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uvm_swap.c revision 1.92
      1  1.92  christos /*	$NetBSD: uvm_swap.c,v 1.92 2005/05/29 21:06:33 christos Exp $	*/
      2   1.1       mrg 
      3   1.1       mrg /*
      4   1.1       mrg  * Copyright (c) 1995, 1996, 1997 Matthew R. Green
      5   1.1       mrg  * All rights reserved.
      6   1.1       mrg  *
      7   1.1       mrg  * Redistribution and use in source and binary forms, with or without
      8   1.1       mrg  * modification, are permitted provided that the following conditions
      9   1.1       mrg  * are met:
     10   1.1       mrg  * 1. Redistributions of source code must retain the above copyright
     11   1.1       mrg  *    notice, this list of conditions and the following disclaimer.
     12   1.1       mrg  * 2. Redistributions in binary form must reproduce the above copyright
     13   1.1       mrg  *    notice, this list of conditions and the following disclaimer in the
     14   1.1       mrg  *    documentation and/or other materials provided with the distribution.
     15   1.1       mrg  * 3. The name of the author may not be used to endorse or promote products
     16   1.1       mrg  *    derived from this software without specific prior written permission.
     17   1.1       mrg  *
     18   1.1       mrg  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
     19   1.1       mrg  * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
     20   1.1       mrg  * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
     21   1.1       mrg  * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
     22   1.1       mrg  * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING,
     23   1.1       mrg  * BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES;
     24   1.1       mrg  * LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED
     25   1.1       mrg  * AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY,
     26   1.1       mrg  * OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     27   1.1       mrg  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     28   1.1       mrg  * SUCH DAMAGE.
     29   1.3       mrg  *
     30   1.3       mrg  * from: NetBSD: vm_swap.c,v 1.52 1997/12/02 13:47:37 pk Exp
     31   1.3       mrg  * from: Id: uvm_swap.c,v 1.1.2.42 1998/02/02 20:38:06 chuck Exp
     32   1.1       mrg  */
     33  1.57     lukem 
     34  1.57     lukem #include <sys/cdefs.h>
     35  1.92  christos __KERNEL_RCSID(0, "$NetBSD: uvm_swap.c,v 1.92 2005/05/29 21:06:33 christos Exp $");
     36   1.5       mrg 
     37   1.6   thorpej #include "fs_nfs.h"
     38   1.5       mrg #include "opt_uvmhist.h"
     39  1.16       mrg #include "opt_compat_netbsd.h"
     40  1.41       chs #include "opt_ddb.h"
     41   1.1       mrg 
     42   1.1       mrg #include <sys/param.h>
     43   1.1       mrg #include <sys/systm.h>
     44   1.1       mrg #include <sys/buf.h>
     45  1.89      yamt #include <sys/bufq.h>
     46  1.36       mrg #include <sys/conf.h>
     47   1.1       mrg #include <sys/proc.h>
     48   1.1       mrg #include <sys/namei.h>
     49   1.1       mrg #include <sys/disklabel.h>
     50   1.1       mrg #include <sys/errno.h>
     51   1.1       mrg #include <sys/kernel.h>
     52   1.1       mrg #include <sys/malloc.h>
     53   1.1       mrg #include <sys/vnode.h>
     54   1.1       mrg #include <sys/file.h>
     55   1.1       mrg #include <sys/extent.h>
     56  1.90      yamt #include <sys/blist.h>
     57   1.1       mrg #include <sys/mount.h>
     58  1.12        pk #include <sys/pool.h>
     59  1.74   thorpej #include <sys/sa.h>
     60   1.1       mrg #include <sys/syscallargs.h>
     61  1.17       mrg #include <sys/swap.h>
     62   1.1       mrg 
     63   1.1       mrg #include <uvm/uvm.h>
     64   1.1       mrg 
     65   1.1       mrg #include <miscfs/specfs/specdev.h>
     66   1.1       mrg 
     67   1.1       mrg /*
     68   1.1       mrg  * uvm_swap.c: manage configuration and i/o to swap space.
     69   1.1       mrg  */
     70   1.1       mrg 
     71   1.1       mrg /*
     72   1.1       mrg  * swap space is managed in the following way:
     73  1.51       chs  *
     74   1.1       mrg  * each swap partition or file is described by a "swapdev" structure.
     75   1.1       mrg  * each "swapdev" structure contains a "swapent" structure which contains
     76   1.1       mrg  * information that is passed up to the user (via system calls).
     77   1.1       mrg  *
     78   1.1       mrg  * each swap partition is assigned a "priority" (int) which controls
     79   1.1       mrg  * swap parition usage.
     80   1.1       mrg  *
     81   1.1       mrg  * the system maintains a global data structure describing all swap
     82   1.1       mrg  * partitions/files.   there is a sorted LIST of "swappri" structures
     83   1.1       mrg  * which describe "swapdev"'s at that priority.   this LIST is headed
     84  1.51       chs  * by the "swap_priority" global var.    each "swappri" contains a
     85   1.1       mrg  * CIRCLEQ of "swapdev" structures at that priority.
     86   1.1       mrg  *
     87   1.1       mrg  * locking:
     88   1.1       mrg  *  - swap_syscall_lock (sleep lock): this lock serializes the swapctl
     89   1.1       mrg  *    system call and prevents the swap priority list from changing
     90   1.1       mrg  *    while we are in the middle of a system call (e.g. SWAP_STATS).
     91  1.26       chs  *  - uvm.swap_data_lock (simple_lock): this lock protects all swap data
     92   1.1       mrg  *    structures including the priority list, the swapdev structures,
     93   1.1       mrg  *    and the swapmap extent.
     94   1.1       mrg  *
     95   1.1       mrg  * each swap device has the following info:
     96   1.1       mrg  *  - swap device in use (could be disabled, preventing future use)
     97   1.1       mrg  *  - swap enabled (allows new allocations on swap)
     98   1.1       mrg  *  - map info in /dev/drum
     99   1.1       mrg  *  - vnode pointer
    100   1.1       mrg  * for swap files only:
    101   1.1       mrg  *  - block size
    102   1.1       mrg  *  - max byte count in buffer
    103   1.1       mrg  *  - buffer
    104   1.1       mrg  *
    105   1.1       mrg  * userland controls and configures swap with the swapctl(2) system call.
    106   1.1       mrg  * the sys_swapctl performs the following operations:
    107   1.1       mrg  *  [1] SWAP_NSWAP: returns the number of swap devices currently configured
    108  1.51       chs  *  [2] SWAP_STATS: given a pointer to an array of swapent structures
    109   1.1       mrg  *	(passed in via "arg") of a size passed in via "misc" ... we load
    110  1.85  junyoung  *	the current swap config into the array. The actual work is done
    111  1.63      manu  *	in the uvm_swap_stats(9) function.
    112   1.1       mrg  *  [3] SWAP_ON: given a pathname in arg (could be device or file) and a
    113   1.1       mrg  *	priority in "misc", start swapping on it.
    114   1.1       mrg  *  [4] SWAP_OFF: as SWAP_ON, but stops swapping to a device
    115   1.1       mrg  *  [5] SWAP_CTL: changes the priority of a swap device (new priority in
    116   1.1       mrg  *	"misc")
    117   1.1       mrg  */
    118   1.1       mrg 
    119   1.1       mrg /*
    120   1.1       mrg  * swapdev: describes a single swap partition/file
    121   1.1       mrg  *
    122   1.1       mrg  * note the following should be true:
    123   1.1       mrg  * swd_inuse <= swd_nblks  [number of blocks in use is <= total blocks]
    124   1.1       mrg  * swd_nblks <= swd_mapsize [because mapsize includes miniroot+disklabel]
    125   1.1       mrg  */
    126   1.1       mrg struct swapdev {
    127  1.16       mrg 	struct oswapent swd_ose;
    128  1.16       mrg #define	swd_dev		swd_ose.ose_dev		/* device id */
    129  1.16       mrg #define	swd_flags	swd_ose.ose_flags	/* flags:inuse/enable/fake */
    130  1.16       mrg #define	swd_priority	swd_ose.ose_priority	/* our priority */
    131  1.16       mrg 	/* also: swd_ose.ose_nblks, swd_ose.ose_inuse */
    132  1.16       mrg 	char			*swd_path;	/* saved pathname of device */
    133  1.16       mrg 	int			swd_pathlen;	/* length of pathname */
    134  1.16       mrg 	int			swd_npages;	/* #pages we can use */
    135  1.16       mrg 	int			swd_npginuse;	/* #pages in use */
    136  1.32       chs 	int			swd_npgbad;	/* #pages bad */
    137  1.16       mrg 	int			swd_drumoffset;	/* page0 offset in drum */
    138  1.16       mrg 	int			swd_drumsize;	/* #pages in drum */
    139  1.90      yamt 	blist_t			swd_blist;	/* blist for this swapdev */
    140  1.16       mrg 	struct vnode		*swd_vp;	/* backing vnode */
    141  1.16       mrg 	CIRCLEQ_ENTRY(swapdev)	swd_next;	/* priority circleq */
    142   1.1       mrg 
    143  1.16       mrg 	int			swd_bsize;	/* blocksize (bytes) */
    144  1.16       mrg 	int			swd_maxactive;	/* max active i/o reqs */
    145  1.65   hannken 	struct bufq_state	swd_tab;	/* buffer list */
    146  1.33   thorpej 	int			swd_active;	/* number of active buffers */
    147   1.1       mrg };
    148   1.1       mrg 
    149   1.1       mrg /*
    150   1.1       mrg  * swap device priority entry; the list is kept sorted on `spi_priority'.
    151   1.1       mrg  */
    152   1.1       mrg struct swappri {
    153   1.1       mrg 	int			spi_priority;     /* priority */
    154   1.1       mrg 	CIRCLEQ_HEAD(spi_swapdev, swapdev)	spi_swapdev;
    155   1.1       mrg 	/* circleq of swapdevs at this priority */
    156   1.1       mrg 	LIST_ENTRY(swappri)	spi_swappri;      /* global list of pri's */
    157   1.1       mrg };
    158   1.1       mrg 
    159   1.1       mrg /*
    160   1.1       mrg  * The following two structures are used to keep track of data transfers
    161   1.1       mrg  * on swap devices associated with regular files.
    162   1.1       mrg  * NOTE: this code is more or less a copy of vnd.c; we use the same
    163   1.1       mrg  * structure names here to ease porting..
    164   1.1       mrg  */
    165   1.1       mrg struct vndxfer {
    166   1.1       mrg 	struct buf	*vx_bp;		/* Pointer to parent buffer */
    167   1.1       mrg 	struct swapdev	*vx_sdp;
    168   1.1       mrg 	int		vx_error;
    169   1.1       mrg 	int		vx_pending;	/* # of pending aux buffers */
    170   1.1       mrg 	int		vx_flags;
    171   1.1       mrg #define VX_BUSY		1
    172   1.1       mrg #define VX_DEAD		2
    173   1.1       mrg };
    174   1.1       mrg 
    175   1.1       mrg struct vndbuf {
    176   1.1       mrg 	struct buf	vb_buf;
    177   1.1       mrg 	struct vndxfer	*vb_xfer;
    178   1.1       mrg };
    179   1.1       mrg 
    180  1.12        pk 
    181   1.1       mrg /*
    182  1.12        pk  * We keep a of pool vndbuf's and vndxfer structures.
    183   1.1       mrg  */
    184  1.87    simonb POOL_INIT(vndxfer_pool, sizeof(struct vndxfer), 0, 0, 0, "swp vnx", NULL);
    185  1.87    simonb POOL_INIT(vndbuf_pool, sizeof(struct vndbuf), 0, 0, 0, "swp vnd", NULL);
    186   1.1       mrg 
    187  1.12        pk #define	getvndxfer(vnx)	do {						\
    188  1.92  christos 	int sp = splbio();						\
    189  1.60   thorpej 	vnx = pool_get(&vndxfer_pool, PR_WAITOK);			\
    190  1.92  christos 	splx(sp);							\
    191  1.73     perry } while (/*CONSTCOND*/ 0)
    192  1.12        pk 
    193  1.12        pk #define putvndxfer(vnx) {						\
    194  1.49   thorpej 	pool_put(&vndxfer_pool, (void *)(vnx));				\
    195  1.12        pk }
    196  1.12        pk 
    197  1.12        pk #define	getvndbuf(vbp)	do {						\
    198  1.92  christos 	int sp = splbio();						\
    199  1.60   thorpej 	vbp = pool_get(&vndbuf_pool, PR_WAITOK);			\
    200  1.92  christos 	splx(sp);							\
    201  1.73     perry } while (/*CONSTCOND*/ 0)
    202   1.1       mrg 
    203  1.12        pk #define putvndbuf(vbp) {						\
    204  1.49   thorpej 	pool_put(&vndbuf_pool, (void *)(vbp));				\
    205  1.12        pk }
    206   1.1       mrg 
    207   1.1       mrg /*
    208   1.1       mrg  * local variables
    209   1.1       mrg  */
    210   1.1       mrg static struct extent *swapmap;		/* controls the mapping of /dev/drum */
    211  1.75   thorpej 
    212  1.75   thorpej MALLOC_DEFINE(M_VMSWAP, "VM swap", "VM swap structures");
    213   1.1       mrg 
    214   1.1       mrg /* list of all active swap devices [by priority] */
    215   1.1       mrg LIST_HEAD(swap_priority, swappri);
    216   1.1       mrg static struct swap_priority swap_priority;
    217   1.1       mrg 
    218   1.1       mrg /* locks */
    219  1.52       chs struct lock swap_syscall_lock;
    220   1.1       mrg 
    221   1.1       mrg /*
    222   1.1       mrg  * prototypes
    223   1.1       mrg  */
    224  1.85  junyoung static struct swapdev	*swapdrum_getsdp(int);
    225   1.1       mrg 
    226  1.85  junyoung static struct swapdev	*swaplist_find(struct vnode *, int);
    227  1.85  junyoung static void		 swaplist_insert(struct swapdev *,
    228  1.85  junyoung 					 struct swappri *, int);
    229  1.85  junyoung static void		 swaplist_trim(void);
    230   1.1       mrg 
    231  1.85  junyoung static int swap_on(struct proc *, struct swapdev *);
    232  1.85  junyoung static int swap_off(struct proc *, struct swapdev *);
    233   1.1       mrg 
    234  1.85  junyoung static void sw_reg_strategy(struct swapdev *, struct buf *, int);
    235  1.85  junyoung static void sw_reg_iodone(struct buf *);
    236  1.85  junyoung static void sw_reg_start(struct swapdev *);
    237   1.1       mrg 
    238  1.85  junyoung static int uvm_swap_io(struct vm_page **, int, int, int);
    239   1.1       mrg 
    240  1.69   gehenna dev_type_read(swread);
    241  1.69   gehenna dev_type_write(swwrite);
    242  1.69   gehenna dev_type_strategy(swstrategy);
    243  1.69   gehenna 
    244  1.69   gehenna const struct bdevsw swap_bdevsw = {
    245  1.69   gehenna 	noopen, noclose, swstrategy, noioctl, nodump, nosize,
    246  1.69   gehenna };
    247  1.69   gehenna 
    248  1.69   gehenna const struct cdevsw swap_cdevsw = {
    249  1.69   gehenna 	nullopen, nullclose, swread, swwrite, noioctl,
    250  1.71  jdolecek 	nostop, notty, nopoll, nommap, nokqfilter
    251  1.69   gehenna };
    252  1.69   gehenna 
    253   1.1       mrg /*
    254   1.1       mrg  * uvm_swap_init: init the swap system data structures and locks
    255   1.1       mrg  *
    256  1.51       chs  * => called at boot time from init_main.c after the filesystems
    257   1.1       mrg  *	are brought up (which happens after uvm_init())
    258   1.1       mrg  */
    259   1.1       mrg void
    260   1.1       mrg uvm_swap_init()
    261   1.1       mrg {
    262   1.1       mrg 	UVMHIST_FUNC("uvm_swap_init");
    263   1.1       mrg 
    264   1.1       mrg 	UVMHIST_CALLED(pdhist);
    265   1.1       mrg 	/*
    266   1.1       mrg 	 * first, init the swap list, its counter, and its lock.
    267   1.1       mrg 	 * then get a handle on the vnode for /dev/drum by using
    268   1.1       mrg 	 * the its dev_t number ("swapdev", from MD conf.c).
    269   1.1       mrg 	 */
    270   1.1       mrg 
    271   1.1       mrg 	LIST_INIT(&swap_priority);
    272   1.1       mrg 	uvmexp.nswapdev = 0;
    273   1.1       mrg 	lockinit(&swap_syscall_lock, PVM, "swapsys", 0, 0);
    274  1.26       chs 	simple_lock_init(&uvm.swap_data_lock);
    275  1.12        pk 
    276   1.1       mrg 	if (bdevvp(swapdev, &swapdev_vp))
    277   1.1       mrg 		panic("uvm_swap_init: can't get vnode for swap device");
    278   1.1       mrg 
    279   1.1       mrg 	/*
    280   1.1       mrg 	 * create swap block resource map to map /dev/drum.   the range
    281   1.1       mrg 	 * from 1 to INT_MAX allows 2 gigablocks of swap space.  note
    282  1.51       chs 	 * that block 0 is reserved (used to indicate an allocation
    283   1.1       mrg 	 * failure, or no allocation).
    284   1.1       mrg 	 */
    285   1.1       mrg 	swapmap = extent_create("swapmap", 1, INT_MAX,
    286   1.1       mrg 				M_VMSWAP, 0, 0, EX_NOWAIT);
    287   1.1       mrg 	if (swapmap == 0)
    288   1.1       mrg 		panic("uvm_swap_init: extent_create failed");
    289   1.1       mrg 
    290   1.1       mrg 	/*
    291   1.1       mrg 	 * done!
    292   1.1       mrg 	 */
    293   1.1       mrg 	UVMHIST_LOG(pdhist, "<- done", 0, 0, 0, 0);
    294   1.1       mrg }
    295   1.1       mrg 
    296   1.1       mrg /*
    297   1.1       mrg  * swaplist functions: functions that operate on the list of swap
    298   1.1       mrg  * devices on the system.
    299   1.1       mrg  */
    300   1.1       mrg 
    301   1.1       mrg /*
    302   1.1       mrg  * swaplist_insert: insert swap device "sdp" into the global list
    303   1.1       mrg  *
    304  1.26       chs  * => caller must hold both swap_syscall_lock and uvm.swap_data_lock
    305   1.1       mrg  * => caller must provide a newly malloc'd swappri structure (we will
    306   1.1       mrg  *	FREE it if we don't need it... this it to prevent malloc blocking
    307   1.1       mrg  *	here while adding swap)
    308   1.1       mrg  */
    309   1.1       mrg static void
    310   1.1       mrg swaplist_insert(sdp, newspp, priority)
    311   1.1       mrg 	struct swapdev *sdp;
    312   1.1       mrg 	struct swappri *newspp;
    313   1.1       mrg 	int priority;
    314   1.1       mrg {
    315   1.1       mrg 	struct swappri *spp, *pspp;
    316   1.1       mrg 	UVMHIST_FUNC("swaplist_insert"); UVMHIST_CALLED(pdhist);
    317   1.1       mrg 
    318   1.1       mrg 	/*
    319   1.1       mrg 	 * find entry at or after which to insert the new device.
    320   1.1       mrg 	 */
    321  1.55       chs 	pspp = NULL;
    322  1.55       chs 	LIST_FOREACH(spp, &swap_priority, spi_swappri) {
    323   1.1       mrg 		if (priority <= spp->spi_priority)
    324   1.1       mrg 			break;
    325   1.1       mrg 		pspp = spp;
    326   1.1       mrg 	}
    327   1.1       mrg 
    328   1.1       mrg 	/*
    329   1.1       mrg 	 * new priority?
    330   1.1       mrg 	 */
    331   1.1       mrg 	if (spp == NULL || spp->spi_priority != priority) {
    332   1.1       mrg 		spp = newspp;  /* use newspp! */
    333  1.32       chs 		UVMHIST_LOG(pdhist, "created new swappri = %d",
    334  1.32       chs 			    priority, 0, 0, 0);
    335   1.1       mrg 
    336   1.1       mrg 		spp->spi_priority = priority;
    337   1.1       mrg 		CIRCLEQ_INIT(&spp->spi_swapdev);
    338   1.1       mrg 
    339   1.1       mrg 		if (pspp)
    340   1.1       mrg 			LIST_INSERT_AFTER(pspp, spp, spi_swappri);
    341   1.1       mrg 		else
    342   1.1       mrg 			LIST_INSERT_HEAD(&swap_priority, spp, spi_swappri);
    343   1.1       mrg 	} else {
    344   1.1       mrg 	  	/* we don't need a new priority structure, free it */
    345   1.1       mrg 		FREE(newspp, M_VMSWAP);
    346   1.1       mrg 	}
    347   1.1       mrg 
    348   1.1       mrg 	/*
    349   1.1       mrg 	 * priority found (or created).   now insert on the priority's
    350   1.1       mrg 	 * circleq list and bump the total number of swapdevs.
    351   1.1       mrg 	 */
    352   1.1       mrg 	sdp->swd_priority = priority;
    353   1.1       mrg 	CIRCLEQ_INSERT_TAIL(&spp->spi_swapdev, sdp, swd_next);
    354   1.1       mrg 	uvmexp.nswapdev++;
    355   1.1       mrg }
    356   1.1       mrg 
    357   1.1       mrg /*
    358   1.1       mrg  * swaplist_find: find and optionally remove a swap device from the
    359   1.1       mrg  *	global list.
    360   1.1       mrg  *
    361  1.26       chs  * => caller must hold both swap_syscall_lock and uvm.swap_data_lock
    362   1.1       mrg  * => we return the swapdev we found (and removed)
    363   1.1       mrg  */
    364   1.1       mrg static struct swapdev *
    365   1.1       mrg swaplist_find(vp, remove)
    366   1.1       mrg 	struct vnode *vp;
    367   1.1       mrg 	boolean_t remove;
    368   1.1       mrg {
    369   1.1       mrg 	struct swapdev *sdp;
    370   1.1       mrg 	struct swappri *spp;
    371   1.1       mrg 
    372   1.1       mrg 	/*
    373   1.1       mrg 	 * search the lists for the requested vp
    374   1.1       mrg 	 */
    375  1.55       chs 
    376  1.55       chs 	LIST_FOREACH(spp, &swap_priority, spi_swappri) {
    377  1.55       chs 		CIRCLEQ_FOREACH(sdp, &spp->spi_swapdev, swd_next) {
    378   1.1       mrg 			if (sdp->swd_vp == vp) {
    379   1.1       mrg 				if (remove) {
    380   1.1       mrg 					CIRCLEQ_REMOVE(&spp->spi_swapdev,
    381   1.1       mrg 					    sdp, swd_next);
    382   1.1       mrg 					uvmexp.nswapdev--;
    383   1.1       mrg 				}
    384   1.1       mrg 				return(sdp);
    385   1.1       mrg 			}
    386  1.55       chs 		}
    387   1.1       mrg 	}
    388   1.1       mrg 	return (NULL);
    389   1.1       mrg }
    390   1.1       mrg 
    391   1.1       mrg 
    392   1.1       mrg /*
    393   1.1       mrg  * swaplist_trim: scan priority list for empty priority entries and kill
    394   1.1       mrg  *	them.
    395   1.1       mrg  *
    396  1.26       chs  * => caller must hold both swap_syscall_lock and uvm.swap_data_lock
    397   1.1       mrg  */
    398   1.1       mrg static void
    399   1.1       mrg swaplist_trim()
    400   1.1       mrg {
    401   1.1       mrg 	struct swappri *spp, *nextspp;
    402   1.1       mrg 
    403  1.32       chs 	for (spp = LIST_FIRST(&swap_priority); spp != NULL; spp = nextspp) {
    404  1.32       chs 		nextspp = LIST_NEXT(spp, spi_swappri);
    405  1.32       chs 		if (CIRCLEQ_FIRST(&spp->spi_swapdev) !=
    406  1.32       chs 		    (void *)&spp->spi_swapdev)
    407   1.1       mrg 			continue;
    408   1.1       mrg 		LIST_REMOVE(spp, spi_swappri);
    409  1.32       chs 		free(spp, M_VMSWAP);
    410   1.1       mrg 	}
    411   1.1       mrg }
    412   1.1       mrg 
    413   1.1       mrg /*
    414   1.1       mrg  * swapdrum_getsdp: given a page offset in /dev/drum, convert it back
    415   1.1       mrg  *	to the "swapdev" that maps that section of the drum.
    416   1.1       mrg  *
    417   1.1       mrg  * => each swapdev takes one big contig chunk of the drum
    418  1.26       chs  * => caller must hold uvm.swap_data_lock
    419   1.1       mrg  */
    420   1.1       mrg static struct swapdev *
    421   1.1       mrg swapdrum_getsdp(pgno)
    422   1.1       mrg 	int pgno;
    423   1.1       mrg {
    424   1.1       mrg 	struct swapdev *sdp;
    425   1.1       mrg 	struct swappri *spp;
    426  1.51       chs 
    427  1.55       chs 	LIST_FOREACH(spp, &swap_priority, spi_swappri) {
    428  1.55       chs 		CIRCLEQ_FOREACH(sdp, &spp->spi_swapdev, swd_next) {
    429  1.48      fvdl 			if (sdp->swd_flags & SWF_FAKE)
    430  1.48      fvdl 				continue;
    431   1.1       mrg 			if (pgno >= sdp->swd_drumoffset &&
    432   1.1       mrg 			    pgno < (sdp->swd_drumoffset + sdp->swd_drumsize)) {
    433   1.1       mrg 				return sdp;
    434   1.1       mrg 			}
    435  1.48      fvdl 		}
    436  1.55       chs 	}
    437   1.1       mrg 	return NULL;
    438   1.1       mrg }
    439   1.1       mrg 
    440   1.1       mrg 
    441   1.1       mrg /*
    442   1.1       mrg  * sys_swapctl: main entry point for swapctl(2) system call
    443   1.1       mrg  * 	[with two helper functions: swap_on and swap_off]
    444   1.1       mrg  */
    445   1.1       mrg int
    446  1.74   thorpej sys_swapctl(l, v, retval)
    447  1.74   thorpej 	struct lwp *l;
    448   1.1       mrg 	void *v;
    449   1.1       mrg 	register_t *retval;
    450   1.1       mrg {
    451   1.1       mrg 	struct sys_swapctl_args /* {
    452   1.1       mrg 		syscallarg(int) cmd;
    453   1.1       mrg 		syscallarg(void *) arg;
    454   1.1       mrg 		syscallarg(int) misc;
    455   1.1       mrg 	} */ *uap = (struct sys_swapctl_args *)v;
    456  1.74   thorpej 	struct proc *p = l->l_proc;
    457   1.1       mrg 	struct vnode *vp;
    458   1.1       mrg 	struct nameidata nd;
    459   1.1       mrg 	struct swappri *spp;
    460   1.1       mrg 	struct swapdev *sdp;
    461   1.1       mrg 	struct swapent *sep;
    462  1.16       mrg 	char	userpath[PATH_MAX + 1];
    463  1.18     enami 	size_t	len;
    464  1.61      manu 	int	error, misc;
    465   1.1       mrg 	int	priority;
    466   1.1       mrg 	UVMHIST_FUNC("sys_swapctl"); UVMHIST_CALLED(pdhist);
    467   1.1       mrg 
    468   1.1       mrg 	misc = SCARG(uap, misc);
    469   1.1       mrg 
    470   1.1       mrg 	/*
    471   1.1       mrg 	 * ensure serialized syscall access by grabbing the swap_syscall_lock
    472   1.1       mrg 	 */
    473  1.32       chs 	lockmgr(&swap_syscall_lock, LK_EXCLUSIVE, NULL);
    474  1.24       mrg 
    475   1.1       mrg 	/*
    476   1.1       mrg 	 * we handle the non-priv NSWAP and STATS request first.
    477   1.1       mrg 	 *
    478  1.51       chs 	 * SWAP_NSWAP: return number of config'd swap devices
    479   1.1       mrg 	 * [can also be obtained with uvmexp sysctl]
    480   1.1       mrg 	 */
    481   1.1       mrg 	if (SCARG(uap, cmd) == SWAP_NSWAP) {
    482   1.8       mrg 		UVMHIST_LOG(pdhist, "<- done SWAP_NSWAP=%d", uvmexp.nswapdev,
    483   1.8       mrg 		    0, 0, 0);
    484   1.1       mrg 		*retval = uvmexp.nswapdev;
    485  1.16       mrg 		error = 0;
    486  1.16       mrg 		goto out;
    487   1.1       mrg 	}
    488   1.1       mrg 
    489   1.1       mrg 	/*
    490   1.1       mrg 	 * SWAP_STATS: get stats on current # of configured swap devs
    491   1.1       mrg 	 *
    492  1.51       chs 	 * note that the swap_priority list can't change as long
    493   1.1       mrg 	 * as we are holding the swap_syscall_lock.  we don't want
    494  1.51       chs 	 * to grab the uvm.swap_data_lock because we may fault&sleep during
    495   1.1       mrg 	 * copyout() and we don't want to be holding that lock then!
    496   1.1       mrg 	 */
    497  1.16       mrg 	if (SCARG(uap, cmd) == SWAP_STATS
    498  1.16       mrg #if defined(COMPAT_13)
    499  1.16       mrg 	    || SCARG(uap, cmd) == SWAP_OSTATS
    500  1.16       mrg #endif
    501  1.16       mrg 	    ) {
    502  1.88  christos 		if ((size_t)misc > (size_t)uvmexp.nswapdev)
    503  1.88  christos 			misc = uvmexp.nswapdev;
    504  1.16       mrg #if defined(COMPAT_13)
    505  1.61      manu 		if (SCARG(uap, cmd) == SWAP_OSTATS)
    506  1.61      manu 			len = sizeof(struct oswapent) * misc;
    507  1.62      manu 		else
    508  1.16       mrg #endif
    509  1.62      manu 			len = sizeof(struct swapent) * misc;
    510  1.62      manu 		sep = (struct swapent *)malloc(len, M_TEMP, M_WAITOK);
    511  1.62      manu 
    512  1.62      manu 		uvm_swap_stats(SCARG(uap, cmd), sep, misc, retval);
    513  1.92  christos 		error = copyout(sep, SCARG(uap, arg), len);
    514   1.1       mrg 
    515  1.61      manu 		free(sep, M_TEMP);
    516  1.16       mrg 		UVMHIST_LOG(pdhist, "<- done SWAP_STATS", 0, 0, 0, 0);
    517  1.16       mrg 		goto out;
    518  1.51       chs 	}
    519  1.55       chs 	if (SCARG(uap, cmd) == SWAP_GETDUMPDEV) {
    520  1.55       chs 		dev_t	*devp = (dev_t *)SCARG(uap, arg);
    521  1.55       chs 
    522  1.55       chs 		error = copyout(&dumpdev, devp, sizeof(dumpdev));
    523  1.55       chs 		goto out;
    524  1.55       chs 	}
    525   1.1       mrg 
    526   1.1       mrg 	/*
    527   1.1       mrg 	 * all other requests require superuser privs.   verify.
    528   1.1       mrg 	 */
    529  1.16       mrg 	if ((error = suser(p->p_ucred, &p->p_acflag)))
    530  1.16       mrg 		goto out;
    531   1.1       mrg 
    532   1.1       mrg 	/*
    533   1.1       mrg 	 * at this point we expect a path name in arg.   we will
    534   1.1       mrg 	 * use namei() to gain a vnode reference (vref), and lock
    535   1.1       mrg 	 * the vnode (VOP_LOCK).
    536   1.1       mrg 	 *
    537   1.1       mrg 	 * XXX: a NULL arg means use the root vnode pointer (e.g. for
    538  1.16       mrg 	 * miniroot)
    539   1.1       mrg 	 */
    540   1.1       mrg 	if (SCARG(uap, arg) == NULL) {
    541   1.1       mrg 		vp = rootvp;		/* miniroot */
    542  1.79   thorpej 		if (vget(vp, LK_EXCLUSIVE)) {
    543  1.16       mrg 			error = EBUSY;
    544  1.16       mrg 			goto out;
    545   1.1       mrg 		}
    546  1.16       mrg 		if (SCARG(uap, cmd) == SWAP_ON &&
    547  1.16       mrg 		    copystr("miniroot", userpath, sizeof userpath, &len))
    548  1.16       mrg 			panic("swapctl: miniroot copy failed");
    549   1.1       mrg 	} else {
    550  1.16       mrg 		int	space;
    551  1.16       mrg 		char	*where;
    552  1.16       mrg 
    553  1.16       mrg 		if (SCARG(uap, cmd) == SWAP_ON) {
    554  1.16       mrg 			if ((error = copyinstr(SCARG(uap, arg), userpath,
    555  1.16       mrg 			    sizeof userpath, &len)))
    556  1.16       mrg 				goto out;
    557  1.16       mrg 			space = UIO_SYSSPACE;
    558  1.16       mrg 			where = userpath;
    559  1.16       mrg 		} else {
    560  1.16       mrg 			space = UIO_USERSPACE;
    561  1.16       mrg 			where = (char *)SCARG(uap, arg);
    562   1.1       mrg 		}
    563  1.80      fvdl 		NDINIT(&nd, LOOKUP, FOLLOW|LOCKLEAF, space, where, p);
    564  1.16       mrg 		if ((error = namei(&nd)))
    565  1.16       mrg 			goto out;
    566   1.1       mrg 		vp = nd.ni_vp;
    567   1.1       mrg 	}
    568   1.1       mrg 	/* note: "vp" is referenced and locked */
    569   1.1       mrg 
    570   1.1       mrg 	error = 0;		/* assume no error */
    571   1.1       mrg 	switch(SCARG(uap, cmd)) {
    572  1.40       mrg 
    573  1.24       mrg 	case SWAP_DUMPDEV:
    574  1.24       mrg 		if (vp->v_type != VBLK) {
    575  1.24       mrg 			error = ENOTBLK;
    576  1.45        pk 			break;
    577  1.24       mrg 		}
    578  1.24       mrg 		dumpdev = vp->v_rdev;
    579  1.68  drochner 		cpu_dumpconf();
    580  1.24       mrg 		break;
    581  1.24       mrg 
    582   1.1       mrg 	case SWAP_CTL:
    583   1.1       mrg 		/*
    584   1.1       mrg 		 * get new priority, remove old entry (if any) and then
    585   1.1       mrg 		 * reinsert it in the correct place.  finally, prune out
    586   1.1       mrg 		 * any empty priority structures.
    587   1.1       mrg 		 */
    588   1.1       mrg 		priority = SCARG(uap, misc);
    589  1.32       chs 		spp = malloc(sizeof *spp, M_VMSWAP, M_WAITOK);
    590  1.26       chs 		simple_lock(&uvm.swap_data_lock);
    591   1.1       mrg 		if ((sdp = swaplist_find(vp, 1)) == NULL) {
    592   1.1       mrg 			error = ENOENT;
    593   1.1       mrg 		} else {
    594   1.1       mrg 			swaplist_insert(sdp, spp, priority);
    595   1.1       mrg 			swaplist_trim();
    596   1.1       mrg 		}
    597  1.26       chs 		simple_unlock(&uvm.swap_data_lock);
    598   1.1       mrg 		if (error)
    599   1.1       mrg 			free(spp, M_VMSWAP);
    600   1.1       mrg 		break;
    601   1.1       mrg 
    602   1.1       mrg 	case SWAP_ON:
    603  1.32       chs 
    604   1.1       mrg 		/*
    605   1.1       mrg 		 * check for duplicates.   if none found, then insert a
    606   1.1       mrg 		 * dummy entry on the list to prevent someone else from
    607   1.1       mrg 		 * trying to enable this device while we are working on
    608   1.1       mrg 		 * it.
    609   1.1       mrg 		 */
    610  1.32       chs 
    611   1.1       mrg 		priority = SCARG(uap, misc);
    612  1.48      fvdl 		sdp = malloc(sizeof *sdp, M_VMSWAP, M_WAITOK);
    613  1.48      fvdl 		spp = malloc(sizeof *spp, M_VMSWAP, M_WAITOK);
    614  1.67       chs 		memset(sdp, 0, sizeof(*sdp));
    615  1.67       chs 		sdp->swd_flags = SWF_FAKE;
    616  1.67       chs 		sdp->swd_vp = vp;
    617  1.67       chs 		sdp->swd_dev = (vp->v_type == VBLK) ? vp->v_rdev : NODEV;
    618  1.66   hannken 		bufq_alloc(&sdp->swd_tab, BUFQ_DISKSORT|BUFQ_SORT_RAWBLOCK);
    619  1.26       chs 		simple_lock(&uvm.swap_data_lock);
    620  1.48      fvdl 		if (swaplist_find(vp, 0) != NULL) {
    621   1.1       mrg 			error = EBUSY;
    622  1.26       chs 			simple_unlock(&uvm.swap_data_lock);
    623  1.66   hannken 			bufq_free(&sdp->swd_tab);
    624  1.48      fvdl 			free(sdp, M_VMSWAP);
    625  1.48      fvdl 			free(spp, M_VMSWAP);
    626  1.16       mrg 			break;
    627   1.1       mrg 		}
    628   1.1       mrg 		swaplist_insert(sdp, spp, priority);
    629  1.26       chs 		simple_unlock(&uvm.swap_data_lock);
    630   1.1       mrg 
    631  1.16       mrg 		sdp->swd_pathlen = len;
    632  1.16       mrg 		sdp->swd_path = malloc(sdp->swd_pathlen, M_VMSWAP, M_WAITOK);
    633  1.19        pk 		if (copystr(userpath, sdp->swd_path, sdp->swd_pathlen, 0) != 0)
    634  1.19        pk 			panic("swapctl: copystr");
    635  1.32       chs 
    636   1.1       mrg 		/*
    637   1.1       mrg 		 * we've now got a FAKE placeholder in the swap list.
    638   1.1       mrg 		 * now attempt to enable swap on it.  if we fail, undo
    639   1.1       mrg 		 * what we've done and kill the fake entry we just inserted.
    640   1.1       mrg 		 * if swap_on is a success, it will clear the SWF_FAKE flag
    641   1.1       mrg 		 */
    642  1.32       chs 
    643  1.80      fvdl 		if ((error = swap_on(p, sdp)) != 0) {
    644  1.26       chs 			simple_lock(&uvm.swap_data_lock);
    645   1.8       mrg 			(void) swaplist_find(vp, 1);  /* kill fake entry */
    646   1.1       mrg 			swaplist_trim();
    647  1.26       chs 			simple_unlock(&uvm.swap_data_lock);
    648  1.66   hannken 			bufq_free(&sdp->swd_tab);
    649  1.19        pk 			free(sdp->swd_path, M_VMSWAP);
    650  1.32       chs 			free(sdp, M_VMSWAP);
    651   1.1       mrg 			break;
    652   1.1       mrg 		}
    653   1.1       mrg 		break;
    654   1.1       mrg 
    655   1.1       mrg 	case SWAP_OFF:
    656  1.26       chs 		simple_lock(&uvm.swap_data_lock);
    657   1.1       mrg 		if ((sdp = swaplist_find(vp, 0)) == NULL) {
    658  1.26       chs 			simple_unlock(&uvm.swap_data_lock);
    659   1.1       mrg 			error = ENXIO;
    660   1.1       mrg 			break;
    661   1.1       mrg 		}
    662  1.32       chs 
    663   1.1       mrg 		/*
    664   1.1       mrg 		 * If a device isn't in use or enabled, we
    665   1.1       mrg 		 * can't stop swapping from it (again).
    666   1.1       mrg 		 */
    667   1.1       mrg 		if ((sdp->swd_flags & (SWF_INUSE|SWF_ENABLE)) == 0) {
    668  1.26       chs 			simple_unlock(&uvm.swap_data_lock);
    669   1.1       mrg 			error = EBUSY;
    670  1.16       mrg 			break;
    671   1.1       mrg 		}
    672   1.1       mrg 
    673   1.1       mrg 		/*
    674  1.32       chs 		 * do the real work.
    675   1.1       mrg 		 */
    676  1.80      fvdl 		error = swap_off(p, sdp);
    677   1.1       mrg 		break;
    678   1.1       mrg 
    679   1.1       mrg 	default:
    680   1.1       mrg 		error = EINVAL;
    681   1.1       mrg 	}
    682   1.1       mrg 
    683   1.1       mrg 	/*
    684  1.39       chs 	 * done!  release the ref gained by namei() and unlock.
    685   1.1       mrg 	 */
    686   1.1       mrg 	vput(vp);
    687  1.39       chs 
    688  1.16       mrg out:
    689  1.32       chs 	lockmgr(&swap_syscall_lock, LK_RELEASE, NULL);
    690   1.1       mrg 
    691   1.1       mrg 	UVMHIST_LOG(pdhist, "<- done!  error=%d", error, 0, 0, 0);
    692   1.1       mrg 	return (error);
    693  1.61      manu }
    694  1.61      manu 
    695  1.85  junyoung /*
    696  1.61      manu  * swap_stats: implements swapctl(SWAP_STATS). The function is kept
    697  1.85  junyoung  * away from sys_swapctl() in order to allow COMPAT_* swapctl()
    698  1.61      manu  * emulation to use it directly without going through sys_swapctl().
    699  1.61      manu  * The problem with using sys_swapctl() there is that it involves
    700  1.61      manu  * copying the swapent array to the stackgap, and this array's size
    701  1.85  junyoung  * is not known at build time. Hence it would not be possible to
    702  1.61      manu  * ensure it would fit in the stackgap in any case.
    703  1.61      manu  */
    704  1.61      manu void
    705  1.61      manu uvm_swap_stats(cmd, sep, sec, retval)
    706  1.61      manu 	int cmd;
    707  1.61      manu 	struct swapent *sep;
    708  1.61      manu 	int sec;
    709  1.61      manu 	register_t *retval;
    710  1.61      manu {
    711  1.61      manu 	struct swappri *spp;
    712  1.61      manu 	struct swapdev *sdp;
    713  1.61      manu 	int count = 0;
    714  1.61      manu 
    715  1.61      manu 	LIST_FOREACH(spp, &swap_priority, spi_swappri) {
    716  1.61      manu 		for (sdp = CIRCLEQ_FIRST(&spp->spi_swapdev);
    717  1.61      manu 		     sdp != (void *)&spp->spi_swapdev && sec-- > 0;
    718  1.61      manu 		     sdp = CIRCLEQ_NEXT(sdp, swd_next)) {
    719  1.61      manu 		  	/*
    720  1.61      manu 			 * backwards compatibility for system call.
    721  1.61      manu 			 * note that we use 'struct oswapent' as an
    722  1.61      manu 			 * overlay into both 'struct swapdev' and
    723  1.61      manu 			 * the userland 'struct swapent', as we
    724  1.61      manu 			 * want to retain backwards compatibility
    725  1.61      manu 			 * with NetBSD 1.3.
    726  1.61      manu 			 */
    727  1.61      manu 			sdp->swd_ose.ose_inuse =
    728  1.61      manu 			    btodb((u_int64_t)sdp->swd_npginuse <<
    729  1.61      manu 			    PAGE_SHIFT);
    730  1.85  junyoung 			(void)memcpy(sep, &sdp->swd_ose,
    731  1.61      manu 			    sizeof(struct oswapent));
    732  1.85  junyoung 
    733  1.61      manu 			/* now copy out the path if necessary */
    734  1.61      manu #if defined(COMPAT_13)
    735  1.61      manu 			if (cmd == SWAP_STATS)
    736  1.61      manu #endif
    737  1.61      manu 				(void)memcpy(&sep->se_path, sdp->swd_path,
    738  1.61      manu 				    sdp->swd_pathlen);
    739  1.61      manu 
    740  1.61      manu 			count++;
    741  1.61      manu #if defined(COMPAT_13)
    742  1.61      manu 			if (cmd == SWAP_OSTATS)
    743  1.61      manu 				sep = (struct swapent *)
    744  1.61      manu 				    ((struct oswapent *)sep + 1);
    745  1.61      manu 			else
    746  1.61      manu #endif
    747  1.61      manu 				sep++;
    748  1.61      manu 		}
    749  1.61      manu 	}
    750  1.61      manu 
    751  1.61      manu 	*retval = count;
    752  1.61      manu 	return;
    753   1.1       mrg }
    754   1.1       mrg 
    755   1.1       mrg /*
    756   1.1       mrg  * swap_on: attempt to enable a swapdev for swapping.   note that the
    757   1.1       mrg  *	swapdev is already on the global list, but disabled (marked
    758   1.1       mrg  *	SWF_FAKE).
    759   1.1       mrg  *
    760   1.1       mrg  * => we avoid the start of the disk (to protect disk labels)
    761   1.1       mrg  * => we also avoid the miniroot, if we are swapping to root.
    762  1.26       chs  * => caller should leave uvm.swap_data_lock unlocked, we may lock it
    763   1.1       mrg  *	if needed.
    764   1.1       mrg  */
    765   1.1       mrg static int
    766  1.80      fvdl swap_on(p, sdp)
    767  1.80      fvdl 	struct proc *p;
    768   1.1       mrg 	struct swapdev *sdp;
    769   1.1       mrg {
    770   1.1       mrg 	struct vnode *vp;
    771   1.1       mrg 	int error, npages, nblocks, size;
    772   1.1       mrg 	long addr;
    773  1.48      fvdl 	u_long result;
    774   1.1       mrg 	struct vattr va;
    775   1.1       mrg #ifdef NFS
    776  1.85  junyoung 	extern int (**nfsv2_vnodeop_p)(void *);
    777   1.1       mrg #endif /* NFS */
    778  1.69   gehenna 	const struct bdevsw *bdev;
    779   1.1       mrg 	dev_t dev;
    780   1.1       mrg 	UVMHIST_FUNC("swap_on"); UVMHIST_CALLED(pdhist);
    781   1.1       mrg 
    782   1.1       mrg 	/*
    783   1.1       mrg 	 * we want to enable swapping on sdp.   the swd_vp contains
    784   1.1       mrg 	 * the vnode we want (locked and ref'd), and the swd_dev
    785   1.1       mrg 	 * contains the dev_t of the file, if it a block device.
    786   1.1       mrg 	 */
    787   1.1       mrg 
    788   1.1       mrg 	vp = sdp->swd_vp;
    789   1.1       mrg 	dev = sdp->swd_dev;
    790   1.1       mrg 
    791   1.1       mrg 	/*
    792   1.1       mrg 	 * open the swap file (mostly useful for block device files to
    793   1.1       mrg 	 * let device driver know what is up).
    794   1.1       mrg 	 *
    795   1.1       mrg 	 * we skip the open/close for root on swap because the root
    796   1.1       mrg 	 * has already been opened when root was mounted (mountroot).
    797   1.1       mrg 	 */
    798   1.1       mrg 	if (vp != rootvp) {
    799  1.80      fvdl 		if ((error = VOP_OPEN(vp, FREAD|FWRITE, p->p_ucred, p)))
    800   1.1       mrg 			return (error);
    801   1.1       mrg 	}
    802   1.1       mrg 
    803   1.1       mrg 	/* XXX this only works for block devices */
    804   1.1       mrg 	UVMHIST_LOG(pdhist, "  dev=%d, major(dev)=%d", dev, major(dev), 0,0);
    805   1.1       mrg 
    806   1.1       mrg 	/*
    807   1.1       mrg 	 * we now need to determine the size of the swap area.   for
    808   1.1       mrg 	 * block specials we can call the d_psize function.
    809   1.1       mrg 	 * for normal files, we must stat [get attrs].
    810   1.1       mrg 	 *
    811   1.1       mrg 	 * we put the result in nblks.
    812   1.1       mrg 	 * for normal files, we also want the filesystem block size
    813   1.1       mrg 	 * (which we get with statfs).
    814   1.1       mrg 	 */
    815   1.1       mrg 	switch (vp->v_type) {
    816   1.1       mrg 	case VBLK:
    817  1.69   gehenna 		bdev = bdevsw_lookup(dev);
    818  1.69   gehenna 		if (bdev == NULL || bdev->d_psize == NULL ||
    819  1.69   gehenna 		    (nblocks = (*bdev->d_psize)(dev)) == -1) {
    820   1.1       mrg 			error = ENXIO;
    821   1.1       mrg 			goto bad;
    822   1.1       mrg 		}
    823   1.1       mrg 		break;
    824   1.1       mrg 
    825   1.1       mrg 	case VREG:
    826  1.80      fvdl 		if ((error = VOP_GETATTR(vp, &va, p->p_ucred, p)))
    827   1.1       mrg 			goto bad;
    828   1.1       mrg 		nblocks = (int)btodb(va.va_size);
    829   1.1       mrg 		if ((error =
    830  1.86  christos 		     VFS_STATVFS(vp->v_mount, &vp->v_mount->mnt_stat, p)) != 0)
    831   1.1       mrg 			goto bad;
    832   1.1       mrg 
    833   1.1       mrg 		sdp->swd_bsize = vp->v_mount->mnt_stat.f_iosize;
    834   1.1       mrg 		/*
    835   1.1       mrg 		 * limit the max # of outstanding I/O requests we issue
    836   1.1       mrg 		 * at any one time.   take it easy on NFS servers.
    837   1.1       mrg 		 */
    838   1.1       mrg #ifdef NFS
    839   1.1       mrg 		if (vp->v_op == nfsv2_vnodeop_p)
    840   1.1       mrg 			sdp->swd_maxactive = 2; /* XXX */
    841   1.1       mrg 		else
    842   1.1       mrg #endif /* NFS */
    843   1.1       mrg 			sdp->swd_maxactive = 8; /* XXX */
    844   1.1       mrg 		break;
    845   1.1       mrg 
    846   1.1       mrg 	default:
    847   1.1       mrg 		error = ENXIO;
    848   1.1       mrg 		goto bad;
    849   1.1       mrg 	}
    850   1.1       mrg 
    851   1.1       mrg 	/*
    852   1.1       mrg 	 * save nblocks in a safe place and convert to pages.
    853   1.1       mrg 	 */
    854   1.1       mrg 
    855  1.16       mrg 	sdp->swd_ose.ose_nblks = nblocks;
    856  1.20       chs 	npages = dbtob((u_int64_t)nblocks) >> PAGE_SHIFT;
    857   1.1       mrg 
    858   1.1       mrg 	/*
    859   1.1       mrg 	 * for block special files, we want to make sure that leave
    860   1.1       mrg 	 * the disklabel and bootblocks alone, so we arrange to skip
    861  1.32       chs 	 * over them (arbitrarily choosing to skip PAGE_SIZE bytes).
    862   1.1       mrg 	 * note that because of this the "size" can be less than the
    863   1.1       mrg 	 * actual number of blocks on the device.
    864   1.1       mrg 	 */
    865   1.1       mrg 	if (vp->v_type == VBLK) {
    866   1.1       mrg 		/* we use pages 1 to (size - 1) [inclusive] */
    867   1.1       mrg 		size = npages - 1;
    868   1.1       mrg 		addr = 1;
    869   1.1       mrg 	} else {
    870   1.1       mrg 		/* we use pages 0 to (size - 1) [inclusive] */
    871   1.1       mrg 		size = npages;
    872   1.1       mrg 		addr = 0;
    873   1.1       mrg 	}
    874   1.1       mrg 
    875   1.1       mrg 	/*
    876   1.1       mrg 	 * make sure we have enough blocks for a reasonable sized swap
    877   1.1       mrg 	 * area.   we want at least one page.
    878   1.1       mrg 	 */
    879   1.1       mrg 
    880   1.1       mrg 	if (size < 1) {
    881   1.1       mrg 		UVMHIST_LOG(pdhist, "  size <= 1!!", 0, 0, 0, 0);
    882   1.1       mrg 		error = EINVAL;
    883   1.1       mrg 		goto bad;
    884   1.1       mrg 	}
    885   1.1       mrg 
    886   1.1       mrg 	UVMHIST_LOG(pdhist, "  dev=%x: size=%d addr=%ld\n", dev, size, addr, 0);
    887   1.1       mrg 
    888   1.1       mrg 	/*
    889   1.1       mrg 	 * now we need to allocate an extent to manage this swap device
    890   1.1       mrg 	 */
    891   1.1       mrg 
    892  1.90      yamt 	sdp->swd_blist = blist_create(npages);
    893  1.90      yamt 	/* mark all expect the `saved' region free. */
    894  1.90      yamt 	blist_free(sdp->swd_blist, addr, size);
    895   1.1       mrg 
    896   1.1       mrg 	/*
    897  1.51       chs 	 * if the vnode we are swapping to is the root vnode
    898   1.1       mrg 	 * (i.e. we are swapping to the miniroot) then we want
    899  1.51       chs 	 * to make sure we don't overwrite it.   do a statfs to
    900   1.1       mrg 	 * find its size and skip over it.
    901   1.1       mrg 	 */
    902   1.1       mrg 	if (vp == rootvp) {
    903   1.1       mrg 		struct mount *mp;
    904  1.86  christos 		struct statvfs *sp;
    905   1.1       mrg 		int rootblocks, rootpages;
    906   1.1       mrg 
    907   1.1       mrg 		mp = rootvnode->v_mount;
    908   1.1       mrg 		sp = &mp->mnt_stat;
    909  1.86  christos 		rootblocks = sp->f_blocks * btodb(sp->f_frsize);
    910  1.64  fredette 		/*
    911  1.64  fredette 		 * XXX: sp->f_blocks isn't the total number of
    912  1.64  fredette 		 * blocks in the filesystem, it's the number of
    913  1.64  fredette 		 * data blocks.  so, our rootblocks almost
    914  1.85  junyoung 		 * definitely underestimates the total size
    915  1.64  fredette 		 * of the filesystem - how badly depends on the
    916  1.85  junyoung 		 * details of the filesystem type.  there isn't
    917  1.64  fredette 		 * an obvious way to deal with this cleanly
    918  1.85  junyoung 		 * and perfectly, so for now we just pad our
    919  1.64  fredette 		 * rootblocks estimate with an extra 5 percent.
    920  1.64  fredette 		 */
    921  1.64  fredette 		rootblocks += (rootblocks >> 5) +
    922  1.64  fredette 			(rootblocks >> 6) +
    923  1.64  fredette 			(rootblocks >> 7);
    924  1.20       chs 		rootpages = round_page(dbtob(rootblocks)) >> PAGE_SHIFT;
    925  1.32       chs 		if (rootpages > size)
    926   1.1       mrg 			panic("swap_on: miniroot larger than swap?");
    927   1.1       mrg 
    928  1.90      yamt 		if (rootpages != blist_fill(sdp->swd_blist, addr, rootpages)) {
    929   1.1       mrg 			panic("swap_on: unable to preserve miniroot");
    930  1.90      yamt 		}
    931   1.1       mrg 
    932  1.32       chs 		size -= rootpages;
    933   1.1       mrg 		printf("Preserved %d pages of miniroot ", rootpages);
    934  1.32       chs 		printf("leaving %d pages of swap\n", size);
    935   1.1       mrg 	}
    936   1.1       mrg 
    937  1.39       chs 	/*
    938  1.39       chs 	 * add a ref to vp to reflect usage as a swap device.
    939  1.39       chs 	 */
    940  1.39       chs 	vref(vp);
    941  1.39       chs 
    942   1.1       mrg 	/*
    943   1.1       mrg 	 * now add the new swapdev to the drum and enable.
    944   1.1       mrg 	 */
    945  1.48      fvdl 	if (extent_alloc(swapmap, npages, EX_NOALIGN, EX_NOBOUNDARY,
    946  1.48      fvdl 	    EX_WAITOK, &result))
    947  1.48      fvdl 		panic("swapdrum_add");
    948  1.48      fvdl 
    949  1.48      fvdl 	sdp->swd_drumoffset = (int)result;
    950  1.48      fvdl 	sdp->swd_drumsize = npages;
    951  1.48      fvdl 	sdp->swd_npages = size;
    952  1.26       chs 	simple_lock(&uvm.swap_data_lock);
    953   1.1       mrg 	sdp->swd_flags &= ~SWF_FAKE;	/* going live */
    954   1.1       mrg 	sdp->swd_flags |= (SWF_INUSE|SWF_ENABLE);
    955  1.32       chs 	uvmexp.swpages += size;
    956  1.81        pk 	uvmexp.swpgavail += size;
    957  1.26       chs 	simple_unlock(&uvm.swap_data_lock);
    958   1.1       mrg 	return (0);
    959   1.1       mrg 
    960   1.1       mrg 	/*
    961  1.43       chs 	 * failure: clean up and return error.
    962   1.1       mrg 	 */
    963  1.43       chs 
    964  1.43       chs bad:
    965  1.90      yamt 	if (sdp->swd_blist) {
    966  1.90      yamt 		blist_destroy(sdp->swd_blist);
    967  1.43       chs 	}
    968  1.43       chs 	if (vp != rootvp) {
    969  1.80      fvdl 		(void)VOP_CLOSE(vp, FREAD|FWRITE, p->p_ucred, p);
    970  1.43       chs 	}
    971   1.1       mrg 	return (error);
    972   1.1       mrg }
    973   1.1       mrg 
    974   1.1       mrg /*
    975   1.1       mrg  * swap_off: stop swapping on swapdev
    976   1.1       mrg  *
    977  1.32       chs  * => swap data should be locked, we will unlock.
    978   1.1       mrg  */
    979   1.1       mrg static int
    980  1.80      fvdl swap_off(p, sdp)
    981  1.80      fvdl 	struct proc *p;
    982   1.1       mrg 	struct swapdev *sdp;
    983   1.1       mrg {
    984  1.91      yamt 	int npages = sdp->swd_npages;
    985  1.91      yamt 	int error = 0;
    986  1.81        pk 
    987   1.1       mrg 	UVMHIST_FUNC("swap_off"); UVMHIST_CALLED(pdhist);
    988  1.81        pk 	UVMHIST_LOG(pdhist, "  dev=%x, npages=%d", sdp->swd_dev,npages,0,0);
    989   1.1       mrg 
    990  1.32       chs 	/* disable the swap area being removed */
    991   1.1       mrg 	sdp->swd_flags &= ~SWF_ENABLE;
    992  1.81        pk 	uvmexp.swpgavail -= npages;
    993  1.32       chs 	simple_unlock(&uvm.swap_data_lock);
    994  1.32       chs 
    995  1.32       chs 	/*
    996  1.32       chs 	 * the idea is to find all the pages that are paged out to this
    997  1.32       chs 	 * device, and page them all in.  in uvm, swap-backed pageable
    998  1.32       chs 	 * memory can take two forms: aobjs and anons.  call the
    999  1.32       chs 	 * swapoff hook for each subsystem to bring in pages.
   1000  1.32       chs 	 */
   1001   1.1       mrg 
   1002  1.32       chs 	if (uao_swap_off(sdp->swd_drumoffset,
   1003  1.32       chs 			 sdp->swd_drumoffset + sdp->swd_drumsize) ||
   1004  1.91      yamt 	    amap_swap_off(sdp->swd_drumoffset,
   1005  1.32       chs 			  sdp->swd_drumoffset + sdp->swd_drumsize)) {
   1006  1.91      yamt 		error = ENOMEM;
   1007  1.91      yamt 	} else if (sdp->swd_npginuse > sdp->swd_npgbad) {
   1008  1.91      yamt 		error = EBUSY;
   1009  1.91      yamt 	}
   1010  1.51       chs 
   1011  1.91      yamt 	if (error) {
   1012  1.32       chs 		simple_lock(&uvm.swap_data_lock);
   1013  1.32       chs 		sdp->swd_flags |= SWF_ENABLE;
   1014  1.81        pk 		uvmexp.swpgavail += npages;
   1015  1.32       chs 		simple_unlock(&uvm.swap_data_lock);
   1016  1.91      yamt 
   1017  1.91      yamt 		return error;
   1018  1.32       chs 	}
   1019   1.1       mrg 
   1020   1.1       mrg 	/*
   1021  1.58     enami 	 * done with the vnode.
   1022  1.39       chs 	 * drop our ref on the vnode before calling VOP_CLOSE()
   1023  1.39       chs 	 * so that spec_close() can tell if this is the last close.
   1024   1.1       mrg 	 */
   1025  1.39       chs 	vrele(sdp->swd_vp);
   1026  1.32       chs 	if (sdp->swd_vp != rootvp) {
   1027  1.80      fvdl 		(void) VOP_CLOSE(sdp->swd_vp, FREAD|FWRITE, p->p_ucred, p);
   1028  1.32       chs 	}
   1029  1.32       chs 
   1030  1.32       chs 	simple_lock(&uvm.swap_data_lock);
   1031  1.81        pk 	uvmexp.swpages -= npages;
   1032  1.82        pk 	uvmexp.swpginuse -= sdp->swd_npgbad;
   1033   1.1       mrg 
   1034  1.32       chs 	if (swaplist_find(sdp->swd_vp, 1) == NULL)
   1035  1.70    provos 		panic("swap_off: swapdev not in list");
   1036  1.32       chs 	swaplist_trim();
   1037  1.48      fvdl 	simple_unlock(&uvm.swap_data_lock);
   1038   1.1       mrg 
   1039  1.32       chs 	/*
   1040  1.32       chs 	 * free all resources!
   1041  1.32       chs 	 */
   1042  1.32       chs 	extent_free(swapmap, sdp->swd_drumoffset, sdp->swd_drumsize,
   1043  1.32       chs 		    EX_WAITOK);
   1044  1.90      yamt 	blist_destroy(sdp->swd_blist);
   1045  1.66   hannken 	bufq_free(&sdp->swd_tab);
   1046  1.32       chs 	free(sdp, M_VMSWAP);
   1047   1.1       mrg 	return (0);
   1048   1.1       mrg }
   1049   1.1       mrg 
   1050   1.1       mrg /*
   1051   1.1       mrg  * /dev/drum interface and i/o functions
   1052   1.1       mrg  */
   1053   1.1       mrg 
   1054   1.1       mrg /*
   1055   1.1       mrg  * swread: the read function for the drum (just a call to physio)
   1056   1.1       mrg  */
   1057   1.1       mrg /*ARGSUSED*/
   1058   1.1       mrg int
   1059   1.1       mrg swread(dev, uio, ioflag)
   1060   1.1       mrg 	dev_t dev;
   1061   1.1       mrg 	struct uio *uio;
   1062   1.1       mrg 	int ioflag;
   1063   1.1       mrg {
   1064   1.1       mrg 	UVMHIST_FUNC("swread"); UVMHIST_CALLED(pdhist);
   1065   1.1       mrg 
   1066   1.1       mrg 	UVMHIST_LOG(pdhist, "  dev=%x offset=%qx", dev, uio->uio_offset, 0, 0);
   1067   1.1       mrg 	return (physio(swstrategy, NULL, dev, B_READ, minphys, uio));
   1068   1.1       mrg }
   1069   1.1       mrg 
   1070   1.1       mrg /*
   1071   1.1       mrg  * swwrite: the write function for the drum (just a call to physio)
   1072   1.1       mrg  */
   1073   1.1       mrg /*ARGSUSED*/
   1074   1.1       mrg int
   1075   1.1       mrg swwrite(dev, uio, ioflag)
   1076   1.1       mrg 	dev_t dev;
   1077   1.1       mrg 	struct uio *uio;
   1078   1.1       mrg 	int ioflag;
   1079   1.1       mrg {
   1080   1.1       mrg 	UVMHIST_FUNC("swwrite"); UVMHIST_CALLED(pdhist);
   1081   1.1       mrg 
   1082   1.1       mrg 	UVMHIST_LOG(pdhist, "  dev=%x offset=%qx", dev, uio->uio_offset, 0, 0);
   1083   1.1       mrg 	return (physio(swstrategy, NULL, dev, B_WRITE, minphys, uio));
   1084   1.1       mrg }
   1085   1.1       mrg 
   1086   1.1       mrg /*
   1087   1.1       mrg  * swstrategy: perform I/O on the drum
   1088   1.1       mrg  *
   1089   1.1       mrg  * => we must map the i/o request from the drum to the correct swapdev.
   1090   1.1       mrg  */
   1091   1.1       mrg void
   1092   1.1       mrg swstrategy(bp)
   1093   1.1       mrg 	struct buf *bp;
   1094   1.1       mrg {
   1095   1.1       mrg 	struct swapdev *sdp;
   1096   1.1       mrg 	struct vnode *vp;
   1097  1.25       chs 	int s, pageno, bn;
   1098   1.1       mrg 	UVMHIST_FUNC("swstrategy"); UVMHIST_CALLED(pdhist);
   1099   1.1       mrg 
   1100   1.1       mrg 	/*
   1101   1.1       mrg 	 * convert block number to swapdev.   note that swapdev can't
   1102   1.1       mrg 	 * be yanked out from under us because we are holding resources
   1103   1.1       mrg 	 * in it (i.e. the blocks we are doing I/O on).
   1104   1.1       mrg 	 */
   1105  1.41       chs 	pageno = dbtob((int64_t)bp->b_blkno) >> PAGE_SHIFT;
   1106  1.26       chs 	simple_lock(&uvm.swap_data_lock);
   1107   1.1       mrg 	sdp = swapdrum_getsdp(pageno);
   1108  1.26       chs 	simple_unlock(&uvm.swap_data_lock);
   1109   1.1       mrg 	if (sdp == NULL) {
   1110   1.1       mrg 		bp->b_error = EINVAL;
   1111   1.1       mrg 		bp->b_flags |= B_ERROR;
   1112   1.1       mrg 		biodone(bp);
   1113   1.1       mrg 		UVMHIST_LOG(pdhist, "  failed to get swap device", 0, 0, 0, 0);
   1114   1.1       mrg 		return;
   1115   1.1       mrg 	}
   1116   1.1       mrg 
   1117   1.1       mrg 	/*
   1118   1.1       mrg 	 * convert drum page number to block number on this swapdev.
   1119   1.1       mrg 	 */
   1120   1.1       mrg 
   1121  1.32       chs 	pageno -= sdp->swd_drumoffset;	/* page # on swapdev */
   1122  1.44     enami 	bn = btodb((u_int64_t)pageno << PAGE_SHIFT); /* convert to diskblock */
   1123   1.1       mrg 
   1124  1.41       chs 	UVMHIST_LOG(pdhist, "  %s: mapoff=%x bn=%x bcount=%ld",
   1125   1.1       mrg 		((bp->b_flags & B_READ) == 0) ? "write" : "read",
   1126   1.1       mrg 		sdp->swd_drumoffset, bn, bp->b_bcount);
   1127   1.1       mrg 
   1128   1.1       mrg 	/*
   1129   1.1       mrg 	 * for block devices we finish up here.
   1130  1.32       chs 	 * for regular files we have to do more work which we delegate
   1131   1.1       mrg 	 * to sw_reg_strategy().
   1132   1.1       mrg 	 */
   1133   1.1       mrg 
   1134   1.1       mrg 	switch (sdp->swd_vp->v_type) {
   1135   1.1       mrg 	default:
   1136   1.1       mrg 		panic("swstrategy: vnode type 0x%x", sdp->swd_vp->v_type);
   1137  1.32       chs 
   1138   1.1       mrg 	case VBLK:
   1139   1.1       mrg 
   1140   1.1       mrg 		/*
   1141   1.1       mrg 		 * must convert "bp" from an I/O on /dev/drum to an I/O
   1142   1.1       mrg 		 * on the swapdev (sdp).
   1143   1.1       mrg 		 */
   1144  1.25       chs 		s = splbio();
   1145   1.1       mrg 		bp->b_blkno = bn;		/* swapdev block number */
   1146   1.1       mrg 		vp = sdp->swd_vp;		/* swapdev vnode pointer */
   1147   1.1       mrg 		bp->b_dev = sdp->swd_dev;	/* swapdev dev_t */
   1148   1.1       mrg 
   1149   1.1       mrg 		/*
   1150   1.1       mrg 		 * if we are doing a write, we have to redirect the i/o on
   1151   1.1       mrg 		 * drum's v_numoutput counter to the swapdevs.
   1152   1.1       mrg 		 */
   1153   1.1       mrg 		if ((bp->b_flags & B_READ) == 0) {
   1154   1.1       mrg 			vwakeup(bp);	/* kills one 'v_numoutput' on drum */
   1155  1.76        pk 			V_INCR_NUMOUTPUT(vp);	/* put it on swapdev */
   1156   1.1       mrg 		}
   1157   1.1       mrg 
   1158  1.41       chs 		/*
   1159   1.1       mrg 		 * finally plug in swapdev vnode and start I/O
   1160   1.1       mrg 		 */
   1161   1.1       mrg 		bp->b_vp = vp;
   1162  1.25       chs 		splx(s);
   1163  1.84   hannken 		VOP_STRATEGY(vp, bp);
   1164   1.1       mrg 		return;
   1165  1.32       chs 
   1166   1.1       mrg 	case VREG:
   1167   1.1       mrg 		/*
   1168  1.32       chs 		 * delegate to sw_reg_strategy function.
   1169   1.1       mrg 		 */
   1170   1.1       mrg 		sw_reg_strategy(sdp, bp, bn);
   1171   1.1       mrg 		return;
   1172   1.1       mrg 	}
   1173   1.1       mrg 	/* NOTREACHED */
   1174   1.1       mrg }
   1175   1.1       mrg 
   1176   1.1       mrg /*
   1177   1.1       mrg  * sw_reg_strategy: handle swap i/o to regular files
   1178   1.1       mrg  */
   1179   1.1       mrg static void
   1180   1.1       mrg sw_reg_strategy(sdp, bp, bn)
   1181   1.1       mrg 	struct swapdev	*sdp;
   1182   1.1       mrg 	struct buf	*bp;
   1183   1.1       mrg 	int		bn;
   1184   1.1       mrg {
   1185   1.1       mrg 	struct vnode	*vp;
   1186   1.1       mrg 	struct vndxfer	*vnx;
   1187  1.44     enami 	daddr_t		nbn;
   1188   1.1       mrg 	caddr_t		addr;
   1189  1.44     enami 	off_t		byteoff;
   1190   1.9       mrg 	int		s, off, nra, error, sz, resid;
   1191   1.1       mrg 	UVMHIST_FUNC("sw_reg_strategy"); UVMHIST_CALLED(pdhist);
   1192   1.1       mrg 
   1193   1.1       mrg 	/*
   1194   1.1       mrg 	 * allocate a vndxfer head for this transfer and point it to
   1195   1.1       mrg 	 * our buffer.
   1196   1.1       mrg 	 */
   1197  1.12        pk 	getvndxfer(vnx);
   1198   1.1       mrg 	vnx->vx_flags = VX_BUSY;
   1199   1.1       mrg 	vnx->vx_error = 0;
   1200   1.1       mrg 	vnx->vx_pending = 0;
   1201   1.1       mrg 	vnx->vx_bp = bp;
   1202   1.1       mrg 	vnx->vx_sdp = sdp;
   1203   1.1       mrg 
   1204   1.1       mrg 	/*
   1205   1.1       mrg 	 * setup for main loop where we read filesystem blocks into
   1206   1.1       mrg 	 * our buffer.
   1207   1.1       mrg 	 */
   1208   1.1       mrg 	error = 0;
   1209   1.1       mrg 	bp->b_resid = bp->b_bcount;	/* nothing transfered yet! */
   1210   1.1       mrg 	addr = bp->b_data;		/* current position in buffer */
   1211  1.44     enami 	byteoff = dbtob((u_int64_t)bn);
   1212   1.1       mrg 
   1213   1.1       mrg 	for (resid = bp->b_resid; resid; resid -= sz) {
   1214   1.1       mrg 		struct vndbuf	*nbp;
   1215   1.1       mrg 
   1216   1.1       mrg 		/*
   1217   1.1       mrg 		 * translate byteoffset into block number.  return values:
   1218   1.1       mrg 		 *   vp = vnode of underlying device
   1219   1.1       mrg 		 *  nbn = new block number (on underlying vnode dev)
   1220   1.1       mrg 		 *  nra = num blocks we can read-ahead (excludes requested
   1221   1.1       mrg 		 *	block)
   1222   1.1       mrg 		 */
   1223   1.1       mrg 		nra = 0;
   1224   1.1       mrg 		error = VOP_BMAP(sdp->swd_vp, byteoff / sdp->swd_bsize,
   1225   1.1       mrg 				 	&vp, &nbn, &nra);
   1226   1.1       mrg 
   1227  1.32       chs 		if (error == 0 && nbn == (daddr_t)-1) {
   1228  1.51       chs 			/*
   1229  1.23      marc 			 * this used to just set error, but that doesn't
   1230  1.23      marc 			 * do the right thing.  Instead, it causes random
   1231  1.23      marc 			 * memory errors.  The panic() should remain until
   1232  1.23      marc 			 * this condition doesn't destabilize the system.
   1233  1.23      marc 			 */
   1234  1.23      marc #if 1
   1235  1.23      marc 			panic("sw_reg_strategy: swap to sparse file");
   1236  1.23      marc #else
   1237   1.1       mrg 			error = EIO;	/* failure */
   1238  1.23      marc #endif
   1239  1.23      marc 		}
   1240   1.1       mrg 
   1241   1.1       mrg 		/*
   1242   1.1       mrg 		 * punt if there was an error or a hole in the file.
   1243   1.1       mrg 		 * we must wait for any i/o ops we have already started
   1244   1.1       mrg 		 * to finish before returning.
   1245   1.1       mrg 		 *
   1246   1.1       mrg 		 * XXX we could deal with holes here but it would be
   1247   1.1       mrg 		 * a hassle (in the write case).
   1248   1.1       mrg 		 */
   1249   1.1       mrg 		if (error) {
   1250   1.1       mrg 			s = splbio();
   1251   1.1       mrg 			vnx->vx_error = error;	/* pass error up */
   1252   1.1       mrg 			goto out;
   1253   1.1       mrg 		}
   1254   1.1       mrg 
   1255   1.1       mrg 		/*
   1256   1.1       mrg 		 * compute the size ("sz") of this transfer (in bytes).
   1257   1.1       mrg 		 */
   1258  1.41       chs 		off = byteoff % sdp->swd_bsize;
   1259  1.41       chs 		sz = (1 + nra) * sdp->swd_bsize - off;
   1260  1.41       chs 		if (sz > resid)
   1261   1.1       mrg 			sz = resid;
   1262   1.1       mrg 
   1263  1.41       chs 		UVMHIST_LOG(pdhist, "sw_reg_strategy: "
   1264  1.41       chs 			    "vp %p/%p offset 0x%x/0x%x",
   1265  1.41       chs 			    sdp->swd_vp, vp, byteoff, nbn);
   1266   1.1       mrg 
   1267   1.1       mrg 		/*
   1268   1.1       mrg 		 * now get a buf structure.   note that the vb_buf is
   1269   1.1       mrg 		 * at the front of the nbp structure so that you can
   1270   1.1       mrg 		 * cast pointers between the two structure easily.
   1271   1.1       mrg 		 */
   1272  1.12        pk 		getvndbuf(nbp);
   1273  1.77   thorpej 		BUF_INIT(&nbp->vb_buf);
   1274   1.1       mrg 		nbp->vb_buf.b_flags    = bp->b_flags | B_CALL;
   1275   1.1       mrg 		nbp->vb_buf.b_bcount   = sz;
   1276  1.12        pk 		nbp->vb_buf.b_bufsize  = sz;
   1277   1.1       mrg 		nbp->vb_buf.b_error    = 0;
   1278   1.1       mrg 		nbp->vb_buf.b_data     = addr;
   1279  1.41       chs 		nbp->vb_buf.b_lblkno   = 0;
   1280   1.1       mrg 		nbp->vb_buf.b_blkno    = nbn + btodb(off);
   1281  1.34   thorpej 		nbp->vb_buf.b_rawblkno = nbp->vb_buf.b_blkno;
   1282   1.1       mrg 		nbp->vb_buf.b_iodone   = sw_reg_iodone;
   1283  1.53       chs 		nbp->vb_buf.b_vp       = vp;
   1284  1.53       chs 		if (vp->v_type == VBLK) {
   1285  1.53       chs 			nbp->vb_buf.b_dev = vp->v_rdev;
   1286  1.53       chs 		}
   1287   1.1       mrg 
   1288   1.1       mrg 		nbp->vb_xfer = vnx;	/* patch it back in to vnx */
   1289   1.1       mrg 
   1290   1.1       mrg 		/*
   1291   1.1       mrg 		 * Just sort by block number
   1292   1.1       mrg 		 */
   1293   1.1       mrg 		s = splbio();
   1294   1.1       mrg 		if (vnx->vx_error != 0) {
   1295   1.1       mrg 			putvndbuf(nbp);
   1296   1.1       mrg 			goto out;
   1297   1.1       mrg 		}
   1298   1.1       mrg 		vnx->vx_pending++;
   1299   1.1       mrg 
   1300   1.1       mrg 		/* sort it in and start I/O if we are not over our limit */
   1301  1.65   hannken 		BUFQ_PUT(&sdp->swd_tab, &nbp->vb_buf);
   1302   1.1       mrg 		sw_reg_start(sdp);
   1303   1.1       mrg 		splx(s);
   1304   1.1       mrg 
   1305   1.1       mrg 		/*
   1306   1.1       mrg 		 * advance to the next I/O
   1307   1.1       mrg 		 */
   1308   1.9       mrg 		byteoff += sz;
   1309   1.1       mrg 		addr += sz;
   1310   1.1       mrg 	}
   1311   1.1       mrg 
   1312   1.1       mrg 	s = splbio();
   1313   1.1       mrg 
   1314   1.1       mrg out: /* Arrive here at splbio */
   1315   1.1       mrg 	vnx->vx_flags &= ~VX_BUSY;
   1316   1.1       mrg 	if (vnx->vx_pending == 0) {
   1317   1.1       mrg 		if (vnx->vx_error != 0) {
   1318   1.1       mrg 			bp->b_error = vnx->vx_error;
   1319   1.1       mrg 			bp->b_flags |= B_ERROR;
   1320   1.1       mrg 		}
   1321   1.1       mrg 		putvndxfer(vnx);
   1322   1.1       mrg 		biodone(bp);
   1323   1.1       mrg 	}
   1324   1.1       mrg 	splx(s);
   1325   1.1       mrg }
   1326   1.1       mrg 
   1327   1.1       mrg /*
   1328   1.1       mrg  * sw_reg_start: start an I/O request on the requested swapdev
   1329   1.1       mrg  *
   1330  1.65   hannken  * => reqs are sorted by b_rawblkno (above)
   1331   1.1       mrg  */
   1332   1.1       mrg static void
   1333   1.1       mrg sw_reg_start(sdp)
   1334   1.1       mrg 	struct swapdev	*sdp;
   1335   1.1       mrg {
   1336   1.1       mrg 	struct buf	*bp;
   1337   1.1       mrg 	UVMHIST_FUNC("sw_reg_start"); UVMHIST_CALLED(pdhist);
   1338   1.1       mrg 
   1339   1.8       mrg 	/* recursion control */
   1340   1.1       mrg 	if ((sdp->swd_flags & SWF_BUSY) != 0)
   1341   1.1       mrg 		return;
   1342   1.1       mrg 
   1343   1.1       mrg 	sdp->swd_flags |= SWF_BUSY;
   1344   1.1       mrg 
   1345  1.33   thorpej 	while (sdp->swd_active < sdp->swd_maxactive) {
   1346  1.65   hannken 		bp = BUFQ_GET(&sdp->swd_tab);
   1347   1.1       mrg 		if (bp == NULL)
   1348   1.1       mrg 			break;
   1349  1.33   thorpej 		sdp->swd_active++;
   1350   1.1       mrg 
   1351   1.1       mrg 		UVMHIST_LOG(pdhist,
   1352   1.1       mrg 		    "sw_reg_start:  bp %p vp %p blkno %p cnt %lx",
   1353   1.1       mrg 		    bp, bp->b_vp, bp->b_blkno, bp->b_bcount);
   1354   1.1       mrg 		if ((bp->b_flags & B_READ) == 0)
   1355  1.76        pk 			V_INCR_NUMOUTPUT(bp->b_vp);
   1356  1.41       chs 
   1357  1.84   hannken 		VOP_STRATEGY(bp->b_vp, bp);
   1358   1.1       mrg 	}
   1359   1.1       mrg 	sdp->swd_flags &= ~SWF_BUSY;
   1360   1.1       mrg }
   1361   1.1       mrg 
   1362   1.1       mrg /*
   1363   1.1       mrg  * sw_reg_iodone: one of our i/o's has completed and needs post-i/o cleanup
   1364   1.1       mrg  *
   1365   1.1       mrg  * => note that we can recover the vndbuf struct by casting the buf ptr
   1366   1.1       mrg  */
   1367   1.1       mrg static void
   1368   1.1       mrg sw_reg_iodone(bp)
   1369   1.1       mrg 	struct buf *bp;
   1370   1.1       mrg {
   1371   1.1       mrg 	struct vndbuf *vbp = (struct vndbuf *) bp;
   1372   1.1       mrg 	struct vndxfer *vnx = vbp->vb_xfer;
   1373   1.1       mrg 	struct buf *pbp = vnx->vx_bp;		/* parent buffer */
   1374   1.1       mrg 	struct swapdev	*sdp = vnx->vx_sdp;
   1375  1.72       chs 	int s, resid, error;
   1376   1.1       mrg 	UVMHIST_FUNC("sw_reg_iodone"); UVMHIST_CALLED(pdhist);
   1377   1.1       mrg 
   1378   1.1       mrg 	UVMHIST_LOG(pdhist, "  vbp=%p vp=%p blkno=%x addr=%p",
   1379   1.1       mrg 	    vbp, vbp->vb_buf.b_vp, vbp->vb_buf.b_blkno, vbp->vb_buf.b_data);
   1380   1.1       mrg 	UVMHIST_LOG(pdhist, "  cnt=%lx resid=%lx",
   1381   1.1       mrg 	    vbp->vb_buf.b_bcount, vbp->vb_buf.b_resid, 0, 0);
   1382   1.1       mrg 
   1383   1.1       mrg 	/*
   1384   1.1       mrg 	 * protect vbp at splbio and update.
   1385   1.1       mrg 	 */
   1386   1.1       mrg 
   1387   1.1       mrg 	s = splbio();
   1388   1.1       mrg 	resid = vbp->vb_buf.b_bcount - vbp->vb_buf.b_resid;
   1389   1.1       mrg 	pbp->b_resid -= resid;
   1390   1.1       mrg 	vnx->vx_pending--;
   1391   1.1       mrg 
   1392  1.72       chs 	if (vbp->vb_buf.b_flags & B_ERROR) {
   1393   1.1       mrg 		/* pass error upward */
   1394  1.72       chs 		error = vbp->vb_buf.b_error ? vbp->vb_buf.b_error : EIO;
   1395  1.72       chs 		UVMHIST_LOG(pdhist, "  got error=%d !", error, 0, 0, 0);
   1396  1.72       chs 		vnx->vx_error = error;
   1397  1.35       chs 	}
   1398  1.35       chs 
   1399  1.35       chs 	/*
   1400   1.1       mrg 	 * kill vbp structure
   1401   1.1       mrg 	 */
   1402   1.1       mrg 	putvndbuf(vbp);
   1403   1.1       mrg 
   1404   1.1       mrg 	/*
   1405   1.1       mrg 	 * wrap up this transaction if it has run to completion or, in
   1406   1.1       mrg 	 * case of an error, when all auxiliary buffers have returned.
   1407   1.1       mrg 	 */
   1408   1.1       mrg 	if (vnx->vx_error != 0) {
   1409   1.1       mrg 		/* pass error upward */
   1410   1.1       mrg 		pbp->b_flags |= B_ERROR;
   1411   1.1       mrg 		pbp->b_error = vnx->vx_error;
   1412   1.1       mrg 		if ((vnx->vx_flags & VX_BUSY) == 0 && vnx->vx_pending == 0) {
   1413   1.1       mrg 			putvndxfer(vnx);
   1414   1.1       mrg 			biodone(pbp);
   1415   1.1       mrg 		}
   1416  1.11        pk 	} else if (pbp->b_resid == 0) {
   1417  1.46       chs 		KASSERT(vnx->vx_pending == 0);
   1418   1.1       mrg 		if ((vnx->vx_flags & VX_BUSY) == 0) {
   1419   1.8       mrg 			UVMHIST_LOG(pdhist, "  iodone error=%d !",
   1420   1.8       mrg 			    pbp, vnx->vx_error, 0, 0);
   1421   1.8       mrg 			putvndxfer(vnx);
   1422   1.1       mrg 			biodone(pbp);
   1423   1.1       mrg 		}
   1424   1.1       mrg 	}
   1425   1.1       mrg 
   1426   1.1       mrg 	/*
   1427   1.1       mrg 	 * done!   start next swapdev I/O if one is pending
   1428   1.1       mrg 	 */
   1429  1.33   thorpej 	sdp->swd_active--;
   1430   1.1       mrg 	sw_reg_start(sdp);
   1431   1.1       mrg 	splx(s);
   1432   1.1       mrg }
   1433   1.1       mrg 
   1434   1.1       mrg 
   1435   1.1       mrg /*
   1436   1.1       mrg  * uvm_swap_alloc: allocate space on swap
   1437   1.1       mrg  *
   1438   1.1       mrg  * => allocation is done "round robin" down the priority list, as we
   1439   1.1       mrg  *	allocate in a priority we "rotate" the circle queue.
   1440   1.1       mrg  * => space can be freed with uvm_swap_free
   1441   1.1       mrg  * => we return the page slot number in /dev/drum (0 == invalid slot)
   1442  1.26       chs  * => we lock uvm.swap_data_lock
   1443   1.1       mrg  * => XXXMRG: "LESSOK" INTERFACE NEEDED TO EXTENT SYSTEM
   1444   1.1       mrg  */
   1445   1.1       mrg int
   1446   1.1       mrg uvm_swap_alloc(nslots, lessok)
   1447   1.1       mrg 	int *nslots;	/* IN/OUT */
   1448   1.1       mrg 	boolean_t lessok;
   1449   1.1       mrg {
   1450   1.1       mrg 	struct swapdev *sdp;
   1451   1.1       mrg 	struct swappri *spp;
   1452   1.1       mrg 	UVMHIST_FUNC("uvm_swap_alloc"); UVMHIST_CALLED(pdhist);
   1453   1.1       mrg 
   1454   1.1       mrg 	/*
   1455   1.1       mrg 	 * no swap devices configured yet?   definite failure.
   1456   1.1       mrg 	 */
   1457   1.1       mrg 	if (uvmexp.nswapdev < 1)
   1458   1.1       mrg 		return 0;
   1459  1.51       chs 
   1460   1.1       mrg 	/*
   1461   1.1       mrg 	 * lock data lock, convert slots into blocks, and enter loop
   1462   1.1       mrg 	 */
   1463  1.26       chs 	simple_lock(&uvm.swap_data_lock);
   1464   1.1       mrg 
   1465   1.1       mrg ReTry:	/* XXXMRG */
   1466  1.55       chs 	LIST_FOREACH(spp, &swap_priority, spi_swappri) {
   1467  1.55       chs 		CIRCLEQ_FOREACH(sdp, &spp->spi_swapdev, swd_next) {
   1468  1.90      yamt 			uint64_t result;
   1469  1.90      yamt 
   1470   1.1       mrg 			/* if it's not enabled, then we can't swap from it */
   1471   1.1       mrg 			if ((sdp->swd_flags & SWF_ENABLE) == 0)
   1472   1.1       mrg 				continue;
   1473   1.1       mrg 			if (sdp->swd_npginuse + *nslots > sdp->swd_npages)
   1474   1.1       mrg 				continue;
   1475  1.90      yamt 			result = blist_alloc(sdp->swd_blist, *nslots);
   1476  1.90      yamt 			if (result == BLIST_NONE) {
   1477   1.1       mrg 				continue;
   1478   1.1       mrg 			}
   1479  1.90      yamt 			KASSERT(result < sdp->swd_drumsize);
   1480   1.1       mrg 
   1481   1.1       mrg 			/*
   1482   1.1       mrg 			 * successful allocation!  now rotate the circleq.
   1483   1.1       mrg 			 */
   1484   1.1       mrg 			CIRCLEQ_REMOVE(&spp->spi_swapdev, sdp, swd_next);
   1485   1.1       mrg 			CIRCLEQ_INSERT_TAIL(&spp->spi_swapdev, sdp, swd_next);
   1486   1.1       mrg 			sdp->swd_npginuse += *nslots;
   1487   1.1       mrg 			uvmexp.swpginuse += *nslots;
   1488  1.26       chs 			simple_unlock(&uvm.swap_data_lock);
   1489   1.1       mrg 			/* done!  return drum slot number */
   1490   1.1       mrg 			UVMHIST_LOG(pdhist,
   1491   1.1       mrg 			    "success!  returning %d slots starting at %d",
   1492   1.1       mrg 			    *nslots, result + sdp->swd_drumoffset, 0, 0);
   1493  1.55       chs 			return (result + sdp->swd_drumoffset);
   1494   1.1       mrg 		}
   1495   1.1       mrg 	}
   1496   1.1       mrg 
   1497   1.1       mrg 	/* XXXMRG: BEGIN HACK */
   1498   1.1       mrg 	if (*nslots > 1 && lessok) {
   1499   1.1       mrg 		*nslots = 1;
   1500  1.90      yamt 		/* XXXMRG: ugh!  blist should support this for us */
   1501  1.90      yamt 		goto ReTry;
   1502   1.1       mrg 	}
   1503   1.1       mrg 	/* XXXMRG: END HACK */
   1504   1.1       mrg 
   1505  1.26       chs 	simple_unlock(&uvm.swap_data_lock);
   1506  1.55       chs 	return 0;
   1507   1.1       mrg }
   1508   1.1       mrg 
   1509  1.81        pk boolean_t
   1510  1.81        pk uvm_swapisfull(void)
   1511  1.81        pk {
   1512  1.81        pk 	boolean_t rv;
   1513  1.81        pk 
   1514  1.81        pk 	simple_lock(&uvm.swap_data_lock);
   1515  1.81        pk 	KASSERT(uvmexp.swpgonly <= uvmexp.swpages);
   1516  1.81        pk 	rv = (uvmexp.swpgonly >= uvmexp.swpgavail);
   1517  1.81        pk 	simple_unlock(&uvm.swap_data_lock);
   1518  1.81        pk 
   1519  1.81        pk 	return (rv);
   1520  1.81        pk }
   1521  1.81        pk 
   1522   1.1       mrg /*
   1523  1.32       chs  * uvm_swap_markbad: keep track of swap ranges where we've had i/o errors
   1524  1.32       chs  *
   1525  1.32       chs  * => we lock uvm.swap_data_lock
   1526  1.32       chs  */
   1527  1.32       chs void
   1528  1.32       chs uvm_swap_markbad(startslot, nslots)
   1529  1.32       chs 	int startslot;
   1530  1.32       chs 	int nslots;
   1531  1.32       chs {
   1532  1.32       chs 	struct swapdev *sdp;
   1533  1.32       chs 	UVMHIST_FUNC("uvm_swap_markbad"); UVMHIST_CALLED(pdhist);
   1534  1.32       chs 
   1535  1.32       chs 	simple_lock(&uvm.swap_data_lock);
   1536  1.32       chs 	sdp = swapdrum_getsdp(startslot);
   1537  1.82        pk 	KASSERT(sdp != NULL);
   1538  1.32       chs 
   1539  1.32       chs 	/*
   1540  1.32       chs 	 * we just keep track of how many pages have been marked bad
   1541  1.32       chs 	 * in this device, to make everything add up in swap_off().
   1542  1.32       chs 	 * we assume here that the range of slots will all be within
   1543  1.32       chs 	 * one swap device.
   1544  1.32       chs 	 */
   1545  1.41       chs 
   1546  1.82        pk 	KASSERT(uvmexp.swpgonly >= nslots);
   1547  1.82        pk 	uvmexp.swpgonly -= nslots;
   1548  1.32       chs 	sdp->swd_npgbad += nslots;
   1549  1.41       chs 	UVMHIST_LOG(pdhist, "now %d bad", sdp->swd_npgbad, 0,0,0);
   1550  1.32       chs 	simple_unlock(&uvm.swap_data_lock);
   1551  1.32       chs }
   1552  1.32       chs 
   1553  1.32       chs /*
   1554   1.1       mrg  * uvm_swap_free: free swap slots
   1555   1.1       mrg  *
   1556   1.1       mrg  * => this can be all or part of an allocation made by uvm_swap_alloc
   1557  1.26       chs  * => we lock uvm.swap_data_lock
   1558   1.1       mrg  */
   1559   1.1       mrg void
   1560   1.1       mrg uvm_swap_free(startslot, nslots)
   1561   1.1       mrg 	int startslot;
   1562   1.1       mrg 	int nslots;
   1563   1.1       mrg {
   1564   1.1       mrg 	struct swapdev *sdp;
   1565   1.1       mrg 	UVMHIST_FUNC("uvm_swap_free"); UVMHIST_CALLED(pdhist);
   1566   1.1       mrg 
   1567   1.1       mrg 	UVMHIST_LOG(pdhist, "freeing %d slots starting at %d", nslots,
   1568   1.1       mrg 	    startslot, 0, 0);
   1569  1.32       chs 
   1570  1.32       chs 	/*
   1571  1.32       chs 	 * ignore attempts to free the "bad" slot.
   1572  1.32       chs 	 */
   1573  1.46       chs 
   1574  1.32       chs 	if (startslot == SWSLOT_BAD) {
   1575  1.32       chs 		return;
   1576  1.32       chs 	}
   1577  1.32       chs 
   1578   1.1       mrg 	/*
   1579  1.51       chs 	 * convert drum slot offset back to sdp, free the blocks
   1580  1.51       chs 	 * in the extent, and return.   must hold pri lock to do
   1581   1.1       mrg 	 * lookup and access the extent.
   1582   1.1       mrg 	 */
   1583  1.46       chs 
   1584  1.26       chs 	simple_lock(&uvm.swap_data_lock);
   1585   1.1       mrg 	sdp = swapdrum_getsdp(startslot);
   1586  1.46       chs 	KASSERT(uvmexp.nswapdev >= 1);
   1587  1.46       chs 	KASSERT(sdp != NULL);
   1588  1.46       chs 	KASSERT(sdp->swd_npginuse >= nslots);
   1589  1.90      yamt 	blist_free(sdp->swd_blist, startslot - sdp->swd_drumoffset, nslots);
   1590   1.1       mrg 	sdp->swd_npginuse -= nslots;
   1591   1.1       mrg 	uvmexp.swpginuse -= nslots;
   1592  1.26       chs 	simple_unlock(&uvm.swap_data_lock);
   1593   1.1       mrg }
   1594   1.1       mrg 
   1595   1.1       mrg /*
   1596   1.1       mrg  * uvm_swap_put: put any number of pages into a contig place on swap
   1597   1.1       mrg  *
   1598   1.1       mrg  * => can be sync or async
   1599   1.1       mrg  */
   1600  1.54       chs 
   1601   1.1       mrg int
   1602   1.1       mrg uvm_swap_put(swslot, ppsp, npages, flags)
   1603   1.1       mrg 	int swslot;
   1604   1.1       mrg 	struct vm_page **ppsp;
   1605  1.54       chs 	int npages;
   1606  1.54       chs 	int flags;
   1607   1.1       mrg {
   1608  1.56       chs 	int error;
   1609   1.1       mrg 
   1610  1.56       chs 	error = uvm_swap_io(ppsp, swslot, npages, B_WRITE |
   1611   1.1       mrg 	    ((flags & PGO_SYNCIO) ? 0 : B_ASYNC));
   1612  1.56       chs 	return error;
   1613   1.1       mrg }
   1614   1.1       mrg 
   1615   1.1       mrg /*
   1616   1.1       mrg  * uvm_swap_get: get a single page from swap
   1617   1.1       mrg  *
   1618   1.1       mrg  * => usually a sync op (from fault)
   1619   1.1       mrg  */
   1620  1.54       chs 
   1621   1.1       mrg int
   1622   1.1       mrg uvm_swap_get(page, swslot, flags)
   1623   1.1       mrg 	struct vm_page *page;
   1624   1.1       mrg 	int swslot, flags;
   1625   1.1       mrg {
   1626  1.56       chs 	int error;
   1627   1.1       mrg 
   1628   1.1       mrg 	uvmexp.nswget++;
   1629  1.46       chs 	KASSERT(flags & PGO_SYNCIO);
   1630  1.32       chs 	if (swslot == SWSLOT_BAD) {
   1631  1.47       chs 		return EIO;
   1632  1.32       chs 	}
   1633  1.81        pk 
   1634  1.56       chs 	error = uvm_swap_io(&page, swslot, 1, B_READ |
   1635   1.1       mrg 	    ((flags & PGO_SYNCIO) ? 0 : B_ASYNC));
   1636  1.56       chs 	if (error == 0) {
   1637  1.47       chs 
   1638  1.26       chs 		/*
   1639  1.54       chs 		 * this page is no longer only in swap.
   1640  1.26       chs 		 */
   1641  1.47       chs 
   1642  1.26       chs 		simple_lock(&uvm.swap_data_lock);
   1643  1.56       chs 		KASSERT(uvmexp.swpgonly > 0);
   1644  1.54       chs 		uvmexp.swpgonly--;
   1645  1.26       chs 		simple_unlock(&uvm.swap_data_lock);
   1646  1.26       chs 	}
   1647  1.56       chs 	return error;
   1648   1.1       mrg }
   1649   1.1       mrg 
   1650   1.1       mrg /*
   1651   1.1       mrg  * uvm_swap_io: do an i/o operation to swap
   1652   1.1       mrg  */
   1653   1.1       mrg 
   1654   1.1       mrg static int
   1655   1.1       mrg uvm_swap_io(pps, startslot, npages, flags)
   1656   1.1       mrg 	struct vm_page **pps;
   1657   1.1       mrg 	int startslot, npages, flags;
   1658   1.1       mrg {
   1659   1.1       mrg 	daddr_t startblk;
   1660   1.1       mrg 	struct	buf *bp;
   1661  1.15       eeh 	vaddr_t kva;
   1662  1.54       chs 	int	error, s, mapinflags;
   1663  1.41       chs 	boolean_t write, async;
   1664   1.1       mrg 	UVMHIST_FUNC("uvm_swap_io"); UVMHIST_CALLED(pdhist);
   1665   1.1       mrg 
   1666   1.1       mrg 	UVMHIST_LOG(pdhist, "<- called, startslot=%d, npages=%d, flags=%d",
   1667   1.1       mrg 	    startslot, npages, flags, 0);
   1668  1.32       chs 
   1669  1.41       chs 	write = (flags & B_READ) == 0;
   1670  1.41       chs 	async = (flags & B_ASYNC) != 0;
   1671  1.41       chs 
   1672   1.1       mrg 	/*
   1673   1.1       mrg 	 * convert starting drum slot to block number
   1674   1.1       mrg 	 */
   1675  1.54       chs 
   1676  1.44     enami 	startblk = btodb((u_int64_t)startslot << PAGE_SHIFT);
   1677   1.1       mrg 
   1678   1.1       mrg 	/*
   1679  1.54       chs 	 * first, map the pages into the kernel.
   1680  1.41       chs 	 */
   1681  1.41       chs 
   1682  1.54       chs 	mapinflags = !write ?
   1683  1.54       chs 		UVMPAGER_MAPIN_WAITOK|UVMPAGER_MAPIN_READ :
   1684  1.54       chs 		UVMPAGER_MAPIN_WAITOK|UVMPAGER_MAPIN_WRITE;
   1685  1.41       chs 	kva = uvm_pagermapin(pps, npages, mapinflags);
   1686   1.1       mrg 
   1687  1.51       chs 	/*
   1688  1.41       chs 	 * now allocate a buf for the i/o.
   1689   1.1       mrg 	 */
   1690  1.54       chs 
   1691   1.1       mrg 	s = splbio();
   1692  1.54       chs 	bp = pool_get(&bufpool, PR_WAITOK);
   1693  1.41       chs 	splx(s);
   1694   1.1       mrg 
   1695   1.1       mrg 	/*
   1696   1.1       mrg 	 * fill in the bp/sbp.   we currently route our i/o through
   1697   1.1       mrg 	 * /dev/drum's vnode [swapdev_vp].
   1698   1.1       mrg 	 */
   1699  1.54       chs 
   1700  1.77   thorpej 	BUF_INIT(bp);
   1701  1.21   mycroft 	bp->b_flags = B_BUSY | B_NOCACHE | (flags & (B_READ|B_ASYNC));
   1702   1.1       mrg 	bp->b_proc = &proc0;	/* XXX */
   1703  1.12        pk 	bp->b_vnbufs.le_next = NOLIST;
   1704   1.1       mrg 	bp->b_data = (caddr_t)kva;
   1705   1.1       mrg 	bp->b_blkno = startblk;
   1706   1.1       mrg 	bp->b_vp = swapdev_vp;
   1707  1.41       chs 	bp->b_bufsize = bp->b_bcount = npages << PAGE_SHIFT;
   1708   1.1       mrg 
   1709  1.51       chs 	/*
   1710  1.41       chs 	 * bump v_numoutput (counter of number of active outputs).
   1711   1.1       mrg 	 */
   1712  1.54       chs 
   1713  1.41       chs 	if (write) {
   1714   1.1       mrg 		s = splbio();
   1715  1.76        pk 		V_INCR_NUMOUTPUT(swapdev_vp);
   1716   1.1       mrg 		splx(s);
   1717   1.1       mrg 	}
   1718   1.1       mrg 
   1719   1.1       mrg 	/*
   1720  1.41       chs 	 * for async ops we must set up the iodone handler.
   1721   1.1       mrg 	 */
   1722  1.54       chs 
   1723  1.41       chs 	if (async) {
   1724  1.54       chs 		bp->b_flags |= B_CALL;
   1725  1.41       chs 		bp->b_iodone = uvm_aio_biodone;
   1726   1.1       mrg 		UVMHIST_LOG(pdhist, "doing async!", 0, 0, 0, 0);
   1727  1.83      yamt 		if (curproc == uvm.pagedaemon_proc)
   1728  1.83      yamt 			BIO_SETPRIO(bp, BPRIO_TIMECRITICAL);
   1729  1.83      yamt 		else
   1730  1.83      yamt 			BIO_SETPRIO(bp, BPRIO_TIMELIMITED);
   1731  1.83      yamt 	} else {
   1732  1.83      yamt 		BIO_SETPRIO(bp, BPRIO_TIMECRITICAL);
   1733   1.1       mrg 	}
   1734   1.1       mrg 	UVMHIST_LOG(pdhist,
   1735  1.41       chs 	    "about to start io: data = %p blkno = 0x%x, bcount = %ld",
   1736   1.1       mrg 	    bp->b_data, bp->b_blkno, bp->b_bcount, 0);
   1737   1.1       mrg 
   1738   1.1       mrg 	/*
   1739   1.1       mrg 	 * now we start the I/O, and if async, return.
   1740   1.1       mrg 	 */
   1741  1.54       chs 
   1742  1.84   hannken 	VOP_STRATEGY(swapdev_vp, bp);
   1743  1.41       chs 	if (async)
   1744  1.47       chs 		return 0;
   1745   1.1       mrg 
   1746   1.1       mrg 	/*
   1747   1.1       mrg 	 * must be sync i/o.   wait for it to finish
   1748   1.1       mrg 	 */
   1749  1.54       chs 
   1750  1.47       chs 	error = biowait(bp);
   1751   1.1       mrg 
   1752   1.1       mrg 	/*
   1753   1.1       mrg 	 * kill the pager mapping
   1754   1.1       mrg 	 */
   1755  1.54       chs 
   1756   1.1       mrg 	uvm_pagermapout(kva, npages);
   1757   1.1       mrg 
   1758   1.1       mrg 	/*
   1759  1.54       chs 	 * now dispose of the buf and we're done.
   1760   1.1       mrg 	 */
   1761  1.54       chs 
   1762   1.1       mrg 	s = splbio();
   1763  1.41       chs 	if (write)
   1764  1.41       chs 		vwakeup(bp);
   1765  1.41       chs 	pool_put(&bufpool, bp);
   1766   1.1       mrg 	splx(s);
   1767  1.47       chs 	UVMHIST_LOG(pdhist, "<- done (sync)  error=%d", error, 0, 0, 0);
   1768  1.47       chs 	return (error);
   1769   1.1       mrg }
   1770