rf_netbsdkintf.c revision 1.29.8.2 1 1.29.8.2 wrstuden /* $NetBSD: rf_netbsdkintf.c,v 1.29.8.2 1999/12/22 00:13:24 wrstuden Exp $ */
2 1.1 oster /*-
3 1.1 oster * Copyright (c) 1996, 1997, 1998 The NetBSD Foundation, Inc.
4 1.1 oster * All rights reserved.
5 1.1 oster *
6 1.1 oster * This code is derived from software contributed to The NetBSD Foundation
7 1.1 oster * by Greg Oster; Jason R. Thorpe.
8 1.1 oster *
9 1.1 oster * Redistribution and use in source and binary forms, with or without
10 1.1 oster * modification, are permitted provided that the following conditions
11 1.1 oster * are met:
12 1.1 oster * 1. Redistributions of source code must retain the above copyright
13 1.1 oster * notice, this list of conditions and the following disclaimer.
14 1.1 oster * 2. Redistributions in binary form must reproduce the above copyright
15 1.1 oster * notice, this list of conditions and the following disclaimer in the
16 1.1 oster * documentation and/or other materials provided with the distribution.
17 1.1 oster * 3. All advertising materials mentioning features or use of this software
18 1.1 oster * must display the following acknowledgement:
19 1.1 oster * This product includes software developed by the NetBSD
20 1.1 oster * Foundation, Inc. and its contributors.
21 1.1 oster * 4. Neither the name of The NetBSD Foundation nor the names of its
22 1.1 oster * contributors may be used to endorse or promote products derived
23 1.1 oster * from this software without specific prior written permission.
24 1.1 oster *
25 1.1 oster * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
26 1.1 oster * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
27 1.1 oster * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
28 1.1 oster * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
29 1.1 oster * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
30 1.1 oster * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
31 1.1 oster * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
32 1.1 oster * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
33 1.1 oster * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
34 1.1 oster * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
35 1.1 oster * POSSIBILITY OF SUCH DAMAGE.
36 1.1 oster */
37 1.1 oster
38 1.1 oster /*
39 1.1 oster * Copyright (c) 1988 University of Utah.
40 1.1 oster * Copyright (c) 1990, 1993
41 1.1 oster * The Regents of the University of California. All rights reserved.
42 1.1 oster *
43 1.1 oster * This code is derived from software contributed to Berkeley by
44 1.1 oster * the Systems Programming Group of the University of Utah Computer
45 1.1 oster * Science Department.
46 1.1 oster *
47 1.1 oster * Redistribution and use in source and binary forms, with or without
48 1.1 oster * modification, are permitted provided that the following conditions
49 1.1 oster * are met:
50 1.1 oster * 1. Redistributions of source code must retain the above copyright
51 1.1 oster * notice, this list of conditions and the following disclaimer.
52 1.1 oster * 2. Redistributions in binary form must reproduce the above copyright
53 1.1 oster * notice, this list of conditions and the following disclaimer in the
54 1.1 oster * documentation and/or other materials provided with the distribution.
55 1.1 oster * 3. All advertising materials mentioning features or use of this software
56 1.1 oster * must display the following acknowledgement:
57 1.1 oster * This product includes software developed by the University of
58 1.1 oster * California, Berkeley and its contributors.
59 1.1 oster * 4. Neither the name of the University nor the names of its contributors
60 1.1 oster * may be used to endorse or promote products derived from this software
61 1.1 oster * without specific prior written permission.
62 1.1 oster *
63 1.1 oster * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
64 1.1 oster * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
65 1.1 oster * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
66 1.1 oster * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
67 1.1 oster * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
68 1.1 oster * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
69 1.1 oster * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
70 1.1 oster * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
71 1.1 oster * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
72 1.1 oster * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
73 1.1 oster * SUCH DAMAGE.
74 1.1 oster *
75 1.1 oster * from: Utah $Hdr: cd.c 1.6 90/11/28$
76 1.1 oster *
77 1.1 oster * @(#)cd.c 8.2 (Berkeley) 11/16/93
78 1.1 oster */
79 1.1 oster
80 1.1 oster
81 1.1 oster
82 1.1 oster
83 1.1 oster /*
84 1.1 oster * Copyright (c) 1995 Carnegie-Mellon University.
85 1.1 oster * All rights reserved.
86 1.1 oster *
87 1.1 oster * Authors: Mark Holland, Jim Zelenka
88 1.1 oster *
89 1.1 oster * Permission to use, copy, modify and distribute this software and
90 1.1 oster * its documentation is hereby granted, provided that both the copyright
91 1.1 oster * notice and this permission notice appear in all copies of the
92 1.1 oster * software, derivative works or modified versions, and any portions
93 1.1 oster * thereof, and that both notices appear in supporting documentation.
94 1.1 oster *
95 1.1 oster * CARNEGIE MELLON ALLOWS FREE USE OF THIS SOFTWARE IN ITS "AS IS"
96 1.1 oster * CONDITION. CARNEGIE MELLON DISCLAIMS ANY LIABILITY OF ANY KIND
97 1.1 oster * FOR ANY DAMAGES WHATSOEVER RESULTING FROM THE USE OF THIS SOFTWARE.
98 1.1 oster *
99 1.1 oster * Carnegie Mellon requests users of this software to return to
100 1.1 oster *
101 1.1 oster * Software Distribution Coordinator or Software.Distribution (at) CS.CMU.EDU
102 1.1 oster * School of Computer Science
103 1.1 oster * Carnegie Mellon University
104 1.1 oster * Pittsburgh PA 15213-3890
105 1.1 oster *
106 1.1 oster * any improvements or extensions that they make and grant Carnegie the
107 1.1 oster * rights to redistribute these changes.
108 1.1 oster */
109 1.1 oster
110 1.1 oster /***********************************************************
111 1.1 oster *
112 1.1 oster * rf_kintf.c -- the kernel interface routines for RAIDframe
113 1.1 oster *
114 1.1 oster ***********************************************************/
115 1.1 oster
116 1.1 oster #include <sys/errno.h>
117 1.1 oster #include <sys/param.h>
118 1.1 oster #include <sys/pool.h>
119 1.1 oster #include <sys/queue.h>
120 1.1 oster #include <sys/disk.h>
121 1.1 oster #include <sys/device.h>
122 1.1 oster #include <sys/stat.h>
123 1.1 oster #include <sys/ioctl.h>
124 1.1 oster #include <sys/fcntl.h>
125 1.1 oster #include <sys/systm.h>
126 1.1 oster #include <sys/namei.h>
127 1.1 oster #include <sys/vnode.h>
128 1.1 oster #include <sys/param.h>
129 1.1 oster #include <sys/types.h>
130 1.1 oster #include <machine/types.h>
131 1.1 oster #include <sys/disklabel.h>
132 1.1 oster #include <sys/conf.h>
133 1.1 oster #include <sys/lock.h>
134 1.1 oster #include <sys/buf.h>
135 1.1 oster #include <sys/user.h>
136 1.8 oster
137 1.8 oster #include "raid.h"
138 1.1 oster #include "rf_raid.h"
139 1.1 oster #include "rf_raidframe.h"
140 1.1 oster #include "rf_dag.h"
141 1.1 oster #include "rf_dagflags.h"
142 1.1 oster #include "rf_diskqueue.h"
143 1.1 oster #include "rf_acctrace.h"
144 1.1 oster #include "rf_etimer.h"
145 1.1 oster #include "rf_general.h"
146 1.1 oster #include "rf_debugMem.h"
147 1.1 oster #include "rf_kintf.h"
148 1.1 oster #include "rf_options.h"
149 1.1 oster #include "rf_driver.h"
150 1.1 oster #include "rf_parityscan.h"
151 1.1 oster #include "rf_debugprint.h"
152 1.1 oster #include "rf_threadstuff.h"
153 1.1 oster
154 1.9 oster int rf_kdebug_level = 0;
155 1.1 oster
156 1.1 oster #define RFK_BOOT_NONE 0
157 1.1 oster #define RFK_BOOT_GOOD 1
158 1.1 oster #define RFK_BOOT_BAD 2
159 1.1 oster static int rf_kbooted = RFK_BOOT_NONE;
160 1.1 oster
161 1.1 oster #ifdef DEBUG
162 1.1 oster #define db0_printf(a) printf a
163 1.1 oster #define db_printf(a) if (rf_kdebug_level > 0) printf a
164 1.1 oster #define db1_printf(a) if (rf_kdebug_level > 0) printf a
165 1.1 oster #define db2_printf(a) if (rf_kdebug_level > 1) printf a
166 1.1 oster #define db3_printf(a) if (rf_kdebug_level > 2) printf a
167 1.1 oster #define db4_printf(a) if (rf_kdebug_level > 3) printf a
168 1.1 oster #define db5_printf(a) if (rf_kdebug_level > 4) printf a
169 1.9 oster #else /* DEBUG */
170 1.1 oster #define db0_printf(a) printf a
171 1.1 oster #define db1_printf(a) { }
172 1.1 oster #define db2_printf(a) { }
173 1.1 oster #define db3_printf(a) { }
174 1.1 oster #define db4_printf(a) { }
175 1.1 oster #define db5_printf(a) { }
176 1.9 oster #endif /* DEBUG */
177 1.1 oster
178 1.9 oster static RF_Raid_t **raidPtrs; /* global raid device descriptors */
179 1.1 oster
180 1.11 oster RF_DECLARE_STATIC_MUTEX(rf_sparet_wait_mutex)
181 1.1 oster
182 1.10 oster static RF_SparetWait_t *rf_sparet_wait_queue; /* requests to install a
183 1.10 oster * spare table */
184 1.10 oster static RF_SparetWait_t *rf_sparet_resp_queue; /* responses from
185 1.10 oster * installation process */
186 1.10 oster
187 1.10 oster static struct rf_recon_req *recon_queue = NULL; /* used to communicate
188 1.10 oster * reconstruction
189 1.10 oster * requests */
190 1.1 oster
191 1.1 oster
192 1.9 oster decl_simple_lock_data(, recon_queue_mutex)
193 1.1 oster #define LOCK_RECON_Q_MUTEX() simple_lock(&recon_queue_mutex)
194 1.1 oster #define UNLOCK_RECON_Q_MUTEX() simple_unlock(&recon_queue_mutex)
195 1.1 oster
196 1.1 oster /* prototypes */
197 1.10 oster static void KernelWakeupFunc(struct buf * bp);
198 1.10 oster static void InitBP(struct buf * bp, struct vnode *, unsigned rw_flag,
199 1.10 oster dev_t dev, RF_SectorNum_t startSect,
200 1.10 oster RF_SectorCount_t numSect, caddr_t buf,
201 1.10 oster void (*cbFunc) (struct buf *), void *cbArg,
202 1.10 oster int logBytesPerSector, struct proc * b_proc);
203 1.1 oster
204 1.11 oster #define Dprintf0(s) if (rf_queueDebug) \
205 1.11 oster rf_debug_printf(s,NULL,NULL,NULL,NULL,NULL,NULL,NULL,NULL)
206 1.11 oster #define Dprintf1(s,a) if (rf_queueDebug) \
207 1.11 oster rf_debug_printf(s,a,NULL,NULL,NULL,NULL,NULL,NULL,NULL)
208 1.11 oster #define Dprintf2(s,a,b) if (rf_queueDebug) \
209 1.11 oster rf_debug_printf(s,a,b,NULL,NULL,NULL,NULL,NULL,NULL)
210 1.11 oster #define Dprintf3(s,a,b,c) if (rf_queueDebug) \
211 1.11 oster rf_debug_printf(s,a,b,c,NULL,NULL,NULL,NULL,NULL)
212 1.1 oster
213 1.12 oster int raidmarkclean(dev_t dev, struct vnode *b_vp, int);
214 1.12 oster int raidmarkdirty(dev_t dev, struct vnode *b_vp, int);
215 1.1 oster
216 1.10 oster void raidattach __P((int));
217 1.10 oster int raidsize __P((dev_t));
218 1.1 oster
219 1.10 oster void rf_DiskIOComplete(RF_DiskQueue_t *, RF_DiskQueueData_t *, int);
220 1.10 oster void rf_CopybackReconstructedData(RF_Raid_t * raidPtr);
221 1.10 oster static int raidinit __P((dev_t, RF_Raid_t *, int));
222 1.10 oster
223 1.10 oster int raidopen __P((dev_t, int, int, struct proc *));
224 1.10 oster int raidclose __P((dev_t, int, int, struct proc *));
225 1.10 oster int raidioctl __P((dev_t, u_long, caddr_t, int, struct proc *));
226 1.10 oster int raidwrite __P((dev_t, struct uio *, int));
227 1.10 oster int raidread __P((dev_t, struct uio *, int));
228 1.10 oster void raidstrategy __P((struct buf *));
229 1.10 oster int raiddump __P((dev_t, daddr_t, caddr_t, size_t));
230 1.1 oster
231 1.11 oster int raidwrite_component_label(dev_t, struct vnode *, RF_ComponentLabel_t *);
232 1.11 oster int raidread_component_label(dev_t, struct vnode *, RF_ComponentLabel_t *);
233 1.13 oster void rf_update_component_labels( RF_Raid_t *);
234 1.1 oster /*
235 1.1 oster * Pilfered from ccd.c
236 1.1 oster */
237 1.1 oster
238 1.10 oster struct raidbuf {
239 1.10 oster struct buf rf_buf; /* new I/O buf. MUST BE FIRST!!! */
240 1.10 oster struct buf *rf_obp; /* ptr. to original I/O buf */
241 1.10 oster int rf_flags; /* misc. flags */
242 1.11 oster RF_DiskQueueData_t *req;/* the request that this was part of.. */
243 1.10 oster };
244 1.1 oster
245 1.1 oster
246 1.1 oster #define RAIDGETBUF(rs) pool_get(&(rs)->sc_cbufpool, PR_NOWAIT)
247 1.1 oster #define RAIDPUTBUF(rs, cbp) pool_put(&(rs)->sc_cbufpool, cbp)
248 1.1 oster
249 1.9 oster /* XXX Not sure if the following should be replacing the raidPtrs above,
250 1.10 oster or if it should be used in conjunction with that... */
251 1.1 oster
252 1.10 oster struct raid_softc {
253 1.10 oster int sc_flags; /* flags */
254 1.10 oster int sc_cflags; /* configuration flags */
255 1.11 oster size_t sc_size; /* size of the raid device */
256 1.11 oster dev_t sc_dev; /* our device.. */
257 1.10 oster char sc_xname[20]; /* XXX external name */
258 1.10 oster struct disk sc_dkdev; /* generic disk device info */
259 1.10 oster struct pool sc_cbufpool; /* component buffer pool */
260 1.10 oster };
261 1.1 oster /* sc_flags */
262 1.1 oster #define RAIDF_INITED 0x01 /* unit has been initialized */
263 1.1 oster #define RAIDF_WLABEL 0x02 /* label area is writable */
264 1.1 oster #define RAIDF_LABELLING 0x04 /* unit is currently being labelled */
265 1.1 oster #define RAIDF_WANTED 0x40 /* someone is waiting to obtain a lock */
266 1.1 oster #define RAIDF_LOCKED 0x80 /* unit is locked */
267 1.1 oster
268 1.1 oster #define raidunit(x) DISKUNIT(x)
269 1.10 oster static int numraid = 0;
270 1.1 oster
271 1.20 oster /*
272 1.20 oster * Allow RAIDOUTSTANDING number of simultaneous IO's to this RAID device.
273 1.20 oster * Be aware that large numbers can allow the driver to consume a lot of
274 1.28 oster * kernel memory, especially on writes, and in degraded mode reads.
275 1.28 oster *
276 1.28 oster * For example: with a stripe width of 64 blocks (32k) and 5 disks,
277 1.28 oster * a single 64K write will typically require 64K for the old data,
278 1.28 oster * 64K for the old parity, and 64K for the new parity, for a total
279 1.28 oster * of 192K (if the parity buffer is not re-used immediately).
280 1.28 oster * Even it if is used immedately, that's still 128K, which when multiplied
281 1.28 oster * by say 10 requests, is 1280K, *on top* of the 640K of incoming data.
282 1.28 oster *
283 1.28 oster * Now in degraded mode, for example, a 64K read on the above setup may
284 1.28 oster * require data reconstruction, which will require *all* of the 4 remaining
285 1.28 oster * disks to participate -- 4 * 32K/disk == 128K again.
286 1.20 oster */
287 1.20 oster
288 1.20 oster #ifndef RAIDOUTSTANDING
289 1.28 oster #define RAIDOUTSTANDING 6
290 1.20 oster #endif
291 1.20 oster
292 1.1 oster #define RAIDLABELDEV(dev) \
293 1.1 oster (MAKEDISKDEV(major((dev)), raidunit((dev)), RAW_PART))
294 1.1 oster
295 1.1 oster /* declared here, and made public, for the benefit of KVM stuff.. */
296 1.10 oster struct raid_softc *raid_softc;
297 1.9 oster
298 1.10 oster static void raidgetdefaultlabel __P((RF_Raid_t *, struct raid_softc *,
299 1.10 oster struct disklabel *));
300 1.10 oster static void raidgetdisklabel __P((dev_t));
301 1.10 oster static void raidmakedisklabel __P((struct raid_softc *));
302 1.1 oster
303 1.10 oster static int raidlock __P((struct raid_softc *));
304 1.10 oster static void raidunlock __P((struct raid_softc *));
305 1.10 oster int raidlookup __P((char *, struct proc * p, struct vnode **));
306 1.1 oster
307 1.12 oster static void rf_markalldirty __P((RF_Raid_t *));
308 1.1 oster
309 1.10 oster void
310 1.10 oster raidattach(num)
311 1.9 oster int num;
312 1.1 oster {
313 1.14 oster int raidID;
314 1.14 oster int i, rc;
315 1.1 oster
316 1.1 oster #ifdef DEBUG
317 1.9 oster printf("raidattach: Asked for %d units\n", num);
318 1.1 oster #endif
319 1.1 oster
320 1.1 oster if (num <= 0) {
321 1.1 oster #ifdef DIAGNOSTIC
322 1.1 oster panic("raidattach: count <= 0");
323 1.1 oster #endif
324 1.1 oster return;
325 1.1 oster }
326 1.9 oster /* This is where all the initialization stuff gets done. */
327 1.1 oster
328 1.1 oster /* Make some space for requested number of units... */
329 1.1 oster
330 1.1 oster RF_Calloc(raidPtrs, num, sizeof(RF_Raid_t *), (RF_Raid_t **));
331 1.1 oster if (raidPtrs == NULL) {
332 1.1 oster panic("raidPtrs is NULL!!\n");
333 1.1 oster }
334 1.14 oster
335 1.14 oster rc = rf_mutex_init(&rf_sparet_wait_mutex);
336 1.14 oster if (rc) {
337 1.14 oster RF_PANIC();
338 1.14 oster }
339 1.14 oster
340 1.14 oster rf_sparet_wait_queue = rf_sparet_resp_queue = NULL;
341 1.14 oster recon_queue = NULL;
342 1.14 oster
343 1.14 oster for (i = 0; i < numraid; i++)
344 1.14 oster raidPtrs[i] = NULL;
345 1.14 oster rc = rf_BootRaidframe();
346 1.14 oster if (rc == 0)
347 1.14 oster printf("Kernelized RAIDframe activated\n");
348 1.14 oster else
349 1.1 oster panic("Serious error booting RAID!!\n");
350 1.14 oster
351 1.9 oster rf_kbooted = RFK_BOOT_GOOD;
352 1.9 oster
353 1.9 oster /* put together some datastructures like the CCD device does.. This
354 1.9 oster * lets us lock the device and what-not when it gets opened. */
355 1.1 oster
356 1.1 oster raid_softc = (struct raid_softc *)
357 1.9 oster malloc(num * sizeof(struct raid_softc),
358 1.9 oster M_RAIDFRAME, M_NOWAIT);
359 1.1 oster if (raid_softc == NULL) {
360 1.1 oster printf("WARNING: no memory for RAIDframe driver\n");
361 1.1 oster return;
362 1.1 oster }
363 1.1 oster numraid = num;
364 1.1 oster bzero(raid_softc, num * sizeof(struct raid_softc));
365 1.11 oster
366 1.9 oster for (raidID = 0; raidID < num; raidID++) {
367 1.9 oster RF_Calloc(raidPtrs[raidID], 1, sizeof(RF_Raid_t),
368 1.11 oster (RF_Raid_t *));
369 1.9 oster if (raidPtrs[raidID] == NULL) {
370 1.9 oster printf("raidPtrs[%d] is NULL\n", raidID);
371 1.1 oster }
372 1.1 oster }
373 1.1 oster }
374 1.1 oster
375 1.1 oster
376 1.1 oster int
377 1.1 oster raidsize(dev)
378 1.9 oster dev_t dev;
379 1.1 oster {
380 1.1 oster struct raid_softc *rs;
381 1.1 oster struct disklabel *lp;
382 1.9 oster int part, unit, omask, size;
383 1.1 oster
384 1.1 oster unit = raidunit(dev);
385 1.1 oster if (unit >= numraid)
386 1.1 oster return (-1);
387 1.1 oster rs = &raid_softc[unit];
388 1.1 oster
389 1.1 oster if ((rs->sc_flags & RAIDF_INITED) == 0)
390 1.1 oster return (-1);
391 1.1 oster
392 1.1 oster part = DISKPART(dev);
393 1.1 oster omask = rs->sc_dkdev.dk_openmask & (1 << part);
394 1.1 oster lp = rs->sc_dkdev.dk_label;
395 1.1 oster
396 1.1 oster if (omask == 0 && raidopen(dev, 0, S_IFBLK, curproc))
397 1.1 oster return (-1);
398 1.1 oster
399 1.1 oster if (lp->d_partitions[part].p_fstype != FS_SWAP)
400 1.1 oster size = -1;
401 1.1 oster else
402 1.1 oster size = lp->d_partitions[part].p_size *
403 1.29.8.2 wrstuden (lp->d_secsize / DEF_BSIZE);
404 1.1 oster
405 1.1 oster if (omask == 0 && raidclose(dev, 0, S_IFBLK, curproc))
406 1.1 oster return (-1);
407 1.1 oster
408 1.1 oster return (size);
409 1.1 oster
410 1.1 oster }
411 1.1 oster
412 1.1 oster int
413 1.1 oster raiddump(dev, blkno, va, size)
414 1.9 oster dev_t dev;
415 1.1 oster daddr_t blkno;
416 1.1 oster caddr_t va;
417 1.9 oster size_t size;
418 1.1 oster {
419 1.1 oster /* Not implemented. */
420 1.1 oster return ENXIO;
421 1.1 oster }
422 1.1 oster /* ARGSUSED */
423 1.1 oster int
424 1.1 oster raidopen(dev, flags, fmt, p)
425 1.9 oster dev_t dev;
426 1.9 oster int flags, fmt;
427 1.1 oster struct proc *p;
428 1.1 oster {
429 1.9 oster int unit = raidunit(dev);
430 1.1 oster struct raid_softc *rs;
431 1.1 oster struct disklabel *lp;
432 1.9 oster int part, pmask;
433 1.9 oster int error = 0;
434 1.9 oster
435 1.1 oster if (unit >= numraid)
436 1.1 oster return (ENXIO);
437 1.1 oster rs = &raid_softc[unit];
438 1.1 oster
439 1.1 oster if ((error = raidlock(rs)) != 0)
440 1.9 oster return (error);
441 1.1 oster lp = rs->sc_dkdev.dk_label;
442 1.1 oster
443 1.1 oster part = DISKPART(dev);
444 1.1 oster pmask = (1 << part);
445 1.1 oster
446 1.1 oster db1_printf(("Opening raid device number: %d partition: %d\n",
447 1.14 oster unit, part));
448 1.1 oster
449 1.1 oster
450 1.1 oster if ((rs->sc_flags & RAIDF_INITED) &&
451 1.1 oster (rs->sc_dkdev.dk_openmask == 0))
452 1.9 oster raidgetdisklabel(dev);
453 1.1 oster
454 1.1 oster /* make sure that this partition exists */
455 1.1 oster
456 1.1 oster if (part != RAW_PART) {
457 1.1 oster db1_printf(("Not a raw partition..\n"));
458 1.1 oster if (((rs->sc_flags & RAIDF_INITED) == 0) ||
459 1.1 oster ((part >= lp->d_npartitions) ||
460 1.9 oster (lp->d_partitions[part].p_fstype == FS_UNUSED))) {
461 1.1 oster error = ENXIO;
462 1.1 oster raidunlock(rs);
463 1.1 oster db1_printf(("Bailing out...\n"));
464 1.9 oster return (error);
465 1.1 oster }
466 1.1 oster }
467 1.1 oster /* Prevent this unit from being unconfigured while open. */
468 1.1 oster switch (fmt) {
469 1.1 oster case S_IFCHR:
470 1.1 oster rs->sc_dkdev.dk_copenmask |= pmask;
471 1.1 oster break;
472 1.1 oster
473 1.1 oster case S_IFBLK:
474 1.1 oster rs->sc_dkdev.dk_bopenmask |= pmask;
475 1.1 oster break;
476 1.1 oster }
477 1.13 oster
478 1.13 oster if ((rs->sc_dkdev.dk_openmask == 0) &&
479 1.13 oster ((rs->sc_flags & RAIDF_INITED) != 0)) {
480 1.13 oster /* First one... mark things as dirty... Note that we *MUST*
481 1.13 oster have done a configure before this. I DO NOT WANT TO BE
482 1.13 oster SCRIBBLING TO RANDOM COMPONENTS UNTIL IT'S BEEN DETERMINED
483 1.13 oster THAT THEY BELONG TOGETHER!!!!! */
484 1.13 oster /* XXX should check to see if we're only open for reading
485 1.13 oster here... If so, we needn't do this, but then need some
486 1.13 oster other way of keeping track of what's happened.. */
487 1.13 oster
488 1.13 oster rf_markalldirty( raidPtrs[unit] );
489 1.13 oster }
490 1.13 oster
491 1.13 oster
492 1.1 oster rs->sc_dkdev.dk_openmask =
493 1.1 oster rs->sc_dkdev.dk_copenmask | rs->sc_dkdev.dk_bopenmask;
494 1.1 oster
495 1.1 oster raidunlock(rs);
496 1.1 oster
497 1.9 oster return (error);
498 1.1 oster
499 1.1 oster
500 1.1 oster }
501 1.1 oster /* ARGSUSED */
502 1.1 oster int
503 1.1 oster raidclose(dev, flags, fmt, p)
504 1.9 oster dev_t dev;
505 1.9 oster int flags, fmt;
506 1.1 oster struct proc *p;
507 1.1 oster {
508 1.9 oster int unit = raidunit(dev);
509 1.1 oster struct raid_softc *rs;
510 1.9 oster int error = 0;
511 1.9 oster int part;
512 1.1 oster
513 1.1 oster if (unit >= numraid)
514 1.1 oster return (ENXIO);
515 1.1 oster rs = &raid_softc[unit];
516 1.1 oster
517 1.1 oster if ((error = raidlock(rs)) != 0)
518 1.1 oster return (error);
519 1.1 oster
520 1.1 oster part = DISKPART(dev);
521 1.1 oster
522 1.1 oster /* ...that much closer to allowing unconfiguration... */
523 1.1 oster switch (fmt) {
524 1.1 oster case S_IFCHR:
525 1.1 oster rs->sc_dkdev.dk_copenmask &= ~(1 << part);
526 1.1 oster break;
527 1.1 oster
528 1.1 oster case S_IFBLK:
529 1.1 oster rs->sc_dkdev.dk_bopenmask &= ~(1 << part);
530 1.1 oster break;
531 1.1 oster }
532 1.1 oster rs->sc_dkdev.dk_openmask =
533 1.1 oster rs->sc_dkdev.dk_copenmask | rs->sc_dkdev.dk_bopenmask;
534 1.13 oster
535 1.13 oster if ((rs->sc_dkdev.dk_openmask == 0) &&
536 1.13 oster ((rs->sc_flags & RAIDF_INITED) != 0)) {
537 1.13 oster /* Last one... device is not unconfigured yet.
538 1.13 oster Device shutdown has taken care of setting the
539 1.13 oster clean bits if RAIDF_INITED is not set
540 1.13 oster mark things as clean... */
541 1.13 oster rf_update_component_labels( raidPtrs[unit] );
542 1.13 oster }
543 1.1 oster
544 1.1 oster raidunlock(rs);
545 1.1 oster return (0);
546 1.1 oster
547 1.1 oster }
548 1.1 oster
549 1.1 oster void
550 1.1 oster raidstrategy(bp)
551 1.1 oster register struct buf *bp;
552 1.1 oster {
553 1.1 oster register int s;
554 1.1 oster
555 1.1 oster unsigned int raidID = raidunit(bp->b_dev);
556 1.1 oster RF_Raid_t *raidPtr;
557 1.1 oster struct raid_softc *rs = &raid_softc[raidID];
558 1.1 oster struct disklabel *lp;
559 1.9 oster int wlabel;
560 1.1 oster
561 1.5 oster #if 0
562 1.9 oster db1_printf(("Strategy: 0x%x 0x%x\n", bp, bp->b_data));
563 1.9 oster db1_printf(("Strategy(2): bp->b_bufsize%d\n", (int) bp->b_bufsize));
564 1.9 oster db1_printf(("bp->b_count=%d\n", (int) bp->b_bcount));
565 1.9 oster db1_printf(("bp->b_resid=%d\n", (int) bp->b_resid));
566 1.9 oster db1_printf(("bp->b_blkno=%d\n", (int) bp->b_blkno));
567 1.5 oster
568 1.9 oster if (bp->b_flags & B_READ)
569 1.1 oster db1_printf(("READ\n"));
570 1.1 oster else
571 1.1 oster db1_printf(("WRITE\n"));
572 1.1 oster #endif
573 1.1 oster if (rf_kbooted != RFK_BOOT_GOOD)
574 1.1 oster return;
575 1.1 oster if (raidID >= numraid || !raidPtrs[raidID]) {
576 1.1 oster bp->b_error = ENODEV;
577 1.1 oster bp->b_flags |= B_ERROR;
578 1.1 oster bp->b_resid = bp->b_bcount;
579 1.1 oster biodone(bp);
580 1.1 oster return;
581 1.1 oster }
582 1.1 oster raidPtr = raidPtrs[raidID];
583 1.1 oster if (!raidPtr->valid) {
584 1.1 oster bp->b_error = ENODEV;
585 1.1 oster bp->b_flags |= B_ERROR;
586 1.1 oster bp->b_resid = bp->b_bcount;
587 1.1 oster biodone(bp);
588 1.1 oster return;
589 1.1 oster }
590 1.1 oster if (bp->b_bcount == 0) {
591 1.1 oster db1_printf(("b_bcount is zero..\n"));
592 1.1 oster biodone(bp);
593 1.1 oster return;
594 1.1 oster }
595 1.1 oster lp = rs->sc_dkdev.dk_label;
596 1.1 oster
597 1.1 oster /*
598 1.1 oster * Do bounds checking and adjust transfer. If there's an
599 1.1 oster * error, the bounds check will flag that for us.
600 1.1 oster */
601 1.1 oster
602 1.9 oster wlabel = rs->sc_flags & (RAIDF_WLABEL | RAIDF_LABELLING);
603 1.1 oster if (DISKPART(bp->b_dev) != RAW_PART)
604 1.1 oster if (bounds_check_with_label(bp, lp, wlabel) <= 0) {
605 1.1 oster db1_printf(("Bounds check failed!!:%d %d\n",
606 1.9 oster (int) bp->b_blkno, (int) wlabel));
607 1.1 oster biodone(bp);
608 1.1 oster return;
609 1.1 oster }
610 1.9 oster s = splbio(); /* XXX Needed? */
611 1.9 oster db1_printf(("Beginning strategy...\n"));
612 1.1 oster
613 1.1 oster bp->b_resid = 0;
614 1.9 oster bp->b_error = rf_DoAccessKernel(raidPtrs[raidID], bp,
615 1.9 oster NULL, NULL, NULL);
616 1.1 oster if (bp->b_error) {
617 1.1 oster bp->b_flags |= B_ERROR;
618 1.1 oster db1_printf(("bp->b_flags HAS B_ERROR SET!!!: %d\n",
619 1.9 oster bp->b_error));
620 1.1 oster }
621 1.1 oster splx(s);
622 1.5 oster #if 0
623 1.1 oster db1_printf(("Strategy exiting: 0x%x 0x%x %d %d\n",
624 1.9 oster bp, bp->b_data,
625 1.9 oster (int) bp->b_bcount, (int) bp->b_resid));
626 1.5 oster #endif
627 1.1 oster }
628 1.1 oster /* ARGSUSED */
629 1.1 oster int
630 1.1 oster raidread(dev, uio, flags)
631 1.9 oster dev_t dev;
632 1.1 oster struct uio *uio;
633 1.9 oster int flags;
634 1.1 oster {
635 1.9 oster int unit = raidunit(dev);
636 1.1 oster struct raid_softc *rs;
637 1.9 oster int part;
638 1.1 oster
639 1.1 oster if (unit >= numraid)
640 1.1 oster return (ENXIO);
641 1.1 oster rs = &raid_softc[unit];
642 1.1 oster
643 1.1 oster if ((rs->sc_flags & RAIDF_INITED) == 0)
644 1.1 oster return (ENXIO);
645 1.1 oster part = DISKPART(dev);
646 1.1 oster
647 1.9 oster db1_printf(("raidread: unit: %d partition: %d\n", unit, part));
648 1.1 oster
649 1.1 oster return (physio(raidstrategy, NULL, dev, B_READ, minphys, uio));
650 1.1 oster
651 1.1 oster }
652 1.1 oster /* ARGSUSED */
653 1.1 oster int
654 1.1 oster raidwrite(dev, uio, flags)
655 1.9 oster dev_t dev;
656 1.1 oster struct uio *uio;
657 1.9 oster int flags;
658 1.1 oster {
659 1.9 oster int unit = raidunit(dev);
660 1.1 oster struct raid_softc *rs;
661 1.1 oster
662 1.1 oster if (unit >= numraid)
663 1.1 oster return (ENXIO);
664 1.1 oster rs = &raid_softc[unit];
665 1.1 oster
666 1.1 oster if ((rs->sc_flags & RAIDF_INITED) == 0)
667 1.1 oster return (ENXIO);
668 1.1 oster db1_printf(("raidwrite\n"));
669 1.1 oster return (physio(raidstrategy, NULL, dev, B_WRITE, minphys, uio));
670 1.1 oster
671 1.1 oster }
672 1.1 oster
673 1.1 oster int
674 1.1 oster raidioctl(dev, cmd, data, flag, p)
675 1.9 oster dev_t dev;
676 1.9 oster u_long cmd;
677 1.1 oster caddr_t data;
678 1.9 oster int flag;
679 1.1 oster struct proc *p;
680 1.1 oster {
681 1.9 oster int unit = raidunit(dev);
682 1.9 oster int error = 0;
683 1.9 oster int part, pmask;
684 1.1 oster struct raid_softc *rs;
685 1.1 oster RF_Config_t *k_cfg, *u_cfg;
686 1.1 oster u_char *specific_buf;
687 1.11 oster int retcode = 0;
688 1.11 oster int row;
689 1.11 oster int column;
690 1.21 oster int s;
691 1.1 oster struct rf_recon_req *rrcopy, *rr;
692 1.11 oster RF_ComponentLabel_t *component_label;
693 1.11 oster RF_ComponentLabel_t ci_label;
694 1.11 oster RF_ComponentLabel_t **c_label_ptr;
695 1.12 oster RF_SingleComponent_t *sparePtr,*componentPtr;
696 1.12 oster RF_SingleComponent_t hot_spare;
697 1.12 oster RF_SingleComponent_t component;
698 1.1 oster
699 1.1 oster if (unit >= numraid)
700 1.1 oster return (ENXIO);
701 1.1 oster rs = &raid_softc[unit];
702 1.1 oster
703 1.9 oster db1_printf(("raidioctl: %d %d %d %d\n", (int) dev,
704 1.9 oster (int) DISKPART(dev), (int) unit, (int) cmd));
705 1.1 oster
706 1.1 oster /* Must be open for writes for these commands... */
707 1.1 oster switch (cmd) {
708 1.1 oster case DIOCSDINFO:
709 1.1 oster case DIOCWDINFO:
710 1.1 oster case DIOCWLABEL:
711 1.1 oster if ((flag & FWRITE) == 0)
712 1.1 oster return (EBADF);
713 1.1 oster }
714 1.1 oster
715 1.1 oster /* Must be initialized for these... */
716 1.1 oster switch (cmd) {
717 1.1 oster case DIOCGDINFO:
718 1.1 oster case DIOCSDINFO:
719 1.1 oster case DIOCWDINFO:
720 1.1 oster case DIOCGPART:
721 1.1 oster case DIOCWLABEL:
722 1.1 oster case DIOCGDEFLABEL:
723 1.1 oster case RAIDFRAME_SHUTDOWN:
724 1.1 oster case RAIDFRAME_REWRITEPARITY:
725 1.1 oster case RAIDFRAME_GET_INFO:
726 1.1 oster case RAIDFRAME_RESET_ACCTOTALS:
727 1.1 oster case RAIDFRAME_GET_ACCTOTALS:
728 1.1 oster case RAIDFRAME_KEEP_ACCTOTALS:
729 1.1 oster case RAIDFRAME_GET_SIZE:
730 1.1 oster case RAIDFRAME_FAIL_DISK:
731 1.1 oster case RAIDFRAME_COPYBACK:
732 1.1 oster case RAIDFRAME_CHECKRECON:
733 1.11 oster case RAIDFRAME_GET_COMPONENT_LABEL:
734 1.11 oster case RAIDFRAME_SET_COMPONENT_LABEL:
735 1.11 oster case RAIDFRAME_ADD_HOT_SPARE:
736 1.11 oster case RAIDFRAME_REMOVE_HOT_SPARE:
737 1.11 oster case RAIDFRAME_INIT_LABELS:
738 1.12 oster case RAIDFRAME_REBUILD_IN_PLACE:
739 1.23 oster case RAIDFRAME_CHECK_PARITY:
740 1.1 oster if ((rs->sc_flags & RAIDF_INITED) == 0)
741 1.1 oster return (ENXIO);
742 1.1 oster }
743 1.9 oster
744 1.1 oster switch (cmd) {
745 1.1 oster
746 1.1 oster
747 1.1 oster /* configure the system */
748 1.1 oster case RAIDFRAME_CONFIGURE:
749 1.1 oster
750 1.1 oster db3_printf(("rf_ioctl: RAIDFRAME_CONFIGURE\n"));
751 1.1 oster /* copy-in the configuration information */
752 1.1 oster /* data points to a pointer to the configuration structure */
753 1.9 oster u_cfg = *((RF_Config_t **) data);
754 1.9 oster RF_Malloc(k_cfg, sizeof(RF_Config_t), (RF_Config_t *));
755 1.1 oster if (k_cfg == NULL) {
756 1.1 oster db3_printf(("rf_ioctl: ENOMEM for config. Code is %d\n", retcode));
757 1.9 oster return (ENOMEM);
758 1.1 oster }
759 1.9 oster retcode = copyin((caddr_t) u_cfg, (caddr_t) k_cfg,
760 1.9 oster sizeof(RF_Config_t));
761 1.1 oster if (retcode) {
762 1.9 oster db3_printf(("rf_ioctl: retcode=%d copyin.1\n",
763 1.9 oster retcode));
764 1.9 oster return (retcode);
765 1.1 oster }
766 1.9 oster /* allocate a buffer for the layout-specific data, and copy it
767 1.9 oster * in */
768 1.1 oster if (k_cfg->layoutSpecificSize) {
769 1.9 oster if (k_cfg->layoutSpecificSize > 10000) {
770 1.1 oster /* sanity check */
771 1.1 oster db3_printf(("rf_ioctl: EINVAL %d\n", retcode));
772 1.9 oster return (EINVAL);
773 1.1 oster }
774 1.9 oster RF_Malloc(specific_buf, k_cfg->layoutSpecificSize,
775 1.9 oster (u_char *));
776 1.1 oster if (specific_buf == NULL) {
777 1.9 oster RF_Free(k_cfg, sizeof(RF_Config_t));
778 1.1 oster db3_printf(("rf_ioctl: ENOMEM %d\n", retcode));
779 1.9 oster return (ENOMEM);
780 1.1 oster }
781 1.9 oster retcode = copyin(k_cfg->layoutSpecific,
782 1.9 oster (caddr_t) specific_buf,
783 1.9 oster k_cfg->layoutSpecificSize);
784 1.1 oster if (retcode) {
785 1.1 oster db3_printf(("rf_ioctl: retcode=%d copyin.2\n",
786 1.9 oster retcode));
787 1.9 oster return (retcode);
788 1.1 oster }
789 1.9 oster } else
790 1.9 oster specific_buf = NULL;
791 1.1 oster k_cfg->layoutSpecific = specific_buf;
792 1.9 oster
793 1.9 oster /* should do some kind of sanity check on the configuration.
794 1.9 oster * Store the sum of all the bytes in the last byte? */
795 1.1 oster
796 1.1 oster /* configure the system */
797 1.1 oster
798 1.1 oster raidPtrs[unit]->raidid = unit;
799 1.20 oster
800 1.1 oster retcode = rf_Configure(raidPtrs[unit], k_cfg);
801 1.1 oster
802 1.20 oster /* allow this many simultaneous IO's to this RAID device */
803 1.20 oster raidPtrs[unit]->openings = RAIDOUTSTANDING;
804 1.9 oster
805 1.1 oster if (retcode == 0) {
806 1.9 oster retcode = raidinit(dev, raidPtrs[unit], unit);
807 1.12 oster rf_markalldirty( raidPtrs[unit] );
808 1.9 oster }
809 1.1 oster /* free the buffers. No return code here. */
810 1.1 oster if (k_cfg->layoutSpecificSize) {
811 1.9 oster RF_Free(specific_buf, k_cfg->layoutSpecificSize);
812 1.1 oster }
813 1.9 oster RF_Free(k_cfg, sizeof(RF_Config_t));
814 1.9 oster
815 1.9 oster db3_printf(("rf_ioctl: retcode=%d RAIDFRAME_CONFIGURE\n",
816 1.9 oster retcode));
817 1.11 oster
818 1.9 oster return (retcode);
819 1.9 oster
820 1.9 oster /* shutdown the system */
821 1.1 oster case RAIDFRAME_SHUTDOWN:
822 1.9 oster
823 1.9 oster if ((error = raidlock(rs)) != 0)
824 1.9 oster return (error);
825 1.1 oster
826 1.1 oster /*
827 1.1 oster * If somebody has a partition mounted, we shouldn't
828 1.1 oster * shutdown.
829 1.1 oster */
830 1.1 oster
831 1.1 oster part = DISKPART(dev);
832 1.1 oster pmask = (1 << part);
833 1.9 oster if ((rs->sc_dkdev.dk_openmask & ~pmask) ||
834 1.9 oster ((rs->sc_dkdev.dk_bopenmask & pmask) &&
835 1.9 oster (rs->sc_dkdev.dk_copenmask & pmask))) {
836 1.9 oster raidunlock(rs);
837 1.9 oster return (EBUSY);
838 1.9 oster }
839 1.11 oster
840 1.1 oster if (rf_debugKernelAccess) {
841 1.1 oster printf("call shutdown\n");
842 1.1 oster }
843 1.11 oster
844 1.1 oster retcode = rf_Shutdown(raidPtrs[unit]);
845 1.1 oster
846 1.3 hubertf db1_printf(("Done main shutdown\n"));
847 1.1 oster
848 1.1 oster pool_destroy(&rs->sc_cbufpool);
849 1.3 hubertf db1_printf(("Done freeing component buffer freelist\n"));
850 1.1 oster
851 1.1 oster /* It's no longer initialized... */
852 1.1 oster rs->sc_flags &= ~RAIDF_INITED;
853 1.16 oster
854 1.9 oster /* Detach the disk. */
855 1.9 oster disk_detach(&rs->sc_dkdev);
856 1.1 oster
857 1.1 oster raidunlock(rs);
858 1.1 oster
859 1.9 oster return (retcode);
860 1.11 oster case RAIDFRAME_GET_COMPONENT_LABEL:
861 1.11 oster c_label_ptr = (RF_ComponentLabel_t **) data;
862 1.11 oster /* need to read the component label for the disk indicated
863 1.11 oster by row,column in component_label
864 1.11 oster XXX need to sanity check these values!!!
865 1.11 oster */
866 1.11 oster
867 1.11 oster /* For practice, let's get it directly fromdisk, rather
868 1.11 oster than from the in-core copy */
869 1.11 oster RF_Malloc( component_label, sizeof( RF_ComponentLabel_t ),
870 1.11 oster (RF_ComponentLabel_t *));
871 1.11 oster if (component_label == NULL)
872 1.11 oster return (ENOMEM);
873 1.11 oster
874 1.11 oster bzero((char *) component_label, sizeof(RF_ComponentLabel_t));
875 1.11 oster
876 1.11 oster retcode = copyin( *c_label_ptr, component_label,
877 1.11 oster sizeof(RF_ComponentLabel_t));
878 1.11 oster
879 1.11 oster if (retcode) {
880 1.11 oster return(retcode);
881 1.11 oster }
882 1.11 oster
883 1.11 oster row = component_label->row;
884 1.11 oster column = component_label->column;
885 1.26 oster
886 1.26 oster if ((row < 0) || (row >= raidPtrs[unit]->numRow) ||
887 1.26 oster (column < 0) || (column >= raidPtrs[unit]->numCol)) {
888 1.26 oster return(EINVAL);
889 1.11 oster }
890 1.11 oster
891 1.11 oster raidread_component_label(
892 1.11 oster raidPtrs[unit]->Disks[row][column].dev,
893 1.11 oster raidPtrs[unit]->raid_cinfo[row][column].ci_vp,
894 1.11 oster component_label );
895 1.11 oster
896 1.11 oster retcode = copyout((caddr_t) component_label,
897 1.11 oster (caddr_t) *c_label_ptr,
898 1.11 oster sizeof(RF_ComponentLabel_t));
899 1.11 oster RF_Free( component_label, sizeof(RF_ComponentLabel_t));
900 1.11 oster return (retcode);
901 1.11 oster
902 1.11 oster case RAIDFRAME_SET_COMPONENT_LABEL:
903 1.11 oster component_label = (RF_ComponentLabel_t *) data;
904 1.11 oster
905 1.11 oster /* XXX check the label for valid stuff... */
906 1.11 oster /* Note that some things *should not* get modified --
907 1.11 oster the user should be re-initing the labels instead of
908 1.11 oster trying to patch things.
909 1.11 oster */
910 1.11 oster
911 1.11 oster printf("Got component label:\n");
912 1.11 oster printf("Version: %d\n",component_label->version);
913 1.11 oster printf("Serial Number: %d\n",component_label->serial_number);
914 1.11 oster printf("Mod counter: %d\n",component_label->mod_counter);
915 1.11 oster printf("Row: %d\n", component_label->row);
916 1.11 oster printf("Column: %d\n", component_label->column);
917 1.11 oster printf("Num Rows: %d\n", component_label->num_rows);
918 1.11 oster printf("Num Columns: %d\n", component_label->num_columns);
919 1.11 oster printf("Clean: %d\n", component_label->clean);
920 1.11 oster printf("Status: %d\n", component_label->status);
921 1.11 oster
922 1.11 oster row = component_label->row;
923 1.11 oster column = component_label->column;
924 1.12 oster
925 1.26 oster if ((row < 0) || (row >= raidPtrs[unit]->numRow) ||
926 1.26 oster (column < 0) || (column >= raidPtrs[unit]->numCol)) {
927 1.12 oster return(EINVAL);
928 1.11 oster }
929 1.12 oster
930 1.12 oster /* XXX this isn't allowed to do anything for now :-) */
931 1.12 oster #if 0
932 1.11 oster raidwrite_component_label(
933 1.11 oster raidPtrs[unit]->Disks[row][column].dev,
934 1.11 oster raidPtrs[unit]->raid_cinfo[row][column].ci_vp,
935 1.11 oster component_label );
936 1.12 oster #endif
937 1.12 oster return (0);
938 1.11 oster
939 1.11 oster case RAIDFRAME_INIT_LABELS:
940 1.11 oster component_label = (RF_ComponentLabel_t *) data;
941 1.11 oster /*
942 1.11 oster we only want the serial number from
943 1.11 oster the above. We get all the rest of the information
944 1.11 oster from the config that was used to create this RAID
945 1.11 oster set.
946 1.11 oster */
947 1.12 oster
948 1.12 oster raidPtrs[unit]->serial_number = component_label->serial_number;
949 1.12 oster /* current version number */
950 1.12 oster ci_label.version = RF_COMPONENT_LABEL_VERSION;
951 1.11 oster ci_label.serial_number = component_label->serial_number;
952 1.12 oster ci_label.mod_counter = raidPtrs[unit]->mod_counter;
953 1.11 oster ci_label.num_rows = raidPtrs[unit]->numRow;
954 1.11 oster ci_label.num_columns = raidPtrs[unit]->numCol;
955 1.11 oster ci_label.clean = RF_RAID_DIRTY; /* not clean */
956 1.11 oster ci_label.status = rf_ds_optimal; /* "It's good!" */
957 1.11 oster
958 1.11 oster for(row=0;row<raidPtrs[unit]->numRow;row++) {
959 1.11 oster ci_label.row = row;
960 1.11 oster for(column=0;column<raidPtrs[unit]->numCol;column++) {
961 1.11 oster ci_label.column = column;
962 1.11 oster raidwrite_component_label(
963 1.11 oster raidPtrs[unit]->Disks[row][column].dev,
964 1.11 oster raidPtrs[unit]->raid_cinfo[row][column].ci_vp,
965 1.11 oster &ci_label );
966 1.11 oster }
967 1.11 oster }
968 1.11 oster
969 1.11 oster return (retcode);
970 1.9 oster
971 1.1 oster /* initialize all parity */
972 1.1 oster case RAIDFRAME_REWRITEPARITY:
973 1.1 oster
974 1.17 oster if (raidPtrs[unit]->Layout.map->faultsTolerated == 0) {
975 1.17 oster /* Parity for RAID 0 is trivially correct */
976 1.17 oster raidPtrs[unit]->parity_good = RF_RAID_CLEAN;
977 1.17 oster return(0);
978 1.17 oster }
979 1.17 oster
980 1.1 oster /* borrow the thread of the requesting process */
981 1.27 oster
982 1.22 oster s = splbio();
983 1.1 oster retcode = rf_RewriteParity(raidPtrs[unit]);
984 1.22 oster splx(s);
985 1.9 oster /* return I/O Error if the parity rewrite fails */
986 1.1 oster
987 1.11 oster if (retcode) {
988 1.9 oster retcode = EIO;
989 1.11 oster } else {
990 1.12 oster /* set the clean bit! If we shutdown correctly,
991 1.12 oster the clean bit on each component label will get
992 1.12 oster set */
993 1.12 oster raidPtrs[unit]->parity_good = RF_RAID_CLEAN;
994 1.11 oster }
995 1.9 oster return (retcode);
996 1.9 oster
997 1.11 oster
998 1.11 oster case RAIDFRAME_ADD_HOT_SPARE:
999 1.12 oster sparePtr = (RF_SingleComponent_t *) data;
1000 1.12 oster memcpy( &hot_spare, sparePtr, sizeof(RF_SingleComponent_t));
1001 1.12 oster printf("Adding spare\n");
1002 1.12 oster retcode = rf_add_hot_spare(raidPtrs[unit], &hot_spare);
1003 1.11 oster return(retcode);
1004 1.11 oster
1005 1.11 oster case RAIDFRAME_REMOVE_HOT_SPARE:
1006 1.11 oster return(retcode);
1007 1.11 oster
1008 1.12 oster case RAIDFRAME_REBUILD_IN_PLACE:
1009 1.24 oster
1010 1.24 oster if (raidPtrs[unit]->Layout.map->faultsTolerated == 0) {
1011 1.24 oster /* Can't do this on a RAID 0!! */
1012 1.24 oster return(EINVAL);
1013 1.24 oster }
1014 1.24 oster
1015 1.12 oster componentPtr = (RF_SingleComponent_t *) data;
1016 1.12 oster memcpy( &component, componentPtr,
1017 1.12 oster sizeof(RF_SingleComponent_t));
1018 1.12 oster row = component.row;
1019 1.12 oster column = component.column;
1020 1.12 oster printf("Rebuild: %d %d\n",row, column);
1021 1.26 oster if ((row < 0) || (row >= raidPtrs[unit]->numRow) ||
1022 1.26 oster (column < 0) || (column >= raidPtrs[unit]->numCol)) {
1023 1.12 oster return(EINVAL);
1024 1.12 oster }
1025 1.12 oster printf("Attempting a rebuild in place\n");
1026 1.21 oster s = splbio();
1027 1.12 oster retcode = rf_ReconstructInPlace(raidPtrs[unit], row, column);
1028 1.21 oster splx(s);
1029 1.12 oster return(retcode);
1030 1.12 oster
1031 1.1 oster case RAIDFRAME_GET_INFO:
1032 1.1 oster {
1033 1.1 oster RF_Raid_t *raid = raidPtrs[unit];
1034 1.1 oster RF_DeviceConfig_t *cfg, **ucfgp;
1035 1.9 oster int i, j, d;
1036 1.9 oster
1037 1.1 oster if (!raid->valid)
1038 1.9 oster return (ENODEV);
1039 1.9 oster ucfgp = (RF_DeviceConfig_t **) data;
1040 1.9 oster RF_Malloc(cfg, sizeof(RF_DeviceConfig_t),
1041 1.11 oster (RF_DeviceConfig_t *));
1042 1.1 oster if (cfg == NULL)
1043 1.9 oster return (ENOMEM);
1044 1.9 oster bzero((char *) cfg, sizeof(RF_DeviceConfig_t));
1045 1.1 oster cfg->rows = raid->numRow;
1046 1.1 oster cfg->cols = raid->numCol;
1047 1.1 oster cfg->ndevs = raid->numRow * raid->numCol;
1048 1.1 oster if (cfg->ndevs >= RF_MAX_DISKS) {
1049 1.1 oster cfg->ndevs = 0;
1050 1.9 oster return (ENOMEM);
1051 1.1 oster }
1052 1.1 oster cfg->nspares = raid->numSpare;
1053 1.1 oster if (cfg->nspares >= RF_MAX_DISKS) {
1054 1.1 oster cfg->nspares = 0;
1055 1.9 oster return (ENOMEM);
1056 1.1 oster }
1057 1.1 oster cfg->maxqdepth = raid->maxQueueDepth;
1058 1.1 oster d = 0;
1059 1.9 oster for (i = 0; i < cfg->rows; i++) {
1060 1.9 oster for (j = 0; j < cfg->cols; j++) {
1061 1.1 oster cfg->devs[d] = raid->Disks[i][j];
1062 1.1 oster d++;
1063 1.1 oster }
1064 1.1 oster }
1065 1.9 oster for (j = cfg->cols, i = 0; i < cfg->nspares; i++, j++) {
1066 1.1 oster cfg->spares[i] = raid->Disks[0][j];
1067 1.1 oster }
1068 1.9 oster retcode = copyout((caddr_t) cfg, (caddr_t) * ucfgp,
1069 1.11 oster sizeof(RF_DeviceConfig_t));
1070 1.9 oster RF_Free(cfg, sizeof(RF_DeviceConfig_t));
1071 1.9 oster
1072 1.9 oster return (retcode);
1073 1.1 oster }
1074 1.9 oster break;
1075 1.22 oster case RAIDFRAME_CHECK_PARITY:
1076 1.22 oster *(int *) data = raidPtrs[unit]->parity_good;
1077 1.22 oster return (0);
1078 1.1 oster case RAIDFRAME_RESET_ACCTOTALS:
1079 1.1 oster {
1080 1.1 oster RF_Raid_t *raid = raidPtrs[unit];
1081 1.9 oster
1082 1.1 oster bzero(&raid->acc_totals, sizeof(raid->acc_totals));
1083 1.9 oster return (0);
1084 1.1 oster }
1085 1.9 oster break;
1086 1.9 oster
1087 1.1 oster case RAIDFRAME_GET_ACCTOTALS:
1088 1.1 oster {
1089 1.9 oster RF_AccTotals_t *totals = (RF_AccTotals_t *) data;
1090 1.1 oster RF_Raid_t *raid = raidPtrs[unit];
1091 1.9 oster
1092 1.1 oster *totals = raid->acc_totals;
1093 1.9 oster return (0);
1094 1.1 oster }
1095 1.9 oster break;
1096 1.9 oster
1097 1.1 oster case RAIDFRAME_KEEP_ACCTOTALS:
1098 1.1 oster {
1099 1.1 oster RF_Raid_t *raid = raidPtrs[unit];
1100 1.9 oster int *keep = (int *) data;
1101 1.9 oster
1102 1.1 oster raid->keep_acc_totals = *keep;
1103 1.9 oster return (0);
1104 1.1 oster }
1105 1.9 oster break;
1106 1.9 oster
1107 1.1 oster case RAIDFRAME_GET_SIZE:
1108 1.1 oster *(int *) data = raidPtrs[unit]->totalSectors;
1109 1.9 oster return (0);
1110 1.1 oster
1111 1.1 oster #define RAIDFRAME_RECON 1
1112 1.1 oster /* XXX The above should probably be set somewhere else!! GO */
1113 1.1 oster #if RAIDFRAME_RECON > 0
1114 1.1 oster
1115 1.1 oster /* fail a disk & optionally start reconstruction */
1116 1.1 oster case RAIDFRAME_FAIL_DISK:
1117 1.24 oster
1118 1.24 oster if (raidPtrs[unit]->Layout.map->faultsTolerated == 0) {
1119 1.24 oster /* Can't do this on a RAID 0!! */
1120 1.24 oster return(EINVAL);
1121 1.24 oster }
1122 1.24 oster
1123 1.1 oster rr = (struct rf_recon_req *) data;
1124 1.9 oster
1125 1.9 oster if (rr->row < 0 || rr->row >= raidPtrs[unit]->numRow
1126 1.1 oster || rr->col < 0 || rr->col >= raidPtrs[unit]->numCol)
1127 1.9 oster return (EINVAL);
1128 1.1 oster
1129 1.12 oster printf("raid%d: Failing the disk: row: %d col: %d\n",
1130 1.12 oster unit, rr->row, rr->col);
1131 1.9 oster
1132 1.9 oster /* make a copy of the recon request so that we don't rely on
1133 1.9 oster * the user's buffer */
1134 1.1 oster RF_Malloc(rrcopy, sizeof(*rrcopy), (struct rf_recon_req *));
1135 1.1 oster bcopy(rr, rrcopy, sizeof(*rr));
1136 1.1 oster rrcopy->raidPtr = (void *) raidPtrs[unit];
1137 1.1 oster
1138 1.1 oster LOCK_RECON_Q_MUTEX();
1139 1.1 oster rrcopy->next = recon_queue;
1140 1.1 oster recon_queue = rrcopy;
1141 1.1 oster wakeup(&recon_queue);
1142 1.1 oster UNLOCK_RECON_Q_MUTEX();
1143 1.9 oster
1144 1.9 oster return (0);
1145 1.9 oster
1146 1.9 oster /* invoke a copyback operation after recon on whatever disk
1147 1.9 oster * needs it, if any */
1148 1.9 oster case RAIDFRAME_COPYBACK:
1149 1.24 oster
1150 1.24 oster if (raidPtrs[unit]->Layout.map->faultsTolerated == 0) {
1151 1.24 oster /* This makes no sense on a RAID 0!! */
1152 1.24 oster return(EINVAL);
1153 1.24 oster }
1154 1.24 oster
1155 1.1 oster /* borrow the current thread to get this done */
1156 1.27 oster
1157 1.21 oster s = splbio();
1158 1.1 oster rf_CopybackReconstructedData(raidPtrs[unit]);
1159 1.21 oster splx(s);
1160 1.9 oster return (0);
1161 1.9 oster
1162 1.1 oster /* return the percentage completion of reconstruction */
1163 1.1 oster case RAIDFRAME_CHECKRECON:
1164 1.24 oster if (raidPtrs[unit]->Layout.map->faultsTolerated == 0) {
1165 1.24 oster /* This makes no sense on a RAID 0 */
1166 1.24 oster return(EINVAL);
1167 1.24 oster }
1168 1.24 oster
1169 1.1 oster row = *(int *) data;
1170 1.1 oster if (row < 0 || row >= raidPtrs[unit]->numRow)
1171 1.9 oster return (EINVAL);
1172 1.9 oster if (raidPtrs[unit]->status[row] != rf_rs_reconstructing)
1173 1.1 oster *(int *) data = 100;
1174 1.9 oster else
1175 1.1 oster *(int *) data = raidPtrs[unit]->reconControl[row]->percentComplete;
1176 1.9 oster return (0);
1177 1.9 oster
1178 1.9 oster /* the sparetable daemon calls this to wait for the kernel to
1179 1.9 oster * need a spare table. this ioctl does not return until a
1180 1.9 oster * spare table is needed. XXX -- calling mpsleep here in the
1181 1.9 oster * ioctl code is almost certainly wrong and evil. -- XXX XXX
1182 1.9 oster * -- I should either compute the spare table in the kernel,
1183 1.9 oster * or have a different -- XXX XXX -- interface (a different
1184 1.9 oster * character device) for delivering the table -- XXX */
1185 1.1 oster #if 0
1186 1.1 oster case RAIDFRAME_SPARET_WAIT:
1187 1.1 oster RF_LOCK_MUTEX(rf_sparet_wait_mutex);
1188 1.9 oster while (!rf_sparet_wait_queue)
1189 1.9 oster mpsleep(&rf_sparet_wait_queue, (PZERO + 1) | PCATCH, "sparet wait", 0, (void *) simple_lock_addr(rf_sparet_wait_mutex), MS_LOCK_SIMPLE);
1190 1.1 oster waitreq = rf_sparet_wait_queue;
1191 1.1 oster rf_sparet_wait_queue = rf_sparet_wait_queue->next;
1192 1.1 oster RF_UNLOCK_MUTEX(rf_sparet_wait_mutex);
1193 1.9 oster
1194 1.9 oster *((RF_SparetWait_t *) data) = *waitreq; /* structure assignment */
1195 1.9 oster
1196 1.1 oster RF_Free(waitreq, sizeof(*waitreq));
1197 1.9 oster return (0);
1198 1.9 oster
1199 1.9 oster
1200 1.9 oster /* wakes up a process waiting on SPARET_WAIT and puts an error
1201 1.9 oster * code in it that will cause the dameon to exit */
1202 1.1 oster case RAIDFRAME_ABORT_SPARET_WAIT:
1203 1.1 oster RF_Malloc(waitreq, sizeof(*waitreq), (RF_SparetWait_t *));
1204 1.1 oster waitreq->fcol = -1;
1205 1.1 oster RF_LOCK_MUTEX(rf_sparet_wait_mutex);
1206 1.1 oster waitreq->next = rf_sparet_wait_queue;
1207 1.1 oster rf_sparet_wait_queue = waitreq;
1208 1.1 oster RF_UNLOCK_MUTEX(rf_sparet_wait_mutex);
1209 1.1 oster wakeup(&rf_sparet_wait_queue);
1210 1.9 oster return (0);
1211 1.1 oster
1212 1.9 oster /* used by the spare table daemon to deliver a spare table
1213 1.9 oster * into the kernel */
1214 1.1 oster case RAIDFRAME_SEND_SPARET:
1215 1.9 oster
1216 1.1 oster /* install the spare table */
1217 1.9 oster retcode = rf_SetSpareTable(raidPtrs[unit], *(void **) data);
1218 1.9 oster
1219 1.9 oster /* respond to the requestor. the return status of the spare
1220 1.9 oster * table installation is passed in the "fcol" field */
1221 1.1 oster RF_Malloc(waitreq, sizeof(*waitreq), (RF_SparetWait_t *));
1222 1.1 oster waitreq->fcol = retcode;
1223 1.1 oster RF_LOCK_MUTEX(rf_sparet_wait_mutex);
1224 1.1 oster waitreq->next = rf_sparet_resp_queue;
1225 1.1 oster rf_sparet_resp_queue = waitreq;
1226 1.1 oster wakeup(&rf_sparet_resp_queue);
1227 1.1 oster RF_UNLOCK_MUTEX(rf_sparet_wait_mutex);
1228 1.9 oster
1229 1.9 oster return (retcode);
1230 1.1 oster #endif
1231 1.1 oster
1232 1.1 oster
1233 1.9 oster #endif /* RAIDFRAME_RECON > 0 */
1234 1.9 oster
1235 1.9 oster default:
1236 1.9 oster break; /* fall through to the os-specific code below */
1237 1.1 oster
1238 1.1 oster }
1239 1.9 oster
1240 1.1 oster if (!raidPtrs[unit]->valid)
1241 1.9 oster return (EINVAL);
1242 1.9 oster
1243 1.1 oster /*
1244 1.1 oster * Add support for "regular" device ioctls here.
1245 1.1 oster */
1246 1.9 oster
1247 1.1 oster switch (cmd) {
1248 1.1 oster case DIOCGDINFO:
1249 1.9 oster db1_printf(("DIOCGDINFO %d %d\n", (int) dev, (int) DISKPART(dev)));
1250 1.9 oster *(struct disklabel *) data = *(rs->sc_dkdev.dk_label);
1251 1.1 oster break;
1252 1.1 oster
1253 1.1 oster case DIOCGPART:
1254 1.9 oster db1_printf(("DIOCGPART: %d %d\n", (int) dev, (int) DISKPART(dev)));
1255 1.9 oster ((struct partinfo *) data)->disklab = rs->sc_dkdev.dk_label;
1256 1.9 oster ((struct partinfo *) data)->part =
1257 1.1 oster &rs->sc_dkdev.dk_label->d_partitions[DISKPART(dev)];
1258 1.1 oster break;
1259 1.1 oster
1260 1.1 oster case DIOCWDINFO:
1261 1.1 oster db1_printf(("DIOCWDINFO\n"));
1262 1.1 oster case DIOCSDINFO:
1263 1.1 oster db1_printf(("DIOCSDINFO\n"));
1264 1.1 oster if ((error = raidlock(rs)) != 0)
1265 1.1 oster return (error);
1266 1.1 oster
1267 1.1 oster rs->sc_flags |= RAIDF_LABELLING;
1268 1.1 oster
1269 1.1 oster error = setdisklabel(rs->sc_dkdev.dk_label,
1270 1.9 oster (struct disklabel *) data, 0, rs->sc_dkdev.dk_cpulabel);
1271 1.1 oster if (error == 0) {
1272 1.1 oster if (cmd == DIOCWDINFO)
1273 1.1 oster error = writedisklabel(RAIDLABELDEV(dev),
1274 1.1 oster raidstrategy, rs->sc_dkdev.dk_label,
1275 1.1 oster rs->sc_dkdev.dk_cpulabel);
1276 1.1 oster }
1277 1.1 oster rs->sc_flags &= ~RAIDF_LABELLING;
1278 1.1 oster
1279 1.1 oster raidunlock(rs);
1280 1.1 oster
1281 1.1 oster if (error)
1282 1.1 oster return (error);
1283 1.1 oster break;
1284 1.1 oster
1285 1.1 oster case DIOCWLABEL:
1286 1.1 oster db1_printf(("DIOCWLABEL\n"));
1287 1.9 oster if (*(int *) data != 0)
1288 1.1 oster rs->sc_flags |= RAIDF_WLABEL;
1289 1.1 oster else
1290 1.1 oster rs->sc_flags &= ~RAIDF_WLABEL;
1291 1.1 oster break;
1292 1.1 oster
1293 1.1 oster case DIOCGDEFLABEL:
1294 1.1 oster db1_printf(("DIOCGDEFLABEL\n"));
1295 1.1 oster raidgetdefaultlabel(raidPtrs[unit], rs,
1296 1.9 oster (struct disklabel *) data);
1297 1.1 oster break;
1298 1.1 oster
1299 1.1 oster default:
1300 1.9 oster retcode = ENOTTY; /* XXXX ?? OR EINVAL ? */
1301 1.1 oster }
1302 1.9 oster return (retcode);
1303 1.1 oster
1304 1.1 oster }
1305 1.1 oster
1306 1.1 oster
1307 1.9 oster /* raidinit -- complete the rest of the initialization for the
1308 1.1 oster RAIDframe device. */
1309 1.1 oster
1310 1.1 oster
1311 1.1 oster static int
1312 1.9 oster raidinit(dev, raidPtr, unit)
1313 1.9 oster dev_t dev;
1314 1.1 oster RF_Raid_t *raidPtr;
1315 1.9 oster int unit;
1316 1.1 oster {
1317 1.9 oster int retcode;
1318 1.9 oster /* int ix; */
1319 1.9 oster /* struct raidbuf *raidbp; */
1320 1.1 oster struct raid_softc *rs;
1321 1.1 oster
1322 1.1 oster retcode = 0;
1323 1.1 oster
1324 1.1 oster rs = &raid_softc[unit];
1325 1.1 oster pool_init(&rs->sc_cbufpool, sizeof(struct raidbuf), 0,
1326 1.11 oster 0, 0, "raidpl", 0, NULL, NULL, M_RAIDFRAME);
1327 1.9 oster
1328 1.1 oster
1329 1.1 oster /* XXX should check return code first... */
1330 1.1 oster rs->sc_flags |= RAIDF_INITED;
1331 1.1 oster
1332 1.9 oster sprintf(rs->sc_xname, "raid%d", unit); /* XXX doesn't check bounds. */
1333 1.1 oster
1334 1.9 oster rs->sc_dkdev.dk_name = rs->sc_xname;
1335 1.11 oster
1336 1.1 oster /* disk_attach actually creates space for the CPU disklabel, among
1337 1.9 oster * other things, so it's critical to call this *BEFORE* we try putzing
1338 1.9 oster * with disklabels. */
1339 1.11 oster
1340 1.1 oster disk_attach(&rs->sc_dkdev);
1341 1.1 oster
1342 1.1 oster /* XXX There may be a weird interaction here between this, and
1343 1.9 oster * protectedSectors, as used in RAIDframe. */
1344 1.11 oster
1345 1.9 oster rs->sc_size = raidPtr->totalSectors;
1346 1.1 oster rs->sc_dev = dev;
1347 1.11 oster
1348 1.9 oster return (retcode);
1349 1.1 oster }
1350 1.1 oster
1351 1.1 oster /*
1352 1.1 oster * This kernel thread never exits. It is created once, and persists
1353 1.1 oster * until the system reboots.
1354 1.1 oster */
1355 1.11 oster
1356 1.9 oster void
1357 1.9 oster rf_ReconKernelThread()
1358 1.1 oster {
1359 1.9 oster struct rf_recon_req *req;
1360 1.9 oster int s;
1361 1.1 oster
1362 1.9 oster /* XXX not sure what spl() level we should be at here... probably
1363 1.9 oster * splbio() */
1364 1.9 oster s = splbio();
1365 1.1 oster
1366 1.9 oster while (1) {
1367 1.9 oster /* grab the next reconstruction request from the queue */
1368 1.9 oster LOCK_RECON_Q_MUTEX();
1369 1.9 oster while (!recon_queue) {
1370 1.9 oster UNLOCK_RECON_Q_MUTEX();
1371 1.15 oster tsleep(&recon_queue, PRIBIO,
1372 1.11 oster "raidframe recon", 0);
1373 1.9 oster LOCK_RECON_Q_MUTEX();
1374 1.9 oster }
1375 1.9 oster req = recon_queue;
1376 1.9 oster recon_queue = recon_queue->next;
1377 1.9 oster UNLOCK_RECON_Q_MUTEX();
1378 1.9 oster
1379 1.9 oster /*
1380 1.9 oster * If flags specifies that we should start recon, this call
1381 1.11 oster * will not return until reconstruction completes, fails,
1382 1.11 oster * or is aborted.
1383 1.9 oster */
1384 1.9 oster rf_FailDisk((RF_Raid_t *) req->raidPtr, req->row, req->col,
1385 1.9 oster ((req->flags & RF_FDFLAGS_RECON) ? 1 : 0));
1386 1.1 oster
1387 1.9 oster RF_Free(req, sizeof(*req));
1388 1.9 oster }
1389 1.1 oster }
1390 1.1 oster /* wake up the daemon & tell it to get us a spare table
1391 1.1 oster * XXX
1392 1.9 oster * the entries in the queues should be tagged with the raidPtr
1393 1.11 oster * so that in the extremely rare case that two recons happen at once,
1394 1.11 oster * we know for which device were requesting a spare table
1395 1.1 oster * XXX
1396 1.1 oster */
1397 1.9 oster int
1398 1.9 oster rf_GetSpareTableFromDaemon(req)
1399 1.9 oster RF_SparetWait_t *req;
1400 1.9 oster {
1401 1.9 oster int retcode;
1402 1.9 oster
1403 1.9 oster RF_LOCK_MUTEX(rf_sparet_wait_mutex);
1404 1.9 oster req->next = rf_sparet_wait_queue;
1405 1.9 oster rf_sparet_wait_queue = req;
1406 1.9 oster wakeup(&rf_sparet_wait_queue);
1407 1.9 oster
1408 1.9 oster /* mpsleep unlocks the mutex */
1409 1.9 oster while (!rf_sparet_resp_queue) {
1410 1.15 oster tsleep(&rf_sparet_resp_queue, PRIBIO,
1411 1.9 oster "raidframe getsparetable", 0);
1412 1.9 oster }
1413 1.9 oster req = rf_sparet_resp_queue;
1414 1.9 oster rf_sparet_resp_queue = req->next;
1415 1.9 oster RF_UNLOCK_MUTEX(rf_sparet_wait_mutex);
1416 1.9 oster
1417 1.9 oster retcode = req->fcol;
1418 1.9 oster RF_Free(req, sizeof(*req)); /* this is not the same req as we
1419 1.9 oster * alloc'd */
1420 1.9 oster return (retcode);
1421 1.1 oster }
1422 1.11 oster /* a wrapper around rf_DoAccess that extracts appropriate info from the
1423 1.11 oster * bp & passes it down.
1424 1.1 oster * any calls originating in the kernel must use non-blocking I/O
1425 1.1 oster * do some extra sanity checking to return "appropriate" error values for
1426 1.1 oster * certain conditions (to make some standard utilities work)
1427 1.1 oster */
1428 1.9 oster int
1429 1.9 oster rf_DoAccessKernel(raidPtr, bp, flags, cbFunc, cbArg)
1430 1.9 oster RF_Raid_t *raidPtr;
1431 1.9 oster struct buf *bp;
1432 1.9 oster RF_RaidAccessFlags_t flags;
1433 1.9 oster void (*cbFunc) (struct buf *);
1434 1.9 oster void *cbArg;
1435 1.1 oster {
1436 1.1 oster RF_SectorCount_t num_blocks, pb, sum;
1437 1.1 oster RF_RaidAddr_t raid_addr;
1438 1.9 oster int retcode;
1439 1.1 oster struct partition *pp;
1440 1.9 oster daddr_t blocknum;
1441 1.9 oster int unit;
1442 1.1 oster struct raid_softc *rs;
1443 1.9 oster int do_async;
1444 1.1 oster
1445 1.1 oster /* XXX The dev_t used here should be for /dev/[r]raid* !!! */
1446 1.1 oster
1447 1.1 oster unit = raidPtr->raidid;
1448 1.1 oster rs = &raid_softc[unit];
1449 1.1 oster
1450 1.1 oster /* Ok, for the bp we have here, bp->b_blkno is relative to the
1451 1.9 oster * partition.. Need to make it absolute to the underlying device.. */
1452 1.1 oster
1453 1.1 oster blocknum = bp->b_blkno;
1454 1.1 oster if (DISKPART(bp->b_dev) != RAW_PART) {
1455 1.1 oster pp = &rs->sc_dkdev.dk_label->d_partitions[DISKPART(bp->b_dev)];
1456 1.1 oster blocknum += pp->p_offset;
1457 1.9 oster db1_printf(("updated: %d %d\n", DISKPART(bp->b_dev),
1458 1.9 oster pp->p_offset));
1459 1.1 oster } else {
1460 1.1 oster db1_printf(("Is raw..\n"));
1461 1.1 oster }
1462 1.1 oster db1_printf(("Blocks: %d, %d\n", (int) bp->b_blkno, (int) blocknum));
1463 1.1 oster
1464 1.9 oster db1_printf(("bp->b_bcount = %d\n", (int) bp->b_bcount));
1465 1.9 oster db1_printf(("bp->b_resid = %d\n", (int) bp->b_resid));
1466 1.1 oster
1467 1.9 oster /* *THIS* is where we adjust what block we're going to... but DO NOT
1468 1.9 oster * TOUCH bp->b_blkno!!! */
1469 1.1 oster raid_addr = blocknum;
1470 1.9 oster
1471 1.1 oster num_blocks = bp->b_bcount >> raidPtr->logBytesPerSector;
1472 1.9 oster pb = (bp->b_bcount & raidPtr->sectorMask) ? 1 : 0;
1473 1.1 oster sum = raid_addr + num_blocks + pb;
1474 1.1 oster if (1 || rf_debugKernelAccess) {
1475 1.9 oster db1_printf(("raid_addr=%d sum=%d num_blocks=%d(+%d) (%d)\n",
1476 1.9 oster (int) raid_addr, (int) sum, (int) num_blocks,
1477 1.9 oster (int) pb, (int) bp->b_resid));
1478 1.1 oster }
1479 1.1 oster if ((sum > raidPtr->totalSectors) || (sum < raid_addr)
1480 1.9 oster || (sum < num_blocks) || (sum < pb)) {
1481 1.1 oster bp->b_error = ENOSPC;
1482 1.1 oster bp->b_flags |= B_ERROR;
1483 1.1 oster bp->b_resid = bp->b_bcount;
1484 1.1 oster biodone(bp);
1485 1.9 oster return (bp->b_error);
1486 1.1 oster }
1487 1.1 oster /*
1488 1.1 oster * XXX rf_DoAccess() should do this, not just DoAccessKernel()
1489 1.1 oster */
1490 1.1 oster
1491 1.1 oster if (bp->b_bcount & raidPtr->sectorMask) {
1492 1.1 oster bp->b_error = EINVAL;
1493 1.1 oster bp->b_flags |= B_ERROR;
1494 1.1 oster bp->b_resid = bp->b_bcount;
1495 1.1 oster biodone(bp);
1496 1.9 oster return (bp->b_error);
1497 1.1 oster }
1498 1.1 oster db1_printf(("Calling DoAccess..\n"));
1499 1.1 oster
1500 1.20 oster
1501 1.20 oster /* Put a throttle on the number of requests we handle simultanously */
1502 1.20 oster
1503 1.20 oster RF_LOCK_MUTEX(raidPtr->mutex);
1504 1.20 oster
1505 1.20 oster while(raidPtr->openings <= 0) {
1506 1.20 oster RF_UNLOCK_MUTEX(raidPtr->mutex);
1507 1.20 oster (void)tsleep(&raidPtr->openings, PRIBIO, "rfdwait", 0);
1508 1.20 oster RF_LOCK_MUTEX(raidPtr->mutex);
1509 1.20 oster }
1510 1.20 oster raidPtr->openings--;
1511 1.20 oster
1512 1.20 oster RF_UNLOCK_MUTEX(raidPtr->mutex);
1513 1.20 oster
1514 1.7 explorer /*
1515 1.20 oster * Everything is async.
1516 1.7 explorer */
1517 1.7 explorer do_async = 1;
1518 1.7 explorer
1519 1.9 oster /* don't ever condition on bp->b_flags & B_WRITE. always condition on
1520 1.9 oster * B_READ instead */
1521 1.9 oster retcode = rf_DoAccess(raidPtr, (bp->b_flags & B_READ) ?
1522 1.9 oster RF_IO_TYPE_READ : RF_IO_TYPE_WRITE,
1523 1.9 oster do_async, raid_addr, num_blocks,
1524 1.9 oster bp->b_un.b_addr,
1525 1.9 oster bp, NULL, NULL, RF_DAG_NONBLOCKING_IO | flags,
1526 1.9 oster NULL, cbFunc, cbArg);
1527 1.5 oster #if 0
1528 1.9 oster db1_printf(("After call to DoAccess: 0x%x 0x%x %d\n", bp,
1529 1.9 oster bp->b_data, (int) bp->b_resid));
1530 1.5 oster #endif
1531 1.7 explorer
1532 1.9 oster return (retcode);
1533 1.1 oster }
1534 1.1 oster /* invoke an I/O from kernel mode. Disk queue should be locked upon entry */
1535 1.1 oster
1536 1.9 oster int
1537 1.9 oster rf_DispatchKernelIO(queue, req)
1538 1.9 oster RF_DiskQueue_t *queue;
1539 1.9 oster RF_DiskQueueData_t *req;
1540 1.1 oster {
1541 1.9 oster int op = (req->type == RF_IO_TYPE_READ) ? B_READ : B_WRITE;
1542 1.1 oster struct buf *bp;
1543 1.9 oster struct raidbuf *raidbp = NULL;
1544 1.1 oster struct raid_softc *rs;
1545 1.9 oster int unit;
1546 1.9 oster
1547 1.1 oster /* XXX along with the vnode, we also need the softc associated with
1548 1.9 oster * this device.. */
1549 1.9 oster
1550 1.1 oster req->queue = queue;
1551 1.9 oster
1552 1.1 oster unit = queue->raidPtr->raidid;
1553 1.1 oster
1554 1.9 oster db1_printf(("DispatchKernelIO unit: %d\n", unit));
1555 1.1 oster
1556 1.9 oster if (unit >= numraid) {
1557 1.9 oster printf("Invalid unit number: %d %d\n", unit, numraid);
1558 1.1 oster panic("Invalid Unit number in rf_DispatchKernelIO\n");
1559 1.1 oster }
1560 1.1 oster rs = &raid_softc[unit];
1561 1.1 oster
1562 1.1 oster /* XXX is this the right place? */
1563 1.9 oster disk_busy(&rs->sc_dkdev);
1564 1.1 oster
1565 1.1 oster bp = req->bp;
1566 1.16 oster #if 1
1567 1.9 oster /* XXX when there is a physical disk failure, someone is passing us a
1568 1.9 oster * buffer that contains old stuff!! Attempt to deal with this problem
1569 1.9 oster * without taking a performance hit... (not sure where the real bug
1570 1.9 oster * is. It's buried in RAIDframe somewhere) :-( GO ) */
1571 1.4 oster
1572 1.4 oster if (bp->b_flags & B_ERROR) {
1573 1.4 oster bp->b_flags &= ~B_ERROR;
1574 1.4 oster }
1575 1.9 oster if (bp->b_error != 0) {
1576 1.4 oster bp->b_error = 0;
1577 1.4 oster }
1578 1.16 oster #endif
1579 1.1 oster raidbp = RAIDGETBUF(rs);
1580 1.1 oster
1581 1.9 oster raidbp->rf_flags = 0; /* XXX not really used anywhere... */
1582 1.1 oster
1583 1.1 oster /*
1584 1.1 oster * context for raidiodone
1585 1.1 oster */
1586 1.1 oster raidbp->rf_obp = bp;
1587 1.1 oster raidbp->req = req;
1588 1.1 oster
1589 1.1 oster switch (req->type) {
1590 1.9 oster case RF_IO_TYPE_NOP: /* used primarily to unlock a locked queue */
1591 1.9 oster /* Dprintf2("rf_DispatchKernelIO: NOP to r %d c %d\n",
1592 1.9 oster * queue->row, queue->col); */
1593 1.1 oster /* XXX need to do something extra here.. */
1594 1.9 oster /* I'm leaving this in, as I've never actually seen it used,
1595 1.9 oster * and I'd like folks to report it... GO */
1596 1.1 oster printf(("WAKEUP CALLED\n"));
1597 1.1 oster queue->numOutstanding++;
1598 1.1 oster
1599 1.1 oster /* XXX need to glue the original buffer into this?? */
1600 1.1 oster
1601 1.1 oster KernelWakeupFunc(&raidbp->rf_buf);
1602 1.1 oster break;
1603 1.9 oster
1604 1.1 oster case RF_IO_TYPE_READ:
1605 1.1 oster case RF_IO_TYPE_WRITE:
1606 1.9 oster
1607 1.1 oster if (req->tracerec) {
1608 1.1 oster RF_ETIMER_START(req->tracerec->timer);
1609 1.1 oster }
1610 1.9 oster InitBP(&raidbp->rf_buf, queue->rf_cinfo->ci_vp,
1611 1.9 oster op | bp->b_flags, queue->rf_cinfo->ci_dev,
1612 1.9 oster req->sectorOffset, req->numSector,
1613 1.9 oster req->buf, KernelWakeupFunc, (void *) req,
1614 1.9 oster queue->raidPtr->logBytesPerSector, req->b_proc);
1615 1.1 oster
1616 1.1 oster if (rf_debugKernelAccess) {
1617 1.9 oster db1_printf(("dispatch: bp->b_blkno = %ld\n",
1618 1.9 oster (long) bp->b_blkno));
1619 1.1 oster }
1620 1.1 oster queue->numOutstanding++;
1621 1.1 oster queue->last_deq_sector = req->sectorOffset;
1622 1.9 oster /* acc wouldn't have been let in if there were any pending
1623 1.9 oster * reqs at any other priority */
1624 1.1 oster queue->curPriority = req->priority;
1625 1.9 oster /* Dprintf3("rf_DispatchKernelIO: %c to row %d col %d\n",
1626 1.9 oster * req->type, queue->row, queue->col); */
1627 1.1 oster
1628 1.1 oster db1_printf(("Going for %c to unit %d row %d col %d\n",
1629 1.9 oster req->type, unit, queue->row, queue->col));
1630 1.1 oster db1_printf(("sector %d count %d (%d bytes) %d\n",
1631 1.9 oster (int) req->sectorOffset, (int) req->numSector,
1632 1.9 oster (int) (req->numSector <<
1633 1.9 oster queue->raidPtr->logBytesPerSector),
1634 1.9 oster (int) queue->raidPtr->logBytesPerSector));
1635 1.1 oster if ((raidbp->rf_buf.b_flags & B_READ) == 0) {
1636 1.1 oster raidbp->rf_buf.b_vp->v_numoutput++;
1637 1.1 oster }
1638 1.9 oster VOP_STRATEGY(&raidbp->rf_buf);
1639 1.1 oster
1640 1.1 oster break;
1641 1.9 oster
1642 1.1 oster default:
1643 1.1 oster panic("bad req->type in rf_DispatchKernelIO");
1644 1.1 oster }
1645 1.1 oster db1_printf(("Exiting from DispatchKernelIO\n"));
1646 1.9 oster return (0);
1647 1.1 oster }
1648 1.9 oster /* this is the callback function associated with a I/O invoked from
1649 1.1 oster kernel code.
1650 1.1 oster */
1651 1.9 oster static void
1652 1.9 oster KernelWakeupFunc(vbp)
1653 1.9 oster struct buf *vbp;
1654 1.9 oster {
1655 1.9 oster RF_DiskQueueData_t *req = NULL;
1656 1.9 oster RF_DiskQueue_t *queue;
1657 1.9 oster struct raidbuf *raidbp = (struct raidbuf *) vbp;
1658 1.9 oster struct buf *bp;
1659 1.9 oster struct raid_softc *rs;
1660 1.9 oster int unit;
1661 1.9 oster register int s;
1662 1.9 oster
1663 1.9 oster s = splbio(); /* XXX */
1664 1.9 oster db1_printf(("recovering the request queue:\n"));
1665 1.9 oster req = raidbp->req;
1666 1.1 oster
1667 1.9 oster bp = raidbp->rf_obp;
1668 1.5 oster #if 0
1669 1.9 oster db1_printf(("bp=0x%x\n", bp));
1670 1.5 oster #endif
1671 1.1 oster
1672 1.9 oster queue = (RF_DiskQueue_t *) req->queue;
1673 1.1 oster
1674 1.9 oster if (raidbp->rf_buf.b_flags & B_ERROR) {
1675 1.1 oster #if 0
1676 1.9 oster printf("Setting bp->b_flags!!! %d\n", raidbp->rf_buf.b_error);
1677 1.1 oster #endif
1678 1.9 oster bp->b_flags |= B_ERROR;
1679 1.9 oster bp->b_error = raidbp->rf_buf.b_error ?
1680 1.9 oster raidbp->rf_buf.b_error : EIO;
1681 1.9 oster }
1682 1.5 oster #if 0
1683 1.9 oster db1_printf(("raidbp->rf_buf.b_bcount=%d\n", (int) raidbp->rf_buf.b_bcount));
1684 1.9 oster db1_printf(("raidbp->rf_buf.b_bufsize=%d\n", (int) raidbp->rf_buf.b_bufsize));
1685 1.9 oster db1_printf(("raidbp->rf_buf.b_resid=%d\n", (int) raidbp->rf_buf.b_resid));
1686 1.9 oster db1_printf(("raidbp->rf_buf.b_data=0x%x\n", raidbp->rf_buf.b_data));
1687 1.5 oster #endif
1688 1.1 oster
1689 1.9 oster /* XXX methinks this could be wrong... */
1690 1.1 oster #if 1
1691 1.9 oster bp->b_resid = raidbp->rf_buf.b_resid;
1692 1.1 oster #endif
1693 1.1 oster
1694 1.9 oster if (req->tracerec) {
1695 1.9 oster RF_ETIMER_STOP(req->tracerec->timer);
1696 1.9 oster RF_ETIMER_EVAL(req->tracerec->timer);
1697 1.9 oster RF_LOCK_MUTEX(rf_tracing_mutex);
1698 1.9 oster req->tracerec->diskwait_us += RF_ETIMER_VAL_US(req->tracerec->timer);
1699 1.9 oster req->tracerec->phys_io_us += RF_ETIMER_VAL_US(req->tracerec->timer);
1700 1.9 oster req->tracerec->num_phys_ios++;
1701 1.9 oster RF_UNLOCK_MUTEX(rf_tracing_mutex);
1702 1.9 oster }
1703 1.9 oster bp->b_bcount = raidbp->rf_buf.b_bcount; /* XXXX ?? */
1704 1.1 oster
1705 1.9 oster unit = queue->raidPtr->raidid; /* *Much* simpler :-> */
1706 1.1 oster
1707 1.1 oster
1708 1.9 oster /* XXX Ok, let's get aggressive... If B_ERROR is set, let's go
1709 1.9 oster * ballistic, and mark the component as hosed... */
1710 1.9 oster #if 1
1711 1.9 oster if (bp->b_flags & B_ERROR) {
1712 1.9 oster /* Mark the disk as dead */
1713 1.9 oster /* but only mark it once... */
1714 1.9 oster if (queue->raidPtr->Disks[queue->row][queue->col].status ==
1715 1.9 oster rf_ds_optimal) {
1716 1.9 oster printf("raid%d: IO Error. Marking %s as failed.\n",
1717 1.9 oster unit, queue->raidPtr->Disks[queue->row][queue->col].devname);
1718 1.9 oster queue->raidPtr->Disks[queue->row][queue->col].status =
1719 1.9 oster rf_ds_failed;
1720 1.9 oster queue->raidPtr->status[queue->row] = rf_rs_degraded;
1721 1.9 oster queue->raidPtr->numFailures++;
1722 1.11 oster /* XXX here we should bump the version number for each component, and write that data out */
1723 1.9 oster } else { /* Disk is already dead... */
1724 1.9 oster /* printf("Disk already marked as dead!\n"); */
1725 1.9 oster }
1726 1.4 oster
1727 1.9 oster }
1728 1.4 oster #endif
1729 1.4 oster
1730 1.9 oster rs = &raid_softc[unit];
1731 1.9 oster RAIDPUTBUF(rs, raidbp);
1732 1.9 oster
1733 1.4 oster
1734 1.9 oster if (bp->b_resid == 0) {
1735 1.9 oster db1_printf(("Disk is no longer busy for this buffer... %d %ld %ld\n",
1736 1.9 oster unit, bp->b_resid, bp->b_bcount));
1737 1.9 oster /* XXX is this the right place for a disk_unbusy()??!??!?!? */
1738 1.9 oster disk_unbusy(&rs->sc_dkdev, (bp->b_bcount - bp->b_resid));
1739 1.9 oster } else {
1740 1.9 oster db1_printf(("b_resid is still %ld\n", bp->b_resid));
1741 1.9 oster }
1742 1.1 oster
1743 1.9 oster rf_DiskIOComplete(queue, req, (bp->b_flags & B_ERROR) ? 1 : 0);
1744 1.9 oster (req->CompleteFunc) (req->argument, (bp->b_flags & B_ERROR) ? 1 : 0);
1745 1.9 oster /* printf("Exiting KernelWakeupFunc\n"); */
1746 1.1 oster
1747 1.9 oster splx(s); /* XXX */
1748 1.1 oster }
1749 1.1 oster
1750 1.1 oster
1751 1.1 oster
1752 1.1 oster /*
1753 1.1 oster * initialize a buf structure for doing an I/O in the kernel.
1754 1.1 oster */
1755 1.9 oster static void
1756 1.9 oster InitBP(
1757 1.9 oster struct buf * bp,
1758 1.9 oster struct vnode * b_vp,
1759 1.9 oster unsigned rw_flag,
1760 1.9 oster dev_t dev,
1761 1.9 oster RF_SectorNum_t startSect,
1762 1.9 oster RF_SectorCount_t numSect,
1763 1.9 oster caddr_t buf,
1764 1.9 oster void (*cbFunc) (struct buf *),
1765 1.9 oster void *cbArg,
1766 1.9 oster int logBytesPerSector,
1767 1.9 oster struct proc * b_proc)
1768 1.9 oster {
1769 1.9 oster /* bp->b_flags = B_PHYS | rw_flag; */
1770 1.9 oster bp->b_flags = B_CALL | rw_flag; /* XXX need B_PHYS here too??? */
1771 1.9 oster bp->b_bcount = numSect << logBytesPerSector;
1772 1.9 oster bp->b_bufsize = bp->b_bcount;
1773 1.9 oster bp->b_error = 0;
1774 1.9 oster bp->b_dev = dev;
1775 1.1 oster db1_printf(("bp->b_dev is %d\n", dev));
1776 1.9 oster bp->b_un.b_addr = buf;
1777 1.5 oster #if 0
1778 1.9 oster db1_printf(("bp->b_data=0x%x\n", bp->b_data));
1779 1.5 oster #endif
1780 1.1 oster
1781 1.9 oster bp->b_blkno = startSect;
1782 1.9 oster bp->b_resid = bp->b_bcount; /* XXX is this right!??!?!! */
1783 1.9 oster db1_printf(("b_bcount is: %d\n", (int) bp->b_bcount));
1784 1.1 oster if (bp->b_bcount == 0) {
1785 1.1 oster panic("bp->b_bcount is zero in InitBP!!\n");
1786 1.1 oster }
1787 1.9 oster bp->b_proc = b_proc;
1788 1.9 oster bp->b_iodone = cbFunc;
1789 1.9 oster bp->b_vp = b_vp;
1790 1.9 oster
1791 1.1 oster }
1792 1.1 oster
1793 1.1 oster static void
1794 1.1 oster raidgetdefaultlabel(raidPtr, rs, lp)
1795 1.1 oster RF_Raid_t *raidPtr;
1796 1.1 oster struct raid_softc *rs;
1797 1.1 oster struct disklabel *lp;
1798 1.1 oster {
1799 1.1 oster db1_printf(("Building a default label...\n"));
1800 1.1 oster bzero(lp, sizeof(*lp));
1801 1.1 oster
1802 1.1 oster /* fabricate a label... */
1803 1.1 oster lp->d_secperunit = raidPtr->totalSectors;
1804 1.1 oster lp->d_secsize = raidPtr->bytesPerSector;
1805 1.1 oster lp->d_nsectors = 1024 * (1024 / raidPtr->bytesPerSector);
1806 1.1 oster lp->d_ntracks = 1;
1807 1.1 oster lp->d_ncylinders = raidPtr->totalSectors / lp->d_nsectors;
1808 1.1 oster lp->d_secpercyl = lp->d_ntracks * lp->d_nsectors;
1809 1.1 oster
1810 1.1 oster strncpy(lp->d_typename, "raid", sizeof(lp->d_typename));
1811 1.9 oster lp->d_type = DTYPE_RAID;
1812 1.1 oster strncpy(lp->d_packname, "fictitious", sizeof(lp->d_packname));
1813 1.1 oster lp->d_rpm = 3600;
1814 1.1 oster lp->d_interleave = 1;
1815 1.1 oster lp->d_flags = 0;
1816 1.1 oster
1817 1.1 oster lp->d_partitions[RAW_PART].p_offset = 0;
1818 1.1 oster lp->d_partitions[RAW_PART].p_size = raidPtr->totalSectors;
1819 1.1 oster lp->d_partitions[RAW_PART].p_fstype = FS_UNUSED;
1820 1.1 oster lp->d_npartitions = RAW_PART + 1;
1821 1.1 oster
1822 1.1 oster lp->d_magic = DISKMAGIC;
1823 1.1 oster lp->d_magic2 = DISKMAGIC;
1824 1.1 oster lp->d_checksum = dkcksum(rs->sc_dkdev.dk_label);
1825 1.1 oster
1826 1.1 oster }
1827 1.1 oster /*
1828 1.1 oster * Read the disklabel from the raid device. If one is not present, fake one
1829 1.1 oster * up.
1830 1.1 oster */
1831 1.1 oster static void
1832 1.1 oster raidgetdisklabel(dev)
1833 1.9 oster dev_t dev;
1834 1.1 oster {
1835 1.9 oster int unit = raidunit(dev);
1836 1.1 oster struct raid_softc *rs = &raid_softc[unit];
1837 1.9 oster char *errstring;
1838 1.1 oster struct disklabel *lp = rs->sc_dkdev.dk_label;
1839 1.1 oster struct cpu_disklabel *clp = rs->sc_dkdev.dk_cpulabel;
1840 1.1 oster RF_Raid_t *raidPtr;
1841 1.1 oster
1842 1.1 oster db1_printf(("Getting the disklabel...\n"));
1843 1.1 oster
1844 1.1 oster bzero(clp, sizeof(*clp));
1845 1.1 oster
1846 1.1 oster raidPtr = raidPtrs[unit];
1847 1.1 oster
1848 1.1 oster raidgetdefaultlabel(raidPtr, rs, lp);
1849 1.1 oster
1850 1.1 oster /*
1851 1.1 oster * Call the generic disklabel extraction routine.
1852 1.1 oster */
1853 1.1 oster errstring = readdisklabel(RAIDLABELDEV(dev), raidstrategy,
1854 1.1 oster rs->sc_dkdev.dk_label, rs->sc_dkdev.dk_cpulabel);
1855 1.9 oster if (errstring)
1856 1.1 oster raidmakedisklabel(rs);
1857 1.1 oster else {
1858 1.9 oster int i;
1859 1.1 oster struct partition *pp;
1860 1.1 oster
1861 1.1 oster /*
1862 1.1 oster * Sanity check whether the found disklabel is valid.
1863 1.1 oster *
1864 1.1 oster * This is necessary since total size of the raid device
1865 1.1 oster * may vary when an interleave is changed even though exactly
1866 1.1 oster * same componets are used, and old disklabel may used
1867 1.1 oster * if that is found.
1868 1.1 oster */
1869 1.1 oster if (lp->d_secperunit != rs->sc_size)
1870 1.1 oster printf("WARNING: %s: "
1871 1.1 oster "total sector size in disklabel (%d) != "
1872 1.18 oster "the size of raid (%ld)\n", rs->sc_xname,
1873 1.18 oster lp->d_secperunit, (long) rs->sc_size);
1874 1.1 oster for (i = 0; i < lp->d_npartitions; i++) {
1875 1.1 oster pp = &lp->d_partitions[i];
1876 1.1 oster if (pp->p_offset + pp->p_size > rs->sc_size)
1877 1.1 oster printf("WARNING: %s: end of partition `%c' "
1878 1.18 oster "exceeds the size of raid (%ld)\n",
1879 1.18 oster rs->sc_xname, 'a' + i, (long) rs->sc_size);
1880 1.1 oster }
1881 1.1 oster }
1882 1.1 oster
1883 1.1 oster }
1884 1.1 oster /*
1885 1.1 oster * Take care of things one might want to take care of in the event
1886 1.1 oster * that a disklabel isn't present.
1887 1.1 oster */
1888 1.1 oster static void
1889 1.1 oster raidmakedisklabel(rs)
1890 1.1 oster struct raid_softc *rs;
1891 1.1 oster {
1892 1.1 oster struct disklabel *lp = rs->sc_dkdev.dk_label;
1893 1.1 oster db1_printf(("Making a label..\n"));
1894 1.1 oster
1895 1.1 oster /*
1896 1.1 oster * For historical reasons, if there's no disklabel present
1897 1.1 oster * the raw partition must be marked FS_BSDFFS.
1898 1.1 oster */
1899 1.1 oster
1900 1.1 oster lp->d_partitions[RAW_PART].p_fstype = FS_BSDFFS;
1901 1.1 oster
1902 1.1 oster strncpy(lp->d_packname, "default label", sizeof(lp->d_packname));
1903 1.1 oster
1904 1.1 oster lp->d_checksum = dkcksum(lp);
1905 1.1 oster }
1906 1.1 oster /*
1907 1.1 oster * Lookup the provided name in the filesystem. If the file exists,
1908 1.1 oster * is a valid block device, and isn't being used by anyone else,
1909 1.1 oster * set *vpp to the file's vnode.
1910 1.9 oster * You'll find the original of this in ccd.c
1911 1.1 oster */
1912 1.1 oster int
1913 1.1 oster raidlookup(path, p, vpp)
1914 1.9 oster char *path;
1915 1.1 oster struct proc *p;
1916 1.1 oster struct vnode **vpp; /* result */
1917 1.1 oster {
1918 1.1 oster struct nameidata nd;
1919 1.1 oster struct vnode *vp;
1920 1.1 oster struct vattr va;
1921 1.9 oster int error;
1922 1.1 oster
1923 1.1 oster NDINIT(&nd, LOOKUP, FOLLOW, UIO_SYSSPACE, path, p);
1924 1.9 oster if ((error = vn_open(&nd, FREAD | FWRITE, 0)) != 0) {
1925 1.1 oster #ifdef DEBUG
1926 1.9 oster printf("RAIDframe: vn_open returned %d\n", error);
1927 1.1 oster #endif
1928 1.1 oster return (error);
1929 1.1 oster }
1930 1.1 oster vp = nd.ni_vp;
1931 1.1 oster if (vp->v_usecount > 1) {
1932 1.1 oster VOP_UNLOCK(vp, 0);
1933 1.9 oster (void) vn_close(vp, FREAD | FWRITE, p->p_ucred, p);
1934 1.1 oster return (EBUSY);
1935 1.1 oster }
1936 1.1 oster if ((error = VOP_GETATTR(vp, &va, p->p_ucred, p)) != 0) {
1937 1.1 oster VOP_UNLOCK(vp, 0);
1938 1.9 oster (void) vn_close(vp, FREAD | FWRITE, p->p_ucred, p);
1939 1.1 oster return (error);
1940 1.1 oster }
1941 1.1 oster /* XXX: eventually we should handle VREG, too. */
1942 1.1 oster if (va.va_type != VBLK) {
1943 1.1 oster VOP_UNLOCK(vp, 0);
1944 1.9 oster (void) vn_close(vp, FREAD | FWRITE, p->p_ucred, p);
1945 1.1 oster return (ENOTBLK);
1946 1.1 oster }
1947 1.1 oster VOP_UNLOCK(vp, 0);
1948 1.1 oster *vpp = vp;
1949 1.1 oster return (0);
1950 1.1 oster }
1951 1.1 oster /*
1952 1.1 oster * Wait interruptibly for an exclusive lock.
1953 1.1 oster *
1954 1.1 oster * XXX
1955 1.1 oster * Several drivers do this; it should be abstracted and made MP-safe.
1956 1.1 oster * (Hmm... where have we seen this warning before :-> GO )
1957 1.1 oster */
1958 1.1 oster static int
1959 1.1 oster raidlock(rs)
1960 1.1 oster struct raid_softc *rs;
1961 1.1 oster {
1962 1.9 oster int error;
1963 1.1 oster
1964 1.1 oster while ((rs->sc_flags & RAIDF_LOCKED) != 0) {
1965 1.1 oster rs->sc_flags |= RAIDF_WANTED;
1966 1.9 oster if ((error =
1967 1.9 oster tsleep(rs, PRIBIO | PCATCH, "raidlck", 0)) != 0)
1968 1.1 oster return (error);
1969 1.1 oster }
1970 1.1 oster rs->sc_flags |= RAIDF_LOCKED;
1971 1.1 oster return (0);
1972 1.1 oster }
1973 1.1 oster /*
1974 1.1 oster * Unlock and wake up any waiters.
1975 1.1 oster */
1976 1.1 oster static void
1977 1.1 oster raidunlock(rs)
1978 1.1 oster struct raid_softc *rs;
1979 1.1 oster {
1980 1.1 oster
1981 1.1 oster rs->sc_flags &= ~RAIDF_LOCKED;
1982 1.1 oster if ((rs->sc_flags & RAIDF_WANTED) != 0) {
1983 1.1 oster rs->sc_flags &= ~RAIDF_WANTED;
1984 1.1 oster wakeup(rs);
1985 1.1 oster }
1986 1.11 oster }
1987 1.11 oster
1988 1.11 oster
1989 1.11 oster #define RF_COMPONENT_INFO_OFFSET 16384 /* bytes */
1990 1.11 oster #define RF_COMPONENT_INFO_SIZE 1024 /* bytes */
1991 1.11 oster
1992 1.11 oster int
1993 1.12 oster raidmarkclean(dev_t dev, struct vnode *b_vp, int mod_counter)
1994 1.12 oster {
1995 1.12 oster RF_ComponentLabel_t component_label;
1996 1.12 oster raidread_component_label(dev, b_vp, &component_label);
1997 1.12 oster component_label.mod_counter = mod_counter;
1998 1.12 oster component_label.clean = RF_RAID_CLEAN;
1999 1.12 oster raidwrite_component_label(dev, b_vp, &component_label);
2000 1.12 oster return(0);
2001 1.12 oster }
2002 1.12 oster
2003 1.12 oster
2004 1.12 oster int
2005 1.12 oster raidmarkdirty(dev_t dev, struct vnode *b_vp, int mod_counter)
2006 1.11 oster {
2007 1.12 oster RF_ComponentLabel_t component_label;
2008 1.12 oster raidread_component_label(dev, b_vp, &component_label);
2009 1.12 oster component_label.mod_counter = mod_counter;
2010 1.12 oster component_label.clean = RF_RAID_DIRTY;
2011 1.12 oster raidwrite_component_label(dev, b_vp, &component_label);
2012 1.11 oster return(0);
2013 1.11 oster }
2014 1.11 oster
2015 1.11 oster /* ARGSUSED */
2016 1.11 oster int
2017 1.29.8.2 wrstuden raidread_component_label(dev, b_vp, component_label, bshift)
2018 1.11 oster dev_t dev;
2019 1.11 oster struct vnode *b_vp;
2020 1.11 oster RF_ComponentLabel_t *component_label;
2021 1.29.8.1 wrstuden int bshift;
2022 1.11 oster {
2023 1.11 oster struct buf *bp;
2024 1.11 oster int error;
2025 1.11 oster
2026 1.11 oster /* XXX should probably ensure that we don't try to do this if
2027 1.11 oster someone has changed rf_protected_sectors. */
2028 1.11 oster
2029 1.11 oster /* get a block of the appropriate size... */
2030 1.11 oster bp = geteblk((int)RF_COMPONENT_INFO_SIZE);
2031 1.29.8.1 wrstuden if (bshift < 0) {
2032 1.29.8.1 wrstuden error = EINVAL;
2033 1.29.8.1 wrstuden goto out;
2034 1.29.8.1 wrstuden }
2035 1.11 oster bp->b_dev = dev;
2036 1.29.8.1 wrstuden bp->b_bshift = bshift;
2037 1.29.8.1 wrstuden bp->b_bsize = blocksize(bshift);
2038 1.11 oster
2039 1.11 oster /* get our ducks in a row for the read */
2040 1.29.8.1 wrstuden bp->b_blkno = btodb(RF_COMPONENT_INFO_OFFSET, bshift);
2041 1.29.8.1 wrstuden bp->b_resid = btodb(RF_COMPONENT_INFO_SIZE , bshift);
2042 1.11 oster bp->b_bcount = RF_COMPONENT_INFO_SIZE;
2043 1.11 oster bp->b_flags = B_BUSY | B_READ;
2044 1.11 oster
2045 1.11 oster (*bdevsw[major(bp->b_dev)].d_strategy)(bp);
2046 1.11 oster
2047 1.11 oster error = biowait(bp);
2048 1.11 oster
2049 1.29.8.1 wrstuden out:
2050 1.11 oster if (!error) {
2051 1.11 oster memcpy(component_label, bp->b_un.b_addr,
2052 1.11 oster sizeof(RF_ComponentLabel_t));
2053 1.12 oster #if 0
2054 1.11 oster printf("raidread_component_label: got component label:\n");
2055 1.11 oster printf("Version: %d\n",component_label->version);
2056 1.11 oster printf("Serial Number: %d\n",component_label->serial_number);
2057 1.11 oster printf("Mod counter: %d\n",component_label->mod_counter);
2058 1.11 oster printf("Row: %d\n", component_label->row);
2059 1.11 oster printf("Column: %d\n", component_label->column);
2060 1.11 oster printf("Num Rows: %d\n", component_label->num_rows);
2061 1.11 oster printf("Num Columns: %d\n", component_label->num_columns);
2062 1.11 oster printf("Clean: %d\n", component_label->clean);
2063 1.11 oster printf("Status: %d\n", component_label->status);
2064 1.11 oster #endif
2065 1.11 oster } else {
2066 1.11 oster printf("Failed to read RAID component label!\n");
2067 1.11 oster }
2068 1.11 oster
2069 1.11 oster bp->b_flags = B_INVAL | B_AGE;
2070 1.11 oster brelse(bp);
2071 1.11 oster return(error);
2072 1.11 oster }
2073 1.11 oster /* ARGSUSED */
2074 1.11 oster int
2075 1.29.8.1 wrstuden raidwrite_component_label(dev, b_vp, component_label, bshift, bsize)
2076 1.11 oster dev_t dev;
2077 1.11 oster struct vnode *b_vp;
2078 1.11 oster RF_ComponentLabel_t *component_label;
2079 1.29.8.1 wrstuden int bshift;
2080 1.29.8.1 wrstuden int bsize;
2081 1.11 oster {
2082 1.11 oster struct buf *bp;
2083 1.11 oster int error;
2084 1.11 oster
2085 1.11 oster /* get a block of the appropriate size... */
2086 1.11 oster bp = geteblk((int)RF_COMPONENT_INFO_SIZE);
2087 1.29.8.1 wrstuden if (bshift < 0) {
2088 1.29.8.1 wrstuden error = EINVAL;
2089 1.29.8.1 wrstuden goto out;
2090 1.29.8.1 wrstuden }
2091 1.11 oster bp->b_dev = dev;
2092 1.29.8.1 wrstuden bp->b_bshift = bshift;
2093 1.29.8.1 wrstuden bp->b_bsize = blocksize(bshift);
2094 1.11 oster
2095 1.11 oster /* get our ducks in a row for the write */
2096 1.29.8.1 wrstuden bp->b_blkno = btodb(RF_COMPONENT_INFO_OFFSET, bshift);
2097 1.29.8.1 wrstuden bp->b_resid = btodb(RF_COMPONENT_INFO_SIZE, bshift);
2098 1.11 oster bp->b_bcount = RF_COMPONENT_INFO_SIZE;
2099 1.11 oster bp->b_flags = B_BUSY | B_WRITE;
2100 1.11 oster
2101 1.11 oster memset( bp->b_un.b_addr, 0, RF_COMPONENT_INFO_SIZE );
2102 1.11 oster
2103 1.11 oster memcpy( bp->b_un.b_addr, component_label, sizeof(RF_ComponentLabel_t));
2104 1.11 oster
2105 1.11 oster (*bdevsw[major(bp->b_dev)].d_strategy)(bp);
2106 1.11 oster error = biowait(bp);
2107 1.29.8.1 wrstuden
2108 1.29.8.1 wrstuden out:
2109 1.11 oster bp->b_flags = B_INVAL | B_AGE;
2110 1.11 oster brelse(bp);
2111 1.11 oster if (error) {
2112 1.11 oster printf("Failed to write RAID component info!\n");
2113 1.11 oster }
2114 1.11 oster
2115 1.11 oster return(error);
2116 1.1 oster }
2117 1.12 oster
2118 1.12 oster void
2119 1.12 oster rf_markalldirty( raidPtr )
2120 1.12 oster RF_Raid_t *raidPtr;
2121 1.12 oster {
2122 1.12 oster RF_ComponentLabel_t c_label;
2123 1.12 oster int r,c;
2124 1.12 oster
2125 1.12 oster raidPtr->mod_counter++;
2126 1.12 oster for (r = 0; r < raidPtr->numRow; r++) {
2127 1.12 oster for (c = 0; c < raidPtr->numCol; c++) {
2128 1.12 oster if (raidPtr->Disks[r][c].status != rf_ds_failed) {
2129 1.12 oster raidread_component_label(
2130 1.12 oster raidPtr->Disks[r][c].dev,
2131 1.12 oster raidPtr->raid_cinfo[r][c].ci_vp,
2132 1.12 oster &c_label);
2133 1.12 oster if (c_label.status == rf_ds_spared) {
2134 1.12 oster /* XXX do something special...
2135 1.12 oster but whatever you do, don't
2136 1.12 oster try to access it!! */
2137 1.12 oster } else {
2138 1.12 oster #if 0
2139 1.12 oster c_label.status =
2140 1.12 oster raidPtr->Disks[r][c].status;
2141 1.12 oster raidwrite_component_label(
2142 1.12 oster raidPtr->Disks[r][c].dev,
2143 1.12 oster raidPtr->raid_cinfo[r][c].ci_vp,
2144 1.12 oster &c_label);
2145 1.12 oster #endif
2146 1.12 oster raidmarkdirty(
2147 1.12 oster raidPtr->Disks[r][c].dev,
2148 1.12 oster raidPtr->raid_cinfo[r][c].ci_vp,
2149 1.12 oster raidPtr->mod_counter);
2150 1.12 oster }
2151 1.12 oster }
2152 1.12 oster }
2153 1.12 oster }
2154 1.13 oster /* printf("Component labels marked dirty.\n"); */
2155 1.12 oster #if 0
2156 1.12 oster for( c = 0; c < raidPtr->numSpare ; c++) {
2157 1.12 oster sparecol = raidPtr->numCol + c;
2158 1.12 oster if (raidPtr->Disks[r][sparecol].status == rf_ds_used_spare) {
2159 1.12 oster /*
2160 1.12 oster
2161 1.12 oster XXX this is where we get fancy and map this spare
2162 1.12 oster into it's correct spot in the array.
2163 1.12 oster
2164 1.12 oster */
2165 1.12 oster /*
2166 1.12 oster
2167 1.12 oster we claim this disk is "optimal" if it's
2168 1.12 oster rf_ds_used_spare, as that means it should be
2169 1.12 oster directly substitutable for the disk it replaced.
2170 1.12 oster We note that too...
2171 1.12 oster
2172 1.12 oster */
2173 1.12 oster
2174 1.12 oster for(i=0;i<raidPtr->numRow;i++) {
2175 1.12 oster for(j=0;j<raidPtr->numCol;j++) {
2176 1.12 oster if ((raidPtr->Disks[i][j].spareRow ==
2177 1.12 oster r) &&
2178 1.12 oster (raidPtr->Disks[i][j].spareCol ==
2179 1.12 oster sparecol)) {
2180 1.12 oster srow = r;
2181 1.12 oster scol = sparecol;
2182 1.12 oster break;
2183 1.12 oster }
2184 1.12 oster }
2185 1.12 oster }
2186 1.12 oster
2187 1.12 oster raidread_component_label(
2188 1.12 oster raidPtr->Disks[r][sparecol].dev,
2189 1.12 oster raidPtr->raid_cinfo[r][sparecol].ci_vp,
2190 1.12 oster &c_label);
2191 1.12 oster /* make sure status is noted */
2192 1.12 oster c_label.version = RF_COMPONENT_LABEL_VERSION;
2193 1.12 oster c_label.mod_counter = raidPtr->mod_counter;
2194 1.12 oster c_label.serial_number = raidPtr->serial_number;
2195 1.12 oster c_label.row = srow;
2196 1.12 oster c_label.column = scol;
2197 1.12 oster c_label.num_rows = raidPtr->numRow;
2198 1.12 oster c_label.num_columns = raidPtr->numCol;
2199 1.12 oster c_label.clean = RF_RAID_DIRTY; /* changed in a bit*/
2200 1.12 oster c_label.status = rf_ds_optimal;
2201 1.12 oster raidwrite_component_label(
2202 1.12 oster raidPtr->Disks[r][sparecol].dev,
2203 1.12 oster raidPtr->raid_cinfo[r][sparecol].ci_vp,
2204 1.12 oster &c_label);
2205 1.12 oster raidmarkclean( raidPtr->Disks[r][sparecol].dev,
2206 1.12 oster raidPtr->raid_cinfo[r][sparecol].ci_vp);
2207 1.12 oster }
2208 1.12 oster }
2209 1.12 oster
2210 1.12 oster #endif
2211 1.12 oster }
2212 1.12 oster
2213 1.13 oster
2214 1.13 oster void
2215 1.13 oster rf_update_component_labels( raidPtr )
2216 1.13 oster RF_Raid_t *raidPtr;
2217 1.13 oster {
2218 1.13 oster RF_ComponentLabel_t c_label;
2219 1.13 oster int sparecol;
2220 1.13 oster int r,c;
2221 1.13 oster int i,j;
2222 1.13 oster int srow, scol;
2223 1.13 oster
2224 1.13 oster srow = -1;
2225 1.13 oster scol = -1;
2226 1.13 oster
2227 1.13 oster /* XXX should do extra checks to make sure things really are clean,
2228 1.13 oster rather than blindly setting the clean bit... */
2229 1.13 oster
2230 1.13 oster raidPtr->mod_counter++;
2231 1.13 oster
2232 1.13 oster for (r = 0; r < raidPtr->numRow; r++) {
2233 1.13 oster for (c = 0; c < raidPtr->numCol; c++) {
2234 1.13 oster if (raidPtr->Disks[r][c].status == rf_ds_optimal) {
2235 1.13 oster raidread_component_label(
2236 1.13 oster raidPtr->Disks[r][c].dev,
2237 1.13 oster raidPtr->raid_cinfo[r][c].ci_vp,
2238 1.13 oster &c_label);
2239 1.13 oster /* make sure status is noted */
2240 1.13 oster c_label.status = rf_ds_optimal;
2241 1.13 oster raidwrite_component_label(
2242 1.13 oster raidPtr->Disks[r][c].dev,
2243 1.13 oster raidPtr->raid_cinfo[r][c].ci_vp,
2244 1.13 oster &c_label);
2245 1.13 oster if (raidPtr->parity_good == RF_RAID_CLEAN) {
2246 1.13 oster raidmarkclean(
2247 1.13 oster raidPtr->Disks[r][c].dev,
2248 1.13 oster raidPtr->raid_cinfo[r][c].ci_vp,
2249 1.13 oster raidPtr->mod_counter);
2250 1.13 oster }
2251 1.13 oster }
2252 1.13 oster /* else we don't touch it.. */
2253 1.13 oster #if 0
2254 1.13 oster else if (raidPtr->Disks[r][c].status !=
2255 1.13 oster rf_ds_failed) {
2256 1.13 oster raidread_component_label(
2257 1.13 oster raidPtr->Disks[r][c].dev,
2258 1.13 oster raidPtr->raid_cinfo[r][c].ci_vp,
2259 1.13 oster &c_label);
2260 1.13 oster /* make sure status is noted */
2261 1.13 oster c_label.status =
2262 1.13 oster raidPtr->Disks[r][c].status;
2263 1.13 oster raidwrite_component_label(
2264 1.13 oster raidPtr->Disks[r][c].dev,
2265 1.13 oster raidPtr->raid_cinfo[r][c].ci_vp,
2266 1.13 oster &c_label);
2267 1.13 oster if (raidPtr->parity_good == RF_RAID_CLEAN) {
2268 1.13 oster raidmarkclean(
2269 1.13 oster raidPtr->Disks[r][c].dev,
2270 1.13 oster raidPtr->raid_cinfo[r][c].ci_vp,
2271 1.13 oster raidPtr->mod_counter);
2272 1.13 oster }
2273 1.13 oster }
2274 1.13 oster #endif
2275 1.13 oster }
2276 1.13 oster }
2277 1.13 oster
2278 1.13 oster for( c = 0; c < raidPtr->numSpare ; c++) {
2279 1.13 oster sparecol = raidPtr->numCol + c;
2280 1.13 oster if (raidPtr->Disks[0][sparecol].status == rf_ds_used_spare) {
2281 1.13 oster /*
2282 1.13 oster
2283 1.13 oster we claim this disk is "optimal" if it's
2284 1.13 oster rf_ds_used_spare, as that means it should be
2285 1.13 oster directly substitutable for the disk it replaced.
2286 1.13 oster We note that too...
2287 1.13 oster
2288 1.13 oster */
2289 1.13 oster
2290 1.13 oster for(i=0;i<raidPtr->numRow;i++) {
2291 1.13 oster for(j=0;j<raidPtr->numCol;j++) {
2292 1.13 oster if ((raidPtr->Disks[i][j].spareRow ==
2293 1.13 oster 0) &&
2294 1.13 oster (raidPtr->Disks[i][j].spareCol ==
2295 1.13 oster sparecol)) {
2296 1.13 oster srow = i;
2297 1.13 oster scol = j;
2298 1.13 oster break;
2299 1.13 oster }
2300 1.13 oster }
2301 1.13 oster }
2302 1.13 oster
2303 1.13 oster raidread_component_label(
2304 1.13 oster raidPtr->Disks[0][sparecol].dev,
2305 1.13 oster raidPtr->raid_cinfo[0][sparecol].ci_vp,
2306 1.13 oster &c_label);
2307 1.13 oster /* make sure status is noted */
2308 1.13 oster c_label.version = RF_COMPONENT_LABEL_VERSION;
2309 1.13 oster c_label.mod_counter = raidPtr->mod_counter;
2310 1.13 oster c_label.serial_number = raidPtr->serial_number;
2311 1.13 oster c_label.row = srow;
2312 1.13 oster c_label.column = scol;
2313 1.13 oster c_label.num_rows = raidPtr->numRow;
2314 1.13 oster c_label.num_columns = raidPtr->numCol;
2315 1.13 oster c_label.clean = RF_RAID_DIRTY; /* changed in a bit*/
2316 1.13 oster c_label.status = rf_ds_optimal;
2317 1.13 oster raidwrite_component_label(
2318 1.13 oster raidPtr->Disks[0][sparecol].dev,
2319 1.13 oster raidPtr->raid_cinfo[0][sparecol].ci_vp,
2320 1.13 oster &c_label);
2321 1.13 oster if (raidPtr->parity_good == RF_RAID_CLEAN) {
2322 1.13 oster raidmarkclean( raidPtr->Disks[0][sparecol].dev,
2323 1.13 oster raidPtr->raid_cinfo[0][sparecol].ci_vp,
2324 1.13 oster raidPtr->mod_counter);
2325 1.13 oster }
2326 1.13 oster }
2327 1.13 oster }
2328 1.13 oster /* printf("Component labels updated\n"); */
2329 1.13 oster }
2330