subr_autoconf.c revision 1.168 1 1.168 christos /* $NetBSD: subr_autoconf.c,v 1.168 2009/02/12 18:24:18 christos Exp $ */
2 1.53 cgd
3 1.53 cgd /*
4 1.53 cgd * Copyright (c) 1996, 2000 Christopher G. Demetriou
5 1.53 cgd * All rights reserved.
6 1.93 perry *
7 1.53 cgd * Redistribution and use in source and binary forms, with or without
8 1.53 cgd * modification, are permitted provided that the following conditions
9 1.53 cgd * are met:
10 1.53 cgd * 1. Redistributions of source code must retain the above copyright
11 1.53 cgd * notice, this list of conditions and the following disclaimer.
12 1.53 cgd * 2. Redistributions in binary form must reproduce the above copyright
13 1.53 cgd * notice, this list of conditions and the following disclaimer in the
14 1.53 cgd * documentation and/or other materials provided with the distribution.
15 1.53 cgd * 3. All advertising materials mentioning features or use of this software
16 1.53 cgd * must display the following acknowledgement:
17 1.54 cgd * This product includes software developed for the
18 1.88 keihan * NetBSD Project. See http://www.NetBSD.org/ for
19 1.54 cgd * information about NetBSD.
20 1.53 cgd * 4. The name of the author may not be used to endorse or promote products
21 1.54 cgd * derived from this software without specific prior written permission.
22 1.93 perry *
23 1.53 cgd * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
24 1.53 cgd * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
25 1.53 cgd * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
26 1.53 cgd * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
27 1.53 cgd * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
28 1.53 cgd * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
29 1.53 cgd * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
30 1.53 cgd * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
31 1.53 cgd * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
32 1.53 cgd * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
33 1.93 perry *
34 1.54 cgd * --(license Id: LICENSE.proto,v 1.1 2000/06/13 21:40:26 cgd Exp )--
35 1.53 cgd */
36 1.9 cgd
37 1.1 glass /*
38 1.7 glass * Copyright (c) 1992, 1993
39 1.7 glass * The Regents of the University of California. All rights reserved.
40 1.1 glass *
41 1.1 glass * This software was developed by the Computer Systems Engineering group
42 1.1 glass * at Lawrence Berkeley Laboratory under DARPA contract BG 91-66 and
43 1.1 glass * contributed to Berkeley.
44 1.1 glass *
45 1.1 glass * All advertising materials mentioning features or use of this software
46 1.1 glass * must display the following acknowledgement:
47 1.1 glass * This product includes software developed by the University of
48 1.1 glass * California, Lawrence Berkeley Laboratories.
49 1.1 glass *
50 1.7 glass * Redistribution and use in source and binary forms, with or without
51 1.7 glass * modification, are permitted provided that the following conditions
52 1.7 glass * are met:
53 1.7 glass * 1. Redistributions of source code must retain the above copyright
54 1.7 glass * notice, this list of conditions and the following disclaimer.
55 1.7 glass * 2. Redistributions in binary form must reproduce the above copyright
56 1.7 glass * notice, this list of conditions and the following disclaimer in the
57 1.7 glass * documentation and/or other materials provided with the distribution.
58 1.87 agc * 3. Neither the name of the University nor the names of its contributors
59 1.7 glass * may be used to endorse or promote products derived from this software
60 1.7 glass * without specific prior written permission.
61 1.1 glass *
62 1.7 glass * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
63 1.7 glass * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
64 1.7 glass * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
65 1.7 glass * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
66 1.7 glass * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
67 1.7 glass * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
68 1.7 glass * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
69 1.7 glass * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
70 1.7 glass * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
71 1.7 glass * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
72 1.7 glass * SUCH DAMAGE.
73 1.1 glass *
74 1.8 cgd * from: Header: subr_autoconf.c,v 1.12 93/02/01 19:31:48 torek Exp (LBL)
75 1.9 cgd *
76 1.28 fvdl * @(#)subr_autoconf.c 8.3 (Berkeley) 5/17/94
77 1.1 glass */
78 1.1 glass
79 1.51 cgd #include <sys/cdefs.h>
80 1.168 christos __KERNEL_RCSID(0, "$NetBSD: subr_autoconf.c,v 1.168 2009/02/12 18:24:18 christos Exp $");
81 1.62 simonb
82 1.62 simonb #include "opt_ddb.h"
83 1.149 jmcneill #include "drvctl.h"
84 1.51 cgd
85 1.4 mycroft #include <sys/param.h>
86 1.4 mycroft #include <sys/device.h>
87 1.118 dyoung #include <sys/disklabel.h>
88 1.118 dyoung #include <sys/conf.h>
89 1.118 dyoung #include <sys/kauth.h>
90 1.4 mycroft #include <sys/malloc.h>
91 1.159 matt #include <sys/kmem.h>
92 1.17 christos #include <sys/systm.h>
93 1.43 thorpej #include <sys/kernel.h>
94 1.33 thorpej #include <sys/errno.h>
95 1.47 thorpej #include <sys/proc.h>
96 1.82 mrg #include <sys/reboot.h>
97 1.142 ad #include <sys/kthread.h>
98 1.118 dyoung #include <sys/buf.h>
99 1.118 dyoung #include <sys/dirent.h>
100 1.118 dyoung #include <sys/vnode.h>
101 1.118 dyoung #include <sys/mount.h>
102 1.118 dyoung #include <sys/namei.h>
103 1.118 dyoung #include <sys/unistd.h>
104 1.118 dyoung #include <sys/fcntl.h>
105 1.118 dyoung #include <sys/lockf.h>
106 1.124 jmcneill #include <sys/callout.h>
107 1.136 dyoung #include <sys/mutex.h>
108 1.136 dyoung #include <sys/condvar.h>
109 1.149 jmcneill #include <sys/devmon.h>
110 1.153 cegger #include <sys/cpu.h>
111 1.118 dyoung
112 1.118 dyoung #include <sys/disk.h>
113 1.118 dyoung
114 1.16 mycroft #include <machine/limits.h>
115 1.1 glass
116 1.57 gmcgarry #include "opt_userconf.h"
117 1.57 gmcgarry #ifdef USERCONF
118 1.57 gmcgarry #include <sys/userconf.h>
119 1.57 gmcgarry #endif
120 1.57 gmcgarry
121 1.106 martin #ifdef __i386__
122 1.105 jmcneill #include "opt_splash.h"
123 1.105 jmcneill #if defined(SPLASHSCREEN) && defined(SPLASHSCREEN_PROGRESS)
124 1.105 jmcneill #include <dev/splash/splash.h>
125 1.105 jmcneill extern struct splash_progress *splash_progress_state;
126 1.105 jmcneill #endif
127 1.106 martin #endif
128 1.105 jmcneill
129 1.1 glass /*
130 1.1 glass * Autoconfiguration subroutines.
131 1.1 glass */
132 1.1 glass
133 1.139 dyoung typedef struct pmf_private {
134 1.139 dyoung int pp_nwait;
135 1.139 dyoung int pp_nlock;
136 1.139 dyoung lwp_t *pp_holder;
137 1.139 dyoung kmutex_t pp_mtx;
138 1.139 dyoung kcondvar_t pp_cv;
139 1.139 dyoung } pmf_private_t;
140 1.139 dyoung
141 1.1 glass /*
142 1.1 glass * ioconf.c exports exactly two names: cfdata and cfroots. All system
143 1.1 glass * devices and drivers are found via these tables.
144 1.1 glass */
145 1.1 glass extern struct cfdata cfdata[];
146 1.84 matt extern const short cfroots[];
147 1.1 glass
148 1.65 thorpej /*
149 1.67 thorpej * List of all cfdriver structures. We use this to detect duplicates
150 1.67 thorpej * when other cfdrivers are loaded.
151 1.67 thorpej */
152 1.69 thorpej struct cfdriverlist allcfdrivers = LIST_HEAD_INITIALIZER(&allcfdrivers);
153 1.69 thorpej extern struct cfdriver * const cfdriver_list_initial[];
154 1.67 thorpej
155 1.67 thorpej /*
156 1.76 thorpej * Initial list of cfattach's.
157 1.76 thorpej */
158 1.76 thorpej extern const struct cfattachinit cfattachinit[];
159 1.76 thorpej
160 1.76 thorpej /*
161 1.65 thorpej * List of cfdata tables. We always have one such list -- the one
162 1.65 thorpej * built statically when the kernel was configured.
163 1.65 thorpej */
164 1.121 matt struct cftablelist allcftables = TAILQ_HEAD_INITIALIZER(allcftables);
165 1.65 thorpej static struct cftable initcftable;
166 1.65 thorpej
167 1.102 thorpej #define ROOT ((device_t)NULL)
168 1.1 glass
169 1.16 mycroft struct matchinfo {
170 1.99 drochner cfsubmatch_t fn;
171 1.16 mycroft struct device *parent;
172 1.99 drochner const int *locs;
173 1.25 cgd void *aux;
174 1.25 cgd struct cfdata *match;
175 1.25 cgd int pri;
176 1.16 mycroft };
177 1.17 christos
178 1.51 cgd static char *number(char *, int);
179 1.102 thorpej static void mapply(struct matchinfo *, cfdata_t);
180 1.117 drochner static device_t config_devalloc(const device_t, const cfdata_t, const int *);
181 1.117 drochner static void config_devdealloc(device_t);
182 1.117 drochner static void config_makeroom(int, struct cfdriver *);
183 1.117 drochner static void config_devlink(device_t);
184 1.117 drochner static void config_devunlink(device_t);
185 1.16 mycroft
186 1.139 dyoung static void pmflock_debug(device_t, const char *, int);
187 1.139 dyoung static void pmflock_debug_with_flags(device_t, const char *, int PMF_FN_PROTO);
188 1.139 dyoung
189 1.136 dyoung static device_t deviter_next1(deviter_t *);
190 1.136 dyoung static void deviter_reinit(deviter_t *);
191 1.136 dyoung
192 1.29 thorpej struct deferred_config {
193 1.29 thorpej TAILQ_ENTRY(deferred_config) dc_queue;
194 1.102 thorpej device_t dc_dev;
195 1.102 thorpej void (*dc_func)(device_t);
196 1.29 thorpej };
197 1.29 thorpej
198 1.42 thorpej TAILQ_HEAD(deferred_config_head, deferred_config);
199 1.29 thorpej
200 1.121 matt struct deferred_config_head deferred_config_queue =
201 1.121 matt TAILQ_HEAD_INITIALIZER(deferred_config_queue);
202 1.121 matt struct deferred_config_head interrupt_config_queue =
203 1.121 matt TAILQ_HEAD_INITIALIZER(interrupt_config_queue);
204 1.142 ad int interrupt_config_threads = 8;
205 1.42 thorpej
206 1.102 thorpej static void config_process_deferred(struct deferred_config_head *, device_t);
207 1.29 thorpej
208 1.75 thorpej /* Hooks to finalize configuration once all real devices have been found. */
209 1.75 thorpej struct finalize_hook {
210 1.75 thorpej TAILQ_ENTRY(finalize_hook) f_list;
211 1.102 thorpej int (*f_func)(device_t);
212 1.102 thorpej device_t f_dev;
213 1.75 thorpej };
214 1.121 matt static TAILQ_HEAD(, finalize_hook) config_finalize_list =
215 1.121 matt TAILQ_HEAD_INITIALIZER(config_finalize_list);
216 1.75 thorpej static int config_finalize_done;
217 1.75 thorpej
218 1.56 thorpej /* list of all devices */
219 1.121 matt struct devicelist alldevs = TAILQ_HEAD_INITIALIZER(alldevs);
220 1.136 dyoung kcondvar_t alldevs_cv;
221 1.136 dyoung kmutex_t alldevs_mtx;
222 1.136 dyoung static int alldevs_nread = 0;
223 1.136 dyoung static int alldevs_nwrite = 0;
224 1.136 dyoung static lwp_t *alldevs_writer = NULL;
225 1.56 thorpej
226 1.151 ad static int config_pending; /* semaphore for mountroot */
227 1.151 ad static kmutex_t config_misc_lock;
228 1.151 ad static kcondvar_t config_misc_cv;
229 1.47 thorpej
230 1.67 thorpej #define STREQ(s1, s2) \
231 1.70 thorpej (*(s1) == *(s2) && strcmp((s1), (s2)) == 0)
232 1.67 thorpej
233 1.74 thorpej static int config_initialized; /* config_init() has been called. */
234 1.74 thorpej
235 1.80 thorpej static int config_do_twiddle;
236 1.80 thorpej
237 1.118 dyoung struct vnode *
238 1.118 dyoung opendisk(struct device *dv)
239 1.118 dyoung {
240 1.118 dyoung int bmajor, bminor;
241 1.118 dyoung struct vnode *tmpvn;
242 1.118 dyoung int error;
243 1.118 dyoung dev_t dev;
244 1.118 dyoung
245 1.118 dyoung /*
246 1.118 dyoung * Lookup major number for disk block device.
247 1.118 dyoung */
248 1.118 dyoung bmajor = devsw_name2blk(device_xname(dv), NULL, 0);
249 1.118 dyoung if (bmajor == -1)
250 1.118 dyoung return NULL;
251 1.118 dyoung
252 1.118 dyoung bminor = minor(device_unit(dv));
253 1.118 dyoung /*
254 1.118 dyoung * Fake a temporary vnode for the disk, open it, and read
255 1.118 dyoung * and hash the sectors.
256 1.118 dyoung */
257 1.118 dyoung dev = device_is_a(dv, "dk") ? makedev(bmajor, bminor) :
258 1.118 dyoung MAKEDISKDEV(bmajor, bminor, RAW_PART);
259 1.118 dyoung if (bdevvp(dev, &tmpvn))
260 1.118 dyoung panic("%s: can't alloc vnode for %s", __func__,
261 1.118 dyoung device_xname(dv));
262 1.123 pooka error = VOP_OPEN(tmpvn, FREAD, NOCRED);
263 1.118 dyoung if (error) {
264 1.118 dyoung #ifndef DEBUG
265 1.118 dyoung /*
266 1.118 dyoung * Ignore errors caused by missing device, partition,
267 1.118 dyoung * or medium.
268 1.118 dyoung */
269 1.118 dyoung if (error != ENXIO && error != ENODEV)
270 1.118 dyoung #endif
271 1.118 dyoung printf("%s: can't open dev %s (%d)\n",
272 1.118 dyoung __func__, device_xname(dv), error);
273 1.118 dyoung vput(tmpvn);
274 1.118 dyoung return NULL;
275 1.118 dyoung }
276 1.118 dyoung
277 1.118 dyoung return tmpvn;
278 1.118 dyoung }
279 1.118 dyoung
280 1.118 dyoung int
281 1.118 dyoung config_handle_wedges(struct device *dv, int par)
282 1.118 dyoung {
283 1.118 dyoung struct dkwedge_list wl;
284 1.118 dyoung struct dkwedge_info *wi;
285 1.118 dyoung struct vnode *vn;
286 1.118 dyoung char diskname[16];
287 1.118 dyoung int i, error;
288 1.118 dyoung
289 1.118 dyoung if ((vn = opendisk(dv)) == NULL)
290 1.118 dyoung return -1;
291 1.118 dyoung
292 1.118 dyoung wl.dkwl_bufsize = sizeof(*wi) * 16;
293 1.118 dyoung wl.dkwl_buf = wi = malloc(wl.dkwl_bufsize, M_TEMP, M_WAITOK);
294 1.118 dyoung
295 1.123 pooka error = VOP_IOCTL(vn, DIOCLWEDGES, &wl, FREAD, NOCRED);
296 1.123 pooka VOP_CLOSE(vn, FREAD, NOCRED);
297 1.118 dyoung vput(vn);
298 1.118 dyoung if (error) {
299 1.118 dyoung #ifdef DEBUG_WEDGE
300 1.118 dyoung printf("%s: List wedges returned %d\n",
301 1.118 dyoung device_xname(dv), error);
302 1.118 dyoung #endif
303 1.118 dyoung free(wi, M_TEMP);
304 1.118 dyoung return -1;
305 1.118 dyoung }
306 1.118 dyoung
307 1.118 dyoung #ifdef DEBUG_WEDGE
308 1.118 dyoung printf("%s: Returned %u(%u) wedges\n", device_xname(dv),
309 1.118 dyoung wl.dkwl_nwedges, wl.dkwl_ncopied);
310 1.118 dyoung #endif
311 1.118 dyoung snprintf(diskname, sizeof(diskname), "%s%c", device_xname(dv),
312 1.118 dyoung par + 'a');
313 1.118 dyoung
314 1.118 dyoung for (i = 0; i < wl.dkwl_ncopied; i++) {
315 1.118 dyoung #ifdef DEBUG_WEDGE
316 1.118 dyoung printf("%s: Looking for %s in %s\n",
317 1.118 dyoung device_xname(dv), diskname, wi[i].dkw_wname);
318 1.118 dyoung #endif
319 1.118 dyoung if (strcmp(wi[i].dkw_wname, diskname) == 0)
320 1.118 dyoung break;
321 1.118 dyoung }
322 1.118 dyoung
323 1.118 dyoung if (i == wl.dkwl_ncopied) {
324 1.118 dyoung #ifdef DEBUG_WEDGE
325 1.118 dyoung printf("%s: Cannot find wedge with parent %s\n",
326 1.118 dyoung device_xname(dv), diskname);
327 1.118 dyoung #endif
328 1.118 dyoung free(wi, M_TEMP);
329 1.118 dyoung return -1;
330 1.118 dyoung }
331 1.118 dyoung
332 1.118 dyoung #ifdef DEBUG_WEDGE
333 1.118 dyoung printf("%s: Setting boot wedge %s (%s) at %llu %llu\n",
334 1.118 dyoung device_xname(dv), wi[i].dkw_devname, wi[i].dkw_wname,
335 1.118 dyoung (unsigned long long)wi[i].dkw_offset,
336 1.118 dyoung (unsigned long long)wi[i].dkw_size);
337 1.118 dyoung #endif
338 1.118 dyoung dkwedge_set_bootwedge(dv, wi[i].dkw_offset, wi[i].dkw_size);
339 1.118 dyoung free(wi, M_TEMP);
340 1.118 dyoung return 0;
341 1.118 dyoung }
342 1.118 dyoung
343 1.20 cgd /*
344 1.74 thorpej * Initialize the autoconfiguration data structures. Normally this
345 1.74 thorpej * is done by configure(), but some platforms need to do this very
346 1.74 thorpej * early (to e.g. initialize the console).
347 1.20 cgd */
348 1.20 cgd void
349 1.74 thorpej config_init(void)
350 1.20 cgd {
351 1.76 thorpej const struct cfattachinit *cfai;
352 1.76 thorpej int i, j;
353 1.67 thorpej
354 1.74 thorpej if (config_initialized)
355 1.74 thorpej return;
356 1.74 thorpej
357 1.136 dyoung mutex_init(&alldevs_mtx, MUTEX_DEFAULT, IPL_NONE);
358 1.136 dyoung cv_init(&alldevs_cv, "alldevs");
359 1.136 dyoung
360 1.151 ad mutex_init(&config_misc_lock, MUTEX_DEFAULT, IPL_NONE);
361 1.151 ad cv_init(&config_misc_cv, "cfgmisc");
362 1.151 ad
363 1.69 thorpej /* allcfdrivers is statically initialized. */
364 1.76 thorpej for (i = 0; cfdriver_list_initial[i] != NULL; i++) {
365 1.67 thorpej if (config_cfdriver_attach(cfdriver_list_initial[i]) != 0)
366 1.67 thorpej panic("configure: duplicate `%s' drivers",
367 1.67 thorpej cfdriver_list_initial[i]->cd_name);
368 1.76 thorpej }
369 1.76 thorpej
370 1.76 thorpej for (cfai = &cfattachinit[0]; cfai->cfai_name != NULL; cfai++) {
371 1.76 thorpej for (j = 0; cfai->cfai_list[j] != NULL; j++) {
372 1.76 thorpej if (config_cfattach_attach(cfai->cfai_name,
373 1.76 thorpej cfai->cfai_list[j]) != 0)
374 1.76 thorpej panic("configure: duplicate `%s' attachment "
375 1.76 thorpej "of `%s' driver",
376 1.76 thorpej cfai->cfai_list[j]->ca_name,
377 1.76 thorpej cfai->cfai_name);
378 1.76 thorpej }
379 1.76 thorpej }
380 1.20 cgd
381 1.65 thorpej initcftable.ct_cfdata = cfdata;
382 1.65 thorpej TAILQ_INSERT_TAIL(&allcftables, &initcftable, ct_list);
383 1.65 thorpej
384 1.74 thorpej config_initialized = 1;
385 1.74 thorpej }
386 1.74 thorpej
387 1.126 dyoung void
388 1.126 dyoung config_deferred(device_t dev)
389 1.126 dyoung {
390 1.126 dyoung config_process_deferred(&deferred_config_queue, dev);
391 1.126 dyoung config_process_deferred(&interrupt_config_queue, dev);
392 1.126 dyoung }
393 1.126 dyoung
394 1.142 ad static void
395 1.142 ad config_interrupts_thread(void *cookie)
396 1.142 ad {
397 1.142 ad struct deferred_config *dc;
398 1.142 ad
399 1.142 ad while ((dc = TAILQ_FIRST(&interrupt_config_queue)) != NULL) {
400 1.142 ad TAILQ_REMOVE(&interrupt_config_queue, dc, dc_queue);
401 1.142 ad (*dc->dc_func)(dc->dc_dev);
402 1.159 matt kmem_free(dc, sizeof(*dc));
403 1.142 ad config_pending_decr();
404 1.142 ad }
405 1.142 ad kthread_exit(0);
406 1.142 ad }
407 1.142 ad
408 1.74 thorpej /*
409 1.74 thorpej * Configure the system's hardware.
410 1.74 thorpej */
411 1.74 thorpej void
412 1.74 thorpej configure(void)
413 1.74 thorpej {
414 1.74 thorpej /* Initialize data structures. */
415 1.74 thorpej config_init();
416 1.124 jmcneill pmf_init();
417 1.149 jmcneill #if NDRVCTL > 0
418 1.149 jmcneill drvctl_init();
419 1.149 jmcneill #endif
420 1.86 thorpej
421 1.57 gmcgarry #ifdef USERCONF
422 1.57 gmcgarry if (boothowto & RB_USERCONF)
423 1.57 gmcgarry user_config();
424 1.57 gmcgarry #endif
425 1.41 thorpej
426 1.80 thorpej if ((boothowto & (AB_SILENT|AB_VERBOSE)) == AB_SILENT) {
427 1.80 thorpej config_do_twiddle = 1;
428 1.80 thorpej printf_nolog("Detecting hardware...");
429 1.80 thorpej }
430 1.80 thorpej
431 1.41 thorpej /*
432 1.41 thorpej * Do the machine-dependent portion of autoconfiguration. This
433 1.41 thorpej * sets the configuration machinery here in motion by "finding"
434 1.41 thorpej * the root bus. When this function returns, we expect interrupts
435 1.41 thorpej * to be enabled.
436 1.41 thorpej */
437 1.41 thorpej cpu_configure();
438 1.168 christos }
439 1.43 thorpej
440 1.168 christos void
441 1.168 christos configure2(void)
442 1.168 christos {
443 1.168 christos CPU_INFO_ITERATOR cii;
444 1.168 christos struct cpu_info *ci;
445 1.168 christos int i, s;
446 1.144 ad
447 1.43 thorpej /*
448 1.43 thorpej * Now that we've found all the hardware, start the real time
449 1.43 thorpej * and statistics clocks.
450 1.43 thorpej */
451 1.43 thorpej initclocks();
452 1.43 thorpej
453 1.43 thorpej cold = 0; /* clocks are running, we're warm now! */
454 1.146 ad s = splsched();
455 1.146 ad curcpu()->ci_schedstate.spc_flags |= SPCF_RUNNING;
456 1.146 ad splx(s);
457 1.42 thorpej
458 1.129 yamt /* Boot the secondary processors. */
459 1.152 ad for (CPU_INFO_FOREACH(cii, ci)) {
460 1.152 ad uvm_cpu_attach(ci);
461 1.152 ad }
462 1.129 yamt mp_online = true;
463 1.122 ad #if defined(MULTIPROCESSOR)
464 1.122 ad cpu_boot_secondary_processors();
465 1.122 ad #endif
466 1.122 ad
467 1.147 rmind /* Setup the runqueues and scheduler. */
468 1.147 rmind runq_init();
469 1.142 ad sched_init();
470 1.142 ad
471 1.42 thorpej /*
472 1.142 ad * Create threads to call back and finish configuration for
473 1.142 ad * devices that want interrupts enabled.
474 1.42 thorpej */
475 1.142 ad for (i = 0; i < interrupt_config_threads; i++) {
476 1.142 ad (void)kthread_create(PRI_NONE, 0, NULL,
477 1.142 ad config_interrupts_thread, NULL, NULL, "config");
478 1.142 ad }
479 1.80 thorpej
480 1.142 ad /* Get the threads going and into any sleeps before continuing. */
481 1.142 ad yield();
482 1.20 cgd }
483 1.20 cgd
484 1.1 glass /*
485 1.149 jmcneill * Announce device attach/detach to userland listeners.
486 1.149 jmcneill */
487 1.149 jmcneill static void
488 1.149 jmcneill devmon_report_device(device_t dev, bool isattach)
489 1.149 jmcneill {
490 1.149 jmcneill #if NDRVCTL > 0
491 1.149 jmcneill prop_dictionary_t ev;
492 1.149 jmcneill const char *parent;
493 1.149 jmcneill const char *what;
494 1.149 jmcneill device_t pdev = device_parent(dev);
495 1.149 jmcneill
496 1.149 jmcneill ev = prop_dictionary_create();
497 1.149 jmcneill if (ev == NULL)
498 1.149 jmcneill return;
499 1.149 jmcneill
500 1.149 jmcneill what = (isattach ? "device-attach" : "device-detach");
501 1.149 jmcneill parent = (pdev == NULL ? "root" : device_xname(pdev));
502 1.149 jmcneill if (!prop_dictionary_set_cstring(ev, "device", device_xname(dev)) ||
503 1.149 jmcneill !prop_dictionary_set_cstring(ev, "parent", parent)) {
504 1.149 jmcneill prop_object_release(ev);
505 1.149 jmcneill return;
506 1.149 jmcneill }
507 1.149 jmcneill
508 1.149 jmcneill devmon_insert(what, ev);
509 1.149 jmcneill #endif
510 1.149 jmcneill }
511 1.149 jmcneill
512 1.149 jmcneill /*
513 1.67 thorpej * Add a cfdriver to the system.
514 1.67 thorpej */
515 1.67 thorpej int
516 1.67 thorpej config_cfdriver_attach(struct cfdriver *cd)
517 1.67 thorpej {
518 1.67 thorpej struct cfdriver *lcd;
519 1.67 thorpej
520 1.67 thorpej /* Make sure this driver isn't already in the system. */
521 1.67 thorpej LIST_FOREACH(lcd, &allcfdrivers, cd_list) {
522 1.67 thorpej if (STREQ(lcd->cd_name, cd->cd_name))
523 1.67 thorpej return (EEXIST);
524 1.67 thorpej }
525 1.67 thorpej
526 1.76 thorpej LIST_INIT(&cd->cd_attach);
527 1.67 thorpej LIST_INSERT_HEAD(&allcfdrivers, cd, cd_list);
528 1.67 thorpej
529 1.67 thorpej return (0);
530 1.67 thorpej }
531 1.67 thorpej
532 1.67 thorpej /*
533 1.67 thorpej * Remove a cfdriver from the system.
534 1.67 thorpej */
535 1.67 thorpej int
536 1.67 thorpej config_cfdriver_detach(struct cfdriver *cd)
537 1.67 thorpej {
538 1.67 thorpej int i;
539 1.67 thorpej
540 1.67 thorpej /* Make sure there are no active instances. */
541 1.67 thorpej for (i = 0; i < cd->cd_ndevs; i++) {
542 1.67 thorpej if (cd->cd_devs[i] != NULL)
543 1.67 thorpej return (EBUSY);
544 1.67 thorpej }
545 1.67 thorpej
546 1.76 thorpej /* ...and no attachments loaded. */
547 1.76 thorpej if (LIST_EMPTY(&cd->cd_attach) == 0)
548 1.76 thorpej return (EBUSY);
549 1.76 thorpej
550 1.67 thorpej LIST_REMOVE(cd, cd_list);
551 1.67 thorpej
552 1.67 thorpej KASSERT(cd->cd_devs == NULL);
553 1.67 thorpej
554 1.67 thorpej return (0);
555 1.67 thorpej }
556 1.67 thorpej
557 1.67 thorpej /*
558 1.67 thorpej * Look up a cfdriver by name.
559 1.67 thorpej */
560 1.78 isaki struct cfdriver *
561 1.67 thorpej config_cfdriver_lookup(const char *name)
562 1.67 thorpej {
563 1.67 thorpej struct cfdriver *cd;
564 1.69 thorpej
565 1.67 thorpej LIST_FOREACH(cd, &allcfdrivers, cd_list) {
566 1.67 thorpej if (STREQ(cd->cd_name, name))
567 1.67 thorpej return (cd);
568 1.67 thorpej }
569 1.67 thorpej
570 1.67 thorpej return (NULL);
571 1.67 thorpej }
572 1.67 thorpej
573 1.67 thorpej /*
574 1.76 thorpej * Add a cfattach to the specified driver.
575 1.76 thorpej */
576 1.76 thorpej int
577 1.76 thorpej config_cfattach_attach(const char *driver, struct cfattach *ca)
578 1.76 thorpej {
579 1.76 thorpej struct cfattach *lca;
580 1.76 thorpej struct cfdriver *cd;
581 1.76 thorpej
582 1.76 thorpej cd = config_cfdriver_lookup(driver);
583 1.76 thorpej if (cd == NULL)
584 1.76 thorpej return (ESRCH);
585 1.76 thorpej
586 1.76 thorpej /* Make sure this attachment isn't already on this driver. */
587 1.76 thorpej LIST_FOREACH(lca, &cd->cd_attach, ca_list) {
588 1.76 thorpej if (STREQ(lca->ca_name, ca->ca_name))
589 1.76 thorpej return (EEXIST);
590 1.76 thorpej }
591 1.76 thorpej
592 1.76 thorpej LIST_INSERT_HEAD(&cd->cd_attach, ca, ca_list);
593 1.76 thorpej
594 1.76 thorpej return (0);
595 1.76 thorpej }
596 1.76 thorpej
597 1.76 thorpej /*
598 1.76 thorpej * Remove a cfattach from the specified driver.
599 1.76 thorpej */
600 1.76 thorpej int
601 1.76 thorpej config_cfattach_detach(const char *driver, struct cfattach *ca)
602 1.76 thorpej {
603 1.76 thorpej struct cfdriver *cd;
604 1.102 thorpej device_t dev;
605 1.76 thorpej int i;
606 1.76 thorpej
607 1.76 thorpej cd = config_cfdriver_lookup(driver);
608 1.76 thorpej if (cd == NULL)
609 1.76 thorpej return (ESRCH);
610 1.76 thorpej
611 1.76 thorpej /* Make sure there are no active instances. */
612 1.76 thorpej for (i = 0; i < cd->cd_ndevs; i++) {
613 1.76 thorpej if ((dev = cd->cd_devs[i]) == NULL)
614 1.76 thorpej continue;
615 1.77 thorpej if (dev->dv_cfattach == ca)
616 1.76 thorpej return (EBUSY);
617 1.76 thorpej }
618 1.76 thorpej
619 1.76 thorpej LIST_REMOVE(ca, ca_list);
620 1.76 thorpej
621 1.76 thorpej return (0);
622 1.76 thorpej }
623 1.76 thorpej
624 1.76 thorpej /*
625 1.76 thorpej * Look up a cfattach by name.
626 1.76 thorpej */
627 1.76 thorpej static struct cfattach *
628 1.76 thorpej config_cfattach_lookup_cd(struct cfdriver *cd, const char *atname)
629 1.76 thorpej {
630 1.76 thorpej struct cfattach *ca;
631 1.76 thorpej
632 1.76 thorpej LIST_FOREACH(ca, &cd->cd_attach, ca_list) {
633 1.76 thorpej if (STREQ(ca->ca_name, atname))
634 1.76 thorpej return (ca);
635 1.76 thorpej }
636 1.76 thorpej
637 1.76 thorpej return (NULL);
638 1.76 thorpej }
639 1.76 thorpej
640 1.76 thorpej /*
641 1.76 thorpej * Look up a cfattach by driver/attachment name.
642 1.76 thorpej */
643 1.76 thorpej struct cfattach *
644 1.76 thorpej config_cfattach_lookup(const char *name, const char *atname)
645 1.76 thorpej {
646 1.76 thorpej struct cfdriver *cd;
647 1.76 thorpej
648 1.76 thorpej cd = config_cfdriver_lookup(name);
649 1.76 thorpej if (cd == NULL)
650 1.76 thorpej return (NULL);
651 1.76 thorpej
652 1.76 thorpej return (config_cfattach_lookup_cd(cd, atname));
653 1.76 thorpej }
654 1.76 thorpej
655 1.76 thorpej /*
656 1.1 glass * Apply the matching function and choose the best. This is used
657 1.1 glass * a few times and we want to keep the code small.
658 1.1 glass */
659 1.16 mycroft static void
660 1.102 thorpej mapply(struct matchinfo *m, cfdata_t cf)
661 1.1 glass {
662 1.50 augustss int pri;
663 1.1 glass
664 1.99 drochner if (m->fn != NULL) {
665 1.99 drochner pri = (*m->fn)(m->parent, cf, m->locs, m->aux);
666 1.90 drochner } else {
667 1.100 drochner pri = config_match(m->parent, cf, m->aux);
668 1.3 glass }
669 1.1 glass if (pri > m->pri) {
670 1.25 cgd m->match = cf;
671 1.1 glass m->pri = pri;
672 1.1 glass }
673 1.1 glass }
674 1.1 glass
675 1.98 drochner int
676 1.102 thorpej config_stdsubmatch(device_t parent, cfdata_t cf, const int *locs, void *aux)
677 1.98 drochner {
678 1.98 drochner const struct cfiattrdata *ci;
679 1.98 drochner const struct cflocdesc *cl;
680 1.98 drochner int nlocs, i;
681 1.98 drochner
682 1.98 drochner ci = cfiattr_lookup(cf->cf_pspec->cfp_iattr, parent->dv_cfdriver);
683 1.98 drochner KASSERT(ci);
684 1.98 drochner nlocs = ci->ci_loclen;
685 1.154 drochner KASSERT(!nlocs || locs);
686 1.98 drochner for (i = 0; i < nlocs; i++) {
687 1.98 drochner cl = &ci->ci_locdesc[i];
688 1.98 drochner /* !cld_defaultstr means no default value */
689 1.98 drochner if ((!(cl->cld_defaultstr)
690 1.98 drochner || (cf->cf_loc[i] != cl->cld_default))
691 1.98 drochner && cf->cf_loc[i] != locs[i])
692 1.98 drochner return (0);
693 1.98 drochner }
694 1.98 drochner
695 1.98 drochner return (config_match(parent, cf, aux));
696 1.98 drochner }
697 1.98 drochner
698 1.1 glass /*
699 1.96 drochner * Helper function: check whether the driver supports the interface attribute
700 1.96 drochner * and return its descriptor structure.
701 1.91 drochner */
702 1.96 drochner static const struct cfiattrdata *
703 1.96 drochner cfdriver_get_iattr(const struct cfdriver *cd, const char *ia)
704 1.91 drochner {
705 1.96 drochner const struct cfiattrdata * const *cpp;
706 1.91 drochner
707 1.91 drochner if (cd->cd_attrs == NULL)
708 1.91 drochner return (0);
709 1.91 drochner
710 1.91 drochner for (cpp = cd->cd_attrs; *cpp; cpp++) {
711 1.96 drochner if (STREQ((*cpp)->ci_name, ia)) {
712 1.91 drochner /* Match. */
713 1.96 drochner return (*cpp);
714 1.91 drochner }
715 1.91 drochner }
716 1.91 drochner return (0);
717 1.91 drochner }
718 1.91 drochner
719 1.91 drochner /*
720 1.96 drochner * Lookup an interface attribute description by name.
721 1.96 drochner * If the driver is given, consider only its supported attributes.
722 1.96 drochner */
723 1.96 drochner const struct cfiattrdata *
724 1.96 drochner cfiattr_lookup(const char *name, const struct cfdriver *cd)
725 1.96 drochner {
726 1.96 drochner const struct cfdriver *d;
727 1.96 drochner const struct cfiattrdata *ia;
728 1.96 drochner
729 1.96 drochner if (cd)
730 1.96 drochner return (cfdriver_get_iattr(cd, name));
731 1.96 drochner
732 1.96 drochner LIST_FOREACH(d, &allcfdrivers, cd_list) {
733 1.96 drochner ia = cfdriver_get_iattr(d, name);
734 1.96 drochner if (ia)
735 1.96 drochner return (ia);
736 1.96 drochner }
737 1.96 drochner return (0);
738 1.96 drochner }
739 1.96 drochner
740 1.96 drochner /*
741 1.66 thorpej * Determine if `parent' is a potential parent for a device spec based
742 1.66 thorpej * on `cfp'.
743 1.66 thorpej */
744 1.66 thorpej static int
745 1.102 thorpej cfparent_match(const device_t parent, const struct cfparent *cfp)
746 1.66 thorpej {
747 1.67 thorpej struct cfdriver *pcd;
748 1.70 thorpej
749 1.70 thorpej /* We don't match root nodes here. */
750 1.70 thorpej if (cfp == NULL)
751 1.70 thorpej return (0);
752 1.66 thorpej
753 1.77 thorpej pcd = parent->dv_cfdriver;
754 1.67 thorpej KASSERT(pcd != NULL);
755 1.67 thorpej
756 1.66 thorpej /*
757 1.66 thorpej * First, ensure this parent has the correct interface
758 1.66 thorpej * attribute.
759 1.66 thorpej */
760 1.96 drochner if (!cfdriver_get_iattr(pcd, cfp->cfp_iattr))
761 1.91 drochner return (0);
762 1.66 thorpej
763 1.66 thorpej /*
764 1.66 thorpej * If no specific parent device instance was specified (i.e.
765 1.66 thorpej * we're attaching to the attribute only), we're done!
766 1.66 thorpej */
767 1.66 thorpej if (cfp->cfp_parent == NULL)
768 1.66 thorpej return (1);
769 1.66 thorpej
770 1.66 thorpej /*
771 1.66 thorpej * Check the parent device's name.
772 1.66 thorpej */
773 1.71 thorpej if (STREQ(pcd->cd_name, cfp->cfp_parent) == 0)
774 1.66 thorpej return (0); /* not the same parent */
775 1.66 thorpej
776 1.66 thorpej /*
777 1.66 thorpej * Make sure the unit number matches.
778 1.66 thorpej */
779 1.77 thorpej if (cfp->cfp_unit == DVUNIT_ANY || /* wildcard */
780 1.66 thorpej cfp->cfp_unit == parent->dv_unit)
781 1.66 thorpej return (1);
782 1.66 thorpej
783 1.66 thorpej /* Unit numbers don't match. */
784 1.66 thorpej return (0);
785 1.68 thorpej }
786 1.68 thorpej
787 1.68 thorpej /*
788 1.90 drochner * Helper for config_cfdata_attach(): check all devices whether it could be
789 1.90 drochner * parent any attachment in the config data table passed, and rescan.
790 1.90 drochner */
791 1.90 drochner static void
792 1.90 drochner rescan_with_cfdata(const struct cfdata *cf)
793 1.90 drochner {
794 1.102 thorpej device_t d;
795 1.90 drochner const struct cfdata *cf1;
796 1.136 dyoung deviter_t di;
797 1.136 dyoung
798 1.90 drochner
799 1.90 drochner /*
800 1.164 ad * "alldevs" is likely longer than a modules's cfdata, so make it
801 1.90 drochner * the outer loop.
802 1.90 drochner */
803 1.136 dyoung for (d = deviter_first(&di, 0); d != NULL; d = deviter_next(&di)) {
804 1.90 drochner
805 1.90 drochner if (!(d->dv_cfattach->ca_rescan))
806 1.90 drochner continue;
807 1.90 drochner
808 1.90 drochner for (cf1 = cf; cf1->cf_name; cf1++) {
809 1.90 drochner
810 1.90 drochner if (!cfparent_match(d, cf1->cf_pspec))
811 1.90 drochner continue;
812 1.90 drochner
813 1.90 drochner (*d->dv_cfattach->ca_rescan)(d,
814 1.90 drochner cf1->cf_pspec->cfp_iattr, cf1->cf_loc);
815 1.90 drochner }
816 1.90 drochner }
817 1.136 dyoung deviter_release(&di);
818 1.90 drochner }
819 1.90 drochner
820 1.90 drochner /*
821 1.90 drochner * Attach a supplemental config data table and rescan potential
822 1.90 drochner * parent devices if required.
823 1.90 drochner */
824 1.90 drochner int
825 1.102 thorpej config_cfdata_attach(cfdata_t cf, int scannow)
826 1.90 drochner {
827 1.90 drochner struct cftable *ct;
828 1.90 drochner
829 1.159 matt ct = kmem_alloc(sizeof(*ct), KM_SLEEP);
830 1.90 drochner ct->ct_cfdata = cf;
831 1.90 drochner TAILQ_INSERT_TAIL(&allcftables, ct, ct_list);
832 1.90 drochner
833 1.90 drochner if (scannow)
834 1.90 drochner rescan_with_cfdata(cf);
835 1.90 drochner
836 1.90 drochner return (0);
837 1.90 drochner }
838 1.90 drochner
839 1.90 drochner /*
840 1.90 drochner * Helper for config_cfdata_detach: check whether a device is
841 1.90 drochner * found through any attachment in the config data table.
842 1.90 drochner */
843 1.90 drochner static int
844 1.90 drochner dev_in_cfdata(const struct device *d, const struct cfdata *cf)
845 1.90 drochner {
846 1.90 drochner const struct cfdata *cf1;
847 1.90 drochner
848 1.90 drochner for (cf1 = cf; cf1->cf_name; cf1++)
849 1.90 drochner if (d->dv_cfdata == cf1)
850 1.90 drochner return (1);
851 1.90 drochner
852 1.90 drochner return (0);
853 1.90 drochner }
854 1.90 drochner
855 1.90 drochner /*
856 1.90 drochner * Detach a supplemental config data table. Detach all devices found
857 1.90 drochner * through that table (and thus keeping references to it) before.
858 1.90 drochner */
859 1.90 drochner int
860 1.102 thorpej config_cfdata_detach(cfdata_t cf)
861 1.90 drochner {
862 1.102 thorpej device_t d;
863 1.136 dyoung int error = 0;
864 1.90 drochner struct cftable *ct;
865 1.136 dyoung deviter_t di;
866 1.90 drochner
867 1.136 dyoung for (d = deviter_first(&di, DEVITER_F_RW); d != NULL;
868 1.136 dyoung d = deviter_next(&di)) {
869 1.136 dyoung if (!dev_in_cfdata(d, cf))
870 1.136 dyoung continue;
871 1.136 dyoung if ((error = config_detach(d, 0)) != 0)
872 1.136 dyoung break;
873 1.136 dyoung }
874 1.136 dyoung deviter_release(&di);
875 1.136 dyoung if (error) {
876 1.136 dyoung aprint_error_dev(d, "unable to detach instance\n");
877 1.136 dyoung return error;
878 1.90 drochner }
879 1.90 drochner
880 1.90 drochner TAILQ_FOREACH(ct, &allcftables, ct_list) {
881 1.90 drochner if (ct->ct_cfdata == cf) {
882 1.90 drochner TAILQ_REMOVE(&allcftables, ct, ct_list);
883 1.159 matt kmem_free(ct, sizeof(*ct));
884 1.90 drochner return (0);
885 1.90 drochner }
886 1.90 drochner }
887 1.90 drochner
888 1.90 drochner /* not found -- shouldn't happen */
889 1.90 drochner return (EINVAL);
890 1.90 drochner }
891 1.90 drochner
892 1.90 drochner /*
893 1.68 thorpej * Invoke the "match" routine for a cfdata entry on behalf of
894 1.68 thorpej * an external caller, usually a "submatch" routine.
895 1.68 thorpej */
896 1.68 thorpej int
897 1.102 thorpej config_match(device_t parent, cfdata_t cf, void *aux)
898 1.68 thorpej {
899 1.76 thorpej struct cfattach *ca;
900 1.76 thorpej
901 1.76 thorpej ca = config_cfattach_lookup(cf->cf_name, cf->cf_atname);
902 1.76 thorpej if (ca == NULL) {
903 1.76 thorpej /* No attachment for this entry, oh well. */
904 1.76 thorpej return (0);
905 1.76 thorpej }
906 1.68 thorpej
907 1.76 thorpej return ((*ca->ca_match)(parent, cf, aux));
908 1.66 thorpej }
909 1.66 thorpej
910 1.66 thorpej /*
911 1.1 glass * Iterate over all potential children of some device, calling the given
912 1.1 glass * function (default being the child's match function) for each one.
913 1.1 glass * Nonzero returns are matches; the highest value returned is considered
914 1.1 glass * the best match. Return the `found child' if we got a match, or NULL
915 1.1 glass * otherwise. The `aux' pointer is simply passed on through.
916 1.1 glass *
917 1.1 glass * Note that this function is designed so that it can be used to apply
918 1.1 glass * an arbitrary function to all potential children (its return value
919 1.1 glass * can be ignored).
920 1.1 glass */
921 1.102 thorpej cfdata_t
922 1.102 thorpej config_search_loc(cfsubmatch_t fn, device_t parent,
923 1.99 drochner const char *ifattr, const int *locs, void *aux)
924 1.90 drochner {
925 1.90 drochner struct cftable *ct;
926 1.102 thorpej cfdata_t cf;
927 1.90 drochner struct matchinfo m;
928 1.90 drochner
929 1.90 drochner KASSERT(config_initialized);
930 1.96 drochner KASSERT(!ifattr || cfdriver_get_iattr(parent->dv_cfdriver, ifattr));
931 1.90 drochner
932 1.99 drochner m.fn = fn;
933 1.1 glass m.parent = parent;
934 1.99 drochner m.locs = locs;
935 1.25 cgd m.aux = aux;
936 1.14 mycroft m.match = NULL;
937 1.1 glass m.pri = 0;
938 1.65 thorpej
939 1.65 thorpej TAILQ_FOREACH(ct, &allcftables, ct_list) {
940 1.67 thorpej for (cf = ct->ct_cfdata; cf->cf_name; cf++) {
941 1.90 drochner
942 1.90 drochner /* We don't match root nodes here. */
943 1.90 drochner if (!cf->cf_pspec)
944 1.90 drochner continue;
945 1.90 drochner
946 1.65 thorpej /*
947 1.65 thorpej * Skip cf if no longer eligible, otherwise scan
948 1.65 thorpej * through parents for one matching `parent', and
949 1.65 thorpej * try match function.
950 1.65 thorpej */
951 1.65 thorpej if (cf->cf_fstate == FSTATE_FOUND)
952 1.65 thorpej continue;
953 1.65 thorpej if (cf->cf_fstate == FSTATE_DNOTFOUND ||
954 1.65 thorpej cf->cf_fstate == FSTATE_DSTAR)
955 1.65 thorpej continue;
956 1.90 drochner
957 1.90 drochner /*
958 1.90 drochner * If an interface attribute was specified,
959 1.90 drochner * consider only children which attach to
960 1.90 drochner * that attribute.
961 1.90 drochner */
962 1.90 drochner if (ifattr && !STREQ(ifattr, cf->cf_pspec->cfp_iattr))
963 1.90 drochner continue;
964 1.90 drochner
965 1.66 thorpej if (cfparent_match(parent, cf->cf_pspec))
966 1.66 thorpej mapply(&m, cf);
967 1.65 thorpej }
968 1.1 glass }
969 1.1 glass return (m.match);
970 1.1 glass }
971 1.1 glass
972 1.102 thorpej cfdata_t
973 1.102 thorpej config_search_ia(cfsubmatch_t fn, device_t parent, const char *ifattr,
974 1.102 thorpej void *aux)
975 1.102 thorpej {
976 1.102 thorpej
977 1.102 thorpej return (config_search_loc(fn, parent, ifattr, NULL, aux));
978 1.102 thorpej }
979 1.102 thorpej
980 1.16 mycroft /*
981 1.1 glass * Find the given root device.
982 1.1 glass * This is much like config_search, but there is no parent.
983 1.65 thorpej * Don't bother with multiple cfdata tables; the root node
984 1.65 thorpej * must always be in the initial table.
985 1.1 glass */
986 1.102 thorpej cfdata_t
987 1.95 drochner config_rootsearch(cfsubmatch_t fn, const char *rootname, void *aux)
988 1.1 glass {
989 1.102 thorpej cfdata_t cf;
990 1.84 matt const short *p;
991 1.1 glass struct matchinfo m;
992 1.1 glass
993 1.99 drochner m.fn = fn;
994 1.1 glass m.parent = ROOT;
995 1.25 cgd m.aux = aux;
996 1.14 mycroft m.match = NULL;
997 1.1 glass m.pri = 0;
998 1.114 christos m.locs = 0;
999 1.1 glass /*
1000 1.1 glass * Look at root entries for matching name. We do not bother
1001 1.1 glass * with found-state here since only one root should ever be
1002 1.1 glass * searched (and it must be done first).
1003 1.1 glass */
1004 1.1 glass for (p = cfroots; *p >= 0; p++) {
1005 1.1 glass cf = &cfdata[*p];
1006 1.67 thorpej if (strcmp(cf->cf_name, rootname) == 0)
1007 1.16 mycroft mapply(&m, cf);
1008 1.1 glass }
1009 1.1 glass return (m.match);
1010 1.1 glass }
1011 1.1 glass
1012 1.83 jdolecek static const char * const msgs[3] = { "", " not configured\n", " unsupported\n" };
1013 1.1 glass
1014 1.1 glass /*
1015 1.1 glass * The given `aux' argument describes a device that has been found
1016 1.1 glass * on the given parent, but not necessarily configured. Locate the
1017 1.18 cgd * configuration data for that device (using the submatch function
1018 1.18 cgd * provided, or using candidates' cd_match configuration driver
1019 1.18 cgd * functions) and attach it, and return true. If the device was
1020 1.1 glass * not configured, call the given `print' function and return 0.
1021 1.1 glass */
1022 1.102 thorpej device_t
1023 1.102 thorpej config_found_sm_loc(device_t parent,
1024 1.99 drochner const char *ifattr, const int *locs, void *aux,
1025 1.95 drochner cfprint_t print, cfsubmatch_t submatch)
1026 1.90 drochner {
1027 1.102 thorpej cfdata_t cf;
1028 1.90 drochner
1029 1.105 jmcneill #if defined(SPLASHSCREEN) && defined(SPLASHSCREEN_PROGRESS)
1030 1.105 jmcneill if (splash_progress_state)
1031 1.105 jmcneill splash_progress_update(splash_progress_state);
1032 1.105 jmcneill #endif
1033 1.105 jmcneill
1034 1.99 drochner if ((cf = config_search_loc(submatch, parent, ifattr, locs, aux)))
1035 1.99 drochner return(config_attach_loc(parent, cf, locs, aux, print));
1036 1.90 drochner if (print) {
1037 1.90 drochner if (config_do_twiddle)
1038 1.90 drochner twiddle();
1039 1.143 cegger aprint_normal("%s", msgs[(*print)(aux, device_xname(parent))]);
1040 1.90 drochner }
1041 1.105 jmcneill
1042 1.105 jmcneill #if defined(SPLASHSCREEN) && defined(SPLASHSCREEN_PROGRESS)
1043 1.105 jmcneill if (splash_progress_state)
1044 1.105 jmcneill splash_progress_update(splash_progress_state);
1045 1.105 jmcneill #endif
1046 1.105 jmcneill
1047 1.90 drochner return (NULL);
1048 1.90 drochner }
1049 1.90 drochner
1050 1.102 thorpej device_t
1051 1.102 thorpej config_found_ia(device_t parent, const char *ifattr, void *aux,
1052 1.102 thorpej cfprint_t print)
1053 1.102 thorpej {
1054 1.102 thorpej
1055 1.102 thorpej return (config_found_sm_loc(parent, ifattr, NULL, aux, print, NULL));
1056 1.102 thorpej }
1057 1.102 thorpej
1058 1.102 thorpej device_t
1059 1.102 thorpej config_found(device_t parent, void *aux, cfprint_t print)
1060 1.102 thorpej {
1061 1.102 thorpej
1062 1.102 thorpej return (config_found_sm_loc(parent, NULL, NULL, aux, print, NULL));
1063 1.102 thorpej }
1064 1.102 thorpej
1065 1.1 glass /*
1066 1.1 glass * As above, but for root devices.
1067 1.1 glass */
1068 1.102 thorpej device_t
1069 1.52 cgd config_rootfound(const char *rootname, void *aux)
1070 1.1 glass {
1071 1.102 thorpej cfdata_t cf;
1072 1.25 cgd
1073 1.95 drochner if ((cf = config_rootsearch((cfsubmatch_t)NULL, rootname, aux)) != NULL)
1074 1.25 cgd return (config_attach(ROOT, cf, aux, (cfprint_t)NULL));
1075 1.80 thorpej aprint_error("root device %s not configured\n", rootname);
1076 1.21 cgd return (NULL);
1077 1.1 glass }
1078 1.1 glass
1079 1.1 glass /* just like sprintf(buf, "%d") except that it works from the end */
1080 1.1 glass static char *
1081 1.51 cgd number(char *ep, int n)
1082 1.1 glass {
1083 1.1 glass
1084 1.1 glass *--ep = 0;
1085 1.1 glass while (n >= 10) {
1086 1.1 glass *--ep = (n % 10) + '0';
1087 1.1 glass n /= 10;
1088 1.1 glass }
1089 1.1 glass *--ep = n + '0';
1090 1.1 glass return (ep);
1091 1.1 glass }
1092 1.1 glass
1093 1.1 glass /*
1094 1.59 augustss * Expand the size of the cd_devs array if necessary.
1095 1.59 augustss */
1096 1.117 drochner static void
1097 1.59 augustss config_makeroom(int n, struct cfdriver *cd)
1098 1.59 augustss {
1099 1.59 augustss int old, new;
1100 1.156 drochner device_t *nsp;
1101 1.59 augustss
1102 1.59 augustss if (n < cd->cd_ndevs)
1103 1.59 augustss return;
1104 1.59 augustss
1105 1.59 augustss /*
1106 1.59 augustss * Need to expand the array.
1107 1.59 augustss */
1108 1.59 augustss old = cd->cd_ndevs;
1109 1.61 thorpej if (old == 0)
1110 1.115 chs new = 4;
1111 1.59 augustss else
1112 1.59 augustss new = old * 2;
1113 1.59 augustss while (new <= n)
1114 1.59 augustss new *= 2;
1115 1.59 augustss cd->cd_ndevs = new;
1116 1.166 ad nsp = kmem_alloc(sizeof(device_t [new]), KM_SLEEP);
1117 1.60 augustss if (nsp == NULL)
1118 1.59 augustss panic("config_attach: %sing dev array",
1119 1.59 augustss old != 0 ? "expand" : "creat");
1120 1.159 matt memset(nsp + old, 0, sizeof(device_t [new - old]));
1121 1.61 thorpej if (old != 0) {
1122 1.159 matt memcpy(nsp, cd->cd_devs, sizeof(device_t [old]));
1123 1.159 matt kmem_free(cd->cd_devs, sizeof(device_t [old]));
1124 1.59 augustss }
1125 1.59 augustss cd->cd_devs = nsp;
1126 1.59 augustss }
1127 1.59 augustss
1128 1.117 drochner static void
1129 1.117 drochner config_devlink(device_t dev)
1130 1.117 drochner {
1131 1.117 drochner struct cfdriver *cd = dev->dv_cfdriver;
1132 1.117 drochner
1133 1.117 drochner /* put this device in the devices array */
1134 1.117 drochner config_makeroom(dev->dv_unit, cd);
1135 1.117 drochner if (cd->cd_devs[dev->dv_unit])
1136 1.143 cegger panic("config_attach: duplicate %s", device_xname(dev));
1137 1.117 drochner cd->cd_devs[dev->dv_unit] = dev;
1138 1.117 drochner
1139 1.136 dyoung /* It is safe to add a device to the tail of the list while
1140 1.136 dyoung * readers are in the list, but not while a writer is in
1141 1.136 dyoung * the list. Wait for any writer to complete.
1142 1.136 dyoung */
1143 1.136 dyoung mutex_enter(&alldevs_mtx);
1144 1.136 dyoung while (alldevs_nwrite != 0 && alldevs_writer != curlwp)
1145 1.136 dyoung cv_wait(&alldevs_cv, &alldevs_mtx);
1146 1.117 drochner TAILQ_INSERT_TAIL(&alldevs, dev, dv_list); /* link up */
1147 1.136 dyoung cv_signal(&alldevs_cv);
1148 1.136 dyoung mutex_exit(&alldevs_mtx);
1149 1.117 drochner }
1150 1.117 drochner
1151 1.117 drochner static void
1152 1.117 drochner config_devunlink(device_t dev)
1153 1.117 drochner {
1154 1.117 drochner struct cfdriver *cd = dev->dv_cfdriver;
1155 1.117 drochner int i;
1156 1.117 drochner
1157 1.117 drochner /* Unlink from device list. */
1158 1.117 drochner TAILQ_REMOVE(&alldevs, dev, dv_list);
1159 1.117 drochner
1160 1.117 drochner /* Remove from cfdriver's array. */
1161 1.117 drochner cd->cd_devs[dev->dv_unit] = NULL;
1162 1.117 drochner
1163 1.117 drochner /*
1164 1.117 drochner * If the device now has no units in use, deallocate its softc array.
1165 1.117 drochner */
1166 1.159 matt for (i = 0; i < cd->cd_ndevs; i++) {
1167 1.117 drochner if (cd->cd_devs[i] != NULL)
1168 1.159 matt return;
1169 1.117 drochner }
1170 1.159 matt /* nothing found; deallocate */
1171 1.159 matt kmem_free(cd->cd_devs, sizeof(device_t [cd->cd_ndevs]));
1172 1.159 matt cd->cd_devs = NULL;
1173 1.159 matt cd->cd_ndevs = 0;
1174 1.117 drochner }
1175 1.117 drochner
1176 1.117 drochner static device_t
1177 1.117 drochner config_devalloc(const device_t parent, const cfdata_t cf, const int *locs)
1178 1.25 cgd {
1179 1.50 augustss struct cfdriver *cd;
1180 1.76 thorpej struct cfattach *ca;
1181 1.50 augustss size_t lname, lunit;
1182 1.52 cgd const char *xunit;
1183 1.25 cgd int myunit;
1184 1.25 cgd char num[10];
1185 1.117 drochner device_t dev;
1186 1.120 joerg void *dev_private;
1187 1.96 drochner const struct cfiattrdata *ia;
1188 1.25 cgd
1189 1.67 thorpej cd = config_cfdriver_lookup(cf->cf_name);
1190 1.117 drochner if (cd == NULL)
1191 1.117 drochner return (NULL);
1192 1.76 thorpej
1193 1.76 thorpej ca = config_cfattach_lookup_cd(cd, cf->cf_atname);
1194 1.117 drochner if (ca == NULL)
1195 1.117 drochner return (NULL);
1196 1.76 thorpej
1197 1.120 joerg if ((ca->ca_flags & DVF_PRIV_ALLOC) == 0 &&
1198 1.120 joerg ca->ca_devsize < sizeof(struct device))
1199 1.140 matt panic("config_devalloc: %s", cf->cf_atname);
1200 1.66 thorpej
1201 1.46 cgd #ifndef __BROKEN_CONFIG_UNIT_USAGE
1202 1.45 cgd if (cf->cf_fstate == FSTATE_STAR) {
1203 1.45 cgd for (myunit = cf->cf_unit; myunit < cd->cd_ndevs; myunit++)
1204 1.45 cgd if (cd->cd_devs[myunit] == NULL)
1205 1.45 cgd break;
1206 1.45 cgd /*
1207 1.45 cgd * myunit is now the unit of the first NULL device pointer,
1208 1.45 cgd * or max(cd->cd_ndevs,cf->cf_unit).
1209 1.45 cgd */
1210 1.45 cgd } else {
1211 1.45 cgd myunit = cf->cf_unit;
1212 1.117 drochner if (myunit < cd->cd_ndevs && cd->cd_devs[myunit] != NULL)
1213 1.117 drochner return (NULL);
1214 1.117 drochner }
1215 1.66 thorpej #else
1216 1.46 cgd myunit = cf->cf_unit;
1217 1.66 thorpej #endif /* ! __BROKEN_CONFIG_UNIT_USAGE */
1218 1.25 cgd
1219 1.25 cgd /* compute length of name and decimal expansion of unit number */
1220 1.25 cgd lname = strlen(cd->cd_name);
1221 1.30 perry xunit = number(&num[sizeof(num)], myunit);
1222 1.30 perry lunit = &num[sizeof(num)] - xunit;
1223 1.64 drochner if (lname + lunit > sizeof(dev->dv_xname))
1224 1.117 drochner panic("config_devalloc: device name too long");
1225 1.25 cgd
1226 1.25 cgd /* get memory for all device vars */
1227 1.132 matt KASSERT((ca->ca_flags & DVF_PRIV_ALLOC) || ca->ca_devsize >= sizeof(struct device));
1228 1.132 matt if (ca->ca_devsize > 0) {
1229 1.166 ad dev_private = kmem_zalloc(ca->ca_devsize, KM_SLEEP);
1230 1.132 matt if (dev_private == NULL)
1231 1.132 matt panic("config_devalloc: memory allocation for device softc failed");
1232 1.132 matt } else {
1233 1.132 matt KASSERT(ca->ca_flags & DVF_PRIV_ALLOC);
1234 1.132 matt dev_private = NULL;
1235 1.132 matt }
1236 1.120 joerg
1237 1.120 joerg if ((ca->ca_flags & DVF_PRIV_ALLOC) != 0) {
1238 1.166 ad dev = kmem_zalloc(sizeof(*dev), KM_SLEEP);
1239 1.120 joerg } else {
1240 1.120 joerg dev = dev_private;
1241 1.120 joerg }
1242 1.120 joerg if (dev == NULL)
1243 1.120 joerg panic("config_devalloc: memory allocation for device_t failed");
1244 1.124 jmcneill
1245 1.25 cgd dev->dv_class = cd->cd_class;
1246 1.25 cgd dev->dv_cfdata = cf;
1247 1.76 thorpej dev->dv_cfdriver = cd;
1248 1.76 thorpej dev->dv_cfattach = ca;
1249 1.25 cgd dev->dv_unit = myunit;
1250 1.124 jmcneill dev->dv_activity_count = 0;
1251 1.124 jmcneill dev->dv_activity_handlers = NULL;
1252 1.120 joerg dev->dv_private = dev_private;
1253 1.31 perry memcpy(dev->dv_xname, cd->cd_name, lname);
1254 1.31 perry memcpy(dev->dv_xname + lname, xunit, lunit);
1255 1.25 cgd dev->dv_parent = parent;
1256 1.124 jmcneill if (parent != NULL)
1257 1.124 jmcneill dev->dv_depth = parent->dv_depth + 1;
1258 1.124 jmcneill else
1259 1.124 jmcneill dev->dv_depth = 0;
1260 1.33 thorpej dev->dv_flags = DVF_ACTIVE; /* always initially active */
1261 1.120 joerg dev->dv_flags |= ca->ca_flags; /* inherit flags from class */
1262 1.97 drochner if (locs) {
1263 1.96 drochner KASSERT(parent); /* no locators at root */
1264 1.96 drochner ia = cfiattr_lookup(cf->cf_pspec->cfp_iattr,
1265 1.96 drochner parent->dv_cfdriver);
1266 1.159 matt dev->dv_locators =
1267 1.166 ad kmem_alloc(sizeof(int [ia->ci_loclen + 1]), KM_SLEEP);
1268 1.159 matt *dev->dv_locators++ = sizeof(int [ia->ci_loclen + 1]);
1269 1.159 matt memcpy(dev->dv_locators, locs, sizeof(int [ia->ci_loclen]));
1270 1.90 drochner }
1271 1.112 thorpej dev->dv_properties = prop_dictionary_create();
1272 1.112 thorpej KASSERT(dev->dv_properties != NULL);
1273 1.29 thorpej
1274 1.150 jmcneill prop_dictionary_set_cstring_nocopy(dev->dv_properties,
1275 1.150 jmcneill "device-driver", dev->dv_cfdriver->cd_name);
1276 1.150 jmcneill prop_dictionary_set_uint16(dev->dv_properties,
1277 1.150 jmcneill "device-unit", dev->dv_unit);
1278 1.150 jmcneill
1279 1.117 drochner return (dev);
1280 1.117 drochner }
1281 1.117 drochner
1282 1.117 drochner static void
1283 1.117 drochner config_devdealloc(device_t dev)
1284 1.117 drochner {
1285 1.162 drochner int priv = (dev->dv_flags & DVF_PRIV_ALLOC);
1286 1.117 drochner
1287 1.117 drochner KASSERT(dev->dv_properties != NULL);
1288 1.117 drochner prop_object_release(dev->dv_properties);
1289 1.117 drochner
1290 1.124 jmcneill if (dev->dv_activity_handlers)
1291 1.124 jmcneill panic("config_devdealloc with registered handlers");
1292 1.124 jmcneill
1293 1.159 matt if (dev->dv_locators) {
1294 1.159 matt size_t amount = *--dev->dv_locators;
1295 1.159 matt kmem_free(dev->dv_locators, amount);
1296 1.159 matt }
1297 1.117 drochner
1298 1.162 drochner if (dev->dv_cfattach->ca_devsize > 0)
1299 1.159 matt kmem_free(dev->dv_private, dev->dv_cfattach->ca_devsize);
1300 1.162 drochner if (priv)
1301 1.162 drochner kmem_free(dev, sizeof(*dev));
1302 1.117 drochner }
1303 1.117 drochner
1304 1.117 drochner /*
1305 1.117 drochner * Attach a found device.
1306 1.117 drochner */
1307 1.117 drochner device_t
1308 1.117 drochner config_attach_loc(device_t parent, cfdata_t cf,
1309 1.117 drochner const int *locs, void *aux, cfprint_t print)
1310 1.117 drochner {
1311 1.117 drochner device_t dev;
1312 1.117 drochner struct cftable *ct;
1313 1.117 drochner const char *drvname;
1314 1.117 drochner
1315 1.117 drochner #if defined(SPLASHSCREEN) && defined(SPLASHSCREEN_PROGRESS)
1316 1.117 drochner if (splash_progress_state)
1317 1.117 drochner splash_progress_update(splash_progress_state);
1318 1.117 drochner #endif
1319 1.117 drochner
1320 1.117 drochner dev = config_devalloc(parent, cf, locs);
1321 1.117 drochner if (!dev)
1322 1.117 drochner panic("config_attach: allocation of device softc failed");
1323 1.117 drochner
1324 1.117 drochner /* XXX redundant - see below? */
1325 1.117 drochner if (cf->cf_fstate != FSTATE_STAR) {
1326 1.117 drochner KASSERT(cf->cf_fstate == FSTATE_NOTFOUND);
1327 1.117 drochner cf->cf_fstate = FSTATE_FOUND;
1328 1.117 drochner }
1329 1.117 drochner #ifdef __BROKEN_CONFIG_UNIT_USAGE
1330 1.117 drochner else
1331 1.117 drochner cf->cf_unit++;
1332 1.117 drochner #endif
1333 1.117 drochner
1334 1.117 drochner config_devlink(dev);
1335 1.117 drochner
1336 1.80 thorpej if (config_do_twiddle)
1337 1.80 thorpej twiddle();
1338 1.80 thorpej else
1339 1.80 thorpej aprint_naive("Found ");
1340 1.80 thorpej /*
1341 1.80 thorpej * We want the next two printfs for normal, verbose, and quiet,
1342 1.80 thorpej * but not silent (in which case, we're twiddling, instead).
1343 1.80 thorpej */
1344 1.80 thorpej if (parent == ROOT) {
1345 1.143 cegger aprint_naive("%s (root)", device_xname(dev));
1346 1.143 cegger aprint_normal("%s (root)", device_xname(dev));
1347 1.80 thorpej } else {
1348 1.143 cegger aprint_naive("%s at %s", device_xname(dev), device_xname(parent));
1349 1.143 cegger aprint_normal("%s at %s", device_xname(dev), device_xname(parent));
1350 1.25 cgd if (print)
1351 1.52 cgd (void) (*print)(aux, NULL);
1352 1.25 cgd }
1353 1.25 cgd
1354 1.25 cgd /*
1355 1.25 cgd * Before attaching, clobber any unfound devices that are
1356 1.45 cgd * otherwise identical.
1357 1.117 drochner * XXX code above is redundant?
1358 1.25 cgd */
1359 1.117 drochner drvname = dev->dv_cfdriver->cd_name;
1360 1.65 thorpej TAILQ_FOREACH(ct, &allcftables, ct_list) {
1361 1.67 thorpej for (cf = ct->ct_cfdata; cf->cf_name; cf++) {
1362 1.117 drochner if (STREQ(cf->cf_name, drvname) &&
1363 1.65 thorpej cf->cf_unit == dev->dv_unit) {
1364 1.65 thorpej if (cf->cf_fstate == FSTATE_NOTFOUND)
1365 1.65 thorpej cf->cf_fstate = FSTATE_FOUND;
1366 1.46 cgd #ifdef __BROKEN_CONFIG_UNIT_USAGE
1367 1.66 thorpej /*
1368 1.66 thorpej * Bump the unit number on all starred cfdata
1369 1.66 thorpej * entries for this device.
1370 1.66 thorpej */
1371 1.65 thorpej if (cf->cf_fstate == FSTATE_STAR)
1372 1.65 thorpej cf->cf_unit++;
1373 1.46 cgd #endif /* __BROKEN_CONFIG_UNIT_USAGE */
1374 1.65 thorpej }
1375 1.25 cgd }
1376 1.65 thorpej }
1377 1.49 danw #ifdef __HAVE_DEVICE_REGISTER
1378 1.25 cgd device_register(dev, aux);
1379 1.25 cgd #endif
1380 1.124 jmcneill
1381 1.149 jmcneill /* Let userland know */
1382 1.149 jmcneill devmon_report_device(dev, true);
1383 1.149 jmcneill
1384 1.105 jmcneill #if defined(SPLASHSCREEN) && defined(SPLASHSCREEN_PROGRESS)
1385 1.105 jmcneill if (splash_progress_state)
1386 1.105 jmcneill splash_progress_update(splash_progress_state);
1387 1.105 jmcneill #endif
1388 1.117 drochner (*dev->dv_cfattach->ca_attach)(parent, dev, aux);
1389 1.105 jmcneill #if defined(SPLASHSCREEN) && defined(SPLASHSCREEN_PROGRESS)
1390 1.105 jmcneill if (splash_progress_state)
1391 1.105 jmcneill splash_progress_update(splash_progress_state);
1392 1.105 jmcneill #endif
1393 1.124 jmcneill
1394 1.124 jmcneill if (!device_pmf_is_registered(dev))
1395 1.125 jmcneill aprint_debug_dev(dev, "WARNING: power management not supported\n");
1396 1.124 jmcneill
1397 1.42 thorpej config_process_deferred(&deferred_config_queue, dev);
1398 1.25 cgd return (dev);
1399 1.25 cgd }
1400 1.29 thorpej
1401 1.102 thorpej device_t
1402 1.102 thorpej config_attach(device_t parent, cfdata_t cf, void *aux, cfprint_t print)
1403 1.102 thorpej {
1404 1.102 thorpej
1405 1.102 thorpej return (config_attach_loc(parent, cf, NULL, aux, print));
1406 1.102 thorpej }
1407 1.102 thorpej
1408 1.29 thorpej /*
1409 1.77 thorpej * As above, but for pseudo-devices. Pseudo-devices attached in this
1410 1.77 thorpej * way are silently inserted into the device tree, and their children
1411 1.77 thorpej * attached.
1412 1.77 thorpej *
1413 1.77 thorpej * Note that because pseudo-devices are attached silently, any information
1414 1.77 thorpej * the attach routine wishes to print should be prefixed with the device
1415 1.77 thorpej * name by the attach routine.
1416 1.77 thorpej */
1417 1.102 thorpej device_t
1418 1.102 thorpej config_attach_pseudo(cfdata_t cf)
1419 1.77 thorpej {
1420 1.102 thorpej device_t dev;
1421 1.77 thorpej
1422 1.117 drochner dev = config_devalloc(ROOT, cf, NULL);
1423 1.117 drochner if (!dev)
1424 1.77 thorpej return (NULL);
1425 1.77 thorpej
1426 1.117 drochner /* XXX mark busy in cfdata */
1427 1.77 thorpej
1428 1.117 drochner config_devlink(dev);
1429 1.77 thorpej
1430 1.77 thorpej #if 0 /* XXXJRT not yet */
1431 1.77 thorpej #ifdef __HAVE_DEVICE_REGISTER
1432 1.77 thorpej device_register(dev, NULL); /* like a root node */
1433 1.77 thorpej #endif
1434 1.77 thorpej #endif
1435 1.117 drochner (*dev->dv_cfattach->ca_attach)(ROOT, dev, NULL);
1436 1.77 thorpej config_process_deferred(&deferred_config_queue, dev);
1437 1.77 thorpej return (dev);
1438 1.77 thorpej }
1439 1.77 thorpej
1440 1.77 thorpej /*
1441 1.33 thorpej * Detach a device. Optionally forced (e.g. because of hardware
1442 1.33 thorpej * removal) and quiet. Returns zero if successful, non-zero
1443 1.33 thorpej * (an error code) otherwise.
1444 1.33 thorpej *
1445 1.33 thorpej * Note that this code wants to be run from a process context, so
1446 1.33 thorpej * that the detach can sleep to allow processes which have a device
1447 1.33 thorpej * open to run and unwind their stacks.
1448 1.33 thorpej */
1449 1.33 thorpej int
1450 1.102 thorpej config_detach(device_t dev, int flags)
1451 1.33 thorpej {
1452 1.65 thorpej struct cftable *ct;
1453 1.102 thorpej cfdata_t cf;
1454 1.73 thorpej const struct cfattach *ca;
1455 1.33 thorpej struct cfdriver *cd;
1456 1.33 thorpej #ifdef DIAGNOSTIC
1457 1.102 thorpej device_t d;
1458 1.33 thorpej #endif
1459 1.117 drochner int rv = 0;
1460 1.33 thorpej
1461 1.33 thorpej #ifdef DIAGNOSTIC
1462 1.161 christos cf = dev->dv_cfdata;
1463 1.161 christos if (cf != NULL && cf->cf_fstate != FSTATE_FOUND &&
1464 1.161 christos cf->cf_fstate != FSTATE_STAR)
1465 1.161 christos panic("config_detach: %s: bad device fstate %d",
1466 1.161 christos device_xname(dev), cf ? cf->cf_fstate : -1);
1467 1.33 thorpej #endif
1468 1.77 thorpej cd = dev->dv_cfdriver;
1469 1.67 thorpej KASSERT(cd != NULL);
1470 1.76 thorpej
1471 1.77 thorpej ca = dev->dv_cfattach;
1472 1.76 thorpej KASSERT(ca != NULL);
1473 1.33 thorpej
1474 1.136 dyoung KASSERT(curlwp != NULL);
1475 1.136 dyoung mutex_enter(&alldevs_mtx);
1476 1.136 dyoung if (alldevs_nwrite > 0 && alldevs_writer == NULL)
1477 1.136 dyoung ;
1478 1.136 dyoung else while (alldevs_nread != 0 ||
1479 1.136 dyoung (alldevs_nwrite != 0 && alldevs_writer != curlwp))
1480 1.136 dyoung cv_wait(&alldevs_cv, &alldevs_mtx);
1481 1.136 dyoung if (alldevs_nwrite++ == 0)
1482 1.136 dyoung alldevs_writer = curlwp;
1483 1.136 dyoung mutex_exit(&alldevs_mtx);
1484 1.136 dyoung
1485 1.33 thorpej /*
1486 1.33 thorpej * Ensure the device is deactivated. If the device doesn't
1487 1.33 thorpej * have an activation entry point, we allow DVF_ACTIVE to
1488 1.33 thorpej * remain set. Otherwise, if DVF_ACTIVE is still set, the
1489 1.33 thorpej * device is busy, and the detach fails.
1490 1.33 thorpej */
1491 1.35 thorpej if (ca->ca_activate != NULL)
1492 1.35 thorpej rv = config_deactivate(dev);
1493 1.33 thorpej
1494 1.33 thorpej /*
1495 1.33 thorpej * Try to detach the device. If that's not possible, then
1496 1.33 thorpej * we either panic() (for the forced but failed case), or
1497 1.33 thorpej * return an error.
1498 1.33 thorpej */
1499 1.33 thorpej if (rv == 0) {
1500 1.33 thorpej if (ca->ca_detach != NULL)
1501 1.33 thorpej rv = (*ca->ca_detach)(dev, flags);
1502 1.33 thorpej else
1503 1.33 thorpej rv = EOPNOTSUPP;
1504 1.33 thorpej }
1505 1.33 thorpej if (rv != 0) {
1506 1.33 thorpej if ((flags & DETACH_FORCE) == 0)
1507 1.136 dyoung goto out;
1508 1.33 thorpej else
1509 1.33 thorpej panic("config_detach: forced detach of %s failed (%d)",
1510 1.143 cegger device_xname(dev), rv);
1511 1.33 thorpej }
1512 1.33 thorpej
1513 1.33 thorpej /*
1514 1.33 thorpej * The device has now been successfully detached.
1515 1.33 thorpej */
1516 1.33 thorpej
1517 1.149 jmcneill /* Let userland know */
1518 1.149 jmcneill devmon_report_device(dev, false);
1519 1.149 jmcneill
1520 1.33 thorpej #ifdef DIAGNOSTIC
1521 1.33 thorpej /*
1522 1.33 thorpej * Sanity: If you're successfully detached, you should have no
1523 1.33 thorpej * children. (Note that because children must be attached
1524 1.33 thorpej * after parents, we only need to search the latter part of
1525 1.33 thorpej * the list.)
1526 1.33 thorpej */
1527 1.33 thorpej for (d = TAILQ_NEXT(dev, dv_list); d != NULL;
1528 1.48 enami d = TAILQ_NEXT(d, dv_list)) {
1529 1.48 enami if (d->dv_parent == dev) {
1530 1.48 enami printf("config_detach: detached device %s"
1531 1.143 cegger " has children %s\n", device_xname(dev), device_xname(d));
1532 1.48 enami panic("config_detach");
1533 1.48 enami }
1534 1.33 thorpej }
1535 1.33 thorpej #endif
1536 1.33 thorpej
1537 1.90 drochner /* notify the parent that the child is gone */
1538 1.90 drochner if (dev->dv_parent) {
1539 1.102 thorpej device_t p = dev->dv_parent;
1540 1.90 drochner if (p->dv_cfattach->ca_childdetached)
1541 1.90 drochner (*p->dv_cfattach->ca_childdetached)(p, dev);
1542 1.90 drochner }
1543 1.90 drochner
1544 1.33 thorpej /*
1545 1.33 thorpej * Mark cfdata to show that the unit can be reused, if possible.
1546 1.33 thorpej */
1547 1.65 thorpej TAILQ_FOREACH(ct, &allcftables, ct_list) {
1548 1.67 thorpej for (cf = ct->ct_cfdata; cf->cf_name; cf++) {
1549 1.67 thorpej if (STREQ(cf->cf_name, cd->cd_name)) {
1550 1.65 thorpej if (cf->cf_fstate == FSTATE_FOUND &&
1551 1.65 thorpej cf->cf_unit == dev->dv_unit)
1552 1.65 thorpej cf->cf_fstate = FSTATE_NOTFOUND;
1553 1.46 cgd #ifdef __BROKEN_CONFIG_UNIT_USAGE
1554 1.66 thorpej /*
1555 1.66 thorpej * Note that we can only re-use a starred
1556 1.66 thorpej * unit number if the unit being detached
1557 1.66 thorpej * had the last assigned unit number.
1558 1.66 thorpej */
1559 1.65 thorpej if (cf->cf_fstate == FSTATE_STAR &&
1560 1.65 thorpej cf->cf_unit == dev->dv_unit + 1)
1561 1.65 thorpej cf->cf_unit--;
1562 1.46 cgd #endif /* __BROKEN_CONFIG_UNIT_USAGE */
1563 1.65 thorpej }
1564 1.33 thorpej }
1565 1.33 thorpej }
1566 1.33 thorpej
1567 1.117 drochner config_devunlink(dev);
1568 1.33 thorpej
1569 1.77 thorpej if (dev->dv_cfdata != NULL && (flags & DETACH_QUIET) == 0)
1570 1.136 dyoung aprint_normal_dev(dev, "detached\n");
1571 1.33 thorpej
1572 1.117 drochner config_devdealloc(dev);
1573 1.33 thorpej
1574 1.136 dyoung out:
1575 1.136 dyoung mutex_enter(&alldevs_mtx);
1576 1.136 dyoung if (--alldevs_nwrite == 0)
1577 1.136 dyoung alldevs_writer = NULL;
1578 1.136 dyoung cv_signal(&alldevs_cv);
1579 1.136 dyoung mutex_exit(&alldevs_mtx);
1580 1.136 dyoung return rv;
1581 1.33 thorpej }
1582 1.33 thorpej
1583 1.126 dyoung int
1584 1.126 dyoung config_detach_children(device_t parent, int flags)
1585 1.126 dyoung {
1586 1.130 drochner device_t dv;
1587 1.136 dyoung deviter_t di;
1588 1.136 dyoung int error = 0;
1589 1.126 dyoung
1590 1.136 dyoung for (dv = deviter_first(&di, DEVITER_F_RW); dv != NULL;
1591 1.136 dyoung dv = deviter_next(&di)) {
1592 1.136 dyoung if (device_parent(dv) != parent)
1593 1.136 dyoung continue;
1594 1.136 dyoung if ((error = config_detach(dv, flags)) != 0)
1595 1.130 drochner break;
1596 1.136 dyoung }
1597 1.136 dyoung deviter_release(&di);
1598 1.130 drochner return error;
1599 1.126 dyoung }
1600 1.126 dyoung
1601 1.33 thorpej int
1602 1.102 thorpej config_activate(device_t dev)
1603 1.33 thorpej {
1604 1.76 thorpej const struct cfattach *ca = dev->dv_cfattach;
1605 1.34 thorpej int rv = 0, oflags = dev->dv_flags;
1606 1.33 thorpej
1607 1.33 thorpej if (ca->ca_activate == NULL)
1608 1.33 thorpej return (EOPNOTSUPP);
1609 1.33 thorpej
1610 1.33 thorpej if ((dev->dv_flags & DVF_ACTIVE) == 0) {
1611 1.33 thorpej dev->dv_flags |= DVF_ACTIVE;
1612 1.33 thorpej rv = (*ca->ca_activate)(dev, DVACT_ACTIVATE);
1613 1.34 thorpej if (rv)
1614 1.34 thorpej dev->dv_flags = oflags;
1615 1.33 thorpej }
1616 1.33 thorpej return (rv);
1617 1.33 thorpej }
1618 1.33 thorpej
1619 1.33 thorpej int
1620 1.102 thorpej config_deactivate(device_t dev)
1621 1.33 thorpej {
1622 1.76 thorpej const struct cfattach *ca = dev->dv_cfattach;
1623 1.34 thorpej int rv = 0, oflags = dev->dv_flags;
1624 1.33 thorpej
1625 1.33 thorpej if (ca->ca_activate == NULL)
1626 1.33 thorpej return (EOPNOTSUPP);
1627 1.33 thorpej
1628 1.33 thorpej if (dev->dv_flags & DVF_ACTIVE) {
1629 1.33 thorpej dev->dv_flags &= ~DVF_ACTIVE;
1630 1.33 thorpej rv = (*ca->ca_activate)(dev, DVACT_DEACTIVATE);
1631 1.34 thorpej if (rv)
1632 1.34 thorpej dev->dv_flags = oflags;
1633 1.33 thorpej }
1634 1.33 thorpej return (rv);
1635 1.33 thorpej }
1636 1.33 thorpej
1637 1.33 thorpej /*
1638 1.29 thorpej * Defer the configuration of the specified device until all
1639 1.29 thorpej * of its parent's devices have been attached.
1640 1.29 thorpej */
1641 1.29 thorpej void
1642 1.102 thorpej config_defer(device_t dev, void (*func)(device_t))
1643 1.29 thorpej {
1644 1.29 thorpej struct deferred_config *dc;
1645 1.29 thorpej
1646 1.29 thorpej if (dev->dv_parent == NULL)
1647 1.29 thorpej panic("config_defer: can't defer config of a root device");
1648 1.29 thorpej
1649 1.29 thorpej #ifdef DIAGNOSTIC
1650 1.29 thorpej for (dc = TAILQ_FIRST(&deferred_config_queue); dc != NULL;
1651 1.29 thorpej dc = TAILQ_NEXT(dc, dc_queue)) {
1652 1.29 thorpej if (dc->dc_dev == dev)
1653 1.29 thorpej panic("config_defer: deferred twice");
1654 1.29 thorpej }
1655 1.29 thorpej #endif
1656 1.29 thorpej
1657 1.166 ad dc = kmem_alloc(sizeof(*dc), KM_SLEEP);
1658 1.43 thorpej if (dc == NULL)
1659 1.43 thorpej panic("config_defer: unable to allocate callback");
1660 1.29 thorpej
1661 1.29 thorpej dc->dc_dev = dev;
1662 1.29 thorpej dc->dc_func = func;
1663 1.29 thorpej TAILQ_INSERT_TAIL(&deferred_config_queue, dc, dc_queue);
1664 1.47 thorpej config_pending_incr();
1665 1.29 thorpej }
1666 1.29 thorpej
1667 1.29 thorpej /*
1668 1.42 thorpej * Defer some autoconfiguration for a device until after interrupts
1669 1.42 thorpej * are enabled.
1670 1.42 thorpej */
1671 1.42 thorpej void
1672 1.102 thorpej config_interrupts(device_t dev, void (*func)(device_t))
1673 1.42 thorpej {
1674 1.42 thorpej struct deferred_config *dc;
1675 1.42 thorpej
1676 1.42 thorpej /*
1677 1.42 thorpej * If interrupts are enabled, callback now.
1678 1.42 thorpej */
1679 1.43 thorpej if (cold == 0) {
1680 1.42 thorpej (*func)(dev);
1681 1.42 thorpej return;
1682 1.42 thorpej }
1683 1.42 thorpej
1684 1.42 thorpej #ifdef DIAGNOSTIC
1685 1.42 thorpej for (dc = TAILQ_FIRST(&interrupt_config_queue); dc != NULL;
1686 1.42 thorpej dc = TAILQ_NEXT(dc, dc_queue)) {
1687 1.42 thorpej if (dc->dc_dev == dev)
1688 1.42 thorpej panic("config_interrupts: deferred twice");
1689 1.42 thorpej }
1690 1.42 thorpej #endif
1691 1.42 thorpej
1692 1.166 ad dc = kmem_alloc(sizeof(*dc), KM_SLEEP);
1693 1.43 thorpej if (dc == NULL)
1694 1.43 thorpej panic("config_interrupts: unable to allocate callback");
1695 1.42 thorpej
1696 1.42 thorpej dc->dc_dev = dev;
1697 1.42 thorpej dc->dc_func = func;
1698 1.42 thorpej TAILQ_INSERT_TAIL(&interrupt_config_queue, dc, dc_queue);
1699 1.47 thorpej config_pending_incr();
1700 1.42 thorpej }
1701 1.42 thorpej
1702 1.42 thorpej /*
1703 1.42 thorpej * Process a deferred configuration queue.
1704 1.29 thorpej */
1705 1.29 thorpej static void
1706 1.51 cgd config_process_deferred(struct deferred_config_head *queue,
1707 1.102 thorpej device_t parent)
1708 1.29 thorpej {
1709 1.29 thorpej struct deferred_config *dc, *ndc;
1710 1.29 thorpej
1711 1.42 thorpej for (dc = TAILQ_FIRST(queue); dc != NULL; dc = ndc) {
1712 1.29 thorpej ndc = TAILQ_NEXT(dc, dc_queue);
1713 1.42 thorpej if (parent == NULL || dc->dc_dev->dv_parent == parent) {
1714 1.42 thorpej TAILQ_REMOVE(queue, dc, dc_queue);
1715 1.29 thorpej (*dc->dc_func)(dc->dc_dev);
1716 1.159 matt kmem_free(dc, sizeof(*dc));
1717 1.47 thorpej config_pending_decr();
1718 1.29 thorpej }
1719 1.29 thorpej }
1720 1.47 thorpej }
1721 1.47 thorpej
1722 1.47 thorpej /*
1723 1.47 thorpej * Manipulate the config_pending semaphore.
1724 1.47 thorpej */
1725 1.47 thorpej void
1726 1.51 cgd config_pending_incr(void)
1727 1.47 thorpej {
1728 1.47 thorpej
1729 1.151 ad mutex_enter(&config_misc_lock);
1730 1.47 thorpej config_pending++;
1731 1.151 ad mutex_exit(&config_misc_lock);
1732 1.47 thorpej }
1733 1.47 thorpej
1734 1.47 thorpej void
1735 1.51 cgd config_pending_decr(void)
1736 1.47 thorpej {
1737 1.47 thorpej
1738 1.47 thorpej #ifdef DIAGNOSTIC
1739 1.47 thorpej if (config_pending == 0)
1740 1.47 thorpej panic("config_pending_decr: config_pending == 0");
1741 1.47 thorpej #endif
1742 1.151 ad mutex_enter(&config_misc_lock);
1743 1.47 thorpej config_pending--;
1744 1.47 thorpej if (config_pending == 0)
1745 1.151 ad cv_broadcast(&config_misc_cv);
1746 1.151 ad mutex_exit(&config_misc_lock);
1747 1.75 thorpej }
1748 1.75 thorpej
1749 1.75 thorpej /*
1750 1.75 thorpej * Register a "finalization" routine. Finalization routines are
1751 1.75 thorpej * called iteratively once all real devices have been found during
1752 1.75 thorpej * autoconfiguration, for as long as any one finalizer has done
1753 1.75 thorpej * any work.
1754 1.75 thorpej */
1755 1.75 thorpej int
1756 1.102 thorpej config_finalize_register(device_t dev, int (*fn)(device_t))
1757 1.75 thorpej {
1758 1.75 thorpej struct finalize_hook *f;
1759 1.75 thorpej
1760 1.75 thorpej /*
1761 1.75 thorpej * If finalization has already been done, invoke the
1762 1.75 thorpej * callback function now.
1763 1.75 thorpej */
1764 1.75 thorpej if (config_finalize_done) {
1765 1.75 thorpej while ((*fn)(dev) != 0)
1766 1.75 thorpej /* loop */ ;
1767 1.75 thorpej }
1768 1.75 thorpej
1769 1.75 thorpej /* Ensure this isn't already on the list. */
1770 1.75 thorpej TAILQ_FOREACH(f, &config_finalize_list, f_list) {
1771 1.75 thorpej if (f->f_func == fn && f->f_dev == dev)
1772 1.75 thorpej return (EEXIST);
1773 1.75 thorpej }
1774 1.75 thorpej
1775 1.159 matt f = kmem_alloc(sizeof(*f), KM_SLEEP);
1776 1.75 thorpej f->f_func = fn;
1777 1.75 thorpej f->f_dev = dev;
1778 1.75 thorpej TAILQ_INSERT_TAIL(&config_finalize_list, f, f_list);
1779 1.75 thorpej
1780 1.75 thorpej return (0);
1781 1.75 thorpej }
1782 1.75 thorpej
1783 1.75 thorpej void
1784 1.75 thorpej config_finalize(void)
1785 1.75 thorpej {
1786 1.75 thorpej struct finalize_hook *f;
1787 1.142 ad struct pdevinit *pdev;
1788 1.142 ad extern struct pdevinit pdevinit[];
1789 1.142 ad int errcnt, rv;
1790 1.142 ad
1791 1.142 ad /*
1792 1.142 ad * Now that device driver threads have been created, wait for
1793 1.142 ad * them to finish any deferred autoconfiguration.
1794 1.142 ad */
1795 1.151 ad mutex_enter(&config_misc_lock);
1796 1.151 ad while (config_pending != 0)
1797 1.151 ad cv_wait(&config_misc_cv, &config_misc_lock);
1798 1.151 ad mutex_exit(&config_misc_lock);
1799 1.142 ad
1800 1.167 ad KERNEL_LOCK(1, NULL);
1801 1.167 ad
1802 1.142 ad /* Attach pseudo-devices. */
1803 1.142 ad for (pdev = pdevinit; pdev->pdev_attach != NULL; pdev++)
1804 1.142 ad (*pdev->pdev_attach)(pdev->pdev_count);
1805 1.75 thorpej
1806 1.75 thorpej /* Run the hooks until none of them does any work. */
1807 1.75 thorpej do {
1808 1.75 thorpej rv = 0;
1809 1.75 thorpej TAILQ_FOREACH(f, &config_finalize_list, f_list)
1810 1.75 thorpej rv |= (*f->f_func)(f->f_dev);
1811 1.75 thorpej } while (rv != 0);
1812 1.75 thorpej
1813 1.75 thorpej config_finalize_done = 1;
1814 1.75 thorpej
1815 1.75 thorpej /* Now free all the hooks. */
1816 1.75 thorpej while ((f = TAILQ_FIRST(&config_finalize_list)) != NULL) {
1817 1.75 thorpej TAILQ_REMOVE(&config_finalize_list, f, f_list);
1818 1.159 matt kmem_free(f, sizeof(*f));
1819 1.79 thorpej }
1820 1.142 ad
1821 1.167 ad KERNEL_UNLOCK_ONE(NULL);
1822 1.167 ad
1823 1.142 ad errcnt = aprint_get_error_count();
1824 1.142 ad if ((boothowto & (AB_QUIET|AB_SILENT)) != 0 &&
1825 1.142 ad (boothowto & AB_VERBOSE) == 0) {
1826 1.142 ad if (config_do_twiddle) {
1827 1.142 ad config_do_twiddle = 0;
1828 1.142 ad printf_nolog("done.\n");
1829 1.142 ad }
1830 1.142 ad if (errcnt != 0) {
1831 1.142 ad printf("WARNING: %d error%s while detecting hardware; "
1832 1.142 ad "check system log.\n", errcnt,
1833 1.142 ad errcnt == 1 ? "" : "s");
1834 1.142 ad }
1835 1.142 ad }
1836 1.79 thorpej }
1837 1.79 thorpej
1838 1.104 thorpej /*
1839 1.107 thorpej * device_lookup:
1840 1.107 thorpej *
1841 1.107 thorpej * Look up a device instance for a given driver.
1842 1.107 thorpej */
1843 1.156 drochner device_t
1844 1.107 thorpej device_lookup(cfdriver_t cd, int unit)
1845 1.107 thorpej {
1846 1.107 thorpej
1847 1.107 thorpej if (unit < 0 || unit >= cd->cd_ndevs)
1848 1.107 thorpej return (NULL);
1849 1.107 thorpej
1850 1.107 thorpej return (cd->cd_devs[unit]);
1851 1.107 thorpej }
1852 1.107 thorpej
1853 1.107 thorpej /*
1854 1.140 matt * device_lookup:
1855 1.140 matt *
1856 1.140 matt * Look up a device instance for a given driver.
1857 1.140 matt */
1858 1.140 matt void *
1859 1.140 matt device_lookup_private(cfdriver_t cd, int unit)
1860 1.140 matt {
1861 1.140 matt device_t dv;
1862 1.140 matt
1863 1.140 matt if (unit < 0 || unit >= cd->cd_ndevs)
1864 1.140 matt return NULL;
1865 1.140 matt
1866 1.140 matt if ((dv = cd->cd_devs[unit]) == NULL)
1867 1.140 matt return NULL;
1868 1.140 matt
1869 1.140 matt return dv->dv_private;
1870 1.140 matt }
1871 1.140 matt
1872 1.140 matt /*
1873 1.107 thorpej * Accessor functions for the device_t type.
1874 1.107 thorpej */
1875 1.107 thorpej devclass_t
1876 1.107 thorpej device_class(device_t dev)
1877 1.107 thorpej {
1878 1.107 thorpej
1879 1.107 thorpej return (dev->dv_class);
1880 1.107 thorpej }
1881 1.107 thorpej
1882 1.107 thorpej cfdata_t
1883 1.107 thorpej device_cfdata(device_t dev)
1884 1.107 thorpej {
1885 1.107 thorpej
1886 1.107 thorpej return (dev->dv_cfdata);
1887 1.107 thorpej }
1888 1.107 thorpej
1889 1.107 thorpej cfdriver_t
1890 1.107 thorpej device_cfdriver(device_t dev)
1891 1.107 thorpej {
1892 1.107 thorpej
1893 1.107 thorpej return (dev->dv_cfdriver);
1894 1.107 thorpej }
1895 1.107 thorpej
1896 1.107 thorpej cfattach_t
1897 1.107 thorpej device_cfattach(device_t dev)
1898 1.107 thorpej {
1899 1.107 thorpej
1900 1.107 thorpej return (dev->dv_cfattach);
1901 1.107 thorpej }
1902 1.107 thorpej
1903 1.107 thorpej int
1904 1.107 thorpej device_unit(device_t dev)
1905 1.107 thorpej {
1906 1.107 thorpej
1907 1.107 thorpej return (dev->dv_unit);
1908 1.107 thorpej }
1909 1.107 thorpej
1910 1.107 thorpej const char *
1911 1.107 thorpej device_xname(device_t dev)
1912 1.107 thorpej {
1913 1.107 thorpej
1914 1.107 thorpej return (dev->dv_xname);
1915 1.107 thorpej }
1916 1.107 thorpej
1917 1.107 thorpej device_t
1918 1.107 thorpej device_parent(device_t dev)
1919 1.107 thorpej {
1920 1.107 thorpej
1921 1.107 thorpej return (dev->dv_parent);
1922 1.107 thorpej }
1923 1.107 thorpej
1924 1.116 thorpej bool
1925 1.107 thorpej device_is_active(device_t dev)
1926 1.107 thorpej {
1927 1.124 jmcneill int active_flags;
1928 1.124 jmcneill
1929 1.124 jmcneill active_flags = DVF_ACTIVE;
1930 1.124 jmcneill active_flags |= DVF_CLASS_SUSPENDED;
1931 1.124 jmcneill active_flags |= DVF_DRIVER_SUSPENDED;
1932 1.124 jmcneill active_flags |= DVF_BUS_SUSPENDED;
1933 1.124 jmcneill
1934 1.124 jmcneill return ((dev->dv_flags & active_flags) == DVF_ACTIVE);
1935 1.124 jmcneill }
1936 1.124 jmcneill
1937 1.124 jmcneill bool
1938 1.124 jmcneill device_is_enabled(device_t dev)
1939 1.124 jmcneill {
1940 1.124 jmcneill return (dev->dv_flags & DVF_ACTIVE) == DVF_ACTIVE;
1941 1.124 jmcneill }
1942 1.124 jmcneill
1943 1.124 jmcneill bool
1944 1.124 jmcneill device_has_power(device_t dev)
1945 1.124 jmcneill {
1946 1.124 jmcneill int active_flags;
1947 1.124 jmcneill
1948 1.124 jmcneill active_flags = DVF_ACTIVE | DVF_BUS_SUSPENDED;
1949 1.107 thorpej
1950 1.124 jmcneill return ((dev->dv_flags & active_flags) == DVF_ACTIVE);
1951 1.107 thorpej }
1952 1.107 thorpej
1953 1.109 thorpej int
1954 1.111 thorpej device_locator(device_t dev, u_int locnum)
1955 1.107 thorpej {
1956 1.107 thorpej
1957 1.109 thorpej KASSERT(dev->dv_locators != NULL);
1958 1.109 thorpej return (dev->dv_locators[locnum]);
1959 1.107 thorpej }
1960 1.108 thorpej
1961 1.110 thorpej void *
1962 1.110 thorpej device_private(device_t dev)
1963 1.110 thorpej {
1964 1.110 thorpej
1965 1.134 cube /*
1966 1.134 cube * The reason why device_private(NULL) is allowed is to simplify the
1967 1.134 cube * work of a lot of userspace request handlers (i.e., c/bdev
1968 1.134 cube * handlers) which grab cfdriver_t->cd_units[n].
1969 1.134 cube * It avoids having them test for it to be NULL and only then calling
1970 1.134 cube * device_private.
1971 1.134 cube */
1972 1.134 cube return dev == NULL ? NULL : dev->dv_private;
1973 1.110 thorpej }
1974 1.110 thorpej
1975 1.112 thorpej prop_dictionary_t
1976 1.112 thorpej device_properties(device_t dev)
1977 1.112 thorpej {
1978 1.112 thorpej
1979 1.112 thorpej return (dev->dv_properties);
1980 1.112 thorpej }
1981 1.112 thorpej
1982 1.108 thorpej /*
1983 1.108 thorpej * device_is_a:
1984 1.108 thorpej *
1985 1.108 thorpej * Returns true if the device is an instance of the specified
1986 1.108 thorpej * driver.
1987 1.108 thorpej */
1988 1.116 thorpej bool
1989 1.108 thorpej device_is_a(device_t dev, const char *dname)
1990 1.108 thorpej {
1991 1.108 thorpej
1992 1.108 thorpej return (strcmp(dev->dv_cfdriver->cd_name, dname) == 0);
1993 1.108 thorpej }
1994 1.124 jmcneill
1995 1.124 jmcneill /*
1996 1.131 joerg * device_find_by_xname:
1997 1.131 joerg *
1998 1.131 joerg * Returns the device of the given name or NULL if it doesn't exist.
1999 1.131 joerg */
2000 1.131 joerg device_t
2001 1.131 joerg device_find_by_xname(const char *name)
2002 1.131 joerg {
2003 1.131 joerg device_t dv;
2004 1.136 dyoung deviter_t di;
2005 1.131 joerg
2006 1.136 dyoung for (dv = deviter_first(&di, 0); dv != NULL; dv = deviter_next(&di)) {
2007 1.131 joerg if (strcmp(device_xname(dv), name) == 0)
2008 1.131 joerg break;
2009 1.131 joerg }
2010 1.136 dyoung deviter_release(&di);
2011 1.131 joerg
2012 1.131 joerg return dv;
2013 1.131 joerg }
2014 1.131 joerg
2015 1.131 joerg /*
2016 1.131 joerg * device_find_by_driver_unit:
2017 1.131 joerg *
2018 1.131 joerg * Returns the device of the given driver name and unit or
2019 1.131 joerg * NULL if it doesn't exist.
2020 1.131 joerg */
2021 1.131 joerg device_t
2022 1.131 joerg device_find_by_driver_unit(const char *name, int unit)
2023 1.131 joerg {
2024 1.131 joerg struct cfdriver *cd;
2025 1.131 joerg
2026 1.131 joerg if ((cd = config_cfdriver_lookup(name)) == NULL)
2027 1.131 joerg return NULL;
2028 1.131 joerg return device_lookup(cd, unit);
2029 1.131 joerg }
2030 1.131 joerg
2031 1.131 joerg /*
2032 1.124 jmcneill * Power management related functions.
2033 1.124 jmcneill */
2034 1.124 jmcneill
2035 1.124 jmcneill bool
2036 1.124 jmcneill device_pmf_is_registered(device_t dev)
2037 1.124 jmcneill {
2038 1.124 jmcneill return (dev->dv_flags & DVF_POWER_HANDLERS) != 0;
2039 1.124 jmcneill }
2040 1.124 jmcneill
2041 1.124 jmcneill bool
2042 1.135 dyoung device_pmf_driver_suspend(device_t dev PMF_FN_ARGS)
2043 1.124 jmcneill {
2044 1.124 jmcneill if ((dev->dv_flags & DVF_DRIVER_SUSPENDED) != 0)
2045 1.124 jmcneill return true;
2046 1.124 jmcneill if ((dev->dv_flags & DVF_CLASS_SUSPENDED) == 0)
2047 1.124 jmcneill return false;
2048 1.124 jmcneill if (*dev->dv_driver_suspend != NULL &&
2049 1.135 dyoung !(*dev->dv_driver_suspend)(dev PMF_FN_CALL))
2050 1.124 jmcneill return false;
2051 1.124 jmcneill
2052 1.124 jmcneill dev->dv_flags |= DVF_DRIVER_SUSPENDED;
2053 1.124 jmcneill return true;
2054 1.124 jmcneill }
2055 1.124 jmcneill
2056 1.124 jmcneill bool
2057 1.135 dyoung device_pmf_driver_resume(device_t dev PMF_FN_ARGS)
2058 1.124 jmcneill {
2059 1.124 jmcneill if ((dev->dv_flags & DVF_DRIVER_SUSPENDED) == 0)
2060 1.124 jmcneill return true;
2061 1.124 jmcneill if ((dev->dv_flags & DVF_BUS_SUSPENDED) != 0)
2062 1.124 jmcneill return false;
2063 1.141 dyoung if ((flags & PMF_F_SELF) != 0 && !device_is_self_suspended(dev))
2064 1.141 dyoung return false;
2065 1.124 jmcneill if (*dev->dv_driver_resume != NULL &&
2066 1.135 dyoung !(*dev->dv_driver_resume)(dev PMF_FN_CALL))
2067 1.124 jmcneill return false;
2068 1.124 jmcneill
2069 1.124 jmcneill dev->dv_flags &= ~DVF_DRIVER_SUSPENDED;
2070 1.124 jmcneill return true;
2071 1.124 jmcneill }
2072 1.124 jmcneill
2073 1.133 drochner bool
2074 1.133 drochner device_pmf_driver_shutdown(device_t dev, int how)
2075 1.133 drochner {
2076 1.133 drochner
2077 1.133 drochner if (*dev->dv_driver_shutdown != NULL &&
2078 1.133 drochner !(*dev->dv_driver_shutdown)(dev, how))
2079 1.133 drochner return false;
2080 1.133 drochner return true;
2081 1.133 drochner }
2082 1.133 drochner
2083 1.135 dyoung bool
2084 1.124 jmcneill device_pmf_driver_register(device_t dev,
2085 1.135 dyoung bool (*suspend)(device_t PMF_FN_PROTO),
2086 1.135 dyoung bool (*resume)(device_t PMF_FN_PROTO),
2087 1.133 drochner bool (*shutdown)(device_t, int))
2088 1.124 jmcneill {
2089 1.139 dyoung pmf_private_t *pp;
2090 1.139 dyoung
2091 1.166 ad if ((pp = kmem_zalloc(sizeof(*pp), KM_SLEEP)) == NULL)
2092 1.139 dyoung return false;
2093 1.139 dyoung mutex_init(&pp->pp_mtx, MUTEX_DEFAULT, IPL_NONE);
2094 1.139 dyoung cv_init(&pp->pp_cv, "pmfsusp");
2095 1.139 dyoung dev->dv_pmf_private = pp;
2096 1.139 dyoung
2097 1.124 jmcneill dev->dv_driver_suspend = suspend;
2098 1.124 jmcneill dev->dv_driver_resume = resume;
2099 1.133 drochner dev->dv_driver_shutdown = shutdown;
2100 1.124 jmcneill dev->dv_flags |= DVF_POWER_HANDLERS;
2101 1.135 dyoung return true;
2102 1.124 jmcneill }
2103 1.124 jmcneill
2104 1.139 dyoung static const char *
2105 1.139 dyoung curlwp_name(void)
2106 1.139 dyoung {
2107 1.139 dyoung if (curlwp->l_name != NULL)
2108 1.139 dyoung return curlwp->l_name;
2109 1.139 dyoung else
2110 1.139 dyoung return curlwp->l_proc->p_comm;
2111 1.139 dyoung }
2112 1.139 dyoung
2113 1.124 jmcneill void
2114 1.124 jmcneill device_pmf_driver_deregister(device_t dev)
2115 1.124 jmcneill {
2116 1.139 dyoung pmf_private_t *pp = dev->dv_pmf_private;
2117 1.139 dyoung
2118 1.157 drochner /* XXX avoid crash in case we are not initialized */
2119 1.157 drochner if (!pp)
2120 1.157 drochner return;
2121 1.157 drochner
2122 1.124 jmcneill dev->dv_driver_suspend = NULL;
2123 1.124 jmcneill dev->dv_driver_resume = NULL;
2124 1.139 dyoung
2125 1.139 dyoung mutex_enter(&pp->pp_mtx);
2126 1.124 jmcneill dev->dv_flags &= ~DVF_POWER_HANDLERS;
2127 1.139 dyoung while (pp->pp_nlock > 0 || pp->pp_nwait > 0) {
2128 1.139 dyoung /* Wake a thread that waits for the lock. That
2129 1.139 dyoung * thread will fail to acquire the lock, and then
2130 1.139 dyoung * it will wake the next thread that waits for the
2131 1.139 dyoung * lock, or else it will wake us.
2132 1.139 dyoung */
2133 1.139 dyoung cv_signal(&pp->pp_cv);
2134 1.139 dyoung pmflock_debug(dev, __func__, __LINE__);
2135 1.139 dyoung cv_wait(&pp->pp_cv, &pp->pp_mtx);
2136 1.139 dyoung pmflock_debug(dev, __func__, __LINE__);
2137 1.139 dyoung }
2138 1.155 dyoung dev->dv_pmf_private = NULL;
2139 1.139 dyoung mutex_exit(&pp->pp_mtx);
2140 1.139 dyoung
2141 1.139 dyoung cv_destroy(&pp->pp_cv);
2142 1.139 dyoung mutex_destroy(&pp->pp_mtx);
2143 1.159 matt kmem_free(pp, sizeof(*pp));
2144 1.124 jmcneill }
2145 1.124 jmcneill
2146 1.124 jmcneill bool
2147 1.124 jmcneill device_pmf_driver_child_register(device_t dev)
2148 1.124 jmcneill {
2149 1.124 jmcneill device_t parent = device_parent(dev);
2150 1.124 jmcneill
2151 1.124 jmcneill if (parent == NULL || parent->dv_driver_child_register == NULL)
2152 1.124 jmcneill return true;
2153 1.124 jmcneill return (*parent->dv_driver_child_register)(dev);
2154 1.124 jmcneill }
2155 1.124 jmcneill
2156 1.124 jmcneill void
2157 1.124 jmcneill device_pmf_driver_set_child_register(device_t dev,
2158 1.124 jmcneill bool (*child_register)(device_t))
2159 1.124 jmcneill {
2160 1.124 jmcneill dev->dv_driver_child_register = child_register;
2161 1.124 jmcneill }
2162 1.124 jmcneill
2163 1.141 dyoung void
2164 1.141 dyoung device_pmf_self_resume(device_t dev PMF_FN_ARGS)
2165 1.141 dyoung {
2166 1.141 dyoung pmflock_debug_with_flags(dev, __func__, __LINE__ PMF_FN_CALL);
2167 1.141 dyoung if ((dev->dv_flags & DVF_SELF_SUSPENDED) != 0)
2168 1.141 dyoung dev->dv_flags &= ~DVF_SELF_SUSPENDED;
2169 1.141 dyoung pmflock_debug_with_flags(dev, __func__, __LINE__ PMF_FN_CALL);
2170 1.141 dyoung }
2171 1.141 dyoung
2172 1.141 dyoung bool
2173 1.141 dyoung device_is_self_suspended(device_t dev)
2174 1.141 dyoung {
2175 1.141 dyoung return (dev->dv_flags & DVF_SELF_SUSPENDED) != 0;
2176 1.141 dyoung }
2177 1.141 dyoung
2178 1.141 dyoung void
2179 1.141 dyoung device_pmf_self_suspend(device_t dev PMF_FN_ARGS)
2180 1.141 dyoung {
2181 1.141 dyoung bool self = (flags & PMF_F_SELF) != 0;
2182 1.141 dyoung
2183 1.141 dyoung pmflock_debug_with_flags(dev, __func__, __LINE__ PMF_FN_CALL);
2184 1.141 dyoung
2185 1.141 dyoung if (!self)
2186 1.141 dyoung dev->dv_flags &= ~DVF_SELF_SUSPENDED;
2187 1.141 dyoung else if (device_is_active(dev))
2188 1.141 dyoung dev->dv_flags |= DVF_SELF_SUSPENDED;
2189 1.141 dyoung
2190 1.141 dyoung pmflock_debug_with_flags(dev, __func__, __LINE__ PMF_FN_CALL);
2191 1.141 dyoung }
2192 1.141 dyoung
2193 1.139 dyoung static void
2194 1.139 dyoung pmflock_debug(device_t dev, const char *func, int line)
2195 1.139 dyoung {
2196 1.139 dyoung pmf_private_t *pp = device_pmf_private(dev);
2197 1.139 dyoung
2198 1.139 dyoung aprint_debug_dev(dev, "%s.%d, %s pp_nlock %d pp_nwait %d dv_flags %x\n",
2199 1.139 dyoung func, line, curlwp_name(), pp->pp_nlock, pp->pp_nwait,
2200 1.139 dyoung dev->dv_flags);
2201 1.139 dyoung }
2202 1.139 dyoung
2203 1.139 dyoung static void
2204 1.139 dyoung pmflock_debug_with_flags(device_t dev, const char *func, int line PMF_FN_ARGS)
2205 1.139 dyoung {
2206 1.139 dyoung pmf_private_t *pp = device_pmf_private(dev);
2207 1.139 dyoung
2208 1.139 dyoung aprint_debug_dev(dev, "%s.%d, %s pp_nlock %d pp_nwait %d dv_flags %x "
2209 1.139 dyoung "flags " PMF_FLAGS_FMT "\n", func, line, curlwp_name(),
2210 1.139 dyoung pp->pp_nlock, pp->pp_nwait, dev->dv_flags PMF_FN_CALL);
2211 1.139 dyoung }
2212 1.139 dyoung
2213 1.139 dyoung static bool
2214 1.139 dyoung device_pmf_lock1(device_t dev PMF_FN_ARGS)
2215 1.139 dyoung {
2216 1.139 dyoung pmf_private_t *pp = device_pmf_private(dev);
2217 1.139 dyoung
2218 1.155 dyoung while (device_pmf_is_registered(dev) &&
2219 1.155 dyoung pp->pp_nlock > 0 && pp->pp_holder != curlwp) {
2220 1.139 dyoung pp->pp_nwait++;
2221 1.139 dyoung pmflock_debug_with_flags(dev, __func__, __LINE__ PMF_FN_CALL);
2222 1.139 dyoung cv_wait(&pp->pp_cv, &pp->pp_mtx);
2223 1.139 dyoung pmflock_debug_with_flags(dev, __func__, __LINE__ PMF_FN_CALL);
2224 1.139 dyoung pp->pp_nwait--;
2225 1.139 dyoung }
2226 1.139 dyoung if (!device_pmf_is_registered(dev)) {
2227 1.139 dyoung pmflock_debug_with_flags(dev, __func__, __LINE__ PMF_FN_CALL);
2228 1.139 dyoung /* We could not acquire the lock, but some other thread may
2229 1.139 dyoung * wait for it, also. Wake that thread.
2230 1.139 dyoung */
2231 1.139 dyoung cv_signal(&pp->pp_cv);
2232 1.139 dyoung return false;
2233 1.139 dyoung }
2234 1.139 dyoung pp->pp_nlock++;
2235 1.139 dyoung pp->pp_holder = curlwp;
2236 1.139 dyoung pmflock_debug_with_flags(dev, __func__, __LINE__ PMF_FN_CALL);
2237 1.139 dyoung return true;
2238 1.139 dyoung }
2239 1.139 dyoung
2240 1.139 dyoung bool
2241 1.139 dyoung device_pmf_lock(device_t dev PMF_FN_ARGS)
2242 1.139 dyoung {
2243 1.139 dyoung bool rc;
2244 1.139 dyoung pmf_private_t *pp = device_pmf_private(dev);
2245 1.139 dyoung
2246 1.139 dyoung mutex_enter(&pp->pp_mtx);
2247 1.139 dyoung rc = device_pmf_lock1(dev PMF_FN_CALL);
2248 1.139 dyoung mutex_exit(&pp->pp_mtx);
2249 1.139 dyoung
2250 1.139 dyoung return rc;
2251 1.139 dyoung }
2252 1.139 dyoung
2253 1.139 dyoung void
2254 1.139 dyoung device_pmf_unlock(device_t dev PMF_FN_ARGS)
2255 1.139 dyoung {
2256 1.139 dyoung pmf_private_t *pp = device_pmf_private(dev);
2257 1.139 dyoung
2258 1.139 dyoung KASSERT(pp->pp_nlock > 0);
2259 1.139 dyoung mutex_enter(&pp->pp_mtx);
2260 1.139 dyoung if (--pp->pp_nlock == 0)
2261 1.139 dyoung pp->pp_holder = NULL;
2262 1.139 dyoung cv_signal(&pp->pp_cv);
2263 1.139 dyoung pmflock_debug_with_flags(dev, __func__, __LINE__ PMF_FN_CALL);
2264 1.139 dyoung mutex_exit(&pp->pp_mtx);
2265 1.139 dyoung }
2266 1.139 dyoung
2267 1.139 dyoung void *
2268 1.139 dyoung device_pmf_private(device_t dev)
2269 1.139 dyoung {
2270 1.139 dyoung return dev->dv_pmf_private;
2271 1.139 dyoung }
2272 1.139 dyoung
2273 1.124 jmcneill void *
2274 1.124 jmcneill device_pmf_bus_private(device_t dev)
2275 1.124 jmcneill {
2276 1.124 jmcneill return dev->dv_bus_private;
2277 1.124 jmcneill }
2278 1.124 jmcneill
2279 1.124 jmcneill bool
2280 1.135 dyoung device_pmf_bus_suspend(device_t dev PMF_FN_ARGS)
2281 1.124 jmcneill {
2282 1.124 jmcneill if ((dev->dv_flags & DVF_BUS_SUSPENDED) != 0)
2283 1.124 jmcneill return true;
2284 1.124 jmcneill if ((dev->dv_flags & DVF_CLASS_SUSPENDED) == 0 ||
2285 1.124 jmcneill (dev->dv_flags & DVF_DRIVER_SUSPENDED) == 0)
2286 1.124 jmcneill return false;
2287 1.124 jmcneill if (*dev->dv_bus_suspend != NULL &&
2288 1.135 dyoung !(*dev->dv_bus_suspend)(dev PMF_FN_CALL))
2289 1.124 jmcneill return false;
2290 1.124 jmcneill
2291 1.124 jmcneill dev->dv_flags |= DVF_BUS_SUSPENDED;
2292 1.124 jmcneill return true;
2293 1.124 jmcneill }
2294 1.124 jmcneill
2295 1.124 jmcneill bool
2296 1.135 dyoung device_pmf_bus_resume(device_t dev PMF_FN_ARGS)
2297 1.124 jmcneill {
2298 1.124 jmcneill if ((dev->dv_flags & DVF_BUS_SUSPENDED) == 0)
2299 1.124 jmcneill return true;
2300 1.141 dyoung if ((flags & PMF_F_SELF) != 0 && !device_is_self_suspended(dev))
2301 1.141 dyoung return false;
2302 1.124 jmcneill if (*dev->dv_bus_resume != NULL &&
2303 1.135 dyoung !(*dev->dv_bus_resume)(dev PMF_FN_CALL))
2304 1.124 jmcneill return false;
2305 1.124 jmcneill
2306 1.124 jmcneill dev->dv_flags &= ~DVF_BUS_SUSPENDED;
2307 1.124 jmcneill return true;
2308 1.124 jmcneill }
2309 1.124 jmcneill
2310 1.133 drochner bool
2311 1.133 drochner device_pmf_bus_shutdown(device_t dev, int how)
2312 1.133 drochner {
2313 1.133 drochner
2314 1.133 drochner if (*dev->dv_bus_shutdown != NULL &&
2315 1.133 drochner !(*dev->dv_bus_shutdown)(dev, how))
2316 1.133 drochner return false;
2317 1.133 drochner return true;
2318 1.133 drochner }
2319 1.133 drochner
2320 1.124 jmcneill void
2321 1.124 jmcneill device_pmf_bus_register(device_t dev, void *priv,
2322 1.135 dyoung bool (*suspend)(device_t PMF_FN_PROTO),
2323 1.135 dyoung bool (*resume)(device_t PMF_FN_PROTO),
2324 1.133 drochner bool (*shutdown)(device_t, int), void (*deregister)(device_t))
2325 1.124 jmcneill {
2326 1.124 jmcneill dev->dv_bus_private = priv;
2327 1.124 jmcneill dev->dv_bus_resume = resume;
2328 1.124 jmcneill dev->dv_bus_suspend = suspend;
2329 1.133 drochner dev->dv_bus_shutdown = shutdown;
2330 1.124 jmcneill dev->dv_bus_deregister = deregister;
2331 1.124 jmcneill }
2332 1.124 jmcneill
2333 1.124 jmcneill void
2334 1.124 jmcneill device_pmf_bus_deregister(device_t dev)
2335 1.124 jmcneill {
2336 1.124 jmcneill if (dev->dv_bus_deregister == NULL)
2337 1.124 jmcneill return;
2338 1.124 jmcneill (*dev->dv_bus_deregister)(dev);
2339 1.124 jmcneill dev->dv_bus_private = NULL;
2340 1.124 jmcneill dev->dv_bus_suspend = NULL;
2341 1.124 jmcneill dev->dv_bus_resume = NULL;
2342 1.124 jmcneill dev->dv_bus_deregister = NULL;
2343 1.124 jmcneill }
2344 1.124 jmcneill
2345 1.124 jmcneill void *
2346 1.124 jmcneill device_pmf_class_private(device_t dev)
2347 1.124 jmcneill {
2348 1.124 jmcneill return dev->dv_class_private;
2349 1.124 jmcneill }
2350 1.124 jmcneill
2351 1.124 jmcneill bool
2352 1.135 dyoung device_pmf_class_suspend(device_t dev PMF_FN_ARGS)
2353 1.124 jmcneill {
2354 1.124 jmcneill if ((dev->dv_flags & DVF_CLASS_SUSPENDED) != 0)
2355 1.124 jmcneill return true;
2356 1.124 jmcneill if (*dev->dv_class_suspend != NULL &&
2357 1.135 dyoung !(*dev->dv_class_suspend)(dev PMF_FN_CALL))
2358 1.124 jmcneill return false;
2359 1.124 jmcneill
2360 1.124 jmcneill dev->dv_flags |= DVF_CLASS_SUSPENDED;
2361 1.124 jmcneill return true;
2362 1.124 jmcneill }
2363 1.124 jmcneill
2364 1.124 jmcneill bool
2365 1.135 dyoung device_pmf_class_resume(device_t dev PMF_FN_ARGS)
2366 1.124 jmcneill {
2367 1.124 jmcneill if ((dev->dv_flags & DVF_CLASS_SUSPENDED) == 0)
2368 1.124 jmcneill return true;
2369 1.124 jmcneill if ((dev->dv_flags & DVF_BUS_SUSPENDED) != 0 ||
2370 1.124 jmcneill (dev->dv_flags & DVF_DRIVER_SUSPENDED) != 0)
2371 1.124 jmcneill return false;
2372 1.124 jmcneill if (*dev->dv_class_resume != NULL &&
2373 1.135 dyoung !(*dev->dv_class_resume)(dev PMF_FN_CALL))
2374 1.124 jmcneill return false;
2375 1.124 jmcneill
2376 1.124 jmcneill dev->dv_flags &= ~DVF_CLASS_SUSPENDED;
2377 1.124 jmcneill return true;
2378 1.124 jmcneill }
2379 1.124 jmcneill
2380 1.124 jmcneill void
2381 1.124 jmcneill device_pmf_class_register(device_t dev, void *priv,
2382 1.135 dyoung bool (*suspend)(device_t PMF_FN_PROTO),
2383 1.135 dyoung bool (*resume)(device_t PMF_FN_PROTO),
2384 1.124 jmcneill void (*deregister)(device_t))
2385 1.124 jmcneill {
2386 1.124 jmcneill dev->dv_class_private = priv;
2387 1.124 jmcneill dev->dv_class_suspend = suspend;
2388 1.124 jmcneill dev->dv_class_resume = resume;
2389 1.124 jmcneill dev->dv_class_deregister = deregister;
2390 1.124 jmcneill }
2391 1.124 jmcneill
2392 1.124 jmcneill void
2393 1.124 jmcneill device_pmf_class_deregister(device_t dev)
2394 1.124 jmcneill {
2395 1.124 jmcneill if (dev->dv_class_deregister == NULL)
2396 1.124 jmcneill return;
2397 1.124 jmcneill (*dev->dv_class_deregister)(dev);
2398 1.124 jmcneill dev->dv_class_private = NULL;
2399 1.124 jmcneill dev->dv_class_suspend = NULL;
2400 1.124 jmcneill dev->dv_class_resume = NULL;
2401 1.124 jmcneill dev->dv_class_deregister = NULL;
2402 1.124 jmcneill }
2403 1.124 jmcneill
2404 1.124 jmcneill bool
2405 1.124 jmcneill device_active(device_t dev, devactive_t type)
2406 1.124 jmcneill {
2407 1.124 jmcneill size_t i;
2408 1.124 jmcneill
2409 1.124 jmcneill if (dev->dv_activity_count == 0)
2410 1.124 jmcneill return false;
2411 1.124 jmcneill
2412 1.160 matt for (i = 0; i < dev->dv_activity_count; ++i) {
2413 1.160 matt if (dev->dv_activity_handlers[i] == NULL)
2414 1.160 matt break;
2415 1.124 jmcneill (*dev->dv_activity_handlers[i])(dev, type);
2416 1.160 matt }
2417 1.124 jmcneill
2418 1.124 jmcneill return true;
2419 1.124 jmcneill }
2420 1.124 jmcneill
2421 1.124 jmcneill bool
2422 1.124 jmcneill device_active_register(device_t dev, void (*handler)(device_t, devactive_t))
2423 1.124 jmcneill {
2424 1.124 jmcneill void (**new_handlers)(device_t, devactive_t);
2425 1.124 jmcneill void (**old_handlers)(device_t, devactive_t);
2426 1.159 matt size_t i, old_size, new_size;
2427 1.124 jmcneill int s;
2428 1.124 jmcneill
2429 1.124 jmcneill old_handlers = dev->dv_activity_handlers;
2430 1.159 matt old_size = dev->dv_activity_count;
2431 1.124 jmcneill
2432 1.159 matt for (i = 0; i < old_size; ++i) {
2433 1.159 matt KASSERT(old_handlers[i] != handler);
2434 1.159 matt if (old_handlers[i] == NULL) {
2435 1.159 matt old_handlers[i] = handler;
2436 1.159 matt return true;
2437 1.159 matt }
2438 1.124 jmcneill }
2439 1.124 jmcneill
2440 1.159 matt new_size = old_size + 4;
2441 1.159 matt new_handlers = kmem_alloc(sizeof(void *[new_size]), KM_SLEEP);
2442 1.124 jmcneill
2443 1.159 matt memcpy(new_handlers, old_handlers, sizeof(void *[old_size]));
2444 1.159 matt new_handlers[old_size] = handler;
2445 1.159 matt memset(new_handlers + old_size + 1, 0,
2446 1.159 matt sizeof(int [new_size - (old_size+1)]));
2447 1.124 jmcneill
2448 1.124 jmcneill s = splhigh();
2449 1.124 jmcneill dev->dv_activity_count = new_size;
2450 1.124 jmcneill dev->dv_activity_handlers = new_handlers;
2451 1.124 jmcneill splx(s);
2452 1.124 jmcneill
2453 1.124 jmcneill if (old_handlers != NULL)
2454 1.165 macallan kmem_free(old_handlers, sizeof(void * [old_size]));
2455 1.124 jmcneill
2456 1.124 jmcneill return true;
2457 1.124 jmcneill }
2458 1.124 jmcneill
2459 1.124 jmcneill void
2460 1.124 jmcneill device_active_deregister(device_t dev, void (*handler)(device_t, devactive_t))
2461 1.124 jmcneill {
2462 1.124 jmcneill void (**old_handlers)(device_t, devactive_t);
2463 1.159 matt size_t i, old_size;
2464 1.124 jmcneill int s;
2465 1.124 jmcneill
2466 1.124 jmcneill old_handlers = dev->dv_activity_handlers;
2467 1.159 matt old_size = dev->dv_activity_count;
2468 1.124 jmcneill
2469 1.159 matt for (i = 0; i < old_size; ++i) {
2470 1.124 jmcneill if (old_handlers[i] == handler)
2471 1.124 jmcneill break;
2472 1.159 matt if (old_handlers[i] == NULL)
2473 1.159 matt return; /* XXX panic? */
2474 1.124 jmcneill }
2475 1.124 jmcneill
2476 1.159 matt if (i == old_size)
2477 1.124 jmcneill return; /* XXX panic? */
2478 1.124 jmcneill
2479 1.159 matt for (; i < old_size - 1; ++i) {
2480 1.159 matt if ((old_handlers[i] = old_handlers[i + 1]) != NULL)
2481 1.159 matt continue;
2482 1.124 jmcneill
2483 1.159 matt if (i == 0) {
2484 1.159 matt s = splhigh();
2485 1.159 matt dev->dv_activity_count = 0;
2486 1.159 matt dev->dv_activity_handlers = NULL;
2487 1.159 matt splx(s);
2488 1.159 matt kmem_free(old_handlers, sizeof(void *[old_size]));
2489 1.159 matt }
2490 1.159 matt return;
2491 1.124 jmcneill }
2492 1.159 matt old_handlers[i] = NULL;
2493 1.124 jmcneill }
2494 1.136 dyoung
2495 1.136 dyoung /*
2496 1.136 dyoung * Device Iteration
2497 1.136 dyoung *
2498 1.136 dyoung * deviter_t: a device iterator. Holds state for a "walk" visiting
2499 1.136 dyoung * each device_t's in the device tree.
2500 1.136 dyoung *
2501 1.136 dyoung * deviter_init(di, flags): initialize the device iterator `di'
2502 1.136 dyoung * to "walk" the device tree. deviter_next(di) will return
2503 1.136 dyoung * the first device_t in the device tree, or NULL if there are
2504 1.136 dyoung * no devices.
2505 1.136 dyoung *
2506 1.136 dyoung * `flags' is one or more of DEVITER_F_RW, indicating that the
2507 1.136 dyoung * caller intends to modify the device tree by calling
2508 1.136 dyoung * config_detach(9) on devices in the order that the iterator
2509 1.136 dyoung * returns them; DEVITER_F_ROOT_FIRST, asking for the devices
2510 1.136 dyoung * nearest the "root" of the device tree to be returned, first;
2511 1.136 dyoung * DEVITER_F_LEAVES_FIRST, asking for the devices furthest from
2512 1.136 dyoung * the root of the device tree, first; and DEVITER_F_SHUTDOWN,
2513 1.136 dyoung * indicating both that deviter_init() should not respect any
2514 1.136 dyoung * locks on the device tree, and that deviter_next(di) may run
2515 1.136 dyoung * in more than one LWP before the walk has finished.
2516 1.136 dyoung *
2517 1.136 dyoung * Only one DEVITER_F_RW iterator may be in the device tree at
2518 1.136 dyoung * once.
2519 1.136 dyoung *
2520 1.136 dyoung * DEVITER_F_SHUTDOWN implies DEVITER_F_RW.
2521 1.136 dyoung *
2522 1.136 dyoung * Results are undefined if the flags DEVITER_F_ROOT_FIRST and
2523 1.136 dyoung * DEVITER_F_LEAVES_FIRST are used in combination.
2524 1.136 dyoung *
2525 1.136 dyoung * deviter_first(di, flags): initialize the device iterator `di'
2526 1.136 dyoung * and return the first device_t in the device tree, or NULL
2527 1.136 dyoung * if there are no devices. The statement
2528 1.136 dyoung *
2529 1.136 dyoung * dv = deviter_first(di);
2530 1.136 dyoung *
2531 1.136 dyoung * is shorthand for
2532 1.136 dyoung *
2533 1.136 dyoung * deviter_init(di);
2534 1.136 dyoung * dv = deviter_next(di);
2535 1.136 dyoung *
2536 1.136 dyoung * deviter_next(di): return the next device_t in the device tree,
2537 1.136 dyoung * or NULL if there are no more devices. deviter_next(di)
2538 1.136 dyoung * is undefined if `di' was not initialized with deviter_init() or
2539 1.136 dyoung * deviter_first().
2540 1.136 dyoung *
2541 1.136 dyoung * deviter_release(di): stops iteration (subsequent calls to
2542 1.136 dyoung * deviter_next() will return NULL), releases any locks and
2543 1.136 dyoung * resources held by the device iterator.
2544 1.136 dyoung *
2545 1.136 dyoung * Device iteration does not return device_t's in any particular
2546 1.136 dyoung * order. An iterator will never return the same device_t twice.
2547 1.136 dyoung * Device iteration is guaranteed to complete---i.e., if deviter_next(di)
2548 1.136 dyoung * is called repeatedly on the same `di', it will eventually return
2549 1.136 dyoung * NULL. It is ok to attach/detach devices during device iteration.
2550 1.136 dyoung */
2551 1.136 dyoung void
2552 1.136 dyoung deviter_init(deviter_t *di, deviter_flags_t flags)
2553 1.136 dyoung {
2554 1.136 dyoung device_t dv;
2555 1.136 dyoung bool rw;
2556 1.136 dyoung
2557 1.136 dyoung mutex_enter(&alldevs_mtx);
2558 1.136 dyoung if ((flags & DEVITER_F_SHUTDOWN) != 0) {
2559 1.136 dyoung flags |= DEVITER_F_RW;
2560 1.136 dyoung alldevs_nwrite++;
2561 1.136 dyoung alldevs_writer = NULL;
2562 1.136 dyoung alldevs_nread = 0;
2563 1.136 dyoung } else {
2564 1.136 dyoung rw = (flags & DEVITER_F_RW) != 0;
2565 1.136 dyoung
2566 1.136 dyoung if (alldevs_nwrite > 0 && alldevs_writer == NULL)
2567 1.136 dyoung ;
2568 1.136 dyoung else while ((alldevs_nwrite != 0 && alldevs_writer != curlwp) ||
2569 1.136 dyoung (rw && alldevs_nread != 0))
2570 1.136 dyoung cv_wait(&alldevs_cv, &alldevs_mtx);
2571 1.136 dyoung
2572 1.136 dyoung if (rw) {
2573 1.136 dyoung if (alldevs_nwrite++ == 0)
2574 1.136 dyoung alldevs_writer = curlwp;
2575 1.136 dyoung } else
2576 1.136 dyoung alldevs_nread++;
2577 1.136 dyoung }
2578 1.136 dyoung mutex_exit(&alldevs_mtx);
2579 1.136 dyoung
2580 1.136 dyoung memset(di, 0, sizeof(*di));
2581 1.136 dyoung
2582 1.136 dyoung di->di_flags = flags;
2583 1.136 dyoung
2584 1.136 dyoung switch (di->di_flags & (DEVITER_F_LEAVES_FIRST|DEVITER_F_ROOT_FIRST)) {
2585 1.136 dyoung case DEVITER_F_LEAVES_FIRST:
2586 1.136 dyoung TAILQ_FOREACH(dv, &alldevs, dv_list)
2587 1.136 dyoung di->di_curdepth = MAX(di->di_curdepth, dv->dv_depth);
2588 1.136 dyoung break;
2589 1.136 dyoung case DEVITER_F_ROOT_FIRST:
2590 1.136 dyoung TAILQ_FOREACH(dv, &alldevs, dv_list)
2591 1.136 dyoung di->di_maxdepth = MAX(di->di_maxdepth, dv->dv_depth);
2592 1.136 dyoung break;
2593 1.136 dyoung default:
2594 1.136 dyoung break;
2595 1.136 dyoung }
2596 1.136 dyoung
2597 1.136 dyoung deviter_reinit(di);
2598 1.136 dyoung }
2599 1.136 dyoung
2600 1.136 dyoung static void
2601 1.136 dyoung deviter_reinit(deviter_t *di)
2602 1.136 dyoung {
2603 1.136 dyoung if ((di->di_flags & DEVITER_F_RW) != 0)
2604 1.136 dyoung di->di_prev = TAILQ_LAST(&alldevs, devicelist);
2605 1.136 dyoung else
2606 1.136 dyoung di->di_prev = TAILQ_FIRST(&alldevs);
2607 1.136 dyoung }
2608 1.136 dyoung
2609 1.136 dyoung device_t
2610 1.136 dyoung deviter_first(deviter_t *di, deviter_flags_t flags)
2611 1.136 dyoung {
2612 1.136 dyoung deviter_init(di, flags);
2613 1.136 dyoung return deviter_next(di);
2614 1.136 dyoung }
2615 1.136 dyoung
2616 1.136 dyoung static device_t
2617 1.136 dyoung deviter_next1(deviter_t *di)
2618 1.136 dyoung {
2619 1.136 dyoung device_t dv;
2620 1.136 dyoung
2621 1.136 dyoung dv = di->di_prev;
2622 1.136 dyoung
2623 1.136 dyoung if (dv == NULL)
2624 1.136 dyoung ;
2625 1.136 dyoung else if ((di->di_flags & DEVITER_F_RW) != 0)
2626 1.136 dyoung di->di_prev = TAILQ_PREV(dv, devicelist, dv_list);
2627 1.136 dyoung else
2628 1.136 dyoung di->di_prev = TAILQ_NEXT(dv, dv_list);
2629 1.136 dyoung
2630 1.136 dyoung return dv;
2631 1.136 dyoung }
2632 1.136 dyoung
2633 1.136 dyoung device_t
2634 1.136 dyoung deviter_next(deviter_t *di)
2635 1.136 dyoung {
2636 1.136 dyoung device_t dv = NULL;
2637 1.136 dyoung
2638 1.136 dyoung switch (di->di_flags & (DEVITER_F_LEAVES_FIRST|DEVITER_F_ROOT_FIRST)) {
2639 1.136 dyoung case 0:
2640 1.136 dyoung return deviter_next1(di);
2641 1.136 dyoung case DEVITER_F_LEAVES_FIRST:
2642 1.136 dyoung while (di->di_curdepth >= 0) {
2643 1.136 dyoung if ((dv = deviter_next1(di)) == NULL) {
2644 1.136 dyoung di->di_curdepth--;
2645 1.136 dyoung deviter_reinit(di);
2646 1.136 dyoung } else if (dv->dv_depth == di->di_curdepth)
2647 1.136 dyoung break;
2648 1.136 dyoung }
2649 1.136 dyoung return dv;
2650 1.136 dyoung case DEVITER_F_ROOT_FIRST:
2651 1.136 dyoung while (di->di_curdepth <= di->di_maxdepth) {
2652 1.136 dyoung if ((dv = deviter_next1(di)) == NULL) {
2653 1.136 dyoung di->di_curdepth++;
2654 1.136 dyoung deviter_reinit(di);
2655 1.136 dyoung } else if (dv->dv_depth == di->di_curdepth)
2656 1.136 dyoung break;
2657 1.136 dyoung }
2658 1.136 dyoung return dv;
2659 1.136 dyoung default:
2660 1.136 dyoung return NULL;
2661 1.136 dyoung }
2662 1.136 dyoung }
2663 1.136 dyoung
2664 1.136 dyoung void
2665 1.136 dyoung deviter_release(deviter_t *di)
2666 1.136 dyoung {
2667 1.136 dyoung bool rw = (di->di_flags & DEVITER_F_RW) != 0;
2668 1.136 dyoung
2669 1.136 dyoung mutex_enter(&alldevs_mtx);
2670 1.136 dyoung if (alldevs_nwrite > 0 && alldevs_writer == NULL)
2671 1.136 dyoung --alldevs_nwrite;
2672 1.136 dyoung else {
2673 1.136 dyoung
2674 1.136 dyoung if (rw) {
2675 1.136 dyoung if (--alldevs_nwrite == 0)
2676 1.136 dyoung alldevs_writer = NULL;
2677 1.136 dyoung } else
2678 1.136 dyoung --alldevs_nread;
2679 1.136 dyoung
2680 1.136 dyoung cv_signal(&alldevs_cv);
2681 1.136 dyoung }
2682 1.136 dyoung mutex_exit(&alldevs_mtx);
2683 1.136 dyoung }
2684