pgtable.h 16 KB

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  1. /* MN10300 Page table manipulators and constants
  2. *
  3. * Copyright (C) 2007 Red Hat, Inc. All Rights Reserved.
  4. * Written by David Howells (dhowells@redhat.com)
  5. *
  6. * This program is free software; you can redistribute it and/or
  7. * modify it under the terms of the GNU General Public Licence
  8. * as published by the Free Software Foundation; either version
  9. * 2 of the Licence, or (at your option) any later version.
  10. *
  11. *
  12. * The Linux memory management assumes a three-level page table setup. On
  13. * the i386, we use that, but "fold" the mid level into the top-level page
  14. * table, so that we physically have the same two-level page table as the
  15. * i386 mmu expects.
  16. *
  17. * This file contains the functions and defines necessary to modify and use
  18. * the i386 page table tree for the purposes of the MN10300 TLB handler
  19. * functions.
  20. */
  21. #ifndef _ASM_PGTABLE_H
  22. #define _ASM_PGTABLE_H
  23. #include <asm/cpu-regs.h>
  24. #ifndef __ASSEMBLY__
  25. #include <asm/processor.h>
  26. #include <asm/cache.h>
  27. #include <linux/threads.h>
  28. #include <asm/bitops.h>
  29. #include <linux/slab.h>
  30. #include <linux/list.h>
  31. #include <linux/spinlock.h>
  32. /*
  33. * ZERO_PAGE is a global shared page that is always zero: used
  34. * for zero-mapped memory areas etc..
  35. */
  36. #define ZERO_PAGE(vaddr) (virt_to_page(empty_zero_page))
  37. extern unsigned long empty_zero_page[1024];
  38. extern spinlock_t pgd_lock;
  39. extern struct page *pgd_list;
  40. extern void pmd_ctor(void *, struct kmem_cache *, unsigned long);
  41. extern void pgtable_cache_init(void);
  42. extern void paging_init(void);
  43. #endif /* !__ASSEMBLY__ */
  44. /*
  45. * The Linux mn10300 paging architecture only implements both the traditional
  46. * 2-level page tables
  47. */
  48. #define PGDIR_SHIFT 22
  49. #define PTRS_PER_PGD 1024
  50. #define PTRS_PER_PUD 1 /* we don't really have any PUD physically */
  51. #define PTRS_PER_PMD 1 /* we don't really have any PMD physically */
  52. #define PTRS_PER_PTE 1024
  53. #define PGD_SIZE PAGE_SIZE
  54. #define PMD_SIZE (1UL << PMD_SHIFT)
  55. #define PGDIR_SIZE (1UL << PGDIR_SHIFT)
  56. #define PGDIR_MASK (~(PGDIR_SIZE - 1))
  57. #define USER_PTRS_PER_PGD (TASK_SIZE / PGDIR_SIZE)
  58. #define FIRST_USER_ADDRESS 0
  59. #define USER_PGD_PTRS (PAGE_OFFSET >> PGDIR_SHIFT)
  60. #define KERNEL_PGD_PTRS (PTRS_PER_PGD - USER_PGD_PTRS)
  61. #define TWOLEVEL_PGDIR_SHIFT 22
  62. #define BOOT_USER_PGD_PTRS (__PAGE_OFFSET >> TWOLEVEL_PGDIR_SHIFT)
  63. #define BOOT_KERNEL_PGD_PTRS (1024 - BOOT_USER_PGD_PTRS)
  64. #ifndef __ASSEMBLY__
  65. extern pgd_t swapper_pg_dir[PTRS_PER_PGD];
  66. #endif
  67. /*
  68. * Unfortunately, due to the way the MMU works on the MN10300, the vmalloc VM
  69. * area has to be in the lower half of the virtual address range (the upper
  70. * half is not translated through the TLB).
  71. *
  72. * So in this case, the vmalloc area goes at the bottom of the address map
  73. * (leaving a hole at the very bottom to catch addressing errors), and
  74. * userspace starts immediately above.
  75. *
  76. * The vmalloc() routines also leaves a hole of 4kB between each vmalloced
  77. * area to catch addressing errors.
  78. */
  79. #define VMALLOC_OFFSET (8 * 1024 * 1024)
  80. #define VMALLOC_START (0x70000000)
  81. #define VMALLOC_END (0x7C000000)
  82. #ifndef __ASSEMBLY__
  83. extern pte_t kernel_vmalloc_ptes[(VMALLOC_END - VMALLOC_START) / PAGE_SIZE];
  84. #endif
  85. /* IPTEL/DPTEL bit assignments */
  86. #define _PAGE_BIT_VALID xPTEL_V_BIT
  87. #define _PAGE_BIT_ACCESSED xPTEL_UNUSED1_BIT /* mustn't be loaded into IPTEL/DPTEL */
  88. #define _PAGE_BIT_NX xPTEL_UNUSED2_BIT /* mustn't be loaded into IPTEL/DPTEL */
  89. #define _PAGE_BIT_CACHE xPTEL_C_BIT
  90. #define _PAGE_BIT_PRESENT xPTEL_PV_BIT
  91. #define _PAGE_BIT_DIRTY xPTEL_D_BIT
  92. #define _PAGE_BIT_GLOBAL xPTEL_G_BIT
  93. #define _PAGE_VALID xPTEL_V
  94. #define _PAGE_ACCESSED xPTEL_UNUSED1
  95. #define _PAGE_NX xPTEL_UNUSED2 /* no-execute bit */
  96. #define _PAGE_CACHE xPTEL_C
  97. #define _PAGE_PRESENT xPTEL_PV
  98. #define _PAGE_DIRTY xPTEL_D
  99. #define _PAGE_PROT xPTEL_PR
  100. #define _PAGE_PROT_RKNU xPTEL_PR_ROK
  101. #define _PAGE_PROT_WKNU xPTEL_PR_RWK
  102. #define _PAGE_PROT_RKRU xPTEL_PR_ROK_ROU
  103. #define _PAGE_PROT_WKRU xPTEL_PR_RWK_ROU
  104. #define _PAGE_PROT_WKWU xPTEL_PR_RWK_RWU
  105. #define _PAGE_GLOBAL xPTEL_G
  106. #define _PAGE_PSE xPTEL_PS_4Mb /* 4MB page */
  107. #define _PAGE_FILE xPTEL_UNUSED1_BIT /* set:pagecache unset:swap */
  108. #define __PAGE_PROT_UWAUX 0x040
  109. #define __PAGE_PROT_USER 0x080
  110. #define __PAGE_PROT_WRITE 0x100
  111. #define _PAGE_PRESENTV (_PAGE_PRESENT|_PAGE_VALID)
  112. #define _PAGE_PROTNONE 0x000 /* If not present */
  113. #ifndef __ASSEMBLY__
  114. #define VMALLOC_VMADDR(x) ((unsigned long)(x))
  115. #define _PAGE_TABLE (_PAGE_PRESENTV | _PAGE_PROT_WKNU | _PAGE_ACCESSED | _PAGE_DIRTY)
  116. #define _PAGE_CHG_MASK (PTE_MASK | _PAGE_ACCESSED | _PAGE_DIRTY)
  117. #define __PAGE_NONE (_PAGE_PRESENTV | _PAGE_PROT_RKNU | _PAGE_ACCESSED | _PAGE_CACHE)
  118. #define __PAGE_SHARED (_PAGE_PRESENTV | _PAGE_PROT_WKWU | _PAGE_ACCESSED | _PAGE_CACHE)
  119. #define __PAGE_COPY (_PAGE_PRESENTV | _PAGE_PROT_RKRU | _PAGE_ACCESSED | _PAGE_CACHE)
  120. #define __PAGE_READONLY (_PAGE_PRESENTV | _PAGE_PROT_RKRU | _PAGE_ACCESSED | _PAGE_CACHE)
  121. #define PAGE_NONE __pgprot(__PAGE_NONE | _PAGE_NX)
  122. #define PAGE_SHARED_NOEXEC __pgprot(__PAGE_SHARED | _PAGE_NX)
  123. #define PAGE_COPY_NOEXEC __pgprot(__PAGE_COPY | _PAGE_NX)
  124. #define PAGE_READONLY_NOEXEC __pgprot(__PAGE_READONLY | _PAGE_NX)
  125. #define PAGE_SHARED_EXEC __pgprot(__PAGE_SHARED)
  126. #define PAGE_COPY_EXEC __pgprot(__PAGE_COPY)
  127. #define PAGE_READONLY_EXEC __pgprot(__PAGE_READONLY)
  128. #define PAGE_COPY PAGE_COPY_NOEXEC
  129. #define PAGE_READONLY PAGE_READONLY_NOEXEC
  130. #define PAGE_SHARED PAGE_SHARED_EXEC
  131. #define __PAGE_KERNEL_BASE (_PAGE_PRESENTV | _PAGE_DIRTY | _PAGE_ACCESSED | _PAGE_GLOBAL)
  132. #define __PAGE_KERNEL (__PAGE_KERNEL_BASE | _PAGE_PROT_WKNU | _PAGE_CACHE | _PAGE_NX)
  133. #define __PAGE_KERNEL_NOCACHE (__PAGE_KERNEL_BASE | _PAGE_PROT_WKNU | _PAGE_NX)
  134. #define __PAGE_KERNEL_EXEC (__PAGE_KERNEL & ~_PAGE_NX)
  135. #define __PAGE_KERNEL_RO (__PAGE_KERNEL_BASE | _PAGE_PROT_RKNU | _PAGE_CACHE | _PAGE_NX)
  136. #define __PAGE_KERNEL_LARGE (__PAGE_KERNEL | _PAGE_PSE)
  137. #define __PAGE_KERNEL_LARGE_EXEC (__PAGE_KERNEL_EXEC | _PAGE_PSE)
  138. #define PAGE_KERNEL __pgprot(__PAGE_KERNEL)
  139. #define PAGE_KERNEL_RO __pgprot(__PAGE_KERNEL_RO)
  140. #define PAGE_KERNEL_EXEC __pgprot(__PAGE_KERNEL_EXEC)
  141. #define PAGE_KERNEL_NOCACHE __pgprot(__PAGE_KERNEL_NOCACHE)
  142. #define PAGE_KERNEL_LARGE __pgprot(__PAGE_KERNEL_LARGE)
  143. #define PAGE_KERNEL_LARGE_EXEC __pgprot(__PAGE_KERNEL_LARGE_EXEC)
  144. /*
  145. * Whilst the MN10300 can do page protection for execute (given separate data
  146. * and insn TLBs), we are not supporting it at the moment. Write permission,
  147. * however, always implies read permission (but not execute permission).
  148. */
  149. #define __P000 PAGE_NONE
  150. #define __P001 PAGE_READONLY_NOEXEC
  151. #define __P010 PAGE_COPY_NOEXEC
  152. #define __P011 PAGE_COPY_NOEXEC
  153. #define __P100 PAGE_READONLY_EXEC
  154. #define __P101 PAGE_READONLY_EXEC
  155. #define __P110 PAGE_COPY_EXEC
  156. #define __P111 PAGE_COPY_EXEC
  157. #define __S000 PAGE_NONE
  158. #define __S001 PAGE_READONLY_NOEXEC
  159. #define __S010 PAGE_SHARED_NOEXEC
  160. #define __S011 PAGE_SHARED_NOEXEC
  161. #define __S100 PAGE_READONLY_EXEC
  162. #define __S101 PAGE_READONLY_EXEC
  163. #define __S110 PAGE_SHARED_EXEC
  164. #define __S111 PAGE_SHARED_EXEC
  165. /*
  166. * Define this to warn about kernel memory accesses that are
  167. * done without a 'verify_area(VERIFY_WRITE,..)'
  168. */
  169. #undef TEST_VERIFY_AREA
  170. #define pte_present(x) (pte_val(x) & _PAGE_VALID)
  171. #define pte_clear(mm, addr, xp) \
  172. do { \
  173. set_pte_at((mm), (addr), (xp), __pte(0)); \
  174. } while (0)
  175. #define pmd_none(x) (!pmd_val(x))
  176. #define pmd_present(x) (!pmd_none(x))
  177. #define pmd_clear(xp) do { set_pmd(xp, __pmd(0)); } while (0)
  178. #define pmd_bad(x) 0
  179. #define pages_to_mb(x) ((x) >> (20 - PAGE_SHIFT))
  180. #ifndef __ASSEMBLY__
  181. /*
  182. * The following only work if pte_present() is true.
  183. * Undefined behaviour if not..
  184. */
  185. static inline int pte_user(pte_t pte) { return pte_val(pte) & __PAGE_PROT_USER; }
  186. static inline int pte_read(pte_t pte) { return pte_val(pte) & __PAGE_PROT_USER; }
  187. static inline int pte_dirty(pte_t pte) { return pte_val(pte) & _PAGE_DIRTY; }
  188. static inline int pte_young(pte_t pte) { return pte_val(pte) & _PAGE_ACCESSED; }
  189. static inline int pte_write(pte_t pte) { return pte_val(pte) & __PAGE_PROT_WRITE; }
  190. static inline int pte_special(pte_t pte){ return 0; }
  191. /*
  192. * The following only works if pte_present() is not true.
  193. */
  194. static inline int pte_file(pte_t pte) { return pte_val(pte) & _PAGE_FILE; }
  195. static inline pte_t pte_rdprotect(pte_t pte)
  196. {
  197. pte_val(pte) &= ~(__PAGE_PROT_USER|__PAGE_PROT_UWAUX); return pte;
  198. }
  199. static inline pte_t pte_exprotect(pte_t pte)
  200. {
  201. pte_val(pte) |= _PAGE_NX; return pte;
  202. }
  203. static inline pte_t pte_wrprotect(pte_t pte)
  204. {
  205. pte_val(pte) &= ~(__PAGE_PROT_WRITE|__PAGE_PROT_UWAUX); return pte;
  206. }
  207. static inline pte_t pte_mkclean(pte_t pte) { pte_val(pte) &= ~_PAGE_DIRTY; return pte; }
  208. static inline pte_t pte_mkold(pte_t pte) { pte_val(pte) &= ~_PAGE_ACCESSED; return pte; }
  209. static inline pte_t pte_mkdirty(pte_t pte) { pte_val(pte) |= _PAGE_DIRTY; return pte; }
  210. static inline pte_t pte_mkyoung(pte_t pte) { pte_val(pte) |= _PAGE_ACCESSED; return pte; }
  211. static inline pte_t pte_mkexec(pte_t pte) { pte_val(pte) &= ~_PAGE_NX; return pte; }
  212. static inline pte_t pte_mkread(pte_t pte)
  213. {
  214. pte_val(pte) |= __PAGE_PROT_USER;
  215. if (pte_write(pte))
  216. pte_val(pte) |= __PAGE_PROT_UWAUX;
  217. return pte;
  218. }
  219. static inline pte_t pte_mkwrite(pte_t pte)
  220. {
  221. pte_val(pte) |= __PAGE_PROT_WRITE;
  222. if (pte_val(pte) & __PAGE_PROT_USER)
  223. pte_val(pte) |= __PAGE_PROT_UWAUX;
  224. return pte;
  225. }
  226. static inline pte_t pte_mkspecial(pte_t pte) { return pte; }
  227. #define pte_ERROR(e) \
  228. printk(KERN_ERR "%s:%d: bad pte %08lx.\n", \
  229. __FILE__, __LINE__, pte_val(e))
  230. #define pgd_ERROR(e) \
  231. printk(KERN_ERR "%s:%d: bad pgd %08lx.\n", \
  232. __FILE__, __LINE__, pgd_val(e))
  233. /*
  234. * The "pgd_xxx()" functions here are trivial for a folded two-level
  235. * setup: the pgd is never bad, and a pmd always exists (as it's folded
  236. * into the pgd entry)
  237. */
  238. #define pgd_clear(xp) do { } while (0)
  239. /*
  240. * Certain architectures need to do special things when PTEs
  241. * within a page table are directly modified. Thus, the following
  242. * hook is made available.
  243. */
  244. #define set_pte(pteptr, pteval) (*(pteptr) = pteval)
  245. #define set_pte_at(mm, addr, ptep, pteval) set_pte((ptep), (pteval))
  246. #define set_pte_atomic(pteptr, pteval) set_pte((pteptr), (pteval))
  247. /*
  248. * (pmds are folded into pgds so this doesn't get actually called,
  249. * but the define is needed for a generic inline function.)
  250. */
  251. #define set_pmd(pmdptr, pmdval) (*(pmdptr) = pmdval)
  252. #define ptep_get_and_clear(mm, addr, ptep) \
  253. __pte(xchg(&(ptep)->pte, 0))
  254. #define pte_same(a, b) (pte_val(a) == pte_val(b))
  255. #define pte_page(x) pfn_to_page(pte_pfn(x))
  256. #define pte_none(x) (!pte_val(x))
  257. #define pte_pfn(x) ((unsigned long) (pte_val(x) >> PAGE_SHIFT))
  258. #define __pfn_addr(pfn) ((pfn) << PAGE_SHIFT)
  259. #define pfn_pte(pfn, prot) __pte(__pfn_addr(pfn) | pgprot_val(prot))
  260. #define pfn_pmd(pfn, prot) __pmd(__pfn_addr(pfn) | pgprot_val(prot))
  261. /*
  262. * All present user pages are user-executable:
  263. */
  264. static inline int pte_exec(pte_t pte)
  265. {
  266. return pte_user(pte);
  267. }
  268. /*
  269. * All present pages are kernel-executable:
  270. */
  271. static inline int pte_exec_kernel(pte_t pte)
  272. {
  273. return 1;
  274. }
  275. /*
  276. * Bits 0 and 1 are taken, split up the 29 bits of offset
  277. * into this range:
  278. */
  279. #define PTE_FILE_MAX_BITS 29
  280. #define pte_to_pgoff(pte) (pte_val(pte) >> 2)
  281. #define pgoff_to_pte(off) __pte((off) << 2 | _PAGE_FILE)
  282. /* Encode and de-code a swap entry */
  283. #define __swp_type(x) (((x).val >> 2) & 0x3f)
  284. #define __swp_offset(x) ((x).val >> 8)
  285. #define __swp_entry(type, offset) \
  286. ((swp_entry_t) { ((type) << 2) | ((offset) << 8) })
  287. #define __pte_to_swp_entry(pte) ((swp_entry_t) { pte_val(pte) })
  288. #define __swp_entry_to_pte(x) __pte((x).val)
  289. static inline
  290. int ptep_test_and_clear_dirty(struct vm_area_struct *vma, unsigned long addr,
  291. pte_t *ptep)
  292. {
  293. if (!pte_dirty(*ptep))
  294. return 0;
  295. return test_and_clear_bit(_PAGE_BIT_DIRTY, &ptep->pte);
  296. }
  297. static inline
  298. int ptep_test_and_clear_young(struct vm_area_struct *vma, unsigned long addr,
  299. pte_t *ptep)
  300. {
  301. if (!pte_young(*ptep))
  302. return 0;
  303. return test_and_clear_bit(_PAGE_BIT_ACCESSED, &ptep->pte);
  304. }
  305. static inline
  306. void ptep_set_wrprotect(struct mm_struct *mm, unsigned long addr, pte_t *ptep)
  307. {
  308. pte_val(*ptep) &= ~(__PAGE_PROT_WRITE|__PAGE_PROT_UWAUX);
  309. }
  310. static inline void ptep_mkdirty(pte_t *ptep)
  311. {
  312. set_bit(_PAGE_BIT_DIRTY, &ptep->pte);
  313. }
  314. /*
  315. * Macro to mark a page protection value as "uncacheable". On processors which
  316. * do not support it, this is a no-op.
  317. */
  318. #define pgprot_noncached(prot) __pgprot(pgprot_val(prot) | _PAGE_CACHE)
  319. /*
  320. * Conversion functions: convert a page and protection to a page entry,
  321. * and a page entry and page directory to the page they refer to.
  322. */
  323. #define mk_pte(page, pgprot) pfn_pte(page_to_pfn(page), (pgprot))
  324. #define mk_pte_huge(entry) \
  325. ((entry).pte |= _PAGE_PRESENT | _PAGE_PSE | _PAGE_VALID)
  326. static inline pte_t pte_modify(pte_t pte, pgprot_t newprot)
  327. {
  328. pte_val(pte) &= _PAGE_CHG_MASK;
  329. pte_val(pte) |= pgprot_val(newprot);
  330. return pte;
  331. }
  332. #define page_pte(page) page_pte_prot((page), __pgprot(0))
  333. #define pmd_page_kernel(pmd) \
  334. ((unsigned long) __va(pmd_val(pmd) & PAGE_MASK))
  335. #define pmd_page(pmd) pfn_to_page(pmd_val(pmd) >> PAGE_SHIFT)
  336. #define pmd_large(pmd) \
  337. ((pmd_val(pmd) & (_PAGE_PSE | _PAGE_PRESENT)) == \
  338. (_PAGE_PSE | _PAGE_PRESENT))
  339. /*
  340. * the pgd page can be thought of an array like this: pgd_t[PTRS_PER_PGD]
  341. *
  342. * this macro returns the index of the entry in the pgd page which would
  343. * control the given virtual address
  344. */
  345. #define pgd_index(address) (((address) >> PGDIR_SHIFT) & (PTRS_PER_PGD - 1))
  346. /*
  347. * pgd_offset() returns a (pgd_t *)
  348. * pgd_index() is used get the offset into the pgd page's array of pgd_t's;
  349. */
  350. #define pgd_offset(mm, address) ((mm)->pgd + pgd_index(address))
  351. /*
  352. * a shortcut which implies the use of the kernel's pgd, instead
  353. * of a process's
  354. */
  355. #define pgd_offset_k(address) pgd_offset(&init_mm, address)
  356. /*
  357. * the pmd page can be thought of an array like this: pmd_t[PTRS_PER_PMD]
  358. *
  359. * this macro returns the index of the entry in the pmd page which would
  360. * control the given virtual address
  361. */
  362. #define pmd_index(address) \
  363. (((address) >> PMD_SHIFT) & (PTRS_PER_PMD - 1))
  364. /*
  365. * the pte page can be thought of an array like this: pte_t[PTRS_PER_PTE]
  366. *
  367. * this macro returns the index of the entry in the pte page which would
  368. * control the given virtual address
  369. */
  370. #define pte_index(address) \
  371. (((address) >> PAGE_SHIFT) & (PTRS_PER_PTE - 1))
  372. #define pte_offset_kernel(dir, address) \
  373. ((pte_t *) pmd_page_kernel(*(dir)) + pte_index(address))
  374. /*
  375. * Make a given kernel text page executable/non-executable.
  376. * Returns the previous executability setting of that page (which
  377. * is used to restore the previous state). Used by the SMP bootup code.
  378. * NOTE: this is an __init function for security reasons.
  379. */
  380. static inline int set_kernel_exec(unsigned long vaddr, int enable)
  381. {
  382. return 0;
  383. }
  384. #define pte_offset_map(dir, address) \
  385. ((pte_t *) page_address(pmd_page(*(dir))) + pte_index(address))
  386. #define pte_offset_map_nested(dir, address) pte_offset_map(dir, address)
  387. #define pte_unmap(pte) do {} while (0)
  388. #define pte_unmap_nested(pte) do {} while (0)
  389. /*
  390. * The MN10300 has external MMU info in the form of a TLB: this is adapted from
  391. * the kernel page tables containing the necessary information by tlb-mn10300.S
  392. */
  393. extern void update_mmu_cache(struct vm_area_struct *vma,
  394. unsigned long address, pte_t pte);
  395. #endif /* !__ASSEMBLY__ */
  396. #define kern_addr_valid(addr) (1)
  397. #define io_remap_pfn_range(vma, vaddr, pfn, size, prot) \
  398. remap_pfn_range((vma), (vaddr), (pfn), (size), (prot))
  399. #define MK_IOSPACE_PFN(space, pfn) (pfn)
  400. #define GET_IOSPACE(pfn) 0
  401. #define GET_PFN(pfn) (pfn)
  402. #define __HAVE_ARCH_PTEP_TEST_AND_CLEAR_YOUNG
  403. #define __HAVE_ARCH_PTEP_TEST_AND_CLEAR_DIRTY
  404. #define __HAVE_ARCH_PTEP_GET_AND_CLEAR
  405. #define __HAVE_ARCH_PTEP_SET_WRPROTECT
  406. #define __HAVE_ARCH_PTEP_MKDIRTY
  407. #define __HAVE_ARCH_PTE_SAME
  408. #include <asm-generic/pgtable.h>
  409. #endif /* !__ASSEMBLY__ */
  410. #endif /* _ASM_PGTABLE_H */