xref: /freebsd/sys/kern/subr_bus.c (revision 477c594d906328e210c30cf2c21d983152f21de3)
1 /*-
2  * SPDX-License-Identifier: BSD-2-Clause
3  *
4  * Copyright (c) 1997,1998,2003 Doug Rabson
5  * All rights reserved.
6  *
7  * Redistribution and use in source and binary forms, with or without
8  * modification, are permitted provided that the following conditions
9  * are met:
10  * 1. Redistributions of source code must retain the above copyright
11  *    notice, this list of conditions and the following disclaimer.
12  * 2. Redistributions in binary form must reproduce the above copyright
13  *    notice, this list of conditions and the following disclaimer in the
14  *    documentation and/or other materials provided with the distribution.
15  *
16  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
17  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
18  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
19  * ARE DISCLAIMED.  IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
20  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
21  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
22  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
23  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
24  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
25  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
26  * SUCH DAMAGE.
27  */
28 
29 #include <sys/cdefs.h>
30 #include "opt_bus.h"
31 #include "opt_ddb.h"
32 #include "opt_iommu.h"
33 
34 #include <sys/param.h>
35 #include <sys/conf.h>
36 #include <sys/domainset.h>
37 #include <sys/eventhandler.h>
38 #include <sys/jail.h>
39 #include <sys/lock.h>
40 #include <sys/kernel.h>
41 #include <sys/limits.h>
42 #include <sys/malloc.h>
43 #include <sys/module.h>
44 #include <sys/mutex.h>
45 #include <sys/priv.h>
46 #include <machine/bus.h>
47 #include <sys/random.h>
48 #include <sys/refcount.h>
49 #include <sys/rman.h>
50 #include <sys/sbuf.h>
51 #include <sys/smp.h>
52 #include <sys/stdarg.h>
53 #include <sys/sysctl.h>
54 #include <sys/systm.h>
55 #include <sys/taskqueue.h>
56 #include <sys/bus.h>
57 #include <sys/cpuset.h>
58 #ifdef INTRNG
59 #include <sys/intr.h>
60 #endif
61 
62 #include <net/vnet.h>
63 
64 #include <machine/cpu.h>
65 
66 #include <vm/uma.h>
67 #include <vm/vm.h>
68 
69 #include <dev/iommu/iommu.h>
70 
71 #include <ddb/ddb.h>
72 
73 SYSCTL_NODE(_hw, OID_AUTO, bus, CTLFLAG_RW | CTLFLAG_MPSAFE, NULL,
74     NULL);
75 SYSCTL_ROOT_NODE(OID_AUTO, dev, CTLFLAG_RW | CTLFLAG_MPSAFE, NULL,
76     NULL);
77 
78 static bool disable_failed_devs = false;
79 SYSCTL_BOOL(_hw_bus, OID_AUTO, disable_failed_devices, CTLFLAG_RWTUN, &disable_failed_devs,
80     0, "Do not retry attaching devices that return an error from DEVICE_ATTACH the first time");
81 
82 /*
83  * Used to attach drivers to devclasses.
84  */
85 typedef struct driverlink *driverlink_t;
86 struct driverlink {
87 	kobj_class_t	driver;
88 	TAILQ_ENTRY(driverlink) link;	/* list of drivers in devclass */
89 	int		pass;
90 	int		flags;
91 #define DL_DEFERRED_PROBE	1	/* Probe deferred on this */
92 	TAILQ_ENTRY(driverlink) passlink;
93 };
94 
95 /*
96  * Forward declarations
97  */
98 typedef TAILQ_HEAD(devclass_list, devclass) devclass_list_t;
99 typedef TAILQ_HEAD(driver_list, driverlink) driver_list_t;
100 typedef TAILQ_HEAD(device_list, _device) device_list_t;
101 
102 struct devclass {
103 	TAILQ_ENTRY(devclass) link;
104 	devclass_t	parent;		/* parent in devclass hierarchy */
105 	driver_list_t	drivers;	/* bus devclasses store drivers for bus */
106 	char		*name;
107 	device_t	*devices;	/* array of devices indexed by unit */
108 	int		maxunit;	/* size of devices array */
109 	int		flags;
110 #define DC_HAS_CHILDREN		1
111 
112 	struct sysctl_ctx_list sysctl_ctx;
113 	struct sysctl_oid *sysctl_tree;
114 };
115 
116 struct device_prop_elm {
117 	const char *name;
118 	void *val;
119 	void *dtr_ctx;
120 	device_prop_dtr_t dtr;
121 	LIST_ENTRY(device_prop_elm) link;
122 };
123 
124 TASKQUEUE_DEFINE_THREAD(bus);
125 
126 static void device_destroy_props(device_t dev);
127 
128 /**
129  * @brief Implementation of _device.
130  *
131  * The structure is named "_device" instead of "device" to avoid type confusion
132  * caused by other subsystems defining a (struct device).
133  */
134 struct _device {
135 	/*
136 	 * A device is a kernel object. The first field must be the
137 	 * current ops table for the object.
138 	 */
139 	KOBJ_FIELDS;
140 
141 	/*
142 	 * Device hierarchy.
143 	 */
144 	TAILQ_ENTRY(_device)	link;	/**< list of devices in parent */
145 	TAILQ_ENTRY(_device)	devlink; /**< global device list membership */
146 	device_t	parent;		/**< parent of this device  */
147 	device_list_t	children;	/**< list of child devices */
148 
149 	/*
150 	 * Details of this device.
151 	 */
152 	driver_t	*driver;	/**< current driver */
153 	devclass_t	devclass;	/**< current device class */
154 	int		unit;		/**< current unit number */
155 	char*		nameunit;	/**< name+unit e.g. foodev0 */
156 	char*		desc;		/**< driver specific description */
157 	u_int		busy;		/**< count of calls to device_busy() */
158 	device_state_t	state;		/**< current device state  */
159 	uint32_t	devflags;	/**< api level flags for device_get_flags() */
160 	u_int		flags;		/**< internal device flags  */
161 	u_int	order;			/**< order from device_add_child_ordered() */
162 	void	*ivars;			/**< instance variables  */
163 	void	*softc;			/**< current driver's variables  */
164 	LIST_HEAD(, device_prop_elm) props;
165 
166 	struct sysctl_ctx_list sysctl_ctx; /**< state for sysctl variables  */
167 	struct sysctl_oid *sysctl_tree;	/**< state for sysctl variables */
168 };
169 
170 static MALLOC_DEFINE(M_BUS, "bus", "Bus data structures");
171 static MALLOC_DEFINE(M_BUS_SC, "bus-sc", "Bus data structures, softc");
172 
173 EVENTHANDLER_LIST_DEFINE(device_attach);
174 EVENTHANDLER_LIST_DEFINE(device_detach);
175 EVENTHANDLER_LIST_DEFINE(device_nomatch);
176 EVENTHANDLER_LIST_DEFINE(dev_lookup);
177 
178 static void devctl2_init(void);
179 static bool device_frozen;
180 
181 #define DRIVERNAME(d)	((d)? d->name : "no driver")
182 #define DEVCLANAME(d)	((d)? d->name : "no devclass")
183 
184 #ifdef BUS_DEBUG
185 
186 static int bus_debug = 1;
187 SYSCTL_INT(_debug, OID_AUTO, bus_debug, CTLFLAG_RWTUN, &bus_debug, 0,
188     "Bus debug level");
189 #define PDEBUG(a)	if (bus_debug) {printf("%s:%d: ", __func__, __LINE__), printf a; printf("\n");}
190 #define DEVICENAME(d)	((d)? device_get_name(d): "no device")
191 
192 /**
193  * Produce the indenting, indent*2 spaces plus a '.' ahead of that to
194  * prevent syslog from deleting initial spaces
195  */
196 #define indentprintf(p)	do { int iJ; printf("."); for (iJ=0; iJ<indent; iJ++) printf("  "); printf p ; } while (0)
197 
198 static void print_device_short(device_t dev, int indent);
199 static void print_device(device_t dev, int indent);
200 void print_device_tree_short(device_t dev, int indent);
201 void print_device_tree(device_t dev, int indent);
202 static void print_driver_short(driver_t *driver, int indent);
203 static void print_driver(driver_t *driver, int indent);
204 static void print_driver_list(driver_list_t drivers, int indent);
205 static void print_devclass_short(devclass_t dc, int indent);
206 static void print_devclass(devclass_t dc, int indent);
207 void print_devclass_list_short(void);
208 void print_devclass_list(void);
209 
210 #else
211 /* Make the compiler ignore the function calls */
212 #define PDEBUG(a)			/* nop */
213 #define DEVICENAME(d)			/* nop */
214 
215 #define print_device_short(d,i)		/* nop */
216 #define print_device(d,i)		/* nop */
217 #define print_device_tree_short(d,i)	/* nop */
218 #define print_device_tree(d,i)		/* nop */
219 #define print_driver_short(d,i)		/* nop */
220 #define print_driver(d,i)		/* nop */
221 #define print_driver_list(d,i)		/* nop */
222 #define print_devclass_short(d,i)	/* nop */
223 #define print_devclass(d,i)		/* nop */
224 #define print_devclass_list_short()	/* nop */
225 #define print_devclass_list()		/* nop */
226 #endif
227 
228 /*
229  * dev sysctl tree
230  */
231 
232 enum {
233 	DEVCLASS_SYSCTL_PARENT,
234 };
235 
236 static int
237 devclass_sysctl_handler(SYSCTL_HANDLER_ARGS)
238 {
239 	devclass_t dc = (devclass_t)arg1;
240 	const char *value;
241 
242 	switch (arg2) {
243 	case DEVCLASS_SYSCTL_PARENT:
244 		value = dc->parent ? dc->parent->name : "";
245 		break;
246 	default:
247 		return (EINVAL);
248 	}
249 	return (SYSCTL_OUT_STR(req, value));
250 }
251 
252 static void
253 devclass_sysctl_init(devclass_t dc)
254 {
255 	if (dc->sysctl_tree != NULL)
256 		return;
257 	sysctl_ctx_init(&dc->sysctl_ctx);
258 	dc->sysctl_tree = SYSCTL_ADD_NODE(&dc->sysctl_ctx,
259 	    SYSCTL_STATIC_CHILDREN(_dev), OID_AUTO, dc->name,
260 	    CTLFLAG_RD | CTLFLAG_MPSAFE, NULL, "");
261 	SYSCTL_ADD_PROC(&dc->sysctl_ctx, SYSCTL_CHILDREN(dc->sysctl_tree),
262 	    OID_AUTO, "%parent",
263 	    CTLTYPE_STRING | CTLFLAG_RD | CTLFLAG_MPSAFE,
264 	    dc, DEVCLASS_SYSCTL_PARENT, devclass_sysctl_handler, "A",
265 	    "parent class");
266 }
267 
268 enum {
269 	DEVICE_SYSCTL_DESC,
270 	DEVICE_SYSCTL_DRIVER,
271 	DEVICE_SYSCTL_LOCATION,
272 	DEVICE_SYSCTL_PNPINFO,
273 	DEVICE_SYSCTL_PARENT,
274 	DEVICE_SYSCTL_IOMMU,
275 };
276 
277 static int
278 device_sysctl_handler(SYSCTL_HANDLER_ARGS)
279 {
280 	struct sbuf sb;
281 	device_t dev = (device_t)arg1;
282 	device_t iommu;
283 #ifdef IOMMU
284 	device_t requester;
285 #endif
286 	int error;
287 	uint16_t rid;
288 	const char *c;
289 
290 	sbuf_new_for_sysctl(&sb, NULL, 1024, req);
291 	sbuf_clear_flags(&sb, SBUF_INCLUDENUL);
292 	bus_topo_lock();
293 	switch (arg2) {
294 	case DEVICE_SYSCTL_DESC:
295 		sbuf_cat(&sb, dev->desc ? dev->desc : "");
296 		break;
297 	case DEVICE_SYSCTL_DRIVER:
298 		sbuf_cat(&sb, dev->driver ? dev->driver->name : "");
299 		break;
300 	case DEVICE_SYSCTL_LOCATION:
301 		bus_child_location(dev, &sb);
302 		break;
303 	case DEVICE_SYSCTL_PNPINFO:
304 		bus_child_pnpinfo(dev, &sb);
305 		break;
306 	case DEVICE_SYSCTL_PARENT:
307 		sbuf_cat(&sb, dev->parent ? dev->parent->nameunit : "");
308 		break;
309 	case DEVICE_SYSCTL_IOMMU:
310 		iommu = NULL;
311 		error = device_get_prop(dev, DEV_PROP_NAME_IOMMU,
312 		    (void **)&iommu);
313 		c = "";
314 		if (error == 0 && iommu != NULL) {
315 			sbuf_printf(&sb, "unit=%s", device_get_nameunit(iommu));
316 			c = " ";
317 		}
318 		rid = 0;
319 #ifdef IOMMU
320 		error = iommu_get_requester(dev, &requester, &rid);
321 		/*
322 		 * Do not return requester error from sysctl, iommu
323 		 * unit might be assigned by other means.
324 		 */
325 #else
326 		error = ENXIO;
327 #endif
328 		if (error == 0)
329 			sbuf_printf(&sb, "%srid=%#x", c, rid);
330 		break;
331 	default:
332 		error = EINVAL;
333 		goto out;
334 	}
335 	error = sbuf_finish(&sb);
336 out:
337 	bus_topo_unlock();
338 	sbuf_delete(&sb);
339 	return (error);
340 }
341 
342 static void
343 device_sysctl_init(device_t dev)
344 {
345 	devclass_t dc = dev->devclass;
346 	int domain;
347 
348 	if (dev->sysctl_tree != NULL)
349 		return;
350 	devclass_sysctl_init(dc);
351 	sysctl_ctx_init(&dev->sysctl_ctx);
352 	dev->sysctl_tree = SYSCTL_ADD_NODE_WITH_LABEL(&dev->sysctl_ctx,
353 	    SYSCTL_CHILDREN(dc->sysctl_tree), OID_AUTO,
354 	    dev->nameunit + strlen(dc->name),
355 	    CTLFLAG_RD | CTLFLAG_MPSAFE, NULL, "", "device_index");
356 	SYSCTL_ADD_PROC(&dev->sysctl_ctx, SYSCTL_CHILDREN(dev->sysctl_tree),
357 	    OID_AUTO, "%desc", CTLTYPE_STRING | CTLFLAG_RD | CTLFLAG_MPSAFE,
358 	    dev, DEVICE_SYSCTL_DESC, device_sysctl_handler, "A",
359 	    "device description");
360 	SYSCTL_ADD_PROC(&dev->sysctl_ctx, SYSCTL_CHILDREN(dev->sysctl_tree),
361 	    OID_AUTO, "%driver",
362 	    CTLTYPE_STRING | CTLFLAG_RD | CTLFLAG_MPSAFE,
363 	    dev, DEVICE_SYSCTL_DRIVER, device_sysctl_handler, "A",
364 	    "device driver name");
365 	SYSCTL_ADD_PROC(&dev->sysctl_ctx, SYSCTL_CHILDREN(dev->sysctl_tree),
366 	    OID_AUTO, "%location",
367 	    CTLTYPE_STRING | CTLFLAG_RD | CTLFLAG_MPSAFE,
368 	    dev, DEVICE_SYSCTL_LOCATION, device_sysctl_handler, "A",
369 	    "device location relative to parent");
370 	SYSCTL_ADD_PROC(&dev->sysctl_ctx, SYSCTL_CHILDREN(dev->sysctl_tree),
371 	    OID_AUTO, "%pnpinfo",
372 	    CTLTYPE_STRING | CTLFLAG_RD | CTLFLAG_MPSAFE,
373 	    dev, DEVICE_SYSCTL_PNPINFO, device_sysctl_handler, "A",
374 	    "device identification");
375 	SYSCTL_ADD_PROC(&dev->sysctl_ctx, SYSCTL_CHILDREN(dev->sysctl_tree),
376 	    OID_AUTO, "%parent",
377 	    CTLTYPE_STRING | CTLFLAG_RD | CTLFLAG_MPSAFE,
378 	    dev, DEVICE_SYSCTL_PARENT, device_sysctl_handler, "A",
379 	    "parent device");
380 	SYSCTL_ADD_PROC(&dev->sysctl_ctx, SYSCTL_CHILDREN(dev->sysctl_tree),
381 	    OID_AUTO, "%iommu",
382 	    CTLTYPE_STRING | CTLFLAG_RD | CTLFLAG_MPSAFE,
383 	    dev, DEVICE_SYSCTL_IOMMU, device_sysctl_handler, "A",
384 	    "iommu unit handling the device requests");
385 	if (bus_get_domain(dev, &domain) == 0)
386 		SYSCTL_ADD_INT(&dev->sysctl_ctx,
387 		    SYSCTL_CHILDREN(dev->sysctl_tree), OID_AUTO, "%domain",
388 		    CTLFLAG_RD | CTLFLAG_MPSAFE, NULL, domain, "NUMA domain");
389 }
390 
391 static void
392 device_sysctl_update(device_t dev)
393 {
394 	devclass_t dc = dev->devclass;
395 
396 	if (dev->sysctl_tree == NULL)
397 		return;
398 	sysctl_rename_oid(dev->sysctl_tree, dev->nameunit + strlen(dc->name));
399 }
400 
401 static void
402 device_sysctl_fini(device_t dev)
403 {
404 	if (dev->sysctl_tree == NULL)
405 		return;
406 	sysctl_ctx_free(&dev->sysctl_ctx);
407 	dev->sysctl_tree = NULL;
408 }
409 
410 static struct device_list bus_data_devices;
411 static int bus_data_generation = 1;
412 
413 static kobj_method_t null_methods[] = {
414 	KOBJMETHOD_END
415 };
416 
417 DEFINE_CLASS(null, null_methods, 0);
418 
419 void
420 bus_topo_assert(void)
421 {
422 
423 	GIANT_REQUIRED;
424 }
425 
426 struct mtx *
427 bus_topo_mtx(void)
428 {
429 
430 	return (&Giant);
431 }
432 
433 void
434 bus_topo_lock(void)
435 {
436 
437 	mtx_lock(bus_topo_mtx());
438 }
439 
440 void
441 bus_topo_unlock(void)
442 {
443 
444 	mtx_unlock(bus_topo_mtx());
445 }
446 
447 /*
448  * Bus pass implementation
449  */
450 
451 static driver_list_t passes = TAILQ_HEAD_INITIALIZER(passes);
452 static int bus_current_pass = BUS_PASS_ROOT;
453 
454 /**
455  * @internal
456  * @brief Register the pass level of a new driver attachment
457  *
458  * Register a new driver attachment's pass level.  If no driver
459  * attachment with the same pass level has been added, then @p new
460  * will be added to the global passes list.
461  *
462  * @param new		the new driver attachment
463  */
464 static void
465 driver_register_pass(struct driverlink *new)
466 {
467 	struct driverlink *dl;
468 
469 	/* We only consider pass numbers during boot. */
470 	if (bus_current_pass == BUS_PASS_DEFAULT)
471 		return;
472 
473 	/*
474 	 * Walk the passes list.  If we already know about this pass
475 	 * then there is nothing to do.  If we don't, then insert this
476 	 * driver link into the list.
477 	 */
478 	TAILQ_FOREACH(dl, &passes, passlink) {
479 		if (dl->pass < new->pass)
480 			continue;
481 		if (dl->pass == new->pass)
482 			return;
483 		TAILQ_INSERT_BEFORE(dl, new, passlink);
484 		return;
485 	}
486 	TAILQ_INSERT_TAIL(&passes, new, passlink);
487 }
488 
489 /**
490  * @brief Retrieve the current bus pass
491  *
492  * Retrieves the current bus pass level.  Call the BUS_NEW_PASS()
493  * method on the root bus to kick off a new device tree scan for each
494  * new pass level that has at least one driver.
495  */
496 int
497 bus_get_pass(void)
498 {
499 
500 	return (bus_current_pass);
501 }
502 
503 /**
504  * @brief Raise the current bus pass
505  *
506  * Raise the current bus pass level to @p pass.  Call the BUS_NEW_PASS()
507  * method on the root bus to kick off a new device tree scan for each
508  * new pass level that has at least one driver.
509  */
510 static void
511 bus_set_pass(int pass)
512 {
513 	struct driverlink *dl;
514 
515 	if (bus_current_pass > pass)
516 		panic("Attempt to lower bus pass level");
517 
518 	TAILQ_FOREACH(dl, &passes, passlink) {
519 		/* Skip pass values below the current pass level. */
520 		if (dl->pass <= bus_current_pass)
521 			continue;
522 
523 		/*
524 		 * Bail once we hit a driver with a pass level that is
525 		 * too high.
526 		 */
527 		if (dl->pass > pass)
528 			break;
529 
530 		/*
531 		 * Raise the pass level to the next level and rescan
532 		 * the tree.
533 		 */
534 		bus_current_pass = dl->pass;
535 		BUS_NEW_PASS(root_bus);
536 	}
537 
538 	/*
539 	 * If there isn't a driver registered for the requested pass,
540 	 * then bus_current_pass might still be less than 'pass'.  Set
541 	 * it to 'pass' in that case.
542 	 */
543 	if (bus_current_pass < pass)
544 		bus_current_pass = pass;
545 	KASSERT(bus_current_pass == pass, ("Failed to update bus pass level"));
546 }
547 
548 /*
549  * Devclass implementation
550  */
551 
552 static devclass_list_t devclasses = TAILQ_HEAD_INITIALIZER(devclasses);
553 
554 /**
555  * @internal
556  * @brief Find or create a device class
557  *
558  * If a device class with the name @p classname exists, return it,
559  * otherwise if @p create is non-zero create and return a new device
560  * class.
561  *
562  * If @p parentname is non-NULL, the parent of the devclass is set to
563  * the devclass of that name.
564  *
565  * @param classname	the devclass name to find or create
566  * @param parentname	the parent devclass name or @c NULL
567  * @param create	non-zero to create a devclass
568  */
569 static devclass_t
570 devclass_find_internal(const char *classname, const char *parentname,
571 		       int create)
572 {
573 	devclass_t dc;
574 
575 	PDEBUG(("looking for %s", classname));
576 	if (!classname)
577 		return (NULL);
578 
579 	TAILQ_FOREACH(dc, &devclasses, link) {
580 		if (!strcmp(dc->name, classname))
581 			break;
582 	}
583 
584 	if (create && !dc) {
585 		PDEBUG(("creating %s", classname));
586 		dc = malloc(sizeof(struct devclass) + strlen(classname) + 1,
587 		    M_BUS, M_WAITOK | M_ZERO);
588 		dc->parent = NULL;
589 		dc->name = (char*) (dc + 1);
590 		strcpy(dc->name, classname);
591 		TAILQ_INIT(&dc->drivers);
592 		TAILQ_INSERT_TAIL(&devclasses, dc, link);
593 
594 		bus_data_generation_update();
595 	}
596 
597 	/*
598 	 * If a parent class is specified, then set that as our parent so
599 	 * that this devclass will support drivers for the parent class as
600 	 * well.  If the parent class has the same name don't do this though
601 	 * as it creates a cycle that can trigger an infinite loop in
602 	 * device_probe_child() if a device exists for which there is no
603 	 * suitable driver.
604 	 */
605 	if (parentname && dc && !dc->parent &&
606 	    strcmp(classname, parentname) != 0) {
607 		dc->parent = devclass_find_internal(parentname, NULL, TRUE);
608 		dc->parent->flags |= DC_HAS_CHILDREN;
609 	}
610 
611 	return (dc);
612 }
613 
614 /**
615  * @brief Create a device class
616  *
617  * If a device class with the name @p classname exists, return it,
618  * otherwise create and return a new device class.
619  *
620  * @param classname	the devclass name to find or create
621  */
622 devclass_t
623 devclass_create(const char *classname)
624 {
625 	return (devclass_find_internal(classname, NULL, TRUE));
626 }
627 
628 /**
629  * @brief Find a device class
630  *
631  * If a device class with the name @p classname exists, return it,
632  * otherwise return @c NULL.
633  *
634  * @param classname	the devclass name to find
635  */
636 devclass_t
637 devclass_find(const char *classname)
638 {
639 	return (devclass_find_internal(classname, NULL, FALSE));
640 }
641 
642 /**
643  * @brief Register that a device driver has been added to a devclass
644  *
645  * Register that a device driver has been added to a devclass.  This
646  * is called by devclass_add_driver to accomplish the recursive
647  * notification of all the children classes of dc, as well as dc.
648  * Each layer will have BUS_DRIVER_ADDED() called for all instances of
649  * the devclass.
650  *
651  * We do a full search here of the devclass list at each iteration
652  * level to save storing children-lists in the devclass structure.  If
653  * we ever move beyond a few dozen devices doing this, we may need to
654  * reevaluate...
655  *
656  * @param dc		the devclass to edit
657  * @param driver	the driver that was just added
658  */
659 static void
660 devclass_driver_added(devclass_t dc, driver_t *driver)
661 {
662 	devclass_t parent;
663 	int i;
664 
665 	/*
666 	 * Call BUS_DRIVER_ADDED for any existing buses in this class.
667 	 */
668 	for (i = 0; i < dc->maxunit; i++)
669 		if (dc->devices[i] && device_is_attached(dc->devices[i]))
670 			BUS_DRIVER_ADDED(dc->devices[i], driver);
671 
672 	/*
673 	 * Walk through the children classes.  Since we only keep a
674 	 * single parent pointer around, we walk the entire list of
675 	 * devclasses looking for children.  We set the
676 	 * DC_HAS_CHILDREN flag when a child devclass is created on
677 	 * the parent, so we only walk the list for those devclasses
678 	 * that have children.
679 	 */
680 	if (!(dc->flags & DC_HAS_CHILDREN))
681 		return;
682 	parent = dc;
683 	TAILQ_FOREACH(dc, &devclasses, link) {
684 		if (dc->parent == parent)
685 			devclass_driver_added(dc, driver);
686 	}
687 }
688 
689 static void
690 device_handle_nomatch(device_t dev)
691 {
692 	BUS_PROBE_NOMATCH(dev->parent, dev);
693 	EVENTHANDLER_DIRECT_INVOKE(device_nomatch, dev);
694 	dev->flags |= DF_DONENOMATCH;
695 }
696 
697 /**
698  * @brief Add a device driver to a device class
699  *
700  * Add a device driver to a devclass. This is normally called
701  * automatically by DRIVER_MODULE(). The BUS_DRIVER_ADDED() method of
702  * all devices in the devclass will be called to allow them to attempt
703  * to re-probe any unmatched children.
704  *
705  * @param dc		the devclass to edit
706  * @param driver	the driver to register
707  */
708 int
709 devclass_add_driver(devclass_t dc, driver_t *driver, int pass, devclass_t *dcp)
710 {
711 	driverlink_t dl;
712 	devclass_t child_dc;
713 	const char *parentname;
714 
715 	PDEBUG(("%s", DRIVERNAME(driver)));
716 
717 	/* Don't allow invalid pass values. */
718 	if (pass <= BUS_PASS_ROOT)
719 		return (EINVAL);
720 
721 	dl = malloc(sizeof *dl, M_BUS, M_WAITOK|M_ZERO);
722 
723 	/*
724 	 * Compile the driver's methods. Also increase the reference count
725 	 * so that the class doesn't get freed when the last instance
726 	 * goes. This means we can safely use static methods and avoids a
727 	 * double-free in devclass_delete_driver.
728 	 */
729 	kobj_class_compile((kobj_class_t) driver);
730 
731 	/*
732 	 * If the driver has any base classes, make the
733 	 * devclass inherit from the devclass of the driver's
734 	 * first base class. This will allow the system to
735 	 * search for drivers in both devclasses for children
736 	 * of a device using this driver.
737 	 */
738 	if (driver->baseclasses)
739 		parentname = driver->baseclasses[0]->name;
740 	else
741 		parentname = NULL;
742 	child_dc = devclass_find_internal(driver->name, parentname, TRUE);
743 	if (dcp != NULL)
744 		*dcp = child_dc;
745 
746 	dl->driver = driver;
747 	TAILQ_INSERT_TAIL(&dc->drivers, dl, link);
748 	driver->refs++;		/* XXX: kobj_mtx */
749 	dl->pass = pass;
750 	driver_register_pass(dl);
751 
752 	if (device_frozen) {
753 		dl->flags |= DL_DEFERRED_PROBE;
754 	} else {
755 		devclass_driver_added(dc, driver);
756 	}
757 	bus_data_generation_update();
758 	return (0);
759 }
760 
761 /**
762  * @brief Register that a device driver has been deleted from a devclass
763  *
764  * Register that a device driver has been removed from a devclass.
765  * This is called by devclass_delete_driver to accomplish the
766  * recursive notification of all the children classes of busclass, as
767  * well as busclass.  Each layer will attempt to detach the driver
768  * from any devices that are children of the bus's devclass.  The function
769  * will return an error if a device fails to detach.
770  *
771  * We do a full search here of the devclass list at each iteration
772  * level to save storing children-lists in the devclass structure.  If
773  * we ever move beyond a few dozen devices doing this, we may need to
774  * reevaluate...
775  *
776  * @param busclass	the devclass of the parent bus
777  * @param dc		the devclass of the driver being deleted
778  * @param driver	the driver being deleted
779  */
780 static int
781 devclass_driver_deleted(devclass_t busclass, devclass_t dc, driver_t *driver)
782 {
783 	devclass_t parent;
784 	device_t dev;
785 	int error, i;
786 
787 	/*
788 	 * Disassociate from any devices.  We iterate through all the
789 	 * devices in the devclass of the driver and detach any which are
790 	 * using the driver and which have a parent in the devclass which
791 	 * we are deleting from.
792 	 *
793 	 * Note that since a driver can be in multiple devclasses, we
794 	 * should not detach devices which are not children of devices in
795 	 * the affected devclass.
796 	 *
797 	 * If we're frozen, we don't generate NOMATCH events. Mark to
798 	 * generate later.
799 	 */
800 	for (i = 0; i < dc->maxunit; i++) {
801 		if (dc->devices[i]) {
802 			dev = dc->devices[i];
803 			if (dev->driver == driver && dev->parent &&
804 			    dev->parent->devclass == busclass) {
805 				if ((error = device_detach(dev)) != 0)
806 					return (error);
807 				if (device_frozen) {
808 					dev->flags &= ~DF_DONENOMATCH;
809 					dev->flags |= DF_NEEDNOMATCH;
810 				} else {
811 					device_handle_nomatch(dev);
812 				}
813 			}
814 		}
815 	}
816 
817 	/*
818 	 * Walk through the children classes.  Since we only keep a
819 	 * single parent pointer around, we walk the entire list of
820 	 * devclasses looking for children.  We set the
821 	 * DC_HAS_CHILDREN flag when a child devclass is created on
822 	 * the parent, so we only walk the list for those devclasses
823 	 * that have children.
824 	 */
825 	if (!(busclass->flags & DC_HAS_CHILDREN))
826 		return (0);
827 	parent = busclass;
828 	TAILQ_FOREACH(busclass, &devclasses, link) {
829 		if (busclass->parent == parent) {
830 			error = devclass_driver_deleted(busclass, dc, driver);
831 			if (error)
832 				return (error);
833 		}
834 	}
835 	return (0);
836 }
837 
838 /**
839  * @brief Delete a device driver from a device class
840  *
841  * Delete a device driver from a devclass. This is normally called
842  * automatically by DRIVER_MODULE().
843  *
844  * If the driver is currently attached to any devices,
845  * devclass_delete_driver() will first attempt to detach from each
846  * device. If one of the detach calls fails, the driver will not be
847  * deleted.
848  *
849  * @param dc		the devclass to edit
850  * @param driver	the driver to unregister
851  */
852 int
853 devclass_delete_driver(devclass_t busclass, driver_t *driver)
854 {
855 	devclass_t dc = devclass_find(driver->name);
856 	driverlink_t dl;
857 	int error;
858 
859 	PDEBUG(("%s from devclass %s", driver->name, DEVCLANAME(busclass)));
860 
861 	if (!dc)
862 		return (0);
863 
864 	/*
865 	 * Find the link structure in the bus' list of drivers.
866 	 */
867 	TAILQ_FOREACH(dl, &busclass->drivers, link) {
868 		if (dl->driver == driver)
869 			break;
870 	}
871 
872 	if (!dl) {
873 		PDEBUG(("%s not found in %s list", driver->name,
874 		    busclass->name));
875 		return (ENOENT);
876 	}
877 
878 	error = devclass_driver_deleted(busclass, dc, driver);
879 	if (error != 0)
880 		return (error);
881 
882 	TAILQ_REMOVE(&busclass->drivers, dl, link);
883 	free(dl, M_BUS);
884 
885 	/* XXX: kobj_mtx */
886 	driver->refs--;
887 	if (driver->refs == 0)
888 		kobj_class_free((kobj_class_t) driver);
889 
890 	bus_data_generation_update();
891 	return (0);
892 }
893 
894 /**
895  * @brief Quiesces a set of device drivers from a device class
896  *
897  * Quiesce a device driver from a devclass. This is normally called
898  * automatically by DRIVER_MODULE().
899  *
900  * If the driver is currently attached to any devices,
901  * devclass_quiesece_driver() will first attempt to quiesce each
902  * device.
903  *
904  * @param dc		the devclass to edit
905  * @param driver	the driver to unregister
906  */
907 static int
908 devclass_quiesce_driver(devclass_t busclass, driver_t *driver)
909 {
910 	devclass_t dc = devclass_find(driver->name);
911 	driverlink_t dl;
912 	device_t dev;
913 	int i;
914 	int error;
915 
916 	PDEBUG(("%s from devclass %s", driver->name, DEVCLANAME(busclass)));
917 
918 	if (!dc)
919 		return (0);
920 
921 	/*
922 	 * Find the link structure in the bus' list of drivers.
923 	 */
924 	TAILQ_FOREACH(dl, &busclass->drivers, link) {
925 		if (dl->driver == driver)
926 			break;
927 	}
928 
929 	if (!dl) {
930 		PDEBUG(("%s not found in %s list", driver->name,
931 		    busclass->name));
932 		return (ENOENT);
933 	}
934 
935 	/*
936 	 * Quiesce all devices.  We iterate through all the devices in
937 	 * the devclass of the driver and quiesce any which are using
938 	 * the driver and which have a parent in the devclass which we
939 	 * are quiescing.
940 	 *
941 	 * Note that since a driver can be in multiple devclasses, we
942 	 * should not quiesce devices which are not children of
943 	 * devices in the affected devclass.
944 	 */
945 	for (i = 0; i < dc->maxunit; i++) {
946 		if (dc->devices[i]) {
947 			dev = dc->devices[i];
948 			if (dev->driver == driver && dev->parent &&
949 			    dev->parent->devclass == busclass) {
950 				if ((error = device_quiesce(dev)) != 0)
951 					return (error);
952 			}
953 		}
954 	}
955 
956 	return (0);
957 }
958 
959 /**
960  * @internal
961  */
962 static driverlink_t
963 devclass_find_driver_internal(devclass_t dc, const char *classname)
964 {
965 	driverlink_t dl;
966 
967 	PDEBUG(("%s in devclass %s", classname, DEVCLANAME(dc)));
968 
969 	TAILQ_FOREACH(dl, &dc->drivers, link) {
970 		if (!strcmp(dl->driver->name, classname))
971 			return (dl);
972 	}
973 
974 	PDEBUG(("not found"));
975 	return (NULL);
976 }
977 
978 /**
979  * @brief Return the name of the devclass
980  */
981 const char *
982 devclass_get_name(devclass_t dc)
983 {
984 	return (dc->name);
985 }
986 
987 /**
988  * @brief Find a device given a unit number
989  *
990  * @param dc		the devclass to search
991  * @param unit		the unit number to search for
992  *
993  * @returns		the device with the given unit number or @c
994  *			NULL if there is no such device
995  */
996 device_t
997 devclass_get_device(devclass_t dc, int unit)
998 {
999 	if (dc == NULL || unit < 0 || unit >= dc->maxunit)
1000 		return (NULL);
1001 	return (dc->devices[unit]);
1002 }
1003 
1004 /**
1005  * @brief Find the softc field of a device given a unit number
1006  *
1007  * @param dc		the devclass to search
1008  * @param unit		the unit number to search for
1009  *
1010  * @returns		the softc field of the device with the given
1011  *			unit number or @c NULL if there is no such
1012  *			device
1013  */
1014 void *
1015 devclass_get_softc(devclass_t dc, int unit)
1016 {
1017 	device_t dev;
1018 
1019 	dev = devclass_get_device(dc, unit);
1020 	if (!dev)
1021 		return (NULL);
1022 
1023 	return (device_get_softc(dev));
1024 }
1025 
1026 /**
1027  * @brief Get a list of devices in the devclass
1028  *
1029  * An array containing a list of all the devices in the given devclass
1030  * is allocated and returned in @p *devlistp. The number of devices
1031  * in the array is returned in @p *devcountp. The caller should free
1032  * the array using @c free(p, M_TEMP), even if @p *devcountp is 0.
1033  *
1034  * @param dc		the devclass to examine
1035  * @param devlistp	points at location for array pointer return
1036  *			value
1037  * @param devcountp	points at location for array size return value
1038  *
1039  * @retval 0		success
1040  * @retval ENOMEM	the array allocation failed
1041  */
1042 int
1043 devclass_get_devices(devclass_t dc, device_t **devlistp, int *devcountp)
1044 {
1045 	int count, i;
1046 	device_t *list;
1047 
1048 	count = devclass_get_count(dc);
1049 	list = malloc(count * sizeof(device_t), M_TEMP, M_NOWAIT|M_ZERO);
1050 	if (!list)
1051 		return (ENOMEM);
1052 
1053 	count = 0;
1054 	for (i = 0; i < dc->maxunit; i++) {
1055 		if (dc->devices[i]) {
1056 			list[count] = dc->devices[i];
1057 			count++;
1058 		}
1059 	}
1060 
1061 	*devlistp = list;
1062 	*devcountp = count;
1063 
1064 	return (0);
1065 }
1066 
1067 /**
1068  * @brief Get a list of drivers in the devclass
1069  *
1070  * An array containing a list of pointers to all the drivers in the
1071  * given devclass is allocated and returned in @p *listp.  The number
1072  * of drivers in the array is returned in @p *countp. The caller should
1073  * free the array using @c free(p, M_TEMP).
1074  *
1075  * @param dc		the devclass to examine
1076  * @param listp		gives location for array pointer return value
1077  * @param countp	gives location for number of array elements
1078  *			return value
1079  *
1080  * @retval 0		success
1081  * @retval ENOMEM	the array allocation failed
1082  */
1083 int
1084 devclass_get_drivers(devclass_t dc, driver_t ***listp, int *countp)
1085 {
1086 	driverlink_t dl;
1087 	driver_t **list;
1088 	int count;
1089 
1090 	count = 0;
1091 	TAILQ_FOREACH(dl, &dc->drivers, link)
1092 		count++;
1093 	list = malloc(count * sizeof(driver_t *), M_TEMP, M_NOWAIT);
1094 	if (list == NULL)
1095 		return (ENOMEM);
1096 
1097 	count = 0;
1098 	TAILQ_FOREACH(dl, &dc->drivers, link) {
1099 		list[count] = dl->driver;
1100 		count++;
1101 	}
1102 	*listp = list;
1103 	*countp = count;
1104 
1105 	return (0);
1106 }
1107 
1108 /**
1109  * @brief Get the number of devices in a devclass
1110  *
1111  * @param dc		the devclass to examine
1112  */
1113 int
1114 devclass_get_count(devclass_t dc)
1115 {
1116 	int count, i;
1117 
1118 	count = 0;
1119 	for (i = 0; i < dc->maxunit; i++)
1120 		if (dc->devices[i])
1121 			count++;
1122 	return (count);
1123 }
1124 
1125 /**
1126  * @brief Get the maximum unit number used in a devclass
1127  *
1128  * Note that this is one greater than the highest currently-allocated unit.  If
1129  * @p dc is NULL, @c -1 is returned to indicate that not even the devclass has
1130  * been allocated yet.
1131  *
1132  * @param dc		the devclass to examine
1133  */
1134 int
1135 devclass_get_maxunit(devclass_t dc)
1136 {
1137 	if (dc == NULL)
1138 		return (-1);
1139 	return (dc->maxunit);
1140 }
1141 
1142 /**
1143  * @brief Find a free unit number in a devclass
1144  *
1145  * This function searches for the first unused unit number greater
1146  * that or equal to @p unit. Note: This can return INT_MAX which
1147  * may be rejected elsewhere.
1148  *
1149  * @param dc		the devclass to examine
1150  * @param unit		the first unit number to check
1151  */
1152 int
1153 devclass_find_free_unit(devclass_t dc, int unit)
1154 {
1155 	if (dc == NULL)
1156 		return (unit);
1157 	while (unit < dc->maxunit && dc->devices[unit] != NULL)
1158 		unit++;
1159 	return (unit);
1160 }
1161 
1162 /**
1163  * @brief Set the parent of a devclass
1164  *
1165  * The parent class is normally initialised automatically by
1166  * DRIVER_MODULE().
1167  *
1168  * @param dc		the devclass to edit
1169  * @param pdc		the new parent devclass
1170  */
1171 void
1172 devclass_set_parent(devclass_t dc, devclass_t pdc)
1173 {
1174 	dc->parent = pdc;
1175 }
1176 
1177 /**
1178  * @brief Get the parent of a devclass
1179  *
1180  * @param dc		the devclass to examine
1181  */
1182 devclass_t
1183 devclass_get_parent(devclass_t dc)
1184 {
1185 	return (dc->parent);
1186 }
1187 
1188 struct sysctl_ctx_list *
1189 devclass_get_sysctl_ctx(devclass_t dc)
1190 {
1191 	return (&dc->sysctl_ctx);
1192 }
1193 
1194 struct sysctl_oid *
1195 devclass_get_sysctl_tree(devclass_t dc)
1196 {
1197 	return (dc->sysctl_tree);
1198 }
1199 
1200 /**
1201  * @internal
1202  * @brief Allocate a unit number
1203  *
1204  * On entry, @p *unitp is the desired unit number (or @c DEVICE_UNIT_ANY if any
1205  * will do). The allocated unit number is returned in @p *unitp.
1206  *
1207  * @param dc		the devclass to allocate from
1208  * @param unitp		points at the location for the allocated unit
1209  *			number
1210  *
1211  * @retval 0		success
1212  * @retval EEXIST	the requested unit number is already allocated
1213  * @retval ENOMEM	memory allocation failure
1214  * @retval EINVAL	unit is negative or we've run out of units
1215  */
1216 static int
1217 devclass_alloc_unit(devclass_t dc, device_t dev, int *unitp)
1218 {
1219 	const char *s;
1220 	int unit = *unitp;
1221 
1222 	PDEBUG(("unit %d in devclass %s", unit, DEVCLANAME(dc)));
1223 
1224 	/* Ask the parent bus if it wants to wire this device. */
1225 	if (unit == DEVICE_UNIT_ANY)
1226 		BUS_HINT_DEVICE_UNIT(device_get_parent(dev), dev, dc->name,
1227 		    &unit);
1228 
1229 	/* Unit numbers are either DEVICE_UNIT_ANY or in [0,INT_MAX) */
1230 	if ((unit < 0 && unit != DEVICE_UNIT_ANY) || unit == INT_MAX)
1231 		return (EINVAL);
1232 
1233 	/* If we were given a wired unit number, check for existing device */
1234 	if (unit != DEVICE_UNIT_ANY) {
1235 		if (unit < dc->maxunit && dc->devices[unit] != NULL) {
1236 			if (bootverbose)
1237 				printf("%s: %s%d already exists; skipping it\n",
1238 				    dc->name, dc->name, *unitp);
1239 			return (EEXIST);
1240 		}
1241 	} else {
1242 		/* Unwired device, find the next available slot for it */
1243 		unit = 0;
1244 		for (unit = 0; unit < INT_MAX; unit++) {
1245 			/* If this device slot is already in use, skip it. */
1246 			if (unit < dc->maxunit && dc->devices[unit] != NULL)
1247 				continue;
1248 
1249 			/* If there is an "at" hint for a unit then skip it. */
1250 			if (resource_string_value(dc->name, unit, "at", &s) ==
1251 			    0)
1252 				continue;
1253 
1254 			break;
1255 		}
1256 	}
1257 
1258 	/*
1259 	 * Unit numbers must be in the range [0, INT_MAX), so exclude INT_MAX as
1260 	 * too large. We constrain maxunit below to be <= INT_MAX. This means we
1261 	 * can treat unit and maxunit as normal integers with normal math
1262 	 * everywhere and we only have to flag INT_MAX as invalid.
1263 	 */
1264 	if (unit == INT_MAX)
1265 		return (EINVAL);
1266 
1267 	/*
1268 	 * We've selected a unit beyond the length of the table, so let's extend
1269 	 * the table to make room for all units up to and including this one.
1270 	 */
1271 	if (unit >= dc->maxunit) {
1272 		int newsize;
1273 
1274 		newsize = unit + 1;
1275 		dc->devices = reallocf(dc->devices,
1276 		    newsize * sizeof(*dc->devices), M_BUS, M_WAITOK);
1277 		memset(dc->devices + dc->maxunit, 0,
1278 		    sizeof(device_t) * (newsize - dc->maxunit));
1279 		dc->maxunit = newsize;
1280 	}
1281 	PDEBUG(("now: unit %d in devclass %s", unit, DEVCLANAME(dc)));
1282 
1283 	*unitp = unit;
1284 	return (0);
1285 }
1286 
1287 /**
1288  * @internal
1289  * @brief Add a device to a devclass
1290  *
1291  * A unit number is allocated for the device (using the device's
1292  * preferred unit number if any) and the device is registered in the
1293  * devclass. This allows the device to be looked up by its unit
1294  * number, e.g. by decoding a dev_t minor number.
1295  *
1296  * @param dc		the devclass to add to
1297  * @param dev		the device to add
1298  *
1299  * @retval 0		success
1300  * @retval EEXIST	the requested unit number is already allocated
1301  * @retval ENOMEM	memory allocation failure
1302  * @retval EINVAL	Unit number invalid or too many units
1303  */
1304 static int
1305 devclass_add_device(devclass_t dc, device_t dev)
1306 {
1307 	int buflen, error;
1308 
1309 	PDEBUG(("%s in devclass %s", DEVICENAME(dev), DEVCLANAME(dc)));
1310 
1311 	buflen = snprintf(NULL, 0, "%s%d$", dc->name, INT_MAX);
1312 	if (buflen < 0)
1313 		return (ENOMEM);
1314 	dev->nameunit = malloc(buflen, M_BUS, M_WAITOK|M_ZERO);
1315 
1316 	if ((error = devclass_alloc_unit(dc, dev, &dev->unit)) != 0) {
1317 		free(dev->nameunit, M_BUS);
1318 		dev->nameunit = NULL;
1319 		return (error);
1320 	}
1321 	dc->devices[dev->unit] = dev;
1322 	dev->devclass = dc;
1323 	snprintf(dev->nameunit, buflen, "%s%d", dc->name, dev->unit);
1324 
1325 	return (0);
1326 }
1327 
1328 /**
1329  * @internal
1330  * @brief Delete a device from a devclass
1331  *
1332  * The device is removed from the devclass's device list and its unit
1333  * number is freed.
1334 
1335  * @param dc		the devclass to delete from
1336  * @param dev		the device to delete
1337  *
1338  * @retval 0		success
1339  */
1340 static int
1341 devclass_delete_device(devclass_t dc, device_t dev)
1342 {
1343 	if (!dc || !dev)
1344 		return (0);
1345 
1346 	PDEBUG(("%s in devclass %s", DEVICENAME(dev), DEVCLANAME(dc)));
1347 
1348 	if (dev->devclass != dc || dc->devices[dev->unit] != dev)
1349 		panic("devclass_delete_device: inconsistent device class");
1350 	dc->devices[dev->unit] = NULL;
1351 	if (dev->flags & DF_WILDCARD)
1352 		dev->unit = DEVICE_UNIT_ANY;
1353 	dev->devclass = NULL;
1354 	free(dev->nameunit, M_BUS);
1355 	dev->nameunit = NULL;
1356 
1357 	return (0);
1358 }
1359 
1360 /**
1361  * @internal
1362  * @brief Make a new device and add it as a child of @p parent
1363  *
1364  * @param parent	the parent of the new device
1365  * @param name		the devclass name of the new device or @c NULL
1366  *			to leave the devclass unspecified
1367  * @parem unit		the unit number of the new device of @c DEVICE_UNIT_ANY
1368  *			to leave the unit number unspecified
1369  *
1370  * @returns the new device
1371  */
1372 static device_t
1373 make_device(device_t parent, const char *name, int unit)
1374 {
1375 	device_t dev;
1376 	devclass_t dc;
1377 
1378 	PDEBUG(("%s at %s as unit %d", name, DEVICENAME(parent), unit));
1379 
1380 	if (name) {
1381 		dc = devclass_find_internal(name, NULL, TRUE);
1382 		if (!dc) {
1383 			printf("make_device: can't find device class %s\n",
1384 			    name);
1385 			return (NULL);
1386 		}
1387 	} else {
1388 		dc = NULL;
1389 	}
1390 
1391 	dev = malloc(sizeof(*dev), M_BUS, M_WAITOK|M_ZERO);
1392 	dev->parent = parent;
1393 	TAILQ_INIT(&dev->children);
1394 	kobj_init((kobj_t) dev, &null_class);
1395 	dev->driver = NULL;
1396 	dev->devclass = NULL;
1397 	dev->unit = unit;
1398 	dev->nameunit = NULL;
1399 	dev->desc = NULL;
1400 	dev->busy = 0;
1401 	dev->devflags = 0;
1402 	dev->flags = DF_ENABLED;
1403 	dev->order = 0;
1404 	if (unit == DEVICE_UNIT_ANY)
1405 		dev->flags |= DF_WILDCARD;
1406 	if (name) {
1407 		dev->flags |= DF_FIXEDCLASS;
1408 		if (devclass_add_device(dc, dev)) {
1409 			kobj_delete((kobj_t) dev, M_BUS);
1410 			return (NULL);
1411 		}
1412 	}
1413 	if (parent != NULL && device_has_quiet_children(parent))
1414 		dev->flags |= DF_QUIET | DF_QUIET_CHILDREN;
1415 	dev->ivars = NULL;
1416 	dev->softc = NULL;
1417 	LIST_INIT(&dev->props);
1418 
1419 	dev->state = DS_NOTPRESENT;
1420 
1421 	TAILQ_INSERT_TAIL(&bus_data_devices, dev, devlink);
1422 	bus_data_generation_update();
1423 
1424 	return (dev);
1425 }
1426 
1427 /**
1428  * @internal
1429  * @brief Print a description of a device.
1430  */
1431 static int
1432 device_print_child(device_t dev, device_t child)
1433 {
1434 	int retval = 0;
1435 
1436 	if (device_is_alive(child))
1437 		retval += BUS_PRINT_CHILD(dev, child);
1438 	else
1439 		retval += device_printf(child, " not found\n");
1440 
1441 	return (retval);
1442 }
1443 
1444 /**
1445  * @brief Create a new device
1446  *
1447  * This creates a new device and adds it as a child of an existing
1448  * parent device. The new device will be added after the last existing
1449  * child with order zero.
1450  *
1451  * @param dev		the device which will be the parent of the
1452  *			new child device
1453  * @param name		devclass name for new device or @c NULL if not
1454  *			specified
1455  * @param unit		unit number for new device or @c DEVICE_UNIT_ANY if not
1456  *			specified
1457  *
1458  * @returns		the new device
1459  */
1460 device_t
1461 device_add_child(device_t dev, const char *name, int unit)
1462 {
1463 	return (device_add_child_ordered(dev, 0, name, unit));
1464 }
1465 
1466 /**
1467  * @brief Create a new device
1468  *
1469  * This creates a new device and adds it as a child of an existing
1470  * parent device. The new device will be added after the last existing
1471  * child with the same order.
1472  *
1473  * @param dev		the device which will be the parent of the
1474  *			new child device
1475  * @param order		a value which is used to partially sort the
1476  *			children of @p dev - devices created using
1477  *			lower values of @p order appear first in @p
1478  *			dev's list of children
1479  * @param name		devclass name for new device or @c NULL if not
1480  *			specified
1481  * @param unit		unit number for new device or @c DEVICE_UNIT_ANY if not
1482  *			specified
1483  *
1484  * @returns		the new device
1485  */
1486 device_t
1487 device_add_child_ordered(device_t dev, u_int order, const char *name, int unit)
1488 {
1489 	device_t child;
1490 	device_t place;
1491 
1492 	PDEBUG(("%s at %s with order %u as unit %d",
1493 	    name, DEVICENAME(dev), order, unit));
1494 	KASSERT(name != NULL || unit == DEVICE_UNIT_ANY,
1495 	    ("child device with wildcard name and specific unit number"));
1496 
1497 	child = make_device(dev, name, unit);
1498 	if (child == NULL)
1499 		return (child);
1500 	child->order = order;
1501 
1502 	TAILQ_FOREACH(place, &dev->children, link) {
1503 		if (place->order > order)
1504 			break;
1505 	}
1506 
1507 	if (place) {
1508 		/*
1509 		 * The device 'place' is the first device whose order is
1510 		 * greater than the new child.
1511 		 */
1512 		TAILQ_INSERT_BEFORE(place, child, link);
1513 	} else {
1514 		/*
1515 		 * The new child's order is greater or equal to the order of
1516 		 * any existing device. Add the child to the tail of the list.
1517 		 */
1518 		TAILQ_INSERT_TAIL(&dev->children, child, link);
1519 	}
1520 
1521 	bus_data_generation_update();
1522 	return (child);
1523 }
1524 
1525 /**
1526  * @brief Delete a device
1527  *
1528  * This function deletes a device along with all of its children. If
1529  * the device currently has a driver attached to it, the device is
1530  * detached first using device_detach().
1531  *
1532  * @param dev		the parent device
1533  * @param child		the device to delete
1534  *
1535  * @retval 0		success
1536  * @retval non-zero	a unit error code describing the error
1537  */
1538 int
1539 device_delete_child(device_t dev, device_t child)
1540 {
1541 	int error;
1542 	device_t grandchild;
1543 
1544 	PDEBUG(("%s from %s", DEVICENAME(child), DEVICENAME(dev)));
1545 
1546 	/*
1547 	 * Detach child.  Ideally this cleans up any grandchild
1548 	 * devices.
1549 	 */
1550 	if ((error = device_detach(child)) != 0)
1551 		return (error);
1552 
1553 	/* Delete any grandchildren left after detach. */
1554 	while ((grandchild = TAILQ_FIRST(&child->children)) != NULL) {
1555 		error = device_delete_child(child, grandchild);
1556 		if (error)
1557 			return (error);
1558 	}
1559 
1560 	device_destroy_props(child);
1561 	if (child->devclass)
1562 		devclass_delete_device(child->devclass, child);
1563 	if (child->parent)
1564 		BUS_CHILD_DELETED(dev, child);
1565 	TAILQ_REMOVE(&dev->children, child, link);
1566 	TAILQ_REMOVE(&bus_data_devices, child, devlink);
1567 	kobj_delete((kobj_t) child, M_BUS);
1568 
1569 	bus_data_generation_update();
1570 	return (0);
1571 }
1572 
1573 /**
1574  * @brief Delete all children devices of the given device, if any.
1575  *
1576  * This function deletes all children devices of the given device, if
1577  * any, using the device_delete_child() function for each device it
1578  * finds. If a child device cannot be deleted, this function will
1579  * return an error code.
1580  *
1581  * @param dev		the parent device
1582  *
1583  * @retval 0		success
1584  * @retval non-zero	a device would not detach
1585  */
1586 int
1587 device_delete_children(device_t dev)
1588 {
1589 	device_t child;
1590 	int error;
1591 
1592 	PDEBUG(("Deleting all children of %s", DEVICENAME(dev)));
1593 
1594 	error = 0;
1595 
1596 	while ((child = TAILQ_FIRST(&dev->children)) != NULL) {
1597 		error = device_delete_child(dev, child);
1598 		if (error) {
1599 			PDEBUG(("Failed deleting %s", DEVICENAME(child)));
1600 			break;
1601 		}
1602 	}
1603 	return (error);
1604 }
1605 
1606 /**
1607  * @brief Find a device given a unit number
1608  *
1609  * This is similar to devclass_get_devices() but only searches for
1610  * devices which have @p dev as a parent.
1611  *
1612  * @param dev		the parent device to search
1613  * @param unit		the unit number to search for.  If the unit is
1614  *			@c DEVICE_UNIT_ANY, return the first child of @p dev
1615  *			which has name @p classname (that is, the one with the
1616  *			lowest unit.)
1617  *
1618  * @returns		the device with the given unit number or @c
1619  *			NULL if there is no such device
1620  */
1621 device_t
1622 device_find_child(device_t dev, const char *classname, int unit)
1623 {
1624 	devclass_t dc;
1625 	device_t child;
1626 
1627 	dc = devclass_find(classname);
1628 	if (!dc)
1629 		return (NULL);
1630 
1631 	if (unit != DEVICE_UNIT_ANY) {
1632 		child = devclass_get_device(dc, unit);
1633 		if (child && child->parent == dev)
1634 			return (child);
1635 	} else {
1636 		for (unit = 0; unit < devclass_get_maxunit(dc); unit++) {
1637 			child = devclass_get_device(dc, unit);
1638 			if (child && child->parent == dev)
1639 				return (child);
1640 		}
1641 	}
1642 	return (NULL);
1643 }
1644 
1645 /**
1646  * @internal
1647  */
1648 static driverlink_t
1649 first_matching_driver(devclass_t dc, device_t dev)
1650 {
1651 	if (dev->devclass)
1652 		return (devclass_find_driver_internal(dc, dev->devclass->name));
1653 	return (TAILQ_FIRST(&dc->drivers));
1654 }
1655 
1656 /**
1657  * @internal
1658  */
1659 static driverlink_t
1660 next_matching_driver(devclass_t dc, device_t dev, driverlink_t last)
1661 {
1662 	if (dev->devclass) {
1663 		driverlink_t dl;
1664 		for (dl = TAILQ_NEXT(last, link); dl; dl = TAILQ_NEXT(dl, link))
1665 			if (!strcmp(dev->devclass->name, dl->driver->name))
1666 				return (dl);
1667 		return (NULL);
1668 	}
1669 	return (TAILQ_NEXT(last, link));
1670 }
1671 
1672 /**
1673  * @internal
1674  */
1675 int
1676 device_probe_child(device_t dev, device_t child)
1677 {
1678 	devclass_t dc;
1679 	driverlink_t best = NULL;
1680 	driverlink_t dl;
1681 	int result, pri = 0;
1682 	/* We should preserve the devclass (or lack of) set by the bus. */
1683 	int hasclass = (child->devclass != NULL);
1684 
1685 	bus_topo_assert();
1686 
1687 	dc = dev->devclass;
1688 	if (!dc)
1689 		panic("device_probe_child: parent device has no devclass");
1690 
1691 	/*
1692 	 * If the state is already probed, then return.
1693 	 */
1694 	if (child->state == DS_ALIVE)
1695 		return (0);
1696 
1697 	for (; dc; dc = dc->parent) {
1698 		for (dl = first_matching_driver(dc, child);
1699 		     dl;
1700 		     dl = next_matching_driver(dc, child, dl)) {
1701 			/* If this driver's pass is too high, then ignore it. */
1702 			if (dl->pass > bus_current_pass)
1703 				continue;
1704 
1705 			PDEBUG(("Trying %s", DRIVERNAME(dl->driver)));
1706 			result = device_set_driver(child, dl->driver);
1707 			if (result == ENOMEM)
1708 				return (result);
1709 			else if (result != 0)
1710 				continue;
1711 			if (!hasclass) {
1712 				if (device_set_devclass(child,
1713 				    dl->driver->name) != 0) {
1714 					char const * devname =
1715 					    device_get_name(child);
1716 					if (devname == NULL)
1717 						devname = "(unknown)";
1718 					printf("driver bug: Unable to set "
1719 					    "devclass (class: %s "
1720 					    "devname: %s)\n",
1721 					    dl->driver->name,
1722 					    devname);
1723 					(void)device_set_driver(child, NULL);
1724 					continue;
1725 				}
1726 			}
1727 
1728 			/* Fetch any flags for the device before probing. */
1729 			resource_int_value(dl->driver->name, child->unit,
1730 			    "flags", &child->devflags);
1731 
1732 			result = DEVICE_PROBE(child);
1733 
1734 			/*
1735 			 * If probe returns 0, this is the driver that wins this
1736 			 * device.
1737 			 */
1738 			if (result == 0) {
1739 				best = dl;
1740 				pri = 0;
1741 				goto exact_match;	/* C doesn't have break 2 */
1742 			}
1743 
1744 			/* Reset flags and devclass before the next probe. */
1745 			child->devflags = 0;
1746 			if (!hasclass)
1747 				(void)device_set_devclass(child, NULL);
1748 
1749 			/*
1750 			 * Reset DF_QUIET in case this driver doesn't
1751 			 * end up as the best driver.
1752 			 */
1753 			device_verbose(child);
1754 
1755 			/*
1756 			 * Probes that return BUS_PROBE_NOWILDCARD or lower
1757 			 * only match on devices whose driver was explicitly
1758 			 * specified.
1759 			 */
1760 			if (result <= BUS_PROBE_NOWILDCARD &&
1761 			    !(child->flags & DF_FIXEDCLASS)) {
1762 				result = ENXIO;
1763 			}
1764 
1765 			/*
1766 			 * The driver returned an error so it
1767 			 * certainly doesn't match.
1768 			 */
1769 			if (result > 0) {
1770 				(void)device_set_driver(child, NULL);
1771 				continue;
1772 			}
1773 
1774 			/*
1775 			 * A priority lower than SUCCESS, remember the
1776 			 * best matching driver. Initialise the value
1777 			 * of pri for the first match.
1778 			 */
1779 			if (best == NULL || result > pri) {
1780 				best = dl;
1781 				pri = result;
1782 				continue;
1783 			}
1784 		}
1785 	}
1786 
1787 	if (best == NULL)
1788 		return (ENXIO);
1789 
1790 	/*
1791 	 * If we found a driver, change state and initialise the devclass.
1792 	 * Set the winning driver, devclass, and flags.
1793 	 */
1794 	result = device_set_driver(child, best->driver);
1795 	if (result != 0)
1796 		return (result);
1797 	if (!child->devclass) {
1798 		result = device_set_devclass(child, best->driver->name);
1799 		if (result != 0) {
1800 			(void)device_set_driver(child, NULL);
1801 			return (result);
1802 		}
1803 	}
1804 	resource_int_value(best->driver->name, child->unit,
1805 	    "flags", &child->devflags);
1806 
1807 	/*
1808 	 * A bit bogus. Call the probe method again to make sure that we have
1809 	 * the right description for the device.
1810 	 */
1811 	result = DEVICE_PROBE(child);
1812 	if (result > 0) {
1813 		if (!hasclass)
1814 			(void)device_set_devclass(child, NULL);
1815 		(void)device_set_driver(child, NULL);
1816 		return (result);
1817 	}
1818 
1819 exact_match:
1820 	child->state = DS_ALIVE;
1821 	bus_data_generation_update();
1822 	return (0);
1823 }
1824 
1825 /**
1826  * @brief Return the parent of a device
1827  */
1828 device_t
1829 device_get_parent(device_t dev)
1830 {
1831 	return (dev->parent);
1832 }
1833 
1834 /**
1835  * @brief Get a list of children of a device
1836  *
1837  * An array containing a list of all the children of the given device
1838  * is allocated and returned in @p *devlistp. The number of devices
1839  * in the array is returned in @p *devcountp. The caller should free
1840  * the array using @c free(p, M_TEMP).
1841  *
1842  * @param dev		the device to examine
1843  * @param devlistp	points at location for array pointer return
1844  *			value
1845  * @param devcountp	points at location for array size return value
1846  *
1847  * @retval 0		success
1848  * @retval ENOMEM	the array allocation failed
1849  */
1850 int
1851 device_get_children(device_t dev, device_t **devlistp, int *devcountp)
1852 {
1853 	int count;
1854 	device_t child;
1855 	device_t *list;
1856 
1857 	count = 0;
1858 	TAILQ_FOREACH(child, &dev->children, link) {
1859 		count++;
1860 	}
1861 	if (devlistp == NULL) {
1862 		*devcountp = count;
1863 		return (0);
1864 	}
1865 	if (count == 0) {
1866 		*devlistp = NULL;
1867 		*devcountp = 0;
1868 		return (0);
1869 	}
1870 
1871 	list = malloc(count * sizeof(device_t), M_TEMP, M_NOWAIT|M_ZERO);
1872 	if (!list)
1873 		return (ENOMEM);
1874 
1875 	count = 0;
1876 	TAILQ_FOREACH(child, &dev->children, link) {
1877 		list[count] = child;
1878 		count++;
1879 	}
1880 
1881 	*devlistp = list;
1882 	*devcountp = count;
1883 
1884 	return (0);
1885 }
1886 
1887 /**
1888  * @brief Check if a device has children
1889  *
1890  * @param dev		the device to examine
1891  *
1892  * @rerval true		the device has at least one child
1893  * @retval false	the device has no children
1894  */
1895 bool
1896 device_has_children(device_t dev)
1897 {
1898 	return (!TAILQ_EMPTY(&dev->children));
1899 }
1900 
1901 /**
1902  * @brief Return the current driver for the device or @c NULL if there
1903  * is no driver currently attached
1904  */
1905 driver_t *
1906 device_get_driver(device_t dev)
1907 {
1908 	return (dev->driver);
1909 }
1910 
1911 /**
1912  * @brief Return the current devclass for the device or @c NULL if
1913  * there is none.
1914  */
1915 devclass_t
1916 device_get_devclass(device_t dev)
1917 {
1918 	return (dev->devclass);
1919 }
1920 
1921 /**
1922  * @brief Return the name of the device's devclass or @c NULL if there
1923  * is none.
1924  */
1925 const char *
1926 device_get_name(device_t dev)
1927 {
1928 	if (dev != NULL && dev->devclass)
1929 		return (devclass_get_name(dev->devclass));
1930 	return (NULL);
1931 }
1932 
1933 /**
1934  * @brief Return a string containing the device's devclass name
1935  * followed by an ascii representation of the device's unit number
1936  * (e.g. @c "foo2").
1937  */
1938 const char *
1939 device_get_nameunit(device_t dev)
1940 {
1941 	return (dev->nameunit);
1942 }
1943 
1944 /**
1945  * @brief Return the device's unit number.
1946  */
1947 int
1948 device_get_unit(device_t dev)
1949 {
1950 	return (dev->unit);
1951 }
1952 
1953 /**
1954  * @brief Return the device's description string
1955  */
1956 const char *
1957 device_get_desc(device_t dev)
1958 {
1959 	return (dev->desc);
1960 }
1961 
1962 /**
1963  * @brief Return the device's flags
1964  */
1965 uint32_t
1966 device_get_flags(device_t dev)
1967 {
1968 	return (dev->devflags);
1969 }
1970 
1971 struct sysctl_ctx_list *
1972 device_get_sysctl_ctx(device_t dev)
1973 {
1974 	return (&dev->sysctl_ctx);
1975 }
1976 
1977 struct sysctl_oid *
1978 device_get_sysctl_tree(device_t dev)
1979 {
1980 	return (dev->sysctl_tree);
1981 }
1982 
1983 /**
1984  * @brief Print the name of the device followed by a colon and a space
1985  *
1986  * @returns the number of characters printed
1987  */
1988 int
1989 device_print_prettyname(device_t dev)
1990 {
1991 	const char *name = device_get_name(dev);
1992 
1993 	if (name == NULL)
1994 		return (printf("unknown: "));
1995 	return (printf("%s%d: ", name, device_get_unit(dev)));
1996 }
1997 
1998 /**
1999  * @brief Print the name of the device followed by a colon, a space
2000  * and the result of calling vprintf() with the value of @p fmt and
2001  * the following arguments.
2002  *
2003  * @returns the number of characters printed
2004  */
2005 int
2006 device_printf(device_t dev, const char * fmt, ...)
2007 {
2008 	char buf[128];
2009 	struct sbuf sb;
2010 	const char *name;
2011 	va_list ap;
2012 	size_t retval;
2013 
2014 	retval = 0;
2015 
2016 	sbuf_new(&sb, buf, sizeof(buf), SBUF_FIXEDLEN);
2017 	sbuf_set_drain(&sb, sbuf_printf_drain, &retval);
2018 
2019 	name = device_get_name(dev);
2020 
2021 	if (name == NULL)
2022 		sbuf_cat(&sb, "unknown: ");
2023 	else
2024 		sbuf_printf(&sb, "%s%d: ", name, device_get_unit(dev));
2025 
2026 	va_start(ap, fmt);
2027 	sbuf_vprintf(&sb, fmt, ap);
2028 	va_end(ap);
2029 
2030 	sbuf_finish(&sb);
2031 	sbuf_delete(&sb);
2032 
2033 	return (retval);
2034 }
2035 
2036 /**
2037  * @brief Print the name of the device followed by a colon, a space
2038  * and the result of calling log() with the value of @p fmt and
2039  * the following arguments.
2040  *
2041  * @returns the number of characters printed
2042  */
2043 int
2044 device_log(device_t dev, int pri, const char * fmt, ...)
2045 {
2046 	char buf[128];
2047 	struct sbuf sb;
2048 	const char *name;
2049 	va_list ap;
2050 	size_t retval;
2051 
2052 	retval = 0;
2053 
2054 	sbuf_new(&sb, buf, sizeof(buf), SBUF_FIXEDLEN);
2055 
2056 	name = device_get_name(dev);
2057 
2058 	if (name == NULL)
2059 		sbuf_cat(&sb, "unknown: ");
2060 	else
2061 		sbuf_printf(&sb, "%s%d: ", name, device_get_unit(dev));
2062 
2063 	va_start(ap, fmt);
2064 	sbuf_vprintf(&sb, fmt, ap);
2065 	va_end(ap);
2066 
2067 	sbuf_finish(&sb);
2068 
2069 	log(pri, "%.*s", (int) sbuf_len(&sb), sbuf_data(&sb));
2070 	retval = sbuf_len(&sb);
2071 
2072 	sbuf_delete(&sb);
2073 
2074 	return (retval);
2075 }
2076 
2077 /**
2078  * @internal
2079  */
2080 static void
2081 device_set_desc_internal(device_t dev, const char *desc, bool allocated)
2082 {
2083 	if (dev->desc && (dev->flags & DF_DESCMALLOCED)) {
2084 		free(dev->desc, M_BUS);
2085 		dev->flags &= ~DF_DESCMALLOCED;
2086 		dev->desc = NULL;
2087 	}
2088 
2089 	if (allocated && desc)
2090 		dev->flags |= DF_DESCMALLOCED;
2091 	dev->desc = __DECONST(char *, desc);
2092 
2093 	bus_data_generation_update();
2094 }
2095 
2096 /**
2097  * @brief Set the device's description
2098  *
2099  * The value of @c desc should be a string constant that will not
2100  * change (at least until the description is changed in a subsequent
2101  * call to device_set_desc() or device_set_desc_copy()).
2102  */
2103 void
2104 device_set_desc(device_t dev, const char *desc)
2105 {
2106 	device_set_desc_internal(dev, desc, false);
2107 }
2108 
2109 /**
2110  * @brief Set the device's description
2111  *
2112  * A printf-like version of device_set_desc().
2113  */
2114 void
2115 device_set_descf(device_t dev, const char *fmt, ...)
2116 {
2117 	va_list ap;
2118 	char *buf = NULL;
2119 
2120 	va_start(ap, fmt);
2121 	vasprintf(&buf, M_BUS, fmt, ap);
2122 	va_end(ap);
2123 	device_set_desc_internal(dev, buf, true);
2124 }
2125 
2126 /**
2127  * @brief Set the device's description
2128  *
2129  * The string pointed to by @c desc is copied. Use this function if
2130  * the device description is generated, (e.g. with sprintf()).
2131  */
2132 void
2133 device_set_desc_copy(device_t dev, const char *desc)
2134 {
2135 	char *buf;
2136 
2137 	buf = strdup_flags(desc, M_BUS, M_WAITOK);
2138 	device_set_desc_internal(dev, buf, true);
2139 }
2140 
2141 /**
2142  * @brief Set the device's flags
2143  */
2144 void
2145 device_set_flags(device_t dev, uint32_t flags)
2146 {
2147 	dev->devflags = flags;
2148 }
2149 
2150 /**
2151  * @brief Return the device's softc field
2152  *
2153  * The softc is allocated and zeroed when a driver is attached, based
2154  * on the size field of the driver.
2155  */
2156 void *
2157 device_get_softc(device_t dev)
2158 {
2159 	return (dev->softc);
2160 }
2161 
2162 void *
2163 device_get_softc_class(device_t dev, kobj_class_t cls)
2164 {
2165 	char *ptr;
2166 
2167 	ptr = dev->softc;
2168 	ptr += kobj_instance_offset(device_get_driver(dev), cls);
2169 
2170 	return (ptr);
2171 }
2172 
2173 /**
2174  * @brief Set the device's softc field
2175  *
2176  * Most drivers do not need to use this since the softc is allocated
2177  * automatically when the driver is attached.
2178  */
2179 void
2180 device_set_softc(device_t dev, void *softc)
2181 {
2182 	if (dev->softc && !(dev->flags & DF_EXTERNALSOFTC))
2183 		free(dev->softc, M_BUS_SC);
2184 	dev->softc = softc;
2185 	if (dev->softc)
2186 		dev->flags |= DF_EXTERNALSOFTC;
2187 	else
2188 		dev->flags &= ~DF_EXTERNALSOFTC;
2189 }
2190 
2191 /**
2192  * @brief Free claimed softc
2193  *
2194  * Most drivers do not need to use this since the softc is freed
2195  * automatically when the driver is detached.
2196  */
2197 void
2198 device_free_softc(void *softc)
2199 {
2200 	free(softc, M_BUS_SC);
2201 }
2202 
2203 /**
2204  * @brief Claim softc
2205  *
2206  * This function can be used to let the driver free the automatically
2207  * allocated softc using "device_free_softc()". This function is
2208  * useful when the driver is refcounting the softc and the softc
2209  * cannot be freed when the "device_detach" method is called.
2210  */
2211 void
2212 device_claim_softc(device_t dev)
2213 {
2214 	if (dev->softc)
2215 		dev->flags |= DF_EXTERNALSOFTC;
2216 	else
2217 		dev->flags &= ~DF_EXTERNALSOFTC;
2218 }
2219 
2220 /**
2221  * @brief Get the device's ivars field
2222  *
2223  * The ivars field is used by the parent device to store per-device
2224  * state (e.g. the physical location of the device or a list of
2225  * resources).
2226  */
2227 void *
2228 device_get_ivars(device_t dev)
2229 {
2230 	KASSERT(dev != NULL, ("device_get_ivars(NULL, ...)"));
2231 	return (dev->ivars);
2232 }
2233 
2234 /**
2235  * @brief Set the device's ivars field
2236  */
2237 void
2238 device_set_ivars(device_t dev, void * ivars)
2239 {
2240 	KASSERT(dev != NULL, ("device_set_ivars(NULL, ...)"));
2241 	dev->ivars = ivars;
2242 }
2243 
2244 /**
2245  * @brief Return the device's state
2246  */
2247 device_state_t
2248 device_get_state(device_t dev)
2249 {
2250 	return (dev->state);
2251 }
2252 
2253 /**
2254  * @brief Set the DF_ENABLED flag for the device
2255  */
2256 void
2257 device_enable(device_t dev)
2258 {
2259 	dev->flags |= DF_ENABLED;
2260 }
2261 
2262 /**
2263  * @brief Clear the DF_ENABLED flag for the device
2264  */
2265 void
2266 device_disable(device_t dev)
2267 {
2268 	dev->flags &= ~DF_ENABLED;
2269 }
2270 
2271 /**
2272  * @brief Increment the busy counter for the device
2273  */
2274 void
2275 device_busy(device_t dev)
2276 {
2277 
2278 	/*
2279 	 * Mark the device as busy, recursively up the tree if this busy count
2280 	 * goes 0->1.
2281 	 */
2282 	if (refcount_acquire(&dev->busy) == 0 && dev->parent != NULL)
2283 		device_busy(dev->parent);
2284 }
2285 
2286 /**
2287  * @brief Decrement the busy counter for the device
2288  */
2289 void
2290 device_unbusy(device_t dev)
2291 {
2292 
2293 	/*
2294 	 * Mark the device as unbsy, recursively if this is the last busy count.
2295 	 */
2296 	if (refcount_release(&dev->busy) && dev->parent != NULL)
2297 		device_unbusy(dev->parent);
2298 }
2299 
2300 /**
2301  * @brief Set the DF_QUIET flag for the device
2302  */
2303 void
2304 device_quiet(device_t dev)
2305 {
2306 	dev->flags |= DF_QUIET;
2307 }
2308 
2309 /**
2310  * @brief Set the DF_QUIET_CHILDREN flag for the device
2311  */
2312 void
2313 device_quiet_children(device_t dev)
2314 {
2315 	dev->flags |= DF_QUIET_CHILDREN;
2316 }
2317 
2318 /**
2319  * @brief Clear the DF_QUIET flag for the device
2320  */
2321 void
2322 device_verbose(device_t dev)
2323 {
2324 	dev->flags &= ~DF_QUIET;
2325 }
2326 
2327 ssize_t
2328 device_get_property(device_t dev, const char *prop, void *val, size_t sz,
2329     device_property_type_t type)
2330 {
2331 	device_t bus = device_get_parent(dev);
2332 
2333 	switch (type) {
2334 	case DEVICE_PROP_ANY:
2335 	case DEVICE_PROP_BUFFER:
2336 	case DEVICE_PROP_HANDLE:	/* Size checks done in implementation. */
2337 		break;
2338 	case DEVICE_PROP_UINT32:
2339 		if (sz % 4 != 0)
2340 			return (-1);
2341 		break;
2342 	case DEVICE_PROP_UINT64:
2343 		if (sz % 8 != 0)
2344 			return (-1);
2345 		break;
2346 	default:
2347 		return (-1);
2348 	}
2349 
2350 	return (BUS_GET_PROPERTY(bus, dev, prop, val, sz, type));
2351 }
2352 
2353 bool
2354 device_has_property(device_t dev, const char *prop)
2355 {
2356 	return (device_get_property(dev, prop, NULL, 0, DEVICE_PROP_ANY) >= 0);
2357 }
2358 
2359 /**
2360  * @brief Return non-zero if the DF_QUIET_CHIDLREN flag is set on the device
2361  */
2362 int
2363 device_has_quiet_children(device_t dev)
2364 {
2365 	return ((dev->flags & DF_QUIET_CHILDREN) != 0);
2366 }
2367 
2368 /**
2369  * @brief Return non-zero if the DF_QUIET flag is set on the device
2370  */
2371 int
2372 device_is_quiet(device_t dev)
2373 {
2374 	return ((dev->flags & DF_QUIET) != 0);
2375 }
2376 
2377 /**
2378  * @brief Return non-zero if the DF_ENABLED flag is set on the device
2379  */
2380 int
2381 device_is_enabled(device_t dev)
2382 {
2383 	return ((dev->flags & DF_ENABLED) != 0);
2384 }
2385 
2386 /**
2387  * @brief Return non-zero if the device was successfully probed
2388  */
2389 int
2390 device_is_alive(device_t dev)
2391 {
2392 	return (dev->state >= DS_ALIVE);
2393 }
2394 
2395 /**
2396  * @brief Return non-zero if the device currently has a driver
2397  * attached to it
2398  */
2399 int
2400 device_is_attached(device_t dev)
2401 {
2402 	return (dev->state >= DS_ATTACHED);
2403 }
2404 
2405 /**
2406  * @brief Return non-zero if the device is currently suspended.
2407  */
2408 int
2409 device_is_suspended(device_t dev)
2410 {
2411 	return ((dev->flags & DF_SUSPENDED) != 0);
2412 }
2413 
2414 /**
2415  * @brief Set the devclass of a device
2416  * @see devclass_add_device().
2417  */
2418 int
2419 device_set_devclass(device_t dev, const char *classname)
2420 {
2421 	devclass_t dc;
2422 	int error;
2423 
2424 	if (!classname) {
2425 		if (dev->devclass)
2426 			devclass_delete_device(dev->devclass, dev);
2427 		return (0);
2428 	}
2429 
2430 	if (dev->devclass) {
2431 		printf("device_set_devclass: device class already set\n");
2432 		return (EINVAL);
2433 	}
2434 
2435 	dc = devclass_find_internal(classname, NULL, TRUE);
2436 	if (!dc)
2437 		return (ENOMEM);
2438 
2439 	error = devclass_add_device(dc, dev);
2440 
2441 	bus_data_generation_update();
2442 	return (error);
2443 }
2444 
2445 /**
2446  * @brief Set the devclass of a device and mark the devclass fixed.
2447  * @see device_set_devclass()
2448  */
2449 int
2450 device_set_devclass_fixed(device_t dev, const char *classname)
2451 {
2452 	int error;
2453 
2454 	if (classname == NULL)
2455 		return (EINVAL);
2456 
2457 	error = device_set_devclass(dev, classname);
2458 	if (error)
2459 		return (error);
2460 	dev->flags |= DF_FIXEDCLASS;
2461 	return (0);
2462 }
2463 
2464 /**
2465  * @brief Query the device to determine if it's of a fixed devclass
2466  * @see device_set_devclass_fixed()
2467  */
2468 bool
2469 device_is_devclass_fixed(device_t dev)
2470 {
2471 	return ((dev->flags & DF_FIXEDCLASS) != 0);
2472 }
2473 
2474 /**
2475  * @brief Set the driver of a device
2476  *
2477  * @retval 0		success
2478  * @retval EBUSY	the device already has a driver attached
2479  * @retval ENOMEM	a memory allocation failure occurred
2480  */
2481 int
2482 device_set_driver(device_t dev, driver_t *driver)
2483 {
2484 	int domain;
2485 	struct domainset *policy;
2486 	size_t size;
2487 
2488 	if (dev->state >= DS_ATTACHED)
2489 		return (EBUSY);
2490 
2491 	if (dev->driver == driver)
2492 		return (0);
2493 
2494 	if (dev->softc && !(dev->flags & DF_EXTERNALSOFTC)) {
2495 		free(dev->softc, M_BUS_SC);
2496 		dev->softc = NULL;
2497 	}
2498 	device_set_desc(dev, NULL);
2499 	kobj_delete((kobj_t) dev, NULL);
2500 	dev->driver = driver;
2501 	if (driver) {
2502 		kobj_init((kobj_t) dev, (kobj_class_t) driver);
2503 		size = kobj_total_data_size(driver);
2504 		if (!(dev->flags & DF_EXTERNALSOFTC) && size > 0) {
2505 			if (bus_get_domain(dev, &domain) == 0)
2506 				policy = DOMAINSET_PREF(domain);
2507 			else
2508 				policy = DOMAINSET_RR();
2509 			dev->softc = malloc_domainset(size, M_BUS_SC, policy,
2510 			    M_WAITOK | M_ZERO);
2511 		}
2512 	} else {
2513 		kobj_init((kobj_t) dev, &null_class);
2514 	}
2515 
2516 	bus_data_generation_update();
2517 	return (0);
2518 }
2519 
2520 /**
2521  * @brief Probe a device, and return this status.
2522  *
2523  * This function is the core of the device autoconfiguration
2524  * system. Its purpose is to select a suitable driver for a device and
2525  * then call that driver to initialise the hardware appropriately. The
2526  * driver is selected by calling the DEVICE_PROBE() method of a set of
2527  * candidate drivers and then choosing the driver which returned the
2528  * best value. This driver is then attached to the device using
2529  * device_attach().
2530  *
2531  * The set of suitable drivers is taken from the list of drivers in
2532  * the parent device's devclass. If the device was originally created
2533  * with a specific class name (see device_add_child()), only drivers
2534  * with that name are probed, otherwise all drivers in the devclass
2535  * are probed. If no drivers return successful probe values in the
2536  * parent devclass, the search continues in the parent of that
2537  * devclass (see devclass_get_parent()) if any.
2538  *
2539  * @param dev		the device to initialise
2540  *
2541  * @retval 0		success
2542  * @retval ENXIO	no driver was found
2543  * @retval ENOMEM	memory allocation failure
2544  * @retval non-zero	some other unix error code
2545  * @retval -1		Device already attached
2546  */
2547 int
2548 device_probe(device_t dev)
2549 {
2550 	int error;
2551 
2552 	bus_topo_assert();
2553 
2554 	if (dev->state >= DS_ALIVE)
2555 		return (-1);
2556 
2557 	if (!(dev->flags & DF_ENABLED)) {
2558 		if (bootverbose && device_get_name(dev) != NULL) {
2559 			device_print_prettyname(dev);
2560 			printf("not probed (disabled)\n");
2561 		}
2562 		return (-1);
2563 	}
2564 	if ((error = device_probe_child(dev->parent, dev)) != 0) {
2565 		if (bus_current_pass == BUS_PASS_DEFAULT &&
2566 		    !(dev->flags & DF_DONENOMATCH)) {
2567 			device_handle_nomatch(dev);
2568 		}
2569 		return (error);
2570 	}
2571 	return (0);
2572 }
2573 
2574 /**
2575  * @brief Probe a device and attach a driver if possible
2576  *
2577  * calls device_probe() and attaches if that was successful.
2578  */
2579 int
2580 device_probe_and_attach(device_t dev)
2581 {
2582 	int error;
2583 
2584 	bus_topo_assert();
2585 
2586 	error = device_probe(dev);
2587 	if (error == -1)
2588 		return (0);
2589 	else if (error != 0)
2590 		return (error);
2591 
2592 	return (device_attach(dev));
2593 }
2594 
2595 /**
2596  * @brief Attach a device driver to a device
2597  *
2598  * This function is a wrapper around the DEVICE_ATTACH() driver
2599  * method. In addition to calling DEVICE_ATTACH(), it initialises the
2600  * device's sysctl tree, optionally prints a description of the device
2601  * and queues a notification event for user-based device management
2602  * services.
2603  *
2604  * Normally this function is only called internally from
2605  * device_probe_and_attach().
2606  *
2607  * @param dev		the device to initialise
2608  *
2609  * @retval 0		success
2610  * @retval ENXIO	no driver was found
2611  * @retval ENOMEM	memory allocation failure
2612  * @retval non-zero	some other unix error code
2613  */
2614 int
2615 device_attach(device_t dev)
2616 {
2617 	uint64_t attachtime;
2618 	uint16_t attachentropy;
2619 	int error;
2620 
2621 	if (resource_disabled(dev->driver->name, dev->unit)) {
2622 		/*
2623 		 * Mostly detach the device, but leave it attached to
2624 		 * the devclass to reserve the name and unit.
2625 		 */
2626 		device_disable(dev);
2627 		(void)device_set_driver(dev, NULL);
2628 		dev->state = DS_NOTPRESENT;
2629 		if (bootverbose)
2630 			 device_printf(dev, "disabled via hints entry\n");
2631 		return (ENXIO);
2632 	}
2633 
2634 	KASSERT(IS_DEFAULT_VNET(TD_TO_VNET(curthread)),
2635 	    ("device_attach: curthread is not in default vnet"));
2636 	CURVNET_SET_QUIET(TD_TO_VNET(curthread));
2637 
2638 	device_sysctl_init(dev);
2639 	if (!device_is_quiet(dev))
2640 		device_print_child(dev->parent, dev);
2641 	attachtime = get_cyclecount();
2642 	dev->state = DS_ATTACHING;
2643 	if ((error = DEVICE_ATTACH(dev)) != 0) {
2644 		printf("device_attach: %s%d attach returned %d\n",
2645 		    dev->driver->name, dev->unit, error);
2646 		BUS_CHILD_DETACHED(dev->parent, dev);
2647 		if (disable_failed_devs) {
2648 			/*
2649 			 * When the user has asked to disable failed devices, we
2650 			 * directly disable the device, but leave it in the
2651 			 * attaching state. It will not try to probe/attach the
2652 			 * device further. This leaves the device numbering
2653 			 * intact for other similar devices in the system. It
2654 			 * can be removed from this state with devctl.
2655 			 */
2656 			device_disable(dev);
2657 		} else {
2658 			/*
2659 			 * Otherwise, when attach fails, tear down the state
2660 			 * around that so we can retry when, for example, new
2661 			 * drivers are loaded.
2662 			 */
2663 			if (!(dev->flags & DF_FIXEDCLASS))
2664 				devclass_delete_device(dev->devclass, dev);
2665 			(void)device_set_driver(dev, NULL);
2666 			device_sysctl_fini(dev);
2667 			KASSERT(dev->busy == 0, ("attach failed but busy"));
2668 			dev->state = DS_NOTPRESENT;
2669 		}
2670 		CURVNET_RESTORE();
2671 		return (error);
2672 	}
2673 	CURVNET_RESTORE();
2674 	dev->flags |= DF_ATTACHED_ONCE;
2675 	/*
2676 	 * We only need the low bits of this time, but ranges from tens to thousands
2677 	 * have been seen, so keep 2 bytes' worth.
2678 	 */
2679 	attachentropy = (uint16_t)(get_cyclecount() - attachtime);
2680 	random_harvest_direct(&attachentropy, sizeof(attachentropy), RANDOM_ATTACH);
2681 	device_sysctl_update(dev);
2682 	dev->state = DS_ATTACHED;
2683 	dev->flags &= ~DF_DONENOMATCH;
2684 	EVENTHANDLER_DIRECT_INVOKE(device_attach, dev);
2685 	return (0);
2686 }
2687 
2688 /**
2689  * @brief Detach a driver from a device
2690  *
2691  * This function is a wrapper around the DEVICE_DETACH() driver
2692  * method. If the call to DEVICE_DETACH() succeeds, it calls
2693  * BUS_CHILD_DETACHED() for the parent of @p dev, queues a
2694  * notification event for user-based device management services and
2695  * cleans up the device's sysctl tree.
2696  *
2697  * @param dev		the device to un-initialise
2698  *
2699  * @retval 0		success
2700  * @retval ENXIO	no driver was found
2701  * @retval ENOMEM	memory allocation failure
2702  * @retval non-zero	some other unix error code
2703  */
2704 int
2705 device_detach(device_t dev)
2706 {
2707 	int error;
2708 
2709 	bus_topo_assert();
2710 
2711 	PDEBUG(("%s", DEVICENAME(dev)));
2712 	if (dev->busy > 0)
2713 		return (EBUSY);
2714 	if (dev->state == DS_ATTACHING) {
2715 		device_printf(dev, "device in attaching state! Deferring detach.\n");
2716 		return (EBUSY);
2717 	}
2718 	if (dev->state != DS_ATTACHED)
2719 		return (0);
2720 
2721 	EVENTHANDLER_DIRECT_INVOKE(device_detach, dev, EVHDEV_DETACH_BEGIN);
2722 	if ((error = DEVICE_DETACH(dev)) != 0) {
2723 		EVENTHANDLER_DIRECT_INVOKE(device_detach, dev,
2724 		    EVHDEV_DETACH_FAILED);
2725 		return (error);
2726 	} else {
2727 		EVENTHANDLER_DIRECT_INVOKE(device_detach, dev,
2728 		    EVHDEV_DETACH_COMPLETE);
2729 	}
2730 	if (!device_is_quiet(dev))
2731 		device_printf(dev, "detached\n");
2732 	if (dev->parent)
2733 		BUS_CHILD_DETACHED(dev->parent, dev);
2734 
2735 	if (!(dev->flags & DF_FIXEDCLASS))
2736 		devclass_delete_device(dev->devclass, dev);
2737 
2738 	device_verbose(dev);
2739 	dev->state = DS_NOTPRESENT;
2740 	(void)device_set_driver(dev, NULL);
2741 	device_sysctl_fini(dev);
2742 
2743 	return (0);
2744 }
2745 
2746 /**
2747  * @brief Tells a driver to quiesce itself.
2748  *
2749  * This function is a wrapper around the DEVICE_QUIESCE() driver
2750  * method. If the call to DEVICE_QUIESCE() succeeds.
2751  *
2752  * @param dev		the device to quiesce
2753  *
2754  * @retval 0		success
2755  * @retval ENXIO	no driver was found
2756  * @retval ENOMEM	memory allocation failure
2757  * @retval non-zero	some other unix error code
2758  */
2759 int
2760 device_quiesce(device_t dev)
2761 {
2762 	PDEBUG(("%s", DEVICENAME(dev)));
2763 	if (dev->busy > 0)
2764 		return (EBUSY);
2765 	if (dev->state != DS_ATTACHED)
2766 		return (0);
2767 
2768 	return (DEVICE_QUIESCE(dev));
2769 }
2770 
2771 /**
2772  * @brief Notify a device of system shutdown
2773  *
2774  * This function calls the DEVICE_SHUTDOWN() driver method if the
2775  * device currently has an attached driver.
2776  *
2777  * @returns the value returned by DEVICE_SHUTDOWN()
2778  */
2779 int
2780 device_shutdown(device_t dev)
2781 {
2782 	if (dev->state < DS_ATTACHED)
2783 		return (0);
2784 	return (DEVICE_SHUTDOWN(dev));
2785 }
2786 
2787 /**
2788  * @brief Set the unit number of a device
2789  *
2790  * This function can be used to override the unit number used for a
2791  * device (e.g. to wire a device to a pre-configured unit number).
2792  */
2793 int
2794 device_set_unit(device_t dev, int unit)
2795 {
2796 	devclass_t dc;
2797 	int err;
2798 
2799 	if (unit == dev->unit)
2800 		return (0);
2801 	dc = device_get_devclass(dev);
2802 	if (unit < dc->maxunit && dc->devices[unit])
2803 		return (EBUSY);
2804 	err = devclass_delete_device(dc, dev);
2805 	if (err)
2806 		return (err);
2807 	dev->unit = unit;
2808 	err = devclass_add_device(dc, dev);
2809 	if (err)
2810 		return (err);
2811 
2812 	bus_data_generation_update();
2813 	return (0);
2814 }
2815 
2816 /*======================================*/
2817 /*
2818  * Some useful method implementations to make life easier for bus drivers.
2819  */
2820 
2821 /**
2822  * @brief Initialize a resource mapping request
2823  *
2824  * This is the internal implementation of the public API
2825  * resource_init_map_request.  Callers may be using a different layout
2826  * of struct resource_map_request than the kernel, so callers pass in
2827  * the size of the structure they are using to identify the structure
2828  * layout.
2829  */
2830 void
2831 resource_init_map_request_impl(struct resource_map_request *args, size_t sz)
2832 {
2833 	bzero(args, sz);
2834 	args->size = sz;
2835 	args->memattr = VM_MEMATTR_DEVICE;
2836 }
2837 
2838 /**
2839  * @brief Validate a resource mapping request
2840  *
2841  * Translate a device driver's mapping request (@p in) to a struct
2842  * resource_map_request using the current structure layout (@p out).
2843  * In addition, validate the offset and length from the mapping
2844  * request against the bounds of the resource @p r.  If the offset or
2845  * length are invalid, fail with EINVAL.  If the offset and length are
2846  * valid, the absolute starting address of the requested mapping is
2847  * returned in @p startp and the length of the requested mapping is
2848  * returned in @p lengthp.
2849  */
2850 int
2851 resource_validate_map_request(struct resource *r,
2852     struct resource_map_request *in, struct resource_map_request *out,
2853     rman_res_t *startp, rman_res_t *lengthp)
2854 {
2855 	rman_res_t end, length, start;
2856 
2857 	/*
2858 	 * This assumes that any callers of this function are compiled
2859 	 * into the kernel and use the same version of the structure
2860 	 * as this file.
2861 	 */
2862 	MPASS(out->size == sizeof(struct resource_map_request));
2863 
2864 	if (in != NULL)
2865 		bcopy(in, out, imin(in->size, out->size));
2866 	start = rman_get_start(r) + out->offset;
2867 	if (out->length == 0)
2868 		length = rman_get_size(r);
2869 	else
2870 		length = out->length;
2871 	end = start + length - 1;
2872 	if (start > rman_get_end(r) || start < rman_get_start(r))
2873 		return (EINVAL);
2874 	if (end > rman_get_end(r) || end < start)
2875 		return (EINVAL);
2876 	*lengthp = length;
2877 	*startp = start;
2878 	return (0);
2879 }
2880 
2881 /**
2882  * @brief Initialise a resource list.
2883  *
2884  * @param rl		the resource list to initialise
2885  */
2886 void
2887 resource_list_init(struct resource_list *rl)
2888 {
2889 	STAILQ_INIT(rl);
2890 }
2891 
2892 /**
2893  * @brief Reclaim memory used by a resource list.
2894  *
2895  * This function frees the memory for all resource entries on the list
2896  * (if any).
2897  *
2898  * @param rl		the resource list to free
2899  */
2900 void
2901 resource_list_free(struct resource_list *rl)
2902 {
2903 	struct resource_list_entry *rle;
2904 
2905 	while ((rle = STAILQ_FIRST(rl)) != NULL) {
2906 		if (rle->res)
2907 			panic("resource_list_free: resource entry is busy");
2908 		STAILQ_REMOVE_HEAD(rl, link);
2909 		free(rle, M_BUS);
2910 	}
2911 }
2912 
2913 /**
2914  * @brief Add a resource entry.
2915  *
2916  * This function adds a resource entry using the given @p type, @p
2917  * start, @p end and @p count values. A rid value is chosen by
2918  * searching sequentially for the first unused rid starting at zero.
2919  *
2920  * @param rl		the resource list to edit
2921  * @param type		the resource entry type (e.g. SYS_RES_MEMORY)
2922  * @param start		the start address of the resource
2923  * @param end		the end address of the resource
2924  * @param count		XXX end-start+1
2925  */
2926 int
2927 resource_list_add_next(struct resource_list *rl, int type, rman_res_t start,
2928     rman_res_t end, rman_res_t count)
2929 {
2930 	int rid;
2931 
2932 	rid = 0;
2933 	while (resource_list_find(rl, type, rid) != NULL)
2934 		rid++;
2935 	resource_list_add(rl, type, rid, start, end, count);
2936 	return (rid);
2937 }
2938 
2939 /**
2940  * @brief Add or modify a resource entry.
2941  *
2942  * If an existing entry exists with the same type and rid, it will be
2943  * modified using the given values of @p start, @p end and @p
2944  * count. If no entry exists, a new one will be created using the
2945  * given values.  The resource list entry that matches is then returned.
2946  *
2947  * @param rl		the resource list to edit
2948  * @param type		the resource entry type (e.g. SYS_RES_MEMORY)
2949  * @param rid		the resource identifier
2950  * @param start		the start address of the resource
2951  * @param end		the end address of the resource
2952  * @param count		XXX end-start+1
2953  */
2954 struct resource_list_entry *
2955 resource_list_add(struct resource_list *rl, int type, int rid,
2956     rman_res_t start, rman_res_t end, rman_res_t count)
2957 {
2958 	struct resource_list_entry *rle;
2959 
2960 	rle = resource_list_find(rl, type, rid);
2961 	if (!rle) {
2962 		rle = malloc(sizeof(struct resource_list_entry), M_BUS,
2963 		    M_WAITOK);
2964 		STAILQ_INSERT_TAIL(rl, rle, link);
2965 		rle->type = type;
2966 		rle->rid = rid;
2967 		rle->res = NULL;
2968 		rle->flags = 0;
2969 	}
2970 
2971 	if (rle->res)
2972 		panic("resource_list_add: resource entry is busy");
2973 
2974 	rle->start = start;
2975 	rle->end = end;
2976 	rle->count = count;
2977 	return (rle);
2978 }
2979 
2980 /**
2981  * @brief Determine if a resource entry is busy.
2982  *
2983  * Returns true if a resource entry is busy meaning that it has an
2984  * associated resource that is not an unallocated "reserved" resource.
2985  *
2986  * @param rl		the resource list to search
2987  * @param type		the resource entry type (e.g. SYS_RES_MEMORY)
2988  * @param rid		the resource identifier
2989  *
2990  * @returns Non-zero if the entry is busy, zero otherwise.
2991  */
2992 int
2993 resource_list_busy(struct resource_list *rl, int type, int rid)
2994 {
2995 	struct resource_list_entry *rle;
2996 
2997 	rle = resource_list_find(rl, type, rid);
2998 	if (rle == NULL || rle->res == NULL)
2999 		return (0);
3000 	if ((rle->flags & (RLE_RESERVED | RLE_ALLOCATED)) == RLE_RESERVED) {
3001 		KASSERT(!(rman_get_flags(rle->res) & RF_ACTIVE),
3002 		    ("reserved resource is active"));
3003 		return (0);
3004 	}
3005 	return (1);
3006 }
3007 
3008 /**
3009  * @brief Determine if a resource entry is reserved.
3010  *
3011  * Returns true if a resource entry is reserved meaning that it has an
3012  * associated "reserved" resource.  The resource can either be
3013  * allocated or unallocated.
3014  *
3015  * @param rl		the resource list to search
3016  * @param type		the resource entry type (e.g. SYS_RES_MEMORY)
3017  * @param rid		the resource identifier
3018  *
3019  * @returns Non-zero if the entry is reserved, zero otherwise.
3020  */
3021 int
3022 resource_list_reserved(struct resource_list *rl, int type, int rid)
3023 {
3024 	struct resource_list_entry *rle;
3025 
3026 	rle = resource_list_find(rl, type, rid);
3027 	if (rle != NULL && rle->flags & RLE_RESERVED)
3028 		return (1);
3029 	return (0);
3030 }
3031 
3032 /**
3033  * @brief Find a resource entry by type and rid.
3034  *
3035  * @param rl		the resource list to search
3036  * @param type		the resource entry type (e.g. SYS_RES_MEMORY)
3037  * @param rid		the resource identifier
3038  *
3039  * @returns the resource entry pointer or NULL if there is no such
3040  * entry.
3041  */
3042 struct resource_list_entry *
3043 resource_list_find(struct resource_list *rl, int type, int rid)
3044 {
3045 	struct resource_list_entry *rle;
3046 
3047 	STAILQ_FOREACH(rle, rl, link) {
3048 		if (rle->type == type && rle->rid == rid)
3049 			return (rle);
3050 	}
3051 	return (NULL);
3052 }
3053 
3054 /**
3055  * @brief Delete a resource entry.
3056  *
3057  * @param rl		the resource list to edit
3058  * @param type		the resource entry type (e.g. SYS_RES_MEMORY)
3059  * @param rid		the resource identifier
3060  */
3061 void
3062 resource_list_delete(struct resource_list *rl, int type, int rid)
3063 {
3064 	struct resource_list_entry *rle = resource_list_find(rl, type, rid);
3065 
3066 	if (rle) {
3067 		if (rle->res != NULL)
3068 			panic("resource_list_delete: resource has not been released");
3069 		STAILQ_REMOVE(rl, rle, resource_list_entry, link);
3070 		free(rle, M_BUS);
3071 	}
3072 }
3073 
3074 /**
3075  * @brief Allocate a reserved resource
3076  *
3077  * This can be used by buses to force the allocation of resources
3078  * that are always active in the system even if they are not allocated
3079  * by a driver (e.g. PCI BARs).  This function is usually called when
3080  * adding a new child to the bus.  The resource is allocated from the
3081  * parent bus when it is reserved.  The resource list entry is marked
3082  * with RLE_RESERVED to note that it is a reserved resource.
3083  *
3084  * Subsequent attempts to allocate the resource with
3085  * resource_list_alloc() will succeed the first time and will set
3086  * RLE_ALLOCATED to note that it has been allocated.  When a reserved
3087  * resource that has been allocated is released with
3088  * resource_list_release() the resource RLE_ALLOCATED is cleared, but
3089  * the actual resource remains allocated.  The resource can be released to
3090  * the parent bus by calling resource_list_unreserve().
3091  *
3092  * @param rl		the resource list to allocate from
3093  * @param bus		the parent device of @p child
3094  * @param child		the device for which the resource is being reserved
3095  * @param type		the type of resource to allocate
3096  * @param rid		a pointer to the resource identifier
3097  * @param start		hint at the start of the resource range - pass
3098  *			@c 0 for any start address
3099  * @param end		hint at the end of the resource range - pass
3100  *			@c ~0 for any end address
3101  * @param count		hint at the size of range required - pass @c 1
3102  *			for any size
3103  * @param flags		any extra flags to control the resource
3104  *			allocation - see @c RF_XXX flags in
3105  *			<sys/rman.h> for details
3106  *
3107  * @returns		the resource which was allocated or @c NULL if no
3108  *			resource could be allocated
3109  */
3110 struct resource *
3111 resource_list_reserve(struct resource_list *rl, device_t bus, device_t child,
3112     int type, int rid, rman_res_t start, rman_res_t end, rman_res_t count, u_int flags)
3113 {
3114 	struct resource_list_entry *rle = NULL;
3115 	int passthrough = (device_get_parent(child) != bus);
3116 	struct resource *r;
3117 
3118 	if (passthrough)
3119 		panic(
3120     "resource_list_reserve() should only be called for direct children");
3121 	if (flags & RF_ACTIVE)
3122 		panic(
3123     "resource_list_reserve() should only reserve inactive resources");
3124 
3125 	r = resource_list_alloc(rl, bus, child, type, rid, start, end, count,
3126 	    flags);
3127 	if (r != NULL) {
3128 		rle = resource_list_find(rl, type, rid);
3129 		rle->flags |= RLE_RESERVED;
3130 	}
3131 	return (r);
3132 }
3133 
3134 /**
3135  * @brief Helper function for implementing BUS_ALLOC_RESOURCE()
3136  *
3137  * Implement BUS_ALLOC_RESOURCE() by looking up a resource from the list
3138  * and passing the allocation up to the parent of @p bus. This assumes
3139  * that the first entry of @c device_get_ivars(child) is a struct
3140  * resource_list. This also handles 'passthrough' allocations where a
3141  * child is a remote descendant of bus by passing the allocation up to
3142  * the parent of bus.
3143  *
3144  * Typically, a bus driver would store a list of child resources
3145  * somewhere in the child device's ivars (see device_get_ivars()) and
3146  * its implementation of BUS_ALLOC_RESOURCE() would find that list and
3147  * then call resource_list_alloc() to perform the allocation.
3148  *
3149  * @param rl		the resource list to allocate from
3150  * @param bus		the parent device of @p child
3151  * @param child		the device which is requesting an allocation
3152  * @param type		the type of resource to allocate
3153  * @param rid		a pointer to the resource identifier
3154  * @param start		hint at the start of the resource range - pass
3155  *			@c 0 for any start address
3156  * @param end		hint at the end of the resource range - pass
3157  *			@c ~0 for any end address
3158  * @param count		hint at the size of range required - pass @c 1
3159  *			for any size
3160  * @param flags		any extra flags to control the resource
3161  *			allocation - see @c RF_XXX flags in
3162  *			<sys/rman.h> for details
3163  *
3164  * @returns		the resource which was allocated or @c NULL if no
3165  *			resource could be allocated
3166  */
3167 struct resource *
3168 resource_list_alloc(struct resource_list *rl, device_t bus, device_t child,
3169     int type, int rid, rman_res_t start, rman_res_t end, rman_res_t count, u_int flags)
3170 {
3171 	struct resource_list_entry *rle = NULL;
3172 	int passthrough = (device_get_parent(child) != bus);
3173 	int isdefault = RMAN_IS_DEFAULT_RANGE(start, end);
3174 
3175 	if (passthrough) {
3176 		return (BUS_ALLOC_RESOURCE(device_get_parent(bus), child,
3177 		    type, rid, start, end, count, flags));
3178 	}
3179 
3180 	rle = resource_list_find(rl, type, rid);
3181 
3182 	if (!rle)
3183 		return (NULL);		/* no resource of that type/rid */
3184 
3185 	if (rle->res) {
3186 		if (rle->flags & RLE_RESERVED) {
3187 			if (rle->flags & RLE_ALLOCATED)
3188 				return (NULL);
3189 			if ((flags & RF_ACTIVE) &&
3190 			    bus_activate_resource(child, type, rid,
3191 			    rle->res) != 0)
3192 				return (NULL);
3193 			rle->flags |= RLE_ALLOCATED;
3194 			return (rle->res);
3195 		}
3196 		device_printf(bus,
3197 		    "resource entry %#x type %d for child %s is busy\n", rid,
3198 		    type, device_get_nameunit(child));
3199 		return (NULL);
3200 	}
3201 
3202 	if (isdefault) {
3203 		start = rle->start;
3204 		count = ulmax(count, rle->count);
3205 		end = ulmax(rle->end, start + count - 1);
3206 	}
3207 
3208 	rle->res = BUS_ALLOC_RESOURCE(device_get_parent(bus), child,
3209 	    type, rid, start, end, count, flags);
3210 
3211 	/*
3212 	 * Record the new range.
3213 	 */
3214 	if (rle->res) {
3215 		rle->start = rman_get_start(rle->res);
3216 		rle->end = rman_get_end(rle->res);
3217 		rle->count = count;
3218 	}
3219 
3220 	return (rle->res);
3221 }
3222 
3223 /**
3224  * @brief Helper function for implementing BUS_RELEASE_RESOURCE()
3225  *
3226  * Implement BUS_RELEASE_RESOURCE() using a resource list. Normally
3227  * used with resource_list_alloc().
3228  *
3229  * @param rl		the resource list which was allocated from
3230  * @param bus		the parent device of @p child
3231  * @param child		the device which is requesting a release
3232  * @param res		the resource to release
3233  *
3234  * @retval 0		success
3235  * @retval non-zero	a standard unix error code indicating what
3236  *			error condition prevented the operation
3237  */
3238 int
3239 resource_list_release(struct resource_list *rl, device_t bus, device_t child,
3240     struct resource *res)
3241 {
3242 	struct resource_list_entry *rle = NULL;
3243 	int passthrough = (device_get_parent(child) != bus);
3244 	int error;
3245 
3246 	if (passthrough) {
3247 		return (BUS_RELEASE_RESOURCE(device_get_parent(bus), child,
3248 		    res));
3249 	}
3250 
3251 	rle = resource_list_find(rl, rman_get_type(res), rman_get_rid(res));
3252 
3253 	if (!rle)
3254 		panic("resource_list_release: can't find resource");
3255 	if (!rle->res)
3256 		panic("resource_list_release: resource entry is not busy");
3257 	if (rle->flags & RLE_RESERVED) {
3258 		if (rle->flags & RLE_ALLOCATED) {
3259 			if (rman_get_flags(res) & RF_ACTIVE) {
3260 				error = bus_deactivate_resource(child, res);
3261 				if (error)
3262 					return (error);
3263 			}
3264 			rle->flags &= ~RLE_ALLOCATED;
3265 			return (0);
3266 		}
3267 		return (EINVAL);
3268 	}
3269 
3270 	error = BUS_RELEASE_RESOURCE(device_get_parent(bus), child, res);
3271 	if (error)
3272 		return (error);
3273 
3274 	rle->res = NULL;
3275 	return (0);
3276 }
3277 
3278 /**
3279  * @brief Release all active resources of a given type
3280  *
3281  * Release all active resources of a specified type.  This is intended
3282  * to be used to cleanup resources leaked by a driver after detach or
3283  * a failed attach.
3284  *
3285  * @param rl		the resource list which was allocated from
3286  * @param bus		the parent device of @p child
3287  * @param child		the device whose active resources are being released
3288  * @param type		the type of resources to release
3289  *
3290  * @retval 0		success
3291  * @retval EBUSY	at least one resource was active
3292  */
3293 int
3294 resource_list_release_active(struct resource_list *rl, device_t bus,
3295     device_t child, int type)
3296 {
3297 	struct resource_list_entry *rle;
3298 	int error, retval;
3299 
3300 	retval = 0;
3301 	STAILQ_FOREACH(rle, rl, link) {
3302 		if (rle->type != type)
3303 			continue;
3304 		if (rle->res == NULL)
3305 			continue;
3306 		if ((rle->flags & (RLE_RESERVED | RLE_ALLOCATED)) ==
3307 		    RLE_RESERVED)
3308 			continue;
3309 		retval = EBUSY;
3310 		error = resource_list_release(rl, bus, child, rle->res);
3311 		if (error != 0)
3312 			device_printf(bus,
3313 			    "Failed to release active resource: %d\n", error);
3314 	}
3315 	return (retval);
3316 }
3317 
3318 /**
3319  * @brief Fully release a reserved resource
3320  *
3321  * Fully releases a resource reserved via resource_list_reserve().
3322  *
3323  * @param rl		the resource list which was allocated from
3324  * @param bus		the parent device of @p child
3325  * @param child		the device whose reserved resource is being released
3326  * @param type		the type of resource to release
3327  * @param rid		the resource identifier
3328  * @param res		the resource to release
3329  *
3330  * @retval 0		success
3331  * @retval non-zero	a standard unix error code indicating what
3332  *			error condition prevented the operation
3333  */
3334 int
3335 resource_list_unreserve(struct resource_list *rl, device_t bus, device_t child,
3336     int type, int rid)
3337 {
3338 	struct resource_list_entry *rle = NULL;
3339 	int passthrough = (device_get_parent(child) != bus);
3340 
3341 	if (passthrough)
3342 		panic(
3343     "resource_list_unreserve() should only be called for direct children");
3344 
3345 	rle = resource_list_find(rl, type, rid);
3346 
3347 	if (!rle)
3348 		panic("resource_list_unreserve: can't find resource");
3349 	if (!(rle->flags & RLE_RESERVED))
3350 		return (EINVAL);
3351 	if (rle->flags & RLE_ALLOCATED)
3352 		return (EBUSY);
3353 	rle->flags &= ~RLE_RESERVED;
3354 	return (resource_list_release(rl, bus, child, rle->res));
3355 }
3356 
3357 /**
3358  * @brief Print a description of resources in a resource list
3359  *
3360  * Print all resources of a specified type, for use in BUS_PRINT_CHILD().
3361  * The name is printed if at least one resource of the given type is available.
3362  * The format is used to print resource start and end.
3363  *
3364  * @param rl		the resource list to print
3365  * @param name		the name of @p type, e.g. @c "memory"
3366  * @param type		type type of resource entry to print
3367  * @param format	printf(9) format string to print resource
3368  *			start and end values
3369  *
3370  * @returns		the number of characters printed
3371  */
3372 int
3373 resource_list_print_type(struct resource_list *rl, const char *name, int type,
3374     const char *format)
3375 {
3376 	struct resource_list_entry *rle;
3377 	int printed, retval;
3378 
3379 	printed = 0;
3380 	retval = 0;
3381 	/* Yes, this is kinda cheating */
3382 	STAILQ_FOREACH(rle, rl, link) {
3383 		if (rle->type == type) {
3384 			if (printed == 0)
3385 				retval += printf(" %s ", name);
3386 			else
3387 				retval += printf(",");
3388 			printed++;
3389 			retval += printf(format, rle->start);
3390 			if (rle->count > 1) {
3391 				retval += printf("-");
3392 				retval += printf(format, rle->start +
3393 						 rle->count - 1);
3394 			}
3395 		}
3396 	}
3397 	return (retval);
3398 }
3399 
3400 /**
3401  * @brief Releases all the resources in a list.
3402  *
3403  * @param rl		The resource list to purge.
3404  *
3405  * @returns		nothing
3406  */
3407 void
3408 resource_list_purge(struct resource_list *rl)
3409 {
3410 	struct resource_list_entry *rle;
3411 
3412 	while ((rle = STAILQ_FIRST(rl)) != NULL) {
3413 		if (rle->res)
3414 			bus_release_resource(rman_get_device(rle->res),
3415 			    rle->type, rle->rid, rle->res);
3416 		STAILQ_REMOVE_HEAD(rl, link);
3417 		free(rle, M_BUS);
3418 	}
3419 }
3420 
3421 device_t
3422 bus_generic_add_child(device_t dev, u_int order, const char *name, int unit)
3423 {
3424 	return (device_add_child_ordered(dev, order, name, unit));
3425 }
3426 
3427 /**
3428  * @brief Helper function for implementing DEVICE_PROBE()
3429  *
3430  * This function can be used to help implement the DEVICE_PROBE() for
3431  * a bus (i.e. a device which has other devices attached to it). It
3432  * calls the DEVICE_IDENTIFY() method of each driver in the device's
3433  * devclass.
3434  */
3435 int
3436 bus_generic_probe(device_t dev)
3437 {
3438 	bus_identify_children(dev);
3439 	return (0);
3440 }
3441 
3442 /**
3443  * @brief Ask drivers to add child devices of the given device.
3444  *
3445  * This function allows drivers for child devices of a bus to identify
3446  * child devices and add them as children of the given device.  NB:
3447  * The driver for @param dev must implement the BUS_ADD_CHILD method.
3448  *
3449  * @param dev		the parent device
3450  */
3451 void
3452 bus_identify_children(device_t dev)
3453 {
3454 	devclass_t dc = dev->devclass;
3455 	driverlink_t dl;
3456 
3457 	TAILQ_FOREACH(dl, &dc->drivers, link) {
3458 		/*
3459 		 * If this driver's pass is too high, then ignore it.
3460 		 * For most drivers in the default pass, this will
3461 		 * never be true.  For early-pass drivers they will
3462 		 * only call the identify routines of eligible drivers
3463 		 * when this routine is called.  Drivers for later
3464 		 * passes should have their identify routines called
3465 		 * on early-pass buses during BUS_NEW_PASS().
3466 		 */
3467 		if (dl->pass > bus_current_pass)
3468 			continue;
3469 		DEVICE_IDENTIFY(dl->driver, dev);
3470 	}
3471 }
3472 
3473 /**
3474  * @brief Helper function for implementing DEVICE_ATTACH()
3475  *
3476  * This function can be used to help implement the DEVICE_ATTACH() for
3477  * a bus. It calls device_probe_and_attach() for each of the device's
3478  * children.
3479  */
3480 int
3481 bus_generic_attach(device_t dev)
3482 {
3483 	bus_attach_children(dev);
3484 	return (0);
3485 }
3486 
3487 /**
3488  * @brief Probe and attach all children of the given device
3489  *
3490  * This function attempts to attach a device driver to each unattached
3491  * child of the given device using device_probe_and_attach().  If an
3492  * individual child fails to attach this function continues attaching
3493  * other children.
3494  *
3495  * @param dev		the parent device
3496  */
3497 void
3498 bus_attach_children(device_t dev)
3499 {
3500 	device_t child;
3501 
3502 	TAILQ_FOREACH(child, &dev->children, link) {
3503 		device_probe_and_attach(child);
3504 	}
3505 }
3506 
3507 /**
3508  * @brief Helper function for delaying attaching children
3509  *
3510  * Many buses can't run transactions on the bus which children need to probe and
3511  * attach until after interrupts and/or timers are running.  This function
3512  * delays their attach until interrupts and timers are enabled.
3513  */
3514 void
3515 bus_delayed_attach_children(device_t dev)
3516 {
3517 	/* Probe and attach the bus children when interrupts are available */
3518 	config_intrhook_oneshot((ich_func_t)bus_attach_children, dev);
3519 }
3520 
3521 /**
3522  * @brief Helper function for implementing DEVICE_DETACH()
3523  *
3524  * This function can be used to help implement the DEVICE_DETACH() for
3525  * a bus.  It detaches and deletes all children.  If an individual
3526  * child fails to detach, this function stops and returns an error.
3527  *
3528  * @param dev		the parent device
3529  *
3530  * @retval 0		success
3531  * @retval non-zero	a device would not detach
3532  */
3533 int
3534 bus_generic_detach(device_t dev)
3535 {
3536 	int error;
3537 
3538 	error = bus_detach_children(dev);
3539 	if (error != 0)
3540 		return (error);
3541 
3542 	return (device_delete_children(dev));
3543 }
3544 
3545 /**
3546  * @brief Detach drivers from all children of a device
3547  *
3548  * This function attempts to detach a device driver from each attached
3549  * child of the given device using device_detach().  If an individual
3550  * child fails to detach this function stops and returns an error.
3551  * NB: Children that were successfully detached are not re-attached if
3552  * an error occurs.
3553  *
3554  * @param dev		the parent device
3555  *
3556  * @retval 0		success
3557  * @retval non-zero	a device would not detach
3558  */
3559 int
3560 bus_detach_children(device_t dev)
3561 {
3562 	device_t child;
3563 	int error;
3564 
3565 	/*
3566 	 * Detach children in the reverse order.
3567 	 * See bus_generic_suspend for details.
3568 	 */
3569 	TAILQ_FOREACH_REVERSE(child, &dev->children, device_list, link) {
3570 		if ((error = device_detach(child)) != 0)
3571 			return (error);
3572 	}
3573 
3574 	return (0);
3575 }
3576 
3577 /**
3578  * @brief Helper function for implementing DEVICE_SHUTDOWN()
3579  *
3580  * This function can be used to help implement the DEVICE_SHUTDOWN()
3581  * for a bus. It calls device_shutdown() for each of the device's
3582  * children.
3583  */
3584 int
3585 bus_generic_shutdown(device_t dev)
3586 {
3587 	device_t child;
3588 
3589 	/*
3590 	 * Shut down children in the reverse order.
3591 	 * See bus_generic_suspend for details.
3592 	 */
3593 	TAILQ_FOREACH_REVERSE(child, &dev->children, device_list, link) {
3594 		device_shutdown(child);
3595 	}
3596 
3597 	return (0);
3598 }
3599 
3600 /**
3601  * @brief Default function for suspending a child device.
3602  *
3603  * This function is to be used by a bus's DEVICE_SUSPEND_CHILD().
3604  */
3605 int
3606 bus_generic_suspend_child(device_t dev, device_t child)
3607 {
3608 	int	error;
3609 
3610 	error = DEVICE_SUSPEND(child);
3611 
3612 	if (error == 0) {
3613 		child->flags |= DF_SUSPENDED;
3614 	} else {
3615 		printf("DEVICE_SUSPEND(%s) failed: %d\n",
3616 		    device_get_nameunit(child), error);
3617 	}
3618 
3619 	return (error);
3620 }
3621 
3622 /**
3623  * @brief Default function for resuming a child device.
3624  *
3625  * This function is to be used by a bus's DEVICE_RESUME_CHILD().
3626  */
3627 int
3628 bus_generic_resume_child(device_t dev, device_t child)
3629 {
3630 	DEVICE_RESUME(child);
3631 	child->flags &= ~DF_SUSPENDED;
3632 
3633 	return (0);
3634 }
3635 
3636 /**
3637  * @brief Helper function for implementing DEVICE_SUSPEND()
3638  *
3639  * This function can be used to help implement the DEVICE_SUSPEND()
3640  * for a bus. It calls DEVICE_SUSPEND() for each of the device's
3641  * children. If any call to DEVICE_SUSPEND() fails, the suspend
3642  * operation is aborted and any devices which were suspended are
3643  * resumed immediately by calling their DEVICE_RESUME() methods.
3644  */
3645 int
3646 bus_generic_suspend(device_t dev)
3647 {
3648 	int		error;
3649 	device_t	child;
3650 
3651 	/*
3652 	 * Suspend children in the reverse order.
3653 	 * For most buses all children are equal, so the order does not matter.
3654 	 * Other buses, such as acpi, carefully order their child devices to
3655 	 * express implicit dependencies between them.  For such buses it is
3656 	 * safer to bring down devices in the reverse order.
3657 	 */
3658 	TAILQ_FOREACH_REVERSE(child, &dev->children, device_list, link) {
3659 		error = BUS_SUSPEND_CHILD(dev, child);
3660 		if (error != 0) {
3661 			child = TAILQ_NEXT(child, link);
3662 			if (child != NULL) {
3663 				TAILQ_FOREACH_FROM(child, &dev->children, link)
3664 					BUS_RESUME_CHILD(dev, child);
3665 			}
3666 			return (error);
3667 		}
3668 	}
3669 	return (0);
3670 }
3671 
3672 /**
3673  * @brief Helper function for implementing DEVICE_RESUME()
3674  *
3675  * This function can be used to help implement the DEVICE_RESUME() for
3676  * a bus. It calls DEVICE_RESUME() on each of the device's children.
3677  */
3678 int
3679 bus_generic_resume(device_t dev)
3680 {
3681 	device_t	child;
3682 
3683 	TAILQ_FOREACH(child, &dev->children, link) {
3684 		BUS_RESUME_CHILD(dev, child);
3685 		/* if resume fails, there's nothing we can usefully do... */
3686 	}
3687 	return (0);
3688 }
3689 
3690 /**
3691  * @brief Helper function for implementing BUS_RESET_POST
3692  *
3693  * Bus can use this function to implement common operations of
3694  * re-attaching or resuming the children after the bus itself was
3695  * reset, and after restoring bus-unique state of children.
3696  *
3697  * @param dev	The bus
3698  * #param flags	DEVF_RESET_*
3699  */
3700 int
3701 bus_helper_reset_post(device_t dev, int flags)
3702 {
3703 	device_t child;
3704 	int error, error1;
3705 
3706 	error = 0;
3707 	TAILQ_FOREACH(child, &dev->children,link) {
3708 		BUS_RESET_POST(dev, child);
3709 		error1 = (flags & DEVF_RESET_DETACH) != 0 ?
3710 		    device_probe_and_attach(child) :
3711 		    BUS_RESUME_CHILD(dev, child);
3712 		if (error == 0 && error1 != 0)
3713 			error = error1;
3714 	}
3715 	return (error);
3716 }
3717 
3718 static void
3719 bus_helper_reset_prepare_rollback(device_t dev, device_t child, int flags)
3720 {
3721 	child = TAILQ_NEXT(child, link);
3722 	if (child == NULL)
3723 		return;
3724 	TAILQ_FOREACH_FROM(child, &dev->children,link) {
3725 		BUS_RESET_POST(dev, child);
3726 		if ((flags & DEVF_RESET_DETACH) != 0)
3727 			device_probe_and_attach(child);
3728 		else
3729 			BUS_RESUME_CHILD(dev, child);
3730 	}
3731 }
3732 
3733 /**
3734  * @brief Helper function for implementing BUS_RESET_PREPARE
3735  *
3736  * Bus can use this function to implement common operations of
3737  * detaching or suspending the children before the bus itself is
3738  * reset, and then save bus-unique state of children that must
3739  * persists around reset.
3740  *
3741  * @param dev	The bus
3742  * #param flags	DEVF_RESET_*
3743  */
3744 int
3745 bus_helper_reset_prepare(device_t dev, int flags)
3746 {
3747 	device_t child;
3748 	int error;
3749 
3750 	if (dev->state != DS_ATTACHED)
3751 		return (EBUSY);
3752 
3753 	TAILQ_FOREACH_REVERSE(child, &dev->children, device_list, link) {
3754 		if ((flags & DEVF_RESET_DETACH) != 0) {
3755 			error = device_get_state(child) == DS_ATTACHED ?
3756 			    device_detach(child) : 0;
3757 		} else {
3758 			error = BUS_SUSPEND_CHILD(dev, child);
3759 		}
3760 		if (error == 0) {
3761 			error = BUS_RESET_PREPARE(dev, child);
3762 			if (error != 0) {
3763 				if ((flags & DEVF_RESET_DETACH) != 0)
3764 					device_probe_and_attach(child);
3765 				else
3766 					BUS_RESUME_CHILD(dev, child);
3767 			}
3768 		}
3769 		if (error != 0) {
3770 			bus_helper_reset_prepare_rollback(dev, child, flags);
3771 			return (error);
3772 		}
3773 	}
3774 	return (0);
3775 }
3776 
3777 /**
3778  * @brief Helper function for implementing BUS_PRINT_CHILD().
3779  *
3780  * This function prints the first part of the ascii representation of
3781  * @p child, including its name, unit and description (if any - see
3782  * device_set_desc()).
3783  *
3784  * @returns the number of characters printed
3785  */
3786 int
3787 bus_print_child_header(device_t dev, device_t child)
3788 {
3789 	int	retval = 0;
3790 
3791 	if (device_get_desc(child)) {
3792 		retval += device_printf(child, "<%s>", device_get_desc(child));
3793 	} else {
3794 		retval += printf("%s", device_get_nameunit(child));
3795 	}
3796 
3797 	return (retval);
3798 }
3799 
3800 /**
3801  * @brief Helper function for implementing BUS_PRINT_CHILD().
3802  *
3803  * This function prints the last part of the ascii representation of
3804  * @p child, which consists of the string @c " on " followed by the
3805  * name and unit of the @p dev.
3806  *
3807  * @returns the number of characters printed
3808  */
3809 int
3810 bus_print_child_footer(device_t dev, device_t child)
3811 {
3812 	return (printf(" on %s\n", device_get_nameunit(dev)));
3813 }
3814 
3815 /**
3816  * @brief Helper function for implementing BUS_PRINT_CHILD().
3817  *
3818  * This function prints out the VM domain for the given device.
3819  *
3820  * @returns the number of characters printed
3821  */
3822 int
3823 bus_print_child_domain(device_t dev, device_t child)
3824 {
3825 	int domain;
3826 
3827 	/* No domain? Don't print anything */
3828 	if (BUS_GET_DOMAIN(dev, child, &domain) != 0)
3829 		return (0);
3830 
3831 	return (printf(" numa-domain %d", domain));
3832 }
3833 
3834 /**
3835  * @brief Helper function for implementing BUS_PRINT_CHILD().
3836  *
3837  * This function simply calls bus_print_child_header() followed by
3838  * bus_print_child_footer().
3839  *
3840  * @returns the number of characters printed
3841  */
3842 int
3843 bus_generic_print_child(device_t dev, device_t child)
3844 {
3845 	int	retval = 0;
3846 
3847 	retval += bus_print_child_header(dev, child);
3848 	retval += bus_print_child_domain(dev, child);
3849 	retval += bus_print_child_footer(dev, child);
3850 
3851 	return (retval);
3852 }
3853 
3854 /**
3855  * @brief Stub function for implementing BUS_READ_IVAR().
3856  *
3857  * @returns ENOENT
3858  */
3859 int
3860 bus_generic_read_ivar(device_t dev, device_t child, int index,
3861     uintptr_t * result)
3862 {
3863 	return (ENOENT);
3864 }
3865 
3866 /**
3867  * @brief Stub function for implementing BUS_WRITE_IVAR().
3868  *
3869  * @returns ENOENT
3870  */
3871 int
3872 bus_generic_write_ivar(device_t dev, device_t child, int index,
3873     uintptr_t value)
3874 {
3875 	return (ENOENT);
3876 }
3877 
3878 /**
3879  * @brief Helper function for implementing BUS_GET_PROPERTY().
3880  *
3881  * This simply calls the BUS_GET_PROPERTY of the parent of dev,
3882  * until a non-default implementation is found.
3883  */
3884 ssize_t
3885 bus_generic_get_property(device_t dev, device_t child, const char *propname,
3886     void *propvalue, size_t size, device_property_type_t type)
3887 {
3888 	if (device_get_parent(dev) != NULL)
3889 		return (BUS_GET_PROPERTY(device_get_parent(dev), child,
3890 		    propname, propvalue, size, type));
3891 
3892 	return (-1);
3893 }
3894 
3895 /**
3896  * @brief Helper function for implementing BUS_DRIVER_ADDED().
3897  *
3898  * This implementation of BUS_DRIVER_ADDED() simply calls the driver's
3899  * DEVICE_IDENTIFY() method to allow it to add new children to the bus
3900  * and then calls device_probe_and_attach() for each unattached child.
3901  */
3902 void
3903 bus_generic_driver_added(device_t dev, driver_t *driver)
3904 {
3905 	device_t child;
3906 
3907 	DEVICE_IDENTIFY(driver, dev);
3908 	TAILQ_FOREACH(child, &dev->children, link) {
3909 		if (child->state == DS_NOTPRESENT)
3910 			device_probe_and_attach(child);
3911 	}
3912 }
3913 
3914 /**
3915  * @brief Helper function for implementing BUS_NEW_PASS().
3916  *
3917  * This implementing of BUS_NEW_PASS() first calls the identify
3918  * routines for any drivers that probe at the current pass.  Then it
3919  * walks the list of devices for this bus.  If a device is already
3920  * attached, then it calls BUS_NEW_PASS() on that device.  If the
3921  * device is not already attached, it attempts to attach a driver to
3922  * it.
3923  */
3924 void
3925 bus_generic_new_pass(device_t dev)
3926 {
3927 	driverlink_t dl;
3928 	devclass_t dc;
3929 	device_t child;
3930 
3931 	dc = dev->devclass;
3932 	TAILQ_FOREACH(dl, &dc->drivers, link) {
3933 		if (dl->pass == bus_current_pass)
3934 			DEVICE_IDENTIFY(dl->driver, dev);
3935 	}
3936 	TAILQ_FOREACH(child, &dev->children, link) {
3937 		if (child->state >= DS_ATTACHED)
3938 			BUS_NEW_PASS(child);
3939 		else if (child->state == DS_NOTPRESENT)
3940 			device_probe_and_attach(child);
3941 	}
3942 }
3943 
3944 /**
3945  * @brief Helper function for implementing BUS_SETUP_INTR().
3946  *
3947  * This simple implementation of BUS_SETUP_INTR() simply calls the
3948  * BUS_SETUP_INTR() method of the parent of @p dev.
3949  */
3950 int
3951 bus_generic_setup_intr(device_t dev, device_t child, struct resource *irq,
3952     int flags, driver_filter_t *filter, driver_intr_t *intr, void *arg,
3953     void **cookiep)
3954 {
3955 	/* Propagate up the bus hierarchy until someone handles it. */
3956 	if (dev->parent)
3957 		return (BUS_SETUP_INTR(dev->parent, child, irq, flags,
3958 		    filter, intr, arg, cookiep));
3959 	return (EINVAL);
3960 }
3961 
3962 /**
3963  * @brief Helper function for implementing BUS_TEARDOWN_INTR().
3964  *
3965  * This simple implementation of BUS_TEARDOWN_INTR() simply calls the
3966  * BUS_TEARDOWN_INTR() method of the parent of @p dev.
3967  */
3968 int
3969 bus_generic_teardown_intr(device_t dev, device_t child, struct resource *irq,
3970     void *cookie)
3971 {
3972 	/* Propagate up the bus hierarchy until someone handles it. */
3973 	if (dev->parent)
3974 		return (BUS_TEARDOWN_INTR(dev->parent, child, irq, cookie));
3975 	return (EINVAL);
3976 }
3977 
3978 /**
3979  * @brief Helper function for implementing BUS_SUSPEND_INTR().
3980  *
3981  * This simple implementation of BUS_SUSPEND_INTR() simply calls the
3982  * BUS_SUSPEND_INTR() method of the parent of @p dev.
3983  */
3984 int
3985 bus_generic_suspend_intr(device_t dev, device_t child, struct resource *irq)
3986 {
3987 	/* Propagate up the bus hierarchy until someone handles it. */
3988 	if (dev->parent)
3989 		return (BUS_SUSPEND_INTR(dev->parent, child, irq));
3990 	return (EINVAL);
3991 }
3992 
3993 /**
3994  * @brief Helper function for implementing BUS_RESUME_INTR().
3995  *
3996  * This simple implementation of BUS_RESUME_INTR() simply calls the
3997  * BUS_RESUME_INTR() method of the parent of @p dev.
3998  */
3999 int
4000 bus_generic_resume_intr(device_t dev, device_t child, struct resource *irq)
4001 {
4002 	/* Propagate up the bus hierarchy until someone handles it. */
4003 	if (dev->parent)
4004 		return (BUS_RESUME_INTR(dev->parent, child, irq));
4005 	return (EINVAL);
4006 }
4007 
4008 /**
4009  * @brief Helper function for implementing BUS_ADJUST_RESOURCE().
4010  *
4011  * This simple implementation of BUS_ADJUST_RESOURCE() simply calls the
4012  * BUS_ADJUST_RESOURCE() method of the parent of @p dev.
4013  */
4014 int
4015 bus_generic_adjust_resource(device_t dev, device_t child, struct resource *r,
4016     rman_res_t start, rman_res_t end)
4017 {
4018 	/* Propagate up the bus hierarchy until someone handles it. */
4019 	if (dev->parent)
4020 		return (BUS_ADJUST_RESOURCE(dev->parent, child, r, start, end));
4021 	return (EINVAL);
4022 }
4023 
4024 /*
4025  * @brief Helper function for implementing BUS_TRANSLATE_RESOURCE().
4026  *
4027  * This simple implementation of BUS_TRANSLATE_RESOURCE() simply calls the
4028  * BUS_TRANSLATE_RESOURCE() method of the parent of @p dev.  If there is no
4029  * parent, no translation happens.
4030  */
4031 int
4032 bus_generic_translate_resource(device_t dev, int type, rman_res_t start,
4033     rman_res_t *newstart)
4034 {
4035 	if (dev->parent)
4036 		return (BUS_TRANSLATE_RESOURCE(dev->parent, type, start,
4037 		    newstart));
4038 	*newstart = start;
4039 	return (0);
4040 }
4041 
4042 /**
4043  * @brief Helper function for implementing BUS_ALLOC_RESOURCE().
4044  *
4045  * This simple implementation of BUS_ALLOC_RESOURCE() simply calls the
4046  * BUS_ALLOC_RESOURCE() method of the parent of @p dev.
4047  */
4048 struct resource *
4049 bus_generic_alloc_resource(device_t dev, device_t child, int type, int rid,
4050     rman_res_t start, rman_res_t end, rman_res_t count, u_int flags)
4051 {
4052 	/* Propagate up the bus hierarchy until someone handles it. */
4053 	if (dev->parent)
4054 		return (BUS_ALLOC_RESOURCE(dev->parent, child, type, rid,
4055 		    start, end, count, flags));
4056 	return (NULL);
4057 }
4058 
4059 /**
4060  * @brief Helper function for implementing BUS_RELEASE_RESOURCE().
4061  *
4062  * This simple implementation of BUS_RELEASE_RESOURCE() simply calls the
4063  * BUS_RELEASE_RESOURCE() method of the parent of @p dev.
4064  */
4065 int
4066 bus_generic_release_resource(device_t dev, device_t child, struct resource *r)
4067 {
4068 	/* Propagate up the bus hierarchy until someone handles it. */
4069 	if (dev->parent)
4070 		return (BUS_RELEASE_RESOURCE(dev->parent, child, r));
4071 	return (EINVAL);
4072 }
4073 
4074 /**
4075  * @brief Helper function for implementing BUS_ACTIVATE_RESOURCE().
4076  *
4077  * This simple implementation of BUS_ACTIVATE_RESOURCE() simply calls the
4078  * BUS_ACTIVATE_RESOURCE() method of the parent of @p dev.
4079  */
4080 int
4081 bus_generic_activate_resource(device_t dev, device_t child, struct resource *r)
4082 {
4083 	/* Propagate up the bus hierarchy until someone handles it. */
4084 	if (dev->parent)
4085 		return (BUS_ACTIVATE_RESOURCE(dev->parent, child, r));
4086 	return (EINVAL);
4087 }
4088 
4089 /**
4090  * @brief Helper function for implementing BUS_DEACTIVATE_RESOURCE().
4091  *
4092  * This simple implementation of BUS_DEACTIVATE_RESOURCE() simply calls the
4093  * BUS_DEACTIVATE_RESOURCE() method of the parent of @p dev.
4094  */
4095 int
4096 bus_generic_deactivate_resource(device_t dev, device_t child,
4097     struct resource *r)
4098 {
4099 	/* Propagate up the bus hierarchy until someone handles it. */
4100 	if (dev->parent)
4101 		return (BUS_DEACTIVATE_RESOURCE(dev->parent, child, r));
4102 	return (EINVAL);
4103 }
4104 
4105 /**
4106  * @brief Helper function for implementing BUS_MAP_RESOURCE().
4107  *
4108  * This simple implementation of BUS_MAP_RESOURCE() simply calls the
4109  * BUS_MAP_RESOURCE() method of the parent of @p dev.
4110  */
4111 int
4112 bus_generic_map_resource(device_t dev, device_t child, struct resource *r,
4113     struct resource_map_request *args, struct resource_map *map)
4114 {
4115 	/* Propagate up the bus hierarchy until someone handles it. */
4116 	if (dev->parent)
4117 		return (BUS_MAP_RESOURCE(dev->parent, child, r, args, map));
4118 	return (EINVAL);
4119 }
4120 
4121 /**
4122  * @brief Helper function for implementing BUS_UNMAP_RESOURCE().
4123  *
4124  * This simple implementation of BUS_UNMAP_RESOURCE() simply calls the
4125  * BUS_UNMAP_RESOURCE() method of the parent of @p dev.
4126  */
4127 int
4128 bus_generic_unmap_resource(device_t dev, device_t child, struct resource *r,
4129     struct resource_map *map)
4130 {
4131 	/* Propagate up the bus hierarchy until someone handles it. */
4132 	if (dev->parent)
4133 		return (BUS_UNMAP_RESOURCE(dev->parent, child, r, map));
4134 	return (EINVAL);
4135 }
4136 
4137 /**
4138  * @brief Helper function for implementing BUS_BIND_INTR().
4139  *
4140  * This simple implementation of BUS_BIND_INTR() simply calls the
4141  * BUS_BIND_INTR() method of the parent of @p dev.
4142  */
4143 int
4144 bus_generic_bind_intr(device_t dev, device_t child, struct resource *irq,
4145     int cpu)
4146 {
4147 	/* Propagate up the bus hierarchy until someone handles it. */
4148 	if (dev->parent)
4149 		return (BUS_BIND_INTR(dev->parent, child, irq, cpu));
4150 	return (EINVAL);
4151 }
4152 
4153 /**
4154  * @brief Helper function for implementing BUS_CONFIG_INTR().
4155  *
4156  * This simple implementation of BUS_CONFIG_INTR() simply calls the
4157  * BUS_CONFIG_INTR() method of the parent of @p dev.
4158  */
4159 int
4160 bus_generic_config_intr(device_t dev, int irq, enum intr_trigger trig,
4161     enum intr_polarity pol)
4162 {
4163 	/* Propagate up the bus hierarchy until someone handles it. */
4164 	if (dev->parent)
4165 		return (BUS_CONFIG_INTR(dev->parent, irq, trig, pol));
4166 	return (EINVAL);
4167 }
4168 
4169 /**
4170  * @brief Helper function for implementing BUS_DESCRIBE_INTR().
4171  *
4172  * This simple implementation of BUS_DESCRIBE_INTR() simply calls the
4173  * BUS_DESCRIBE_INTR() method of the parent of @p dev.
4174  */
4175 int
4176 bus_generic_describe_intr(device_t dev, device_t child, struct resource *irq,
4177     void *cookie, const char *descr)
4178 {
4179 	/* Propagate up the bus hierarchy until someone handles it. */
4180 	if (dev->parent)
4181 		return (BUS_DESCRIBE_INTR(dev->parent, child, irq, cookie,
4182 		    descr));
4183 	return (EINVAL);
4184 }
4185 
4186 /**
4187  * @brief Helper function for implementing BUS_GET_CPUS().
4188  *
4189  * This simple implementation of BUS_GET_CPUS() simply calls the
4190  * BUS_GET_CPUS() method of the parent of @p dev.
4191  */
4192 int
4193 bus_generic_get_cpus(device_t dev, device_t child, enum cpu_sets op,
4194     size_t setsize, cpuset_t *cpuset)
4195 {
4196 	/* Propagate up the bus hierarchy until someone handles it. */
4197 	if (dev->parent != NULL)
4198 		return (BUS_GET_CPUS(dev->parent, child, op, setsize, cpuset));
4199 	return (EINVAL);
4200 }
4201 
4202 /**
4203  * @brief Helper function for implementing BUS_GET_DMA_TAG().
4204  *
4205  * This simple implementation of BUS_GET_DMA_TAG() simply calls the
4206  * BUS_GET_DMA_TAG() method of the parent of @p dev.
4207  */
4208 bus_dma_tag_t
4209 bus_generic_get_dma_tag(device_t dev, device_t child)
4210 {
4211 	/* Propagate up the bus hierarchy until someone handles it. */
4212 	if (dev->parent != NULL)
4213 		return (BUS_GET_DMA_TAG(dev->parent, child));
4214 	return (NULL);
4215 }
4216 
4217 /**
4218  * @brief Helper function for implementing BUS_GET_BUS_TAG().
4219  *
4220  * This simple implementation of BUS_GET_BUS_TAG() simply calls the
4221  * BUS_GET_BUS_TAG() method of the parent of @p dev.
4222  */
4223 bus_space_tag_t
4224 bus_generic_get_bus_tag(device_t dev, device_t child)
4225 {
4226 	/* Propagate up the bus hierarchy until someone handles it. */
4227 	if (dev->parent != NULL)
4228 		return (BUS_GET_BUS_TAG(dev->parent, child));
4229 	return ((bus_space_tag_t)0);
4230 }
4231 
4232 /**
4233  * @brief Helper function for implementing BUS_GET_RESOURCE().
4234  *
4235  * This implementation of BUS_GET_RESOURCE() uses the
4236  * resource_list_find() function to do most of the work. It calls
4237  * BUS_GET_RESOURCE_LIST() to find a suitable resource list to
4238  * search.
4239  */
4240 int
4241 bus_generic_rl_get_resource(device_t dev, device_t child, int type, int rid,
4242     rman_res_t *startp, rman_res_t *countp)
4243 {
4244 	struct resource_list *		rl = NULL;
4245 	struct resource_list_entry *	rle = NULL;
4246 
4247 	rl = BUS_GET_RESOURCE_LIST(dev, child);
4248 	if (!rl)
4249 		return (EINVAL);
4250 
4251 	rle = resource_list_find(rl, type, rid);
4252 	if (!rle)
4253 		return (ENOENT);
4254 
4255 	if (startp)
4256 		*startp = rle->start;
4257 	if (countp)
4258 		*countp = rle->count;
4259 
4260 	return (0);
4261 }
4262 
4263 /**
4264  * @brief Helper function for implementing BUS_SET_RESOURCE().
4265  *
4266  * This implementation of BUS_SET_RESOURCE() uses the
4267  * resource_list_add() function to do most of the work. It calls
4268  * BUS_GET_RESOURCE_LIST() to find a suitable resource list to
4269  * edit.
4270  */
4271 int
4272 bus_generic_rl_set_resource(device_t dev, device_t child, int type, int rid,
4273     rman_res_t start, rman_res_t count)
4274 {
4275 	struct resource_list *		rl = NULL;
4276 
4277 	rl = BUS_GET_RESOURCE_LIST(dev, child);
4278 	if (!rl)
4279 		return (EINVAL);
4280 
4281 	resource_list_add(rl, type, rid, start, (start + count - 1), count);
4282 
4283 	return (0);
4284 }
4285 
4286 /**
4287  * @brief Helper function for implementing BUS_DELETE_RESOURCE().
4288  *
4289  * This implementation of BUS_DELETE_RESOURCE() uses the
4290  * resource_list_delete() function to do most of the work. It calls
4291  * BUS_GET_RESOURCE_LIST() to find a suitable resource list to
4292  * edit.
4293  */
4294 void
4295 bus_generic_rl_delete_resource(device_t dev, device_t child, int type, int rid)
4296 {
4297 	struct resource_list *		rl = NULL;
4298 
4299 	rl = BUS_GET_RESOURCE_LIST(dev, child);
4300 	if (!rl)
4301 		return;
4302 
4303 	resource_list_delete(rl, type, rid);
4304 
4305 	return;
4306 }
4307 
4308 /**
4309  * @brief Helper function for implementing BUS_RELEASE_RESOURCE().
4310  *
4311  * This implementation of BUS_RELEASE_RESOURCE() uses the
4312  * resource_list_release() function to do most of the work. It calls
4313  * BUS_GET_RESOURCE_LIST() to find a suitable resource list.
4314  */
4315 int
4316 bus_generic_rl_release_resource(device_t dev, device_t child,
4317     struct resource *r)
4318 {
4319 	struct resource_list *		rl = NULL;
4320 
4321 	if (device_get_parent(child) != dev)
4322 		return (BUS_RELEASE_RESOURCE(device_get_parent(dev), child, r));
4323 
4324 	rl = BUS_GET_RESOURCE_LIST(dev, child);
4325 	if (!rl)
4326 		return (EINVAL);
4327 
4328 	return (resource_list_release(rl, dev, child, r));
4329 }
4330 
4331 /**
4332  * @brief Helper function for implementing BUS_ALLOC_RESOURCE().
4333  *
4334  * This implementation of BUS_ALLOC_RESOURCE() uses the
4335  * resource_list_alloc() function to do most of the work. It calls
4336  * BUS_GET_RESOURCE_LIST() to find a suitable resource list.
4337  */
4338 struct resource *
4339 bus_generic_rl_alloc_resource(device_t dev, device_t child, int type,
4340     int rid, rman_res_t start, rman_res_t end, rman_res_t count, u_int flags)
4341 {
4342 	struct resource_list *		rl = NULL;
4343 
4344 	if (device_get_parent(child) != dev)
4345 		return (BUS_ALLOC_RESOURCE(device_get_parent(dev), child,
4346 		    type, rid, start, end, count, flags));
4347 
4348 	rl = BUS_GET_RESOURCE_LIST(dev, child);
4349 	if (!rl)
4350 		return (NULL);
4351 
4352 	return (resource_list_alloc(rl, dev, child, type, rid,
4353 	    start, end, count, flags));
4354 }
4355 
4356 /**
4357  * @brief Helper function for implementing BUS_ALLOC_RESOURCE().
4358  *
4359  * This implementation of BUS_ALLOC_RESOURCE() allocates a
4360  * resource from a resource manager.  It uses BUS_GET_RMAN()
4361  * to obtain the resource manager.
4362  */
4363 struct resource *
4364 bus_generic_rman_alloc_resource(device_t dev, device_t child, int type,
4365     int rid, rman_res_t start, rman_res_t end, rman_res_t count, u_int flags)
4366 {
4367 	struct resource *r;
4368 	struct rman *rm;
4369 
4370 	rm = BUS_GET_RMAN(dev, type, flags);
4371 	if (rm == NULL)
4372 		return (NULL);
4373 
4374 	r = rman_reserve_resource(rm, start, end, count, flags & ~RF_ACTIVE,
4375 	    child);
4376 	if (r == NULL)
4377 		return (NULL);
4378 	rman_set_rid(r, rid);
4379 	rman_set_type(r, type);
4380 
4381 	if (flags & RF_ACTIVE) {
4382 		if (bus_activate_resource(child, type, rid, r) != 0) {
4383 			rman_release_resource(r);
4384 			return (NULL);
4385 		}
4386 	}
4387 
4388 	return (r);
4389 }
4390 
4391 /**
4392  * @brief Helper function for implementing BUS_ADJUST_RESOURCE().
4393  *
4394  * This implementation of BUS_ADJUST_RESOURCE() adjusts resources only
4395  * if they were allocated from the resource manager returned by
4396  * BUS_GET_RMAN().
4397  */
4398 int
4399 bus_generic_rman_adjust_resource(device_t dev, device_t child,
4400     struct resource *r, rman_res_t start, rman_res_t end)
4401 {
4402 	struct rman *rm;
4403 
4404 	rm = BUS_GET_RMAN(dev, rman_get_type(r), rman_get_flags(r));
4405 	if (rm == NULL)
4406 		return (ENXIO);
4407 	if (!rman_is_region_manager(r, rm))
4408 		return (EINVAL);
4409 	return (rman_adjust_resource(r, start, end));
4410 }
4411 
4412 /**
4413  * @brief Helper function for implementing BUS_RELEASE_RESOURCE().
4414  *
4415  * This implementation of BUS_RELEASE_RESOURCE() releases resources
4416  * allocated by bus_generic_rman_alloc_resource.
4417  */
4418 int
4419 bus_generic_rman_release_resource(device_t dev, device_t child,
4420     struct resource *r)
4421 {
4422 #ifdef INVARIANTS
4423 	struct rman *rm;
4424 #endif
4425 	int error;
4426 
4427 #ifdef INVARIANTS
4428 	rm = BUS_GET_RMAN(dev, rman_get_type(r), rman_get_flags(r));
4429 	KASSERT(rman_is_region_manager(r, rm),
4430 	    ("%s: rman %p doesn't match for resource %p", __func__, rm, r));
4431 #endif
4432 
4433 	if (rman_get_flags(r) & RF_ACTIVE) {
4434 		error = bus_deactivate_resource(child, r);
4435 		if (error != 0)
4436 			return (error);
4437 	}
4438 	return (rman_release_resource(r));
4439 }
4440 
4441 /**
4442  * @brief Helper function for implementing BUS_ACTIVATE_RESOURCE().
4443  *
4444  * This implementation of BUS_ACTIVATE_RESOURCE() activates resources
4445  * allocated by bus_generic_rman_alloc_resource.
4446  */
4447 int
4448 bus_generic_rman_activate_resource(device_t dev, device_t child,
4449     struct resource *r)
4450 {
4451 	struct resource_map map;
4452 #ifdef INVARIANTS
4453 	struct rman *rm;
4454 #endif
4455 	int error, type;
4456 
4457 	type = rman_get_type(r);
4458 #ifdef INVARIANTS
4459 	rm = BUS_GET_RMAN(dev, type, rman_get_flags(r));
4460 	KASSERT(rman_is_region_manager(r, rm),
4461 	    ("%s: rman %p doesn't match for resource %p", __func__, rm, r));
4462 #endif
4463 
4464 	error = rman_activate_resource(r);
4465 	if (error != 0)
4466 		return (error);
4467 
4468 	switch (type) {
4469 	case SYS_RES_IOPORT:
4470 	case SYS_RES_MEMORY:
4471 		if ((rman_get_flags(r) & RF_UNMAPPED) == 0) {
4472 			error = BUS_MAP_RESOURCE(dev, child, r, NULL, &map);
4473 			if (error != 0)
4474 				break;
4475 
4476 			rman_set_mapping(r, &map);
4477 		}
4478 		break;
4479 #ifdef INTRNG
4480 	case SYS_RES_IRQ:
4481 		error = intr_activate_irq(child, r);
4482 		break;
4483 #endif
4484 	}
4485 	if (error != 0)
4486 		rman_deactivate_resource(r);
4487 	return (error);
4488 }
4489 
4490 /**
4491  * @brief Helper function for implementing BUS_DEACTIVATE_RESOURCE().
4492  *
4493  * This implementation of BUS_DEACTIVATE_RESOURCE() deactivates
4494  * resources allocated by bus_generic_rman_alloc_resource.
4495  */
4496 int
4497 bus_generic_rman_deactivate_resource(device_t dev, device_t child,
4498     struct resource *r)
4499 {
4500 	struct resource_map map;
4501 #ifdef INVARIANTS
4502 	struct rman *rm;
4503 #endif
4504 	int error, type;
4505 
4506 	type = rman_get_type(r);
4507 #ifdef INVARIANTS
4508 	rm = BUS_GET_RMAN(dev, type, rman_get_flags(r));
4509 	KASSERT(rman_is_region_manager(r, rm),
4510 	    ("%s: rman %p doesn't match for resource %p", __func__, rm, r));
4511 #endif
4512 
4513 	error = rman_deactivate_resource(r);
4514 	if (error != 0)
4515 		return (error);
4516 
4517 	switch (type) {
4518 	case SYS_RES_IOPORT:
4519 	case SYS_RES_MEMORY:
4520 		if ((rman_get_flags(r) & RF_UNMAPPED) == 0) {
4521 			rman_get_mapping(r, &map);
4522 			BUS_UNMAP_RESOURCE(dev, child, r, &map);
4523 		}
4524 		break;
4525 #ifdef INTRNG
4526 	case SYS_RES_IRQ:
4527 		intr_deactivate_irq(child, r);
4528 		break;
4529 #endif
4530 	}
4531 	return (0);
4532 }
4533 
4534 /**
4535  * @brief Helper function for implementing BUS_CHILD_PRESENT().
4536  *
4537  * This simple implementation of BUS_CHILD_PRESENT() simply calls the
4538  * BUS_CHILD_PRESENT() method of the parent of @p dev.
4539  */
4540 int
4541 bus_generic_child_present(device_t dev, device_t child)
4542 {
4543 	return (BUS_CHILD_PRESENT(device_get_parent(dev), dev));
4544 }
4545 
4546 /**
4547  * @brief Helper function for implementing BUS_GET_DOMAIN().
4548  *
4549  * This simple implementation of BUS_GET_DOMAIN() calls the
4550  * BUS_GET_DOMAIN() method of the parent of @p dev.  If @p dev
4551  * does not have a parent, the function fails with ENOENT.
4552  */
4553 int
4554 bus_generic_get_domain(device_t dev, device_t child, int *domain)
4555 {
4556 	if (dev->parent)
4557 		return (BUS_GET_DOMAIN(dev->parent, dev, domain));
4558 
4559 	return (ENOENT);
4560 }
4561 
4562 /**
4563  * @brief Helper function to implement normal BUS_GET_DEVICE_PATH()
4564  *
4565  * This function knows how to (a) pass the request up the tree if there's
4566  * a parent and (b) Knows how to supply a FreeBSD locator.
4567  *
4568  * @param bus		bus in the walk up the tree
4569  * @param child		leaf node to print information about
4570  * @param locator	BUS_LOCATOR_xxx string for locator
4571  * @param sb		Buffer to print information into
4572  */
4573 int
4574 bus_generic_get_device_path(device_t bus, device_t child, const char *locator,
4575     struct sbuf *sb)
4576 {
4577 	int rv = 0;
4578 	device_t parent;
4579 
4580 	/*
4581 	 * We don't recurse on ACPI since either we know the handle for the
4582 	 * device or we don't. And if we're in the generic routine, we don't
4583 	 * have a ACPI override. All other locators build up a path by having
4584 	 * their parents create a path and then adding the path element for this
4585 	 * node. That's why we recurse with parent, bus rather than the typical
4586 	 * parent, child: each spot in the tree is independent of what our child
4587 	 * will do with this path.
4588 	 */
4589 	parent = device_get_parent(bus);
4590 	if (parent != NULL && strcmp(locator, BUS_LOCATOR_ACPI) != 0) {
4591 		rv = BUS_GET_DEVICE_PATH(parent, bus, locator, sb);
4592 	}
4593 	if (strcmp(locator, BUS_LOCATOR_FREEBSD) == 0) {
4594 		if (rv == 0) {
4595 			sbuf_printf(sb, "/%s", device_get_nameunit(child));
4596 		}
4597 		return (rv);
4598 	}
4599 	/*
4600 	 * Don't know what to do. So assume we do nothing. Not sure that's
4601 	 * the right thing, but keeps us from having a big list here.
4602 	 */
4603 	return (0);
4604 }
4605 
4606 
4607 /**
4608  * @brief Helper function for implementing BUS_RESCAN().
4609  *
4610  * This null implementation of BUS_RESCAN() always fails to indicate
4611  * the bus does not support rescanning.
4612  */
4613 int
4614 bus_null_rescan(device_t dev)
4615 {
4616 	return (ENODEV);
4617 }
4618 
4619 /*
4620  * Some convenience functions to make it easier for drivers to use the
4621  * resource-management functions.  All these really do is hide the
4622  * indirection through the parent's method table, making for slightly
4623  * less-wordy code.  In the future, it might make sense for this code
4624  * to maintain some sort of a list of resources allocated by each device.
4625  */
4626 
4627 int
4628 bus_alloc_resources(device_t dev, struct resource_spec *rs,
4629     struct resource **res)
4630 {
4631 	int i;
4632 
4633 	for (i = 0; rs[i].type != -1; i++)
4634 		res[i] = NULL;
4635 	for (i = 0; rs[i].type != -1; i++) {
4636 		res[i] = bus_alloc_resource_any(dev,
4637 		    rs[i].type, &rs[i].rid, rs[i].flags);
4638 		if (res[i] == NULL && !(rs[i].flags & RF_OPTIONAL)) {
4639 			bus_release_resources(dev, rs, res);
4640 			return (ENXIO);
4641 		}
4642 	}
4643 	return (0);
4644 }
4645 
4646 void
4647 bus_release_resources(device_t dev, const struct resource_spec *rs,
4648     struct resource **res)
4649 {
4650 	int i;
4651 
4652 	for (i = 0; rs[i].type != -1; i++)
4653 		if (res[i] != NULL) {
4654 			bus_release_resource(
4655 			    dev, rs[i].type, rs[i].rid, res[i]);
4656 			res[i] = NULL;
4657 		}
4658 }
4659 
4660 /**
4661  * @brief Wrapper function for BUS_ALLOC_RESOURCE().
4662  *
4663  * This function simply calls the BUS_ALLOC_RESOURCE() method of the
4664  * parent of @p dev.
4665  */
4666 struct resource *
4667 (bus_alloc_resource)(device_t dev, int type, int rid, rman_res_t start,
4668     rman_res_t end, rman_res_t count, u_int flags)
4669 {
4670 	struct resource *res;
4671 
4672 	if (dev->parent == NULL)
4673 		return (NULL);
4674 	res = BUS_ALLOC_RESOURCE(dev->parent, dev, type, rid, start, end,
4675 	    count, flags);
4676 	return (res);
4677 }
4678 
4679 /**
4680  * @brief Wrapper function for BUS_ADJUST_RESOURCE().
4681  *
4682  * This function simply calls the BUS_ADJUST_RESOURCE() method of the
4683  * parent of @p dev.
4684  */
4685 int
4686 bus_adjust_resource(device_t dev, struct resource *r, rman_res_t start,
4687     rman_res_t end)
4688 {
4689 	if (dev->parent == NULL)
4690 		return (EINVAL);
4691 	return (BUS_ADJUST_RESOURCE(dev->parent, dev, r, start, end));
4692 }
4693 
4694 int
4695 bus_adjust_resource_old(device_t dev, int type __unused, struct resource *r,
4696     rman_res_t start, rman_res_t end)
4697 {
4698 	return (bus_adjust_resource(dev, r, start, end));
4699 }
4700 
4701 /**
4702  * @brief Wrapper function for BUS_TRANSLATE_RESOURCE().
4703  *
4704  * This function simply calls the BUS_TRANSLATE_RESOURCE() method of the
4705  * parent of @p dev.
4706  */
4707 int
4708 bus_translate_resource(device_t dev, int type, rman_res_t start,
4709     rman_res_t *newstart)
4710 {
4711 	if (dev->parent == NULL)
4712 		return (EINVAL);
4713 	return (BUS_TRANSLATE_RESOURCE(dev->parent, type, start, newstart));
4714 }
4715 
4716 /**
4717  * @brief Wrapper function for BUS_ACTIVATE_RESOURCE().
4718  *
4719  * This function simply calls the BUS_ACTIVATE_RESOURCE() method of the
4720  * parent of @p dev.
4721  */
4722 int
4723 bus_activate_resource(device_t dev, struct resource *r)
4724 {
4725 	if (dev->parent == NULL)
4726 		return (EINVAL);
4727 	return (BUS_ACTIVATE_RESOURCE(dev->parent, dev, r));
4728 }
4729 
4730 int
4731 bus_activate_resource_old(device_t dev, int type, int rid, struct resource *r)
4732 {
4733 	return (bus_activate_resource(dev, r));
4734 }
4735 
4736 /**
4737  * @brief Wrapper function for BUS_DEACTIVATE_RESOURCE().
4738  *
4739  * This function simply calls the BUS_DEACTIVATE_RESOURCE() method of the
4740  * parent of @p dev.
4741  */
4742 int
4743 bus_deactivate_resource(device_t dev, struct resource *r)
4744 {
4745 	if (dev->parent == NULL)
4746 		return (EINVAL);
4747 	return (BUS_DEACTIVATE_RESOURCE(dev->parent, dev, r));
4748 }
4749 
4750 int
4751 bus_deactivate_resource_old(device_t dev, int type, int rid, struct resource *r)
4752 {
4753 	return (bus_deactivate_resource(dev, r));
4754 }
4755 
4756 /**
4757  * @brief Wrapper function for BUS_MAP_RESOURCE().
4758  *
4759  * This function simply calls the BUS_MAP_RESOURCE() method of the
4760  * parent of @p dev.
4761  */
4762 int
4763 bus_map_resource(device_t dev, struct resource *r,
4764     struct resource_map_request *args, struct resource_map *map)
4765 {
4766 	if (dev->parent == NULL)
4767 		return (EINVAL);
4768 	return (BUS_MAP_RESOURCE(dev->parent, dev, r, args, map));
4769 }
4770 
4771 int
4772 bus_map_resource_old(device_t dev, int type, struct resource *r,
4773     struct resource_map_request *args, struct resource_map *map)
4774 {
4775 	return (bus_map_resource(dev, r, args, map));
4776 }
4777 
4778 /**
4779  * @brief Wrapper function for BUS_UNMAP_RESOURCE().
4780  *
4781  * This function simply calls the BUS_UNMAP_RESOURCE() method of the
4782  * parent of @p dev.
4783  */
4784 int
4785 bus_unmap_resource(device_t dev, struct resource *r, struct resource_map *map)
4786 {
4787 	if (dev->parent == NULL)
4788 		return (EINVAL);
4789 	return (BUS_UNMAP_RESOURCE(dev->parent, dev, r, map));
4790 }
4791 
4792 int
4793 bus_unmap_resource_old(device_t dev, int type, struct resource *r,
4794     struct resource_map *map)
4795 {
4796 	return (bus_unmap_resource(dev, r, map));
4797 }
4798 
4799 /**
4800  * @brief Wrapper function for BUS_RELEASE_RESOURCE().
4801  *
4802  * This function simply calls the BUS_RELEASE_RESOURCE() method of the
4803  * parent of @p dev.
4804  */
4805 int
4806 bus_release_resource(device_t dev, struct resource *r)
4807 {
4808 	int rv;
4809 
4810 	if (dev->parent == NULL)
4811 		return (EINVAL);
4812 	rv = BUS_RELEASE_RESOURCE(dev->parent, dev, r);
4813 	return (rv);
4814 }
4815 
4816 int
4817 bus_release_resource_old(device_t dev, int type, int rid, struct resource *r)
4818 {
4819 	return (bus_release_resource(dev, r));
4820 }
4821 
4822 /**
4823  * @brief Wrapper function for BUS_SETUP_INTR().
4824  *
4825  * This function simply calls the BUS_SETUP_INTR() method of the
4826  * parent of @p dev.
4827  */
4828 int
4829 bus_setup_intr(device_t dev, struct resource *r, int flags,
4830     driver_filter_t filter, driver_intr_t handler, void *arg, void **cookiep)
4831 {
4832 	int error;
4833 
4834 	if (dev->parent == NULL)
4835 		return (EINVAL);
4836 	error = BUS_SETUP_INTR(dev->parent, dev, r, flags, filter, handler,
4837 	    arg, cookiep);
4838 	if (error != 0)
4839 		return (error);
4840 	if (handler != NULL && !(flags & INTR_MPSAFE))
4841 		device_printf(dev, "[GIANT-LOCKED]\n");
4842 	return (0);
4843 }
4844 
4845 /**
4846  * @brief Wrapper function for BUS_TEARDOWN_INTR().
4847  *
4848  * This function simply calls the BUS_TEARDOWN_INTR() method of the
4849  * parent of @p dev.
4850  */
4851 int
4852 bus_teardown_intr(device_t dev, struct resource *r, void *cookie)
4853 {
4854 	if (dev->parent == NULL)
4855 		return (EINVAL);
4856 	return (BUS_TEARDOWN_INTR(dev->parent, dev, r, cookie));
4857 }
4858 
4859 /**
4860  * @brief Wrapper function for BUS_SUSPEND_INTR().
4861  *
4862  * This function simply calls the BUS_SUSPEND_INTR() method of the
4863  * parent of @p dev.
4864  */
4865 int
4866 bus_suspend_intr(device_t dev, struct resource *r)
4867 {
4868 	if (dev->parent == NULL)
4869 		return (EINVAL);
4870 	return (BUS_SUSPEND_INTR(dev->parent, dev, r));
4871 }
4872 
4873 /**
4874  * @brief Wrapper function for BUS_RESUME_INTR().
4875  *
4876  * This function simply calls the BUS_RESUME_INTR() method of the
4877  * parent of @p dev.
4878  */
4879 int
4880 bus_resume_intr(device_t dev, struct resource *r)
4881 {
4882 	if (dev->parent == NULL)
4883 		return (EINVAL);
4884 	return (BUS_RESUME_INTR(dev->parent, dev, r));
4885 }
4886 
4887 /**
4888  * @brief Wrapper function for BUS_BIND_INTR().
4889  *
4890  * This function simply calls the BUS_BIND_INTR() method of the
4891  * parent of @p dev.
4892  */
4893 int
4894 bus_bind_intr(device_t dev, struct resource *r, int cpu)
4895 {
4896 	if (dev->parent == NULL)
4897 		return (EINVAL);
4898 	return (BUS_BIND_INTR(dev->parent, dev, r, cpu));
4899 }
4900 
4901 /**
4902  * @brief Wrapper function for BUS_DESCRIBE_INTR().
4903  *
4904  * This function first formats the requested description into a
4905  * temporary buffer and then calls the BUS_DESCRIBE_INTR() method of
4906  * the parent of @p dev.
4907  */
4908 int
4909 bus_describe_intr(device_t dev, struct resource *irq, void *cookie,
4910     const char *fmt, ...)
4911 {
4912 	va_list ap;
4913 	char descr[MAXCOMLEN + 1];
4914 
4915 	if (dev->parent == NULL)
4916 		return (EINVAL);
4917 	va_start(ap, fmt);
4918 	vsnprintf(descr, sizeof(descr), fmt, ap);
4919 	va_end(ap);
4920 	return (BUS_DESCRIBE_INTR(dev->parent, dev, irq, cookie, descr));
4921 }
4922 
4923 /**
4924  * @brief Wrapper function for BUS_SET_RESOURCE().
4925  *
4926  * This function simply calls the BUS_SET_RESOURCE() method of the
4927  * parent of @p dev.
4928  */
4929 int
4930 bus_set_resource(device_t dev, int type, int rid,
4931     rman_res_t start, rman_res_t count)
4932 {
4933 	return (BUS_SET_RESOURCE(device_get_parent(dev), dev, type, rid,
4934 	    start, count));
4935 }
4936 
4937 /**
4938  * @brief Wrapper function for BUS_GET_RESOURCE().
4939  *
4940  * This function simply calls the BUS_GET_RESOURCE() method of the
4941  * parent of @p dev.
4942  */
4943 int
4944 bus_get_resource(device_t dev, int type, int rid,
4945     rman_res_t *startp, rman_res_t *countp)
4946 {
4947 	return (BUS_GET_RESOURCE(device_get_parent(dev), dev, type, rid,
4948 	    startp, countp));
4949 }
4950 
4951 /**
4952  * @brief Wrapper function for BUS_GET_RESOURCE().
4953  *
4954  * This function simply calls the BUS_GET_RESOURCE() method of the
4955  * parent of @p dev and returns the start value.
4956  */
4957 rman_res_t
4958 bus_get_resource_start(device_t dev, int type, int rid)
4959 {
4960 	rman_res_t start;
4961 	rman_res_t count;
4962 	int error;
4963 
4964 	error = BUS_GET_RESOURCE(device_get_parent(dev), dev, type, rid,
4965 	    &start, &count);
4966 	if (error)
4967 		return (0);
4968 	return (start);
4969 }
4970 
4971 /**
4972  * @brief Wrapper function for BUS_GET_RESOURCE().
4973  *
4974  * This function simply calls the BUS_GET_RESOURCE() method of the
4975  * parent of @p dev and returns the count value.
4976  */
4977 rman_res_t
4978 bus_get_resource_count(device_t dev, int type, int rid)
4979 {
4980 	rman_res_t start;
4981 	rman_res_t count;
4982 	int error;
4983 
4984 	error = BUS_GET_RESOURCE(device_get_parent(dev), dev, type, rid,
4985 	    &start, &count);
4986 	if (error)
4987 		return (0);
4988 	return (count);
4989 }
4990 
4991 /**
4992  * @brief Wrapper function for BUS_DELETE_RESOURCE().
4993  *
4994  * This function simply calls the BUS_DELETE_RESOURCE() method of the
4995  * parent of @p dev.
4996  */
4997 void
4998 bus_delete_resource(device_t dev, int type, int rid)
4999 {
5000 	BUS_DELETE_RESOURCE(device_get_parent(dev), dev, type, rid);
5001 }
5002 
5003 /**
5004  * @brief Wrapper function for BUS_CHILD_PRESENT().
5005  *
5006  * This function simply calls the BUS_CHILD_PRESENT() method of the
5007  * parent of @p dev.
5008  */
5009 int
5010 bus_child_present(device_t child)
5011 {
5012 	return (BUS_CHILD_PRESENT(device_get_parent(child), child));
5013 }
5014 
5015 /**
5016  * @brief Wrapper function for BUS_CHILD_PNPINFO().
5017  *
5018  * This function simply calls the BUS_CHILD_PNPINFO() method of the parent of @p
5019  * dev.
5020  */
5021 int
5022 bus_child_pnpinfo(device_t child, struct sbuf *sb)
5023 {
5024 	device_t parent;
5025 
5026 	parent = device_get_parent(child);
5027 	if (parent == NULL)
5028 		return (0);
5029 	return (BUS_CHILD_PNPINFO(parent, child, sb));
5030 }
5031 
5032 /**
5033  * @brief Generic implementation that does nothing for bus_child_pnpinfo
5034  *
5035  * This function has the right signature and returns 0 since the sbuf is passed
5036  * to us to append to.
5037  */
5038 int
5039 bus_generic_child_pnpinfo(device_t dev, device_t child, struct sbuf *sb)
5040 {
5041 	return (0);
5042 }
5043 
5044 /**
5045  * @brief Wrapper function for BUS_CHILD_LOCATION().
5046  *
5047  * This function simply calls the BUS_CHILD_LOCATION() method of the parent of
5048  * @p dev.
5049  */
5050 int
5051 bus_child_location(device_t child, struct sbuf *sb)
5052 {
5053 	device_t parent;
5054 
5055 	parent = device_get_parent(child);
5056 	if (parent == NULL)
5057 		return (0);
5058 	return (BUS_CHILD_LOCATION(parent, child, sb));
5059 }
5060 
5061 /**
5062  * @brief Generic implementation that does nothing for bus_child_location
5063  *
5064  * This function has the right signature and returns 0 since the sbuf is passed
5065  * to us to append to.
5066  */
5067 int
5068 bus_generic_child_location(device_t dev, device_t child, struct sbuf *sb)
5069 {
5070 	return (0);
5071 }
5072 
5073 /**
5074  * @brief Wrapper function for BUS_GET_CPUS().
5075  *
5076  * This function simply calls the BUS_GET_CPUS() method of the
5077  * parent of @p dev.
5078  */
5079 int
5080 bus_get_cpus(device_t dev, enum cpu_sets op, size_t setsize, cpuset_t *cpuset)
5081 {
5082 	device_t parent;
5083 
5084 	parent = device_get_parent(dev);
5085 	if (parent == NULL)
5086 		return (EINVAL);
5087 	return (BUS_GET_CPUS(parent, dev, op, setsize, cpuset));
5088 }
5089 
5090 /**
5091  * @brief Wrapper function for BUS_GET_DMA_TAG().
5092  *
5093  * This function simply calls the BUS_GET_DMA_TAG() method of the
5094  * parent of @p dev.
5095  */
5096 bus_dma_tag_t
5097 bus_get_dma_tag(device_t dev)
5098 {
5099 	device_t parent;
5100 
5101 	parent = device_get_parent(dev);
5102 	if (parent == NULL)
5103 		return (NULL);
5104 	return (BUS_GET_DMA_TAG(parent, dev));
5105 }
5106 
5107 /**
5108  * @brief Wrapper function for BUS_GET_BUS_TAG().
5109  *
5110  * This function simply calls the BUS_GET_BUS_TAG() method of the
5111  * parent of @p dev.
5112  */
5113 bus_space_tag_t
5114 bus_get_bus_tag(device_t dev)
5115 {
5116 	device_t parent;
5117 
5118 	parent = device_get_parent(dev);
5119 	if (parent == NULL)
5120 		return ((bus_space_tag_t)0);
5121 	return (BUS_GET_BUS_TAG(parent, dev));
5122 }
5123 
5124 /**
5125  * @brief Wrapper function for BUS_GET_DOMAIN().
5126  *
5127  * This function simply calls the BUS_GET_DOMAIN() method of the
5128  * parent of @p dev.
5129  */
5130 int
5131 bus_get_domain(device_t dev, int *domain)
5132 {
5133 	return (BUS_GET_DOMAIN(device_get_parent(dev), dev, domain));
5134 }
5135 
5136 /* Resume all devices and then notify userland that we're up again. */
5137 static int
5138 root_resume(device_t dev)
5139 {
5140 	int error;
5141 
5142 	error = bus_generic_resume(dev);
5143 	if (error == 0) {
5144 		devctl_notify("kernel", "power", "resume", NULL);
5145 	}
5146 	return (error);
5147 }
5148 
5149 static int
5150 root_print_child(device_t dev, device_t child)
5151 {
5152 	int	retval = 0;
5153 
5154 	retval += bus_print_child_header(dev, child);
5155 	retval += printf("\n");
5156 
5157 	return (retval);
5158 }
5159 
5160 static int
5161 root_setup_intr(device_t dev, device_t child, struct resource *irq, int flags,
5162     driver_filter_t *filter, driver_intr_t *intr, void *arg, void **cookiep)
5163 {
5164 	/*
5165 	 * If an interrupt mapping gets to here something bad has happened.
5166 	 */
5167 	panic("root_setup_intr");
5168 }
5169 
5170 /*
5171  * If we get here, assume that the device is permanent and really is
5172  * present in the system.  Removable bus drivers are expected to intercept
5173  * this call long before it gets here.  We return -1 so that drivers that
5174  * really care can check vs -1 or some ERRNO returned higher in the food
5175  * chain.
5176  */
5177 static int
5178 root_child_present(device_t dev, device_t child)
5179 {
5180 	return (-1);
5181 }
5182 
5183 static int
5184 root_get_cpus(device_t dev, device_t child, enum cpu_sets op, size_t setsize,
5185     cpuset_t *cpuset)
5186 {
5187 	switch (op) {
5188 	case INTR_CPUS:
5189 		/* Default to returning the set of all CPUs. */
5190 		if (setsize != sizeof(cpuset_t))
5191 			return (EINVAL);
5192 		*cpuset = all_cpus;
5193 		return (0);
5194 	default:
5195 		return (EINVAL);
5196 	}
5197 }
5198 
5199 static kobj_method_t root_methods[] = {
5200 	/* Device interface */
5201 	KOBJMETHOD(device_shutdown,	bus_generic_shutdown),
5202 	KOBJMETHOD(device_suspend,	bus_generic_suspend),
5203 	KOBJMETHOD(device_resume,	root_resume),
5204 
5205 	/* Bus interface */
5206 	KOBJMETHOD(bus_print_child,	root_print_child),
5207 	KOBJMETHOD(bus_read_ivar,	bus_generic_read_ivar),
5208 	KOBJMETHOD(bus_write_ivar,	bus_generic_write_ivar),
5209 	KOBJMETHOD(bus_setup_intr,	root_setup_intr),
5210 	KOBJMETHOD(bus_child_present,	root_child_present),
5211 	KOBJMETHOD(bus_get_cpus,	root_get_cpus),
5212 
5213 	KOBJMETHOD_END
5214 };
5215 
5216 static driver_t root_driver = {
5217 	"root",
5218 	root_methods,
5219 	1,			/* no softc */
5220 };
5221 
5222 device_t	root_bus;
5223 devclass_t	root_devclass;
5224 
5225 static int
5226 root_bus_module_handler(module_t mod, int what, void* arg)
5227 {
5228 	switch (what) {
5229 	case MOD_LOAD:
5230 		TAILQ_INIT(&bus_data_devices);
5231 		kobj_class_compile((kobj_class_t) &root_driver);
5232 		root_bus = make_device(NULL, "root", 0);
5233 		root_bus->desc = "System root bus";
5234 		kobj_init((kobj_t) root_bus, (kobj_class_t) &root_driver);
5235 		root_bus->driver = &root_driver;
5236 		root_bus->state = DS_ATTACHED;
5237 		root_devclass = devclass_find_internal("root", NULL, FALSE);
5238 		devctl2_init();
5239 		return (0);
5240 
5241 	case MOD_SHUTDOWN:
5242 		device_shutdown(root_bus);
5243 		return (0);
5244 	default:
5245 		return (EOPNOTSUPP);
5246 	}
5247 
5248 	return (0);
5249 }
5250 
5251 static moduledata_t root_bus_mod = {
5252 	"rootbus",
5253 	root_bus_module_handler,
5254 	NULL
5255 };
5256 DECLARE_MODULE(rootbus, root_bus_mod, SI_SUB_DRIVERS, SI_ORDER_FIRST);
5257 
5258 /**
5259  * @brief Automatically configure devices
5260  *
5261  * This function begins the autoconfiguration process by calling
5262  * device_probe_and_attach() for each child of the @c root0 device.
5263  */
5264 void
5265 root_bus_configure(void)
5266 {
5267 	PDEBUG(("."));
5268 
5269 	/* Eventually this will be split up, but this is sufficient for now. */
5270 	bus_set_pass(BUS_PASS_DEFAULT);
5271 }
5272 
5273 /**
5274  * @brief Module handler for registering device drivers
5275  *
5276  * This module handler is used to automatically register device
5277  * drivers when modules are loaded. If @p what is MOD_LOAD, it calls
5278  * devclass_add_driver() for the driver described by the
5279  * driver_module_data structure pointed to by @p arg
5280  */
5281 int
5282 driver_module_handler(module_t mod, int what, void *arg)
5283 {
5284 	struct driver_module_data *dmd;
5285 	devclass_t bus_devclass;
5286 	kobj_class_t driver;
5287 	int error, pass;
5288 
5289 	dmd = (struct driver_module_data *)arg;
5290 	bus_devclass = devclass_find_internal(dmd->dmd_busname, NULL, TRUE);
5291 	error = 0;
5292 
5293 	switch (what) {
5294 	case MOD_LOAD:
5295 		if (dmd->dmd_chainevh)
5296 			error = dmd->dmd_chainevh(mod,what,dmd->dmd_chainarg);
5297 
5298 		pass = dmd->dmd_pass;
5299 		driver = dmd->dmd_driver;
5300 		PDEBUG(("Loading module: driver %s on bus %s (pass %d)",
5301 		    DRIVERNAME(driver), dmd->dmd_busname, pass));
5302 		error = devclass_add_driver(bus_devclass, driver, pass,
5303 		    dmd->dmd_devclass);
5304 		break;
5305 
5306 	case MOD_UNLOAD:
5307 		PDEBUG(("Unloading module: driver %s from bus %s",
5308 		    DRIVERNAME(dmd->dmd_driver),
5309 		    dmd->dmd_busname));
5310 		error = devclass_delete_driver(bus_devclass,
5311 		    dmd->dmd_driver);
5312 
5313 		if (!error && dmd->dmd_chainevh)
5314 			error = dmd->dmd_chainevh(mod,what,dmd->dmd_chainarg);
5315 		break;
5316 	case MOD_QUIESCE:
5317 		PDEBUG(("Quiesce module: driver %s from bus %s",
5318 		    DRIVERNAME(dmd->dmd_driver),
5319 		    dmd->dmd_busname));
5320 		error = devclass_quiesce_driver(bus_devclass,
5321 		    dmd->dmd_driver);
5322 
5323 		if (!error && dmd->dmd_chainevh)
5324 			error = dmd->dmd_chainevh(mod,what,dmd->dmd_chainarg);
5325 		break;
5326 	default:
5327 		error = EOPNOTSUPP;
5328 		break;
5329 	}
5330 
5331 	return (error);
5332 }
5333 
5334 /**
5335  * @brief Enumerate all hinted devices for this bus.
5336  *
5337  * Walks through the hints for this bus and calls the bus_hinted_child
5338  * routine for each one it fines.  It searches first for the specific
5339  * bus that's being probed for hinted children (eg isa0), and then for
5340  * generic children (eg isa).
5341  *
5342  * @param	dev	bus device to enumerate
5343  */
5344 void
5345 bus_enumerate_hinted_children(device_t bus)
5346 {
5347 	int i;
5348 	const char *dname, *busname;
5349 	int dunit;
5350 
5351 	/*
5352 	 * enumerate all devices on the specific bus
5353 	 */
5354 	busname = device_get_nameunit(bus);
5355 	i = 0;
5356 	while (resource_find_match(&i, &dname, &dunit, "at", busname) == 0)
5357 		BUS_HINTED_CHILD(bus, dname, dunit);
5358 
5359 	/*
5360 	 * and all the generic ones.
5361 	 */
5362 	busname = device_get_name(bus);
5363 	i = 0;
5364 	while (resource_find_match(&i, &dname, &dunit, "at", busname) == 0)
5365 		BUS_HINTED_CHILD(bus, dname, dunit);
5366 }
5367 
5368 #ifdef BUS_DEBUG
5369 
5370 /* the _short versions avoid iteration by not calling anything that prints
5371  * more than oneliners. I love oneliners.
5372  */
5373 
5374 static void
5375 print_device_short(device_t dev, int indent)
5376 {
5377 	if (!dev)
5378 		return;
5379 
5380 	indentprintf(("device %d: <%s> %sparent,%schildren,%s%s%s%s%s,%sivars,%ssoftc,busy=%d\n",
5381 	    dev->unit, dev->desc,
5382 	    (dev->parent? "":"no "),
5383 	    (TAILQ_EMPTY(&dev->children)? "no ":""),
5384 	    (dev->flags&DF_ENABLED? "enabled,":"disabled,"),
5385 	    (dev->flags&DF_FIXEDCLASS? "fixed,":""),
5386 	    (dev->flags&DF_WILDCARD? "wildcard,":""),
5387 	    (dev->flags&DF_DESCMALLOCED? "descmalloced,":""),
5388 	    (dev->flags&DF_SUSPENDED? "suspended,":""),
5389 	    (dev->ivars? "":"no "),
5390 	    (dev->softc? "":"no "),
5391 	    dev->busy));
5392 }
5393 
5394 static void
5395 print_device(device_t dev, int indent)
5396 {
5397 	if (!dev)
5398 		return;
5399 
5400 	print_device_short(dev, indent);
5401 
5402 	indentprintf(("Parent:\n"));
5403 	print_device_short(dev->parent, indent+1);
5404 	indentprintf(("Driver:\n"));
5405 	print_driver_short(dev->driver, indent+1);
5406 	indentprintf(("Devclass:\n"));
5407 	print_devclass_short(dev->devclass, indent+1);
5408 }
5409 
5410 void
5411 print_device_tree_short(device_t dev, int indent)
5412 /* print the device and all its children (indented) */
5413 {
5414 	device_t child;
5415 
5416 	if (!dev)
5417 		return;
5418 
5419 	print_device_short(dev, indent);
5420 
5421 	TAILQ_FOREACH(child, &dev->children, link) {
5422 		print_device_tree_short(child, indent+1);
5423 	}
5424 }
5425 
5426 void
5427 print_device_tree(device_t dev, int indent)
5428 /* print the device and all its children (indented) */
5429 {
5430 	device_t child;
5431 
5432 	if (!dev)
5433 		return;
5434 
5435 	print_device(dev, indent);
5436 
5437 	TAILQ_FOREACH(child, &dev->children, link) {
5438 		print_device_tree(child, indent+1);
5439 	}
5440 }
5441 
5442 static void
5443 print_driver_short(driver_t *driver, int indent)
5444 {
5445 	if (!driver)
5446 		return;
5447 
5448 	indentprintf(("driver %s: softc size = %zd\n",
5449 	    driver->name, driver->size));
5450 }
5451 
5452 static void
5453 print_driver(driver_t *driver, int indent)
5454 {
5455 	if (!driver)
5456 		return;
5457 
5458 	print_driver_short(driver, indent);
5459 }
5460 
5461 static void
5462 print_driver_list(driver_list_t drivers, int indent)
5463 {
5464 	driverlink_t driver;
5465 
5466 	TAILQ_FOREACH(driver, &drivers, link) {
5467 		print_driver(driver->driver, indent);
5468 	}
5469 }
5470 
5471 static void
5472 print_devclass_short(devclass_t dc, int indent)
5473 {
5474 	if ( !dc )
5475 		return;
5476 
5477 	indentprintf(("devclass %s: max units = %d\n", dc->name, dc->maxunit));
5478 }
5479 
5480 static void
5481 print_devclass(devclass_t dc, int indent)
5482 {
5483 	int i;
5484 
5485 	if ( !dc )
5486 		return;
5487 
5488 	print_devclass_short(dc, indent);
5489 	indentprintf(("Drivers:\n"));
5490 	print_driver_list(dc->drivers, indent+1);
5491 
5492 	indentprintf(("Devices:\n"));
5493 	for (i = 0; i < dc->maxunit; i++)
5494 		if (dc->devices[i])
5495 			print_device(dc->devices[i], indent+1);
5496 }
5497 
5498 void
5499 print_devclass_list_short(void)
5500 {
5501 	devclass_t dc;
5502 
5503 	printf("Short listing of devclasses, drivers & devices:\n");
5504 	TAILQ_FOREACH(dc, &devclasses, link) {
5505 		print_devclass_short(dc, 0);
5506 	}
5507 }
5508 
5509 void
5510 print_devclass_list(void)
5511 {
5512 	devclass_t dc;
5513 
5514 	printf("Full listing of devclasses, drivers & devices:\n");
5515 	TAILQ_FOREACH(dc, &devclasses, link) {
5516 		print_devclass(dc, 0);
5517 	}
5518 }
5519 
5520 #endif
5521 
5522 /*
5523  * User-space access to the device tree.
5524  *
5525  * We implement a small set of nodes:
5526  *
5527  * hw.bus			Single integer read method to obtain the
5528  *				current generation count.
5529  * hw.bus.devices		Reads the entire device tree in flat space.
5530  * hw.bus.rman			Resource manager interface
5531  *
5532  * We might like to add the ability to scan devclasses and/or drivers to
5533  * determine what else is currently loaded/available.
5534  */
5535 
5536 static int
5537 sysctl_bus_info(SYSCTL_HANDLER_ARGS)
5538 {
5539 	struct u_businfo	ubus;
5540 
5541 	ubus.ub_version = BUS_USER_VERSION;
5542 	ubus.ub_generation = bus_data_generation;
5543 
5544 	return (SYSCTL_OUT(req, &ubus, sizeof(ubus)));
5545 }
5546 SYSCTL_PROC(_hw_bus, OID_AUTO, info, CTLTYPE_STRUCT | CTLFLAG_RD |
5547     CTLFLAG_MPSAFE, NULL, 0, sysctl_bus_info, "S,u_businfo",
5548     "bus-related data");
5549 
5550 static int
5551 sysctl_devices(SYSCTL_HANDLER_ARGS)
5552 {
5553 	struct sbuf		sb;
5554 	int			*name = (int *)arg1;
5555 	u_int			namelen = arg2;
5556 	int			index;
5557 	device_t		dev;
5558 	struct u_device		*udev;
5559 	int			error;
5560 
5561 	if (namelen != 2)
5562 		return (EINVAL);
5563 
5564 	if (bus_data_generation_check(name[0]))
5565 		return (EINVAL);
5566 
5567 	index = name[1];
5568 
5569 	/*
5570 	 * Scan the list of devices, looking for the requested index.
5571 	 */
5572 	TAILQ_FOREACH(dev, &bus_data_devices, devlink) {
5573 		if (index-- == 0)
5574 			break;
5575 	}
5576 	if (dev == NULL)
5577 		return (ENOENT);
5578 
5579 	/*
5580 	 * Populate the return item, careful not to overflow the buffer.
5581 	 */
5582 	udev = malloc(sizeof(*udev), M_BUS, M_WAITOK | M_ZERO);
5583 	udev->dv_handle = (uintptr_t)dev;
5584 	udev->dv_parent = (uintptr_t)dev->parent;
5585 	udev->dv_devflags = dev->devflags;
5586 	udev->dv_flags = dev->flags;
5587 	udev->dv_state = dev->state;
5588 	sbuf_new(&sb, udev->dv_fields, sizeof(udev->dv_fields), SBUF_FIXEDLEN);
5589 	if (dev->nameunit != NULL)
5590 		sbuf_cat(&sb, dev->nameunit);
5591 	sbuf_putc(&sb, '\0');
5592 	if (dev->desc != NULL)
5593 		sbuf_cat(&sb, dev->desc);
5594 	sbuf_putc(&sb, '\0');
5595 	if (dev->driver != NULL)
5596 		sbuf_cat(&sb, dev->driver->name);
5597 	sbuf_putc(&sb, '\0');
5598 	bus_child_pnpinfo(dev, &sb);
5599 	sbuf_putc(&sb, '\0');
5600 	bus_child_location(dev, &sb);
5601 	sbuf_putc(&sb, '\0');
5602 	error = sbuf_finish(&sb);
5603 	if (error == 0)
5604 		error = SYSCTL_OUT(req, udev, sizeof(*udev));
5605 	sbuf_delete(&sb);
5606 	free(udev, M_BUS);
5607 	return (error);
5608 }
5609 
5610 SYSCTL_NODE(_hw_bus, OID_AUTO, devices,
5611     CTLFLAG_RD | CTLFLAG_NEEDGIANT, sysctl_devices,
5612     "system device tree");
5613 
5614 int
5615 bus_data_generation_check(int generation)
5616 {
5617 	if (generation != bus_data_generation)
5618 		return (1);
5619 
5620 	/* XXX generate optimised lists here? */
5621 	return (0);
5622 }
5623 
5624 void
5625 bus_data_generation_update(void)
5626 {
5627 	atomic_add_int(&bus_data_generation, 1);
5628 }
5629 
5630 int
5631 bus_free_resource(device_t dev, int type, struct resource *r)
5632 {
5633 	if (r == NULL)
5634 		return (0);
5635 	return (bus_release_resource(dev, type, rman_get_rid(r), r));
5636 }
5637 
5638 device_t
5639 device_lookup_by_name(const char *name)
5640 {
5641 	device_t dev;
5642 
5643 	TAILQ_FOREACH(dev, &bus_data_devices, devlink) {
5644 		if (dev->nameunit != NULL && strcmp(dev->nameunit, name) == 0)
5645 			return (dev);
5646 	}
5647 	return (NULL);
5648 }
5649 
5650 /*
5651  * /dev/devctl2 implementation.  The existing /dev/devctl device has
5652  * implicit semantics on open, so it could not be reused for this.
5653  * Another option would be to call this /dev/bus?
5654  */
5655 static int
5656 find_device(struct devreq *req, device_t *devp)
5657 {
5658 	device_t dev;
5659 
5660 	/*
5661 	 * First, ensure that the name is nul terminated.
5662 	 */
5663 	if (memchr(req->dr_name, '\0', sizeof(req->dr_name)) == NULL)
5664 		return (EINVAL);
5665 
5666 	/*
5667 	 * Second, try to find an attached device whose name matches
5668 	 * 'name'.
5669 	 */
5670 	dev = device_lookup_by_name(req->dr_name);
5671 	if (dev != NULL) {
5672 		*devp = dev;
5673 		return (0);
5674 	}
5675 
5676 	/* Finally, give device enumerators a chance. */
5677 	dev = NULL;
5678 	EVENTHANDLER_DIRECT_INVOKE(dev_lookup, req->dr_name, &dev);
5679 	if (dev == NULL)
5680 		return (ENOENT);
5681 	*devp = dev;
5682 	return (0);
5683 }
5684 
5685 static bool
5686 driver_exists(device_t bus, const char *driver)
5687 {
5688 	devclass_t dc;
5689 
5690 	for (dc = bus->devclass; dc != NULL; dc = dc->parent) {
5691 		if (devclass_find_driver_internal(dc, driver) != NULL)
5692 			return (true);
5693 	}
5694 	return (false);
5695 }
5696 
5697 static void
5698 device_gen_nomatch(device_t dev)
5699 {
5700 	device_t child;
5701 
5702 	if (dev->flags & DF_NEEDNOMATCH &&
5703 	    dev->state == DS_NOTPRESENT) {
5704 		device_handle_nomatch(dev);
5705 	}
5706 	dev->flags &= ~DF_NEEDNOMATCH;
5707 	TAILQ_FOREACH(child, &dev->children, link) {
5708 		device_gen_nomatch(child);
5709 	}
5710 }
5711 
5712 static void
5713 device_do_deferred_actions(void)
5714 {
5715 	devclass_t dc;
5716 	driverlink_t dl;
5717 
5718 	/*
5719 	 * Walk through the devclasses to find all the drivers we've tagged as
5720 	 * deferred during the freeze and call the driver added routines. They
5721 	 * have already been added to the lists in the background, so the driver
5722 	 * added routines that trigger a probe will have all the right bidders
5723 	 * for the probe auction.
5724 	 */
5725 	TAILQ_FOREACH(dc, &devclasses, link) {
5726 		TAILQ_FOREACH(dl, &dc->drivers, link) {
5727 			if (dl->flags & DL_DEFERRED_PROBE) {
5728 				devclass_driver_added(dc, dl->driver);
5729 				dl->flags &= ~DL_DEFERRED_PROBE;
5730 			}
5731 		}
5732 	}
5733 
5734 	/*
5735 	 * We also defer no-match events during a freeze. Walk the tree and
5736 	 * generate all the pent-up events that are still relevant.
5737 	 */
5738 	device_gen_nomatch(root_bus);
5739 	bus_data_generation_update();
5740 }
5741 
5742 static int
5743 device_get_path(device_t dev, const char *locator, struct sbuf *sb)
5744 {
5745 	device_t parent;
5746 	int error;
5747 
5748 	KASSERT(sb != NULL, ("sb is NULL"));
5749 	parent = device_get_parent(dev);
5750 	if (parent == NULL) {
5751 		error = sbuf_putc(sb, '/');
5752 	} else {
5753 		error = BUS_GET_DEVICE_PATH(parent, dev, locator, sb);
5754 		if (error == 0) {
5755 			error = sbuf_error(sb);
5756 			if (error == 0 && sbuf_len(sb) <= 1)
5757 				error = EIO;
5758 		}
5759 	}
5760 	sbuf_finish(sb);
5761 	return (error);
5762 }
5763 
5764 static int
5765 devctl2_ioctl(struct cdev *cdev, u_long cmd, caddr_t data, int fflag,
5766     struct thread *td)
5767 {
5768 	struct devreq *req;
5769 	device_t dev;
5770 	int error, old;
5771 
5772 	/* Locate the device to control. */
5773 	bus_topo_lock();
5774 	req = (struct devreq *)data;
5775 	switch (cmd) {
5776 	case DEV_ATTACH:
5777 	case DEV_DETACH:
5778 	case DEV_ENABLE:
5779 	case DEV_DISABLE:
5780 	case DEV_SUSPEND:
5781 	case DEV_RESUME:
5782 	case DEV_SET_DRIVER:
5783 	case DEV_CLEAR_DRIVER:
5784 	case DEV_RESCAN:
5785 	case DEV_DELETE:
5786 	case DEV_RESET:
5787 		error = priv_check(td, PRIV_DRIVER);
5788 		if (error == 0)
5789 			error = find_device(req, &dev);
5790 		break;
5791 	case DEV_FREEZE:
5792 	case DEV_THAW:
5793 		error = priv_check(td, PRIV_DRIVER);
5794 		break;
5795 	case DEV_GET_PATH:
5796 		error = find_device(req, &dev);
5797 		break;
5798 	default:
5799 		error = ENOTTY;
5800 		break;
5801 	}
5802 	if (error) {
5803 		bus_topo_unlock();
5804 		return (error);
5805 	}
5806 
5807 	/* Perform the requested operation. */
5808 	switch (cmd) {
5809 	case DEV_ATTACH:
5810 		if (device_is_attached(dev))
5811 			error = EBUSY;
5812 		else if (!device_is_enabled(dev))
5813 			error = ENXIO;
5814 		else
5815 			error = device_probe_and_attach(dev);
5816 		break;
5817 	case DEV_DETACH:
5818 		if (!device_is_attached(dev)) {
5819 			error = ENXIO;
5820 			break;
5821 		}
5822 		if (!(req->dr_flags & DEVF_FORCE_DETACH)) {
5823 			error = device_quiesce(dev);
5824 			if (error)
5825 				break;
5826 		}
5827 		error = device_detach(dev);
5828 		break;
5829 	case DEV_ENABLE:
5830 		if (device_is_enabled(dev)) {
5831 			error = EBUSY;
5832 			break;
5833 		}
5834 
5835 		/*
5836 		 * If the device has been probed but not attached (e.g.
5837 		 * when it has been disabled by a loader hint), just
5838 		 * attach the device rather than doing a full probe.
5839 		 */
5840 		device_enable(dev);
5841 		if (dev->devclass != NULL) {
5842 			/*
5843 			 * If the device was disabled via a hint, clear
5844 			 * the hint.
5845 			 */
5846 			if (resource_disabled(dev->devclass->name, dev->unit))
5847 				resource_unset_value(dev->devclass->name,
5848 				    dev->unit, "disabled");
5849 
5850 			/* Allow any drivers to rebid. */
5851 			if (!(dev->flags & DF_FIXEDCLASS))
5852 				devclass_delete_device(dev->devclass, dev);
5853 		}
5854 		error = device_probe_and_attach(dev);
5855 		break;
5856 	case DEV_DISABLE:
5857 		if (!device_is_enabled(dev)) {
5858 			error = ENXIO;
5859 			break;
5860 		}
5861 
5862 		if (!(req->dr_flags & DEVF_FORCE_DETACH)) {
5863 			error = device_quiesce(dev);
5864 			if (error)
5865 				break;
5866 		}
5867 
5868 		/*
5869 		 * Force DF_FIXEDCLASS on around detach to preserve
5870 		 * the existing name.
5871 		 */
5872 		old = dev->flags;
5873 		dev->flags |= DF_FIXEDCLASS;
5874 		error = device_detach(dev);
5875 		if (!(old & DF_FIXEDCLASS))
5876 			dev->flags &= ~DF_FIXEDCLASS;
5877 		if (error == 0)
5878 			device_disable(dev);
5879 		break;
5880 	case DEV_SUSPEND:
5881 		if (device_is_suspended(dev)) {
5882 			error = EBUSY;
5883 			break;
5884 		}
5885 		if (device_get_parent(dev) == NULL) {
5886 			error = EINVAL;
5887 			break;
5888 		}
5889 		error = BUS_SUSPEND_CHILD(device_get_parent(dev), dev);
5890 		break;
5891 	case DEV_RESUME:
5892 		if (!device_is_suspended(dev)) {
5893 			error = EINVAL;
5894 			break;
5895 		}
5896 		if (device_get_parent(dev) == NULL) {
5897 			error = EINVAL;
5898 			break;
5899 		}
5900 		error = BUS_RESUME_CHILD(device_get_parent(dev), dev);
5901 		break;
5902 	case DEV_SET_DRIVER: {
5903 		devclass_t dc;
5904 		char driver[128];
5905 
5906 		error = copyinstr(req->dr_data, driver, sizeof(driver), NULL);
5907 		if (error)
5908 			break;
5909 		if (driver[0] == '\0') {
5910 			error = EINVAL;
5911 			break;
5912 		}
5913 		if (dev->devclass != NULL &&
5914 		    strcmp(driver, dev->devclass->name) == 0)
5915 			/* XXX: Could possibly force DF_FIXEDCLASS on? */
5916 			break;
5917 
5918 		/*
5919 		 * Scan drivers for this device's bus looking for at
5920 		 * least one matching driver.
5921 		 */
5922 		if (dev->parent == NULL) {
5923 			error = EINVAL;
5924 			break;
5925 		}
5926 		if (!driver_exists(dev->parent, driver)) {
5927 			error = ENOENT;
5928 			break;
5929 		}
5930 		dc = devclass_create(driver);
5931 		if (dc == NULL) {
5932 			error = ENOMEM;
5933 			break;
5934 		}
5935 
5936 		/* Detach device if necessary. */
5937 		if (device_is_attached(dev)) {
5938 			if (req->dr_flags & DEVF_SET_DRIVER_DETACH)
5939 				error = device_detach(dev);
5940 			else
5941 				error = EBUSY;
5942 			if (error)
5943 				break;
5944 		}
5945 
5946 		/* Clear any previously-fixed device class and unit. */
5947 		if (dev->flags & DF_FIXEDCLASS)
5948 			devclass_delete_device(dev->devclass, dev);
5949 		dev->flags |= DF_WILDCARD;
5950 		dev->unit = DEVICE_UNIT_ANY;
5951 
5952 		/* Force the new device class. */
5953 		error = devclass_add_device(dc, dev);
5954 		if (error)
5955 			break;
5956 		dev->flags |= DF_FIXEDCLASS;
5957 		error = device_probe_and_attach(dev);
5958 		break;
5959 	}
5960 	case DEV_CLEAR_DRIVER:
5961 		if (!(dev->flags & DF_FIXEDCLASS)) {
5962 			error = 0;
5963 			break;
5964 		}
5965 		if (device_is_attached(dev)) {
5966 			if (req->dr_flags & DEVF_CLEAR_DRIVER_DETACH)
5967 				error = device_detach(dev);
5968 			else
5969 				error = EBUSY;
5970 			if (error)
5971 				break;
5972 		}
5973 
5974 		dev->flags &= ~DF_FIXEDCLASS;
5975 		dev->flags |= DF_WILDCARD;
5976 		devclass_delete_device(dev->devclass, dev);
5977 
5978 		/*
5979 		 * Don't use device_probe_and_attach so that failing
5980 		 * to find a new driver isn't reported as an error.
5981 		 */
5982 		error = device_probe(dev);
5983 		if (error == ENXIO) {
5984 			error = 0;
5985 			break;
5986 		}
5987 		if (error == 0) {
5988 			error = device_attach(dev);
5989 		}
5990 		break;
5991 	case DEV_RESCAN:
5992 		if (!device_is_attached(dev)) {
5993 			error = ENXIO;
5994 			break;
5995 		}
5996 		error = BUS_RESCAN(dev);
5997 		break;
5998 	case DEV_DELETE: {
5999 		device_t parent;
6000 
6001 		parent = device_get_parent(dev);
6002 		if (parent == NULL) {
6003 			error = EINVAL;
6004 			break;
6005 		}
6006 		if (!(req->dr_flags & DEVF_FORCE_DELETE)) {
6007 			if (bus_child_present(dev) != 0) {
6008 				error = EBUSY;
6009 				break;
6010 			}
6011 		}
6012 
6013 		error = device_delete_child(parent, dev);
6014 		break;
6015 	}
6016 	case DEV_FREEZE:
6017 		if (device_frozen)
6018 			error = EBUSY;
6019 		else
6020 			device_frozen = true;
6021 		break;
6022 	case DEV_THAW:
6023 		if (!device_frozen)
6024 			error = EBUSY;
6025 		else {
6026 			device_do_deferred_actions();
6027 			device_frozen = false;
6028 		}
6029 		break;
6030 	case DEV_RESET:
6031 		if ((req->dr_flags & ~(DEVF_RESET_DETACH)) != 0) {
6032 			error = EINVAL;
6033 			break;
6034 		}
6035 		if (device_get_parent(dev) == NULL) {
6036 			error = EINVAL;
6037 			break;
6038 		}
6039 		error = BUS_RESET_CHILD(device_get_parent(dev), dev,
6040 		    req->dr_flags);
6041 		break;
6042 	case DEV_GET_PATH: {
6043 		struct sbuf *sb;
6044 		char locator[64];
6045 		ssize_t len;
6046 
6047 		error = copyinstr(req->dr_buffer.buffer, locator,
6048 		    sizeof(locator), NULL);
6049 		if (error != 0)
6050 			break;
6051 		sb = sbuf_new(NULL, NULL, 0, SBUF_AUTOEXTEND |
6052 		    SBUF_INCLUDENUL /* | SBUF_WAITOK */);
6053 		error = device_get_path(dev, locator, sb);
6054 		if (error == 0) {
6055 			len = sbuf_len(sb);
6056 			if (req->dr_buffer.length < len) {
6057 				error = ENAMETOOLONG;
6058 			} else {
6059 				error = copyout(sbuf_data(sb),
6060 				    req->dr_buffer.buffer, len);
6061 			}
6062 			req->dr_buffer.length = len;
6063 		}
6064 		sbuf_delete(sb);
6065 		break;
6066 	}
6067 	}
6068 	bus_topo_unlock();
6069 	return (error);
6070 }
6071 
6072 static struct cdevsw devctl2_cdevsw = {
6073 	.d_version =	D_VERSION,
6074 	.d_ioctl =	devctl2_ioctl,
6075 	.d_name =	"devctl2",
6076 };
6077 
6078 static void
6079 devctl2_init(void)
6080 {
6081 	make_dev_credf(MAKEDEV_ETERNAL, &devctl2_cdevsw, 0, NULL,
6082 	    UID_ROOT, GID_WHEEL, 0644, "devctl2");
6083 }
6084 
6085 /*
6086  * For maintaining device 'at' location info to avoid recomputing it
6087  */
6088 struct device_location_node {
6089 	const char *dln_locator;
6090 	const char *dln_path;
6091 	TAILQ_ENTRY(device_location_node) dln_link;
6092 };
6093 typedef TAILQ_HEAD(device_location_list, device_location_node) device_location_list_t;
6094 
6095 struct device_location_cache {
6096 	device_location_list_t dlc_list;
6097 };
6098 
6099 
6100 /*
6101  * Location cache for wired devices.
6102  */
6103 device_location_cache_t *
6104 dev_wired_cache_init(void)
6105 {
6106 	device_location_cache_t *dcp;
6107 
6108 	dcp = malloc(sizeof(*dcp), M_BUS, M_WAITOK | M_ZERO);
6109 	TAILQ_INIT(&dcp->dlc_list);
6110 
6111 	return (dcp);
6112 }
6113 
6114 void
6115 dev_wired_cache_fini(device_location_cache_t *dcp)
6116 {
6117 	struct device_location_node *dln, *tdln;
6118 
6119 	TAILQ_FOREACH_SAFE(dln, &dcp->dlc_list, dln_link, tdln) {
6120 		free(dln, M_BUS);
6121 	}
6122 	free(dcp, M_BUS);
6123 }
6124 
6125 static struct device_location_node *
6126 dev_wired_cache_lookup(device_location_cache_t *dcp, const char *locator)
6127 {
6128 	struct device_location_node *dln;
6129 
6130 	TAILQ_FOREACH(dln, &dcp->dlc_list, dln_link) {
6131 		if (strcmp(locator, dln->dln_locator) == 0)
6132 			return (dln);
6133 	}
6134 
6135 	return (NULL);
6136 }
6137 
6138 static struct device_location_node *
6139 dev_wired_cache_add(device_location_cache_t *dcp, const char *locator, const char *path)
6140 {
6141 	struct device_location_node *dln;
6142 	size_t loclen, pathlen;
6143 
6144 	loclen = strlen(locator) + 1;
6145 	pathlen = strlen(path) + 1;
6146 	dln = malloc(sizeof(*dln) + loclen + pathlen, M_BUS, M_WAITOK | M_ZERO);
6147 	dln->dln_locator = (char *)(dln + 1);
6148 	memcpy(__DECONST(char *, dln->dln_locator), locator, loclen);
6149 	dln->dln_path = dln->dln_locator + loclen;
6150 	memcpy(__DECONST(char *, dln->dln_path), path, pathlen);
6151 	TAILQ_INSERT_HEAD(&dcp->dlc_list, dln, dln_link);
6152 
6153 	return (dln);
6154 }
6155 
6156 bool
6157 dev_wired_cache_match(device_location_cache_t *dcp, device_t dev,
6158     const char *at)
6159 {
6160 	struct sbuf *sb;
6161 	const char *cp;
6162 	char locator[32];
6163 	int error, len;
6164 	struct device_location_node *res;
6165 
6166 	cp = strchr(at, ':');
6167 	if (cp == NULL)
6168 		return (false);
6169 	len = cp - at;
6170 	if (len > sizeof(locator) - 1)	/* Skip too long locator */
6171 		return (false);
6172 	memcpy(locator, at, len);
6173 	locator[len] = '\0';
6174 	cp++;
6175 
6176 	error = 0;
6177 	/* maybe cache this inside device_t and look that up, but not yet */
6178 	res = dev_wired_cache_lookup(dcp, locator);
6179 	if (res == NULL) {
6180 		sb = sbuf_new(NULL, NULL, 0, SBUF_AUTOEXTEND |
6181 		    SBUF_INCLUDENUL | SBUF_NOWAIT);
6182 		if (sb != NULL) {
6183 			error = device_get_path(dev, locator, sb);
6184 			if (error == 0) {
6185 				res = dev_wired_cache_add(dcp, locator,
6186 				    sbuf_data(sb));
6187 			}
6188 			sbuf_delete(sb);
6189 		}
6190 	}
6191 	if (error != 0 || res == NULL || res->dln_path == NULL)
6192 		return (false);
6193 
6194 	return (strcmp(res->dln_path, cp) == 0);
6195 }
6196 
6197 static struct device_prop_elm *
6198 device_prop_find(device_t dev, const char *name)
6199 {
6200 	struct device_prop_elm *e;
6201 
6202 	bus_topo_assert();
6203 
6204 	LIST_FOREACH(e, &dev->props, link) {
6205 		if (strcmp(name, e->name) == 0)
6206 			return (e);
6207 	}
6208 	return (NULL);
6209 }
6210 
6211 int
6212 device_set_prop(device_t dev, const char *name, void *val,
6213     device_prop_dtr_t dtr, void *dtr_ctx)
6214 {
6215 	struct device_prop_elm *e, *e1;
6216 
6217 	bus_topo_assert();
6218 
6219 	e = device_prop_find(dev, name);
6220 	if (e != NULL)
6221 		goto found;
6222 
6223 	e1 = malloc(sizeof(*e), M_BUS, M_WAITOK);
6224 	e = device_prop_find(dev, name);
6225 	if (e != NULL) {
6226 		free(e1, M_BUS);
6227 		goto found;
6228 	}
6229 
6230 	e1->name = name;
6231 	e1->val = val;
6232 	e1->dtr = dtr;
6233 	e1->dtr_ctx = dtr_ctx;
6234 	LIST_INSERT_HEAD(&dev->props, e1, link);
6235 	return (0);
6236 
6237 found:
6238 	LIST_REMOVE(e, link);
6239 	if (e->dtr != NULL)
6240 		e->dtr(dev, name, e->val, e->dtr_ctx);
6241 	e->val = val;
6242 	e->dtr = dtr;
6243 	e->dtr_ctx = dtr_ctx;
6244 	LIST_INSERT_HEAD(&dev->props, e, link);
6245 	return (EEXIST);
6246 }
6247 
6248 int
6249 device_get_prop(device_t dev, const char *name, void **valp)
6250 {
6251 	struct device_prop_elm *e;
6252 
6253 	bus_topo_assert();
6254 
6255 	e = device_prop_find(dev, name);
6256 	if (e == NULL)
6257 		return (ENOENT);
6258 	*valp = e->val;
6259 	return (0);
6260 }
6261 
6262 int
6263 device_clear_prop(device_t dev, const char *name)
6264 {
6265 	struct device_prop_elm *e;
6266 
6267 	bus_topo_assert();
6268 
6269 	e = device_prop_find(dev, name);
6270 	if (e == NULL)
6271 		return (ENOENT);
6272 	LIST_REMOVE(e, link);
6273 	if (e->dtr != NULL)
6274 		e->dtr(dev, e->name, e->val, e->dtr_ctx);
6275 	free(e, M_BUS);
6276 	return (0);
6277 }
6278 
6279 static void
6280 device_destroy_props(device_t dev)
6281 {
6282 	struct device_prop_elm *e;
6283 
6284 	bus_topo_assert();
6285 
6286 	while ((e = LIST_FIRST(&dev->props)) != NULL) {
6287 		LIST_REMOVE_HEAD(&dev->props, link);
6288 		if (e->dtr != NULL)
6289 			e->dtr(dev, e->name, e->val, e->dtr_ctx);
6290 		free(e, M_BUS);
6291 	}
6292 }
6293 
6294 void
6295 device_clear_prop_alldev(const char *name)
6296 {
6297 	device_t dev;
6298 
6299 	TAILQ_FOREACH(dev, &bus_data_devices, devlink) {
6300 		device_clear_prop(dev, name);
6301 	}
6302 }
6303 
6304 /*
6305  * APIs to manage deprecation and obsolescence.
6306  */
6307 static int obsolete_panic = 0;
6308 SYSCTL_INT(_debug, OID_AUTO, obsolete_panic, CTLFLAG_RWTUN, &obsolete_panic, 0,
6309     "Panic when obsolete features are used (0 = never, 1 = if obsolete, "
6310     "2 = if deprecated)");
6311 
6312 static void
6313 gone_panic(int major, int running, const char *msg, ...)
6314 {
6315 	va_list ap;
6316 
6317 	switch (obsolete_panic)
6318 	{
6319 	case 0:
6320 		return;
6321 	case 1:
6322 		if (running < major)
6323 			return;
6324 		/* FALLTHROUGH */
6325 	default:
6326 		va_start(ap, msg);
6327 		vpanic(msg, ap);
6328 	}
6329 }
6330 
6331 void
6332 _gone_in(int major, const char *msg, ...)
6333 {
6334 	va_list ap;
6335 
6336 	va_start(ap, msg);
6337 	gone_panic(major, P_OSREL_MAJOR(__FreeBSD_version), msg, ap);
6338 	vprintf(msg, ap);
6339 	va_end(ap);
6340 	if (P_OSREL_MAJOR(__FreeBSD_version) < major)
6341 		printf("To be removed in FreeBSD %d\n", major);
6342 }
6343 
6344 void
6345 _gone_in_dev(device_t dev, int major, const char *msg, ...)
6346 {
6347 	va_list ap;
6348 
6349 	va_start(ap, msg);
6350 	gone_panic(major, P_OSREL_MAJOR(__FreeBSD_version), msg, ap);
6351 	device_printf(dev, msg, ap);
6352 	va_end(ap);
6353 	if (P_OSREL_MAJOR(__FreeBSD_version) < major)
6354 		device_printf(dev,
6355 		    "to be removed in FreeBSD %d\n", major);
6356 }
6357 
6358 #ifdef DDB
6359 DB_SHOW_COMMAND(device, db_show_device)
6360 {
6361 	device_t dev;
6362 
6363 	if (!have_addr)
6364 		return;
6365 
6366 	dev = (device_t)addr;
6367 
6368 	db_printf("name:    %s\n", device_get_nameunit(dev));
6369 	db_printf("  driver:  %s\n", DRIVERNAME(dev->driver));
6370 	db_printf("  class:   %s\n", DEVCLANAME(dev->devclass));
6371 	db_printf("  addr:    %p\n", dev);
6372 	db_printf("  parent:  %p\n", dev->parent);
6373 	db_printf("  softc:   %p\n", dev->softc);
6374 	db_printf("  ivars:   %p\n", dev->ivars);
6375 }
6376 
6377 DB_SHOW_ALL_COMMAND(devices, db_show_all_devices)
6378 {
6379 	device_t dev;
6380 
6381 	TAILQ_FOREACH(dev, &bus_data_devices, devlink) {
6382 		db_show_device((db_expr_t)dev, true, count, modif);
6383 	}
6384 }
6385 #endif
6386