in
	 * that register for the time this macro runs
	 */

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	/* Are we on the entry stack? Bail out if not! */
	movl	PER_CPU_VAR(cpu_entry_area), %ecx
	addl	$CPU_ENTRY_AREA_entry_stack + SIZEOF_entry_stack, %ecx
	subl	%esp, %ecx	/* ecx = (end of entry_stack) - esp */
	cmpl	$SIZEOF_entry_stack, %ecx
	jae	.Lend_\@

	/* Load stack pointer into %esi and %edi */
	movl	%esp, %esi
	movl	%esi, %edi

	/* Move %edi to the top of the entry stack */
	andl	$(MASK_entry_stack), %edi
	addl	$(SIZEOF_entry_stack), %edi

	/* Load top of task-stack into %edi */
	movl	TSS_entry2task_stack(%edi), %edi

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	/*
	 * Clear unused upper bits of the dword containing the word-sized CS
	 * slot in pt_regs in case hardware didn't clear it for us.
	 */
	andl	$(0x0000ffff), PT_CS(%esp)

	/* Special case - entry from kernel mode via entry stack */
	testl	$SEGMENT_RPL_MASK, PT_CS(%esp)
	jz	.Lentry_from_kernel_\@

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	/* Bytes to copy */
	movl	$PTREGS_SIZE, %ecx

#ifdef CONFIG_VM86
	testl	$X86_EFLAGS_VM, PT_EFLAGS(%esi)
	jz	.Lcopy_pt_regs_\@

	/*
	 * Stack-frame contains 4 additional segment registers when
	 * coming from VM86 mode
	 */
	addl	$(4 * 4), %ecx

#endif
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.Lcopy_pt_regs_\@:
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	/* Allocate frame on task-stack */
	subl	%ecx, %edi

	/* Switch to task-stack */
	movl	%edi, %esp

	/*
	 * We are now on the task-stack and can safely copy over the
	 * stack-frame
	 */
	shrl	$2, %ecx
	cld
	rep movsl

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	jmp .Lend_\@

.Lentry_from_kernel_\@:

	/*
	 * This handles the case when we enter the kernel from
	 * kernel-mode and %esp points to the entry-stack. When this
	 * happens we need to switch to the task-stack to run C code,
	 * but switch back to the entry-stack again when we approach
	 * iret and return to the interrupted code-path. This usually
	 * happens when we hit an exception while restoring user-space
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	 * segment registers on the way back to user-space or when the
	 * sysenter handler runs with eflags.tf set.
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	 *
	 * When we switch to the task-stack here, we can't trust the
	 * contents of the entry-stack anymore, as the exception handler
	 * might be scheduled out or moved to another CPU. Therefore we
	 * copy the complete entry-stack to the task-stack and set a
	 * marker in the iret-frame (bit 31 of the CS dword) to detect
	 * what we've done on the iret path.
	 *
	 * On the iret path we copy everything back and switch to the
	 * entry-stack, so that the interrupted kernel code-path
	 * continues on the same stack it was interrupted with.
	 *
	 * Be aware that an NMI can happen anytime in this code.
	 *
	 * %esi: Entry-Stack pointer (same as %esp)
	 * %edi: Top of the task stack
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	 * %eax: CR3 on kernel entry
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	 */

	/* Calculate number of bytes on the entry stack in %ecx */
	movl	%esi, %ecx

	/* %ecx to the top of entry-stack */
	andl	$(MASK_entry_stack), %ecx
	addl	$(SIZEOF_entry_stack), %ecx

	/* Number of bytes on the entry stack to %ecx */
	sub	%esi, %ecx

	/* Mark stackframe as coming from entry stack */
	orl	$CS_FROM_ENTRY_STACK, PT_CS(%esp)

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	/*
	 * Test the cr3 used to enter the kernel and add a marker
	 * so that we can switch back to it before iret.
	 */
	testl	$PTI_SWITCH_MASK, %eax
	jz	.Lcopy_pt_regs_\@
	orl	$CS_FROM_USER_CR3, PT_CS(%esp)

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	/*
	 * %esi and %edi are unchanged, %ecx contains the number of
	 * bytes to copy. The code at .Lcopy_pt_regs_\@ will allocate
	 * the stack-frame on task-stack and copy everything over
	 */
	jmp .Lcopy_pt_regs_\@

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.Lend_\@:
.endm

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/*
 * Switch back from the kernel stack to the entry stack.
 *
 * The %esp register must point to pt_regs on the task stack. It will
 * first calculate the size of the stack-frame to copy, depending on
 * whether we return to VM86 mode or not. With that it uses 'rep movsl'
 * to copy the contents of the stack over to the entry stack.
 *
 * We must be very careful here, as we can't trust the contents of the
 * task-stack once we switched to the entry-stack. When an NMI happens
 * while on the entry-stack, the NMI handler will switch back to the top
 * of the task stack, overwriting our stack-frame we are about to copy.
 * Therefore we switch the stack only after everything is copied over.
 */
.macro SWITCH_TO_ENTRY_STACK

	ALTERNATIVE     "", "jmp .Lend_\@", X86_FEATURE_XENPV

	/* Bytes to copy */
	movl	$PTREGS_SIZE, %ecx

#ifdef CONFIG_VM86
	testl	$(X86_EFLAGS_VM), PT_EFLAGS(%esp)
	jz	.Lcopy_pt_regs_\@

	/* Additional 4 registers to copy when returning to VM86 mode */
	addl    $(4 * 4), %ecx

.Lcopy_pt_regs_\@:
#endif

	/* Initialize source and destination for movsl */
	movl	PER_CPU_VAR(cpu_tss_rw + TSS_sp0), %edi
	subl	%ecx, %edi
	movl	%esp, %esi

	/* Save future stack pointer in %ebx */
	movl	%edi, %ebx

	/* Copy over the stack-frame */
	shrl	$2, %ecx
	cld
	rep movsl

	/*
	 * Switch to entry-stack - needs to happen after everything is
	 * copied because the NMI handler will overwrite the task-stack
	 * when on entry-stack
	 */
	movl	%ebx, %esp

.Lend_\@:
.endm

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/*
 * This macro handles the case when we return to kernel-mode on the iret
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 * path and have to switch back to the entry stack and/or user-cr3
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 *
 * See the comments below the .Lentry_from_kernel_\@ label in the
 * SWITCH_TO_KERNEL_STACK macro for more details.
 */
.macro PARANOID_EXIT_TO_KERNEL_MODE

	/*
	 * Test if we entered the kernel with the entry-stack. Most
	 * likely we did not, because this code only runs on the
	 * return-to-kernel path.
	 */
	testl	$CS_FROM_ENTRY_STACK, PT_CS(%esp)
	jz	.Lend_\@

	/* Unlikely slow-path */

	/* Clear marker from stack-frame */
	andl	$(~CS_FROM_ENTRY_STACK), PT_CS(%esp)

	/* Copy the remaining task-stack contents to entry-stack */
	movl	%esp, %esi
	movl	PER_CPU_VAR(cpu_tss_rw + TSS_sp0), %edi

	/* Bytes on the task-stack to ecx */
	movl	PER_CPU_VAR(cpu_tss_rw + TSS_sp1), %ecx
	subl	%esi, %ecx

	/* Allocate stack-frame on entry-stack */
	subl	%ecx, %edi

	/*
	 * Save future stack-pointer, we must not switch until the
	 * copy is done, otherwise the NMI handler could destroy the
	 * contents of the task-stack we are about to copy.
	 */
	movl	%edi, %ebx

	/* Do the copy */
	shrl	$2, %ecx
	cld
	rep movsl

	/* Safe to switch to entry-stack now */
	movl	%ebx, %esp

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	/*
	 * We came from entry-stack and need to check if we also need to
	 * switch back to user cr3.
	 */
	testl	$CS_FROM_USER_CR3, PT_CS(%esp)
	jz	.Lend_\@

	/* Clear marker from stack-frame */
	andl	$(~CS_FROM_USER_CR3), PT_CS(%esp)

	SWITCH_TO_USER_CR3 scratch_reg=%eax

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.Lend_\@:
.endm
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/*
 * %eax: prev task
 * %edx: next task
 */
ENTRY(__switch_to_asm)
	/*
	 * Save callee-saved registers
	 * This must match the order in struct inactive_task_frame
	 */
	pushl	%ebp
	pushl	%ebx
	pushl	%edi
	pushl	%esi

	/* switch stack */
	movl	%esp, TASK_threadsp(%eax)
	movl	TASK_threadsp(%edx), %esp

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#ifdef CONFIG_STACKPROTECTOR
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	movl	TASK_stack_canary(%edx), %ebx
	movl	%ebx, PER_CPU_VAR(stack_canary)+stack_canary_offset
#endif

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#ifdef CONFIG_RETPOLINE
	/*
	 * When switching from a shallower to a deeper call stack
	 * the RSB may either underflow or use entries populated
	 * with userspace addresses. On CPUs where those concerns
	 * exist, overwrite the RSB with entries which capture
	 * speculative execution to prevent attack.
	 */
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	FILL_RETURN_BUFFER %ebx, RSB_CLEAR_LOOPS, X86_FEATURE_RSB_CTXSW
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#endif

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	/* restore callee-saved registers */
	popl	%esi
	popl	%edi
	popl	%ebx
	popl	%ebp

	jmp	__switch_to
END(__switch_to_asm)

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/*
 * The unwinder expects the last frame on the stack to always be at the same
 * offset from the end of the page, which allows it to validate the stack.
 * Calling schedule_tail() directly would break that convention because its an
 * asmlinkage function so its argument has to be pushed on the stack.  This
 * wrapper creates a proper "end of stack" frame header before the call.
 */
ENTRY(schedule_tail_wrapper)
	FRAME_BEGIN

	pushl	%eax
	call	schedule_tail
	popl	%eax

	FRAME_END
	ret
ENDPROC(schedule_tail_wrapper)
664 665 666 667
/*
 * A newly forked process directly context switches into this address.
 *
 * eax: prev task we switched from
668 669
 * ebx: kernel thread func (NULL for user thread)
 * edi: kernel thread arg
670
 */
L
Linus Torvalds 已提交
671
ENTRY(ret_from_fork)
672
	call	schedule_tail_wrapper
673

674 675 676 677
	testl	%ebx, %ebx
	jnz	1f		/* kernel threads are uncommon */

2:
678
	/* When we fork, we trace the syscall return in the child, too. */
679
	movl    %esp, %eax
680 681 682
	call    syscall_return_slowpath
	jmp     restore_all

683 684
	/* kernel thread */
1:	movl	%edi, %eax
685
	CALL_NOSPEC %ebx
686
	/*
687 688 689
	 * A kernel thread is allowed to return here after successfully
	 * calling do_execve().  Exit to userspace to complete the execve()
	 * syscall.
690
	 */
691 692 693
	movl	$0, PT_EAX(%esp)
	jmp	2b
END(ret_from_fork)
694

L
Linus Torvalds 已提交
695 696 697 698 699 700 701 702 703 704
/*
 * Return to user mode is not as complex as all this looks,
 * but we want the default path for a system call return to
 * go as quickly as possible which is why some of this is
 * less clear than it otherwise should be.
 */

	# userspace resumption stub bypassing syscall exit tracing
	ALIGN
ret_from_exception:
705
	preempt_stop(CLBR_ANY)
L
Linus Torvalds 已提交
706
ret_from_intr:
707
#ifdef CONFIG_VM86
708 709 710
	movl	PT_EFLAGS(%esp), %eax		# mix EFLAGS and CS
	movb	PT_CS(%esp), %al
	andl	$(X86_EFLAGS_VM | SEGMENT_RPL_MASK), %eax
711 712
#else
	/*
713
	 * We can be coming here from child spawned by kernel_thread().
714
	 */
715 716
	movl	PT_CS(%esp), %eax
	andl	$SEGMENT_RPL_MASK, %eax
717
#endif
718 719
	cmpl	$USER_RPL, %eax
	jb	resume_kernel			# not returning to v8086 or userspace
720

L
Linus Torvalds 已提交
721
ENTRY(resume_userspace)
722
	DISABLE_INTERRUPTS(CLBR_ANY)
723
	TRACE_IRQS_OFF
724 725
	movl	%esp, %eax
	call	prepare_exit_to_usermode
726
	jmp	restore_all
727
END(ret_from_exception)
L
Linus Torvalds 已提交
728 729 730

#ifdef CONFIG_PREEMPT
ENTRY(resume_kernel)
731
	DISABLE_INTERRUPTS(CLBR_ANY)
732
.Lneed_resched:
733
	cmpl	$0, PER_CPU_VAR(__preempt_count)
734
	jnz	restore_all_kernel
735
	testl	$X86_EFLAGS_IF, PT_EFLAGS(%esp)	# interrupts off (exception path) ?
736
	jz	restore_all_kernel
737
	call	preempt_schedule_irq
738
	jmp	.Lneed_resched
739
END(resume_kernel)
L
Linus Torvalds 已提交
740 741
#endif

742 743 744 745 746 747 748 749 750 751 752 753 754 755 756 757 758
GLOBAL(__begin_SYSENTER_singlestep_region)
/*
 * All code from here through __end_SYSENTER_singlestep_region is subject
 * to being single-stepped if a user program sets TF and executes SYSENTER.
 * There is absolutely nothing that we can do to prevent this from happening
 * (thanks Intel!).  To keep our handling of this situation as simple as
 * possible, we handle TF just like AC and NT, except that our #DB handler
 * will ignore all of the single-step traps generated in this range.
 */

#ifdef CONFIG_XEN
/*
 * Xen doesn't set %esp to be precisely what the normal SYSENTER
 * entry point expects, so fix it up before using the normal path.
 */
ENTRY(xen_sysenter_target)
	addl	$5*4, %esp			/* remove xen-provided frame */
759
	jmp	.Lsysenter_past_esp
760 761
#endif

762 763 764 765 766 767 768 769 770 771 772 773 774 775 776 777 778 779 780 781 782 783 784 785 786 787 788 789 790 791 792 793
/*
 * 32-bit SYSENTER entry.
 *
 * 32-bit system calls through the vDSO's __kernel_vsyscall enter here
 * if X86_FEATURE_SEP is available.  This is the preferred system call
 * entry on 32-bit systems.
 *
 * The SYSENTER instruction, in principle, should *only* occur in the
 * vDSO.  In practice, a small number of Android devices were shipped
 * with a copy of Bionic that inlined a SYSENTER instruction.  This
 * never happened in any of Google's Bionic versions -- it only happened
 * in a narrow range of Intel-provided versions.
 *
 * SYSENTER loads SS, ESP, CS, and EIP from previously programmed MSRs.
 * IF and VM in RFLAGS are cleared (IOW: interrupts are off).
 * SYSENTER does not save anything on the stack,
 * and does not save old EIP (!!!), ESP, or EFLAGS.
 *
 * To avoid losing track of EFLAGS.VM (and thus potentially corrupting
 * user and/or vm86 state), we explicitly disable the SYSENTER
 * instruction in vm86 mode by reprogramming the MSRs.
 *
 * Arguments:
 * eax  system call number
 * ebx  arg1
 * ecx  arg2
 * edx  arg3
 * esi  arg4
 * edi  arg5
 * ebp  user stack
 * 0(%ebp) arg6
 */
794
ENTRY(entry_SYSENTER_32)
795 796 797 798 799 800 801 802 803 804 805 806
	/*
	 * On entry-stack with all userspace-regs live - save and
	 * restore eflags and %eax to use it as scratch-reg for the cr3
	 * switch.
	 */
	pushfl
	pushl	%eax
	SWITCH_TO_KERNEL_CR3 scratch_reg=%eax
	popl	%eax
	popfl

	/* Stack empty again, switch to task stack */
807
	movl	TSS_entry2task_stack(%esp), %esp
808

809
.Lsysenter_past_esp:
810
	pushl	$__USER_DS		/* pt_regs->ss */
811
	pushl	%ebp			/* pt_regs->sp (stashed in bp) */
812 813 814 815 816
	pushfl				/* pt_regs->flags (except IF = 0) */
	orl	$X86_EFLAGS_IF, (%esp)	/* Fix IF */
	pushl	$__USER_CS		/* pt_regs->cs */
	pushl	$0			/* pt_regs->ip = 0 (placeholder) */
	pushl	%eax			/* pt_regs->orig_ax */
817
	SAVE_ALL pt_regs_ax=$-ENOSYS	/* save rest, stack already switched */
818

819
	/*
820 821
	 * SYSENTER doesn't filter flags, so we need to clear NT, AC
	 * and TF ourselves.  To save a few cycles, we can check whether
822 823 824 825
	 * either was set instead of doing an unconditional popfq.
	 * This needs to happen before enabling interrupts so that
	 * we don't get preempted with NT set.
	 *
826 827 828 829 830 831
	 * If TF is set, we will single-step all the way to here -- do_debug
	 * will ignore all the traps.  (Yes, this is slow, but so is
	 * single-stepping in general.  This allows us to avoid having
	 * a more complicated code to handle the case where a user program
	 * forces us to single-step through the SYSENTER entry code.)
	 *
832 833 834 835 836 837
	 * NB.: .Lsysenter_fix_flags is a label with the code under it moved
	 * out-of-line as an optimization: NT is unlikely to be set in the
	 * majority of the cases and instead of polluting the I$ unnecessarily,
	 * we're keeping that code behind a branch which will predict as
	 * not-taken and therefore its instructions won't be fetched.
	 */
838
	testl	$X86_EFLAGS_NT|X86_EFLAGS_AC|X86_EFLAGS_TF, PT_EFLAGS(%esp)
839 840 841
	jnz	.Lsysenter_fix_flags
.Lsysenter_flags_fixed:

842
	/*
843 844
	 * User mode is traced as though IRQs are on, and SYSENTER
	 * turned them off.
845
	 */
846
	TRACE_IRQS_OFF
847 848 849

	movl	%esp, %eax
	call	do_fast_syscall_32
850 851 852
	/* XEN PV guests always use IRET path */
	ALTERNATIVE "testl %eax, %eax; jz .Lsyscall_32_done", \
		    "jmp .Lsyscall_32_done", X86_FEATURE_XENPV
853 854 855

/* Opportunistic SYSEXIT */
	TRACE_IRQS_ON			/* User mode traces as IRQs on. */
856 857 858 859 860 861 862 863 864 865 866 867 868 869 870 871 872

	/*
	 * Setup entry stack - we keep the pointer in %eax and do the
	 * switch after almost all user-state is restored.
	 */

	/* Load entry stack pointer and allocate frame for eflags/eax */
	movl	PER_CPU_VAR(cpu_tss_rw + TSS_sp0), %eax
	subl	$(2*4), %eax

	/* Copy eflags and eax to entry stack */
	movl	PT_EFLAGS(%esp), %edi
	movl	PT_EAX(%esp), %esi
	movl	%edi, (%eax)
	movl	%esi, 4(%eax)

	/* Restore user registers and segments */
873 874
	movl	PT_EIP(%esp), %edx	/* pt_regs->ip */
	movl	PT_OLDESP(%esp), %ecx	/* pt_regs->sp */
875 876
1:	mov	PT_FS(%esp), %fs
	PTGS_TO_GS
877

878 879 880 881 882
	popl	%ebx			/* pt_regs->bx */
	addl	$2*4, %esp		/* skip pt_regs->cx and pt_regs->dx */
	popl	%esi			/* pt_regs->si */
	popl	%edi			/* pt_regs->di */
	popl	%ebp			/* pt_regs->bp */
883 884 885

	/* Switch to entry stack */
	movl	%eax, %esp
886

887 888 889
	/* Now ready to switch the cr3 */
	SWITCH_TO_USER_CR3 scratch_reg=%eax

890 891 892 893 894
	/*
	 * Restore all flags except IF. (We restore IF separately because
	 * STI gives a one-instruction window in which we won't be interrupted,
	 * whereas POPF does not.)
	 */
895
	btrl	$X86_EFLAGS_IF_BIT, (%esp)
896
	popfl
897
	popl	%eax
898

899 900 901 902
	/*
	 * Return back to the vDSO, which will pop ecx and edx.
	 * Don't bother with DS and ES (they already contain __USER_DS).
	 */
903 904
	sti
	sysexit
R
Roland McGrath 已提交
905

906 907 908
.pushsection .fixup, "ax"
2:	movl	$0, PT_FS(%esp)
	jmp	1b
909
.popsection
910
	_ASM_EXTABLE(1b, 2b)
911
	PTGS_TO_GS_EX
912 913 914 915 916

.Lsysenter_fix_flags:
	pushl	$X86_EFLAGS_FIXED
	popfl
	jmp	.Lsysenter_flags_fixed
917
GLOBAL(__end_SYSENTER_singlestep_region)
918
ENDPROC(entry_SYSENTER_32)
L
Linus Torvalds 已提交
919

920 921 922 923 924 925 926 927 928 929 930 931 932 933 934 935 936 937 938 939 940 941 942 943 944 945 946 947
/*
 * 32-bit legacy system call entry.
 *
 * 32-bit x86 Linux system calls traditionally used the INT $0x80
 * instruction.  INT $0x80 lands here.
 *
 * This entry point can be used by any 32-bit perform system calls.
 * Instances of INT $0x80 can be found inline in various programs and
 * libraries.  It is also used by the vDSO's __kernel_vsyscall
 * fallback for hardware that doesn't support a faster entry method.
 * Restarted 32-bit system calls also fall back to INT $0x80
 * regardless of what instruction was originally used to do the system
 * call.  (64-bit programs can use INT $0x80 as well, but they can
 * only run on 64-bit kernels and therefore land in
 * entry_INT80_compat.)
 *
 * This is considered a slow path.  It is not used by most libc
 * implementations on modern hardware except during process startup.
 *
 * Arguments:
 * eax  system call number
 * ebx  arg1
 * ecx  arg2
 * edx  arg3
 * esi  arg4
 * edi  arg5
 * ebp  arg6
 */
948
ENTRY(entry_INT80_32)
949
	ASM_CLAC
950
	pushl	%eax			/* pt_regs->orig_ax */
951 952

	SAVE_ALL pt_regs_ax=$-ENOSYS switch_stacks=1	/* save rest */
953 954

	/*
955 956
	 * User mode is traced as though IRQs are on, and the interrupt gate
	 * turned them off.
957
	 */
958
	TRACE_IRQS_OFF
959 960

	movl	%esp, %eax
961
	call	do_int80_syscall_32
962
.Lsyscall_32_done:
L
Linus Torvalds 已提交
963 964

restore_all:
965
	TRACE_IRQS_IRET
966
	SWITCH_TO_ENTRY_STACK
967
.Lrestore_all_notrace:
968
	CHECK_AND_APPLY_ESPFIX
969
.Lrestore_nocheck:
970 971 972 973 974
	/* Switch back to user CR3 */
	SWITCH_TO_USER_CR3 scratch_reg=%eax

	/* Restore user state */
	RESTORE_REGS pop=4			# skip orig_eax/error_code
975
.Lirq_return:
976 977 978 979 980
	/*
	 * ARCH_HAS_MEMBARRIER_SYNC_CORE rely on IRET core serialization
	 * when returning from IPI handler and when returning from
	 * scheduler to user-space.
	 */
I
Ingo Molnar 已提交
981
	INTERRUPT_RETURN
982

983 984
restore_all_kernel:
	TRACE_IRQS_IRET
985
	PARANOID_EXIT_TO_KERNEL_MODE
986 987 988
	RESTORE_REGS 4
	jmp	.Lirq_return

989 990 991 992
.section .fixup, "ax"
ENTRY(iret_exc	)
	pushl	$0				# no error code
	pushl	$do_iret_error
993
	jmp	common_exception
L
Linus Torvalds 已提交
994
.previous
995
	_ASM_EXTABLE(.Lirq_return, iret_exc)
996
ENDPROC(entry_INT80_32)
L
Linus Torvalds 已提交
997

998
.macro FIXUP_ESPFIX_STACK
999 1000 1001 1002 1003 1004 1005
/*
 * Switch back for ESPFIX stack to the normal zerobased stack
 *
 * We can't call C functions using the ESPFIX stack. This code reads
 * the high word of the segment base from the GDT and swiches to the
 * normal stack and adjusts ESP with the matching offset.
 */
1006
#ifdef CONFIG_X86_ESPFIX32
1007
	/* fixup the stack */
1008 1009
	mov	GDT_ESPFIX_SS + 4, %al /* bits 16..23 */
	mov	GDT_ESPFIX_SS + 7, %ah /* bits 24..31 */
1010
	shl	$16, %eax
1011 1012 1013 1014
	addl	%esp, %eax			/* the adjusted stack pointer */
	pushl	$__KERNEL_DS
	pushl	%eax
	lss	(%esp), %esp			/* switch to the normal stack segment */
1015
#endif
1016 1017
.endm
.macro UNWIND_ESPFIX_STACK
1018
#ifdef CONFIG_X86_ESPFIX32
1019
	movl	%ss, %eax
1020
	/* see if on espfix stack */
1021 1022 1023 1024 1025
	cmpw	$__ESPFIX_SS, %ax
	jne	27f
	movl	$__KERNEL_DS, %eax
	movl	%eax, %ds
	movl	%eax, %es
1026 1027 1028
	/* switch to normal stack */
	FIXUP_ESPFIX_STACK
27:
1029
#endif
1030
.endm
L
Linus Torvalds 已提交
1031 1032

/*
1033 1034
 * Build the entry stubs with some assembler magic.
 * We pack 1 stub into every 8-byte block.
L
Linus Torvalds 已提交
1035
 */
1036
	.align 8
L
Linus Torvalds 已提交
1037
ENTRY(irq_entries_start)
1038 1039
    vector=FIRST_EXTERNAL_VECTOR
    .rept (FIRST_SYSTEM_VECTOR - FIRST_EXTERNAL_VECTOR)
1040
	pushl	$(~vector+0x80)			/* Note: always in signed byte range */
1041 1042 1043 1044
    vector=vector+1
	jmp	common_interrupt
	.align	8
    .endr
1045 1046
END(irq_entries_start)

1047 1048 1049 1050
/*
 * the CPU automatically disables interrupts when executing an IRQ vector,
 * so IRQ-flags tracing has to follow that:
 */
1051
	.p2align CONFIG_X86_L1_CACHE_SHIFT
L
Linus Torvalds 已提交
1052
common_interrupt:
1053
	ASM_CLAC
1054
	addl	$-0x80, (%esp)			/* Adjust vector into the [-256, -1] range */
1055 1056

	SAVE_ALL switch_stacks=1
1057
	ENCODE_FRAME_POINTER
1058
	TRACE_IRQS_OFF
1059 1060 1061
	movl	%esp, %eax
	call	do_IRQ
	jmp	ret_from_intr
1062
ENDPROC(common_interrupt)
L
Linus Torvalds 已提交
1063

1064 1065 1066 1067 1068 1069 1070 1071 1072 1073
#define BUILD_INTERRUPT3(name, nr, fn)			\
ENTRY(name)						\
	ASM_CLAC;					\
	pushl	$~(nr);					\
	SAVE_ALL switch_stacks=1;			\
	ENCODE_FRAME_POINTER;				\
	TRACE_IRQS_OFF					\
	movl	%esp, %eax;				\
	call	fn;					\
	jmp	ret_from_intr;				\
1074
ENDPROC(name)
L
Linus Torvalds 已提交
1075

1076 1077
#define BUILD_INTERRUPT(name, nr)		\
	BUILD_INTERRUPT3(name, nr, smp_##name);	\
T
Tejun Heo 已提交
1078

L
Linus Torvalds 已提交
1079
/* The include is where all of the SMP etc. interrupts come from */
1080
#include <asm/entry_arch.h>
L
Linus Torvalds 已提交
1081 1082

ENTRY(coprocessor_error)
1083
	ASM_CLAC
1084 1085
	pushl	$0
	pushl	$do_coprocessor_error
1086
	jmp	common_exception
1087
END(coprocessor_error)
L
Linus Torvalds 已提交
1088 1089

ENTRY(simd_coprocessor_error)
1090
	ASM_CLAC
1091
	pushl	$0
1092 1093
#ifdef CONFIG_X86_INVD_BUG
	/* AMD 486 bug: invd from userspace calls exception 19 instead of #GP */
1094 1095
	ALTERNATIVE "pushl	$do_general_protection",	\
		    "pushl	$do_simd_coprocessor_error",	\
1096
		    X86_FEATURE_XMM
1097
#else
1098
	pushl	$do_simd_coprocessor_error
1099
#endif
1100
	jmp	common_exception
1101
END(simd_coprocessor_error)
L
Linus Torvalds 已提交
1102 1103

ENTRY(device_not_available)
1104
	ASM_CLAC
1105 1106
	pushl	$-1				# mark this as an int
	pushl	$do_device_not_available
1107
	jmp	common_exception
1108
END(device_not_available)
L
Linus Torvalds 已提交
1109

1110 1111
#ifdef CONFIG_PARAVIRT
ENTRY(native_iret)
I
Ingo Molnar 已提交
1112
	iret
1113
	_ASM_EXTABLE(native_iret, iret_exc)
1114
END(native_iret)
1115 1116
#endif

L
Linus Torvalds 已提交
1117
ENTRY(overflow)
1118
	ASM_CLAC
1119 1120
	pushl	$0
	pushl	$do_overflow
1121
	jmp	common_exception
1122
END(overflow)
L
Linus Torvalds 已提交
1123 1124

ENTRY(bounds)
1125
	ASM_CLAC
1126 1127
	pushl	$0
	pushl	$do_bounds
1128
	jmp	common_exception
1129
END(bounds)
L
Linus Torvalds 已提交
1130 1131

ENTRY(invalid_op)
1132
	ASM_CLAC
1133 1134
	pushl	$0
	pushl	$do_invalid_op
1135
	jmp	common_exception
1136
END(invalid_op)
L
Linus Torvalds 已提交
1137 1138

ENTRY(coprocessor_segment_overrun)
1139
	ASM_CLAC
1140 1141
	pushl	$0
	pushl	$do_coprocessor_segment_overrun
1142
	jmp	common_exception
1143
END(coprocessor_segment_overrun)
L
Linus Torvalds 已提交
1144 1145

ENTRY(invalid_TSS)
1146
	ASM_CLAC
1147
	pushl	$do_invalid_TSS
1148
	jmp	common_exception
1149
END(invalid_TSS)
L
Linus Torvalds 已提交
1150 1151

ENTRY(segment_not_present)
1152
	ASM_CLAC
1153
	pushl	$do_segment_not_present
1154
	jmp	common_exception
1155
END(segment_not_present)
L
Linus Torvalds 已提交
1156 1157

ENTRY(stack_segment)
1158
	ASM_CLAC
1159
	pushl	$do_stack_segment
1160
	jmp	common_exception
1161
END(stack_segment)
L
Linus Torvalds 已提交
1162 1163

ENTRY(alignment_check)
1164
	ASM_CLAC
1165
	pushl	$do_alignment_check
1166
	jmp	common_exception
1167
END(alignment_check)
L
Linus Torvalds 已提交
1168

1169
ENTRY(divide_error)
1170
	ASM_CLAC
1171 1172
	pushl	$0				# no error code
	pushl	$do_divide_error
1173
	jmp	common_exception
1174
END(divide_error)
L
Linus Torvalds 已提交
1175 1176 1177

#ifdef CONFIG_X86_MCE
ENTRY(machine_check)
1178
	ASM_CLAC
1179 1180
	pushl	$0
	pushl	machine_check_vector
1181
	jmp	common_exception
1182
END(machine_check)
L
Linus Torvalds 已提交
1183 1184 1185
#endif

ENTRY(spurious_interrupt_bug)
1186
	ASM_CLAC
1187 1188
	pushl	$0
	pushl	$do_spurious_interrupt_bug
1189
	jmp	common_exception
1190
END(spurious_interrupt_bug)
L
Linus Torvalds 已提交
1191

1192 1193
#ifdef CONFIG_XEN
ENTRY(xen_hypervisor_callback)
1194
	pushl	$-1				/* orig_ax = -1 => not a system call */
1195
	SAVE_ALL
1196
	ENCODE_FRAME_POINTER
1197
	TRACE_IRQS_OFF
1198

1199 1200 1201 1202 1203 1204 1205 1206 1207 1208 1209 1210
	/*
	 * Check to see if we got the event in the critical
	 * region in xen_iret_direct, after we've reenabled
	 * events and checked for pending events.  This simulates
	 * iret instruction's behaviour where it delivers a
	 * pending interrupt when enabling interrupts:
	 */
	movl	PT_EIP(%esp), %eax
	cmpl	$xen_iret_start_crit, %eax
	jb	1f
	cmpl	$xen_iret_end_crit, %eax
	jae	1f
1211

1212
	jmp	xen_iret_crit_fixup
1213 1214

ENTRY(xen_do_upcall)
1215 1216
1:	mov	%esp, %eax
	call	xen_evtchn_do_upcall
1217
#ifndef CONFIG_PREEMPT
1218
	call	xen_maybe_preempt_hcall
1219
#endif
1220
	jmp	ret_from_intr
1221 1222
ENDPROC(xen_hypervisor_callback)

1223 1224 1225 1226 1227 1228 1229 1230 1231 1232 1233 1234
/*
 * 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 fix up by reattempting the load, and zeroing the segment
 * register if the load fails.
 * Category 2 we fix up by jumping to do_iret_error. 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 maintaining a status value in EAX.
 */
1235
ENTRY(xen_failsafe_callback)
1236 1237 1238 1239 1240 1241
	pushl	%eax
	movl	$1, %eax
1:	mov	4(%esp), %ds
2:	mov	8(%esp), %es
3:	mov	12(%esp), %fs
4:	mov	16(%esp), %gs
1242 1243
	/* EAX == 0 => Category 1 (Bad segment)
	   EAX != 0 => Category 2 (Bad IRET) */
1244 1245 1246 1247 1248 1249
	testl	%eax, %eax
	popl	%eax
	lea	16(%esp), %esp
	jz	5f
	jmp	iret_exc
5:	pushl	$-1				/* orig_ax = -1 => not a system call */
1250
	SAVE_ALL
1251
	ENCODE_FRAME_POINTER
1252 1253 1254 1255 1256 1257 1258 1259 1260 1261 1262 1263 1264 1265 1266
	jmp	ret_from_exception

.section .fixup, "ax"
6:	xorl	%eax, %eax
	movl	%eax, 4(%esp)
	jmp	1b
7:	xorl	%eax, %eax
	movl	%eax, 8(%esp)
	jmp	2b
8:	xorl	%eax, %eax
	movl	%eax, 12(%esp)
	jmp	3b
9:	xorl	%eax, %eax
	movl	%eax, 16(%esp)
	jmp	4b
1267
.previous
1268 1269 1270 1271
	_ASM_EXTABLE(1b, 6b)
	_ASM_EXTABLE(2b, 7b)
	_ASM_EXTABLE(3b, 8b)
	_ASM_EXTABLE(4b, 9b)
1272 1273
ENDPROC(xen_failsafe_callback)

1274
BUILD_INTERRUPT3(xen_hvm_callback_vector, HYPERVISOR_CALLBACK_VECTOR,
1275
		 xen_evtchn_do_upcall)
1276

1277
#endif /* CONFIG_XEN */
1278 1279 1280 1281

#if IS_ENABLED(CONFIG_HYPERV)

BUILD_INTERRUPT3(hyperv_callback_vector, HYPERVISOR_CALLBACK_VECTOR,
1282
		 hyperv_vector_handler)
1283

1284 1285 1286
BUILD_INTERRUPT3(hyperv_reenlightenment_vector, HYPERV_REENLIGHTENMENT_VECTOR,
		 hyperv_reenlightenment_intr)

1287 1288 1289
BUILD_INTERRUPT3(hv_stimer0_callback_vector, HYPERV_STIMER0_VECTOR,
		 hv_stimer0_vector_handler)

1290
#endif /* CONFIG_HYPERV */
1291

1292
ENTRY(page_fault)
1293
	ASM_CLAC
1294
	pushl	$do_page_fault
1295
	ALIGN
1296 1297 1298 1299
	jmp common_exception
END(page_fault)

common_exception:
1300
	/* the function address is in %gs's slot on the stack */
1301 1302 1303 1304
	pushl	%fs
	pushl	%es
	pushl	%ds
	pushl	%eax
1305 1306 1307 1308 1309
	movl	$(__USER_DS), %eax
	movl	%eax, %ds
	movl	%eax, %es
	movl	$(__KERNEL_PERCPU), %eax
	movl	%eax, %fs
1310 1311 1312 1313 1314 1315
	pushl	%ebp
	pushl	%edi
	pushl	%esi
	pushl	%edx
	pushl	%ecx
	pushl	%ebx
1316
	SWITCH_TO_KERNEL_STACK
1317
	ENCODE_FRAME_POINTER
1318 1319
	cld
	UNWIND_ESPFIX_STACK
1320
	GS_TO_REG %ecx
1321 1322 1323
	movl	PT_GS(%esp), %edi		# get the function address
	movl	PT_ORIG_EAX(%esp), %edx		# get the error code
	movl	$-1, PT_ORIG_EAX(%esp)		# no syscall to restart
1324 1325
	REG_TO_PTGS %ecx
	SET_KERNEL_GS %ecx
1326
	TRACE_IRQS_OFF
1327
	movl	%esp, %eax			# pt_regs pointer
1328
	CALL_NOSPEC %edi
1329
	jmp	ret_from_exception
1330
END(common_exception)
1331 1332

ENTRY(debug)
1333
	/*
1334
	 * Entry from sysenter is now handled in common_exception
1335
	 */
1336
	ASM_CLAC
1337
	pushl	$-1				# mark this as an int
1338 1339
	pushl	$do_debug
	jmp	common_exception
1340 1341 1342
END(debug)

/*
1343 1344 1345 1346 1347
 * NMI is doubly nasty.  It can happen on the first instruction of
 * entry_SYSENTER_32 (just like #DB), but it can also interrupt the beginning
 * of the #DB handler even if that #DB in turn hit before entry_SYSENTER_32
 * switched stacks.  We handle both conditions by simply checking whether we
 * interrupted kernel code running on the SYSENTER stack.
1348 1349
 */
ENTRY(nmi)
1350
	ASM_CLAC
1351

1352
#ifdef CONFIG_X86_ESPFIX32
1353 1354 1355 1356
	pushl	%eax
	movl	%ss, %eax
	cmpw	$__ESPFIX_SS, %ax
	popl	%eax
1357
	je	.Lnmi_espfix_stack
1358
#endif
1359 1360

	pushl	%eax				# pt_regs->orig_ax
1361
	SAVE_ALL_NMI cr3_reg=%edi
1362
	ENCODE_FRAME_POINTER
1363 1364
	xorl	%edx, %edx			# zero error code
	movl	%esp, %eax			# pt_regs pointer
1365 1366

	/* Are we currently on the SYSENTER stack? */
1367
	movl	PER_CPU_VAR(cpu_entry_area), %ecx
1368 1369 1370
	addl	$CPU_ENTRY_AREA_entry_stack + SIZEOF_entry_stack, %ecx
	subl	%eax, %ecx	/* ecx = (end of entry_stack) - esp */
	cmpl	$SIZEOF_entry_stack, %ecx
1371 1372 1373
	jb	.Lnmi_from_sysenter_stack

	/* Not on SYSENTER stack. */
1374
	call	do_nmi
1375
	jmp	.Lnmi_return
1376

1377 1378 1379 1380 1381
.Lnmi_from_sysenter_stack:
	/*
	 * We're on the SYSENTER stack.  Switch off.  No one (not even debug)
	 * is using the thread stack right now, so it's safe for us to use it.
	 */
1382
	movl	%esp, %ebx
1383 1384
	movl	PER_CPU_VAR(cpu_current_top_of_stack), %esp
	call	do_nmi
1385
	movl	%ebx, %esp
1386 1387 1388

.Lnmi_return:
	CHECK_AND_APPLY_ESPFIX
1389
	RESTORE_ALL_NMI cr3_reg=%edi pop=4
1390
	jmp	.Lirq_return
1391

1392
#ifdef CONFIG_X86_ESPFIX32
1393
.Lnmi_espfix_stack:
1394
	/*
1395 1396
	 * create the pointer to lss back
	 */
1397 1398 1399
	pushl	%ss
	pushl	%esp
	addl	$4, (%esp)
1400 1401
	/* copy the iret frame of 12 bytes */
	.rept 3
1402
	pushl	16(%esp)
1403
	.endr
1404
	pushl	%eax
1405
	SAVE_ALL_NMI cr3_reg=%edi
1406
	ENCODE_FRAME_POINTER
1407 1408 1409
	FIXUP_ESPFIX_STACK			# %eax == %esp
	xorl	%edx, %edx			# zero error code
	call	do_nmi
1410
	RESTORE_ALL_NMI cr3_reg=%edi
1411
	lss	12+4(%esp), %esp		# back to espfix stack
1412
	jmp	.Lirq_return
1413
#endif
1414 1415 1416
END(nmi)

ENTRY(int3)
1417
	ASM_CLAC
1418
	pushl	$-1				# mark this as an int
1419 1420

	SAVE_ALL switch_stacks=1
1421
	ENCODE_FRAME_POINTER
1422
	TRACE_IRQS_OFF
1423 1424 1425 1426
	xorl	%edx, %edx			# zero error code
	movl	%esp, %eax			# pt_regs pointer
	call	do_int3
	jmp	ret_from_exception
1427 1428 1429
END(int3)

ENTRY(general_protection)
1430
	pushl	$do_general_protection
1431
	jmp	common_exception
1432 1433
END(general_protection)

G
Gleb Natapov 已提交
1434 1435
#ifdef CONFIG_KVM_GUEST
ENTRY(async_page_fault)
1436
	ASM_CLAC
1437
	pushl	$do_async_page_fault
1438
	jmp	common_exception
1439
END(async_page_fault)
G
Gleb Natapov 已提交
1440
#endif
1441 1442 1443 1444 1445 1446 1447 1448 1449 1450 1451

ENTRY(rewind_stack_do_exit)
	/* Prevent any naive code from trying to unwind to our caller. */
	xorl	%ebp, %ebp

	movl	PER_CPU_VAR(cpu_current_top_of_stack), %esi
	leal	-TOP_OF_KERNEL_STACK_PADDING-PTREGS_SIZE(%esi), %esp

	call	do_exit
1:	jmp 1b
END(rewind_stack_do_exit)