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vfs_bio.c revision 1.125
      1  1.125    atatat /*	$NetBSD: vfs_bio.c,v 1.125 2004/05/25 04:30:33 atatat Exp $	*/
      2   1.31       cgd 
      3   1.31       cgd /*-
      4   1.31       cgd  * Copyright (c) 1982, 1986, 1989, 1993
      5   1.31       cgd  *	The Regents of the University of California.  All rights reserved.
      6   1.31       cgd  * (c) UNIX System Laboratories, Inc.
      7   1.31       cgd  * All or some portions of this file are derived from material licensed
      8   1.31       cgd  * to the University of California by American Telephone and Telegraph
      9   1.31       cgd  * Co. or Unix System Laboratories, Inc. and are reproduced herein with
     10   1.31       cgd  * the permission of UNIX System Laboratories, Inc.
     11   1.31       cgd  *
     12   1.31       cgd  * Redistribution and use in source and binary forms, with or without
     13   1.31       cgd  * modification, are permitted provided that the following conditions
     14   1.31       cgd  * are met:
     15   1.31       cgd  * 1. Redistributions of source code must retain the above copyright
     16   1.31       cgd  *    notice, this list of conditions and the following disclaimer.
     17   1.31       cgd  * 2. Redistributions in binary form must reproduce the above copyright
     18   1.31       cgd  *    notice, this list of conditions and the following disclaimer in the
     19   1.31       cgd  *    documentation and/or other materials provided with the distribution.
     20   1.93       agc  * 3. Neither the name of the University nor the names of its contributors
     21   1.93       agc  *    may be used to endorse or promote products derived from this software
     22   1.93       agc  *    without specific prior written permission.
     23   1.93       agc  *
     24   1.93       agc  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
     25   1.93       agc  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     26   1.93       agc  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     27   1.93       agc  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
     28   1.93       agc  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     29   1.93       agc  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     30   1.93       agc  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     31   1.93       agc  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     32   1.93       agc  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     33   1.93       agc  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     34   1.93       agc  * SUCH DAMAGE.
     35   1.93       agc  *
     36   1.93       agc  *	@(#)vfs_bio.c	8.6 (Berkeley) 1/11/94
     37   1.93       agc  */
     38   1.93       agc 
     39   1.93       agc /*-
     40   1.93       agc  * Copyright (c) 1994 Christopher G. Demetriou
     41   1.93       agc  *
     42   1.93       agc  * Redistribution and use in source and binary forms, with or without
     43   1.93       agc  * modification, are permitted provided that the following conditions
     44   1.93       agc  * are met:
     45   1.93       agc  * 1. Redistributions of source code must retain the above copyright
     46   1.93       agc  *    notice, this list of conditions and the following disclaimer.
     47   1.93       agc  * 2. Redistributions in binary form must reproduce the above copyright
     48   1.93       agc  *    notice, this list of conditions and the following disclaimer in the
     49   1.93       agc  *    documentation and/or other materials provided with the distribution.
     50   1.31       cgd  * 3. All advertising materials mentioning features or use of this software
     51   1.31       cgd  *    must display the following acknowledgement:
     52   1.31       cgd  *	This product includes software developed by the University of
     53   1.31       cgd  *	California, Berkeley and its contributors.
     54   1.31       cgd  * 4. Neither the name of the University nor the names of its contributors
     55   1.31       cgd  *    may be used to endorse or promote products derived from this software
     56   1.31       cgd  *    without specific prior written permission.
     57   1.31       cgd  *
     58   1.31       cgd  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
     59   1.31       cgd  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     60   1.31       cgd  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     61   1.31       cgd  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
     62   1.31       cgd  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     63   1.31       cgd  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     64   1.31       cgd  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     65   1.31       cgd  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     66   1.31       cgd  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     67   1.31       cgd  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     68   1.31       cgd  * SUCH DAMAGE.
     69   1.31       cgd  *
     70   1.31       cgd  *	@(#)vfs_bio.c	8.6 (Berkeley) 1/11/94
     71   1.31       cgd  */
     72   1.31       cgd 
     73   1.31       cgd /*
     74   1.31       cgd  * Some references:
     75   1.31       cgd  *	Bach: The Design of the UNIX Operating System (Prentice Hall, 1986)
     76   1.31       cgd  *	Leffler, et al.: The Design and Implementation of the 4.3BSD
     77   1.31       cgd  *		UNIX Operating System (Addison Welley, 1989)
     78   1.31       cgd  */
     79   1.77     lukem 
     80  1.100        pk #include "opt_bufcache.h"
     81   1.81      matt #include "opt_softdep.h"
     82   1.81      matt 
     83   1.77     lukem #include <sys/cdefs.h>
     84  1.125    atatat __KERNEL_RCSID(0, "$NetBSD: vfs_bio.c,v 1.125 2004/05/25 04:30:33 atatat Exp $");
     85   1.31       cgd 
     86   1.31       cgd #include <sys/param.h>
     87   1.31       cgd #include <sys/systm.h>
     88  1.100        pk #include <sys/kernel.h>
     89   1.31       cgd #include <sys/proc.h>
     90   1.31       cgd #include <sys/buf.h>
     91   1.31       cgd #include <sys/vnode.h>
     92   1.31       cgd #include <sys/mount.h>
     93   1.31       cgd #include <sys/malloc.h>
     94   1.31       cgd #include <sys/resourcevar.h>
     95  1.100        pk #include <sys/sysctl.h>
     96   1.35   mycroft #include <sys/conf.h>
     97   1.40  christos 
     98   1.73       chs #include <uvm/uvm.h>
     99   1.71   thorpej 
    100   1.59      fvdl #include <miscfs/specfs/specdev.h>
    101   1.59      fvdl 
    102  1.100        pk #ifndef	BUFPAGES
    103  1.100        pk # define BUFPAGES 0
    104  1.100        pk #endif
    105  1.100        pk 
    106  1.100        pk #ifdef BUFCACHE
    107  1.100        pk # if (BUFCACHE < 5) || (BUFCACHE > 95)
    108  1.100        pk #  error BUFCACHE is not between 5 and 95
    109  1.100        pk # endif
    110  1.100        pk #else
    111  1.114       tls # define BUFCACHE 15
    112  1.100        pk #endif
    113  1.100        pk 
    114  1.100        pk u_int	nbuf;			/* XXX - for softdep_lockedbufs */
    115  1.100        pk u_int	bufpages = BUFPAGES;	/* optional hardwired count */
    116  1.100        pk u_int	bufcache = BUFCACHE;	/* max % of RAM to use for buffer cache */
    117  1.100        pk 
    118  1.100        pk 
    119   1.31       cgd /* Macros to clear/set/test flags. */
    120   1.31       cgd #define	SET(t, f)	(t) |= (f)
    121   1.31       cgd #define	CLR(t, f)	(t) &= ~(f)
    122   1.31       cgd #define	ISSET(t, f)	((t) & (f))
    123   1.31       cgd 
    124   1.31       cgd /*
    125   1.31       cgd  * Definitions for the buffer hash lists.
    126   1.31       cgd  */
    127   1.31       cgd #define	BUFHASH(dvp, lbn)	\
    128   1.73       chs 	(&bufhashtbl[(((long)(dvp) >> 8) + (int)(lbn)) & bufhash])
    129   1.31       cgd LIST_HEAD(bufhashhdr, buf) *bufhashtbl, invalhash;
    130   1.31       cgd u_long	bufhash;
    131   1.81      matt #ifndef SOFTDEP
    132   1.59      fvdl struct bio_ops bioops;	/* I/O operation notification */
    133   1.81      matt #endif
    134   1.31       cgd 
    135   1.31       cgd /*
    136   1.31       cgd  * Insq/Remq for the buffer hash lists.
    137   1.31       cgd  */
    138   1.31       cgd #define	binshash(bp, dp)	LIST_INSERT_HEAD(dp, bp, b_hash)
    139   1.31       cgd #define	bremhash(bp)		LIST_REMOVE(bp, b_hash)
    140   1.31       cgd 
    141   1.31       cgd /*
    142   1.31       cgd  * Definitions for the buffer free lists.
    143   1.31       cgd  */
    144  1.100        pk #define	BQUEUES		3		/* number of free buffer queues */
    145   1.31       cgd 
    146   1.31       cgd #define	BQ_LOCKED	0		/* super-blocks &c */
    147   1.31       cgd #define	BQ_LRU		1		/* lru, useful buffers */
    148   1.31       cgd #define	BQ_AGE		2		/* rubbish */
    149   1.31       cgd 
    150   1.31       cgd TAILQ_HEAD(bqueues, buf) bufqueues[BQUEUES];
    151   1.31       cgd int needbuffer;
    152   1.31       cgd 
    153   1.31       cgd /*
    154   1.87        pk  * Buffer queue lock.
    155   1.87        pk  * Take this lock first if also taking some buffer's b_interlock.
    156   1.87        pk  */
    157   1.87        pk struct simplelock bqueue_slock = SIMPLELOCK_INITIALIZER;
    158   1.87        pk 
    159   1.87        pk /*
    160   1.65   thorpej  * Buffer pool for I/O buffers.
    161   1.65   thorpej  */
    162   1.65   thorpej struct pool bufpool;
    163   1.65   thorpej 
    164  1.100        pk /* XXX - somewhat gross.. */
    165  1.100        pk #if MAXBSIZE == 0x2000
    166  1.100        pk #define NMEMPOOLS 4
    167  1.100        pk #elif MAXBSIZE == 0x4000
    168  1.100        pk #define NMEMPOOLS 5
    169  1.100        pk #elif MAXBSIZE == 0x8000
    170  1.100        pk #define NMEMPOOLS 6
    171  1.100        pk #else
    172  1.100        pk #define NMEMPOOLS 7
    173  1.100        pk #endif
    174  1.100        pk 
    175  1.100        pk #define MEMPOOL_INDEX_OFFSET 10		/* smallest pool is 1k */
    176  1.100        pk #if (1 << (NMEMPOOLS + MEMPOOL_INDEX_OFFSET - 1)) != MAXBSIZE
    177  1.100        pk #error update vfs_bio buffer memory parameters
    178  1.100        pk #endif
    179  1.100        pk 
    180  1.100        pk /* Buffer memory pools */
    181  1.101   thorpej static struct pool bmempools[NMEMPOOLS];
    182  1.100        pk 
    183  1.104    atatat struct vm_map *buf_map;
    184  1.100        pk 
    185  1.100        pk /*
    186  1.100        pk  * Buffer memory pool allocator.
    187  1.100        pk  */
    188  1.101   thorpej static void *
    189  1.101   thorpej bufpool_page_alloc(struct pool *pp, int flags)
    190  1.100        pk {
    191  1.111      yamt 
    192  1.100        pk 	return (void *)uvm_km_kmemalloc1(buf_map,
    193  1.111      yamt 	    uvm.kernel_object, MAXBSIZE, MAXBSIZE, UVM_UNKNOWN_OFFSET,
    194  1.111      yamt 	    (flags & PR_WAITOK) ? 0 : UVM_KMF_NOWAIT | UVM_KMF_TRYLOCK);
    195  1.100        pk }
    196  1.100        pk 
    197  1.101   thorpej static void
    198  1.101   thorpej bufpool_page_free(struct pool *pp, void *v)
    199  1.100        pk {
    200  1.103        pk 	uvm_km_free(buf_map, (vaddr_t)v, MAXBSIZE);
    201  1.100        pk }
    202  1.100        pk 
    203  1.101   thorpej static struct pool_allocator bufmempool_allocator = {
    204  1.100        pk 	bufpool_page_alloc, bufpool_page_free, MAXBSIZE,
    205  1.100        pk };
    206  1.100        pk 
    207  1.100        pk /* Buffer memory management variables */
    208  1.100        pk u_long bufmem_valimit;
    209  1.100        pk u_long bufmem_hiwater;
    210  1.100        pk u_long bufmem_lowater;
    211  1.100        pk u_long bufmem;
    212  1.100        pk 
    213  1.100        pk /*
    214  1.100        pk  * MD code can call this to set a hard limit on the amount
    215  1.100        pk  * of virtual memory used by the buffer cache.
    216  1.100        pk  */
    217  1.101   thorpej int
    218  1.101   thorpej buf_setvalimit(vsize_t sz)
    219  1.100        pk {
    220  1.100        pk 
    221  1.100        pk 	/* We need to accommodate at least NMEMPOOLS of MAXBSIZE each */
    222  1.100        pk 	if (sz < NMEMPOOLS * MAXBSIZE)
    223  1.100        pk 		return EINVAL;
    224  1.100        pk 
    225  1.100        pk 	bufmem_valimit = sz;
    226  1.100        pk 	return 0;
    227  1.100        pk }
    228  1.100        pk 
    229  1.100        pk static int buf_trim(void);
    230  1.100        pk 
    231   1.65   thorpej /*
    232   1.87        pk  * bread()/breadn() helper.
    233   1.87        pk  */
    234   1.87        pk static __inline struct buf *bio_doread(struct vnode *, daddr_t, int,
    235   1.87        pk 					struct ucred *, int);
    236   1.87        pk int count_lock_queue(void);
    237   1.87        pk 
    238   1.87        pk /*
    239   1.31       cgd  * Insq/Remq for the buffer free lists.
    240   1.87        pk  * Call with buffer queue locked.
    241   1.31       cgd  */
    242   1.31       cgd #define	binsheadfree(bp, dp)	TAILQ_INSERT_HEAD(dp, bp, b_freelist)
    243   1.31       cgd #define	binstailfree(bp, dp)	TAILQ_INSERT_TAIL(dp, bp, b_freelist)
    244   1.31       cgd 
    245   1.99       dbj #ifdef DEBUG
    246   1.99       dbj int debug_verify_freelist = 0;
    247  1.100        pk static int checkfreelist(struct buf *bp, struct bqueues *dp)
    248   1.99       dbj {
    249  1.100        pk 	struct buf *b;
    250  1.100        pk 	TAILQ_FOREACH(b, dp, b_freelist) {
    251  1.100        pk 		if (b == bp)
    252  1.100        pk 			return 1;
    253  1.100        pk 	}
    254  1.100        pk 	return 0;
    255   1.99       dbj }
    256   1.99       dbj #endif
    257   1.99       dbj 
    258   1.31       cgd void
    259  1.101   thorpej bremfree(struct buf *bp)
    260   1.31       cgd {
    261   1.31       cgd 	struct bqueues *dp = NULL;
    262   1.94      yamt 
    263   1.94      yamt 	LOCK_ASSERT(simple_lock_held(&bqueue_slock));
    264   1.31       cgd 
    265  1.100        pk 	KDASSERT(!debug_verify_freelist ||
    266  1.100        pk 		checkfreelist(bp, &bufqueues[BQ_AGE]) ||
    267  1.100        pk 		checkfreelist(bp, &bufqueues[BQ_LRU]) ||
    268  1.100        pk 		checkfreelist(bp, &bufqueues[BQ_LOCKED]) );
    269   1.99       dbj 
    270   1.31       cgd 	/*
    271   1.31       cgd 	 * We only calculate the head of the freelist when removing
    272   1.31       cgd 	 * the last element of the list as that is the only time that
    273   1.31       cgd 	 * it is needed (e.g. to reset the tail pointer).
    274   1.31       cgd 	 *
    275   1.31       cgd 	 * NB: This makes an assumption about how tailq's are implemented.
    276   1.98       dbj 	 *
    277   1.98       dbj 	 * We break the TAILQ abstraction in order to efficiently remove a
    278   1.98       dbj 	 * buffer from its freelist without having to know exactly which
    279   1.98       dbj 	 * freelist it is on.
    280   1.31       cgd 	 */
    281   1.84      matt 	if (TAILQ_NEXT(bp, b_freelist) == NULL) {
    282   1.31       cgd 		for (dp = bufqueues; dp < &bufqueues[BQUEUES]; dp++)
    283   1.31       cgd 			if (dp->tqh_last == &bp->b_freelist.tqe_next)
    284   1.31       cgd 				break;
    285   1.31       cgd 		if (dp == &bufqueues[BQUEUES])
    286   1.31       cgd 			panic("bremfree: lost tail");
    287   1.31       cgd 	}
    288   1.31       cgd 	TAILQ_REMOVE(dp, bp, b_freelist);
    289   1.31       cgd }
    290   1.31       cgd 
    291  1.101   thorpej u_long
    292  1.101   thorpej buf_memcalc(void)
    293  1.100        pk {
    294  1.100        pk 	u_long n;
    295  1.100        pk 
    296  1.100        pk 	/*
    297  1.100        pk 	 * Determine the upper bound of memory to use for buffers.
    298  1.100        pk 	 *
    299  1.100        pk 	 *	- If bufpages is specified, use that as the number
    300  1.100        pk 	 *	  pages.
    301  1.100        pk 	 *
    302  1.100        pk 	 *	- Otherwise, use bufcache as the percentage of
    303  1.100        pk 	 *	  physical memory.
    304  1.100        pk 	 */
    305  1.100        pk 	if (bufpages != 0) {
    306  1.100        pk 		n = bufpages;
    307  1.100        pk 	} else {
    308  1.100        pk 		if (bufcache < 5) {
    309  1.100        pk 			printf("forcing bufcache %d -> 5", bufcache);
    310  1.100        pk 			bufcache = 5;
    311  1.100        pk 		}
    312  1.100        pk 		if (bufcache > 95) {
    313  1.100        pk 			printf("forcing bufcache %d -> 95", bufcache);
    314  1.100        pk 			bufcache = 95;
    315  1.100        pk 		}
    316  1.100        pk 		n = physmem / 100 * bufcache;
    317  1.100        pk 	}
    318  1.100        pk 
    319  1.100        pk 	n <<= PAGE_SHIFT;
    320  1.100        pk 	if (bufmem_valimit != 0 && n > bufmem_valimit)
    321  1.100        pk 		n = bufmem_valimit;
    322  1.100        pk 
    323  1.100        pk 	return (n);
    324  1.100        pk }
    325  1.100        pk 
    326   1.31       cgd /*
    327   1.31       cgd  * Initialize buffers and hash links for buffers.
    328   1.31       cgd  */
    329   1.31       cgd void
    330  1.101   thorpej bufinit(void)
    331   1.31       cgd {
    332   1.31       cgd 	struct bqueues *dp;
    333  1.100        pk 	int smallmem;
    334  1.100        pk 	u_int i;
    335  1.100        pk 
    336  1.100        pk 	/*
    337  1.100        pk 	 * Initialize buffer cache memory parameters.
    338  1.100        pk 	 */
    339  1.100        pk 	bufmem = 0;
    340  1.100        pk 	bufmem_hiwater = buf_memcalc();
    341  1.114       tls 	/* lowater is approx. 2% of memory (with bufcache=15) */
    342  1.114       tls 	bufmem_lowater = (bufmem_hiwater >> 3);
    343  1.100        pk 	if (bufmem_lowater < 64 * 1024)
    344  1.100        pk 		/* Ensure a reasonable minimum value */
    345  1.100        pk 		bufmem_lowater = 64 * 1024;
    346  1.100        pk 
    347  1.100        pk 	if (bufmem_valimit != 0) {
    348  1.100        pk 		vaddr_t minaddr = 0, maxaddr;
    349  1.100        pk 		buf_map = uvm_km_suballoc(kernel_map, &minaddr, &maxaddr,
    350  1.100        pk 					  bufmem_valimit, VM_MAP_PAGEABLE,
    351  1.100        pk 					  FALSE, 0);
    352  1.100        pk 		if (buf_map == NULL)
    353  1.100        pk 			panic("bufinit: cannot allocate submap");
    354  1.100        pk 	} else
    355  1.100        pk 		buf_map = kernel_map;
    356   1.65   thorpej 
    357   1.65   thorpej 	/*
    358  1.100        pk 	 * Initialize the buffer pools.
    359   1.65   thorpej 	 */
    360   1.79   thorpej 	pool_init(&bufpool, sizeof(struct buf), 0, 0, 0, "bufpl", NULL);
    361   1.31       cgd 
    362  1.100        pk 	/* On "small" machines use small pool page sizes where possible */
    363  1.100        pk 	smallmem = (physmem < atop(16*1024*1024));
    364  1.100        pk 
    365  1.100        pk 	for (i = 0; i < NMEMPOOLS; i++) {
    366  1.100        pk 		struct pool_allocator *pa;
    367  1.100        pk 		struct pool *pp = &bmempools[i];
    368  1.100        pk 		u_int size = 1 << (i + MEMPOOL_INDEX_OFFSET);
    369  1.100        pk 		char *name = malloc(8, M_TEMP, M_WAITOK);
    370  1.100        pk 		snprintf(name, 8, "buf%dk", 1 << i);
    371  1.100        pk 		pa = (size <= PAGE_SIZE && smallmem)
    372  1.100        pk 			? &pool_allocator_nointr
    373  1.100        pk 			: &bufmempool_allocator;
    374  1.107   thorpej 		pool_init(pp, size, 0, 0, PR_IMMEDRELEASE, name, pa);
    375  1.100        pk 		pool_setlowat(pp, 1);
    376  1.100        pk 	}
    377  1.100        pk 
    378  1.100        pk 	/* Initialize the buffer queues */
    379   1.31       cgd 	for (dp = bufqueues; dp < &bufqueues[BQUEUES]; dp++)
    380   1.31       cgd 		TAILQ_INIT(dp);
    381  1.100        pk 
    382  1.100        pk 	/*
    383  1.100        pk 	 * Estimate hash table size based on the amount of memory we
    384  1.100        pk 	 * intend to use for the buffer cache. The average buffer
    385  1.100        pk 	 * size is dependent on our clients (i.e. filesystems).
    386  1.100        pk 	 *
    387  1.100        pk 	 * For now, use an empirical 3K per buffer.
    388  1.100        pk 	 */
    389  1.100        pk 	nbuf = (bufmem_hiwater / 1024) / 3;
    390   1.70        ad 	bufhashtbl = hashinit(nbuf, HASH_LIST, M_CACHE, M_WAITOK, &bufhash);
    391  1.100        pk }
    392  1.100        pk 
    393  1.100        pk static int
    394  1.100        pk buf_lotsfree(void)
    395  1.100        pk {
    396  1.114       tls 	int try, thresh;
    397  1.114       tls 
    398  1.122    simonb 	/* Always allocate if less than the low water mark. */
    399  1.122    simonb 	if (bufmem < bufmem_lowater)
    400  1.114       tls 		return 1;
    401  1.122    simonb 
    402  1.122    simonb 	/* Never allocate if greater than the high water mark. */
    403  1.122    simonb 	if (bufmem > bufmem_hiwater)
    404  1.122    simonb 		return 0;
    405  1.114       tls 
    406  1.115       tls 	/* If there's anything on the AGE list, it should be eaten. */
    407  1.120    simonb 	if (TAILQ_FIRST(&bufqueues[BQ_AGE]) != NULL)
    408  1.115       tls 		return 0;
    409  1.115       tls 
    410  1.122    simonb 	/*
    411  1.122    simonb 	 * The probabily of getting a new allocation is inversely
    412  1.122    simonb 	 * proportional to the current size of the cache, using
    413  1.122    simonb 	 * a granularity of 16 steps.
    414  1.122    simonb 	 */
    415  1.114       tls 	try = random() & 0x0000000fL;
    416  1.114       tls 
    417  1.122    simonb 	/* Don't use "16 * bufmem" here to avoid a 32-bit overflow. */
    418  1.122    simonb 	thresh = bufmem / (bufmem_hiwater / 16);
    419  1.114       tls 
    420  1.121    simonb 	if ((try > thresh) && (uvmexp.free > (2 * uvmexp.freetarg))) {
    421  1.114       tls 		return 1;
    422  1.114       tls 	}
    423  1.114       tls 
    424  1.122    simonb 	/* Otherwise don't allocate. */
    425  1.114       tls 	return 0;
    426  1.100        pk }
    427  1.100        pk 
    428  1.100        pk /*
    429  1.116      yamt  * Return estimate of bytes we think need to be
    430  1.100        pk  * released to help resolve low memory conditions.
    431  1.116      yamt  *
    432  1.116      yamt  * => called at splbio.
    433  1.116      yamt  * => called with bqueue_slock held.
    434  1.100        pk  */
    435  1.100        pk static int
    436  1.100        pk buf_canrelease(void)
    437  1.100        pk {
    438  1.115       tls 	int pagedemand, ninvalid = 0;
    439  1.115       tls 	struct buf *bp;
    440  1.115       tls 
    441  1.116      yamt 	LOCK_ASSERT(simple_lock_held(&bqueue_slock));
    442  1.116      yamt 
    443  1.118       dan 	if (bufmem < bufmem_lowater)
    444  1.118       dan 		return 0;
    445  1.118       dan 
    446  1.115       tls 	TAILQ_FOREACH(bp, &bufqueues[BQ_AGE], b_freelist)
    447  1.115       tls 		ninvalid += bp->b_bufsize;
    448  1.100        pk 
    449  1.115       tls 	pagedemand = uvmexp.freetarg - uvmexp.free;
    450  1.115       tls 	if (pagedemand < 0)
    451  1.115       tls 		return ninvalid;
    452  1.115       tls 	return MAX(ninvalid, MIN(2 * MAXBSIZE,
    453  1.115       tls 	    MIN((bufmem - bufmem_lowater) / 16, pagedemand * PAGE_SIZE)));
    454  1.100        pk }
    455  1.100        pk 
    456  1.100        pk /*
    457  1.100        pk  * Buffer memory allocation helper functions
    458  1.100        pk  */
    459  1.101   thorpej static __inline u_long
    460  1.101   thorpej buf_mempoolidx(u_long size)
    461  1.100        pk {
    462  1.100        pk 	u_int n = 0;
    463  1.100        pk 
    464  1.100        pk 	size -= 1;
    465  1.100        pk 	size >>= MEMPOOL_INDEX_OFFSET;
    466  1.100        pk 	while (size) {
    467  1.100        pk 		size >>= 1;
    468  1.100        pk 		n += 1;
    469  1.100        pk 	}
    470  1.100        pk 	if (n >= NMEMPOOLS)
    471  1.100        pk 		panic("buf mem pool index %d", n);
    472  1.100        pk 	return n;
    473  1.100        pk }
    474  1.100        pk 
    475  1.101   thorpej static __inline u_long
    476  1.101   thorpej buf_roundsize(u_long size)
    477  1.100        pk {
    478  1.100        pk 	/* Round up to nearest power of 2 */
    479  1.100        pk 	return (1 << (buf_mempoolidx(size) + MEMPOOL_INDEX_OFFSET));
    480  1.100        pk }
    481  1.100        pk 
    482  1.101   thorpej static __inline caddr_t
    483  1.101   thorpej buf_malloc(size_t size)
    484  1.100        pk {
    485  1.100        pk 	u_int n = buf_mempoolidx(size);
    486  1.100        pk 	caddr_t addr;
    487  1.100        pk 	int s;
    488  1.100        pk 
    489  1.100        pk 	while (1) {
    490  1.100        pk 		addr = pool_get(&bmempools[n], PR_NOWAIT);
    491  1.100        pk 		if (addr != NULL)
    492  1.100        pk 			break;
    493  1.100        pk 
    494  1.100        pk 		/* No memory, see if we can free some. If so, try again */
    495  1.100        pk 		if (buf_drain(1) > 0)
    496  1.100        pk 			continue;
    497  1.100        pk 
    498  1.100        pk 		/* Wait for buffers to arrive on the LRU queue */
    499  1.100        pk 		s = splbio();
    500  1.100        pk 		simple_lock(&bqueue_slock);
    501  1.100        pk 		needbuffer = 1;
    502  1.121    simonb 		ltsleep(&needbuffer, PNORELOCK | (PRIBIO + 1),
    503  1.100        pk 			"buf_malloc", 0, &bqueue_slock);
    504  1.100        pk 		splx(s);
    505   1.31       cgd 	}
    506  1.100        pk 
    507  1.100        pk 	return addr;
    508  1.100        pk }
    509  1.100        pk 
    510  1.101   thorpej static void
    511  1.101   thorpej buf_mrelease(caddr_t addr, size_t size)
    512  1.100        pk {
    513  1.100        pk 
    514  1.100        pk 	pool_put(&bmempools[buf_mempoolidx(size)], addr);
    515   1.31       cgd }
    516   1.31       cgd 
    517  1.100        pk 
    518   1.40  christos static __inline struct buf *
    519  1.101   thorpej bio_doread(struct vnode *vp, daddr_t blkno, int size, struct ucred *cred,
    520  1.101   thorpej     int async)
    521   1.31       cgd {
    522   1.66  augustss 	struct buf *bp;
    523   1.86   thorpej 	struct lwp *l  = (curlwp != NULL ? curlwp : &lwp0);	/* XXX */
    524   1.86   thorpej 	struct proc *p = l->l_proc;
    525  1.123  christos 	struct mount *mp;
    526   1.31       cgd 
    527   1.34   mycroft 	bp = getblk(vp, blkno, size, 0, 0);
    528   1.31       cgd 
    529   1.86   thorpej #ifdef DIAGNOSTIC
    530   1.86   thorpej 	if (bp == NULL) {
    531   1.86   thorpej 		panic("bio_doread: no such buf");
    532   1.86   thorpej 	}
    533   1.86   thorpej #endif
    534   1.86   thorpej 
    535   1.31       cgd 	/*
    536   1.34   mycroft 	 * If buffer does not have data valid, start a read.
    537   1.31       cgd 	 * Note that if buffer is B_INVAL, getblk() won't return it.
    538   1.87        pk 	 * Therefore, it's valid if its I/O has completed or been delayed.
    539   1.31       cgd 	 */
    540   1.34   mycroft 	if (!ISSET(bp->b_flags, (B_DONE | B_DELWRI))) {
    541   1.73       chs 		/* Start I/O for the buffer. */
    542   1.34   mycroft 		SET(bp->b_flags, B_READ | async);
    543  1.108      yamt 		if (async)
    544  1.108      yamt 			BIO_SETPRIO(bp, BPRIO_TIMELIMITED);
    545  1.108      yamt 		else
    546  1.108      yamt 			BIO_SETPRIO(bp, BPRIO_TIMECRITICAL);
    547  1.112   hannken 		VOP_STRATEGY(vp, bp);
    548   1.31       cgd 
    549   1.34   mycroft 		/* Pay for the read. */
    550   1.49       cgd 		p->p_stats->p_ru.ru_inblock++;
    551   1.34   mycroft 	} else if (async) {
    552   1.34   mycroft 		brelse(bp);
    553   1.31       cgd 	}
    554   1.31       cgd 
    555  1.124      yamt 	if (vp->v_type == VBLK)
    556  1.124      yamt 		mp = vp->v_specmountpoint;
    557  1.124      yamt 	else
    558  1.124      yamt 		mp = vp->v_mount;
    559  1.123  christos 
    560  1.123  christos 	/*
    561  1.123  christos 	 * Collect statistics on synchronous and asynchronous reads.
    562  1.123  christos 	 * Reads from block devices are charged to their associated
    563  1.123  christos 	 * filesystem (if any).
    564  1.123  christos 	 */
    565  1.123  christos 	if (mp != NULL) {
    566  1.123  christos 		if (async == 0)
    567  1.123  christos 			mp->mnt_stat.f_syncreads++;
    568  1.123  christos 		else
    569  1.123  christos 			mp->mnt_stat.f_asyncreads++;
    570  1.123  christos 	}
    571  1.123  christos 
    572   1.34   mycroft 	return (bp);
    573   1.34   mycroft }
    574   1.34   mycroft 
    575   1.34   mycroft /*
    576   1.34   mycroft  * Read a disk block.
    577   1.34   mycroft  * This algorithm described in Bach (p.54).
    578   1.34   mycroft  */
    579   1.40  christos int
    580  1.101   thorpej bread(struct vnode *vp, daddr_t blkno, int size, struct ucred *cred,
    581  1.101   thorpej     struct buf **bpp)
    582   1.34   mycroft {
    583   1.66  augustss 	struct buf *bp;
    584   1.34   mycroft 
    585   1.34   mycroft 	/* Get buffer for block. */
    586   1.34   mycroft 	bp = *bpp = bio_doread(vp, blkno, size, cred, 0);
    587   1.31       cgd 
    588   1.80       chs 	/* Wait for the read to complete, and return result. */
    589   1.31       cgd 	return (biowait(bp));
    590   1.31       cgd }
    591   1.31       cgd 
    592   1.31       cgd /*
    593   1.31       cgd  * Read-ahead multiple disk blocks. The first is sync, the rest async.
    594   1.31       cgd  * Trivial modification to the breada algorithm presented in Bach (p.55).
    595   1.31       cgd  */
    596   1.40  christos int
    597  1.101   thorpej breadn(struct vnode *vp, daddr_t blkno, int size, daddr_t *rablks,
    598  1.101   thorpej     int *rasizes, int nrablks, struct ucred *cred, struct buf **bpp)
    599   1.31       cgd {
    600   1.66  augustss 	struct buf *bp;
    601   1.31       cgd 	int i;
    602   1.31       cgd 
    603   1.34   mycroft 	bp = *bpp = bio_doread(vp, blkno, size, cred, 0);
    604   1.31       cgd 
    605   1.31       cgd 	/*
    606   1.31       cgd 	 * For each of the read-ahead blocks, start a read, if necessary.
    607   1.31       cgd 	 */
    608   1.31       cgd 	for (i = 0; i < nrablks; i++) {
    609   1.31       cgd 		/* If it's in the cache, just go on to next one. */
    610   1.31       cgd 		if (incore(vp, rablks[i]))
    611   1.31       cgd 			continue;
    612   1.31       cgd 
    613   1.31       cgd 		/* Get a buffer for the read-ahead block */
    614   1.34   mycroft 		(void) bio_doread(vp, rablks[i], rasizes[i], cred, B_ASYNC);
    615   1.31       cgd 	}
    616   1.31       cgd 
    617   1.80       chs 	/* Otherwise, we had to start a read for it; wait until it's valid. */
    618   1.31       cgd 	return (biowait(bp));
    619   1.31       cgd }
    620   1.31       cgd 
    621   1.31       cgd /*
    622   1.31       cgd  * Read with single-block read-ahead.  Defined in Bach (p.55), but
    623   1.31       cgd  * implemented as a call to breadn().
    624   1.31       cgd  * XXX for compatibility with old file systems.
    625   1.31       cgd  */
    626   1.40  christos int
    627  1.101   thorpej breada(struct vnode *vp, daddr_t blkno, int size, daddr_t rablkno,
    628  1.101   thorpej     int rabsize, struct ucred *cred, struct buf **bpp)
    629   1.31       cgd {
    630   1.34   mycroft 
    631   1.31       cgd 	return (breadn(vp, blkno, size, &rablkno, &rabsize, 1, cred, bpp));
    632   1.31       cgd }
    633   1.31       cgd 
    634   1.31       cgd /*
    635   1.31       cgd  * Block write.  Described in Bach (p.56)
    636   1.31       cgd  */
    637   1.40  christos int
    638  1.101   thorpej bwrite(struct buf *bp)
    639   1.31       cgd {
    640   1.44        pk 	int rv, sync, wasdelayed, s;
    641   1.86   thorpej 	struct lwp *l  = (curlwp != NULL ? curlwp : &lwp0);	/* XXX */
    642   1.86   thorpej 	struct proc *p = l->l_proc;
    643   1.59      fvdl 	struct vnode *vp;
    644   1.59      fvdl 	struct mount *mp;
    645   1.31       cgd 
    646   1.87        pk 	KASSERT(ISSET(bp->b_flags, B_BUSY));
    647   1.87        pk 
    648   1.76       chs 	vp = bp->b_vp;
    649   1.76       chs 	if (vp != NULL) {
    650   1.76       chs 		if (vp->v_type == VBLK)
    651   1.76       chs 			mp = vp->v_specmountpoint;
    652   1.76       chs 		else
    653   1.76       chs 			mp = vp->v_mount;
    654   1.76       chs 	} else {
    655   1.76       chs 		mp = NULL;
    656   1.76       chs 	}
    657   1.76       chs 
    658   1.38       cgd 	/*
    659   1.38       cgd 	 * Remember buffer type, to switch on it later.  If the write was
    660   1.38       cgd 	 * synchronous, but the file system was mounted with MNT_ASYNC,
    661   1.38       cgd 	 * convert it to a delayed write.
    662   1.38       cgd 	 * XXX note that this relies on delayed tape writes being converted
    663   1.38       cgd 	 * to async, not sync writes (which is safe, but ugly).
    664   1.38       cgd 	 */
    665   1.31       cgd 	sync = !ISSET(bp->b_flags, B_ASYNC);
    666   1.76       chs 	if (sync && mp != NULL && ISSET(mp->mnt_flag, MNT_ASYNC)) {
    667   1.37       cgd 		bdwrite(bp);
    668   1.37       cgd 		return (0);
    669   1.37       cgd 	}
    670   1.46   mycroft 
    671   1.59      fvdl 	/*
    672   1.59      fvdl 	 * Collect statistics on synchronous and asynchronous writes.
    673   1.59      fvdl 	 * Writes to block devices are charged to their associated
    674   1.59      fvdl 	 * filesystem (if any).
    675   1.59      fvdl 	 */
    676   1.76       chs 	if (mp != NULL) {
    677   1.76       chs 		if (sync)
    678   1.76       chs 			mp->mnt_stat.f_syncwrites++;
    679   1.59      fvdl 		else
    680   1.76       chs 			mp->mnt_stat.f_asyncwrites++;
    681   1.59      fvdl 	}
    682   1.59      fvdl 
    683   1.44        pk 	s = splbio();
    684   1.87        pk 	simple_lock(&bp->b_interlock);
    685   1.46   mycroft 
    686   1.97       dbj 	wasdelayed = ISSET(bp->b_flags, B_DELWRI);
    687   1.97       dbj 
    688   1.60      fvdl 	CLR(bp->b_flags, (B_READ | B_DONE | B_ERROR | B_DELWRI));
    689   1.60      fvdl 
    690   1.46   mycroft 	/*
    691   1.46   mycroft 	 * Pay for the I/O operation and make sure the buf is on the correct
    692   1.46   mycroft 	 * vnode queue.
    693   1.46   mycroft 	 */
    694   1.46   mycroft 	if (wasdelayed)
    695   1.46   mycroft 		reassignbuf(bp, bp->b_vp);
    696   1.46   mycroft 	else
    697   1.49       cgd 		p->p_stats->p_ru.ru_oublock++;
    698   1.32   mycroft 
    699   1.31       cgd 	/* Initiate disk write.  Make sure the appropriate party is charged. */
    700   1.87        pk 	V_INCR_NUMOUTPUT(bp->b_vp);
    701   1.87        pk 	simple_unlock(&bp->b_interlock);
    702   1.44        pk 	splx(s);
    703   1.46   mycroft 
    704  1.108      yamt 	if (sync)
    705  1.108      yamt 		BIO_SETPRIO(bp, BPRIO_TIMECRITICAL);
    706  1.108      yamt 	else
    707  1.108      yamt 		BIO_SETPRIO(bp, BPRIO_TIMELIMITED);
    708  1.108      yamt 
    709  1.112   hannken 	VOP_STRATEGY(vp, bp);
    710   1.31       cgd 
    711   1.34   mycroft 	if (sync) {
    712   1.46   mycroft 		/* If I/O was synchronous, wait for it to complete. */
    713   1.31       cgd 		rv = biowait(bp);
    714   1.31       cgd 
    715   1.34   mycroft 		/* Release the buffer. */
    716   1.31       cgd 		brelse(bp);
    717   1.34   mycroft 
    718   1.34   mycroft 		return (rv);
    719   1.34   mycroft 	} else {
    720   1.34   mycroft 		return (0);
    721   1.31       cgd 	}
    722   1.31       cgd }
    723   1.31       cgd 
    724   1.31       cgd int
    725  1.101   thorpej vn_bwrite(void *v)
    726   1.31       cgd {
    727   1.40  christos 	struct vop_bwrite_args *ap = v;
    728   1.34   mycroft 
    729   1.31       cgd 	return (bwrite(ap->a_bp));
    730   1.31       cgd }
    731   1.31       cgd 
    732   1.31       cgd /*
    733   1.31       cgd  * Delayed write.
    734   1.31       cgd  *
    735   1.31       cgd  * The buffer is marked dirty, but is not queued for I/O.
    736   1.31       cgd  * This routine should be used when the buffer is expected
    737   1.31       cgd  * to be modified again soon, typically a small write that
    738   1.31       cgd  * partially fills a buffer.
    739   1.31       cgd  *
    740   1.31       cgd  * NB: magnetic tapes cannot be delayed; they must be
    741   1.31       cgd  * written in the order that the writes are requested.
    742   1.31       cgd  *
    743   1.31       cgd  * Described in Leffler, et al. (pp. 208-213).
    744   1.31       cgd  */
    745   1.31       cgd void
    746  1.101   thorpej bdwrite(struct buf *bp)
    747   1.31       cgd {
    748   1.86   thorpej 	struct lwp *l  = (curlwp != NULL ? curlwp : &lwp0);	/* XXX */
    749   1.86   thorpej 	struct proc *p = l->l_proc;
    750   1.85   gehenna 	const struct bdevsw *bdev;
    751   1.45        pk 	int s;
    752   1.31       cgd 
    753   1.46   mycroft 	/* If this is a tape block, write the block now. */
    754   1.90        pk 	bdev = bdevsw_lookup(bp->b_dev);
    755   1.90        pk 	if (bdev != NULL && bdev->d_type == D_TAPE) {
    756   1.90        pk 		bawrite(bp);
    757   1.90        pk 		return;
    758   1.46   mycroft 	}
    759   1.46   mycroft 
    760   1.31       cgd 	/*
    761   1.31       cgd 	 * If the block hasn't been seen before:
    762   1.31       cgd 	 *	(1) Mark it as having been seen,
    763   1.45        pk 	 *	(2) Charge for the write,
    764   1.45        pk 	 *	(3) Make sure it's on its vnode's correct block list.
    765   1.31       cgd 	 */
    766   1.60      fvdl 	s = splbio();
    767   1.87        pk 	simple_lock(&bp->b_interlock);
    768   1.60      fvdl 
    769   1.97       dbj 	KASSERT(ISSET(bp->b_flags, B_BUSY));
    770   1.97       dbj 
    771   1.31       cgd 	if (!ISSET(bp->b_flags, B_DELWRI)) {
    772   1.31       cgd 		SET(bp->b_flags, B_DELWRI);
    773   1.49       cgd 		p->p_stats->p_ru.ru_oublock++;
    774   1.31       cgd 		reassignbuf(bp, bp->b_vp);
    775   1.31       cgd 	}
    776   1.31       cgd 
    777   1.31       cgd 	/* Otherwise, the "write" is done, so mark and release the buffer. */
    778   1.92      yamt 	CLR(bp->b_flags, B_DONE);
    779   1.87        pk 	simple_unlock(&bp->b_interlock);
    780   1.60      fvdl 	splx(s);
    781   1.60      fvdl 
    782   1.31       cgd 	brelse(bp);
    783   1.31       cgd }
    784   1.31       cgd 
    785   1.31       cgd /*
    786   1.31       cgd  * Asynchronous block write; just an asynchronous bwrite().
    787   1.31       cgd  */
    788   1.31       cgd void
    789  1.101   thorpej bawrite(struct buf *bp)
    790   1.31       cgd {
    791   1.87        pk 	int s;
    792   1.31       cgd 
    793   1.97       dbj 	s = splbio();
    794   1.97       dbj 	simple_lock(&bp->b_interlock);
    795   1.97       dbj 
    796   1.87        pk 	KASSERT(ISSET(bp->b_flags, B_BUSY));
    797   1.87        pk 
    798   1.31       cgd 	SET(bp->b_flags, B_ASYNC);
    799   1.87        pk 	simple_unlock(&bp->b_interlock);
    800   1.87        pk 	splx(s);
    801   1.31       cgd 	VOP_BWRITE(bp);
    802   1.31       cgd }
    803   1.31       cgd 
    804   1.31       cgd /*
    805   1.59      fvdl  * Same as first half of bdwrite, mark buffer dirty, but do not release it.
    806   1.88        pk  * Call at splbio() and with the buffer interlock locked.
    807   1.88        pk  * Note: called only from biodone() through ffs softdep's bioops.io_complete()
    808   1.59      fvdl  */
    809   1.59      fvdl void
    810  1.101   thorpej bdirty(struct buf *bp)
    811   1.59      fvdl {
    812   1.86   thorpej 	struct lwp *l  = (curlwp != NULL ? curlwp : &lwp0);	/* XXX */
    813   1.86   thorpej 	struct proc *p = l->l_proc;
    814   1.59      fvdl 
    815   1.97       dbj 	LOCK_ASSERT(simple_lock_held(&bp->b_interlock));
    816   1.87        pk 	KASSERT(ISSET(bp->b_flags, B_BUSY));
    817   1.61      fvdl 
    818   1.61      fvdl 	CLR(bp->b_flags, B_AGE);
    819   1.60      fvdl 
    820   1.59      fvdl 	if (!ISSET(bp->b_flags, B_DELWRI)) {
    821   1.59      fvdl 		SET(bp->b_flags, B_DELWRI);
    822   1.59      fvdl 		p->p_stats->p_ru.ru_oublock++;
    823   1.59      fvdl 		reassignbuf(bp, bp->b_vp);
    824   1.59      fvdl 	}
    825   1.59      fvdl }
    826   1.59      fvdl 
    827   1.59      fvdl /*
    828   1.31       cgd  * Release a buffer on to the free lists.
    829   1.31       cgd  * Described in Bach (p. 46).
    830   1.31       cgd  */
    831   1.31       cgd void
    832  1.101   thorpej brelse(struct buf *bp)
    833   1.31       cgd {
    834   1.31       cgd 	struct bqueues *bufq;
    835   1.31       cgd 	int s;
    836   1.31       cgd 
    837   1.87        pk 	/* Block disk interrupts. */
    838   1.87        pk 	s = splbio();
    839   1.87        pk 	simple_lock(&bqueue_slock);
    840   1.87        pk 	simple_lock(&bp->b_interlock);
    841   1.97       dbj 
    842   1.97       dbj 	KASSERT(ISSET(bp->b_flags, B_BUSY));
    843   1.97       dbj 	KASSERT(!ISSET(bp->b_flags, B_CALL));
    844   1.87        pk 
    845   1.31       cgd 	/* Wake up any processes waiting for any buffer to become free. */
    846   1.31       cgd 	if (needbuffer) {
    847   1.31       cgd 		needbuffer = 0;
    848   1.31       cgd 		wakeup(&needbuffer);
    849   1.31       cgd 	}
    850   1.31       cgd 
    851   1.31       cgd 	/* Wake up any proceeses waiting for _this_ buffer to become free. */
    852   1.31       cgd 	if (ISSET(bp->b_flags, B_WANTED)) {
    853   1.57   mycroft 		CLR(bp->b_flags, B_WANTED|B_AGE);
    854   1.31       cgd 		wakeup(bp);
    855   1.31       cgd 	}
    856   1.31       cgd 
    857   1.31       cgd 	/*
    858   1.31       cgd 	 * Determine which queue the buffer should be on, then put it there.
    859   1.31       cgd 	 */
    860   1.31       cgd 
    861   1.31       cgd 	/* If it's locked, don't report an error; try again later. */
    862   1.31       cgd 	if (ISSET(bp->b_flags, (B_LOCKED|B_ERROR)) == (B_LOCKED|B_ERROR))
    863   1.31       cgd 		CLR(bp->b_flags, B_ERROR);
    864   1.31       cgd 
    865   1.31       cgd 	/* If it's not cacheable, or an error, mark it invalid. */
    866   1.31       cgd 	if (ISSET(bp->b_flags, (B_NOCACHE|B_ERROR)))
    867   1.31       cgd 		SET(bp->b_flags, B_INVAL);
    868   1.31       cgd 
    869   1.50   mycroft 	if (ISSET(bp->b_flags, B_VFLUSH)) {
    870   1.50   mycroft 		/*
    871   1.50   mycroft 		 * This is a delayed write buffer that was just flushed to
    872   1.50   mycroft 		 * disk.  It is still on the LRU queue.  If it's become
    873   1.50   mycroft 		 * invalid, then we need to move it to a different queue;
    874   1.50   mycroft 		 * otherwise leave it in its current position.
    875   1.50   mycroft 		 */
    876   1.50   mycroft 		CLR(bp->b_flags, B_VFLUSH);
    877   1.99       dbj 		if (!ISSET(bp->b_flags, B_ERROR|B_INVAL|B_LOCKED|B_AGE)) {
    878   1.99       dbj 			KDASSERT(!debug_verify_freelist || checkfreelist(bp, &bufqueues[BQ_LRU]));
    879   1.50   mycroft 			goto already_queued;
    880   1.99       dbj 		} else {
    881   1.50   mycroft 			bremfree(bp);
    882   1.99       dbj 		}
    883   1.50   mycroft 	}
    884   1.99       dbj 
    885   1.99       dbj   KDASSERT(!debug_verify_freelist || !checkfreelist(bp, &bufqueues[BQ_AGE]));
    886   1.99       dbj   KDASSERT(!debug_verify_freelist || !checkfreelist(bp, &bufqueues[BQ_LRU]));
    887   1.99       dbj   KDASSERT(!debug_verify_freelist || !checkfreelist(bp, &bufqueues[BQ_LOCKED]));
    888   1.50   mycroft 
    889   1.31       cgd 	if ((bp->b_bufsize <= 0) || ISSET(bp->b_flags, B_INVAL)) {
    890   1.31       cgd 		/*
    891   1.31       cgd 		 * If it's invalid or empty, dissociate it from its vnode
    892   1.31       cgd 		 * and put on the head of the appropriate queue.
    893   1.31       cgd 		 */
    894   1.59      fvdl 		if (LIST_FIRST(&bp->b_dep) != NULL && bioops.io_deallocate)
    895   1.59      fvdl 			(*bioops.io_deallocate)(bp);
    896   1.59      fvdl 		CLR(bp->b_flags, B_DONE|B_DELWRI);
    897   1.59      fvdl 		if (bp->b_vp) {
    898   1.59      fvdl 			reassignbuf(bp, bp->b_vp);
    899   1.31       cgd 			brelvp(bp);
    900   1.59      fvdl 		}
    901   1.31       cgd 		if (bp->b_bufsize <= 0)
    902   1.31       cgd 			/* no data */
    903  1.100        pk 			goto already_queued;
    904   1.31       cgd 		else
    905   1.31       cgd 			/* invalid data */
    906   1.31       cgd 			bufq = &bufqueues[BQ_AGE];
    907   1.31       cgd 		binsheadfree(bp, bufq);
    908   1.31       cgd 	} else {
    909   1.31       cgd 		/*
    910   1.31       cgd 		 * It has valid data.  Put it on the end of the appropriate
    911   1.31       cgd 		 * queue, so that it'll stick around for as long as possible.
    912   1.67      fvdl 		 * If buf is AGE, but has dependencies, must put it on last
    913   1.67      fvdl 		 * bufqueue to be scanned, ie LRU. This protects against the
    914   1.67      fvdl 		 * livelock where BQ_AGE only has buffers with dependencies,
    915   1.67      fvdl 		 * and we thus never get to the dependent buffers in BQ_LRU.
    916   1.31       cgd 		 */
    917   1.31       cgd 		if (ISSET(bp->b_flags, B_LOCKED))
    918   1.31       cgd 			/* locked in core */
    919   1.31       cgd 			bufq = &bufqueues[BQ_LOCKED];
    920   1.67      fvdl 		else if (!ISSET(bp->b_flags, B_AGE))
    921   1.31       cgd 			/* valid data */
    922   1.31       cgd 			bufq = &bufqueues[BQ_LRU];
    923   1.67      fvdl 		else {
    924   1.67      fvdl 			/* stale but valid data */
    925   1.67      fvdl 			int has_deps;
    926   1.67      fvdl 
    927   1.67      fvdl 			if (LIST_FIRST(&bp->b_dep) != NULL &&
    928   1.67      fvdl 			    bioops.io_countdeps)
    929   1.67      fvdl 				has_deps = (*bioops.io_countdeps)(bp, 0);
    930   1.67      fvdl 			else
    931   1.67      fvdl 				has_deps = 0;
    932   1.67      fvdl 			bufq = has_deps ? &bufqueues[BQ_LRU] :
    933   1.67      fvdl 			    &bufqueues[BQ_AGE];
    934   1.67      fvdl 		}
    935   1.31       cgd 		binstailfree(bp, bufq);
    936   1.31       cgd 	}
    937   1.31       cgd 
    938   1.50   mycroft already_queued:
    939   1.31       cgd 	/* Unlock the buffer. */
    940   1.83   hannken 	CLR(bp->b_flags, B_AGE|B_ASYNC|B_BUSY|B_NOCACHE);
    941   1.73       chs 	SET(bp->b_flags, B_CACHE);
    942   1.31       cgd 
    943   1.31       cgd 	/* Allow disk interrupts. */
    944   1.87        pk 	simple_unlock(&bp->b_interlock);
    945   1.87        pk 	simple_unlock(&bqueue_slock);
    946  1.100        pk 	if (bp->b_bufsize <= 0) {
    947  1.100        pk #ifdef DEBUG
    948  1.100        pk 		memset((char *)bp, 0, sizeof(*bp));
    949  1.100        pk #endif
    950  1.100        pk 		pool_put(&bufpool, bp);
    951  1.100        pk 	}
    952   1.31       cgd 	splx(s);
    953   1.31       cgd }
    954   1.31       cgd 
    955   1.31       cgd /*
    956   1.31       cgd  * Determine if a block is in the cache.
    957   1.31       cgd  * Just look on what would be its hash chain.  If it's there, return
    958   1.31       cgd  * a pointer to it, unless it's marked invalid.  If it's marked invalid,
    959   1.31       cgd  * we normally don't return the buffer, unless the caller explicitly
    960   1.31       cgd  * wants us to.
    961   1.31       cgd  */
    962   1.31       cgd struct buf *
    963  1.101   thorpej incore(struct vnode *vp, daddr_t blkno)
    964   1.31       cgd {
    965   1.31       cgd 	struct buf *bp;
    966   1.31       cgd 
    967   1.31       cgd 	/* Search hash chain */
    968   1.84      matt 	LIST_FOREACH(bp, BUFHASH(vp, blkno), b_hash) {
    969   1.31       cgd 		if (bp->b_lblkno == blkno && bp->b_vp == vp &&
    970   1.31       cgd 		    !ISSET(bp->b_flags, B_INVAL))
    971   1.31       cgd 		return (bp);
    972   1.31       cgd 	}
    973   1.31       cgd 
    974   1.73       chs 	return (NULL);
    975   1.31       cgd }
    976   1.31       cgd 
    977   1.31       cgd /*
    978   1.31       cgd  * Get a block of requested size that is associated with
    979   1.31       cgd  * a given vnode and block offset. If it is found in the
    980   1.31       cgd  * block cache, mark it as having been found, make it busy
    981   1.31       cgd  * and return it. Otherwise, return an empty block of the
    982   1.31       cgd  * correct size. It is up to the caller to insure that the
    983   1.31       cgd  * cached blocks be of the correct size.
    984   1.31       cgd  */
    985   1.31       cgd struct buf *
    986  1.101   thorpej getblk(struct vnode *vp, daddr_t blkno, int size, int slpflag, int slptimeo)
    987   1.31       cgd {
    988   1.31       cgd 	struct buf *bp;
    989   1.31       cgd 	int s, err;
    990  1.100        pk 	int preserve;
    991   1.31       cgd 
    992   1.39       cgd start:
    993   1.87        pk 	s = splbio();
    994   1.87        pk 	simple_lock(&bqueue_slock);
    995   1.73       chs 	bp = incore(vp, blkno);
    996   1.73       chs 	if (bp != NULL) {
    997   1.87        pk 		simple_lock(&bp->b_interlock);
    998   1.31       cgd 		if (ISSET(bp->b_flags, B_BUSY)) {
    999   1.87        pk 			simple_unlock(&bqueue_slock);
   1000   1.73       chs 			if (curproc == uvm.pagedaemon_proc) {
   1001   1.87        pk 				simple_unlock(&bp->b_interlock);
   1002   1.73       chs 				splx(s);
   1003   1.73       chs 				return NULL;
   1004   1.73       chs 			}
   1005   1.31       cgd 			SET(bp->b_flags, B_WANTED);
   1006   1.87        pk 			err = ltsleep(bp, slpflag | (PRIBIO + 1) | PNORELOCK,
   1007   1.87        pk 					"getblk", slptimeo, &bp->b_interlock);
   1008   1.31       cgd 			splx(s);
   1009   1.31       cgd 			if (err)
   1010   1.31       cgd 				return (NULL);
   1011   1.31       cgd 			goto start;
   1012   1.31       cgd 		}
   1013   1.57   mycroft #ifdef DIAGNOSTIC
   1014   1.78       chs 		if (ISSET(bp->b_flags, B_DONE|B_DELWRI) &&
   1015   1.78       chs 		    bp->b_bcount < size && vp->v_type != VBLK)
   1016   1.73       chs 			panic("getblk: block size invariant failed");
   1017   1.57   mycroft #endif
   1018   1.73       chs 		SET(bp->b_flags, B_BUSY);
   1019   1.73       chs 		bremfree(bp);
   1020  1.100        pk 		preserve = 1;
   1021   1.73       chs 	} else {
   1022  1.100        pk 		if ((bp = getnewbuf(slpflag, slptimeo, 0)) == NULL) {
   1023   1.87        pk 			simple_unlock(&bqueue_slock);
   1024   1.87        pk 			splx(s);
   1025   1.31       cgd 			goto start;
   1026   1.87        pk 		}
   1027   1.73       chs 
   1028   1.73       chs 		binshash(bp, BUFHASH(vp, blkno));
   1029   1.64   thorpej 		bp->b_blkno = bp->b_lblkno = bp->b_rawblkno = blkno;
   1030   1.31       cgd 		bgetvp(vp, bp);
   1031  1.100        pk 		preserve = 0;
   1032   1.31       cgd 	}
   1033   1.87        pk 	simple_unlock(&bp->b_interlock);
   1034   1.87        pk 	simple_unlock(&bqueue_slock);
   1035   1.87        pk 	splx(s);
   1036   1.96      yamt 	/*
   1037   1.96      yamt 	 * LFS can't track total size of B_LOCKED buffer (locked_queue_bytes)
   1038   1.96      yamt 	 * if we re-size buffers here.
   1039   1.96      yamt 	 */
   1040   1.96      yamt 	if (ISSET(bp->b_flags, B_LOCKED)) {
   1041   1.96      yamt 		KASSERT(bp->b_bufsize >= size);
   1042   1.96      yamt 	} else {
   1043  1.100        pk 		allocbuf(bp, size, preserve);
   1044   1.96      yamt 	}
   1045  1.108      yamt 	BIO_SETPRIO(bp, BPRIO_DEFAULT);
   1046   1.31       cgd 	return (bp);
   1047   1.31       cgd }
   1048   1.31       cgd 
   1049   1.31       cgd /*
   1050   1.31       cgd  * Get an empty, disassociated buffer of given size.
   1051   1.31       cgd  */
   1052   1.31       cgd struct buf *
   1053  1.101   thorpej geteblk(int size)
   1054   1.31       cgd {
   1055   1.31       cgd 	struct buf *bp;
   1056   1.87        pk 	int s;
   1057   1.31       cgd 
   1058   1.87        pk 	s = splbio();
   1059   1.87        pk 	simple_lock(&bqueue_slock);
   1060  1.100        pk 	while ((bp = getnewbuf(0, 0, 0)) == 0)
   1061   1.31       cgd 		;
   1062   1.87        pk 
   1063   1.31       cgd 	SET(bp->b_flags, B_INVAL);
   1064   1.31       cgd 	binshash(bp, &invalhash);
   1065   1.87        pk 	simple_unlock(&bqueue_slock);
   1066   1.87        pk 	simple_unlock(&bp->b_interlock);
   1067   1.87        pk 	splx(s);
   1068  1.109      yamt 	BIO_SETPRIO(bp, BPRIO_DEFAULT);
   1069  1.100        pk 	allocbuf(bp, size, 0);
   1070   1.31       cgd 	return (bp);
   1071   1.31       cgd }
   1072   1.31       cgd 
   1073   1.31       cgd /*
   1074   1.31       cgd  * Expand or contract the actual memory allocated to a buffer.
   1075   1.31       cgd  *
   1076   1.31       cgd  * If the buffer shrinks, data is lost, so it's up to the
   1077   1.31       cgd  * caller to have written it out *first*; this routine will not
   1078   1.31       cgd  * start a write.  If the buffer grows, it's the callers
   1079   1.31       cgd  * responsibility to fill out the buffer's additional contents.
   1080   1.31       cgd  */
   1081   1.40  christos void
   1082  1.101   thorpej allocbuf(struct buf *bp, int size, int preserve)
   1083   1.31       cgd {
   1084  1.100        pk 	vsize_t oldsize, desired_size;
   1085  1.100        pk 	caddr_t addr;
   1086  1.100        pk 	int s, delta;
   1087   1.31       cgd 
   1088  1.100        pk 	desired_size = buf_roundsize(size);
   1089   1.31       cgd 	if (desired_size > MAXBSIZE)
   1090  1.100        pk 		printf("allocbuf: buffer larger than MAXBSIZE requested");
   1091   1.31       cgd 
   1092  1.100        pk 	bp->b_bcount = size;
   1093  1.100        pk 
   1094  1.100        pk 	oldsize = bp->b_bufsize;
   1095  1.100        pk 	if (oldsize == desired_size)
   1096  1.100        pk 		return;
   1097   1.31       cgd 
   1098   1.31       cgd 	/*
   1099  1.100        pk 	 * If we want a buffer of a different size, re-allocate the
   1100  1.100        pk 	 * buffer's memory; copy old content only if needed.
   1101   1.31       cgd 	 */
   1102  1.100        pk 	addr = buf_malloc(desired_size);
   1103  1.100        pk 	if (preserve)
   1104  1.100        pk 		memcpy(addr, bp->b_data, MIN(oldsize,desired_size));
   1105  1.100        pk 	if (bp->b_data != NULL)
   1106  1.100        pk 		buf_mrelease(bp->b_data, oldsize);
   1107  1.100        pk 	bp->b_data = addr;
   1108  1.100        pk 	bp->b_bufsize = desired_size;
   1109   1.31       cgd 
   1110   1.31       cgd 	/*
   1111  1.100        pk 	 * Update overall buffer memory counter (protected by bqueue_slock)
   1112   1.31       cgd 	 */
   1113  1.100        pk 	delta = (long)desired_size - (long)oldsize;
   1114  1.100        pk 
   1115  1.100        pk 	s = splbio();
   1116  1.100        pk 	simple_lock(&bqueue_slock);
   1117  1.100        pk 	if ((bufmem += delta) > bufmem_hiwater) {
   1118  1.100        pk 		/*
   1119  1.100        pk 		 * Need to trim overall memory usage.
   1120  1.100        pk 		 */
   1121  1.100        pk 		while (buf_canrelease()) {
   1122  1.100        pk 			if (buf_trim() == 0)
   1123  1.100        pk 				break;
   1124   1.31       cgd 		}
   1125   1.31       cgd 	}
   1126   1.31       cgd 
   1127  1.100        pk 	simple_unlock(&bqueue_slock);
   1128  1.100        pk 	splx(s);
   1129   1.31       cgd }
   1130   1.31       cgd 
   1131   1.31       cgd /*
   1132   1.31       cgd  * Find a buffer which is available for use.
   1133   1.31       cgd  * Select something from a free list.
   1134   1.31       cgd  * Preference is to AGE list, then LRU list.
   1135   1.87        pk  *
   1136  1.100        pk  * Called at splbio and with buffer queues locked.
   1137   1.87        pk  * Return buffer locked.
   1138   1.31       cgd  */
   1139   1.31       cgd struct buf *
   1140  1.101   thorpej getnewbuf(int slpflag, int slptimeo, int from_bufq)
   1141   1.31       cgd {
   1142   1.66  augustss 	struct buf *bp;
   1143   1.31       cgd 
   1144   1.31       cgd start:
   1145   1.87        pk 	LOCK_ASSERT(simple_lock_held(&bqueue_slock));
   1146   1.87        pk 
   1147  1.100        pk 	/*
   1148  1.100        pk 	 * Get a new buffer from the pool; but use NOWAIT because
   1149  1.100        pk 	 * we have the buffer queues locked.
   1150  1.100        pk 	 */
   1151  1.100        pk 	if (buf_lotsfree() && !from_bufq &&
   1152  1.100        pk 	    (bp = pool_get(&bufpool, PR_NOWAIT)) != NULL) {
   1153  1.100        pk 		memset((char *)bp, 0, sizeof(*bp));
   1154  1.100        pk 		BUF_INIT(bp);
   1155  1.100        pk 		bp->b_dev = NODEV;
   1156  1.100        pk 		bp->b_vnbufs.le_next = NOLIST;
   1157  1.100        pk 		bp->b_flags = B_BUSY;
   1158  1.102        pk 		simple_lock(&bp->b_interlock);
   1159  1.100        pk 		return (bp);
   1160  1.100        pk 	}
   1161  1.100        pk 
   1162   1.84      matt 	if ((bp = TAILQ_FIRST(&bufqueues[BQ_AGE])) != NULL ||
   1163   1.84      matt 	    (bp = TAILQ_FIRST(&bufqueues[BQ_LRU])) != NULL) {
   1164   1.87        pk 		simple_lock(&bp->b_interlock);
   1165   1.31       cgd 		bremfree(bp);
   1166   1.31       cgd 	} else {
   1167   1.31       cgd 		/* wait for a free buffer of any kind */
   1168   1.31       cgd 		needbuffer = 1;
   1169  1.121    simonb 		ltsleep(&needbuffer, slpflag|(PRIBIO + 1),
   1170   1.87        pk 			"getnewbuf", slptimeo, &bqueue_slock);
   1171   1.73       chs 		return (NULL);
   1172   1.31       cgd 	}
   1173   1.31       cgd 
   1174  1.100        pk #ifdef DIAGNOSTIC
   1175  1.100        pk 	if (bp->b_bufsize <= 0)
   1176  1.100        pk 		panic("buffer %p: on queue but empty", bp);
   1177  1.100        pk #endif
   1178  1.100        pk 
   1179   1.50   mycroft 	if (ISSET(bp->b_flags, B_VFLUSH)) {
   1180   1.50   mycroft 		/*
   1181   1.50   mycroft 		 * This is a delayed write buffer being flushed to disk.  Make
   1182   1.50   mycroft 		 * sure it gets aged out of the queue when it's finished, and
   1183   1.50   mycroft 		 * leave it off the LRU queue.
   1184   1.50   mycroft 		 */
   1185   1.50   mycroft 		CLR(bp->b_flags, B_VFLUSH);
   1186   1.50   mycroft 		SET(bp->b_flags, B_AGE);
   1187   1.87        pk 		simple_unlock(&bp->b_interlock);
   1188   1.50   mycroft 		goto start;
   1189   1.50   mycroft 	}
   1190   1.50   mycroft 
   1191   1.31       cgd 	/* Buffer is no longer on free lists. */
   1192   1.31       cgd 	SET(bp->b_flags, B_BUSY);
   1193   1.31       cgd 
   1194   1.75       chs 	/*
   1195   1.75       chs 	 * If buffer was a delayed write, start it and return NULL
   1196   1.75       chs 	 * (since we might sleep while starting the write).
   1197   1.75       chs 	 */
   1198   1.31       cgd 	if (ISSET(bp->b_flags, B_DELWRI)) {
   1199   1.50   mycroft 		/*
   1200   1.50   mycroft 		 * This buffer has gone through the LRU, so make sure it gets
   1201   1.50   mycroft 		 * reused ASAP.
   1202   1.50   mycroft 		 */
   1203   1.50   mycroft 		SET(bp->b_flags, B_AGE);
   1204   1.87        pk 		simple_unlock(&bp->b_interlock);
   1205   1.89        pk 		simple_unlock(&bqueue_slock);
   1206   1.50   mycroft 		bawrite(bp);
   1207   1.89        pk 		simple_lock(&bqueue_slock);
   1208   1.75       chs 		return (NULL);
   1209   1.31       cgd 	}
   1210   1.31       cgd 
   1211   1.31       cgd 	/* disassociate us from our vnode, if we had one... */
   1212   1.31       cgd 	if (bp->b_vp)
   1213   1.31       cgd 		brelvp(bp);
   1214   1.31       cgd 
   1215   1.59      fvdl 	if (LIST_FIRST(&bp->b_dep) != NULL && bioops.io_deallocate)
   1216   1.59      fvdl 		(*bioops.io_deallocate)(bp);
   1217   1.59      fvdl 
   1218   1.31       cgd 	/* clear out various other fields */
   1219   1.31       cgd 	bp->b_flags = B_BUSY;
   1220   1.31       cgd 	bp->b_dev = NODEV;
   1221   1.64   thorpej 	bp->b_blkno = bp->b_lblkno = bp->b_rawblkno = 0;
   1222   1.31       cgd 	bp->b_iodone = 0;
   1223   1.31       cgd 	bp->b_error = 0;
   1224   1.31       cgd 	bp->b_resid = 0;
   1225   1.31       cgd 	bp->b_bcount = 0;
   1226   1.31       cgd 
   1227   1.34   mycroft 	bremhash(bp);
   1228   1.31       cgd 	return (bp);
   1229   1.31       cgd }
   1230   1.31       cgd 
   1231   1.31       cgd /*
   1232  1.100        pk  * Attempt to free an aged buffer off the queues.
   1233  1.100        pk  * Called at splbio and with queue lock held.
   1234  1.100        pk  * Returns the amount of buffer memory freed.
   1235  1.100        pk  */
   1236  1.101   thorpej int
   1237  1.101   thorpej buf_trim(void)
   1238  1.100        pk {
   1239  1.100        pk 	struct buf *bp;
   1240  1.100        pk 	long size = 0;
   1241  1.100        pk 	int wanted;
   1242  1.100        pk 
   1243  1.100        pk 	/* Instruct getnewbuf() to get buffers off the queues */
   1244  1.101   thorpej 	if ((bp = getnewbuf(PCATCH, 1, 1)) == NULL)
   1245  1.100        pk 		return 0;
   1246  1.100        pk 
   1247  1.100        pk 	wanted = ISSET(bp->b_flags, B_WANTED);
   1248  1.100        pk 	simple_unlock(&bp->b_interlock);
   1249  1.100        pk 	if (wanted) {
   1250  1.100        pk 		printf("buftrim: got WANTED buffer\n");
   1251  1.100        pk 		SET(bp->b_flags, B_INVAL);
   1252  1.100        pk 		binshash(bp, &invalhash);
   1253  1.100        pk 		simple_unlock(&bqueue_slock);
   1254  1.100        pk 		goto out;
   1255  1.100        pk 	}
   1256  1.100        pk 	size = bp->b_bufsize;
   1257  1.100        pk 	bufmem -= size;
   1258  1.100        pk 	simple_unlock(&bqueue_slock);
   1259  1.100        pk 	if (size > 0) {
   1260  1.100        pk 		buf_mrelease(bp->b_data, size);
   1261  1.100        pk 		bp->b_bcount = bp->b_bufsize = 0;
   1262  1.100        pk 	}
   1263  1.100        pk 
   1264  1.100        pk out:
   1265  1.100        pk 	/* brelse() will return the buffer to the global buffer pool */
   1266  1.100        pk 	brelse(bp);
   1267  1.100        pk 	simple_lock(&bqueue_slock);
   1268  1.100        pk 	return size;
   1269  1.100        pk }
   1270  1.100        pk 
   1271  1.101   thorpej int
   1272  1.101   thorpej buf_drain(int n)
   1273  1.100        pk {
   1274  1.100        pk 	int s, size = 0;
   1275  1.100        pk 
   1276  1.116      yamt 	s = splbio();
   1277  1.116      yamt 	simple_lock(&bqueue_slock);
   1278  1.116      yamt 
   1279  1.100        pk 	/* If not asked for a specific amount, make our own estimate */
   1280  1.100        pk 	if (n == 0)
   1281  1.100        pk 		n = buf_canrelease();
   1282  1.100        pk 
   1283  1.114       tls 	while (size < n && bufmem > bufmem_lowater)
   1284  1.100        pk 		size += buf_trim();
   1285  1.114       tls 
   1286  1.100        pk 	simple_unlock(&bqueue_slock);
   1287  1.100        pk 	splx(s);
   1288  1.100        pk 	return size;
   1289  1.100        pk }
   1290  1.100        pk 
   1291  1.100        pk /*
   1292   1.31       cgd  * Wait for operations on the buffer to complete.
   1293   1.31       cgd  * When they do, extract and return the I/O's error value.
   1294   1.31       cgd  */
   1295   1.31       cgd int
   1296  1.101   thorpej biowait(struct buf *bp)
   1297   1.31       cgd {
   1298   1.87        pk 	int s, error;
   1299   1.59      fvdl 
   1300   1.31       cgd 	s = splbio();
   1301   1.87        pk 	simple_lock(&bp->b_interlock);
   1302   1.80       chs 	while (!ISSET(bp->b_flags, B_DONE | B_DELWRI))
   1303   1.87        pk 		ltsleep(bp, PRIBIO + 1, "biowait", 0, &bp->b_interlock);
   1304   1.31       cgd 
   1305   1.31       cgd 	/* check for interruption of I/O (e.g. via NFS), then errors. */
   1306   1.31       cgd 	if (ISSET(bp->b_flags, B_EINTR)) {
   1307   1.31       cgd 		CLR(bp->b_flags, B_EINTR);
   1308   1.87        pk 		error = EINTR;
   1309   1.31       cgd 	} else if (ISSET(bp->b_flags, B_ERROR))
   1310   1.87        pk 		error = bp->b_error ? bp->b_error : EIO;
   1311   1.31       cgd 	else
   1312   1.87        pk 		error = 0;
   1313   1.87        pk 
   1314   1.87        pk 	simple_unlock(&bp->b_interlock);
   1315   1.87        pk 	splx(s);
   1316   1.87        pk 	return (error);
   1317   1.31       cgd }
   1318   1.31       cgd 
   1319   1.31       cgd /*
   1320   1.31       cgd  * Mark I/O complete on a buffer.
   1321   1.31       cgd  *
   1322   1.31       cgd  * If a callback has been requested, e.g. the pageout
   1323   1.31       cgd  * daemon, do so. Otherwise, awaken waiting processes.
   1324   1.31       cgd  *
   1325   1.31       cgd  * [ Leffler, et al., says on p.247:
   1326   1.31       cgd  *	"This routine wakes up the blocked process, frees the buffer
   1327   1.31       cgd  *	for an asynchronous write, or, for a request by the pagedaemon
   1328   1.31       cgd  *	process, invokes a procedure specified in the buffer structure" ]
   1329   1.31       cgd  *
   1330   1.31       cgd  * In real life, the pagedaemon (or other system processes) wants
   1331   1.31       cgd  * to do async stuff to, and doesn't want the buffer brelse()'d.
   1332   1.31       cgd  * (for swap pager, that puts swap buffers on the free lists (!!!),
   1333   1.31       cgd  * for the vn device, that puts malloc'd buffers on the free lists!)
   1334   1.31       cgd  */
   1335   1.31       cgd void
   1336  1.101   thorpej biodone(struct buf *bp)
   1337   1.31       cgd {
   1338   1.60      fvdl 	int s = splbio();
   1339   1.60      fvdl 
   1340   1.87        pk 	simple_lock(&bp->b_interlock);
   1341   1.31       cgd 	if (ISSET(bp->b_flags, B_DONE))
   1342   1.31       cgd 		panic("biodone already");
   1343   1.31       cgd 	SET(bp->b_flags, B_DONE);		/* note that it's done */
   1344  1.108      yamt 	BIO_SETPRIO(bp, BPRIO_DEFAULT);
   1345   1.31       cgd 
   1346   1.59      fvdl 	if (LIST_FIRST(&bp->b_dep) != NULL && bioops.io_complete)
   1347   1.59      fvdl 		(*bioops.io_complete)(bp);
   1348   1.59      fvdl 
   1349   1.31       cgd 	if (!ISSET(bp->b_flags, B_READ))	/* wake up reader */
   1350   1.31       cgd 		vwakeup(bp);
   1351   1.31       cgd 
   1352   1.87        pk 	/*
   1353   1.87        pk 	 * If necessary, call out.  Unlock the buffer before calling
   1354   1.87        pk 	 * iodone() as the buffer isn't valid any more when it return.
   1355   1.87        pk 	 */
   1356   1.87        pk 	if (ISSET(bp->b_flags, B_CALL)) {
   1357   1.31       cgd 		CLR(bp->b_flags, B_CALL);	/* but note callout done */
   1358   1.87        pk 		simple_unlock(&bp->b_interlock);
   1359   1.31       cgd 		(*bp->b_iodone)(bp);
   1360   1.59      fvdl 	} else {
   1361   1.87        pk 		if (ISSET(bp->b_flags, B_ASYNC)) {	/* if async, release */
   1362   1.87        pk 			simple_unlock(&bp->b_interlock);
   1363   1.59      fvdl 			brelse(bp);
   1364   1.87        pk 		} else {			/* or just wakeup the buffer */
   1365   1.59      fvdl 			CLR(bp->b_flags, B_WANTED);
   1366   1.59      fvdl 			wakeup(bp);
   1367   1.87        pk 			simple_unlock(&bp->b_interlock);
   1368   1.59      fvdl 		}
   1369   1.31       cgd 	}
   1370   1.60      fvdl 
   1371   1.60      fvdl 	splx(s);
   1372   1.31       cgd }
   1373   1.31       cgd 
   1374   1.31       cgd /*
   1375   1.31       cgd  * Return a count of buffers on the "locked" queue.
   1376   1.31       cgd  */
   1377   1.31       cgd int
   1378  1.101   thorpej count_lock_queue(void)
   1379   1.31       cgd {
   1380   1.66  augustss 	struct buf *bp;
   1381   1.66  augustss 	int n = 0;
   1382   1.31       cgd 
   1383   1.87        pk 	simple_lock(&bqueue_slock);
   1384   1.84      matt 	TAILQ_FOREACH(bp, &bufqueues[BQ_LOCKED], b_freelist)
   1385   1.31       cgd 		n++;
   1386   1.87        pk 	simple_unlock(&bqueue_slock);
   1387   1.31       cgd 	return (n);
   1388   1.31       cgd }
   1389   1.31       cgd 
   1390  1.100        pk /*
   1391  1.100        pk  * Wait for all buffers to complete I/O
   1392  1.100        pk  * Return the number of "stuck" buffers.
   1393  1.100        pk  */
   1394  1.100        pk int
   1395  1.100        pk buf_syncwait(void)
   1396  1.100        pk {
   1397  1.100        pk 	struct buf *bp;
   1398  1.100        pk 	int iter, nbusy, nbusy_prev = 0, dcount, s, ihash;
   1399  1.100        pk 
   1400  1.100        pk 	dcount = 10000;
   1401  1.100        pk 	for (iter = 0; iter < 20;) {
   1402  1.100        pk 		s = splbio();
   1403  1.100        pk 		simple_lock(&bqueue_slock);
   1404  1.100        pk 		nbusy = 0;
   1405  1.100        pk 		for (ihash = 0; ihash < bufhash+1; ihash++) {
   1406  1.100        pk 		    LIST_FOREACH(bp, &bufhashtbl[ihash], b_hash) {
   1407  1.100        pk 			if ((bp->b_flags & (B_BUSY|B_INVAL|B_READ)) == B_BUSY)
   1408  1.100        pk 				nbusy++;
   1409  1.100        pk 			/*
   1410  1.100        pk 			 * With soft updates, some buffers that are
   1411  1.100        pk 			 * written will be remarked as dirty until other
   1412  1.100        pk 			 * buffers are written.
   1413  1.100        pk 			 */
   1414  1.100        pk 			if (bp->b_vp && bp->b_vp->v_mount
   1415  1.100        pk 			    && (bp->b_vp->v_mount->mnt_flag & MNT_SOFTDEP)
   1416  1.100        pk 			    && (bp->b_flags & B_DELWRI)) {
   1417  1.100        pk 				simple_lock(&bp->b_interlock);
   1418  1.100        pk 				bremfree(bp);
   1419  1.100        pk 				bp->b_flags |= B_BUSY;
   1420  1.100        pk 				nbusy++;
   1421  1.100        pk 				simple_unlock(&bp->b_interlock);
   1422  1.100        pk 				simple_unlock(&bqueue_slock);
   1423  1.100        pk 				bawrite(bp);
   1424  1.100        pk 				if (dcount-- <= 0) {
   1425  1.100        pk 					printf("softdep ");
   1426  1.100        pk 					goto fail;
   1427  1.100        pk 				}
   1428  1.100        pk 				simple_lock(&bqueue_slock);
   1429  1.100        pk 			}
   1430  1.100        pk 		    }
   1431  1.100        pk 		}
   1432  1.100        pk 
   1433  1.100        pk 		simple_unlock(&bqueue_slock);
   1434  1.100        pk 		splx(s);
   1435  1.100        pk 
   1436  1.100        pk 		if (nbusy == 0)
   1437  1.100        pk 			break;
   1438  1.100        pk 		if (nbusy_prev == 0)
   1439  1.100        pk 			nbusy_prev = nbusy;
   1440  1.100        pk 		printf("%d ", nbusy);
   1441  1.100        pk 		tsleep(&nbusy, PRIBIO, "bflush",
   1442  1.100        pk 		    (iter == 0) ? 1 : hz / 25 * iter);
   1443  1.100        pk 		if (nbusy >= nbusy_prev) /* we didn't flush anything */
   1444  1.100        pk 			iter++;
   1445  1.100        pk 		else
   1446  1.100        pk 			nbusy_prev = nbusy;
   1447  1.100        pk 	}
   1448  1.100        pk 
   1449  1.100        pk 	if (nbusy) {
   1450  1.100        pk fail:;
   1451  1.100        pk #if defined(DEBUG) || defined(DEBUG_HALT_BUSY)
   1452  1.100        pk 		printf("giving up\nPrinting vnodes for busy buffers\n");
   1453  1.100        pk 		for (ihash = 0; ihash < bufhash+1; ihash++) {
   1454  1.100        pk 		    LIST_FOREACH(bp, &bufhashtbl[ihash], b_hash) {
   1455  1.100        pk 			if ((bp->b_flags & (B_BUSY|B_INVAL|B_READ)) == B_BUSY)
   1456  1.100        pk 				vprint(NULL, bp->b_vp);
   1457  1.100        pk 		    }
   1458  1.100        pk 		}
   1459  1.100        pk #endif
   1460  1.100        pk 	}
   1461  1.100        pk 
   1462  1.100        pk 	return nbusy;
   1463  1.100        pk }
   1464  1.100        pk 
   1465  1.117    atatat static void
   1466  1.117    atatat sysctl_fillbuf(struct buf *i, struct buf_sysctl *o)
   1467  1.117    atatat {
   1468  1.117    atatat 
   1469  1.117    atatat 	o->b_flags = i->b_flags;
   1470  1.117    atatat 	o->b_error = i->b_error;
   1471  1.117    atatat 	o->b_prio = i->b_prio;
   1472  1.117    atatat 	o->b_dev = i->b_dev;
   1473  1.117    atatat 	o->b_bufsize = i->b_bufsize;
   1474  1.117    atatat 	o->b_bcount = i->b_bcount;
   1475  1.117    atatat 	o->b_resid = i->b_resid;
   1476  1.117    atatat 	o->b_addr = PTRTOUINT64(i->b_un.b_addr);
   1477  1.117    atatat 	o->b_blkno = i->b_blkno;
   1478  1.117    atatat 	o->b_rawblkno = i->b_rawblkno;
   1479  1.117    atatat 	o->b_iodone = PTRTOUINT64(i->b_iodone);
   1480  1.117    atatat 	o->b_proc = PTRTOUINT64(i->b_proc);
   1481  1.117    atatat 	o->b_vp = PTRTOUINT64(i->b_vp);
   1482  1.117    atatat 	o->b_saveaddr = PTRTOUINT64(i->b_saveaddr);
   1483  1.117    atatat 	o->b_lblkno = i->b_lblkno;
   1484  1.117    atatat }
   1485  1.117    atatat 
   1486  1.100        pk #define KERN_BUFSLOP 20
   1487  1.100        pk static int
   1488  1.100        pk sysctl_dobuf(SYSCTLFN_ARGS)
   1489  1.100        pk {
   1490  1.100        pk 	struct buf *bp;
   1491  1.117    atatat 	struct buf_sysctl bs;
   1492  1.100        pk 	char *dp;
   1493  1.117    atatat 	u_int i, op, arg;
   1494  1.117    atatat 	size_t len, needed, elem_size, out_size;
   1495  1.117    atatat 	int error, s, elem_count;
   1496  1.117    atatat 
   1497  1.117    atatat 	if (namelen == 1 && name[0] == CTL_QUERY)
   1498  1.117    atatat 		return (sysctl_query(SYSCTLFN_CALL(rnode)));
   1499  1.117    atatat 
   1500  1.117    atatat 	if (namelen != 4)
   1501  1.117    atatat 		return (EINVAL);
   1502  1.100        pk 
   1503  1.100        pk 	dp = oldp;
   1504  1.117    atatat 	len = (oldp != NULL) ? *oldlenp : 0;
   1505  1.117    atatat 	op = name[0];
   1506  1.117    atatat 	arg = name[1];
   1507  1.117    atatat 	elem_size = name[2];
   1508  1.117    atatat 	elem_count = name[3];
   1509  1.117    atatat 	out_size = MIN(sizeof(bs), elem_size);
   1510  1.117    atatat 
   1511  1.117    atatat 	/*
   1512  1.117    atatat 	 * at the moment, these are just "placeholders" to make the
   1513  1.117    atatat 	 * API for retrieving kern.buf data more extensible in the
   1514  1.117    atatat 	 * future.
   1515  1.117    atatat 	 *
   1516  1.117    atatat 	 * XXX kern.buf currently has "netbsd32" issues.  hopefully
   1517  1.117    atatat 	 * these will be resolved at a later point.
   1518  1.117    atatat 	 */
   1519  1.117    atatat 	if (op != KERN_BUF_ALL || arg != KERN_BUF_ALL ||
   1520  1.117    atatat 	    elem_size < 1 || elem_count < 0)
   1521  1.117    atatat 		return (EINVAL);
   1522  1.117    atatat 
   1523  1.100        pk 	error = 0;
   1524  1.100        pk 	needed = 0;
   1525  1.100        pk 	s = splbio();
   1526  1.100        pk 	simple_lock(&bqueue_slock);
   1527  1.100        pk 	for (i = 0; i < BQUEUES; i++) {
   1528  1.100        pk 		TAILQ_FOREACH(bp, &bufqueues[i], b_freelist) {
   1529  1.117    atatat 			if (len >= elem_size && elem_count > 0) {
   1530  1.117    atatat 				sysctl_fillbuf(bp, &bs);
   1531  1.117    atatat 				error = copyout(&bs, dp, out_size);
   1532  1.100        pk 				if (error)
   1533  1.100        pk 					goto cleanup;
   1534  1.100        pk 				dp += elem_size;
   1535  1.100        pk 				len -= elem_size;
   1536  1.100        pk 			}
   1537  1.117    atatat 			if (elem_count > 0) {
   1538  1.117    atatat 				needed += elem_size;
   1539  1.117    atatat 				if (elem_count != INT_MAX)
   1540  1.117    atatat 					elem_count--;
   1541  1.117    atatat 			}
   1542  1.100        pk 		}
   1543  1.100        pk 	}
   1544  1.100        pk cleanup:
   1545  1.100        pk 	simple_unlock(&bqueue_slock);
   1546  1.100        pk 	splx(s);
   1547  1.100        pk 
   1548  1.117    atatat 	*oldlenp = needed;
   1549  1.117    atatat 	if (oldp == NULL)
   1550  1.117    atatat 		*oldlenp += KERN_BUFSLOP * sizeof(struct buf);
   1551  1.100        pk 
   1552  1.100        pk 	return (error);
   1553  1.100        pk }
   1554  1.100        pk 
   1555  1.100        pk static int
   1556  1.100        pk sysctl_bufvm_update(SYSCTLFN_ARGS)
   1557  1.100        pk {
   1558  1.100        pk 	int t, error;
   1559  1.100        pk 	struct sysctlnode node;
   1560  1.100        pk 
   1561  1.100        pk 	node = *rnode;
   1562  1.100        pk 	node.sysctl_data = &t;
   1563  1.100        pk 	t = *(int*)rnode->sysctl_data;
   1564  1.100        pk 	error = sysctl_lookup(SYSCTLFN_CALL(&node));
   1565  1.100        pk 	if (error || newp == NULL)
   1566  1.100        pk 		return (error);
   1567  1.100        pk 
   1568  1.117    atatat 	if (rnode->sysctl_data == &bufcache) {
   1569  1.100        pk 		if (t < 0 || t > 100)
   1570  1.100        pk 			return (EINVAL);
   1571  1.100        pk 		bufcache = t;
   1572  1.100        pk 		bufmem_hiwater = buf_memcalc();
   1573  1.114       tls 		bufmem_lowater = (bufmem_hiwater >> 3);
   1574  1.114       tls 		if (bufmem_lowater < 64 * 1024)
   1575  1.114       tls 			/* Ensure a reasonable minimum value */
   1576  1.114       tls 			bufmem_lowater = 64 * 1024;
   1577  1.114       tls 
   1578  1.117    atatat 	} else if (rnode->sysctl_data == &bufmem_lowater) {
   1579  1.100        pk 		bufmem_lowater = t;
   1580  1.117    atatat 	} else if (rnode->sysctl_data == &bufmem_hiwater) {
   1581  1.100        pk 		bufmem_hiwater = t;
   1582  1.100        pk 	} else
   1583  1.100        pk 		return (EINVAL);
   1584  1.100        pk 
   1585  1.100        pk 	/* Drain until below new high water mark */
   1586  1.100        pk 	while ((t = bufmem - bufmem_hiwater) >= 0) {
   1587  1.100        pk 		if (buf_drain(t / (2*1024)) <= 0)
   1588  1.100        pk 			break;
   1589  1.100        pk 	}
   1590  1.100        pk 
   1591  1.100        pk 	return 0;
   1592  1.100        pk }
   1593  1.100        pk 
   1594  1.100        pk SYSCTL_SETUP(sysctl_kern_buf_setup, "sysctl kern.buf subtree setup")
   1595  1.100        pk {
   1596  1.100        pk 
   1597  1.119    atatat 	sysctl_createv(clog, 0, NULL, NULL,
   1598  1.119    atatat 		       CTLFLAG_PERMANENT,
   1599  1.104    atatat 		       CTLTYPE_NODE, "kern", NULL,
   1600  1.104    atatat 		       NULL, 0, NULL, 0,
   1601  1.104    atatat 		       CTL_KERN, CTL_EOL);
   1602  1.119    atatat 	sysctl_createv(clog, 0, NULL, NULL,
   1603  1.119    atatat 		       CTLFLAG_PERMANENT,
   1604  1.125    atatat 		       CTLTYPE_NODE, "buf",
   1605  1.125    atatat 		       SYSCTL_DESCR("Kernel buffer cache information"),
   1606  1.100        pk 		       sysctl_dobuf, 0, NULL, 0,
   1607  1.100        pk 		       CTL_KERN, KERN_BUF, CTL_EOL);
   1608  1.104    atatat }
   1609  1.104    atatat 
   1610  1.104    atatat SYSCTL_SETUP(sysctl_vm_buf_setup, "sysctl vm.buf* subtree setup")
   1611  1.104    atatat {
   1612  1.104    atatat 
   1613  1.119    atatat 	sysctl_createv(clog, 0, NULL, NULL,
   1614  1.119    atatat 		       CTLFLAG_PERMANENT,
   1615  1.104    atatat 		       CTLTYPE_NODE, "vm", NULL,
   1616  1.104    atatat 		       NULL, 0, NULL, 0,
   1617  1.104    atatat 		       CTL_VM, CTL_EOL);
   1618  1.100        pk 
   1619  1.119    atatat 	sysctl_createv(clog, 0, NULL, NULL,
   1620  1.119    atatat 		       CTLFLAG_PERMANENT|CTLFLAG_READWRITE,
   1621  1.125    atatat 		       CTLTYPE_INT, "bufcache",
   1622  1.125    atatat 		       SYSCTL_DESCR("Percentage of kernel memory to use for "
   1623  1.125    atatat 				    "buffer cache"),
   1624  1.117    atatat 		       sysctl_bufvm_update, 0, &bufcache, 0,
   1625  1.117    atatat 		       CTL_VM, CTL_CREATE, CTL_EOL);
   1626  1.119    atatat 	sysctl_createv(clog, 0, NULL, NULL,
   1627  1.122    simonb 		       CTLFLAG_PERMANENT|CTLFLAG_READONLY,
   1628  1.125    atatat 		       CTLTYPE_INT, "bufmem",
   1629  1.125    atatat 		       SYSCTL_DESCR("Amount of kernel memory used by buffer "
   1630  1.125    atatat 				    "cache"),
   1631  1.122    simonb 		       NULL, 0, &bufmem, 0,
   1632  1.122    simonb 		       CTL_VM, CTL_CREATE, CTL_EOL);
   1633  1.122    simonb 	sysctl_createv(clog, 0, NULL, NULL,
   1634  1.119    atatat 		       CTLFLAG_PERMANENT|CTLFLAG_READWRITE,
   1635  1.125    atatat 		       CTLTYPE_INT, "bufmem_lowater",
   1636  1.125    atatat 		       SYSCTL_DESCR("Minimum amount of kernel memory to "
   1637  1.125    atatat 				    "reserve for buffer cache"),
   1638  1.117    atatat 		       sysctl_bufvm_update, 0, &bufmem_lowater, 0,
   1639  1.117    atatat 		       CTL_VM, CTL_CREATE, CTL_EOL);
   1640  1.119    atatat 	sysctl_createv(clog, 0, NULL, NULL,
   1641  1.119    atatat 		       CTLFLAG_PERMANENT|CTLFLAG_READWRITE,
   1642  1.125    atatat 		       CTLTYPE_INT, "bufmem_hiwater",
   1643  1.125    atatat 		       SYSCTL_DESCR("Maximum amount of kernel memory to use "
   1644  1.125    atatat 				    "for buffer cache"),
   1645  1.117    atatat 		       sysctl_bufvm_update, 0, &bufmem_hiwater, 0,
   1646  1.117    atatat 		       CTL_VM, CTL_CREATE, CTL_EOL);
   1647  1.100        pk }
   1648  1.100        pk 
   1649   1.36       cgd #ifdef DEBUG
   1650   1.31       cgd /*
   1651   1.31       cgd  * Print out statistics on the current allocation of the buffer pool.
   1652   1.31       cgd  * Can be enabled to print out on every ``sync'' by setting "syncprt"
   1653   1.31       cgd  * in vfs_syscalls.c using sysctl.
   1654   1.31       cgd  */
   1655   1.31       cgd void
   1656  1.101   thorpej vfs_bufstats(void)
   1657   1.31       cgd {
   1658   1.31       cgd 	int s, i, j, count;
   1659   1.66  augustss 	struct buf *bp;
   1660   1.66  augustss 	struct bqueues *dp;
   1661   1.72    simonb 	int counts[(MAXBSIZE / PAGE_SIZE) + 1];
   1662  1.100        pk 	static char *bname[BQUEUES] = { "LOCKED", "LRU", "AGE" };
   1663   1.71   thorpej 
   1664   1.31       cgd 	for (dp = bufqueues, i = 0; dp < &bufqueues[BQUEUES]; dp++, i++) {
   1665   1.31       cgd 		count = 0;
   1666   1.71   thorpej 		for (j = 0; j <= MAXBSIZE/PAGE_SIZE; j++)
   1667   1.31       cgd 			counts[j] = 0;
   1668   1.31       cgd 		s = splbio();
   1669   1.84      matt 		TAILQ_FOREACH(bp, dp, b_freelist) {
   1670   1.71   thorpej 			counts[bp->b_bufsize/PAGE_SIZE]++;
   1671   1.31       cgd 			count++;
   1672   1.31       cgd 		}
   1673   1.31       cgd 		splx(s);
   1674   1.48  christos 		printf("%s: total-%d", bname[i], count);
   1675   1.71   thorpej 		for (j = 0; j <= MAXBSIZE/PAGE_SIZE; j++)
   1676   1.31       cgd 			if (counts[j] != 0)
   1677   1.71   thorpej 				printf(", %d-%d", j * PAGE_SIZE, counts[j]);
   1678   1.48  christos 		printf("\n");
   1679   1.31       cgd 	}
   1680   1.31       cgd }
   1681   1.36       cgd #endif /* DEBUG */
   1682