subr_disk.c revision 1.55 1 1.55 yamt /* $NetBSD: subr_disk.c,v 1.55 2003/12/05 10:16:16 yamt Exp $ */
2 1.22 thorpej
3 1.22 thorpej /*-
4 1.26 thorpej * Copyright (c) 1996, 1997, 1999, 2000 The NetBSD Foundation, Inc.
5 1.22 thorpej * All rights reserved.
6 1.22 thorpej *
7 1.22 thorpej * This code is derived from software contributed to The NetBSD Foundation
8 1.22 thorpej * by Jason R. Thorpe of the Numerical Aerospace Simulation Facility,
9 1.22 thorpej * NASA Ames Research Center.
10 1.22 thorpej *
11 1.22 thorpej * Redistribution and use in source and binary forms, with or without
12 1.22 thorpej * modification, are permitted provided that the following conditions
13 1.22 thorpej * are met:
14 1.22 thorpej * 1. Redistributions of source code must retain the above copyright
15 1.22 thorpej * notice, this list of conditions and the following disclaimer.
16 1.22 thorpej * 2. Redistributions in binary form must reproduce the above copyright
17 1.22 thorpej * notice, this list of conditions and the following disclaimer in the
18 1.22 thorpej * documentation and/or other materials provided with the distribution.
19 1.22 thorpej * 3. All advertising materials mentioning features or use of this software
20 1.22 thorpej * must display the following acknowledgement:
21 1.22 thorpej * This product includes software developed by the NetBSD
22 1.22 thorpej * Foundation, Inc. and its contributors.
23 1.22 thorpej * 4. Neither the name of The NetBSD Foundation nor the names of its
24 1.22 thorpej * contributors may be used to endorse or promote products derived
25 1.22 thorpej * from this software without specific prior written permission.
26 1.22 thorpej *
27 1.22 thorpej * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
28 1.22 thorpej * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
29 1.22 thorpej * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
30 1.22 thorpej * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
31 1.22 thorpej * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
32 1.22 thorpej * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
33 1.22 thorpej * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
34 1.22 thorpej * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
35 1.22 thorpej * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
36 1.22 thorpej * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
37 1.22 thorpej * POSSIBILITY OF SUCH DAMAGE.
38 1.22 thorpej */
39 1.12 cgd
40 1.11 mycroft /*
41 1.11 mycroft * Copyright (c) 1982, 1986, 1988, 1993
42 1.11 mycroft * The Regents of the University of California. All rights reserved.
43 1.11 mycroft * (c) UNIX System Laboratories, Inc.
44 1.11 mycroft * All or some portions of this file are derived from material licensed
45 1.11 mycroft * to the University of California by American Telephone and Telegraph
46 1.11 mycroft * Co. or Unix System Laboratories, Inc. and are reproduced herein with
47 1.11 mycroft * the permission of UNIX System Laboratories, Inc.
48 1.11 mycroft *
49 1.11 mycroft * Redistribution and use in source and binary forms, with or without
50 1.11 mycroft * modification, are permitted provided that the following conditions
51 1.11 mycroft * are met:
52 1.11 mycroft * 1. Redistributions of source code must retain the above copyright
53 1.11 mycroft * notice, this list of conditions and the following disclaimer.
54 1.11 mycroft * 2. Redistributions in binary form must reproduce the above copyright
55 1.11 mycroft * notice, this list of conditions and the following disclaimer in the
56 1.11 mycroft * documentation and/or other materials provided with the distribution.
57 1.53 agc * 3. Neither the name of the University nor the names of its contributors
58 1.11 mycroft * may be used to endorse or promote products derived from this software
59 1.11 mycroft * without specific prior written permission.
60 1.11 mycroft *
61 1.11 mycroft * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
62 1.11 mycroft * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
63 1.11 mycroft * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
64 1.11 mycroft * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
65 1.11 mycroft * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
66 1.11 mycroft * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
67 1.11 mycroft * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
68 1.11 mycroft * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
69 1.11 mycroft * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
70 1.11 mycroft * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
71 1.11 mycroft * SUCH DAMAGE.
72 1.11 mycroft *
73 1.12 cgd * @(#)ufs_disksubr.c 8.5 (Berkeley) 1/21/94
74 1.11 mycroft */
75 1.31 lukem
76 1.31 lukem #include <sys/cdefs.h>
77 1.55 yamt __KERNEL_RCSID(0, "$NetBSD: subr_disk.c,v 1.55 2003/12/05 10:16:16 yamt Exp $");
78 1.48 mrg
79 1.48 mrg #include "opt_compat_netbsd.h"
80 1.11 mycroft
81 1.11 mycroft #include <sys/param.h>
82 1.15 thorpej #include <sys/kernel.h>
83 1.15 thorpej #include <sys/malloc.h>
84 1.11 mycroft #include <sys/buf.h>
85 1.15 thorpej #include <sys/syslog.h>
86 1.11 mycroft #include <sys/disklabel.h>
87 1.15 thorpej #include <sys/disk.h>
88 1.33 simonb #include <sys/sysctl.h>
89 1.47 mrg #include <lib/libkern/libkern.h>
90 1.14 thorpej
91 1.14 thorpej /*
92 1.15 thorpej * A global list of all disks attached to the system. May grow or
93 1.15 thorpej * shrink over time.
94 1.15 thorpej */
95 1.15 thorpej struct disklist_head disklist; /* TAILQ_HEAD */
96 1.15 thorpej int disk_count; /* number of drives in global disklist */
97 1.33 simonb struct simplelock disklist_slock = SIMPLELOCK_INITIALIZER;
98 1.39 hannken
99 1.39 hannken /*
100 1.11 mycroft * Compute checksum for disk label.
101 1.11 mycroft */
102 1.11 mycroft u_int
103 1.30 simonb dkcksum(struct disklabel *lp)
104 1.11 mycroft {
105 1.29 augustss u_short *start, *end;
106 1.29 augustss u_short sum = 0;
107 1.11 mycroft
108 1.11 mycroft start = (u_short *)lp;
109 1.11 mycroft end = (u_short *)&lp->d_partitions[lp->d_npartitions];
110 1.11 mycroft while (start < end)
111 1.11 mycroft sum ^= *start++;
112 1.11 mycroft return (sum);
113 1.11 mycroft }
114 1.11 mycroft
115 1.11 mycroft /*
116 1.11 mycroft * Disk error is the preface to plaintive error messages
117 1.11 mycroft * about failing disk transfers. It prints messages of the form
118 1.11 mycroft
119 1.11 mycroft hp0g: hard error reading fsbn 12345 of 12344-12347 (hp0 bn %d cn %d tn %d sn %d)
120 1.11 mycroft
121 1.11 mycroft * if the offset of the error in the transfer and a disk label
122 1.11 mycroft * are both available. blkdone should be -1 if the position of the error
123 1.11 mycroft * is unknown; the disklabel pointer may be null from drivers that have not
124 1.20 christos * been converted to use them. The message is printed with printf
125 1.11 mycroft * if pri is LOG_PRINTF, otherwise it uses log at the specified priority.
126 1.20 christos * The message should be completed (with at least a newline) with printf
127 1.11 mycroft * or addlog, respectively. There is no trailing space.
128 1.11 mycroft */
129 1.51 dsl #ifndef PRIdaddr
130 1.51 dsl #define PRIdaddr PRId64
131 1.51 dsl #endif
132 1.11 mycroft void
133 1.38 yamt diskerr(const struct buf *bp, const char *dname, const char *what, int pri,
134 1.38 yamt int blkdone, const struct disklabel *lp)
135 1.11 mycroft {
136 1.25 drochner int unit = DISKUNIT(bp->b_dev), part = DISKPART(bp->b_dev);
137 1.30 simonb void (*pr)(const char *, ...);
138 1.11 mycroft char partname = 'a' + part;
139 1.51 dsl daddr_t sn;
140 1.51 dsl
141 1.52 dsl if (/*CONSTCOND*/0)
142 1.51 dsl /* Compiler will error this is the format is wrong... */
143 1.51 dsl printf("%" PRIdaddr, bp->b_blkno);
144 1.11 mycroft
145 1.11 mycroft if (pri != LOG_PRINTF) {
146 1.17 christos static const char fmt[] = "";
147 1.17 christos log(pri, fmt);
148 1.11 mycroft pr = addlog;
149 1.11 mycroft } else
150 1.20 christos pr = printf;
151 1.11 mycroft (*pr)("%s%d%c: %s %sing fsbn ", dname, unit, partname, what,
152 1.11 mycroft bp->b_flags & B_READ ? "read" : "writ");
153 1.11 mycroft sn = bp->b_blkno;
154 1.11 mycroft if (bp->b_bcount <= DEV_BSIZE)
155 1.51 dsl (*pr)("%" PRIdaddr, sn);
156 1.11 mycroft else {
157 1.11 mycroft if (blkdone >= 0) {
158 1.11 mycroft sn += blkdone;
159 1.51 dsl (*pr)("%" PRIdaddr " of ", sn);
160 1.11 mycroft }
161 1.51 dsl (*pr)("%" PRIdaddr "-%" PRIdaddr "", bp->b_blkno,
162 1.11 mycroft bp->b_blkno + (bp->b_bcount - 1) / DEV_BSIZE);
163 1.11 mycroft }
164 1.11 mycroft if (lp && (blkdone >= 0 || bp->b_bcount <= lp->d_secsize)) {
165 1.11 mycroft sn += lp->d_partitions[part].p_offset;
166 1.51 dsl (*pr)(" (%s%d bn %" PRIdaddr "; cn %" PRIdaddr "",
167 1.51 dsl dname, unit, sn, sn / lp->d_secpercyl);
168 1.11 mycroft sn %= lp->d_secpercyl;
169 1.51 dsl (*pr)(" tn %" PRIdaddr " sn %" PRIdaddr ")",
170 1.51 dsl sn / lp->d_nsectors, sn % lp->d_nsectors);
171 1.11 mycroft }
172 1.15 thorpej }
173 1.15 thorpej
174 1.15 thorpej /*
175 1.15 thorpej * Initialize the disklist. Called by main() before autoconfiguration.
176 1.15 thorpej */
177 1.15 thorpej void
178 1.30 simonb disk_init(void)
179 1.15 thorpej {
180 1.15 thorpej
181 1.15 thorpej TAILQ_INIT(&disklist);
182 1.15 thorpej disk_count = 0;
183 1.15 thorpej }
184 1.15 thorpej
185 1.15 thorpej /*
186 1.15 thorpej * Searches the disklist for the disk corresponding to the
187 1.15 thorpej * name provided.
188 1.15 thorpej */
189 1.15 thorpej struct disk *
190 1.30 simonb disk_find(char *name)
191 1.15 thorpej {
192 1.15 thorpej struct disk *diskp;
193 1.15 thorpej
194 1.15 thorpej if ((name == NULL) || (disk_count <= 0))
195 1.15 thorpej return (NULL);
196 1.15 thorpej
197 1.33 simonb simple_lock(&disklist_slock);
198 1.33 simonb for (diskp = TAILQ_FIRST(&disklist); diskp != NULL;
199 1.33 simonb diskp = TAILQ_NEXT(diskp, dk_link))
200 1.33 simonb if (strcmp(diskp->dk_name, name) == 0) {
201 1.33 simonb simple_unlock(&disklist_slock);
202 1.15 thorpej return (diskp);
203 1.33 simonb }
204 1.33 simonb simple_unlock(&disklist_slock);
205 1.15 thorpej
206 1.15 thorpej return (NULL);
207 1.15 thorpej }
208 1.15 thorpej
209 1.15 thorpej /*
210 1.15 thorpej * Attach a disk.
211 1.15 thorpej */
212 1.15 thorpej void
213 1.30 simonb disk_attach(struct disk *diskp)
214 1.15 thorpej {
215 1.15 thorpej int s;
216 1.15 thorpej
217 1.15 thorpej /*
218 1.15 thorpej * Allocate and initialize the disklabel structures. Note that
219 1.15 thorpej * it's not safe to sleep here, since we're probably going to be
220 1.15 thorpej * called during autoconfiguration.
221 1.15 thorpej */
222 1.15 thorpej diskp->dk_label = malloc(sizeof(struct disklabel), M_DEVBUF, M_NOWAIT);
223 1.15 thorpej diskp->dk_cpulabel = malloc(sizeof(struct cpu_disklabel), M_DEVBUF,
224 1.15 thorpej M_NOWAIT);
225 1.15 thorpej if ((diskp->dk_label == NULL) || (diskp->dk_cpulabel == NULL))
226 1.15 thorpej panic("disk_attach: can't allocate storage for disklabel");
227 1.15 thorpej
228 1.24 perry memset(diskp->dk_label, 0, sizeof(struct disklabel));
229 1.24 perry memset(diskp->dk_cpulabel, 0, sizeof(struct cpu_disklabel));
230 1.15 thorpej
231 1.15 thorpej /*
232 1.15 thorpej * Set the attached timestamp.
233 1.15 thorpej */
234 1.15 thorpej s = splclock();
235 1.15 thorpej diskp->dk_attachtime = mono_time;
236 1.15 thorpej splx(s);
237 1.15 thorpej
238 1.15 thorpej /*
239 1.15 thorpej * Link into the disklist.
240 1.15 thorpej */
241 1.33 simonb simple_lock(&disklist_slock);
242 1.15 thorpej TAILQ_INSERT_TAIL(&disklist, diskp, dk_link);
243 1.33 simonb simple_unlock(&disklist_slock);
244 1.15 thorpej ++disk_count;
245 1.15 thorpej }
246 1.15 thorpej
247 1.15 thorpej /*
248 1.16 christos * Detach a disk.
249 1.15 thorpej */
250 1.15 thorpej void
251 1.30 simonb disk_detach(struct disk *diskp)
252 1.15 thorpej {
253 1.15 thorpej
254 1.15 thorpej /*
255 1.23 thorpej * Remove from the disklist.
256 1.23 thorpej */
257 1.23 thorpej if (--disk_count < 0)
258 1.23 thorpej panic("disk_detach: disk_count < 0");
259 1.33 simonb simple_lock(&disklist_slock);
260 1.23 thorpej TAILQ_REMOVE(&disklist, diskp, dk_link);
261 1.33 simonb simple_unlock(&disklist_slock);
262 1.23 thorpej
263 1.23 thorpej /*
264 1.15 thorpej * Free the space used by the disklabel structures.
265 1.15 thorpej */
266 1.15 thorpej free(diskp->dk_label, M_DEVBUF);
267 1.15 thorpej free(diskp->dk_cpulabel, M_DEVBUF);
268 1.15 thorpej }
269 1.15 thorpej
270 1.15 thorpej /*
271 1.15 thorpej * Increment a disk's busy counter. If the counter is going from
272 1.15 thorpej * 0 to 1, set the timestamp.
273 1.15 thorpej */
274 1.15 thorpej void
275 1.30 simonb disk_busy(struct disk *diskp)
276 1.15 thorpej {
277 1.15 thorpej int s;
278 1.15 thorpej
279 1.15 thorpej /*
280 1.15 thorpej * XXX We'd like to use something as accurate as microtime(),
281 1.15 thorpej * but that doesn't depend on the system TOD clock.
282 1.15 thorpej */
283 1.15 thorpej if (diskp->dk_busy++ == 0) {
284 1.15 thorpej s = splclock();
285 1.15 thorpej diskp->dk_timestamp = mono_time;
286 1.15 thorpej splx(s);
287 1.15 thorpej }
288 1.15 thorpej }
289 1.15 thorpej
290 1.15 thorpej /*
291 1.15 thorpej * Decrement a disk's busy counter, increment the byte count, total busy
292 1.15 thorpej * time, and reset the timestamp.
293 1.15 thorpej */
294 1.15 thorpej void
295 1.45 mrg disk_unbusy(struct disk *diskp, long bcount, int read)
296 1.15 thorpej {
297 1.15 thorpej int s;
298 1.15 thorpej struct timeval dv_time, diff_time;
299 1.15 thorpej
300 1.23 thorpej if (diskp->dk_busy-- == 0) {
301 1.23 thorpej printf("%s: dk_busy < 0\n", diskp->dk_name);
302 1.23 thorpej panic("disk_unbusy");
303 1.23 thorpej }
304 1.15 thorpej
305 1.15 thorpej s = splclock();
306 1.15 thorpej dv_time = mono_time;
307 1.15 thorpej splx(s);
308 1.15 thorpej
309 1.15 thorpej timersub(&dv_time, &diskp->dk_timestamp, &diff_time);
310 1.15 thorpej timeradd(&diskp->dk_time, &diff_time, &diskp->dk_time);
311 1.15 thorpej
312 1.15 thorpej diskp->dk_timestamp = dv_time;
313 1.15 thorpej if (bcount > 0) {
314 1.45 mrg if (read) {
315 1.45 mrg diskp->dk_rbytes += bcount;
316 1.45 mrg diskp->dk_rxfer++;
317 1.45 mrg } else {
318 1.45 mrg diskp->dk_wbytes += bcount;
319 1.45 mrg diskp->dk_wxfer++;
320 1.45 mrg }
321 1.15 thorpej }
322 1.15 thorpej }
323 1.15 thorpej
324 1.15 thorpej /*
325 1.15 thorpej * Reset the metrics counters on the given disk. Note that we cannot
326 1.15 thorpej * reset the busy counter, as it may case a panic in disk_unbusy().
327 1.15 thorpej * We also must avoid playing with the timestamp information, as it
328 1.15 thorpej * may skew any pending transfer results.
329 1.15 thorpej */
330 1.15 thorpej void
331 1.30 simonb disk_resetstat(struct disk *diskp)
332 1.15 thorpej {
333 1.15 thorpej int s = splbio(), t;
334 1.15 thorpej
335 1.45 mrg diskp->dk_rxfer = 0;
336 1.45 mrg diskp->dk_rbytes = 0;
337 1.45 mrg diskp->dk_wxfer = 0;
338 1.45 mrg diskp->dk_wbytes = 0;
339 1.15 thorpej
340 1.15 thorpej t = splclock();
341 1.15 thorpej diskp->dk_attachtime = mono_time;
342 1.15 thorpej splx(t);
343 1.15 thorpej
344 1.15 thorpej timerclear(&diskp->dk_time);
345 1.15 thorpej
346 1.15 thorpej splx(s);
347 1.33 simonb }
348 1.33 simonb
349 1.33 simonb int
350 1.54 atatat sysctl_hw_disknames(SYSCTLFN_ARGS)
351 1.33 simonb {
352 1.33 simonb char buf[DK_DISKNAMELEN + 1];
353 1.54 atatat char *where = oldp;
354 1.33 simonb struct disk *diskp;
355 1.33 simonb size_t needed, left, slen;
356 1.33 simonb int error, first;
357 1.33 simonb
358 1.54 atatat if (newp != NULL)
359 1.54 atatat return (EPERM);
360 1.54 atatat if (namelen != 0)
361 1.54 atatat return (EINVAL);
362 1.54 atatat
363 1.33 simonb first = 1;
364 1.33 simonb error = 0;
365 1.33 simonb needed = 0;
366 1.54 atatat left = *oldlenp;
367 1.35 simonb
368 1.33 simonb simple_lock(&disklist_slock);
369 1.33 simonb for (diskp = TAILQ_FIRST(&disklist); diskp != NULL;
370 1.33 simonb diskp = TAILQ_NEXT(diskp, dk_link)) {
371 1.33 simonb if (where == NULL)
372 1.33 simonb needed += strlen(diskp->dk_name) + 1;
373 1.33 simonb else {
374 1.33 simonb memset(buf, 0, sizeof(buf));
375 1.33 simonb if (first) {
376 1.33 simonb strncpy(buf, diskp->dk_name, sizeof(buf));
377 1.33 simonb first = 0;
378 1.33 simonb } else {
379 1.33 simonb buf[0] = ' ';
380 1.36 enami strncpy(buf + 1, diskp->dk_name,
381 1.37 enami sizeof(buf) - 1);
382 1.33 simonb }
383 1.33 simonb buf[DK_DISKNAMELEN] = '\0';
384 1.33 simonb slen = strlen(buf);
385 1.33 simonb if (left < slen + 1)
386 1.33 simonb break;
387 1.33 simonb /* +1 to copy out the trailing NUL byte */
388 1.33 simonb error = copyout(buf, where, slen + 1);
389 1.33 simonb if (error)
390 1.33 simonb break;
391 1.33 simonb where += slen;
392 1.33 simonb needed += slen;
393 1.33 simonb left -= slen;
394 1.33 simonb }
395 1.33 simonb }
396 1.33 simonb simple_unlock(&disklist_slock);
397 1.54 atatat *oldlenp = needed;
398 1.33 simonb return (error);
399 1.33 simonb }
400 1.33 simonb
401 1.33 simonb int
402 1.54 atatat sysctl_hw_diskstats(SYSCTLFN_ARGS)
403 1.33 simonb {
404 1.33 simonb struct disk_sysctl sdisk;
405 1.33 simonb struct disk *diskp;
406 1.54 atatat char *where = oldp;
407 1.33 simonb size_t tocopy, left;
408 1.33 simonb int error;
409 1.33 simonb
410 1.54 atatat if (newp != NULL)
411 1.54 atatat return (EPERM);
412 1.54 atatat
413 1.48 mrg /*
414 1.48 mrg * The original hw.diskstats call was broken and did not require
415 1.48 mrg * the userland to pass in it's size of struct disk_sysctl. This
416 1.48 mrg * was fixed after NetBSD 1.6 was released, and any applications
417 1.48 mrg * that do not pass in the size are given an error only, unless
418 1.48 mrg * we care about 1.6 compatibility.
419 1.48 mrg */
420 1.33 simonb if (namelen == 0)
421 1.47 mrg #ifdef COMPAT_16
422 1.49 enami tocopy = offsetof(struct disk_sysctl, dk_rxfer);
423 1.47 mrg #else
424 1.47 mrg return (EINVAL);
425 1.47 mrg #endif
426 1.33 simonb else
427 1.33 simonb tocopy = name[0];
428 1.49 enami
429 1.49 enami if (where == NULL) {
430 1.54 atatat *oldlenp = disk_count * tocopy;
431 1.49 enami return (0);
432 1.49 enami }
433 1.33 simonb
434 1.33 simonb error = 0;
435 1.54 atatat left = *oldlenp;
436 1.33 simonb memset(&sdisk, 0, sizeof(sdisk));
437 1.54 atatat *oldlenp = 0;
438 1.33 simonb
439 1.33 simonb simple_lock(&disklist_slock);
440 1.34 simonb TAILQ_FOREACH(diskp, &disklist, dk_link) {
441 1.46 simonb if (left < tocopy)
442 1.33 simonb break;
443 1.36 enami strncpy(sdisk.dk_name, diskp->dk_name, sizeof(sdisk.dk_name));
444 1.45 mrg sdisk.dk_xfer = diskp->dk_rxfer + diskp->dk_wxfer;
445 1.45 mrg sdisk.dk_rxfer = diskp->dk_rxfer;
446 1.45 mrg sdisk.dk_wxfer = diskp->dk_wxfer;
447 1.33 simonb sdisk.dk_seek = diskp->dk_seek;
448 1.45 mrg sdisk.dk_bytes = diskp->dk_rbytes + diskp->dk_wbytes;
449 1.45 mrg sdisk.dk_rbytes = diskp->dk_rbytes;
450 1.45 mrg sdisk.dk_wbytes = diskp->dk_wbytes;
451 1.33 simonb sdisk.dk_attachtime_sec = diskp->dk_attachtime.tv_sec;
452 1.33 simonb sdisk.dk_attachtime_usec = diskp->dk_attachtime.tv_usec;
453 1.33 simonb sdisk.dk_timestamp_sec = diskp->dk_timestamp.tv_sec;
454 1.33 simonb sdisk.dk_timestamp_usec = diskp->dk_timestamp.tv_usec;
455 1.33 simonb sdisk.dk_time_sec = diskp->dk_time.tv_sec;
456 1.33 simonb sdisk.dk_time_usec = diskp->dk_time.tv_usec;
457 1.33 simonb sdisk.dk_busy = diskp->dk_busy;
458 1.35 simonb
459 1.33 simonb error = copyout(&sdisk, where, min(tocopy, sizeof(sdisk)));
460 1.33 simonb if (error)
461 1.33 simonb break;
462 1.33 simonb where += tocopy;
463 1.54 atatat *oldlenp += tocopy;
464 1.33 simonb left -= tocopy;
465 1.33 simonb }
466 1.33 simonb simple_unlock(&disklist_slock);
467 1.33 simonb return (error);
468 1.39 hannken }
469 1.39 hannken
470 1.39 hannken struct bufq_fcfs {
471 1.39 hannken TAILQ_HEAD(, buf) bq_head; /* actual list of buffers */
472 1.39 hannken };
473 1.39 hannken
474 1.39 hannken struct bufq_disksort {
475 1.39 hannken TAILQ_HEAD(, buf) bq_head; /* actual list of buffers */
476 1.39 hannken };
477 1.39 hannken
478 1.39 hannken #define PRIO_READ_BURST 48
479 1.39 hannken #define PRIO_WRITE_REQ 16
480 1.39 hannken
481 1.39 hannken struct bufq_prio {
482 1.39 hannken TAILQ_HEAD(, buf) bq_read, bq_write; /* actual list of buffers */
483 1.39 hannken struct buf *bq_write_next; /* next request in bq_write */
484 1.41 hannken struct buf *bq_next; /* current request */
485 1.39 hannken int bq_read_burst; /* # of consecutive reads */
486 1.39 hannken };
487 1.39 hannken
488 1.39 hannken
489 1.39 hannken /*
490 1.39 hannken * Check if two buf's are in ascending order.
491 1.39 hannken */
492 1.39 hannken static __inline int
493 1.39 hannken buf_inorder(struct buf *bp, struct buf *bq, int sortby)
494 1.39 hannken {
495 1.39 hannken
496 1.39 hannken if (bp == NULL || bq == NULL)
497 1.43 enami return (bq == NULL);
498 1.39 hannken
499 1.55 yamt if (sortby == BUFQ_SORT_CYLINDER && bp->b_cylinder < bq->b_cylinder)
500 1.55 yamt return 1;
501 1.39 hannken
502 1.55 yamt if (bp->b_rawblkno < bq->b_rawblkno)
503 1.55 yamt return 1;
504 1.39 hannken }
505 1.39 hannken
506 1.39 hannken
507 1.39 hannken /*
508 1.39 hannken * First-come first-served sort for disks.
509 1.39 hannken *
510 1.39 hannken * Requests are appended to the queue without any reordering.
511 1.39 hannken */
512 1.39 hannken static void
513 1.39 hannken bufq_fcfs_put(struct bufq_state *bufq, struct buf *bp)
514 1.39 hannken {
515 1.39 hannken struct bufq_fcfs *fcfs = bufq->bq_private;
516 1.39 hannken
517 1.39 hannken TAILQ_INSERT_TAIL(&fcfs->bq_head, bp, b_actq);
518 1.39 hannken }
519 1.39 hannken
520 1.39 hannken static struct buf *
521 1.39 hannken bufq_fcfs_get(struct bufq_state *bufq, int remove)
522 1.39 hannken {
523 1.39 hannken struct bufq_fcfs *fcfs = bufq->bq_private;
524 1.39 hannken struct buf *bp;
525 1.39 hannken
526 1.39 hannken bp = TAILQ_FIRST(&fcfs->bq_head);
527 1.39 hannken
528 1.39 hannken if (bp != NULL && remove)
529 1.39 hannken TAILQ_REMOVE(&fcfs->bq_head, bp, b_actq);
530 1.39 hannken
531 1.43 enami return (bp);
532 1.39 hannken }
533 1.39 hannken
534 1.39 hannken
535 1.39 hannken /*
536 1.39 hannken * Seek sort for disks.
537 1.39 hannken *
538 1.39 hannken * There are actually two queues, sorted in ascendening order. The first
539 1.39 hannken * queue holds those requests which are positioned after the current block;
540 1.39 hannken * the second holds requests which came in after their position was passed.
541 1.39 hannken * Thus we implement a one-way scan, retracting after reaching the end of
542 1.39 hannken * the drive to the first request on the second queue, at which time it
543 1.39 hannken * becomes the first queue.
544 1.39 hannken *
545 1.39 hannken * A one-way scan is natural because of the way UNIX read-ahead blocks are
546 1.39 hannken * allocated.
547 1.39 hannken */
548 1.39 hannken static void
549 1.39 hannken bufq_disksort_put(struct bufq_state *bufq, struct buf *bp)
550 1.39 hannken {
551 1.39 hannken struct bufq_disksort *disksort = bufq->bq_private;
552 1.39 hannken struct buf *bq, *nbq;
553 1.39 hannken int sortby;
554 1.39 hannken
555 1.39 hannken sortby = bufq->bq_flags & BUFQ_SORT_MASK;
556 1.39 hannken
557 1.39 hannken bq = TAILQ_FIRST(&disksort->bq_head);
558 1.39 hannken
559 1.39 hannken /*
560 1.39 hannken * If the queue is empty it's easy; we just go on the end.
561 1.39 hannken */
562 1.39 hannken if (bq == NULL) {
563 1.39 hannken TAILQ_INSERT_TAIL(&disksort->bq_head, bp, b_actq);
564 1.39 hannken return;
565 1.39 hannken }
566 1.39 hannken
567 1.39 hannken /*
568 1.39 hannken * If we lie before the currently active request, then we
569 1.39 hannken * must locate the second request list and add ourselves to it.
570 1.39 hannken */
571 1.39 hannken if (buf_inorder(bp, bq, sortby)) {
572 1.39 hannken while ((nbq = TAILQ_NEXT(bq, b_actq)) != NULL) {
573 1.39 hannken /*
574 1.39 hannken * Check for an ``inversion'' in the normally ascending
575 1.39 hannken * block numbers, indicating the start of the second
576 1.39 hannken * request list.
577 1.39 hannken */
578 1.39 hannken if (buf_inorder(nbq, bq, sortby)) {
579 1.39 hannken /*
580 1.39 hannken * Search the second request list for the first
581 1.39 hannken * request at a larger block number. We go
582 1.39 hannken * after that; if there is no such request, we
583 1.39 hannken * go at the end.
584 1.39 hannken */
585 1.39 hannken do {
586 1.39 hannken if (buf_inorder(bp, nbq, sortby))
587 1.39 hannken goto insert;
588 1.39 hannken bq = nbq;
589 1.43 enami } while ((nbq =
590 1.43 enami TAILQ_NEXT(bq, b_actq)) != NULL);
591 1.39 hannken goto insert; /* after last */
592 1.39 hannken }
593 1.39 hannken bq = nbq;
594 1.39 hannken }
595 1.39 hannken /*
596 1.39 hannken * No inversions... we will go after the last, and
597 1.39 hannken * be the first request in the second request list.
598 1.39 hannken */
599 1.39 hannken goto insert;
600 1.39 hannken }
601 1.39 hannken /*
602 1.39 hannken * Request is at/after the current request...
603 1.39 hannken * sort in the first request list.
604 1.39 hannken */
605 1.39 hannken while ((nbq = TAILQ_NEXT(bq, b_actq)) != NULL) {
606 1.39 hannken /*
607 1.39 hannken * We want to go after the current request if there is an
608 1.39 hannken * inversion after it (i.e. it is the end of the first
609 1.39 hannken * request list), or if the next request is a larger cylinder
610 1.39 hannken * than our request.
611 1.39 hannken */
612 1.39 hannken if (buf_inorder(nbq, bq, sortby) ||
613 1.39 hannken buf_inorder(bp, nbq, sortby))
614 1.39 hannken goto insert;
615 1.39 hannken bq = nbq;
616 1.39 hannken }
617 1.39 hannken /*
618 1.39 hannken * Neither a second list nor a larger request... we go at the end of
619 1.39 hannken * the first list, which is the same as the end of the whole schebang.
620 1.39 hannken */
621 1.39 hannken insert: TAILQ_INSERT_AFTER(&disksort->bq_head, bq, bp, b_actq);
622 1.39 hannken }
623 1.39 hannken
624 1.39 hannken static struct buf *
625 1.39 hannken bufq_disksort_get(struct bufq_state *bufq, int remove)
626 1.39 hannken {
627 1.39 hannken struct bufq_disksort *disksort = bufq->bq_private;
628 1.39 hannken struct buf *bp;
629 1.39 hannken
630 1.39 hannken bp = TAILQ_FIRST(&disksort->bq_head);
631 1.39 hannken
632 1.39 hannken if (bp != NULL && remove)
633 1.39 hannken TAILQ_REMOVE(&disksort->bq_head, bp, b_actq);
634 1.39 hannken
635 1.43 enami return (bp);
636 1.39 hannken }
637 1.39 hannken
638 1.39 hannken
639 1.39 hannken /*
640 1.39 hannken * Seek sort for disks.
641 1.39 hannken *
642 1.39 hannken * There are two queues. The first queue holds read requests; the second
643 1.39 hannken * holds write requests. The read queue is first-come first-served; the
644 1.39 hannken * write queue is sorted in ascendening block order.
645 1.39 hannken * The read queue is processed first. After PRIO_READ_BURST consecutive
646 1.39 hannken * read requests with non-empty write queue PRIO_WRITE_REQ requests from
647 1.39 hannken * the write queue will be processed.
648 1.39 hannken */
649 1.39 hannken static void
650 1.39 hannken bufq_prio_put(struct bufq_state *bufq, struct buf *bp)
651 1.39 hannken {
652 1.39 hannken struct bufq_prio *prio = bufq->bq_private;
653 1.39 hannken struct buf *bq;
654 1.39 hannken int sortby;
655 1.39 hannken
656 1.39 hannken sortby = bufq->bq_flags & BUFQ_SORT_MASK;
657 1.39 hannken
658 1.39 hannken /*
659 1.39 hannken * If it's a read request append it to the list.
660 1.39 hannken */
661 1.39 hannken if ((bp->b_flags & B_READ) == B_READ) {
662 1.39 hannken TAILQ_INSERT_TAIL(&prio->bq_read, bp, b_actq);
663 1.39 hannken return;
664 1.39 hannken }
665 1.39 hannken
666 1.39 hannken bq = TAILQ_FIRST(&prio->bq_write);
667 1.39 hannken
668 1.39 hannken /*
669 1.39 hannken * If the write list is empty, simply append it to the list.
670 1.39 hannken */
671 1.39 hannken if (bq == NULL) {
672 1.39 hannken TAILQ_INSERT_TAIL(&prio->bq_write, bp, b_actq);
673 1.39 hannken prio->bq_write_next = bp;
674 1.39 hannken return;
675 1.39 hannken }
676 1.39 hannken
677 1.39 hannken /*
678 1.39 hannken * If we lie after the next request, insert after this request.
679 1.39 hannken */
680 1.39 hannken if (buf_inorder(prio->bq_write_next, bp, sortby))
681 1.39 hannken bq = prio->bq_write_next;
682 1.39 hannken
683 1.39 hannken /*
684 1.39 hannken * Search for the first request at a larger block number.
685 1.39 hannken * We go before this request if it exists.
686 1.39 hannken */
687 1.39 hannken while (bq != NULL && buf_inorder(bq, bp, sortby))
688 1.39 hannken bq = TAILQ_NEXT(bq, b_actq);
689 1.39 hannken
690 1.39 hannken if (bq != NULL)
691 1.39 hannken TAILQ_INSERT_BEFORE(bq, bp, b_actq);
692 1.39 hannken else
693 1.39 hannken TAILQ_INSERT_TAIL(&prio->bq_write, bp, b_actq);
694 1.39 hannken }
695 1.39 hannken
696 1.39 hannken static struct buf *
697 1.39 hannken bufq_prio_get(struct bufq_state *bufq, int remove)
698 1.39 hannken {
699 1.39 hannken struct bufq_prio *prio = bufq->bq_private;
700 1.39 hannken struct buf *bp;
701 1.39 hannken
702 1.39 hannken /*
703 1.41 hannken * If no current request, get next from the lists.
704 1.39 hannken */
705 1.41 hannken if (prio->bq_next == NULL) {
706 1.39 hannken /*
707 1.41 hannken * If at least one list is empty, select the other.
708 1.39 hannken */
709 1.41 hannken if (TAILQ_FIRST(&prio->bq_read) == NULL) {
710 1.41 hannken prio->bq_next = prio->bq_write_next;
711 1.41 hannken prio->bq_read_burst = 0;
712 1.41 hannken } else if (prio->bq_write_next == NULL) {
713 1.41 hannken prio->bq_next = TAILQ_FIRST(&prio->bq_read);
714 1.39 hannken prio->bq_read_burst = 0;
715 1.41 hannken } else {
716 1.41 hannken /*
717 1.41 hannken * Both list have requests. Select the read list up
718 1.41 hannken * to PRIO_READ_BURST times, then select the write
719 1.41 hannken * list PRIO_WRITE_REQ times.
720 1.41 hannken */
721 1.41 hannken if (prio->bq_read_burst++ < PRIO_READ_BURST)
722 1.41 hannken prio->bq_next = TAILQ_FIRST(&prio->bq_read);
723 1.41 hannken else if (prio->bq_read_burst <
724 1.43 enami PRIO_READ_BURST + PRIO_WRITE_REQ)
725 1.41 hannken prio->bq_next = prio->bq_write_next;
726 1.41 hannken else {
727 1.41 hannken prio->bq_next = TAILQ_FIRST(&prio->bq_read);
728 1.41 hannken prio->bq_read_burst = 0;
729 1.41 hannken }
730 1.39 hannken }
731 1.39 hannken }
732 1.39 hannken
733 1.41 hannken bp = prio->bq_next;
734 1.41 hannken
735 1.44 enami if (bp != NULL && remove) {
736 1.44 enami if ((bp->b_flags & B_READ) == B_READ)
737 1.44 enami TAILQ_REMOVE(&prio->bq_read, bp, b_actq);
738 1.39 hannken else {
739 1.39 hannken /*
740 1.44 enami * Advance the write pointer before removing
741 1.44 enami * bp since it is actually prio->bq_write_next.
742 1.39 hannken */
743 1.39 hannken prio->bq_write_next =
744 1.39 hannken TAILQ_NEXT(prio->bq_write_next, b_actq);
745 1.44 enami TAILQ_REMOVE(&prio->bq_write, bp, b_actq);
746 1.39 hannken if (prio->bq_write_next == NULL)
747 1.39 hannken prio->bq_write_next =
748 1.39 hannken TAILQ_FIRST(&prio->bq_write);
749 1.39 hannken }
750 1.41 hannken
751 1.41 hannken prio->bq_next = NULL;
752 1.39 hannken }
753 1.39 hannken
754 1.43 enami return (bp);
755 1.39 hannken }
756 1.39 hannken
757 1.40 hannken /*
758 1.40 hannken * Create a device buffer queue.
759 1.40 hannken */
760 1.39 hannken void
761 1.40 hannken bufq_alloc(struct bufq_state *bufq, int flags)
762 1.39 hannken {
763 1.39 hannken struct bufq_fcfs *fcfs;
764 1.39 hannken struct bufq_disksort *disksort;
765 1.39 hannken struct bufq_prio *prio;
766 1.39 hannken
767 1.39 hannken bufq->bq_flags = flags;
768 1.39 hannken
769 1.39 hannken switch (flags & BUFQ_SORT_MASK) {
770 1.39 hannken case BUFQ_SORT_RAWBLOCK:
771 1.39 hannken case BUFQ_SORT_CYLINDER:
772 1.39 hannken break;
773 1.39 hannken case 0:
774 1.39 hannken if ((flags & BUFQ_METHOD_MASK) == BUFQ_FCFS)
775 1.39 hannken break;
776 1.39 hannken /* FALLTHROUGH */
777 1.39 hannken default:
778 1.40 hannken panic("bufq_alloc: sort out of range");
779 1.39 hannken }
780 1.39 hannken
781 1.39 hannken switch (flags & BUFQ_METHOD_MASK) {
782 1.39 hannken case BUFQ_FCFS:
783 1.39 hannken bufq->bq_get = bufq_fcfs_get;
784 1.39 hannken bufq->bq_put = bufq_fcfs_put;
785 1.40 hannken MALLOC(bufq->bq_private, struct bufq_fcfs *,
786 1.40 hannken sizeof(struct bufq_fcfs), M_DEVBUF, M_ZERO);
787 1.39 hannken fcfs = (struct bufq_fcfs *)bufq->bq_private;
788 1.39 hannken TAILQ_INIT(&fcfs->bq_head);
789 1.39 hannken break;
790 1.39 hannken case BUFQ_DISKSORT:
791 1.39 hannken bufq->bq_get = bufq_disksort_get;
792 1.39 hannken bufq->bq_put = bufq_disksort_put;
793 1.40 hannken MALLOC(bufq->bq_private, struct bufq_disksort *,
794 1.40 hannken sizeof(struct bufq_disksort), M_DEVBUF, M_ZERO);
795 1.39 hannken disksort = (struct bufq_disksort *)bufq->bq_private;
796 1.39 hannken TAILQ_INIT(&disksort->bq_head);
797 1.39 hannken break;
798 1.39 hannken case BUFQ_READ_PRIO:
799 1.39 hannken bufq->bq_get = bufq_prio_get;
800 1.39 hannken bufq->bq_put = bufq_prio_put;
801 1.40 hannken MALLOC(bufq->bq_private, struct bufq_prio *,
802 1.40 hannken sizeof(struct bufq_prio), M_DEVBUF, M_ZERO);
803 1.39 hannken prio = (struct bufq_prio *)bufq->bq_private;
804 1.39 hannken TAILQ_INIT(&prio->bq_read);
805 1.39 hannken TAILQ_INIT(&prio->bq_write);
806 1.39 hannken break;
807 1.39 hannken default:
808 1.40 hannken panic("bufq_alloc: method out of range");
809 1.39 hannken }
810 1.40 hannken }
811 1.40 hannken
812 1.40 hannken /*
813 1.40 hannken * Destroy a device buffer queue.
814 1.40 hannken */
815 1.40 hannken void
816 1.40 hannken bufq_free(struct bufq_state *bufq)
817 1.40 hannken {
818 1.43 enami
819 1.40 hannken KASSERT(bufq->bq_private != NULL);
820 1.40 hannken KASSERT(BUFQ_PEEK(bufq) == NULL);
821 1.40 hannken
822 1.40 hannken FREE(bufq->bq_private, M_DEVBUF);
823 1.40 hannken bufq->bq_get = NULL;
824 1.40 hannken bufq->bq_put = NULL;
825 1.50 fvdl }
826 1.50 fvdl
827 1.50 fvdl /*
828 1.50 fvdl * Bounds checking against the media size, used for the raw partition.
829 1.50 fvdl * The sector size passed in should currently always be DEV_BSIZE,
830 1.50 fvdl * and the media size the size of the device in DEV_BSIZE sectors.
831 1.50 fvdl */
832 1.50 fvdl int
833 1.50 fvdl bounds_check_with_mediasize(struct buf *bp, int secsize, u_int64_t mediasize)
834 1.50 fvdl {
835 1.50 fvdl int sz;
836 1.50 fvdl
837 1.50 fvdl sz = howmany(bp->b_bcount, secsize);
838 1.50 fvdl
839 1.50 fvdl if (bp->b_blkno + sz > mediasize) {
840 1.50 fvdl sz = mediasize - bp->b_blkno;
841 1.50 fvdl if (sz == 0) {
842 1.50 fvdl /* If exactly at end of disk, return EOF. */
843 1.50 fvdl bp->b_resid = bp->b_bcount;
844 1.50 fvdl goto done;
845 1.50 fvdl }
846 1.50 fvdl if (sz < 0) {
847 1.50 fvdl /* If past end of disk, return EINVAL. */
848 1.50 fvdl bp->b_error = EINVAL;
849 1.50 fvdl goto bad;
850 1.50 fvdl }
851 1.50 fvdl /* Otherwise, truncate request. */
852 1.50 fvdl bp->b_bcount = sz << DEV_BSHIFT;
853 1.50 fvdl }
854 1.50 fvdl
855 1.50 fvdl return 1;
856 1.50 fvdl
857 1.50 fvdl bad:
858 1.50 fvdl bp->b_flags |= B_ERROR;
859 1.50 fvdl done:
860 1.50 fvdl return 0;
861 1.11 mycroft }
862