rf_netbsdkintf.c revision 1.329 1 1.329 pgoyette /* $NetBSD: rf_netbsdkintf.c,v 1.329 2015/12/26 12:59:00 pgoyette Exp $ */
2 1.281 rmind
3 1.1 oster /*-
4 1.295 erh * Copyright (c) 1996, 1997, 1998, 2008-2011 The NetBSD Foundation, Inc.
5 1.1 oster * All rights reserved.
6 1.1 oster *
7 1.1 oster * This code is derived from software contributed to The NetBSD Foundation
8 1.1 oster * by Greg Oster; Jason R. Thorpe.
9 1.1 oster *
10 1.1 oster * Redistribution and use in source and binary forms, with or without
11 1.1 oster * modification, are permitted provided that the following conditions
12 1.1 oster * are met:
13 1.1 oster * 1. Redistributions of source code must retain the above copyright
14 1.1 oster * notice, this list of conditions and the following disclaimer.
15 1.1 oster * 2. Redistributions in binary form must reproduce the above copyright
16 1.1 oster * notice, this list of conditions and the following disclaimer in the
17 1.1 oster * documentation and/or other materials provided with the distribution.
18 1.1 oster *
19 1.1 oster * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
20 1.1 oster * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
21 1.1 oster * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
22 1.1 oster * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
23 1.1 oster * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
24 1.1 oster * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
25 1.1 oster * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
26 1.1 oster * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
27 1.1 oster * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
28 1.1 oster * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
29 1.1 oster * POSSIBILITY OF SUCH DAMAGE.
30 1.1 oster */
31 1.1 oster
32 1.1 oster /*
33 1.281 rmind * Copyright (c) 1988 University of Utah.
34 1.1 oster * Copyright (c) 1990, 1993
35 1.1 oster * The Regents of the University of California. All rights reserved.
36 1.1 oster *
37 1.1 oster * This code is derived from software contributed to Berkeley by
38 1.1 oster * the Systems Programming Group of the University of Utah Computer
39 1.1 oster * Science Department.
40 1.1 oster *
41 1.1 oster * Redistribution and use in source and binary forms, with or without
42 1.1 oster * modification, are permitted provided that the following conditions
43 1.1 oster * are met:
44 1.1 oster * 1. Redistributions of source code must retain the above copyright
45 1.1 oster * notice, this list of conditions and the following disclaimer.
46 1.1 oster * 2. Redistributions in binary form must reproduce the above copyright
47 1.1 oster * notice, this list of conditions and the following disclaimer in the
48 1.1 oster * documentation and/or other materials provided with the distribution.
49 1.162 agc * 3. Neither the name of the University nor the names of its contributors
50 1.162 agc * may be used to endorse or promote products derived from this software
51 1.162 agc * without specific prior written permission.
52 1.162 agc *
53 1.162 agc * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
54 1.162 agc * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
55 1.162 agc * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
56 1.162 agc * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
57 1.162 agc * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
58 1.162 agc * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
59 1.162 agc * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
60 1.162 agc * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
61 1.162 agc * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
62 1.162 agc * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
63 1.162 agc * SUCH DAMAGE.
64 1.162 agc *
65 1.162 agc * from: Utah $Hdr: cd.c 1.6 90/11/28$
66 1.162 agc *
67 1.162 agc * @(#)cd.c 8.2 (Berkeley) 11/16/93
68 1.162 agc */
69 1.162 agc
70 1.162 agc /*
71 1.1 oster * Copyright (c) 1995 Carnegie-Mellon University.
72 1.1 oster * All rights reserved.
73 1.1 oster *
74 1.1 oster * Authors: Mark Holland, Jim Zelenka
75 1.1 oster *
76 1.1 oster * Permission to use, copy, modify and distribute this software and
77 1.1 oster * its documentation is hereby granted, provided that both the copyright
78 1.1 oster * notice and this permission notice appear in all copies of the
79 1.1 oster * software, derivative works or modified versions, and any portions
80 1.1 oster * thereof, and that both notices appear in supporting documentation.
81 1.1 oster *
82 1.1 oster * CARNEGIE MELLON ALLOWS FREE USE OF THIS SOFTWARE IN ITS "AS IS"
83 1.1 oster * CONDITION. CARNEGIE MELLON DISCLAIMS ANY LIABILITY OF ANY KIND
84 1.1 oster * FOR ANY DAMAGES WHATSOEVER RESULTING FROM THE USE OF THIS SOFTWARE.
85 1.1 oster *
86 1.1 oster * Carnegie Mellon requests users of this software to return to
87 1.1 oster *
88 1.1 oster * Software Distribution Coordinator or Software.Distribution (at) CS.CMU.EDU
89 1.1 oster * School of Computer Science
90 1.1 oster * Carnegie Mellon University
91 1.1 oster * Pittsburgh PA 15213-3890
92 1.1 oster *
93 1.1 oster * any improvements or extensions that they make and grant Carnegie the
94 1.1 oster * rights to redistribute these changes.
95 1.1 oster */
96 1.1 oster
97 1.1 oster /***********************************************************
98 1.1 oster *
99 1.1 oster * rf_kintf.c -- the kernel interface routines for RAIDframe
100 1.1 oster *
101 1.1 oster ***********************************************************/
102 1.112 lukem
103 1.112 lukem #include <sys/cdefs.h>
104 1.329 pgoyette __KERNEL_RCSID(0, "$NetBSD: rf_netbsdkintf.c,v 1.329 2015/12/26 12:59:00 pgoyette Exp $");
105 1.251 ad
106 1.251 ad #ifdef _KERNEL_OPT
107 1.254 christos #include "opt_compat_netbsd.h"
108 1.251 ad #include "opt_raid_autoconfig.h"
109 1.251 ad #endif
110 1.1 oster
111 1.113 lukem #include <sys/param.h>
112 1.1 oster #include <sys/errno.h>
113 1.1 oster #include <sys/pool.h>
114 1.152 thorpej #include <sys/proc.h>
115 1.1 oster #include <sys/queue.h>
116 1.1 oster #include <sys/disk.h>
117 1.1 oster #include <sys/device.h>
118 1.1 oster #include <sys/stat.h>
119 1.1 oster #include <sys/ioctl.h>
120 1.1 oster #include <sys/fcntl.h>
121 1.1 oster #include <sys/systm.h>
122 1.1 oster #include <sys/vnode.h>
123 1.1 oster #include <sys/disklabel.h>
124 1.1 oster #include <sys/conf.h>
125 1.1 oster #include <sys/buf.h>
126 1.182 yamt #include <sys/bufq.h>
127 1.65 oster #include <sys/reboot.h>
128 1.208 elad #include <sys/kauth.h>
129 1.327 pgoyette #include <sys/module.h>
130 1.8 oster
131 1.234 oster #include <prop/proplib.h>
132 1.234 oster
133 1.110 oster #include <dev/raidframe/raidframevar.h>
134 1.110 oster #include <dev/raidframe/raidframeio.h>
135 1.269 jld #include <dev/raidframe/rf_paritymap.h>
136 1.251 ad
137 1.1 oster #include "rf_raid.h"
138 1.44 oster #include "rf_copyback.h"
139 1.1 oster #include "rf_dag.h"
140 1.1 oster #include "rf_dagflags.h"
141 1.99 oster #include "rf_desc.h"
142 1.1 oster #include "rf_diskqueue.h"
143 1.1 oster #include "rf_etimer.h"
144 1.1 oster #include "rf_general.h"
145 1.1 oster #include "rf_kintf.h"
146 1.1 oster #include "rf_options.h"
147 1.1 oster #include "rf_driver.h"
148 1.1 oster #include "rf_parityscan.h"
149 1.1 oster #include "rf_threadstuff.h"
150 1.1 oster
151 1.254 christos #ifdef COMPAT_50
152 1.254 christos #include "rf_compat50.h"
153 1.254 christos #endif
154 1.254 christos
155 1.325 christos #include "ioconf.h"
156 1.325 christos
157 1.133 oster #ifdef DEBUG
158 1.9 oster int rf_kdebug_level = 0;
159 1.1 oster #define db1_printf(a) if (rf_kdebug_level > 0) printf a
160 1.9 oster #else /* DEBUG */
161 1.1 oster #define db1_printf(a) { }
162 1.9 oster #endif /* DEBUG */
163 1.1 oster
164 1.249 oster #if (RF_INCLUDE_PARITY_DECLUSTERING_DS > 0)
165 1.289 mrg static rf_declare_mutex2(rf_sparet_wait_mutex);
166 1.287 mrg static rf_declare_cond2(rf_sparet_wait_cv);
167 1.287 mrg static rf_declare_cond2(rf_sparet_resp_cv);
168 1.1 oster
169 1.10 oster static RF_SparetWait_t *rf_sparet_wait_queue; /* requests to install a
170 1.10 oster * spare table */
171 1.10 oster static RF_SparetWait_t *rf_sparet_resp_queue; /* responses from
172 1.10 oster * installation process */
173 1.249 oster #endif
174 1.153 thorpej
175 1.153 thorpej MALLOC_DEFINE(M_RAIDFRAME, "RAIDframe", "RAIDframe structures");
176 1.10 oster
177 1.1 oster /* prototypes */
178 1.187 christos static void KernelWakeupFunc(struct buf *);
179 1.187 christos static void InitBP(struct buf *, struct vnode *, unsigned,
180 1.225 christos dev_t, RF_SectorNum_t, RF_SectorCount_t, void *, void (*) (struct buf *),
181 1.187 christos void *, int, struct proc *);
182 1.300 christos struct raid_softc;
183 1.300 christos static void raidinit(struct raid_softc *);
184 1.1 oster
185 1.261 dyoung static int raid_match(device_t, cfdata_t, void *);
186 1.261 dyoung static void raid_attach(device_t, device_t, void *);
187 1.261 dyoung static int raid_detach(device_t, int);
188 1.130 gehenna
189 1.269 jld static int raidread_component_area(dev_t, struct vnode *, void *, size_t,
190 1.269 jld daddr_t, daddr_t);
191 1.269 jld static int raidwrite_component_area(dev_t, struct vnode *, void *, size_t,
192 1.269 jld daddr_t, daddr_t, int);
193 1.269 jld
194 1.276 mrg static int raidwrite_component_label(unsigned,
195 1.276 mrg dev_t, struct vnode *, RF_ComponentLabel_t *);
196 1.276 mrg static int raidread_component_label(unsigned,
197 1.276 mrg dev_t, struct vnode *, RF_ComponentLabel_t *);
198 1.269 jld
199 1.269 jld
200 1.324 mrg static dev_type_open(raidopen);
201 1.324 mrg static dev_type_close(raidclose);
202 1.324 mrg static dev_type_read(raidread);
203 1.324 mrg static dev_type_write(raidwrite);
204 1.324 mrg static dev_type_ioctl(raidioctl);
205 1.324 mrg static dev_type_strategy(raidstrategy);
206 1.324 mrg static dev_type_dump(raiddump);
207 1.324 mrg static dev_type_size(raidsize);
208 1.130 gehenna
209 1.130 gehenna const struct bdevsw raid_bdevsw = {
210 1.305 dholland .d_open = raidopen,
211 1.305 dholland .d_close = raidclose,
212 1.305 dholland .d_strategy = raidstrategy,
213 1.305 dholland .d_ioctl = raidioctl,
214 1.305 dholland .d_dump = raiddump,
215 1.305 dholland .d_psize = raidsize,
216 1.311 dholland .d_discard = nodiscard,
217 1.305 dholland .d_flag = D_DISK
218 1.130 gehenna };
219 1.130 gehenna
220 1.130 gehenna const struct cdevsw raid_cdevsw = {
221 1.305 dholland .d_open = raidopen,
222 1.305 dholland .d_close = raidclose,
223 1.305 dholland .d_read = raidread,
224 1.305 dholland .d_write = raidwrite,
225 1.305 dholland .d_ioctl = raidioctl,
226 1.305 dholland .d_stop = nostop,
227 1.305 dholland .d_tty = notty,
228 1.305 dholland .d_poll = nopoll,
229 1.305 dholland .d_mmap = nommap,
230 1.305 dholland .d_kqfilter = nokqfilter,
231 1.312 dholland .d_discard = nodiscard,
232 1.305 dholland .d_flag = D_DISK
233 1.130 gehenna };
234 1.1 oster
235 1.323 mlelstv static struct dkdriver rf_dkdriver = {
236 1.323 mlelstv .d_strategy = raidstrategy,
237 1.323 mlelstv .d_minphys = minphys
238 1.323 mlelstv };
239 1.235 oster
240 1.10 oster struct raid_softc {
241 1.261 dyoung device_t sc_dev;
242 1.300 christos int sc_unit;
243 1.10 oster int sc_flags; /* flags */
244 1.10 oster int sc_cflags; /* configuration flags */
245 1.327 pgoyette kmutex_t sc_mutex; /* interlock mutex */
246 1.327 pgoyette kcondvar_t sc_cv; /* and the condvar */
247 1.212 oster uint64_t sc_size; /* size of the raid device */
248 1.10 oster char sc_xname[20]; /* XXX external name */
249 1.10 oster struct disk sc_dkdev; /* generic disk device info */
250 1.191 yamt struct bufq_state *buf_queue; /* used for the device queue */
251 1.300 christos RF_Raid_t sc_r;
252 1.300 christos LIST_ENTRY(raid_softc) sc_link;
253 1.10 oster };
254 1.1 oster /* sc_flags */
255 1.1 oster #define RAIDF_INITED 0x01 /* unit has been initialized */
256 1.1 oster #define RAIDF_WLABEL 0x02 /* label area is writable */
257 1.1 oster #define RAIDF_LABELLING 0x04 /* unit is currently being labelled */
258 1.266 dyoung #define RAIDF_SHUTDOWN 0x08 /* unit is being shutdown */
259 1.1 oster #define RAIDF_WANTED 0x40 /* someone is waiting to obtain a lock */
260 1.1 oster #define RAIDF_LOCKED 0x80 /* unit is locked */
261 1.1 oster
262 1.1 oster #define raidunit(x) DISKUNIT(x)
263 1.1 oster
264 1.202 oster extern struct cfdriver raid_cd;
265 1.266 dyoung CFATTACH_DECL3_NEW(raid, sizeof(struct raid_softc),
266 1.266 dyoung raid_match, raid_attach, raid_detach, NULL, NULL, NULL,
267 1.266 dyoung DVF_DETACH_SHUTDOWN);
268 1.202 oster
269 1.186 perry /*
270 1.186 perry * Allow RAIDOUTSTANDING number of simultaneous IO's to this RAID device.
271 1.186 perry * Be aware that large numbers can allow the driver to consume a lot of
272 1.28 oster * kernel memory, especially on writes, and in degraded mode reads.
273 1.186 perry *
274 1.186 perry * For example: with a stripe width of 64 blocks (32k) and 5 disks,
275 1.186 perry * a single 64K write will typically require 64K for the old data,
276 1.186 perry * 64K for the old parity, and 64K for the new parity, for a total
277 1.28 oster * of 192K (if the parity buffer is not re-used immediately).
278 1.110 oster * Even it if is used immediately, that's still 128K, which when multiplied
279 1.28 oster * by say 10 requests, is 1280K, *on top* of the 640K of incoming data.
280 1.186 perry *
281 1.28 oster * Now in degraded mode, for example, a 64K read on the above setup may
282 1.186 perry * require data reconstruction, which will require *all* of the 4 remaining
283 1.28 oster * disks to participate -- 4 * 32K/disk == 128K again.
284 1.20 oster */
285 1.20 oster
286 1.20 oster #ifndef RAIDOUTSTANDING
287 1.28 oster #define RAIDOUTSTANDING 6
288 1.20 oster #endif
289 1.20 oster
290 1.1 oster #define RAIDLABELDEV(dev) \
291 1.1 oster (MAKEDISKDEV(major((dev)), raidunit((dev)), RAW_PART))
292 1.1 oster
293 1.1 oster /* declared here, and made public, for the benefit of KVM stuff.. */
294 1.9 oster
295 1.186 perry static void raidgetdefaultlabel(RF_Raid_t *, struct raid_softc *,
296 1.104 oster struct disklabel *);
297 1.104 oster static void raidgetdisklabel(dev_t);
298 1.104 oster static void raidmakedisklabel(struct raid_softc *);
299 1.1 oster
300 1.104 oster static int raidlock(struct raid_softc *);
301 1.104 oster static void raidunlock(struct raid_softc *);
302 1.1 oster
303 1.266 dyoung static int raid_detach_unlocked(struct raid_softc *);
304 1.266 dyoung
305 1.104 oster static void rf_markalldirty(RF_Raid_t *);
306 1.304 christos static void rf_set_geometry(struct raid_softc *, RF_Raid_t *);
307 1.48 oster
308 1.104 oster void rf_ReconThread(struct rf_recon_req *);
309 1.104 oster void rf_RewriteParityThread(RF_Raid_t *raidPtr);
310 1.104 oster void rf_CopybackThread(RF_Raid_t *raidPtr);
311 1.104 oster void rf_ReconstructInPlaceThread(struct rf_recon_req *);
312 1.261 dyoung int rf_autoconfig(device_t);
313 1.142 thorpej void rf_buildroothack(RF_ConfigSet_t *);
314 1.104 oster
315 1.104 oster RF_AutoConfig_t *rf_find_raid_components(void);
316 1.104 oster RF_ConfigSet_t *rf_create_auto_sets(RF_AutoConfig_t *);
317 1.104 oster static int rf_does_it_fit(RF_ConfigSet_t *,RF_AutoConfig_t *);
318 1.292 oster int rf_reasonable_label(RF_ComponentLabel_t *, uint64_t);
319 1.104 oster void rf_create_configuration(RF_AutoConfig_t *,RF_Config_t *, RF_Raid_t *);
320 1.104 oster int rf_set_autoconfig(RF_Raid_t *, int);
321 1.104 oster int rf_set_rootpartition(RF_Raid_t *, int);
322 1.104 oster void rf_release_all_vps(RF_ConfigSet_t *);
323 1.104 oster void rf_cleanup_config_set(RF_ConfigSet_t *);
324 1.104 oster int rf_have_enough_components(RF_ConfigSet_t *);
325 1.300 christos struct raid_softc *rf_auto_config_set(RF_ConfigSet_t *);
326 1.278 mrg static void rf_fix_old_label_size(RF_ComponentLabel_t *, uint64_t);
327 1.48 oster
328 1.295 erh /*
329 1.295 erh * Debugging, mostly. Set to 0 to not allow autoconfig to take place.
330 1.295 erh * Note that this is overridden by having RAID_AUTOCONFIG as an option
331 1.295 erh * in the kernel config file.
332 1.295 erh */
333 1.295 erh #ifdef RAID_AUTOCONFIG
334 1.295 erh int raidautoconfig = 1;
335 1.295 erh #else
336 1.295 erh int raidautoconfig = 0;
337 1.295 erh #endif
338 1.295 erh static bool raidautoconfigdone = false;
339 1.37 oster
340 1.177 oster struct RF_Pools_s rf_pools;
341 1.177 oster
342 1.300 christos static LIST_HEAD(, raid_softc) raids = LIST_HEAD_INITIALIZER(raids);
343 1.300 christos static kmutex_t raid_lock;
344 1.1 oster
345 1.300 christos static struct raid_softc *
346 1.300 christos raidcreate(int unit) {
347 1.300 christos struct raid_softc *sc = kmem_zalloc(sizeof(*sc), KM_SLEEP);
348 1.300 christos if (sc == NULL) {
349 1.1 oster #ifdef DIAGNOSTIC
350 1.300 christos printf("%s: out of memory\n", __func__);
351 1.1 oster #endif
352 1.300 christos return NULL;
353 1.1 oster }
354 1.300 christos sc->sc_unit = unit;
355 1.309 jakllsch bufq_alloc(&sc->buf_queue, "fcfs", BUFQ_SORT_RAWBLOCK);
356 1.327 pgoyette cv_init(&sc->sc_cv, "raidunit");
357 1.327 pgoyette mutex_init(&sc->sc_mutex, MUTEX_DEFAULT, IPL_NONE);
358 1.300 christos return sc;
359 1.300 christos }
360 1.1 oster
361 1.300 christos static void
362 1.300 christos raiddestroy(struct raid_softc *sc) {
363 1.327 pgoyette cv_destroy(&sc->sc_cv);
364 1.327 pgoyette mutex_destroy(&sc->sc_mutex);
365 1.300 christos bufq_free(sc->buf_queue);
366 1.300 christos kmem_free(sc, sizeof(*sc));
367 1.300 christos }
368 1.50 oster
369 1.300 christos static struct raid_softc *
370 1.327 pgoyette raidget(int unit, bool create) {
371 1.300 christos struct raid_softc *sc;
372 1.300 christos if (unit < 0) {
373 1.300 christos #ifdef DIAGNOSTIC
374 1.300 christos panic("%s: unit %d!", __func__, unit);
375 1.300 christos #endif
376 1.300 christos return NULL;
377 1.300 christos }
378 1.300 christos mutex_enter(&raid_lock);
379 1.300 christos LIST_FOREACH(sc, &raids, sc_link) {
380 1.300 christos if (sc->sc_unit == unit) {
381 1.300 christos mutex_exit(&raid_lock);
382 1.300 christos return sc;
383 1.300 christos }
384 1.300 christos }
385 1.300 christos mutex_exit(&raid_lock);
386 1.327 pgoyette if (!create)
387 1.327 pgoyette return NULL;
388 1.300 christos if ((sc = raidcreate(unit)) == NULL)
389 1.300 christos return NULL;
390 1.300 christos mutex_enter(&raid_lock);
391 1.300 christos LIST_INSERT_HEAD(&raids, sc, sc_link);
392 1.300 christos mutex_exit(&raid_lock);
393 1.300 christos return sc;
394 1.300 christos }
395 1.300 christos
396 1.300 christos static void
397 1.300 christos raidput(struct raid_softc *sc) {
398 1.300 christos mutex_enter(&raid_lock);
399 1.300 christos LIST_REMOVE(sc, sc_link);
400 1.300 christos mutex_exit(&raid_lock);
401 1.300 christos raiddestroy(sc);
402 1.300 christos }
403 1.1 oster
404 1.300 christos void
405 1.300 christos raidattach(int num)
406 1.300 christos {
407 1.62 oster
408 1.142 thorpej /*
409 1.327 pgoyette * Device attachment and associated initialization now occurs
410 1.327 pgoyette * as part of the module initialization.
411 1.142 thorpej */
412 1.142 thorpej }
413 1.142 thorpej
414 1.142 thorpej int
415 1.261 dyoung rf_autoconfig(device_t self)
416 1.142 thorpej {
417 1.142 thorpej RF_AutoConfig_t *ac_list;
418 1.142 thorpej RF_ConfigSet_t *config_sets;
419 1.142 thorpej
420 1.295 erh if (!raidautoconfig || raidautoconfigdone == true)
421 1.142 thorpej return (0);
422 1.142 thorpej
423 1.142 thorpej /* XXX This code can only be run once. */
424 1.295 erh raidautoconfigdone = true;
425 1.142 thorpej
426 1.307 christos #ifdef __HAVE_CPU_BOOTCONF
427 1.307 christos /*
428 1.307 christos * 0. find the boot device if needed first so we can use it later
429 1.307 christos * this needs to be done before we autoconfigure any raid sets,
430 1.307 christos * because if we use wedges we are not going to be able to open
431 1.307 christos * the boot device later
432 1.307 christos */
433 1.307 christos if (booted_device == NULL)
434 1.307 christos cpu_bootconf();
435 1.307 christos #endif
436 1.48 oster /* 1. locate all RAID components on the system */
437 1.258 ad aprint_debug("Searching for RAID components...\n");
438 1.48 oster ac_list = rf_find_raid_components();
439 1.48 oster
440 1.142 thorpej /* 2. Sort them into their respective sets. */
441 1.48 oster config_sets = rf_create_auto_sets(ac_list);
442 1.48 oster
443 1.142 thorpej /*
444 1.299 oster * 3. Evaluate each set and configure the valid ones.
445 1.142 thorpej * This gets done in rf_buildroothack().
446 1.142 thorpej */
447 1.142 thorpej rf_buildroothack(config_sets);
448 1.48 oster
449 1.213 christos return 1;
450 1.48 oster }
451 1.48 oster
452 1.306 christos static int
453 1.307 christos rf_containsboot(RF_Raid_t *r, device_t bdv) {
454 1.307 christos const char *bootname = device_xname(bdv);
455 1.306 christos size_t len = strlen(bootname);
456 1.306 christos
457 1.306 christos for (int col = 0; col < r->numCol; col++) {
458 1.307 christos const char *devname = r->Disks[col].devname;
459 1.306 christos devname += sizeof("/dev/") - 1;
460 1.307 christos if (strncmp(devname, "dk", 2) == 0) {
461 1.307 christos const char *parent =
462 1.307 christos dkwedge_get_parent_name(r->Disks[col].dev);
463 1.307 christos if (parent != NULL)
464 1.307 christos devname = parent;
465 1.307 christos }
466 1.306 christos if (strncmp(devname, bootname, len) == 0) {
467 1.306 christos struct raid_softc *sc = r->softc;
468 1.306 christos aprint_debug("raid%d includes boot device %s\n",
469 1.306 christos sc->sc_unit, devname);
470 1.306 christos return 1;
471 1.306 christos }
472 1.306 christos }
473 1.306 christos return 0;
474 1.306 christos }
475 1.306 christos
476 1.48 oster void
477 1.142 thorpej rf_buildroothack(RF_ConfigSet_t *config_sets)
478 1.48 oster {
479 1.48 oster RF_ConfigSet_t *cset;
480 1.48 oster RF_ConfigSet_t *next_cset;
481 1.51 oster int num_root;
482 1.300 christos struct raid_softc *sc, *rsc;
483 1.48 oster
484 1.300 christos sc = rsc = NULL;
485 1.51 oster num_root = 0;
486 1.48 oster cset = config_sets;
487 1.271 dyoung while (cset != NULL) {
488 1.48 oster next_cset = cset->next;
489 1.186 perry if (rf_have_enough_components(cset) &&
490 1.300 christos cset->ac->clabel->autoconfigure == 1) {
491 1.300 christos sc = rf_auto_config_set(cset);
492 1.300 christos if (sc != NULL) {
493 1.300 christos aprint_debug("raid%d: configured ok\n",
494 1.300 christos sc->sc_unit);
495 1.51 oster if (cset->rootable) {
496 1.300 christos rsc = sc;
497 1.51 oster num_root++;
498 1.51 oster }
499 1.51 oster } else {
500 1.51 oster /* The autoconfig didn't work :( */
501 1.300 christos aprint_debug("Autoconfig failed\n");
502 1.51 oster rf_release_all_vps(cset);
503 1.48 oster }
504 1.48 oster } else {
505 1.186 perry /* we're not autoconfiguring this set...
506 1.48 oster release the associated resources */
507 1.49 oster rf_release_all_vps(cset);
508 1.48 oster }
509 1.48 oster /* cleanup */
510 1.49 oster rf_cleanup_config_set(cset);
511 1.48 oster cset = next_cset;
512 1.48 oster }
513 1.122 oster
514 1.223 oster /* if the user has specified what the root device should be
515 1.223 oster then we don't touch booted_device or boothowto... */
516 1.223 oster
517 1.223 oster if (rootspec != NULL)
518 1.223 oster return;
519 1.223 oster
520 1.122 oster /* we found something bootable... */
521 1.122 oster
522 1.310 christos /*
523 1.310 christos * XXX: The following code assumes that the root raid
524 1.310 christos * is the first ('a') partition. This is about the best
525 1.310 christos * we can do with a BSD disklabel, but we might be able
526 1.310 christos * to do better with a GPT label, by setting a specified
527 1.310 christos * attribute to indicate the root partition. We can then
528 1.310 christos * stash the partition number in the r->root_partition
529 1.310 christos * high bits (the bottom 2 bits are already used). For
530 1.310 christos * now we just set booted_partition to 0 when we override
531 1.310 christos * root.
532 1.310 christos */
533 1.122 oster if (num_root == 1) {
534 1.306 christos device_t candidate_root;
535 1.300 christos if (rsc->sc_dkdev.dk_nwedges != 0) {
536 1.297 christos char cname[sizeof(cset->ac->devname)];
537 1.310 christos /* XXX: assume 'a' */
538 1.297 christos snprintf(cname, sizeof(cname), "%s%c",
539 1.300 christos device_xname(rsc->sc_dev), 'a');
540 1.306 christos candidate_root = dkwedge_find_by_wname(cname);
541 1.297 christos } else
542 1.306 christos candidate_root = rsc->sc_dev;
543 1.308 christos if (booted_device == NULL ||
544 1.308 christos rsc->sc_r.root_partition == 1 ||
545 1.310 christos rf_containsboot(&rsc->sc_r, booted_device)) {
546 1.308 christos booted_device = candidate_root;
547 1.310 christos booted_partition = 0; /* XXX assume 'a' */
548 1.310 christos }
549 1.122 oster } else if (num_root > 1) {
550 1.226 oster
551 1.226 oster /*
552 1.226 oster * Maybe the MD code can help. If it cannot, then
553 1.226 oster * setroot() will discover that we have no
554 1.226 oster * booted_device and will ask the user if nothing was
555 1.226 oster * hardwired in the kernel config file
556 1.226 oster */
557 1.226 oster if (booted_device == NULL)
558 1.226 oster return;
559 1.226 oster
560 1.226 oster num_root = 0;
561 1.300 christos mutex_enter(&raid_lock);
562 1.300 christos LIST_FOREACH(sc, &raids, sc_link) {
563 1.300 christos RF_Raid_t *r = &sc->sc_r;
564 1.300 christos if (r->valid == 0)
565 1.226 oster continue;
566 1.226 oster
567 1.300 christos if (r->root_partition == 0)
568 1.226 oster continue;
569 1.226 oster
570 1.306 christos if (rf_containsboot(r, booted_device)) {
571 1.226 oster num_root++;
572 1.300 christos rsc = sc;
573 1.226 oster }
574 1.226 oster }
575 1.300 christos mutex_exit(&raid_lock);
576 1.295 erh
577 1.226 oster if (num_root == 1) {
578 1.300 christos booted_device = rsc->sc_dev;
579 1.310 christos booted_partition = 0; /* XXX assume 'a' */
580 1.226 oster } else {
581 1.226 oster /* we can't guess.. require the user to answer... */
582 1.226 oster boothowto |= RB_ASKNAME;
583 1.226 oster }
584 1.51 oster }
585 1.1 oster }
586 1.1 oster
587 1.324 mrg static int
588 1.169 oster raidsize(dev_t dev)
589 1.1 oster {
590 1.1 oster struct raid_softc *rs;
591 1.1 oster struct disklabel *lp;
592 1.9 oster int part, unit, omask, size;
593 1.1 oster
594 1.1 oster unit = raidunit(dev);
595 1.327 pgoyette if ((rs = raidget(unit, false)) == NULL)
596 1.300 christos return -1;
597 1.1 oster if ((rs->sc_flags & RAIDF_INITED) == 0)
598 1.1 oster return (-1);
599 1.1 oster
600 1.1 oster part = DISKPART(dev);
601 1.1 oster omask = rs->sc_dkdev.dk_openmask & (1 << part);
602 1.1 oster lp = rs->sc_dkdev.dk_label;
603 1.1 oster
604 1.192 christos if (omask == 0 && raidopen(dev, 0, S_IFBLK, curlwp))
605 1.1 oster return (-1);
606 1.1 oster
607 1.1 oster if (lp->d_partitions[part].p_fstype != FS_SWAP)
608 1.1 oster size = -1;
609 1.1 oster else
610 1.1 oster size = lp->d_partitions[part].p_size *
611 1.1 oster (lp->d_secsize / DEV_BSIZE);
612 1.1 oster
613 1.192 christos if (omask == 0 && raidclose(dev, 0, S_IFBLK, curlwp))
614 1.1 oster return (-1);
615 1.1 oster
616 1.1 oster return (size);
617 1.1 oster
618 1.1 oster }
619 1.1 oster
620 1.324 mrg static int
621 1.231 oster raiddump(dev_t dev, daddr_t blkno, void *va, size_t size)
622 1.1 oster {
623 1.231 oster int unit = raidunit(dev);
624 1.231 oster struct raid_softc *rs;
625 1.231 oster const struct bdevsw *bdev;
626 1.231 oster struct disklabel *lp;
627 1.231 oster RF_Raid_t *raidPtr;
628 1.231 oster daddr_t offset;
629 1.231 oster int part, c, sparecol, j, scol, dumpto;
630 1.231 oster int error = 0;
631 1.231 oster
632 1.327 pgoyette if ((rs = raidget(unit, false)) == NULL)
633 1.300 christos return ENXIO;
634 1.231 oster
635 1.300 christos raidPtr = &rs->sc_r;
636 1.231 oster
637 1.231 oster if ((rs->sc_flags & RAIDF_INITED) == 0)
638 1.231 oster return ENXIO;
639 1.231 oster
640 1.231 oster /* we only support dumping to RAID 1 sets */
641 1.231 oster if (raidPtr->Layout.numDataCol != 1 ||
642 1.231 oster raidPtr->Layout.numParityCol != 1)
643 1.231 oster return EINVAL;
644 1.231 oster
645 1.231 oster if ((error = raidlock(rs)) != 0)
646 1.231 oster return error;
647 1.231 oster
648 1.231 oster if (size % DEV_BSIZE != 0) {
649 1.231 oster error = EINVAL;
650 1.231 oster goto out;
651 1.231 oster }
652 1.231 oster
653 1.231 oster if (blkno + size / DEV_BSIZE > rs->sc_size) {
654 1.231 oster printf("%s: blkno (%" PRIu64 ") + size / DEV_BSIZE (%zu) > "
655 1.231 oster "sc->sc_size (%" PRIu64 ")\n", __func__, blkno,
656 1.231 oster size / DEV_BSIZE, rs->sc_size);
657 1.231 oster error = EINVAL;
658 1.231 oster goto out;
659 1.231 oster }
660 1.231 oster
661 1.231 oster part = DISKPART(dev);
662 1.231 oster lp = rs->sc_dkdev.dk_label;
663 1.231 oster offset = lp->d_partitions[part].p_offset + RF_PROTECTED_SECTORS;
664 1.231 oster
665 1.231 oster /* figure out what device is alive.. */
666 1.231 oster
667 1.231 oster /*
668 1.231 oster Look for a component to dump to. The preference for the
669 1.231 oster component to dump to is as follows:
670 1.231 oster 1) the master
671 1.231 oster 2) a used_spare of the master
672 1.231 oster 3) the slave
673 1.231 oster 4) a used_spare of the slave
674 1.231 oster */
675 1.231 oster
676 1.231 oster dumpto = -1;
677 1.231 oster for (c = 0; c < raidPtr->numCol; c++) {
678 1.231 oster if (raidPtr->Disks[c].status == rf_ds_optimal) {
679 1.231 oster /* this might be the one */
680 1.231 oster dumpto = c;
681 1.231 oster break;
682 1.231 oster }
683 1.231 oster }
684 1.231 oster
685 1.231 oster /*
686 1.231 oster At this point we have possibly selected a live master or a
687 1.231 oster live slave. We now check to see if there is a spared
688 1.231 oster master (or a spared slave), if we didn't find a live master
689 1.231 oster or a live slave.
690 1.231 oster */
691 1.231 oster
692 1.231 oster for (c = 0; c < raidPtr->numSpare; c++) {
693 1.231 oster sparecol = raidPtr->numCol + c;
694 1.231 oster if (raidPtr->Disks[sparecol].status == rf_ds_used_spare) {
695 1.231 oster /* How about this one? */
696 1.231 oster scol = -1;
697 1.231 oster for(j=0;j<raidPtr->numCol;j++) {
698 1.231 oster if (raidPtr->Disks[j].spareCol == sparecol) {
699 1.231 oster scol = j;
700 1.231 oster break;
701 1.231 oster }
702 1.231 oster }
703 1.231 oster if (scol == 0) {
704 1.231 oster /*
705 1.231 oster We must have found a spared master!
706 1.231 oster We'll take that over anything else
707 1.231 oster found so far. (We couldn't have
708 1.231 oster found a real master before, since
709 1.231 oster this is a used spare, and it's
710 1.231 oster saying that it's replacing the
711 1.231 oster master.) On reboot (with
712 1.231 oster autoconfiguration turned on)
713 1.231 oster sparecol will become the 1st
714 1.231 oster component (component0) of this set.
715 1.231 oster */
716 1.231 oster dumpto = sparecol;
717 1.231 oster break;
718 1.231 oster } else if (scol != -1) {
719 1.231 oster /*
720 1.231 oster Must be a spared slave. We'll dump
721 1.231 oster to that if we havn't found anything
722 1.231 oster else so far.
723 1.231 oster */
724 1.231 oster if (dumpto == -1)
725 1.231 oster dumpto = sparecol;
726 1.231 oster }
727 1.231 oster }
728 1.231 oster }
729 1.231 oster
730 1.231 oster if (dumpto == -1) {
731 1.231 oster /* we couldn't find any live components to dump to!?!?
732 1.231 oster */
733 1.231 oster error = EINVAL;
734 1.231 oster goto out;
735 1.231 oster }
736 1.231 oster
737 1.231 oster bdev = bdevsw_lookup(raidPtr->Disks[dumpto].dev);
738 1.231 oster
739 1.231 oster /*
740 1.231 oster Note that blkno is relative to this particular partition.
741 1.231 oster By adding the offset of this partition in the RAID
742 1.231 oster set, and also adding RF_PROTECTED_SECTORS, we get a
743 1.231 oster value that is relative to the partition used for the
744 1.231 oster underlying component.
745 1.231 oster */
746 1.231 oster
747 1.231 oster error = (*bdev->d_dump)(raidPtr->Disks[dumpto].dev,
748 1.231 oster blkno + offset, va, size);
749 1.231 oster
750 1.231 oster out:
751 1.231 oster raidunlock(rs);
752 1.231 oster
753 1.231 oster return error;
754 1.1 oster }
755 1.324 mrg
756 1.1 oster /* ARGSUSED */
757 1.324 mrg static int
758 1.222 christos raidopen(dev_t dev, int flags, int fmt,
759 1.222 christos struct lwp *l)
760 1.1 oster {
761 1.9 oster int unit = raidunit(dev);
762 1.1 oster struct raid_softc *rs;
763 1.1 oster struct disklabel *lp;
764 1.9 oster int part, pmask;
765 1.9 oster int error = 0;
766 1.9 oster
767 1.327 pgoyette if ((rs = raidget(unit, true)) == NULL)
768 1.300 christos return ENXIO;
769 1.1 oster if ((error = raidlock(rs)) != 0)
770 1.9 oster return (error);
771 1.266 dyoung
772 1.266 dyoung if ((rs->sc_flags & RAIDF_SHUTDOWN) != 0) {
773 1.266 dyoung error = EBUSY;
774 1.266 dyoung goto bad;
775 1.266 dyoung }
776 1.266 dyoung
777 1.1 oster lp = rs->sc_dkdev.dk_label;
778 1.1 oster
779 1.1 oster part = DISKPART(dev);
780 1.213 christos
781 1.213 christos /*
782 1.213 christos * If there are wedges, and this is not RAW_PART, then we
783 1.213 christos * need to fail.
784 1.213 christos */
785 1.213 christos if (rs->sc_dkdev.dk_nwedges != 0 && part != RAW_PART) {
786 1.213 christos error = EBUSY;
787 1.213 christos goto bad;
788 1.213 christos }
789 1.1 oster pmask = (1 << part);
790 1.1 oster
791 1.1 oster if ((rs->sc_flags & RAIDF_INITED) &&
792 1.317 taca (rs->sc_dkdev.dk_nwedges == 0) &&
793 1.1 oster (rs->sc_dkdev.dk_openmask == 0))
794 1.9 oster raidgetdisklabel(dev);
795 1.1 oster
796 1.1 oster /* make sure that this partition exists */
797 1.1 oster
798 1.1 oster if (part != RAW_PART) {
799 1.1 oster if (((rs->sc_flags & RAIDF_INITED) == 0) ||
800 1.1 oster ((part >= lp->d_npartitions) ||
801 1.9 oster (lp->d_partitions[part].p_fstype == FS_UNUSED))) {
802 1.1 oster error = ENXIO;
803 1.213 christos goto bad;
804 1.1 oster }
805 1.1 oster }
806 1.1 oster /* Prevent this unit from being unconfigured while open. */
807 1.1 oster switch (fmt) {
808 1.1 oster case S_IFCHR:
809 1.1 oster rs->sc_dkdev.dk_copenmask |= pmask;
810 1.1 oster break;
811 1.1 oster
812 1.1 oster case S_IFBLK:
813 1.1 oster rs->sc_dkdev.dk_bopenmask |= pmask;
814 1.1 oster break;
815 1.1 oster }
816 1.13 oster
817 1.186 perry if ((rs->sc_dkdev.dk_openmask == 0) &&
818 1.13 oster ((rs->sc_flags & RAIDF_INITED) != 0)) {
819 1.13 oster /* First one... mark things as dirty... Note that we *MUST*
820 1.13 oster have done a configure before this. I DO NOT WANT TO BE
821 1.13 oster SCRIBBLING TO RANDOM COMPONENTS UNTIL IT'S BEEN DETERMINED
822 1.13 oster THAT THEY BELONG TOGETHER!!!!! */
823 1.13 oster /* XXX should check to see if we're only open for reading
824 1.13 oster here... If so, we needn't do this, but then need some
825 1.13 oster other way of keeping track of what's happened.. */
826 1.13 oster
827 1.300 christos rf_markalldirty(&rs->sc_r);
828 1.13 oster }
829 1.13 oster
830 1.13 oster
831 1.1 oster rs->sc_dkdev.dk_openmask =
832 1.1 oster rs->sc_dkdev.dk_copenmask | rs->sc_dkdev.dk_bopenmask;
833 1.1 oster
834 1.213 christos bad:
835 1.1 oster raidunlock(rs);
836 1.1 oster
837 1.9 oster return (error);
838 1.1 oster
839 1.1 oster
840 1.1 oster }
841 1.324 mrg
842 1.1 oster /* ARGSUSED */
843 1.324 mrg static int
844 1.222 christos raidclose(dev_t dev, int flags, int fmt, struct lwp *l)
845 1.1 oster {
846 1.9 oster int unit = raidunit(dev);
847 1.1 oster struct raid_softc *rs;
848 1.9 oster int error = 0;
849 1.9 oster int part;
850 1.1 oster
851 1.327 pgoyette if ((rs = raidget(unit, false)) == NULL)
852 1.300 christos return ENXIO;
853 1.1 oster
854 1.1 oster if ((error = raidlock(rs)) != 0)
855 1.1 oster return (error);
856 1.1 oster
857 1.1 oster part = DISKPART(dev);
858 1.1 oster
859 1.1 oster /* ...that much closer to allowing unconfiguration... */
860 1.1 oster switch (fmt) {
861 1.1 oster case S_IFCHR:
862 1.1 oster rs->sc_dkdev.dk_copenmask &= ~(1 << part);
863 1.1 oster break;
864 1.1 oster
865 1.1 oster case S_IFBLK:
866 1.1 oster rs->sc_dkdev.dk_bopenmask &= ~(1 << part);
867 1.1 oster break;
868 1.1 oster }
869 1.1 oster rs->sc_dkdev.dk_openmask =
870 1.1 oster rs->sc_dkdev.dk_copenmask | rs->sc_dkdev.dk_bopenmask;
871 1.186 perry
872 1.13 oster if ((rs->sc_dkdev.dk_openmask == 0) &&
873 1.13 oster ((rs->sc_flags & RAIDF_INITED) != 0)) {
874 1.186 perry /* Last one... device is not unconfigured yet.
875 1.186 perry Device shutdown has taken care of setting the
876 1.186 perry clean bits if RAIDF_INITED is not set
877 1.13 oster mark things as clean... */
878 1.147 oster
879 1.300 christos rf_update_component_labels(&rs->sc_r,
880 1.91 oster RF_FINAL_COMPONENT_UPDATE);
881 1.327 pgoyette }
882 1.327 pgoyette if ((rs->sc_dkdev.dk_openmask == 0) &&
883 1.327 pgoyette ((rs->sc_flags & RAIDF_SHUTDOWN) != 0)) {
884 1.327 pgoyette /*
885 1.327 pgoyette * Detach this raid unit
886 1.327 pgoyette */
887 1.327 pgoyette cfdata_t cf = NULL;
888 1.327 pgoyette int retcode = 0;
889 1.327 pgoyette
890 1.327 pgoyette if (rs->sc_dev != NULL) {
891 1.327 pgoyette cf = device_cfdata(rs->sc_dev);
892 1.186 perry
893 1.327 pgoyette raidunlock(rs);
894 1.327 pgoyette retcode = config_detach(rs->sc_dev, DETACH_QUIET);
895 1.327 pgoyette if (retcode == 0)
896 1.327 pgoyette /* free the pseudo device attach bits */
897 1.327 pgoyette free(cf, M_RAIDFRAME);
898 1.327 pgoyette } else {
899 1.327 pgoyette raidput(rs);
900 1.327 pgoyette }
901 1.327 pgoyette return retcode;
902 1.13 oster }
903 1.1 oster
904 1.1 oster raidunlock(rs);
905 1.1 oster return (0);
906 1.1 oster }
907 1.1 oster
908 1.324 mrg static void
909 1.169 oster raidstrategy(struct buf *bp)
910 1.1 oster {
911 1.300 christos unsigned int unit = raidunit(bp->b_dev);
912 1.1 oster RF_Raid_t *raidPtr;
913 1.9 oster int wlabel;
914 1.300 christos struct raid_softc *rs;
915 1.1 oster
916 1.327 pgoyette if ((rs = raidget(unit, false)) == NULL) {
917 1.30 oster bp->b_error = ENXIO;
918 1.196 yamt goto done;
919 1.30 oster }
920 1.300 christos if ((rs->sc_flags & RAIDF_INITED) == 0) {
921 1.300 christos bp->b_error = ENXIO;
922 1.196 yamt goto done;
923 1.1 oster }
924 1.300 christos raidPtr = &rs->sc_r;
925 1.1 oster if (!raidPtr->valid) {
926 1.1 oster bp->b_error = ENODEV;
927 1.196 yamt goto done;
928 1.1 oster }
929 1.1 oster if (bp->b_bcount == 0) {
930 1.1 oster db1_printf(("b_bcount is zero..\n"));
931 1.196 yamt goto done;
932 1.1 oster }
933 1.1 oster
934 1.1 oster /*
935 1.1 oster * Do bounds checking and adjust transfer. If there's an
936 1.1 oster * error, the bounds check will flag that for us.
937 1.1 oster */
938 1.1 oster
939 1.9 oster wlabel = rs->sc_flags & (RAIDF_WLABEL | RAIDF_LABELLING);
940 1.196 yamt if (DISKPART(bp->b_dev) == RAW_PART) {
941 1.196 yamt uint64_t size; /* device size in DEV_BSIZE unit */
942 1.196 yamt
943 1.196 yamt if (raidPtr->logBytesPerSector > DEV_BSHIFT) {
944 1.196 yamt size = raidPtr->totalSectors <<
945 1.196 yamt (raidPtr->logBytesPerSector - DEV_BSHIFT);
946 1.196 yamt } else {
947 1.196 yamt size = raidPtr->totalSectors >>
948 1.196 yamt (DEV_BSHIFT - raidPtr->logBytesPerSector);
949 1.196 yamt }
950 1.196 yamt if (bounds_check_with_mediasize(bp, DEV_BSIZE, size) <= 0) {
951 1.196 yamt goto done;
952 1.196 yamt }
953 1.196 yamt } else {
954 1.159 thorpej if (bounds_check_with_label(&rs->sc_dkdev, bp, wlabel) <= 0) {
955 1.1 oster db1_printf(("Bounds check failed!!:%d %d\n",
956 1.9 oster (int) bp->b_blkno, (int) wlabel));
957 1.196 yamt goto done;
958 1.1 oster }
959 1.196 yamt }
960 1.285 mrg
961 1.286 mrg rf_lock_mutex2(raidPtr->iodone_lock);
962 1.1 oster
963 1.1 oster bp->b_resid = 0;
964 1.34 oster
965 1.34 oster /* stuff it onto our queue */
966 1.253 yamt bufq_put(rs->buf_queue, bp);
967 1.34 oster
968 1.190 oster /* scheduled the IO to happen at the next convenient time */
969 1.286 mrg rf_signal_cond2(raidPtr->iodone_cv);
970 1.286 mrg rf_unlock_mutex2(raidPtr->iodone_lock);
971 1.34 oster
972 1.196 yamt return;
973 1.196 yamt
974 1.196 yamt done:
975 1.196 yamt bp->b_resid = bp->b_bcount;
976 1.196 yamt biodone(bp);
977 1.1 oster }
978 1.324 mrg
979 1.1 oster /* ARGSUSED */
980 1.324 mrg static int
981 1.222 christos raidread(dev_t dev, struct uio *uio, int flags)
982 1.1 oster {
983 1.9 oster int unit = raidunit(dev);
984 1.1 oster struct raid_softc *rs;
985 1.1 oster
986 1.327 pgoyette if ((rs = raidget(unit, false)) == NULL)
987 1.300 christos return ENXIO;
988 1.1 oster
989 1.1 oster if ((rs->sc_flags & RAIDF_INITED) == 0)
990 1.1 oster return (ENXIO);
991 1.1 oster
992 1.1 oster return (physio(raidstrategy, NULL, dev, B_READ, minphys, uio));
993 1.1 oster
994 1.1 oster }
995 1.324 mrg
996 1.1 oster /* ARGSUSED */
997 1.324 mrg static int
998 1.222 christos raidwrite(dev_t dev, struct uio *uio, int flags)
999 1.1 oster {
1000 1.9 oster int unit = raidunit(dev);
1001 1.1 oster struct raid_softc *rs;
1002 1.1 oster
1003 1.327 pgoyette if ((rs = raidget(unit, false)) == NULL)
1004 1.300 christos return ENXIO;
1005 1.1 oster
1006 1.1 oster if ((rs->sc_flags & RAIDF_INITED) == 0)
1007 1.1 oster return (ENXIO);
1008 1.147 oster
1009 1.1 oster return (physio(raidstrategy, NULL, dev, B_WRITE, minphys, uio));
1010 1.1 oster
1011 1.1 oster }
1012 1.1 oster
1013 1.266 dyoung static int
1014 1.266 dyoung raid_detach_unlocked(struct raid_softc *rs)
1015 1.266 dyoung {
1016 1.266 dyoung int error;
1017 1.266 dyoung RF_Raid_t *raidPtr;
1018 1.266 dyoung
1019 1.300 christos raidPtr = &rs->sc_r;
1020 1.266 dyoung
1021 1.266 dyoung /*
1022 1.266 dyoung * If somebody has a partition mounted, we shouldn't
1023 1.266 dyoung * shutdown.
1024 1.266 dyoung */
1025 1.266 dyoung if (rs->sc_dkdev.dk_openmask != 0)
1026 1.266 dyoung return EBUSY;
1027 1.266 dyoung
1028 1.266 dyoung if ((rs->sc_flags & RAIDF_INITED) == 0)
1029 1.266 dyoung ; /* not initialized: nothing to do */
1030 1.266 dyoung else if ((error = rf_Shutdown(raidPtr)) != 0)
1031 1.266 dyoung return error;
1032 1.266 dyoung else
1033 1.266 dyoung rs->sc_flags &= ~(RAIDF_INITED|RAIDF_SHUTDOWN);
1034 1.266 dyoung
1035 1.266 dyoung /* Detach the disk. */
1036 1.280 christos dkwedge_delall(&rs->sc_dkdev);
1037 1.266 dyoung disk_detach(&rs->sc_dkdev);
1038 1.266 dyoung disk_destroy(&rs->sc_dkdev);
1039 1.266 dyoung
1040 1.327 pgoyette /* Free the softc */
1041 1.328 pgoyette aprint_normal_dev(rs->sc_dev, "detached\n");
1042 1.327 pgoyette raidput(rs);
1043 1.327 pgoyette
1044 1.266 dyoung return 0;
1045 1.266 dyoung }
1046 1.266 dyoung
1047 1.324 mrg static int
1048 1.225 christos raidioctl(dev_t dev, u_long cmd, void *data, int flag, struct lwp *l)
1049 1.1 oster {
1050 1.9 oster int unit = raidunit(dev);
1051 1.9 oster int error = 0;
1052 1.298 buhrow int part, pmask, s;
1053 1.262 cegger cfdata_t cf;
1054 1.1 oster struct raid_softc *rs;
1055 1.1 oster RF_Config_t *k_cfg, *u_cfg;
1056 1.42 oster RF_Raid_t *raidPtr;
1057 1.48 oster RF_RaidDisk_t *diskPtr;
1058 1.41 oster RF_AccTotals_t *totals;
1059 1.41 oster RF_DeviceConfig_t *d_cfg, **ucfgp;
1060 1.1 oster u_char *specific_buf;
1061 1.11 oster int retcode = 0;
1062 1.11 oster int column;
1063 1.269 jld /* int raidid; */
1064 1.1 oster struct rf_recon_req *rrcopy, *rr;
1065 1.48 oster RF_ComponentLabel_t *clabel;
1066 1.209 oster RF_ComponentLabel_t *ci_label;
1067 1.48 oster RF_ComponentLabel_t **clabel_ptr;
1068 1.12 oster RF_SingleComponent_t *sparePtr,*componentPtr;
1069 1.12 oster RF_SingleComponent_t component;
1070 1.83 oster RF_ProgressInfo_t progressInfo, **progressInfoPtr;
1071 1.41 oster int i, j, d;
1072 1.102 fvdl #ifdef __HAVE_OLD_DISKLABEL
1073 1.102 fvdl struct disklabel newlabel;
1074 1.102 fvdl #endif
1075 1.1 oster
1076 1.327 pgoyette if ((rs = raidget(unit, false)) == NULL)
1077 1.300 christos return ENXIO;
1078 1.300 christos raidPtr = &rs->sc_r;
1079 1.1 oster
1080 1.276 mrg db1_printf(("raidioctl: %d %d %d %lu\n", (int) dev,
1081 1.276 mrg (int) DISKPART(dev), (int) unit, cmd));
1082 1.1 oster
1083 1.1 oster /* Must be open for writes for these commands... */
1084 1.1 oster switch (cmd) {
1085 1.213 christos #ifdef DIOCGSECTORSIZE
1086 1.213 christos case DIOCGSECTORSIZE:
1087 1.213 christos *(u_int *)data = raidPtr->bytesPerSector;
1088 1.213 christos return 0;
1089 1.213 christos case DIOCGMEDIASIZE:
1090 1.213 christos *(off_t *)data =
1091 1.213 christos (off_t)raidPtr->totalSectors * raidPtr->bytesPerSector;
1092 1.213 christos return 0;
1093 1.213 christos #endif
1094 1.1 oster case DIOCSDINFO:
1095 1.1 oster case DIOCWDINFO:
1096 1.102 fvdl #ifdef __HAVE_OLD_DISKLABEL
1097 1.102 fvdl case ODIOCWDINFO:
1098 1.102 fvdl case ODIOCSDINFO:
1099 1.102 fvdl #endif
1100 1.1 oster case DIOCWLABEL:
1101 1.213 christos case DIOCAWEDGE:
1102 1.213 christos case DIOCDWEDGE:
1103 1.315 mlelstv case DIOCMWEDGES:
1104 1.298 buhrow case DIOCSSTRATEGY:
1105 1.1 oster if ((flag & FWRITE) == 0)
1106 1.1 oster return (EBADF);
1107 1.1 oster }
1108 1.1 oster
1109 1.1 oster /* Must be initialized for these... */
1110 1.1 oster switch (cmd) {
1111 1.1 oster case DIOCGDINFO:
1112 1.1 oster case DIOCSDINFO:
1113 1.1 oster case DIOCWDINFO:
1114 1.102 fvdl #ifdef __HAVE_OLD_DISKLABEL
1115 1.102 fvdl case ODIOCGDINFO:
1116 1.102 fvdl case ODIOCWDINFO:
1117 1.102 fvdl case ODIOCSDINFO:
1118 1.102 fvdl case ODIOCGDEFLABEL:
1119 1.102 fvdl #endif
1120 1.326 christos case DIOCGPARTINFO:
1121 1.1 oster case DIOCWLABEL:
1122 1.1 oster case DIOCGDEFLABEL:
1123 1.213 christos case DIOCAWEDGE:
1124 1.213 christos case DIOCDWEDGE:
1125 1.213 christos case DIOCLWEDGES:
1126 1.315 mlelstv case DIOCMWEDGES:
1127 1.252 oster case DIOCCACHESYNC:
1128 1.1 oster case RAIDFRAME_SHUTDOWN:
1129 1.1 oster case RAIDFRAME_REWRITEPARITY:
1130 1.1 oster case RAIDFRAME_GET_INFO:
1131 1.1 oster case RAIDFRAME_RESET_ACCTOTALS:
1132 1.1 oster case RAIDFRAME_GET_ACCTOTALS:
1133 1.1 oster case RAIDFRAME_KEEP_ACCTOTALS:
1134 1.1 oster case RAIDFRAME_GET_SIZE:
1135 1.1 oster case RAIDFRAME_FAIL_DISK:
1136 1.1 oster case RAIDFRAME_COPYBACK:
1137 1.37 oster case RAIDFRAME_CHECK_RECON_STATUS:
1138 1.83 oster case RAIDFRAME_CHECK_RECON_STATUS_EXT:
1139 1.11 oster case RAIDFRAME_GET_COMPONENT_LABEL:
1140 1.11 oster case RAIDFRAME_SET_COMPONENT_LABEL:
1141 1.11 oster case RAIDFRAME_ADD_HOT_SPARE:
1142 1.11 oster case RAIDFRAME_REMOVE_HOT_SPARE:
1143 1.11 oster case RAIDFRAME_INIT_LABELS:
1144 1.12 oster case RAIDFRAME_REBUILD_IN_PLACE:
1145 1.23 oster case RAIDFRAME_CHECK_PARITY:
1146 1.37 oster case RAIDFRAME_CHECK_PARITYREWRITE_STATUS:
1147 1.83 oster case RAIDFRAME_CHECK_PARITYREWRITE_STATUS_EXT:
1148 1.37 oster case RAIDFRAME_CHECK_COPYBACK_STATUS:
1149 1.83 oster case RAIDFRAME_CHECK_COPYBACK_STATUS_EXT:
1150 1.48 oster case RAIDFRAME_SET_AUTOCONFIG:
1151 1.48 oster case RAIDFRAME_SET_ROOT:
1152 1.73 oster case RAIDFRAME_DELETE_COMPONENT:
1153 1.73 oster case RAIDFRAME_INCORPORATE_HOT_SPARE:
1154 1.269 jld case RAIDFRAME_PARITYMAP_STATUS:
1155 1.269 jld case RAIDFRAME_PARITYMAP_GET_DISABLE:
1156 1.269 jld case RAIDFRAME_PARITYMAP_SET_DISABLE:
1157 1.269 jld case RAIDFRAME_PARITYMAP_SET_PARAMS:
1158 1.298 buhrow case DIOCGSTRATEGY:
1159 1.298 buhrow case DIOCSSTRATEGY:
1160 1.1 oster if ((rs->sc_flags & RAIDF_INITED) == 0)
1161 1.1 oster return (ENXIO);
1162 1.1 oster }
1163 1.9 oster
1164 1.1 oster switch (cmd) {
1165 1.254 christos #ifdef COMPAT_50
1166 1.254 christos case RAIDFRAME_GET_INFO50:
1167 1.254 christos return rf_get_info50(raidPtr, data);
1168 1.254 christos
1169 1.254 christos case RAIDFRAME_CONFIGURE50:
1170 1.254 christos if ((retcode = rf_config50(raidPtr, unit, data, &k_cfg)) != 0)
1171 1.254 christos return retcode;
1172 1.254 christos goto config;
1173 1.254 christos #endif
1174 1.1 oster /* configure the system */
1175 1.1 oster case RAIDFRAME_CONFIGURE:
1176 1.48 oster
1177 1.48 oster if (raidPtr->valid) {
1178 1.48 oster /* There is a valid RAID set running on this unit! */
1179 1.48 oster printf("raid%d: Device already configured!\n",unit);
1180 1.66 oster return(EINVAL);
1181 1.48 oster }
1182 1.48 oster
1183 1.1 oster /* copy-in the configuration information */
1184 1.1 oster /* data points to a pointer to the configuration structure */
1185 1.43 oster
1186 1.9 oster u_cfg = *((RF_Config_t **) data);
1187 1.9 oster RF_Malloc(k_cfg, sizeof(RF_Config_t), (RF_Config_t *));
1188 1.1 oster if (k_cfg == NULL) {
1189 1.9 oster return (ENOMEM);
1190 1.1 oster }
1191 1.156 dsl retcode = copyin(u_cfg, k_cfg, sizeof(RF_Config_t));
1192 1.1 oster if (retcode) {
1193 1.33 oster RF_Free(k_cfg, sizeof(RF_Config_t));
1194 1.46 oster db1_printf(("rf_ioctl: retcode=%d copyin.1\n",
1195 1.9 oster retcode));
1196 1.327 pgoyette goto no_config;
1197 1.1 oster }
1198 1.254 christos goto config;
1199 1.254 christos config:
1200 1.327 pgoyette rs->sc_flags &= ~RAIDF_SHUTDOWN;
1201 1.327 pgoyette
1202 1.9 oster /* allocate a buffer for the layout-specific data, and copy it
1203 1.9 oster * in */
1204 1.1 oster if (k_cfg->layoutSpecificSize) {
1205 1.9 oster if (k_cfg->layoutSpecificSize > 10000) {
1206 1.1 oster /* sanity check */
1207 1.33 oster RF_Free(k_cfg, sizeof(RF_Config_t));
1208 1.327 pgoyette retcode = EINVAL;
1209 1.327 pgoyette goto no_config;
1210 1.1 oster }
1211 1.9 oster RF_Malloc(specific_buf, k_cfg->layoutSpecificSize,
1212 1.9 oster (u_char *));
1213 1.1 oster if (specific_buf == NULL) {
1214 1.9 oster RF_Free(k_cfg, sizeof(RF_Config_t));
1215 1.327 pgoyette retcode = ENOMEM;
1216 1.327 pgoyette goto no_config;
1217 1.1 oster }
1218 1.156 dsl retcode = copyin(k_cfg->layoutSpecific, specific_buf,
1219 1.9 oster k_cfg->layoutSpecificSize);
1220 1.1 oster if (retcode) {
1221 1.33 oster RF_Free(k_cfg, sizeof(RF_Config_t));
1222 1.186 perry RF_Free(specific_buf,
1223 1.42 oster k_cfg->layoutSpecificSize);
1224 1.46 oster db1_printf(("rf_ioctl: retcode=%d copyin.2\n",
1225 1.9 oster retcode));
1226 1.327 pgoyette goto no_config;
1227 1.1 oster }
1228 1.9 oster } else
1229 1.9 oster specific_buf = NULL;
1230 1.1 oster k_cfg->layoutSpecific = specific_buf;
1231 1.9 oster
1232 1.9 oster /* should do some kind of sanity check on the configuration.
1233 1.9 oster * Store the sum of all the bytes in the last byte? */
1234 1.1 oster
1235 1.1 oster /* configure the system */
1236 1.1 oster
1237 1.48 oster /*
1238 1.48 oster * Clear the entire RAID descriptor, just to make sure
1239 1.186 perry * there is no stale data left in the case of a
1240 1.186 perry * reconfiguration
1241 1.48 oster */
1242 1.277 christos memset(raidPtr, 0, sizeof(*raidPtr));
1243 1.302 christos raidPtr->softc = rs;
1244 1.42 oster raidPtr->raidid = unit;
1245 1.20 oster
1246 1.48 oster retcode = rf_Configure(raidPtr, k_cfg, NULL);
1247 1.1 oster
1248 1.40 oster if (retcode == 0) {
1249 1.37 oster
1250 1.186 perry /* allow this many simultaneous IO's to
1251 1.40 oster this RAID device */
1252 1.42 oster raidPtr->openings = RAIDOUTSTANDING;
1253 1.186 perry
1254 1.300 christos raidinit(rs);
1255 1.59 oster rf_markalldirty(raidPtr);
1256 1.9 oster }
1257 1.1 oster /* free the buffers. No return code here. */
1258 1.1 oster if (k_cfg->layoutSpecificSize) {
1259 1.9 oster RF_Free(specific_buf, k_cfg->layoutSpecificSize);
1260 1.1 oster }
1261 1.9 oster RF_Free(k_cfg, sizeof(RF_Config_t));
1262 1.9 oster
1263 1.327 pgoyette no_config:
1264 1.327 pgoyette /*
1265 1.327 pgoyette * If configuration failed, set sc_flags so that we
1266 1.327 pgoyette * will detach the device when we close it.
1267 1.327 pgoyette */
1268 1.327 pgoyette if (retcode != 0)
1269 1.327 pgoyette rs->sc_flags |= RAIDF_SHUTDOWN;
1270 1.9 oster return (retcode);
1271 1.9 oster
1272 1.9 oster /* shutdown the system */
1273 1.1 oster case RAIDFRAME_SHUTDOWN:
1274 1.9 oster
1275 1.266 dyoung part = DISKPART(dev);
1276 1.266 dyoung pmask = (1 << part);
1277 1.266 dyoung
1278 1.9 oster if ((error = raidlock(rs)) != 0)
1279 1.9 oster return (error);
1280 1.1 oster
1281 1.9 oster if ((rs->sc_dkdev.dk_openmask & ~pmask) ||
1282 1.9 oster ((rs->sc_dkdev.dk_bopenmask & pmask) &&
1283 1.266 dyoung (rs->sc_dkdev.dk_copenmask & pmask)))
1284 1.266 dyoung retcode = EBUSY;
1285 1.266 dyoung else {
1286 1.266 dyoung rs->sc_flags |= RAIDF_SHUTDOWN;
1287 1.266 dyoung rs->sc_dkdev.dk_copenmask &= ~pmask;
1288 1.266 dyoung rs->sc_dkdev.dk_bopenmask &= ~pmask;
1289 1.266 dyoung rs->sc_dkdev.dk_openmask &= ~pmask;
1290 1.266 dyoung retcode = 0;
1291 1.9 oster }
1292 1.11 oster
1293 1.266 dyoung raidunlock(rs);
1294 1.1 oster
1295 1.266 dyoung if (retcode != 0)
1296 1.266 dyoung return retcode;
1297 1.16 oster
1298 1.217 oster /* free the pseudo device attach bits */
1299 1.217 oster
1300 1.217 oster cf = device_cfdata(rs->sc_dev);
1301 1.266 dyoung if ((retcode = config_detach(rs->sc_dev, DETACH_QUIET)) == 0)
1302 1.266 dyoung free(cf, M_RAIDFRAME);
1303 1.1 oster
1304 1.9 oster return (retcode);
1305 1.11 oster case RAIDFRAME_GET_COMPONENT_LABEL:
1306 1.48 oster clabel_ptr = (RF_ComponentLabel_t **) data;
1307 1.11 oster /* need to read the component label for the disk indicated
1308 1.48 oster by row,column in clabel */
1309 1.11 oster
1310 1.269 jld /*
1311 1.269 jld * Perhaps there should be an option to skip the in-core
1312 1.269 jld * copy and hit the disk, as with disklabel(8).
1313 1.269 jld */
1314 1.269 jld RF_Malloc(clabel, sizeof(*clabel), (RF_ComponentLabel_t *));
1315 1.11 oster
1316 1.277 christos retcode = copyin(*clabel_ptr, clabel, sizeof(*clabel));
1317 1.11 oster
1318 1.11 oster if (retcode) {
1319 1.277 christos RF_Free(clabel, sizeof(*clabel));
1320 1.277 christos return retcode;
1321 1.11 oster }
1322 1.11 oster
1323 1.166 oster clabel->row = 0; /* Don't allow looking at anything else.*/
1324 1.166 oster
1325 1.48 oster column = clabel->column;
1326 1.26 oster
1327 1.166 oster if ((column < 0) || (column >= raidPtr->numCol +
1328 1.277 christos raidPtr->numSpare)) {
1329 1.277 christos RF_Free(clabel, sizeof(*clabel));
1330 1.277 christos return EINVAL;
1331 1.11 oster }
1332 1.11 oster
1333 1.269 jld RF_Free(clabel, sizeof(*clabel));
1334 1.269 jld
1335 1.269 jld clabel = raidget_component_label(raidPtr, column);
1336 1.11 oster
1337 1.277 christos return copyout(clabel, *clabel_ptr, sizeof(**clabel_ptr));
1338 1.11 oster
1339 1.269 jld #if 0
1340 1.11 oster case RAIDFRAME_SET_COMPONENT_LABEL:
1341 1.48 oster clabel = (RF_ComponentLabel_t *) data;
1342 1.11 oster
1343 1.11 oster /* XXX check the label for valid stuff... */
1344 1.11 oster /* Note that some things *should not* get modified --
1345 1.186 perry the user should be re-initing the labels instead of
1346 1.11 oster trying to patch things.
1347 1.11 oster */
1348 1.11 oster
1349 1.123 oster raidid = raidPtr->raidid;
1350 1.224 oster #ifdef DEBUG
1351 1.123 oster printf("raid%d: Got component label:\n", raidid);
1352 1.123 oster printf("raid%d: Version: %d\n", raidid, clabel->version);
1353 1.123 oster printf("raid%d: Serial Number: %d\n", raidid, clabel->serial_number);
1354 1.123 oster printf("raid%d: Mod counter: %d\n", raidid, clabel->mod_counter);
1355 1.123 oster printf("raid%d: Column: %d\n", raidid, clabel->column);
1356 1.123 oster printf("raid%d: Num Columns: %d\n", raidid, clabel->num_columns);
1357 1.123 oster printf("raid%d: Clean: %d\n", raidid, clabel->clean);
1358 1.123 oster printf("raid%d: Status: %d\n", raidid, clabel->status);
1359 1.174 oster #endif
1360 1.166 oster clabel->row = 0;
1361 1.48 oster column = clabel->column;
1362 1.12 oster
1363 1.166 oster if ((column < 0) || (column >= raidPtr->numCol)) {
1364 1.12 oster return(EINVAL);
1365 1.11 oster }
1366 1.12 oster
1367 1.12 oster /* XXX this isn't allowed to do anything for now :-) */
1368 1.48 oster
1369 1.48 oster /* XXX and before it is, we need to fill in the rest
1370 1.48 oster of the fields!?!?!?! */
1371 1.269 jld memcpy(raidget_component_label(raidPtr, column),
1372 1.269 jld clabel, sizeof(*clabel));
1373 1.269 jld raidflush_component_label(raidPtr, column);
1374 1.269 jld return (0);
1375 1.12 oster #endif
1376 1.11 oster
1377 1.186 perry case RAIDFRAME_INIT_LABELS:
1378 1.48 oster clabel = (RF_ComponentLabel_t *) data;
1379 1.186 perry /*
1380 1.11 oster we only want the serial number from
1381 1.11 oster the above. We get all the rest of the information
1382 1.11 oster from the config that was used to create this RAID
1383 1.186 perry set.
1384 1.11 oster */
1385 1.12 oster
1386 1.48 oster raidPtr->serial_number = clabel->serial_number;
1387 1.186 perry
1388 1.166 oster for(column=0;column<raidPtr->numCol;column++) {
1389 1.166 oster diskPtr = &raidPtr->Disks[column];
1390 1.166 oster if (!RF_DEAD_DISK(diskPtr->status)) {
1391 1.269 jld ci_label = raidget_component_label(raidPtr,
1392 1.269 jld column);
1393 1.269 jld /* Zeroing this is important. */
1394 1.269 jld memset(ci_label, 0, sizeof(*ci_label));
1395 1.269 jld raid_init_component_label(raidPtr, ci_label);
1396 1.269 jld ci_label->serial_number =
1397 1.269 jld raidPtr->serial_number;
1398 1.269 jld ci_label->row = 0; /* we dont' pretend to support more */
1399 1.282 enami rf_component_label_set_partitionsize(ci_label,
1400 1.282 enami diskPtr->partitionSize);
1401 1.209 oster ci_label->column = column;
1402 1.269 jld raidflush_component_label(raidPtr, column);
1403 1.11 oster }
1404 1.269 jld /* XXXjld what about the spares? */
1405 1.11 oster }
1406 1.209 oster
1407 1.11 oster return (retcode);
1408 1.48 oster case RAIDFRAME_SET_AUTOCONFIG:
1409 1.78 minoura d = rf_set_autoconfig(raidPtr, *(int *) data);
1410 1.186 perry printf("raid%d: New autoconfig value is: %d\n",
1411 1.123 oster raidPtr->raidid, d);
1412 1.78 minoura *(int *) data = d;
1413 1.48 oster return (retcode);
1414 1.48 oster
1415 1.48 oster case RAIDFRAME_SET_ROOT:
1416 1.78 minoura d = rf_set_rootpartition(raidPtr, *(int *) data);
1417 1.186 perry printf("raid%d: New rootpartition value is: %d\n",
1418 1.123 oster raidPtr->raidid, d);
1419 1.78 minoura *(int *) data = d;
1420 1.48 oster return (retcode);
1421 1.9 oster
1422 1.1 oster /* initialize all parity */
1423 1.1 oster case RAIDFRAME_REWRITEPARITY:
1424 1.1 oster
1425 1.42 oster if (raidPtr->Layout.map->faultsTolerated == 0) {
1426 1.17 oster /* Parity for RAID 0 is trivially correct */
1427 1.42 oster raidPtr->parity_good = RF_RAID_CLEAN;
1428 1.17 oster return(0);
1429 1.17 oster }
1430 1.186 perry
1431 1.42 oster if (raidPtr->parity_rewrite_in_progress == 1) {
1432 1.37 oster /* Re-write is already in progress! */
1433 1.37 oster return(EINVAL);
1434 1.37 oster }
1435 1.27 oster
1436 1.42 oster retcode = RF_CREATE_THREAD(raidPtr->parity_rewrite_thread,
1437 1.37 oster rf_RewriteParityThread,
1438 1.42 oster raidPtr,"raid_parity");
1439 1.9 oster return (retcode);
1440 1.9 oster
1441 1.11 oster
1442 1.11 oster case RAIDFRAME_ADD_HOT_SPARE:
1443 1.12 oster sparePtr = (RF_SingleComponent_t *) data;
1444 1.209 oster memcpy( &component, sparePtr, sizeof(RF_SingleComponent_t));
1445 1.209 oster retcode = rf_add_hot_spare(raidPtr, &component);
1446 1.11 oster return(retcode);
1447 1.11 oster
1448 1.11 oster case RAIDFRAME_REMOVE_HOT_SPARE:
1449 1.73 oster return(retcode);
1450 1.73 oster
1451 1.73 oster case RAIDFRAME_DELETE_COMPONENT:
1452 1.73 oster componentPtr = (RF_SingleComponent_t *)data;
1453 1.186 perry memcpy( &component, componentPtr,
1454 1.73 oster sizeof(RF_SingleComponent_t));
1455 1.73 oster retcode = rf_delete_component(raidPtr, &component);
1456 1.73 oster return(retcode);
1457 1.73 oster
1458 1.73 oster case RAIDFRAME_INCORPORATE_HOT_SPARE:
1459 1.73 oster componentPtr = (RF_SingleComponent_t *)data;
1460 1.186 perry memcpy( &component, componentPtr,
1461 1.73 oster sizeof(RF_SingleComponent_t));
1462 1.73 oster retcode = rf_incorporate_hot_spare(raidPtr, &component);
1463 1.11 oster return(retcode);
1464 1.11 oster
1465 1.12 oster case RAIDFRAME_REBUILD_IN_PLACE:
1466 1.24 oster
1467 1.42 oster if (raidPtr->Layout.map->faultsTolerated == 0) {
1468 1.24 oster /* Can't do this on a RAID 0!! */
1469 1.24 oster return(EINVAL);
1470 1.24 oster }
1471 1.24 oster
1472 1.42 oster if (raidPtr->recon_in_progress == 1) {
1473 1.37 oster /* a reconstruct is already in progress! */
1474 1.37 oster return(EINVAL);
1475 1.37 oster }
1476 1.37 oster
1477 1.12 oster componentPtr = (RF_SingleComponent_t *) data;
1478 1.186 perry memcpy( &component, componentPtr,
1479 1.12 oster sizeof(RF_SingleComponent_t));
1480 1.166 oster component.row = 0; /* we don't support any more */
1481 1.12 oster column = component.column;
1482 1.147 oster
1483 1.166 oster if ((column < 0) || (column >= raidPtr->numCol)) {
1484 1.12 oster return(EINVAL);
1485 1.12 oster }
1486 1.37 oster
1487 1.291 mrg rf_lock_mutex2(raidPtr->mutex);
1488 1.166 oster if ((raidPtr->Disks[column].status == rf_ds_optimal) &&
1489 1.186 perry (raidPtr->numFailures > 0)) {
1490 1.149 oster /* XXX 0 above shouldn't be constant!!! */
1491 1.149 oster /* some component other than this has failed.
1492 1.149 oster Let's not make things worse than they already
1493 1.149 oster are... */
1494 1.149 oster printf("raid%d: Unable to reconstruct to disk at:\n",
1495 1.149 oster raidPtr->raidid);
1496 1.166 oster printf("raid%d: Col: %d Too many failures.\n",
1497 1.166 oster raidPtr->raidid, column);
1498 1.291 mrg rf_unlock_mutex2(raidPtr->mutex);
1499 1.149 oster return (EINVAL);
1500 1.149 oster }
1501 1.186 perry if (raidPtr->Disks[column].status ==
1502 1.149 oster rf_ds_reconstructing) {
1503 1.149 oster printf("raid%d: Unable to reconstruct to disk at:\n",
1504 1.149 oster raidPtr->raidid);
1505 1.299 oster printf("raid%d: Col: %d Reconstruction already occurring!\n", raidPtr->raidid, column);
1506 1.186 perry
1507 1.291 mrg rf_unlock_mutex2(raidPtr->mutex);
1508 1.149 oster return (EINVAL);
1509 1.149 oster }
1510 1.166 oster if (raidPtr->Disks[column].status == rf_ds_spared) {
1511 1.291 mrg rf_unlock_mutex2(raidPtr->mutex);
1512 1.149 oster return (EINVAL);
1513 1.149 oster }
1514 1.291 mrg rf_unlock_mutex2(raidPtr->mutex);
1515 1.149 oster
1516 1.37 oster RF_Malloc(rrcopy, sizeof(*rrcopy), (struct rf_recon_req *));
1517 1.38 oster if (rrcopy == NULL)
1518 1.38 oster return(ENOMEM);
1519 1.37 oster
1520 1.42 oster rrcopy->raidPtr = (void *) raidPtr;
1521 1.37 oster rrcopy->col = column;
1522 1.37 oster
1523 1.42 oster retcode = RF_CREATE_THREAD(raidPtr->recon_thread,
1524 1.37 oster rf_ReconstructInPlaceThread,
1525 1.37 oster rrcopy,"raid_reconip");
1526 1.12 oster return(retcode);
1527 1.12 oster
1528 1.1 oster case RAIDFRAME_GET_INFO:
1529 1.42 oster if (!raidPtr->valid)
1530 1.41 oster return (ENODEV);
1531 1.41 oster ucfgp = (RF_DeviceConfig_t **) data;
1532 1.41 oster RF_Malloc(d_cfg, sizeof(RF_DeviceConfig_t),
1533 1.41 oster (RF_DeviceConfig_t *));
1534 1.41 oster if (d_cfg == NULL)
1535 1.41 oster return (ENOMEM);
1536 1.166 oster d_cfg->rows = 1; /* there is only 1 row now */
1537 1.42 oster d_cfg->cols = raidPtr->numCol;
1538 1.166 oster d_cfg->ndevs = raidPtr->numCol;
1539 1.41 oster if (d_cfg->ndevs >= RF_MAX_DISKS) {
1540 1.41 oster RF_Free(d_cfg, sizeof(RF_DeviceConfig_t));
1541 1.41 oster return (ENOMEM);
1542 1.41 oster }
1543 1.42 oster d_cfg->nspares = raidPtr->numSpare;
1544 1.41 oster if (d_cfg->nspares >= RF_MAX_DISKS) {
1545 1.41 oster RF_Free(d_cfg, sizeof(RF_DeviceConfig_t));
1546 1.41 oster return (ENOMEM);
1547 1.41 oster }
1548 1.42 oster d_cfg->maxqdepth = raidPtr->maxQueueDepth;
1549 1.41 oster d = 0;
1550 1.166 oster for (j = 0; j < d_cfg->cols; j++) {
1551 1.166 oster d_cfg->devs[d] = raidPtr->Disks[j];
1552 1.166 oster d++;
1553 1.41 oster }
1554 1.41 oster for (j = d_cfg->cols, i = 0; i < d_cfg->nspares; i++, j++) {
1555 1.166 oster d_cfg->spares[i] = raidPtr->Disks[j];
1556 1.316 oster if (d_cfg->spares[i].status == rf_ds_rebuilding_spare) {
1557 1.316 oster /* XXX: raidctl(8) expects to see this as a used spare */
1558 1.316 oster d_cfg->spares[i].status = rf_ds_used_spare;
1559 1.316 oster }
1560 1.41 oster }
1561 1.156 dsl retcode = copyout(d_cfg, *ucfgp, sizeof(RF_DeviceConfig_t));
1562 1.41 oster RF_Free(d_cfg, sizeof(RF_DeviceConfig_t));
1563 1.41 oster
1564 1.41 oster return (retcode);
1565 1.9 oster
1566 1.22 oster case RAIDFRAME_CHECK_PARITY:
1567 1.42 oster *(int *) data = raidPtr->parity_good;
1568 1.22 oster return (0);
1569 1.41 oster
1570 1.269 jld case RAIDFRAME_PARITYMAP_STATUS:
1571 1.273 jld if (rf_paritymap_ineligible(raidPtr))
1572 1.273 jld return EINVAL;
1573 1.269 jld rf_paritymap_status(raidPtr->parity_map,
1574 1.269 jld (struct rf_pmstat *)data);
1575 1.269 jld return 0;
1576 1.269 jld
1577 1.269 jld case RAIDFRAME_PARITYMAP_SET_PARAMS:
1578 1.273 jld if (rf_paritymap_ineligible(raidPtr))
1579 1.273 jld return EINVAL;
1580 1.269 jld if (raidPtr->parity_map == NULL)
1581 1.269 jld return ENOENT; /* ??? */
1582 1.269 jld if (0 != rf_paritymap_set_params(raidPtr->parity_map,
1583 1.269 jld (struct rf_pmparams *)data, 1))
1584 1.269 jld return EINVAL;
1585 1.269 jld return 0;
1586 1.269 jld
1587 1.269 jld case RAIDFRAME_PARITYMAP_GET_DISABLE:
1588 1.273 jld if (rf_paritymap_ineligible(raidPtr))
1589 1.273 jld return EINVAL;
1590 1.269 jld *(int *) data = rf_paritymap_get_disable(raidPtr);
1591 1.269 jld return 0;
1592 1.269 jld
1593 1.269 jld case RAIDFRAME_PARITYMAP_SET_DISABLE:
1594 1.273 jld if (rf_paritymap_ineligible(raidPtr))
1595 1.273 jld return EINVAL;
1596 1.269 jld rf_paritymap_set_disable(raidPtr, *(int *)data);
1597 1.269 jld /* XXX should errors be passed up? */
1598 1.269 jld return 0;
1599 1.269 jld
1600 1.1 oster case RAIDFRAME_RESET_ACCTOTALS:
1601 1.108 thorpej memset(&raidPtr->acc_totals, 0, sizeof(raidPtr->acc_totals));
1602 1.41 oster return (0);
1603 1.9 oster
1604 1.1 oster case RAIDFRAME_GET_ACCTOTALS:
1605 1.41 oster totals = (RF_AccTotals_t *) data;
1606 1.42 oster *totals = raidPtr->acc_totals;
1607 1.41 oster return (0);
1608 1.9 oster
1609 1.1 oster case RAIDFRAME_KEEP_ACCTOTALS:
1610 1.42 oster raidPtr->keep_acc_totals = *(int *)data;
1611 1.41 oster return (0);
1612 1.9 oster
1613 1.1 oster case RAIDFRAME_GET_SIZE:
1614 1.42 oster *(int *) data = raidPtr->totalSectors;
1615 1.9 oster return (0);
1616 1.1 oster
1617 1.1 oster /* fail a disk & optionally start reconstruction */
1618 1.1 oster case RAIDFRAME_FAIL_DISK:
1619 1.24 oster
1620 1.42 oster if (raidPtr->Layout.map->faultsTolerated == 0) {
1621 1.24 oster /* Can't do this on a RAID 0!! */
1622 1.24 oster return(EINVAL);
1623 1.24 oster }
1624 1.24 oster
1625 1.1 oster rr = (struct rf_recon_req *) data;
1626 1.166 oster rr->row = 0;
1627 1.166 oster if (rr->col < 0 || rr->col >= raidPtr->numCol)
1628 1.9 oster return (EINVAL);
1629 1.149 oster
1630 1.149 oster
1631 1.291 mrg rf_lock_mutex2(raidPtr->mutex);
1632 1.185 oster if (raidPtr->status == rf_rs_reconstructing) {
1633 1.185 oster /* you can't fail a disk while we're reconstructing! */
1634 1.185 oster /* XXX wrong for RAID6 */
1635 1.291 mrg rf_unlock_mutex2(raidPtr->mutex);
1636 1.185 oster return (EINVAL);
1637 1.185 oster }
1638 1.186 perry if ((raidPtr->Disks[rr->col].status ==
1639 1.186 perry rf_ds_optimal) && (raidPtr->numFailures > 0)) {
1640 1.149 oster /* some other component has failed. Let's not make
1641 1.149 oster things worse. XXX wrong for RAID6 */
1642 1.291 mrg rf_unlock_mutex2(raidPtr->mutex);
1643 1.149 oster return (EINVAL);
1644 1.149 oster }
1645 1.166 oster if (raidPtr->Disks[rr->col].status == rf_ds_spared) {
1646 1.149 oster /* Can't fail a spared disk! */
1647 1.291 mrg rf_unlock_mutex2(raidPtr->mutex);
1648 1.149 oster return (EINVAL);
1649 1.149 oster }
1650 1.291 mrg rf_unlock_mutex2(raidPtr->mutex);
1651 1.1 oster
1652 1.9 oster /* make a copy of the recon request so that we don't rely on
1653 1.9 oster * the user's buffer */
1654 1.1 oster RF_Malloc(rrcopy, sizeof(*rrcopy), (struct rf_recon_req *));
1655 1.38 oster if (rrcopy == NULL)
1656 1.38 oster return(ENOMEM);
1657 1.118 wiz memcpy(rrcopy, rr, sizeof(*rr));
1658 1.42 oster rrcopy->raidPtr = (void *) raidPtr;
1659 1.1 oster
1660 1.42 oster retcode = RF_CREATE_THREAD(raidPtr->recon_thread,
1661 1.37 oster rf_ReconThread,
1662 1.37 oster rrcopy,"raid_recon");
1663 1.9 oster return (0);
1664 1.9 oster
1665 1.9 oster /* invoke a copyback operation after recon on whatever disk
1666 1.9 oster * needs it, if any */
1667 1.9 oster case RAIDFRAME_COPYBACK:
1668 1.24 oster
1669 1.42 oster if (raidPtr->Layout.map->faultsTolerated == 0) {
1670 1.24 oster /* This makes no sense on a RAID 0!! */
1671 1.24 oster return(EINVAL);
1672 1.24 oster }
1673 1.24 oster
1674 1.42 oster if (raidPtr->copyback_in_progress == 1) {
1675 1.37 oster /* Copyback is already in progress! */
1676 1.37 oster return(EINVAL);
1677 1.37 oster }
1678 1.27 oster
1679 1.42 oster retcode = RF_CREATE_THREAD(raidPtr->copyback_thread,
1680 1.37 oster rf_CopybackThread,
1681 1.42 oster raidPtr,"raid_copyback");
1682 1.37 oster return (retcode);
1683 1.9 oster
1684 1.1 oster /* return the percentage completion of reconstruction */
1685 1.37 oster case RAIDFRAME_CHECK_RECON_STATUS:
1686 1.42 oster if (raidPtr->Layout.map->faultsTolerated == 0) {
1687 1.71 oster /* This makes no sense on a RAID 0, so tell the
1688 1.71 oster user it's done. */
1689 1.71 oster *(int *) data = 100;
1690 1.71 oster return(0);
1691 1.24 oster }
1692 1.166 oster if (raidPtr->status != rf_rs_reconstructing)
1693 1.1 oster *(int *) data = 100;
1694 1.171 oster else {
1695 1.171 oster if (raidPtr->reconControl->numRUsTotal > 0) {
1696 1.171 oster *(int *) data = (raidPtr->reconControl->numRUsComplete * 100 / raidPtr->reconControl->numRUsTotal);
1697 1.171 oster } else {
1698 1.171 oster *(int *) data = 0;
1699 1.171 oster }
1700 1.171 oster }
1701 1.9 oster return (0);
1702 1.83 oster case RAIDFRAME_CHECK_RECON_STATUS_EXT:
1703 1.83 oster progressInfoPtr = (RF_ProgressInfo_t **) data;
1704 1.166 oster if (raidPtr->status != rf_rs_reconstructing) {
1705 1.83 oster progressInfo.remaining = 0;
1706 1.83 oster progressInfo.completed = 100;
1707 1.83 oster progressInfo.total = 100;
1708 1.83 oster } else {
1709 1.186 perry progressInfo.total =
1710 1.166 oster raidPtr->reconControl->numRUsTotal;
1711 1.186 perry progressInfo.completed =
1712 1.166 oster raidPtr->reconControl->numRUsComplete;
1713 1.83 oster progressInfo.remaining = progressInfo.total -
1714 1.83 oster progressInfo.completed;
1715 1.83 oster }
1716 1.156 dsl retcode = copyout(&progressInfo, *progressInfoPtr,
1717 1.83 oster sizeof(RF_ProgressInfo_t));
1718 1.83 oster return (retcode);
1719 1.9 oster
1720 1.37 oster case RAIDFRAME_CHECK_PARITYREWRITE_STATUS:
1721 1.42 oster if (raidPtr->Layout.map->faultsTolerated == 0) {
1722 1.80 oster /* This makes no sense on a RAID 0, so tell the
1723 1.80 oster user it's done. */
1724 1.80 oster *(int *) data = 100;
1725 1.80 oster return(0);
1726 1.37 oster }
1727 1.42 oster if (raidPtr->parity_rewrite_in_progress == 1) {
1728 1.186 perry *(int *) data = 100 *
1729 1.186 perry raidPtr->parity_rewrite_stripes_done /
1730 1.83 oster raidPtr->Layout.numStripe;
1731 1.37 oster } else {
1732 1.37 oster *(int *) data = 100;
1733 1.37 oster }
1734 1.37 oster return (0);
1735 1.37 oster
1736 1.83 oster case RAIDFRAME_CHECK_PARITYREWRITE_STATUS_EXT:
1737 1.83 oster progressInfoPtr = (RF_ProgressInfo_t **) data;
1738 1.83 oster if (raidPtr->parity_rewrite_in_progress == 1) {
1739 1.83 oster progressInfo.total = raidPtr->Layout.numStripe;
1740 1.186 perry progressInfo.completed =
1741 1.83 oster raidPtr->parity_rewrite_stripes_done;
1742 1.83 oster progressInfo.remaining = progressInfo.total -
1743 1.83 oster progressInfo.completed;
1744 1.83 oster } else {
1745 1.83 oster progressInfo.remaining = 0;
1746 1.83 oster progressInfo.completed = 100;
1747 1.83 oster progressInfo.total = 100;
1748 1.83 oster }
1749 1.156 dsl retcode = copyout(&progressInfo, *progressInfoPtr,
1750 1.83 oster sizeof(RF_ProgressInfo_t));
1751 1.83 oster return (retcode);
1752 1.83 oster
1753 1.37 oster case RAIDFRAME_CHECK_COPYBACK_STATUS:
1754 1.42 oster if (raidPtr->Layout.map->faultsTolerated == 0) {
1755 1.37 oster /* This makes no sense on a RAID 0 */
1756 1.83 oster *(int *) data = 100;
1757 1.83 oster return(0);
1758 1.37 oster }
1759 1.42 oster if (raidPtr->copyback_in_progress == 1) {
1760 1.42 oster *(int *) data = 100 * raidPtr->copyback_stripes_done /
1761 1.42 oster raidPtr->Layout.numStripe;
1762 1.37 oster } else {
1763 1.37 oster *(int *) data = 100;
1764 1.37 oster }
1765 1.37 oster return (0);
1766 1.37 oster
1767 1.83 oster case RAIDFRAME_CHECK_COPYBACK_STATUS_EXT:
1768 1.93 oster progressInfoPtr = (RF_ProgressInfo_t **) data;
1769 1.83 oster if (raidPtr->copyback_in_progress == 1) {
1770 1.83 oster progressInfo.total = raidPtr->Layout.numStripe;
1771 1.186 perry progressInfo.completed =
1772 1.93 oster raidPtr->copyback_stripes_done;
1773 1.83 oster progressInfo.remaining = progressInfo.total -
1774 1.83 oster progressInfo.completed;
1775 1.83 oster } else {
1776 1.83 oster progressInfo.remaining = 0;
1777 1.83 oster progressInfo.completed = 100;
1778 1.83 oster progressInfo.total = 100;
1779 1.83 oster }
1780 1.156 dsl retcode = copyout(&progressInfo, *progressInfoPtr,
1781 1.83 oster sizeof(RF_ProgressInfo_t));
1782 1.83 oster return (retcode);
1783 1.37 oster
1784 1.9 oster /* the sparetable daemon calls this to wait for the kernel to
1785 1.9 oster * need a spare table. this ioctl does not return until a
1786 1.9 oster * spare table is needed. XXX -- calling mpsleep here in the
1787 1.9 oster * ioctl code is almost certainly wrong and evil. -- XXX XXX
1788 1.9 oster * -- I should either compute the spare table in the kernel,
1789 1.9 oster * or have a different -- XXX XXX -- interface (a different
1790 1.42 oster * character device) for delivering the table -- XXX */
1791 1.250 oster #if 0
1792 1.1 oster case RAIDFRAME_SPARET_WAIT:
1793 1.287 mrg rf_lock_mutex2(rf_sparet_wait_mutex);
1794 1.9 oster while (!rf_sparet_wait_queue)
1795 1.287 mrg rf_wait_cond2(rf_sparet_wait_cv, rf_sparet_wait_mutex);
1796 1.1 oster waitreq = rf_sparet_wait_queue;
1797 1.1 oster rf_sparet_wait_queue = rf_sparet_wait_queue->next;
1798 1.287 mrg rf_unlock_mutex2(rf_sparet_wait_mutex);
1799 1.9 oster
1800 1.42 oster /* structure assignment */
1801 1.186 perry *((RF_SparetWait_t *) data) = *waitreq;
1802 1.9 oster
1803 1.1 oster RF_Free(waitreq, sizeof(*waitreq));
1804 1.9 oster return (0);
1805 1.9 oster
1806 1.9 oster /* wakes up a process waiting on SPARET_WAIT and puts an error
1807 1.9 oster * code in it that will cause the dameon to exit */
1808 1.1 oster case RAIDFRAME_ABORT_SPARET_WAIT:
1809 1.1 oster RF_Malloc(waitreq, sizeof(*waitreq), (RF_SparetWait_t *));
1810 1.1 oster waitreq->fcol = -1;
1811 1.287 mrg rf_lock_mutex2(rf_sparet_wait_mutex);
1812 1.1 oster waitreq->next = rf_sparet_wait_queue;
1813 1.1 oster rf_sparet_wait_queue = waitreq;
1814 1.287 mrg rf_broadcast_conf2(rf_sparet_wait_cv);
1815 1.287 mrg rf_unlock_mutex2(rf_sparet_wait_mutex);
1816 1.9 oster return (0);
1817 1.1 oster
1818 1.9 oster /* used by the spare table daemon to deliver a spare table
1819 1.9 oster * into the kernel */
1820 1.1 oster case RAIDFRAME_SEND_SPARET:
1821 1.9 oster
1822 1.1 oster /* install the spare table */
1823 1.42 oster retcode = rf_SetSpareTable(raidPtr, *(void **) data);
1824 1.9 oster
1825 1.9 oster /* respond to the requestor. the return status of the spare
1826 1.9 oster * table installation is passed in the "fcol" field */
1827 1.1 oster RF_Malloc(waitreq, sizeof(*waitreq), (RF_SparetWait_t *));
1828 1.1 oster waitreq->fcol = retcode;
1829 1.287 mrg rf_lock_mutex2(rf_sparet_wait_mutex);
1830 1.1 oster waitreq->next = rf_sparet_resp_queue;
1831 1.1 oster rf_sparet_resp_queue = waitreq;
1832 1.287 mrg rf_broadcast_cond2(rf_sparet_resp_cv);
1833 1.287 mrg rf_unlock_mutex2(rf_sparet_wait_mutex);
1834 1.9 oster
1835 1.9 oster return (retcode);
1836 1.1 oster #endif
1837 1.1 oster
1838 1.9 oster default:
1839 1.36 oster break; /* fall through to the os-specific code below */
1840 1.1 oster
1841 1.1 oster }
1842 1.9 oster
1843 1.42 oster if (!raidPtr->valid)
1844 1.9 oster return (EINVAL);
1845 1.9 oster
1846 1.1 oster /*
1847 1.1 oster * Add support for "regular" device ioctls here.
1848 1.1 oster */
1849 1.263 haad
1850 1.320 christos error = disk_ioctl(&rs->sc_dkdev, dev, cmd, data, flag, l);
1851 1.263 haad if (error != EPASSTHROUGH)
1852 1.263 haad return (error);
1853 1.9 oster
1854 1.1 oster switch (cmd) {
1855 1.1 oster case DIOCWDINFO:
1856 1.1 oster case DIOCSDINFO:
1857 1.102 fvdl #ifdef __HAVE_OLD_DISKLABEL
1858 1.102 fvdl case ODIOCWDINFO:
1859 1.102 fvdl case ODIOCSDINFO:
1860 1.102 fvdl #endif
1861 1.102 fvdl {
1862 1.102 fvdl struct disklabel *lp;
1863 1.102 fvdl #ifdef __HAVE_OLD_DISKLABEL
1864 1.102 fvdl if (cmd == ODIOCSDINFO || cmd == ODIOCWDINFO) {
1865 1.102 fvdl memset(&newlabel, 0, sizeof newlabel);
1866 1.102 fvdl memcpy(&newlabel, data, sizeof (struct olddisklabel));
1867 1.102 fvdl lp = &newlabel;
1868 1.102 fvdl } else
1869 1.102 fvdl #endif
1870 1.102 fvdl lp = (struct disklabel *)data;
1871 1.102 fvdl
1872 1.1 oster if ((error = raidlock(rs)) != 0)
1873 1.1 oster return (error);
1874 1.1 oster
1875 1.1 oster rs->sc_flags |= RAIDF_LABELLING;
1876 1.1 oster
1877 1.1 oster error = setdisklabel(rs->sc_dkdev.dk_label,
1878 1.102 fvdl lp, 0, rs->sc_dkdev.dk_cpulabel);
1879 1.1 oster if (error == 0) {
1880 1.102 fvdl if (cmd == DIOCWDINFO
1881 1.102 fvdl #ifdef __HAVE_OLD_DISKLABEL
1882 1.102 fvdl || cmd == ODIOCWDINFO
1883 1.102 fvdl #endif
1884 1.102 fvdl )
1885 1.1 oster error = writedisklabel(RAIDLABELDEV(dev),
1886 1.1 oster raidstrategy, rs->sc_dkdev.dk_label,
1887 1.1 oster rs->sc_dkdev.dk_cpulabel);
1888 1.1 oster }
1889 1.1 oster rs->sc_flags &= ~RAIDF_LABELLING;
1890 1.1 oster
1891 1.1 oster raidunlock(rs);
1892 1.1 oster
1893 1.1 oster if (error)
1894 1.1 oster return (error);
1895 1.1 oster break;
1896 1.102 fvdl }
1897 1.1 oster
1898 1.1 oster case DIOCWLABEL:
1899 1.9 oster if (*(int *) data != 0)
1900 1.1 oster rs->sc_flags |= RAIDF_WLABEL;
1901 1.1 oster else
1902 1.1 oster rs->sc_flags &= ~RAIDF_WLABEL;
1903 1.1 oster break;
1904 1.1 oster
1905 1.1 oster case DIOCGDEFLABEL:
1906 1.102 fvdl raidgetdefaultlabel(raidPtr, rs, (struct disklabel *) data);
1907 1.1 oster break;
1908 1.102 fvdl
1909 1.102 fvdl #ifdef __HAVE_OLD_DISKLABEL
1910 1.102 fvdl case ODIOCGDEFLABEL:
1911 1.102 fvdl raidgetdefaultlabel(raidPtr, rs, &newlabel);
1912 1.102 fvdl if (newlabel.d_npartitions > OLDMAXPARTITIONS)
1913 1.103 fvdl return ENOTTY;
1914 1.102 fvdl memcpy(data, &newlabel, sizeof (struct olddisklabel));
1915 1.102 fvdl break;
1916 1.102 fvdl #endif
1917 1.1 oster
1918 1.252 oster case DIOCCACHESYNC:
1919 1.252 oster return rf_sync_component_caches(raidPtr);
1920 1.298 buhrow
1921 1.298 buhrow case DIOCGSTRATEGY:
1922 1.298 buhrow {
1923 1.298 buhrow struct disk_strategy *dks = (void *)data;
1924 1.298 buhrow
1925 1.298 buhrow s = splbio();
1926 1.298 buhrow strlcpy(dks->dks_name, bufq_getstrategyname(rs->buf_queue),
1927 1.298 buhrow sizeof(dks->dks_name));
1928 1.298 buhrow splx(s);
1929 1.298 buhrow dks->dks_paramlen = 0;
1930 1.298 buhrow
1931 1.298 buhrow return 0;
1932 1.298 buhrow }
1933 1.298 buhrow
1934 1.298 buhrow case DIOCSSTRATEGY:
1935 1.298 buhrow {
1936 1.298 buhrow struct disk_strategy *dks = (void *)data;
1937 1.298 buhrow struct bufq_state *new;
1938 1.298 buhrow struct bufq_state *old;
1939 1.298 buhrow
1940 1.298 buhrow if (dks->dks_param != NULL) {
1941 1.298 buhrow return EINVAL;
1942 1.298 buhrow }
1943 1.298 buhrow dks->dks_name[sizeof(dks->dks_name) - 1] = 0; /* ensure term */
1944 1.298 buhrow error = bufq_alloc(&new, dks->dks_name,
1945 1.298 buhrow BUFQ_EXACT|BUFQ_SORT_RAWBLOCK);
1946 1.298 buhrow if (error) {
1947 1.298 buhrow return error;
1948 1.298 buhrow }
1949 1.298 buhrow s = splbio();
1950 1.298 buhrow old = rs->buf_queue;
1951 1.298 buhrow bufq_move(new, old);
1952 1.298 buhrow rs->buf_queue = new;
1953 1.298 buhrow splx(s);
1954 1.298 buhrow bufq_free(old);
1955 1.298 buhrow
1956 1.298 buhrow return 0;
1957 1.298 buhrow }
1958 1.298 buhrow
1959 1.1 oster default:
1960 1.39 oster retcode = ENOTTY;
1961 1.1 oster }
1962 1.9 oster return (retcode);
1963 1.1 oster
1964 1.1 oster }
1965 1.1 oster
1966 1.1 oster
1967 1.9 oster /* raidinit -- complete the rest of the initialization for the
1968 1.1 oster RAIDframe device. */
1969 1.1 oster
1970 1.1 oster
1971 1.59 oster static void
1972 1.300 christos raidinit(struct raid_softc *rs)
1973 1.1 oster {
1974 1.262 cegger cfdata_t cf;
1975 1.59 oster int unit;
1976 1.300 christos RF_Raid_t *raidPtr = &rs->sc_r;
1977 1.1 oster
1978 1.59 oster unit = raidPtr->raidid;
1979 1.1 oster
1980 1.1 oster
1981 1.1 oster /* XXX should check return code first... */
1982 1.1 oster rs->sc_flags |= RAIDF_INITED;
1983 1.1 oster
1984 1.179 itojun /* XXX doesn't check bounds. */
1985 1.179 itojun snprintf(rs->sc_xname, sizeof(rs->sc_xname), "raid%d", unit);
1986 1.1 oster
1987 1.217 oster /* attach the pseudo device */
1988 1.217 oster cf = malloc(sizeof(*cf), M_RAIDFRAME, M_WAITOK);
1989 1.217 oster cf->cf_name = raid_cd.cd_name;
1990 1.217 oster cf->cf_atname = raid_cd.cd_name;
1991 1.217 oster cf->cf_unit = unit;
1992 1.217 oster cf->cf_fstate = FSTATE_STAR;
1993 1.217 oster
1994 1.217 oster rs->sc_dev = config_attach_pseudo(cf);
1995 1.217 oster
1996 1.270 christos if (rs->sc_dev == NULL) {
1997 1.217 oster printf("raid%d: config_attach_pseudo failed\n",
1998 1.270 christos raidPtr->raidid);
1999 1.265 pooka rs->sc_flags &= ~RAIDF_INITED;
2000 1.265 pooka free(cf, M_RAIDFRAME);
2001 1.265 pooka return;
2002 1.217 oster }
2003 1.217 oster
2004 1.1 oster /* disk_attach actually creates space for the CPU disklabel, among
2005 1.9 oster * other things, so it's critical to call this *BEFORE* we try putzing
2006 1.9 oster * with disklabels. */
2007 1.11 oster
2008 1.235 oster disk_init(&rs->sc_dkdev, rs->sc_xname, &rf_dkdriver);
2009 1.219 oster disk_attach(&rs->sc_dkdev);
2010 1.1 oster
2011 1.1 oster /* XXX There may be a weird interaction here between this, and
2012 1.9 oster * protectedSectors, as used in RAIDframe. */
2013 1.11 oster
2014 1.9 oster rs->sc_size = raidPtr->totalSectors;
2015 1.234 oster
2016 1.318 mlelstv rf_set_geometry(rs, raidPtr);
2017 1.318 mlelstv
2018 1.234 oster dkwedge_discover(&rs->sc_dkdev);
2019 1.234 oster
2020 1.1 oster }
2021 1.150 oster #if (RF_INCLUDE_PARITY_DECLUSTERING_DS > 0)
2022 1.1 oster /* wake up the daemon & tell it to get us a spare table
2023 1.1 oster * XXX
2024 1.9 oster * the entries in the queues should be tagged with the raidPtr
2025 1.186 perry * so that in the extremely rare case that two recons happen at once,
2026 1.11 oster * we know for which device were requesting a spare table
2027 1.1 oster * XXX
2028 1.186 perry *
2029 1.39 oster * XXX This code is not currently used. GO
2030 1.1 oster */
2031 1.186 perry int
2032 1.169 oster rf_GetSpareTableFromDaemon(RF_SparetWait_t *req)
2033 1.9 oster {
2034 1.9 oster int retcode;
2035 1.9 oster
2036 1.287 mrg rf_lock_mutex2(rf_sparet_wait_mutex);
2037 1.9 oster req->next = rf_sparet_wait_queue;
2038 1.9 oster rf_sparet_wait_queue = req;
2039 1.289 mrg rf_broadcast_cond2(rf_sparet_wait_cv);
2040 1.9 oster
2041 1.9 oster /* mpsleep unlocks the mutex */
2042 1.9 oster while (!rf_sparet_resp_queue) {
2043 1.289 mrg rf_wait_cond2(rf_sparet_resp_cv, rf_sparet_wait_mutex);
2044 1.9 oster }
2045 1.9 oster req = rf_sparet_resp_queue;
2046 1.9 oster rf_sparet_resp_queue = req->next;
2047 1.287 mrg rf_unlock_mutex2(rf_sparet_wait_mutex);
2048 1.9 oster
2049 1.9 oster retcode = req->fcol;
2050 1.9 oster RF_Free(req, sizeof(*req)); /* this is not the same req as we
2051 1.9 oster * alloc'd */
2052 1.9 oster return (retcode);
2053 1.1 oster }
2054 1.150 oster #endif
2055 1.39 oster
2056 1.186 perry /* a wrapper around rf_DoAccess that extracts appropriate info from the
2057 1.11 oster * bp & passes it down.
2058 1.1 oster * any calls originating in the kernel must use non-blocking I/O
2059 1.1 oster * do some extra sanity checking to return "appropriate" error values for
2060 1.1 oster * certain conditions (to make some standard utilities work)
2061 1.186 perry *
2062 1.34 oster * Formerly known as: rf_DoAccessKernel
2063 1.1 oster */
2064 1.34 oster void
2065 1.169 oster raidstart(RF_Raid_t *raidPtr)
2066 1.1 oster {
2067 1.1 oster RF_SectorCount_t num_blocks, pb, sum;
2068 1.1 oster RF_RaidAddr_t raid_addr;
2069 1.1 oster struct partition *pp;
2070 1.9 oster daddr_t blocknum;
2071 1.1 oster struct raid_softc *rs;
2072 1.9 oster int do_async;
2073 1.34 oster struct buf *bp;
2074 1.180 oster int rc;
2075 1.1 oster
2076 1.300 christos rs = raidPtr->softc;
2077 1.56 oster /* quick check to see if anything has died recently */
2078 1.291 mrg rf_lock_mutex2(raidPtr->mutex);
2079 1.56 oster if (raidPtr->numNewFailures > 0) {
2080 1.291 mrg rf_unlock_mutex2(raidPtr->mutex);
2081 1.186 perry rf_update_component_labels(raidPtr,
2082 1.91 oster RF_NORMAL_COMPONENT_UPDATE);
2083 1.291 mrg rf_lock_mutex2(raidPtr->mutex);
2084 1.56 oster raidPtr->numNewFailures--;
2085 1.56 oster }
2086 1.56 oster
2087 1.34 oster /* Check to see if we're at the limit... */
2088 1.34 oster while (raidPtr->openings > 0) {
2089 1.291 mrg rf_unlock_mutex2(raidPtr->mutex);
2090 1.34 oster
2091 1.34 oster /* get the next item, if any, from the queue */
2092 1.253 yamt if ((bp = bufq_get(rs->buf_queue)) == NULL) {
2093 1.34 oster /* nothing more to do */
2094 1.34 oster return;
2095 1.34 oster }
2096 1.34 oster
2097 1.34 oster /* Ok, for the bp we have here, bp->b_blkno is relative to the
2098 1.186 perry * partition.. Need to make it absolute to the underlying
2099 1.34 oster * device.. */
2100 1.1 oster
2101 1.275 mrg blocknum = bp->b_blkno << DEV_BSHIFT >> raidPtr->logBytesPerSector;
2102 1.34 oster if (DISKPART(bp->b_dev) != RAW_PART) {
2103 1.34 oster pp = &rs->sc_dkdev.dk_label->d_partitions[DISKPART(bp->b_dev)];
2104 1.34 oster blocknum += pp->p_offset;
2105 1.34 oster }
2106 1.1 oster
2107 1.186 perry db1_printf(("Blocks: %d, %d\n", (int) bp->b_blkno,
2108 1.34 oster (int) blocknum));
2109 1.186 perry
2110 1.34 oster db1_printf(("bp->b_bcount = %d\n", (int) bp->b_bcount));
2111 1.34 oster db1_printf(("bp->b_resid = %d\n", (int) bp->b_resid));
2112 1.186 perry
2113 1.186 perry /* *THIS* is where we adjust what block we're going to...
2114 1.34 oster * but DO NOT TOUCH bp->b_blkno!!! */
2115 1.34 oster raid_addr = blocknum;
2116 1.186 perry
2117 1.34 oster num_blocks = bp->b_bcount >> raidPtr->logBytesPerSector;
2118 1.34 oster pb = (bp->b_bcount & raidPtr->sectorMask) ? 1 : 0;
2119 1.34 oster sum = raid_addr + num_blocks + pb;
2120 1.34 oster if (1 || rf_debugKernelAccess) {
2121 1.34 oster db1_printf(("raid_addr=%d sum=%d num_blocks=%d(+%d) (%d)\n",
2122 1.34 oster (int) raid_addr, (int) sum, (int) num_blocks,
2123 1.34 oster (int) pb, (int) bp->b_resid));
2124 1.34 oster }
2125 1.34 oster if ((sum > raidPtr->totalSectors) || (sum < raid_addr)
2126 1.34 oster || (sum < num_blocks) || (sum < pb)) {
2127 1.34 oster bp->b_error = ENOSPC;
2128 1.34 oster bp->b_resid = bp->b_bcount;
2129 1.34 oster biodone(bp);
2130 1.291 mrg rf_lock_mutex2(raidPtr->mutex);
2131 1.34 oster continue;
2132 1.34 oster }
2133 1.34 oster /*
2134 1.34 oster * XXX rf_DoAccess() should do this, not just DoAccessKernel()
2135 1.34 oster */
2136 1.186 perry
2137 1.34 oster if (bp->b_bcount & raidPtr->sectorMask) {
2138 1.34 oster bp->b_error = EINVAL;
2139 1.34 oster bp->b_resid = bp->b_bcount;
2140 1.34 oster biodone(bp);
2141 1.291 mrg rf_lock_mutex2(raidPtr->mutex);
2142 1.34 oster continue;
2143 1.186 perry
2144 1.34 oster }
2145 1.34 oster db1_printf(("Calling DoAccess..\n"));
2146 1.186 perry
2147 1.1 oster
2148 1.291 mrg rf_lock_mutex2(raidPtr->mutex);
2149 1.34 oster raidPtr->openings--;
2150 1.291 mrg rf_unlock_mutex2(raidPtr->mutex);
2151 1.1 oster
2152 1.34 oster /*
2153 1.34 oster * Everything is async.
2154 1.34 oster */
2155 1.34 oster do_async = 1;
2156 1.186 perry
2157 1.99 oster disk_busy(&rs->sc_dkdev);
2158 1.99 oster
2159 1.186 perry /* XXX we're still at splbio() here... do we *really*
2160 1.34 oster need to be? */
2161 1.20 oster
2162 1.186 perry /* don't ever condition on bp->b_flags & B_WRITE.
2163 1.99 oster * always condition on B_READ instead */
2164 1.186 perry
2165 1.180 oster rc = rf_DoAccess(raidPtr, (bp->b_flags & B_READ) ?
2166 1.180 oster RF_IO_TYPE_READ : RF_IO_TYPE_WRITE,
2167 1.180 oster do_async, raid_addr, num_blocks,
2168 1.180 oster bp->b_data, bp, RF_DAG_NONBLOCKING_IO);
2169 1.151 oster
2170 1.180 oster if (rc) {
2171 1.180 oster bp->b_error = rc;
2172 1.180 oster bp->b_resid = bp->b_bcount;
2173 1.180 oster biodone(bp);
2174 1.180 oster /* continue loop */
2175 1.186 perry }
2176 1.20 oster
2177 1.291 mrg rf_lock_mutex2(raidPtr->mutex);
2178 1.20 oster }
2179 1.291 mrg rf_unlock_mutex2(raidPtr->mutex);
2180 1.34 oster }
2181 1.20 oster
2182 1.20 oster
2183 1.7 explorer
2184 1.7 explorer
2185 1.1 oster /* invoke an I/O from kernel mode. Disk queue should be locked upon entry */
2186 1.1 oster
2187 1.186 perry int
2188 1.169 oster rf_DispatchKernelIO(RF_DiskQueue_t *queue, RF_DiskQueueData_t *req)
2189 1.1 oster {
2190 1.9 oster int op = (req->type == RF_IO_TYPE_READ) ? B_READ : B_WRITE;
2191 1.1 oster struct buf *bp;
2192 1.9 oster
2193 1.1 oster req->queue = queue;
2194 1.1 oster bp = req->bp;
2195 1.1 oster
2196 1.1 oster switch (req->type) {
2197 1.9 oster case RF_IO_TYPE_NOP: /* used primarily to unlock a locked queue */
2198 1.1 oster /* XXX need to do something extra here.. */
2199 1.9 oster /* I'm leaving this in, as I've never actually seen it used,
2200 1.9 oster * and I'd like folks to report it... GO */
2201 1.1 oster printf(("WAKEUP CALLED\n"));
2202 1.1 oster queue->numOutstanding++;
2203 1.1 oster
2204 1.197 oster bp->b_flags = 0;
2205 1.207 simonb bp->b_private = req;
2206 1.1 oster
2207 1.194 oster KernelWakeupFunc(bp);
2208 1.1 oster break;
2209 1.9 oster
2210 1.1 oster case RF_IO_TYPE_READ:
2211 1.1 oster case RF_IO_TYPE_WRITE:
2212 1.175 oster #if RF_ACC_TRACE > 0
2213 1.1 oster if (req->tracerec) {
2214 1.1 oster RF_ETIMER_START(req->tracerec->timer);
2215 1.1 oster }
2216 1.175 oster #endif
2217 1.194 oster InitBP(bp, queue->rf_cinfo->ci_vp,
2218 1.197 oster op, queue->rf_cinfo->ci_dev,
2219 1.9 oster req->sectorOffset, req->numSector,
2220 1.9 oster req->buf, KernelWakeupFunc, (void *) req,
2221 1.9 oster queue->raidPtr->logBytesPerSector, req->b_proc);
2222 1.1 oster
2223 1.1 oster if (rf_debugKernelAccess) {
2224 1.9 oster db1_printf(("dispatch: bp->b_blkno = %ld\n",
2225 1.9 oster (long) bp->b_blkno));
2226 1.1 oster }
2227 1.1 oster queue->numOutstanding++;
2228 1.1 oster queue->last_deq_sector = req->sectorOffset;
2229 1.9 oster /* acc wouldn't have been let in if there were any pending
2230 1.9 oster * reqs at any other priority */
2231 1.1 oster queue->curPriority = req->priority;
2232 1.1 oster
2233 1.166 oster db1_printf(("Going for %c to unit %d col %d\n",
2234 1.186 perry req->type, queue->raidPtr->raidid,
2235 1.166 oster queue->col));
2236 1.1 oster db1_printf(("sector %d count %d (%d bytes) %d\n",
2237 1.9 oster (int) req->sectorOffset, (int) req->numSector,
2238 1.9 oster (int) (req->numSector <<
2239 1.9 oster queue->raidPtr->logBytesPerSector),
2240 1.9 oster (int) queue->raidPtr->logBytesPerSector));
2241 1.256 oster
2242 1.256 oster /*
2243 1.256 oster * XXX: drop lock here since this can block at
2244 1.256 oster * least with backing SCSI devices. Retake it
2245 1.256 oster * to minimize fuss with calling interfaces.
2246 1.256 oster */
2247 1.256 oster
2248 1.256 oster RF_UNLOCK_QUEUE_MUTEX(queue, "unusedparam");
2249 1.247 oster bdev_strategy(bp);
2250 1.256 oster RF_LOCK_QUEUE_MUTEX(queue, "unusedparam");
2251 1.1 oster break;
2252 1.9 oster
2253 1.1 oster default:
2254 1.1 oster panic("bad req->type in rf_DispatchKernelIO");
2255 1.1 oster }
2256 1.1 oster db1_printf(("Exiting from DispatchKernelIO\n"));
2257 1.134 oster
2258 1.9 oster return (0);
2259 1.1 oster }
2260 1.9 oster /* this is the callback function associated with a I/O invoked from
2261 1.1 oster kernel code.
2262 1.1 oster */
2263 1.186 perry static void
2264 1.194 oster KernelWakeupFunc(struct buf *bp)
2265 1.9 oster {
2266 1.9 oster RF_DiskQueueData_t *req = NULL;
2267 1.9 oster RF_DiskQueue_t *queue;
2268 1.9 oster
2269 1.9 oster db1_printf(("recovering the request queue:\n"));
2270 1.285 mrg
2271 1.207 simonb req = bp->b_private;
2272 1.1 oster
2273 1.9 oster queue = (RF_DiskQueue_t *) req->queue;
2274 1.1 oster
2275 1.286 mrg rf_lock_mutex2(queue->raidPtr->iodone_lock);
2276 1.285 mrg
2277 1.175 oster #if RF_ACC_TRACE > 0
2278 1.9 oster if (req->tracerec) {
2279 1.9 oster RF_ETIMER_STOP(req->tracerec->timer);
2280 1.9 oster RF_ETIMER_EVAL(req->tracerec->timer);
2281 1.288 mrg rf_lock_mutex2(rf_tracing_mutex);
2282 1.9 oster req->tracerec->diskwait_us += RF_ETIMER_VAL_US(req->tracerec->timer);
2283 1.9 oster req->tracerec->phys_io_us += RF_ETIMER_VAL_US(req->tracerec->timer);
2284 1.9 oster req->tracerec->num_phys_ios++;
2285 1.288 mrg rf_unlock_mutex2(rf_tracing_mutex);
2286 1.9 oster }
2287 1.175 oster #endif
2288 1.1 oster
2289 1.230 ad /* XXX Ok, let's get aggressive... If b_error is set, let's go
2290 1.9 oster * ballistic, and mark the component as hosed... */
2291 1.36 oster
2292 1.230 ad if (bp->b_error != 0) {
2293 1.9 oster /* Mark the disk as dead */
2294 1.9 oster /* but only mark it once... */
2295 1.186 perry /* and only if it wouldn't leave this RAID set
2296 1.183 oster completely broken */
2297 1.193 oster if (((queue->raidPtr->Disks[queue->col].status ==
2298 1.193 oster rf_ds_optimal) ||
2299 1.193 oster (queue->raidPtr->Disks[queue->col].status ==
2300 1.193 oster rf_ds_used_spare)) &&
2301 1.193 oster (queue->raidPtr->numFailures <
2302 1.204 simonb queue->raidPtr->Layout.map->faultsTolerated)) {
2303 1.322 prlw1 printf("raid%d: IO Error (%d). Marking %s as failed.\n",
2304 1.136 oster queue->raidPtr->raidid,
2305 1.322 prlw1 bp->b_error,
2306 1.166 oster queue->raidPtr->Disks[queue->col].devname);
2307 1.166 oster queue->raidPtr->Disks[queue->col].status =
2308 1.9 oster rf_ds_failed;
2309 1.166 oster queue->raidPtr->status = rf_rs_degraded;
2310 1.9 oster queue->raidPtr->numFailures++;
2311 1.56 oster queue->raidPtr->numNewFailures++;
2312 1.9 oster } else { /* Disk is already dead... */
2313 1.9 oster /* printf("Disk already marked as dead!\n"); */
2314 1.9 oster }
2315 1.4 oster
2316 1.9 oster }
2317 1.4 oster
2318 1.143 oster /* Fill in the error value */
2319 1.230 ad req->error = bp->b_error;
2320 1.143 oster
2321 1.143 oster /* Drop this one on the "finished" queue... */
2322 1.143 oster TAILQ_INSERT_TAIL(&(queue->raidPtr->iodone), req, iodone_entries);
2323 1.143 oster
2324 1.143 oster /* Let the raidio thread know there is work to be done. */
2325 1.286 mrg rf_signal_cond2(queue->raidPtr->iodone_cv);
2326 1.143 oster
2327 1.286 mrg rf_unlock_mutex2(queue->raidPtr->iodone_lock);
2328 1.1 oster }
2329 1.1 oster
2330 1.1 oster
2331 1.1 oster /*
2332 1.1 oster * initialize a buf structure for doing an I/O in the kernel.
2333 1.1 oster */
2334 1.186 perry static void
2335 1.169 oster InitBP(struct buf *bp, struct vnode *b_vp, unsigned rw_flag, dev_t dev,
2336 1.225 christos RF_SectorNum_t startSect, RF_SectorCount_t numSect, void *bf,
2337 1.169 oster void (*cbFunc) (struct buf *), void *cbArg, int logBytesPerSector,
2338 1.169 oster struct proc *b_proc)
2339 1.9 oster {
2340 1.9 oster /* bp->b_flags = B_PHYS | rw_flag; */
2341 1.242 ad bp->b_flags = rw_flag; /* XXX need B_PHYS here too??? */
2342 1.242 ad bp->b_oflags = 0;
2343 1.242 ad bp->b_cflags = 0;
2344 1.9 oster bp->b_bcount = numSect << logBytesPerSector;
2345 1.9 oster bp->b_bufsize = bp->b_bcount;
2346 1.9 oster bp->b_error = 0;
2347 1.9 oster bp->b_dev = dev;
2348 1.187 christos bp->b_data = bf;
2349 1.275 mrg bp->b_blkno = startSect << logBytesPerSector >> DEV_BSHIFT;
2350 1.9 oster bp->b_resid = bp->b_bcount; /* XXX is this right!??!?!! */
2351 1.1 oster if (bp->b_bcount == 0) {
2352 1.141 provos panic("bp->b_bcount is zero in InitBP!!");
2353 1.1 oster }
2354 1.161 fvdl bp->b_proc = b_proc;
2355 1.9 oster bp->b_iodone = cbFunc;
2356 1.207 simonb bp->b_private = cbArg;
2357 1.1 oster }
2358 1.1 oster
2359 1.1 oster static void
2360 1.186 perry raidgetdefaultlabel(RF_Raid_t *raidPtr, struct raid_softc *rs,
2361 1.169 oster struct disklabel *lp)
2362 1.1 oster {
2363 1.108 thorpej memset(lp, 0, sizeof(*lp));
2364 1.1 oster
2365 1.1 oster /* fabricate a label... */
2366 1.313 mlelstv if (raidPtr->totalSectors > UINT32_MAX)
2367 1.313 mlelstv lp->d_secperunit = UINT32_MAX;
2368 1.313 mlelstv else
2369 1.313 mlelstv lp->d_secperunit = raidPtr->totalSectors;
2370 1.1 oster lp->d_secsize = raidPtr->bytesPerSector;
2371 1.45 oster lp->d_nsectors = raidPtr->Layout.dataSectorsPerStripe;
2372 1.105 oster lp->d_ntracks = 4 * raidPtr->numCol;
2373 1.186 perry lp->d_ncylinders = raidPtr->totalSectors /
2374 1.45 oster (lp->d_nsectors * lp->d_ntracks);
2375 1.1 oster lp->d_secpercyl = lp->d_ntracks * lp->d_nsectors;
2376 1.1 oster
2377 1.1 oster strncpy(lp->d_typename, "raid", sizeof(lp->d_typename));
2378 1.321 christos lp->d_type = DKTYPE_RAID;
2379 1.1 oster strncpy(lp->d_packname, "fictitious", sizeof(lp->d_packname));
2380 1.1 oster lp->d_rpm = 3600;
2381 1.1 oster lp->d_interleave = 1;
2382 1.1 oster lp->d_flags = 0;
2383 1.1 oster
2384 1.1 oster lp->d_partitions[RAW_PART].p_offset = 0;
2385 1.313 mlelstv lp->d_partitions[RAW_PART].p_size = lp->d_secperunit;
2386 1.1 oster lp->d_partitions[RAW_PART].p_fstype = FS_UNUSED;
2387 1.1 oster lp->d_npartitions = RAW_PART + 1;
2388 1.1 oster
2389 1.1 oster lp->d_magic = DISKMAGIC;
2390 1.1 oster lp->d_magic2 = DISKMAGIC;
2391 1.1 oster lp->d_checksum = dkcksum(rs->sc_dkdev.dk_label);
2392 1.1 oster
2393 1.1 oster }
2394 1.1 oster /*
2395 1.1 oster * Read the disklabel from the raid device. If one is not present, fake one
2396 1.1 oster * up.
2397 1.1 oster */
2398 1.1 oster static void
2399 1.169 oster raidgetdisklabel(dev_t dev)
2400 1.1 oster {
2401 1.9 oster int unit = raidunit(dev);
2402 1.300 christos struct raid_softc *rs;
2403 1.158 dsl const char *errstring;
2404 1.300 christos struct disklabel *lp;
2405 1.300 christos struct cpu_disklabel *clp;
2406 1.1 oster RF_Raid_t *raidPtr;
2407 1.1 oster
2408 1.327 pgoyette if ((rs = raidget(unit, false)) == NULL)
2409 1.300 christos return;
2410 1.300 christos
2411 1.300 christos lp = rs->sc_dkdev.dk_label;
2412 1.300 christos clp = rs->sc_dkdev.dk_cpulabel;
2413 1.300 christos
2414 1.1 oster db1_printf(("Getting the disklabel...\n"));
2415 1.1 oster
2416 1.108 thorpej memset(clp, 0, sizeof(*clp));
2417 1.1 oster
2418 1.300 christos raidPtr = &rs->sc_r;
2419 1.1 oster
2420 1.1 oster raidgetdefaultlabel(raidPtr, rs, lp);
2421 1.1 oster
2422 1.1 oster /*
2423 1.1 oster * Call the generic disklabel extraction routine.
2424 1.1 oster */
2425 1.1 oster errstring = readdisklabel(RAIDLABELDEV(dev), raidstrategy,
2426 1.1 oster rs->sc_dkdev.dk_label, rs->sc_dkdev.dk_cpulabel);
2427 1.9 oster if (errstring)
2428 1.1 oster raidmakedisklabel(rs);
2429 1.1 oster else {
2430 1.9 oster int i;
2431 1.1 oster struct partition *pp;
2432 1.1 oster
2433 1.1 oster /*
2434 1.1 oster * Sanity check whether the found disklabel is valid.
2435 1.1 oster *
2436 1.1 oster * This is necessary since total size of the raid device
2437 1.1 oster * may vary when an interleave is changed even though exactly
2438 1.211 oster * same components are used, and old disklabel may used
2439 1.1 oster * if that is found.
2440 1.1 oster */
2441 1.314 mlelstv if (lp->d_secperunit < UINT32_MAX ?
2442 1.314 mlelstv lp->d_secperunit != rs->sc_size :
2443 1.314 mlelstv lp->d_secperunit > rs->sc_size)
2444 1.123 oster printf("raid%d: WARNING: %s: "
2445 1.314 mlelstv "total sector size in disklabel (%ju) != "
2446 1.314 mlelstv "the size of raid (%ju)\n", unit, rs->sc_xname,
2447 1.314 mlelstv (uintmax_t)lp->d_secperunit,
2448 1.314 mlelstv (uintmax_t)rs->sc_size);
2449 1.1 oster for (i = 0; i < lp->d_npartitions; i++) {
2450 1.1 oster pp = &lp->d_partitions[i];
2451 1.1 oster if (pp->p_offset + pp->p_size > rs->sc_size)
2452 1.123 oster printf("raid%d: WARNING: %s: end of partition `%c' "
2453 1.314 mlelstv "exceeds the size of raid (%ju)\n",
2454 1.314 mlelstv unit, rs->sc_xname, 'a' + i,
2455 1.314 mlelstv (uintmax_t)rs->sc_size);
2456 1.1 oster }
2457 1.1 oster }
2458 1.1 oster
2459 1.1 oster }
2460 1.1 oster /*
2461 1.1 oster * Take care of things one might want to take care of in the event
2462 1.1 oster * that a disklabel isn't present.
2463 1.1 oster */
2464 1.1 oster static void
2465 1.169 oster raidmakedisklabel(struct raid_softc *rs)
2466 1.1 oster {
2467 1.1 oster struct disklabel *lp = rs->sc_dkdev.dk_label;
2468 1.1 oster db1_printf(("Making a label..\n"));
2469 1.1 oster
2470 1.1 oster /*
2471 1.1 oster * For historical reasons, if there's no disklabel present
2472 1.1 oster * the raw partition must be marked FS_BSDFFS.
2473 1.1 oster */
2474 1.1 oster
2475 1.1 oster lp->d_partitions[RAW_PART].p_fstype = FS_BSDFFS;
2476 1.1 oster
2477 1.1 oster strncpy(lp->d_packname, "default label", sizeof(lp->d_packname));
2478 1.1 oster
2479 1.1 oster lp->d_checksum = dkcksum(lp);
2480 1.1 oster }
2481 1.1 oster /*
2482 1.1 oster * Wait interruptibly for an exclusive lock.
2483 1.1 oster *
2484 1.1 oster * XXX
2485 1.1 oster * Several drivers do this; it should be abstracted and made MP-safe.
2486 1.1 oster * (Hmm... where have we seen this warning before :-> GO )
2487 1.1 oster */
2488 1.1 oster static int
2489 1.169 oster raidlock(struct raid_softc *rs)
2490 1.1 oster {
2491 1.9 oster int error;
2492 1.1 oster
2493 1.327 pgoyette mutex_enter(&rs->sc_mutex);
2494 1.1 oster while ((rs->sc_flags & RAIDF_LOCKED) != 0) {
2495 1.1 oster rs->sc_flags |= RAIDF_WANTED;
2496 1.327 pgoyette error = cv_wait_sig(&rs->sc_cv, &rs->sc_mutex);
2497 1.327 pgoyette if (error != 0)
2498 1.1 oster return (error);
2499 1.1 oster }
2500 1.1 oster rs->sc_flags |= RAIDF_LOCKED;
2501 1.327 pgoyette mutex_exit(&rs->sc_mutex);
2502 1.1 oster return (0);
2503 1.1 oster }
2504 1.1 oster /*
2505 1.1 oster * Unlock and wake up any waiters.
2506 1.1 oster */
2507 1.1 oster static void
2508 1.169 oster raidunlock(struct raid_softc *rs)
2509 1.1 oster {
2510 1.1 oster
2511 1.327 pgoyette mutex_enter(&rs->sc_mutex);
2512 1.1 oster rs->sc_flags &= ~RAIDF_LOCKED;
2513 1.1 oster if ((rs->sc_flags & RAIDF_WANTED) != 0) {
2514 1.1 oster rs->sc_flags &= ~RAIDF_WANTED;
2515 1.327 pgoyette cv_broadcast(&rs->sc_cv);
2516 1.1 oster }
2517 1.327 pgoyette mutex_exit(&rs->sc_mutex);
2518 1.11 oster }
2519 1.186 perry
2520 1.11 oster
2521 1.11 oster #define RF_COMPONENT_INFO_OFFSET 16384 /* bytes */
2522 1.11 oster #define RF_COMPONENT_INFO_SIZE 1024 /* bytes */
2523 1.269 jld #define RF_PARITY_MAP_SIZE RF_PARITYMAP_NBYTE
2524 1.11 oster
2525 1.276 mrg static daddr_t
2526 1.276 mrg rf_component_info_offset(void)
2527 1.276 mrg {
2528 1.276 mrg
2529 1.276 mrg return RF_COMPONENT_INFO_OFFSET;
2530 1.276 mrg }
2531 1.276 mrg
2532 1.276 mrg static daddr_t
2533 1.276 mrg rf_component_info_size(unsigned secsize)
2534 1.276 mrg {
2535 1.276 mrg daddr_t info_size;
2536 1.276 mrg
2537 1.276 mrg KASSERT(secsize);
2538 1.276 mrg if (secsize > RF_COMPONENT_INFO_SIZE)
2539 1.276 mrg info_size = secsize;
2540 1.276 mrg else
2541 1.276 mrg info_size = RF_COMPONENT_INFO_SIZE;
2542 1.276 mrg
2543 1.276 mrg return info_size;
2544 1.276 mrg }
2545 1.276 mrg
2546 1.276 mrg static daddr_t
2547 1.276 mrg rf_parity_map_offset(RF_Raid_t *raidPtr)
2548 1.276 mrg {
2549 1.276 mrg daddr_t map_offset;
2550 1.276 mrg
2551 1.276 mrg KASSERT(raidPtr->bytesPerSector);
2552 1.276 mrg if (raidPtr->bytesPerSector > RF_COMPONENT_INFO_SIZE)
2553 1.276 mrg map_offset = raidPtr->bytesPerSector;
2554 1.276 mrg else
2555 1.276 mrg map_offset = RF_COMPONENT_INFO_SIZE;
2556 1.276 mrg map_offset += rf_component_info_offset();
2557 1.276 mrg
2558 1.276 mrg return map_offset;
2559 1.276 mrg }
2560 1.276 mrg
2561 1.276 mrg static daddr_t
2562 1.276 mrg rf_parity_map_size(RF_Raid_t *raidPtr)
2563 1.276 mrg {
2564 1.276 mrg daddr_t map_size;
2565 1.276 mrg
2566 1.276 mrg if (raidPtr->bytesPerSector > RF_PARITY_MAP_SIZE)
2567 1.276 mrg map_size = raidPtr->bytesPerSector;
2568 1.276 mrg else
2569 1.276 mrg map_size = RF_PARITY_MAP_SIZE;
2570 1.276 mrg
2571 1.276 mrg return map_size;
2572 1.276 mrg }
2573 1.276 mrg
2574 1.186 perry int
2575 1.269 jld raidmarkclean(RF_Raid_t *raidPtr, RF_RowCol_t col)
2576 1.12 oster {
2577 1.269 jld RF_ComponentLabel_t *clabel;
2578 1.269 jld
2579 1.269 jld clabel = raidget_component_label(raidPtr, col);
2580 1.269 jld clabel->clean = RF_RAID_CLEAN;
2581 1.269 jld raidflush_component_label(raidPtr, col);
2582 1.12 oster return(0);
2583 1.12 oster }
2584 1.12 oster
2585 1.12 oster
2586 1.186 perry int
2587 1.269 jld raidmarkdirty(RF_Raid_t *raidPtr, RF_RowCol_t col)
2588 1.11 oster {
2589 1.269 jld RF_ComponentLabel_t *clabel;
2590 1.269 jld
2591 1.269 jld clabel = raidget_component_label(raidPtr, col);
2592 1.269 jld clabel->clean = RF_RAID_DIRTY;
2593 1.269 jld raidflush_component_label(raidPtr, col);
2594 1.11 oster return(0);
2595 1.11 oster }
2596 1.11 oster
2597 1.11 oster int
2598 1.269 jld raidfetch_component_label(RF_Raid_t *raidPtr, RF_RowCol_t col)
2599 1.269 jld {
2600 1.276 mrg KASSERT(raidPtr->bytesPerSector);
2601 1.276 mrg return raidread_component_label(raidPtr->bytesPerSector,
2602 1.276 mrg raidPtr->Disks[col].dev,
2603 1.269 jld raidPtr->raid_cinfo[col].ci_vp,
2604 1.269 jld &raidPtr->raid_cinfo[col].ci_label);
2605 1.269 jld }
2606 1.269 jld
2607 1.269 jld RF_ComponentLabel_t *
2608 1.269 jld raidget_component_label(RF_Raid_t *raidPtr, RF_RowCol_t col)
2609 1.269 jld {
2610 1.269 jld return &raidPtr->raid_cinfo[col].ci_label;
2611 1.269 jld }
2612 1.269 jld
2613 1.269 jld int
2614 1.269 jld raidflush_component_label(RF_Raid_t *raidPtr, RF_RowCol_t col)
2615 1.269 jld {
2616 1.269 jld RF_ComponentLabel_t *label;
2617 1.269 jld
2618 1.269 jld label = &raidPtr->raid_cinfo[col].ci_label;
2619 1.269 jld label->mod_counter = raidPtr->mod_counter;
2620 1.269 jld #ifndef RF_NO_PARITY_MAP
2621 1.269 jld label->parity_map_modcount = label->mod_counter;
2622 1.269 jld #endif
2623 1.276 mrg return raidwrite_component_label(raidPtr->bytesPerSector,
2624 1.276 mrg raidPtr->Disks[col].dev,
2625 1.269 jld raidPtr->raid_cinfo[col].ci_vp, label);
2626 1.269 jld }
2627 1.269 jld
2628 1.269 jld
2629 1.269 jld static int
2630 1.276 mrg raidread_component_label(unsigned secsize, dev_t dev, struct vnode *b_vp,
2631 1.269 jld RF_ComponentLabel_t *clabel)
2632 1.269 jld {
2633 1.269 jld return raidread_component_area(dev, b_vp, clabel,
2634 1.269 jld sizeof(RF_ComponentLabel_t),
2635 1.276 mrg rf_component_info_offset(),
2636 1.276 mrg rf_component_info_size(secsize));
2637 1.269 jld }
2638 1.269 jld
2639 1.269 jld /* ARGSUSED */
2640 1.269 jld static int
2641 1.269 jld raidread_component_area(dev_t dev, struct vnode *b_vp, void *data,
2642 1.269 jld size_t msize, daddr_t offset, daddr_t dsize)
2643 1.11 oster {
2644 1.11 oster struct buf *bp;
2645 1.130 gehenna const struct bdevsw *bdev;
2646 1.11 oster int error;
2647 1.186 perry
2648 1.11 oster /* XXX should probably ensure that we don't try to do this if
2649 1.186 perry someone has changed rf_protected_sectors. */
2650 1.11 oster
2651 1.98 oster if (b_vp == NULL) {
2652 1.98 oster /* For whatever reason, this component is not valid.
2653 1.98 oster Don't try to read a component label from it. */
2654 1.98 oster return(EINVAL);
2655 1.98 oster }
2656 1.98 oster
2657 1.11 oster /* get a block of the appropriate size... */
2658 1.269 jld bp = geteblk((int)dsize);
2659 1.11 oster bp->b_dev = dev;
2660 1.11 oster
2661 1.11 oster /* get our ducks in a row for the read */
2662 1.269 jld bp->b_blkno = offset / DEV_BSIZE;
2663 1.269 jld bp->b_bcount = dsize;
2664 1.100 chs bp->b_flags |= B_READ;
2665 1.269 jld bp->b_resid = dsize;
2666 1.11 oster
2667 1.130 gehenna bdev = bdevsw_lookup(bp->b_dev);
2668 1.130 gehenna if (bdev == NULL)
2669 1.130 gehenna return (ENXIO);
2670 1.130 gehenna (*bdev->d_strategy)(bp);
2671 1.11 oster
2672 1.186 perry error = biowait(bp);
2673 1.11 oster
2674 1.11 oster if (!error) {
2675 1.269 jld memcpy(data, bp->b_data, msize);
2676 1.204 simonb }
2677 1.11 oster
2678 1.233 ad brelse(bp, 0);
2679 1.11 oster return(error);
2680 1.11 oster }
2681 1.269 jld
2682 1.269 jld
2683 1.269 jld static int
2684 1.276 mrg raidwrite_component_label(unsigned secsize, dev_t dev, struct vnode *b_vp,
2685 1.276 mrg RF_ComponentLabel_t *clabel)
2686 1.269 jld {
2687 1.269 jld return raidwrite_component_area(dev, b_vp, clabel,
2688 1.269 jld sizeof(RF_ComponentLabel_t),
2689 1.276 mrg rf_component_info_offset(),
2690 1.276 mrg rf_component_info_size(secsize), 0);
2691 1.269 jld }
2692 1.269 jld
2693 1.11 oster /* ARGSUSED */
2694 1.269 jld static int
2695 1.269 jld raidwrite_component_area(dev_t dev, struct vnode *b_vp, void *data,
2696 1.269 jld size_t msize, daddr_t offset, daddr_t dsize, int asyncp)
2697 1.11 oster {
2698 1.11 oster struct buf *bp;
2699 1.130 gehenna const struct bdevsw *bdev;
2700 1.11 oster int error;
2701 1.11 oster
2702 1.11 oster /* get a block of the appropriate size... */
2703 1.269 jld bp = geteblk((int)dsize);
2704 1.11 oster bp->b_dev = dev;
2705 1.11 oster
2706 1.11 oster /* get our ducks in a row for the write */
2707 1.269 jld bp->b_blkno = offset / DEV_BSIZE;
2708 1.269 jld bp->b_bcount = dsize;
2709 1.269 jld bp->b_flags |= B_WRITE | (asyncp ? B_ASYNC : 0);
2710 1.269 jld bp->b_resid = dsize;
2711 1.11 oster
2712 1.269 jld memset(bp->b_data, 0, dsize);
2713 1.269 jld memcpy(bp->b_data, data, msize);
2714 1.11 oster
2715 1.130 gehenna bdev = bdevsw_lookup(bp->b_dev);
2716 1.130 gehenna if (bdev == NULL)
2717 1.130 gehenna return (ENXIO);
2718 1.130 gehenna (*bdev->d_strategy)(bp);
2719 1.269 jld if (asyncp)
2720 1.269 jld return 0;
2721 1.186 perry error = biowait(bp);
2722 1.233 ad brelse(bp, 0);
2723 1.11 oster if (error) {
2724 1.48 oster #if 1
2725 1.11 oster printf("Failed to write RAID component info!\n");
2726 1.48 oster #endif
2727 1.11 oster }
2728 1.11 oster
2729 1.11 oster return(error);
2730 1.1 oster }
2731 1.12 oster
2732 1.186 perry void
2733 1.269 jld rf_paritymap_kern_write(RF_Raid_t *raidPtr, struct rf_paritymap_ondisk *map)
2734 1.269 jld {
2735 1.269 jld int c;
2736 1.269 jld
2737 1.269 jld for (c = 0; c < raidPtr->numCol; c++) {
2738 1.269 jld /* Skip dead disks. */
2739 1.269 jld if (RF_DEAD_DISK(raidPtr->Disks[c].status))
2740 1.269 jld continue;
2741 1.269 jld /* XXXjld: what if an error occurs here? */
2742 1.269 jld raidwrite_component_area(raidPtr->Disks[c].dev,
2743 1.269 jld raidPtr->raid_cinfo[c].ci_vp, map,
2744 1.269 jld RF_PARITYMAP_NBYTE,
2745 1.276 mrg rf_parity_map_offset(raidPtr),
2746 1.276 mrg rf_parity_map_size(raidPtr), 0);
2747 1.269 jld }
2748 1.269 jld }
2749 1.269 jld
2750 1.269 jld void
2751 1.269 jld rf_paritymap_kern_read(RF_Raid_t *raidPtr, struct rf_paritymap_ondisk *map)
2752 1.269 jld {
2753 1.269 jld struct rf_paritymap_ondisk tmp;
2754 1.272 oster int c,first;
2755 1.269 jld
2756 1.272 oster first=1;
2757 1.269 jld for (c = 0; c < raidPtr->numCol; c++) {
2758 1.269 jld /* Skip dead disks. */
2759 1.269 jld if (RF_DEAD_DISK(raidPtr->Disks[c].status))
2760 1.269 jld continue;
2761 1.269 jld raidread_component_area(raidPtr->Disks[c].dev,
2762 1.269 jld raidPtr->raid_cinfo[c].ci_vp, &tmp,
2763 1.269 jld RF_PARITYMAP_NBYTE,
2764 1.276 mrg rf_parity_map_offset(raidPtr),
2765 1.276 mrg rf_parity_map_size(raidPtr));
2766 1.272 oster if (first) {
2767 1.269 jld memcpy(map, &tmp, sizeof(*map));
2768 1.272 oster first = 0;
2769 1.269 jld } else {
2770 1.269 jld rf_paritymap_merge(map, &tmp);
2771 1.269 jld }
2772 1.269 jld }
2773 1.269 jld }
2774 1.269 jld
2775 1.269 jld void
2776 1.169 oster rf_markalldirty(RF_Raid_t *raidPtr)
2777 1.12 oster {
2778 1.269 jld RF_ComponentLabel_t *clabel;
2779 1.146 oster int sparecol;
2780 1.166 oster int c;
2781 1.166 oster int j;
2782 1.166 oster int scol = -1;
2783 1.12 oster
2784 1.12 oster raidPtr->mod_counter++;
2785 1.166 oster for (c = 0; c < raidPtr->numCol; c++) {
2786 1.166 oster /* we don't want to touch (at all) a disk that has
2787 1.166 oster failed */
2788 1.166 oster if (!RF_DEAD_DISK(raidPtr->Disks[c].status)) {
2789 1.269 jld clabel = raidget_component_label(raidPtr, c);
2790 1.269 jld if (clabel->status == rf_ds_spared) {
2791 1.186 perry /* XXX do something special...
2792 1.186 perry but whatever you do, don't
2793 1.166 oster try to access it!! */
2794 1.166 oster } else {
2795 1.269 jld raidmarkdirty(raidPtr, c);
2796 1.12 oster }
2797 1.166 oster }
2798 1.186 perry }
2799 1.146 oster
2800 1.12 oster for( c = 0; c < raidPtr->numSpare ; c++) {
2801 1.12 oster sparecol = raidPtr->numCol + c;
2802 1.166 oster if (raidPtr->Disks[sparecol].status == rf_ds_used_spare) {
2803 1.186 perry /*
2804 1.186 perry
2805 1.186 perry we claim this disk is "optimal" if it's
2806 1.186 perry rf_ds_used_spare, as that means it should be
2807 1.186 perry directly substitutable for the disk it replaced.
2808 1.12 oster We note that too...
2809 1.12 oster
2810 1.12 oster */
2811 1.12 oster
2812 1.166 oster for(j=0;j<raidPtr->numCol;j++) {
2813 1.166 oster if (raidPtr->Disks[j].spareCol == sparecol) {
2814 1.166 oster scol = j;
2815 1.166 oster break;
2816 1.12 oster }
2817 1.12 oster }
2818 1.186 perry
2819 1.269 jld clabel = raidget_component_label(raidPtr, sparecol);
2820 1.12 oster /* make sure status is noted */
2821 1.146 oster
2822 1.269 jld raid_init_component_label(raidPtr, clabel);
2823 1.146 oster
2824 1.269 jld clabel->row = 0;
2825 1.269 jld clabel->column = scol;
2826 1.146 oster /* Note: we *don't* change status from rf_ds_used_spare
2827 1.146 oster to rf_ds_optimal */
2828 1.146 oster /* clabel.status = rf_ds_optimal; */
2829 1.186 perry
2830 1.269 jld raidmarkdirty(raidPtr, sparecol);
2831 1.12 oster }
2832 1.12 oster }
2833 1.12 oster }
2834 1.12 oster
2835 1.13 oster
2836 1.13 oster void
2837 1.169 oster rf_update_component_labels(RF_Raid_t *raidPtr, int final)
2838 1.13 oster {
2839 1.269 jld RF_ComponentLabel_t *clabel;
2840 1.13 oster int sparecol;
2841 1.166 oster int c;
2842 1.166 oster int j;
2843 1.166 oster int scol;
2844 1.13 oster
2845 1.13 oster scol = -1;
2846 1.13 oster
2847 1.186 perry /* XXX should do extra checks to make sure things really are clean,
2848 1.13 oster rather than blindly setting the clean bit... */
2849 1.13 oster
2850 1.13 oster raidPtr->mod_counter++;
2851 1.13 oster
2852 1.166 oster for (c = 0; c < raidPtr->numCol; c++) {
2853 1.166 oster if (raidPtr->Disks[c].status == rf_ds_optimal) {
2854 1.269 jld clabel = raidget_component_label(raidPtr, c);
2855 1.201 oster /* make sure status is noted */
2856 1.269 jld clabel->status = rf_ds_optimal;
2857 1.201 oster
2858 1.214 oster /* note what unit we are configured as */
2859 1.269 jld clabel->last_unit = raidPtr->raidid;
2860 1.214 oster
2861 1.269 jld raidflush_component_label(raidPtr, c);
2862 1.166 oster if (final == RF_FINAL_COMPONENT_UPDATE) {
2863 1.166 oster if (raidPtr->parity_good == RF_RAID_CLEAN) {
2864 1.269 jld raidmarkclean(raidPtr, c);
2865 1.91 oster }
2866 1.166 oster }
2867 1.186 perry }
2868 1.166 oster /* else we don't touch it.. */
2869 1.186 perry }
2870 1.63 oster
2871 1.63 oster for( c = 0; c < raidPtr->numSpare ; c++) {
2872 1.63 oster sparecol = raidPtr->numCol + c;
2873 1.110 oster /* Need to ensure that the reconstruct actually completed! */
2874 1.166 oster if (raidPtr->Disks[sparecol].status == rf_ds_used_spare) {
2875 1.186 perry /*
2876 1.186 perry
2877 1.186 perry we claim this disk is "optimal" if it's
2878 1.186 perry rf_ds_used_spare, as that means it should be
2879 1.186 perry directly substitutable for the disk it replaced.
2880 1.63 oster We note that too...
2881 1.63 oster
2882 1.63 oster */
2883 1.63 oster
2884 1.166 oster for(j=0;j<raidPtr->numCol;j++) {
2885 1.166 oster if (raidPtr->Disks[j].spareCol == sparecol) {
2886 1.166 oster scol = j;
2887 1.166 oster break;
2888 1.63 oster }
2889 1.63 oster }
2890 1.186 perry
2891 1.63 oster /* XXX shouldn't *really* need this... */
2892 1.269 jld clabel = raidget_component_label(raidPtr, sparecol);
2893 1.63 oster /* make sure status is noted */
2894 1.63 oster
2895 1.269 jld raid_init_component_label(raidPtr, clabel);
2896 1.269 jld
2897 1.269 jld clabel->column = scol;
2898 1.269 jld clabel->status = rf_ds_optimal;
2899 1.269 jld clabel->last_unit = raidPtr->raidid;
2900 1.63 oster
2901 1.269 jld raidflush_component_label(raidPtr, sparecol);
2902 1.91 oster if (final == RF_FINAL_COMPONENT_UPDATE) {
2903 1.13 oster if (raidPtr->parity_good == RF_RAID_CLEAN) {
2904 1.269 jld raidmarkclean(raidPtr, sparecol);
2905 1.13 oster }
2906 1.13 oster }
2907 1.13 oster }
2908 1.13 oster }
2909 1.68 oster }
2910 1.68 oster
2911 1.68 oster void
2912 1.169 oster rf_close_component(RF_Raid_t *raidPtr, struct vnode *vp, int auto_configured)
2913 1.69 oster {
2914 1.69 oster
2915 1.69 oster if (vp != NULL) {
2916 1.69 oster if (auto_configured == 1) {
2917 1.96 oster vn_lock(vp, LK_EXCLUSIVE | LK_RETRY);
2918 1.238 pooka VOP_CLOSE(vp, FREAD | FWRITE, NOCRED);
2919 1.69 oster vput(vp);
2920 1.186 perry
2921 1.186 perry } else {
2922 1.244 ad (void) vn_close(vp, FREAD | FWRITE, curlwp->l_cred);
2923 1.69 oster }
2924 1.186 perry }
2925 1.69 oster }
2926 1.69 oster
2927 1.69 oster
2928 1.69 oster void
2929 1.169 oster rf_UnconfigureVnodes(RF_Raid_t *raidPtr)
2930 1.68 oster {
2931 1.186 perry int r,c;
2932 1.69 oster struct vnode *vp;
2933 1.69 oster int acd;
2934 1.68 oster
2935 1.68 oster
2936 1.68 oster /* We take this opportunity to close the vnodes like we should.. */
2937 1.68 oster
2938 1.166 oster for (c = 0; c < raidPtr->numCol; c++) {
2939 1.166 oster vp = raidPtr->raid_cinfo[c].ci_vp;
2940 1.166 oster acd = raidPtr->Disks[c].auto_configured;
2941 1.166 oster rf_close_component(raidPtr, vp, acd);
2942 1.166 oster raidPtr->raid_cinfo[c].ci_vp = NULL;
2943 1.166 oster raidPtr->Disks[c].auto_configured = 0;
2944 1.68 oster }
2945 1.166 oster
2946 1.68 oster for (r = 0; r < raidPtr->numSpare; r++) {
2947 1.166 oster vp = raidPtr->raid_cinfo[raidPtr->numCol + r].ci_vp;
2948 1.166 oster acd = raidPtr->Disks[raidPtr->numCol + r].auto_configured;
2949 1.69 oster rf_close_component(raidPtr, vp, acd);
2950 1.166 oster raidPtr->raid_cinfo[raidPtr->numCol + r].ci_vp = NULL;
2951 1.166 oster raidPtr->Disks[raidPtr->numCol + r].auto_configured = 0;
2952 1.68 oster }
2953 1.37 oster }
2954 1.63 oster
2955 1.37 oster
2956 1.186 perry void
2957 1.169 oster rf_ReconThread(struct rf_recon_req *req)
2958 1.37 oster {
2959 1.37 oster int s;
2960 1.37 oster RF_Raid_t *raidPtr;
2961 1.37 oster
2962 1.37 oster s = splbio();
2963 1.37 oster raidPtr = (RF_Raid_t *) req->raidPtr;
2964 1.37 oster raidPtr->recon_in_progress = 1;
2965 1.37 oster
2966 1.166 oster rf_FailDisk((RF_Raid_t *) req->raidPtr, req->col,
2967 1.37 oster ((req->flags & RF_FDFLAGS_RECON) ? 1 : 0));
2968 1.37 oster
2969 1.37 oster RF_Free(req, sizeof(*req));
2970 1.37 oster
2971 1.37 oster raidPtr->recon_in_progress = 0;
2972 1.37 oster splx(s);
2973 1.37 oster
2974 1.37 oster /* That's all... */
2975 1.204 simonb kthread_exit(0); /* does not return */
2976 1.37 oster }
2977 1.37 oster
2978 1.37 oster void
2979 1.169 oster rf_RewriteParityThread(RF_Raid_t *raidPtr)
2980 1.37 oster {
2981 1.37 oster int retcode;
2982 1.37 oster int s;
2983 1.37 oster
2984 1.184 oster raidPtr->parity_rewrite_stripes_done = 0;
2985 1.37 oster raidPtr->parity_rewrite_in_progress = 1;
2986 1.37 oster s = splbio();
2987 1.37 oster retcode = rf_RewriteParity(raidPtr);
2988 1.37 oster splx(s);
2989 1.37 oster if (retcode) {
2990 1.279 christos printf("raid%d: Error re-writing parity (%d)!\n",
2991 1.279 christos raidPtr->raidid, retcode);
2992 1.37 oster } else {
2993 1.37 oster /* set the clean bit! If we shutdown correctly,
2994 1.37 oster the clean bit on each component label will get
2995 1.37 oster set */
2996 1.37 oster raidPtr->parity_good = RF_RAID_CLEAN;
2997 1.37 oster }
2998 1.37 oster raidPtr->parity_rewrite_in_progress = 0;
2999 1.85 oster
3000 1.85 oster /* Anyone waiting for us to stop? If so, inform them... */
3001 1.85 oster if (raidPtr->waitShutdown) {
3002 1.85 oster wakeup(&raidPtr->parity_rewrite_in_progress);
3003 1.85 oster }
3004 1.37 oster
3005 1.37 oster /* That's all... */
3006 1.204 simonb kthread_exit(0); /* does not return */
3007 1.37 oster }
3008 1.37 oster
3009 1.37 oster
3010 1.37 oster void
3011 1.169 oster rf_CopybackThread(RF_Raid_t *raidPtr)
3012 1.37 oster {
3013 1.37 oster int s;
3014 1.37 oster
3015 1.37 oster raidPtr->copyback_in_progress = 1;
3016 1.37 oster s = splbio();
3017 1.37 oster rf_CopybackReconstructedData(raidPtr);
3018 1.37 oster splx(s);
3019 1.37 oster raidPtr->copyback_in_progress = 0;
3020 1.37 oster
3021 1.37 oster /* That's all... */
3022 1.204 simonb kthread_exit(0); /* does not return */
3023 1.37 oster }
3024 1.37 oster
3025 1.37 oster
3026 1.37 oster void
3027 1.169 oster rf_ReconstructInPlaceThread(struct rf_recon_req *req)
3028 1.37 oster {
3029 1.37 oster int s;
3030 1.37 oster RF_Raid_t *raidPtr;
3031 1.186 perry
3032 1.37 oster s = splbio();
3033 1.37 oster raidPtr = req->raidPtr;
3034 1.37 oster raidPtr->recon_in_progress = 1;
3035 1.166 oster rf_ReconstructInPlace(raidPtr, req->col);
3036 1.37 oster RF_Free(req, sizeof(*req));
3037 1.37 oster raidPtr->recon_in_progress = 0;
3038 1.37 oster splx(s);
3039 1.37 oster
3040 1.37 oster /* That's all... */
3041 1.204 simonb kthread_exit(0); /* does not return */
3042 1.48 oster }
3043 1.48 oster
3044 1.213 christos static RF_AutoConfig_t *
3045 1.213 christos rf_get_component(RF_AutoConfig_t *ac_list, dev_t dev, struct vnode *vp,
3046 1.276 mrg const char *cname, RF_SectorCount_t size, uint64_t numsecs,
3047 1.276 mrg unsigned secsize)
3048 1.213 christos {
3049 1.213 christos int good_one = 0;
3050 1.213 christos RF_ComponentLabel_t *clabel;
3051 1.213 christos RF_AutoConfig_t *ac;
3052 1.213 christos
3053 1.213 christos clabel = malloc(sizeof(RF_ComponentLabel_t), M_RAIDFRAME, M_NOWAIT);
3054 1.213 christos if (clabel == NULL) {
3055 1.213 christos oomem:
3056 1.213 christos while(ac_list) {
3057 1.213 christos ac = ac_list;
3058 1.213 christos if (ac->clabel)
3059 1.213 christos free(ac->clabel, M_RAIDFRAME);
3060 1.213 christos ac_list = ac_list->next;
3061 1.213 christos free(ac, M_RAIDFRAME);
3062 1.213 christos }
3063 1.213 christos printf("RAID auto config: out of memory!\n");
3064 1.213 christos return NULL; /* XXX probably should panic? */
3065 1.213 christos }
3066 1.213 christos
3067 1.276 mrg if (!raidread_component_label(secsize, dev, vp, clabel)) {
3068 1.276 mrg /* Got the label. Does it look reasonable? */
3069 1.284 mrg if (rf_reasonable_label(clabel, numsecs) &&
3070 1.282 enami (rf_component_label_partitionsize(clabel) <= size)) {
3071 1.224 oster #ifdef DEBUG
3072 1.276 mrg printf("Component on: %s: %llu\n",
3073 1.213 christos cname, (unsigned long long)size);
3074 1.276 mrg rf_print_component_label(clabel);
3075 1.213 christos #endif
3076 1.276 mrg /* if it's reasonable, add it, else ignore it. */
3077 1.276 mrg ac = malloc(sizeof(RF_AutoConfig_t), M_RAIDFRAME,
3078 1.213 christos M_NOWAIT);
3079 1.276 mrg if (ac == NULL) {
3080 1.276 mrg free(clabel, M_RAIDFRAME);
3081 1.276 mrg goto oomem;
3082 1.276 mrg }
3083 1.276 mrg strlcpy(ac->devname, cname, sizeof(ac->devname));
3084 1.276 mrg ac->dev = dev;
3085 1.276 mrg ac->vp = vp;
3086 1.276 mrg ac->clabel = clabel;
3087 1.276 mrg ac->next = ac_list;
3088 1.276 mrg ac_list = ac;
3089 1.276 mrg good_one = 1;
3090 1.276 mrg }
3091 1.213 christos }
3092 1.213 christos if (!good_one) {
3093 1.213 christos /* cleanup */
3094 1.213 christos free(clabel, M_RAIDFRAME);
3095 1.213 christos vn_lock(vp, LK_EXCLUSIVE | LK_RETRY);
3096 1.238 pooka VOP_CLOSE(vp, FREAD | FWRITE, NOCRED);
3097 1.213 christos vput(vp);
3098 1.213 christos }
3099 1.213 christos return ac_list;
3100 1.213 christos }
3101 1.213 christos
3102 1.48 oster RF_AutoConfig_t *
3103 1.259 cegger rf_find_raid_components(void)
3104 1.48 oster {
3105 1.48 oster struct vnode *vp;
3106 1.48 oster struct disklabel label;
3107 1.261 dyoung device_t dv;
3108 1.268 dyoung deviter_t di;
3109 1.48 oster dev_t dev;
3110 1.296 buhrow int bmajor, bminor, wedge, rf_part_found;
3111 1.48 oster int error;
3112 1.48 oster int i;
3113 1.48 oster RF_AutoConfig_t *ac_list;
3114 1.276 mrg uint64_t numsecs;
3115 1.276 mrg unsigned secsize;
3116 1.48 oster
3117 1.48 oster /* initialize the AutoConfig list */
3118 1.48 oster ac_list = NULL;
3119 1.48 oster
3120 1.48 oster /* we begin by trolling through *all* the devices on the system */
3121 1.48 oster
3122 1.268 dyoung for (dv = deviter_first(&di, DEVITER_F_ROOT_FIRST); dv != NULL;
3123 1.268 dyoung dv = deviter_next(&di)) {
3124 1.48 oster
3125 1.48 oster /* we are only interested in disks... */
3126 1.200 thorpej if (device_class(dv) != DV_DISK)
3127 1.48 oster continue;
3128 1.48 oster
3129 1.48 oster /* we don't care about floppies... */
3130 1.206 thorpej if (device_is_a(dv, "fd")) {
3131 1.119 leo continue;
3132 1.119 leo }
3133 1.129 oster
3134 1.129 oster /* we don't care about CD's... */
3135 1.206 thorpej if (device_is_a(dv, "cd")) {
3136 1.129 oster continue;
3137 1.129 oster }
3138 1.129 oster
3139 1.248 oster /* we don't care about md's... */
3140 1.248 oster if (device_is_a(dv, "md")) {
3141 1.248 oster continue;
3142 1.248 oster }
3143 1.248 oster
3144 1.120 leo /* hdfd is the Atari/Hades floppy driver */
3145 1.206 thorpej if (device_is_a(dv, "hdfd")) {
3146 1.121 leo continue;
3147 1.121 leo }
3148 1.206 thorpej
3149 1.121 leo /* fdisa is the Atari/Milan floppy driver */
3150 1.206 thorpej if (device_is_a(dv, "fdisa")) {
3151 1.48 oster continue;
3152 1.48 oster }
3153 1.186 perry
3154 1.48 oster /* need to find the device_name_to_block_device_major stuff */
3155 1.245 cegger bmajor = devsw_name2blk(device_xname(dv), NULL, 0);
3156 1.48 oster
3157 1.296 buhrow rf_part_found = 0; /*No raid partition as yet*/
3158 1.296 buhrow
3159 1.48 oster /* get a vnode for the raw partition of this disk */
3160 1.48 oster
3161 1.213 christos wedge = device_is_a(dv, "dk");
3162 1.213 christos bminor = minor(device_unit(dv));
3163 1.213 christos dev = wedge ? makedev(bmajor, bminor) :
3164 1.213 christos MAKEDISKDEV(bmajor, bminor, RAW_PART);
3165 1.48 oster if (bdevvp(dev, &vp))
3166 1.48 oster panic("RAID can't alloc vnode");
3167 1.48 oster
3168 1.293 jmcneill error = VOP_OPEN(vp, FREAD | FSILENT, NOCRED);
3169 1.48 oster
3170 1.48 oster if (error) {
3171 1.186 perry /* "Who cares." Continue looking
3172 1.48 oster for something that exists*/
3173 1.48 oster vput(vp);
3174 1.48 oster continue;
3175 1.48 oster }
3176 1.48 oster
3177 1.276 mrg error = getdisksize(vp, &numsecs, &secsize);
3178 1.276 mrg if (error) {
3179 1.276 mrg vput(vp);
3180 1.276 mrg continue;
3181 1.276 mrg }
3182 1.213 christos if (wedge) {
3183 1.213 christos struct dkwedge_info dkw;
3184 1.213 christos error = VOP_IOCTL(vp, DIOCGWEDGEINFO, &dkw, FREAD,
3185 1.238 pooka NOCRED);
3186 1.213 christos if (error) {
3187 1.213 christos printf("RAIDframe: can't get wedge info for "
3188 1.245 cegger "dev %s (%d)\n", device_xname(dv), error);
3189 1.241 oster vn_lock(vp, LK_EXCLUSIVE | LK_RETRY);
3190 1.241 oster VOP_CLOSE(vp, FREAD | FWRITE, NOCRED);
3191 1.241 oster vput(vp);
3192 1.213 christos continue;
3193 1.213 christos }
3194 1.213 christos
3195 1.241 oster if (strcmp(dkw.dkw_ptype, DKW_PTYPE_RAIDFRAME) != 0) {
3196 1.241 oster vn_lock(vp, LK_EXCLUSIVE | LK_RETRY);
3197 1.241 oster VOP_CLOSE(vp, FREAD | FWRITE, NOCRED);
3198 1.241 oster vput(vp);
3199 1.228 christos continue;
3200 1.241 oster }
3201 1.213 christos
3202 1.213 christos ac_list = rf_get_component(ac_list, dev, vp,
3203 1.276 mrg device_xname(dv), dkw.dkw_size, numsecs, secsize);
3204 1.296 buhrow rf_part_found = 1; /*There is a raid component on this disk*/
3205 1.213 christos continue;
3206 1.213 christos }
3207 1.213 christos
3208 1.48 oster /* Ok, the disk exists. Go get the disklabel. */
3209 1.238 pooka error = VOP_IOCTL(vp, DIOCGDINFO, &label, FREAD, NOCRED);
3210 1.48 oster if (error) {
3211 1.48 oster /*
3212 1.48 oster * XXX can't happen - open() would
3213 1.48 oster * have errored out (or faked up one)
3214 1.48 oster */
3215 1.181 thorpej if (error != ENOTTY)
3216 1.181 thorpej printf("RAIDframe: can't get label for dev "
3217 1.245 cegger "%s (%d)\n", device_xname(dv), error);
3218 1.48 oster }
3219 1.48 oster
3220 1.48 oster /* don't need this any more. We'll allocate it again
3221 1.48 oster a little later if we really do... */
3222 1.96 oster vn_lock(vp, LK_EXCLUSIVE | LK_RETRY);
3223 1.238 pooka VOP_CLOSE(vp, FREAD | FWRITE, NOCRED);
3224 1.48 oster vput(vp);
3225 1.48 oster
3226 1.181 thorpej if (error)
3227 1.181 thorpej continue;
3228 1.181 thorpej
3229 1.296 buhrow rf_part_found = 0; /*No raid partitions yet*/
3230 1.213 christos for (i = 0; i < label.d_npartitions; i++) {
3231 1.213 christos char cname[sizeof(ac_list->devname)];
3232 1.213 christos
3233 1.48 oster /* We only support partitions marked as RAID */
3234 1.48 oster if (label.d_partitions[i].p_fstype != FS_RAID)
3235 1.48 oster continue;
3236 1.48 oster
3237 1.206 thorpej dev = MAKEDISKDEV(bmajor, device_unit(dv), i);
3238 1.48 oster if (bdevvp(dev, &vp))
3239 1.48 oster panic("RAID can't alloc vnode");
3240 1.48 oster
3241 1.238 pooka error = VOP_OPEN(vp, FREAD, NOCRED);
3242 1.48 oster if (error) {
3243 1.48 oster /* Whatever... */
3244 1.48 oster vput(vp);
3245 1.48 oster continue;
3246 1.48 oster }
3247 1.213 christos snprintf(cname, sizeof(cname), "%s%c",
3248 1.245 cegger device_xname(dv), 'a' + i);
3249 1.213 christos ac_list = rf_get_component(ac_list, dev, vp, cname,
3250 1.276 mrg label.d_partitions[i].p_size, numsecs, secsize);
3251 1.296 buhrow rf_part_found = 1; /*There is at least one raid partition on this disk*/
3252 1.296 buhrow }
3253 1.296 buhrow
3254 1.296 buhrow /*
3255 1.296 buhrow *If there is no raid component on this disk, either in a
3256 1.296 buhrow *disklabel or inside a wedge, check the raw partition as well,
3257 1.296 buhrow *as it is possible to configure raid components on raw disk
3258 1.296 buhrow *devices.
3259 1.296 buhrow */
3260 1.296 buhrow
3261 1.296 buhrow if (!rf_part_found) {
3262 1.296 buhrow char cname[sizeof(ac_list->devname)];
3263 1.296 buhrow
3264 1.296 buhrow dev = MAKEDISKDEV(bmajor, device_unit(dv), RAW_PART);
3265 1.296 buhrow if (bdevvp(dev, &vp))
3266 1.296 buhrow panic("RAID can't alloc vnode");
3267 1.296 buhrow
3268 1.296 buhrow error = VOP_OPEN(vp, FREAD, NOCRED);
3269 1.296 buhrow if (error) {
3270 1.296 buhrow /* Whatever... */
3271 1.296 buhrow vput(vp);
3272 1.296 buhrow continue;
3273 1.296 buhrow }
3274 1.296 buhrow snprintf(cname, sizeof(cname), "%s%c",
3275 1.296 buhrow device_xname(dv), 'a' + RAW_PART);
3276 1.296 buhrow ac_list = rf_get_component(ac_list, dev, vp, cname,
3277 1.296 buhrow label.d_partitions[RAW_PART].p_size, numsecs, secsize);
3278 1.48 oster }
3279 1.48 oster }
3280 1.268 dyoung deviter_release(&di);
3281 1.213 christos return ac_list;
3282 1.48 oster }
3283 1.186 perry
3284 1.213 christos
3285 1.292 oster int
3286 1.284 mrg rf_reasonable_label(RF_ComponentLabel_t *clabel, uint64_t numsecs)
3287 1.48 oster {
3288 1.186 perry
3289 1.48 oster if (((clabel->version==RF_COMPONENT_LABEL_VERSION_1) ||
3290 1.48 oster (clabel->version==RF_COMPONENT_LABEL_VERSION)) &&
3291 1.48 oster ((clabel->clean == RF_RAID_CLEAN) ||
3292 1.48 oster (clabel->clean == RF_RAID_DIRTY)) &&
3293 1.186 perry clabel->row >=0 &&
3294 1.186 perry clabel->column >= 0 &&
3295 1.48 oster clabel->num_rows > 0 &&
3296 1.48 oster clabel->num_columns > 0 &&
3297 1.186 perry clabel->row < clabel->num_rows &&
3298 1.48 oster clabel->column < clabel->num_columns &&
3299 1.48 oster clabel->blockSize > 0 &&
3300 1.282 enami /*
3301 1.282 enami * numBlocksHi may contain garbage, but it is ok since
3302 1.282 enami * the type is unsigned. If it is really garbage,
3303 1.282 enami * rf_fix_old_label_size() will fix it.
3304 1.282 enami */
3305 1.282 enami rf_component_label_numblocks(clabel) > 0) {
3306 1.284 mrg /*
3307 1.284 mrg * label looks reasonable enough...
3308 1.284 mrg * let's make sure it has no old garbage.
3309 1.284 mrg */
3310 1.292 oster if (numsecs)
3311 1.292 oster rf_fix_old_label_size(clabel, numsecs);
3312 1.48 oster return(1);
3313 1.48 oster }
3314 1.48 oster return(0);
3315 1.48 oster }
3316 1.48 oster
3317 1.48 oster
3318 1.278 mrg /*
3319 1.278 mrg * For reasons yet unknown, some old component labels have garbage in
3320 1.278 mrg * the newer numBlocksHi region, and this causes lossage. Since those
3321 1.278 mrg * disks will also have numsecs set to less than 32 bits of sectors,
3322 1.299 oster * we can determine when this corruption has occurred, and fix it.
3323 1.284 mrg *
3324 1.284 mrg * The exact same problem, with the same unknown reason, happens to
3325 1.284 mrg * the partitionSizeHi member as well.
3326 1.278 mrg */
3327 1.278 mrg static void
3328 1.278 mrg rf_fix_old_label_size(RF_ComponentLabel_t *clabel, uint64_t numsecs)
3329 1.278 mrg {
3330 1.278 mrg
3331 1.284 mrg if (numsecs < ((uint64_t)1 << 32)) {
3332 1.284 mrg if (clabel->numBlocksHi) {
3333 1.284 mrg printf("WARNING: total sectors < 32 bits, yet "
3334 1.284 mrg "numBlocksHi set\n"
3335 1.284 mrg "WARNING: resetting numBlocksHi to zero.\n");
3336 1.284 mrg clabel->numBlocksHi = 0;
3337 1.284 mrg }
3338 1.284 mrg
3339 1.284 mrg if (clabel->partitionSizeHi) {
3340 1.284 mrg printf("WARNING: total sectors < 32 bits, yet "
3341 1.284 mrg "partitionSizeHi set\n"
3342 1.284 mrg "WARNING: resetting partitionSizeHi to zero.\n");
3343 1.284 mrg clabel->partitionSizeHi = 0;
3344 1.284 mrg }
3345 1.278 mrg }
3346 1.278 mrg }
3347 1.278 mrg
3348 1.278 mrg
3349 1.224 oster #ifdef DEBUG
3350 1.48 oster void
3351 1.169 oster rf_print_component_label(RF_ComponentLabel_t *clabel)
3352 1.48 oster {
3353 1.282 enami uint64_t numBlocks;
3354 1.308 christos static const char *rp[] = {
3355 1.308 christos "No", "Force", "Soft", "*invalid*"
3356 1.308 christos };
3357 1.308 christos
3358 1.275 mrg
3359 1.282 enami numBlocks = rf_component_label_numblocks(clabel);
3360 1.275 mrg
3361 1.48 oster printf(" Row: %d Column: %d Num Rows: %d Num Columns: %d\n",
3362 1.186 perry clabel->row, clabel->column,
3363 1.48 oster clabel->num_rows, clabel->num_columns);
3364 1.48 oster printf(" Version: %d Serial Number: %d Mod Counter: %d\n",
3365 1.48 oster clabel->version, clabel->serial_number,
3366 1.48 oster clabel->mod_counter);
3367 1.48 oster printf(" Clean: %s Status: %d\n",
3368 1.271 dyoung clabel->clean ? "Yes" : "No", clabel->status);
3369 1.48 oster printf(" sectPerSU: %d SUsPerPU: %d SUsPerRU: %d\n",
3370 1.48 oster clabel->sectPerSU, clabel->SUsPerPU, clabel->SUsPerRU);
3371 1.275 mrg printf(" RAID Level: %c blocksize: %d numBlocks: %"PRIu64"\n",
3372 1.275 mrg (char) clabel->parityConfig, clabel->blockSize, numBlocks);
3373 1.271 dyoung printf(" Autoconfig: %s\n", clabel->autoconfigure ? "Yes" : "No");
3374 1.308 christos printf(" Root partition: %s\n", rp[clabel->root_partition & 3]);
3375 1.271 dyoung printf(" Last configured as: raid%d\n", clabel->last_unit);
3376 1.51 oster #if 0
3377 1.51 oster printf(" Config order: %d\n", clabel->config_order);
3378 1.51 oster #endif
3379 1.186 perry
3380 1.48 oster }
3381 1.133 oster #endif
3382 1.48 oster
3383 1.48 oster RF_ConfigSet_t *
3384 1.169 oster rf_create_auto_sets(RF_AutoConfig_t *ac_list)
3385 1.48 oster {
3386 1.48 oster RF_AutoConfig_t *ac;
3387 1.48 oster RF_ConfigSet_t *config_sets;
3388 1.48 oster RF_ConfigSet_t *cset;
3389 1.48 oster RF_AutoConfig_t *ac_next;
3390 1.48 oster
3391 1.48 oster
3392 1.48 oster config_sets = NULL;
3393 1.48 oster
3394 1.48 oster /* Go through the AutoConfig list, and figure out which components
3395 1.48 oster belong to what sets. */
3396 1.48 oster ac = ac_list;
3397 1.48 oster while(ac!=NULL) {
3398 1.48 oster /* we're going to putz with ac->next, so save it here
3399 1.48 oster for use at the end of the loop */
3400 1.48 oster ac_next = ac->next;
3401 1.48 oster
3402 1.48 oster if (config_sets == NULL) {
3403 1.48 oster /* will need at least this one... */
3404 1.48 oster config_sets = (RF_ConfigSet_t *)
3405 1.186 perry malloc(sizeof(RF_ConfigSet_t),
3406 1.48 oster M_RAIDFRAME, M_NOWAIT);
3407 1.48 oster if (config_sets == NULL) {
3408 1.141 provos panic("rf_create_auto_sets: No memory!");
3409 1.48 oster }
3410 1.48 oster /* this one is easy :) */
3411 1.48 oster config_sets->ac = ac;
3412 1.48 oster config_sets->next = NULL;
3413 1.51 oster config_sets->rootable = 0;
3414 1.48 oster ac->next = NULL;
3415 1.48 oster } else {
3416 1.48 oster /* which set does this component fit into? */
3417 1.48 oster cset = config_sets;
3418 1.48 oster while(cset!=NULL) {
3419 1.49 oster if (rf_does_it_fit(cset, ac)) {
3420 1.86 oster /* looks like it matches... */
3421 1.86 oster ac->next = cset->ac;
3422 1.86 oster cset->ac = ac;
3423 1.48 oster break;
3424 1.48 oster }
3425 1.48 oster cset = cset->next;
3426 1.48 oster }
3427 1.48 oster if (cset==NULL) {
3428 1.48 oster /* didn't find a match above... new set..*/
3429 1.48 oster cset = (RF_ConfigSet_t *)
3430 1.186 perry malloc(sizeof(RF_ConfigSet_t),
3431 1.48 oster M_RAIDFRAME, M_NOWAIT);
3432 1.48 oster if (cset == NULL) {
3433 1.141 provos panic("rf_create_auto_sets: No memory!");
3434 1.48 oster }
3435 1.48 oster cset->ac = ac;
3436 1.48 oster ac->next = NULL;
3437 1.48 oster cset->next = config_sets;
3438 1.51 oster cset->rootable = 0;
3439 1.48 oster config_sets = cset;
3440 1.48 oster }
3441 1.48 oster }
3442 1.48 oster ac = ac_next;
3443 1.48 oster }
3444 1.48 oster
3445 1.48 oster
3446 1.48 oster return(config_sets);
3447 1.48 oster }
3448 1.48 oster
3449 1.48 oster static int
3450 1.169 oster rf_does_it_fit(RF_ConfigSet_t *cset, RF_AutoConfig_t *ac)
3451 1.48 oster {
3452 1.48 oster RF_ComponentLabel_t *clabel1, *clabel2;
3453 1.48 oster
3454 1.48 oster /* If this one matches the *first* one in the set, that's good
3455 1.48 oster enough, since the other members of the set would have been
3456 1.48 oster through here too... */
3457 1.60 oster /* note that we are not checking partitionSize here..
3458 1.60 oster
3459 1.60 oster Note that we are also not checking the mod_counters here.
3460 1.299 oster If everything else matches except the mod_counter, that's
3461 1.60 oster good enough for this test. We will deal with the mod_counters
3462 1.186 perry a little later in the autoconfiguration process.
3463 1.60 oster
3464 1.60 oster (clabel1->mod_counter == clabel2->mod_counter) &&
3465 1.81 oster
3466 1.81 oster The reason we don't check for this is that failed disks
3467 1.81 oster will have lower modification counts. If those disks are
3468 1.81 oster not added to the set they used to belong to, then they will
3469 1.81 oster form their own set, which may result in 2 different sets,
3470 1.81 oster for example, competing to be configured at raid0, and
3471 1.81 oster perhaps competing to be the root filesystem set. If the
3472 1.81 oster wrong ones get configured, or both attempt to become /,
3473 1.81 oster weird behaviour and or serious lossage will occur. Thus we
3474 1.81 oster need to bring them into the fold here, and kick them out at
3475 1.81 oster a later point.
3476 1.60 oster
3477 1.60 oster */
3478 1.48 oster
3479 1.48 oster clabel1 = cset->ac->clabel;
3480 1.48 oster clabel2 = ac->clabel;
3481 1.48 oster if ((clabel1->version == clabel2->version) &&
3482 1.48 oster (clabel1->serial_number == clabel2->serial_number) &&
3483 1.48 oster (clabel1->num_rows == clabel2->num_rows) &&
3484 1.48 oster (clabel1->num_columns == clabel2->num_columns) &&
3485 1.48 oster (clabel1->sectPerSU == clabel2->sectPerSU) &&
3486 1.48 oster (clabel1->SUsPerPU == clabel2->SUsPerPU) &&
3487 1.48 oster (clabel1->SUsPerRU == clabel2->SUsPerRU) &&
3488 1.48 oster (clabel1->parityConfig == clabel2->parityConfig) &&
3489 1.48 oster (clabel1->maxOutstanding == clabel2->maxOutstanding) &&
3490 1.48 oster (clabel1->blockSize == clabel2->blockSize) &&
3491 1.282 enami rf_component_label_numblocks(clabel1) ==
3492 1.282 enami rf_component_label_numblocks(clabel2) &&
3493 1.48 oster (clabel1->autoconfigure == clabel2->autoconfigure) &&
3494 1.48 oster (clabel1->root_partition == clabel2->root_partition) &&
3495 1.48 oster (clabel1->last_unit == clabel2->last_unit) &&
3496 1.48 oster (clabel1->config_order == clabel2->config_order)) {
3497 1.48 oster /* if it get's here, it almost *has* to be a match */
3498 1.48 oster } else {
3499 1.186 perry /* it's not consistent with somebody in the set..
3500 1.48 oster punt */
3501 1.48 oster return(0);
3502 1.48 oster }
3503 1.48 oster /* all was fine.. it must fit... */
3504 1.48 oster return(1);
3505 1.48 oster }
3506 1.48 oster
3507 1.48 oster int
3508 1.169 oster rf_have_enough_components(RF_ConfigSet_t *cset)
3509 1.48 oster {
3510 1.51 oster RF_AutoConfig_t *ac;
3511 1.51 oster RF_AutoConfig_t *auto_config;
3512 1.51 oster RF_ComponentLabel_t *clabel;
3513 1.166 oster int c;
3514 1.51 oster int num_cols;
3515 1.51 oster int num_missing;
3516 1.86 oster int mod_counter;
3517 1.87 oster int mod_counter_found;
3518 1.88 oster int even_pair_failed;
3519 1.88 oster char parity_type;
3520 1.186 perry
3521 1.51 oster
3522 1.48 oster /* check to see that we have enough 'live' components
3523 1.48 oster of this set. If so, we can configure it if necessary */
3524 1.48 oster
3525 1.51 oster num_cols = cset->ac->clabel->num_columns;
3526 1.88 oster parity_type = cset->ac->clabel->parityConfig;
3527 1.51 oster
3528 1.51 oster /* XXX Check for duplicate components!?!?!? */
3529 1.51 oster
3530 1.86 oster /* Determine what the mod_counter is supposed to be for this set. */
3531 1.86 oster
3532 1.87 oster mod_counter_found = 0;
3533 1.101 oster mod_counter = 0;
3534 1.86 oster ac = cset->ac;
3535 1.86 oster while(ac!=NULL) {
3536 1.87 oster if (mod_counter_found==0) {
3537 1.86 oster mod_counter = ac->clabel->mod_counter;
3538 1.87 oster mod_counter_found = 1;
3539 1.87 oster } else {
3540 1.87 oster if (ac->clabel->mod_counter > mod_counter) {
3541 1.87 oster mod_counter = ac->clabel->mod_counter;
3542 1.87 oster }
3543 1.86 oster }
3544 1.86 oster ac = ac->next;
3545 1.86 oster }
3546 1.86 oster
3547 1.51 oster num_missing = 0;
3548 1.51 oster auto_config = cset->ac;
3549 1.51 oster
3550 1.166 oster even_pair_failed = 0;
3551 1.166 oster for(c=0; c<num_cols; c++) {
3552 1.166 oster ac = auto_config;
3553 1.166 oster while(ac!=NULL) {
3554 1.186 perry if ((ac->clabel->column == c) &&
3555 1.166 oster (ac->clabel->mod_counter == mod_counter)) {
3556 1.166 oster /* it's this one... */
3557 1.224 oster #ifdef DEBUG
3558 1.166 oster printf("Found: %s at %d\n",
3559 1.166 oster ac->devname,c);
3560 1.51 oster #endif
3561 1.166 oster break;
3562 1.51 oster }
3563 1.166 oster ac=ac->next;
3564 1.166 oster }
3565 1.166 oster if (ac==NULL) {
3566 1.51 oster /* Didn't find one here! */
3567 1.88 oster /* special case for RAID 1, especially
3568 1.88 oster where there are more than 2
3569 1.88 oster components (where RAIDframe treats
3570 1.88 oster things a little differently :( ) */
3571 1.166 oster if (parity_type == '1') {
3572 1.166 oster if (c%2 == 0) { /* even component */
3573 1.166 oster even_pair_failed = 1;
3574 1.166 oster } else { /* odd component. If
3575 1.166 oster we're failed, and
3576 1.166 oster so is the even
3577 1.166 oster component, it's
3578 1.166 oster "Good Night, Charlie" */
3579 1.166 oster if (even_pair_failed == 1) {
3580 1.166 oster return(0);
3581 1.88 oster }
3582 1.88 oster }
3583 1.166 oster } else {
3584 1.166 oster /* normal accounting */
3585 1.166 oster num_missing++;
3586 1.88 oster }
3587 1.166 oster }
3588 1.166 oster if ((parity_type == '1') && (c%2 == 1)) {
3589 1.88 oster /* Just did an even component, and we didn't
3590 1.186 perry bail.. reset the even_pair_failed flag,
3591 1.88 oster and go on to the next component.... */
3592 1.166 oster even_pair_failed = 0;
3593 1.51 oster }
3594 1.51 oster }
3595 1.51 oster
3596 1.51 oster clabel = cset->ac->clabel;
3597 1.51 oster
3598 1.51 oster if (((clabel->parityConfig == '0') && (num_missing > 0)) ||
3599 1.51 oster ((clabel->parityConfig == '4') && (num_missing > 1)) ||
3600 1.51 oster ((clabel->parityConfig == '5') && (num_missing > 1))) {
3601 1.51 oster /* XXX this needs to be made *much* more general */
3602 1.51 oster /* Too many failures */
3603 1.51 oster return(0);
3604 1.51 oster }
3605 1.51 oster /* otherwise, all is well, and we've got enough to take a kick
3606 1.51 oster at autoconfiguring this set */
3607 1.51 oster return(1);
3608 1.48 oster }
3609 1.48 oster
3610 1.48 oster void
3611 1.169 oster rf_create_configuration(RF_AutoConfig_t *ac, RF_Config_t *config,
3612 1.222 christos RF_Raid_t *raidPtr)
3613 1.48 oster {
3614 1.48 oster RF_ComponentLabel_t *clabel;
3615 1.77 oster int i;
3616 1.48 oster
3617 1.48 oster clabel = ac->clabel;
3618 1.48 oster
3619 1.48 oster /* 1. Fill in the common stuff */
3620 1.166 oster config->numRow = clabel->num_rows = 1;
3621 1.48 oster config->numCol = clabel->num_columns;
3622 1.48 oster config->numSpare = 0; /* XXX should this be set here? */
3623 1.48 oster config->sectPerSU = clabel->sectPerSU;
3624 1.48 oster config->SUsPerPU = clabel->SUsPerPU;
3625 1.48 oster config->SUsPerRU = clabel->SUsPerRU;
3626 1.48 oster config->parityConfig = clabel->parityConfig;
3627 1.48 oster /* XXX... */
3628 1.48 oster strcpy(config->diskQueueType,"fifo");
3629 1.48 oster config->maxOutstandingDiskReqs = clabel->maxOutstanding;
3630 1.48 oster config->layoutSpecificSize = 0; /* XXX ?? */
3631 1.48 oster
3632 1.48 oster while(ac!=NULL) {
3633 1.48 oster /* row/col values will be in range due to the checks
3634 1.48 oster in reasonable_label() */
3635 1.166 oster strcpy(config->devnames[0][ac->clabel->column],
3636 1.48 oster ac->devname);
3637 1.48 oster ac = ac->next;
3638 1.48 oster }
3639 1.48 oster
3640 1.77 oster for(i=0;i<RF_MAXDBGV;i++) {
3641 1.163 fvdl config->debugVars[i][0] = 0;
3642 1.77 oster }
3643 1.48 oster }
3644 1.48 oster
3645 1.48 oster int
3646 1.169 oster rf_set_autoconfig(RF_Raid_t *raidPtr, int new_value)
3647 1.48 oster {
3648 1.269 jld RF_ComponentLabel_t *clabel;
3649 1.166 oster int column;
3650 1.148 oster int sparecol;
3651 1.48 oster
3652 1.54 oster raidPtr->autoconfigure = new_value;
3653 1.166 oster
3654 1.166 oster for(column=0; column<raidPtr->numCol; column++) {
3655 1.166 oster if (raidPtr->Disks[column].status == rf_ds_optimal) {
3656 1.269 jld clabel = raidget_component_label(raidPtr, column);
3657 1.269 jld clabel->autoconfigure = new_value;
3658 1.269 jld raidflush_component_label(raidPtr, column);
3659 1.48 oster }
3660 1.48 oster }
3661 1.148 oster for(column = 0; column < raidPtr->numSpare ; column++) {
3662 1.148 oster sparecol = raidPtr->numCol + column;
3663 1.166 oster if (raidPtr->Disks[sparecol].status == rf_ds_used_spare) {
3664 1.269 jld clabel = raidget_component_label(raidPtr, sparecol);
3665 1.269 jld clabel->autoconfigure = new_value;
3666 1.269 jld raidflush_component_label(raidPtr, sparecol);
3667 1.148 oster }
3668 1.148 oster }
3669 1.48 oster return(new_value);
3670 1.48 oster }
3671 1.48 oster
3672 1.48 oster int
3673 1.169 oster rf_set_rootpartition(RF_Raid_t *raidPtr, int new_value)
3674 1.48 oster {
3675 1.269 jld RF_ComponentLabel_t *clabel;
3676 1.166 oster int column;
3677 1.148 oster int sparecol;
3678 1.48 oster
3679 1.54 oster raidPtr->root_partition = new_value;
3680 1.166 oster for(column=0; column<raidPtr->numCol; column++) {
3681 1.166 oster if (raidPtr->Disks[column].status == rf_ds_optimal) {
3682 1.269 jld clabel = raidget_component_label(raidPtr, column);
3683 1.269 jld clabel->root_partition = new_value;
3684 1.269 jld raidflush_component_label(raidPtr, column);
3685 1.148 oster }
3686 1.148 oster }
3687 1.148 oster for(column = 0; column < raidPtr->numSpare ; column++) {
3688 1.148 oster sparecol = raidPtr->numCol + column;
3689 1.166 oster if (raidPtr->Disks[sparecol].status == rf_ds_used_spare) {
3690 1.269 jld clabel = raidget_component_label(raidPtr, sparecol);
3691 1.269 jld clabel->root_partition = new_value;
3692 1.269 jld raidflush_component_label(raidPtr, sparecol);
3693 1.48 oster }
3694 1.48 oster }
3695 1.48 oster return(new_value);
3696 1.48 oster }
3697 1.48 oster
3698 1.48 oster void
3699 1.169 oster rf_release_all_vps(RF_ConfigSet_t *cset)
3700 1.48 oster {
3701 1.48 oster RF_AutoConfig_t *ac;
3702 1.186 perry
3703 1.48 oster ac = cset->ac;
3704 1.48 oster while(ac!=NULL) {
3705 1.48 oster /* Close the vp, and give it back */
3706 1.48 oster if (ac->vp) {
3707 1.96 oster vn_lock(ac->vp, LK_EXCLUSIVE | LK_RETRY);
3708 1.238 pooka VOP_CLOSE(ac->vp, FREAD, NOCRED);
3709 1.48 oster vput(ac->vp);
3710 1.86 oster ac->vp = NULL;
3711 1.48 oster }
3712 1.48 oster ac = ac->next;
3713 1.48 oster }
3714 1.48 oster }
3715 1.48 oster
3716 1.48 oster
3717 1.48 oster void
3718 1.169 oster rf_cleanup_config_set(RF_ConfigSet_t *cset)
3719 1.48 oster {
3720 1.48 oster RF_AutoConfig_t *ac;
3721 1.48 oster RF_AutoConfig_t *next_ac;
3722 1.186 perry
3723 1.48 oster ac = cset->ac;
3724 1.48 oster while(ac!=NULL) {
3725 1.48 oster next_ac = ac->next;
3726 1.48 oster /* nuke the label */
3727 1.48 oster free(ac->clabel, M_RAIDFRAME);
3728 1.48 oster /* cleanup the config structure */
3729 1.48 oster free(ac, M_RAIDFRAME);
3730 1.48 oster /* "next.." */
3731 1.48 oster ac = next_ac;
3732 1.48 oster }
3733 1.48 oster /* and, finally, nuke the config set */
3734 1.48 oster free(cset, M_RAIDFRAME);
3735 1.48 oster }
3736 1.48 oster
3737 1.48 oster
3738 1.48 oster void
3739 1.169 oster raid_init_component_label(RF_Raid_t *raidPtr, RF_ComponentLabel_t *clabel)
3740 1.48 oster {
3741 1.48 oster /* current version number */
3742 1.186 perry clabel->version = RF_COMPONENT_LABEL_VERSION;
3743 1.57 oster clabel->serial_number = raidPtr->serial_number;
3744 1.48 oster clabel->mod_counter = raidPtr->mod_counter;
3745 1.269 jld
3746 1.166 oster clabel->num_rows = 1;
3747 1.48 oster clabel->num_columns = raidPtr->numCol;
3748 1.48 oster clabel->clean = RF_RAID_DIRTY; /* not clean */
3749 1.48 oster clabel->status = rf_ds_optimal; /* "It's good!" */
3750 1.186 perry
3751 1.48 oster clabel->sectPerSU = raidPtr->Layout.sectorsPerStripeUnit;
3752 1.48 oster clabel->SUsPerPU = raidPtr->Layout.SUsPerPU;
3753 1.48 oster clabel->SUsPerRU = raidPtr->Layout.SUsPerRU;
3754 1.54 oster
3755 1.54 oster clabel->blockSize = raidPtr->bytesPerSector;
3756 1.282 enami rf_component_label_set_numblocks(clabel, raidPtr->sectorsPerDisk);
3757 1.54 oster
3758 1.48 oster /* XXX not portable */
3759 1.48 oster clabel->parityConfig = raidPtr->Layout.map->parityConfig;
3760 1.54 oster clabel->maxOutstanding = raidPtr->maxOutstanding;
3761 1.54 oster clabel->autoconfigure = raidPtr->autoconfigure;
3762 1.54 oster clabel->root_partition = raidPtr->root_partition;
3763 1.48 oster clabel->last_unit = raidPtr->raidid;
3764 1.54 oster clabel->config_order = raidPtr->config_order;
3765 1.269 jld
3766 1.269 jld #ifndef RF_NO_PARITY_MAP
3767 1.269 jld rf_paritymap_init_label(raidPtr->parity_map, clabel);
3768 1.269 jld #endif
3769 1.51 oster }
3770 1.51 oster
3771 1.300 christos struct raid_softc *
3772 1.300 christos rf_auto_config_set(RF_ConfigSet_t *cset)
3773 1.51 oster {
3774 1.51 oster RF_Raid_t *raidPtr;
3775 1.51 oster RF_Config_t *config;
3776 1.51 oster int raidID;
3777 1.300 christos struct raid_softc *sc;
3778 1.51 oster
3779 1.224 oster #ifdef DEBUG
3780 1.72 oster printf("RAID autoconfigure\n");
3781 1.127 oster #endif
3782 1.51 oster
3783 1.51 oster /* 1. Create a config structure */
3784 1.300 christos config = malloc(sizeof(*config), M_RAIDFRAME, M_NOWAIT|M_ZERO);
3785 1.300 christos if (config == NULL) {
3786 1.327 pgoyette printf("%s: Out of mem - config!?!?\n", __func__);
3787 1.51 oster /* XXX do something more intelligent here. */
3788 1.300 christos return NULL;
3789 1.51 oster }
3790 1.77 oster
3791 1.186 perry /*
3792 1.186 perry 2. Figure out what RAID ID this one is supposed to live at
3793 1.51 oster See if we can get the same RAID dev that it was configured
3794 1.186 perry on last time..
3795 1.51 oster */
3796 1.51 oster
3797 1.51 oster raidID = cset->ac->clabel->last_unit;
3798 1.327 pgoyette for (sc = raidget(raidID, false); sc && sc->sc_r.valid != 0;
3799 1.327 pgoyette sc = raidget(++raidID, false))
3800 1.300 christos continue;
3801 1.224 oster #ifdef DEBUG
3802 1.72 oster printf("Configuring raid%d:\n",raidID);
3803 1.127 oster #endif
3804 1.127 oster
3805 1.327 pgoyette if (sc == NULL)
3806 1.327 pgoyette sc = raidget(raidID, true);
3807 1.327 pgoyette if (sc == NULL) {
3808 1.327 pgoyette printf("%s: Out of mem - softc!?!?\n", __func__);
3809 1.327 pgoyette /* XXX do something more intelligent here. */
3810 1.327 pgoyette free(config, M_RAIDFRAME);
3811 1.327 pgoyette return NULL;
3812 1.327 pgoyette }
3813 1.327 pgoyette
3814 1.300 christos raidPtr = &sc->sc_r;
3815 1.51 oster
3816 1.51 oster /* XXX all this stuff should be done SOMEWHERE ELSE! */
3817 1.302 christos raidPtr->softc = sc;
3818 1.51 oster raidPtr->raidid = raidID;
3819 1.51 oster raidPtr->openings = RAIDOUTSTANDING;
3820 1.51 oster
3821 1.51 oster /* 3. Build the configuration structure */
3822 1.51 oster rf_create_configuration(cset->ac, config, raidPtr);
3823 1.51 oster
3824 1.51 oster /* 4. Do the configuration */
3825 1.300 christos if (rf_Configure(raidPtr, config, cset->ac) == 0) {
3826 1.300 christos raidinit(sc);
3827 1.186 perry
3828 1.300 christos rf_markalldirty(raidPtr);
3829 1.300 christos raidPtr->autoconfigure = 1; /* XXX do this here? */
3830 1.308 christos switch (cset->ac->clabel->root_partition) {
3831 1.308 christos case 1: /* Force Root */
3832 1.308 christos case 2: /* Soft Root: root when boot partition part of raid */
3833 1.308 christos /*
3834 1.308 christos * everything configured just fine. Make a note
3835 1.308 christos * that this set is eligible to be root,
3836 1.308 christos * or forced to be root
3837 1.308 christos */
3838 1.308 christos cset->rootable = cset->ac->clabel->root_partition;
3839 1.54 oster /* XXX do this here? */
3840 1.308 christos raidPtr->root_partition = cset->rootable;
3841 1.308 christos break;
3842 1.308 christos default:
3843 1.308 christos break;
3844 1.51 oster }
3845 1.300 christos } else {
3846 1.300 christos raidput(sc);
3847 1.300 christos sc = NULL;
3848 1.51 oster }
3849 1.51 oster
3850 1.51 oster /* 5. Cleanup */
3851 1.51 oster free(config, M_RAIDFRAME);
3852 1.300 christos return sc;
3853 1.99 oster }
3854 1.99 oster
3855 1.99 oster void
3856 1.169 oster rf_disk_unbusy(RF_RaidAccessDesc_t *desc)
3857 1.99 oster {
3858 1.99 oster struct buf *bp;
3859 1.300 christos struct raid_softc *rs;
3860 1.99 oster
3861 1.99 oster bp = (struct buf *)desc->bp;
3862 1.300 christos rs = desc->raidPtr->softc;
3863 1.300 christos disk_unbusy(&rs->sc_dkdev, (bp->b_bcount - bp->b_resid),
3864 1.300 christos (bp->b_flags & B_READ));
3865 1.13 oster }
3866 1.177 oster
3867 1.177 oster void
3868 1.187 christos rf_pool_init(struct pool *p, size_t size, const char *w_chan,
3869 1.187 christos size_t xmin, size_t xmax)
3870 1.177 oster {
3871 1.227 ad pool_init(p, size, 0, 0, 0, w_chan, NULL, IPL_BIO);
3872 1.187 christos pool_sethiwat(p, xmax);
3873 1.187 christos pool_prime(p, xmin);
3874 1.187 christos pool_setlowat(p, xmin);
3875 1.177 oster }
3876 1.190 oster
3877 1.190 oster /*
3878 1.300 christos * rf_buf_queue_check(RF_Raid_t raidPtr) -- looks into the buf_queue to see
3879 1.190 oster * if there is IO pending and if that IO could possibly be done for a
3880 1.190 oster * given RAID set. Returns 0 if IO is waiting and can be done, 1
3881 1.190 oster * otherwise.
3882 1.190 oster *
3883 1.190 oster */
3884 1.190 oster
3885 1.190 oster int
3886 1.300 christos rf_buf_queue_check(RF_Raid_t *raidPtr)
3887 1.190 oster {
3888 1.300 christos struct raid_softc *rs = raidPtr->softc;
3889 1.300 christos if ((bufq_peek(rs->buf_queue) != NULL) && raidPtr->openings > 0) {
3890 1.190 oster /* there is work to do */
3891 1.190 oster return 0;
3892 1.190 oster }
3893 1.190 oster /* default is nothing to do */
3894 1.190 oster return 1;
3895 1.190 oster }
3896 1.213 christos
3897 1.213 christos int
3898 1.294 oster rf_getdisksize(struct vnode *vp, RF_RaidDisk_t *diskPtr)
3899 1.213 christos {
3900 1.275 mrg uint64_t numsecs;
3901 1.275 mrg unsigned secsize;
3902 1.213 christos int error;
3903 1.213 christos
3904 1.275 mrg error = getdisksize(vp, &numsecs, &secsize);
3905 1.213 christos if (error == 0) {
3906 1.275 mrg diskPtr->blockSize = secsize;
3907 1.275 mrg diskPtr->numBlocks = numsecs - rf_protectedSectors;
3908 1.275 mrg diskPtr->partitionSize = numsecs;
3909 1.213 christos return 0;
3910 1.213 christos }
3911 1.213 christos return error;
3912 1.213 christos }
3913 1.217 oster
3914 1.217 oster static int
3915 1.261 dyoung raid_match(device_t self, cfdata_t cfdata, void *aux)
3916 1.217 oster {
3917 1.217 oster return 1;
3918 1.217 oster }
3919 1.217 oster
3920 1.217 oster static void
3921 1.261 dyoung raid_attach(device_t parent, device_t self, void *aux)
3922 1.217 oster {
3923 1.217 oster
3924 1.217 oster }
3925 1.217 oster
3926 1.217 oster
3927 1.217 oster static int
3928 1.261 dyoung raid_detach(device_t self, int flags)
3929 1.217 oster {
3930 1.266 dyoung int error;
3931 1.327 pgoyette struct raid_softc *rs = raidget(device_unit(self), false);
3932 1.303 christos
3933 1.303 christos if (rs == NULL)
3934 1.303 christos return ENXIO;
3935 1.266 dyoung
3936 1.266 dyoung if ((error = raidlock(rs)) != 0)
3937 1.266 dyoung return (error);
3938 1.217 oster
3939 1.266 dyoung error = raid_detach_unlocked(rs);
3940 1.266 dyoung
3941 1.327 pgoyette if (error != 0)
3942 1.327 pgoyette raidunlock(rs);
3943 1.303 christos
3944 1.266 dyoung return error;
3945 1.217 oster }
3946 1.217 oster
3947 1.234 oster static void
3948 1.304 christos rf_set_geometry(struct raid_softc *rs, RF_Raid_t *raidPtr)
3949 1.234 oster {
3950 1.304 christos struct disk_geom *dg = &rs->sc_dkdev.dk_geom;
3951 1.304 christos
3952 1.304 christos memset(dg, 0, sizeof(*dg));
3953 1.304 christos
3954 1.304 christos dg->dg_secperunit = raidPtr->totalSectors;
3955 1.304 christos dg->dg_secsize = raidPtr->bytesPerSector;
3956 1.304 christos dg->dg_nsectors = raidPtr->Layout.dataSectorsPerStripe;
3957 1.304 christos dg->dg_ntracks = 4 * raidPtr->numCol;
3958 1.304 christos
3959 1.304 christos disk_set_info(rs->sc_dev, &rs->sc_dkdev, NULL);
3960 1.234 oster }
3961 1.252 oster
3962 1.252 oster /*
3963 1.252 oster * Implement forwarding of the DIOCCACHESYNC ioctl to each of the components.
3964 1.252 oster * We end up returning whatever error was returned by the first cache flush
3965 1.252 oster * that fails.
3966 1.252 oster */
3967 1.252 oster
3968 1.269 jld int
3969 1.252 oster rf_sync_component_caches(RF_Raid_t *raidPtr)
3970 1.252 oster {
3971 1.252 oster int c, sparecol;
3972 1.252 oster int e,error;
3973 1.252 oster int force = 1;
3974 1.252 oster
3975 1.252 oster error = 0;
3976 1.252 oster for (c = 0; c < raidPtr->numCol; c++) {
3977 1.252 oster if (raidPtr->Disks[c].status == rf_ds_optimal) {
3978 1.252 oster e = VOP_IOCTL(raidPtr->raid_cinfo[c].ci_vp, DIOCCACHESYNC,
3979 1.252 oster &force, FWRITE, NOCRED);
3980 1.252 oster if (e) {
3981 1.255 oster if (e != ENODEV)
3982 1.255 oster printf("raid%d: cache flush to component %s failed.\n",
3983 1.255 oster raidPtr->raidid, raidPtr->Disks[c].devname);
3984 1.252 oster if (error == 0) {
3985 1.252 oster error = e;
3986 1.252 oster }
3987 1.252 oster }
3988 1.252 oster }
3989 1.252 oster }
3990 1.252 oster
3991 1.252 oster for( c = 0; c < raidPtr->numSpare ; c++) {
3992 1.252 oster sparecol = raidPtr->numCol + c;
3993 1.252 oster /* Need to ensure that the reconstruct actually completed! */
3994 1.252 oster if (raidPtr->Disks[sparecol].status == rf_ds_used_spare) {
3995 1.252 oster e = VOP_IOCTL(raidPtr->raid_cinfo[sparecol].ci_vp,
3996 1.252 oster DIOCCACHESYNC, &force, FWRITE, NOCRED);
3997 1.252 oster if (e) {
3998 1.255 oster if (e != ENODEV)
3999 1.255 oster printf("raid%d: cache flush to component %s failed.\n",
4000 1.255 oster raidPtr->raidid, raidPtr->Disks[sparecol].devname);
4001 1.252 oster if (error == 0) {
4002 1.252 oster error = e;
4003 1.252 oster }
4004 1.252 oster }
4005 1.252 oster }
4006 1.252 oster }
4007 1.252 oster return error;
4008 1.252 oster }
4009 1.327 pgoyette
4010 1.327 pgoyette /*
4011 1.327 pgoyette * Module interface
4012 1.327 pgoyette */
4013 1.327 pgoyette
4014 1.327 pgoyette MODULE(MODULE_CLASS_DRIVER, raid, "dk_subr");
4015 1.327 pgoyette
4016 1.327 pgoyette #ifdef _MODULE
4017 1.327 pgoyette CFDRIVER_DECL(raid, DV_DISK, NULL);
4018 1.327 pgoyette #endif
4019 1.327 pgoyette
4020 1.327 pgoyette static int raid_modcmd(modcmd_t, void *);
4021 1.327 pgoyette static int raid_modcmd_init(void);
4022 1.327 pgoyette static int raid_modcmd_fini(void);
4023 1.327 pgoyette
4024 1.327 pgoyette static int
4025 1.327 pgoyette raid_modcmd(modcmd_t cmd, void *data)
4026 1.327 pgoyette {
4027 1.327 pgoyette int error;
4028 1.327 pgoyette
4029 1.327 pgoyette error = 0;
4030 1.327 pgoyette switch (cmd) {
4031 1.327 pgoyette case MODULE_CMD_INIT:
4032 1.327 pgoyette error = raid_modcmd_init();
4033 1.327 pgoyette break;
4034 1.327 pgoyette case MODULE_CMD_FINI:
4035 1.327 pgoyette error = raid_modcmd_fini();
4036 1.327 pgoyette break;
4037 1.327 pgoyette default:
4038 1.327 pgoyette error = ENOTTY;
4039 1.327 pgoyette break;
4040 1.327 pgoyette }
4041 1.327 pgoyette return error;
4042 1.327 pgoyette }
4043 1.327 pgoyette
4044 1.327 pgoyette static int
4045 1.327 pgoyette raid_modcmd_init(void)
4046 1.327 pgoyette {
4047 1.327 pgoyette int error;
4048 1.327 pgoyette int bmajor, cmajor;
4049 1.327 pgoyette
4050 1.327 pgoyette mutex_init(&raid_lock, MUTEX_DEFAULT, IPL_NONE);
4051 1.327 pgoyette mutex_enter(&raid_lock);
4052 1.327 pgoyette #if (RF_INCLUDE_PARITY_DECLUSTERING_DS > 0)
4053 1.327 pgoyette rf_init_mutex2(rf_sparet_wait_mutex, IPL_VM);
4054 1.327 pgoyette rf_init_cond2(rf_sparet_wait_cv, "sparetw");
4055 1.327 pgoyette rf_init_cond2(rf_sparet_resp_cv, "rfgst");
4056 1.327 pgoyette
4057 1.327 pgoyette rf_sparet_wait_queue = rf_sparet_resp_queue = NULL;
4058 1.327 pgoyette #endif
4059 1.327 pgoyette
4060 1.327 pgoyette bmajor = cmajor = -1;
4061 1.327 pgoyette error = devsw_attach("raid", &raid_bdevsw, &bmajor,
4062 1.327 pgoyette &raid_cdevsw, &cmajor);
4063 1.327 pgoyette if (error != 0 && error != EEXIST) {
4064 1.327 pgoyette aprint_error("%s: devsw_attach failed %d\n", __func__, error);
4065 1.327 pgoyette mutex_exit(&raid_lock);
4066 1.327 pgoyette return error;
4067 1.327 pgoyette }
4068 1.327 pgoyette #ifdef _MODULE
4069 1.327 pgoyette error = config_cfdriver_attach(&raid_cd);
4070 1.327 pgoyette if (error != 0) {
4071 1.327 pgoyette aprint_error("%s: config_cfdriver_attach failed %d\n",
4072 1.327 pgoyette __func__, error);
4073 1.327 pgoyette devsw_detach(&raid_bdevsw, &raid_cdevsw);
4074 1.327 pgoyette mutex_exit(&raid_lock);
4075 1.327 pgoyette return error;
4076 1.327 pgoyette }
4077 1.327 pgoyette #endif
4078 1.327 pgoyette error = config_cfattach_attach(raid_cd.cd_name, &raid_ca);
4079 1.327 pgoyette if (error != 0) {
4080 1.327 pgoyette aprint_error("%s: config_cfattach_attach failed %d\n",
4081 1.327 pgoyette __func__, error);
4082 1.327 pgoyette #ifdef _MODULE
4083 1.327 pgoyette config_cfdriver_detach(&raid_cd);
4084 1.327 pgoyette #endif
4085 1.327 pgoyette devsw_detach(&raid_bdevsw, &raid_cdevsw);
4086 1.327 pgoyette mutex_exit(&raid_lock);
4087 1.327 pgoyette return error;
4088 1.327 pgoyette }
4089 1.327 pgoyette
4090 1.327 pgoyette raidautoconfigdone = false;
4091 1.327 pgoyette
4092 1.327 pgoyette mutex_exit(&raid_lock);
4093 1.327 pgoyette
4094 1.327 pgoyette if (error == 0) {
4095 1.327 pgoyette if (rf_BootRaidframe(true) == 0)
4096 1.327 pgoyette aprint_verbose("Kernelized RAIDframe activated\n");
4097 1.327 pgoyette else
4098 1.327 pgoyette panic("Serious error activating RAID!!");
4099 1.327 pgoyette }
4100 1.327 pgoyette
4101 1.327 pgoyette /*
4102 1.327 pgoyette * Register a finalizer which will be used to auto-config RAID
4103 1.327 pgoyette * sets once all real hardware devices have been found.
4104 1.327 pgoyette */
4105 1.327 pgoyette error = config_finalize_register(NULL, rf_autoconfig);
4106 1.327 pgoyette if (error != 0) {
4107 1.327 pgoyette aprint_error("WARNING: unable to register RAIDframe "
4108 1.327 pgoyette "finalizer\n");
4109 1.329 pgoyette error = 0;
4110 1.327 pgoyette }
4111 1.327 pgoyette
4112 1.327 pgoyette return error;
4113 1.327 pgoyette }
4114 1.327 pgoyette
4115 1.327 pgoyette static int
4116 1.327 pgoyette raid_modcmd_fini(void)
4117 1.327 pgoyette {
4118 1.327 pgoyette int error;
4119 1.327 pgoyette
4120 1.327 pgoyette mutex_enter(&raid_lock);
4121 1.327 pgoyette
4122 1.327 pgoyette /* Don't allow unload if raid device(s) exist. */
4123 1.327 pgoyette if (!LIST_EMPTY(&raids)) {
4124 1.327 pgoyette mutex_exit(&raid_lock);
4125 1.327 pgoyette return EBUSY;
4126 1.327 pgoyette }
4127 1.327 pgoyette
4128 1.327 pgoyette error = config_cfattach_detach(raid_cd.cd_name, &raid_ca);
4129 1.327 pgoyette if (error != 0) {
4130 1.327 pgoyette mutex_exit(&raid_lock);
4131 1.327 pgoyette return error;
4132 1.327 pgoyette }
4133 1.327 pgoyette #ifdef _MODULE
4134 1.327 pgoyette error = config_cfdriver_detach(&raid_cd);
4135 1.327 pgoyette if (error != 0) {
4136 1.327 pgoyette config_cfattach_attach(raid_cd.cd_name, &raid_ca);
4137 1.327 pgoyette mutex_exit(&raid_lock);
4138 1.327 pgoyette return error;
4139 1.327 pgoyette }
4140 1.327 pgoyette #endif
4141 1.327 pgoyette error = devsw_detach(&raid_bdevsw, &raid_cdevsw);
4142 1.327 pgoyette if (error != 0) {
4143 1.327 pgoyette #ifdef _MODULE
4144 1.327 pgoyette config_cfdriver_attach(&raid_cd);
4145 1.327 pgoyette #endif
4146 1.327 pgoyette config_cfattach_attach(raid_cd.cd_name, &raid_ca);
4147 1.327 pgoyette mutex_exit(&raid_lock);
4148 1.327 pgoyette return error;
4149 1.327 pgoyette }
4150 1.327 pgoyette rf_BootRaidframe(false);
4151 1.327 pgoyette #if (RF_INCLUDE_PARITY_DECLUSTERING_DS > 0)
4152 1.327 pgoyette rf_destroy_mutex2(rf_sparet_wait_mutex);
4153 1.327 pgoyette rf_destroy_cond2(rf_sparet_wait_cv);
4154 1.327 pgoyette rf_destroy_cond2(rf_sparet_resp_cv);
4155 1.327 pgoyette #endif
4156 1.327 pgoyette mutex_exit(&raid_lock);
4157 1.327 pgoyette mutex_destroy(&raid_lock);
4158 1.327 pgoyette
4159 1.327 pgoyette return error;
4160 1.327 pgoyette }
4161