pmap.h revision 1.29 1 1.29 chris /* $NetBSD: pmap.h,v 1.29 2002/03/03 11:22:59 chris Exp $ */
2 1.1 reinoud
3 1.1 reinoud /*
4 1.1 reinoud * Copyright (c) 1994,1995 Mark Brinicombe.
5 1.1 reinoud * All rights reserved.
6 1.1 reinoud *
7 1.1 reinoud * Redistribution and use in source and binary forms, with or without
8 1.1 reinoud * modification, are permitted provided that the following conditions
9 1.1 reinoud * are met:
10 1.1 reinoud * 1. Redistributions of source code must retain the above copyright
11 1.1 reinoud * notice, this list of conditions and the following disclaimer.
12 1.1 reinoud * 2. Redistributions in binary form must reproduce the above copyright
13 1.1 reinoud * notice, this list of conditions and the following disclaimer in the
14 1.1 reinoud * documentation and/or other materials provided with the distribution.
15 1.1 reinoud * 3. All advertising materials mentioning features or use of this software
16 1.1 reinoud * must display the following acknowledgement:
17 1.1 reinoud * This product includes software developed by Mark Brinicombe
18 1.1 reinoud * 4. The name of the author may not be used to endorse or promote products
19 1.1 reinoud * derived from this software without specific prior written permission.
20 1.1 reinoud *
21 1.1 reinoud * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
22 1.1 reinoud * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
23 1.1 reinoud * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
24 1.1 reinoud * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
25 1.1 reinoud * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
26 1.1 reinoud * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
27 1.1 reinoud * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
28 1.1 reinoud * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
29 1.1 reinoud * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
30 1.1 reinoud * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
31 1.1 reinoud */
32 1.1 reinoud
33 1.1 reinoud #ifndef _ARM32_PMAP_H_
34 1.1 reinoud #define _ARM32_PMAP_H_
35 1.1 reinoud
36 1.18 thorpej #ifdef _KERNEL
37 1.18 thorpej
38 1.19 thorpej #include <arm/cpufunc.h>
39 1.18 thorpej #include <arm/arm32/pte.h>
40 1.12 chris #include <uvm/uvm_object.h>
41 1.1 reinoud
42 1.1 reinoud /*
43 1.11 chris * a pmap describes a processes' 4GB virtual address space. this
44 1.11 chris * virtual address space can be broken up into 4096 1MB regions which
45 1.11 chris * are described by PDEs in the PDP. the PDEs are defined as follows:
46 1.11 chris *
47 1.11 chris * (ranges are inclusive -> exclusive, just like vm_map_entry start/end)
48 1.11 chris * (the following assumes that KERNBASE is 0xf0000000)
49 1.11 chris *
50 1.11 chris * PDE#s VA range usage
51 1.11 chris * 0->3835 0x0 -> 0xefc00000 user address space
52 1.11 chris * 3836->3839 0xefc00000-> recursive mapping of PDP (used for
53 1.11 chris * 0xf0000000 linear mapping of PTPs)
54 1.11 chris * 3840->3851 0xf0000000-> kernel text address space (constant
55 1.11 chris * 0xf0c00000 across all pmap's/processes)
56 1.11 chris * 3852->3855 0xf0c00000-> "alternate" recursive PDP mapping
57 1.11 chris * 0xf1000000 (for other pmaps)
58 1.11 chris * 3856->4095 0xf1000000-> KVM and device mappings, constant
59 1.11 chris * 0x00000000 across all pmaps
60 1.11 chris *
61 1.11 chris * The maths works out that to then map each 1MB block into 4k pages requires
62 1.11 chris * 256 entries, of 4 bytes each, totaling 1k per 1MB. However as we use 4k
63 1.11 chris * pages we allocate 4 PDE's at a time, allocating the same access permissions
64 1.11 chris * to them all. This means we only need 1024 entries in the page table page
65 1.11 chris * table, IE we use 1 4k page to linearly map all the other page tables used.
66 1.11 chris */
67 1.11 chris
68 1.11 chris /*
69 1.1 reinoud * Data structures used by pmap
70 1.1 reinoud */
71 1.1 reinoud
72 1.1 reinoud /*
73 1.1 reinoud * Structure that describes a Level 1 page table and the flags
74 1.1 reinoud * associated with it.
75 1.1 reinoud */
76 1.1 reinoud struct l1pt {
77 1.1 reinoud SIMPLEQ_ENTRY(l1pt) pt_queue; /* Queue pointers */
78 1.1 reinoud struct pglist pt_plist; /* Allocated page list */
79 1.2 matt vaddr_t pt_va; /* Allocated virtual address */
80 1.1 reinoud int pt_flags; /* Flags */
81 1.1 reinoud };
82 1.1 reinoud #define PTFLAG_STATIC 1 /* Statically allocated */
83 1.1 reinoud #define PTFLAG_KPT 2 /* Kernel pt's are mapped */
84 1.1 reinoud #define PTFLAG_CLEAN 4 /* L1 is clean */
85 1.1 reinoud
86 1.1 reinoud /*
87 1.29 chris * we maintain a list of all non-kernel pmaps
88 1.29 chris */
89 1.29 chris
90 1.29 chris LIST_HEAD(pmap_head, pmap); /* struct pmap_head: head of a pmap list */
91 1.29 chris
92 1.29 chris /*
93 1.1 reinoud * The pmap structure itself.
94 1.1 reinoud */
95 1.1 reinoud struct pmap {
96 1.12 chris struct uvm_object pm_obj; /* uvm_object */
97 1.12 chris #define pm_lock pm_obj.vmobjlock
98 1.29 chris LIST_ENTRY(pmap) pm_list; /* list (lck by pm_list lock) */
99 1.1 reinoud pd_entry_t *pm_pdir; /* KVA of page directory */
100 1.1 reinoud struct l1pt *pm_l1pt; /* L1 descriptor */
101 1.12 chris paddr_t pm_pptpt; /* PA of pt's page table */
102 1.12 chris vaddr_t pm_vptpt; /* VA of pt's page table */
103 1.1 reinoud struct pmap_statistics pm_stats; /* pmap statistics */
104 1.29 chris struct vm_page *pm_ptphint; /* pointer to a PTP in our pmap */
105 1.1 reinoud };
106 1.1 reinoud
107 1.1 reinoud typedef struct pmap *pmap_t;
108 1.1 reinoud
109 1.1 reinoud /*
110 1.23 thorpej * for each managed physical page we maintain a list of <PMAP,VA>'s
111 1.23 thorpej * which it is mapped at. the list is headed by a pv_head structure.
112 1.23 thorpej * there is one pv_head per managed phys page (allocated at boot time).
113 1.23 thorpej * the pv_head structure points to a list of pv_entry structures (each
114 1.23 thorpej * describes one mapping).
115 1.23 thorpej *
116 1.23 thorpej * pv_entry's are only visible within pmap.c, so only provide a placeholder
117 1.23 thorpej * here
118 1.23 thorpej */
119 1.23 thorpej
120 1.23 thorpej struct pv_entry;
121 1.23 thorpej
122 1.23 thorpej struct pv_head {
123 1.23 thorpej struct simplelock pvh_lock; /* locks every pv on this list */
124 1.23 thorpej struct pv_entry *pvh_list; /* head of list (locked by pvh_lock) */
125 1.23 thorpej };
126 1.23 thorpej
127 1.23 thorpej /*
128 1.1 reinoud * Page hooks. I'll eliminate these sometime soon :-)
129 1.1 reinoud *
130 1.1 reinoud * For speed we store the both the virtual address and the page table
131 1.1 reinoud * entry address for each page hook.
132 1.1 reinoud */
133 1.1 reinoud typedef struct {
134 1.28 thorpej vaddr_t va;
135 1.28 thorpej pt_entry_t *pte;
136 1.1 reinoud } pagehook_t;
137 1.1 reinoud
138 1.1 reinoud /*
139 1.1 reinoud * Physical / virtual address structure. In a number of places (particularly
140 1.1 reinoud * during bootstrapping) we need to keep track of the physical and virtual
141 1.1 reinoud * addresses of various pages
142 1.1 reinoud */
143 1.28 thorpej typedef struct pv_addr {
144 1.28 thorpej SLIST_ENTRY(pv_addr) pv_list;
145 1.3 matt paddr_t pv_pa;
146 1.2 matt vaddr_t pv_va;
147 1.1 reinoud } pv_addr_t;
148 1.1 reinoud
149 1.1 reinoud /*
150 1.24 thorpej * Determine various modes for PTEs (user vs. kernel, cacheable
151 1.24 thorpej * vs. non-cacheable).
152 1.24 thorpej */
153 1.24 thorpej #define PTE_KERNEL 0
154 1.24 thorpej #define PTE_USER 1
155 1.24 thorpej #define PTE_NOCACHE 0
156 1.24 thorpej #define PTE_CACHE 1
157 1.24 thorpej
158 1.24 thorpej /*
159 1.1 reinoud * _KERNEL specific macros, functions and prototypes
160 1.1 reinoud */
161 1.1 reinoud
162 1.1 reinoud #ifdef _KERNEL
163 1.1 reinoud
164 1.1 reinoud /*
165 1.1 reinoud * Commonly referenced structures
166 1.1 reinoud */
167 1.23 thorpej extern struct pv_entry *pv_table; /* Phys to virt mappings, per page. */
168 1.11 chris extern struct pmap kernel_pmap_store;
169 1.4 matt extern int pmap_debug_level; /* Only exists if PMAP_DEBUG */
170 1.1 reinoud
171 1.1 reinoud /*
172 1.1 reinoud * Macros that we need to export
173 1.1 reinoud */
174 1.1 reinoud #define pmap_kernel() (&kernel_pmap_store)
175 1.1 reinoud #define pmap_resident_count(pmap) ((pmap)->pm_stats.resident_count)
176 1.1 reinoud #define pmap_wired_count(pmap) ((pmap)->pm_stats.wired_count)
177 1.1 reinoud
178 1.1 reinoud #define pmap_phys_address(ppn) (arm_page_to_byte((ppn)))
179 1.1 reinoud
180 1.1 reinoud /*
181 1.1 reinoud * Functions that we need to export
182 1.1 reinoud */
183 1.2 matt extern vaddr_t pmap_map __P((vaddr_t, vaddr_t, vaddr_t, int));
184 1.4 matt extern void pmap_procwr __P((struct proc *, vaddr_t, int));
185 1.1 reinoud #define PMAP_NEED_PROCWR
186 1.29 chris #define PMAP_GROWKERNEL /* turn on pmap_growkernel interface */
187 1.4 matt
188 1.4 matt /*
189 1.4 matt * Functions we use internally
190 1.4 matt */
191 1.13 chris void pmap_bootstrap __P((pd_entry_t *, pv_addr_t));
192 1.13 chris void pmap_debug __P((int));
193 1.13 chris int pmap_handled_emulation __P((struct pmap *, vaddr_t));
194 1.13 chris int pmap_modified_emulation __P((struct pmap *, vaddr_t));
195 1.13 chris void pmap_postinit __P((void));
196 1.13 chris pt_entry_t *pmap_pte __P((struct pmap *, vaddr_t));
197 1.24 thorpej
198 1.24 thorpej /* Bootstrapping routines. */
199 1.24 thorpej void pmap_map_section(vaddr_t, vaddr_t, paddr_t, int, int);
200 1.25 thorpej void pmap_map_entry(vaddr_t, vaddr_t, paddr_t, int, int);
201 1.28 thorpej vsize_t pmap_map_chunk(vaddr_t, vaddr_t, paddr_t, vsize_t, int, int);
202 1.28 thorpej void pmap_link_l2pt(vaddr_t, vaddr_t, pv_addr_t *);
203 1.13 chris
204 1.13 chris /*
205 1.13 chris * Special page zero routine for use by the idle loop (no cache cleans).
206 1.13 chris */
207 1.13 chris boolean_t pmap_pageidlezero __P((paddr_t));
208 1.13 chris #define PMAP_PAGEIDLEZERO(pa) pmap_pageidlezero((pa))
209 1.1 reinoud
210 1.29 chris /*
211 1.29 chris * The current top of kernel VM
212 1.29 chris */
213 1.29 chris extern vaddr_t pmap_curmaxkvaddr;
214 1.29 chris
215 1.1 reinoud #endif /* _KERNEL */
216 1.1 reinoud
217 1.1 reinoud /*
218 1.1 reinoud * Useful macros and constants
219 1.1 reinoud */
220 1.1 reinoud
221 1.1 reinoud /* Virtual address to page table entry */
222 1.1 reinoud #define vtopte(va) \
223 1.1 reinoud ((pt_entry_t *)(PROCESS_PAGE_TBLS_BASE + \
224 1.1 reinoud (arm_byte_to_page((unsigned int)(va)) << 2)))
225 1.1 reinoud
226 1.1 reinoud /* Virtual address to physical address */
227 1.1 reinoud #define vtophys(va) \
228 1.1 reinoud ((*vtopte(va) & PG_FRAME) | ((unsigned int)(va) & ~PG_FRAME))
229 1.1 reinoud
230 1.1 reinoud /* L1 and L2 page table macros */
231 1.29 chris #define pmap_pdei(v) ((v & PD_MASK) >> PDSHIFT)
232 1.29 chris #define pmap_pde(m, v) (&((m)->pm_pdir[pmap_pdei(v)]))
233 1.1 reinoud #define pmap_pte_pa(pte) (*(pte) & PG_FRAME)
234 1.1 reinoud #define pmap_pde_v(pde) (*(pde) != 0)
235 1.16 rearnsha #define pmap_pde_section(pde) ((*(pde) & L1_MASK) == L1_SECTION)
236 1.16 rearnsha #define pmap_pde_page(pde) ((*(pde) & L1_MASK) == L1_PAGE)
237 1.16 rearnsha #define pmap_pde_fpage(pde) ((*(pde) & L1_MASK) == L1_FPAGE)
238 1.16 rearnsha
239 1.1 reinoud #define pmap_pte_v(pte) (*(pte) != 0)
240 1.1 reinoud
241 1.1 reinoud /* Size of the kernel part of the L1 page table */
242 1.1 reinoud #define KERNEL_PD_SIZE \
243 1.1 reinoud (PD_SIZE - (KERNEL_SPACE_START >> PDSHIFT) * sizeof(pd_entry_t))
244 1.20 chs
245 1.20 chs /*
246 1.20 chs * tell MI code that the cache is virtually-indexed *and* virtually-tagged.
247 1.20 chs */
248 1.20 chs
249 1.20 chs #define PMAP_CACHE_VIVT
250 1.18 thorpej
251 1.18 thorpej #endif /* _KERNEL */
252 1.1 reinoud
253 1.1 reinoud #endif /* _ARM32_PMAP_H_ */
254