machdep.c revision 1.3 1 1.3 gwr /* $NetBSD: machdep.c,v 1.3 1997/01/23 22:48:40 gwr Exp $ */
2 1.1 gwr
3 1.1 gwr /*
4 1.1 gwr * Copyright (c) 1988 University of Utah.
5 1.1 gwr * Copyright (c) 1982, 1986, 1990, 1993
6 1.1 gwr * The Regents of the University of California. All rights reserved.
7 1.1 gwr *
8 1.1 gwr * This code is derived from software contributed to Berkeley by
9 1.1 gwr * the Systems Programming Group of the University of Utah Computer
10 1.1 gwr * Science Department.
11 1.1 gwr *
12 1.1 gwr * Redistribution and use in source and binary forms, with or without
13 1.1 gwr * modification, are permitted provided that the following conditions
14 1.1 gwr * are met:
15 1.1 gwr * 1. Redistributions of source code must retain the above copyright
16 1.1 gwr * notice, this list of conditions and the following disclaimer.
17 1.1 gwr * 2. Redistributions in binary form must reproduce the above copyright
18 1.1 gwr * notice, this list of conditions and the following disclaimer in the
19 1.1 gwr * documentation and/or other materials provided with the distribution.
20 1.1 gwr * 3. All advertising materials mentioning features or use of this software
21 1.1 gwr * must display the following acknowledgement:
22 1.1 gwr * This product includes software developed by the University of
23 1.1 gwr * California, Berkeley and its contributors.
24 1.1 gwr * 4. Neither the name of the University nor the names of its contributors
25 1.1 gwr * may be used to endorse or promote products derived from this software
26 1.1 gwr * without specific prior written permission.
27 1.1 gwr *
28 1.1 gwr * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
29 1.1 gwr * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
30 1.1 gwr * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
31 1.1 gwr * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
32 1.1 gwr * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
33 1.1 gwr * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
34 1.1 gwr * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
35 1.1 gwr * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
36 1.1 gwr * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
37 1.1 gwr * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
38 1.1 gwr * SUCH DAMAGE.
39 1.1 gwr *
40 1.1 gwr * from: Utah Hdr: machdep.c 1.74 92/12/20
41 1.1 gwr * from: @(#)machdep.c 8.10 (Berkeley) 4/20/94
42 1.1 gwr */
43 1.1 gwr
44 1.1 gwr #include <sys/param.h>
45 1.1 gwr #include <sys/systm.h>
46 1.1 gwr #include <sys/signalvar.h>
47 1.1 gwr #include <sys/kernel.h>
48 1.1 gwr #include <sys/map.h>
49 1.1 gwr #include <sys/proc.h>
50 1.1 gwr #include <sys/buf.h>
51 1.1 gwr #include <sys/reboot.h>
52 1.1 gwr #include <sys/conf.h>
53 1.1 gwr #include <sys/file.h>
54 1.1 gwr #include <sys/clist.h>
55 1.1 gwr #include <sys/callout.h>
56 1.1 gwr #include <sys/malloc.h>
57 1.1 gwr #include <sys/mbuf.h>
58 1.1 gwr #include <sys/msgbuf.h>
59 1.1 gwr #include <sys/ioctl.h>
60 1.1 gwr #include <sys/tty.h>
61 1.1 gwr #include <sys/mount.h>
62 1.1 gwr #include <sys/user.h>
63 1.1 gwr #include <sys/exec.h>
64 1.1 gwr #include <sys/core.h>
65 1.1 gwr #include <sys/kcore.h>
66 1.1 gwr #include <sys/vnode.h>
67 1.1 gwr #include <sys/sysctl.h>
68 1.1 gwr #include <sys/syscallargs.h>
69 1.1 gwr #ifdef SYSVMSG
70 1.1 gwr #include <sys/msg.h>
71 1.1 gwr #endif
72 1.1 gwr #ifdef SYSVSEM
73 1.1 gwr #include <sys/sem.h>
74 1.1 gwr #endif
75 1.1 gwr #ifdef SYSVSHM
76 1.1 gwr #include <sys/shm.h>
77 1.1 gwr #endif
78 1.1 gwr
79 1.1 gwr #include <vm/vm.h>
80 1.1 gwr #include <vm/vm_map.h>
81 1.1 gwr #include <vm/vm_kern.h>
82 1.1 gwr #include <vm/vm_page.h>
83 1.1 gwr
84 1.1 gwr #include <dev/cons.h>
85 1.1 gwr
86 1.1 gwr #include <machine/cpu.h>
87 1.1 gwr #include <machine/reg.h>
88 1.1 gwr #include <machine/psl.h>
89 1.1 gwr #include <machine/pte.h>
90 1.1 gwr #include <machine/mon.h>
91 1.1 gwr #include <machine/dvma.h>
92 1.1 gwr #include <machine/db_machdep.h>
93 1.3 gwr #include <machine/machdep.h>
94 1.1 gwr
95 1.3 gwr #include <sun3/sun3/sunmon.h>
96 1.1 gwr
97 1.1 gwr extern char *cpu_string;
98 1.1 gwr extern char version[];
99 1.1 gwr extern short exframesize[];
100 1.1 gwr
101 1.1 gwr /* Defined in locore.s */
102 1.1 gwr extern char kernel_text[];
103 1.1 gwr /* Defined by the linker */
104 1.1 gwr extern char etext[];
105 1.1 gwr
106 1.1 gwr int physmem;
107 1.1 gwr int fpu_type;
108 1.1 gwr int msgbufmapped;
109 1.1 gwr
110 1.1 gwr vm_offset_t vmmap;
111 1.1 gwr
112 1.1 gwr /*
113 1.1 gwr * safepri is a safe priority for sleep to set for a spin-wait
114 1.1 gwr * during autoconfiguration or after a panic.
115 1.1 gwr */
116 1.1 gwr int safepri = PSL_LOWIPL;
117 1.1 gwr
118 1.1 gwr /*
119 1.1 gwr * Declare these as initialized data so we can patch them.
120 1.1 gwr */
121 1.1 gwr int nswbuf = 0;
122 1.1 gwr #ifdef NBUF
123 1.1 gwr int nbuf = NBUF;
124 1.1 gwr #else
125 1.1 gwr int nbuf = 0;
126 1.1 gwr #endif
127 1.1 gwr #ifdef BUFPAGES
128 1.1 gwr int bufpages = BUFPAGES;
129 1.1 gwr #else
130 1.1 gwr int bufpages = 0;
131 1.1 gwr #endif
132 1.1 gwr label_t *nofault;
133 1.1 gwr
134 1.1 gwr static void identifycpu __P((void));
135 1.1 gwr static void initcpu __P((void));
136 1.1 gwr
137 1.1 gwr /*
138 1.1 gwr * Console initialization: called early on from main,
139 1.1 gwr * before vm init or startup. Do enough configuration
140 1.1 gwr * to choose and initialize a console.
141 1.1 gwr */
142 1.1 gwr void consinit()
143 1.1 gwr {
144 1.1 gwr cninit();
145 1.1 gwr
146 1.1 gwr #ifdef KGDB
147 1.1 gwr /* XXX - Ask on console for kgdb_dev? */
148 1.1 gwr zs_kgdb_init(); /* XXX */
149 1.1 gwr /* Note: kgdb_connect() will just return if kgdb_dev<0 */
150 1.1 gwr if (boothowto & RB_KDB)
151 1.1 gwr kgdb_connect(1);
152 1.1 gwr #endif
153 1.1 gwr #ifdef DDB
154 1.1 gwr /* Now that we have a console, we can stop in DDB. */
155 1.1 gwr db_machine_init();
156 1.1 gwr ddb_init();
157 1.1 gwr if (boothowto & RB_KDB)
158 1.1 gwr Debugger();
159 1.1 gwr #endif DDB
160 1.1 gwr }
161 1.1 gwr
162 1.1 gwr /*
163 1.1 gwr * allocsys() - Private routine used by cpu_startup() below.
164 1.1 gwr *
165 1.1 gwr * Allocate space for system data structures. We are given
166 1.1 gwr * a starting virtual address and we return a final virtual
167 1.1 gwr * address; along the way we set each data structure pointer.
168 1.1 gwr *
169 1.1 gwr * We call allocsys() with 0 to find out how much space we want,
170 1.1 gwr * allocate that much and fill it with zeroes, and then call
171 1.1 gwr * allocsys() again with the correct base virtual address.
172 1.1 gwr */
173 1.1 gwr #define valloc(name, type, num) \
174 1.1 gwr v = (caddr_t)(((name) = (type *)v) + (num))
175 1.1 gwr static caddr_t allocsys __P((caddr_t));
176 1.1 gwr static caddr_t
177 1.1 gwr allocsys(v)
178 1.1 gwr register caddr_t v;
179 1.1 gwr {
180 1.1 gwr
181 1.1 gwr #ifdef REAL_CLISTS
182 1.1 gwr valloc(cfree, struct cblock, nclist);
183 1.1 gwr #endif
184 1.1 gwr valloc(callout, struct callout, ncallout);
185 1.1 gwr valloc(swapmap, struct map, nswapmap = maxproc * 2);
186 1.1 gwr #ifdef SYSVSHM
187 1.1 gwr valloc(shmsegs, struct shmid_ds, shminfo.shmmni);
188 1.1 gwr #endif
189 1.1 gwr #ifdef SYSVSEM
190 1.1 gwr valloc(sema, struct semid_ds, seminfo.semmni);
191 1.1 gwr valloc(sem, struct sem, seminfo.semmns);
192 1.1 gwr /* This is pretty disgusting! */
193 1.1 gwr valloc(semu, int, (seminfo.semmnu * seminfo.semusz) / sizeof(int));
194 1.1 gwr #endif
195 1.1 gwr #ifdef SYSVMSG
196 1.1 gwr valloc(msgpool, char, msginfo.msgmax);
197 1.1 gwr valloc(msgmaps, struct msgmap, msginfo.msgseg);
198 1.1 gwr valloc(msghdrs, struct msg, msginfo.msgtql);
199 1.1 gwr valloc(msqids, struct msqid_ds, msginfo.msgmni);
200 1.1 gwr #endif
201 1.1 gwr
202 1.1 gwr /*
203 1.1 gwr * Determine how many buffers to allocate. We allocate
204 1.1 gwr * the BSD standard of use 10% of memory for the first 2 Meg,
205 1.1 gwr * 5% of remaining. Insure a minimum of 16 buffers.
206 1.1 gwr * Allocate 1/2 as many swap buffer headers as file i/o buffers.
207 1.1 gwr */
208 1.1 gwr if (bufpages == 0) {
209 1.1 gwr /* We always have more than 2MB of memory. */
210 1.1 gwr bufpages = ((btoc(2 * 1024 * 1024) + physmem) /
211 1.1 gwr (20 * CLSIZE));
212 1.1 gwr }
213 1.1 gwr if (nbuf == 0) {
214 1.1 gwr nbuf = bufpages;
215 1.1 gwr if (nbuf < 16)
216 1.1 gwr nbuf = 16;
217 1.1 gwr }
218 1.1 gwr if (nswbuf == 0) {
219 1.1 gwr nswbuf = (nbuf / 2) &~ 1; /* force even */
220 1.1 gwr if (nswbuf > 256)
221 1.1 gwr nswbuf = 256; /* sanity */
222 1.1 gwr }
223 1.1 gwr valloc(swbuf, struct buf, nswbuf);
224 1.1 gwr valloc(buf, struct buf, nbuf);
225 1.1 gwr return v;
226 1.1 gwr }
227 1.1 gwr #undef valloc
228 1.1 gwr
229 1.1 gwr /*
230 1.1 gwr * cpu_startup: allocate memory for variable-sized tables,
231 1.1 gwr * initialize cpu, and do autoconfiguration.
232 1.1 gwr *
233 1.1 gwr * This is called early in init_main.c:main(), after the
234 1.1 gwr * kernel memory allocator is ready for use, but before
235 1.1 gwr * the creation of processes 1,2, and mountroot, etc.
236 1.1 gwr */
237 1.1 gwr void
238 1.1 gwr cpu_startup()
239 1.1 gwr {
240 1.1 gwr caddr_t v;
241 1.1 gwr int sz, i;
242 1.1 gwr vm_size_t size;
243 1.1 gwr int base, residual;
244 1.1 gwr vm_offset_t minaddr, maxaddr;
245 1.1 gwr
246 1.1 gwr /*
247 1.1 gwr * Initialize message buffer (for kernel printf).
248 1.1 gwr * This is put in physical page zero so it will
249 1.1 gwr * always be in the same place after a reboot.
250 1.1 gwr * Its mapping was prepared in pmap_bootstrap().
251 1.1 gwr * Also, offset some to avoid PROM scribbles.
252 1.1 gwr */
253 1.1 gwr v = (caddr_t) KERNBASE;
254 1.1 gwr msgbufp = (struct msgbuf *)(v + 0x1000);
255 1.1 gwr msgbufmapped = 1;
256 1.1 gwr
257 1.1 gwr /*
258 1.1 gwr * Good {morning,afternoon,evening,night}.
259 1.1 gwr */
260 1.1 gwr printf(version);
261 1.1 gwr identifycpu();
262 1.1 gwr initfpu(); /* also prints FPU type */
263 1.1 gwr
264 1.1 gwr printf("real mem = %d\n", ctob(physmem));
265 1.1 gwr
266 1.1 gwr /*
267 1.1 gwr * Find out how much space we need, allocate it,
268 1.1 gwr * and then give everything true virtual addresses.
269 1.1 gwr */
270 1.1 gwr sz = (int)allocsys((caddr_t)0);
271 1.1 gwr if ((v = (caddr_t)kmem_alloc(kernel_map, round_page(sz))) == 0)
272 1.1 gwr panic("startup: no room for tables");
273 1.1 gwr if (allocsys(v) - v != sz)
274 1.1 gwr panic("startup: table size inconsistency");
275 1.1 gwr
276 1.1 gwr /*
277 1.1 gwr * Now allocate buffers proper. They are different than the above
278 1.1 gwr * in that they usually occupy more virtual memory than physical.
279 1.1 gwr */
280 1.1 gwr size = MAXBSIZE * nbuf;
281 1.1 gwr buffer_map = kmem_suballoc(kernel_map, (vm_offset_t *)&buffers,
282 1.1 gwr &maxaddr, size, TRUE);
283 1.1 gwr minaddr = (vm_offset_t)buffers;
284 1.1 gwr if (vm_map_find(buffer_map, vm_object_allocate(size), (vm_offset_t)0,
285 1.1 gwr &minaddr, size, FALSE) != KERN_SUCCESS)
286 1.1 gwr panic("startup: cannot allocate buffers");
287 1.1 gwr if ((bufpages / nbuf) >= btoc(MAXBSIZE)) {
288 1.1 gwr /* don't want to alloc more physical mem than needed */
289 1.1 gwr bufpages = btoc(MAXBSIZE) * nbuf;
290 1.1 gwr }
291 1.1 gwr base = bufpages / nbuf;
292 1.1 gwr residual = bufpages % nbuf;
293 1.1 gwr for (i = 0; i < nbuf; i++) {
294 1.1 gwr vm_size_t curbufsize;
295 1.1 gwr vm_offset_t curbuf;
296 1.1 gwr
297 1.1 gwr /*
298 1.1 gwr * First <residual> buffers get (base+1) physical pages
299 1.1 gwr * allocated for them. The rest get (base) physical pages.
300 1.1 gwr *
301 1.1 gwr * The rest of each buffer occupies virtual space,
302 1.1 gwr * but has no physical memory allocated for it.
303 1.1 gwr */
304 1.1 gwr curbuf = (vm_offset_t)buffers + i * MAXBSIZE;
305 1.1 gwr curbufsize = CLBYTES * (i < residual ? base+1 : base);
306 1.1 gwr vm_map_pageable(buffer_map, curbuf, curbuf+curbufsize, FALSE);
307 1.1 gwr vm_map_simplify(buffer_map, curbuf);
308 1.1 gwr }
309 1.1 gwr
310 1.1 gwr /*
311 1.1 gwr * Allocate a submap for exec arguments. This map effectively
312 1.1 gwr * limits the number of processes exec'ing at any time.
313 1.1 gwr */
314 1.1 gwr exec_map = kmem_suballoc(kernel_map, &minaddr, &maxaddr,
315 1.1 gwr 16*NCARGS, TRUE);
316 1.1 gwr
317 1.1 gwr /*
318 1.1 gwr * We don't use a submap for physio, and use a separate map
319 1.1 gwr * for DVMA allocations. Our vmapbuf just maps pages into
320 1.1 gwr * the kernel map (any kernel mapping is OK) and then the
321 1.1 gwr * device drivers clone the kernel mappings into DVMA space.
322 1.1 gwr */
323 1.1 gwr
324 1.1 gwr /*
325 1.1 gwr * Finally, allocate mbuf pool. Since mclrefcnt is an off-size
326 1.1 gwr * we use the more space efficient malloc in place of kmem_alloc.
327 1.1 gwr */
328 1.1 gwr mclrefcnt = (char *)malloc(NMBCLUSTERS+CLBYTES/MCLBYTES,
329 1.1 gwr M_MBUF, M_NOWAIT);
330 1.1 gwr bzero(mclrefcnt, NMBCLUSTERS+CLBYTES/MCLBYTES);
331 1.1 gwr mb_map = kmem_suballoc(kernel_map, (vm_offset_t *)&mbutl, &maxaddr,
332 1.1 gwr VM_MBUF_SIZE, FALSE);
333 1.1 gwr
334 1.1 gwr /*
335 1.1 gwr * Initialize callouts
336 1.1 gwr */
337 1.1 gwr callfree = callout;
338 1.1 gwr for (i = 1; i < ncallout; i++)
339 1.1 gwr callout[i-1].c_next = &callout[i];
340 1.1 gwr callout[i-1].c_next = NULL;
341 1.1 gwr
342 1.1 gwr printf("avail mem = %d\n", (int) ptoa(cnt.v_free_count));
343 1.1 gwr printf("using %d buffers containing %d bytes of memory\n",
344 1.1 gwr nbuf, bufpages * CLBYTES);
345 1.1 gwr
346 1.1 gwr /*
347 1.1 gwr * Tell the VM system that writing to kernel text isn't allowed.
348 1.1 gwr * If we don't, we might end up COW'ing the text segment!
349 1.1 gwr */
350 1.1 gwr if (vm_map_protect(kernel_map, (vm_offset_t) kernel_text,
351 1.1 gwr sun3x_trunc_page((vm_offset_t) etext),
352 1.1 gwr VM_PROT_READ|VM_PROT_EXECUTE, TRUE)
353 1.1 gwr != KERN_SUCCESS)
354 1.1 gwr panic("can't protect kernel text");
355 1.1 gwr
356 1.1 gwr /*
357 1.1 gwr * Allocate a virtual page (for use by /dev/mem)
358 1.1 gwr * This page is handed to pmap_enter() therefore
359 1.1 gwr * it has to be in the normal kernel VA range.
360 1.1 gwr */
361 1.1 gwr vmmap = kmem_alloc_wait(kernel_map, NBPG);
362 1.1 gwr
363 1.1 gwr /*
364 1.1 gwr * Create the DVMA maps.
365 1.1 gwr */
366 1.1 gwr dvma_init();
367 1.1 gwr
368 1.1 gwr /*
369 1.1 gwr * Set up CPU-specific registers, cache, etc.
370 1.1 gwr */
371 1.1 gwr initcpu();
372 1.1 gwr
373 1.1 gwr /*
374 1.1 gwr * Set up buffers, so they can be used to read disk labels.
375 1.1 gwr */
376 1.1 gwr bufinit();
377 1.1 gwr
378 1.1 gwr /*
379 1.1 gwr * Configure the system.
380 1.1 gwr */
381 1.1 gwr configure();
382 1.1 gwr }
383 1.1 gwr
384 1.1 gwr /*
385 1.1 gwr * Set registers on exec.
386 1.1 gwr * XXX Should clear registers except sp, pc,
387 1.1 gwr * but would break init; should be fixed soon.
388 1.1 gwr */
389 1.1 gwr void
390 1.1 gwr setregs(p, pack, stack, retval)
391 1.1 gwr register struct proc *p;
392 1.1 gwr struct exec_package *pack;
393 1.1 gwr u_long stack;
394 1.1 gwr register_t *retval;
395 1.1 gwr {
396 1.1 gwr struct frame *frame = (struct frame *)p->p_md.md_regs;
397 1.1 gwr
398 1.1 gwr frame->f_pc = pack->ep_entry & ~1;
399 1.1 gwr frame->f_regs[SP] = stack;
400 1.1 gwr frame->f_regs[A2] = (int)PS_STRINGS;
401 1.1 gwr
402 1.1 gwr /* restore a null state frame */
403 1.1 gwr p->p_addr->u_pcb.pcb_fpregs.fpf_null = 0;
404 1.1 gwr if (fpu_type) {
405 1.1 gwr m68881_restore(&p->p_addr->u_pcb.pcb_fpregs);
406 1.1 gwr }
407 1.1 gwr p->p_md.md_flags = 0;
408 1.1 gwr /* XXX - HPUX sigcode hack would go here... */
409 1.1 gwr }
410 1.1 gwr
411 1.1 gwr /*
412 1.1 gwr * Info for CTL_HW
413 1.1 gwr */
414 1.1 gwr char machine[] = "sun3x"; /* cpu "architecture" */
415 1.1 gwr char cpu_model[120];
416 1.1 gwr extern long hostid;
417 1.1 gwr
418 1.1 gwr void
419 1.1 gwr identifycpu()
420 1.1 gwr {
421 1.1 gwr /*
422 1.1 gwr * actual identification done earlier because i felt like it,
423 1.1 gwr * and i believe i will need the info to deal with some VAC, and awful
424 1.1 gwr * framebuffer placement problems. could be moved later.
425 1.1 gwr */
426 1.1 gwr strcpy(cpu_model, "Sun 3/");
427 1.1 gwr
428 1.1 gwr /* should eventually include whether it has a VAC, mc6888x version, etc */
429 1.1 gwr strcat(cpu_model, cpu_string);
430 1.1 gwr
431 1.1 gwr printf("Model: %s (hostid %x)\n", cpu_model, (int) hostid);
432 1.1 gwr }
433 1.1 gwr
434 1.1 gwr /*
435 1.1 gwr * machine dependent system variables.
436 1.1 gwr */
437 1.1 gwr int
438 1.1 gwr cpu_sysctl(name, namelen, oldp, oldlenp, newp, newlen, p)
439 1.1 gwr int *name;
440 1.1 gwr u_int namelen;
441 1.1 gwr void *oldp;
442 1.1 gwr size_t *oldlenp;
443 1.1 gwr void *newp;
444 1.1 gwr size_t newlen;
445 1.1 gwr struct proc *p;
446 1.1 gwr {
447 1.1 gwr int error;
448 1.1 gwr dev_t consdev;
449 1.1 gwr
450 1.1 gwr /* all sysctl names at this level are terminal */
451 1.1 gwr if (namelen != 1)
452 1.1 gwr return (ENOTDIR); /* overloaded */
453 1.1 gwr
454 1.1 gwr switch (name[0]) {
455 1.1 gwr case CPU_CONSDEV:
456 1.1 gwr if (cn_tab != NULL)
457 1.1 gwr consdev = cn_tab->cn_dev;
458 1.1 gwr else
459 1.1 gwr consdev = NODEV;
460 1.1 gwr error = sysctl_rdstruct(oldp, oldlenp, newp,
461 1.1 gwr &consdev, sizeof consdev);
462 1.1 gwr break;
463 1.1 gwr
464 1.1 gwr #if 0 /* XXX - Not yet... */
465 1.1 gwr case CPU_ROOT_DEVICE:
466 1.1 gwr error = sysctl_rdstring(oldp, oldlenp, newp, root_device);
467 1.1 gwr break;
468 1.1 gwr
469 1.1 gwr case CPU_BOOTED_KERNEL:
470 1.1 gwr error = sysctl_rdstring(oldp, oldlenp, newp, booted_kernel);
471 1.1 gwr break;
472 1.1 gwr #endif
473 1.1 gwr
474 1.1 gwr default:
475 1.1 gwr error = EOPNOTSUPP;
476 1.1 gwr }
477 1.1 gwr return (error);
478 1.1 gwr }
479 1.1 gwr
480 1.1 gwr #define SS_RTEFRAME 1
481 1.1 gwr #define SS_FPSTATE 2
482 1.1 gwr #define SS_USERREGS 4
483 1.1 gwr
484 1.1 gwr struct sigstate {
485 1.1 gwr int ss_flags; /* which of the following are valid */
486 1.1 gwr struct frame ss_frame; /* original exception frame */
487 1.1 gwr struct fpframe ss_fpstate; /* 68881/68882 state info */
488 1.1 gwr };
489 1.1 gwr
490 1.1 gwr /*
491 1.1 gwr * WARNING: code in locore.s assumes the layout shown for sf_signum
492 1.1 gwr * thru sf_handler so... don't screw with them!
493 1.1 gwr */
494 1.1 gwr struct sigframe {
495 1.1 gwr int sf_signum; /* signo for handler */
496 1.1 gwr int sf_code; /* additional info for handler */
497 1.1 gwr struct sigcontext *sf_scp; /* context ptr for handler */
498 1.1 gwr sig_t sf_handler; /* handler addr for u_sigc */
499 1.1 gwr struct sigstate sf_state; /* state of the hardware */
500 1.1 gwr struct sigcontext sf_sc; /* actual context */
501 1.1 gwr };
502 1.1 gwr
503 1.1 gwr #ifdef DEBUG
504 1.1 gwr int sigdebug = 0;
505 1.1 gwr int sigpid = 0;
506 1.1 gwr #define SDB_FOLLOW 0x01
507 1.1 gwr #define SDB_KSTACK 0x02
508 1.1 gwr #define SDB_FPSTATE 0x04
509 1.1 gwr #endif
510 1.1 gwr
511 1.1 gwr /*
512 1.1 gwr * Send an interrupt to process.
513 1.1 gwr */
514 1.1 gwr void
515 1.1 gwr sendsig(catcher, sig, mask, code)
516 1.1 gwr sig_t catcher;
517 1.1 gwr int sig, mask;
518 1.1 gwr u_long code;
519 1.1 gwr {
520 1.1 gwr register struct proc *p = curproc;
521 1.1 gwr register struct sigframe *fp, *kfp;
522 1.1 gwr register struct frame *frame;
523 1.1 gwr register struct sigacts *psp = p->p_sigacts;
524 1.1 gwr register short ft;
525 1.1 gwr int oonstack, fsize;
526 1.1 gwr extern char sigcode[], esigcode[];
527 1.1 gwr
528 1.1 gwr frame = (struct frame *)p->p_md.md_regs;
529 1.1 gwr ft = frame->f_format;
530 1.1 gwr oonstack = psp->ps_sigstk.ss_flags & SS_ONSTACK;
531 1.1 gwr
532 1.1 gwr /*
533 1.1 gwr * Allocate and validate space for the signal handler
534 1.1 gwr * context. Note that if the stack is in P0 space, the
535 1.1 gwr * call to grow() is a nop, and the useracc() check
536 1.1 gwr * will fail if the process has not already allocated
537 1.1 gwr * the space with a `brk'.
538 1.1 gwr */
539 1.1 gwr fsize = sizeof(struct sigframe);
540 1.1 gwr if ((psp->ps_flags & SAS_ALTSTACK) && !oonstack &&
541 1.1 gwr (psp->ps_sigonstack & sigmask(sig))) {
542 1.1 gwr fp = (struct sigframe *)(psp->ps_sigstk.ss_sp +
543 1.1 gwr psp->ps_sigstk.ss_size - fsize);
544 1.1 gwr psp->ps_sigstk.ss_flags |= SS_ONSTACK;
545 1.1 gwr } else
546 1.1 gwr fp = (struct sigframe *)(frame->f_regs[SP] - fsize);
547 1.1 gwr if ((unsigned)fp <= USRSTACK - ctob(p->p_vmspace->vm_ssize))
548 1.1 gwr (void)grow(p, (unsigned)fp);
549 1.1 gwr #ifdef DEBUG
550 1.1 gwr if ((sigdebug & SDB_KSTACK) && p->p_pid == sigpid)
551 1.1 gwr printf("sendsig(%d): sig %d ssp %x usp %x scp %x ft %d\n",
552 1.1 gwr p->p_pid, sig, &oonstack, fp, &fp->sf_sc, ft);
553 1.1 gwr #endif
554 1.1 gwr if (useracc((caddr_t)fp, fsize, B_WRITE) == 0) {
555 1.1 gwr #ifdef DEBUG
556 1.1 gwr if ((sigdebug & SDB_KSTACK) && p->p_pid == sigpid)
557 1.1 gwr printf("sendsig(%d): useracc failed on sig %d\n",
558 1.1 gwr p->p_pid, sig);
559 1.1 gwr #endif
560 1.1 gwr /*
561 1.1 gwr * Process has trashed its stack; give it an illegal
562 1.1 gwr * instruction to halt it in its tracks.
563 1.1 gwr */
564 1.1 gwr SIGACTION(p, SIGILL) = SIG_DFL;
565 1.1 gwr sig = sigmask(SIGILL);
566 1.1 gwr p->p_sigignore &= ~sig;
567 1.1 gwr p->p_sigcatch &= ~sig;
568 1.1 gwr p->p_sigmask &= ~sig;
569 1.1 gwr psignal(p, SIGILL);
570 1.1 gwr return;
571 1.1 gwr }
572 1.1 gwr kfp = (struct sigframe *)malloc((u_long)fsize, M_TEMP, M_WAITOK);
573 1.1 gwr /*
574 1.1 gwr * Build the argument list for the signal handler.
575 1.1 gwr */
576 1.1 gwr kfp->sf_signum = sig;
577 1.1 gwr kfp->sf_code = code;
578 1.1 gwr kfp->sf_scp = &fp->sf_sc;
579 1.1 gwr kfp->sf_handler = catcher;
580 1.1 gwr /*
581 1.1 gwr * Save necessary hardware state. Currently this includes:
582 1.1 gwr * - general registers
583 1.1 gwr * - original exception frame (if not a "normal" frame)
584 1.1 gwr * - FP coprocessor state
585 1.1 gwr */
586 1.1 gwr kfp->sf_state.ss_flags = SS_USERREGS;
587 1.1 gwr bcopy((caddr_t)frame->f_regs,
588 1.1 gwr (caddr_t)kfp->sf_state.ss_frame.f_regs, sizeof frame->f_regs);
589 1.1 gwr if (ft >= FMT7) {
590 1.1 gwr #ifdef DEBUG
591 1.1 gwr if (ft > 15 || exframesize[ft] < 0)
592 1.1 gwr panic("sendsig: bogus frame type");
593 1.1 gwr #endif
594 1.1 gwr kfp->sf_state.ss_flags |= SS_RTEFRAME;
595 1.1 gwr kfp->sf_state.ss_frame.f_format = frame->f_format;
596 1.1 gwr kfp->sf_state.ss_frame.f_vector = frame->f_vector;
597 1.1 gwr bcopy((caddr_t)&frame->F_u,
598 1.1 gwr (caddr_t)&kfp->sf_state.ss_frame.F_u,
599 1.1 gwr (size_t) exframesize[ft]);
600 1.1 gwr /*
601 1.1 gwr * Leave an indicator that we need to clean up the kernel
602 1.1 gwr * stack. We do this by setting the "pad word" above the
603 1.1 gwr * hardware stack frame to the amount the stack must be
604 1.1 gwr * adjusted by.
605 1.1 gwr *
606 1.1 gwr * N.B. we increment rather than just set f_stackadj in
607 1.1 gwr * case we are called from syscall when processing a
608 1.1 gwr * sigreturn. In that case, f_stackadj may be non-zero.
609 1.1 gwr */
610 1.1 gwr frame->f_stackadj += exframesize[ft];
611 1.1 gwr frame->f_format = frame->f_vector = 0;
612 1.1 gwr #ifdef DEBUG
613 1.1 gwr if (sigdebug & SDB_FOLLOW)
614 1.1 gwr printf("sendsig(%d): copy out %d of frame %d\n",
615 1.1 gwr p->p_pid, exframesize[ft], ft);
616 1.1 gwr #endif
617 1.1 gwr }
618 1.1 gwr
619 1.1 gwr if (fpu_type) {
620 1.1 gwr kfp->sf_state.ss_flags |= SS_FPSTATE;
621 1.1 gwr m68881_save(&kfp->sf_state.ss_fpstate);
622 1.1 gwr }
623 1.1 gwr #ifdef DEBUG
624 1.1 gwr if ((sigdebug & SDB_FPSTATE) && *(char *)&kfp->sf_state.ss_fpstate)
625 1.1 gwr printf("sendsig(%d): copy out FP state (%x) to %x\n",
626 1.1 gwr p->p_pid, *(u_int *)&kfp->sf_state.ss_fpstate,
627 1.1 gwr &kfp->sf_state.ss_fpstate);
628 1.1 gwr #endif
629 1.1 gwr
630 1.1 gwr /*
631 1.1 gwr * Build the signal context to be used by sigreturn.
632 1.1 gwr */
633 1.1 gwr kfp->sf_sc.sc_onstack = oonstack;
634 1.1 gwr kfp->sf_sc.sc_mask = mask;
635 1.1 gwr kfp->sf_sc.sc_sp = frame->f_regs[SP];
636 1.1 gwr kfp->sf_sc.sc_fp = frame->f_regs[A6];
637 1.1 gwr kfp->sf_sc.sc_ap = (int)&fp->sf_state;
638 1.1 gwr kfp->sf_sc.sc_pc = frame->f_pc;
639 1.1 gwr kfp->sf_sc.sc_ps = frame->f_sr;
640 1.1 gwr (void) copyout((caddr_t)kfp, (caddr_t)fp, fsize);
641 1.1 gwr frame->f_regs[SP] = (int)fp;
642 1.1 gwr #ifdef DEBUG
643 1.1 gwr if (sigdebug & SDB_FOLLOW)
644 1.1 gwr printf("sendsig(%d): sig %d scp %x fp %x sc_sp %x sc_ap %x\n",
645 1.1 gwr p->p_pid, sig, kfp->sf_scp, fp,
646 1.1 gwr kfp->sf_sc.sc_sp, kfp->sf_sc.sc_ap);
647 1.1 gwr #endif
648 1.1 gwr /*
649 1.1 gwr * Signal trampoline code is at base of user stack.
650 1.1 gwr */
651 1.1 gwr frame->f_pc = (int)PS_STRINGS - (esigcode - sigcode);
652 1.1 gwr #ifdef DEBUG
653 1.1 gwr if ((sigdebug & SDB_KSTACK) && p->p_pid == sigpid)
654 1.1 gwr printf("sendsig(%d): sig %d returns\n",
655 1.1 gwr p->p_pid, sig);
656 1.1 gwr #endif
657 1.1 gwr free((caddr_t)kfp, M_TEMP);
658 1.1 gwr }
659 1.1 gwr
660 1.1 gwr /*
661 1.1 gwr * System call to cleanup state after a signal
662 1.1 gwr * has been taken. Reset signal mask and
663 1.1 gwr * stack state from context left by sendsig (above).
664 1.1 gwr * Return to previous pc and psl as specified by
665 1.1 gwr * context left by sendsig. Check carefully to
666 1.1 gwr * make sure that the user has not modified the
667 1.1 gwr * psl to gain improper priviledges or to cause
668 1.1 gwr * a machine fault.
669 1.1 gwr */
670 1.1 gwr int
671 1.1 gwr sys_sigreturn(p, v, retval)
672 1.1 gwr struct proc *p;
673 1.1 gwr void *v;
674 1.1 gwr register_t *retval;
675 1.1 gwr {
676 1.1 gwr struct sys_sigreturn_args *uap = v;
677 1.1 gwr register struct sigcontext *scp;
678 1.1 gwr register struct frame *frame;
679 1.1 gwr register int rf;
680 1.1 gwr struct sigcontext tsigc;
681 1.1 gwr struct sigstate tstate;
682 1.1 gwr int flags;
683 1.1 gwr
684 1.1 gwr scp = SCARG(uap, sigcntxp);
685 1.1 gwr #ifdef DEBUG
686 1.1 gwr if (sigdebug & SDB_FOLLOW)
687 1.1 gwr printf("sigreturn: pid %d, scp %x\n", p->p_pid, scp);
688 1.1 gwr #endif
689 1.1 gwr if ((int)scp & 1)
690 1.1 gwr return (EINVAL);
691 1.1 gwr
692 1.1 gwr /*
693 1.1 gwr * Test and fetch the context structure.
694 1.1 gwr * We grab it all at once for speed.
695 1.1 gwr */
696 1.1 gwr if (useracc((caddr_t)scp, sizeof (*scp), B_WRITE) == 0 ||
697 1.1 gwr copyin((caddr_t)scp, (caddr_t)&tsigc, sizeof tsigc))
698 1.1 gwr return (EINVAL);
699 1.1 gwr scp = &tsigc;
700 1.1 gwr if ((scp->sc_ps & (PSL_MBZ|PSL_IPL|PSL_S)) != 0)
701 1.1 gwr return (EINVAL);
702 1.1 gwr /*
703 1.1 gwr * Restore the user supplied information
704 1.1 gwr */
705 1.1 gwr if (scp->sc_onstack & 01)
706 1.1 gwr p->p_sigacts->ps_sigstk.ss_flags |= SS_ONSTACK;
707 1.1 gwr else
708 1.1 gwr p->p_sigacts->ps_sigstk.ss_flags &= ~SS_ONSTACK;
709 1.1 gwr p->p_sigmask = scp->sc_mask &~ sigcantmask;
710 1.1 gwr frame = (struct frame *) p->p_md.md_regs;
711 1.1 gwr frame->f_regs[SP] = scp->sc_sp;
712 1.1 gwr frame->f_regs[A6] = scp->sc_fp;
713 1.1 gwr frame->f_pc = scp->sc_pc;
714 1.1 gwr frame->f_sr = scp->sc_ps;
715 1.1 gwr
716 1.1 gwr /*
717 1.1 gwr * Grab pointer to hardware state information.
718 1.1 gwr * If zero, the user is probably doing a longjmp.
719 1.1 gwr */
720 1.1 gwr if ((rf = scp->sc_ap) == 0)
721 1.1 gwr return (EJUSTRETURN);
722 1.1 gwr /*
723 1.1 gwr * See if there is anything to do before we go to the
724 1.1 gwr * expense of copying in close to 1/2K of data
725 1.1 gwr */
726 1.1 gwr flags = fuword((caddr_t)rf);
727 1.1 gwr #ifdef DEBUG
728 1.1 gwr if (sigdebug & SDB_FOLLOW)
729 1.1 gwr printf("sigreturn(%d): sc_ap %x flags %x\n",
730 1.1 gwr p->p_pid, rf, flags);
731 1.1 gwr #endif
732 1.1 gwr /*
733 1.1 gwr * fuword failed (bogus sc_ap value).
734 1.1 gwr */
735 1.1 gwr if (flags == -1)
736 1.1 gwr return (EINVAL);
737 1.1 gwr if (flags == 0 || copyin((caddr_t)rf, (caddr_t)&tstate, sizeof tstate))
738 1.1 gwr return (EJUSTRETURN);
739 1.1 gwr #ifdef DEBUG
740 1.1 gwr if ((sigdebug & SDB_KSTACK) && p->p_pid == sigpid)
741 1.1 gwr printf("sigreturn(%d): ssp %x usp %x scp %x ft %d\n",
742 1.1 gwr p->p_pid, &flags, scp->sc_sp, SCARG(uap, sigcntxp),
743 1.1 gwr (flags&SS_RTEFRAME) ? tstate.ss_frame.f_format : -1);
744 1.1 gwr #endif
745 1.1 gwr /*
746 1.1 gwr * Restore most of the users registers except for A6 and SP
747 1.1 gwr * which were handled above.
748 1.1 gwr */
749 1.1 gwr if (flags & SS_USERREGS)
750 1.1 gwr bcopy((caddr_t)tstate.ss_frame.f_regs,
751 1.1 gwr (caddr_t)frame->f_regs, sizeof(frame->f_regs)-2*NBPW);
752 1.1 gwr /*
753 1.1 gwr * Restore long stack frames. Note that we do not copy
754 1.1 gwr * back the saved SR or PC, they were picked up above from
755 1.1 gwr * the sigcontext structure.
756 1.1 gwr */
757 1.1 gwr if (flags & SS_RTEFRAME) {
758 1.1 gwr register int sz;
759 1.1 gwr
760 1.1 gwr /* grab frame type and validate */
761 1.1 gwr sz = tstate.ss_frame.f_format;
762 1.1 gwr if (sz > 15 || (sz = exframesize[sz]) < 0)
763 1.1 gwr return (EINVAL);
764 1.1 gwr frame->f_stackadj -= sz;
765 1.1 gwr frame->f_format = tstate.ss_frame.f_format;
766 1.1 gwr frame->f_vector = tstate.ss_frame.f_vector;
767 1.1 gwr bcopy((caddr_t)&tstate.ss_frame.F_u, (caddr_t)&frame->F_u, sz);
768 1.1 gwr #ifdef DEBUG
769 1.1 gwr if (sigdebug & SDB_FOLLOW)
770 1.1 gwr printf("sigreturn(%d): copy in %d of frame type %d\n",
771 1.1 gwr p->p_pid, sz, tstate.ss_frame.f_format);
772 1.1 gwr #endif
773 1.1 gwr }
774 1.1 gwr
775 1.1 gwr /*
776 1.1 gwr * Finally we restore the original FP context
777 1.1 gwr */
778 1.1 gwr if (flags & SS_FPSTATE)
779 1.1 gwr m68881_restore(&tstate.ss_fpstate);
780 1.1 gwr #ifdef DEBUG
781 1.1 gwr if ((sigdebug & SDB_FPSTATE) && *(char *)&tstate.ss_fpstate)
782 1.1 gwr printf("sigreturn(%d): copied in FP state (%x) at %x\n",
783 1.1 gwr p->p_pid, *(u_int *)&tstate.ss_fpstate,
784 1.1 gwr &tstate.ss_fpstate);
785 1.1 gwr if ((sigdebug & SDB_FOLLOW) ||
786 1.1 gwr ((sigdebug & SDB_KSTACK) && p->p_pid == sigpid))
787 1.1 gwr printf("sigreturn(%d): returns\n", p->p_pid);
788 1.1 gwr #endif
789 1.1 gwr return (EJUSTRETURN);
790 1.1 gwr }
791 1.1 gwr
792 1.1 gwr
793 1.1 gwr /*
794 1.1 gwr * Do a sync in preparation for a reboot.
795 1.1 gwr * XXX - This could probably be common code.
796 1.1 gwr * XXX - And now, most of it is in vfs_shutdown()
797 1.1 gwr * XXX - Put waittime checks in there too?
798 1.1 gwr */
799 1.1 gwr int waittime = -1; /* XXX - Who else looks at this? -gwr */
800 1.1 gwr static void
801 1.1 gwr reboot_sync __P((void))
802 1.1 gwr {
803 1.1 gwr
804 1.1 gwr /* Check waittime here to localize its use to this function. */
805 1.1 gwr if (waittime >= 0)
806 1.1 gwr return;
807 1.1 gwr waittime = 0;
808 1.1 gwr vfs_shutdown();
809 1.1 gwr }
810 1.1 gwr
811 1.1 gwr /*
812 1.1 gwr * Common part of the BSD and SunOS reboot system calls.
813 1.1 gwr * XXX - Should be named: cpu_reboot maybe? -gwr
814 1.1 gwr */
815 1.1 gwr __dead void
816 1.1 gwr boot(howto, user_boot_string)
817 1.1 gwr int howto;
818 1.1 gwr char *user_boot_string;
819 1.1 gwr {
820 1.2 gwr /* Note: this string MUST be static! */
821 1.2 gwr static char bootstr[128];
822 1.2 gwr char *p;
823 1.1 gwr
824 1.1 gwr /* If system is cold, just halt. (early panic?) */
825 1.1 gwr if (cold)
826 1.1 gwr goto haltsys;
827 1.1 gwr
828 1.1 gwr if ((howto & RB_NOSYNC) == 0) {
829 1.1 gwr reboot_sync();
830 1.1 gwr /*
831 1.1 gwr * If we've been adjusting the clock, the todr
832 1.1 gwr * will be out of synch; adjust it now.
833 1.1 gwr *
834 1.1 gwr * XXX - However, if the kernel has been sitting in ddb,
835 1.1 gwr * the time will be way off, so don't set the HW clock!
836 1.1 gwr * XXX - Should do sanity check against HW clock. -gwr
837 1.1 gwr */
838 1.1 gwr /* resettodr(); */
839 1.1 gwr }
840 1.1 gwr
841 1.1 gwr /* Disable interrupts. */
842 1.1 gwr splhigh();
843 1.1 gwr
844 1.1 gwr /* Write out a crash dump if asked. */
845 1.1 gwr if (howto & RB_DUMP)
846 1.1 gwr dumpsys();
847 1.1 gwr
848 1.1 gwr /* run any shutdown hooks */
849 1.1 gwr doshutdownhooks();
850 1.1 gwr
851 1.1 gwr if (howto & RB_HALT) {
852 1.1 gwr haltsys:
853 1.1 gwr printf("Kernel halted.\n");
854 1.3 gwr sunmon_halt();
855 1.1 gwr }
856 1.1 gwr
857 1.1 gwr /*
858 1.1 gwr * Automatic reboot.
859 1.1 gwr */
860 1.2 gwr if (user_boot_string)
861 1.2 gwr strncpy(bootstr, user_boot_string, sizeof(bootstr));
862 1.2 gwr else {
863 1.1 gwr /*
864 1.1 gwr * Build our own boot string with an empty
865 1.1 gwr * boot device/file and (maybe) some flags.
866 1.1 gwr * The PROM will supply the device/file name.
867 1.1 gwr */
868 1.2 gwr p = bootstr;
869 1.2 gwr *p = '\0';
870 1.1 gwr if (howto & (RB_KDB|RB_ASKNAME|RB_SINGLE)) {
871 1.1 gwr /* Append the boot flags. */
872 1.1 gwr *p++ = ' ';
873 1.1 gwr *p++ = '-';
874 1.1 gwr if (howto & RB_KDB)
875 1.1 gwr *p++ = 'd';
876 1.1 gwr if (howto & RB_ASKNAME)
877 1.1 gwr *p++ = 'a';
878 1.1 gwr if (howto & RB_SINGLE)
879 1.1 gwr *p++ = 's';
880 1.1 gwr *p = '\0';
881 1.1 gwr }
882 1.1 gwr }
883 1.1 gwr printf("Kernel rebooting...\n");
884 1.3 gwr sunmon_reboot(bootstr);
885 1.1 gwr for (;;) ;
886 1.1 gwr /*NOTREACHED*/
887 1.1 gwr }
888 1.1 gwr
889 1.1 gwr /*
890 1.1 gwr * These variables are needed by /sbin/savecore
891 1.1 gwr */
892 1.1 gwr u_long dumpmag = 0x8fca0101; /* magic number */
893 1.1 gwr int dumpsize = 0; /* pages */
894 1.1 gwr long dumplo = 0; /* blocks */
895 1.1 gwr
896 1.1 gwr /*
897 1.1 gwr * This is called by cpu_startup to set dumplo, dumpsize.
898 1.1 gwr * Dumps always skip the first CLBYTES of disk space
899 1.1 gwr * in case there might be a disk label stored there.
900 1.1 gwr * If there is extra space, put dump at the end to
901 1.1 gwr * reduce the chance that swapping trashes it.
902 1.1 gwr */
903 1.1 gwr void
904 1.1 gwr dumpconf()
905 1.1 gwr {
906 1.1 gwr int nblks; /* size of dump area */
907 1.1 gwr int maj;
908 1.1 gwr int (*getsize)__P((dev_t));
909 1.1 gwr
910 1.1 gwr if (dumpdev == NODEV)
911 1.1 gwr return;
912 1.1 gwr
913 1.1 gwr maj = major(dumpdev);
914 1.1 gwr if (maj < 0 || maj >= nblkdev)
915 1.1 gwr panic("dumpconf: bad dumpdev=0x%x", dumpdev);
916 1.1 gwr getsize = bdevsw[maj].d_psize;
917 1.1 gwr if (getsize == NULL)
918 1.1 gwr return;
919 1.1 gwr nblks = (*getsize)(dumpdev);
920 1.1 gwr if (nblks <= ctod(1))
921 1.1 gwr return;
922 1.1 gwr
923 1.1 gwr /* Position dump image near end of space, page aligned. */
924 1.1 gwr dumpsize = physmem; /* pages */
925 1.1 gwr dumplo = nblks - ctod(dumpsize);
926 1.1 gwr dumplo &= ~(ctod(1)-1);
927 1.1 gwr
928 1.1 gwr /* If it does not fit, truncate it by moving dumplo. */
929 1.1 gwr /* Note: Must force signed comparison. */
930 1.1 gwr if (dumplo < ((long)ctod(1))) {
931 1.1 gwr dumplo = ctod(1);
932 1.1 gwr dumpsize = dtoc(nblks - dumplo);
933 1.1 gwr }
934 1.1 gwr }
935 1.1 gwr
936 1.1 gwr struct pcb dumppcb;
937 1.1 gwr extern vm_offset_t avail_start;
938 1.1 gwr
939 1.1 gwr /*
940 1.1 gwr * Write a crash dump. The format while in swap is:
941 1.1 gwr * kcore_seg_t cpu_hdr;
942 1.1 gwr * cpu_kcore_hdr_t cpu_data;
943 1.1 gwr * padding (NBPG-sizeof(kcore_seg_t))
944 1.1 gwr * pagemap (2*NBPG)
945 1.1 gwr * physical memory...
946 1.1 gwr */
947 1.1 gwr void
948 1.1 gwr dumpsys()
949 1.1 gwr {
950 1.1 gwr struct bdevsw *dsw;
951 1.1 gwr char *vaddr;
952 1.1 gwr vm_offset_t paddr;
953 1.1 gwr int psize, todo, chunk;
954 1.1 gwr daddr_t blkno;
955 1.1 gwr int error = 0;
956 1.1 gwr
957 1.1 gwr msgbufmapped = 0;
958 1.1 gwr if (dumpdev == NODEV)
959 1.1 gwr return;
960 1.1 gwr
961 1.1 gwr /*
962 1.1 gwr * For dumps during autoconfiguration,
963 1.1 gwr * if dump device has already configured...
964 1.1 gwr */
965 1.1 gwr if (dumpsize == 0)
966 1.1 gwr dumpconf();
967 1.1 gwr if (dumplo <= 0)
968 1.1 gwr return;
969 1.1 gwr savectx(&dumppcb);
970 1.1 gwr
971 1.1 gwr dsw = &bdevsw[major(dumpdev)];
972 1.1 gwr psize = (*(dsw->d_psize))(dumpdev);
973 1.1 gwr if (psize == -1) {
974 1.1 gwr printf("dump area unavailable\n");
975 1.1 gwr return;
976 1.1 gwr }
977 1.1 gwr
978 1.1 gwr printf("\ndumping to dev %x, offset %d\n",
979 1.1 gwr (int) dumpdev, (int) dumplo);
980 1.1 gwr
981 1.1 gwr /*
982 1.1 gwr * Write the dump header, including MMU state.
983 1.1 gwr */
984 1.1 gwr blkno = dumplo;
985 1.1 gwr todo = dumpsize; /* pages */
986 1.1 gwr
987 1.1 gwr /*
988 1.1 gwr * Now dump physical memory. Have to do it in two chunks.
989 1.1 gwr * The first chunk is "unmanaged" (by the VM code) and its
990 1.1 gwr * range of physical addresses is not allow in pmap_enter.
991 1.1 gwr * However, that segment is mapped linearly, so we can just
992 1.1 gwr * use the virtual mappings already in place. The second
993 1.1 gwr * chunk is done the normal way, using pmap_enter.
994 1.1 gwr *
995 1.1 gwr * Note that vaddr==(paddr+KERNBASE) for paddr=0 through etext.
996 1.1 gwr */
997 1.1 gwr
998 1.1 gwr /* Do the first chunk (0 <= PA < avail_start) */
999 1.1 gwr paddr = 0;
1000 1.1 gwr chunk = btoc(avail_start);
1001 1.1 gwr if (chunk > todo)
1002 1.1 gwr chunk = todo;
1003 1.1 gwr do {
1004 1.1 gwr if ((todo & 0xf) == 0)
1005 1.1 gwr printf("\r%4d", todo);
1006 1.1 gwr vaddr = (char*)(paddr + KERNBASE);
1007 1.1 gwr error = (*dsw->d_dump)(dumpdev, blkno, vaddr, NBPG);
1008 1.1 gwr if (error)
1009 1.1 gwr goto fail;
1010 1.1 gwr paddr += NBPG;
1011 1.1 gwr blkno += btodb(NBPG);
1012 1.1 gwr --todo;
1013 1.1 gwr } while (--chunk > 0);
1014 1.1 gwr
1015 1.1 gwr /* Do the second chunk (avail_start <= PA < dumpsize) */
1016 1.1 gwr vaddr = (char*)vmmap; /* Borrow /dev/mem VA */
1017 1.1 gwr do {
1018 1.1 gwr if ((todo & 0xf) == 0)
1019 1.1 gwr printf("\r%4d", todo);
1020 1.1 gwr pmap_enter(pmap_kernel(), vmmap, paddr | PMAP_NC,
1021 1.1 gwr VM_PROT_READ, FALSE);
1022 1.1 gwr error = (*dsw->d_dump)(dumpdev, blkno, vaddr, NBPG);
1023 1.1 gwr pmap_remove(pmap_kernel(), vmmap, vmmap + NBPG);
1024 1.1 gwr if (error)
1025 1.1 gwr goto fail;
1026 1.1 gwr paddr += NBPG;
1027 1.1 gwr blkno += btodb(NBPG);
1028 1.1 gwr } while (--todo > 0);
1029 1.1 gwr
1030 1.1 gwr printf("\rdump succeeded\n");
1031 1.1 gwr return;
1032 1.1 gwr fail:
1033 1.1 gwr printf(" dump error=%d\n", error);
1034 1.1 gwr }
1035 1.1 gwr
1036 1.1 gwr static void
1037 1.1 gwr initcpu()
1038 1.1 gwr {
1039 1.1 gwr /* XXX: Enable RAM parity/ECC checking? */
1040 1.1 gwr /* XXX: parityenable(); */
1041 1.1 gwr
1042 1.1 gwr nofault = NULL; /* XXX - needed? */
1043 1.1 gwr
1044 1.1 gwr #ifdef HAVECACHE
1045 1.1 gwr cache_enable();
1046 1.1 gwr #endif
1047 1.1 gwr }
1048 1.1 gwr
1049 1.1 gwr /* called from locore.s */
1050 1.1 gwr void straytrap __P((struct trapframe));
1051 1.1 gwr void
1052 1.1 gwr straytrap(frame)
1053 1.1 gwr struct trapframe frame;
1054 1.1 gwr {
1055 1.1 gwr printf("unexpected trap; vector=0x%x at pc=0x%x\n",
1056 1.1 gwr frame.tf_vector, frame.tf_pc);
1057 1.1 gwr #ifdef DDB
1058 1.1 gwr kdb_trap(-1, (db_regs_t *) &frame);
1059 1.1 gwr #endif
1060 1.1 gwr }
1061 1.1 gwr
1062 1.1 gwr /* from hp300: badaddr() */
1063 1.1 gwr /* peek_byte(), peek_word() moved to autoconf.c */
1064 1.1 gwr
1065 1.1 gwr /* XXX: parityenable() ? */
1066 1.1 gwr
1067 1.1 gwr static void dumpmem __P((int *, int, int));
1068 1.1 gwr static char *hexstr __P((int, int));
1069 1.1 gwr
1070 1.1 gwr /*
1071 1.1 gwr * Print a register and stack dump.
1072 1.1 gwr */
1073 1.1 gwr void
1074 1.1 gwr regdump(fp, sbytes)
1075 1.1 gwr struct frame *fp; /* must not be register */
1076 1.1 gwr int sbytes;
1077 1.1 gwr {
1078 1.1 gwr static int doingdump = 0;
1079 1.1 gwr register int i;
1080 1.1 gwr int s;
1081 1.1 gwr
1082 1.1 gwr if (doingdump)
1083 1.1 gwr return;
1084 1.1 gwr s = splhigh();
1085 1.1 gwr doingdump = 1;
1086 1.1 gwr printf("pid = %d, pc = %s, ",
1087 1.1 gwr curproc ? curproc->p_pid : -1, hexstr(fp->f_pc, 8));
1088 1.1 gwr printf("ps = %s, ", hexstr(fp->f_sr, 4));
1089 1.1 gwr printf("sfc = %s, ", hexstr(getsfc(), 4));
1090 1.1 gwr printf("dfc = %s\n", hexstr(getdfc(), 4));
1091 1.1 gwr printf("Registers:\n ");
1092 1.1 gwr for (i = 0; i < 8; i++)
1093 1.1 gwr printf(" %d", i);
1094 1.1 gwr printf("\ndreg:");
1095 1.1 gwr for (i = 0; i < 8; i++)
1096 1.1 gwr printf(" %s", hexstr(fp->f_regs[i], 8));
1097 1.1 gwr printf("\nareg:");
1098 1.1 gwr for (i = 0; i < 8; i++)
1099 1.1 gwr printf(" %s", hexstr(fp->f_regs[i+8], 8));
1100 1.1 gwr if (sbytes > 0) {
1101 1.1 gwr if (fp->f_sr & PSL_S) {
1102 1.1 gwr printf("\n\nKernel stack (%s):",
1103 1.1 gwr hexstr((int)(((int *)&fp)-1), 8));
1104 1.1 gwr dumpmem(((int *)&fp)-1, sbytes, 0);
1105 1.1 gwr } else {
1106 1.1 gwr printf("\n\nUser stack (%s):", hexstr(fp->f_regs[SP], 8));
1107 1.1 gwr dumpmem((int *)fp->f_regs[SP], sbytes, 1);
1108 1.1 gwr }
1109 1.1 gwr }
1110 1.1 gwr doingdump = 0;
1111 1.1 gwr splx(s);
1112 1.1 gwr }
1113 1.1 gwr
1114 1.1 gwr #define KSADDR ((int *)((u_int)curproc->p_addr + USPACE - NBPG))
1115 1.1 gwr
1116 1.1 gwr static void
1117 1.1 gwr dumpmem(ptr, sz, ustack)
1118 1.1 gwr register int *ptr;
1119 1.1 gwr int sz, ustack;
1120 1.1 gwr {
1121 1.1 gwr register int i, val;
1122 1.1 gwr
1123 1.1 gwr for (i = 0; i < sz; i++) {
1124 1.1 gwr if ((i & 7) == 0)
1125 1.1 gwr printf("\n%s: ", hexstr((int)ptr, 6));
1126 1.1 gwr else
1127 1.1 gwr printf(" ");
1128 1.1 gwr if (ustack == 1) {
1129 1.1 gwr if ((val = fuword(ptr++)) == -1)
1130 1.1 gwr break;
1131 1.1 gwr } else {
1132 1.1 gwr if (ustack == 0 &&
1133 1.1 gwr (ptr < KSADDR || ptr > KSADDR+(NBPG/4-1)))
1134 1.1 gwr break;
1135 1.1 gwr val = *ptr++;
1136 1.1 gwr }
1137 1.1 gwr printf("%s", hexstr(val, 8));
1138 1.1 gwr }
1139 1.1 gwr printf("\n");
1140 1.1 gwr }
1141 1.1 gwr
1142 1.1 gwr static char *
1143 1.1 gwr hexstr(val, len)
1144 1.1 gwr register int val;
1145 1.1 gwr int len;
1146 1.1 gwr {
1147 1.1 gwr static char nbuf[9];
1148 1.1 gwr register int x, i;
1149 1.1 gwr
1150 1.1 gwr if (len > 8)
1151 1.1 gwr return("");
1152 1.1 gwr nbuf[len] = '\0';
1153 1.1 gwr for (i = len-1; i >= 0; --i) {
1154 1.1 gwr x = val & 0xF;
1155 1.1 gwr /* Isn't this a cool trick? */
1156 1.1 gwr nbuf[i] = "0123456789ABCDEF"[x];
1157 1.1 gwr val >>= 4;
1158 1.1 gwr }
1159 1.1 gwr return(nbuf);
1160 1.1 gwr }
1161 1.1 gwr
1162 1.1 gwr /*
1163 1.1 gwr * cpu_exec_aout_makecmds():
1164 1.1 gwr * cpu-dependent a.out format hook for execve().
1165 1.1 gwr *
1166 1.1 gwr * Determine if the given exec package refers to something which we
1167 1.1 gwr * understand and, if so, set up the vmcmds for it.
1168 1.1 gwr */
1169 1.1 gwr int
1170 1.1 gwr cpu_exec_aout_makecmds(p, epp)
1171 1.1 gwr struct proc *p;
1172 1.1 gwr struct exec_package *epp;
1173 1.1 gwr {
1174 1.1 gwr int error = ENOEXEC;
1175 1.1 gwr
1176 1.1 gwr #ifdef COMPAT_SUNOS
1177 1.1 gwr extern sunos_exec_aout_makecmds
1178 1.1 gwr __P((struct proc *, struct exec_package *));
1179 1.1 gwr if ((error = sunos_exec_aout_makecmds(p, epp)) == 0)
1180 1.1 gwr return 0;
1181 1.1 gwr #endif
1182 1.1 gwr return error;
1183 1.1 gwr }
1184