uaccess.h 41.4 KB
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/*
 * This file is subject to the terms and conditions of the GNU General Public
 * License.  See the file "COPYING" in the main directory of this archive
 * for more details.
 *
 * Copyright (C) 1996, 1997, 1998, 1999, 2000, 03, 04 by Ralf Baechle
 * Copyright (C) 1999, 2000 Silicon Graphics, Inc.
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 * Copyright (C) 2007  Maciej W. Rozycki
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 * Copyright (C) 2014, Imagination Technologies Ltd.
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 */
#ifndef _ASM_UACCESS_H
#define _ASM_UACCESS_H

#include <linux/kernel.h>
#include <linux/errno.h>
#include <linux/thread_info.h>
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#include <asm/asm-eva.h>
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/*
 * The fs value determines whether argument validity checking should be
 * performed or not.  If get_fs() == USER_DS, checking is performed, with
 * get_fs() == KERNEL_DS, checking is bypassed.
 *
 * For historical reasons, these macros are grossly misnamed.
 */
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#ifdef CONFIG_32BIT
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#ifdef CONFIG_KVM_GUEST
#define __UA_LIMIT 0x40000000UL
#else
#define __UA_LIMIT 0x80000000UL
#endif
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#define __UA_ADDR	".word"
#define __UA_LA		"la"
#define __UA_ADDU	"addu"
#define __UA_t0		"$8"
#define __UA_t1		"$9"

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#endif /* CONFIG_32BIT */
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#ifdef CONFIG_64BIT
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extern u64 __ua_limit;

#define __UA_LIMIT	__ua_limit
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#define __UA_ADDR	".dword"
#define __UA_LA		"dla"
#define __UA_ADDU	"daddu"
#define __UA_t0		"$12"
#define __UA_t1		"$13"

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#endif /* CONFIG_64BIT */
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/*
 * USER_DS is a bitmask that has the bits set that may not be set in a valid
 * userspace address.  Note that we limit 32-bit userspace to 0x7fff8000 but
 * the arithmetic we're doing only works if the limit is a power of two, so
 * we use 0x80000000 here on 32-bit kernels.  If a process passes an invalid
 * address in this range it's the process's problem, not ours :-)
 */

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#ifdef CONFIG_KVM_GUEST
#define KERNEL_DS	((mm_segment_t) { 0x80000000UL })
#define USER_DS		((mm_segment_t) { 0xC0000000UL })
#else
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#define KERNEL_DS	((mm_segment_t) { 0UL })
#define USER_DS		((mm_segment_t) { __UA_LIMIT })
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#endif
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#define VERIFY_READ    0
#define VERIFY_WRITE   1

#define get_ds()	(KERNEL_DS)
#define get_fs()	(current_thread_info()->addr_limit)
#define set_fs(x)	(current_thread_info()->addr_limit = (x))

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#define segment_eq(a, b)	((a).seg == (b).seg)
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/*
 * eva_kernel_access() - determine whether kernel memory access on an EVA system
 *
 * Determines whether memory accesses should be performed to kernel memory
 * on a system using Extended Virtual Addressing (EVA).
 *
 * Return: true if a kernel memory access on an EVA system, else false.
 */
static inline bool eva_kernel_access(void)
{
	if (!config_enabled(CONFIG_EVA))
		return false;

	return segment_eq(get_fs(), get_ds());
}
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/*
 * Is a address valid? This does a straighforward calculation rather
 * than tests.
 *
 * Address valid if:
 *  - "addr" doesn't have any high-bits set
 *  - AND "size" doesn't have any high-bits set
 *  - AND "addr+size" doesn't have any high-bits set
 *  - OR we are in kernel mode.
 *
 * __ua_size() is a trick to avoid runtime checking of positive constant
 * sizes; for those we already know at compile time that the size is ok.
 */
#define __ua_size(size)							\
	((__builtin_constant_p(size) && (signed long) (size) > 0) ? 0 : (size))

/*
 * access_ok: - Checks if a user space pointer is valid
 * @type: Type of access: %VERIFY_READ or %VERIFY_WRITE.  Note that
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 *	  %VERIFY_WRITE is a superset of %VERIFY_READ - if it is safe
 *	  to write to a block, it is always safe to read from it.
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 * @addr: User space pointer to start of block to check
 * @size: Size of block to check
 *
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 * Context: User context only. This function may sleep if pagefaults are
 *          enabled.
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 *
 * Checks if a pointer to a block of memory in user space is valid.
 *
 * Returns true (nonzero) if the memory block may be valid, false (zero)
 * if it is definitely invalid.
 *
 * Note that, depending on architecture, this function probably just
 * checks that the pointer is in the user space range - after calling
 * this function, memory access functions may still return -EFAULT.
 */

#define __access_mask get_fs().seg

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#define __access_ok(addr, size, mask)					\
({									\
	unsigned long __addr = (unsigned long) (addr);			\
	unsigned long __size = size;					\
	unsigned long __mask = mask;					\
	unsigned long __ok;						\
									\
	__chk_user_ptr(addr);						\
	__ok = (signed long)(__mask & (__addr | (__addr + __size) |	\
		__ua_size(__size)));					\
	__ok == 0;							\
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})
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#define access_ok(type, addr, size)					\
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	likely(__access_ok((addr), (size), __access_mask))
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/*
 * put_user: - Write a simple value into user space.
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 * @x:	 Value to copy to user space.
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 * @ptr: Destination address, in user space.
 *
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 * Context: User context only. This function may sleep if pagefaults are
 *          enabled.
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 *
 * This macro copies a single simple value from kernel space to user
 * space.  It supports simple types like char and int, but not larger
 * data types like structures or arrays.
 *
 * @ptr must have pointer-to-simple-variable type, and @x must be assignable
 * to the result of dereferencing @ptr.
 *
 * Returns zero on success, or -EFAULT on error.
 */
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#define put_user(x,ptr) \
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	__put_user_check((x), (ptr), sizeof(*(ptr)))
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/*
 * get_user: - Get a simple variable from user space.
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 * @x:	 Variable to store result.
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 * @ptr: Source address, in user space.
 *
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 * Context: User context only. This function may sleep if pagefaults are
 *          enabled.
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 *
 * This macro copies a single simple variable from user space to kernel
 * space.  It supports simple types like char and int, but not larger
 * data types like structures or arrays.
 *
 * @ptr must have pointer-to-simple-variable type, and the result of
 * dereferencing @ptr must be assignable to @x without a cast.
 *
 * Returns zero on success, or -EFAULT on error.
 * On error, the variable @x is set to zero.
 */
#define get_user(x,ptr) \
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	__get_user_check((x), (ptr), sizeof(*(ptr)))
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/*
 * __put_user: - Write a simple value into user space, with less checking.
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 * @x:	 Value to copy to user space.
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 * @ptr: Destination address, in user space.
 *
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 * Context: User context only. This function may sleep if pagefaults are
 *          enabled.
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 *
 * This macro copies a single simple value from kernel space to user
 * space.  It supports simple types like char and int, but not larger
 * data types like structures or arrays.
 *
 * @ptr must have pointer-to-simple-variable type, and @x must be assignable
 * to the result of dereferencing @ptr.
 *
 * Caller must check the pointer with access_ok() before calling this
 * function.
 *
 * Returns zero on success, or -EFAULT on error.
 */
#define __put_user(x,ptr) \
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	__put_user_nocheck((x), (ptr), sizeof(*(ptr)))
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/*
 * __get_user: - Get a simple variable from user space, with less checking.
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 * @x:	 Variable to store result.
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 * @ptr: Source address, in user space.
 *
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 * Context: User context only. This function may sleep if pagefaults are
 *          enabled.
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 *
 * This macro copies a single simple variable from user space to kernel
 * space.  It supports simple types like char and int, but not larger
 * data types like structures or arrays.
 *
 * @ptr must have pointer-to-simple-variable type, and the result of
 * dereferencing @ptr must be assignable to @x without a cast.
 *
 * Caller must check the pointer with access_ok() before calling this
 * function.
 *
 * Returns zero on success, or -EFAULT on error.
 * On error, the variable @x is set to zero.
 */
#define __get_user(x,ptr) \
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	__get_user_nocheck((x), (ptr), sizeof(*(ptr)))
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struct __large_struct { unsigned long buf[100]; };
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#define __m(x) (*(struct __large_struct __user *)(x))
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/*
 * Yuck.  We need two variants, one for 64bit operation and one
 * for 32 bit mode and old iron.
 */
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#ifndef CONFIG_EVA
#define __get_kernel_common(val, size, ptr) __get_user_common(val, size, ptr)
#else
/*
 * Kernel specific functions for EVA. We need to use normal load instructions
 * to read data from kernel when operating in EVA mode. We use these macros to
 * avoid redefining __get_user_asm for EVA.
 */
#undef _loadd
#undef _loadw
#undef _loadh
#undef _loadb
#ifdef CONFIG_32BIT
#define _loadd			_loadw
#else
#define _loadd(reg, addr)	"ld " reg ", " addr
#endif
#define _loadw(reg, addr)	"lw " reg ", " addr
#define _loadh(reg, addr)	"lh " reg ", " addr
#define _loadb(reg, addr)	"lb " reg ", " addr

#define __get_kernel_common(val, size, ptr)				\
do {									\
	switch (size) {							\
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	case 1: __get_data_asm(val, _loadb, ptr); break;		\
	case 2: __get_data_asm(val, _loadh, ptr); break;		\
	case 4: __get_data_asm(val, _loadw, ptr); break;		\
	case 8: __GET_DW(val, _loadd, ptr); break;			\
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	default: __get_user_unknown(); break;				\
	}								\
} while (0)
#endif

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#ifdef CONFIG_32BIT
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#define __GET_DW(val, insn, ptr) __get_data_asm_ll32(val, insn, ptr)
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#endif
#ifdef CONFIG_64BIT
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#define __GET_DW(val, insn, ptr) __get_data_asm(val, insn, ptr)
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#endif

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extern void __get_user_unknown(void);

#define __get_user_common(val, size, ptr)				\
do {									\
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	switch (size) {							\
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	case 1: __get_data_asm(val, user_lb, ptr); break;		\
	case 2: __get_data_asm(val, user_lh, ptr); break;		\
	case 4: __get_data_asm(val, user_lw, ptr); break;		\
	case 8: __GET_DW(val, user_ld, ptr); break;			\
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	default: __get_user_unknown(); break;				\
	}								\
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} while (0)

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#define __get_user_nocheck(x, ptr, size)				\
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({									\
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	int __gu_err;							\
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									\
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	if (eva_kernel_access()) {					\
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		__get_kernel_common((x), size, ptr);			\
	} else {							\
		__chk_user_ptr(ptr);					\
		__get_user_common((x), size, ptr);			\
	}								\
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	__gu_err;							\
})

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#define __get_user_check(x, ptr, size)					\
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({									\
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	int __gu_err = -EFAULT;						\
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	const __typeof__(*(ptr)) __user * __gu_ptr = (ptr);		\
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									\
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	might_fault();							\
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	if (likely(access_ok(VERIFY_READ,  __gu_ptr, size))) {		\
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		if (eva_kernel_access())				\
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			__get_kernel_common((x), size, __gu_ptr);	\
		else							\
			__get_user_common((x), size, __gu_ptr);		\
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	} else								\
		(x) = 0;						\
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									\
	__gu_err;							\
})

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#define __get_data_asm(val, insn, addr)					\
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{									\
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	long __gu_tmp;							\
									\
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	__asm__ __volatile__(						\
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	"1:	"insn("%1", "%3")"				\n"	\
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	"2:							\n"	\
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	"	.insn						\n"	\
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	"	.section .fixup,\"ax\"				\n"	\
	"3:	li	%0, %4					\n"	\
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	"	move	%1, $0					\n"	\
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	"	j	2b					\n"	\
	"	.previous					\n"	\
	"	.section __ex_table,\"a\"			\n"	\
	"	"__UA_ADDR "\t1b, 3b				\n"	\
	"	.previous					\n"	\
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	: "=r" (__gu_err), "=r" (__gu_tmp)				\
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	: "0" (0), "o" (__m(addr)), "i" (-EFAULT));			\
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									\
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	(val) = (__typeof__(*(addr))) __gu_tmp;				\
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}
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/*
 * Get a long long 64 using 32 bit registers.
 */
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#define __get_data_asm_ll32(val, insn, addr)				\
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{									\
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	union {								\
		unsigned long long	l;				\
		__typeof__(*(addr))	t;				\
	} __gu_tmp;							\
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									\
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	__asm__ __volatile__(						\
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	"1:	" insn("%1", "(%3)")"				\n"	\
	"2:	" insn("%D1", "4(%3)")"				\n"	\
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	"3:							\n"	\
	"	.insn						\n"	\
	"	.section	.fixup,\"ax\"			\n"	\
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	"4:	li	%0, %4					\n"	\
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	"	move	%1, $0					\n"	\
	"	move	%D1, $0					\n"	\
	"	j	3b					\n"	\
	"	.previous					\n"	\
	"	.section	__ex_table,\"a\"		\n"	\
	"	" __UA_ADDR "	1b, 4b				\n"	\
	"	" __UA_ADDR "	2b, 4b				\n"	\
	"	.previous					\n"	\
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	: "=r" (__gu_err), "=&r" (__gu_tmp.l)				\
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	: "0" (0), "r" (addr), "i" (-EFAULT));				\
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									\
	(val) = __gu_tmp.t;						\
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}
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#ifndef CONFIG_EVA
#define __put_kernel_common(ptr, size) __put_user_common(ptr, size)
#else
/*
 * Kernel specific functions for EVA. We need to use normal load instructions
 * to read data from kernel when operating in EVA mode. We use these macros to
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 * avoid redefining __get_data_asm for EVA.
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 */
#undef _stored
#undef _storew
#undef _storeh
#undef _storeb
#ifdef CONFIG_32BIT
#define _stored			_storew
#else
#define _stored(reg, addr)	"ld " reg ", " addr
#endif

#define _storew(reg, addr)	"sw " reg ", " addr
#define _storeh(reg, addr)	"sh " reg ", " addr
#define _storeb(reg, addr)	"sb " reg ", " addr

#define __put_kernel_common(ptr, size)					\
do {									\
	switch (size) {							\
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	case 1: __put_data_asm(_storeb, ptr); break;			\
	case 2: __put_data_asm(_storeh, ptr); break;			\
	case 4: __put_data_asm(_storew, ptr); break;			\
	case 8: __PUT_DW(_stored, ptr); break;				\
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	default: __put_user_unknown(); break;				\
	}								\
} while(0)
#endif

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/*
 * Yuck.  We need two variants, one for 64bit operation and one
 * for 32 bit mode and old iron.
 */
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#ifdef CONFIG_32BIT
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#define __PUT_DW(insn, ptr) __put_data_asm_ll32(insn, ptr)
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#endif
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#ifdef CONFIG_64BIT
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#define __PUT_DW(insn, ptr) __put_data_asm(insn, ptr)
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#endif
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#define __put_user_common(ptr, size)					\
do {									\
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	switch (size) {							\
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	case 1: __put_data_asm(user_sb, ptr); break;			\
	case 2: __put_data_asm(user_sh, ptr); break;			\
	case 4: __put_data_asm(user_sw, ptr); break;			\
	case 8: __PUT_DW(user_sd, ptr); break;				\
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	default: __put_user_unknown(); break;				\
	}								\
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} while (0)

#define __put_user_nocheck(x, ptr, size)				\
({									\
	__typeof__(*(ptr)) __pu_val;					\
	int __pu_err = 0;						\
									\
	__pu_val = (x);							\
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	if (eva_kernel_access()) {					\
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		__put_kernel_common(ptr, size);				\
	} else {							\
		__chk_user_ptr(ptr);					\
		__put_user_common(ptr, size);				\
	}								\
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	__pu_err;							\
})

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#define __put_user_check(x, ptr, size)					\
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({									\
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	__typeof__(*(ptr)) __user *__pu_addr = (ptr);			\
	__typeof__(*(ptr)) __pu_val = (x);				\
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	int __pu_err = -EFAULT;						\
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									\
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	might_fault();							\
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	if (likely(access_ok(VERIFY_WRITE,  __pu_addr, size))) {	\
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		if (eva_kernel_access())				\
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			__put_kernel_common(__pu_addr, size);		\
		else							\
			__put_user_common(__pu_addr, size);		\
	}								\
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									\
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	__pu_err;							\
})

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#define __put_data_asm(insn, ptr)					\
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{									\
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	__asm__ __volatile__(						\
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	"1:	"insn("%z2", "%3")"	# __put_data_asm	\n"	\
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	"2:							\n"	\
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	"	.insn						\n"	\
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	"	.section	.fixup,\"ax\"			\n"	\
	"3:	li	%0, %4					\n"	\
	"	j	2b					\n"	\
	"	.previous					\n"	\
	"	.section	__ex_table,\"a\"		\n"	\
	"	" __UA_ADDR "	1b, 3b				\n"	\
	"	.previous					\n"	\
	: "=r" (__pu_err)						\
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	: "0" (0), "Jr" (__pu_val), "o" (__m(ptr)),			\
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	  "i" (-EFAULT));						\
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}
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#define __put_data_asm_ll32(insn, ptr)					\
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{									\
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	__asm__ __volatile__(						\
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	"1:	"insn("%2", "(%3)")"	# __put_data_asm_ll32	\n"	\
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	"2:	"insn("%D2", "4(%3)")"				\n"	\
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	"3:							\n"	\
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	"	.insn						\n"	\
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	"	.section	.fixup,\"ax\"			\n"	\
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	"4:	li	%0, %4					\n"	\
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	"	j	3b					\n"	\
	"	.previous					\n"	\
	"	.section	__ex_table,\"a\"		\n"	\
	"	" __UA_ADDR "	1b, 4b				\n"	\
	"	" __UA_ADDR "	2b, 4b				\n"	\
	"	.previous"						\
	: "=r" (__pu_err)						\
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	: "0" (0), "r" (__pu_val), "r" (ptr),				\
	  "i" (-EFAULT));						\
}
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extern void __put_user_unknown(void);

511 512 513 514 515
/*
 * ul{b,h,w} are macros and there are no equivalent macros for EVA.
 * EVA unaligned access is handled in the ADE exception handler.
 */
#ifndef CONFIG_EVA
516 517
/*
 * put_user_unaligned: - Write a simple value into user space.
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 * @x:	 Value to copy to user space.
519 520
 * @ptr: Destination address, in user space.
 *
521 522
 * Context: User context only. This function may sleep if pagefaults are
 *          enabled.
523 524 525 526 527 528 529 530 531 532 533 534 535 536 537
 *
 * This macro copies a single simple value from kernel space to user
 * space.  It supports simple types like char and int, but not larger
 * data types like structures or arrays.
 *
 * @ptr must have pointer-to-simple-variable type, and @x must be assignable
 * to the result of dereferencing @ptr.
 *
 * Returns zero on success, or -EFAULT on error.
 */
#define put_user_unaligned(x,ptr)	\
	__put_user_unaligned_check((x),(ptr),sizeof(*(ptr)))

/*
 * get_user_unaligned: - Get a simple variable from user space.
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 * @x:	 Variable to store result.
539 540
 * @ptr: Source address, in user space.
 *
541 542
 * Context: User context only. This function may sleep if pagefaults are
 *          enabled.
543 544 545 546 547 548 549 550 551 552 553 554 555 556 557 558
 *
 * This macro copies a single simple variable from user space to kernel
 * space.  It supports simple types like char and int, but not larger
 * data types like structures or arrays.
 *
 * @ptr must have pointer-to-simple-variable type, and the result of
 * dereferencing @ptr must be assignable to @x without a cast.
 *
 * Returns zero on success, or -EFAULT on error.
 * On error, the variable @x is set to zero.
 */
#define get_user_unaligned(x,ptr) \
	__get_user_unaligned_check((x),(ptr),sizeof(*(ptr)))

/*
 * __put_user_unaligned: - Write a simple value into user space, with less checking.
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 * @x:	 Value to copy to user space.
560 561
 * @ptr: Destination address, in user space.
 *
562 563
 * Context: User context only. This function may sleep if pagefaults are
 *          enabled.
564 565 566 567 568 569 570 571 572 573 574 575 576 577 578 579 580 581
 *
 * This macro copies a single simple value from kernel space to user
 * space.  It supports simple types like char and int, but not larger
 * data types like structures or arrays.
 *
 * @ptr must have pointer-to-simple-variable type, and @x must be assignable
 * to the result of dereferencing @ptr.
 *
 * Caller must check the pointer with access_ok() before calling this
 * function.
 *
 * Returns zero on success, or -EFAULT on error.
 */
#define __put_user_unaligned(x,ptr) \
	__put_user_unaligned_nocheck((x),(ptr),sizeof(*(ptr)))

/*
 * __get_user_unaligned: - Get a simple variable from user space, with less checking.
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 * @x:	 Variable to store result.
583 584
 * @ptr: Source address, in user space.
 *
585 586
 * Context: User context only. This function may sleep if pagefaults are
 *          enabled.
587 588 589 590 591 592 593 594 595 596 597 598 599 600 601 602 603 604 605 606 607 608 609 610 611 612 613 614 615 616 617 618 619 620 621
 *
 * This macro copies a single simple variable from user space to kernel
 * space.  It supports simple types like char and int, but not larger
 * data types like structures or arrays.
 *
 * @ptr must have pointer-to-simple-variable type, and the result of
 * dereferencing @ptr must be assignable to @x without a cast.
 *
 * Caller must check the pointer with access_ok() before calling this
 * function.
 *
 * Returns zero on success, or -EFAULT on error.
 * On error, the variable @x is set to zero.
 */
#define __get_user_unaligned(x,ptr) \
	__get_user__unalignednocheck((x),(ptr),sizeof(*(ptr)))

/*
 * Yuck.  We need two variants, one for 64bit operation and one
 * for 32 bit mode and old iron.
 */
#ifdef CONFIG_32BIT
#define __GET_USER_UNALIGNED_DW(val, ptr)				\
	__get_user_unaligned_asm_ll32(val, ptr)
#endif
#ifdef CONFIG_64BIT
#define __GET_USER_UNALIGNED_DW(val, ptr)				\
	__get_user_unaligned_asm(val, "uld", ptr)
#endif

extern void __get_user_unaligned_unknown(void);

#define __get_user_unaligned_common(val, size, ptr)			\
do {									\
	switch (size) {							\
622
	case 1: __get_data_asm(val, "lb", ptr); break;			\
623 624 625 626 627 628 629 630 631 632 633 634 635 636 637 638 639 640 641 642 643 644 645 646 647 648
	case 2: __get_user_unaligned_asm(val, "ulh", ptr); break;	\
	case 4: __get_user_unaligned_asm(val, "ulw", ptr); break;	\
	case 8: __GET_USER_UNALIGNED_DW(val, ptr); break;		\
	default: __get_user_unaligned_unknown(); break;			\
	}								\
} while (0)

#define __get_user_unaligned_nocheck(x,ptr,size)			\
({									\
	int __gu_err;							\
									\
	__get_user_unaligned_common((x), size, ptr);			\
	__gu_err;							\
})

#define __get_user_unaligned_check(x,ptr,size)				\
({									\
	int __gu_err = -EFAULT;						\
	const __typeof__(*(ptr)) __user * __gu_ptr = (ptr);		\
									\
	if (likely(access_ok(VERIFY_READ,  __gu_ptr, size)))		\
		__get_user_unaligned_common((x), size, __gu_ptr);	\
									\
	__gu_err;							\
})

649
#define __get_data_unaligned_asm(val, insn, addr)			\
650 651 652 653 654 655
{									\
	long __gu_tmp;							\
									\
	__asm__ __volatile__(						\
	"1:	" insn "	%1, %3				\n"	\
	"2:							\n"	\
656
	"	.insn						\n"	\
657 658
	"	.section .fixup,\"ax\"				\n"	\
	"3:	li	%0, %4					\n"	\
659
	"	move	%1, $0					\n"	\
660 661 662 663 664 665 666 667 668 669 670 671 672 673 674 675 676
	"	j	2b					\n"	\
	"	.previous					\n"	\
	"	.section __ex_table,\"a\"			\n"	\
	"	"__UA_ADDR "\t1b, 3b				\n"	\
	"	"__UA_ADDR "\t1b + 4, 3b			\n"	\
	"	.previous					\n"	\
	: "=r" (__gu_err), "=r" (__gu_tmp)				\
	: "0" (0), "o" (__m(addr)), "i" (-EFAULT));			\
									\
	(val) = (__typeof__(*(addr))) __gu_tmp;				\
}

/*
 * Get a long long 64 using 32 bit registers.
 */
#define __get_user_unaligned_asm_ll32(val, addr)			\
{									\
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	unsigned long long __gu_tmp;					\
678 679 680 681 682
									\
	__asm__ __volatile__(						\
	"1:	ulw	%1, (%3)				\n"	\
	"2:	ulw	%D1, 4(%3)				\n"	\
	"	move	%0, $0					\n"	\
683 684 685
	"3:							\n"	\
	"	.insn						\n"	\
	"	.section	.fixup,\"ax\"			\n"	\
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
	"4:	li	%0, %4					\n"	\
	"	move	%1, $0					\n"	\
	"	move	%D1, $0					\n"	\
	"	j	3b					\n"	\
	"	.previous					\n"	\
	"	.section	__ex_table,\"a\"		\n"	\
	"	" __UA_ADDR "	1b, 4b				\n"	\
	"	" __UA_ADDR "	1b + 4, 4b			\n"	\
	"	" __UA_ADDR "	2b, 4b				\n"	\
	"	" __UA_ADDR "	2b + 4, 4b			\n"	\
	"	.previous					\n"	\
	: "=r" (__gu_err), "=&r" (__gu_tmp)				\
	: "0" (0), "r" (addr), "i" (-EFAULT));				\
	(val) = (__typeof__(*(addr))) __gu_tmp;				\
}

/*
 * Yuck.  We need two variants, one for 64bit operation and one
 * for 32 bit mode and old iron.
 */
#ifdef CONFIG_32BIT
#define __PUT_USER_UNALIGNED_DW(ptr) __put_user_unaligned_asm_ll32(ptr)
#endif
#ifdef CONFIG_64BIT
#define __PUT_USER_UNALIGNED_DW(ptr) __put_user_unaligned_asm("usd", ptr)
#endif

713 714
#define __put_user_unaligned_common(ptr, size)				\
do {									\
715
	switch (size) {							\
716
	case 1: __put_data_asm("sb", ptr); break;			\
717 718 719 720
	case 2: __put_user_unaligned_asm("ush", ptr); break;		\
	case 4: __put_user_unaligned_asm("usw", ptr); break;		\
	case 8: __PUT_USER_UNALIGNED_DW(ptr); break;			\
	default: __put_user_unaligned_unknown(); break;			\
721 722 723 724 725 726 727 728 729
} while (0)

#define __put_user_unaligned_nocheck(x,ptr,size)			\
({									\
	__typeof__(*(ptr)) __pu_val;					\
	int __pu_err = 0;						\
									\
	__pu_val = (x);							\
	__put_user_unaligned_common(ptr, size);				\
730 731 732 733 734 735 736 737 738
	__pu_err;							\
})

#define __put_user_unaligned_check(x,ptr,size)				\
({									\
	__typeof__(*(ptr)) __user *__pu_addr = (ptr);			\
	__typeof__(*(ptr)) __pu_val = (x);				\
	int __pu_err = -EFAULT;						\
									\
739 740 741
	if (likely(access_ok(VERIFY_WRITE,  __pu_addr, size)))		\
		__put_user_unaligned_common(__pu_addr, size);		\
									\
742 743 744 745 746 747 748 749
	__pu_err;							\
})

#define __put_user_unaligned_asm(insn, ptr)				\
{									\
	__asm__ __volatile__(						\
	"1:	" insn "	%z2, %3		# __put_user_unaligned_asm\n" \
	"2:							\n"	\
750
	"	.insn						\n"	\
751 752 753 754 755 756 757 758 759 760 761 762 763 764 765
	"	.section	.fixup,\"ax\"			\n"	\
	"3:	li	%0, %4					\n"	\
	"	j	2b					\n"	\
	"	.previous					\n"	\
	"	.section	__ex_table,\"a\"		\n"	\
	"	" __UA_ADDR "	1b, 3b				\n"	\
	"	.previous					\n"	\
	: "=r" (__pu_err)						\
	: "0" (0), "Jr" (__pu_val), "o" (__m(ptr)),			\
	  "i" (-EFAULT));						\
}

#define __put_user_unaligned_asm_ll32(ptr)				\
{									\
	__asm__ __volatile__(						\
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	"1:	sw	%2, (%3)	# __put_user_unaligned_asm_ll32 \n" \
767 768
	"2:	sw	%D2, 4(%3)				\n"	\
	"3:							\n"	\
769
	"	.insn						\n"	\
770 771 772 773 774 775 776 777 778 779 780 781 782 783 784 785
	"	.section	.fixup,\"ax\"			\n"	\
	"4:	li	%0, %4					\n"	\
	"	j	3b					\n"	\
	"	.previous					\n"	\
	"	.section	__ex_table,\"a\"		\n"	\
	"	" __UA_ADDR "	1b, 4b				\n"	\
	"	" __UA_ADDR "	1b + 4, 4b			\n"	\
	"	" __UA_ADDR "	2b, 4b				\n"	\
	"	" __UA_ADDR "	2b + 4, 4b			\n"	\
	"	.previous"						\
	: "=r" (__pu_err)						\
	: "0" (0), "r" (__pu_val), "r" (ptr),				\
	  "i" (-EFAULT));						\
}

extern void __put_user_unaligned_unknown(void);
786
#endif
787

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/*
 * We're generating jump to subroutines which will be outside the range of
 * jump instructions
 */
#ifdef MODULE
#define __MODULE_JAL(destination)					\
	".set\tnoat\n\t"						\
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	__UA_LA "\t$1, " #destination "\n\t"				\
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	"jalr\t$1\n\t"							\
	".set\tat\n\t"
#else
#define __MODULE_JAL(destination)					\
	"jal\t" #destination "\n\t"
#endif

803 804
#if defined(CONFIG_CPU_DADDI_WORKAROUNDS) || (defined(CONFIG_EVA) &&	\
					      defined(CONFIG_CPU_HAS_PREFETCH))
805
#define DADDI_SCRATCH "$3"
806 807
#else
#define DADDI_SCRATCH "$0"
808 809
#endif

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extern size_t __copy_user(void *__to, const void *__from, size_t __n);

812
#ifndef CONFIG_EVA
813
#define __invoke_copy_to_user(to, from, n)				\
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({									\
815 816 817
	register void __user *__cu_to_r __asm__("$4");			\
	register const void *__cu_from_r __asm__("$5");			\
	register long __cu_len_r __asm__("$6");				\
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									\
	__cu_to_r = (to);						\
	__cu_from_r = (from);						\
	__cu_len_r = (n);						\
	__asm__ __volatile__(						\
	__MODULE_JAL(__copy_user)					\
	: "+r" (__cu_to_r), "+r" (__cu_from_r), "+r" (__cu_len_r)	\
	:								\
826
	: "$8", "$9", "$10", "$11", "$12", "$14", "$15", "$24", "$31",	\
827
	  DADDI_SCRATCH, "memory");					\
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	__cu_len_r;							\
})

831 832 833 834 835
#define __invoke_copy_to_kernel(to, from, n)				\
	__invoke_copy_to_user(to, from, n)

#endif

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/*
 * __copy_to_user: - Copy a block of data into user space, with less checking.
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 * @to:	  Destination address, in user space.
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 * @from: Source address, in kernel space.
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 * @n:	  Number of bytes to copy.
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 *
842 843
 * Context: User context only. This function may sleep if pagefaults are
 *          enabled.
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 *
 * Copy data from kernel space to user space.  Caller must check
 * the specified block with access_ok() before calling this function.
 *
 * Returns number of bytes that could not be copied.
 * On success, this will be zero.
 */
851
#define __copy_to_user(to, from, n)					\
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({									\
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	void __user *__cu_to;						\
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	const void *__cu_from;						\
	long __cu_len;							\
									\
	__cu_to = (to);							\
	__cu_from = (from);						\
	__cu_len = (n);							\
860
	might_fault();							\
861
	if (eva_kernel_access())					\
862 863 864 865 866
		__cu_len = __invoke_copy_to_kernel(__cu_to, __cu_from,	\
						   __cu_len);		\
	else								\
		__cu_len = __invoke_copy_to_user(__cu_to, __cu_from,	\
						 __cu_len);		\
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	__cu_len;							\
})

870 871
extern size_t __copy_user_inatomic(void *__to, const void *__from, size_t __n);

872
#define __copy_to_user_inatomic(to, from, n)				\
873 874 875 876 877 878 879 880
({									\
	void __user *__cu_to;						\
	const void *__cu_from;						\
	long __cu_len;							\
									\
	__cu_to = (to);							\
	__cu_from = (from);						\
	__cu_len = (n);							\
881
	if (eva_kernel_access())					\
882 883 884 885 886
		__cu_len = __invoke_copy_to_kernel(__cu_to, __cu_from,	\
						   __cu_len);		\
	else								\
		__cu_len = __invoke_copy_to_user(__cu_to, __cu_from,	\
						 __cu_len);		\
887 888 889
	__cu_len;							\
})

890
#define __copy_from_user_inatomic(to, from, n)				\
891 892 893 894 895 896 897 898
({									\
	void *__cu_to;							\
	const void __user *__cu_from;					\
	long __cu_len;							\
									\
	__cu_to = (to);							\
	__cu_from = (from);						\
	__cu_len = (n);							\
899
	if (eva_kernel_access())					\
900 901 902 903 904 905 906
		__cu_len = __invoke_copy_from_kernel_inatomic(__cu_to,	\
							      __cu_from,\
							      __cu_len);\
	else								\
		__cu_len = __invoke_copy_from_user_inatomic(__cu_to,	\
							    __cu_from,	\
							    __cu_len);	\
907 908
	__cu_len;							\
})
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/*
 * copy_to_user: - Copy a block of data into user space.
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 * @to:	  Destination address, in user space.
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 * @from: Source address, in kernel space.
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 * @n:	  Number of bytes to copy.
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 *
916 917
 * Context: User context only. This function may sleep if pagefaults are
 *          enabled.
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 *
 * Copy data from kernel space to user space.
 *
 * Returns number of bytes that could not be copied.
 * On success, this will be zero.
 */
924
#define copy_to_user(to, from, n)					\
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({									\
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926
	void __user *__cu_to;						\
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	const void *__cu_from;						\
	long __cu_len;							\
									\
	__cu_to = (to);							\
	__cu_from = (from);						\
	__cu_len = (n);							\
933
	if (eva_kernel_access()) {					\
934 935 936 937 938 939 940 941 942 943
		__cu_len = __invoke_copy_to_kernel(__cu_to,		\
						   __cu_from,		\
						   __cu_len);		\
	} else {							\
		if (access_ok(VERIFY_WRITE, __cu_to, __cu_len)) {       \
			might_fault();                                  \
			__cu_len = __invoke_copy_to_user(__cu_to,	\
							 __cu_from,	\
							 __cu_len);     \
		}							\
944
	}								\
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	__cu_len;							\
})

948 949
#ifndef CONFIG_EVA

950
#define __invoke_copy_from_user(to, from, n)				\
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({									\
952 953 954
	register void *__cu_to_r __asm__("$4");				\
	register const void __user *__cu_from_r __asm__("$5");		\
	register long __cu_len_r __asm__("$6");				\
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									\
	__cu_to_r = (to);						\
	__cu_from_r = (from);						\
	__cu_len_r = (n);						\
	__asm__ __volatile__(						\
	".set\tnoreorder\n\t"						\
	__MODULE_JAL(__copy_user)					\
	".set\tnoat\n\t"						\
	__UA_ADDU "\t$1, %1, %2\n\t"					\
	".set\tat\n\t"							\
	".set\treorder"							\
	: "+r" (__cu_to_r), "+r" (__cu_from_r), "+r" (__cu_len_r)	\
	:								\
968
	: "$8", "$9", "$10", "$11", "$12", "$14", "$15", "$24", "$31",	\
969
	  DADDI_SCRATCH, "memory");					\
970 971 972
	__cu_len_r;							\
})

973 974 975 976 977 978 979 980 981 982 983
#define __invoke_copy_from_kernel(to, from, n)				\
	__invoke_copy_from_user(to, from, n)

/* For userland <-> userland operations */
#define ___invoke_copy_in_user(to, from, n)				\
	__invoke_copy_from_user(to, from, n)

/* For kernel <-> kernel operations */
#define ___invoke_copy_in_kernel(to, from, n)				\
	__invoke_copy_from_user(to, from, n)

984
#define __invoke_copy_from_user_inatomic(to, from, n)			\
985
({									\
986 987 988
	register void *__cu_to_r __asm__("$4");				\
	register const void __user *__cu_from_r __asm__("$5");		\
	register long __cu_len_r __asm__("$6");				\
989 990 991 992 993 994 995 996 997 998 999 1000 1001
									\
	__cu_to_r = (to);						\
	__cu_from_r = (from);						\
	__cu_len_r = (n);						\
	__asm__ __volatile__(						\
	".set\tnoreorder\n\t"						\
	__MODULE_JAL(__copy_user_inatomic)				\
	".set\tnoat\n\t"						\
	__UA_ADDU "\t$1, %1, %2\n\t"					\
	".set\tat\n\t"							\
	".set\treorder"							\
	: "+r" (__cu_to_r), "+r" (__cu_from_r), "+r" (__cu_len_r)	\
	:								\
1002
	: "$8", "$9", "$10", "$11", "$12", "$14", "$15", "$24", "$31",	\
1003
	  DADDI_SCRATCH, "memory");					\
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	__cu_len_r;							\
})

1007 1008 1009 1010 1011 1012 1013 1014 1015 1016 1017 1018 1019 1020 1021 1022 1023 1024 1025 1026 1027 1028 1029 1030 1031 1032 1033 1034 1035 1036 1037 1038 1039 1040 1041 1042 1043 1044 1045 1046 1047 1048 1049 1050 1051 1052 1053 1054 1055 1056 1057 1058 1059 1060 1061 1062 1063 1064 1065 1066 1067 1068 1069 1070 1071 1072 1073 1074 1075 1076 1077 1078 1079 1080 1081 1082 1083 1084 1085 1086 1087 1088 1089 1090 1091 1092 1093 1094 1095 1096 1097
#define __invoke_copy_from_kernel_inatomic(to, from, n)			\
	__invoke_copy_from_user_inatomic(to, from, n)			\

#else

/* EVA specific functions */

extern size_t __copy_user_inatomic_eva(void *__to, const void *__from,
				       size_t __n);
extern size_t __copy_from_user_eva(void *__to, const void *__from,
				   size_t __n);
extern size_t __copy_to_user_eva(void *__to, const void *__from,
				 size_t __n);
extern size_t __copy_in_user_eva(void *__to, const void *__from, size_t __n);

#define __invoke_copy_from_user_eva_generic(to, from, n, func_ptr)	\
({									\
	register void *__cu_to_r __asm__("$4");				\
	register const void __user *__cu_from_r __asm__("$5");		\
	register long __cu_len_r __asm__("$6");				\
									\
	__cu_to_r = (to);						\
	__cu_from_r = (from);						\
	__cu_len_r = (n);						\
	__asm__ __volatile__(						\
	".set\tnoreorder\n\t"						\
	__MODULE_JAL(func_ptr)						\
	".set\tnoat\n\t"						\
	__UA_ADDU "\t$1, %1, %2\n\t"					\
	".set\tat\n\t"							\
	".set\treorder"							\
	: "+r" (__cu_to_r), "+r" (__cu_from_r), "+r" (__cu_len_r)	\
	:								\
	: "$8", "$9", "$10", "$11", "$12", "$14", "$15", "$24", "$31",	\
	  DADDI_SCRATCH, "memory");					\
	__cu_len_r;							\
})

#define __invoke_copy_to_user_eva_generic(to, from, n, func_ptr)	\
({									\
	register void *__cu_to_r __asm__("$4");				\
	register const void __user *__cu_from_r __asm__("$5");		\
	register long __cu_len_r __asm__("$6");				\
									\
	__cu_to_r = (to);						\
	__cu_from_r = (from);						\
	__cu_len_r = (n);						\
	__asm__ __volatile__(						\
	__MODULE_JAL(func_ptr)						\
	: "+r" (__cu_to_r), "+r" (__cu_from_r), "+r" (__cu_len_r)	\
	:								\
	: "$8", "$9", "$10", "$11", "$12", "$14", "$15", "$24", "$31",	\
	  DADDI_SCRATCH, "memory");					\
	__cu_len_r;							\
})

/*
 * Source or destination address is in userland. We need to go through
 * the TLB
 */
#define __invoke_copy_from_user(to, from, n)				\
	__invoke_copy_from_user_eva_generic(to, from, n, __copy_from_user_eva)

#define __invoke_copy_from_user_inatomic(to, from, n)			\
	__invoke_copy_from_user_eva_generic(to, from, n,		\
					    __copy_user_inatomic_eva)

#define __invoke_copy_to_user(to, from, n)				\
	__invoke_copy_to_user_eva_generic(to, from, n, __copy_to_user_eva)

#define ___invoke_copy_in_user(to, from, n)				\
	__invoke_copy_from_user_eva_generic(to, from, n, __copy_in_user_eva)

/*
 * Source or destination address in the kernel. We are not going through
 * the TLB
 */
#define __invoke_copy_from_kernel(to, from, n)				\
	__invoke_copy_from_user_eva_generic(to, from, n, __copy_user)

#define __invoke_copy_from_kernel_inatomic(to, from, n)			\
	__invoke_copy_from_user_eva_generic(to, from, n, __copy_user_inatomic)

#define __invoke_copy_to_kernel(to, from, n)				\
	__invoke_copy_to_user_eva_generic(to, from, n, __copy_user)

#define ___invoke_copy_in_kernel(to, from, n)				\
	__invoke_copy_from_user_eva_generic(to, from, n, __copy_user)

#endif /* CONFIG_EVA */

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/*
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 * __copy_from_user: - Copy a block of data from user space, with less checking.
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 * @to:	  Destination address, in kernel space.
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 * @from: Source address, in user space.
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 * @n:	  Number of bytes to copy.
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 *
1104 1105
 * Context: User context only. This function may sleep if pagefaults are
 *          enabled.
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 *
 * Copy data from user space to kernel space.  Caller must check
 * the specified block with access_ok() before calling this function.
 *
 * Returns number of bytes that could not be copied.
 * On success, this will be zero.
 *
 * If some data could not be copied, this function will pad the copied
 * data to the requested size using zero bytes.
 */
1116
#define __copy_from_user(to, from, n)					\
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({									\
	void *__cu_to;							\
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	const void __user *__cu_from;					\
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	long __cu_len;							\
									\
	__cu_to = (to);							\
	__cu_from = (from);						\
	__cu_len = (n);							\
1125 1126 1127 1128 1129 1130 1131 1132 1133
	if (eva_kernel_access()) {					\
		__cu_len = __invoke_copy_from_kernel(__cu_to,		\
						     __cu_from,		\
						     __cu_len);		\
	} else {							\
		might_fault();						\
		__cu_len = __invoke_copy_from_user(__cu_to, __cu_from,	\
						   __cu_len);		\
	}								\
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	__cu_len;							\
})

/*
 * copy_from_user: - Copy a block of data from user space.
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 * @to:	  Destination address, in kernel space.
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 * @from: Source address, in user space.
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 * @n:	  Number of bytes to copy.
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 *
1143 1144
 * Context: User context only. This function may sleep if pagefaults are
 *          enabled.
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 *
 * Copy data from user space to kernel space.
 *
 * Returns number of bytes that could not be copied.
 * On success, this will be zero.
 *
 * If some data could not be copied, this function will pad the copied
 * data to the requested size using zero bytes.
 */
1154
#define copy_from_user(to, from, n)					\
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({									\
	void *__cu_to;							\
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	const void __user *__cu_from;					\
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	long __cu_len;							\
									\
	__cu_to = (to);							\
	__cu_from = (from);						\
	__cu_len = (n);							\
1163
	if (eva_kernel_access()) {					\
1164 1165 1166 1167 1168 1169 1170 1171 1172 1173
		__cu_len = __invoke_copy_from_kernel(__cu_to,		\
						     __cu_from,		\
						     __cu_len);		\
	} else {							\
		if (access_ok(VERIFY_READ, __cu_from, __cu_len)) {	\
			might_fault();                                  \
			__cu_len = __invoke_copy_from_user(__cu_to,	\
							   __cu_from,	\
							   __cu_len);   \
		}							\
1174
	}								\
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	__cu_len;							\
})

1178 1179 1180 1181 1182 1183 1184 1185 1186
#define __copy_in_user(to, from, n)					\
({									\
	void __user *__cu_to;						\
	const void __user *__cu_from;					\
	long __cu_len;							\
									\
	__cu_to = (to);							\
	__cu_from = (from);						\
	__cu_len = (n);							\
1187
	if (eva_kernel_access()) {					\
1188 1189 1190 1191 1192 1193 1194
		__cu_len = ___invoke_copy_in_kernel(__cu_to, __cu_from,	\
						    __cu_len);		\
	} else {							\
		might_fault();						\
		__cu_len = ___invoke_copy_in_user(__cu_to, __cu_from,	\
						  __cu_len);		\
	}								\
1195 1196
	__cu_len;							\
})
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1198
#define copy_in_user(to, from, n)					\
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({									\
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	void __user *__cu_to;						\
	const void __user *__cu_from;					\
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	long __cu_len;							\
									\
	__cu_to = (to);							\
	__cu_from = (from);						\
	__cu_len = (n);							\
1207
	if (eva_kernel_access()) {					\
1208 1209 1210 1211 1212 1213 1214 1215 1216 1217
		__cu_len = ___invoke_copy_in_kernel(__cu_to,__cu_from,	\
						    __cu_len);		\
	} else {							\
		if (likely(access_ok(VERIFY_READ, __cu_from, __cu_len) &&\
			   access_ok(VERIFY_WRITE, __cu_to, __cu_len))) {\
			might_fault();					\
			__cu_len = ___invoke_copy_in_user(__cu_to,	\
							  __cu_from,	\
							  __cu_len);	\
		}							\
1218
	}								\
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	__cu_len;							\
})

/*
 * __clear_user: - Zero a block of memory in user space, with less checking.
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 * @to:	  Destination address, in user space.
 * @n:	  Number of bytes to zero.
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 *
 * Zero a block of memory in user space.  Caller must check
 * the specified block with access_ok() before calling this function.
 *
 * Returns number of bytes that could not be cleared.
 * On success, this will be zero.
 */
static inline __kernel_size_t
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__clear_user(void __user *addr, __kernel_size_t size)
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{
	__kernel_size_t res;

1238
	might_fault();
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	__asm__ __volatile__(
		"move\t$4, %1\n\t"
		"move\t$5, $0\n\t"
		"move\t$6, %2\n\t"
		__MODULE_JAL(__bzero)
		"move\t%0, $6"
		: "=r" (res)
		: "r" (addr), "r" (size)
		: "$4", "$5", "$6", __UA_t0, __UA_t1, "$31");

	return res;
}

#define clear_user(addr,n)						\
({									\
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	void __user * __cl_addr = (addr);				\
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	unsigned long __cl_size = (n);					\
	if (__cl_size && access_ok(VERIFY_WRITE,			\
1257
					__cl_addr, __cl_size))		\
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		__cl_size = __clear_user(__cl_addr, __cl_size);		\
	__cl_size;							\
})

/*
 * __strncpy_from_user: - Copy a NUL terminated string from userspace, with less checking.
 * @dst:   Destination address, in kernel space.  This buffer must be at
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 *	   least @count bytes long.
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 * @src:   Source address, in user space.
 * @count: Maximum number of bytes to copy, including the trailing NUL.
 *
 * Copies a NUL-terminated string from userspace to kernel space.
 * Caller must check the specified block with access_ok() before calling
 * this function.
 *
 * On success, returns the length of the string (not including the trailing
 * NUL).
 *
 * If access to userspace fails, returns -EFAULT (some data may have been
 * copied).
 *
 * If @count is smaller than the length of the string, copies @count bytes
 * and returns @count.
 */
static inline long
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__strncpy_from_user(char *__to, const char __user *__from, long __len)
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{
	long res;

1287
	if (eva_kernel_access()) {
1288 1289 1290 1291 1292 1293 1294 1295 1296 1297 1298 1299 1300 1301 1302 1303 1304 1305 1306 1307 1308
		__asm__ __volatile__(
			"move\t$4, %1\n\t"
			"move\t$5, %2\n\t"
			"move\t$6, %3\n\t"
			__MODULE_JAL(__strncpy_from_kernel_nocheck_asm)
			"move\t%0, $2"
			: "=r" (res)
			: "r" (__to), "r" (__from), "r" (__len)
			: "$2", "$3", "$4", "$5", "$6", __UA_t0, "$31", "memory");
	} else {
		might_fault();
		__asm__ __volatile__(
			"move\t$4, %1\n\t"
			"move\t$5, %2\n\t"
			"move\t$6, %3\n\t"
			__MODULE_JAL(__strncpy_from_user_nocheck_asm)
			"move\t%0, $2"
			: "=r" (res)
			: "r" (__to), "r" (__from), "r" (__len)
			: "$2", "$3", "$4", "$5", "$6", __UA_t0, "$31", "memory");
	}
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	return res;
}

/*
 * strncpy_from_user: - Copy a NUL terminated string from userspace.
 * @dst:   Destination address, in kernel space.  This buffer must be at
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 *	   least @count bytes long.
L
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 * @src:   Source address, in user space.
 * @count: Maximum number of bytes to copy, including the trailing NUL.
 *
 * Copies a NUL-terminated string from userspace to kernel space.
 *
 * On success, returns the length of the string (not including the trailing
 * NUL).
 *
 * If access to userspace fails, returns -EFAULT (some data may have been
 * copied).
 *
 * If @count is smaller than the length of the string, copies @count bytes
 * and returns @count.
 */
static inline long
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strncpy_from_user(char *__to, const char __user *__from, long __len)
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{
	long res;

1336
	if (eva_kernel_access()) {
1337 1338 1339 1340 1341 1342 1343 1344 1345 1346 1347 1348 1349 1350 1351 1352 1353 1354 1355 1356 1357
		__asm__ __volatile__(
			"move\t$4, %1\n\t"
			"move\t$5, %2\n\t"
			"move\t$6, %3\n\t"
			__MODULE_JAL(__strncpy_from_kernel_asm)
			"move\t%0, $2"
			: "=r" (res)
			: "r" (__to), "r" (__from), "r" (__len)
			: "$2", "$3", "$4", "$5", "$6", __UA_t0, "$31", "memory");
	} else {
		might_fault();
		__asm__ __volatile__(
			"move\t$4, %1\n\t"
			"move\t$5, %2\n\t"
			"move\t$6, %3\n\t"
			__MODULE_JAL(__strncpy_from_user_asm)
			"move\t%0, $2"
			: "=r" (res)
			: "r" (__to), "r" (__from), "r" (__len)
			: "$2", "$3", "$4", "$5", "$6", __UA_t0, "$31", "memory");
	}
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	return res;
}

/*
 * strlen_user: - Get the size of a string in user space.
 * @str: The string to measure.
 *
1366 1367
 * Context: User context only. This function may sleep if pagefaults are
 *          enabled.
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 *
 * Get the size of a NUL-terminated string in user space.
 *
 * Returns the size of the string INCLUDING the terminating NUL.
 * On exception, returns 0.
 *
 * If there is a limit on the length of a valid string, you may wish to
 * consider using strnlen_user() instead.
 */
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static inline long strlen_user(const char __user *s)
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{
	long res;

1381
	if (eva_kernel_access()) {
1382 1383 1384 1385 1386 1387 1388 1389 1390 1391 1392
		__asm__ __volatile__(
			"move\t$4, %1\n\t"
			__MODULE_JAL(__strlen_kernel_asm)
			"move\t%0, $2"
			: "=r" (res)
			: "r" (s)
			: "$2", "$4", __UA_t0, "$31");
	} else {
		might_fault();
		__asm__ __volatile__(
			"move\t$4, %1\n\t"
1393
			__MODULE_JAL(__strlen_user_asm)
1394 1395 1396 1397 1398
			"move\t%0, $2"
			: "=r" (res)
			: "r" (s)
			: "$2", "$4", __UA_t0, "$31");
	}
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	return res;
}

/* Returns: 0 if bad, string length+1 (memory size) of string if ok */
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static inline long __strnlen_user(const char __user *s, long n)
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{
	long res;

1408
	if (eva_kernel_access()) {
1409 1410 1411 1412 1413 1414 1415 1416 1417 1418 1419 1420 1421 1422 1423 1424 1425 1426 1427
		__asm__ __volatile__(
			"move\t$4, %1\n\t"
			"move\t$5, %2\n\t"
			__MODULE_JAL(__strnlen_kernel_nocheck_asm)
			"move\t%0, $2"
			: "=r" (res)
			: "r" (s), "r" (n)
			: "$2", "$4", "$5", __UA_t0, "$31");
	} else {
		might_fault();
		__asm__ __volatile__(
			"move\t$4, %1\n\t"
			"move\t$5, %2\n\t"
			__MODULE_JAL(__strnlen_user_nocheck_asm)
			"move\t%0, $2"
			: "=r" (res)
			: "r" (s), "r" (n)
			: "$2", "$4", "$5", __UA_t0, "$31");
	}
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	return res;
}

/*
1433
 * strnlen_user: - Get the size of a string in user space.
L
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 * @str: The string to measure.
 *
1436 1437
 * Context: User context only. This function may sleep if pagefaults are
 *          enabled.
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 *
 * Get the size of a NUL-terminated string in user space.
 *
 * Returns the size of the string INCLUDING the terminating NUL.
 * On exception, returns 0.
1443
 * If the string is too long, returns a value greater than @n.
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 */
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static inline long strnlen_user(const char __user *s, long n)
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1446 1447 1448
{
	long res;

1449
	might_fault();
1450
	if (eva_kernel_access()) {
1451 1452 1453 1454 1455 1456 1457 1458 1459 1460 1461 1462 1463 1464 1465 1466 1467 1468
		__asm__ __volatile__(
			"move\t$4, %1\n\t"
			"move\t$5, %2\n\t"
			__MODULE_JAL(__strnlen_kernel_asm)
			"move\t%0, $2"
			: "=r" (res)
			: "r" (s), "r" (n)
			: "$2", "$4", "$5", __UA_t0, "$31");
	} else {
		__asm__ __volatile__(
			"move\t$4, %1\n\t"
			"move\t$5, %2\n\t"
			__MODULE_JAL(__strnlen_user_asm)
			"move\t%0, $2"
			: "=r" (res)
			: "r" (s), "r" (n)
			: "$2", "$4", "$5", __UA_t0, "$31");
	}
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	return res;
}

struct exception_table_entry
{
	unsigned long insn;
	unsigned long nextinsn;
};

extern int fixup_exception(struct pt_regs *regs);

#endif /* _ASM_UACCESS_H */