xref: /csrg-svn/sys/kern/init_main.c (revision 39380)
1 /*
2  * Copyright (c) 1982, 1986, 1989 Regents of the University of California.
3  * All rights reserved.
4  *
5  * Redistribution and use in source and binary forms are permitted
6  * provided that the above copyright notice and this paragraph are
7  * duplicated in all such forms and that any documentation,
8  * advertising materials, and other materials related to such
9  * distribution and use acknowledge that the software was developed
10  * by the University of California, Berkeley.  The name of the
11  * University may not be used to endorse or promote products derived
12  * from this software without specific prior written permission.
13  * THIS SOFTWARE IS PROVIDED ``AS IS'' AND WITHOUT ANY EXPRESS OR
14  * IMPLIED WARRANTIES, INCLUDING, WITHOUT LIMITATION, THE IMPLIED
15  * WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE.
16  *
17  *	@(#)init_main.c	7.18 (Berkeley) 10/24/89
18  */
19 
20 #include "param.h"
21 #include "systm.h"
22 #include "user.h"
23 #include "kernel.h"
24 #include "mount.h"
25 #include "map.h"
26 #include "proc.h"
27 #include "vnode.h"
28 #include "seg.h"
29 #include "conf.h"
30 #include "buf.h"
31 #include "vm.h"
32 #include "cmap.h"
33 #include "text.h"
34 #include "clist.h"
35 #include "malloc.h"
36 #include "protosw.h"
37 #include "reboot.h"
38 #include "../ufs/quota.h"
39 
40 #include "machine/pte.h"
41 #include "machine/reg.h"
42 #include "machine/cpu.h"
43 
44 int	cmask = CMASK;
45 extern	int (*mountroot)();
46 /*
47  * Initialization code.
48  * Called from cold start routine as
49  * soon as a stack and segmentation
50  * have been established.
51  * Functions:
52  *	clear and free user core
53  *	turn on clock
54  *	hand craft 0th process
55  *	call all initialization routines
56  *	fork - process 0 to schedule
57  *	     - process 1 execute bootstrap
58  *	     - process 2 to page out
59  */
60 main(firstaddr)
61 	int firstaddr;
62 {
63 	register int i;
64 	register struct proc *p;
65 	register struct pgrp *pg;
66 	int s;
67 
68 	rqinit();
69 #include "loop.h"
70 	startup(firstaddr);
71 
72 	/*
73 	 * set up system process 0 (swapper)
74 	 */
75 	p = &proc[0];
76 	p->p_p0br = u.u_pcb.pcb_p0br;
77 	p->p_szpt = 1;
78 	p->p_addr = uaddr(p);
79 	p->p_stat = SRUN;
80 	p->p_flag |= SLOAD|SSYS;
81 	p->p_nice = NZERO;
82 	setredzone(p->p_addr, (caddr_t)&u);
83 	u.u_procp = p;
84 	MALLOC(pgrphash[0], struct pgrp *, sizeof (struct pgrp),
85 		M_PGRP, M_NOWAIT);
86 	if ((pg = pgrphash[0]) == NULL)
87 		panic("no space to craft zero'th process group");
88 	pg->pg_id = 0;
89 	pg->pg_hforw = 0;
90 	pg->pg_mem = p;
91 	pg->pg_jobc = 0;
92 	p->p_pgrp = pg;
93 	p->p_pgrpnxt = 0;
94 	MALLOC(pg->pg_session, struct session *, sizeof (struct session),
95 		M_SESSION, M_NOWAIT);
96 	if (pg->pg_session == NULL)
97 		panic("no space to craft zero'th session");
98 	pg->pg_session->s_count = 1;
99 	pg->pg_session->s_leader = 0;
100 #ifdef KTRACE
101 	p->p_tracep = NULL;
102 	p->p_traceflag = 0;
103 #endif
104 	/*
105 	 * These assume that the u. area is always mapped
106 	 * to the same virtual address. Otherwise must be
107 	 * handled when copying the u. area in newproc().
108 	 */
109 	ndinit(&u.u_nd);
110 	u.u_ap = u.u_arg;
111 
112 	u.u_cmask = cmask;
113 	u.u_lastfile = -1;
114 	for (i = 0; i < sizeof(u.u_rlimit)/sizeof(u.u_rlimit[0]); i++)
115 		u.u_rlimit[i].rlim_cur = u.u_rlimit[i].rlim_max =
116 		    RLIM_INFINITY;
117 	/*
118 	 * configure virtual memory system,
119 	 * set vm rlimits
120 	 */
121 	vminit();
122 
123 	/*
124 	 * Get vnodes for swapdev, argdev, and rootdev.
125 	 */
126 	vhinit();
127 	ihinit();
128 	nchinit();
129 	if (bdevvp(swapdev, &swapdev_vp) ||
130 	    bdevvp(argdev, &argdev_vp) ||
131 	    bdevvp(rootdev, &rootvp))
132 		panic("can't setup bdevvp's");
133 
134 	/*
135 	 * Setup credentials
136 	 */
137 	u.u_cred = crget();
138 	u.u_ngroups = 1;
139 
140 #if defined(QUOTA)
141 	qtinit();
142 	p->p_quota = u.u_quota = getquota(0, 0, Q_NDQ);
143 #endif
144 	startrtclock();
145 #if defined(vax)
146 #include "kg.h"
147 #if NKG > 0
148 	startkgclock();
149 #endif
150 #endif
151 
152 	/*
153 	 * Initialize tables, protocols, and set up well-known inodes.
154 	 */
155 	mbinit();
156 	cinit();
157 #include "sl.h"
158 #if NSL > 0
159 	slattach();			/* XXX */
160 #endif
161 #if NLOOP > 0
162 	loattach();			/* XXX */
163 #endif
164 	/*
165 	 * Block reception of incoming packets
166 	 * until protocols have been initialized.
167 	 */
168 	s = splimp();
169 	ifinit();
170 	domaininit();
171 	splx(s);
172 	pqinit();
173 	xinit();
174 	swapinit();
175 #ifdef GPROF
176 	kmstartup();
177 #endif
178 #ifdef NFS
179 	nfsinit();
180 #endif
181 #ifdef MFS
182 	mfs_init();
183 #endif
184 
185 /* kick off timeout driven events by calling first time */
186 	roundrobin();
187 	schedcpu();
188 	schedpaging();
189 
190 /* set up the root file system */
191 	if ((*mountroot)())
192 		panic("cannot mount root");
193 	/*
194 	 * Get vnode for '/'.
195 	 * Setup rootdir and u.u_cdir to point to it.
196 	 */
197 	if (VFS_ROOT(rootfs, &rootdir))
198 		panic("cannot find root vnode");
199 	u.u_cdir = rootdir;
200 	VREF(u.u_cdir);
201 	VOP_UNLOCK(rootdir);
202 	u.u_rdir = NULL;
203 	boottime = time;
204 
205 	u.u_dmap = zdmap;
206 	u.u_smap = zdmap;
207 
208 	enablertclock();		/* enable realtime clock interrupts */
209 	/*
210 	 * make init process
211 	 */
212 
213 	siginit(&proc[0]);
214 	proc[0].p_szpt = CLSIZE;
215 	if (newproc(0)) {
216 		expand(clrnd((int)btoc(szicode)), 0);
217 		(void) swpexpand(u.u_dsize, (size_t)0, &u.u_dmap, &u.u_smap);
218 		(void) copyout((caddr_t)icode, (caddr_t)0, (unsigned)szicode);
219 		/*
220 		 * Return goes to loc. 0 of user init
221 		 * code just copied out.
222 		 */
223 		return;
224 	}
225 	/*
226 	 * make page-out daemon (process 2)
227 	 * the daemon has ctopt(nswbuf*CLSIZE*KLMAX) pages of page
228 	 * table so that it can map dirty pages into
229 	 * its address space during asychronous pushes.
230 	 */
231 	proc[0].p_szpt = clrnd(ctopt(nswbuf*CLSIZE*KLMAX + UPAGES));
232 	if (newproc(0)) {
233 		proc[2].p_flag |= SLOAD|SSYS;
234 		proc[2].p_dsize = u.u_dsize = nswbuf*CLSIZE*KLMAX;
235 		pageout();
236 		/*NOTREACHED*/
237 	}
238 
239 	/*
240 	 * enter scheduling loop
241 	 */
242 	proc[0].p_szpt = 1;
243 	sched();
244 }
245 
246 /*
247  * Initialize hash links for buffers.
248  */
249 bhinit()
250 {
251 	register int i;
252 	register struct bufhd *bp;
253 
254 	for (bp = bufhash, i = 0; i < BUFHSZ; i++, bp++)
255 		bp->b_forw = bp->b_back = (struct buf *)bp;
256 }
257 
258 /*
259  * Initialize the buffer I/O system by freeing
260  * all buffers and setting all device buffer lists to empty.
261  */
262 binit()
263 {
264 	register struct buf *bp, *dp;
265 	register int i;
266 	int base, residual;
267 
268 	for (dp = bfreelist; dp < &bfreelist[BQUEUES]; dp++) {
269 		dp->b_forw = dp->b_back = dp->av_forw = dp->av_back = dp;
270 		dp->b_flags = B_HEAD;
271 	}
272 	base = bufpages / nbuf;
273 	residual = bufpages % nbuf;
274 	for (i = 0; i < nbuf; i++) {
275 		bp = &buf[i];
276 		bp->b_dev = NODEV;
277 		bp->b_bcount = 0;
278 		bp->b_rcred = NOCRED;
279 		bp->b_wcred = NOCRED;
280 		bp->b_dirtyoff = 0;
281 		bp->b_dirtyend = 0;
282 		bp->b_un.b_addr = buffers + i * MAXBSIZE;
283 		if (i < residual)
284 			bp->b_bufsize = (base + 1) * CLBYTES;
285 		else
286 			bp->b_bufsize = base * CLBYTES;
287 		binshash(bp, &bfreelist[BQ_AGE]);
288 		bp->b_flags = B_BUSY|B_INVAL;
289 		brelse(bp);
290 	}
291 }
292 
293 /*
294  * Set up swap devices.
295  * Initialize linked list of free swap
296  * headers. These do not actually point
297  * to buffers, but rather to pages that
298  * are being swapped in and out.
299  */
300 swapinit()
301 {
302 	register int i;
303 	register struct buf *sp = swbuf;
304 	struct swdevt *swp;
305 	int error;
306 
307 	/*
308 	 * Count swap devices, and adjust total swap space available.
309 	 * Some of this space will not be available until a swapon()
310 	 * system is issued, usually when the system goes multi-user.
311 	 */
312 	nswdev = 0;
313 	nswap = 0;
314 	for (swp = swdevt; swp->sw_dev; swp++) {
315 		nswdev++;
316 		if (swp->sw_nblks > nswap)
317 			nswap = swp->sw_nblks;
318 	}
319 	if (nswdev == 0)
320 		panic("swapinit");
321 	if (nswdev > 1)
322 		nswap = ((nswap + dmmax - 1) / dmmax) * dmmax;
323 	nswap *= nswdev;
324 	/*
325 	 * If there are multiple swap areas,
326 	 * allow more paging operations per second.
327 	 */
328 	if (nswdev > 1)
329 		maxpgio = (maxpgio * (2 * nswdev - 1)) / 2;
330 	if (bdevvp(swdevt[0].sw_dev, &swdevt[0].sw_vp))
331 		panic("swapvp");
332 	if (error = swfree(0)) {
333 		printf("swfree errno %d\n", error);	/* XXX */
334 		panic("swapinit swfree 0");
335 	}
336 
337 	/*
338 	 * Now set up swap buffer headers.
339 	 */
340 	bswlist.av_forw = sp;
341 	for (i=0; i<nswbuf-1; i++, sp++)
342 		sp->av_forw = sp+1;
343 	sp->av_forw = NULL;
344 }
345 
346 /*
347  * Initialize clist by freeing all character blocks, then count
348  * number of character devices. (Once-only routine)
349  */
350 cinit()
351 {
352 	register int ccp;
353 	register struct cblock *cp;
354 
355 	ccp = (int)cfree;
356 	ccp = (ccp+CROUND) & ~CROUND;
357 	for(cp=(struct cblock *)ccp; cp < &cfree[nclist-1]; cp++) {
358 		cp->c_next = cfreelist;
359 		cfreelist = cp;
360 		cfreecount += CBSIZE;
361 	}
362 }
363