vmparam.h revision 1.2 1 1.1 deraadt /*
2 1.1 deraadt * Copyright (c) 1988 University of Utah.
3 1.2 glass * Copyright (c) 1992, 1993
4 1.2 glass * The Regents of the University of California. All rights reserved.
5 1.1 deraadt *
6 1.1 deraadt * This code is derived from software contributed to Berkeley by
7 1.1 deraadt * the Systems Programming Group of the University of Utah Computer
8 1.1 deraadt * Science Department and Ralph Campbell.
9 1.1 deraadt *
10 1.1 deraadt * Redistribution and use in source and binary forms, with or without
11 1.1 deraadt * modification, are permitted provided that the following conditions
12 1.1 deraadt * are met:
13 1.1 deraadt * 1. Redistributions of source code must retain the above copyright
14 1.1 deraadt * notice, this list of conditions and the following disclaimer.
15 1.1 deraadt * 2. Redistributions in binary form must reproduce the above copyright
16 1.1 deraadt * notice, this list of conditions and the following disclaimer in the
17 1.1 deraadt * documentation and/or other materials provided with the distribution.
18 1.1 deraadt * 3. All advertising materials mentioning features or use of this software
19 1.1 deraadt * must display the following acknowledgement:
20 1.1 deraadt * This product includes software developed by the University of
21 1.1 deraadt * California, Berkeley and its contributors.
22 1.1 deraadt * 4. Neither the name of the University nor the names of its contributors
23 1.1 deraadt * may be used to endorse or promote products derived from this software
24 1.1 deraadt * without specific prior written permission.
25 1.1 deraadt *
26 1.1 deraadt * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
27 1.1 deraadt * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
28 1.1 deraadt * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
29 1.1 deraadt * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
30 1.1 deraadt * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
31 1.1 deraadt * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
32 1.1 deraadt * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
33 1.1 deraadt * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
34 1.1 deraadt * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
35 1.1 deraadt * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
36 1.1 deraadt * SUCH DAMAGE.
37 1.1 deraadt *
38 1.1 deraadt * from: Utah Hdr: vmparam.h 1.16 91/01/18
39 1.2 glass *
40 1.2 glass * from: @(#)vmparam.h 8.2 (Berkeley) 4/22/94
41 1.2 glass * $Id: vmparam.h,v 1.2 1994/05/27 08:41:20 glass Exp $
42 1.1 deraadt */
43 1.1 deraadt
44 1.1 deraadt /*
45 1.1 deraadt * Machine dependent constants for DEC Station 3100.
46 1.1 deraadt */
47 1.1 deraadt /*
48 1.1 deraadt * USRTEXT is the start of the user text/data space, while USRSTACK
49 1.1 deraadt * is the top (end) of the user stack. LOWPAGES and HIGHPAGES are
50 1.1 deraadt * the number of pages from the beginning of the P0 region to the
51 1.1 deraadt * beginning of the text and from the beginning of the P1 region to the
52 1.1 deraadt * beginning of the stack respectively.
53 1.1 deraadt */
54 1.2 glass #define USRTEXT 0x00001000
55 1.1 deraadt #define USRSTACK 0x80000000 /* Start of user stack */
56 1.1 deraadt #define BTOPUSRSTACK 0x80000 /* btop(USRSTACK) */
57 1.2 glass #define LOWPAGES 0x00001
58 1.1 deraadt #define HIGHPAGES 0
59 1.1 deraadt
60 1.1 deraadt /*
61 1.1 deraadt * Virtual memory related constants, all in bytes
62 1.1 deraadt */
63 1.1 deraadt #ifndef MAXTSIZ
64 1.1 deraadt #define MAXTSIZ (24*1024*1024) /* max text size */
65 1.1 deraadt #endif
66 1.1 deraadt #ifndef DFLDSIZ
67 1.1 deraadt #define DFLDSIZ (32*1024*1024) /* initial data size limit */
68 1.1 deraadt #endif
69 1.1 deraadt #ifndef MAXDSIZ
70 1.1 deraadt #define MAXDSIZ (32*1024*1024) /* max data size */
71 1.1 deraadt #endif
72 1.1 deraadt #ifndef DFLSSIZ
73 1.1 deraadt #define DFLSSIZ (1024*1024) /* initial stack size limit */
74 1.1 deraadt #endif
75 1.1 deraadt #ifndef MAXSSIZ
76 1.1 deraadt #define MAXSSIZ MAXDSIZ /* max stack size */
77 1.1 deraadt #endif
78 1.1 deraadt
79 1.1 deraadt /*
80 1.1 deraadt * Default sizes of swap allocation chunks (see dmap.h).
81 1.1 deraadt * The actual values may be changed in vminit() based on MAXDSIZ.
82 1.1 deraadt * With MAXDSIZ of 16Mb and NDMAP of 38, dmmax will be 1024.
83 1.1 deraadt * DMMIN should be at least ctod(1) so that vtod() works.
84 1.1 deraadt * vminit() insures this.
85 1.1 deraadt */
86 1.1 deraadt #define DMMIN 32 /* smallest swap allocation */
87 1.1 deraadt #define DMMAX 4096 /* largest potential swap allocation */
88 1.1 deraadt
89 1.1 deraadt /*
90 1.1 deraadt * Sizes of the system and user portions of the system page table.
91 1.1 deraadt */
92 1.1 deraadt /* SYSPTSIZE IS SILLY; (really number of buffers for I/O) */
93 1.1 deraadt #define SYSPTSIZE 1228
94 1.1 deraadt #define USRPTSIZE 1024
95 1.1 deraadt
96 1.1 deraadt /*
97 1.1 deraadt * PTEs for mapping user space into the kernel for phyio operations.
98 1.1 deraadt * 16 pte's are enough to cover 8 disks * MAXBSIZE.
99 1.1 deraadt */
100 1.1 deraadt #ifndef USRIOSIZE
101 1.1 deraadt #define USRIOSIZE 32
102 1.1 deraadt #endif
103 1.1 deraadt
104 1.1 deraadt /*
105 1.1 deraadt * PTEs for system V style shared memory.
106 1.1 deraadt * This is basically slop for kmempt which we actually allocate (malloc) from.
107 1.1 deraadt */
108 1.1 deraadt #ifndef SHMMAXPGS
109 1.1 deraadt #define SHMMAXPGS 1024 /* 4mb */
110 1.1 deraadt #endif
111 1.1 deraadt
112 1.1 deraadt /*
113 1.1 deraadt * Boundary at which to place first MAPMEM segment if not explicitly
114 1.1 deraadt * specified. Should be a power of two. This allows some slop for
115 1.1 deraadt * the data segment to grow underneath the first mapped segment.
116 1.1 deraadt */
117 1.1 deraadt #define MMSEG 0x200000
118 1.1 deraadt
119 1.1 deraadt /*
120 1.1 deraadt * The size of the clock loop.
121 1.1 deraadt */
122 1.1 deraadt #define LOOPPAGES (maxfree - firstfree)
123 1.1 deraadt
124 1.1 deraadt /*
125 1.1 deraadt * The time for a process to be blocked before being very swappable.
126 1.1 deraadt * This is a number of seconds which the system takes as being a non-trivial
127 1.1 deraadt * amount of real time. You probably shouldn't change this;
128 1.1 deraadt * it is used in subtle ways (fractions and multiples of it are, that is, like
129 1.1 deraadt * half of a ``long time'', almost a long time, etc.)
130 1.1 deraadt * It is related to human patience and other factors which don't really
131 1.1 deraadt * change over time.
132 1.1 deraadt */
133 1.1 deraadt #define MAXSLP 20
134 1.1 deraadt
135 1.1 deraadt /*
136 1.1 deraadt * A swapped in process is given a small amount of core without being bothered
137 1.1 deraadt * by the page replacement algorithm. Basically this says that if you are
138 1.1 deraadt * swapped in you deserve some resources. We protect the last SAFERSS
139 1.1 deraadt * pages against paging and will just swap you out rather than paging you.
140 1.1 deraadt * Note that each process has at least UPAGES+CLSIZE pages which are not
141 1.1 deraadt * paged anyways (this is currently 8+2=10 pages or 5k bytes), so this
142 1.1 deraadt * number just means a swapped in process is given around 25k bytes.
143 1.1 deraadt * Just for fun: current memory prices are 4600$ a megabyte on VAX (4/22/81),
144 1.1 deraadt * so we loan each swapped in process memory worth 100$, or just admit
145 1.1 deraadt * that we don't consider it worthwhile and swap it out to disk which costs
146 1.1 deraadt * $30/mb or about $0.75.
147 1.1 deraadt */
148 1.1 deraadt #define SAFERSS 4 /* nominal ``small'' resident set size
149 1.1 deraadt protected against replacement */
150 1.1 deraadt
151 1.1 deraadt /*
152 1.1 deraadt * DISKRPM is used to estimate the number of paging i/o operations
153 1.1 deraadt * which one can expect from a single disk controller.
154 1.1 deraadt */
155 1.1 deraadt #define DISKRPM 60
156 1.1 deraadt
157 1.1 deraadt /*
158 1.1 deraadt * Klustering constants. Klustering is the gathering
159 1.1 deraadt * of pages together for pagein/pageout, while clustering
160 1.1 deraadt * is the treatment of hardware page size as though it were
161 1.1 deraadt * larger than it really is.
162 1.1 deraadt *
163 1.1 deraadt * KLMAX gives maximum cluster size in CLSIZE page (cluster-page)
164 1.1 deraadt * units. Note that ctod(KLMAX*CLSIZE) must be <= DMMIN in dmap.h.
165 1.1 deraadt * ctob(KLMAX) should also be less than MAXPHYS (in vm_swp.c)
166 1.1 deraadt * unless you like "big push" panics.
167 1.1 deraadt */
168 1.1 deraadt
169 1.1 deraadt #ifdef notdef /* XXX */
170 1.1 deraadt #define KLMAX (4/CLSIZE)
171 1.1 deraadt #define KLSEQL (2/CLSIZE) /* in klust if vadvise(VA_SEQL) */
172 1.1 deraadt #define KLIN (4/CLSIZE) /* default data/stack in klust */
173 1.1 deraadt #define KLTXT (4/CLSIZE) /* default text in klust */
174 1.1 deraadt #define KLOUT (4/CLSIZE)
175 1.1 deraadt #else
176 1.1 deraadt #define KLMAX (1/CLSIZE)
177 1.1 deraadt #define KLSEQL (1/CLSIZE)
178 1.1 deraadt #define KLIN (1/CLSIZE)
179 1.1 deraadt #define KLTXT (1/CLSIZE)
180 1.1 deraadt #define KLOUT (1/CLSIZE)
181 1.1 deraadt #endif
182 1.1 deraadt
183 1.1 deraadt /*
184 1.1 deraadt * KLSDIST is the advance or retard of the fifo reclaim for sequential
185 1.1 deraadt * processes data space.
186 1.1 deraadt */
187 1.1 deraadt #define KLSDIST 3 /* klusters advance/retard for seq. fifo */
188 1.1 deraadt
189 1.1 deraadt /*
190 1.1 deraadt * Paging thresholds (see vm_sched.c).
191 1.1 deraadt * Strategy of 1/19/85:
192 1.1 deraadt * lotsfree is 512k bytes, but at most 1/4 of memory
193 1.1 deraadt * desfree is 200k bytes, but at most 1/8 of memory
194 1.1 deraadt */
195 1.1 deraadt #define LOTSFREE (512 * 1024)
196 1.1 deraadt #define LOTSFREEFRACT 4
197 1.1 deraadt #define DESFREE (200 * 1024)
198 1.1 deraadt #define DESFREEFRACT 8
199 1.1 deraadt
200 1.1 deraadt /*
201 1.1 deraadt * There are two clock hands, initially separated by HANDSPREAD bytes
202 1.1 deraadt * (but at most all of user memory). The amount of time to reclaim
203 1.1 deraadt * a page once the pageout process examines it increases with this
204 1.1 deraadt * distance and decreases as the scan rate rises.
205 1.1 deraadt */
206 1.1 deraadt #define HANDSPREAD (2 * 1024 * 1024)
207 1.1 deraadt
208 1.1 deraadt /*
209 1.1 deraadt * The number of times per second to recompute the desired paging rate
210 1.1 deraadt * and poke the pagedaemon.
211 1.1 deraadt */
212 1.1 deraadt #define RATETOSCHEDPAGING 4
213 1.1 deraadt
214 1.1 deraadt /*
215 1.1 deraadt * Believed threshold (in megabytes) for which interleaved
216 1.1 deraadt * swapping area is desirable.
217 1.1 deraadt */
218 1.1 deraadt #define LOTSOFMEM 2
219 1.1 deraadt
220 1.1 deraadt #define mapin(pte, v, pfnum, prot) \
221 1.1 deraadt (*(int *)(pte) = ((pfnum) << PG_SHIFT) | (prot), MachTLBFlushAddr(v))
222 1.1 deraadt
223 1.1 deraadt /*
224 1.1 deraadt * Mach derived constants
225 1.1 deraadt */
226 1.1 deraadt
227 1.1 deraadt /* user/kernel map constants */
228 1.1 deraadt #define VM_MIN_ADDRESS ((vm_offset_t)0x1000)
229 1.1 deraadt #define VM_MAXUSER_ADDRESS ((vm_offset_t)0x80000000)
230 1.1 deraadt #define VM_MAX_ADDRESS ((vm_offset_t)0x80000000)
231 1.1 deraadt #define VM_MIN_KERNEL_ADDRESS ((vm_offset_t)0xC0000000)
232 1.1 deraadt #define VM_MAX_KERNEL_ADDRESS ((vm_offset_t)0xFFFFC000)
233 1.1 deraadt
234 1.1 deraadt /* virtual sizes (bytes) for various kernel submaps */
235 1.1 deraadt #define VM_MBUF_SIZE (NMBCLUSTERS*MCLBYTES)
236 1.1 deraadt #define VM_KMEM_SIZE (NKMEMCLUSTERS*CLBYTES)
237 1.1 deraadt #define VM_PHYS_SIZE (USRIOSIZE*CLBYTES)
238 1.1 deraadt
239 1.1 deraadt /* pcb base */
240 1.1 deraadt #define pcbb(p) ((u_int)(p)->p_addr)
241