kvm_sparc64.c revision 1.14 1 1.14 jym /* $NetBSD: kvm_sparc64.c,v 1.14 2010/09/19 02:07:00 jym Exp $ */
2 1.1 eeh
3 1.1 eeh /*-
4 1.1 eeh * Copyright (c) 1992, 1993
5 1.1 eeh * The Regents of the University of California. All rights reserved.
6 1.1 eeh *
7 1.1 eeh * This code is derived from software developed by the Computer Systems
8 1.1 eeh * Engineering group at Lawrence Berkeley Laboratory under DARPA contract
9 1.1 eeh * BG 91-66 and contributed to Berkeley.
10 1.1 eeh *
11 1.1 eeh * Redistribution and use in source and binary forms, with or without
12 1.1 eeh * modification, are permitted provided that the following conditions
13 1.1 eeh * are met:
14 1.1 eeh * 1. Redistributions of source code must retain the above copyright
15 1.1 eeh * notice, this list of conditions and the following disclaimer.
16 1.1 eeh * 2. Redistributions in binary form must reproduce the above copyright
17 1.1 eeh * notice, this list of conditions and the following disclaimer in the
18 1.1 eeh * documentation and/or other materials provided with the distribution.
19 1.10 agc * 3. Neither the name of the University nor the names of its contributors
20 1.1 eeh * may be used to endorse or promote products derived from this software
21 1.1 eeh * without specific prior written permission.
22 1.1 eeh *
23 1.1 eeh * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
24 1.1 eeh * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
25 1.1 eeh * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
26 1.1 eeh * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
27 1.1 eeh * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
28 1.1 eeh * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
29 1.1 eeh * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
30 1.1 eeh * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
31 1.1 eeh * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
32 1.1 eeh * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
33 1.1 eeh * SUCH DAMAGE.
34 1.1 eeh */
35 1.1 eeh
36 1.1 eeh #include <sys/cdefs.h>
37 1.1 eeh #if defined(LIBC_SCCS) && !defined(lint)
38 1.1 eeh #if 0
39 1.1 eeh static char sccsid[] = "@(#)kvm_sparc.c 8.1 (Berkeley) 6/4/93";
40 1.1 eeh #else
41 1.14 jym __RCSID("$NetBSD: kvm_sparc64.c,v 1.14 2010/09/19 02:07:00 jym Exp $");
42 1.1 eeh #endif
43 1.1 eeh #endif /* LIBC_SCCS and not lint */
44 1.1 eeh
45 1.1 eeh /*
46 1.2 simonb * Sparc machine dependent routines for kvm. Hopefully, the forthcoming
47 1.1 eeh * vm code will one day obsolete this module.
48 1.1 eeh */
49 1.1 eeh
50 1.1 eeh #include <sys/param.h>
51 1.1 eeh #include <sys/exec.h>
52 1.1 eeh #include <sys/user.h>
53 1.1 eeh #include <sys/proc.h>
54 1.1 eeh #include <sys/stat.h>
55 1.1 eeh #include <sys/core.h>
56 1.1 eeh #include <sys/kcore.h>
57 1.1 eeh #include <unistd.h>
58 1.1 eeh #include <nlist.h>
59 1.1 eeh #include <kvm.h>
60 1.1 eeh
61 1.4 mrg #include <uvm/uvm_extern.h>
62 1.3 mrg
63 1.7 matt #include <machine/pmap.h>
64 1.1 eeh #include <machine/kcore.h>
65 1.8 martin #include <machine/vmparam.h>
66 1.1 eeh
67 1.1 eeh #include <limits.h>
68 1.1 eeh #include <db.h>
69 1.1 eeh
70 1.1 eeh #include "kvm_private.h"
71 1.1 eeh
72 1.1 eeh void
73 1.14 jym _kvm_freevtop(kvm_t *kd)
74 1.1 eeh {
75 1.1 eeh if (kd->vmst != 0) {
76 1.1 eeh _kvm_err(kd, kd->program, "_kvm_freevtop: internal error");
77 1.1 eeh kd->vmst = 0;
78 1.1 eeh }
79 1.1 eeh }
80 1.1 eeh
81 1.1 eeh /*
82 1.1 eeh * Prepare for translation of kernel virtual addresses into offsets
83 1.1 eeh * into crash dump files. We use the MMU specific goop written at the
84 1.1 eeh * front of the crash dump by pmap_dumpmmu().
85 1.5 eeh *
86 1.5 eeh * We should read in and cache the ksegs here to speed up operations...
87 1.1 eeh */
88 1.1 eeh int
89 1.14 jym _kvm_initvtop(kvm_t *kd)
90 1.1 eeh {
91 1.5 eeh kd->nbpg = 0x2000;
92 1.5 eeh
93 1.1 eeh return (0);
94 1.1 eeh }
95 1.1 eeh
96 1.1 eeh /*
97 1.1 eeh * Translate a kernel virtual address to a physical address using the
98 1.1 eeh * mapping information in kd->vm. Returns the result in pa, and returns
99 1.2 simonb * the number of bytes that are contiguously available from this
100 1.9 wiz * physical address. This routine is used only for crash dumps.
101 1.1 eeh */
102 1.1 eeh int
103 1.14 jym _kvm_kvatop(kvm_t *kd, u_long va, u_long *pa)
104 1.1 eeh {
105 1.1 eeh cpu_kcore_hdr_t *cpup = kd->cpu_data;
106 1.1 eeh u_long kernbase = cpup->kernbase;
107 1.5 eeh uint64_t *pseg, *pdir, *ptbl;
108 1.11 martin struct cpu_kcore_4mbseg *ktlb;
109 1.5 eeh int64_t data;
110 1.11 martin int i;
111 1.1 eeh
112 1.1 eeh if (va < kernbase)
113 1.5 eeh goto lose;
114 1.1 eeh
115 1.13 martin /* Handle the wired 4MB TTEs and per-CPU mappings */
116 1.11 martin if (cpup->memsegoffset > sizeof(cpu_kcore_hdr_t) &&
117 1.11 martin cpup->newmagic == SPARC64_KCORE_NEWMAGIC) {
118 1.11 martin /*
119 1.11 martin * new format: we have a list of 4 MB mappings
120 1.11 martin */
121 1.11 martin ktlb = (struct cpu_kcore_4mbseg *)
122 1.11 martin ((uintptr_t)kd->cpu_data + cpup->off4mbsegs);
123 1.11 martin for (i = 0; i < cpup->num4mbsegs; i++) {
124 1.11 martin uint64_t start = ktlb[i].va;
125 1.11 martin if (va < start || va >= start+PAGE_SIZE_4M)
126 1.11 martin continue;
127 1.11 martin *pa = ktlb[i].pa + va - start;
128 1.11 martin return (int)(start+PAGE_SIZE_4M - va);
129 1.11 martin }
130 1.11 martin
131 1.13 martin if (cpup->numcpuinfos > 0) {
132 1.13 martin /* we have per-CPU mapping info */
133 1.13 martin uint64_t start, base;
134 1.13 martin
135 1.13 martin base = cpup->cpubase - 32*1024;
136 1.13 martin if (va >= base && va < (base + cpup->percpusz)) {
137 1.13 martin start = va - base;
138 1.13 martin *pa = cpup->cpusp
139 1.13 martin + cpup->thiscpu*cpup->percpusz
140 1.13 martin + start;
141 1.13 martin return cpup->percpusz - start;
142 1.13 martin }
143 1.13 martin }
144 1.11 martin } else {
145 1.11 martin /*
146 1.11 martin * old format: just a textbase/size and database/size
147 1.11 martin */
148 1.11 martin if (va > cpup->ktextbase && va <
149 1.11 martin (cpup->ktextbase + cpup->ktextsz)) {
150 1.11 martin u_long vaddr;
151 1.11 martin
152 1.11 martin vaddr = va - cpup->ktextbase;
153 1.11 martin *pa = cpup->ktextp + vaddr;
154 1.11 martin return (int)(cpup->ktextsz - vaddr);
155 1.11 martin }
156 1.11 martin if (va > cpup->kdatabase && va <
157 1.11 martin (cpup->kdatabase + cpup->kdatasz)) {
158 1.11 martin u_long vaddr;
159 1.11 martin
160 1.11 martin vaddr = va - cpup->kdatabase;
161 1.11 martin *pa = cpup->kdatap + vaddr;
162 1.11 martin return (int)(cpup->kdatasz - vaddr);
163 1.11 martin }
164 1.2 simonb }
165 1.5 eeh
166 1.1 eeh /*
167 1.5 eeh * Parse kernel page table.
168 1.1 eeh */
169 1.5 eeh pseg = (uint64_t *)(u_long)cpup->segmapoffset;
170 1.12 ad if (_kvm_pread(kd, kd->pmfd, &pdir, sizeof(pdir),
171 1.5 eeh _kvm_pa2off(kd, (u_long)&pseg[va_to_seg(va)]))
172 1.5 eeh != sizeof(pdir)) {
173 1.5 eeh _kvm_syserr(kd, 0, "could not read L1 PTE");
174 1.5 eeh goto lose;
175 1.5 eeh }
176 1.5 eeh
177 1.5 eeh if (!pdir) {
178 1.5 eeh _kvm_err(kd, 0, "invalid L1 PTE");
179 1.5 eeh goto lose;
180 1.5 eeh }
181 1.5 eeh
182 1.12 ad if (_kvm_pread(kd, kd->pmfd, &ptbl, sizeof(ptbl),
183 1.5 eeh _kvm_pa2off(kd, (u_long)&pdir[va_to_dir(va)]))
184 1.5 eeh != sizeof(ptbl)) {
185 1.5 eeh _kvm_syserr(kd, 0, "could not read L2 PTE");
186 1.5 eeh goto lose;
187 1.1 eeh }
188 1.5 eeh
189 1.5 eeh if (!ptbl) {
190 1.5 eeh _kvm_err(kd, 0, "invalid L2 PTE");
191 1.5 eeh goto lose;
192 1.5 eeh }
193 1.5 eeh
194 1.12 ad if (_kvm_pread(kd, kd->pmfd, &data, sizeof(data),
195 1.5 eeh _kvm_pa2off(kd, (u_long)&ptbl[va_to_pte(va)]))
196 1.5 eeh != sizeof(data)) {
197 1.5 eeh _kvm_syserr(kd, 0, "could not read TTE");
198 1.5 eeh goto lose;
199 1.5 eeh }
200 1.5 eeh
201 1.5 eeh if (data >= 0) {
202 1.5 eeh _kvm_err(kd, 0, "invalid L2 TTE");
203 1.5 eeh goto lose;
204 1.5 eeh }
205 1.5 eeh
206 1.5 eeh /*
207 1.5 eeh * Calculate page offsets and things.
208 1.5 eeh *
209 1.5 eeh * XXXX -- We could support multiple page sizes.
210 1.5 eeh */
211 1.5 eeh va = va & (kd->nbpg - 1);
212 1.5 eeh data &= TLB_PA_MASK;
213 1.5 eeh *pa = data + va;
214 1.5 eeh
215 1.5 eeh /*
216 1.5 eeh * Parse and trnslate our TTE.
217 1.5 eeh */
218 1.5 eeh
219 1.11 martin return (int)(kd->nbpg - va);
220 1.5 eeh
221 1.5 eeh lose:
222 1.11 martin *pa = (u_long)-1;
223 1.6 he _kvm_err(kd, 0, "invalid address (%lx)", va);
224 1.1 eeh return (0);
225 1.1 eeh }
226 1.1 eeh
227 1.1 eeh
228 1.2 simonb /*
229 1.9 wiz * Translate a physical address to a file-offset in the crash dump.
230 1.2 simonb */
231 1.1 eeh off_t
232 1.14 jym _kvm_pa2off(kvm_t *kd, u_long pa)
233 1.1 eeh {
234 1.1 eeh cpu_kcore_hdr_t *cpup = kd->cpu_data;
235 1.1 eeh phys_ram_seg_t *mp;
236 1.1 eeh off_t off;
237 1.1 eeh int nmem;
238 1.1 eeh
239 1.1 eeh /*
240 1.1 eeh * Layout of CPU segment:
241 1.1 eeh * cpu_kcore_hdr_t;
242 1.1 eeh * [alignment]
243 1.1 eeh * phys_ram_seg_t[cpup->nmemseg];
244 1.1 eeh */
245 1.1 eeh mp = (phys_ram_seg_t *)((long)kd->cpu_data + cpup->memsegoffset);
246 1.1 eeh off = 0;
247 1.1 eeh
248 1.1 eeh /* Translate (sparse) pfnum to (packed) dump offset */
249 1.1 eeh for (nmem = cpup->nmemseg; --nmem >= 0; mp++) {
250 1.1 eeh if (mp->start <= pa && pa < mp->start + mp->size)
251 1.1 eeh break;
252 1.1 eeh off += mp->size;
253 1.1 eeh }
254 1.1 eeh if (nmem < 0) {
255 1.6 he _kvm_err(kd, 0, "invalid address (%lx)", pa);
256 1.1 eeh return (-1);
257 1.1 eeh }
258 1.1 eeh
259 1.1 eeh return (kd->dump_off + off + pa - mp->start);
260 1.1 eeh }
261 1.1 eeh
262 1.1 eeh /*
263 1.1 eeh * Machine-dependent initialization for ALL open kvm descriptors,
264 1.1 eeh * not just those for a kernel crash dump. Some architectures
265 1.1 eeh * have to deal with these NOT being constants! (i.e. m68k)
266 1.1 eeh */
267 1.1 eeh int
268 1.14 jym _kvm_mdopen(kvm_t *kd)
269 1.1 eeh {
270 1.1 eeh u_long max_uva;
271 1.1 eeh extern struct ps_strings *__ps_strings;
272 1.1 eeh
273 1.1 eeh max_uva = (u_long) (__ps_strings + 1);
274 1.1 eeh kd->usrstack = max_uva;
275 1.1 eeh kd->max_uva = max_uva;
276 1.1 eeh kd->min_uva = 0;
277 1.1 eeh
278 1.1 eeh return (0);
279 1.1 eeh }
280