rcache.c revision 1.23.6.1 1 1.23.6.1 yamt /* $NetBSD: rcache.c,v 1.23.6.1 2014/05/22 11:37:27 yamt Exp $ */
2 1.1 bouyer
3 1.1 bouyer /*-
4 1.1 bouyer * Copyright (c) 1999 The NetBSD Foundation, Inc.
5 1.1 bouyer * All rights reserved.
6 1.1 bouyer *
7 1.1 bouyer * This code is derived from software contributed to The NetBSD Foundation
8 1.10 lukem * by Martin J. Laubach <mjl (at) emsi.priv.at> and
9 1.1 bouyer * Manuel Bouyer <Manuel.Bouyer (at) lip6.fr>.
10 1.1 bouyer *
11 1.1 bouyer * Redistribution and use in source and binary forms, with or without
12 1.1 bouyer * modification, are permitted provided that the following conditions
13 1.1 bouyer * are met:
14 1.1 bouyer * 1. Redistributions of source code must retain the above copyright
15 1.1 bouyer * notice, this list of conditions and the following disclaimer.
16 1.1 bouyer * 2. Redistributions in binary form must reproduce the above copyright
17 1.1 bouyer * notice, this list of conditions and the following disclaimer in the
18 1.1 bouyer * documentation and/or other materials provided with the distribution.
19 1.1 bouyer *
20 1.1 bouyer * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
21 1.1 bouyer * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
22 1.1 bouyer * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
23 1.10 lukem * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
24 1.1 bouyer * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
25 1.1 bouyer * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
26 1.1 bouyer * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
27 1.1 bouyer * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
28 1.1 bouyer * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
29 1.1 bouyer * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
30 1.1 bouyer * POSSIBILITY OF SUCH DAMAGE.
31 1.1 bouyer */
32 1.11 lukem
33 1.11 lukem #include <sys/cdefs.h>
34 1.11 lukem #ifndef lint
35 1.23.6.1 yamt __RCSID("$NetBSD: rcache.c,v 1.23.6.1 2014/05/22 11:37:27 yamt Exp $");
36 1.11 lukem #endif /* not lint */
37 1.11 lukem
38 1.1 bouyer #include <sys/types.h>
39 1.1 bouyer #include <sys/uio.h>
40 1.1 bouyer #include <sys/mman.h>
41 1.1 bouyer #include <sys/param.h>
42 1.1 bouyer #include <sys/sysctl.h>
43 1.1 bouyer
44 1.1 bouyer #include <stdio.h>
45 1.1 bouyer #include <stdlib.h>
46 1.1 bouyer #include <unistd.h>
47 1.1 bouyer #include <fcntl.h>
48 1.1 bouyer #include <errno.h>
49 1.1 bouyer #include <string.h>
50 1.1 bouyer
51 1.1 bouyer #include "dump.h"
52 1.1 bouyer
53 1.1 bouyer /*-----------------------------------------------------------------------*/
54 1.1 bouyer #define MAXCACHEBUFS 512 /* max 512 buffers */
55 1.1 bouyer #define MAXMEMPART 6 /* max 15% of the user mem */
56 1.1 bouyer
57 1.1 bouyer /*-----------------------------------------------------------------------*/
58 1.13 hannken union cdesc {
59 1.13 hannken volatile size_t cd_count;
60 1.13 hannken struct {
61 1.13 hannken volatile daddr_t blkstart;
62 1.14 enami volatile daddr_t blkend; /* start + nblksread */
63 1.13 hannken volatile daddr_t blocksRead;
64 1.13 hannken volatile size_t time;
65 1.1 bouyer #ifdef DIAGNOSTICS
66 1.13 hannken volatile pid_t owner;
67 1.1 bouyer #endif
68 1.13 hannken } desc;
69 1.13 hannken #define cd_blkstart desc.blkstart
70 1.13 hannken #define cd_blkend desc.blkend
71 1.13 hannken #define cd_blocksRead desc.blocksRead
72 1.13 hannken #define cd_time desc.time
73 1.13 hannken #define cd_owner desc.owner
74 1.1 bouyer };
75 1.1 bouyer
76 1.6 lukem static int findlru(void);
77 1.1 bouyer
78 1.1 bouyer static void *shareBuffer = NULL;
79 1.13 hannken static union cdesc *cheader;
80 1.13 hannken static union cdesc *cdesc;
81 1.1 bouyer static char *cdata;
82 1.1 bouyer static int cachebufs;
83 1.1 bouyer static int nblksread;
84 1.1 bouyer
85 1.1 bouyer #ifdef STATS
86 1.1 bouyer static int nreads;
87 1.1 bouyer static int nphysread;
88 1.1 bouyer static int64_t readsize;
89 1.1 bouyer static int64_t physreadsize;
90 1.1 bouyer #endif
91 1.1 bouyer
92 1.16 enami #define CSIZE (nblksread << dev_bshift) /* cache buf size */
93 1.16 enami #define CDATA(desc) (cdata + ((desc) - cdesc) * CSIZE)
94 1.1 bouyer
95 1.10 lukem void
96 1.6 lukem initcache(int cachesize, int readblksize)
97 1.1 bouyer {
98 1.1 bouyer size_t len;
99 1.14 enami size_t sharedSize;
100 1.1 bouyer
101 1.15 enami /* Convert read block size in terms of filesystem block size */
102 1.14 enami nblksread = howmany(readblksize, ufsib->ufs_bsize);
103 1.15 enami
104 1.15 enami /* Then, convert it in terms of device block size */
105 1.15 enami nblksread <<= ufsib->ufs_bshift - dev_bshift;
106 1.15 enami
107 1.14 enami if (cachesize == -1) { /* Compute from memory available */
108 1.23 spz uint64_t usermem, cachetmp;
109 1.21 simonb int mib[2] = { CTL_HW, HW_USERMEM64 };
110 1.10 lukem
111 1.1 bouyer len = sizeof(usermem);
112 1.1 bouyer if (sysctl(mib, 2, &usermem, &len, NULL, 0) < 0) {
113 1.14 enami msg("sysctl(hw.usermem) failed: %s\n",
114 1.14 enami strerror(errno));
115 1.1 bouyer return;
116 1.1 bouyer }
117 1.23 spz cachetmp = (usermem / MAXMEMPART) / CSIZE;
118 1.23 spz /* for those with TB of RAM */
119 1.23 spz cachebufs = (cachetmp > INT_MAX) ? INT_MAX : cachetmp;
120 1.1 bouyer } else { /* User specified */
121 1.1 bouyer cachebufs = cachesize;
122 1.1 bouyer }
123 1.10 lukem
124 1.14 enami if (cachebufs) { /* Don't allocate if zero --> no caching */
125 1.1 bouyer if (cachebufs > MAXCACHEBUFS)
126 1.1 bouyer cachebufs = MAXCACHEBUFS;
127 1.1 bouyer
128 1.13 hannken sharedSize = sizeof(union cdesc) +
129 1.13 hannken sizeof(union cdesc) * cachebufs +
130 1.16 enami cachebufs * CSIZE;
131 1.10 lukem #ifdef STATS
132 1.1 bouyer fprintf(stderr, "Using %d buffers (%d bytes)\n", cachebufs,
133 1.1 bouyer sharedSize);
134 1.1 bouyer #endif
135 1.1 bouyer shareBuffer = mmap(NULL, sharedSize, PROT_READ | PROT_WRITE,
136 1.1 bouyer MAP_ANON | MAP_SHARED, -1, 0);
137 1.14 enami if (shareBuffer == MAP_FAILED) {
138 1.1 bouyer msg("can't mmap shared memory for buffer: %s\n",
139 1.1 bouyer strerror(errno));
140 1.1 bouyer return;
141 1.1 bouyer }
142 1.1 bouyer cheader = shareBuffer;
143 1.13 hannken cdesc = (union cdesc *) (((char *) shareBuffer) +
144 1.13 hannken sizeof(union cdesc));
145 1.13 hannken cdata = ((char *) shareBuffer) + sizeof(union cdesc) +
146 1.13 hannken sizeof(union cdesc) * cachebufs;
147 1.1 bouyer
148 1.1 bouyer memset(shareBuffer, '\0', sharedSize);
149 1.1 bouyer }
150 1.1 bouyer }
151 1.1 bouyer
152 1.6 lukem /*
153 1.6 lukem * Find the cache buffer descriptor that shows the minimal access time
154 1.6 lukem */
155 1.10 lukem static int
156 1.6 lukem findlru(void)
157 1.1 bouyer {
158 1.8 lukem int i;
159 1.13 hannken size_t minTime = cdesc[0].cd_time;
160 1.8 lukem int minIdx = 0;
161 1.1 bouyer
162 1.1 bouyer for (i = 0; i < cachebufs; i++) {
163 1.13 hannken if (cdesc[i].cd_time < minTime) {
164 1.1 bouyer minIdx = i;
165 1.13 hannken minTime = cdesc[i].cd_time;
166 1.1 bouyer }
167 1.1 bouyer }
168 1.1 bouyer
169 1.1 bouyer return minIdx;
170 1.1 bouyer }
171 1.6 lukem
172 1.1 bouyer /*
173 1.1 bouyer * Read data directly from disk, with smart error handling.
174 1.1 bouyer * Try to recover from hard errors by reading in sector sized pieces.
175 1.1 bouyer * Error recovery is attempted at most BREADEMAX times before seeking
176 1.1 bouyer * consent from the operator to continue.
177 1.1 bouyer */
178 1.1 bouyer
179 1.1 bouyer static int breaderrors = 0;
180 1.1 bouyer #define BREADEMAX 32
181 1.1 bouyer
182 1.10 lukem void
183 1.6 lukem rawread(daddr_t blkno, char *buf, int size)
184 1.1 bouyer {
185 1.1 bouyer int cnt, i;
186 1.14 enami
187 1.1 bouyer #ifdef STATS
188 1.1 bouyer nphysread++;
189 1.1 bouyer physreadsize += size;
190 1.1 bouyer #endif
191 1.1 bouyer
192 1.14 enami loop:
193 1.18 enami if (lseek(diskfd, ((off_t) blkno << dev_bshift), SEEK_SET) == -1) {
194 1.1 bouyer msg("rawread: lseek fails\n");
195 1.1 bouyer goto err;
196 1.1 bouyer }
197 1.14 enami if ((cnt = read(diskfd, buf, size)) == size)
198 1.1 bouyer return;
199 1.16 enami if (blkno + (size >> dev_bshift) > ufsib->ufs_dsize) {
200 1.7 lukem /*
201 1.7 lukem * Trying to read the final fragment.
202 1.7 lukem *
203 1.7 lukem * NB - dump only works in TP_BSIZE blocks, hence
204 1.7 lukem * rounds `dev_bsize' fragments up to TP_BSIZE pieces.
205 1.7 lukem * It should be smarter about not actually trying to
206 1.7 lukem * read more than it can get, but for the time being
207 1.7 lukem * we punt and scale back the read only when it gets
208 1.7 lukem * us into trouble. (mkm 9/25/83)
209 1.7 lukem */
210 1.7 lukem size -= dev_bsize;
211 1.7 lukem goto loop;
212 1.7 lukem }
213 1.1 bouyer if (cnt == -1)
214 1.12 fvdl msg("read error from %s: %s: [block %lld]: count=%d\n",
215 1.14 enami disk, strerror(errno), (long long)blkno, size);
216 1.1 bouyer else
217 1.14 enami msg("short read error from %s: [block %lld]: "
218 1.14 enami "count=%d, got=%d\n",
219 1.14 enami disk, (long long)blkno, size, cnt);
220 1.1 bouyer err:
221 1.1 bouyer if (++breaderrors > BREADEMAX) {
222 1.5 briggs msg("More than %d block read errors from %s\n",
223 1.14 enami BREADEMAX, disk);
224 1.1 bouyer broadcast("DUMP IS AILING!\n");
225 1.1 bouyer msg("This is an unrecoverable error.\n");
226 1.14 enami if (!query("Do you want to attempt to continue?")) {
227 1.1 bouyer dumpabort(0);
228 1.1 bouyer /*NOTREACHED*/
229 1.1 bouyer } else
230 1.1 bouyer breaderrors = 0;
231 1.1 bouyer }
232 1.1 bouyer /*
233 1.1 bouyer * Zero buffer, then try to read each sector of buffer separately.
234 1.1 bouyer */
235 1.1 bouyer memset(buf, 0, size);
236 1.1 bouyer for (i = 0; i < size; i += dev_bsize, buf += dev_bsize, blkno++) {
237 1.14 enami if (lseek(diskfd, ((off_t)blkno << dev_bshift),
238 1.18 enami SEEK_SET) == -1) {
239 1.1 bouyer msg("rawread: lseek2 fails: %s!\n",
240 1.1 bouyer strerror(errno));
241 1.1 bouyer continue;
242 1.1 bouyer }
243 1.1 bouyer if ((cnt = read(diskfd, buf, (int)dev_bsize)) == dev_bsize)
244 1.1 bouyer continue;
245 1.1 bouyer if (cnt == -1) {
246 1.14 enami msg("read error from %s: %s: [sector %lld]: "
247 1.19 enami "count=%ld\n", disk, strerror(errno),
248 1.19 enami (long long)blkno, dev_bsize);
249 1.1 bouyer continue;
250 1.1 bouyer }
251 1.14 enami msg("short read error from %s: [sector %lld]: "
252 1.14 enami "count=%ld, got=%d\n",
253 1.12 fvdl disk, (long long)blkno, dev_bsize, cnt);
254 1.1 bouyer }
255 1.1 bouyer }
256 1.1 bouyer
257 1.10 lukem void
258 1.6 lukem bread(daddr_t blkno, char *buf, int size)
259 1.1 bouyer {
260 1.16 enami int osize = size, idx;
261 1.1 bouyer daddr_t oblkno = blkno;
262 1.1 bouyer char *obuf = buf;
263 1.14 enami daddr_t numBlocks = howmany(size, dev_bsize);
264 1.1 bouyer
265 1.1 bouyer #ifdef STATS
266 1.1 bouyer nreads++;
267 1.1 bouyer readsize += size;
268 1.1 bouyer #endif
269 1.1 bouyer
270 1.1 bouyer if (!shareBuffer) {
271 1.1 bouyer rawread(blkno, buf, size);
272 1.1 bouyer return;
273 1.1 bouyer }
274 1.1 bouyer
275 1.1 bouyer if (flock(diskfd, LOCK_EX)) {
276 1.1 bouyer msg("flock(LOCK_EX) failed: %s\n",
277 1.1 bouyer strerror(errno));
278 1.1 bouyer rawread(blkno, buf, size);
279 1.1 bouyer return;
280 1.1 bouyer }
281 1.1 bouyer
282 1.1 bouyer retry:
283 1.16 enami idx = 0;
284 1.16 enami while (size > 0) {
285 1.8 lukem int i;
286 1.10 lukem
287 1.1 bouyer for (i = 0; i < cachebufs; i++) {
288 1.16 enami union cdesc *curr = &cdesc[(i + idx) % cachebufs];
289 1.1 bouyer
290 1.1 bouyer #ifdef DIAGNOSTICS
291 1.13 hannken if (curr->cd_owner) {
292 1.1 bouyer fprintf(stderr, "Owner is set (%d, me=%d), can"
293 1.13 hannken "not happen.\n", curr->cd_owner, getpid());
294 1.1 bouyer }
295 1.1 bouyer #endif
296 1.1 bouyer
297 1.13 hannken if (curr->cd_blkend == 0)
298 1.1 bouyer continue;
299 1.1 bouyer /*
300 1.1 bouyer * If we find a bit of the read in the buffers,
301 1.1 bouyer * now compute how many blocks we can copy,
302 1.1 bouyer * copy them out, adjust blkno, buf and size,
303 1.1 bouyer * and restart
304 1.1 bouyer */
305 1.13 hannken if (curr->cd_blkstart <= blkno &&
306 1.13 hannken blkno < curr->cd_blkend) {
307 1.1 bouyer /* Number of data blocks to be copied */
308 1.6 lukem int toCopy = MIN(size,
309 1.16 enami (curr->cd_blkend - blkno) << dev_bshift);
310 1.1 bouyer #ifdef DIAGNOSTICS
311 1.16 enami if (toCopy <= 0 || toCopy > CSIZE) {
312 1.1 bouyer fprintf(stderr, "toCopy %d !\n",
313 1.1 bouyer toCopy);
314 1.1 bouyer dumpabort(0);
315 1.1 bouyer }
316 1.16 enami if (CDATA(curr) +
317 1.16 enami ((blkno - curr->cd_blkstart) <<
318 1.17 enami dev_bshift) < CDATA(curr) ||
319 1.16 enami CDATA(curr) +
320 1.16 enami ((blkno - curr->cd_blkstart) <<
321 1.17 enami dev_bshift) > CDATA(curr) + CSIZE) {
322 1.1 bouyer fprintf(stderr, "%p < %p !!!\n",
323 1.16 enami CDATA(curr) + ((blkno -
324 1.16 enami curr->cd_blkstart) << dev_bshift),
325 1.16 enami CDATA(curr));
326 1.16 enami fprintf(stderr,
327 1.16 enami "cdesc[i].cd_blkstart %lld "
328 1.16 enami "blkno %lld dev_bsize %ld\n",
329 1.16 enami (long long)curr->cd_blkstart,
330 1.16 enami (long long)blkno,
331 1.16 enami dev_bsize);
332 1.1 bouyer dumpabort(0);
333 1.1 bouyer }
334 1.1 bouyer #endif
335 1.16 enami memcpy(buf, CDATA(curr) +
336 1.17 enami ((blkno - curr->cd_blkstart) <<
337 1.17 enami dev_bshift),
338 1.1 bouyer toCopy);
339 1.1 bouyer
340 1.1 bouyer buf += toCopy;
341 1.1 bouyer size -= toCopy;
342 1.14 enami blkno += howmany(toCopy, dev_bsize);
343 1.14 enami numBlocks -= howmany(toCopy, dev_bsize);
344 1.1 bouyer
345 1.13 hannken curr->cd_time = cheader->cd_count++;
346 1.1 bouyer
347 1.1 bouyer /*
348 1.1 bouyer * If all data of a cache block have been
349 1.1 bouyer * read, chances are good no more reads
350 1.1 bouyer * will occur, so expire the cache immediately
351 1.1 bouyer */
352 1.1 bouyer
353 1.13 hannken curr->cd_blocksRead +=
354 1.14 enami howmany(toCopy, dev_bsize);
355 1.13 hannken if (curr->cd_blocksRead >= nblksread)
356 1.13 hannken curr->cd_time = 0;
357 1.1 bouyer
358 1.1 bouyer goto retry;
359 1.1 bouyer }
360 1.1 bouyer }
361 1.1 bouyer
362 1.1 bouyer /* No more to do? */
363 1.1 bouyer if (size == 0)
364 1.1 bouyer break;
365 1.9 lukem
366 1.1 bouyer /*
367 1.1 bouyer * This does actually not happen if fs blocks are not greater
368 1.1 bouyer * than nblksread.
369 1.1 bouyer */
370 1.9 lukem if (numBlocks > nblksread || blkno >= ufsib->ufs_dsize) {
371 1.1 bouyer rawread(oblkno, obuf, osize);
372 1.1 bouyer break;
373 1.1 bouyer } else {
374 1.8 lukem ssize_t rsize;
375 1.8 lukem daddr_t blockBlkNo;
376 1.1 bouyer
377 1.1 bouyer blockBlkNo = (blkno / nblksread) * nblksread;
378 1.1 bouyer idx = findlru();
379 1.6 lukem rsize = MIN(nblksread,
380 1.16 enami ufsib->ufs_dsize - blockBlkNo) << dev_bshift;
381 1.3 perseant
382 1.1 bouyer #ifdef DIAGNOSTICS
383 1.13 hannken if (cdesc[idx].cd_owner)
384 1.1 bouyer fprintf(stderr, "Owner is set (%d, me=%d), can"
385 1.13 hannken "not happen(2).\n", cdesc[idx].cd_owner,
386 1.1 bouyer getpid());
387 1.13 hannken cdesc[idx].cd_owner = getpid();
388 1.1 bouyer #endif
389 1.13 hannken cdesc[idx].cd_time = cheader->cd_count++;
390 1.13 hannken cdesc[idx].cd_blkstart = blockBlkNo;
391 1.16 enami cdesc[idx].cd_blkend = 0;
392 1.13 hannken cdesc[idx].cd_blocksRead = 0;
393 1.1 bouyer
394 1.14 enami if (lseek(diskfd, ((off_t) blockBlkNo << dev_bshift),
395 1.18 enami SEEK_SET) == -1) {
396 1.1 bouyer msg("readBlocks: lseek fails: %s\n",
397 1.1 bouyer strerror(errno));
398 1.1 bouyer rsize = -1;
399 1.1 bouyer } else {
400 1.16 enami rsize = read(diskfd,
401 1.16 enami CDATA(&cdesc[idx]), rsize);
402 1.1 bouyer if (rsize < 0) {
403 1.1 bouyer msg("readBlocks: read fails: %s\n",
404 1.1 bouyer strerror(errno));
405 1.1 bouyer }
406 1.1 bouyer }
407 1.1 bouyer
408 1.1 bouyer /* On errors, panic, punt, try to read without
409 1.1 bouyer * cache and let raw read routine do the rest.
410 1.1 bouyer */
411 1.1 bouyer
412 1.1 bouyer if (rsize <= 0) {
413 1.1 bouyer rawread(oblkno, obuf, osize);
414 1.1 bouyer #ifdef DIAGNOSTICS
415 1.13 hannken if (cdesc[idx].cd_owner != getpid())
416 1.1 bouyer fprintf(stderr, "Owner changed from "
417 1.1 bouyer "%d to %d, can't happen\n",
418 1.13 hannken getpid(), cdesc[idx].cd_owner);
419 1.13 hannken cdesc[idx].cd_owner = 0;
420 1.1 bouyer #endif
421 1.1 bouyer break;
422 1.1 bouyer }
423 1.1 bouyer
424 1.1 bouyer /* On short read, just note the fact and go on */
425 1.13 hannken cdesc[idx].cd_blkend = blockBlkNo + rsize / dev_bsize;
426 1.1 bouyer
427 1.1 bouyer #ifdef STATS
428 1.1 bouyer nphysread++;
429 1.1 bouyer physreadsize += rsize;
430 1.1 bouyer #endif
431 1.1 bouyer #ifdef DIAGNOSTICS
432 1.13 hannken if (cdesc[idx].cd_owner != getpid())
433 1.1 bouyer fprintf(stderr, "Owner changed from "
434 1.1 bouyer "%d to %d, can't happen\n",
435 1.13 hannken getpid(), cdesc[idx].cd_owner);
436 1.13 hannken cdesc[idx].cd_owner = 0;
437 1.1 bouyer #endif
438 1.1 bouyer /*
439 1.1 bouyer * We swapped some of data in, let the loop fetch
440 1.1 bouyer * them from cache
441 1.1 bouyer */
442 1.1 bouyer }
443 1.1 bouyer }
444 1.10 lukem
445 1.1 bouyer if (flock(diskfd, LOCK_UN))
446 1.1 bouyer msg("flock(LOCK_UN) failed: %s\n",
447 1.1 bouyer strerror(errno));
448 1.1 bouyer }
449 1.1 bouyer
450 1.1 bouyer void
451 1.6 lukem printcachestats(void)
452 1.1 bouyer {
453 1.14 enami
454 1.1 bouyer #ifdef STATS
455 1.1 bouyer fprintf(stderr, "Pid %d: %d reads (%u bytes) "
456 1.1 bouyer "%d physical reads (%u bytes) %d%% hits, %d%% overhead\n",
457 1.1 bouyer getpid(), nreads, (u_int) readsize, nphysread,
458 1.1 bouyer (u_int) physreadsize, (nreads - nphysread) * 100 / nreads,
459 1.1 bouyer (int) (((physreadsize - readsize) * 100) / readsize));
460 1.1 bouyer #endif
461 1.1 bouyer }
462