pgtable.h 51.1 KB
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/*
 *  S390 version
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 *    Copyright IBM Corp. 1999, 2000
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 *    Author(s): Hartmut Penner (hp@de.ibm.com)
 *               Ulrich Weigand (weigand@de.ibm.com)
 *               Martin Schwidefsky (schwidefsky@de.ibm.com)
 *
 *  Derived from "include/asm-i386/pgtable.h"
 */

#ifndef _ASM_S390_PGTABLE_H
#define _ASM_S390_PGTABLE_H

/*
 * The Linux memory management assumes a three-level page table setup. For
 * s390 31 bit we "fold" the mid level into the top-level page table, so
 * that we physically have the same two-level page table as the s390 mmu
 * expects in 31 bit mode. For s390 64 bit we use three of the five levels
 * the hardware provides (region first and region second tables are not
 * used).
 *
 * The "pgd_xxx()" functions are trivial for a folded two-level
 * setup: the pgd is never bad, and a pmd always exists (as it's folded
 * into the pgd entry)
 *
 * This file contains the functions and defines necessary to modify and use
 * the S390 page table tree.
 */
#ifndef __ASSEMBLY__
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#include <linux/sched.h>
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#include <linux/mm_types.h>
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#include <linux/page-flags.h>
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#include <asm/bug.h>
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#include <asm/page.h>
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extern pgd_t swapper_pg_dir[] __attribute__ ((aligned (4096)));
extern void paging_init(void);
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extern void vmem_map_init(void);
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/*
 * The S390 doesn't have any external MMU info: the kernel page
 * tables contain all the necessary information.
 */
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#define update_mmu_cache(vma, address, ptep)     do { } while (0)
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#define update_mmu_cache_pmd(vma, address, ptep) do { } while (0)
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/*
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 * ZERO_PAGE is a global shared page that is always zero; used
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 * for zero-mapped memory areas etc..
 */
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extern unsigned long empty_zero_page;
extern unsigned long zero_page_mask;

#define ZERO_PAGE(vaddr) \
	(virt_to_page((void *)(empty_zero_page + \
	 (((unsigned long)(vaddr)) &zero_page_mask))))
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#define __HAVE_COLOR_ZERO_PAGE
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/* TODO: s390 cannot support io_remap_pfn_range... */
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#endif /* !__ASSEMBLY__ */

/*
 * PMD_SHIFT determines the size of the area a second-level page
 * table can map
 * PGDIR_SHIFT determines what a third-level page table entry can map
 */
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#ifndef CONFIG_64BIT
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# define PMD_SHIFT	20
# define PUD_SHIFT	20
# define PGDIR_SHIFT	20
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#else /* CONFIG_64BIT */
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# define PMD_SHIFT	20
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# define PUD_SHIFT	31
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# define PGDIR_SHIFT	42
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#endif /* CONFIG_64BIT */
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#define PMD_SIZE        (1UL << PMD_SHIFT)
#define PMD_MASK        (~(PMD_SIZE-1))
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#define PUD_SIZE	(1UL << PUD_SHIFT)
#define PUD_MASK	(~(PUD_SIZE-1))
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#define PGDIR_SIZE	(1UL << PGDIR_SHIFT)
#define PGDIR_MASK	(~(PGDIR_SIZE-1))
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/*
 * entries per page directory level: the S390 is two-level, so
 * we don't really have any PMD directory physically.
 * for S390 segment-table entries are combined to one PGD
 * that leads to 1024 pte per pgd
 */
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#define PTRS_PER_PTE	256
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#ifndef CONFIG_64BIT
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#define PTRS_PER_PMD	1
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#define PTRS_PER_PUD	1
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#else /* CONFIG_64BIT */
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#define PTRS_PER_PMD	2048
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#define PTRS_PER_PUD	2048
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#endif /* CONFIG_64BIT */
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#define PTRS_PER_PGD	2048
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#define FIRST_USER_ADDRESS  0

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#define pte_ERROR(e) \
	printk("%s:%d: bad pte %p.\n", __FILE__, __LINE__, (void *) pte_val(e))
#define pmd_ERROR(e) \
	printk("%s:%d: bad pmd %p.\n", __FILE__, __LINE__, (void *) pmd_val(e))
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#define pud_ERROR(e) \
	printk("%s:%d: bad pud %p.\n", __FILE__, __LINE__, (void *) pud_val(e))
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#define pgd_ERROR(e) \
	printk("%s:%d: bad pgd %p.\n", __FILE__, __LINE__, (void *) pgd_val(e))

#ifndef __ASSEMBLY__
/*
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 * The vmalloc and module area will always be on the topmost area of the kernel
 * mapping. We reserve 96MB (31bit) / 128GB (64bit) for vmalloc and modules.
 * On 64 bit kernels we have a 2GB area at the top of the vmalloc area where
 * modules will reside. That makes sure that inter module branches always
 * happen without trampolines and in addition the placement within a 2GB frame
 * is branch prediction unit friendly.
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 */
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extern unsigned long VMALLOC_START;
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extern unsigned long VMALLOC_END;
extern struct page *vmemmap;
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#define VMEM_MAX_PHYS ((unsigned long) vmemmap)
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#ifdef CONFIG_64BIT
extern unsigned long MODULES_VADDR;
extern unsigned long MODULES_END;
#define MODULES_VADDR	MODULES_VADDR
#define MODULES_END	MODULES_END
#define MODULES_LEN	(1UL << 31)
#endif

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/*
 * A 31 bit pagetable entry of S390 has following format:
 *  |   PFRA          |    |  OS  |
 * 0                   0IP0
 * 00000000001111111111222222222233
 * 01234567890123456789012345678901
 *
 * I Page-Invalid Bit:    Page is not available for address-translation
 * P Page-Protection Bit: Store access not possible for page
 *
 * A 31 bit segmenttable entry of S390 has following format:
 *  |   P-table origin      |  |PTL
 * 0                         IC
 * 00000000001111111111222222222233
 * 01234567890123456789012345678901
 *
 * I Segment-Invalid Bit:    Segment is not available for address-translation
 * C Common-Segment Bit:     Segment is not private (PoP 3-30)
 * PTL Page-Table-Length:    Page-table length (PTL+1*16 entries -> up to 256)
 *
 * The 31 bit segmenttable origin of S390 has following format:
 *
 *  |S-table origin   |     | STL |
 * X                   **GPS
 * 00000000001111111111222222222233
 * 01234567890123456789012345678901
 *
 * X Space-Switch event:
 * G Segment-Invalid Bit:     *
 * P Private-Space Bit:       Segment is not private (PoP 3-30)
 * S Storage-Alteration:
 * STL Segment-Table-Length:  Segment-table length (STL+1*16 entries -> up to 2048)
 *
 * A 64 bit pagetable entry of S390 has following format:
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 * |			 PFRA			      |0IPC|  OS  |
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 * 0000000000111111111122222222223333333333444444444455555555556666
 * 0123456789012345678901234567890123456789012345678901234567890123
 *
 * I Page-Invalid Bit:    Page is not available for address-translation
 * P Page-Protection Bit: Store access not possible for page
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 * C Change-bit override: HW is not required to set change bit
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 *
 * A 64 bit segmenttable entry of S390 has following format:
 * |        P-table origin                              |      TT
 * 0000000000111111111122222222223333333333444444444455555555556666
 * 0123456789012345678901234567890123456789012345678901234567890123
 *
 * I Segment-Invalid Bit:    Segment is not available for address-translation
 * C Common-Segment Bit:     Segment is not private (PoP 3-30)
 * P Page-Protection Bit: Store access not possible for page
 * TT Type 00
 *
 * A 64 bit region table entry of S390 has following format:
 * |        S-table origin                             |   TF  TTTL
 * 0000000000111111111122222222223333333333444444444455555555556666
 * 0123456789012345678901234567890123456789012345678901234567890123
 *
 * I Segment-Invalid Bit:    Segment is not available for address-translation
 * TT Type 01
 * TF
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 * TL Table length
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 *
 * The 64 bit regiontable origin of S390 has following format:
 * |      region table origon                          |       DTTL
 * 0000000000111111111122222222223333333333444444444455555555556666
 * 0123456789012345678901234567890123456789012345678901234567890123
 *
 * X Space-Switch event:
 * G Segment-Invalid Bit:  
 * P Private-Space Bit:    
 * S Storage-Alteration:
 * R Real space
 * TL Table-Length:
 *
 * A storage key has the following format:
 * | ACC |F|R|C|0|
 *  0   3 4 5 6 7
 * ACC: access key
 * F  : fetch protection bit
 * R  : referenced bit
 * C  : changed bit
 */

/* Hardware bits in the page table entry */
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#define _PAGE_CO	0x100		/* HW Change-bit override */
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#define _PAGE_PROTECT	0x200		/* HW read-only bit  */
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#define _PAGE_INVALID	0x400		/* HW invalid bit    */
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#define _PAGE_LARGE	0x800		/* Bit to mark a large pte */
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/* Software bits in the page table entry */
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#define _PAGE_PRESENT	0x001		/* SW pte present bit */
#define _PAGE_TYPE	0x002		/* SW pte type bit */
#define _PAGE_YOUNG	0x004		/* SW pte young bit */
#define _PAGE_DIRTY	0x008		/* SW pte dirty bit */
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#define _PAGE_READ	0x010		/* SW pte read bit */
#define _PAGE_WRITE	0x020		/* SW pte write bit */
#define _PAGE_SPECIAL	0x040		/* SW associated with special page */
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#define _PAGE_UNUSED	0x080		/* SW bit for pgste usage state */
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#define __HAVE_ARCH_PTE_SPECIAL
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/* Set of bits not changed in pte_modify */
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#define _PAGE_CHG_MASK		(PAGE_MASK | _PAGE_SPECIAL | _PAGE_CO | \
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				 _PAGE_DIRTY | _PAGE_YOUNG)
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/*
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 * handle_pte_fault uses pte_present, pte_none and pte_file to find out the
 * pte type WITHOUT holding the page table lock. The _PAGE_PRESENT bit
 * is used to distinguish present from not-present ptes. It is changed only
 * with the page table lock held.
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 *
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 * The following table gives the different possible bit combinations for
 * the pte hardware and software bits in the last 12 bits of a pte:
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 *
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 *				842100000000
 *				000084210000
 *				000000008421
 *				.IR...wrdytp
 * empty			.10...000000
 * swap				.10...xxxx10
 * file				.11...xxxxx0
 * prot-none, clean, old	.11...000001
 * prot-none, clean, young	.11...000101
 * prot-none, dirty, old	.10...001001
 * prot-none, dirty, young	.10...001101
 * read-only, clean, old	.11...010001
 * read-only, clean, young	.01...010101
 * read-only, dirty, old	.11...011001
 * read-only, dirty, young	.01...011101
 * read-write, clean, old	.11...110001
 * read-write, clean, young	.01...110101
 * read-write, dirty, old	.10...111001
 * read-write, dirty, young	.00...111101
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 *
 * pte_present is true for the bit pattern .xx...xxxxx1, (pte & 0x001) == 0x001
 * pte_none    is true for the bit pattern .10...xxxx00, (pte & 0x603) == 0x400
 * pte_file    is true for the bit pattern .11...xxxxx0, (pte & 0x601) == 0x600
 * pte_swap    is true for the bit pattern .10...xxxx10, (pte & 0x603) == 0x402
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 */

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#ifndef CONFIG_64BIT
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/* Bits in the segment table address-space-control-element */
#define _ASCE_SPACE_SWITCH	0x80000000UL	/* space switch event	    */
#define _ASCE_ORIGIN_MASK	0x7ffff000UL	/* segment table origin	    */
#define _ASCE_PRIVATE_SPACE	0x100	/* private space control	    */
#define _ASCE_ALT_EVENT		0x80	/* storage alteration event control */
#define _ASCE_TABLE_LENGTH	0x7f	/* 128 x 64 entries = 8k	    */
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/* Bits in the segment table entry */
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#define _SEGMENT_ENTRY_BITS	0x7fffffffUL	/* Valid segment table bits */
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#define _SEGMENT_ENTRY_ORIGIN	0x7fffffc0UL	/* page table origin	    */
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#define _SEGMENT_ENTRY_PROTECT	0x200	/* page protection bit		    */
#define _SEGMENT_ENTRY_INVALID	0x20	/* invalid segment table entry	    */
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#define _SEGMENT_ENTRY_COMMON	0x10	/* common segment bit		    */
#define _SEGMENT_ENTRY_PTL	0x0f	/* page table length		    */
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#define _SEGMENT_ENTRY_DIRTY	0	/* No sw dirty bit for 31-bit */
#define _SEGMENT_ENTRY_YOUNG	0	/* No sw young bit for 31-bit */
#define _SEGMENT_ENTRY_READ	0	/* No sw read bit for 31-bit */
#define _SEGMENT_ENTRY_WRITE	0	/* No sw write bit for 31-bit */
#define _SEGMENT_ENTRY_LARGE	0	/* No large pages for 31-bit */
#define _SEGMENT_ENTRY_BITS_LARGE 0
#define _SEGMENT_ENTRY_ORIGIN_LARGE 0
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#define _SEGMENT_ENTRY		(_SEGMENT_ENTRY_PTL)
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#define _SEGMENT_ENTRY_EMPTY	(_SEGMENT_ENTRY_INVALID)
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/*
 * Segment table entry encoding (I = invalid, R = read-only bit):
 *		..R...I.....
 * prot-none	..1...1.....
 * read-only	..1...0.....
 * read-write	..0...0.....
 * empty	..0...1.....
 */

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/* Page status table bits for virtualization */
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#define PGSTE_ACC_BITS	0xf0000000UL
#define PGSTE_FP_BIT	0x08000000UL
#define PGSTE_PCL_BIT	0x00800000UL
#define PGSTE_HR_BIT	0x00400000UL
#define PGSTE_HC_BIT	0x00200000UL
#define PGSTE_GR_BIT	0x00040000UL
#define PGSTE_GC_BIT	0x00020000UL
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#define PGSTE_UC_BIT	0x00008000UL	/* user dirty (migration) */
#define PGSTE_IN_BIT	0x00004000UL	/* IPTE notify bit */
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#else /* CONFIG_64BIT */
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/* Bits in the segment/region table address-space-control-element */
#define _ASCE_ORIGIN		~0xfffUL/* segment table origin		    */
#define _ASCE_PRIVATE_SPACE	0x100	/* private space control	    */
#define _ASCE_ALT_EVENT		0x80	/* storage alteration event control */
#define _ASCE_SPACE_SWITCH	0x40	/* space switch event		    */
#define _ASCE_REAL_SPACE	0x20	/* real space control		    */
#define _ASCE_TYPE_MASK		0x0c	/* asce table type mask		    */
#define _ASCE_TYPE_REGION1	0x0c	/* region first table type	    */
#define _ASCE_TYPE_REGION2	0x08	/* region second table type	    */
#define _ASCE_TYPE_REGION3	0x04	/* region third table type	    */
#define _ASCE_TYPE_SEGMENT	0x00	/* segment table type		    */
#define _ASCE_TABLE_LENGTH	0x03	/* region table length		    */

/* Bits in the region table entry */
#define _REGION_ENTRY_ORIGIN	~0xfffUL/* region/segment table origin	    */
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#define _REGION_ENTRY_PROTECT	0x200	/* region protection bit	    */
#define _REGION_ENTRY_INVALID	0x20	/* invalid region table entry	    */
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#define _REGION_ENTRY_TYPE_MASK	0x0c	/* region/segment table type mask   */
#define _REGION_ENTRY_TYPE_R1	0x0c	/* region first table type	    */
#define _REGION_ENTRY_TYPE_R2	0x08	/* region second table type	    */
#define _REGION_ENTRY_TYPE_R3	0x04	/* region third table type	    */
#define _REGION_ENTRY_LENGTH	0x03	/* region third length		    */

#define _REGION1_ENTRY		(_REGION_ENTRY_TYPE_R1 | _REGION_ENTRY_LENGTH)
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#define _REGION1_ENTRY_EMPTY	(_REGION_ENTRY_TYPE_R1 | _REGION_ENTRY_INVALID)
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#define _REGION2_ENTRY		(_REGION_ENTRY_TYPE_R2 | _REGION_ENTRY_LENGTH)
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#define _REGION2_ENTRY_EMPTY	(_REGION_ENTRY_TYPE_R2 | _REGION_ENTRY_INVALID)
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#define _REGION3_ENTRY		(_REGION_ENTRY_TYPE_R3 | _REGION_ENTRY_LENGTH)
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#define _REGION3_ENTRY_EMPTY	(_REGION_ENTRY_TYPE_R3 | _REGION_ENTRY_INVALID)
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#define _REGION3_ENTRY_LARGE	0x400	/* RTTE-format control, large page  */
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#define _REGION3_ENTRY_RO	0x200	/* page protection bit		    */
#define _REGION3_ENTRY_CO	0x100	/* change-recording override	    */
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/* Bits in the segment table entry */
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#define _SEGMENT_ENTRY_BITS	0xfffffffffffffe33UL
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#define _SEGMENT_ENTRY_BITS_LARGE 0xfffffffffff0ff33UL
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#define _SEGMENT_ENTRY_ORIGIN_LARGE ~0xfffffUL /* large page address	    */
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#define _SEGMENT_ENTRY_ORIGIN	~0x7ffUL/* segment table origin		    */
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#define _SEGMENT_ENTRY_PROTECT	0x200	/* page protection bit		    */
#define _SEGMENT_ENTRY_INVALID	0x20	/* invalid segment table entry	    */
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#define _SEGMENT_ENTRY		(0)
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#define _SEGMENT_ENTRY_EMPTY	(_SEGMENT_ENTRY_INVALID)
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#define _SEGMENT_ENTRY_DIRTY	0x2000	/* SW segment dirty bit */
#define _SEGMENT_ENTRY_YOUNG	0x1000	/* SW segment young bit */
#define _SEGMENT_ENTRY_SPLIT	0x0800	/* THP splitting bit */
#define _SEGMENT_ENTRY_LARGE	0x0400	/* STE-format control, large page */
#define _SEGMENT_ENTRY_CO	0x0100	/* change-recording override   */
#define _SEGMENT_ENTRY_READ	0x0002	/* SW segment read bit */
#define _SEGMENT_ENTRY_WRITE	0x0001	/* SW segment write bit */
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/*
 * Segment table entry encoding (R = read-only, I = invalid, y = young bit):
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 *				dy..R...I...wr
 * prot-none, clean, old	00..1...1...00
 * prot-none, clean, young	01..1...1...00
 * prot-none, dirty, old	10..1...1...00
 * prot-none, dirty, young	11..1...1...00
 * read-only, clean, old	00..1...1...01
 * read-only, clean, young	01..1...0...01
 * read-only, dirty, old	10..1...1...01
 * read-only, dirty, young	11..1...0...01
 * read-write, clean, old	00..1...1...11
 * read-write, clean, young	01..1...0...11
 * read-write, dirty, old	10..0...1...11
 * read-write, dirty, young	11..0...0...11
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 * The segment table origin is used to distinguish empty (origin==0) from
 * read-write, old segment table entries (origin!=0)
 */
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#define _SEGMENT_ENTRY_SPLIT_BIT 11	/* THP splitting bit number */
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/* Page status table bits for virtualization */
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#define PGSTE_ACC_BITS	0xf000000000000000UL
#define PGSTE_FP_BIT	0x0800000000000000UL
#define PGSTE_PCL_BIT	0x0080000000000000UL
#define PGSTE_HR_BIT	0x0040000000000000UL
#define PGSTE_HC_BIT	0x0020000000000000UL
#define PGSTE_GR_BIT	0x0004000000000000UL
#define PGSTE_GC_BIT	0x0002000000000000UL
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#define PGSTE_UC_BIT	0x0000800000000000UL	/* user dirty (migration) */
#define PGSTE_IN_BIT	0x0000400000000000UL	/* IPTE notify bit */
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#endif /* CONFIG_64BIT */
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/* Guest Page State used for virtualization */
#define _PGSTE_GPS_ZERO		0x0000000080000000UL
#define _PGSTE_GPS_USAGE_MASK	0x0000000003000000UL
#define _PGSTE_GPS_USAGE_STABLE 0x0000000000000000UL
#define _PGSTE_GPS_USAGE_UNUSED 0x0000000001000000UL

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/*
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 * A user page table pointer has the space-switch-event bit, the
 * private-space-control bit and the storage-alteration-event-control
 * bit set. A kernel page table pointer doesn't need them.
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 */
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#define _ASCE_USER_BITS		(_ASCE_SPACE_SWITCH | _ASCE_PRIVATE_SPACE | \
				 _ASCE_ALT_EVENT)
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/*
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 * Page protection definitions.
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 */
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#define PAGE_NONE	__pgprot(_PAGE_PRESENT | _PAGE_INVALID)
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#define PAGE_READ	__pgprot(_PAGE_PRESENT | _PAGE_READ | \
				 _PAGE_INVALID | _PAGE_PROTECT)
#define PAGE_WRITE	__pgprot(_PAGE_PRESENT | _PAGE_READ | _PAGE_WRITE | \
				 _PAGE_INVALID | _PAGE_PROTECT)

#define PAGE_SHARED	__pgprot(_PAGE_PRESENT | _PAGE_READ | _PAGE_WRITE | \
				 _PAGE_YOUNG | _PAGE_DIRTY)
#define PAGE_KERNEL	__pgprot(_PAGE_PRESENT | _PAGE_READ | _PAGE_WRITE | \
				 _PAGE_YOUNG | _PAGE_DIRTY)
#define PAGE_KERNEL_RO	__pgprot(_PAGE_PRESENT | _PAGE_READ | _PAGE_YOUNG | \
				 _PAGE_PROTECT)
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/*
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 * On s390 the page table entry has an invalid bit and a read-only bit.
 * Read permission implies execute permission and write permission
 * implies read permission.
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 */
         /*xwr*/
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#define __P000	PAGE_NONE
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#define __P001	PAGE_READ
#define __P010	PAGE_READ
#define __P011	PAGE_READ
#define __P100	PAGE_READ
#define __P101	PAGE_READ
#define __P110	PAGE_READ
#define __P111	PAGE_READ
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#define __S000	PAGE_NONE
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#define __S001	PAGE_READ
#define __S010	PAGE_WRITE
#define __S011	PAGE_WRITE
#define __S100	PAGE_READ
#define __S101	PAGE_READ
#define __S110	PAGE_WRITE
#define __S111	PAGE_WRITE
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/*
 * Segment entry (large page) protection definitions.
 */
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#define SEGMENT_NONE	__pgprot(_SEGMENT_ENTRY_INVALID | \
				 _SEGMENT_ENTRY_PROTECT)
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#define SEGMENT_READ	__pgprot(_SEGMENT_ENTRY_PROTECT | \
				 _SEGMENT_ENTRY_READ)
#define SEGMENT_WRITE	__pgprot(_SEGMENT_ENTRY_READ | \
				 _SEGMENT_ENTRY_WRITE)
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static inline int mm_has_pgste(struct mm_struct *mm)
{
#ifdef CONFIG_PGSTE
	if (unlikely(mm->context.has_pgste))
		return 1;
#endif
	return 0;
}
483 484 485 486 487 488 489 490 491 492

static inline int mm_use_skey(struct mm_struct *mm)
{
#ifdef CONFIG_PGSTE
	if (mm->context.use_skey)
		return 1;
#endif
	return 0;
}

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/*
 * pgd/pmd/pte query functions
 */
496
#ifndef CONFIG_64BIT
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static inline int pgd_present(pgd_t pgd) { return 1; }
static inline int pgd_none(pgd_t pgd)    { return 0; }
static inline int pgd_bad(pgd_t pgd)     { return 0; }
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static inline int pud_present(pud_t pud) { return 1; }
static inline int pud_none(pud_t pud)	 { return 0; }
504
static inline int pud_large(pud_t pud)	 { return 0; }
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static inline int pud_bad(pud_t pud)	 { return 0; }

507
#else /* CONFIG_64BIT */
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static inline int pgd_present(pgd_t pgd)
{
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	if ((pgd_val(pgd) & _REGION_ENTRY_TYPE_MASK) < _REGION_ENTRY_TYPE_R2)
		return 1;
513 514 515 516 517
	return (pgd_val(pgd) & _REGION_ENTRY_ORIGIN) != 0UL;
}

static inline int pgd_none(pgd_t pgd)
{
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	if ((pgd_val(pgd) & _REGION_ENTRY_TYPE_MASK) < _REGION_ENTRY_TYPE_R2)
		return 0;
520
	return (pgd_val(pgd) & _REGION_ENTRY_INVALID) != 0UL;
521 522 523 524
}

static inline int pgd_bad(pgd_t pgd)
{
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	/*
	 * With dynamic page table levels the pgd can be a region table
	 * entry or a segment table entry. Check for the bit that are
	 * invalid for either table entry.
	 */
530
	unsigned long mask =
531
		~_SEGMENT_ENTRY_ORIGIN & ~_REGION_ENTRY_INVALID &
532 533 534
		~_REGION_ENTRY_TYPE_MASK & ~_REGION_ENTRY_LENGTH;
	return (pgd_val(pgd) & mask) != 0;
}
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static inline int pud_present(pud_t pud)
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{
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	if ((pud_val(pud) & _REGION_ENTRY_TYPE_MASK) < _REGION_ENTRY_TYPE_R3)
		return 1;
540
	return (pud_val(pud) & _REGION_ENTRY_ORIGIN) != 0UL;
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}

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static inline int pud_none(pud_t pud)
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{
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	if ((pud_val(pud) & _REGION_ENTRY_TYPE_MASK) < _REGION_ENTRY_TYPE_R3)
		return 0;
547
	return (pud_val(pud) & _REGION_ENTRY_INVALID) != 0UL;
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}

550 551 552 553 554 555 556
static inline int pud_large(pud_t pud)
{
	if ((pud_val(pud) & _REGION_ENTRY_TYPE_MASK) != _REGION_ENTRY_TYPE_R3)
		return 0;
	return !!(pud_val(pud) & _REGION3_ENTRY_LARGE);
}

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static inline int pud_bad(pud_t pud)
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{
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	/*
	 * With dynamic page table levels the pud can be a region table
	 * entry or a segment table entry. Check for the bit that are
	 * invalid for either table entry.
	 */
564
	unsigned long mask =
565
		~_SEGMENT_ENTRY_ORIGIN & ~_REGION_ENTRY_INVALID &
566 567
		~_REGION_ENTRY_TYPE_MASK & ~_REGION_ENTRY_LENGTH;
	return (pud_val(pud) & mask) != 0;
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}

570
#endif /* CONFIG_64BIT */
571

572
static inline int pmd_present(pmd_t pmd)
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{
574
	return pmd_val(pmd) != _SEGMENT_ENTRY_INVALID;
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}

577
static inline int pmd_none(pmd_t pmd)
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{
579
	return pmd_val(pmd) == _SEGMENT_ENTRY_INVALID;
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}

582 583
static inline int pmd_large(pmd_t pmd)
{
584
	return (pmd_val(pmd) & _SEGMENT_ENTRY_LARGE) != 0;
585 586
}

587
static inline int pmd_pfn(pmd_t pmd)
588
{
589 590 591 592 593 594
	unsigned long origin_mask;

	origin_mask = _SEGMENT_ENTRY_ORIGIN;
	if (pmd_large(pmd))
		origin_mask = _SEGMENT_ENTRY_ORIGIN_LARGE;
	return (pmd_val(pmd) & origin_mask) >> PAGE_SHIFT;
595 596
}

597
static inline int pmd_bad(pmd_t pmd)
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{
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	if (pmd_large(pmd))
		return (pmd_val(pmd) & ~_SEGMENT_ENTRY_BITS_LARGE) != 0;
	return (pmd_val(pmd) & ~_SEGMENT_ENTRY_BITS) != 0;
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}

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#define __HAVE_ARCH_PMDP_SPLITTING_FLUSH
extern void pmdp_splitting_flush(struct vm_area_struct *vma,
				 unsigned long addr, pmd_t *pmdp);

608 609 610 611 612 613 614 615 616 617 618 619
#define  __HAVE_ARCH_PMDP_SET_ACCESS_FLAGS
extern int pmdp_set_access_flags(struct vm_area_struct *vma,
				 unsigned long address, pmd_t *pmdp,
				 pmd_t entry, int dirty);

#define __HAVE_ARCH_PMDP_CLEAR_YOUNG_FLUSH
extern int pmdp_clear_flush_young(struct vm_area_struct *vma,
				  unsigned long address, pmd_t *pmdp);

#define __HAVE_ARCH_PMD_WRITE
static inline int pmd_write(pmd_t pmd)
{
620 621 622 623 624 625 626 627 628
	return (pmd_val(pmd) & _SEGMENT_ENTRY_WRITE) != 0;
}

static inline int pmd_dirty(pmd_t pmd)
{
	int dirty = 1;
	if (pmd_large(pmd))
		dirty = (pmd_val(pmd) & _SEGMENT_ENTRY_DIRTY) != 0;
	return dirty;
629 630 631 632
}

static inline int pmd_young(pmd_t pmd)
{
633 634
	int young = 1;
	if (pmd_large(pmd))
635 636
		young = (pmd_val(pmd) & _SEGMENT_ENTRY_YOUNG) != 0;
	return young;
637 638
}

639
static inline int pte_present(pte_t pte)
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{
641 642
	/* Bit pattern: (pte & 0x001) == 0x001 */
	return (pte_val(pte) & _PAGE_PRESENT) != 0;
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}

645
static inline int pte_none(pte_t pte)
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{
647 648
	/* Bit pattern: pte == 0x400 */
	return pte_val(pte) == _PAGE_INVALID;
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}

651 652 653 654 655 656 657 658
static inline int pte_swap(pte_t pte)
{
	/* Bit pattern: (pte & 0x603) == 0x402 */
	return (pte_val(pte) & (_PAGE_INVALID | _PAGE_PROTECT |
				_PAGE_TYPE | _PAGE_PRESENT))
		== (_PAGE_INVALID | _PAGE_TYPE);
}

659
static inline int pte_file(pte_t pte)
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{
661 662 663
	/* Bit pattern: (pte & 0x601) == 0x600 */
	return (pte_val(pte) & (_PAGE_INVALID | _PAGE_PROTECT | _PAGE_PRESENT))
		== (_PAGE_INVALID | _PAGE_PROTECT);
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}

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static inline int pte_special(pte_t pte)
{
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	return (pte_val(pte) & _PAGE_SPECIAL);
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}

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#define __HAVE_ARCH_PTE_SAME
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static inline int pte_same(pte_t a, pte_t b)
{
	return pte_val(a) == pte_val(b);
}
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677
static inline pgste_t pgste_get_lock(pte_t *ptep)
678
{
679
	unsigned long new = 0;
680
#ifdef CONFIG_PGSTE
681 682
	unsigned long old;

683
	preempt_disable();
684 685 686
	asm(
		"	lg	%0,%2\n"
		"0:	lgr	%1,%0\n"
687 688
		"	nihh	%0,0xff7f\n"	/* clear PCL bit in old */
		"	oihh	%1,0x0080\n"	/* set PCL bit in new */
689 690 691
		"	csg	%0,%1,%2\n"
		"	jl	0b\n"
		: "=&d" (old), "=&d" (new), "=Q" (ptep[PTRS_PER_PTE])
692
		: "Q" (ptep[PTRS_PER_PTE]) : "cc", "memory");
693
#endif
694
	return __pgste(new);
695 696
}

697
static inline void pgste_set_unlock(pte_t *ptep, pgste_t pgste)
698 699
{
#ifdef CONFIG_PGSTE
700
	asm(
701
		"	nihh	%1,0xff7f\n"	/* clear PCL bit */
702 703
		"	stg	%1,%0\n"
		: "=Q" (ptep[PTRS_PER_PTE])
704 705
		: "d" (pgste_val(pgste)), "Q" (ptep[PTRS_PER_PTE])
		: "cc", "memory");
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	preempt_enable();
#endif
}

710 711 712 713 714 715 716 717 718
static inline pgste_t pgste_get(pte_t *ptep)
{
	unsigned long pgste = 0;
#ifdef CONFIG_PGSTE
	pgste = *(unsigned long *)(ptep + PTRS_PER_PTE);
#endif
	return __pgste(pgste);
}

719 720 721 722 723 724 725
static inline void pgste_set(pte_t *ptep, pgste_t pgste)
{
#ifdef CONFIG_PGSTE
	*(pgste_t *)(ptep + PTRS_PER_PTE) = pgste;
#endif
}

726 727
static inline pgste_t pgste_update_all(pte_t *ptep, pgste_t pgste,
				       struct mm_struct *mm)
728 729
{
#ifdef CONFIG_PGSTE
730
	unsigned long address, bits, skey;
731

732
	if (!mm_use_skey(mm) || pte_val(*ptep) & _PAGE_INVALID)
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		return pgste;
734
	address = pte_val(*ptep) & PAGE_MASK;
735
	skey = (unsigned long) page_get_storage_key(address);
736 737
	bits = skey & (_PAGE_CHANGED | _PAGE_REFERENCED);
	/* Transfer page changed & referenced bit to guest bits in pgste */
738
	pgste_val(pgste) |= bits << 48;		/* GR bit & GC bit */
739
	/* Copy page access key and fetch protection bit to pgste */
740 741
	pgste_val(pgste) &= ~(PGSTE_ACC_BITS | PGSTE_FP_BIT);
	pgste_val(pgste) |= (skey & (_PAGE_ACC_BITS | _PAGE_FP_BIT)) << 56;
742 743 744 745 746
#endif
	return pgste;

}

747 748
static inline void pgste_set_key(pte_t *ptep, pgste_t pgste, pte_t entry,
				 struct mm_struct *mm)
749 750
{
#ifdef CONFIG_PGSTE
751
	unsigned long address;
752
	unsigned long nkey;
753

754
	if (!mm_use_skey(mm) || pte_val(entry) & _PAGE_INVALID)
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		return;
756
	VM_BUG_ON(!(pte_val(*ptep) & _PAGE_INVALID));
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	address = pte_val(entry) & PAGE_MASK;
758 759 760 761 762
	/*
	 * Set page access key and fetch protection bit from pgste.
	 * The guest C/R information is still in the PGSTE, set real
	 * key C/R to 0.
	 */
763
	nkey = (pgste_val(pgste) & (PGSTE_ACC_BITS | PGSTE_FP_BIT)) >> 56;
764
	nkey |= (pgste_val(pgste) & (PGSTE_GR_BIT | PGSTE_GC_BIT)) >> 48;
765
	page_set_storage_key(address, nkey, 0);
766 767 768
#endif
}

769
static inline pgste_t pgste_set_pte(pte_t *ptep, pgste_t pgste, pte_t entry)
770
{
771 772 773 774 775 776 777 778 779 780 781 782 783 784
	if ((pte_val(entry) & _PAGE_PRESENT) &&
	    (pte_val(entry) & _PAGE_WRITE) &&
	    !(pte_val(entry) & _PAGE_INVALID)) {
		if (!MACHINE_HAS_ESOP) {
			/*
			 * Without enhanced suppression-on-protection force
			 * the dirty bit on for all writable ptes.
			 */
			pte_val(entry) |= _PAGE_DIRTY;
			pte_val(entry) &= ~_PAGE_PROTECT;
		}
		if (!(pte_val(entry) & _PAGE_PROTECT))
			/* This pte allows write access, set user-dirty */
			pgste_val(pgste) |= PGSTE_UC_BIT;
785 786
	}
	*ptep = entry;
787
	return pgste;
788 789
}

790 791 792 793
/**
 * struct gmap_struct - guest address space
 * @mm: pointer to the parent mm_struct
 * @table: pointer to the page directory
794
 * @asce: address space control element for gmap page table
795
 * @crst_list: list of all crst tables used in the guest address space
796
 * @pfault_enabled: defines if pfaults are applicable for the guest
797 798 799 800 801
 */
struct gmap {
	struct list_head list;
	struct mm_struct *mm;
	unsigned long *table;
802
	unsigned long asce;
803
	void *private;
804
	struct list_head crst_list;
805
	bool pfault_enabled;
806 807 808 809
};

/**
 * struct gmap_rmap - reverse mapping for segment table entries
810
 * @gmap: pointer to the gmap_struct
811
 * @entry: pointer to a segment table entry
812
 * @vmaddr: virtual address in the guest address space
813 814 815
 */
struct gmap_rmap {
	struct list_head list;
816
	struct gmap *gmap;
817
	unsigned long *entry;
818
	unsigned long vmaddr;
819 820 821 822 823
};

/**
 * struct gmap_pgtable - gmap information attached to a page table
 * @vmaddr: address of the 1MB segment in the process virtual memory
824
 * @mapper: list of segment table entries mapping a page table
825 826 827 828 829 830
 */
struct gmap_pgtable {
	unsigned long vmaddr;
	struct list_head mapper;
};

831 832 833 834 835 836 837 838 839
/**
 * struct gmap_notifier - notify function block for page invalidation
 * @notifier_call: address of callback function
 */
struct gmap_notifier {
	struct list_head list;
	void (*notifier_call)(struct gmap *gmap, unsigned long address);
};

840 841 842 843 844
struct gmap *gmap_alloc(struct mm_struct *mm);
void gmap_free(struct gmap *gmap);
void gmap_enable(struct gmap *gmap);
void gmap_disable(struct gmap *gmap);
int gmap_map_segment(struct gmap *gmap, unsigned long from,
845
		     unsigned long to, unsigned long len);
846
int gmap_unmap_segment(struct gmap *gmap, unsigned long to, unsigned long len);
847 848
unsigned long __gmap_translate(unsigned long address, struct gmap *);
unsigned long gmap_translate(unsigned long address, struct gmap *);
849
unsigned long __gmap_fault(unsigned long address, struct gmap *);
850
unsigned long gmap_fault(unsigned long address, struct gmap *);
851
void gmap_discard(unsigned long from, unsigned long to, struct gmap *);
852
void __gmap_zap(unsigned long address, struct gmap *);
853 854
bool gmap_test_and_clear_dirty(unsigned long address, struct gmap *);

855

856 857 858
void gmap_register_ipte_notifier(struct gmap_notifier *);
void gmap_unregister_ipte_notifier(struct gmap_notifier *);
int gmap_ipte_notify(struct gmap *, unsigned long start, unsigned long len);
859
void gmap_do_ipte_notify(struct mm_struct *, pte_t *);
860 861

static inline pgste_t pgste_ipte_notify(struct mm_struct *mm,
862
					unsigned long addr,
863 864 865
					pte_t *ptep, pgste_t pgste)
{
#ifdef CONFIG_PGSTE
866 867
	if (pgste_val(pgste) & PGSTE_IN_BIT) {
		pgste_val(pgste) &= ~PGSTE_IN_BIT;
868
		gmap_do_ipte_notify(mm, ptep);
869 870 871 872 873
	}
#endif
	return pgste;
}

874 875 876 877 878 879 880 881 882 883 884 885
/*
 * Certain architectures need to do special things when PTEs
 * within a page table are directly modified.  Thus, the following
 * hook is made available.
 */
static inline void set_pte_at(struct mm_struct *mm, unsigned long addr,
			      pte_t *ptep, pte_t entry)
{
	pgste_t pgste;

	if (mm_has_pgste(mm)) {
		pgste = pgste_get_lock(ptep);
886
		pgste_val(pgste) &= ~_PGSTE_GPS_ZERO;
887
		pgste_set_key(ptep, pgste, entry, mm);
888
		pgste = pgste_set_pte(ptep, pgste, entry);
889
		pgste_set_unlock(ptep, pgste);
890 891 892
	} else {
		if (!(pte_val(entry) & _PAGE_INVALID) && MACHINE_HAS_EDAT1)
			pte_val(entry) |= _PAGE_CO;
893
		*ptep = entry;
894
	}
895 896
}

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/*
 * query functions pte_write/pte_dirty/pte_young only work if
 * pte_present() is true. Undefined behaviour if not..
 */
901
static inline int pte_write(pte_t pte)
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{
903
	return (pte_val(pte) & _PAGE_WRITE) != 0;
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}

906
static inline int pte_dirty(pte_t pte)
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907
{
908
	return (pte_val(pte) & _PAGE_DIRTY) != 0;
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}

911
static inline int pte_young(pte_t pte)
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{
913
	return (pte_val(pte) & _PAGE_YOUNG) != 0;
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}

916 917 918 919 920 921
#define __HAVE_ARCH_PTE_UNUSED
static inline int pte_unused(pte_t pte)
{
	return pte_val(pte) & _PAGE_UNUSED;
}

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/*
 * pgd/pmd/pte modification functions
 */

926
static inline void pgd_clear(pgd_t *pgd)
927
{
928
#ifdef CONFIG_64BIT
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929 930
	if ((pgd_val(*pgd) & _REGION_ENTRY_TYPE_MASK) == _REGION_ENTRY_TYPE_R2)
		pgd_val(*pgd) = _REGION2_ENTRY_EMPTY;
931
#endif
932 933
}

934
static inline void pud_clear(pud_t *pud)
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935
{
936
#ifdef CONFIG_64BIT
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	if ((pud_val(*pud) & _REGION_ENTRY_TYPE_MASK) == _REGION_ENTRY_TYPE_R3)
		pud_val(*pud) = _REGION3_ENTRY_EMPTY;
939
#endif
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}

942
static inline void pmd_clear(pmd_t *pmdp)
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943
{
944
	pmd_val(*pmdp) = _SEGMENT_ENTRY_INVALID;
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}

947
static inline void pte_clear(struct mm_struct *mm, unsigned long addr, pte_t *ptep)
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948
{
949
	pte_val(*ptep) = _PAGE_INVALID;
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}

/*
 * The following pte modification functions only work if
 * pte_present() is true. Undefined behaviour if not..
 */
956
static inline pte_t pte_modify(pte_t pte, pgprot_t newprot)
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{
958
	pte_val(pte) &= _PAGE_CHG_MASK;
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	pte_val(pte) |= pgprot_val(newprot);
960 961 962 963 964 965 966 967 968 969
	/*
	 * newprot for PAGE_NONE, PAGE_READ and PAGE_WRITE has the
	 * invalid bit set, clear it again for readable, young pages
	 */
	if ((pte_val(pte) & _PAGE_YOUNG) && (pte_val(pte) & _PAGE_READ))
		pte_val(pte) &= ~_PAGE_INVALID;
	/*
	 * newprot for PAGE_READ and PAGE_WRITE has the page protection
	 * bit set, clear it again for writable, dirty pages
	 */
970 971
	if ((pte_val(pte) & _PAGE_DIRTY) && (pte_val(pte) & _PAGE_WRITE))
		pte_val(pte) &= ~_PAGE_PROTECT;
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	return pte;
}

975
static inline pte_t pte_wrprotect(pte_t pte)
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976
{
977 978
	pte_val(pte) &= ~_PAGE_WRITE;
	pte_val(pte) |= _PAGE_PROTECT;
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	return pte;
}

982
static inline pte_t pte_mkwrite(pte_t pte)
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983
{
984 985 986
	pte_val(pte) |= _PAGE_WRITE;
	if (pte_val(pte) & _PAGE_DIRTY)
		pte_val(pte) &= ~_PAGE_PROTECT;
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	return pte;
}

990
static inline pte_t pte_mkclean(pte_t pte)
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991
{
992 993
	pte_val(pte) &= ~_PAGE_DIRTY;
	pte_val(pte) |= _PAGE_PROTECT;
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	return pte;
}

997
static inline pte_t pte_mkdirty(pte_t pte)
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{
999 1000 1001
	pte_val(pte) |= _PAGE_DIRTY;
	if (pte_val(pte) & _PAGE_WRITE)
		pte_val(pte) &= ~_PAGE_PROTECT;
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	return pte;
}

1005
static inline pte_t pte_mkold(pte_t pte)
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{
1007
	pte_val(pte) &= ~_PAGE_YOUNG;
1008
	pte_val(pte) |= _PAGE_INVALID;
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	return pte;
}

1012
static inline pte_t pte_mkyoung(pte_t pte)
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{
1014 1015 1016
	pte_val(pte) |= _PAGE_YOUNG;
	if (pte_val(pte) & _PAGE_READ)
		pte_val(pte) &= ~_PAGE_INVALID;
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	return pte;
}

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1020 1021
static inline pte_t pte_mkspecial(pte_t pte)
{
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1022
	pte_val(pte) |= _PAGE_SPECIAL;
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1023 1024 1025
	return pte;
}

1026 1027 1028
#ifdef CONFIG_HUGETLB_PAGE
static inline pte_t pte_mkhuge(pte_t pte)
{
1029
	pte_val(pte) |= _PAGE_LARGE;
1030 1031 1032 1033
	return pte;
}
#endif

1034
static inline void __ptep_ipte(unsigned long address, pte_t *ptep)
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{
1036 1037
	unsigned long pto = (unsigned long) ptep;

1038
#ifndef CONFIG_64BIT
1039 1040
	/* pto in ESA mode must point to the start of the segment table */
	pto &= 0x7ffffc00;
1041
#endif
1042 1043 1044 1045 1046 1047
	/* Invalidation + global TLB flush for the pte */
	asm volatile(
		"	ipte	%2,%3"
		: "=m" (*ptep) : "m" (*ptep), "a" (pto), "a" (address));
}

1048 1049 1050 1051 1052 1053 1054 1055 1056 1057 1058 1059 1060 1061
static inline void __ptep_ipte_local(unsigned long address, pte_t *ptep)
{
	unsigned long pto = (unsigned long) ptep;

#ifndef CONFIG_64BIT
	/* pto in ESA mode must point to the start of the segment table */
	pto &= 0x7ffffc00;
#endif
	/* Invalidation + local TLB flush for the pte */
	asm volatile(
		"	.insn rrf,0xb2210000,%2,%3,0,1"
		: "=m" (*ptep) : "m" (*ptep), "a" (pto), "a" (address));
}

1062 1063 1064
static inline void ptep_flush_direct(struct mm_struct *mm,
				     unsigned long address, pte_t *ptep)
{
1065 1066
	int active, count;

1067 1068
	if (pte_val(*ptep) & _PAGE_INVALID)
		return;
1069 1070 1071 1072 1073 1074 1075 1076
	active = (mm == current->active_mm) ? 1 : 0;
	count = atomic_add_return(0x10000, &mm->context.attach_count);
	if (MACHINE_HAS_TLB_LC && (count & 0xffff) <= active &&
	    cpumask_equal(mm_cpumask(mm), cpumask_of(smp_processor_id())))
		__ptep_ipte_local(address, ptep);
	else
		__ptep_ipte(address, ptep);
	atomic_sub(0x10000, &mm->context.attach_count);
1077 1078
}

1079 1080 1081
static inline void ptep_flush_lazy(struct mm_struct *mm,
				   unsigned long address, pte_t *ptep)
{
1082
	int active, count;
1083

1084 1085 1086 1087 1088 1089
	if (pte_val(*ptep) & _PAGE_INVALID)
		return;
	active = (mm == current->active_mm) ? 1 : 0;
	count = atomic_add_return(0x10000, &mm->context.attach_count);
	if ((count & 0xffff) <= active) {
		pte_val(*ptep) |= _PAGE_INVALID;
1090
		mm->context.flush_mm = 1;
1091 1092 1093
	} else
		__ptep_ipte(address, ptep);
	atomic_sub(0x10000, &mm->context.attach_count);
1094 1095
}

1096 1097 1098 1099 1100 1101 1102 1103 1104 1105 1106 1107 1108 1109 1110 1111 1112 1113
/*
 * Get (and clear) the user dirty bit for a pte.
 */
static inline int ptep_test_and_clear_user_dirty(struct mm_struct *mm,
						 unsigned long addr,
						 pte_t *ptep)
{
	pgste_t pgste;
	pte_t pte;
	int dirty;

	if (!mm_has_pgste(mm))
		return 0;
	pgste = pgste_get_lock(ptep);
	dirty = !!(pgste_val(pgste) & PGSTE_UC_BIT);
	pgste_val(pgste) &= ~PGSTE_UC_BIT;
	pte = *ptep;
	if (dirty && (pte_val(pte) & _PAGE_PRESENT)) {
1114
		pgste = pgste_ipte_notify(mm, addr, ptep, pgste);
1115 1116 1117 1118 1119 1120 1121 1122 1123 1124 1125
		__ptep_ipte(addr, ptep);
		if (MACHINE_HAS_ESOP || !(pte_val(pte) & _PAGE_WRITE))
			pte_val(pte) |= _PAGE_PROTECT;
		else
			pte_val(pte) |= _PAGE_INVALID;
		*ptep = pte;
	}
	pgste_set_unlock(ptep, pgste);
	return dirty;
}

1126 1127 1128 1129 1130 1131 1132 1133 1134 1135
#define __HAVE_ARCH_PTEP_TEST_AND_CLEAR_YOUNG
static inline int ptep_test_and_clear_young(struct vm_area_struct *vma,
					    unsigned long addr, pte_t *ptep)
{
	pgste_t pgste;
	pte_t pte;
	int young;

	if (mm_has_pgste(vma->vm_mm)) {
		pgste = pgste_get_lock(ptep);
1136
		pgste = pgste_ipte_notify(vma->vm_mm, addr, ptep, pgste);
1137 1138 1139
	}

	pte = *ptep;
1140
	ptep_flush_direct(vma->vm_mm, addr, ptep);
1141 1142 1143 1144
	young = pte_young(pte);
	pte = pte_mkold(pte);

	if (mm_has_pgste(vma->vm_mm)) {
1145
		pgste = pgste_set_pte(ptep, pgste, pte);
1146 1147 1148 1149 1150 1151 1152 1153 1154 1155 1156 1157 1158 1159
		pgste_set_unlock(ptep, pgste);
	} else
		*ptep = pte;

	return young;
}

#define __HAVE_ARCH_PTEP_CLEAR_YOUNG_FLUSH
static inline int ptep_clear_flush_young(struct vm_area_struct *vma,
					 unsigned long address, pte_t *ptep)
{
	return ptep_test_and_clear_young(vma, address, ptep);
}

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/*
 * This is hard to understand. ptep_get_and_clear and ptep_clear_flush
 * both clear the TLB for the unmapped pte. The reason is that
 * ptep_get_and_clear is used in common code (e.g. change_pte_range)
 * to modify an active pte. The sequence is
 *   1) ptep_get_and_clear
 *   2) set_pte_at
 *   3) flush_tlb_range
 * On s390 the tlb needs to get flushed with the modification of the pte
 * if the pte is active. The only way how this can be implemented is to
 * have ptep_get_and_clear do the tlb flush. In exchange flush_tlb_range
 * is a nop.
 */
#define __HAVE_ARCH_PTEP_GET_AND_CLEAR
1174 1175 1176 1177 1178 1179
static inline pte_t ptep_get_and_clear(struct mm_struct *mm,
				       unsigned long address, pte_t *ptep)
{
	pgste_t pgste;
	pte_t pte;

1180
	if (mm_has_pgste(mm)) {
1181
		pgste = pgste_get_lock(ptep);
1182
		pgste = pgste_ipte_notify(mm, address, ptep, pgste);
1183
	}
1184 1185

	pte = *ptep;
1186
	ptep_flush_lazy(mm, address, ptep);
1187
	pte_val(*ptep) = _PAGE_INVALID;
1188 1189

	if (mm_has_pgste(mm)) {
1190
		pgste = pgste_update_all(&pte, pgste, mm);
1191 1192 1193 1194 1195 1196 1197 1198 1199 1200
		pgste_set_unlock(ptep, pgste);
	}
	return pte;
}

#define __HAVE_ARCH_PTEP_MODIFY_PROT_TRANSACTION
static inline pte_t ptep_modify_prot_start(struct mm_struct *mm,
					   unsigned long address,
					   pte_t *ptep)
{
1201
	pgste_t pgste;
1202 1203
	pte_t pte;

1204 1205
	if (mm_has_pgste(mm)) {
		pgste = pgste_get_lock(ptep);
1206
		pgste_ipte_notify(mm, address, ptep, pgste);
1207
	}
1208 1209

	pte = *ptep;
1210
	ptep_flush_lazy(mm, address, ptep);
1211

1212
	if (mm_has_pgste(mm)) {
1213
		pgste = pgste_update_all(&pte, pgste, mm);
1214 1215
		pgste_set(ptep, pgste);
	}
1216 1217 1218 1219 1220 1221 1222
	return pte;
}

static inline void ptep_modify_prot_commit(struct mm_struct *mm,
					   unsigned long address,
					   pte_t *ptep, pte_t pte)
{
1223 1224
	pgste_t pgste;

1225
	if (mm_has_pgste(mm)) {
1226
		pgste = pgste_get(ptep);
1227
		pgste_set_key(ptep, pgste, pte, mm);
1228
		pgste = pgste_set_pte(ptep, pgste, pte);
1229
		pgste_set_unlock(ptep, pgste);
1230 1231
	} else
		*ptep = pte;
1232
}
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1233 1234

#define __HAVE_ARCH_PTEP_CLEAR_FLUSH
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1235 1236 1237
static inline pte_t ptep_clear_flush(struct vm_area_struct *vma,
				     unsigned long address, pte_t *ptep)
{
1238 1239 1240
	pgste_t pgste;
	pte_t pte;

1241
	if (mm_has_pgste(vma->vm_mm)) {
1242
		pgste = pgste_get_lock(ptep);
1243
		pgste = pgste_ipte_notify(vma->vm_mm, address, ptep, pgste);
1244
	}
1245 1246

	pte = *ptep;
1247
	ptep_flush_direct(vma->vm_mm, address, ptep);
1248
	pte_val(*ptep) = _PAGE_INVALID;
1249 1250

	if (mm_has_pgste(vma->vm_mm)) {
1251 1252 1253
		if ((pgste_val(pgste) & _PGSTE_GPS_USAGE_MASK) ==
		    _PGSTE_GPS_USAGE_UNUSED)
			pte_val(pte) |= _PAGE_UNUSED;
1254
		pgste = pgste_update_all(&pte, pgste, vma->vm_mm);
1255 1256
		pgste_set_unlock(ptep, pgste);
	}
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1257 1258 1259
	return pte;
}

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/*
 * The batched pte unmap code uses ptep_get_and_clear_full to clear the
 * ptes. Here an optimization is possible. tlb_gather_mmu flushes all
 * tlbs of an mm if it can guarantee that the ptes of the mm_struct
 * cannot be accessed while the batched unmap is running. In this case
 * full==1 and a simple pte_clear is enough. See tlb.h.
 */
#define __HAVE_ARCH_PTEP_GET_AND_CLEAR_FULL
static inline pte_t ptep_get_and_clear_full(struct mm_struct *mm,
1269
					    unsigned long address,
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					    pte_t *ptep, int full)
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{
1272 1273 1274
	pgste_t pgste;
	pte_t pte;

1275
	if (!full && mm_has_pgste(mm)) {
1276
		pgste = pgste_get_lock(ptep);
1277
		pgste = pgste_ipte_notify(mm, address, ptep, pgste);
1278
	}
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1280 1281
	pte = *ptep;
	if (!full)
1282
		ptep_flush_lazy(mm, address, ptep);
1283
	pte_val(*ptep) = _PAGE_INVALID;
1284

1285
	if (!full && mm_has_pgste(mm)) {
1286
		pgste = pgste_update_all(&pte, pgste, mm);
1287 1288
		pgste_set_unlock(ptep, pgste);
	}
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	return pte;
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}

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#define __HAVE_ARCH_PTEP_SET_WRPROTECT
1293 1294 1295 1296 1297 1298 1299
static inline pte_t ptep_set_wrprotect(struct mm_struct *mm,
				       unsigned long address, pte_t *ptep)
{
	pgste_t pgste;
	pte_t pte = *ptep;

	if (pte_write(pte)) {
1300
		if (mm_has_pgste(mm)) {
1301
			pgste = pgste_get_lock(ptep);
1302
			pgste = pgste_ipte_notify(mm, address, ptep, pgste);
1303
		}
1304

1305
		ptep_flush_lazy(mm, address, ptep);
1306
		pte = pte_wrprotect(pte);
1307

1308
		if (mm_has_pgste(mm)) {
1309
			pgste = pgste_set_pte(ptep, pgste, pte);
1310
			pgste_set_unlock(ptep, pgste);
1311 1312
		} else
			*ptep = pte;
1313 1314 1315
	}
	return pte;
}
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#define __HAVE_ARCH_PTEP_SET_ACCESS_FLAGS
1318 1319 1320 1321 1322 1323 1324 1325
static inline int ptep_set_access_flags(struct vm_area_struct *vma,
					unsigned long address, pte_t *ptep,
					pte_t entry, int dirty)
{
	pgste_t pgste;

	if (pte_same(*ptep, entry))
		return 0;
1326
	if (mm_has_pgste(vma->vm_mm)) {
1327
		pgste = pgste_get_lock(ptep);
1328
		pgste = pgste_ipte_notify(vma->vm_mm, address, ptep, pgste);
1329
	}
1330

1331
	ptep_flush_direct(vma->vm_mm, address, ptep);
1332

1333
	if (mm_has_pgste(vma->vm_mm)) {
1334
		pgste = pgste_set_pte(ptep, pgste, entry);
1335
		pgste_set_unlock(ptep, pgste);
1336 1337
	} else
		*ptep = entry;
1338 1339
	return 1;
}
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/*
 * Conversion functions: convert a page and protection to a page entry,
 * and a page entry and page directory to the page they refer to.
 */
static inline pte_t mk_pte_phys(unsigned long physpage, pgprot_t pgprot)
{
	pte_t __pte;
	pte_val(__pte) = physpage + pgprot_val(pgprot);
1349
	return pte_mkyoung(__pte);
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}

1352 1353
static inline pte_t mk_pte(struct page *page, pgprot_t pgprot)
{
1354
	unsigned long physpage = page_to_phys(page);
1355
	pte_t __pte = mk_pte_phys(physpage, pgprot);
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1357 1358
	if (pte_write(__pte) && PageDirty(page))
		__pte = pte_mkdirty(__pte);
1359
	return __pte;
1360 1361
}

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#define pgd_index(address) (((address) >> PGDIR_SHIFT) & (PTRS_PER_PGD-1))
#define pud_index(address) (((address) >> PUD_SHIFT) & (PTRS_PER_PUD-1))
#define pmd_index(address) (((address) >> PMD_SHIFT) & (PTRS_PER_PMD-1))
#define pte_index(address) (((address) >> PAGE_SHIFT) & (PTRS_PER_PTE-1))
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#define pgd_offset(mm, address) ((mm)->pgd + pgd_index(address))
#define pgd_offset_k(address) pgd_offset(&init_mm, address)
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1369

1370
#ifndef CONFIG_64BIT
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#define pmd_deref(pmd) (pmd_val(pmd) & _SEGMENT_ENTRY_ORIGIN)
#define pud_deref(pmd) ({ BUG(); 0UL; })
#define pgd_deref(pmd) ({ BUG(); 0UL; })
1375

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#define pud_offset(pgd, address) ((pud_t *) pgd)
#define pmd_offset(pud, address) ((pmd_t *) pud + pmd_index(address))
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1379
#else /* CONFIG_64BIT */
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#define pmd_deref(pmd) (pmd_val(pmd) & _SEGMENT_ENTRY_ORIGIN)
#define pud_deref(pud) (pud_val(pud) & _REGION_ENTRY_ORIGIN)
1383
#define pgd_deref(pgd) (pgd_val(pgd) & _REGION_ENTRY_ORIGIN)
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1385 1386
static inline pud_t *pud_offset(pgd_t *pgd, unsigned long address)
{
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	pud_t *pud = (pud_t *) pgd;
	if ((pgd_val(*pgd) & _REGION_ENTRY_TYPE_MASK) == _REGION_ENTRY_TYPE_R2)
		pud = (pud_t *) pgd_deref(*pgd);
1390 1391
	return pud  + pud_index(address);
}
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static inline pmd_t *pmd_offset(pud_t *pud, unsigned long address)
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{
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	pmd_t *pmd = (pmd_t *) pud;
	if ((pud_val(*pud) & _REGION_ENTRY_TYPE_MASK) == _REGION_ENTRY_TYPE_R3)
		pmd = (pmd_t *) pud_deref(*pud);
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	return pmd + pmd_index(address);
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1399 1400
}

1401
#endif /* CONFIG_64BIT */
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#define pfn_pte(pfn,pgprot) mk_pte_phys(__pa((pfn) << PAGE_SHIFT),(pgprot))
#define pte_pfn(x) (pte_val(x) >> PAGE_SHIFT)
#define pte_page(x) pfn_to_page(pte_pfn(x))
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1407
#define pmd_page(pmd) pfn_to_page(pmd_pfn(pmd))
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/* Find an entry in the lowest level page table.. */
#define pte_offset(pmd, addr) ((pte_t *) pmd_deref(*(pmd)) + pte_index(addr))
#define pte_offset_kernel(pmd, address) pte_offset(pmd,address)
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#define pte_offset_map(pmd, address) pte_offset_kernel(pmd, address)
#define pte_unmap(pte) do { } while (0)

1415
#if defined(CONFIG_TRANSPARENT_HUGEPAGE) || defined(CONFIG_HUGETLB_PAGE)
1416 1417
static inline unsigned long massage_pgprot_pmd(pgprot_t pgprot)
{
1418
	/*
1419
	 * pgprot is PAGE_NONE, PAGE_READ, or PAGE_WRITE (see __Pxxx / __Sxxx)
1420 1421 1422 1423
	 * Convert to segment table entry format.
	 */
	if (pgprot_val(pgprot) == pgprot_val(PAGE_NONE))
		return pgprot_val(SEGMENT_NONE);
1424 1425 1426
	if (pgprot_val(pgprot) == pgprot_val(PAGE_READ))
		return pgprot_val(SEGMENT_READ);
	return pgprot_val(SEGMENT_WRITE);
1427 1428
}

1429
static inline pmd_t pmd_wrprotect(pmd_t pmd)
1430
{
1431 1432 1433 1434 1435 1436 1437 1438 1439 1440 1441 1442 1443 1444 1445 1446 1447 1448
	pmd_val(pmd) &= ~_SEGMENT_ENTRY_WRITE;
	pmd_val(pmd) |= _SEGMENT_ENTRY_PROTECT;
	return pmd;
}

static inline pmd_t pmd_mkwrite(pmd_t pmd)
{
	pmd_val(pmd) |= _SEGMENT_ENTRY_WRITE;
	if (pmd_large(pmd) && !(pmd_val(pmd) & _SEGMENT_ENTRY_DIRTY))
		return pmd;
	pmd_val(pmd) &= ~_SEGMENT_ENTRY_PROTECT;
	return pmd;
}

static inline pmd_t pmd_mkclean(pmd_t pmd)
{
	if (pmd_large(pmd)) {
		pmd_val(pmd) &= ~_SEGMENT_ENTRY_DIRTY;
1449
		pmd_val(pmd) |= _SEGMENT_ENTRY_PROTECT;
1450 1451 1452 1453 1454 1455 1456 1457 1458 1459 1460 1461 1462 1463 1464 1465 1466
	}
	return pmd;
}

static inline pmd_t pmd_mkdirty(pmd_t pmd)
{
	if (pmd_large(pmd)) {
		pmd_val(pmd) |= _SEGMENT_ENTRY_DIRTY;
		if (pmd_val(pmd) & _SEGMENT_ENTRY_WRITE)
			pmd_val(pmd) &= ~_SEGMENT_ENTRY_PROTECT;
	}
	return pmd;
}

static inline pmd_t pmd_mkyoung(pmd_t pmd)
{
	if (pmd_large(pmd)) {
1467
		pmd_val(pmd) |= _SEGMENT_ENTRY_YOUNG;
1468 1469
		if (pmd_val(pmd) & _SEGMENT_ENTRY_READ)
			pmd_val(pmd) &= ~_SEGMENT_ENTRY_INVALID;
1470 1471 1472 1473 1474 1475
	}
	return pmd;
}

static inline pmd_t pmd_mkold(pmd_t pmd)
{
1476
	if (pmd_large(pmd)) {
1477 1478 1479 1480 1481 1482
		pmd_val(pmd) &= ~_SEGMENT_ENTRY_YOUNG;
		pmd_val(pmd) |= _SEGMENT_ENTRY_INVALID;
	}
	return pmd;
}

1483 1484
static inline pmd_t pmd_modify(pmd_t pmd, pgprot_t newprot)
{
1485 1486 1487 1488 1489 1490 1491 1492 1493 1494 1495 1496
	if (pmd_large(pmd)) {
		pmd_val(pmd) &= _SEGMENT_ENTRY_ORIGIN_LARGE |
			_SEGMENT_ENTRY_DIRTY | _SEGMENT_ENTRY_YOUNG |
			_SEGMENT_ENTRY_LARGE | _SEGMENT_ENTRY_SPLIT;
		pmd_val(pmd) |= massage_pgprot_pmd(newprot);
		if (!(pmd_val(pmd) & _SEGMENT_ENTRY_DIRTY))
			pmd_val(pmd) |= _SEGMENT_ENTRY_PROTECT;
		if (!(pmd_val(pmd) & _SEGMENT_ENTRY_YOUNG))
			pmd_val(pmd) |= _SEGMENT_ENTRY_INVALID;
		return pmd;
	}
	pmd_val(pmd) &= _SEGMENT_ENTRY_ORIGIN;
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	pmd_val(pmd) |= massage_pgprot_pmd(newprot);
	return pmd;
}

1501
static inline pmd_t mk_pmd_phys(unsigned long physpage, pgprot_t pgprot)
1502
{
1503 1504
	pmd_t __pmd;
	pmd_val(__pmd) = physpage + massage_pgprot_pmd(pgprot);
1505
	return __pmd;
1506 1507
}

1508 1509
#endif /* CONFIG_TRANSPARENT_HUGEPAGE || CONFIG_HUGETLB_PAGE */

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static inline void __pmdp_csp(pmd_t *pmdp)
{
	register unsigned long reg2 asm("2") = pmd_val(*pmdp);
	register unsigned long reg3 asm("3") = pmd_val(*pmdp) |
					       _SEGMENT_ENTRY_INVALID;
	register unsigned long reg4 asm("4") = ((unsigned long) pmdp) + 5;

	asm volatile(
		"	csp %1,%3"
		: "=m" (*pmdp)
		: "d" (reg2), "d" (reg3), "d" (reg4), "m" (*pmdp) : "cc");
}

static inline void __pmdp_idte(unsigned long address, pmd_t *pmdp)
{
	unsigned long sto;

	sto = (unsigned long) pmdp - pmd_index(address) * sizeof(pmd_t);
	asm volatile(
		"	.insn	rrf,0xb98e0000,%2,%3,0,0"
		: "=m" (*pmdp)
		: "m" (*pmdp), "a" (sto), "a" ((address & HPAGE_MASK))
		: "cc" );
}

static inline void __pmdp_idte_local(unsigned long address, pmd_t *pmdp)
{
	unsigned long sto;

	sto = (unsigned long) pmdp - pmd_index(address) * sizeof(pmd_t);
	asm volatile(
		"	.insn	rrf,0xb98e0000,%2,%3,0,1"
		: "=m" (*pmdp)
		: "m" (*pmdp), "a" (sto), "a" ((address & HPAGE_MASK))
		: "cc" );
}

static inline void pmdp_flush_direct(struct mm_struct *mm,
				     unsigned long address, pmd_t *pmdp)
{
	int active, count;

	if (pmd_val(*pmdp) & _SEGMENT_ENTRY_INVALID)
		return;
	if (!MACHINE_HAS_IDTE) {
		__pmdp_csp(pmdp);
		return;
	}
	active = (mm == current->active_mm) ? 1 : 0;
	count = atomic_add_return(0x10000, &mm->context.attach_count);
	if (MACHINE_HAS_TLB_LC && (count & 0xffff) <= active &&
	    cpumask_equal(mm_cpumask(mm), cpumask_of(smp_processor_id())))
		__pmdp_idte_local(address, pmdp);
	else
		__pmdp_idte(address, pmdp);
	atomic_sub(0x10000, &mm->context.attach_count);
}

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static inline void pmdp_flush_lazy(struct mm_struct *mm,
				   unsigned long address, pmd_t *pmdp)
{
1571
	int active, count;
1572

1573 1574
	if (pmd_val(*pmdp) & _SEGMENT_ENTRY_INVALID)
		return;
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	active = (mm == current->active_mm) ? 1 : 0;
	count = atomic_add_return(0x10000, &mm->context.attach_count);
	if ((count & 0xffff) <= active) {
		pmd_val(*pmdp) |= _SEGMENT_ENTRY_INVALID;
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		mm->context.flush_mm = 1;
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	} else if (MACHINE_HAS_IDTE)
		__pmdp_idte(address, pmdp);
	else
		__pmdp_csp(pmdp);
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	atomic_sub(0x10000, &mm->context.attach_count);
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}

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#ifdef CONFIG_TRANSPARENT_HUGEPAGE

#define __HAVE_ARCH_PGTABLE_DEPOSIT
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extern void pgtable_trans_huge_deposit(struct mm_struct *mm, pmd_t *pmdp,
				       pgtable_t pgtable);
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#define __HAVE_ARCH_PGTABLE_WITHDRAW
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extern pgtable_t pgtable_trans_huge_withdraw(struct mm_struct *mm, pmd_t *pmdp);
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static inline int pmd_trans_splitting(pmd_t pmd)
{
1598 1599
	return (pmd_val(pmd) & _SEGMENT_ENTRY_LARGE) &&
		(pmd_val(pmd) & _SEGMENT_ENTRY_SPLIT);
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}

static inline void set_pmd_at(struct mm_struct *mm, unsigned long addr,
			      pmd_t *pmdp, pmd_t entry)
{
	*pmdp = entry;
}

static inline pmd_t pmd_mkhuge(pmd_t pmd)
{
	pmd_val(pmd) |= _SEGMENT_ENTRY_LARGE;
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	pmd_val(pmd) |= _SEGMENT_ENTRY_YOUNG;
	pmd_val(pmd) |= _SEGMENT_ENTRY_PROTECT;
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	return pmd;
}

#define __HAVE_ARCH_PMDP_TEST_AND_CLEAR_YOUNG
static inline int pmdp_test_and_clear_young(struct vm_area_struct *vma,
					    unsigned long address, pmd_t *pmdp)
{
1620
	pmd_t pmd;
1621

1622
	pmd = *pmdp;
1623
	pmdp_flush_direct(vma->vm_mm, address, pmdp);
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	*pmdp = pmd_mkold(pmd);
	return pmd_young(pmd);
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}

#define __HAVE_ARCH_PMDP_GET_AND_CLEAR
static inline pmd_t pmdp_get_and_clear(struct mm_struct *mm,
				       unsigned long address, pmd_t *pmdp)
{
	pmd_t pmd = *pmdp;

1634
	pmdp_flush_direct(mm, address, pmdp);
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	pmd_clear(pmdp);
	return pmd;
}

#define __HAVE_ARCH_PMDP_CLEAR_FLUSH
static inline pmd_t pmdp_clear_flush(struct vm_area_struct *vma,
				     unsigned long address, pmd_t *pmdp)
{
	return pmdp_get_and_clear(vma->vm_mm, address, pmdp);
}

#define __HAVE_ARCH_PMDP_INVALIDATE
static inline void pmdp_invalidate(struct vm_area_struct *vma,
				   unsigned long address, pmd_t *pmdp)
{
1650
	pmdp_flush_direct(vma->vm_mm, address, pmdp);
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}

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#define __HAVE_ARCH_PMDP_SET_WRPROTECT
static inline void pmdp_set_wrprotect(struct mm_struct *mm,
				      unsigned long address, pmd_t *pmdp)
{
	pmd_t pmd = *pmdp;

	if (pmd_write(pmd)) {
1660
		pmdp_flush_direct(mm, address, pmdp);
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		set_pmd_at(mm, address, pmdp, pmd_wrprotect(pmd));
	}
}

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#define pfn_pmd(pfn, pgprot)	mk_pmd_phys(__pa((pfn) << PAGE_SHIFT), (pgprot))
#define mk_pmd(page, pgprot)	pfn_pmd(page_to_pfn(page), (pgprot))

static inline int pmd_trans_huge(pmd_t pmd)
{
	return pmd_val(pmd) & _SEGMENT_ENTRY_LARGE;
}

static inline int has_transparent_hugepage(void)
{
	return MACHINE_HAS_HPAGE ? 1 : 0;
}
1677 1678
#endif /* CONFIG_TRANSPARENT_HUGEPAGE */

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/*
 * 31 bit swap entry format:
 * A page-table entry has some bits we have to treat in a special way.
 * Bits 0, 20 and bit 23 have to be zero, otherwise an specification
 * exception will occur instead of a page translation exception. The
 * specifiation exception has the bad habit not to store necessary
 * information in the lowcore.
1686 1687
 * Bits 21, 22, 30 and 31 are used to indicate the page type.
 * A swap pte is indicated by bit pattern (pte & 0x603) == 0x402
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 * This leaves the bits 1-19 and bits 24-29 to store type and offset.
 * We use the 5 bits from 25-29 for the type and the 20 bits from 1-19
 * plus 24 for the offset.
 * 0|     offset        |0110|o|type |00|
 * 0 0000000001111111111 2222 2 22222 33
 * 0 1234567890123456789 0123 4 56789 01
 *
 * 64 bit swap entry format:
 * A page-table entry has some bits we have to treat in a special way.
 * Bits 52 and bit 55 have to be zero, otherwise an specification
 * exception will occur instead of a page translation exception. The
 * specifiation exception has the bad habit not to store necessary
 * information in the lowcore.
1701 1702
 * Bits 53, 54, 62 and 63 are used to indicate the page type.
 * A swap pte is indicated by bit pattern (pte & 0x603) == 0x402
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 * This leaves the bits 0-51 and bits 56-61 to store type and offset.
 * We use the 5 bits from 57-61 for the type and the 53 bits from 0-51
 * plus 56 for the offset.
 * |                      offset                        |0110|o|type |00|
 *  0000000000111111111122222222223333333333444444444455 5555 5 55566 66
 *  0123456789012345678901234567890123456789012345678901 2345 6 78901 23
 */
1710
#ifndef CONFIG_64BIT
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#define __SWP_OFFSET_MASK (~0UL >> 12)
#else
#define __SWP_OFFSET_MASK (~0UL >> 11)
#endif
1715
static inline pte_t mk_swap_pte(unsigned long type, unsigned long offset)
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{
	pte_t pte;
	offset &= __SWP_OFFSET_MASK;
1719
	pte_val(pte) = _PAGE_INVALID | _PAGE_TYPE | ((type & 0x1f) << 2) |
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		((offset & 1UL) << 7) | ((offset & ~1UL) << 11);
	return pte;
}

#define __swp_type(entry)	(((entry).val >> 2) & 0x1f)
#define __swp_offset(entry)	(((entry).val >> 11) | (((entry).val >> 7) & 1))
#define __swp_entry(type,offset) ((swp_entry_t) { pte_val(mk_swap_pte((type),(offset))) })

#define __pte_to_swp_entry(pte)	((swp_entry_t) { pte_val(pte) })
#define __swp_entry_to_pte(x)	((pte_t) { (x).val })

1731
#ifndef CONFIG_64BIT
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# define PTE_FILE_MAX_BITS	26
1733
#else /* CONFIG_64BIT */
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# define PTE_FILE_MAX_BITS	59
1735
#endif /* CONFIG_64BIT */
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#define pte_to_pgoff(__pte) \
	((((__pte).pte >> 12) << 7) + (((__pte).pte >> 1) & 0x7f))

#define pgoff_to_pte(__off) \
	((pte_t) { ((((__off) & 0x7f) << 1) + (((__off) >> 7) << 12)) \
1742
		   | _PAGE_INVALID | _PAGE_PROTECT })
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#endif /* !__ASSEMBLY__ */

#define kern_addr_valid(addr)   (1)

1748 1749
extern int vmem_add_mapping(unsigned long start, unsigned long size);
extern int vmem_remove_mapping(unsigned long start, unsigned long size);
1750
extern int s390_enable_sie(void);
1751
extern void s390_enable_skey(void);
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Heiko Carstens 已提交
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/*
 * No page table caches to initialise
 */
1756 1757
static inline void pgtable_cache_init(void) { }
static inline void check_pgt_cache(void) { }
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#include <asm-generic/pgtable.h>

#endif /* _S390_PAGE_H */