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  *   ˆl–Ü4ý( ©³( 	Å€fàB¦-ÿÆ496_†I|¥�+ÁÅ ð    /* SPDX-License-Identifier: GPL-2.0 */
#ifndef __LINUX_FAULT_INJECT_USERCOPY_H__
#define __LINUX_FAULT_INJECT_USERCOPY_H__

/*
 * This header provides a wrapper for injecting failures to user space memory
 * access functions.
 */

#include <linux/types.h>

#ifdef CONFIG_FAULT_INJECTION_USERCOPY

bool should_fail_usercopy(void);

#else

static inline bool should_fail_usercopy(void) { return false; }

#endif /* CONFIG_FAULT_INJECTION_USERCOPY */

#endif /* __LINUX_FAULT_INJECT_USERCOPY_H__ */
     ˆ¿Ç„‚Ø¾ÁÅ ?÷     /* SPDX-License-Identifier: GPL-2.0 */
#ifndef _LINUX_SCATTERLIST_H
#define _LINUX_SCATTERLIST_H

#include <linux/string.h>
#include <linux/types.h>
#include <linux/bug.h>
#include <linux/mm.h>
#include <asm/io.h>

struct scatterlist {
	unsigned long	page_link;
	unsigned int	offset;
	unsigned int	length;
	dma_addr_t	dma_address;
#ifdef CONFIG_NEED_SG_DMA_LENGTH
	unsigned int	dma_length;
#endif
#ifdef CONFIG_NEED_SG_DMA_FLAGS
	unsigned int    dma_flags;
#endif
};

/*
 * These macros should be used after a dma_map_sg call has been done
 * to get bus addresses of each of the SG entries and their lengths.
 * You should only work with the number of sg entries dma_map_sg
 * returns, or alternatively stop on the first sg_dma_len(sg) which
 * is 0.
 */
#define sg_dma_address(sg)	((sg)->dma_address)

#ifdef CONFIG_NEED_SG_DMA_LENGTH
#define sg_dma_len(sg)		((sg)->dma_length)
#else
#define sg_dma_len(sg)		((sg)->length)
#endif

struct sg_table {
	struct scatterlist *sgl;	/* the list */
	unsigned int nents;		/* number of mapped entries */
	unsigned int orig_nents;	/* original size of list */
};

struct sg_append_table {
	struct sg_table sgt;		/* The scatter list table */
	struct scatterlist *prv;	/* last populated sge in the table */
	unsigned int total_nents;	/* Total entries in the table */
};

/*
 * Notes on SG table design.
 *
 * We use the unsigned long page_link field in the scatterlist struct to place
 * the page pointer AND encode information about the sg table as well. The two
 * lower bits are reserved for this information.
 *
 * If bit 0 is set, then the page_link contains a pointer to the next sg
 * table list. Otherwise the next entry is at sg + 1.
 *
 * If bit 1 is set, then this sg entry is the last element in a list.
 *
 * See sg_next().
 *
 */

#define SG_CHAIN	0x01UL
#define SG_END		0x02UL

/*
 * We overload the LSB of the page pointer to indicate whether it's
 * a valid sg entry, or whether it points to the start of a new scatterlist.
 * Those low bits are there for everyone! (thanks mason :-)
 */
#define SG_PAGE_LINK_MASK (SG_CHAIN | SG_END)

static inline unsigned int __sg_flags(struct scatterlist *sg)
{
	return sg->page_link & SG_PAGE_LINK_MASK;
}

static inline struct scatterlist *sg_chain_ptr(struct scatterlist *sg)
{
	return (struct scatterlist *)(sg->page_link & ~SG_PAGE_LINK_MASK);
}

static inline bool sg_is_chain(struct scatterlist *sg)
{
	return __sg_flags(sg) & SG_CHAIN;
}

static inline bool sg_is_last(struct scatterlist *sg)
{
	return __sg_flags(sg) & SG_END;
}

/**
 * sg_next - return the next scatterlist entry in a list
 * @sg:		The current sg entry
 *
 * Description:
 *   Usually the next entry will be @sg + 1, but if this sg element is part
 *   of a chained scatterlist, it could jump to the start of a new
 *   scatterlist array.
 *
 **/
static inline struct scatterlist *sg_next(struct scatterlist *sg)
{
	if (sg_is_last(sg))
		return NULL;

	sg++;
	if (unlikely(sg_is_chain(sg)))
		sg = sg_chain_ptr(sg);

	return sg;
}

/**
 * sg_assign_page - Assign a given page to an SG entry
 * @sg:		    SG entry
 * @page:	    The page
 *
 * Description:
 *   Assign page to sg entry. Also see sg_set_page(), the most commonly used
 *   variant.
 *
 **/
static inline void sg_assign_page(struct scatterlist *sg, struct page *page)
{
	unsigned long page_link = sg->page_link & (SG_CHAIN | SG_END);

	/*
	 * In order for the low bit stealing approach to work, pages
	 * must be aligned at a 32-bit 