pgtable.h 47.0 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 __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_NONE	_SEGMENT_ENTRY_PROTECT
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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_IN_BIT	0x00008000UL	/* 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
#define _SEGMENT_ENTRY_BITS_LARGE 0xfffffffffff1ff33UL
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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_LARGE	0x400	/* STE-format control, large page   */
#define _SEGMENT_ENTRY_CO	0x100	/* change-recording override   */
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#define _SEGMENT_ENTRY_SPLIT	0x001	/* THP splitting bit */
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#define _SEGMENT_ENTRY_YOUNG	0x002	/* SW segment young bit */
#define _SEGMENT_ENTRY_NONE	_SEGMENT_ENTRY_YOUNG

/*
 * Segment table entry encoding (R = read-only, I = invalid, y = young bit):
 *			..R...I...y.
 * prot-none, old	..0...1...1.
 * prot-none, young	..1...1...1.
 * read-only, old	..1...1...0.
 * read-only, young	..1...0...1.
 * read-write, old	..0...1...0.
 * read-write, young	..0...0...1.
 * 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 0	/* THP splitting bit number */
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/* Set of bits not changed in pmd_modify */
#define _SEGMENT_CHG_MASK	(_SEGMENT_ENTRY_ORIGIN | _SEGMENT_ENTRY_LARGE \
				 | _SEGMENT_ENTRY_SPLIT | _SEGMENT_ENTRY_CO)

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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_IN_BIT	0x0000800000000000UL	/* IPTE notify bit */
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#endif /* CONFIG_64BIT */
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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 | \
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				 _SEGMENT_ENTRY_NONE)
#define SEGMENT_READ	__pgprot(_SEGMENT_ENTRY_INVALID | \
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				 _SEGMENT_ENTRY_PROTECT)
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#define SEGMENT_WRITE	__pgprot(_SEGMENT_ENTRY_INVALID)
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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;
}
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/*
 * pgd/pmd/pte query functions
 */
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#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; }
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static inline int pud_large(pud_t pud)	 { return 0; }
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static inline int pud_bad(pud_t pud)	 { return 0; }

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#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;
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	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;
489
	return (pgd_val(pgd) & _REGION_ENTRY_INVALID) != 0UL;
490 491 492 493
}

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.
	 */
499
	unsigned long mask =
500
		~_SEGMENT_ENTRY_ORIGIN & ~_REGION_ENTRY_INVALID &
501 502 503
		~_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;
509
	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;
516
	return (pud_val(pud) & _REGION_ENTRY_INVALID) != 0UL;
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}

519 520 521 522 523 524 525
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.
	 */
533
	unsigned long mask =
534
		~_SEGMENT_ENTRY_ORIGIN & ~_REGION_ENTRY_INVALID &
535 536
		~_REGION_ENTRY_TYPE_MASK & ~_REGION_ENTRY_LENGTH;
	return (pud_val(pud) & mask) != 0;
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}

539
#endif /* CONFIG_64BIT */
540

541
static inline int pmd_present(pmd_t pmd)
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{
543
	return pmd_val(pmd) != _SEGMENT_ENTRY_INVALID;
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}

546
static inline int pmd_none(pmd_t pmd)
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{
548
	return pmd_val(pmd) == _SEGMENT_ENTRY_INVALID;
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}

551 552 553
static inline int pmd_large(pmd_t pmd)
{
#ifdef CONFIG_64BIT
554
	return (pmd_val(pmd) & _SEGMENT_ENTRY_LARGE) != 0;
555 556 557 558 559
#else
	return 0;
#endif
}

560 561 562 563 564 565
static inline int pmd_prot_none(pmd_t pmd)
{
	return (pmd_val(pmd) & _SEGMENT_ENTRY_INVALID) &&
		(pmd_val(pmd) & _SEGMENT_ENTRY_NONE);
}

566
static inline int pmd_bad(pmd_t pmd)
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{
568 569 570 571 572
#ifdef CONFIG_64BIT
	if (pmd_large(pmd))
		return (pmd_val(pmd) & ~_SEGMENT_ENTRY_BITS_LARGE) != 0;
#endif
	return (pmd_val(pmd) & ~_SEGMENT_ENTRY_BITS) != 0;
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}

575 576 577 578
#define __HAVE_ARCH_PMDP_SPLITTING_FLUSH
extern void pmdp_splitting_flush(struct vm_area_struct *vma,
				 unsigned long addr, pmd_t *pmdp);

579 580 581 582 583 584 585 586 587 588 589 590
#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)
{
591 592
	if (pmd_prot_none(pmd))
		return 0;
593
	return (pmd_val(pmd) & _SEGMENT_ENTRY_PROTECT) == 0;
594 595 596 597
}

static inline int pmd_young(pmd_t pmd)
{
598 599 600 601 602 603 604 605
	int young = 0;
#ifdef CONFIG_64BIT
	if (pmd_prot_none(pmd))
		young = (pmd_val(pmd) & _SEGMENT_ENTRY_PROTECT) != 0;
	else
		young = (pmd_val(pmd) & _SEGMENT_ENTRY_YOUNG) != 0;
#endif
	return young;
606 607
}

608
static inline int pte_present(pte_t pte)
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{
610 611
	/* Bit pattern: (pte & 0x001) == 0x001 */
	return (pte_val(pte) & _PAGE_PRESENT) != 0;
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}

614
static inline int pte_none(pte_t pte)
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{
616 617
	/* Bit pattern: pte == 0x400 */
	return pte_val(pte) == _PAGE_INVALID;
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}

620
static inline int pte_file(pte_t pte)
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{
622 623 624
	/* 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
633 634 635 636
static inline int pte_same(pte_t a, pte_t b)
{
	return pte_val(a) == pte_val(b);
}
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638
static inline pgste_t pgste_get_lock(pte_t *ptep)
639
{
640
	unsigned long new = 0;
641
#ifdef CONFIG_PGSTE
642 643
	unsigned long old;

644
	preempt_disable();
645 646 647
	asm(
		"	lg	%0,%2\n"
		"0:	lgr	%1,%0\n"
648 649
		"	nihh	%0,0xff7f\n"	/* clear PCL bit in old */
		"	oihh	%1,0x0080\n"	/* set PCL bit in new */
650 651 652
		"	csg	%0,%1,%2\n"
		"	jl	0b\n"
		: "=&d" (old), "=&d" (new), "=Q" (ptep[PTRS_PER_PTE])
653
		: "Q" (ptep[PTRS_PER_PTE]) : "cc", "memory");
654
#endif
655
	return __pgste(new);
656 657
}

658
static inline void pgste_set_unlock(pte_t *ptep, pgste_t pgste)
659 660
{
#ifdef CONFIG_PGSTE
661
	asm(
662
		"	nihh	%1,0xff7f\n"	/* clear PCL bit */
663 664
		"	stg	%1,%0\n"
		: "=Q" (ptep[PTRS_PER_PTE])
665 666
		: "d" (pgste_val(pgste)), "Q" (ptep[PTRS_PER_PTE])
		: "cc", "memory");
667 668 669 670
	preempt_enable();
#endif
}

671 672 673 674 675 676 677 678 679
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);
}

680 681 682 683 684 685 686
static inline void pgste_set(pte_t *ptep, pgste_t pgste)
{
#ifdef CONFIG_PGSTE
	*(pgste_t *)(ptep + PTRS_PER_PTE) = pgste;
#endif
}

687
static inline pgste_t pgste_update_all(pte_t *ptep, pgste_t pgste)
688 689
{
#ifdef CONFIG_PGSTE
690
	unsigned long address, bits, skey;
691

692
	if (pte_val(*ptep) & _PAGE_INVALID)
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		return pgste;
694
	address = pte_val(*ptep) & PAGE_MASK;
695
	skey = (unsigned long) page_get_storage_key(address);
696
	bits = skey & (_PAGE_CHANGED | _PAGE_REFERENCED);
697 698 699
	if (!(pgste_val(pgste) & PGSTE_HC_BIT) && (bits & _PAGE_CHANGED)) {
		/* Transfer dirty + referenced bit to host bits in pgste */
		pgste_val(pgste) |= bits << 52;
700
		page_set_storage_key(address, skey ^ bits, 0);
701 702 703 704
	} else if (!(pgste_val(pgste) & PGSTE_HR_BIT) &&
		   (bits & _PAGE_REFERENCED)) {
		/* Transfer referenced bit to host bit in pgste */
		pgste_val(pgste) |= PGSTE_HR_BIT;
705
		page_reset_referenced(address);
706
	}
707
	/* Transfer page changed & referenced bit to guest bits in pgste */
708
	pgste_val(pgste) |= bits << 48;		/* GR bit & GC bit */
709
	/* Copy page access key and fetch protection bit to pgste */
710 711
	pgste_val(pgste) &= ~(PGSTE_ACC_BITS | PGSTE_FP_BIT);
	pgste_val(pgste) |= (skey & (_PAGE_ACC_BITS | _PAGE_FP_BIT)) << 56;
712 713 714 715 716 717 718 719
#endif
	return pgste;

}

static inline pgste_t pgste_update_young(pte_t *ptep, pgste_t pgste)
{
#ifdef CONFIG_PGSTE
720
	if (pte_val(*ptep) & _PAGE_INVALID)
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		return pgste;
722
	/* Get referenced bit from storage key */
723 724
	if (page_reset_referenced(pte_val(*ptep) & PAGE_MASK))
		pgste_val(pgste) |= PGSTE_HR_BIT | PGSTE_GR_BIT;
725 726 727 728
#endif
	return pgste;
}

729
static inline void pgste_set_key(pte_t *ptep, pgste_t pgste, pte_t entry)
730 731
{
#ifdef CONFIG_PGSTE
732
	unsigned long address;
733
	unsigned long nkey;
734

735
	if (pte_val(entry) & _PAGE_INVALID)
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		return;
737
	VM_BUG_ON(!(pte_val(*ptep) & _PAGE_INVALID));
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	address = pte_val(entry) & PAGE_MASK;
739 740 741 742 743
	/*
	 * 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.
	 */
744
	nkey = (pgste_val(pgste) & (PGSTE_ACC_BITS | PGSTE_FP_BIT)) >> 56;
745
	page_set_storage_key(address, nkey, 0);
746 747 748
#endif
}

749 750
static inline void pgste_set_pte(pte_t *ptep, pte_t entry)
{
751
	if (!MACHINE_HAS_ESOP && (pte_val(entry) & _PAGE_WRITE)) {
752 753 754 755
		/*
		 * Without enhanced suppression-on-protection force
		 * the dirty bit on for all writable ptes.
		 */
756 757
		pte_val(entry) |= _PAGE_DIRTY;
		pte_val(entry) &= ~_PAGE_PROTECT;
758 759 760 761
	}
	*ptep = entry;
}

762 763 764 765
/**
 * struct gmap_struct - guest address space
 * @mm: pointer to the parent mm_struct
 * @table: pointer to the page directory
766
 * @asce: address space control element for gmap page table
767 768 769 770 771 772
 * @crst_list: list of all crst tables used in the guest address space
 */
struct gmap {
	struct list_head list;
	struct mm_struct *mm;
	unsigned long *table;
773
	unsigned long asce;
774
	void *private;
775 776 777 778 779
	struct list_head crst_list;
};

/**
 * struct gmap_rmap - reverse mapping for segment table entries
780
 * @gmap: pointer to the gmap_struct
781
 * @entry: pointer to a segment table entry
782
 * @vmaddr: virtual address in the guest address space
783 784 785
 */
struct gmap_rmap {
	struct list_head list;
786
	struct gmap *gmap;
787
	unsigned long *entry;
788
	unsigned long vmaddr;
789 790 791 792 793
};

/**
 * struct gmap_pgtable - gmap information attached to a page table
 * @vmaddr: address of the 1MB segment in the process virtual memory
794
 * @mapper: list of segment table entries mapping a page table
795 796 797 798 799 800
 */
struct gmap_pgtable {
	unsigned long vmaddr;
	struct list_head mapper;
};

801 802 803 804 805 806 807 808 809
/**
 * 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);
};

810 811 812 813 814
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,
815
		     unsigned long to, unsigned long len);
816
int gmap_unmap_segment(struct gmap *gmap, unsigned long to, unsigned long len);
817 818
unsigned long __gmap_translate(unsigned long address, struct gmap *);
unsigned long gmap_translate(unsigned long address, struct gmap *);
819
unsigned long __gmap_fault(unsigned long address, struct gmap *);
820
unsigned long gmap_fault(unsigned long address, struct gmap *);
821
void gmap_discard(unsigned long from, unsigned long to, struct gmap *);
822

823 824 825 826 827 828 829 830 831 832
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);
void gmap_do_ipte_notify(struct mm_struct *, unsigned long addr, pte_t *);

static inline pgste_t pgste_ipte_notify(struct mm_struct *mm,
					unsigned long addr,
					pte_t *ptep, pgste_t pgste)
{
#ifdef CONFIG_PGSTE
833 834
	if (pgste_val(pgste) & PGSTE_IN_BIT) {
		pgste_val(pgste) &= ~PGSTE_IN_BIT;
835 836 837 838 839 840
		gmap_do_ipte_notify(mm, addr, ptep);
	}
#endif
	return pgste;
}

841 842 843 844 845 846 847 848 849 850 851 852
/*
 * 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);
853 854
		pgste_set_key(ptep, pgste, entry);
		pgste_set_pte(ptep, entry);
855
		pgste_set_unlock(ptep, pgste);
856 857 858
	} else {
		if (!(pte_val(entry) & _PAGE_INVALID) && MACHINE_HAS_EDAT1)
			pte_val(entry) |= _PAGE_CO;
859
		*ptep = entry;
860
	}
861 862
}

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/*
 * query functions pte_write/pte_dirty/pte_young only work if
 * pte_present() is true. Undefined behaviour if not..
 */
867
static inline int pte_write(pte_t pte)
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{
869
	return (pte_val(pte) & _PAGE_WRITE) != 0;
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}

872
static inline int pte_dirty(pte_t pte)
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873
{
874
	return (pte_val(pte) & _PAGE_DIRTY) != 0;
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}

877
static inline int pte_young(pte_t pte)
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878
{
879
	return (pte_val(pte) & _PAGE_YOUNG) != 0;
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}

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

886
static inline void pgd_clear(pgd_t *pgd)
887
{
888
#ifdef CONFIG_64BIT
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889 890
	if ((pgd_val(*pgd) & _REGION_ENTRY_TYPE_MASK) == _REGION_ENTRY_TYPE_R2)
		pgd_val(*pgd) = _REGION2_ENTRY_EMPTY;
891
#endif
892 893
}

894
static inline void pud_clear(pud_t *pud)
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895
{
896
#ifdef CONFIG_64BIT
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897 898
	if ((pud_val(*pud) & _REGION_ENTRY_TYPE_MASK) == _REGION_ENTRY_TYPE_R3)
		pud_val(*pud) = _REGION3_ENTRY_EMPTY;
899
#endif
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}

902
static inline void pmd_clear(pmd_t *pmdp)
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903
{
904
	pmd_val(*pmdp) = _SEGMENT_ENTRY_INVALID;
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}

907
static inline void pte_clear(struct mm_struct *mm, unsigned long addr, pte_t *ptep)
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908
{
909
	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..
 */
916
static inline pte_t pte_modify(pte_t pte, pgprot_t newprot)
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917
{
918
	pte_val(pte) &= _PAGE_CHG_MASK;
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919
	pte_val(pte) |= pgprot_val(newprot);
920 921 922 923 924 925 926 927 928 929
	/*
	 * 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
	 */
930 931
	if ((pte_val(pte) & _PAGE_DIRTY) && (pte_val(pte) & _PAGE_WRITE))
		pte_val(pte) &= ~_PAGE_PROTECT;
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932 933 934
	return pte;
}

935
static inline pte_t pte_wrprotect(pte_t pte)
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936
{
937 938
	pte_val(pte) &= ~_PAGE_WRITE;
	pte_val(pte) |= _PAGE_PROTECT;
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939 940 941
	return pte;
}

942
static inline pte_t pte_mkwrite(pte_t pte)
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943
{
944 945 946
	pte_val(pte) |= _PAGE_WRITE;
	if (pte_val(pte) & _PAGE_DIRTY)
		pte_val(pte) &= ~_PAGE_PROTECT;
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	return pte;
}

950
static inline pte_t pte_mkclean(pte_t pte)
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951
{
952 953
	pte_val(pte) &= ~_PAGE_DIRTY;
	pte_val(pte) |= _PAGE_PROTECT;
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954 955 956
	return pte;
}

957
static inline pte_t pte_mkdirty(pte_t pte)
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958
{
959 960 961
	pte_val(pte) |= _PAGE_DIRTY;
	if (pte_val(pte) & _PAGE_WRITE)
		pte_val(pte) &= ~_PAGE_PROTECT;
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	return pte;
}

965
static inline pte_t pte_mkold(pte_t pte)
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966
{
967
	pte_val(pte) &= ~_PAGE_YOUNG;
968
	pte_val(pte) |= _PAGE_INVALID;
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	return pte;
}

972
static inline pte_t pte_mkyoung(pte_t pte)
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973
{
974 975 976
	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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980 981
static inline pte_t pte_mkspecial(pte_t pte)
{
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982
	pte_val(pte) |= _PAGE_SPECIAL;
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983 984 985
	return pte;
}

986 987 988
#ifdef CONFIG_HUGETLB_PAGE
static inline pte_t pte_mkhuge(pte_t pte)
{
989
	pte_val(pte) |= _PAGE_LARGE;
990 991 992 993
	return pte;
}
#endif

994
/*
995
 * Get (and clear) the user dirty bit for a pte.
996
 */
997 998
static inline int ptep_test_and_clear_user_dirty(struct mm_struct *mm,
						 pte_t *ptep)
999
{
1000 1001 1002 1003 1004 1005
	pgste_t pgste;
	int dirty = 0;

	if (mm_has_pgste(mm)) {
		pgste = pgste_get_lock(ptep);
		pgste = pgste_update_all(ptep, pgste);
1006 1007
		dirty = !!(pgste_val(pgste) & PGSTE_HC_BIT);
		pgste_val(pgste) &= ~PGSTE_HC_BIT;
1008 1009
		pgste_set_unlock(ptep, pgste);
		return dirty;
1010 1011 1012
	}
	return dirty;
}
1013 1014 1015 1016 1017 1018 1019 1020 1021 1022 1023 1024 1025

/*
 * Get (and clear) the user referenced bit for a pte.
 */
static inline int ptep_test_and_clear_user_young(struct mm_struct *mm,
						 pte_t *ptep)
{
	pgste_t pgste;
	int young = 0;

	if (mm_has_pgste(mm)) {
		pgste = pgste_get_lock(ptep);
		pgste = pgste_update_young(ptep, pgste);
1026 1027
		young = !!(pgste_val(pgste) & PGSTE_HR_BIT);
		pgste_val(pgste) &= ~PGSTE_HR_BIT;
1028 1029 1030 1031
		pgste_set_unlock(ptep, pgste);
	}
	return young;
}
1032

1033
static inline void __ptep_ipte(unsigned long address, pte_t *ptep)
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{
1035
	if (!(pte_val(*ptep) & _PAGE_INVALID)) {
1036
#ifndef CONFIG_64BIT
1037
		/* pto must point to the start of the segment table */
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		pte_t *pto = (pte_t *) (((unsigned long) ptep) & 0x7ffffc00);
1039 1040 1041 1042
#else
		/* ipte in zarch mode can do the math */
		pte_t *pto = ptep;
#endif
1043 1044 1045 1046
		asm volatile(
			"	ipte	%2,%3"
			: "=m" (*ptep) : "m" (*ptep),
			  "a" (pto), "a" (address));
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	}
1048 1049
}

1050 1051 1052 1053 1054 1055 1056 1057 1058 1059 1060
static inline void ptep_flush_lazy(struct mm_struct *mm,
				   unsigned long address, pte_t *ptep)
{
	int active = (mm == current->active_mm) ? 1 : 0;

	if (atomic_read(&mm->context.attach_count) > active)
		__ptep_ipte(address, ptep);
	else
		mm->context.flush_mm = 1;
}

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
#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);
		pgste = pgste_ipte_notify(vma->vm_mm, addr, ptep, pgste);
	}

	pte = *ptep;
	__ptep_ipte(addr, ptep);
	young = pte_young(pte);
	pte = pte_mkold(pte);

	if (mm_has_pgste(vma->vm_mm)) {
		pgste_set_pte(ptep, pte);
		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
1109 1110 1111 1112 1113 1114
static inline pte_t ptep_get_and_clear(struct mm_struct *mm,
				       unsigned long address, pte_t *ptep)
{
	pgste_t pgste;
	pte_t pte;

1115
	if (mm_has_pgste(mm)) {
1116
		pgste = pgste_get_lock(ptep);
1117 1118
		pgste = pgste_ipte_notify(mm, address, ptep, pgste);
	}
1119 1120

	pte = *ptep;
1121
	ptep_flush_lazy(mm, address, ptep);
1122
	pte_val(*ptep) = _PAGE_INVALID;
1123 1124 1125 1126 1127 1128 1129 1130 1131 1132 1133 1134 1135

	if (mm_has_pgste(mm)) {
		pgste = pgste_update_all(&pte, pgste);
		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)
{
1136
	pgste_t pgste;
1137 1138
	pte_t pte;

1139 1140 1141 1142
	if (mm_has_pgste(mm)) {
		pgste = pgste_get_lock(ptep);
		pgste_ipte_notify(mm, address, ptep, pgste);
	}
1143 1144

	pte = *ptep;
1145
	ptep_flush_lazy(mm, address, ptep);
1146
	pte_val(*ptep) |= _PAGE_INVALID;
1147

1148
	if (mm_has_pgste(mm)) {
1149
		pgste = pgste_update_all(&pte, pgste);
1150 1151
		pgste_set(ptep, pgste);
	}
1152 1153 1154 1155 1156 1157 1158
	return pte;
}

static inline void ptep_modify_prot_commit(struct mm_struct *mm,
					   unsigned long address,
					   pte_t *ptep, pte_t pte)
{
1159 1160
	pgste_t pgste;

1161
	if (mm_has_pgste(mm)) {
1162
		pgste = pgste_get(ptep);
1163
		pgste_set_key(ptep, pgste, pte);
1164
		pgste_set_pte(ptep, pte);
1165
		pgste_set_unlock(ptep, pgste);
1166 1167
	} else
		*ptep = pte;
1168
}
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#define __HAVE_ARCH_PTEP_CLEAR_FLUSH
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static inline pte_t ptep_clear_flush(struct vm_area_struct *vma,
				     unsigned long address, pte_t *ptep)
{
1174 1175 1176
	pgste_t pgste;
	pte_t pte;

1177
	if (mm_has_pgste(vma->vm_mm)) {
1178
		pgste = pgste_get_lock(ptep);
1179 1180
		pgste = pgste_ipte_notify(vma->vm_mm, address, ptep, pgste);
	}
1181 1182 1183

	pte = *ptep;
	__ptep_ipte(address, ptep);
1184
	pte_val(*ptep) = _PAGE_INVALID;
1185 1186 1187 1188 1189

	if (mm_has_pgste(vma->vm_mm)) {
		pgste = pgste_update_all(&pte, pgste);
		pgste_set_unlock(ptep, pgste);
	}
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	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,
1202
					    unsigned long address,
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					    pte_t *ptep, int full)
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{
1205 1206 1207
	pgste_t pgste;
	pte_t pte;

1208
	if (!full && mm_has_pgste(mm)) {
1209
		pgste = pgste_get_lock(ptep);
1210
		pgste = pgste_ipte_notify(mm, address, ptep, pgste);
1211
	}
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1213 1214
	pte = *ptep;
	if (!full)
1215
		ptep_flush_lazy(mm, address, ptep);
1216
	pte_val(*ptep) = _PAGE_INVALID;
1217

1218
	if (!full && mm_has_pgste(mm)) {
1219 1220 1221
		pgste = pgste_update_all(&pte, pgste);
		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
1226 1227 1228 1229 1230 1231 1232
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)) {
1233
		if (mm_has_pgste(mm)) {
1234
			pgste = pgste_get_lock(ptep);
1235 1236
			pgste = pgste_ipte_notify(mm, address, ptep, pgste);
		}
1237

1238
		ptep_flush_lazy(mm, address, ptep);
1239
		pte = pte_wrprotect(pte);
1240

1241 1242
		if (mm_has_pgste(mm)) {
			pgste_set_pte(ptep, pte);
1243
			pgste_set_unlock(ptep, pgste);
1244 1245
		} else
			*ptep = pte;
1246 1247 1248
	}
	return pte;
}
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#define __HAVE_ARCH_PTEP_SET_ACCESS_FLAGS
1251 1252 1253 1254 1255 1256 1257 1258
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;
1259
	if (mm_has_pgste(vma->vm_mm)) {
1260
		pgste = pgste_get_lock(ptep);
1261 1262
		pgste = pgste_ipte_notify(vma->vm_mm, address, ptep, pgste);
	}
1263 1264 1265

	__ptep_ipte(address, ptep);

1266 1267
	if (mm_has_pgste(vma->vm_mm)) {
		pgste_set_pte(ptep, entry);
1268
		pgste_set_unlock(ptep, pgste);
1269 1270
	} else
		*ptep = entry;
1271 1272
	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);
1282
	return pte_mkyoung(__pte);
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}

1285 1286
static inline pte_t mk_pte(struct page *page, pgprot_t pgprot)
{
1287
	unsigned long physpage = page_to_phys(page);
1288
	pte_t __pte = mk_pte_phys(physpage, pgprot);
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1290 1291
	if (pte_write(__pte) && PageDirty(page))
		__pte = pte_mkdirty(__pte);
1292
	return __pte;
1293 1294
}

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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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1303
#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; })
1308

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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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1312
#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)
1316
#define pgd_deref(pgd) (pgd_val(pgd) & _REGION_ENTRY_ORIGIN)
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1318 1319
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);
1323 1324
	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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1328 1329 1330
	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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}

1334
#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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#define pmd_page(pmd) pfn_to_page(pmd_val(pmd) >> PAGE_SHIFT)
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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)

1348 1349 1350 1351 1352
static inline void __pmd_idte(unsigned long address, pmd_t *pmdp)
{
	unsigned long sto = (unsigned long) pmdp -
			    pmd_index(address) * sizeof(pmd_t);

1353
	if (!(pmd_val(*pmdp) & _SEGMENT_ENTRY_INVALID)) {
1354 1355 1356 1357 1358 1359 1360 1361 1362 1363
		asm volatile(
			"	.insn	rrf,0xb98e0000,%2,%3,0,0"
			: "=m" (*pmdp)
			: "m" (*pmdp), "a" (sto),
			  "a" ((address & HPAGE_MASK))
			: "cc"
		);
	}
}

1364 1365 1366 1367 1368 1369 1370 1371 1372 1373 1374 1375 1376
static inline void __pmd_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");
}

1377
#if defined(CONFIG_TRANSPARENT_HUGEPAGE) || defined(CONFIG_HUGETLB_PAGE)
1378 1379
static inline unsigned long massage_pgprot_pmd(pgprot_t pgprot)
{
1380
	/*
1381
	 * pgprot is PAGE_NONE, PAGE_READ, or PAGE_WRITE (see __Pxxx / __Sxxx)
1382 1383 1384 1385
	 * Convert to segment table entry format.
	 */
	if (pgprot_val(pgprot) == pgprot_val(PAGE_NONE))
		return pgprot_val(SEGMENT_NONE);
1386 1387 1388
	if (pgprot_val(pgprot) == pgprot_val(PAGE_READ))
		return pgprot_val(SEGMENT_READ);
	return pgprot_val(SEGMENT_WRITE);
1389 1390
}

1391 1392 1393 1394 1395 1396 1397 1398 1399 1400 1401 1402 1403 1404 1405 1406 1407 1408 1409 1410 1411 1412 1413 1414 1415 1416
static inline pmd_t pmd_mkyoung(pmd_t pmd)
{
#ifdef CONFIG_64BIT
	if (pmd_prot_none(pmd)) {
		pmd_val(pmd) |= _SEGMENT_ENTRY_PROTECT;
	} else {
		pmd_val(pmd) |= _SEGMENT_ENTRY_YOUNG;
		pmd_val(pmd) &= ~_SEGMENT_ENTRY_INVALID;
	}
#endif
	return pmd;
}

static inline pmd_t pmd_mkold(pmd_t pmd)
{
#ifdef CONFIG_64BIT
	if (pmd_prot_none(pmd)) {
		pmd_val(pmd) &= ~_SEGMENT_ENTRY_PROTECT;
	} else {
		pmd_val(pmd) &= ~_SEGMENT_ENTRY_YOUNG;
		pmd_val(pmd) |= _SEGMENT_ENTRY_INVALID;
	}
#endif
	return pmd;
}

1417 1418
static inline pmd_t pmd_modify(pmd_t pmd, pgprot_t newprot)
{
1419 1420 1421
	int young;

	young = pmd_young(pmd);
1422 1423
	pmd_val(pmd) &= _SEGMENT_CHG_MASK;
	pmd_val(pmd) |= massage_pgprot_pmd(newprot);
1424 1425
	if (young)
		pmd = pmd_mkyoung(pmd);
1426 1427 1428
	return pmd;
}

1429
static inline pmd_t mk_pmd_phys(unsigned long physpage, pgprot_t pgprot)
1430
{
1431 1432
	pmd_t __pmd;
	pmd_val(__pmd) = physpage + massage_pgprot_pmd(pgprot);
1433
	return pmd_mkyoung(__pmd);
1434 1435 1436 1437
}

static inline pmd_t pmd_mkwrite(pmd_t pmd)
{
1438 1439
	/* Do not clobber PROT_NONE segments! */
	if (!pmd_prot_none(pmd))
1440
		pmd_val(pmd) &= ~_SEGMENT_ENTRY_PROTECT;
1441 1442
	return pmd;
}
1443 1444
#endif /* CONFIG_TRANSPARENT_HUGEPAGE || CONFIG_HUGETLB_PAGE */

1445 1446 1447 1448 1449 1450 1451 1452 1453 1454 1455
static inline void pmdp_flush_lazy(struct mm_struct *mm,
				   unsigned long address, pmd_t *pmdp)
{
	int active = (mm == current->active_mm) ? 1 : 0;

	if ((atomic_read(&mm->context.attach_count) & 0xffff) > active)
		__pmd_idte(address, pmdp);
	else
		mm->context.flush_mm = 1;
}

1456 1457 1458
#ifdef CONFIG_TRANSPARENT_HUGEPAGE

#define __HAVE_ARCH_PGTABLE_DEPOSIT
1459 1460
extern void pgtable_trans_huge_deposit(struct mm_struct *mm, pmd_t *pmdp,
				       pgtable_t pgtable);
1461 1462

#define __HAVE_ARCH_PGTABLE_WITHDRAW
1463
extern pgtable_t pgtable_trans_huge_withdraw(struct mm_struct *mm, pmd_t *pmdp);
1464 1465 1466 1467 1468 1469 1470 1471 1472

static inline int pmd_trans_splitting(pmd_t pmd)
{
	return pmd_val(pmd) & _SEGMENT_ENTRY_SPLIT;
}

static inline void set_pmd_at(struct mm_struct *mm, unsigned long addr,
			      pmd_t *pmdp, pmd_t entry)
{
1473
	if (!(pmd_val(entry) & _SEGMENT_ENTRY_INVALID) && MACHINE_HAS_EDAT1)
1474 1475 1476 1477 1478 1479 1480 1481 1482
		pmd_val(entry) |= _SEGMENT_ENTRY_CO;
	*pmdp = entry;
}

static inline pmd_t pmd_mkhuge(pmd_t pmd)
{
	pmd_val(pmd) |= _SEGMENT_ENTRY_LARGE;
	return pmd;
}
1483 1484 1485

static inline pmd_t pmd_wrprotect(pmd_t pmd)
{
1486 1487 1488
	/* Do not clobber PROT_NONE segments! */
	if (!pmd_prot_none(pmd))
		pmd_val(pmd) |= _SEGMENT_ENTRY_PROTECT;
1489 1490 1491 1492 1493 1494 1495 1496 1497 1498 1499 1500 1501
	return pmd;
}

static inline pmd_t pmd_mkdirty(pmd_t pmd)
{
	/* No dirty bit in the segment table entry. */
	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)
{
1502
	pmd_t pmd;
1503

1504 1505 1506 1507
	pmd = *pmdp;
	__pmd_idte(address, pmdp);
	*pmdp = pmd_mkold(pmd);
	return pmd_young(pmd);
1508 1509 1510 1511 1512 1513 1514 1515 1516 1517 1518 1519 1520 1521 1522 1523 1524 1525 1526 1527 1528 1529 1530 1531 1532 1533 1534
}

#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;

	__pmd_idte(address, pmdp);
	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)
{
	__pmd_idte(address, pmdp);
}

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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)) {
		__pmd_idte(address, pmdp);
		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;
}

static inline unsigned long pmd_pfn(pmd_t pmd)
{
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	return pmd_val(pmd) >> PAGE_SHIFT;
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}
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#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.
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 * 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.
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 * 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
 */
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#ifndef CONFIG_64BIT
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#define __SWP_OFFSET_MASK (~0UL >> 12)
#else
#define __SWP_OFFSET_MASK (~0UL >> 11)
#endif
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static inline pte_t mk_swap_pte(unsigned long type, unsigned long offset)
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{
	pte_t pte;
	offset &= __SWP_OFFSET_MASK;
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	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 })

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#ifndef CONFIG_64BIT
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# define PTE_FILE_MAX_BITS	26
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#else /* CONFIG_64BIT */
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# define PTE_FILE_MAX_BITS	59
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#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)) \
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		   | _PAGE_INVALID | _PAGE_PROTECT })
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#endif /* !__ASSEMBLY__ */

#define kern_addr_valid(addr)   (1)

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extern int vmem_add_mapping(unsigned long start, unsigned long size);
extern int vmem_remove_mapping(unsigned long start, unsigned long size);
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extern int s390_enable_sie(void);
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/*
 * No page table caches to initialise
 */
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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 */