linux/arch/x86/mm/pgtable.c History
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   1#include <linux/mm.h>
   2#include <asm/pgalloc.h>
   3#include <asm/pgtable.h>
   4#include <asm/tlb.h>
   5#include <asm/fixmap.h>
   6
   7#define PGALLOC_GFP GFP_KERNEL | __GFP_NOTRACK | __GFP_REPEAT | __GFP_ZERO
   8
   9pte_t *pte_alloc_one_kernel(struct mm_struct *mm, unsigned long address)
  10{
  11        return (pte_t *)__get_free_page(PGALLOC_GFP);
  12}
  13
  14pgtable_t pte_alloc_one(struct mm_struct *mm, unsigned long address)
  15{
  16        struct page *pte;
  17
  18#ifdef CONFIG_HIGHPTE
  19        pte = alloc_pages(PGALLOC_GFP | __GFP_HIGHMEM, 0);
  20#else
  21        pte = alloc_pages(PGALLOC_GFP, 0);
  22#endif
  23        if (pte)
  24                pgtable_page_ctor(pte);
  25        return pte;
  26}
  27
  28void ___pte_free_tlb(struct mmu_gather *tlb, struct page *pte)
  29{
  30        pgtable_page_dtor(pte);
  31        paravirt_release_pte(page_to_pfn(pte));
  32        tlb_remove_page(tlb, pte);
  33}
  34
  35#if PAGETABLE_LEVELS > 2
  36void ___pmd_free_tlb(struct mmu_gather *tlb, pmd_t *pmd)
  37{
  38        paravirt_release_pmd(__pa(pmd) >> PAGE_SHIFT);
  39        tlb_remove_page(tlb, virt_to_page(pmd));
  40}
  41
  42#if PAGETABLE_LEVELS > 3
  43void ___pud_free_tlb(struct mmu_gather *tlb, pud_t *pud)
  44{
  45        paravirt_release_pud(__pa(pud) >> PAGE_SHIFT);
  46        tlb_remove_page(tlb, virt_to_page(pud));
  47}
  48#endif  /* PAGETABLE_LEVELS > 3 */
  49#endif  /* PAGETABLE_LEVELS > 2 */
  50
  51static inline void pgd_list_add(pgd_t *pgd)
  52{
  53        struct page *page = virt_to_page(pgd);
  54
  55        list_add(&page->lru, &pgd_list);
  56}
  57
  58static inline void pgd_list_del(pgd_t *pgd)
  59{
  60        struct page *page = virt_to_page(pgd);
  61
  62        list_del(&page->lru);
  63}
  64
  65#define UNSHARED_PTRS_PER_PGD                           \
  66        (SHARED_KERNEL_PMD ? KERNEL_PGD_BOUNDARY : PTRS_PER_PGD)
  67
  68static void pgd_ctor(pgd_t *pgd)
  69{
  70        /* If the pgd points to a shared pagetable level (either the
  71           ptes in non-PAE, or shared PMD in PAE), then just copy the
  72           references from swapper_pg_dir. */
  73        if (PAGETABLE_LEVELS == 2 ||
  74            (PAGETABLE_LEVELS == 3 && SHARED_KERNEL_PMD) ||
  75            PAGETABLE_LEVELS == 4) {
  76                clone_pgd_range(pgd + KERNEL_PGD_BOUNDARY,
  77                                swapper_pg_dir + KERNEL_PGD_BOUNDARY,
  78                                KERNEL_PGD_PTRS);
  79                paravirt_alloc_pmd_clone(__pa(pgd) >> PAGE_SHIFT,
  80                                         __pa(swapper_pg_dir) >> PAGE_SHIFT,
  81                                         KERNEL_PGD_BOUNDARY,
  82                                         KERNEL_PGD_PTRS);
  83        }
  84
  85        /* list required to sync kernel mapping updates */
  86        if (!SHARED_KERNEL_PMD)
  87                pgd_list_add(pgd);
  88}
  89
  90static void pgd_dtor(pgd_t *pgd)
  91{
  92        unsigned long flags; /* can be called from interrupt context */
  93
  94        if (SHARED_KERNEL_PMD)
  95                return;
  96
  97        spin_lock_irqsave(&pgd_lock, flags);
  98        pgd_list_del(pgd);
  99        spin_unlock_irqrestore(&pgd_lock, flags);
 100}
 101
 102/*
 103 * List of all pgd's needed for non-PAE so it can invalidate entries
 104 * in both cached and uncached pgd's; not needed for PAE since the
 105 * kernel pmd is shared. If PAE were not to share the pmd a similar
 106 * tactic would be needed. This is essentially codepath-based locking
 107 * against pageattr.c; it is the unique case in which a valid change
 108 * of kernel pagetables can't be lazily synchronized by vmalloc faults.
 109 * vmalloc faults work because attached pagetables are never freed.
 110 * -- wli
 111 */
 112
 113#ifdef CONFIG_X86_PAE
 114/*
 115 * In PAE mode, we need to do a cr3 reload (=tlb flush) when
 116 * updating the top-level pagetable entries to guarantee the
 117 * processor notices the update.  Since this is expensive, and
 118 * all 4 top-level entries are used almost immediately in a
 119 * new process's life, we just pre-populate them here.
 120 *
 121 * Also, if we're in a paravirt environment where the kernel pmd is
 122 * not shared between pagetables (!SHARED_KERNEL_PMDS), we allocate
 123 * and initialize the kernel pmds here.
 124 */
 125#define PREALLOCATED_PMDS       UNSHARED_PTRS_PER_PGD
 126
 127void pud_populate(struct mm_struct *mm, pud_t *pudp, pmd_t *pmd)
 128{
 129        paravirt_alloc_pmd(mm, __pa(pmd) >> PAGE_SHIFT);
 130
 131        /* Note: almost everything apart from _PAGE_PRESENT is
 132           reserved at the pmd (PDPT) level. */
 133        set_pud(pudp, __pud(__pa(pmd) | _PAGE_PRESENT));
 134
 135        /*
 136         * According to Intel App note "TLBs, Paging-Structure Caches,
 137         * and Their Invalidation", April 2007, document 317080-001,
 138         * section 8.1: in PAE mode we explicitly have to flush the
 139         * TLB via cr3 if the top-level pgd is changed...
 140         */
 141        if (mm == current->active_mm)
 142                write_cr3(read_cr3());
 143}
 144#else  /* !CONFIG_X86_PAE */
 145
 146/* No need to prepopulate any pagetable entries in non-PAE modes. */
 147#define PREALLOCATED_PMDS       0
 148
 149#endif  /* CONFIG_X86_PAE */
 150
 151static void free_pmds(pmd_t *pmds[])
 152{
 153        int i;
 154
 155        for(i = 0; i < PREALLOCATED_PMDS; i++)
 156                if (pmds[i])
 157                        free_page((unsigned long)pmds[i]);
 158}
 159
 160static int preallocate_pmds(pmd_t *pmds[])
 161{
 162        int i;
 163        bool failed = false;
 164
 165        for(i = 0; i < PREALLOCATED_PMDS; i++) {
 166                pmd_t *pmd = (pmd_t *)__get_free_page(PGALLOC_GFP);
 167                if (pmd == NULL)
 168                        failed = true;
 169                pmds[i] = pmd;
 170        }
 171
 172        if (failed) {
 173                free_pmds(pmds);
 174                return -ENOMEM;
 175        }
 176
 177        return 0;
 178}
 179
 180/*
 181 * Mop up any pmd pages which may still be attached to the pgd.
 182 * Normally they will be freed by munmap/exit_mmap, but any pmd we
 183 * preallocate which never got a corresponding vma will need to be
 184 * freed manually.
 185 */
 186static void pgd_mop_up_pmds(struct mm_struct *mm, pgd_t *pgdp)
 187{
 188        int i;
 189
 190        for(i = 0; i < PREALLOCATED_PMDS; i++) {
 191                pgd_t pgd = pgdp[i];
 192
 193                if (pgd_val(pgd) != 0) {
 194                        pmd_t *pmd = (pmd_t *)pgd_page_vaddr(pgd);
 195
 196                        pgdp[i] = native_make_pgd(0);
 197
 198                        paravirt_release_pmd(pgd_val(pgd) >> PAGE_SHIFT);
 199                        pmd_free(mm, pmd);
 200                }
 201        }
 202}
 203
 204static void pgd_prepopulate_pmd(struct mm_struct *mm, pgd_t *pgd, pmd_t *pmds[])
 205{
 206        pud_t *pud;
 207        unsigned long addr;
 208        int i;
 209
 210        if (PREALLOCATED_PMDS == 0) /* Work around gcc-3.4.x bug */
 211                return;
 212
 213        pud = pud_offset(pgd, 0);
 214
 215        for (addr = i = 0; i < PREALLOCATED_PMDS;
 216             i++, pud++, addr += PUD_SIZE) {
 217                pmd_t *pmd = pmds[i];
 218
 219                if (i >= KERNEL_PGD_BOUNDARY)
 220                        memcpy(pmd, (pmd_t *)pgd_page_vaddr(swapper_pg_dir[i]),
 221                               sizeof(pmd_t) * PTRS_PER_PMD);
 222
 223                pud_populate(mm, pud, pmd);
 224        }
 225}
 226
 227pgd_t *pgd_alloc(struct mm_struct *mm)
 228{
 229        pgd_t *pgd;
 230        pmd_t *pmds[PREALLOCATED_PMDS];
 231        unsigned long flags;
 232
 233        pgd = (pgd_t *)__get_free_page(PGALLOC_GFP);
 234
 235        if (pgd == NULL)
 236                goto out;
 237
 238        mm->pgd = pgd;
 239
 240        if (preallocate_pmds(pmds) != 0)
 241                goto out_free_pgd;
 242
 243        if (paravirt_pgd_alloc(mm) != 0)
 244                goto out_free_pmds;
 245
 246        /*
 247         * Make sure that pre-populating the pmds is atomic with
 248         * respect to anything walking the pgd_list, so that they
 249         * never see a partially populated pgd.
 250         */
 251        spin_lock_irqsave(&pgd_lock, flags);
 252
 253        pgd_ctor(pgd);
 254        pgd_prepopulate_pmd(mm, pgd, pmds);
 255
 256        spin_unlock_irqrestore(&pgd_lock, flags);
 257
 258        return pgd;
 259
 260out_free_pmds:
 261        free_pmds(pmds);
 262out_free_pgd:
 263        free_page((unsigned long)pgd);
 264out:
 265        return NULL;
 266}
 267
 268void pgd_free(struct mm_struct *mm, pgd_t *pgd)
 269{
 270        pgd_mop_up_pmds(mm, pgd);
 271        pgd_dtor(pgd);
 272        paravirt_pgd_free(mm, pgd);
 273        free_page((unsigned long)pgd);
 274}
 275
 276int ptep_set_access_flags(struct vm_area_struct *vma,
 277                          unsigned long address, pte_t *ptep,
 278                          pte_t entry, int dirty)
 279{
 280        int changed = !pte_same(*ptep, entry);
 281
 282        if (changed && dirty) {
 283                *ptep = entry;
 284                pte_update_defer(vma->vm_mm, address, ptep);
 285                flush_tlb_page(vma, address);
 286        }
 287
 288        return changed;
 289}
 290
 291int ptep_test_and_clear_young(struct vm_area_struct *vma,
 292                              unsigned long addr, pte_t *ptep)
 293{
 294        int ret = 0;
 295
 296        if (pte_young(*ptep))
 297                ret = test_and_clear_bit(_PAGE_BIT_ACCESSED,
 298                                         (unsigned long *) &ptep->pte);
 299
 300        if (ret)
 301                pte_update(vma->vm_mm, addr, ptep);
 302
 303        return ret;
 304}
 305
 306int ptep_clear_flush_young(struct vm_area_struct *vma,
 307                           unsigned long address, pte_t *ptep)
 308{
 309        int young;
 310
 311        young = ptep_test_and_clear_young(vma, address, ptep);
 312        if (young)
 313                flush_tlb_page(vma, address);
 314
 315        return young;
 316}
 317
 318/**
 319 * reserve_top_address - reserves a hole in the top of kernel address space
 320 * @reserve - size of hole to reserve
 321 *
 322 * Can be used to relocate the fixmap area and poke a hole in the top
 323 * of kernel address space to make room for a hypervisor.
 324 */
 325void __init reserve_top_address(unsigned long reserve)
 326{
 327#ifdef CONFIG_X86_32
 328        BUG_ON(fixmaps_set > 0);
 329        printk(KERN_INFO "Reserving virtual address space above 0x%08x\n",
 330               (int)-reserve);
 331        __FIXADDR_TOP = -reserve - PAGE_SIZE;
 332#endif
 333}
 334
 335int fixmaps_set;
 336
 337void __native_set_fixmap(enum fixed_addresses idx, pte_t pte)
 338{
 339        unsigned long address = __fix_to_virt(idx);
 340
 341        if (idx >= __end_of_fixed_addresses) {
 342                BUG();
 343                return;
 344        }
 345        set_pte_vaddr(address, pte);
 346        fixmaps_set++;
 347}
 348
 349void native_set_fixmap(enum fixed_addresses idx, phys_addr_t phys,
 350                       pgprot_t flags)
 351{
 352        __native_set_fixmap(idx, pfn_pte(phys >> PAGE_SHIFT, flags));
 353}
 354
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