xref: /openbmc/linux/arch/alpha/include/asm/pgtable.h (revision 974b9b2c)
1b2441318SGreg Kroah-Hartman /* SPDX-License-Identifier: GPL-2.0 */
2024b246eSLinus Torvalds #ifndef _ALPHA_PGTABLE_H
3024b246eSLinus Torvalds #define _ALPHA_PGTABLE_H
4024b246eSLinus Torvalds 
5a73c9489SMike Rapoport #include <asm-generic/pgtable-nopud.h>
6024b246eSLinus Torvalds 
7024b246eSLinus Torvalds /*
8024b246eSLinus Torvalds  * This file contains the functions and defines necessary to modify and use
9024b246eSLinus Torvalds  * the Alpha page table tree.
10024b246eSLinus Torvalds  *
11024b246eSLinus Torvalds  * This hopefully works with any standard Alpha page-size, as defined
12024b246eSLinus Torvalds  * in <asm/page.h> (currently 8192).
13024b246eSLinus Torvalds  */
14024b246eSLinus Torvalds #include <linux/mmzone.h>
15024b246eSLinus Torvalds 
16024b246eSLinus Torvalds #include <asm/page.h>
17024b246eSLinus Torvalds #include <asm/processor.h>	/* For TASK_SIZE */
18024b246eSLinus Torvalds #include <asm/machvec.h>
19ec221208SDavid Howells #include <asm/setup.h>
20024b246eSLinus Torvalds 
21024b246eSLinus Torvalds struct mm_struct;
22024b246eSLinus Torvalds struct vm_area_struct;
23024b246eSLinus Torvalds 
24024b246eSLinus Torvalds /* Certain architectures need to do special things when PTEs
25024b246eSLinus Torvalds  * within a page table are directly modified.  Thus, the following
26024b246eSLinus Torvalds  * hook is made available.
27024b246eSLinus Torvalds  */
28024b246eSLinus Torvalds #define set_pte(pteptr, pteval) ((*(pteptr)) = (pteval))
29024b246eSLinus Torvalds #define set_pte_at(mm,addr,ptep,pteval) set_pte(ptep,pteval)
30024b246eSLinus Torvalds 
31024b246eSLinus Torvalds /* PMD_SHIFT determines the size of the area a second-level page table can map */
32024b246eSLinus Torvalds #define PMD_SHIFT	(PAGE_SHIFT + (PAGE_SHIFT-3))
33024b246eSLinus Torvalds #define PMD_SIZE	(1UL << PMD_SHIFT)
34024b246eSLinus Torvalds #define PMD_MASK	(~(PMD_SIZE-1))
35024b246eSLinus Torvalds 
36024b246eSLinus Torvalds /* PGDIR_SHIFT determines what a third-level page table entry can map */
37024b246eSLinus Torvalds #define PGDIR_SHIFT	(PAGE_SHIFT + 2*(PAGE_SHIFT-3))
38024b246eSLinus Torvalds #define PGDIR_SIZE	(1UL << PGDIR_SHIFT)
39024b246eSLinus Torvalds #define PGDIR_MASK	(~(PGDIR_SIZE-1))
40024b246eSLinus Torvalds 
41024b246eSLinus Torvalds /*
42024b246eSLinus Torvalds  * Entries per page directory level:  the Alpha is three-level, with
43024b246eSLinus Torvalds  * all levels having a one-page page table.
44024b246eSLinus Torvalds  */
45024b246eSLinus Torvalds #define PTRS_PER_PTE	(1UL << (PAGE_SHIFT-3))
46024b246eSLinus Torvalds #define PTRS_PER_PMD	(1UL << (PAGE_SHIFT-3))
47024b246eSLinus Torvalds #define PTRS_PER_PGD	(1UL << (PAGE_SHIFT-3))
48024b246eSLinus Torvalds #define USER_PTRS_PER_PGD	(TASK_SIZE / PGDIR_SIZE)
49d016bf7eSKirill A. Shutemov #define FIRST_USER_ADDRESS	0UL
50024b246eSLinus Torvalds 
51024b246eSLinus Torvalds /* Number of pointers that fit on a page:  this will go away. */
52024b246eSLinus Torvalds #define PTRS_PER_PAGE	(1UL << (PAGE_SHIFT-3))
53024b246eSLinus Torvalds 
54024b246eSLinus Torvalds #ifdef CONFIG_ALPHA_LARGE_VMALLOC
55024b246eSLinus Torvalds #define VMALLOC_START		0xfffffe0000000000
56024b246eSLinus Torvalds #else
57024b246eSLinus Torvalds #define VMALLOC_START		(-2*PGDIR_SIZE)
58024b246eSLinus Torvalds #endif
59024b246eSLinus Torvalds #define VMALLOC_END		(-PGDIR_SIZE)
60024b246eSLinus Torvalds 
61024b246eSLinus Torvalds /*
62024b246eSLinus Torvalds  * OSF/1 PAL-code-imposed page table bits
63024b246eSLinus Torvalds  */
64024b246eSLinus Torvalds #define _PAGE_VALID	0x0001
65024b246eSLinus Torvalds #define _PAGE_FOR	0x0002	/* used for page protection (fault on read) */
66024b246eSLinus Torvalds #define _PAGE_FOW	0x0004	/* used for page protection (fault on write) */
67024b246eSLinus Torvalds #define _PAGE_FOE	0x0008	/* used for page protection (fault on exec) */
68024b246eSLinus Torvalds #define _PAGE_ASM	0x0010
69024b246eSLinus Torvalds #define _PAGE_KRE	0x0100	/* xxx - see below on the "accessed" bit */
70024b246eSLinus Torvalds #define _PAGE_URE	0x0200	/* xxx */
71024b246eSLinus Torvalds #define _PAGE_KWE	0x1000	/* used to do the dirty bit in software */
72024b246eSLinus Torvalds #define _PAGE_UWE	0x2000	/* used to do the dirty bit in software */
73024b246eSLinus Torvalds 
74024b246eSLinus Torvalds /* .. and these are ours ... */
75024b246eSLinus Torvalds #define _PAGE_DIRTY	0x20000
76024b246eSLinus Torvalds #define _PAGE_ACCESSED	0x40000
77024b246eSLinus Torvalds 
78024b246eSLinus Torvalds /*
79024b246eSLinus Torvalds  * NOTE! The "accessed" bit isn't necessarily exact:  it can be kept exactly
80024b246eSLinus Torvalds  * by software (use the KRE/URE/KWE/UWE bits appropriately), but I'll fake it.
81024b246eSLinus Torvalds  * Under Linux/AXP, the "accessed" bit just means "read", and I'll just use
82024b246eSLinus Torvalds  * the KRE/URE bits to watch for it. That way we don't need to overload the
83024b246eSLinus Torvalds  * KWE/UWE bits with both handling dirty and accessed.
84024b246eSLinus Torvalds  *
85024b246eSLinus Torvalds  * Note that the kernel uses the accessed bit just to check whether to page
86024b246eSLinus Torvalds  * out a page or not, so it doesn't have to be exact anyway.
87024b246eSLinus Torvalds  */
88024b246eSLinus Torvalds 
89024b246eSLinus Torvalds #define __DIRTY_BITS	(_PAGE_DIRTY | _PAGE_KWE | _PAGE_UWE)
90024b246eSLinus Torvalds #define __ACCESS_BITS	(_PAGE_ACCESSED | _PAGE_KRE | _PAGE_URE)
91024b246eSLinus Torvalds 
92024b246eSLinus Torvalds #define _PFN_MASK	0xFFFFFFFF00000000UL
93024b246eSLinus Torvalds 
94024b246eSLinus Torvalds #define _PAGE_TABLE	(_PAGE_VALID | __DIRTY_BITS | __ACCESS_BITS)
95024b246eSLinus Torvalds #define _PAGE_CHG_MASK	(_PFN_MASK | __DIRTY_BITS | __ACCESS_BITS)
96024b246eSLinus Torvalds 
97024b246eSLinus Torvalds /*
98024b246eSLinus Torvalds  * All the normal masks have the "page accessed" bits on, as any time they are used,
99024b246eSLinus Torvalds  * the page is accessed. They are cleared only by the page-out routines
100024b246eSLinus Torvalds  */
101024b246eSLinus Torvalds #define PAGE_NONE	__pgprot(_PAGE_VALID | __ACCESS_BITS | _PAGE_FOR | _PAGE_FOW | _PAGE_FOE)
102024b246eSLinus Torvalds #define PAGE_SHARED	__pgprot(_PAGE_VALID | __ACCESS_BITS)
103024b246eSLinus Torvalds #define PAGE_COPY	__pgprot(_PAGE_VALID | __ACCESS_BITS | _PAGE_FOW)
104024b246eSLinus Torvalds #define PAGE_READONLY	__pgprot(_PAGE_VALID | __ACCESS_BITS | _PAGE_FOW)
105024b246eSLinus Torvalds #define PAGE_KERNEL	__pgprot(_PAGE_VALID | _PAGE_ASM | _PAGE_KRE | _PAGE_KWE)
106024b246eSLinus Torvalds 
107024b246eSLinus Torvalds #define _PAGE_NORMAL(x) __pgprot(_PAGE_VALID | __ACCESS_BITS | (x))
108024b246eSLinus Torvalds 
109024b246eSLinus Torvalds #define _PAGE_P(x) _PAGE_NORMAL((x) | (((x) & _PAGE_FOW)?0:_PAGE_FOW))
110024b246eSLinus Torvalds #define _PAGE_S(x) _PAGE_NORMAL(x)
111024b246eSLinus Torvalds 
112024b246eSLinus Torvalds /*
113024b246eSLinus Torvalds  * The hardware can handle write-only mappings, but as the Alpha
114024b246eSLinus Torvalds  * architecture does byte-wide writes with a read-modify-write
115024b246eSLinus Torvalds  * sequence, it's not practical to have write-without-read privs.
116024b246eSLinus Torvalds  * Thus the "-w- -> rw-" and "-wx -> rwx" mapping here (and in
117024b246eSLinus Torvalds  * arch/alpha/mm/fault.c)
118024b246eSLinus Torvalds  */
119024b246eSLinus Torvalds 	/* xwr */
120024b246eSLinus Torvalds #define __P000	_PAGE_P(_PAGE_FOE | _PAGE_FOW | _PAGE_FOR)
121024b246eSLinus Torvalds #define __P001	_PAGE_P(_PAGE_FOE | _PAGE_FOW)
122024b246eSLinus Torvalds #define __P010	_PAGE_P(_PAGE_FOE)
123024b246eSLinus Torvalds #define __P011	_PAGE_P(_PAGE_FOE)
124024b246eSLinus Torvalds #define __P100	_PAGE_P(_PAGE_FOW | _PAGE_FOR)
125024b246eSLinus Torvalds #define __P101	_PAGE_P(_PAGE_FOW)
126024b246eSLinus Torvalds #define __P110	_PAGE_P(0)
127024b246eSLinus Torvalds #define __P111	_PAGE_P(0)
128024b246eSLinus Torvalds 
129024b246eSLinus Torvalds #define __S000	_PAGE_S(_PAGE_FOE | _PAGE_FOW | _PAGE_FOR)
130024b246eSLinus Torvalds #define __S001	_PAGE_S(_PAGE_FOE | _PAGE_FOW)
131024b246eSLinus Torvalds #define __S010	_PAGE_S(_PAGE_FOE)
132024b246eSLinus Torvalds #define __S011	_PAGE_S(_PAGE_FOE)
133024b246eSLinus Torvalds #define __S100	_PAGE_S(_PAGE_FOW | _PAGE_FOR)
134024b246eSLinus Torvalds #define __S101	_PAGE_S(_PAGE_FOW)
135024b246eSLinus Torvalds #define __S110	_PAGE_S(0)
136024b246eSLinus Torvalds #define __S111	_PAGE_S(0)
137024b246eSLinus Torvalds 
138024b246eSLinus Torvalds /*
139024b246eSLinus Torvalds  * pgprot_noncached() is only for infiniband pci support, and a real
140024b246eSLinus Torvalds  * implementation for RAM would be more complicated.
141024b246eSLinus Torvalds  */
142024b246eSLinus Torvalds #define pgprot_noncached(prot)	(prot)
143024b246eSLinus Torvalds 
144024b246eSLinus Torvalds /*
145024b246eSLinus Torvalds  * BAD_PAGETABLE is used when we need a bogus page-table, while
146024b246eSLinus Torvalds  * BAD_PAGE is used for a bogus page.
147024b246eSLinus Torvalds  *
148024b246eSLinus Torvalds  * ZERO_PAGE is a global shared page that is always zero:  used
149024b246eSLinus Torvalds  * for zero-mapped memory areas etc..
150024b246eSLinus Torvalds  */
151024b246eSLinus Torvalds extern pte_t __bad_page(void);
152024b246eSLinus Torvalds extern pmd_t * __bad_pagetable(void);
153024b246eSLinus Torvalds 
154024b246eSLinus Torvalds extern unsigned long __zero_page(void);
155024b246eSLinus Torvalds 
156024b246eSLinus Torvalds #define BAD_PAGETABLE	__bad_pagetable()
157024b246eSLinus Torvalds #define BAD_PAGE	__bad_page()
158024b246eSLinus Torvalds #define ZERO_PAGE(vaddr)	(virt_to_page(ZERO_PGE))
159024b246eSLinus Torvalds 
160024b246eSLinus Torvalds /* number of bits that fit into a memory pointer */
161024b246eSLinus Torvalds #define BITS_PER_PTR			(8*sizeof(unsigned long))
162024b246eSLinus Torvalds 
163024b246eSLinus Torvalds /* to align the pointer to a pointer address */
164024b246eSLinus Torvalds #define PTR_MASK			(~(sizeof(void*)-1))
165024b246eSLinus Torvalds 
166024b246eSLinus Torvalds /* sizeof(void*)==1<<SIZEOF_PTR_LOG2 */
167024b246eSLinus Torvalds #define SIZEOF_PTR_LOG2			3
168024b246eSLinus Torvalds 
169024b246eSLinus Torvalds /* to find an entry in a page-table */
170024b246eSLinus Torvalds #define PAGE_PTR(address)		\
171024b246eSLinus Torvalds   ((unsigned long)(address)>>(PAGE_SHIFT-SIZEOF_PTR_LOG2)&PTR_MASK&~PAGE_MASK)
172024b246eSLinus Torvalds 
173024b246eSLinus Torvalds /*
174024b246eSLinus Torvalds  * On certain platforms whose physical address space can overlap KSEG,
175024b246eSLinus Torvalds  * namely EV6 and above, we must re-twiddle the physaddr to restore the
176024b246eSLinus Torvalds  * correct high-order bits.
177024b246eSLinus Torvalds  *
178024b246eSLinus Torvalds  * This is extremely confusing until you realize that this is actually
179024b246eSLinus Torvalds  * just working around a userspace bug.  The X server was intending to
180024b246eSLinus Torvalds  * provide the physical address but instead provided the KSEG address.
181024b246eSLinus Torvalds  * Or tried to, except it's not representable.
182024b246eSLinus Torvalds  *
183024b246eSLinus Torvalds  * On Tsunami there's nothing meaningful at 0x40000000000, so this is
184024b246eSLinus Torvalds  * a safe thing to do.  Come the first core logic that does put something
185024b246eSLinus Torvalds  * in this area -- memory or whathaveyou -- then this hack will have
186024b246eSLinus Torvalds  * to go away.  So be prepared!
187024b246eSLinus Torvalds  */
188024b246eSLinus Torvalds 
189024b246eSLinus Torvalds #if defined(CONFIG_ALPHA_GENERIC) && defined(USE_48_BIT_KSEG)
190024b246eSLinus Torvalds #error "EV6-only feature in a generic kernel"
191024b246eSLinus Torvalds #endif
192024b246eSLinus Torvalds #if defined(CONFIG_ALPHA_GENERIC) || \
193024b246eSLinus Torvalds     (defined(CONFIG_ALPHA_EV6) && !defined(USE_48_BIT_KSEG))
194024b246eSLinus Torvalds #define KSEG_PFN	(0xc0000000000UL >> PAGE_SHIFT)
195024b246eSLinus Torvalds #define PHYS_TWIDDLE(pfn) \
196024b246eSLinus Torvalds   ((((pfn) & KSEG_PFN) == (0x40000000000UL >> PAGE_SHIFT)) \
197024b246eSLinus Torvalds   ? ((pfn) ^= KSEG_PFN) : (pfn))
198024b246eSLinus Torvalds #else
199024b246eSLinus Torvalds #define PHYS_TWIDDLE(pfn) (pfn)
200024b246eSLinus Torvalds #endif
201024b246eSLinus Torvalds 
202024b246eSLinus Torvalds /*
203024b246eSLinus Torvalds  * Conversion functions:  convert a page and protection to a page entry,
204024b246eSLinus Torvalds  * and a page entry and page directory to the page they refer to.
205024b246eSLinus Torvalds  */
206024b246eSLinus Torvalds #ifndef CONFIG_DISCONTIGMEM
207024b246eSLinus Torvalds #define page_to_pa(page)	(((page) - mem_map) << PAGE_SHIFT)
208024b246eSLinus Torvalds 
209024b246eSLinus Torvalds #define pte_pfn(pte)	(pte_val(pte) >> 32)
210024b246eSLinus Torvalds #define pte_page(pte)	pfn_to_page(pte_pfn(pte))
211024b246eSLinus Torvalds #define mk_pte(page, pgprot)						\
212024b246eSLinus Torvalds ({									\
213024b246eSLinus Torvalds 	pte_t pte;							\
214024b246eSLinus Torvalds 									\
215024b246eSLinus Torvalds 	pte_val(pte) = (page_to_pfn(page) << 32) | pgprot_val(pgprot);	\
216024b246eSLinus Torvalds 	pte;								\
217024b246eSLinus Torvalds })
218024b246eSLinus Torvalds #endif
219024b246eSLinus Torvalds 
220024b246eSLinus Torvalds extern inline pte_t pfn_pte(unsigned long physpfn, pgprot_t pgprot)
221024b246eSLinus Torvalds { pte_t pte; pte_val(pte) = (PHYS_TWIDDLE(physpfn) << 32) | pgprot_val(pgprot); return pte; }
222024b246eSLinus Torvalds 
223024b246eSLinus Torvalds extern inline pte_t pte_modify(pte_t pte, pgprot_t newprot)
224024b246eSLinus Torvalds { pte_val(pte) = (pte_val(pte) & _PAGE_CHG_MASK) | pgprot_val(newprot); return pte; }
225024b246eSLinus Torvalds 
226024b246eSLinus Torvalds extern inline void pmd_set(pmd_t * pmdp, pte_t * ptep)
227024b246eSLinus Torvalds { pmd_val(*pmdp) = _PAGE_TABLE | ((((unsigned long) ptep) - PAGE_OFFSET) << (32-PAGE_SHIFT)); }
228024b246eSLinus Torvalds 
229a73c9489SMike Rapoport extern inline void pud_set(pud_t * pudp, pmd_t * pmdp)
230a73c9489SMike Rapoport { pud_val(*pudp) = _PAGE_TABLE | ((((unsigned long) pmdp) - PAGE_OFFSET) << (32-PAGE_SHIFT)); }
231024b246eSLinus Torvalds 
232024b246eSLinus Torvalds 
233024b246eSLinus Torvalds extern inline unsigned long
234024b246eSLinus Torvalds pmd_page_vaddr(pmd_t pmd)
235024b246eSLinus Torvalds {
236024b246eSLinus Torvalds 	return ((pmd_val(pmd) & _PFN_MASK) >> (32-PAGE_SHIFT)) + PAGE_OFFSET;
237024b246eSLinus Torvalds }
238024b246eSLinus Torvalds 
239024b246eSLinus Torvalds #ifndef CONFIG_DISCONTIGMEM
240024b246eSLinus Torvalds #define pmd_page(pmd)	(mem_map + ((pmd_val(pmd) & _PFN_MASK) >> 32))
241a73c9489SMike Rapoport #define pud_page(pud)	(mem_map + ((pud_val(pud) & _PFN_MASK) >> 32))
242024b246eSLinus Torvalds #endif
243024b246eSLinus Torvalds 
244a73c9489SMike Rapoport extern inline unsigned long pud_page_vaddr(pud_t pgd)
245a73c9489SMike Rapoport { return PAGE_OFFSET + ((pud_val(pgd) & _PFN_MASK) >> (32-PAGE_SHIFT)); }
246024b246eSLinus Torvalds 
247024b246eSLinus Torvalds extern inline int pte_none(pte_t pte)		{ return !pte_val(pte); }
248024b246eSLinus Torvalds extern inline int pte_present(pte_t pte)	{ return pte_val(pte) & _PAGE_VALID; }
249024b246eSLinus Torvalds extern inline void pte_clear(struct mm_struct *mm, unsigned long addr, pte_t *ptep)
250024b246eSLinus Torvalds {
251024b246eSLinus Torvalds 	pte_val(*ptep) = 0;
252024b246eSLinus Torvalds }
253024b246eSLinus Torvalds 
254024b246eSLinus Torvalds extern inline int pmd_none(pmd_t pmd)		{ return !pmd_val(pmd); }
255024b246eSLinus Torvalds extern inline int pmd_bad(pmd_t pmd)		{ return (pmd_val(pmd) & ~_PFN_MASK) != _PAGE_TABLE; }
256024b246eSLinus Torvalds extern inline int pmd_present(pmd_t pmd)	{ return pmd_val(pmd) & _PAGE_VALID; }
257024b246eSLinus Torvalds extern inline void pmd_clear(pmd_t * pmdp)	{ pmd_val(*pmdp) = 0; }
258024b246eSLinus Torvalds 
259a73c9489SMike Rapoport extern inline int pud_none(pud_t pud)		{ return !pud_val(pud); }
260a73c9489SMike Rapoport extern inline int pud_bad(pud_t pud)		{ return (pud_val(pud) & ~_PFN_MASK) != _PAGE_TABLE; }
261a73c9489SMike Rapoport extern inline int pud_present(pud_t pud)	{ return pud_val(pud) & _PAGE_VALID; }
262a73c9489SMike Rapoport extern inline void pud_clear(pud_t * pudp)	{ pud_val(*pudp) = 0; }
263024b246eSLinus Torvalds 
264024b246eSLinus Torvalds /*
265024b246eSLinus Torvalds  * The following only work if pte_present() is true.
266024b246eSLinus Torvalds  * Undefined behaviour if not..
267024b246eSLinus Torvalds  */
268024b246eSLinus Torvalds extern inline int pte_write(pte_t pte)		{ return !(pte_val(pte) & _PAGE_FOW); }
269024b246eSLinus Torvalds extern inline int pte_dirty(pte_t pte)		{ return pte_val(pte) & _PAGE_DIRTY; }
270024b246eSLinus Torvalds extern inline int pte_young(pte_t pte)		{ return pte_val(pte) & _PAGE_ACCESSED; }
271024b246eSLinus Torvalds 
272024b246eSLinus Torvalds extern inline pte_t pte_wrprotect(pte_t pte)	{ pte_val(pte) |= _PAGE_FOW; return pte; }
273024b246eSLinus Torvalds extern inline pte_t pte_mkclean(pte_t pte)	{ pte_val(pte) &= ~(__DIRTY_BITS); return pte; }
274024b246eSLinus Torvalds extern inline pte_t pte_mkold(pte_t pte)	{ pte_val(pte) &= ~(__ACCESS_BITS); return pte; }
275024b246eSLinus Torvalds extern inline pte_t pte_mkwrite(pte_t pte)	{ pte_val(pte) &= ~_PAGE_FOW; return pte; }
276024b246eSLinus Torvalds extern inline pte_t pte_mkdirty(pte_t pte)	{ pte_val(pte) |= __DIRTY_BITS; return pte; }
277024b246eSLinus Torvalds extern inline pte_t pte_mkyoung(pte_t pte)	{ pte_val(pte) |= __ACCESS_BITS; return pte; }
278024b246eSLinus Torvalds 
279024b246eSLinus Torvalds /*
280024b246eSLinus Torvalds  * The smp_read_barrier_depends() in the following functions are required to
281024b246eSLinus Torvalds  * order the load of *dir (the pointer in the top level page table) with any
282024b246eSLinus Torvalds  * subsequent load of the returned pmd_t *ret (ret is data dependent on *dir).
283024b246eSLinus Torvalds  *
284024b246eSLinus Torvalds  * If this ordering is not enforced, the CPU might load an older value of
285024b246eSLinus Torvalds  * *ret, which may be uninitialized data. See mm/memory.c:__pte_alloc for
286024b246eSLinus Torvalds  * more details.
287024b246eSLinus Torvalds  *
288024b246eSLinus Torvalds  * Note that we never change the mm->pgd pointer after the task is running, so
289024b246eSLinus Torvalds  * pgd_offset does not require such a barrier.
290024b246eSLinus Torvalds  */
291024b246eSLinus Torvalds 
292024b246eSLinus Torvalds /* Find an entry in the second-level page table.. */
293a73c9489SMike Rapoport extern inline pmd_t * pmd_offset(pud_t * dir, unsigned long address)
294024b246eSLinus Torvalds {
295a73c9489SMike Rapoport 	pmd_t *ret = (pmd_t *) pud_page_vaddr(*dir) + ((address >> PMD_SHIFT) & (PTRS_PER_PAGE - 1));
296024b246eSLinus Torvalds 	smp_read_barrier_depends(); /* see above */
297024b246eSLinus Torvalds 	return ret;
298024b246eSLinus Torvalds }
299974b9b2cSMike Rapoport #define pmd_offset pmd_offset
300024b246eSLinus Torvalds 
301024b246eSLinus Torvalds /* Find an entry in the third-level page table.. */
302024b246eSLinus Torvalds extern inline pte_t * pte_offset_kernel(pmd_t * dir, unsigned long address)
303024b246eSLinus Torvalds {
304024b246eSLinus Torvalds 	pte_t *ret = (pte_t *) pmd_page_vaddr(*dir)
305024b246eSLinus Torvalds 		+ ((address >> PAGE_SHIFT) & (PTRS_PER_PAGE - 1));
306024b246eSLinus Torvalds 	smp_read_barrier_depends(); /* see above */
307024b246eSLinus Torvalds 	return ret;
308024b246eSLinus Torvalds }
309974b9b2cSMike Rapoport #define pte_offset_kernel pte_offset_kernel
310024b246eSLinus Torvalds 
311024b246eSLinus Torvalds extern pgd_t swapper_pg_dir[1024];
312024b246eSLinus Torvalds 
313024b246eSLinus Torvalds /*
314024b246eSLinus Torvalds  * The Alpha doesn't have any external MMU info:  the kernel page
315024b246eSLinus Torvalds  * tables contain all the necessary information.
316024b246eSLinus Torvalds  */
317024b246eSLinus Torvalds extern inline void update_mmu_cache(struct vm_area_struct * vma,
3184b3073e1SRussell King 	unsigned long address, pte_t *ptep)
319024b246eSLinus Torvalds {
320024b246eSLinus Torvalds }
321024b246eSLinus Torvalds 
322024b246eSLinus Torvalds /*
323024b246eSLinus Torvalds  * Non-present pages:  high 24 bits are offset, next 8 bits type,
324024b246eSLinus Torvalds  * low 32 bits zero.
325024b246eSLinus Torvalds  */
326024b246eSLinus Torvalds extern inline pte_t mk_swap_pte(unsigned long type, unsigned long offset)
327024b246eSLinus Torvalds { pte_t pte; pte_val(pte) = (type << 32) | (offset << 40); return pte; }
328024b246eSLinus Torvalds 
329024b246eSLinus Torvalds #define __swp_type(x)		(((x).val >> 32) & 0xff)
330024b246eSLinus Torvalds #define __swp_offset(x)		((x).val >> 40)
331024b246eSLinus Torvalds #define __swp_entry(type, off)	((swp_entry_t) { pte_val(mk_swap_pte((type), (off))) })
332024b246eSLinus Torvalds #define __pte_to_swp_entry(pte)	((swp_entry_t) { pte_val(pte) })
333024b246eSLinus Torvalds #define __swp_entry_to_pte(x)	((pte_t) { (x).val })
334024b246eSLinus Torvalds 
335024b246eSLinus Torvalds #ifndef CONFIG_DISCONTIGMEM
336024b246eSLinus Torvalds #define kern_addr_valid(addr)	(1)
337024b246eSLinus Torvalds #endif
338024b246eSLinus Torvalds 
339024b246eSLinus Torvalds #define pte_ERROR(e) \
340024b246eSLinus Torvalds 	printk("%s:%d: bad pte %016lx.\n", __FILE__, __LINE__, pte_val(e))
341024b246eSLinus Torvalds #define pmd_ERROR(e) \
342024b246eSLinus Torvalds 	printk("%s:%d: bad pmd %016lx.\n", __FILE__, __LINE__, pmd_val(e))
343024b246eSLinus Torvalds #define pgd_ERROR(e) \
344024b246eSLinus Torvalds 	printk("%s:%d: bad pgd %016lx.\n", __FILE__, __LINE__, pgd_val(e))
345024b246eSLinus Torvalds 
346024b246eSLinus Torvalds extern void paging_init(void);
347024b246eSLinus Torvalds 
348024b246eSLinus Torvalds /* We have our own get_unmapped_area to cope with ADDR_LIMIT_32BIT.  */
349024b246eSLinus Torvalds #define HAVE_ARCH_UNMAPPED_AREA
350024b246eSLinus Torvalds 
351024b246eSLinus Torvalds #endif /* _ALPHA_PGTABLE_H */
352