machdep.c revision 1.60 1 1.60 thorpej /* $NetBSD: machdep.c,v 1.60 2000/09/13 15:00:23 thorpej 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 1.35 jonathan #include "opt_ddb.h"
45 1.34 gwr
46 1.1 gwr #include <sys/param.h>
47 1.1 gwr #include <sys/systm.h>
48 1.1 gwr #include <sys/kernel.h>
49 1.1 gwr #include <sys/map.h>
50 1.1 gwr #include <sys/proc.h>
51 1.1 gwr #include <sys/buf.h>
52 1.1 gwr #include <sys/reboot.h>
53 1.1 gwr #include <sys/conf.h>
54 1.1 gwr #include <sys/file.h>
55 1.1 gwr #include <sys/clist.h>
56 1.37 kleink #include <sys/device.h>
57 1.1 gwr #include <sys/malloc.h>
58 1.1 gwr #include <sys/mbuf.h>
59 1.1 gwr #include <sys/msgbuf.h>
60 1.1 gwr #include <sys/ioctl.h>
61 1.1 gwr #include <sys/tty.h>
62 1.1 gwr #include <sys/mount.h>
63 1.1 gwr #include <sys/user.h>
64 1.1 gwr #include <sys/exec.h>
65 1.1 gwr #include <sys/core.h>
66 1.1 gwr #include <sys/kcore.h>
67 1.1 gwr #include <sys/vnode.h>
68 1.1 gwr #include <sys/syscallargs.h>
69 1.8 gwr #ifdef KGDB
70 1.8 gwr #include <sys/kgdb.h>
71 1.8 gwr #endif
72 1.26 hannken
73 1.42 mrg #include <uvm/uvm_extern.h>
74 1.34 gwr
75 1.26 hannken #include <sys/sysctl.h>
76 1.1 gwr
77 1.1 gwr #include <dev/cons.h>
78 1.1 gwr
79 1.1 gwr #include <machine/cpu.h>
80 1.29 gwr #include <machine/dvma.h>
81 1.29 gwr #include <machine/idprom.h>
82 1.29 gwr #include <machine/kcore.h>
83 1.1 gwr #include <machine/reg.h>
84 1.1 gwr #include <machine/psl.h>
85 1.1 gwr #include <machine/pte.h>
86 1.29 gwr
87 1.41 kleink #if defined(DDB)
88 1.1 gwr #include <machine/db_machdep.h>
89 1.33 gwr #include <ddb/db_sym.h>
90 1.32 tv #include <ddb/db_extern.h>
91 1.41 kleink #endif
92 1.1 gwr
93 1.29 gwr #include <sun3/sun3/machdep.h>
94 1.1 gwr
95 1.1 gwr /* Defined in locore.s */
96 1.1 gwr extern char kernel_text[];
97 1.1 gwr /* Defined by the linker */
98 1.1 gwr extern char etext[];
99 1.56 thorpej
100 1.56 thorpej /* Our exported CPU info; we can have only one. */
101 1.56 thorpej struct cpu_info cpu_info_store;
102 1.1 gwr
103 1.34 gwr vm_map_t exec_map = NULL;
104 1.34 gwr vm_map_t mb_map = NULL;
105 1.34 gwr vm_map_t phys_map = NULL;
106 1.34 gwr
107 1.1 gwr int physmem;
108 1.9 gwr int fputype;
109 1.22 leo caddr_t msgbufaddr;
110 1.1 gwr
111 1.29 gwr /* Virtual page frame for /dev/mem (see mem.c) */
112 1.1 gwr vm_offset_t vmmap;
113 1.1 gwr
114 1.1 gwr /*
115 1.1 gwr * safepri is a safe priority for sleep to set for a spin-wait
116 1.1 gwr * during autoconfiguration or after a panic.
117 1.1 gwr */
118 1.1 gwr int safepri = PSL_LOWIPL;
119 1.1 gwr
120 1.29 gwr u_char cpu_machine_id = 0;
121 1.15 gwr char *cpu_string = NULL;
122 1.15 gwr int cpu_has_vme = 0;
123 1.15 gwr int has_iocache = 0;
124 1.15 gwr
125 1.1 gwr static void identifycpu __P((void));
126 1.1 gwr static void initcpu __P((void));
127 1.1 gwr
128 1.1 gwr /*
129 1.1 gwr * Console initialization: called early on from main,
130 1.15 gwr * before vm init or cpu_startup. This system is able
131 1.29 gwr * to use the console for output immediately (via PROM)
132 1.29 gwr * but can not use it for input until after this point.
133 1.1 gwr */
134 1.8 gwr void
135 1.8 gwr consinit()
136 1.1 gwr {
137 1.29 gwr
138 1.29 gwr /*
139 1.29 gwr * Switch from the PROM console (output only)
140 1.29 gwr * to our own console driver.
141 1.29 gwr */
142 1.29 gwr cninit();
143 1.1 gwr
144 1.1 gwr #ifdef DDB
145 1.1 gwr db_machine_init();
146 1.32 tv {
147 1.33 gwr extern int end[];
148 1.33 gwr extern char *esym;
149 1.32 tv
150 1.34 gwr /* symsize, symstart, symend */
151 1.33 gwr ddb_init(end[0], end + 1, (int*)esym);
152 1.32 tv }
153 1.31 gwr #endif DDB
154 1.31 gwr
155 1.31 gwr /*
156 1.31 gwr * Now that the console can do input as well as
157 1.31 gwr * output, consider stopping for a debugger.
158 1.31 gwr */
159 1.31 gwr if (boothowto & RB_KDB) {
160 1.31 gwr #ifdef KGDB
161 1.31 gwr /* XXX - Ask on console for kgdb_dev? */
162 1.31 gwr /* Note: this will just return if kgdb_dev==NODEV */
163 1.31 gwr kgdb_connect(1);
164 1.31 gwr #else /* KGDB */
165 1.31 gwr /* Either DDB or no debugger (just PROM). */
166 1.1 gwr Debugger();
167 1.31 gwr #endif /* KGDB */
168 1.31 gwr }
169 1.1 gwr }
170 1.1 gwr
171 1.1 gwr /*
172 1.1 gwr * cpu_startup: allocate memory for variable-sized tables,
173 1.1 gwr * initialize cpu, and do autoconfiguration.
174 1.1 gwr *
175 1.1 gwr * This is called early in init_main.c:main(), after the
176 1.1 gwr * kernel memory allocator is ready for use, but before
177 1.1 gwr * the creation of processes 1,2, and mountroot, etc.
178 1.1 gwr */
179 1.1 gwr void
180 1.1 gwr cpu_startup()
181 1.1 gwr {
182 1.1 gwr caddr_t v;
183 1.1 gwr int sz, i;
184 1.1 gwr vm_size_t size;
185 1.1 gwr int base, residual;
186 1.1 gwr vm_offset_t minaddr, maxaddr;
187 1.50 lukem char pbuf[9];
188 1.1 gwr
189 1.1 gwr /*
190 1.1 gwr * Initialize message buffer (for kernel printf).
191 1.1 gwr * This is put in physical page zero so it will
192 1.1 gwr * always be in the same place after a reboot.
193 1.1 gwr * Its mapping was prepared in pmap_bootstrap().
194 1.1 gwr * Also, offset some to avoid PROM scribbles.
195 1.1 gwr */
196 1.1 gwr v = (caddr_t) KERNBASE;
197 1.23 gwr msgbufaddr = (caddr_t)(v + MSGBUFOFF);
198 1.23 gwr initmsgbuf(msgbufaddr, MSGBUFSIZE);
199 1.1 gwr
200 1.1 gwr /*
201 1.1 gwr * Good {morning,afternoon,evening,night}.
202 1.1 gwr */
203 1.1 gwr printf(version);
204 1.1 gwr identifycpu();
205 1.1 gwr initfpu(); /* also prints FPU type */
206 1.1 gwr
207 1.50 lukem format_bytes(pbuf, sizeof(pbuf), ctob(physmem));
208 1.50 lukem printf("total memory = %s\n", pbuf);
209 1.1 gwr
210 1.1 gwr /*
211 1.1 gwr * Find out how much space we need, allocate it,
212 1.1 gwr * and then give everything true virtual addresses.
213 1.1 gwr */
214 1.50 lukem sz = (int)allocsys(NULL, NULL);
215 1.42 mrg if ((v = (caddr_t)uvm_km_alloc(kernel_map, round_page(sz))) == 0)
216 1.1 gwr panic("startup: no room for tables");
217 1.50 lukem if (allocsys(v, NULL) - v != sz)
218 1.1 gwr panic("startup: table size inconsistency");
219 1.1 gwr
220 1.1 gwr /*
221 1.1 gwr * Now allocate buffers proper. They are different than the above
222 1.1 gwr * in that they usually occupy more virtual memory than physical.
223 1.1 gwr */
224 1.1 gwr size = MAXBSIZE * nbuf;
225 1.34 gwr if (uvm_map(kernel_map, (vm_offset_t *) &buffers, round_page(size),
226 1.60 thorpej NULL, UVM_UNKNOWN_OFFSET, 0,
227 1.34 gwr UVM_MAPFLAG(UVM_PROT_NONE, UVM_PROT_NONE, UVM_INH_NONE,
228 1.34 gwr UVM_ADV_NORMAL, 0)) != KERN_SUCCESS)
229 1.34 gwr panic("startup: cannot allocate VM for buffers");
230 1.34 gwr minaddr = (vm_offset_t)buffers;
231 1.1 gwr if ((bufpages / nbuf) >= btoc(MAXBSIZE)) {
232 1.1 gwr /* don't want to alloc more physical mem than needed */
233 1.1 gwr bufpages = btoc(MAXBSIZE) * nbuf;
234 1.1 gwr }
235 1.1 gwr base = bufpages / nbuf;
236 1.1 gwr residual = bufpages % nbuf;
237 1.1 gwr for (i = 0; i < nbuf; i++) {
238 1.34 gwr vm_size_t curbufsize;
239 1.34 gwr vm_offset_t curbuf;
240 1.34 gwr struct vm_page *pg;
241 1.34 gwr
242 1.34 gwr /*
243 1.34 gwr * Each buffer has MAXBSIZE bytes of VM space allocated. Of
244 1.34 gwr * that MAXBSIZE space, we allocate and map (base+1) pages
245 1.34 gwr * for the first "residual" buffers, and then we allocate
246 1.34 gwr * "base" pages for the rest.
247 1.34 gwr */
248 1.34 gwr curbuf = (vm_offset_t) buffers + (i * MAXBSIZE);
249 1.54 ragge curbufsize = NBPG * ((i < residual) ? (base+1) : base);
250 1.34 gwr
251 1.34 gwr while (curbufsize) {
252 1.47 chs pg = uvm_pagealloc(NULL, 0, NULL, 0);
253 1.34 gwr if (pg == NULL)
254 1.34 gwr panic("cpu_startup: not enough memory for "
255 1.34 gwr "buffer cache");
256 1.52 chs pmap_kenter_pa(curbuf, VM_PAGE_TO_PHYS(pg),
257 1.52 chs VM_PROT_READ|VM_PROT_WRITE);
258 1.34 gwr curbuf += PAGE_SIZE;
259 1.34 gwr curbufsize -= PAGE_SIZE;
260 1.34 gwr }
261 1.1 gwr }
262 1.1 gwr
263 1.1 gwr /*
264 1.1 gwr * Allocate a submap for exec arguments. This map effectively
265 1.1 gwr * limits the number of processes exec'ing at any time.
266 1.1 gwr */
267 1.34 gwr exec_map = uvm_km_suballoc(kernel_map, &minaddr, &maxaddr,
268 1.51 thorpej 16*NCARGS, VM_MAP_PAGEABLE, FALSE, NULL);
269 1.1 gwr
270 1.1 gwr /*
271 1.1 gwr * We don't use a submap for physio, and use a separate map
272 1.1 gwr * for DVMA allocations. Our vmapbuf just maps pages into
273 1.1 gwr * the kernel map (any kernel mapping is OK) and then the
274 1.1 gwr * device drivers clone the kernel mappings into DVMA space.
275 1.1 gwr */
276 1.1 gwr
277 1.1 gwr /*
278 1.12 thorpej * Finally, allocate mbuf cluster submap.
279 1.1 gwr */
280 1.39 thorpej mb_map = uvm_km_suballoc(kernel_map, &minaddr, &maxaddr,
281 1.51 thorpej nmbclusters * mclbytes, VM_MAP_INTRSAFE,
282 1.51 thorpej FALSE, NULL);
283 1.1 gwr
284 1.50 lukem format_bytes(pbuf, sizeof(pbuf), ptoa(uvmexp.free));
285 1.50 lukem printf("avail memory = %s\n", pbuf);
286 1.54 ragge format_bytes(pbuf, sizeof(pbuf), bufpages * NBPG);
287 1.50 lukem printf("using %d buffers containing %s of memory\n", nbuf, pbuf);
288 1.1 gwr
289 1.1 gwr /*
290 1.1 gwr * Tell the VM system that writing to kernel text isn't allowed.
291 1.1 gwr * If we don't, we might end up COW'ing the text segment!
292 1.1 gwr */
293 1.34 gwr if (uvm_map_protect(kernel_map, (vm_offset_t) kernel_text,
294 1.34 gwr m68k_trunc_page((vm_offset_t) etext),
295 1.34 gwr UVM_PROT_READ|UVM_PROT_EXEC, TRUE) != KERN_SUCCESS)
296 1.34 gwr panic("can't protect kernel text");
297 1.1 gwr
298 1.1 gwr /*
299 1.1 gwr * Allocate a virtual page (for use by /dev/mem)
300 1.1 gwr * This page is handed to pmap_enter() therefore
301 1.1 gwr * it has to be in the normal kernel VA range.
302 1.1 gwr */
303 1.34 gwr vmmap = uvm_km_valloc_wait(kernel_map, NBPG);
304 1.1 gwr
305 1.1 gwr /*
306 1.1 gwr * Create the DVMA maps.
307 1.1 gwr */
308 1.1 gwr dvma_init();
309 1.1 gwr
310 1.1 gwr /*
311 1.1 gwr * Set up CPU-specific registers, cache, etc.
312 1.1 gwr */
313 1.1 gwr initcpu();
314 1.1 gwr
315 1.1 gwr /*
316 1.1 gwr * Set up buffers, so they can be used to read disk labels.
317 1.1 gwr */
318 1.1 gwr bufinit();
319 1.1 gwr }
320 1.1 gwr
321 1.1 gwr /*
322 1.1 gwr * Set registers on exec.
323 1.1 gwr */
324 1.1 gwr void
325 1.19 mycroft setregs(p, pack, stack)
326 1.34 gwr struct proc *p;
327 1.1 gwr struct exec_package *pack;
328 1.1 gwr u_long stack;
329 1.1 gwr {
330 1.5 gwr struct trapframe *tf = (struct trapframe *)p->p_md.md_regs;
331 1.1 gwr
332 1.21 mycroft tf->tf_sr = PSL_USERSET;
333 1.5 gwr tf->tf_pc = pack->ep_entry & ~1;
334 1.20 mycroft tf->tf_regs[D0] = 0;
335 1.20 mycroft tf->tf_regs[D1] = 0;
336 1.20 mycroft tf->tf_regs[D2] = 0;
337 1.20 mycroft tf->tf_regs[D3] = 0;
338 1.20 mycroft tf->tf_regs[D4] = 0;
339 1.20 mycroft tf->tf_regs[D5] = 0;
340 1.20 mycroft tf->tf_regs[D6] = 0;
341 1.20 mycroft tf->tf_regs[D7] = 0;
342 1.20 mycroft tf->tf_regs[A0] = 0;
343 1.20 mycroft tf->tf_regs[A1] = 0;
344 1.20 mycroft tf->tf_regs[A2] = (int)PS_STRINGS;
345 1.20 mycroft tf->tf_regs[A3] = 0;
346 1.20 mycroft tf->tf_regs[A4] = 0;
347 1.20 mycroft tf->tf_regs[A5] = 0;
348 1.20 mycroft tf->tf_regs[A6] = 0;
349 1.5 gwr tf->tf_regs[SP] = stack;
350 1.1 gwr
351 1.1 gwr /* restore a null state frame */
352 1.1 gwr p->p_addr->u_pcb.pcb_fpregs.fpf_null = 0;
353 1.19 mycroft if (fputype)
354 1.1 gwr m68881_restore(&p->p_addr->u_pcb.pcb_fpregs);
355 1.19 mycroft
356 1.1 gwr p->p_md.md_flags = 0;
357 1.1 gwr }
358 1.1 gwr
359 1.1 gwr /*
360 1.1 gwr * Info for CTL_HW
361 1.1 gwr */
362 1.46 gwr char machine[16] = MACHINE; /* from <machine/param.h> */
363 1.46 gwr char kernel_arch[16] = "sun3x"; /* XXX needs a sysctl node */
364 1.1 gwr char cpu_model[120];
365 1.15 gwr
366 1.15 gwr /*
367 1.15 gwr * XXX - Should empirically estimate the divisor...
368 1.15 gwr * Note that the value of delay_divisor is roughly
369 1.15 gwr * 2048 / cpuclock (where cpuclock is in MHz).
370 1.15 gwr */
371 1.16 gwr int delay_divisor = 62; /* assume the fastest (33 MHz) */
372 1.1 gwr
373 1.1 gwr void
374 1.1 gwr identifycpu()
375 1.1 gwr {
376 1.29 gwr u_char machtype;
377 1.1 gwr
378 1.15 gwr machtype = identity_prom.idp_machtype;
379 1.29 gwr if ((machtype & IDM_ARCH_MASK) != IDM_ARCH_SUN3X) {
380 1.29 gwr printf("Bad IDPROM arch!\n");
381 1.15 gwr sunmon_abort();
382 1.15 gwr }
383 1.15 gwr
384 1.29 gwr cpu_machine_id = machtype;
385 1.15 gwr switch (cpu_machine_id) {
386 1.15 gwr
387 1.15 gwr case SUN3X_MACH_80:
388 1.15 gwr cpu_string = "80"; /* Hydra */
389 1.16 gwr delay_divisor = 102; /* 20 MHz */
390 1.15 gwr cpu_has_vme = FALSE;
391 1.15 gwr break;
392 1.15 gwr
393 1.15 gwr case SUN3X_MACH_470:
394 1.15 gwr cpu_string = "470"; /* Pegasus */
395 1.15 gwr delay_divisor = 62; /* 33 MHz */
396 1.15 gwr cpu_has_vme = TRUE;
397 1.15 gwr break;
398 1.15 gwr
399 1.15 gwr default:
400 1.15 gwr printf("unknown sun3x model\n");
401 1.15 gwr sunmon_abort();
402 1.15 gwr }
403 1.15 gwr
404 1.15 gwr /* Other stuff? (VAC, mc6888x version, etc.) */
405 1.46 gwr /* Note: miniroot cares about the kernel_arch part. */
406 1.46 gwr sprintf(cpu_model, "%s %s", kernel_arch, cpu_string);
407 1.1 gwr
408 1.29 gwr printf("Model: %s\n", cpu_model);
409 1.1 gwr }
410 1.1 gwr
411 1.1 gwr /*
412 1.1 gwr * machine dependent system variables.
413 1.1 gwr */
414 1.1 gwr int
415 1.1 gwr cpu_sysctl(name, namelen, oldp, oldlenp, newp, newlen, p)
416 1.1 gwr int *name;
417 1.1 gwr u_int namelen;
418 1.1 gwr void *oldp;
419 1.1 gwr size_t *oldlenp;
420 1.1 gwr void *newp;
421 1.1 gwr size_t newlen;
422 1.1 gwr struct proc *p;
423 1.1 gwr {
424 1.1 gwr int error;
425 1.1 gwr dev_t consdev;
426 1.1 gwr
427 1.1 gwr /* all sysctl names at this level are terminal */
428 1.1 gwr if (namelen != 1)
429 1.1 gwr return (ENOTDIR); /* overloaded */
430 1.1 gwr
431 1.1 gwr switch (name[0]) {
432 1.1 gwr case CPU_CONSDEV:
433 1.1 gwr if (cn_tab != NULL)
434 1.1 gwr consdev = cn_tab->cn_dev;
435 1.1 gwr else
436 1.1 gwr consdev = NODEV;
437 1.1 gwr error = sysctl_rdstruct(oldp, oldlenp, newp,
438 1.1 gwr &consdev, sizeof consdev);
439 1.1 gwr break;
440 1.1 gwr
441 1.1 gwr #if 0 /* XXX - Not yet... */
442 1.1 gwr case CPU_ROOT_DEVICE:
443 1.1 gwr error = sysctl_rdstring(oldp, oldlenp, newp, root_device);
444 1.1 gwr break;
445 1.1 gwr
446 1.1 gwr case CPU_BOOTED_KERNEL:
447 1.1 gwr error = sysctl_rdstring(oldp, oldlenp, newp, booted_kernel);
448 1.1 gwr break;
449 1.1 gwr #endif
450 1.1 gwr
451 1.1 gwr default:
452 1.1 gwr error = EOPNOTSUPP;
453 1.1 gwr }
454 1.1 gwr return (error);
455 1.1 gwr }
456 1.1 gwr
457 1.7 gwr /* See: sig_machdep.c */
458 1.1 gwr
459 1.1 gwr /*
460 1.1 gwr * Do a sync in preparation for a reboot.
461 1.1 gwr * XXX - This could probably be common code.
462 1.1 gwr * XXX - And now, most of it is in vfs_shutdown()
463 1.1 gwr * XXX - Put waittime checks in there too?
464 1.1 gwr */
465 1.1 gwr int waittime = -1; /* XXX - Who else looks at this? -gwr */
466 1.1 gwr static void
467 1.1 gwr reboot_sync __P((void))
468 1.1 gwr {
469 1.1 gwr
470 1.1 gwr /* Check waittime here to localize its use to this function. */
471 1.1 gwr if (waittime >= 0)
472 1.1 gwr return;
473 1.1 gwr waittime = 0;
474 1.1 gwr vfs_shutdown();
475 1.1 gwr }
476 1.1 gwr
477 1.1 gwr /*
478 1.1 gwr * Common part of the BSD and SunOS reboot system calls.
479 1.1 gwr */
480 1.1 gwr __dead void
481 1.11 gwr cpu_reboot(howto, user_boot_string)
482 1.1 gwr int howto;
483 1.1 gwr char *user_boot_string;
484 1.1 gwr {
485 1.2 gwr /* Note: this string MUST be static! */
486 1.2 gwr static char bootstr[128];
487 1.2 gwr char *p;
488 1.1 gwr
489 1.1 gwr /* If system is cold, just halt. (early panic?) */
490 1.1 gwr if (cold)
491 1.1 gwr goto haltsys;
492 1.1 gwr
493 1.24 gwr /* Un-blank the screen if appropriate. */
494 1.24 gwr cnpollc(1);
495 1.24 gwr
496 1.1 gwr if ((howto & RB_NOSYNC) == 0) {
497 1.1 gwr reboot_sync();
498 1.1 gwr /*
499 1.1 gwr * If we've been adjusting the clock, the todr
500 1.1 gwr * will be out of synch; adjust it now.
501 1.1 gwr *
502 1.1 gwr * XXX - However, if the kernel has been sitting in ddb,
503 1.1 gwr * the time will be way off, so don't set the HW clock!
504 1.1 gwr * XXX - Should do sanity check against HW clock. -gwr
505 1.1 gwr */
506 1.1 gwr /* resettodr(); */
507 1.1 gwr }
508 1.1 gwr
509 1.1 gwr /* Disable interrupts. */
510 1.1 gwr splhigh();
511 1.1 gwr
512 1.1 gwr /* Write out a crash dump if asked. */
513 1.1 gwr if (howto & RB_DUMP)
514 1.1 gwr dumpsys();
515 1.1 gwr
516 1.1 gwr /* run any shutdown hooks */
517 1.1 gwr doshutdownhooks();
518 1.1 gwr
519 1.1 gwr if (howto & RB_HALT) {
520 1.1 gwr haltsys:
521 1.1 gwr printf("Kernel halted.\n");
522 1.15 gwr #if 0
523 1.15 gwr /*
524 1.15 gwr * This calls the PROM monitor "exit_to_mon" function
525 1.15 gwr * which appears to have problems... SunOS uses the
526 1.15 gwr * "abort" function when you halt (bug work-around?)
527 1.15 gwr * so we might as well do the same.
528 1.15 gwr */
529 1.15 gwr sunmon_halt(); /* provokes PROM monitor bug */
530 1.15 gwr #else
531 1.15 gwr sunmon_abort();
532 1.15 gwr #endif
533 1.1 gwr }
534 1.1 gwr
535 1.1 gwr /*
536 1.1 gwr * Automatic reboot.
537 1.1 gwr */
538 1.2 gwr if (user_boot_string)
539 1.2 gwr strncpy(bootstr, user_boot_string, sizeof(bootstr));
540 1.2 gwr else {
541 1.1 gwr /*
542 1.1 gwr * Build our own boot string with an empty
543 1.1 gwr * boot device/file and (maybe) some flags.
544 1.1 gwr * The PROM will supply the device/file name.
545 1.1 gwr */
546 1.2 gwr p = bootstr;
547 1.2 gwr *p = '\0';
548 1.1 gwr if (howto & (RB_KDB|RB_ASKNAME|RB_SINGLE)) {
549 1.1 gwr /* Append the boot flags. */
550 1.1 gwr *p++ = ' ';
551 1.1 gwr *p++ = '-';
552 1.1 gwr if (howto & RB_KDB)
553 1.1 gwr *p++ = 'd';
554 1.1 gwr if (howto & RB_ASKNAME)
555 1.1 gwr *p++ = 'a';
556 1.1 gwr if (howto & RB_SINGLE)
557 1.1 gwr *p++ = 's';
558 1.1 gwr *p = '\0';
559 1.1 gwr }
560 1.1 gwr }
561 1.1 gwr printf("Kernel rebooting...\n");
562 1.3 gwr sunmon_reboot(bootstr);
563 1.1 gwr for (;;) ;
564 1.1 gwr /*NOTREACHED*/
565 1.1 gwr }
566 1.1 gwr
567 1.1 gwr /*
568 1.1 gwr * These variables are needed by /sbin/savecore
569 1.1 gwr */
570 1.1 gwr u_long dumpmag = 0x8fca0101; /* magic number */
571 1.1 gwr int dumpsize = 0; /* pages */
572 1.1 gwr long dumplo = 0; /* blocks */
573 1.1 gwr
574 1.1 gwr /*
575 1.11 gwr * This is called by main to set dumplo, dumpsize.
576 1.54 ragge * Dumps always skip the first NBPG of disk space
577 1.1 gwr * in case there might be a disk label stored there.
578 1.1 gwr * If there is extra space, put dump at the end to
579 1.1 gwr * reduce the chance that swapping trashes it.
580 1.1 gwr */
581 1.1 gwr void
582 1.11 gwr cpu_dumpconf()
583 1.1 gwr {
584 1.1 gwr int nblks; /* size of dump area */
585 1.1 gwr int maj;
586 1.1 gwr int (*getsize)__P((dev_t));
587 1.24 gwr
588 1.24 gwr /* Validate space in page zero for the kcore header. */
589 1.24 gwr if (MSGBUFOFF < (sizeof(kcore_seg_t) + sizeof(cpu_kcore_hdr_t)))
590 1.24 gwr panic("cpu_dumpconf: MSGBUFOFF too small");
591 1.1 gwr
592 1.1 gwr if (dumpdev == NODEV)
593 1.1 gwr return;
594 1.1 gwr
595 1.1 gwr maj = major(dumpdev);
596 1.1 gwr if (maj < 0 || maj >= nblkdev)
597 1.1 gwr panic("dumpconf: bad dumpdev=0x%x", dumpdev);
598 1.1 gwr getsize = bdevsw[maj].d_psize;
599 1.1 gwr if (getsize == NULL)
600 1.1 gwr return;
601 1.1 gwr nblks = (*getsize)(dumpdev);
602 1.1 gwr if (nblks <= ctod(1))
603 1.1 gwr return;
604 1.1 gwr
605 1.1 gwr /* Position dump image near end of space, page aligned. */
606 1.1 gwr dumpsize = physmem; /* pages */
607 1.1 gwr dumplo = nblks - ctod(dumpsize);
608 1.1 gwr dumplo &= ~(ctod(1)-1);
609 1.1 gwr
610 1.1 gwr /* If it does not fit, truncate it by moving dumplo. */
611 1.1 gwr /* Note: Must force signed comparison. */
612 1.1 gwr if (dumplo < ((long)ctod(1))) {
613 1.1 gwr dumplo = ctod(1);
614 1.1 gwr dumpsize = dtoc(nblks - dumplo);
615 1.1 gwr }
616 1.1 gwr }
617 1.1 gwr
618 1.13 gwr /* Note: gdb looks for "dumppcb" in a kernel crash dump. */
619 1.1 gwr struct pcb dumppcb;
620 1.1 gwr
621 1.1 gwr /*
622 1.1 gwr * Write a crash dump. The format while in swap is:
623 1.1 gwr * kcore_seg_t cpu_hdr;
624 1.1 gwr * cpu_kcore_hdr_t cpu_data;
625 1.1 gwr * padding (NBPG-sizeof(kcore_seg_t))
626 1.1 gwr * pagemap (2*NBPG)
627 1.1 gwr * physical memory...
628 1.1 gwr */
629 1.1 gwr void
630 1.1 gwr dumpsys()
631 1.1 gwr {
632 1.1 gwr struct bdevsw *dsw;
633 1.10 gwr kcore_seg_t *kseg_p;
634 1.10 gwr cpu_kcore_hdr_t *chdr_p;
635 1.14 thorpej struct sun3x_kcore_hdr *sh;
636 1.14 thorpej phys_ram_seg_t *crs_p;
637 1.1 gwr char *vaddr;
638 1.1 gwr vm_offset_t paddr;
639 1.10 gwr int psize, todo, seg, segsz;
640 1.1 gwr daddr_t blkno;
641 1.1 gwr int error = 0;
642 1.1 gwr
643 1.1 gwr if (dumpdev == NODEV)
644 1.1 gwr return;
645 1.1 gwr
646 1.1 gwr /*
647 1.1 gwr * For dumps during autoconfiguration,
648 1.1 gwr * if dump device has already configured...
649 1.1 gwr */
650 1.1 gwr if (dumpsize == 0)
651 1.11 gwr cpu_dumpconf();
652 1.28 mycroft if (dumplo <= 0) {
653 1.28 mycroft printf("\ndump to dev %u,%u not possible\n", major(dumpdev),
654 1.28 mycroft minor(dumpdev));
655 1.1 gwr return;
656 1.28 mycroft }
657 1.1 gwr savectx(&dumppcb);
658 1.1 gwr
659 1.1 gwr dsw = &bdevsw[major(dumpdev)];
660 1.1 gwr psize = (*(dsw->d_psize))(dumpdev);
661 1.1 gwr if (psize == -1) {
662 1.1 gwr printf("dump area unavailable\n");
663 1.1 gwr return;
664 1.1 gwr }
665 1.1 gwr
666 1.28 mycroft printf("\ndumping to dev %u,%u offset %ld\n", major(dumpdev),
667 1.28 mycroft minor(dumpdev), dumplo);
668 1.1 gwr
669 1.1 gwr /*
670 1.10 gwr * We put the dump header is in physical page zero,
671 1.10 gwr * so there is no extra work here to write it out.
672 1.25 gwr * All we do is initialize the header.
673 1.1 gwr */
674 1.25 gwr
675 1.25 gwr /* Set pointers to all three parts. */
676 1.10 gwr kseg_p = (kcore_seg_t *)KERNBASE;
677 1.10 gwr chdr_p = (cpu_kcore_hdr_t *) (kseg_p + 1);
678 1.14 thorpej sh = &chdr_p->un._sun3x;
679 1.25 gwr
680 1.25 gwr /* Fill in kcore_seg_t part. */
681 1.10 gwr CORE_SETMAGIC(*kseg_p, KCORE_MAGIC, MID_MACHINE, CORE_CPU);
682 1.10 gwr kseg_p->c_size = sizeof(*chdr_p);
683 1.25 gwr
684 1.25 gwr /* Fill in cpu_kcore_hdr_t part. */
685 1.46 gwr strncpy(chdr_p->name, kernel_arch, sizeof(chdr_p->name));
686 1.25 gwr chdr_p->page_size = NBPG;
687 1.25 gwr chdr_p->kernbase = KERNBASE;
688 1.25 gwr
689 1.25 gwr /* Fill in the sun3x_kcore_hdr part. */
690 1.25 gwr pmap_kcore_hdr(sh);
691 1.10 gwr
692 1.10 gwr /*
693 1.10 gwr * Now dump physical memory. Note that physical memory
694 1.10 gwr * might NOT be congiguous, so do it by segments.
695 1.10 gwr */
696 1.10 gwr
697 1.1 gwr blkno = dumplo;
698 1.1 gwr todo = dumpsize; /* pages */
699 1.10 gwr vaddr = (char*)vmmap; /* Borrow /dev/mem VA */
700 1.1 gwr
701 1.14 thorpej for (seg = 0; seg < SUN3X_NPHYS_RAM_SEGS; seg++) {
702 1.14 thorpej crs_p = &sh->ram_segs[seg];
703 1.10 gwr paddr = crs_p->start;
704 1.10 gwr segsz = crs_p->size;
705 1.10 gwr /*
706 1.10 gwr * Our header lives in the first little bit of
707 1.10 gwr * physical memory (not written separately), so
708 1.10 gwr * we have to adjust the first ram segment size
709 1.10 gwr * and start address to reflect the stolen RAM.
710 1.10 gwr * (Nothing interesing in that RAM anyway 8^).
711 1.10 gwr */
712 1.10 gwr if (seg == 0) {
713 1.10 gwr int adj = sizeof(*kseg_p) + sizeof(*chdr_p);
714 1.10 gwr crs_p->start += adj;
715 1.10 gwr crs_p->size -= adj;
716 1.10 gwr }
717 1.1 gwr
718 1.10 gwr while (todo && (segsz > 0)) {
719 1.1 gwr
720 1.10 gwr /* Print pages left after every 16. */
721 1.10 gwr if ((todo & 0xf) == 0)
722 1.10 gwr printf("\r%4d", todo);
723 1.10 gwr
724 1.10 gwr /* Make a temporary mapping for the page. */
725 1.10 gwr pmap_enter(pmap_kernel(), vmmap, paddr | PMAP_NC,
726 1.53 thorpej VM_PROT_READ, 0);
727 1.10 gwr error = (*dsw->d_dump)(dumpdev, blkno, vaddr, NBPG);
728 1.10 gwr pmap_remove(pmap_kernel(), vmmap, vmmap + NBPG);
729 1.10 gwr if (error)
730 1.10 gwr goto fail;
731 1.10 gwr paddr += NBPG;
732 1.10 gwr segsz -= NBPG;
733 1.10 gwr blkno += btodb(NBPG);
734 1.10 gwr todo--;
735 1.10 gwr }
736 1.10 gwr }
737 1.1 gwr printf("\rdump succeeded\n");
738 1.1 gwr return;
739 1.1 gwr fail:
740 1.1 gwr printf(" dump error=%d\n", error);
741 1.1 gwr }
742 1.1 gwr
743 1.1 gwr static void
744 1.1 gwr initcpu()
745 1.1 gwr {
746 1.1 gwr /* XXX: Enable RAM parity/ECC checking? */
747 1.1 gwr /* XXX: parityenable(); */
748 1.1 gwr
749 1.1 gwr #ifdef HAVECACHE
750 1.1 gwr cache_enable();
751 1.1 gwr #endif
752 1.1 gwr }
753 1.1 gwr
754 1.8 gwr /* straptrap() in trap.c */
755 1.1 gwr
756 1.1 gwr /* from hp300: badaddr() */
757 1.15 gwr /* peek_byte(), peek_word() moved to bus_subr.c */
758 1.1 gwr
759 1.1 gwr /* XXX: parityenable() ? */
760 1.7 gwr /* regdump() moved to regdump.c */
761 1.1 gwr
762 1.1 gwr /*
763 1.1 gwr * cpu_exec_aout_makecmds():
764 1.1 gwr * cpu-dependent a.out format hook for execve().
765 1.1 gwr *
766 1.1 gwr * Determine if the given exec package refers to something which we
767 1.1 gwr * understand and, if so, set up the vmcmds for it.
768 1.1 gwr */
769 1.1 gwr int
770 1.1 gwr cpu_exec_aout_makecmds(p, epp)
771 1.1 gwr struct proc *p;
772 1.1 gwr struct exec_package *epp;
773 1.1 gwr {
774 1.27 tv return ENOEXEC;
775 1.1 gwr }
776