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subr_devsw.c revision 1.15.6.7
      1  1.15.6.7      mjf /*	$NetBSD: subr_devsw.c,v 1.15.6.7 2008/06/02 13:24:10 mjf Exp $	*/
      2      1.11       ad 
      3       1.2  gehenna /*-
      4  1.15.6.7      mjf  * Copyright (c) 2001, 2002, 2007, 2008 The NetBSD Foundation, Inc.
      5       1.2  gehenna  * All rights reserved.
      6       1.2  gehenna  *
      7       1.2  gehenna  * This code is derived from software contributed to The NetBSD Foundation
      8      1.11       ad  * by MAEKAWA Masahide <gehenna (at) NetBSD.org>, and by Andrew Doran.
      9       1.2  gehenna  *
     10       1.2  gehenna  * Redistribution and use in source and binary forms, with or without
     11       1.2  gehenna  * modification, are permitted provided that the following conditions
     12       1.2  gehenna  * are met:
     13       1.2  gehenna  * 1. Redistributions of source code must retain the above copyright
     14       1.2  gehenna  *    notice, this list of conditions and the following disclaimer.
     15       1.2  gehenna  * 2. Redistributions in binary form must reproduce the above copyright
     16       1.2  gehenna  *    notice, this list of conditions and the following disclaimer in the
     17       1.2  gehenna  *    documentation and/or other materials provided with the distribution.
     18       1.2  gehenna  *
     19       1.2  gehenna  * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
     20       1.2  gehenna  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     21       1.2  gehenna  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     22       1.2  gehenna  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
     23       1.2  gehenna  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     24       1.2  gehenna  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     25       1.2  gehenna  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     26       1.2  gehenna  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     27       1.2  gehenna  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     28       1.2  gehenna  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     29       1.2  gehenna  * POSSIBILITY OF SUCH DAMAGE.
     30       1.2  gehenna  */
     31      1.11       ad 
     32      1.11       ad /*
     33      1.11       ad  * Overview
     34      1.11       ad  *
     35      1.11       ad  *	subr_devsw.c: registers device drivers by name and by major
     36      1.11       ad  *	number, and provides wrapper methods for performing I/O and
     37      1.11       ad  *	other tasks on device drivers, keying on the device number
     38      1.11       ad  *	(dev_t).
     39      1.11       ad  *
     40      1.11       ad  *	When the system is built, the config(8) command generates
     41      1.11       ad  *	static tables of device drivers built into the kernel image
     42      1.11       ad  *	along with their associated methods.  These are recorded in
     43      1.11       ad  *	the cdevsw0 and bdevsw0 tables.  Drivers can also be added to
     44      1.11       ad  *	and removed from the system dynamically.
     45      1.11       ad  *
     46      1.11       ad  * Allocation
     47      1.11       ad  *
     48      1.11       ad  *	When the system initially boots only the statically allocated
     49      1.11       ad  *	indexes (bdevsw0, cdevsw0) are used.  If these overflow due to
     50      1.11       ad  *	allocation, we allocate a fixed block of memory to hold the new,
     51      1.11       ad  *	expanded index.  This "fork" of the table is only ever performed
     52      1.11       ad  *	once in order to guarantee that other threads may safely access
     53      1.11       ad  *	the device tables:
     54      1.11       ad  *
     55      1.11       ad  *	o Once a thread has a "reference" to the table via an earlier
     56      1.11       ad  *	  open() call, we know that the entry in the table must exist
     57      1.11       ad  *	  and so it is safe to access it.
     58      1.11       ad  *
     59      1.11       ad  *	o Regardless of whether other threads see the old or new
     60      1.11       ad  *	  pointers, they will point to a correct device switch
     61      1.11       ad  *	  structure for the operation being performed.
     62      1.11       ad  *
     63      1.11       ad  *	XXX Currently, the wrapper methods such as cdev_read() verify
     64      1.11       ad  *	that a device driver does in fact exist before calling the
     65      1.11       ad  *	associated driver method.  This should be changed so that
     66      1.11       ad  *	once the device is has been referenced by a vnode (opened),
     67      1.11       ad  *	calling	the other methods should be valid until that reference
     68      1.11       ad  *	is dropped.
     69      1.11       ad  */
     70       1.7    lukem 
     71       1.7    lukem #include <sys/cdefs.h>
     72  1.15.6.7      mjf __KERNEL_RCSID(0, "$NetBSD: subr_devsw.c,v 1.15.6.7 2008/06/02 13:24:10 mjf Exp $");
     73       1.2  gehenna 
     74       1.2  gehenna #include <sys/param.h>
     75       1.2  gehenna #include <sys/conf.h>
     76      1.11       ad #include <sys/kmem.h>
     77       1.2  gehenna #include <sys/systm.h>
     78      1.11       ad #include <sys/poll.h>
     79      1.11       ad #include <sys/tty.h>
     80      1.15     matt #include <sys/cpu.h>
     81      1.11       ad #include <sys/buf.h>
     82  1.15.6.1      mjf #include <sys/dirent.h>
     83  1.15.6.1      mjf #include <machine/stdarg.h>
     84  1.15.6.1      mjf #include <sys/disklabel.h>
     85       1.2  gehenna 
     86  1.15.6.7      mjf #include <miscfs/specfs/specdev.h>
     87  1.15.6.7      mjf 
     88       1.2  gehenna #ifdef DEVSW_DEBUG
     89       1.2  gehenna #define	DPRINTF(x)	printf x
     90       1.2  gehenna #else /* DEVSW_DEBUG */
     91       1.2  gehenna #define	DPRINTF(x)
     92       1.2  gehenna #endif /* DEVSW_DEBUG */
     93       1.2  gehenna 
     94      1.11       ad #define	MAXDEVSW	512	/* the maximum of major device number */
     95       1.2  gehenna #define	BDEVSW_SIZE	(sizeof(struct bdevsw *))
     96       1.2  gehenna #define	CDEVSW_SIZE	(sizeof(struct cdevsw *))
     97       1.2  gehenna #define	DEVSWCONV_SIZE	(sizeof(struct devsw_conv))
     98       1.2  gehenna 
     99       1.2  gehenna extern const struct bdevsw **bdevsw, *bdevsw0[];
    100       1.2  gehenna extern const struct cdevsw **cdevsw, *cdevsw0[];
    101       1.2  gehenna extern struct devsw_conv *devsw_conv, devsw_conv0[];
    102       1.2  gehenna extern const int sys_bdevsws, sys_cdevsws;
    103       1.2  gehenna extern int max_bdevsws, max_cdevsws, max_devsw_convs;
    104       1.2  gehenna 
    105      1.14    pooka static int bdevsw_attach(const struct bdevsw *, int *);
    106      1.14    pooka static int cdevsw_attach(const struct cdevsw *, int *);
    107      1.11       ad static void devsw_detach_locked(const struct bdevsw *, const struct cdevsw *);
    108      1.11       ad 
    109  1.15.6.6      mjf static struct device_name *device_name_alloc(dev_t, device_t, bool,
    110  1.15.6.6      mjf     enum devtype, const char *, va_list);
    111  1.15.6.6      mjf 
    112  1.15.6.1      mjf extern kmutex_t dname_lock;
    113  1.15.6.1      mjf 
    114  1.15.6.1      mjf /*
    115  1.15.6.1      mjf  * A table of initialisation functions for device drivers that
    116  1.15.6.1      mjf  * don't have an attach routine.
    117  1.15.6.1      mjf  */
    118  1.15.6.1      mjf void (*devsw_init_funcs[])(void) = {
    119  1.15.6.1      mjf 	bpf_init,
    120  1.15.6.1      mjf 	cttyinit,
    121  1.15.6.1      mjf 	mem_init,
    122  1.15.6.1      mjf 	swap_init,
    123  1.15.6.1      mjf 	NULL,
    124  1.15.6.1      mjf };
    125      1.11       ad 
    126      1.11       ad void
    127      1.11       ad devsw_init(void)
    128      1.11       ad {
    129  1.15.6.1      mjf 	int i;
    130      1.11       ad 
    131      1.11       ad 	KASSERT(sys_bdevsws < MAXDEVSW - 1);
    132      1.11       ad 	KASSERT(sys_cdevsws < MAXDEVSW - 1);
    133      1.11       ad 
    134  1.15.6.1      mjf 	mutex_init(&dname_lock, MUTEX_DEFAULT, IPL_NONE);
    135  1.15.6.1      mjf 	TAILQ_INIT(&device_names);
    136  1.15.6.1      mjf 
    137  1.15.6.1      mjf 	/*
    138  1.15.6.1      mjf 	 * Technically, some device drivers don't ever get 'attached'
    139  1.15.6.1      mjf 	 * so we provide this table to allow device drivers to register
    140  1.15.6.1      mjf 	 * their device names.
    141  1.15.6.1      mjf 	 */
    142  1.15.6.1      mjf 	for (i = 0; devsw_init_funcs[i] != NULL; i++)
    143  1.15.6.1      mjf 		devsw_init_funcs[i]();
    144      1.11       ad }
    145       1.2  gehenna 
    146       1.2  gehenna int
    147       1.2  gehenna devsw_attach(const char *devname, const struct bdevsw *bdev, int *bmajor,
    148       1.2  gehenna 	     const struct cdevsw *cdev, int *cmajor)
    149       1.2  gehenna {
    150       1.2  gehenna 	struct devsw_conv *conv;
    151       1.2  gehenna 	char *name;
    152       1.2  gehenna 	int error, i;
    153       1.2  gehenna 
    154       1.2  gehenna 	if (devname == NULL || cdev == NULL)
    155       1.2  gehenna 		return (EINVAL);
    156       1.2  gehenna 
    157  1.15.6.7      mjf 	mutex_enter(&specfs_lock);
    158      1.11       ad 
    159       1.2  gehenna 	for (i = 0 ; i < max_devsw_convs ; i++) {
    160       1.2  gehenna 		conv = &devsw_conv[i];
    161       1.2  gehenna 		if (conv->d_name == NULL || strcmp(devname, conv->d_name) != 0)
    162       1.2  gehenna 			continue;
    163       1.2  gehenna 
    164       1.2  gehenna 		if (*bmajor < 0)
    165       1.2  gehenna 			*bmajor = conv->d_bmajor;
    166       1.2  gehenna 		if (*cmajor < 0)
    167       1.2  gehenna 			*cmajor = conv->d_cmajor;
    168       1.2  gehenna 
    169      1.11       ad 		if (*bmajor != conv->d_bmajor || *cmajor != conv->d_cmajor) {
    170      1.11       ad 			error = EINVAL;
    171      1.11       ad 			goto fail;
    172      1.11       ad 		}
    173      1.11       ad 		if ((*bmajor >= 0 && bdev == NULL) || *cmajor < 0) {
    174      1.11       ad 			error = EINVAL;
    175      1.11       ad 			goto fail;
    176      1.11       ad 		}
    177       1.2  gehenna 
    178       1.2  gehenna 		if ((*bmajor >= 0 && bdevsw[*bmajor] != NULL) ||
    179      1.11       ad 		    cdevsw[*cmajor] != NULL) {
    180      1.11       ad 			error = EEXIST;
    181      1.11       ad 			goto fail;
    182      1.11       ad 		}
    183       1.2  gehenna 
    184       1.2  gehenna 		if (bdev != NULL)
    185       1.2  gehenna 			bdevsw[*bmajor] = bdev;
    186       1.2  gehenna 		cdevsw[*cmajor] = cdev;
    187       1.2  gehenna 
    188  1.15.6.7      mjf 		mutex_exit(&specfs_lock);
    189       1.2  gehenna 		return (0);
    190       1.2  gehenna 	}
    191       1.2  gehenna 
    192      1.14    pooka 	error = bdevsw_attach(bdev, bmajor);
    193      1.11       ad 	if (error != 0)
    194      1.11       ad 		goto fail;
    195      1.14    pooka 	error = cdevsw_attach(cdev, cmajor);
    196       1.2  gehenna 	if (error != 0) {
    197      1.11       ad 		devsw_detach_locked(bdev, NULL);
    198      1.11       ad 		goto fail;
    199       1.2  gehenna 	}
    200       1.2  gehenna 
    201       1.2  gehenna 	for (i = 0 ; i < max_devsw_convs ; i++) {
    202       1.2  gehenna 		if (devsw_conv[i].d_name == NULL)
    203       1.2  gehenna 			break;
    204       1.2  gehenna 	}
    205       1.2  gehenna 	if (i == max_devsw_convs) {
    206       1.2  gehenna 		struct devsw_conv *newptr;
    207       1.2  gehenna 		int old, new;
    208       1.2  gehenna 
    209       1.2  gehenna 		old = max_devsw_convs;
    210       1.2  gehenna 		new = old + 1;
    211       1.2  gehenna 
    212      1.11       ad 		newptr = kmem_zalloc(new * DEVSWCONV_SIZE, KM_NOSLEEP);
    213       1.2  gehenna 		if (newptr == NULL) {
    214      1.11       ad 			devsw_detach_locked(bdev, cdev);
    215      1.11       ad 			error = ENOMEM;
    216      1.11       ad 			goto fail;
    217       1.2  gehenna 		}
    218       1.2  gehenna 		newptr[old].d_name = NULL;
    219       1.2  gehenna 		newptr[old].d_bmajor = -1;
    220       1.2  gehenna 		newptr[old].d_cmajor = -1;
    221       1.2  gehenna 		memcpy(newptr, devsw_conv, old * DEVSWCONV_SIZE);
    222       1.2  gehenna 		if (devsw_conv != devsw_conv0)
    223      1.11       ad 			kmem_free(devsw_conv, old * DEVSWCONV_SIZE);
    224       1.2  gehenna 		devsw_conv = newptr;
    225       1.2  gehenna 		max_devsw_convs = new;
    226       1.2  gehenna 	}
    227       1.2  gehenna 
    228       1.6   itojun 	i = strlen(devname) + 1;
    229      1.11       ad 	name = kmem_alloc(i, KM_NOSLEEP);
    230       1.2  gehenna 	if (name == NULL) {
    231      1.11       ad 		devsw_detach_locked(bdev, cdev);
    232      1.11       ad 		goto fail;
    233       1.2  gehenna 	}
    234       1.6   itojun 	strlcpy(name, devname, i);
    235       1.2  gehenna 
    236       1.2  gehenna 	devsw_conv[i].d_name = name;
    237       1.2  gehenna 	devsw_conv[i].d_bmajor = *bmajor;
    238       1.2  gehenna 	devsw_conv[i].d_cmajor = *cmajor;
    239       1.2  gehenna 
    240  1.15.6.7      mjf 	mutex_exit(&specfs_lock);
    241       1.2  gehenna 	return (0);
    242      1.11       ad  fail:
    243  1.15.6.7      mjf 	mutex_exit(&specfs_lock);
    244      1.11       ad 	return (error);
    245       1.2  gehenna }
    246       1.2  gehenna 
    247       1.2  gehenna static int
    248      1.14    pooka bdevsw_attach(const struct bdevsw *devsw, int *devmajor)
    249       1.2  gehenna {
    250      1.11       ad 	const struct bdevsw **newptr;
    251       1.2  gehenna 	int bmajor, i;
    252       1.2  gehenna 
    253  1.15.6.7      mjf 	KASSERT(mutex_owned(&specfs_lock));
    254      1.11       ad 
    255       1.2  gehenna 	if (devsw == NULL)
    256       1.2  gehenna 		return (0);
    257       1.2  gehenna 
    258       1.2  gehenna 	if (*devmajor < 0) {
    259       1.2  gehenna 		for (bmajor = sys_bdevsws ; bmajor < max_bdevsws ; bmajor++) {
    260       1.2  gehenna 			if (bdevsw[bmajor] != NULL)
    261       1.2  gehenna 				continue;
    262       1.2  gehenna 			for (i = 0 ; i < max_devsw_convs ; i++) {
    263       1.2  gehenna 				if (devsw_conv[i].d_bmajor == bmajor)
    264       1.2  gehenna 					break;
    265       1.2  gehenna 			}
    266       1.2  gehenna 			if (i != max_devsw_convs)
    267       1.2  gehenna 				continue;
    268       1.2  gehenna 			break;
    269       1.2  gehenna 		}
    270       1.3  gehenna 		*devmajor = bmajor;
    271       1.2  gehenna 	}
    272      1.11       ad 
    273       1.2  gehenna 	if (*devmajor >= MAXDEVSW) {
    274      1.11       ad 		printf("bdevsw_attach: block majors exhausted");
    275       1.2  gehenna 		return (ENOMEM);
    276       1.2  gehenna 	}
    277       1.2  gehenna 
    278       1.2  gehenna 	if (*devmajor >= max_bdevsws) {
    279      1.11       ad 		KASSERT(bdevsw == bdevsw0);
    280      1.11       ad 		newptr = kmem_zalloc(MAXDEVSW * BDEVSW_SIZE, KM_NOSLEEP);
    281       1.2  gehenna 		if (newptr == NULL)
    282       1.2  gehenna 			return (ENOMEM);
    283      1.11       ad 		memcpy(newptr, bdevsw, max_bdevsws * BDEVSW_SIZE);
    284       1.2  gehenna 		bdevsw = newptr;
    285      1.11       ad 		max_bdevsws = MAXDEVSW;
    286       1.2  gehenna 	}
    287       1.2  gehenna 
    288       1.2  gehenna 	if (bdevsw[*devmajor] != NULL)
    289       1.2  gehenna 		return (EEXIST);
    290       1.2  gehenna 
    291       1.2  gehenna 	bdevsw[*devmajor] = devsw;
    292       1.2  gehenna 
    293       1.2  gehenna 	return (0);
    294       1.2  gehenna }
    295       1.2  gehenna 
    296       1.2  gehenna static int
    297      1.14    pooka cdevsw_attach(const struct cdevsw *devsw, int *devmajor)
    298       1.2  gehenna {
    299      1.11       ad 	const struct cdevsw **newptr;
    300       1.2  gehenna 	int cmajor, i;
    301       1.2  gehenna 
    302  1.15.6.7      mjf 	KASSERT(mutex_owned(&specfs_lock));
    303      1.11       ad 
    304       1.2  gehenna 	if (*devmajor < 0) {
    305       1.2  gehenna 		for (cmajor = sys_cdevsws ; cmajor < max_cdevsws ; cmajor++) {
    306       1.2  gehenna 			if (cdevsw[cmajor] != NULL)
    307       1.2  gehenna 				continue;
    308       1.2  gehenna 			for (i = 0 ; i < max_devsw_convs ; i++) {
    309       1.2  gehenna 				if (devsw_conv[i].d_cmajor == cmajor)
    310       1.2  gehenna 					break;
    311       1.2  gehenna 			}
    312       1.2  gehenna 			if (i != max_devsw_convs)
    313       1.2  gehenna 				continue;
    314       1.2  gehenna 			break;
    315       1.2  gehenna 		}
    316       1.3  gehenna 		*devmajor = cmajor;
    317       1.2  gehenna 	}
    318      1.11       ad 
    319       1.2  gehenna 	if (*devmajor >= MAXDEVSW) {
    320      1.11       ad 		printf("cdevsw_attach: character majors exhausted");
    321       1.2  gehenna 		return (ENOMEM);
    322       1.2  gehenna 	}
    323       1.2  gehenna 
    324       1.2  gehenna 	if (*devmajor >= max_cdevsws) {
    325      1.11       ad 		KASSERT(cdevsw == cdevsw0);
    326      1.11       ad 		newptr = kmem_zalloc(MAXDEVSW * CDEVSW_SIZE, KM_NOSLEEP);
    327       1.2  gehenna 		if (newptr == NULL)
    328       1.2  gehenna 			return (ENOMEM);
    329      1.11       ad 		memcpy(newptr, cdevsw, max_cdevsws * CDEVSW_SIZE);
    330       1.2  gehenna 		cdevsw = newptr;
    331      1.11       ad 		max_cdevsws = MAXDEVSW;
    332       1.2  gehenna 	}
    333       1.2  gehenna 
    334       1.2  gehenna 	if (cdevsw[*devmajor] != NULL)
    335       1.2  gehenna 		return (EEXIST);
    336       1.2  gehenna 
    337       1.2  gehenna 	cdevsw[*devmajor] = devsw;
    338       1.2  gehenna 
    339       1.2  gehenna 	return (0);
    340       1.2  gehenna }
    341       1.2  gehenna 
    342      1.11       ad static void
    343      1.11       ad devsw_detach_locked(const struct bdevsw *bdev, const struct cdevsw *cdev)
    344       1.2  gehenna {
    345       1.2  gehenna 	int i;
    346       1.2  gehenna 
    347  1.15.6.7      mjf 	KASSERT(mutex_owned(&specfs_lock));
    348      1.11       ad 
    349       1.2  gehenna 	if (bdev != NULL) {
    350       1.2  gehenna 		for (i = 0 ; i < max_bdevsws ; i++) {
    351       1.2  gehenna 			if (bdevsw[i] != bdev)
    352       1.2  gehenna 				continue;
    353       1.2  gehenna 			bdevsw[i] = NULL;
    354       1.2  gehenna 			break;
    355       1.2  gehenna 		}
    356       1.2  gehenna 	}
    357       1.2  gehenna 	if (cdev != NULL) {
    358       1.2  gehenna 		for (i = 0 ; i < max_cdevsws ; i++) {
    359       1.2  gehenna 			if (cdevsw[i] != cdev)
    360       1.2  gehenna 				continue;
    361       1.2  gehenna 			cdevsw[i] = NULL;
    362       1.2  gehenna 			break;
    363       1.2  gehenna 		}
    364       1.2  gehenna 	}
    365       1.2  gehenna }
    366       1.2  gehenna 
    367  1.15.6.7      mjf int
    368      1.11       ad devsw_detach(const struct bdevsw *bdev, const struct cdevsw *cdev)
    369      1.11       ad {
    370      1.11       ad 
    371  1.15.6.7      mjf 	mutex_enter(&specfs_lock);
    372      1.11       ad 	devsw_detach_locked(bdev, cdev);
    373  1.15.6.7      mjf 	mutex_exit(&specfs_lock);
    374  1.15.6.7      mjf 	return 0;
    375      1.11       ad }
    376      1.11       ad 
    377      1.11       ad /*
    378      1.11       ad  * Look up a block device by number.
    379      1.11       ad  *
    380      1.11       ad  * => Caller must ensure that the device is attached.
    381      1.11       ad  */
    382       1.2  gehenna const struct bdevsw *
    383       1.2  gehenna bdevsw_lookup(dev_t dev)
    384       1.2  gehenna {
    385       1.2  gehenna 	int bmajor;
    386       1.2  gehenna 
    387       1.2  gehenna 	if (dev == NODEV)
    388       1.2  gehenna 		return (NULL);
    389       1.2  gehenna 	bmajor = major(dev);
    390       1.2  gehenna 	if (bmajor < 0 || bmajor >= max_bdevsws)
    391       1.2  gehenna 		return (NULL);
    392       1.2  gehenna 
    393       1.2  gehenna 	return (bdevsw[bmajor]);
    394       1.2  gehenna }
    395       1.2  gehenna 
    396      1.11       ad /*
    397      1.11       ad  * Look up a character device by number.
    398      1.11       ad  *
    399      1.11       ad  * => Caller must ensure that the device is attached.
    400      1.11       ad  */
    401       1.2  gehenna const struct cdevsw *
    402       1.2  gehenna cdevsw_lookup(dev_t dev)
    403       1.2  gehenna {
    404       1.2  gehenna 	int cmajor;
    405       1.2  gehenna 
    406       1.2  gehenna 	if (dev == NODEV)
    407       1.2  gehenna 		return (NULL);
    408       1.2  gehenna 	cmajor = major(dev);
    409       1.2  gehenna 	if (cmajor < 0 || cmajor >= max_cdevsws)
    410       1.2  gehenna 		return (NULL);
    411       1.2  gehenna 
    412       1.2  gehenna 	return (cdevsw[cmajor]);
    413       1.2  gehenna }
    414       1.2  gehenna 
    415      1.11       ad /*
    416      1.11       ad  * Look up a block device by reference to its operations set.
    417      1.11       ad  *
    418      1.11       ad  * => Caller must ensure that the device is not detached, and therefore
    419      1.11       ad  *    that the returned major is still valid when dereferenced.
    420      1.11       ad  */
    421       1.2  gehenna int
    422       1.2  gehenna bdevsw_lookup_major(const struct bdevsw *bdev)
    423       1.2  gehenna {
    424       1.2  gehenna 	int bmajor;
    425       1.2  gehenna 
    426       1.2  gehenna 	for (bmajor = 0 ; bmajor < max_bdevsws ; bmajor++) {
    427       1.2  gehenna 		if (bdevsw[bmajor] == bdev)
    428       1.2  gehenna 			return (bmajor);
    429       1.2  gehenna 	}
    430       1.2  gehenna 
    431       1.2  gehenna 	return (-1);
    432       1.2  gehenna }
    433       1.2  gehenna 
    434      1.11       ad /*
    435      1.11       ad  * Look up a character device by reference to its operations set.
    436      1.11       ad  *
    437      1.11       ad  * => Caller must ensure that the device is not detached, and therefore
    438      1.11       ad  *    that the returned major is still valid when dereferenced.
    439      1.11       ad  */
    440       1.2  gehenna int
    441       1.2  gehenna cdevsw_lookup_major(const struct cdevsw *cdev)
    442       1.2  gehenna {
    443       1.2  gehenna 	int cmajor;
    444       1.2  gehenna 
    445       1.2  gehenna 	for (cmajor = 0 ; cmajor < max_cdevsws ; cmajor++) {
    446       1.2  gehenna 		if (cdevsw[cmajor] == cdev)
    447       1.2  gehenna 			return (cmajor);
    448       1.2  gehenna 	}
    449       1.2  gehenna 
    450       1.2  gehenna 	return (-1);
    451       1.2  gehenna }
    452       1.2  gehenna 
    453       1.2  gehenna /*
    454       1.2  gehenna  * Convert from block major number to name.
    455      1.11       ad  *
    456      1.11       ad  * => Caller must ensure that the device is not detached, and therefore
    457      1.11       ad  *    that the name pointer is still valid when dereferenced.
    458       1.2  gehenna  */
    459       1.2  gehenna const char *
    460       1.2  gehenna devsw_blk2name(int bmajor)
    461       1.2  gehenna {
    462      1.11       ad 	const char *name;
    463       1.2  gehenna 	int cmajor, i;
    464       1.2  gehenna 
    465      1.11       ad 	name = NULL;
    466      1.11       ad 	cmajor = -1;
    467      1.11       ad 
    468  1.15.6.7      mjf 	mutex_enter(&specfs_lock);
    469      1.11       ad 	if (bmajor < 0 || bmajor >= max_bdevsws || bdevsw[bmajor] == NULL) {
    470  1.15.6.7      mjf 		mutex_exit(&specfs_lock);
    471       1.2  gehenna 		return (NULL);
    472       1.2  gehenna 	}
    473      1.11       ad 	for (i = 0 ; i < max_devsw_convs; i++) {
    474      1.11       ad 		if (devsw_conv[i].d_bmajor == bmajor) {
    475      1.11       ad 			cmajor = devsw_conv[i].d_cmajor;
    476      1.11       ad 			break;
    477      1.11       ad 		}
    478      1.11       ad 	}
    479      1.11       ad 	if (cmajor >= 0 && cmajor < max_cdevsws && cdevsw[cmajor] != NULL)
    480      1.11       ad 		name = devsw_conv[i].d_name;
    481  1.15.6.7      mjf 	mutex_exit(&specfs_lock);
    482       1.2  gehenna 
    483      1.11       ad 	return (name);
    484       1.2  gehenna }
    485       1.2  gehenna 
    486       1.2  gehenna /*
    487       1.2  gehenna  * Convert from device name to block major number.
    488      1.11       ad  *
    489      1.11       ad  * => Caller must ensure that the device is not detached, and therefore
    490      1.11       ad  *    that the major number is still valid when dereferenced.
    491       1.2  gehenna  */
    492       1.2  gehenna int
    493       1.2  gehenna devsw_name2blk(const char *name, char *devname, size_t devnamelen)
    494       1.2  gehenna {
    495       1.2  gehenna 	struct devsw_conv *conv;
    496       1.2  gehenna 	int bmajor, i;
    497       1.2  gehenna 
    498       1.2  gehenna 	if (name == NULL)
    499       1.2  gehenna 		return (-1);
    500       1.2  gehenna 
    501  1.15.6.7      mjf 	mutex_enter(&specfs_lock);
    502       1.2  gehenna 	for (i = 0 ; i < max_devsw_convs ; i++) {
    503       1.5      mrg 		size_t len;
    504       1.5      mrg 
    505       1.2  gehenna 		conv = &devsw_conv[i];
    506       1.2  gehenna 		if (conv->d_name == NULL)
    507       1.2  gehenna 			continue;
    508       1.5      mrg 		len = strlen(conv->d_name);
    509       1.5      mrg 		if (strncmp(conv->d_name, name, len) != 0)
    510       1.5      mrg 			continue;
    511       1.5      mrg 		if (*(name +len) && !isdigit(*(name + len)))
    512       1.2  gehenna 			continue;
    513       1.2  gehenna 		bmajor = conv->d_bmajor;
    514       1.2  gehenna 		if (bmajor < 0 || bmajor >= max_bdevsws ||
    515       1.2  gehenna 		    bdevsw[bmajor] == NULL)
    516       1.5      mrg 			break;
    517       1.2  gehenna 		if (devname != NULL) {
    518       1.2  gehenna #ifdef DEVSW_DEBUG
    519       1.2  gehenna 			if (strlen(conv->d_name) >= devnamelen)
    520       1.2  gehenna 				printf("devsw_name2blk: too short buffer");
    521       1.2  gehenna #endif /* DEVSW_DEBUG */
    522       1.4  tsutsui 			strncpy(devname, conv->d_name, devnamelen);
    523       1.2  gehenna 			devname[devnamelen - 1] = '\0';
    524       1.2  gehenna 		}
    525  1.15.6.7      mjf 		mutex_exit(&specfs_lock);
    526       1.2  gehenna 		return (bmajor);
    527       1.2  gehenna 	}
    528       1.2  gehenna 
    529  1.15.6.7      mjf 	mutex_exit(&specfs_lock);
    530       1.2  gehenna 	return (-1);
    531       1.2  gehenna }
    532       1.2  gehenna 
    533       1.2  gehenna /*
    534  1.15.6.3      mjf  * Convert from device name to char major number.
    535  1.15.6.3      mjf  *
    536  1.15.6.3      mjf  * => Caller must ensure that the device is not detached, and therefore
    537  1.15.6.3      mjf  *    that the major number is still valid when dereferenced.
    538  1.15.6.3      mjf  */
    539  1.15.6.3      mjf int
    540  1.15.6.3      mjf devsw_name2chr(const char *name, char *devname, size_t devnamelen)
    541  1.15.6.3      mjf {
    542  1.15.6.3      mjf 	struct devsw_conv *conv;
    543  1.15.6.3      mjf 	int cmajor, i;
    544  1.15.6.3      mjf 
    545  1.15.6.3      mjf 	if (name == NULL)
    546  1.15.6.3      mjf 		return (-1);
    547  1.15.6.3      mjf 
    548  1.15.6.7      mjf 	mutex_enter(&specfs_lock);
    549  1.15.6.3      mjf 	for (i = 0 ; i < max_devsw_convs ; i++) {
    550  1.15.6.3      mjf 		size_t len;
    551  1.15.6.3      mjf 
    552  1.15.6.3      mjf 		conv = &devsw_conv[i];
    553  1.15.6.3      mjf 		if (conv->d_name == NULL)
    554  1.15.6.3      mjf 			continue;
    555  1.15.6.3      mjf 		len = strlen(conv->d_name);
    556  1.15.6.3      mjf 		if (strncmp(conv->d_name, name, len) != 0)
    557  1.15.6.3      mjf 			continue;
    558  1.15.6.3      mjf 		if (*(name +len) && !isdigit(*(name + len)))
    559  1.15.6.3      mjf 			continue;
    560  1.15.6.3      mjf 		cmajor = conv->d_cmajor;
    561  1.15.6.3      mjf 		if (cmajor < 0 || cmajor >= max_cdevsws ||
    562  1.15.6.3      mjf 		    cdevsw[cmajor] == NULL)
    563  1.15.6.3      mjf 			break;
    564  1.15.6.3      mjf 		if (devname != NULL) {
    565  1.15.6.3      mjf #ifdef DEVSW_DEBUG
    566  1.15.6.3      mjf 			if (strlen(conv->d_name) >= devnamelen)
    567  1.15.6.3      mjf 				printf("devsw_name2chr: too short buffer");
    568  1.15.6.3      mjf #endif /* DEVSW_DEBUG */
    569  1.15.6.3      mjf 			strncpy(devname, conv->d_name, devnamelen);
    570  1.15.6.3      mjf 			devname[devnamelen - 1] = '\0';
    571  1.15.6.3      mjf 		}
    572  1.15.6.7      mjf 		mutex_exit(&specfs_lock);
    573  1.15.6.3      mjf 		return (cmajor);
    574  1.15.6.3      mjf 	}
    575  1.15.6.3      mjf 
    576  1.15.6.7      mjf 	mutex_exit(&specfs_lock);
    577  1.15.6.3      mjf 	return (-1);
    578  1.15.6.3      mjf }
    579  1.15.6.3      mjf 
    580  1.15.6.3      mjf /*
    581       1.2  gehenna  * Convert from character dev_t to block dev_t.
    582      1.11       ad  *
    583      1.11       ad  * => Caller must ensure that the device is not detached, and therefore
    584      1.11       ad  *    that the major number is still valid when dereferenced.
    585       1.2  gehenna  */
    586       1.2  gehenna dev_t
    587       1.2  gehenna devsw_chr2blk(dev_t cdev)
    588       1.2  gehenna {
    589       1.2  gehenna 	int bmajor, cmajor, i;
    590      1.11       ad 	dev_t rv;
    591       1.2  gehenna 
    592       1.2  gehenna 	cmajor = major(cdev);
    593      1.11       ad 	bmajor = -1;
    594      1.11       ad 	rv = NODEV;
    595       1.2  gehenna 
    596  1.15.6.7      mjf 	mutex_enter(&specfs_lock);
    597      1.11       ad 	if (cmajor < 0 || cmajor >= max_cdevsws || cdevsw[cmajor] == NULL) {
    598  1.15.6.7      mjf 		mutex_exit(&specfs_lock);
    599      1.11       ad 		return (NODEV);
    600      1.11       ad 	}
    601       1.2  gehenna 	for (i = 0 ; i < max_devsw_convs ; i++) {
    602      1.11       ad 		if (devsw_conv[i].d_cmajor == cmajor) {
    603      1.11       ad 			bmajor = devsw_conv[i].d_bmajor;
    604      1.11       ad 			break;
    605      1.11       ad 		}
    606       1.2  gehenna 	}
    607      1.11       ad 	if (bmajor >= 0 && bmajor < max_bdevsws && bdevsw[bmajor] != NULL)
    608      1.11       ad 		rv = makedev(bmajor, minor(cdev));
    609  1.15.6.7      mjf 	mutex_exit(&specfs_lock);
    610       1.2  gehenna 
    611      1.11       ad 	return (rv);
    612       1.2  gehenna }
    613       1.2  gehenna 
    614       1.2  gehenna /*
    615       1.2  gehenna  * Convert from block dev_t to character dev_t.
    616      1.11       ad  *
    617      1.11       ad  * => Caller must ensure that the device is not detached, and therefore
    618      1.11       ad  *    that the major number is still valid when dereferenced.
    619       1.2  gehenna  */
    620       1.2  gehenna dev_t
    621       1.2  gehenna devsw_blk2chr(dev_t bdev)
    622       1.2  gehenna {
    623       1.2  gehenna 	int bmajor, cmajor, i;
    624      1.11       ad 	dev_t rv;
    625       1.2  gehenna 
    626      1.11       ad 	bmajor = major(bdev);
    627      1.11       ad 	cmajor = -1;
    628      1.11       ad 	rv = NODEV;
    629      1.11       ad 
    630  1.15.6.7      mjf 	mutex_enter(&specfs_lock);
    631      1.11       ad 	if (bmajor < 0 || bmajor >= max_bdevsws || bdevsw[bmajor] == NULL) {
    632  1.15.6.7      mjf 		mutex_exit(&specfs_lock);
    633       1.2  gehenna 		return (NODEV);
    634      1.11       ad 	}
    635      1.11       ad 	for (i = 0 ; i < max_devsw_convs ; i++) {
    636      1.11       ad 		if (devsw_conv[i].d_bmajor == bmajor) {
    637      1.11       ad 			cmajor = devsw_conv[i].d_cmajor;
    638      1.11       ad 			break;
    639      1.11       ad 		}
    640      1.11       ad 	}
    641      1.11       ad 	if (cmajor >= 0 && cmajor < max_cdevsws && cdevsw[cmajor] != NULL)
    642      1.11       ad 		rv = makedev(cmajor, minor(bdev));
    643  1.15.6.7      mjf 	mutex_exit(&specfs_lock);
    644       1.2  gehenna 
    645      1.11       ad 	return (rv);
    646      1.11       ad }
    647      1.11       ad 
    648      1.11       ad /*
    649      1.11       ad  * Device access methods.
    650      1.11       ad  */
    651      1.11       ad 
    652      1.11       ad #define	DEV_LOCK(d)						\
    653  1.15.6.7      mjf 	if ((mpflag = (d->d_flag & D_MPSAFE)) == 0) {		\
    654  1.15.6.7      mjf 		KERNEL_LOCK(1, NULL);				\
    655      1.11       ad 	}
    656       1.2  gehenna 
    657      1.11       ad #define	DEV_UNLOCK(d)						\
    658  1.15.6.7      mjf 	if (mpflag == 0) {					\
    659  1.15.6.7      mjf 		KERNEL_UNLOCK_ONE(NULL);			\
    660       1.2  gehenna 	}
    661       1.2  gehenna 
    662      1.11       ad int
    663      1.11       ad bdev_open(dev_t dev, int flag, int devtype, lwp_t *l)
    664      1.11       ad {
    665      1.11       ad 	const struct bdevsw *d;
    666  1.15.6.7      mjf 	int rv, mpflag;
    667      1.11       ad 
    668      1.11       ad 	/*
    669      1.11       ad 	 * For open we need to lock, in order to synchronize
    670      1.11       ad 	 * with attach/detach.
    671      1.11       ad 	 */
    672  1.15.6.7      mjf 	mutex_enter(&specfs_lock);
    673      1.11       ad 	d = bdevsw_lookup(dev);
    674  1.15.6.7      mjf 	mutex_exit(&specfs_lock);
    675      1.11       ad 	if (d == NULL)
    676      1.11       ad 		return ENXIO;
    677      1.11       ad 
    678      1.11       ad 	DEV_LOCK(d);
    679      1.11       ad 	rv = (*d->d_open)(dev, flag, devtype, l);
    680      1.11       ad 	DEV_UNLOCK(d);
    681      1.11       ad 
    682      1.11       ad 	return rv;
    683      1.11       ad }
    684      1.11       ad 
    685      1.11       ad int
    686      1.11       ad bdev_close(dev_t dev, int flag, int devtype, lwp_t *l)
    687      1.11       ad {
    688      1.11       ad 	const struct bdevsw *d;
    689  1.15.6.7      mjf 	int rv, mpflag;
    690      1.11       ad 
    691      1.11       ad 	if ((d = bdevsw_lookup(dev)) == NULL)
    692      1.11       ad 		return ENXIO;
    693      1.11       ad 
    694      1.11       ad 	DEV_LOCK(d);
    695      1.11       ad 	rv = (*d->d_close)(dev, flag, devtype, l);
    696      1.11       ad 	DEV_UNLOCK(d);
    697      1.11       ad 
    698      1.11       ad 	return rv;
    699      1.11       ad }
    700      1.11       ad 
    701      1.11       ad void
    702      1.11       ad bdev_strategy(struct buf *bp)
    703      1.11       ad {
    704      1.11       ad 	const struct bdevsw *d;
    705  1.15.6.7      mjf 	int mpflag;
    706      1.11       ad 
    707      1.11       ad 	if ((d = bdevsw_lookup(bp->b_dev)) == NULL)
    708      1.11       ad 		panic("bdev_strategy");
    709      1.11       ad 
    710      1.11       ad 	DEV_LOCK(d);
    711      1.11       ad 	(*d->d_strategy)(bp);
    712      1.11       ad 	DEV_UNLOCK(d);
    713      1.11       ad }
    714      1.11       ad 
    715      1.11       ad int
    716      1.11       ad bdev_ioctl(dev_t dev, u_long cmd, void *data, int flag, lwp_t *l)
    717      1.11       ad {
    718      1.11       ad 	const struct bdevsw *d;
    719  1.15.6.7      mjf 	int rv, mpflag;
    720      1.11       ad 
    721      1.11       ad 	if ((d = bdevsw_lookup(dev)) == NULL)
    722      1.11       ad 		return ENXIO;
    723      1.11       ad 
    724      1.11       ad 	DEV_LOCK(d);
    725      1.11       ad 	rv = (*d->d_ioctl)(dev, cmd, data, flag, l);
    726      1.11       ad 	DEV_UNLOCK(d);
    727      1.11       ad 
    728      1.11       ad 	return rv;
    729      1.11       ad }
    730      1.11       ad 
    731      1.11       ad int
    732      1.11       ad bdev_dump(dev_t dev, daddr_t addr, void *data, size_t sz)
    733      1.11       ad {
    734      1.11       ad 	const struct bdevsw *d;
    735      1.11       ad 	int rv;
    736      1.11       ad 
    737      1.11       ad 	/*
    738      1.11       ad 	 * Dump can be called without the device open.  Since it can
    739      1.11       ad 	 * currently only be called with the system paused (and in a
    740      1.11       ad 	 * potentially unstable state), we don't perform any locking.
    741      1.11       ad 	 */
    742      1.11       ad 	if ((d = bdevsw_lookup(dev)) == NULL)
    743      1.11       ad 		return ENXIO;
    744      1.11       ad 
    745      1.11       ad 	/* DEV_LOCK(d); */
    746      1.11       ad 	rv = (*d->d_dump)(dev, addr, data, sz);
    747      1.11       ad 	/* DEV_UNLOCK(d); */
    748      1.11       ad 
    749      1.11       ad 	return rv;
    750      1.11       ad }
    751      1.11       ad 
    752      1.11       ad int
    753      1.11       ad bdev_type(dev_t dev)
    754      1.11       ad {
    755      1.11       ad 	const struct bdevsw *d;
    756      1.11       ad 
    757      1.11       ad 	if ((d = bdevsw_lookup(dev)) == NULL)
    758      1.11       ad 		return D_OTHER;
    759      1.11       ad 	return d->d_flag & D_TYPEMASK;
    760      1.11       ad }
    761      1.11       ad 
    762      1.11       ad int
    763      1.11       ad cdev_open(dev_t dev, int flag, int devtype, lwp_t *l)
    764      1.11       ad {
    765      1.11       ad 	const struct cdevsw *d;
    766  1.15.6.7      mjf 	int rv, mpflag;
    767      1.11       ad 
    768      1.11       ad 	/*
    769      1.11       ad 	 * For open we need to lock, in order to synchronize
    770      1.11       ad 	 * with attach/detach.
    771      1.11       ad 	 */
    772  1.15.6.7      mjf 	mutex_enter(&specfs_lock);
    773      1.11       ad 	d = cdevsw_lookup(dev);
    774  1.15.6.7      mjf 	mutex_exit(&specfs_lock);
    775      1.11       ad 	if (d == NULL)
    776      1.11       ad 		return ENXIO;
    777      1.11       ad 
    778      1.11       ad 	DEV_LOCK(d);
    779      1.11       ad 	rv = (*d->d_open)(dev, flag, devtype, l);
    780      1.11       ad 	DEV_UNLOCK(d);
    781      1.11       ad 
    782      1.11       ad 	return rv;
    783      1.11       ad }
    784      1.11       ad 
    785      1.11       ad int
    786      1.11       ad cdev_close(dev_t dev, int flag, int devtype, lwp_t *l)
    787      1.11       ad {
    788      1.11       ad 	const struct cdevsw *d;
    789  1.15.6.7      mjf 	int rv, mpflag;
    790      1.11       ad 
    791      1.11       ad 	if ((d = cdevsw_lookup(dev)) == NULL)
    792      1.11       ad 		return ENXIO;
    793      1.11       ad 
    794      1.11       ad 	DEV_LOCK(d);
    795      1.11       ad 	rv = (*d->d_close)(dev, flag, devtype, l);
    796      1.11       ad 	DEV_UNLOCK(d);
    797      1.11       ad 
    798      1.11       ad 	return rv;
    799      1.11       ad }
    800      1.11       ad 
    801      1.11       ad int
    802      1.11       ad cdev_read(dev_t dev, struct uio *uio, int flag)
    803      1.11       ad {
    804      1.11       ad 	const struct cdevsw *d;
    805  1.15.6.7      mjf 	int rv, mpflag;
    806      1.11       ad 
    807      1.11       ad 	if ((d = cdevsw_lookup(dev)) == NULL)
    808      1.11       ad 		return ENXIO;
    809      1.11       ad 
    810      1.11       ad 	DEV_LOCK(d);
    811      1.11       ad 	rv = (*d->d_read)(dev, uio, flag);
    812      1.11       ad 	DEV_UNLOCK(d);
    813      1.11       ad 
    814      1.11       ad 	return rv;
    815      1.11       ad }
    816      1.11       ad 
    817      1.11       ad int
    818      1.11       ad cdev_write(dev_t dev, struct uio *uio, int flag)
    819      1.11       ad {
    820      1.11       ad 	const struct cdevsw *d;
    821  1.15.6.7      mjf 	int rv, mpflag;
    822      1.11       ad 
    823      1.11       ad 	if ((d = cdevsw_lookup(dev)) == NULL)
    824      1.11       ad 		return ENXIO;
    825      1.11       ad 
    826      1.11       ad 	DEV_LOCK(d);
    827      1.11       ad 	rv = (*d->d_write)(dev, uio, flag);
    828      1.11       ad 	DEV_UNLOCK(d);
    829      1.11       ad 
    830      1.11       ad 	return rv;
    831      1.11       ad }
    832      1.11       ad 
    833      1.11       ad int
    834      1.11       ad cdev_ioctl(dev_t dev, u_long cmd, void *data, int flag, lwp_t *l)
    835      1.11       ad {
    836      1.11       ad 	const struct cdevsw *d;
    837  1.15.6.7      mjf 	int rv, mpflag;
    838      1.11       ad 
    839      1.11       ad 	if ((d = cdevsw_lookup(dev)) == NULL)
    840      1.11       ad 		return ENXIO;
    841      1.11       ad 
    842      1.11       ad 	DEV_LOCK(d);
    843      1.11       ad 	rv = (*d->d_ioctl)(dev, cmd, data, flag, l);
    844      1.11       ad 	DEV_UNLOCK(d);
    845      1.11       ad 
    846      1.11       ad 	return rv;
    847      1.11       ad }
    848      1.11       ad 
    849      1.11       ad void
    850      1.11       ad cdev_stop(struct tty *tp, int flag)
    851      1.11       ad {
    852      1.11       ad 	const struct cdevsw *d;
    853  1.15.6.7      mjf 	int mpflag;
    854      1.11       ad 
    855      1.11       ad 	if ((d = cdevsw_lookup(tp->t_dev)) == NULL)
    856      1.11       ad 		return;
    857      1.11       ad 
    858      1.11       ad 	DEV_LOCK(d);
    859      1.11       ad 	(*d->d_stop)(tp, flag);
    860      1.11       ad 	DEV_UNLOCK(d);
    861      1.11       ad }
    862      1.11       ad 
    863      1.11       ad struct tty *
    864      1.11       ad cdev_tty(dev_t dev)
    865      1.11       ad {
    866      1.11       ad 	const struct cdevsw *d;
    867      1.11       ad 	struct tty * rv;
    868  1.15.6.7      mjf 	int mpflag;
    869      1.11       ad 
    870      1.11       ad 	if ((d = cdevsw_lookup(dev)) == NULL)
    871      1.11       ad 		return NULL;
    872      1.11       ad 
    873      1.12       ad 	/* XXX Check if necessary. */
    874      1.12       ad 	if (d->d_tty == NULL)
    875      1.12       ad 		return NULL;
    876      1.12       ad 
    877      1.11       ad 	DEV_LOCK(d);
    878      1.11       ad 	rv = (*d->d_tty)(dev);
    879      1.11       ad 	DEV_UNLOCK(d);
    880      1.11       ad 
    881      1.11       ad 	return rv;
    882      1.11       ad }
    883      1.11       ad 
    884      1.11       ad int
    885      1.11       ad cdev_poll(dev_t dev, int flag, lwp_t *l)
    886      1.11       ad {
    887      1.11       ad 	const struct cdevsw *d;
    888  1.15.6.7      mjf 	int rv, mpflag;
    889      1.11       ad 
    890      1.11       ad 	if ((d = cdevsw_lookup(dev)) == NULL)
    891      1.11       ad 		return POLLERR;
    892      1.11       ad 
    893      1.11       ad 	DEV_LOCK(d);
    894      1.11       ad 	rv = (*d->d_poll)(dev, flag, l);
    895      1.11       ad 	DEV_UNLOCK(d);
    896      1.11       ad 
    897      1.11       ad 	return rv;
    898      1.11       ad }
    899      1.11       ad 
    900      1.11       ad paddr_t
    901      1.11       ad cdev_mmap(dev_t dev, off_t off, int flag)
    902      1.11       ad {
    903      1.11       ad 	const struct cdevsw *d;
    904      1.11       ad 	paddr_t rv;
    905  1.15.6.7      mjf 	int mpflag;
    906      1.11       ad 
    907      1.11       ad 	if ((d = cdevsw_lookup(dev)) == NULL)
    908      1.11       ad 		return (paddr_t)-1LL;
    909      1.11       ad 
    910      1.11       ad 	DEV_LOCK(d);
    911      1.11       ad 	rv = (*d->d_mmap)(dev, off, flag);
    912      1.11       ad 	DEV_UNLOCK(d);
    913      1.11       ad 
    914      1.11       ad 	return rv;
    915      1.11       ad }
    916      1.11       ad 
    917      1.11       ad int
    918      1.11       ad cdev_kqfilter(dev_t dev, struct knote *kn)
    919      1.11       ad {
    920      1.11       ad 	const struct cdevsw *d;
    921  1.15.6.7      mjf 	int rv, mpflag;
    922      1.11       ad 
    923      1.11       ad 	if ((d = cdevsw_lookup(dev)) == NULL)
    924      1.11       ad 		return ENXIO;
    925      1.11       ad 
    926      1.11       ad 	DEV_LOCK(d);
    927      1.11       ad 	rv = (*d->d_kqfilter)(dev, kn);
    928      1.11       ad 	DEV_UNLOCK(d);
    929      1.11       ad 
    930      1.11       ad 	return rv;
    931      1.11       ad }
    932      1.11       ad 
    933      1.11       ad int
    934      1.11       ad cdev_type(dev_t dev)
    935      1.11       ad {
    936      1.11       ad 	const struct cdevsw *d;
    937      1.11       ad 
    938      1.11       ad 	if ((d = cdevsw_lookup(dev)) == NULL)
    939      1.11       ad 		return D_OTHER;
    940      1.11       ad 	return d->d_flag & D_TYPEMASK;
    941       1.2  gehenna }
    942  1.15.6.1      mjf 
    943  1.15.6.6      mjf static struct device_name *
    944  1.15.6.6      mjf device_name_alloc(dev_t dev, device_t devp, bool cdev,
    945  1.15.6.6      mjf 	enum devtype dtype, const char *fmt, va_list src)
    946  1.15.6.6      mjf {
    947  1.15.6.6      mjf 	struct device_name *dn;
    948  1.15.6.6      mjf 	va_list dst;
    949  1.15.6.6      mjf 
    950  1.15.6.6      mjf 	/* TODO: Check for aliases */
    951  1.15.6.6      mjf 
    952  1.15.6.6      mjf 	dn = kmem_zalloc(sizeof(*dn), KM_NOSLEEP);
    953  1.15.6.6      mjf 	if (dn == NULL)
    954  1.15.6.6      mjf 		return NULL;
    955  1.15.6.6      mjf 
    956  1.15.6.6      mjf 	dn->d_dev = dev;
    957  1.15.6.6      mjf 	dn->d_devp = devp;
    958  1.15.6.6      mjf 	dn->d_char = cdev;
    959  1.15.6.6      mjf 	dn->d_type = dtype;
    960  1.15.6.6      mjf 
    961  1.15.6.6      mjf 	dn->d_name = kmem_zalloc(MAXNAMLEN, KM_NOSLEEP);
    962  1.15.6.6      mjf 	va_copy(dst, src);
    963  1.15.6.6      mjf 	vsnprintf(dn->d_name, MAXNAMLEN, fmt, dst);
    964  1.15.6.6      mjf 	va_end(dst);
    965  1.15.6.6      mjf 
    966  1.15.6.6      mjf 	return dn;
    967  1.15.6.6      mjf }
    968  1.15.6.6      mjf 
    969  1.15.6.1      mjf /*
    970  1.15.6.1      mjf  * Register a dev_t and name for a device driver with devfs.
    971  1.15.6.1      mjf  * We maintain a TAILQ of registered device drivers names and dev_t's.
    972  1.15.6.1      mjf  *
    973  1.15.6.1      mjf  * => if devp is NULL this device has no device_t instance. An example
    974  1.15.6.1      mjf  *    of this is zero(4).
    975  1.15.6.1      mjf  *
    976  1.15.6.1      mjf  * => if there already exists another name for this dev_t, then 'name'
    977  1.15.6.1      mjf  *    is assumed to be an alias of a previously registered device driver.
    978  1.15.6.1      mjf  * TODO: The above isn't actually true at the moment, we just return 0.
    979  1.15.6.1      mjf  *
    980  1.15.6.1      mjf  * => 'cdev' indiciates whether we are a char or block device.
    981  1.15.6.1      mjf  *     If 'cdev' is true, we are a character device, otherwise we
    982  1.15.6.1      mjf  *     are a block device.
    983  1.15.6.1      mjf  */
    984  1.15.6.1      mjf int
    985  1.15.6.6      mjf device_register_name(dev_t dev, device_t devp, bool cdev,
    986  1.15.6.1      mjf 	enum devtype dtype, const char *fmt, ...)
    987  1.15.6.1      mjf {
    988  1.15.6.1      mjf 	struct device_name *dn;
    989  1.15.6.1      mjf 	va_list ap;
    990  1.15.6.1      mjf 
    991  1.15.6.6      mjf 	va_start(ap, fmt);
    992  1.15.6.1      mjf 
    993  1.15.6.6      mjf 	if ((dn = device_name_alloc(dev, devp, cdev, dtype, fmt, ap)) == NULL)
    994  1.15.6.1      mjf 		return ENOMEM;
    995  1.15.6.1      mjf 
    996  1.15.6.1      mjf 	va_end(ap);
    997  1.15.6.1      mjf 
    998  1.15.6.1      mjf 	mutex_enter(&dname_lock);
    999  1.15.6.1      mjf 	TAILQ_INSERT_TAIL(&device_names, dn, d_next);
   1000  1.15.6.1      mjf 	mutex_exit(&dname_lock);
   1001  1.15.6.1      mjf 
   1002  1.15.6.1      mjf 	return 0;
   1003  1.15.6.1      mjf }
   1004  1.15.6.1      mjf 
   1005  1.15.6.1      mjf /*
   1006  1.15.6.1      mjf  * Remove a previously registered name for 'dev'.
   1007  1.15.6.1      mjf  *
   1008  1.15.6.1      mjf  * => This must be called twice with different values for 'dev' if
   1009  1.15.6.1      mjf  *    the caller previously registered a name for a character device
   1010  1.15.6.1      mjf  *    and a name for a block device.
   1011  1.15.6.1      mjf  */
   1012  1.15.6.1      mjf int
   1013  1.15.6.5      mjf device_deregister_name(dev_t dev, const char *fmt, ...)
   1014  1.15.6.1      mjf {
   1015  1.15.6.1      mjf 	int error = 0;
   1016  1.15.6.1      mjf 	struct device_name *dn;
   1017  1.15.6.1      mjf 	va_list ap;
   1018  1.15.6.1      mjf 	char name[MAXNAMLEN];
   1019  1.15.6.1      mjf 
   1020  1.15.6.1      mjf 	va_start(ap, fmt);
   1021  1.15.6.1      mjf 	vsnprintf(name, MAXNAMLEN, fmt, ap);
   1022  1.15.6.1      mjf 	va_end(ap);
   1023  1.15.6.1      mjf 
   1024  1.15.6.1      mjf 	mutex_enter(&dname_lock);
   1025  1.15.6.1      mjf 	TAILQ_FOREACH(dn, &device_names, d_next) {
   1026  1.15.6.4      mjf 		if ((strcmp(dn->d_name, name) == 0) && (dn->d_gone == false))
   1027  1.15.6.1      mjf 			break;
   1028  1.15.6.1      mjf 	}
   1029  1.15.6.1      mjf 
   1030  1.15.6.1      mjf 	if (dn != NULL)
   1031  1.15.6.1      mjf 		dn->d_gone = true;
   1032  1.15.6.1      mjf 	else
   1033  1.15.6.1      mjf 		error = EINVAL;
   1034  1.15.6.1      mjf 
   1035  1.15.6.1      mjf 	mutex_exit(&dname_lock);
   1036  1.15.6.1      mjf 	return error;
   1037  1.15.6.1      mjf }
   1038  1.15.6.1      mjf 
   1039  1.15.6.4      mjf /*
   1040  1.15.6.4      mjf  * Remove all device names for this device_t.
   1041  1.15.6.4      mjf  */
   1042  1.15.6.4      mjf int
   1043  1.15.6.5      mjf device_deregister_all(device_t dev)
   1044  1.15.6.4      mjf {
   1045  1.15.6.4      mjf 	struct device_name *dn;
   1046  1.15.6.4      mjf 
   1047  1.15.6.4      mjf 	mutex_enter(&dname_lock);
   1048  1.15.6.4      mjf 	TAILQ_FOREACH(dn, &device_names, d_next) {
   1049  1.15.6.4      mjf 		if ((dn->d_devp == dev) && (dn->d_gone == false))
   1050  1.15.6.4      mjf 			dn->d_gone = true;
   1051  1.15.6.4      mjf 	}
   1052  1.15.6.4      mjf 	mutex_exit(&dname_lock);
   1053  1.15.6.4      mjf 	return 0;
   1054  1.15.6.4      mjf }
   1055  1.15.6.4      mjf 
   1056  1.15.6.1      mjf struct device_name *
   1057  1.15.6.2      mjf device_lookup_info(dev_t dev, int is_char)
   1058  1.15.6.1      mjf {
   1059  1.15.6.1      mjf 	struct device_name *dn;
   1060  1.15.6.1      mjf 
   1061  1.15.6.1      mjf 	mutex_enter(&dname_lock);
   1062  1.15.6.1      mjf 	TAILQ_FOREACH(dn, &device_names, d_next) {
   1063  1.15.6.2      mjf 		if ((dn->d_dev == dev) && (dn->d_char == is_char))
   1064  1.15.6.1      mjf 			break;
   1065  1.15.6.1      mjf 	}
   1066  1.15.6.1      mjf 	mutex_exit(&dname_lock);
   1067  1.15.6.1      mjf 
   1068  1.15.6.1      mjf 	return dn;
   1069  1.15.6.1      mjf }
   1070  1.15.6.6      mjf 
   1071  1.15.6.6      mjf /*
   1072  1.15.6.6      mjf  * Register a name for a device_t and wait for the device file to be
   1073  1.15.6.6      mjf  * created in devfs mounts. Normally this operation is asynchronous in
   1074  1.15.6.6      mjf  * the sense that a device name is registered and at some later time
   1075  1.15.6.6      mjf  * a device file will appear in a devfs mount.
   1076  1.15.6.6      mjf  *
   1077  1.15.6.6      mjf  * cond - A kernel condition variable
   1078  1.15.6.6      mjf  * ticks - Timeout value in hz
   1079  1.15.6.6      mjf  *
   1080  1.15.6.6      mjf  * NOTE: There is no guarantee that a device file will be created,
   1081  1.15.6.6      mjf  *	 however, the caller will be notified in a synchronous manner
   1082  1.15.6.6      mjf  *	 whether the creation failed or not.
   1083  1.15.6.6      mjf  */
   1084  1.15.6.6      mjf int
   1085  1.15.6.6      mjf device_register_sync(dev_t dev, device_t devp, bool cdev,
   1086  1.15.6.6      mjf 	enum devtype dtype, kcondvar_t cond, int ticks, const char *fmt, ...)
   1087  1.15.6.6      mjf {
   1088  1.15.6.6      mjf 	int error = 0;
   1089  1.15.6.6      mjf 	struct device_name *dn;
   1090  1.15.6.6      mjf 	va_list ap;
   1091  1.15.6.6      mjf 
   1092  1.15.6.6      mjf 	va_start(ap, fmt);
   1093  1.15.6.6      mjf 
   1094  1.15.6.6      mjf 	if ((dn = device_name_alloc(dev, devp, cdev, dtype, fmt, ap)) == NULL)
   1095  1.15.6.6      mjf 		return ENOMEM;
   1096  1.15.6.6      mjf 	dn->d_busy = true;
   1097  1.15.6.6      mjf 	dn->d_cv = cond;
   1098  1.15.6.6      mjf 
   1099  1.15.6.6      mjf 	va_end(ap);
   1100  1.15.6.6      mjf 
   1101  1.15.6.6      mjf 	mutex_enter(&dname_lock);
   1102  1.15.6.6      mjf 	TAILQ_INSERT_TAIL(&device_names, dn, d_next);
   1103  1.15.6.6      mjf 	mutex_exit(&dname_lock);
   1104  1.15.6.6      mjf 
   1105  1.15.6.6      mjf 	mutex_init(&dn->d_cvmutex, MUTEX_DEFAULT, IPL_NONE);
   1106  1.15.6.6      mjf 
   1107  1.15.6.6      mjf 	mutex_enter(&dn->d_cvmutex);
   1108  1.15.6.6      mjf 
   1109  1.15.6.6      mjf 	while (dn->d_busy == true) {
   1110  1.15.6.6      mjf 		if (ticks <= 0)
   1111  1.15.6.6      mjf 			error = cv_wait_sig(&dn->d_cv, &dn->d_cvmutex);
   1112  1.15.6.6      mjf 		else
   1113  1.15.6.6      mjf 			error = cv_timedwait_sig(&dn->d_cv,
   1114  1.15.6.6      mjf 			    &dn->d_cvmutex, ticks);
   1115  1.15.6.6      mjf 
   1116  1.15.6.6      mjf 	}
   1117  1.15.6.6      mjf 	error = dn->d_retval;
   1118  1.15.6.6      mjf 	mutex_exit(&dn->d_cvmutex);
   1119  1.15.6.6      mjf 
   1120  1.15.6.6      mjf 	return error;
   1121  1.15.6.6      mjf }
   1122