root/include/asm-alpha/pgtable.h

/* [previous][next][first][last][top][bottom][index][help] */

INCLUDED FROM


DEFINITIONS

This source file includes following definitions.
  1. mk_pte
  2. pte_modify
  3. pmd_set
  4. pgd_set
  5. pte_page
  6. pmd_page
  7. pgd_page
  8. pte_none
  9. pte_present
  10. pte_inuse
  11. pte_clear
  12. pte_reuse
  13. pmd_none
  14. pmd_bad
  15. pmd_present
  16. pmd_inuse
  17. pmd_clear
  18. pmd_reuse
  19. pgd_none
  20. pgd_bad
  21. pgd_present
  22. pgd_inuse
  23. pgd_clear
  24. pgd_reuse
  25. pte_read
  26. pte_write
  27. pte_exec
  28. pte_dirty
  29. pte_young
  30. pte_cow
  31. pte_wrprotect
  32. pte_rdprotect
  33. pte_exprotect
  34. pte_mkclean
  35. pte_mkold
  36. pte_uncow
  37. pte_mkwrite
  38. pte_mkread
  39. pte_mkexec
  40. pte_mkdirty
  41. pte_mkyoung
  42. pte_mkcow
  43. SET_PAGE_DIR
  44. pgd_offset
  45. pmd_offset
  46. pte_offset
  47. pte_free_kernel
  48. pte_alloc_kernel
  49. pmd_free_kernel
  50. pmd_alloc_kernel
  51. pte_free
  52. pte_alloc
  53. pmd_free
  54. pmd_alloc
  55. pgd_free
  56. pgd_alloc

   1 #ifndef _ALPHA_PGTABLE_H
   2 #define _ALPHA_PGTABLE_H
   3 
   4 /*
   5  * This file contains the functions and defines necessary to modify and use
   6  * the alpha page table tree.
   7  *
   8  * This hopefully works with any standard alpha page-size, as defined
   9  * in <asm/page.h> (currently 8192).
  10  */
  11 
  12 /* PMD_SHIFT determines the size of the area a second-level page table can map */
  13 #define PMD_SHIFT       (PAGE_SHIFT + (PAGE_SHIFT-3))
  14 #define PMD_SIZE        (1UL << PMD_SHIFT)
  15 #define PMD_MASK        (~(PMD_SIZE-1))
  16 
  17 /* PGDIR_SHIFT determines what a third-level page table entry can map */
  18 #define PGDIR_SHIFT     (PAGE_SHIFT + 2*(PAGE_SHIFT-3))
  19 #define PGDIR_SIZE      (1UL << PGDIR_SHIFT)
  20 #define PGDIR_MASK      (~(PGDIR_SIZE-1))
  21 
  22 /*
  23  * entries per page directory level: the alpha is three-level, with
  24  * all levels having a one-page page table.
  25  */
  26 #define PTRS_PER_PTE    (1UL << (PAGE_SHIFT-3))
  27 #define PTRS_PER_PMD    (1UL << (PAGE_SHIFT-3))
  28 #define PTRS_PER_PGD    (1UL << (PAGE_SHIFT-3))
  29 
  30 /* the no. of pointers that fit on a page: this will go away */
  31 #define PTRS_PER_PAGE   (1UL << (PAGE_SHIFT-3))
  32 
  33 #define VMALLOC_START           0xFFFFFE0000000000
  34 #define VMALLOC_VMADDR(x)       ((unsigned long)(x))
  35 
  36 /*
  37  * OSF/1 PAL-code-imposed page table bits
  38  */
  39 #define _PAGE_VALID     0x0001
  40 #define _PAGE_FOR       0x0002  /* used for page protection (fault on read) */
  41 #define _PAGE_FOW       0x0004  /* used for page protection (fault on write) */
  42 #define _PAGE_FOE       0x0008  /* used for page protection (fault on exec) */
  43 #define _PAGE_ASM       0x0010
  44 #define _PAGE_KRE       0x0100  /* xxx - see below on the "accessed" bit */
  45 #define _PAGE_URE       0x0200  /* xxx */
  46 #define _PAGE_KWE       0x1000  /* used to do the dirty bit in software */
  47 #define _PAGE_UWE       0x2000  /* used to do the dirty bit in software */
  48 
  49 /* .. and these are ours ... */
  50 #define _PAGE_COW       0x10000
  51 #define _PAGE_DIRTY     0x20000
  52 #define _PAGE_ACCESSED  0x40000
  53 
  54 /*
  55  * NOTE! The "accessed" bit isn't necessarily exact: it can be kept exactly
  56  * by software (use the KRE/URE/KWE/UWE bits appropriately), but I'll fake it.
  57  * Under Linux/AXP, the "accessed" bit just means "read", and I'll just use
  58  * the KRE/URE bits to watch for it. That way we don't need to overload the
  59  * KWE/UWE bits with both handling dirty and accessed.
  60  *
  61  * Note that the kernel uses the accessed bit just to check whether to page
  62  * out a page or not, so it doesn't have to be exact anyway.
  63  */
  64 
  65 #define __DIRTY_BITS    (_PAGE_DIRTY | _PAGE_KWE | _PAGE_UWE)
  66 #define __ACCESS_BITS   (_PAGE_ACCESSED | _PAGE_KRE | _PAGE_URE)
  67 
  68 #define _PFN_MASK       0xFFFFFFFF00000000
  69 
  70 #define _PAGE_TABLE     (_PAGE_VALID | __DIRTY_BITS | __ACCESS_BITS)
  71 #define _PAGE_CHG_MASK  (_PFN_MASK | __DIRTY_BITS | __ACCESS_BITS)
  72 
  73 /*
  74  * All the normal masks have the "page accessed" bits on, as any time they are used,
  75  * the page is accessed. They are cleared only by the page-out routines
  76  */
  77 #define PAGE_NONE       __pgprot(_PAGE_VALID | __ACCESS_BITS | _PAGE_FOR | _PAGE_FOW | _PAGE_FOE)
  78 #define PAGE_SHARED     __pgprot(_PAGE_VALID | __ACCESS_BITS)
  79 #define PAGE_COPY       __pgprot(_PAGE_VALID | __ACCESS_BITS | _PAGE_FOW | _PAGE_COW)
  80 #define PAGE_READONLY   __pgprot(_PAGE_VALID | __ACCESS_BITS | _PAGE_FOW)
  81 #define PAGE_KERNEL     __pgprot(_PAGE_VALID | _PAGE_ASM | _PAGE_KRE | _PAGE_KWE)
  82 
  83 #define _PAGE_NORMAL(x) __pgprot(_PAGE_VALID | __ACCESS_BITS | (x))
  84 
  85 #define __P000  _PAGE_NORMAL(_PAGE_COW | _PAGE_FOR | _PAGE_FOW | _PAGE_FOE)
  86 #define __P001  _PAGE_NORMAL(_PAGE_COW | _PAGE_FOW | _PAGE_FOE)
  87 #define __P010  _PAGE_NORMAL(_PAGE_COW | _PAGE_FOR | _PAGE_FOE)
  88 #define __P011  _PAGE_NORMAL(_PAGE_COW | _PAGE_FOE)
  89 #define __P100  _PAGE_NORMAL(_PAGE_COW | _PAGE_FOR | _PAGE_FOW)
  90 #define __P101  _PAGE_NORMAL(_PAGE_COW | _PAGE_FOW)
  91 #define __P110  _PAGE_NORMAL(_PAGE_COW | _PAGE_FOR)
  92 #define __P111  _PAGE_NORMAL(_PAGE_COW)
  93 
  94 #define __S000  _PAGE_NORMAL(_PAGE_FOR | _PAGE_FOW | _PAGE_FOE)
  95 #define __S001  _PAGE_NORMAL(_PAGE_FOW | _PAGE_FOE)
  96 #define __S010  _PAGE_NORMAL(_PAGE_FOR | _PAGE_FOE)
  97 #define __S011  _PAGE_NORMAL(_PAGE_FOE)
  98 #define __S100  _PAGE_NORMAL(_PAGE_FOR | _PAGE_FOW)
  99 #define __S101  _PAGE_NORMAL(_PAGE_FOW)
 100 #define __S110  _PAGE_NORMAL(_PAGE_FOR)
 101 #define __S111  _PAGE_NORMAL(0)
 102 
 103 /*
 104  * BAD_PAGETABLE is used when we need a bogus page-table, while
 105  * BAD_PAGE is used for a bogus page.
 106  *
 107  * ZERO_PAGE is a global shared page that is always zero: used
 108  * for zero-mapped memory areas etc..
 109  */
 110 extern pte_t __bad_page(void);
 111 extern pmd_t * __bad_pagetable(void);
 112 
 113 extern unsigned long __zero_page(void);
 114 
 115 #define BAD_PAGETABLE __bad_pagetable()
 116 #define BAD_PAGE __bad_page()
 117 #define ZERO_PAGE __zero_page()
 118 
 119 /* number of bits that fit into a memory pointer */
 120 #define BITS_PER_PTR                    (8*sizeof(unsigned long))
 121 
 122 /* to align the pointer to a pointer address */
 123 #define PTR_MASK                        (~(sizeof(void*)-1))
 124 
 125 /* sizeof(void*)==1<<SIZEOF_PTR_LOG2 */
 126 #define SIZEOF_PTR_LOG2                 3
 127 
 128 /* to find an entry in a page-table */
 129 #define PAGE_PTR(address)               \
 130   ((unsigned long)(address)>>(PAGE_SHIFT-SIZEOF_PTR_LOG2)&PTR_MASK&~PAGE_MASK)
 131 
 132 extern unsigned long high_memory;
 133 
 134 /*
 135  * Conversion functions: convert a page and protection to a page entry,
 136  * and a page entry and page directory to the page they refer to.
 137  */
 138 extern inline pte_t mk_pte(unsigned long page, pgprot_t pgprot)
     /* [previous][next][first][last][top][bottom][index][help] */
 139 { pte_t pte; pte_val(pte) = ((page-PAGE_OFFSET) << (32-PAGE_SHIFT)) | pgprot_val(pgprot); return pte; }
 140 
 141 extern inline pte_t pte_modify(pte_t pte, pgprot_t newprot)
     /* [previous][next][first][last][top][bottom][index][help] */
 142 { pte_val(pte) = (pte_val(pte) & _PAGE_CHG_MASK) | pgprot_val(newprot); return pte; }
 143 
 144 extern inline void pmd_set(pmd_t * pmdp, pte_t * ptep)
     /* [previous][next][first][last][top][bottom][index][help] */
 145 { pmd_val(*pmdp) = _PAGE_TABLE | ((((unsigned long) ptep) - PAGE_OFFSET) << (32-PAGE_SHIFT)); }
 146 
 147 extern inline void pgd_set(pgd_t * pgdp, pmd_t * pmdp)
     /* [previous][next][first][last][top][bottom][index][help] */
 148 { pgd_val(*pgdp) = _PAGE_TABLE | ((((unsigned long) pmdp) - PAGE_OFFSET) << (32-PAGE_SHIFT)); }
 149 
 150 extern inline unsigned long pte_page(pte_t pte)
     /* [previous][next][first][last][top][bottom][index][help] */
 151 { return PAGE_OFFSET + ((pte_val(pte) & _PFN_MASK) >> (32-PAGE_SHIFT)); }
 152 
 153 extern inline unsigned long pmd_page(pmd_t pmd)
     /* [previous][next][first][last][top][bottom][index][help] */
 154 { return PAGE_OFFSET + ((pmd_val(pmd) & _PFN_MASK) >> (32-PAGE_SHIFT)); }
 155 
 156 extern inline unsigned long pgd_page(pgd_t pgd)
     /* [previous][next][first][last][top][bottom][index][help] */
 157 { return PAGE_OFFSET + ((pgd_val(pgd) & _PFN_MASK) >> (32-PAGE_SHIFT)); }
 158 
 159 extern inline int pte_none(pte_t pte)           { return !pte_val(pte); }
     /* [previous][next][first][last][top][bottom][index][help] */
 160 extern inline int pte_present(pte_t pte)        { return pte_val(pte) & _PAGE_VALID; }
     /* [previous][next][first][last][top][bottom][index][help] */
 161 extern inline int pte_inuse(pte_t *ptep)        { return mem_map[MAP_NR(ptep)] > 1; }
     /* [previous][next][first][last][top][bottom][index][help] */
 162 extern inline void pte_clear(pte_t *ptep)       { pte_val(*ptep) = 0; }
     /* [previous][next][first][last][top][bottom][index][help] */
 163 extern inline void pte_reuse(pte_t * ptep)
     /* [previous][next][first][last][top][bottom][index][help] */
 164 {
 165         if (!(mem_map[MAP_NR(ptep)] & MAP_PAGE_RESERVED))
 166                 mem_map[MAP_NR(ptep)]++;
 167 }
 168 
 169 extern inline int pmd_none(pmd_t pmd)           { return !pmd_val(pmd); }
     /* [previous][next][first][last][top][bottom][index][help] */
 170 extern inline int pmd_bad(pmd_t pmd)            { return (pmd_val(pmd) & ~_PFN_MASK) != _PAGE_TABLE || pmd_page(pmd) > high_memory; }
     /* [previous][next][first][last][top][bottom][index][help] */
 171 extern inline int pmd_present(pmd_t pmd)        { return pmd_val(pmd) & _PAGE_VALID; }
     /* [previous][next][first][last][top][bottom][index][help] */
 172 extern inline int pmd_inuse(pmd_t *pmdp)        { return mem_map[MAP_NR(pmdp)] > 1; }
     /* [previous][next][first][last][top][bottom][index][help] */
 173 extern inline void pmd_clear(pmd_t * pmdp)      { pmd_val(*pmdp) = 0; }
     /* [previous][next][first][last][top][bottom][index][help] */
 174 extern inline void pmd_reuse(pmd_t * pmdp)
     /* [previous][next][first][last][top][bottom][index][help] */
 175 {
 176         if (!(mem_map[MAP_NR(pmdp)] & MAP_PAGE_RESERVED))
 177                 mem_map[MAP_NR(pmdp)]++;
 178 }
 179 
 180 extern inline int pgd_none(pgd_t pgd)           { return !pgd_val(pgd); }
     /* [previous][next][first][last][top][bottom][index][help] */
 181 extern inline int pgd_bad(pgd_t pgd)            { return (pgd_val(pgd) & ~_PFN_MASK) != _PAGE_TABLE || pgd_page(pgd) > high_memory; }
     /* [previous][next][first][last][top][bottom][index][help] */
 182 extern inline int pgd_present(pgd_t pgd)        { return pgd_val(pgd) & _PAGE_VALID; }
     /* [previous][next][first][last][top][bottom][index][help] */
 183 extern inline int pgd_inuse(pgd_t *pgdp)        { return mem_map[MAP_NR(pgdp)] > 1; }
     /* [previous][next][first][last][top][bottom][index][help] */
 184 extern inline void pgd_clear(pgd_t * pgdp)      { pgd_val(*pgdp) = 0; }
     /* [previous][next][first][last][top][bottom][index][help] */
 185 extern inline void pgd_reuse(pgd_t * pgdp)
     /* [previous][next][first][last][top][bottom][index][help] */
 186 {
 187         if (!(mem_map[MAP_NR(pgdp)] & MAP_PAGE_RESERVED))
 188                 mem_map[MAP_NR(pgdp)]++;
 189 }
 190 
 191 /*
 192  * The following only work if pte_present() is true.
 193  * Undefined behaviour if not..
 194  */
 195 extern inline int pte_read(pte_t pte)           { return !(pte_val(pte) & _PAGE_FOR); }
     /* [previous][next][first][last][top][bottom][index][help] */
 196 extern inline int pte_write(pte_t pte)          { return !(pte_val(pte) & _PAGE_FOW); }
     /* [previous][next][first][last][top][bottom][index][help] */
 197 extern inline int pte_exec(pte_t pte)           { return !(pte_val(pte) & _PAGE_FOE); }
     /* [previous][next][first][last][top][bottom][index][help] */
 198 extern inline int pte_dirty(pte_t pte)          { return pte_val(pte) & _PAGE_DIRTY; }
     /* [previous][next][first][last][top][bottom][index][help] */
 199 extern inline int pte_young(pte_t pte)          { return pte_val(pte) & _PAGE_ACCESSED; }
     /* [previous][next][first][last][top][bottom][index][help] */
 200 extern inline int pte_cow(pte_t pte)            { return pte_val(pte) & _PAGE_COW; }
     /* [previous][next][first][last][top][bottom][index][help] */
 201 
 202 extern inline pte_t pte_wrprotect(pte_t pte)    { pte_val(pte) |= _PAGE_FOW; return pte; }
     /* [previous][next][first][last][top][bottom][index][help] */
 203 extern inline pte_t pte_rdprotect(pte_t pte)    { pte_val(pte) |= _PAGE_FOR; return pte; }
     /* [previous][next][first][last][top][bottom][index][help] */
 204 extern inline pte_t pte_exprotect(pte_t pte)    { pte_val(pte) |= _PAGE_FOE; return pte; }
     /* [previous][next][first][last][top][bottom][index][help] */
 205 extern inline pte_t pte_mkclean(pte_t pte)      { pte_val(pte) &= ~(__DIRTY_BITS); return pte; }
     /* [previous][next][first][last][top][bottom][index][help] */
 206 extern inline pte_t pte_mkold(pte_t pte)        { pte_val(pte) &= ~(__ACCESS_BITS); return pte; }
     /* [previous][next][first][last][top][bottom][index][help] */
 207 extern inline pte_t pte_uncow(pte_t pte)        { pte_val(pte) &= ~_PAGE_COW; return pte; }
     /* [previous][next][first][last][top][bottom][index][help] */
 208 extern inline pte_t pte_mkwrite(pte_t pte)      { pte_val(pte) &= _PAGE_FOW; return pte; }
     /* [previous][next][first][last][top][bottom][index][help] */
 209 extern inline pte_t pte_mkread(pte_t pte)       { pte_val(pte) &= _PAGE_FOR; return pte; }
     /* [previous][next][first][last][top][bottom][index][help] */
 210 extern inline pte_t pte_mkexec(pte_t pte)       { pte_val(pte) &= _PAGE_FOE; return pte; }
     /* [previous][next][first][last][top][bottom][index][help] */
 211 extern inline pte_t pte_mkdirty(pte_t pte)      { pte_val(pte) |= __DIRTY_BITS; return pte; }
     /* [previous][next][first][last][top][bottom][index][help] */
 212 extern inline pte_t pte_mkyoung(pte_t pte)      { pte_val(pte) |= __ACCESS_BITS; return pte; }
     /* [previous][next][first][last][top][bottom][index][help] */
 213 extern inline pte_t pte_mkcow(pte_t pte)        { pte_val(pte) |= _PAGE_COW; return pte; }
     /* [previous][next][first][last][top][bottom][index][help] */
 214 
 215 /* to set the page-dir */
 216 extern inline void SET_PAGE_DIR(struct task_struct * tsk, pgd_t * pgdir)
     /* [previous][next][first][last][top][bottom][index][help] */
 217 {
 218         tsk->tss.ptbr = ((unsigned long) pgdir - PAGE_OFFSET) >> PAGE_SHIFT;
 219         if (tsk == current)
 220                 invalidate();
 221 }
 222 
 223 #define PAGE_DIR_OFFSET(tsk,address) pgd_offset((tsk),(address))
 224 
 225 /* to find an entry in a page-table-directory */
 226 extern inline pgd_t * pgd_offset(struct task_struct * tsk, unsigned long address)
     /* [previous][next][first][last][top][bottom][index][help] */
 227 {
 228         return (pgd_t *) ((tsk->tss.ptbr << PAGE_SHIFT) + PAGE_OFFSET) +
 229                 ((address >> PGDIR_SHIFT) & (PTRS_PER_PGD - 1));
 230 }
 231 
 232 /* Find an entry in the second-level page table.. */
 233 extern inline pmd_t * pmd_offset(pgd_t * dir, unsigned long address)
     /* [previous][next][first][last][top][bottom][index][help] */
 234 {
 235         return (pmd_t *) pgd_page(*dir) + ((address >> PMD_SHIFT) & (PTRS_PER_PMD - 1));
 236 }
 237 
 238 /* Find an entry in the third-level page table.. */
 239 extern inline pte_t * pte_offset(pmd_t * dir, unsigned long address)
     /* [previous][next][first][last][top][bottom][index][help] */
 240 {
 241         return (pte_t *) pmd_page(*dir) + ((address >> PAGE_SHIFT) & (PTRS_PER_PTE - 1));
 242 }
 243 
 244 /*              
 245  * Allocate and free page tables. The xxx_kernel() versions are
 246  * used to allocate a kernel page table - this turns on ASN bits
 247  * if any, and marks the page tables reserved.
 248  */
 249 extern inline void pte_free_kernel(pte_t * pte)
     /* [previous][next][first][last][top][bottom][index][help] */
 250 {
 251         mem_map[MAP_NR(pte)] = 1;
 252         free_page((unsigned long) pte);
 253 }
 254 
 255 extern inline pte_t * pte_alloc_kernel(pmd_t *pmd, unsigned long address)
     /* [previous][next][first][last][top][bottom][index][help] */
 256 {
 257         address = (address >> PAGE_SHIFT) & (PTRS_PER_PTE - 1);
 258         if (pmd_none(*pmd)) {
 259                 pte_t *page = (pte_t *) get_free_page(GFP_KERNEL);
 260                 if (pmd_none(*pmd)) {
 261                         if (page) {
 262                                 pmd_set(pmd, page);
 263                                 mem_map[MAP_NR(page)] = MAP_PAGE_RESERVED;
 264                                 return page + address;
 265                         }
 266                         pmd_set(pmd, (pte_t *) BAD_PAGETABLE);
 267                         return NULL;
 268                 }
 269                 free_page((unsigned long) page);
 270         }
 271         if (pmd_bad(*pmd)) {
 272                 printk("Bad pmd in pte_alloc: %08lx\n", pmd_val(*pmd));
 273                 pmd_set(pmd, (pte_t *) BAD_PAGETABLE);
 274                 return NULL;
 275         }
 276         return (pte_t *) pmd_page(*pmd) + address;
 277 }
 278 
 279 extern inline void pmd_free_kernel(pmd_t * pmd)
     /* [previous][next][first][last][top][bottom][index][help] */
 280 {
 281         mem_map[MAP_NR(pmd)] = 1;
 282         free_page((unsigned long) pmd);
 283 }
 284 
 285 extern inline pmd_t * pmd_alloc_kernel(pgd_t *pgd, unsigned long address)
     /* [previous][next][first][last][top][bottom][index][help] */
 286 {
 287         address = (address >> PMD_SHIFT) & (PTRS_PER_PMD - 1);
 288         if (pgd_none(*pgd)) {
 289                 pmd_t *page = (pmd_t *) get_free_page(GFP_KERNEL);
 290                 if (pgd_none(*pgd)) {
 291                         if (page) {
 292                                 pgd_set(pgd, page);
 293                                 mem_map[MAP_NR(page)] = MAP_PAGE_RESERVED;
 294                                 return page + address;
 295                         }
 296                         pgd_set(pgd, BAD_PAGETABLE);
 297                         return NULL;
 298                 }
 299                 free_page((unsigned long) page);
 300         }
 301         if (pgd_bad(*pgd)) {
 302                 printk("Bad pgd in pmd_alloc: %08lx\n", pgd_val(*pgd));
 303                 pgd_set(pgd, BAD_PAGETABLE);
 304                 return NULL;
 305         }
 306         return (pmd_t *) pgd_page(*pgd) + address;
 307 }
 308 
 309 extern inline void pte_free(pte_t * pte)
     /* [previous][next][first][last][top][bottom][index][help] */
 310 {
 311         free_page((unsigned long) pte);
 312 }
 313 
 314 extern inline pte_t * pte_alloc(pmd_t *pmd, unsigned long address)
     /* [previous][next][first][last][top][bottom][index][help] */
 315 {
 316         address = (address >> PAGE_SHIFT) & (PTRS_PER_PTE - 1);
 317         if (pmd_none(*pmd)) {
 318                 pte_t *page = (pte_t *) get_free_page(GFP_KERNEL);
 319                 if (pmd_none(*pmd)) {
 320                         if (page) {
 321                                 pmd_set(pmd, page);
 322                                 return page + address;
 323                         }
 324                         pmd_set(pmd, (pte_t *) BAD_PAGETABLE);
 325                         return NULL;
 326                 }
 327                 free_page((unsigned long) page);
 328         }
 329         if (pmd_bad(*pmd)) {
 330                 printk("Bad pmd in pte_alloc: %08lx\n", pmd_val(*pmd));
 331                 pmd_set(pmd, (pte_t *) BAD_PAGETABLE);
 332                 return NULL;
 333         }
 334         return (pte_t *) pmd_page(*pmd) + address;
 335 }
 336 
 337 extern inline void pmd_free(pmd_t * pmd)
     /* [previous][next][first][last][top][bottom][index][help] */
 338 {
 339         free_page((unsigned long) pmd);
 340 }
 341 
 342 extern inline pmd_t * pmd_alloc(pgd_t *pgd, unsigned long address)
     /* [previous][next][first][last][top][bottom][index][help] */
 343 {
 344         address = (address >> PMD_SHIFT) & (PTRS_PER_PMD - 1);
 345         if (pgd_none(*pgd)) {
 346                 pmd_t *page = (pmd_t *) get_free_page(GFP_KERNEL);
 347                 if (pgd_none(*pgd)) {
 348                         if (page) {
 349                                 pgd_set(pgd, page);
 350                                 return page + address;
 351                         }
 352                         pgd_set(pgd, BAD_PAGETABLE);
 353                         return NULL;
 354                 }
 355                 free_page((unsigned long) page);
 356         }
 357         if (pgd_bad(*pgd)) {
 358                 printk("Bad pgd in pmd_alloc: %08lx\n", pgd_val(*pgd));
 359                 pgd_set(pgd, BAD_PAGETABLE);
 360                 return NULL;
 361         }
 362         return (pmd_t *) pgd_page(*pgd) + address;
 363 }
 364 
 365 extern inline void pgd_free(pgd_t * pgd)
     /* [previous][next][first][last][top][bottom][index][help] */
 366 {
 367         free_page((unsigned long) pgd);
 368 }
 369 
 370 extern inline pgd_t * pgd_alloc(void)
     /* [previous][next][first][last][top][bottom][index][help] */
 371 {
 372         return (pgd_t *) get_free_page(GFP_KERNEL);
 373 }
 374 
 375 extern pgd_t swapper_pg_dir[1024];
 376 
 377 #endif /* _ALPHA_PGTABLE_H */

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