#include "opt_ddb.h"
#include "opt_watchdog.h"
#include <sys/param.h>
#include <sys/systm.h>
#include <sys/asan.h>
#include <sys/bio.h>
#include <sys/buf.h>
#include <sys/capsicum.h>
#include <sys/condvar.h>
#include <sys/conf.h>
#include <sys/counter.h>
#include <sys/dirent.h>
#include <sys/event.h>
#include <sys/eventhandler.h>
#include <sys/extattr.h>
#include <sys/file.h>
#include <sys/fcntl.h>
#include <sys/inotify.h>
#include <sys/jail.h>
#include <sys/kdb.h>
#include <sys/kernel.h>
#include <sys/kthread.h>
#include <sys/ktr.h>
#include <sys/limits.h>
#include <sys/lockf.h>
#include <sys/malloc.h>
#include <sys/mount.h>
#include <sys/namei.h>
#include <sys/pctrie.h>
#include <sys/priv.h>
#include <sys/reboot.h>
#include <sys/refcount.h>
#include <sys/rwlock.h>
#include <sys/sched.h>
#include <sys/sleepqueue.h>
#include <sys/smr.h>
#include <sys/smp.h>
#include <sys/stat.h>
#include <sys/stdarg.h>
#include <sys/sysctl.h>
#include <sys/syslog.h>
#include <sys/user.h>
#include <sys/vmmeter.h>
#include <sys/vnode.h>
#include <sys/watchdog.h>
#include <security/mac/mac_framework.h>
#include <vm/vm.h>
#include <vm/vm_object.h>
#include <vm/vm_extern.h>
#include <vm/pmap.h>
#include <vm/vm_map.h>
#include <vm/vm_page.h>
#include <vm/vm_kern.h>
#include <vm/vnode_pager.h>
#include <vm/uma.h>
#ifdef DDB
#include <ddb/ddb.h>
#endif
static void delmntque(struct vnode *vp);
static int flushbuflist(struct bufv *bufv, int flags, struct bufobj *bo,
int slpflag, int slptimeo);
static void syncer_shutdown(void *arg, int howto);
static int vtryrecycle(struct vnode *vp, bool isvnlru);
static void v_init_counters(struct vnode *);
static void vn_seqc_init(struct vnode *);
static void vn_seqc_write_end_free(struct vnode *vp);
static void vgonel(struct vnode *);
static bool vhold_recycle_free(struct vnode *);
static void vdropl_recycle(struct vnode *vp);
static void vdrop_recycle(struct vnode *vp);
static void vfs_knllock(void *arg);
static void vfs_knlunlock(void *arg);
static void vfs_knl_assert_lock(void *arg, int what);
static void destroy_vpollinfo(struct vpollinfo *vi);
static int v_inval_buf_range_locked(struct vnode *vp, struct bufobj *bo,
daddr_t startlbn, daddr_t endlbn);
static void vnlru_recalc(void);
static SYSCTL_NODE(_vfs, OID_AUTO, vnode, CTLFLAG_RW | CTLFLAG_MPSAFE, 0,
"vnode configuration and statistics");
static SYSCTL_NODE(_vfs_vnode, OID_AUTO, param, CTLFLAG_RW | CTLFLAG_MPSAFE, 0,
"vnode configuration");
static SYSCTL_NODE(_vfs_vnode, OID_AUTO, stats, CTLFLAG_RW | CTLFLAG_MPSAFE, 0,
"vnode statistics");
static SYSCTL_NODE(_vfs_vnode, OID_AUTO, vnlru, CTLFLAG_RW | CTLFLAG_MPSAFE, 0,
"vnode recycling");
static u_long __exclusive_cache_line numvnodes;
SYSCTL_ULONG(_vfs, OID_AUTO, numvnodes, CTLFLAG_RD, &numvnodes, 0,
"Number of vnodes in existence (legacy)");
SYSCTL_ULONG(_vfs_vnode_stats, OID_AUTO, count, CTLFLAG_RD, &numvnodes, 0,
"Number of vnodes in existence");
static counter_u64_t vnodes_created;
SYSCTL_COUNTER_U64(_vfs, OID_AUTO, vnodes_created, CTLFLAG_RD, &vnodes_created,
"Number of vnodes created by getnewvnode (legacy)");
SYSCTL_COUNTER_U64(_vfs_vnode_stats, OID_AUTO, created, CTLFLAG_RD, &vnodes_created,
"Number of vnodes created by getnewvnode");
__enum_uint8(vtype) iftovt_tab[16] = {
VNON, VFIFO, VCHR, VNON, VDIR, VNON, VBLK, VNON,
VREG, VNON, VLNK, VNON, VSOCK, VNON, VNON, VNON
};
int vttoif_tab[10] = {
0, S_IFREG, S_IFDIR, S_IFBLK, S_IFCHR, S_IFLNK,
S_IFSOCK, S_IFIFO, S_IFMT, S_IFMT
};
static TAILQ_HEAD(freelst, vnode) vnode_list;
static struct vnode *vnode_list_free_marker;
static struct vnode *vnode_list_reclaim_marker;
static long wantfreevnodes;
static long __exclusive_cache_line freevnodes;
static long freevnodes_old;
static u_long recycles_count;
SYSCTL_ULONG(_vfs, OID_AUTO, recycles, CTLFLAG_RD | CTLFLAG_STATS, &recycles_count, 0,
"Number of vnodes recycled to meet vnode cache targets (legacy)");
SYSCTL_ULONG(_vfs_vnode_vnlru, OID_AUTO, recycles, CTLFLAG_RD | CTLFLAG_STATS,
&recycles_count, 0,
"Number of vnodes recycled to meet vnode cache targets");
static u_long recycles_free_count;
SYSCTL_ULONG(_vfs, OID_AUTO, recycles_free, CTLFLAG_RD | CTLFLAG_STATS,
&recycles_free_count, 0,
"Number of free vnodes recycled to meet vnode cache targets (legacy)");
SYSCTL_ULONG(_vfs_vnode_vnlru, OID_AUTO, recycles_free, CTLFLAG_RD | CTLFLAG_STATS,
&recycles_free_count, 0,
"Number of free vnodes recycled to meet vnode cache targets");
static counter_u64_t direct_recycles_free_count;
SYSCTL_COUNTER_U64(_vfs_vnode_vnlru, OID_AUTO, direct_recycles_free, CTLFLAG_RD,
&direct_recycles_free_count,
"Number of free vnodes recycled by vn_alloc callers to meet vnode cache targets");
static counter_u64_t vnode_skipped_requeues;
SYSCTL_COUNTER_U64(_vfs_vnode_stats, OID_AUTO, skipped_requeues, CTLFLAG_RD, &vnode_skipped_requeues,
"Number of times LRU requeue was skipped due to lock contention");
static __read_mostly bool vnode_can_skip_requeue;
SYSCTL_BOOL(_vfs_vnode_param, OID_AUTO, can_skip_requeue, CTLFLAG_RW,
&vnode_can_skip_requeue, 0, "Is LRU requeue skippable");
static u_long deferred_inact;
SYSCTL_ULONG(_vfs, OID_AUTO, deferred_inact, CTLFLAG_RD,
&deferred_inact, 0, "Number of times inactive processing was deferred");
static struct mtx mntid_mtx;
static struct mtx __exclusive_cache_line vnode_list_mtx;
struct nfs_public nfs_pub;
static uma_zone_t buf_trie_zone;
static smr_t buf_trie_smr;
static uma_zone_t vnode_zone;
MALLOC_DEFINE(M_VNODEPOLL, "VN POLL", "vnode poll");
__read_frequently smr_t vfs_smr;
static int syncer_delayno;
static long syncer_mask;
LIST_HEAD(synclist, bufobj);
static struct synclist *syncer_workitem_pending;
static struct mtx sync_mtx;
static struct cv sync_wakeup;
#define SYNCER_MAXDELAY 32
static int syncer_maxdelay = SYNCER_MAXDELAY;
static int syncdelay = 30;
static int filedelay = 30;
SYSCTL_INT(_kern, OID_AUTO, filedelay, CTLFLAG_RW, &filedelay, 0,
"Time to delay syncing files (in seconds)");
static int dirdelay = 29;
SYSCTL_INT(_kern, OID_AUTO, dirdelay, CTLFLAG_RW, &dirdelay, 0,
"Time to delay syncing directories (in seconds)");
static int metadelay = 28;
SYSCTL_INT(_kern, OID_AUTO, metadelay, CTLFLAG_RW, &metadelay, 0,
"Time to delay syncing metadata (in seconds)");
static int rushjob;
static int stat_rush_requests;
SYSCTL_INT(_debug, OID_AUTO, rush_requests, CTLFLAG_RW, &stat_rush_requests, 0,
"Number of times I/O speeded up (rush requests)");
#define VDBATCH_SIZE 8
struct vdbatch {
u_int index;
struct mtx lock;
struct vnode *tab[VDBATCH_SIZE];
};
DPCPU_DEFINE_STATIC(struct vdbatch, vd);
static void vdbatch_dequeue(struct vnode *vp);
#define SYNCER_SHUTDOWN_SPEEDUP 32
static int sync_vnode_count;
static int syncer_worklist_len;
static enum { SYNCER_RUNNING, SYNCER_SHUTTING_DOWN, SYNCER_FINAL_DELAY }
syncer_state;
u_long desiredvnodes;
static u_long gapvnodes;
static u_long vhiwat;
static u_long vlowat;
static bool vstir;
static volatile int vsmalltrigger = 8;
static u_long vnlru_read_freevnodes(void);
static int
sysctl_maxvnodes(SYSCTL_HANDLER_ARGS)
{
u_long val;
int error;
val = desiredvnodes;
error = sysctl_handle_long(oidp, &val, 0, req);
if (error != 0 || req->newptr == NULL)
return (error);
if (val == desiredvnodes)
return (0);
mtx_lock(&vnode_list_mtx);
desiredvnodes = val;
wantfreevnodes = desiredvnodes / 4;
vnlru_recalc();
mtx_unlock(&vnode_list_mtx);
vfs_hash_changesize(desiredvnodes);
cache_changesize(desiredvnodes);
return (0);
}
SYSCTL_PROC(_kern, KERN_MAXVNODES, maxvnodes,
CTLTYPE_ULONG | CTLFLAG_MPSAFE | CTLFLAG_RW, NULL, 0, sysctl_maxvnodes,
"LU", "Target for maximum number of vnodes (legacy)");
SYSCTL_PROC(_vfs_vnode_param, OID_AUTO, limit,
CTLTYPE_ULONG | CTLFLAG_MPSAFE | CTLFLAG_RW, NULL, 0, sysctl_maxvnodes,
"LU", "Target for maximum number of vnodes");
static int
sysctl_freevnodes(SYSCTL_HANDLER_ARGS)
{
u_long rfreevnodes;
rfreevnodes = vnlru_read_freevnodes();
return (sysctl_handle_long(oidp, &rfreevnodes, 0, req));
}
SYSCTL_PROC(_vfs, OID_AUTO, freevnodes,
CTLTYPE_ULONG | CTLFLAG_MPSAFE | CTLFLAG_RD, NULL, 0, sysctl_freevnodes,
"LU", "Number of \"free\" vnodes (legacy)");
SYSCTL_PROC(_vfs_vnode_stats, OID_AUTO, free,
CTLTYPE_ULONG | CTLFLAG_MPSAFE | CTLFLAG_RD, NULL, 0, sysctl_freevnodes,
"LU", "Number of \"free\" vnodes");
static int
sysctl_wantfreevnodes(SYSCTL_HANDLER_ARGS)
{
u_long val;
int error;
val = wantfreevnodes;
error = sysctl_handle_long(oidp, &val, 0, req);
if (error != 0 || req->newptr == NULL)
return (error);
if (val == wantfreevnodes)
return (0);
mtx_lock(&vnode_list_mtx);
wantfreevnodes = val;
vnlru_recalc();
mtx_unlock(&vnode_list_mtx);
return (0);
}
SYSCTL_PROC(_vfs, OID_AUTO, wantfreevnodes,
CTLTYPE_ULONG | CTLFLAG_MPSAFE | CTLFLAG_RW, NULL, 0, sysctl_wantfreevnodes,
"LU", "Target for minimum number of \"free\" vnodes (legacy)");
SYSCTL_PROC(_vfs_vnode_param, OID_AUTO, wantfree,
CTLTYPE_ULONG | CTLFLAG_MPSAFE | CTLFLAG_RW, NULL, 0, sysctl_wantfreevnodes,
"LU", "Target for minimum number of \"free\" vnodes");
static int vnlru_nowhere;
SYSCTL_INT(_vfs_vnode_vnlru, OID_AUTO, failed_runs, CTLFLAG_RD | CTLFLAG_STATS,
&vnlru_nowhere, 0, "Number of times the vnlru process ran without success");
static int
sysctl_try_reclaim_vnode(SYSCTL_HANDLER_ARGS)
{
struct vnode *vp;
struct nameidata nd;
char *buf;
unsigned long ndflags;
int error;
if (req->newptr == NULL)
return (EINVAL);
if (req->newlen >= PATH_MAX)
return (E2BIG);
buf = malloc(PATH_MAX, M_TEMP, M_WAITOK);
error = SYSCTL_IN(req, buf, req->newlen);
if (error != 0)
goto out;
buf[req->newlen] = '\0';
ndflags = LOCKLEAF | NOFOLLOW | AUDITVNODE1;
NDINIT(&nd, LOOKUP, ndflags, UIO_SYSSPACE, buf);
if ((error = namei(&nd)) != 0)
goto out;
vp = nd.ni_vp;
if (VN_IS_DOOMED(vp)) {
error = EAGAIN;
goto putvnode;
}
vgone(vp);
putvnode:
vput(vp);
NDFREE_PNBUF(&nd);
out:
free(buf, M_TEMP);
return (error);
}
static int
sysctl_ftry_reclaim_vnode(SYSCTL_HANDLER_ARGS)
{
struct thread *td = curthread;
struct vnode *vp;
struct file *fp;
int error;
int fd;
if (req->newptr == NULL)
return (EBADF);
error = sysctl_handle_int(oidp, &fd, 0, req);
if (error != 0)
return (error);
error = getvnode(curthread, fd, &cap_fcntl_rights, &fp);
if (error != 0)
return (error);
vp = fp->f_vnode;
error = vn_lock(vp, LK_EXCLUSIVE);
if (error != 0)
goto drop;
vgone(vp);
VOP_UNLOCK(vp);
drop:
fdrop(fp, td);
return (error);
}
SYSCTL_PROC(_debug, OID_AUTO, try_reclaim_vnode,
CTLTYPE_STRING | CTLFLAG_MPSAFE | CTLFLAG_WR, NULL, 0,
sysctl_try_reclaim_vnode, "A", "Try to reclaim a vnode by its pathname");
SYSCTL_PROC(_debug, OID_AUTO, ftry_reclaim_vnode,
CTLTYPE_INT | CTLFLAG_MPSAFE | CTLFLAG_WR, NULL, 0,
sysctl_ftry_reclaim_vnode, "I",
"Try to reclaim a vnode by its file descriptor");
#define vnsz2log 8
#ifndef DEBUG_LOCKS
_Static_assert(sizeof(struct vnode) >= 1UL << vnsz2log &&
sizeof(struct vnode) < 1UL << (vnsz2log + 1),
"vnsz2log needs to be updated");
#endif
static void *
buf_trie_alloc(struct pctrie *ptree)
{
return (uma_zalloc_smr(buf_trie_zone, M_NOWAIT));
}
static void
buf_trie_free(struct pctrie *ptree, void *node)
{
uma_zfree_smr(buf_trie_zone, node);
}
PCTRIE_DEFINE_SMR(BUF, buf, b_lblkno, buf_trie_alloc, buf_trie_free,
buf_trie_smr);
static struct buf *
buf_lookup_ge(struct bufv *bv, daddr_t lblkno)
{
struct buf *bp;
bp = BUF_PCTRIE_LOOKUP_GE(&bv->bv_root, lblkno);
if (bp == NULL && lblkno < 0)
bp = BUF_PCTRIE_LOOKUP_GE(&bv->bv_root, 0);
if (bp != NULL && bp->b_lblkno < lblkno)
bp = NULL;
return (bp);
}
static int
buf_insert_lookup_le(struct bufv *bv, struct buf *bp, struct buf **n)
{
int error;
error = BUF_PCTRIE_INSERT_LOOKUP_LE(&bv->bv_root, bp, n);
if (error != EEXIST) {
if (*n == NULL && bp->b_lblkno >= 0)
*n = BUF_PCTRIE_LOOKUP_LE(&bv->bv_root, ~0L);
if (*n != NULL && (*n)->b_lblkno >= bp->b_lblkno)
*n = NULL;
}
return (error);
}
#ifndef MAXVNODES_MAX
#define MAXVNODES_MAX (512UL * 1024 * 1024 / 64)
#endif
static MALLOC_DEFINE(M_VNODE_MARKER, "vnodemarker", "vnode marker");
static struct vnode *
vn_alloc_marker(struct mount *mp)
{
struct vnode *vp;
vp = malloc(sizeof(struct vnode), M_VNODE_MARKER, M_WAITOK | M_ZERO);
vp->v_type = VMARKER;
vp->v_mount = mp;
return (vp);
}
static void
vn_free_marker(struct vnode *vp)
{
MPASS(vp->v_type == VMARKER);
free(vp, M_VNODE_MARKER);
}
#ifdef KASAN
static int
vnode_ctor(void *mem, int size, void *arg __unused, int flags __unused)
{
kasan_mark(mem, size, roundup2(size, UMA_ALIGN_PTR + 1), 0);
return (0);
}
static void
vnode_dtor(void *mem, int size, void *arg __unused)
{
size_t end1, end2, off1, off2;
_Static_assert(offsetof(struct vnode, v_vnodelist) <
offsetof(struct vnode, v_dbatchcpu),
"KASAN marks require updating");
off1 = offsetof(struct vnode, v_vnodelist);
off2 = offsetof(struct vnode, v_dbatchcpu);
end1 = off1 + sizeof(((struct vnode *)NULL)->v_vnodelist);
end2 = off2 + sizeof(((struct vnode *)NULL)->v_dbatchcpu);
off1 = rounddown2(off1, KASAN_SHADOW_SCALE);
kasan_mark(mem, off1, off1, KASAN_UMA_FREED);
off1 = roundup2(end1, KASAN_SHADOW_SCALE);
off2 = rounddown2(off2, KASAN_SHADOW_SCALE);
if (off2 > off1)
kasan_mark((void *)((char *)mem + off1), off2 - off1,
off2 - off1, KASAN_UMA_FREED);
off2 = roundup2(end2, KASAN_SHADOW_SCALE);
kasan_mark((void *)((char *)mem + off2), size - off2, size - off2,
KASAN_UMA_FREED);
}
#endif
static int
vnode_init(void *mem, int size, int flags)
{
struct vnode *vp;
vp = mem;
bzero(vp, size);
vp->v_vnlock = &vp->v_lock;
mtx_init(&vp->v_interlock, "vnode interlock", NULL, MTX_DEF);
lockinit(vp->v_vnlock, PVFS, "vnode", VLKTIMEOUT,
LK_NOSHARE | LK_IS_VNODE);
bufobj_init(&vp->v_bufobj, vp);
cache_vnode_init(vp);
rangelock_init(&vp->v_rl);
vp->v_dbatchcpu = NOCPU;
vp->v_state = VSTATE_DEAD;
vp->v_holdcnt = VHOLD_NO_SMR;
vp->v_type = VNON;
mtx_lock(&vnode_list_mtx);
TAILQ_INSERT_BEFORE(vnode_list_free_marker, vp, v_vnodelist);
mtx_unlock(&vnode_list_mtx);
return (0);
}
static void
vnode_fini(void *mem, int size)
{
struct vnode *vp;
struct bufobj *bo;
vp = mem;
vdbatch_dequeue(vp);
mtx_lock(&vnode_list_mtx);
TAILQ_REMOVE(&vnode_list, vp, v_vnodelist);
mtx_unlock(&vnode_list_mtx);
rangelock_destroy(&vp->v_rl);
lockdestroy(vp->v_vnlock);
mtx_destroy(&vp->v_interlock);
bo = &vp->v_bufobj;
rw_destroy(BO_LOCKPTR(bo));
kasan_mark(mem, size, size, 0);
}
#ifdef _LP64
#define NFS_NCLNODE_SZ (528 + 64)
#define NC_SZ 148
#else
#define NFS_NCLNODE_SZ (360 + 32)
#define NC_SZ 92
#endif
static void
vntblinit(void *dummy __unused)
{
struct vdbatch *vd;
uma_ctor ctor;
uma_dtor dtor;
int cpu, physvnodes, virtvnodes;
physvnodes = maxproc + pgtok(vm_cnt.v_page_count) / 32 +
min(98304 * 16, pgtok(vm_cnt.v_page_count)) / 32;
virtvnodes = vm_kmem_size / (10 * (sizeof(struct vm_object) +
sizeof(struct vnode) + NC_SZ * ncsizefactor + NFS_NCLNODE_SZ));
desiredvnodes = min(physvnodes, virtvnodes);
if (desiredvnodes > MAXVNODES_MAX) {
if (bootverbose)
printf("Reducing kern.maxvnodes %lu -> %lu\n",
desiredvnodes, MAXVNODES_MAX);
desiredvnodes = MAXVNODES_MAX;
}
wantfreevnodes = desiredvnodes / 4;
mtx_init(&mntid_mtx, "mntid", NULL, MTX_DEF);
TAILQ_INIT(&vnode_list);
mtx_init(&vnode_list_mtx, "vnode_list", NULL, MTX_DEF);
mtx_lock(&vnode_list_mtx);
vnlru_recalc();
mtx_unlock(&vnode_list_mtx);
vnode_list_free_marker = vn_alloc_marker(NULL);
TAILQ_INSERT_HEAD(&vnode_list, vnode_list_free_marker, v_vnodelist);
vnode_list_reclaim_marker = vn_alloc_marker(NULL);
TAILQ_INSERT_HEAD(&vnode_list, vnode_list_reclaim_marker, v_vnodelist);
#ifdef KASAN
ctor = vnode_ctor;
dtor = vnode_dtor;
#else
ctor = NULL;
dtor = NULL;
#endif
vnode_zone = uma_zcreate("VNODE", sizeof(struct vnode), ctor, dtor,
vnode_init, vnode_fini, UMA_ALIGN_PTR, UMA_ZONE_NOKASAN);
uma_zone_set_smr(vnode_zone, vfs_smr);
buf_trie_zone = uma_zcreate("BUF TRIE", pctrie_node_size(),
NULL, NULL, pctrie_zone_init, NULL, UMA_ALIGN_PTR,
UMA_ZONE_NOFREE | UMA_ZONE_SMR);
buf_trie_smr = uma_zone_get_smr(buf_trie_zone);
uma_prealloc(buf_trie_zone, nbuf);
vnodes_created = counter_u64_alloc(M_WAITOK);
direct_recycles_free_count = counter_u64_alloc(M_WAITOK);
vnode_skipped_requeues = counter_u64_alloc(M_WAITOK);
syncer_workitem_pending = hashinit(syncer_maxdelay, M_VNODE,
&syncer_mask);
syncer_maxdelay = syncer_mask + 1;
mtx_init(&sync_mtx, "Syncer mtx", NULL, MTX_DEF);
cv_init(&sync_wakeup, "syncer");
CPU_FOREACH(cpu) {
vd = DPCPU_ID_PTR((cpu), vd);
bzero(vd, sizeof(*vd));
mtx_init(&vd->lock, "vdbatch", NULL, MTX_DEF);
}
}
SYSINIT(vfs, SI_SUB_VFS, SI_ORDER_FIRST, vntblinit, NULL);
int
vfs_busy(struct mount *mp, int flags)
{
struct mount_pcpu *mpcpu;
MPASS((flags & ~MBF_MASK) == 0);
CTR3(KTR_VFS, "%s: mp %p with flags %d", __func__, mp, flags);
if (vfs_op_thread_enter(mp, mpcpu)) {
MPASS((mp->mnt_kern_flag & MNTK_DRAINING) == 0);
MPASS((mp->mnt_kern_flag & MNTK_UNMOUNT) == 0);
MPASS((mp->mnt_kern_flag & MNTK_REFEXPIRE) == 0);
vfs_mp_count_add_pcpu(mpcpu, ref, 1);
vfs_mp_count_add_pcpu(mpcpu, lockref, 1);
vfs_op_thread_exit(mp, mpcpu);
if (flags & MBF_MNTLSTLOCK)
mtx_unlock(&mountlist_mtx);
return (0);
}
MNT_ILOCK(mp);
vfs_assert_mount_counters(mp);
MNT_REF(mp);
while (mp->mnt_kern_flag & MNTK_UNMOUNT) {
KASSERT(TAILQ_EMPTY(&mp->mnt_uppers),
("%s: non-empty upper mount list with pending unmount",
__func__));
if (flags & MBF_NOWAIT || mp->mnt_kern_flag & MNTK_REFEXPIRE) {
MNT_REL(mp);
MNT_IUNLOCK(mp);
CTR1(KTR_VFS, "%s: failed busying before sleeping",
__func__);
return (ENOENT);
}
if (flags & MBF_MNTLSTLOCK)
mtx_unlock(&mountlist_mtx);
mp->mnt_kern_flag |= MNTK_MWAIT;
msleep(mp, MNT_MTX(mp), PVFS | PDROP, "vfs_busy", 0);
if (flags & MBF_MNTLSTLOCK)
mtx_lock(&mountlist_mtx);
MNT_ILOCK(mp);
}
if (flags & MBF_MNTLSTLOCK)
mtx_unlock(&mountlist_mtx);
mp->mnt_lockref++;
MNT_IUNLOCK(mp);
return (0);
}
void
vfs_unbusy(struct mount *mp)
{
struct mount_pcpu *mpcpu;
int c;
CTR2(KTR_VFS, "%s: mp %p", __func__, mp);
if (vfs_op_thread_enter(mp, mpcpu)) {
MPASS((mp->mnt_kern_flag & MNTK_DRAINING) == 0);
vfs_mp_count_sub_pcpu(mpcpu, lockref, 1);
vfs_mp_count_sub_pcpu(mpcpu, ref, 1);
vfs_op_thread_exit(mp, mpcpu);
return;
}
MNT_ILOCK(mp);
vfs_assert_mount_counters(mp);
MNT_REL(mp);
c = --mp->mnt_lockref;
if (mp->mnt_vfs_ops == 0) {
MPASS((mp->mnt_kern_flag & MNTK_DRAINING) == 0);
MNT_IUNLOCK(mp);
return;
}
if (c < 0)
vfs_dump_mount_counters(mp);
if (c == 0 && (mp->mnt_kern_flag & MNTK_DRAINING) != 0) {
MPASS(mp->mnt_kern_flag & MNTK_UNMOUNT);
CTR1(KTR_VFS, "%s: waking up waiters", __func__);
mp->mnt_kern_flag &= ~MNTK_DRAINING;
wakeup(&mp->mnt_lockref);
}
MNT_IUNLOCK(mp);
}
struct mount *
vfs_getvfs(fsid_t *fsid)
{
struct mount *mp;
CTR2(KTR_VFS, "%s: fsid %p", __func__, fsid);
mtx_lock(&mountlist_mtx);
TAILQ_FOREACH(mp, &mountlist, mnt_list) {
if (fsidcmp(&mp->mnt_stat.f_fsid, fsid) == 0) {
vfs_ref(mp);
mtx_unlock(&mountlist_mtx);
return (mp);
}
}
mtx_unlock(&mountlist_mtx);
CTR2(KTR_VFS, "%s: lookup failed for %p id", __func__, fsid);
return ((struct mount *) 0);
}
struct mount *
vfs_busyfs(fsid_t *fsid)
{
#define FSID_CACHE_SIZE 256
typedef struct mount * volatile vmp_t;
static vmp_t cache[FSID_CACHE_SIZE];
struct mount *mp;
int error;
uint32_t hash;
CTR2(KTR_VFS, "%s: fsid %p", __func__, fsid);
hash = fsid->val[0] ^ fsid->val[1];
hash = (hash >> 16 ^ hash) & (FSID_CACHE_SIZE - 1);
mp = cache[hash];
if (mp == NULL || fsidcmp(&mp->mnt_stat.f_fsid, fsid) != 0)
goto slow;
if (vfs_busy(mp, 0) != 0) {
cache[hash] = NULL;
goto slow;
}
if (fsidcmp(&mp->mnt_stat.f_fsid, fsid) == 0)
return (mp);
else
vfs_unbusy(mp);
slow:
mtx_lock(&mountlist_mtx);
TAILQ_FOREACH(mp, &mountlist, mnt_list) {
if (fsidcmp(&mp->mnt_stat.f_fsid, fsid) == 0) {
error = vfs_busy(mp, MBF_MNTLSTLOCK);
if (error) {
cache[hash] = NULL;
mtx_unlock(&mountlist_mtx);
return (NULL);
}
cache[hash] = mp;
return (mp);
}
}
CTR2(KTR_VFS, "%s: lookup failed for %p id", __func__, fsid);
mtx_unlock(&mountlist_mtx);
return ((struct mount *) 0);
}
int
vfs_suser(struct mount *mp, struct thread *td)
{
int error;
if (jailed(td->td_ucred)) {
if (!prison_allow(td->td_ucred, mp->mnt_vfc->vfc_prison_flag))
return (EPERM);
if (prison_check(td->td_ucred, mp->mnt_cred) != 0)
return (EPERM);
}
if (!(mp->mnt_vfc->vfc_flags & VFCF_DELEGADMIN) &&
mp->mnt_cred->cr_uid != td->td_ucred->cr_uid) {
if ((error = priv_check(td, PRIV_VFS_MOUNT_OWNER)) != 0)
return (error);
}
return (0);
}
void
vfs_getnewfsid(struct mount *mp)
{
static uint16_t mntid_base;
struct mount *nmp;
fsid_t tfsid;
int mtype;
CTR2(KTR_VFS, "%s: mp %p", __func__, mp);
mtx_lock(&mntid_mtx);
mtype = mp->mnt_vfc->vfc_typenum;
tfsid.val[1] = mtype;
mtype = (mtype & 0xFF) << 24;
for (;;) {
tfsid.val[0] = makedev(255,
mtype | ((mntid_base & 0xFF00) << 8) | (mntid_base & 0xFF));
mntid_base++;
if ((nmp = vfs_getvfs(&tfsid)) == NULL)
break;
vfs_rel(nmp);
}
mp->mnt_stat.f_fsid.val[0] = tfsid.val[0];
mp->mnt_stat.f_fsid.val[1] = tfsid.val[1];
mtx_unlock(&mntid_mtx);
}
enum { TSP_SEC, TSP_HZ, TSP_USEC, TSP_NSEC };
static int timestamp_precision = TSP_USEC;
SYSCTL_INT(_vfs, OID_AUTO, timestamp_precision, CTLFLAG_RW,
×tamp_precision, 0, "File timestamp precision (0: seconds, "
"1: sec + ns accurate to 1/HZ, 2: sec + ns truncated to us, "
"3+: sec + ns (max. precision))");
void
vfs_timestamp(struct timespec *tsp)
{
struct timeval tv;
switch (timestamp_precision) {
case TSP_SEC:
tsp->tv_sec = time_second;
tsp->tv_nsec = 0;
break;
case TSP_HZ:
getnanotime(tsp);
break;
case TSP_USEC:
microtime(&tv);
TIMEVAL_TO_TIMESPEC(&tv, tsp);
break;
case TSP_NSEC:
default:
nanotime(tsp);
break;
}
}
void
vattr_null(struct vattr *vap)
{
vap->va_type = VNON;
vap->va_size = VNOVAL;
vap->va_bytes = VNOVAL;
vap->va_mode = VNOVAL;
vap->va_nlink = VNOVAL;
vap->va_uid = VNOVAL;
vap->va_gid = VNOVAL;
vap->va_fsid = VNOVAL;
vap->va_fileid = VNOVAL;
vap->va_blocksize = VNOVAL;
vap->va_rdev = VNOVAL;
vap->va_atime.tv_sec = VNOVAL;
vap->va_atime.tv_nsec = VNOVAL;
vap->va_mtime.tv_sec = VNOVAL;
vap->va_mtime.tv_nsec = VNOVAL;
vap->va_ctime.tv_sec = VNOVAL;
vap->va_ctime.tv_nsec = VNOVAL;
vap->va_birthtime.tv_sec = VNOVAL;
vap->va_birthtime.tv_nsec = VNOVAL;
vap->va_flags = VNOVAL;
vap->va_gen = VNOVAL;
vap->va_vaflags = 0;
vap->va_filerev = VNOVAL;
vap->va_bsdflags = 0;
}
static int
vlrureclaim(bool reclaim_nc_src, int trigger, u_long target)
{
struct vnode *vp, *mvp;
struct mount *mp;
struct vm_object *object;
u_long done;
bool retried;
mtx_assert(&vnode_list_mtx, MA_OWNED);
retried = false;
done = 0;
mvp = vnode_list_reclaim_marker;
restart:
vp = mvp;
while (done < target) {
vp = TAILQ_NEXT(vp, v_vnodelist);
if (__predict_false(vp == NULL))
break;
if (__predict_false(vp->v_type == VMARKER))
continue;
if (vp->v_usecount > 0 || vp->v_holdcnt == 0 ||
(!reclaim_nc_src && !LIST_EMPTY(&vp->v_cache_src)))
goto next_iter;
if (vp->v_type == VBAD || vp->v_type == VNON)
goto next_iter;
object = atomic_load_ptr(&vp->v_object);
if (object == NULL || object->resident_page_count > trigger) {
goto next_iter;
}
if (!VI_TRYLOCK(vp))
goto next_iter;
if (__predict_false(vp->v_type == VBAD || vp->v_type == VNON)) {
VI_UNLOCK(vp);
goto next_iter;
}
if (vp->v_mount == NULL) {
VI_UNLOCK(vp);
goto next_iter;
}
vholdl(vp);
VI_UNLOCK(vp);
TAILQ_REMOVE(&vnode_list, mvp, v_vnodelist);
TAILQ_INSERT_AFTER(&vnode_list, vp, mvp, v_vnodelist);
mtx_unlock(&vnode_list_mtx);
if (vn_start_write(vp, &mp, V_NOWAIT) != 0) {
vdrop_recycle(vp);
goto next_iter_unlocked;
}
if (VOP_LOCK(vp, LK_EXCLUSIVE|LK_NOWAIT) != 0) {
vdrop_recycle(vp);
vn_finished_write(mp);
goto next_iter_unlocked;
}
VI_LOCK(vp);
if (vp->v_usecount > 0 ||
(!reclaim_nc_src && !LIST_EMPTY(&vp->v_cache_src)) ||
(vp->v_object != NULL && vp->v_object->handle == vp &&
vp->v_object->resident_page_count > trigger)) {
VOP_UNLOCK(vp);
vdropl_recycle(vp);
vn_finished_write(mp);
goto next_iter_unlocked;
}
recycles_count++;
vgonel(vp);
VOP_UNLOCK(vp);
vdropl_recycle(vp);
vn_finished_write(mp);
done++;
next_iter_unlocked:
maybe_yield();
mtx_lock(&vnode_list_mtx);
goto restart;
next_iter:
MPASS(vp->v_type != VMARKER);
if (!should_yield())
continue;
TAILQ_REMOVE(&vnode_list, mvp, v_vnodelist);
TAILQ_INSERT_AFTER(&vnode_list, vp, mvp, v_vnodelist);
mtx_unlock(&vnode_list_mtx);
kern_yield(PRI_USER);
mtx_lock(&vnode_list_mtx);
goto restart;
}
if (done == 0 && !retried) {
TAILQ_REMOVE(&vnode_list, mvp, v_vnodelist);
TAILQ_INSERT_HEAD(&vnode_list, mvp, v_vnodelist);
retried = true;
goto restart;
}
return (done);
}
static int max_free_per_call = 10000;
SYSCTL_INT(_debug, OID_AUTO, max_vnlru_free, CTLFLAG_RW, &max_free_per_call, 0,
"limit on vnode free requests per call to the vnlru_free routine (legacy)");
SYSCTL_INT(_vfs_vnode_vnlru, OID_AUTO, max_free_per_call, CTLFLAG_RW,
&max_free_per_call, 0,
"limit on vnode free requests per call to the vnlru_free routine");
static int
vnlru_free_impl(int count, struct vfsops *mnt_op, struct vnode *mvp, bool isvnlru)
{
struct vnode *vp;
struct mount *mp;
int ocount;
bool retried;
mtx_assert(&vnode_list_mtx, MA_OWNED);
if (count > max_free_per_call)
count = max_free_per_call;
if (count == 0) {
mtx_unlock(&vnode_list_mtx);
return (0);
}
ocount = count;
retried = false;
vp = mvp;
for (;;) {
vp = TAILQ_NEXT(vp, v_vnodelist);
if (__predict_false(vp == NULL)) {
if (!retried && vnlru_read_freevnodes() > 0) {
TAILQ_REMOVE(&vnode_list, mvp, v_vnodelist);
TAILQ_INSERT_HEAD(&vnode_list, mvp, v_vnodelist);
vp = mvp;
retried = true;
continue;
}
TAILQ_REMOVE(&vnode_list, mvp, v_vnodelist);
TAILQ_INSERT_TAIL(&vnode_list, mvp, v_vnodelist);
mtx_unlock(&vnode_list_mtx);
break;
}
if (__predict_false(vp->v_type == VMARKER))
continue;
if (vp->v_holdcnt > 0)
continue;
if (mnt_op != NULL && (mp = vp->v_mount) != NULL &&
mp->mnt_op != mnt_op) {
continue;
}
if (__predict_false(vp->v_type == VBAD || vp->v_type == VNON)) {
continue;
}
if (!vhold_recycle_free(vp))
continue;
TAILQ_REMOVE(&vnode_list, mvp, v_vnodelist);
TAILQ_INSERT_AFTER(&vnode_list, vp, mvp, v_vnodelist);
mtx_unlock(&vnode_list_mtx);
vtryrecycle(vp, isvnlru);
count--;
if (count == 0) {
break;
}
mtx_lock(&vnode_list_mtx);
vp = mvp;
}
mtx_assert(&vnode_list_mtx, MA_NOTOWNED);
return (ocount - count);
}
static int
vnlru_free_locked_direct(int count)
{
int ret;
mtx_assert(&vnode_list_mtx, MA_OWNED);
ret = vnlru_free_impl(count, NULL, vnode_list_free_marker, false);
mtx_assert(&vnode_list_mtx, MA_NOTOWNED);
return (ret);
}
static int
vnlru_free_locked_vnlru(int count)
{
int ret;
mtx_assert(&vnode_list_mtx, MA_OWNED);
ret = vnlru_free_impl(count, NULL, vnode_list_free_marker, true);
mtx_assert(&vnode_list_mtx, MA_NOTOWNED);
return (ret);
}
static int
vnlru_free_vnlru(int count)
{
mtx_lock(&vnode_list_mtx);
return (vnlru_free_locked_vnlru(count));
}
void
vnlru_free_vfsops(int count, struct vfsops *mnt_op, struct vnode *mvp)
{
MPASS(mnt_op != NULL);
MPASS(mvp != NULL);
VNPASS(mvp->v_type == VMARKER, mvp);
mtx_lock(&vnode_list_mtx);
vnlru_free_impl(count, mnt_op, mvp, true);
mtx_assert(&vnode_list_mtx, MA_NOTOWNED);
}
struct vnode *
vnlru_alloc_marker(void)
{
struct vnode *mvp;
mvp = vn_alloc_marker(NULL);
mtx_lock(&vnode_list_mtx);
TAILQ_INSERT_BEFORE(vnode_list_free_marker, mvp, v_vnodelist);
mtx_unlock(&vnode_list_mtx);
return (mvp);
}
void
vnlru_free_marker(struct vnode *mvp)
{
mtx_lock(&vnode_list_mtx);
TAILQ_REMOVE(&vnode_list, mvp, v_vnodelist);
mtx_unlock(&vnode_list_mtx);
vn_free_marker(mvp);
}
static void
vnlru_recalc(void)
{
mtx_assert(&vnode_list_mtx, MA_OWNED);
gapvnodes = imax(desiredvnodes - wantfreevnodes, 100);
vhiwat = gapvnodes / 11;
vlowat = vhiwat / 2;
}
static struct proc *vnlruproc;
static int vnlruproc_sig;
static u_long vnlruproc_kicks;
SYSCTL_ULONG(_vfs_vnode_vnlru, OID_AUTO, kicks, CTLFLAG_RD, &vnlruproc_kicks, 0,
"Number of times vnlru awakened due to vnode shortage");
#define VNLRU_COUNT_SLOP 100
#define VNLRU_FREEVNODES_SLOP 126
static void __noinline
vfs_freevnodes_rollup(int8_t *lfreevnodes)
{
atomic_add_long(&freevnodes, *lfreevnodes);
*lfreevnodes = 0;
critical_exit();
}
static __inline void
vfs_freevnodes_inc(void)
{
int8_t *lfreevnodes;
critical_enter();
lfreevnodes = PCPU_PTR(vfs_freevnodes);
(*lfreevnodes)++;
if (__predict_false(*lfreevnodes == VNLRU_FREEVNODES_SLOP))
vfs_freevnodes_rollup(lfreevnodes);
else
critical_exit();
}
static __inline void
vfs_freevnodes_dec(void)
{
int8_t *lfreevnodes;
critical_enter();
lfreevnodes = PCPU_PTR(vfs_freevnodes);
(*lfreevnodes)--;
if (__predict_false(*lfreevnodes == -VNLRU_FREEVNODES_SLOP))
vfs_freevnodes_rollup(lfreevnodes);
else
critical_exit();
}
static u_long
vnlru_read_freevnodes(void)
{
long slop, rfreevnodes, rfreevnodes_old;
int cpu;
rfreevnodes = atomic_load_long(&freevnodes);
rfreevnodes_old = atomic_load_long(&freevnodes_old);
if (rfreevnodes > rfreevnodes_old)
slop = rfreevnodes - rfreevnodes_old;
else
slop = rfreevnodes_old - rfreevnodes;
if (slop < VNLRU_FREEVNODES_SLOP)
return (rfreevnodes >= 0 ? rfreevnodes : 0);
CPU_FOREACH(cpu) {
rfreevnodes += cpuid_to_pcpu[cpu]->pc_vfs_freevnodes;
}
atomic_store_long(&freevnodes_old, rfreevnodes);
return (freevnodes_old >= 0 ? freevnodes_old : 0);
}
static bool
vnlru_under(u_long rnumvnodes, u_long limit)
{
u_long rfreevnodes, space;
if (__predict_false(rnumvnodes > desiredvnodes))
return (true);
space = desiredvnodes - rnumvnodes;
if (space < limit) {
rfreevnodes = vnlru_read_freevnodes();
if (rfreevnodes > wantfreevnodes)
space += rfreevnodes - wantfreevnodes;
}
return (space < limit);
}
static void
vnlru_kick_locked(void)
{
mtx_assert(&vnode_list_mtx, MA_OWNED);
if (vnlruproc_sig == 0) {
vnlruproc_sig = 1;
vnlruproc_kicks++;
wakeup(vnlruproc);
}
}
static void
vnlru_kick_cond(void)
{
if (vnlru_read_freevnodes() > wantfreevnodes)
return;
if (vnlruproc_sig)
return;
mtx_lock(&vnode_list_mtx);
vnlru_kick_locked();
mtx_unlock(&vnode_list_mtx);
}
static void
vnlru_proc_sleep(void)
{
if (vnlruproc_sig) {
vnlruproc_sig = 0;
wakeup(&vnlruproc_sig);
}
msleep(vnlruproc, &vnode_list_mtx, PVFS|PDROP, "vlruwt", hz);
}
static long
vnlru_proc_light_pick(void)
{
u_long rnumvnodes, rfreevnodes;
if (vstir || vnlruproc_sig == 1)
return (-1);
rnumvnodes = atomic_load_long(&numvnodes);
rfreevnodes = vnlru_read_freevnodes();
if (rnumvnodes > desiredvnodes + VNLRU_COUNT_SLOP + 10) {
if (rnumvnodes - rfreevnodes >= desiredvnodes ||
rfreevnodes <= wantfreevnodes) {
return (-1);
}
return (rnumvnodes - desiredvnodes);
}
if (rnumvnodes < wantfreevnodes) {
return (0);
}
if (rfreevnodes < wantfreevnodes) {
return (-1);
}
return (0);
}
static bool
vnlru_proc_light(void)
{
long freecount;
mtx_assert(&vnode_list_mtx, MA_NOTOWNED);
freecount = vnlru_proc_light_pick();
if (freecount == -1)
return (false);
if (freecount != 0) {
vnlru_free_vnlru(freecount);
}
mtx_lock(&vnode_list_mtx);
vnlru_proc_sleep();
mtx_assert(&vnode_list_mtx, MA_NOTOWNED);
return (true);
}
static u_long uma_reclaim_calls;
SYSCTL_ULONG(_vfs_vnode_vnlru, OID_AUTO, uma_reclaim_calls, CTLFLAG_RD | CTLFLAG_STATS,
&uma_reclaim_calls, 0, "Number of calls to uma_reclaim");
static void
vnlru_proc(void)
{
u_long rnumvnodes, rfreevnodes, target;
unsigned long onumvnodes;
int done, force, trigger, usevnodes;
bool reclaim_nc_src, want_reread;
EVENTHANDLER_REGISTER(shutdown_pre_sync, kproc_shutdown, vnlruproc,
SHUTDOWN_PRI_FIRST);
force = 0;
want_reread = false;
for (;;) {
kproc_suspend_check(vnlruproc);
if (force == 0 && vnlru_proc_light())
continue;
mtx_lock(&vnode_list_mtx);
rnumvnodes = atomic_load_long(&numvnodes);
if (want_reread) {
force = vnlru_under(numvnodes, vhiwat) ? 1 : 0;
want_reread = false;
}
if (rnumvnodes > desiredvnodes + 10) {
vnlru_free_locked_vnlru(rnumvnodes - desiredvnodes);
mtx_lock(&vnode_list_mtx);
rnumvnodes = atomic_load_long(&numvnodes);
}
if (vstir && force == 0) {
force = 1;
vstir = false;
}
if (force == 0 && !vnlru_under(rnumvnodes, vlowat)) {
vnlru_proc_sleep();
continue;
}
rfreevnodes = vnlru_read_freevnodes();
onumvnodes = rnumvnodes;
if (rnumvnodes <= desiredvnodes)
usevnodes = rnumvnodes - rfreevnodes;
else
usevnodes = rnumvnodes;
if (usevnodes <= 0)
usevnodes = 1;
trigger = vm_cnt.v_page_count * 2 / usevnodes;
if (force < 2)
trigger = vsmalltrigger;
reclaim_nc_src = force >= 3;
target = rnumvnodes * (int64_t)gapvnodes / imax(desiredvnodes, 1);
target = target / 10 + 1;
done = vlrureclaim(reclaim_nc_src, trigger, target);
mtx_unlock(&vnode_list_mtx);
if (onumvnodes + VNLRU_COUNT_SLOP + 1000 > desiredvnodes &&
numvnodes <= desiredvnodes) {
uma_reclaim_calls++;
uma_reclaim(UMA_RECLAIM_DRAIN);
}
if (done == 0) {
if (force == 0 || force == 1) {
force = 2;
continue;
}
if (force == 2) {
force = 3;
continue;
}
want_reread = true;
force = 0;
vnlru_nowhere++;
tsleep(vnlruproc, PPAUSE, "vlrup", hz * 3);
} else {
want_reread = true;
kern_yield(PRI_USER);
}
}
}
static struct kproc_desc vnlru_kp = {
"vnlru",
vnlru_proc,
&vnlruproc
};
SYSINIT(vnlru, SI_SUB_KTHREAD_UPDATE, SI_ORDER_FIRST, kproc_start,
&vnlru_kp);
static int
vtryrecycle(struct vnode *vp, bool isvnlru)
{
struct mount *vnmp;
CTR2(KTR_VFS, "%s: vp %p", __func__, vp);
VNPASS(vp->v_holdcnt > 0, vp);
if (VOP_LOCK(vp, LK_EXCLUSIVE | LK_NOWAIT) != 0) {
CTR2(KTR_VFS,
"%s: impossible to recycle, vp %p lock is already held",
__func__, vp);
vdrop_recycle(vp);
return (EWOULDBLOCK);
}
if (vn_start_write(vp, &vnmp, V_NOWAIT) != 0) {
VOP_UNLOCK(vp);
CTR2(KTR_VFS,
"%s: impossible to recycle, cannot start the write for %p",
__func__, vp);
vdrop_recycle(vp);
return (EBUSY);
}
VI_LOCK(vp);
if (vp->v_usecount) {
VOP_UNLOCK(vp);
vdropl_recycle(vp);
vn_finished_write(vnmp);
CTR2(KTR_VFS,
"%s: impossible to recycle, %p is already referenced",
__func__, vp);
return (EBUSY);
}
if (!VN_IS_DOOMED(vp)) {
if (isvnlru)
recycles_free_count++;
else
counter_u64_add(direct_recycles_free_count, 1);
vgonel(vp);
}
VOP_UNLOCK(vp);
vdropl_recycle(vp);
vn_finished_write(vnmp);
return (0);
}
static u_long vn_alloc_cyclecount;
static u_long vn_alloc_sleeps;
SYSCTL_ULONG(_vfs_vnode_stats, OID_AUTO, alloc_sleeps, CTLFLAG_RD, &vn_alloc_sleeps, 0,
"Number of times vnode allocation blocked waiting on vnlru");
static struct vnode * __noinline
vn_alloc_hard(struct mount *mp, u_long rnumvnodes, bool bumped)
{
u_long rfreevnodes;
if (bumped) {
if (rnumvnodes > desiredvnodes + VNLRU_COUNT_SLOP) {
atomic_subtract_long(&numvnodes, 1);
bumped = false;
}
}
mtx_lock(&vnode_list_mtx);
rnumvnodes = atomic_load_long(&numvnodes);
if (rnumvnodes + !bumped < desiredvnodes) {
vn_alloc_cyclecount = 0;
mtx_unlock(&vnode_list_mtx);
goto alloc;
}
rfreevnodes = vnlru_read_freevnodes();
if (vn_alloc_cyclecount++ >= rfreevnodes) {
vn_alloc_cyclecount = 0;
vstir = true;
}
if (vnlru_free_locked_direct(1) > 0)
goto alloc;
mtx_assert(&vnode_list_mtx, MA_NOTOWNED);
if (mp == NULL || (mp->mnt_kern_flag & MNTK_SUSPEND) == 0) {
if (bumped) {
atomic_subtract_long(&numvnodes, 1);
bumped = false;
}
mtx_lock(&vnode_list_mtx);
vnlru_kick_locked();
vn_alloc_sleeps++;
msleep(&vnlruproc_sig, &vnode_list_mtx, PVFS, "vlruwk", hz);
if (atomic_load_long(&numvnodes) + 1 > desiredvnodes &&
vnlru_read_freevnodes() > 1)
vnlru_free_locked_direct(1);
else
mtx_unlock(&vnode_list_mtx);
}
alloc:
mtx_assert(&vnode_list_mtx, MA_NOTOWNED);
if (!bumped)
atomic_add_long(&numvnodes, 1);
vnlru_kick_cond();
return (uma_zalloc_smr(vnode_zone, M_WAITOK));
}
static struct vnode *
vn_alloc(struct mount *mp)
{
u_long rnumvnodes;
if (__predict_false(vn_alloc_cyclecount != 0))
return (vn_alloc_hard(mp, 0, false));
rnumvnodes = atomic_fetchadd_long(&numvnodes, 1) + 1;
if (__predict_false(vnlru_under(rnumvnodes, vlowat))) {
return (vn_alloc_hard(mp, rnumvnodes, true));
}
return (uma_zalloc_smr(vnode_zone, M_WAITOK));
}
static void
vn_free(struct vnode *vp)
{
atomic_subtract_long(&numvnodes, 1);
uma_zfree_smr(vnode_zone, vp);
}
int
getnewvnode(const char *tag, struct mount *mp, struct vop_vector *vops,
struct vnode **vpp)
{
struct vnode *vp;
struct thread *td;
struct lock_object *lo;
CTR3(KTR_VFS, "%s: mp %p with tag %s", __func__, mp, tag);
KASSERT(vops->registered,
("%s: not registered vector op %p\n", __func__, vops));
cache_validate_vop_vector(mp, vops);
td = curthread;
if (td->td_vp_reserved != NULL) {
vp = td->td_vp_reserved;
td->td_vp_reserved = NULL;
} else {
vp = vn_alloc(mp);
}
counter_u64_add(vnodes_created, 1);
vn_set_state(vp, VSTATE_UNINITIALIZED);
lo = &vp->v_vnlock->lock_object;
#ifdef WITNESS
if (lo->lo_name != tag) {
#endif
lo->lo_name = tag;
#ifdef WITNESS
WITNESS_DESTROY(lo);
WITNESS_INIT(lo, tag);
}
#endif
vp->v_vnlock->lock_object.lo_flags |= LK_NOSHARE;
KASSERT(vp->v_object == NULL, ("stale v_object %p", vp));
KASSERT(vp->v_lockf == NULL, ("stale v_lockf %p", vp));
KASSERT(vp->v_pollinfo == NULL, ("stale v_pollinfo %p", vp));
vp->v_type = VNON;
vp->v_op = vops;
vp->v_irflag = 0;
v_init_counters(vp);
vn_seqc_init(vp);
vp->v_bufobj.bo_ops = &buf_ops_bio;
#ifdef DIAGNOSTIC
if (mp == NULL && vops != &dead_vnodeops)
printf("NULL mp in getnewvnode(9), tag %s\n", tag);
#endif
#ifdef MAC
mac_vnode_init(vp);
if (mp != NULL && (mp->mnt_flag & MNT_MULTILABEL) == 0)
mac_vnode_associate_singlelabel(mp, vp);
#endif
if (mp != NULL) {
vp->v_bufobj.bo_bsize = mp->mnt_stat.f_iosize;
}
vp->v_hash = (uintptr_t)vp >> vnsz2log;
*vpp = vp;
return (0);
}
void
getnewvnode_reserve(void)
{
struct thread *td;
td = curthread;
MPASS(td->td_vp_reserved == NULL);
td->td_vp_reserved = vn_alloc(NULL);
}
void
getnewvnode_drop_reserve(void)
{
struct thread *td;
td = curthread;
if (td->td_vp_reserved != NULL) {
vn_free(td->td_vp_reserved);
td->td_vp_reserved = NULL;
}
}
static void __noinline
freevnode(struct vnode *vp)
{
struct bufobj *bo;
ASSERT_VOP_UNLOCKED(vp, __func__);
CTR2(KTR_VFS, "%s: destroying the vnode %p", __func__, vp);
vn_seqc_write_end_free(vp);
bo = &vp->v_bufobj;
VNASSERT(vp->v_data == NULL, vp, ("cleaned vnode isn't"));
VNPASS(vp->v_holdcnt == VHOLD_NO_SMR, vp);
VNASSERT(vp->v_usecount == 0, vp, ("Non-zero use count"));
VNASSERT(vp->v_writecount == 0, vp, ("Non-zero write count"));
VNASSERT(bo->bo_numoutput == 0, vp, ("Clean vnode has pending I/O's"));
VNASSERT(bo->bo_clean.bv_cnt == 0, vp, ("cleanbufcnt not 0"));
VNASSERT(pctrie_is_empty(&bo->bo_clean.bv_root), vp,
("clean blk trie not empty"));
VNASSERT(bo->bo_dirty.bv_cnt == 0, vp, ("dirtybufcnt not 0"));
VNASSERT(pctrie_is_empty(&bo->bo_dirty.bv_root), vp,
("dirty blk trie not empty"));
VNASSERT((vp->v_iflag & (VI_DOINGINACT | VI_OWEINACT)) == 0, vp,
("Leaked inactivation"));
VI_UNLOCK(vp);
cache_assert_no_entries(vp);
#ifdef MAC
mac_vnode_destroy(vp);
#endif
if (vp->v_pollinfo != NULL) {
int error __diagused;
error = VOP_LOCK(vp, LK_EXCLUSIVE | LK_NOWAIT);
VNASSERT(error == 0, vp,
("freevnode: cannot lock vp %p for pollinfo destroy", vp));
destroy_vpollinfo(vp->v_pollinfo);
VOP_UNLOCK(vp);
vp->v_pollinfo = NULL;
}
vp->v_mountedhere = NULL;
vp->v_unpcb = NULL;
vp->v_rdev = NULL;
vp->v_fifoinfo = NULL;
vp->v_iflag = 0;
vp->v_vflag = 0;
bo->bo_flag = 0;
vn_free(vp);
}
static void
delmntque(struct vnode *vp)
{
struct mount *mp;
VNPASS((vp->v_mflag & VMP_LAZYLIST) == 0, vp);
mp = vp->v_mount;
MNT_ILOCK(mp);
VI_LOCK(vp);
vp->v_mount = NULL;
VNASSERT(mp->mnt_nvnodelistsize > 0, vp,
("bad mount point vnode list size"));
TAILQ_REMOVE(&mp->mnt_nvnodelist, vp, v_nmntvnodes);
mp->mnt_nvnodelistsize--;
MNT_REL(mp);
MNT_IUNLOCK(mp);
ASSERT_VI_LOCKED(vp, __func__);
}
static int
insmntque1_int(struct vnode *vp, struct mount *mp, bool dtr)
{
KASSERT(vp->v_mount == NULL,
("insmntque: vnode already on per mount vnode list"));
VNASSERT(mp != NULL, vp, ("Don't call insmntque(foo, NULL)"));
if ((mp->mnt_kern_flag & MNTK_UNLOCKED_INSMNTQUE) == 0) {
ASSERT_VOP_ELOCKED(vp, "insmntque: non-locked vp");
} else {
KASSERT(!dtr,
("%s: can't have MNTK_UNLOCKED_INSMNTQUE and cleanup",
__func__));
}
MNT_ILOCK(mp);
VI_LOCK(vp);
if (((mp->mnt_kern_flag & MNTK_UNMOUNT) != 0 &&
((mp->mnt_kern_flag & MNTK_UNMOUNTF) != 0 ||
mp->mnt_nvnodelistsize == 0)) &&
(vp->v_vflag & VV_FORCEINSMQ) == 0) {
VI_UNLOCK(vp);
MNT_IUNLOCK(mp);
if (dtr) {
vp->v_data = NULL;
vp->v_op = &dead_vnodeops;
vgone(vp);
vput(vp);
}
return (EBUSY);
}
vp->v_mount = mp;
MNT_REF(mp);
TAILQ_INSERT_TAIL(&mp->mnt_nvnodelist, vp, v_nmntvnodes);
VNASSERT(mp->mnt_nvnodelistsize >= 0, vp,
("neg mount point vnode list size"));
mp->mnt_nvnodelistsize++;
VI_UNLOCK(vp);
MNT_IUNLOCK(mp);
return (0);
}
int
insmntque(struct vnode *vp, struct mount *mp)
{
return (insmntque1_int(vp, mp, true));
}
int
insmntque1(struct vnode *vp, struct mount *mp)
{
return (insmntque1_int(vp, mp, false));
}
int
bufobj_invalbuf(struct bufobj *bo, int flags, int slpflag, int slptimeo)
{
int error;
BO_LOCK(bo);
if (flags & V_SAVE) {
error = bufobj_wwait(bo, slpflag, slptimeo);
if (error) {
BO_UNLOCK(bo);
return (error);
}
if (bo->bo_dirty.bv_cnt > 0) {
BO_UNLOCK(bo);
do {
error = BO_SYNC(bo, MNT_WAIT);
} while (error == ERELOOKUP);
if (error != 0)
return (error);
BO_LOCK(bo);
if (bo->bo_numoutput > 0 || bo->bo_dirty.bv_cnt > 0) {
BO_UNLOCK(bo);
return (EBUSY);
}
}
}
do {
error = flushbuflist(&bo->bo_clean,
flags, bo, slpflag, slptimeo);
if (error == 0 && !(flags & V_CLEANONLY))
error = flushbuflist(&bo->bo_dirty,
flags, bo, slpflag, slptimeo);
if (error != 0 && error != EAGAIN) {
BO_UNLOCK(bo);
return (error);
}
} while (error != 0);
do {
bufobj_wwait(bo, 0, 0);
if ((flags & V_VMIO) == 0 && bo->bo_object != NULL) {
BO_UNLOCK(bo);
vm_object_pip_wait_unlocked(bo->bo_object, "bovlbx");
BO_LOCK(bo);
}
} while (bo->bo_numoutput > 0);
BO_UNLOCK(bo);
if (bo->bo_object != NULL &&
(flags & (V_ALT | V_NORMAL | V_CLEANONLY | V_VMIO)) == 0) {
VM_OBJECT_WLOCK(bo->bo_object);
vm_object_page_remove(bo->bo_object, 0, 0, (flags & V_SAVE) ?
OBJPR_CLEANONLY : 0);
VM_OBJECT_WUNLOCK(bo->bo_object);
}
#ifdef INVARIANTS
BO_LOCK(bo);
if ((flags & (V_ALT | V_NORMAL | V_CLEANONLY | V_VMIO |
V_ALLOWCLEAN)) == 0 && (bo->bo_dirty.bv_cnt > 0 ||
bo->bo_clean.bv_cnt > 0))
panic("vinvalbuf: flush failed");
if ((flags & (V_ALT | V_NORMAL | V_CLEANONLY | V_VMIO)) == 0 &&
bo->bo_dirty.bv_cnt > 0)
panic("vinvalbuf: flush dirty failed");
BO_UNLOCK(bo);
#endif
return (0);
}
int
vinvalbuf(struct vnode *vp, int flags, int slpflag, int slptimeo)
{
CTR3(KTR_VFS, "%s: vp %p with flags %d", __func__, vp, flags);
ASSERT_VOP_LOCKED(vp, "vinvalbuf");
if (vp->v_object != NULL && vp->v_object->handle != vp)
return (0);
return (bufobj_invalbuf(&vp->v_bufobj, flags, slpflag, slptimeo));
}
static int
flushbuflist(struct bufv *bufv, int flags, struct bufobj *bo, int slpflag,
int slptimeo)
{
struct buf *bp, *nbp;
int retval, error;
daddr_t lblkno;
b_xflags_t xflags;
ASSERT_BO_WLOCKED(bo);
retval = 0;
TAILQ_FOREACH_SAFE(bp, &bufv->bv_hd, b_bobufs, nbp) {
if (((flags & (V_NORMAL | V_ALT)) != (V_NORMAL | V_ALT)) &&
(((flags & V_NORMAL) && (bp->b_xflags & BX_ALTDATA) != 0) ||
((flags & V_ALT) && (bp->b_xflags & BX_ALTDATA) == 0))) {
continue;
}
if (nbp != NULL) {
lblkno = nbp->b_lblkno;
xflags = nbp->b_xflags & (BX_VNDIRTY | BX_VNCLEAN);
}
retval = EAGAIN;
error = BUF_TIMELOCK(bp,
LK_EXCLUSIVE | LK_SLEEPFAIL | LK_INTERLOCK, BO_LOCKPTR(bo),
"flushbuf", slpflag, slptimeo);
if (error) {
BO_LOCK(bo);
return (error != ENOLCK ? error : EAGAIN);
}
KASSERT(bp->b_bufobj == bo,
("bp %p wrong b_bufobj %p should be %p",
bp, bp->b_bufobj, bo));
if (((bp->b_flags & (B_DELWRI | B_INVAL)) == B_DELWRI) &&
(flags & V_SAVE)) {
bremfree(bp);
bp->b_flags |= B_ASYNC;
bwrite(bp);
BO_LOCK(bo);
return (EAGAIN);
}
bremfree(bp);
bp->b_flags |= (B_INVAL | B_RELBUF);
bp->b_flags &= ~B_ASYNC;
brelse(bp);
BO_LOCK(bo);
if (nbp == NULL)
break;
nbp = gbincore(bo, lblkno);
if (nbp == NULL || (nbp->b_xflags & (BX_VNDIRTY | BX_VNCLEAN))
!= xflags)
break;
}
return (retval);
}
int
bnoreuselist(struct bufv *bufv, struct bufobj *bo, daddr_t startn, daddr_t endn)
{
struct buf *bp;
int error;
daddr_t lblkno;
ASSERT_BO_LOCKED(bo);
for (lblkno = startn;;) {
again:
bp = buf_lookup_ge(bufv, lblkno);
if (bp == NULL || bp->b_lblkno >= endn)
break;
error = BUF_TIMELOCK(bp, LK_EXCLUSIVE | LK_SLEEPFAIL |
LK_INTERLOCK, BO_LOCKPTR(bo), "brlsfl", 0, 0);
if (error != 0) {
BO_RLOCK(bo);
if (error == ENOLCK)
goto again;
return (error);
}
KASSERT(bp->b_bufobj == bo,
("bp %p wrong b_bufobj %p should be %p",
bp, bp->b_bufobj, bo));
lblkno = bp->b_lblkno + 1;
if ((bp->b_flags & B_MANAGED) == 0)
bremfree(bp);
bp->b_flags |= B_RELBUF;
if ((bp->b_flags & B_VMIO) != 0)
bp->b_flags |= B_NOREUSE;
brelse(bp);
BO_RLOCK(bo);
}
return (0);
}
int
vtruncbuf(struct vnode *vp, off_t length, int blksize)
{
struct buf *bp, *nbp;
struct bufobj *bo;
daddr_t startlbn;
CTR4(KTR_VFS, "%s: vp %p with block %d:%ju", __func__,
vp, blksize, (uintmax_t)length);
startlbn = howmany(length, blksize);
ASSERT_VOP_LOCKED(vp, "vtruncbuf");
bo = &vp->v_bufobj;
restart_unlocked:
BO_LOCK(bo);
while (v_inval_buf_range_locked(vp, bo, startlbn, INT64_MAX) == EAGAIN)
;
if (length > 0) {
restartsync:
TAILQ_FOREACH_SAFE(bp, &bo->bo_dirty.bv_hd, b_bobufs, nbp) {
if (bp->b_lblkno >= 0)
continue;
if (BUF_LOCK(bp,
LK_EXCLUSIVE | LK_SLEEPFAIL | LK_INTERLOCK,
BO_LOCKPTR(bo)) == ENOLCK)
goto restart_unlocked;
VNASSERT((bp->b_flags & B_DELWRI), vp,
("buf(%p) on dirty queue without DELWRI", bp));
bremfree(bp);
bawrite(bp);
BO_LOCK(bo);
goto restartsync;
}
}
bufobj_wwait(bo, 0, 0);
BO_UNLOCK(bo);
vnode_pager_setsize(vp, length);
return (0);
}
void
v_inval_buf_range(struct vnode *vp, daddr_t startlbn, daddr_t endlbn,
int blksize)
{
struct bufobj *bo;
off_t start, end;
ASSERT_VOP_LOCKED(vp, "v_inval_buf_range");
start = blksize * startlbn;
end = blksize * endlbn;
bo = &vp->v_bufobj;
BO_LOCK(bo);
MPASS(blksize == bo->bo_bsize);
while (v_inval_buf_range_locked(vp, bo, startlbn, endlbn) == EAGAIN)
;
BO_UNLOCK(bo);
vn_pages_remove(vp, OFF_TO_IDX(start), OFF_TO_IDX(end + PAGE_SIZE - 1));
}
static int
v_inval_buf_range_locked(struct vnode *vp, struct bufobj *bo,
daddr_t startlbn, daddr_t endlbn)
{
struct bufv *bv;
struct buf *bp, *nbp;
uint8_t anyfreed;
bool clean;
ASSERT_VOP_LOCKED(vp, "v_inval_buf_range_locked");
ASSERT_BO_LOCKED(bo);
anyfreed = 1;
clean = true;
do {
bv = clean ? &bo->bo_clean : &bo->bo_dirty;
bp = buf_lookup_ge(bv, startlbn);
if (bp == NULL)
continue;
TAILQ_FOREACH_FROM_SAFE(bp, &bv->bv_hd, b_bobufs, nbp) {
if (bp->b_lblkno >= endlbn)
break;
if (BUF_LOCK(bp,
LK_EXCLUSIVE | LK_SLEEPFAIL | LK_INTERLOCK,
BO_LOCKPTR(bo)) == ENOLCK) {
BO_LOCK(bo);
return (EAGAIN);
}
bremfree(bp);
bp->b_flags |= B_INVAL | B_RELBUF;
bp->b_flags &= ~B_ASYNC;
brelse(bp);
anyfreed = 2;
BO_LOCK(bo);
if (nbp != NULL &&
(((nbp->b_xflags &
(clean ? BX_VNCLEAN : BX_VNDIRTY)) == 0) ||
nbp->b_vp != vp ||
(nbp->b_flags & B_DELWRI) == (clean? B_DELWRI: 0)))
return (EAGAIN);
}
} while (clean = !clean, anyfreed-- > 0);
return (0);
}
static void
buf_vlist_remove(struct buf *bp)
{
struct bufv *bv;
b_xflags_t flags;
flags = bp->b_xflags;
KASSERT(bp->b_bufobj != NULL, ("No b_bufobj %p", bp));
ASSERT_BO_WLOCKED(bp->b_bufobj);
KASSERT((flags & (BX_VNDIRTY | BX_VNCLEAN)) != 0 &&
(flags & (BX_VNDIRTY | BX_VNCLEAN)) != (BX_VNDIRTY | BX_VNCLEAN),
("%s: buffer %p has invalid queue state", __func__, bp));
if ((flags & BX_VNDIRTY) != 0)
bv = &bp->b_bufobj->bo_dirty;
else
bv = &bp->b_bufobj->bo_clean;
BUF_PCTRIE_REMOVE(&bv->bv_root, bp->b_lblkno);
TAILQ_REMOVE(&bv->bv_hd, bp, b_bobufs);
bv->bv_cnt--;
bp->b_xflags &= ~(BX_VNDIRTY | BX_VNCLEAN);
}
static inline int
buf_vlist_find_or_add(struct buf *bp, struct bufobj *bo, b_xflags_t xflags)
{
struct bufv *bv;
struct buf *n;
int error;
ASSERT_BO_WLOCKED(bo);
KASSERT((bo->bo_flag & BO_NOBUFS) == 0,
("buf_vlist_add: bo %p does not allow bufs", bo));
KASSERT((xflags & BX_VNDIRTY) == 0 || (bo->bo_flag & BO_DEAD) == 0,
("dead bo %p", bo));
KASSERT((bp->b_xflags & (BX_VNDIRTY | BX_VNCLEAN)) == xflags,
("buf_vlist_add: b_xflags %#x not set on bp %p", xflags, bp));
if (xflags & BX_VNDIRTY)
bv = &bo->bo_dirty;
else
bv = &bo->bo_clean;
error = buf_insert_lookup_le(bv, bp, &n);
if (n == NULL) {
KASSERT(error != EEXIST,
("buf_vlist_add: EEXIST but no existing buf found: bp %p",
bp));
} else {
KASSERT(n->b_lblkno <= bp->b_lblkno,
("buf_vlist_add: out of order insert/lookup: bp %p n %p",
bp, n));
KASSERT((n->b_lblkno == bp->b_lblkno) == (error == EEXIST),
("buf_vlist_add: inconsistent result for existing buf: "
"error %d bp %p n %p", error, bp, n));
}
if (error != 0)
return (error);
if (n == NULL) {
KASSERT(TAILQ_EMPTY(&bv->bv_hd) ||
bp->b_lblkno < TAILQ_FIRST(&bv->bv_hd)->b_lblkno,
("buf_vlist_add: queue order: "
"%p should be before first %p",
bp, TAILQ_FIRST(&bv->bv_hd)));
TAILQ_INSERT_HEAD(&bv->bv_hd, bp, b_bobufs);
} else {
KASSERT(TAILQ_NEXT(n, b_bobufs) == NULL ||
bp->b_lblkno < TAILQ_NEXT(n, b_bobufs)->b_lblkno,
("buf_vlist_add: queue order: "
"%p should be before next %p",
bp, TAILQ_NEXT(n, b_bobufs)));
TAILQ_INSERT_AFTER(&bv->bv_hd, n, bp, b_bobufs);
}
bv->bv_cnt++;
return (0);
}
static void
buf_vlist_add(struct buf *bp, struct bufobj *bo, b_xflags_t xflags)
{
int error;
KASSERT((bp->b_xflags & (BX_VNDIRTY | BX_VNCLEAN)) == 0,
("buf_vlist_add: Buf %p has existing xflags %d", bp, bp->b_xflags));
bp->b_xflags |= xflags;
error = buf_vlist_find_or_add(bp, bo, xflags);
if (error)
panic("buf_vlist_add: error=%d", error);
}
struct buf *
gbincore(struct bufobj *bo, daddr_t lblkno)
{
struct buf *bp;
ASSERT_BO_LOCKED(bo);
bp = BUF_PCTRIE_LOOKUP(&bo->bo_clean.bv_root, lblkno);
if (bp != NULL)
return (bp);
return (BUF_PCTRIE_LOOKUP(&bo->bo_dirty.bv_root, lblkno));
}
struct buf *
gbincore_unlocked(struct bufobj *bo, daddr_t lblkno)
{
struct buf *bp;
ASSERT_BO_UNLOCKED(bo);
bp = BUF_PCTRIE_LOOKUP_UNLOCKED(&bo->bo_clean.bv_root, lblkno);
if (bp != NULL)
return (bp);
return (BUF_PCTRIE_LOOKUP_UNLOCKED(&bo->bo_dirty.bv_root, lblkno));
}
int
bgetvp(struct vnode *vp, struct buf *bp)
{
struct bufobj *bo;
int error;
bo = &vp->v_bufobj;
ASSERT_BO_UNLOCKED(bo);
VNASSERT(bp->b_vp == NULL, bp->b_vp, ("bgetvp: not free"));
CTR3(KTR_BUF, "bgetvp(%p) vp %p flags %X", bp, vp, bp->b_flags);
VNASSERT((bp->b_xflags & (BX_VNDIRTY|BX_VNCLEAN)) == 0, vp,
("bgetvp: bp already attached! %p", bp));
bp->b_vp = vp;
bp->b_bufobj = bo;
bp->b_xflags |= BX_VNCLEAN;
error = EEXIST;
BO_LOCK(bo);
if (BUF_PCTRIE_LOOKUP(&bo->bo_dirty.bv_root, bp->b_lblkno) == NULL)
error = buf_vlist_find_or_add(bp, bo, BX_VNCLEAN);
BO_UNLOCK(bo);
if (__predict_true(error == 0)) {
vhold(vp);
return (0);
}
if (error != EEXIST)
panic("bgetvp: buf_vlist_add error: %d", error);
bp->b_vp = NULL;
bp->b_bufobj = NULL;
bp->b_xflags &= ~BX_VNCLEAN;
return (error);
}
void
brelvp(struct buf *bp)
{
struct bufobj *bo;
struct vnode *vp;
CTR3(KTR_BUF, "brelvp(%p) vp %p flags %X", bp, bp->b_vp, bp->b_flags);
KASSERT(bp->b_vp != NULL, ("brelvp: NULL"));
vp = bp->b_vp;
bo = bp->b_bufobj;
BO_LOCK(bo);
buf_vlist_remove(bp);
if ((bo->bo_flag & BO_ONWORKLST) && bo->bo_dirty.bv_cnt == 0) {
bo->bo_flag &= ~BO_ONWORKLST;
mtx_lock(&sync_mtx);
LIST_REMOVE(bo, bo_synclist);
syncer_worklist_len--;
mtx_unlock(&sync_mtx);
}
bp->b_vp = NULL;
bp->b_bufobj = NULL;
BO_UNLOCK(bo);
vdrop(vp);
}
static void
vn_syncer_add_to_worklist(struct bufobj *bo, int delay)
{
int slot;
ASSERT_BO_WLOCKED(bo);
mtx_lock(&sync_mtx);
if (bo->bo_flag & BO_ONWORKLST)
LIST_REMOVE(bo, bo_synclist);
else {
bo->bo_flag |= BO_ONWORKLST;
syncer_worklist_len++;
}
if (delay > syncer_maxdelay - 2)
delay = syncer_maxdelay - 2;
slot = (syncer_delayno + delay) & syncer_mask;
LIST_INSERT_HEAD(&syncer_workitem_pending[slot], bo, bo_synclist);
mtx_unlock(&sync_mtx);
}
static int
sysctl_vfs_worklist_len(SYSCTL_HANDLER_ARGS)
{
int error, len;
mtx_lock(&sync_mtx);
len = syncer_worklist_len - sync_vnode_count;
mtx_unlock(&sync_mtx);
error = SYSCTL_OUT(req, &len, sizeof(len));
return (error);
}
SYSCTL_PROC(_vfs, OID_AUTO, worklist_len,
CTLTYPE_INT | CTLFLAG_MPSAFE| CTLFLAG_RD, NULL, 0,
sysctl_vfs_worklist_len, "I", "Syncer thread worklist length");
static struct proc *updateproc;
static void sched_sync(void);
static struct kproc_desc up_kp = {
"syncer",
sched_sync,
&updateproc
};
SYSINIT(syncer, SI_SUB_KTHREAD_UPDATE, SI_ORDER_FIRST, kproc_start, &up_kp);
static int
sync_vnode(struct synclist *slp, struct bufobj **bo, struct thread *td)
{
struct vnode *vp;
struct mount *mp;
*bo = LIST_FIRST(slp);
if (*bo == NULL)
return (0);
vp = bo2vnode(*bo);
if (VOP_ISLOCKED(vp) != 0 || VI_TRYLOCK(vp) == 0)
return (1);
vholdl(vp);
mtx_unlock(&sync_mtx);
VI_UNLOCK(vp);
if (vn_start_write(vp, &mp, V_NOWAIT) != 0) {
vdrop(vp);
mtx_lock(&sync_mtx);
return (*bo == LIST_FIRST(slp));
}
MPASSERT(mp == NULL || (curthread->td_pflags & TDP_IGNSUSP) != 0 ||
(mp->mnt_kern_flag & MNTK_SUSPENDED) == 0, mp,
("suspended mp syncing vp %p", vp));
vn_lock(vp, LK_EXCLUSIVE | LK_RETRY);
(void) VOP_FSYNC(vp, MNT_LAZY, td);
VOP_UNLOCK(vp);
vn_finished_write(mp);
BO_LOCK(*bo);
if (((*bo)->bo_flag & BO_ONWORKLST) != 0) {
vn_syncer_add_to_worklist(*bo, syncdelay);
}
BO_UNLOCK(*bo);
vdrop(vp);
mtx_lock(&sync_mtx);
return (0);
}
static int first_printf = 1;
static void
sched_sync(void)
{
struct synclist *next, *slp;
struct bufobj *bo;
long starttime;
struct thread *td = curthread;
int last_work_seen;
int net_worklist_len;
int syncer_final_iter;
int error;
last_work_seen = 0;
syncer_final_iter = 0;
syncer_state = SYNCER_RUNNING;
starttime = time_uptime;
td->td_pflags |= TDP_NORUNNINGBUF;
EVENTHANDLER_REGISTER(shutdown_pre_sync, syncer_shutdown, td->td_proc,
SHUTDOWN_PRI_LAST);
mtx_lock(&sync_mtx);
for (;;) {
if (syncer_state == SYNCER_FINAL_DELAY &&
syncer_final_iter == 0) {
mtx_unlock(&sync_mtx);
kproc_suspend_check(td->td_proc);
mtx_lock(&sync_mtx);
}
net_worklist_len = syncer_worklist_len - sync_vnode_count;
if (syncer_state != SYNCER_RUNNING &&
starttime != time_uptime) {
if (first_printf) {
printf("\nSyncing disks, vnodes remaining... ");
first_printf = 0;
}
printf("%d ", net_worklist_len);
}
starttime = time_uptime;
do {
slp = &syncer_workitem_pending[syncer_delayno];
syncer_delayno += 1;
if (syncer_delayno == syncer_maxdelay)
syncer_delayno = 0;
next = &syncer_workitem_pending[syncer_delayno];
if (syncer_state == SYNCER_SHUTTING_DOWN &&
net_worklist_len == 0 &&
last_work_seen == syncer_delayno) {
syncer_state = SYNCER_FINAL_DELAY;
syncer_final_iter = SYNCER_SHUTDOWN_SPEEDUP;
}
} while (syncer_state != SYNCER_RUNNING && LIST_EMPTY(slp) &&
syncer_worklist_len > 0);
if (net_worklist_len > 0 || syncer_state == SYNCER_RUNNING)
last_work_seen = syncer_delayno;
if (net_worklist_len > 0 && syncer_state == SYNCER_FINAL_DELAY)
syncer_state = SYNCER_SHUTTING_DOWN;
while (!LIST_EMPTY(slp)) {
error = sync_vnode(slp, &bo, td);
if (error == 1) {
LIST_REMOVE(bo, bo_synclist);
LIST_INSERT_HEAD(next, bo, bo_synclist);
continue;
}
if (first_printf == 0) {
mtx_unlock(&sync_mtx);
wdog_kern_pat(WD_LASTVAL);
mtx_lock(&sync_mtx);
}
}
if (syncer_state == SYNCER_FINAL_DELAY && syncer_final_iter > 0)
syncer_final_iter--;
if (rushjob > 0) {
rushjob -= 1;
continue;
}
if (syncer_state != SYNCER_RUNNING ||
time_uptime == starttime) {
thread_lock(td);
sched_prio(td, PPAUSE);
thread_unlock(td);
}
if (syncer_state != SYNCER_RUNNING)
cv_timedwait(&sync_wakeup, &sync_mtx,
hz / SYNCER_SHUTDOWN_SPEEDUP);
else if (time_uptime == starttime)
cv_timedwait(&sync_wakeup, &sync_mtx, hz);
}
}
int
speedup_syncer(void)
{
int ret = 0;
mtx_lock(&sync_mtx);
if (rushjob < syncdelay / 2) {
rushjob += 1;
stat_rush_requests += 1;
ret = 1;
}
mtx_unlock(&sync_mtx);
cv_broadcast(&sync_wakeup);
return (ret);
}
static void
syncer_shutdown(void *arg, int howto)
{
if (howto & RB_NOSYNC)
return;
mtx_lock(&sync_mtx);
syncer_state = SYNCER_SHUTTING_DOWN;
rushjob = 0;
mtx_unlock(&sync_mtx);
cv_broadcast(&sync_wakeup);
kproc_shutdown(arg, howto);
}
void
syncer_suspend(void)
{
syncer_shutdown(updateproc, 0);
}
void
syncer_resume(void)
{
mtx_lock(&sync_mtx);
first_printf = 1;
syncer_state = SYNCER_RUNNING;
mtx_unlock(&sync_mtx);
cv_broadcast(&sync_wakeup);
kproc_resume(updateproc);
}
void
reassignbuf(struct buf *bp)
{
struct vnode *vp;
struct bufobj *bo;
int delay;
#ifdef INVARIANTS
struct bufv *bv;
#endif
vp = bp->b_vp;
bo = bp->b_bufobj;
KASSERT((bp->b_flags & B_PAGING) == 0,
("%s: cannot reassign paging buffer %p", __func__, bp));
CTR3(KTR_BUF, "reassignbuf(%p) vp %p flags %X",
bp, bp->b_vp, bp->b_flags);
BO_LOCK(bo);
if ((bo->bo_flag & BO_NONSTERILE) == 0) {
bo->bo_flag |= BO_NONSTERILE;
atomic_thread_fence_rel();
}
buf_vlist_remove(bp);
if (bp->b_flags & B_DELWRI) {
if ((bo->bo_flag & BO_ONWORKLST) == 0) {
switch (vp->v_type) {
case VDIR:
delay = dirdelay;
break;
case VCHR:
delay = metadelay;
break;
default:
delay = filedelay;
}
vn_syncer_add_to_worklist(bo, delay);
}
buf_vlist_add(bp, bo, BX_VNDIRTY);
} else {
buf_vlist_add(bp, bo, BX_VNCLEAN);
if ((bo->bo_flag & BO_ONWORKLST) && bo->bo_dirty.bv_cnt == 0) {
mtx_lock(&sync_mtx);
LIST_REMOVE(bo, bo_synclist);
syncer_worklist_len--;
mtx_unlock(&sync_mtx);
bo->bo_flag &= ~BO_ONWORKLST;
}
}
#ifdef INVARIANTS
bv = &bo->bo_clean;
bp = TAILQ_FIRST(&bv->bv_hd);
KASSERT(bp == NULL || bp->b_bufobj == bo,
("bp %p wrong b_bufobj %p should be %p", bp, bp->b_bufobj, bo));
bp = TAILQ_LAST(&bv->bv_hd, buflists);
KASSERT(bp == NULL || bp->b_bufobj == bo,
("bp %p wrong b_bufobj %p should be %p", bp, bp->b_bufobj, bo));
bv = &bo->bo_dirty;
bp = TAILQ_FIRST(&bv->bv_hd);
KASSERT(bp == NULL || bp->b_bufobj == bo,
("bp %p wrong b_bufobj %p should be %p", bp, bp->b_bufobj, bo));
bp = TAILQ_LAST(&bv->bv_hd, buflists);
KASSERT(bp == NULL || bp->b_bufobj == bo,
("bp %p wrong b_bufobj %p should be %p", bp, bp->b_bufobj, bo));
#endif
BO_UNLOCK(bo);
}
static void
v_init_counters(struct vnode *vp)
{
VNASSERT(vp->v_type == VNON && vp->v_data == NULL && vp->v_iflag == 0,
vp, ("%s called for an initialized vnode", __FUNCTION__));
ASSERT_VI_UNLOCKED(vp, __FUNCTION__);
refcount_init(&vp->v_holdcnt, 1);
refcount_init(&vp->v_usecount, 1);
}
enum vgetstate
vget_prep_smr(struct vnode *vp)
{
enum vgetstate vs;
VFS_SMR_ASSERT_ENTERED();
if (refcount_acquire_if_not_zero(&vp->v_usecount)) {
vs = VGET_USECOUNT;
} else {
if (vhold_smr(vp))
vs = VGET_HOLDCNT;
else
vs = VGET_NONE;
}
return (vs);
}
enum vgetstate
vget_prep(struct vnode *vp)
{
enum vgetstate vs;
if (refcount_acquire_if_not_zero(&vp->v_usecount)) {
vs = VGET_USECOUNT;
} else {
vhold(vp);
vs = VGET_HOLDCNT;
}
return (vs);
}
void
vget_abort(struct vnode *vp, enum vgetstate vs)
{
switch (vs) {
case VGET_USECOUNT:
vrele(vp);
goto out_ok;
case VGET_HOLDCNT:
vdrop(vp);
goto out_ok;
case VGET_NONE:
break;
}
__assert_unreachable();
out_ok:
return;
}
int
vget(struct vnode *vp, int flags)
{
enum vgetstate vs;
vs = vget_prep(vp);
return (vget_finish(vp, flags, vs));
}
int
vget_finish(struct vnode *vp, int flags, enum vgetstate vs)
{
int error;
if ((flags & LK_INTERLOCK) != 0)
ASSERT_VI_LOCKED(vp, __func__);
else
ASSERT_VI_UNLOCKED(vp, __func__);
VNPASS(vs == VGET_HOLDCNT || vs == VGET_USECOUNT, vp);
VNPASS(vp->v_holdcnt > 0, vp);
VNPASS(vs == VGET_HOLDCNT || vp->v_usecount > 0, vp);
error = vn_lock(vp, flags);
if (__predict_false(error != 0)) {
vget_abort(vp, vs);
CTR2(KTR_VFS, "%s: impossible to lock vnode %p", __func__,
vp);
return (error);
}
vget_finish_ref(vp, vs);
return (0);
}
void
vget_finish_ref(struct vnode *vp, enum vgetstate vs)
{
int old;
VNPASS(vs == VGET_HOLDCNT || vs == VGET_USECOUNT, vp);
VNPASS(vp->v_holdcnt > 0, vp);
VNPASS(vs == VGET_HOLDCNT || vp->v_usecount > 0, vp);
if (vs == VGET_USECOUNT)
return;
old = atomic_fetchadd_int(&vp->v_usecount, 1);
VNASSERT(old >= 0, vp, ("%s: wrong use count %d", __func__, old));
if (old != 0) {
#ifdef INVARIANTS
old = atomic_fetchadd_int(&vp->v_holdcnt, -1);
VNASSERT(old > 1, vp, ("%s: wrong hold count %d", __func__, old));
#else
refcount_release(&vp->v_holdcnt);
#endif
}
}
void
vref(struct vnode *vp)
{
enum vgetstate vs;
CTR2(KTR_VFS, "%s: vp %p", __func__, vp);
vs = vget_prep(vp);
vget_finish_ref(vp, vs);
}
void
vrefact(struct vnode *vp)
{
int old __diagused;
CTR2(KTR_VFS, "%s: vp %p", __func__, vp);
old = refcount_acquire(&vp->v_usecount);
VNASSERT(old > 0, vp, ("%s: wrong use count %d", __func__, old));
}
void
vlazy(struct vnode *vp)
{
struct mount *mp;
VNASSERT(vp->v_holdcnt > 0, vp, ("%s: vnode not held", __func__));
if ((vp->v_mflag & VMP_LAZYLIST) != 0)
return;
if (VN_IS_DOOMED(vp))
return;
mp = vp->v_mount;
mtx_lock(&mp->mnt_listmtx);
if ((vp->v_mflag & VMP_LAZYLIST) == 0) {
vp->v_mflag |= VMP_LAZYLIST;
TAILQ_INSERT_TAIL(&mp->mnt_lazyvnodelist, vp, v_lazylist);
mp->mnt_lazyvnodelistsize++;
}
mtx_unlock(&mp->mnt_listmtx);
}
static void
vunlazy(struct vnode *vp)
{
struct mount *mp;
ASSERT_VI_LOCKED(vp, __func__);
VNPASS(!VN_IS_DOOMED(vp), vp);
mp = vp->v_mount;
mtx_lock(&mp->mnt_listmtx);
VNPASS(vp->v_mflag & VMP_LAZYLIST, vp);
if (vp->v_holdcnt == 0) {
vp->v_mflag &= ~VMP_LAZYLIST;
TAILQ_REMOVE(&mp->mnt_lazyvnodelist, vp, v_lazylist);
mp->mnt_lazyvnodelistsize--;
}
mtx_unlock(&mp->mnt_listmtx);
}
static void
vunlazy_gone(struct vnode *vp)
{
struct mount *mp;
ASSERT_VOP_ELOCKED(vp, __func__);
ASSERT_VI_LOCKED(vp, __func__);
VNPASS(!VN_IS_DOOMED(vp), vp);
if (vp->v_mflag & VMP_LAZYLIST) {
mp = vp->v_mount;
mtx_lock(&mp->mnt_listmtx);
VNPASS(vp->v_mflag & VMP_LAZYLIST, vp);
vp->v_mflag &= ~VMP_LAZYLIST;
TAILQ_REMOVE(&mp->mnt_lazyvnodelist, vp, v_lazylist);
mp->mnt_lazyvnodelistsize--;
mtx_unlock(&mp->mnt_listmtx);
}
}
static void
vdefer_inactive(struct vnode *vp)
{
ASSERT_VI_LOCKED(vp, __func__);
VNPASS(vp->v_holdcnt > 0, vp);
if (VN_IS_DOOMED(vp)) {
vdropl(vp);
return;
}
if (vp->v_iflag & VI_DEFINACT) {
VNPASS(vp->v_holdcnt > 1, vp);
vdropl(vp);
return;
}
if (vp->v_usecount > 0) {
vp->v_iflag &= ~VI_OWEINACT;
vdropl(vp);
return;
}
vlazy(vp);
vp->v_iflag |= VI_DEFINACT;
VI_UNLOCK(vp);
atomic_add_long(&deferred_inact, 1);
}
static void
vdefer_inactive_unlocked(struct vnode *vp)
{
VI_LOCK(vp);
if ((vp->v_iflag & VI_OWEINACT) == 0) {
vdropl(vp);
return;
}
vdefer_inactive(vp);
}
enum vput_op { VRELE, VPUT, VUNREF };
static void
vput_final(struct vnode *vp, enum vput_op func)
{
int error;
bool want_unlock;
CTR2(KTR_VFS, "%s: vp %p", __func__, vp);
VNPASS(vp->v_holdcnt > 0, vp);
VI_LOCK(vp);
if (vp->v_usecount > 0)
goto out;
if (VN_IS_DOOMED(vp))
goto out;
if (__predict_true(VOP_NEED_INACTIVE(vp) == 0))
goto out;
if (vp->v_iflag & VI_DOINGINACT)
goto out;
vp->v_iflag |= VI_OWEINACT;
want_unlock = false;
error = 0;
switch (func) {
case VRELE:
switch (VOP_ISLOCKED(vp)) {
case LK_EXCLUSIVE:
break;
case LK_EXCLOTHER:
case 0:
want_unlock = true;
error = vn_lock(vp, LK_EXCLUSIVE | LK_INTERLOCK);
VI_LOCK(vp);
break;
default:
error = EAGAIN;
break;
}
break;
case VPUT:
want_unlock = true;
if (VOP_ISLOCKED(vp) != LK_EXCLUSIVE) {
error = VOP_LOCK(vp, LK_UPGRADE | LK_INTERLOCK |
LK_NOWAIT);
VI_LOCK(vp);
}
break;
case VUNREF:
if (VOP_ISLOCKED(vp) != LK_EXCLUSIVE) {
error = VOP_LOCK(vp, LK_TRYUPGRADE | LK_INTERLOCK);
VI_LOCK(vp);
}
break;
}
if (error != 0) {
vdefer_inactive(vp);
return;
}
if (func == VUNREF) {
VNASSERT((vp->v_vflag & VV_UNREF) == 0, vp,
("recursive vunref"));
vp->v_vflag |= VV_UNREF;
}
for (;;) {
error = vinactive(vp);
if (want_unlock)
VOP_UNLOCK(vp);
if (error != ERELOOKUP || !want_unlock)
break;
VOP_LOCK(vp, LK_EXCLUSIVE);
}
if (func == VUNREF)
vp->v_vflag &= ~VV_UNREF;
vdropl(vp);
return;
out:
if (func == VPUT)
VOP_UNLOCK(vp);
vdropl(vp);
}
void
vrele(struct vnode *vp)
{
ASSERT_VI_UNLOCKED(vp, __func__);
if (!refcount_release(&vp->v_usecount))
return;
vput_final(vp, VRELE);
}
void
vput(struct vnode *vp)
{
ASSERT_VOP_LOCKED(vp, __func__);
ASSERT_VI_UNLOCKED(vp, __func__);
if (!refcount_release(&vp->v_usecount)) {
VOP_UNLOCK(vp);
return;
}
vput_final(vp, VPUT);
}
void
vunref(struct vnode *vp)
{
ASSERT_VOP_LOCKED(vp, __func__);
ASSERT_VI_UNLOCKED(vp, __func__);
if (!refcount_release(&vp->v_usecount))
return;
vput_final(vp, VUNREF);
}
void
vhold(struct vnode *vp)
{
int old;
CTR2(KTR_VFS, "%s: vp %p", __func__, vp);
old = atomic_fetchadd_int(&vp->v_holdcnt, 1);
VNASSERT(old >= 0 && (old & VHOLD_ALL_FLAGS) == 0, vp,
("%s: wrong hold count %d", __func__, old));
if (old == 0)
vfs_freevnodes_dec();
}
void
vholdnz(struct vnode *vp)
{
CTR2(KTR_VFS, "%s: vp %p", __func__, vp);
#ifdef INVARIANTS
int old = atomic_fetchadd_int(&vp->v_holdcnt, 1);
VNASSERT(old > 0 && (old & VHOLD_ALL_FLAGS) == 0, vp,
("%s: wrong hold count %d", __func__, old));
#else
atomic_add_int(&vp->v_holdcnt, 1);
#endif
}
bool
vhold_smr(struct vnode *vp)
{
int count;
VFS_SMR_ASSERT_ENTERED();
count = atomic_load_int(&vp->v_holdcnt);
for (;;) {
if (count & VHOLD_NO_SMR) {
VNASSERT((count & ~VHOLD_NO_SMR) == 0, vp,
("non-zero hold count with flags %d\n", count));
return (false);
}
VNASSERT(count >= 0, vp, ("invalid hold count %d\n", count));
if (atomic_fcmpset_int(&vp->v_holdcnt, &count, count + 1)) {
if (count == 0)
vfs_freevnodes_dec();
return (true);
}
}
}
static bool
vhold_recycle_free(struct vnode *vp)
{
int count;
mtx_assert(&vnode_list_mtx, MA_OWNED);
count = atomic_load_int(&vp->v_holdcnt);
for (;;) {
if (count & VHOLD_NO_SMR) {
VNASSERT((count & ~VHOLD_NO_SMR) == 0, vp,
("non-zero hold count with flags %d\n", count));
return (false);
}
VNASSERT(count >= 0, vp, ("invalid hold count %d\n", count));
if (count > 0) {
return (false);
}
if (atomic_fcmpset_int(&vp->v_holdcnt, &count, count + 1)) {
vfs_freevnodes_dec();
return (true);
}
}
}
static void __noinline
vdbatch_process(struct vdbatch *vd)
{
struct vnode *vp;
int i;
mtx_assert(&vd->lock, MA_OWNED);
MPASS(curthread->td_pinned > 0);
MPASS(vd->index == VDBATCH_SIZE);
if (vnode_can_skip_requeue) {
if (!mtx_trylock(&vnode_list_mtx)) {
counter_u64_add(vnode_skipped_requeues, 1);
critical_enter();
for (i = 0; i < VDBATCH_SIZE; i++) {
vp = vd->tab[i];
vd->tab[i] = NULL;
MPASS(vp->v_dbatchcpu != NOCPU);
vp->v_dbatchcpu = NOCPU;
}
vd->index = 0;
critical_exit();
return;
}
} else {
mtx_lock(&vnode_list_mtx);
}
mtx_assert(&vnode_list_mtx, MA_OWNED);
critical_enter();
for (i = 0; i < VDBATCH_SIZE; i++) {
vp = vd->tab[i];
vd->tab[i] = NULL;
TAILQ_REMOVE(&vnode_list, vp, v_vnodelist);
TAILQ_INSERT_TAIL(&vnode_list, vp, v_vnodelist);
MPASS(vp->v_dbatchcpu != NOCPU);
vp->v_dbatchcpu = NOCPU;
}
mtx_unlock(&vnode_list_mtx);
vd->index = 0;
critical_exit();
}
static void
vdbatch_enqueue(struct vnode *vp)
{
struct vdbatch *vd;
ASSERT_VI_LOCKED(vp, __func__);
VNPASS(!VN_IS_DOOMED(vp), vp);
if (vp->v_dbatchcpu != NOCPU) {
VI_UNLOCK(vp);
return;
}
sched_pin();
vd = DPCPU_PTR(vd);
mtx_lock(&vd->lock);
MPASS(vd->index < VDBATCH_SIZE);
MPASS(vd->tab[vd->index] == NULL);
vp->v_dbatchcpu = curcpu;
vd->tab[vd->index] = vp;
vd->index++;
VI_UNLOCK(vp);
if (vd->index == VDBATCH_SIZE)
vdbatch_process(vd);
mtx_unlock(&vd->lock);
sched_unpin();
}
static void
vdbatch_dequeue(struct vnode *vp)
{
struct vdbatch *vd;
int i;
short cpu;
VNPASS(vp->v_type == VBAD || vp->v_type == VNON, vp);
cpu = vp->v_dbatchcpu;
if (cpu == NOCPU)
return;
vd = DPCPU_ID_PTR(cpu, vd);
mtx_lock(&vd->lock);
for (i = 0; i < vd->index; i++) {
if (vd->tab[i] != vp)
continue;
vp->v_dbatchcpu = NOCPU;
vd->index--;
vd->tab[i] = vd->tab[vd->index];
vd->tab[vd->index] = NULL;
break;
}
mtx_unlock(&vd->lock);
MPASS(vp->v_dbatchcpu == NOCPU);
}
static void __noinline
vdropl_final(struct vnode *vp)
{
ASSERT_VI_LOCKED(vp, __func__);
VNPASS(VN_IS_DOOMED(vp), vp);
if (__predict_false(!atomic_cmpset_int(&vp->v_holdcnt, 0, VHOLD_NO_SMR))) {
vfs_freevnodes_inc();
VI_UNLOCK(vp);
return;
}
freevnode(vp);
}
void
vdrop(struct vnode *vp)
{
ASSERT_VI_UNLOCKED(vp, __func__);
CTR2(KTR_VFS, "%s: vp %p", __func__, vp);
if (refcount_release_if_not_last(&vp->v_holdcnt))
return;
VI_LOCK(vp);
vdropl(vp);
}
static __always_inline void
vdropl_impl(struct vnode *vp, bool enqueue)
{
ASSERT_VI_LOCKED(vp, __func__);
CTR2(KTR_VFS, "%s: vp %p", __func__, vp);
if (!refcount_release(&vp->v_holdcnt)) {
VI_UNLOCK(vp);
return;
}
VNPASS((vp->v_iflag & VI_OWEINACT) == 0, vp);
VNPASS((vp->v_iflag & VI_DEFINACT) == 0, vp);
if (VN_IS_DOOMED(vp)) {
vdropl_final(vp);
return;
}
vfs_freevnodes_inc();
if (vp->v_mflag & VMP_LAZYLIST) {
vunlazy(vp);
}
if (!enqueue) {
VI_UNLOCK(vp);
return;
}
vdbatch_enqueue(vp);
}
void
vdropl(struct vnode *vp)
{
vdropl_impl(vp, true);
}
static void
vdropl_recycle(struct vnode *vp)
{
vdropl_impl(vp, false);
}
static void
vdrop_recycle(struct vnode *vp)
{
VI_LOCK(vp);
vdropl_recycle(vp);
}
static int
vinactivef(struct vnode *vp)
{
int error;
ASSERT_VOP_ELOCKED(vp, "vinactive");
ASSERT_VI_LOCKED(vp, "vinactive");
VNPASS((vp->v_iflag & VI_DOINGINACT) == 0, vp);
CTR2(KTR_VFS, "%s: vp %p", __func__, vp);
vp->v_iflag |= VI_DOINGINACT;
vp->v_iflag &= ~VI_OWEINACT;
VI_UNLOCK(vp);
if ((vp->v_vflag & VV_NOSYNC) == 0)
vnode_pager_clean_async(vp);
error = VOP_INACTIVE(vp);
VI_LOCK(vp);
VNPASS(vp->v_iflag & VI_DOINGINACT, vp);
vp->v_iflag &= ~VI_DOINGINACT;
return (error);
}
int
vinactive(struct vnode *vp)
{
ASSERT_VOP_ELOCKED(vp, "vinactive");
ASSERT_VI_LOCKED(vp, "vinactive");
CTR2(KTR_VFS, "%s: vp %p", __func__, vp);
if ((vp->v_iflag & VI_OWEINACT) == 0)
return (0);
if (vp->v_iflag & VI_DOINGINACT)
return (0);
if (vp->v_usecount > 0) {
vp->v_iflag &= ~VI_OWEINACT;
return (0);
}
return (vinactivef(vp));
}
#ifdef DIAGNOSTIC
static int busyprt = 0;
SYSCTL_INT(_debug, OID_AUTO, busyprt, CTLFLAG_RW, &busyprt, 0, "Print out busy vnodes");
#endif
int
vflush(struct mount *mp, int rootrefs, int flags, struct thread *td)
{
struct vnode *vp, *mvp, *rootvp = NULL;
struct vattr vattr;
int busy = 0, error;
CTR4(KTR_VFS, "%s: mp %p with rootrefs %d and flags %d", __func__, mp,
rootrefs, flags);
if (rootrefs > 0) {
KASSERT((flags & (SKIPSYSTEM | WRITECLOSE)) == 0,
("vflush: bad args"));
if ((error = VFS_ROOT(mp, LK_EXCLUSIVE, &rootvp)) != 0) {
CTR2(KTR_VFS, "%s: vfs_root lookup failed with %d",
__func__, error);
return (error);
}
vput(rootvp);
}
loop:
MNT_VNODE_FOREACH_ALL(vp, mp, mvp) {
vholdl(vp);
error = vn_lock(vp, LK_INTERLOCK | LK_EXCLUSIVE);
if (error) {
vdrop(vp);
MNT_VNODE_FOREACH_ALL_ABORT(mp, mvp);
goto loop;
}
if ((flags & SKIPSYSTEM) && (vp->v_vflag & VV_SYSTEM)) {
VOP_UNLOCK(vp);
vdrop(vp);
continue;
}
if (flags & WRITECLOSE) {
vnode_pager_clean_async(vp);
do {
error = VOP_FSYNC(vp, MNT_WAIT, td);
} while (error == ERELOOKUP);
if (error != 0) {
VOP_UNLOCK(vp);
vdrop(vp);
MNT_VNODE_FOREACH_ALL_ABORT(mp, mvp);
return (error);
}
error = VOP_GETATTR(vp, &vattr, td->td_ucred);
VI_LOCK(vp);
if ((vp->v_type == VNON ||
(error == 0 && vattr.va_nlink > 0)) &&
(vp->v_writecount <= 0 || vp->v_type != VREG)) {
VOP_UNLOCK(vp);
vdropl(vp);
continue;
}
} else
VI_LOCK(vp);
if (vp->v_usecount == 0 || (flags & FORCECLOSE)) {
vgonel(vp);
} else {
busy++;
#ifdef DIAGNOSTIC
if (busyprt)
vn_printf(vp, "vflush: busy vnode ");
#endif
}
VOP_UNLOCK(vp);
vdropl(vp);
}
if (rootrefs > 0 && (flags & FORCECLOSE) == 0) {
VI_LOCK(rootvp);
KASSERT(busy > 0, ("vflush: not busy"));
VNASSERT(rootvp->v_usecount >= rootrefs, rootvp,
("vflush: usecount %d < rootrefs %d",
rootvp->v_usecount, rootrefs));
if (busy == 1 && rootvp->v_usecount == rootrefs) {
VOP_LOCK(rootvp, LK_EXCLUSIVE|LK_INTERLOCK);
vgone(rootvp);
VOP_UNLOCK(rootvp);
busy = 0;
} else
VI_UNLOCK(rootvp);
}
if (busy) {
CTR2(KTR_VFS, "%s: failing as %d vnodes are busy", __func__,
busy);
return (EBUSY);
}
for (; rootrefs > 0; rootrefs--)
vrele(rootvp);
return (0);
}
int
vrecycle(struct vnode *vp)
{
int recycled;
VI_LOCK(vp);
recycled = vrecyclel(vp);
VI_UNLOCK(vp);
return (recycled);
}
int
vrecyclel(struct vnode *vp)
{
int recycled;
ASSERT_VOP_ELOCKED(vp, __func__);
ASSERT_VI_LOCKED(vp, __func__);
CTR2(KTR_VFS, "%s: vp %p", __func__, vp);
recycled = 0;
if (vp->v_usecount == 0) {
recycled = 1;
vgonel(vp);
}
return (recycled);
}
void
vgone(struct vnode *vp)
{
VI_LOCK(vp);
vgonel(vp);
VI_UNLOCK(vp);
}
void
vfs_notify_upper(struct vnode *vp, enum vfs_notify_upper_type event)
{
struct mount *mp;
struct mount_upper_node *ump;
mp = atomic_load_ptr(&vp->v_mount);
if (mp == NULL)
return;
if (TAILQ_EMPTY(&mp->mnt_notify))
return;
MNT_ILOCK(mp);
mp->mnt_upper_pending++;
KASSERT(mp->mnt_upper_pending > 0,
("%s: mnt_upper_pending %d", __func__, mp->mnt_upper_pending));
TAILQ_FOREACH(ump, &mp->mnt_notify, mnt_upper_link) {
MNT_IUNLOCK(mp);
switch (event) {
case VFS_NOTIFY_UPPER_RECLAIM:
VFS_RECLAIM_LOWERVP(ump->mp, vp);
break;
case VFS_NOTIFY_UPPER_UNLINK:
VFS_UNLINK_LOWERVP(ump->mp, vp);
break;
}
MNT_ILOCK(mp);
}
mp->mnt_upper_pending--;
if ((mp->mnt_kern_flag & MNTK_UPPER_WAITER) != 0 &&
mp->mnt_upper_pending == 0) {
mp->mnt_kern_flag &= ~MNTK_UPPER_WAITER;
wakeup(&mp->mnt_uppers);
}
MNT_IUNLOCK(mp);
}
static void
vgonel(struct vnode *vp)
{
struct thread *td;
struct mount *mp;
vm_object_t object;
bool active, doinginact, oweinact;
ASSERT_VOP_ELOCKED(vp, "vgonel");
ASSERT_VI_LOCKED(vp, "vgonel");
VNASSERT(vp->v_holdcnt, vp,
("vgonel: vp %p has no reference.", vp));
CTR2(KTR_VFS, "%s: vp %p", __func__, vp);
td = curthread;
if (VN_IS_DOOMED(vp)) {
VNPASS(vn_get_state(vp) == VSTATE_DESTROYING || \
vn_get_state(vp) == VSTATE_DEAD, vp);
return;
}
vn_seqc_write_begin_locked(vp);
vunlazy_gone(vp);
vn_irflag_set_locked(vp, VIRF_DOOMED);
vn_set_state(vp, VSTATE_DESTROYING);
active = vp->v_usecount > 0;
oweinact = (vp->v_iflag & VI_OWEINACT) != 0;
doinginact = (vp->v_iflag & VI_DOINGINACT) != 0;
if (vp->v_iflag & VI_DEFINACT) {
VNASSERT(vp->v_holdcnt > 1, vp, ("lost hold count"));
vp->v_iflag &= ~VI_DEFINACT;
vdropl(vp);
} else {
VNASSERT(vp->v_holdcnt > 0, vp, ("vnode without hold count"));
VI_UNLOCK(vp);
}
cache_purge_vgone(vp);
vfs_notify_upper(vp, VFS_NOTIFY_UPPER_RECLAIM);
if (active)
VOP_CLOSE(vp, FNONBLOCK, NOCRED, td);
if (!doinginact) {
do {
if (oweinact || active) {
VI_LOCK(vp);
vinactivef(vp);
oweinact = (vp->v_iflag & VI_OWEINACT) != 0;
VI_UNLOCK(vp);
}
} while (oweinact);
}
if (vp->v_type == VSOCK)
vfs_unp_reclaim(vp);
mp = NULL;
if (!TAILQ_EMPTY(&vp->v_bufobj.bo_dirty.bv_hd))
(void) vn_start_secondary_write(vp, &mp, V_WAIT);
if (vinvalbuf(vp, V_SAVE, 0, 0) != 0) {
while (vinvalbuf(vp, 0, 0, 0) != 0)
;
}
BO_LOCK(&vp->v_bufobj);
KASSERT(TAILQ_EMPTY(&vp->v_bufobj.bo_dirty.bv_hd) &&
vp->v_bufobj.bo_dirty.bv_cnt == 0 &&
TAILQ_EMPTY(&vp->v_bufobj.bo_clean.bv_hd) &&
vp->v_bufobj.bo_clean.bv_cnt == 0,
("vp %p bufobj not invalidated", vp));
object = vp->v_bufobj.bo_object;
if (object == NULL)
vp->v_bufobj.bo_flag |= BO_DEAD;
BO_UNLOCK(&vp->v_bufobj);
if (object != NULL && object->type == OBJT_VNODE &&
object->handle == vp)
vnode_destroy_vobject(vp);
if (VOP_RECLAIM(vp))
panic("vgone: cannot reclaim");
if (mp != NULL)
vn_finished_secondary_write(mp);
VNASSERT(vp->v_object == NULL, vp,
("vop_reclaim left v_object vp=%p", vp));
if (vp->v_lockf != NULL) {
(void)VOP_ADVLOCKPURGE(vp);
vp->v_lockf = NULL;
}
if (vp->v_mount == NULL) {
VI_LOCK(vp);
} else {
delmntque(vp);
ASSERT_VI_LOCKED(vp, "vgonel 2");
}
vp->v_vnlock = &vp->v_lock;
vp->v_op = &dead_vnodeops;
vp->v_type = VBAD;
vn_set_state(vp, VSTATE_DEAD);
}
static const char *const vtypename[] = {
[VNON] = "VNON",
[VREG] = "VREG",
[VDIR] = "VDIR",
[VBLK] = "VBLK",
[VCHR] = "VCHR",
[VLNK] = "VLNK",
[VSOCK] = "VSOCK",
[VFIFO] = "VFIFO",
[VBAD] = "VBAD",
[VMARKER] = "VMARKER",
};
_Static_assert(nitems(vtypename) == VLASTTYPE + 1,
"vnode type name not added to vtypename");
static const char *const vstatename[] = {
[VSTATE_UNINITIALIZED] = "VSTATE_UNINITIALIZED",
[VSTATE_CONSTRUCTED] = "VSTATE_CONSTRUCTED",
[VSTATE_DESTROYING] = "VSTATE_DESTROYING",
[VSTATE_DEAD] = "VSTATE_DEAD",
};
_Static_assert(nitems(vstatename) == VLASTSTATE + 1,
"vnode state name not added to vstatename");
_Static_assert((VHOLD_ALL_FLAGS & ~VHOLD_NO_SMR) == 0,
"new hold count flag not added to vn_printf");
void
vn_printf(struct vnode *vp, const char *fmt, ...)
{
va_list ap;
char buf[256], buf2[16];
u_long flags;
u_int holdcnt;
short irflag;
va_start(ap, fmt);
vprintf(fmt, ap);
va_end(ap);
printf("%p: ", (void *)vp);
printf("type %s state %s op %p\n", vtypename[vp->v_type],
vstatename[vp->v_state], vp->v_op);
holdcnt = atomic_load_int(&vp->v_holdcnt);
printf(" usecount %d, writecount %d, refcount %d seqc users %d",
vp->v_usecount, vp->v_writecount, holdcnt & ~VHOLD_ALL_FLAGS,
vp->v_seqc_users);
switch (vp->v_type) {
case VDIR:
printf(" mountedhere %p\n", vp->v_mountedhere);
break;
case VCHR:
printf(" rdev %p\n", vp->v_rdev);
break;
case VSOCK:
printf(" socket %p\n", vp->v_unpcb);
break;
case VFIFO:
printf(" fifoinfo %p\n", vp->v_fifoinfo);
break;
default:
printf("\n");
break;
}
buf[0] = '\0';
buf[1] = '\0';
if (holdcnt & VHOLD_NO_SMR)
strlcat(buf, "|VHOLD_NO_SMR", sizeof(buf));
printf(" hold count flags (%s)\n", buf + 1);
buf[0] = '\0';
buf[1] = '\0';
irflag = vn_irflag_read(vp);
if (irflag & VIRF_DOOMED)
strlcat(buf, "|VIRF_DOOMED", sizeof(buf));
if (irflag & VIRF_PGREAD)
strlcat(buf, "|VIRF_PGREAD", sizeof(buf));
if (irflag & VIRF_MOUNTPOINT)
strlcat(buf, "|VIRF_MOUNTPOINT", sizeof(buf));
if (irflag & VIRF_TEXT_REF)
strlcat(buf, "|VIRF_TEXT_REF", sizeof(buf));
flags = irflag & ~(VIRF_DOOMED | VIRF_PGREAD | VIRF_MOUNTPOINT | VIRF_TEXT_REF);
if (flags != 0) {
snprintf(buf2, sizeof(buf2), "|VIRF(0x%lx)", flags);
strlcat(buf, buf2, sizeof(buf));
}
if (vp->v_vflag & VV_ROOT)
strlcat(buf, "|VV_ROOT", sizeof(buf));
if (vp->v_vflag & VV_ISTTY)
strlcat(buf, "|VV_ISTTY", sizeof(buf));
if (vp->v_vflag & VV_NOSYNC)
strlcat(buf, "|VV_NOSYNC", sizeof(buf));
if (vp->v_vflag & VV_ETERNALDEV)
strlcat(buf, "|VV_ETERNALDEV", sizeof(buf));
if (vp->v_vflag & VV_CACHEDLABEL)
strlcat(buf, "|VV_CACHEDLABEL", sizeof(buf));
if (vp->v_vflag & VV_VMSIZEVNLOCK)
strlcat(buf, "|VV_VMSIZEVNLOCK", sizeof(buf));
if (vp->v_vflag & VV_COPYONWRITE)
strlcat(buf, "|VV_COPYONWRITE", sizeof(buf));
if (vp->v_vflag & VV_SYSTEM)
strlcat(buf, "|VV_SYSTEM", sizeof(buf));
if (vp->v_vflag & VV_PROCDEP)
strlcat(buf, "|VV_PROCDEP", sizeof(buf));
if (vp->v_vflag & VV_DELETED)
strlcat(buf, "|VV_DELETED", sizeof(buf));
if (vp->v_vflag & VV_MD)
strlcat(buf, "|VV_MD", sizeof(buf));
if (vp->v_vflag & VV_FORCEINSMQ)
strlcat(buf, "|VV_FORCEINSMQ", sizeof(buf));
if (vp->v_vflag & VV_READLINK)
strlcat(buf, "|VV_READLINK", sizeof(buf));
flags = vp->v_vflag & ~(VV_ROOT | VV_ISTTY | VV_NOSYNC | VV_ETERNALDEV |
VV_CACHEDLABEL | VV_VMSIZEVNLOCK | VV_COPYONWRITE | VV_SYSTEM |
VV_PROCDEP | VV_DELETED | VV_MD | VV_FORCEINSMQ | VV_READLINK);
if (flags != 0) {
snprintf(buf2, sizeof(buf2), "|VV(0x%lx)", flags);
strlcat(buf, buf2, sizeof(buf));
}
if (vp->v_iflag & VI_MOUNT)
strlcat(buf, "|VI_MOUNT", sizeof(buf));
if (vp->v_iflag & VI_DOINGINACT)
strlcat(buf, "|VI_DOINGINACT", sizeof(buf));
if (vp->v_iflag & VI_OWEINACT)
strlcat(buf, "|VI_OWEINACT", sizeof(buf));
if (vp->v_iflag & VI_DEFINACT)
strlcat(buf, "|VI_DEFINACT", sizeof(buf));
if (vp->v_iflag & VI_FOPENING)
strlcat(buf, "|VI_FOPENING", sizeof(buf));
flags = vp->v_iflag & ~(VI_MOUNT | VI_DOINGINACT |
VI_OWEINACT | VI_DEFINACT | VI_FOPENING);
if (flags != 0) {
snprintf(buf2, sizeof(buf2), "|VI(0x%lx)", flags);
strlcat(buf, buf2, sizeof(buf));
}
if (vp->v_mflag & VMP_LAZYLIST)
strlcat(buf, "|VMP_LAZYLIST", sizeof(buf));
flags = vp->v_mflag & ~(VMP_LAZYLIST);
if (flags != 0) {
snprintf(buf2, sizeof(buf2), "|VMP(0x%lx)", flags);
strlcat(buf, buf2, sizeof(buf));
}
printf(" flags (%s)", buf + 1);
if (mtx_owned(VI_MTX(vp)))
printf(" VI_LOCKed");
printf("\n");
if (vp->v_object != NULL)
printf(" v_object %p ref %d pages %d "
"cleanbuf %d dirtybuf %d\n",
vp->v_object, vp->v_object->ref_count,
vp->v_object->resident_page_count,
vp->v_bufobj.bo_clean.bv_cnt,
vp->v_bufobj.bo_dirty.bv_cnt);
printf(" ");
lockmgr_printinfo(vp->v_vnlock);
if (vp->v_data != NULL)
VOP_PRINT(vp);
}
#ifdef DDB
DB_SHOW_COMMAND_FLAGS(lockedvnods, lockedvnodes, DB_CMD_MEMSAFE)
{
struct mount *mp;
struct vnode *vp;
db_printf("Locked vnodes\n");
TAILQ_FOREACH(mp, &mountlist, mnt_list) {
TAILQ_FOREACH(vp, &mp->mnt_nvnodelist, v_nmntvnodes) {
if (vp->v_type != VMARKER && VOP_ISLOCKED(vp))
vn_printf(vp, "vnode ");
}
}
}
DB_SHOW_COMMAND(vnode, db_show_vnode)
{
struct vnode *vp;
if (!have_addr)
return;
vp = (struct vnode *)addr;
vn_printf(vp, "vnode ");
}
DB_SHOW_COMMAND(mount, db_show_mount)
{
struct mount *mp;
struct vfsopt *opt;
struct statfs *sp;
struct vnode *vp;
char buf[512];
uint64_t mflags;
u_int flags;
if (!have_addr) {
TAILQ_FOREACH(mp, &mountlist, mnt_list) {
db_printf("%p %s on %s (%s)\n", mp,
mp->mnt_stat.f_mntfromname,
mp->mnt_stat.f_mntonname,
mp->mnt_stat.f_fstypename);
if (db_pager_quit)
break;
}
db_printf("\nMore info: show mount <addr>\n");
return;
}
mp = (struct mount *)addr;
db_printf("%p %s on %s (%s)\n", mp, mp->mnt_stat.f_mntfromname,
mp->mnt_stat.f_mntonname, mp->mnt_stat.f_fstypename);
buf[0] = '\0';
mflags = mp->mnt_flag;
#define MNT_FLAG(flag) do { \
if (mflags & (flag)) { \
if (buf[0] != '\0') \
strlcat(buf, ", ", sizeof(buf)); \
strlcat(buf, (#flag) + 4, sizeof(buf)); \
mflags &= ~(flag); \
} \
} while (0)
MNT_FLAG(MNT_RDONLY);
MNT_FLAG(MNT_SYNCHRONOUS);
MNT_FLAG(MNT_NOEXEC);
MNT_FLAG(MNT_NOSUID);
MNT_FLAG(MNT_NFS4ACLS);
MNT_FLAG(MNT_UNION);
MNT_FLAG(MNT_ASYNC);
MNT_FLAG(MNT_SUIDDIR);
MNT_FLAG(MNT_SOFTDEP);
MNT_FLAG(MNT_NOSYMFOLLOW);
MNT_FLAG(MNT_GJOURNAL);
MNT_FLAG(MNT_MULTILABEL);
MNT_FLAG(MNT_ACLS);
MNT_FLAG(MNT_NOATIME);
MNT_FLAG(MNT_NOCLUSTERR);
MNT_FLAG(MNT_NOCLUSTERW);
MNT_FLAG(MNT_SUJ);
MNT_FLAG(MNT_EXRDONLY);
MNT_FLAG(MNT_EXPORTED);
MNT_FLAG(MNT_DEFEXPORTED);
MNT_FLAG(MNT_EXPORTANON);
MNT_FLAG(MNT_EXKERB);
MNT_FLAG(MNT_EXPUBLIC);
MNT_FLAG(MNT_LOCAL);
MNT_FLAG(MNT_QUOTA);
MNT_FLAG(MNT_ROOTFS);
MNT_FLAG(MNT_USER);
MNT_FLAG(MNT_IGNORE);
MNT_FLAG(MNT_UPDATE);
MNT_FLAG(MNT_DELEXPORT);
MNT_FLAG(MNT_RELOAD);
MNT_FLAG(MNT_FORCE);
MNT_FLAG(MNT_SNAPSHOT);
MNT_FLAG(MNT_BYFSID);
MNT_FLAG(MNT_NAMEDATTR);
#undef MNT_FLAG
if (mflags != 0) {
if (buf[0] != '\0')
strlcat(buf, ", ", sizeof(buf));
snprintf(buf + strlen(buf), sizeof(buf) - strlen(buf),
"0x%016jx", mflags);
}
db_printf(" mnt_flag = %s\n", buf);
buf[0] = '\0';
flags = mp->mnt_kern_flag;
#define MNT_KERN_FLAG(flag) do { \
if (flags & (flag)) { \
if (buf[0] != '\0') \
strlcat(buf, ", ", sizeof(buf)); \
strlcat(buf, (#flag) + 5, sizeof(buf)); \
flags &= ~(flag); \
} \
} while (0)
MNT_KERN_FLAG(MNTK_UNMOUNTF);
MNT_KERN_FLAG(MNTK_ASYNC);
MNT_KERN_FLAG(MNTK_SOFTDEP);
MNT_KERN_FLAG(MNTK_NOMSYNC);
MNT_KERN_FLAG(MNTK_DRAINING);
MNT_KERN_FLAG(MNTK_REFEXPIRE);
MNT_KERN_FLAG(MNTK_EXTENDED_SHARED);
MNT_KERN_FLAG(MNTK_SHARED_WRITES);
MNT_KERN_FLAG(MNTK_NO_IOPF);
MNT_KERN_FLAG(MNTK_RECURSE);
MNT_KERN_FLAG(MNTK_UPPER_WAITER);
MNT_KERN_FLAG(MNTK_UNLOCKED_INSMNTQUE);
MNT_KERN_FLAG(MNTK_USES_BCACHE);
MNT_KERN_FLAG(MNTK_VMSETSIZE_BUG);
MNT_KERN_FLAG(MNTK_FPLOOKUP);
MNT_KERN_FLAG(MNTK_TASKQUEUE_WAITER);
MNT_KERN_FLAG(MNTK_NOASYNC);
MNT_KERN_FLAG(MNTK_UNMOUNT);
MNT_KERN_FLAG(MNTK_MWAIT);
MNT_KERN_FLAG(MNTK_SUSPEND);
MNT_KERN_FLAG(MNTK_SUSPEND2);
MNT_KERN_FLAG(MNTK_SUSPENDED);
MNT_KERN_FLAG(MNTK_NULL_NOCACHE);
MNT_KERN_FLAG(MNTK_LOOKUP_SHARED);
#undef MNT_KERN_FLAG
if (flags != 0) {
if (buf[0] != '\0')
strlcat(buf, ", ", sizeof(buf));
snprintf(buf + strlen(buf), sizeof(buf) - strlen(buf),
"0x%08x", flags);
}
db_printf(" mnt_kern_flag = %s\n", buf);
db_printf(" mnt_opt = ");
opt = TAILQ_FIRST(mp->mnt_opt);
if (opt != NULL) {
db_printf("%s", opt->name);
opt = TAILQ_NEXT(opt, link);
while (opt != NULL) {
db_printf(", %s", opt->name);
opt = TAILQ_NEXT(opt, link);
}
}
db_printf("\n");
sp = &mp->mnt_stat;
db_printf(" mnt_stat = { version=%u type=%u flags=0x%016jx "
"bsize=%ju iosize=%ju blocks=%ju bfree=%ju bavail=%jd files=%ju "
"ffree=%jd syncwrites=%ju asyncwrites=%ju syncreads=%ju "
"asyncreads=%ju namemax=%u owner=%u fsid=[%d, %d] }\n",
(u_int)sp->f_version, (u_int)sp->f_type, (uintmax_t)sp->f_flags,
(uintmax_t)sp->f_bsize, (uintmax_t)sp->f_iosize,
(uintmax_t)sp->f_blocks, (uintmax_t)sp->f_bfree,
(intmax_t)sp->f_bavail, (uintmax_t)sp->f_files,
(intmax_t)sp->f_ffree, (uintmax_t)sp->f_syncwrites,
(uintmax_t)sp->f_asyncwrites, (uintmax_t)sp->f_syncreads,
(uintmax_t)sp->f_asyncreads, (u_int)sp->f_namemax,
(u_int)sp->f_owner, (int)sp->f_fsid.val[0], (int)sp->f_fsid.val[1]);
db_printf(" mnt_cred = { uid=%u ruid=%u",
(u_int)mp->mnt_cred->cr_uid, (u_int)mp->mnt_cred->cr_ruid);
if (jailed(mp->mnt_cred))
db_printf(", jail=%d", mp->mnt_cred->cr_prison->pr_id);
db_printf(" }\n");
db_printf(" mnt_ref = %d (with %d in the struct)\n",
vfs_mount_fetch_counter(mp, MNT_COUNT_REF), mp->mnt_ref);
db_printf(" mnt_gen = %d\n", mp->mnt_gen);
db_printf(" mnt_nvnodelistsize = %d\n", mp->mnt_nvnodelistsize);
db_printf(" mnt_lazyvnodelistsize = %d\n",
mp->mnt_lazyvnodelistsize);
db_printf(" mnt_writeopcount = %d (with %d in the struct)\n",
vfs_mount_fetch_counter(mp, MNT_COUNT_WRITEOPCOUNT), mp->mnt_writeopcount);
db_printf(" mnt_iosize_max = %d\n", mp->mnt_iosize_max);
db_printf(" mnt_hashseed = %u\n", mp->mnt_hashseed);
db_printf(" mnt_lockref = %d (with %d in the struct)\n",
vfs_mount_fetch_counter(mp, MNT_COUNT_LOCKREF), mp->mnt_lockref);
db_printf(" mnt_secondary_writes = %d\n", mp->mnt_secondary_writes);
db_printf(" mnt_secondary_accwrites = %d\n",
mp->mnt_secondary_accwrites);
db_printf(" mnt_gjprovider = %s\n",
mp->mnt_gjprovider != NULL ? mp->mnt_gjprovider : "NULL");
db_printf(" mnt_vfs_ops = %d\n", mp->mnt_vfs_ops);
db_printf("\n\nList of active vnodes\n");
TAILQ_FOREACH(vp, &mp->mnt_nvnodelist, v_nmntvnodes) {
if (vp->v_type != VMARKER && vp->v_holdcnt > 0) {
vn_printf(vp, "vnode ");
if (db_pager_quit)
break;
}
}
db_printf("\n\nList of inactive vnodes\n");
TAILQ_FOREACH(vp, &mp->mnt_nvnodelist, v_nmntvnodes) {
if (vp->v_type != VMARKER && vp->v_holdcnt == 0) {
vn_printf(vp, "vnode ");
if (db_pager_quit)
break;
}
}
}
#endif
static int
vfsconf2x(struct sysctl_req *req, struct vfsconf *vfsp)
{
struct xvfsconf xvfsp;
bzero(&xvfsp, sizeof(xvfsp));
strcpy(xvfsp.vfc_name, vfsp->vfc_name);
xvfsp.vfc_typenum = vfsp->vfc_typenum;
xvfsp.vfc_refcount = vfsp->vfc_refcount;
xvfsp.vfc_flags = vfsp->vfc_flags;
xvfsp.vfc_vfsops = NULL;
xvfsp.vfc_next = NULL;
return (SYSCTL_OUT(req, &xvfsp, sizeof(xvfsp)));
}
#ifdef COMPAT_FREEBSD32
struct xvfsconf32 {
uint32_t vfc_vfsops;
char vfc_name[MFSNAMELEN];
int32_t vfc_typenum;
int32_t vfc_refcount;
int32_t vfc_flags;
uint32_t vfc_next;
};
static int
vfsconf2x32(struct sysctl_req *req, struct vfsconf *vfsp)
{
struct xvfsconf32 xvfsp;
bzero(&xvfsp, sizeof(xvfsp));
strcpy(xvfsp.vfc_name, vfsp->vfc_name);
xvfsp.vfc_typenum = vfsp->vfc_typenum;
xvfsp.vfc_refcount = vfsp->vfc_refcount;
xvfsp.vfc_flags = vfsp->vfc_flags;
return (SYSCTL_OUT(req, &xvfsp, sizeof(xvfsp)));
}
#endif
static int
sysctl_vfs_conflist(SYSCTL_HANDLER_ARGS)
{
struct vfsconf *vfsp;
int error;
error = 0;
vfsconf_slock();
TAILQ_FOREACH(vfsp, &vfsconf, vfc_list) {
#ifdef COMPAT_FREEBSD32
if (req->flags & SCTL_MASK32)
error = vfsconf2x32(req, vfsp);
else
#endif
error = vfsconf2x(req, vfsp);
if (error)
break;
}
vfsconf_sunlock();
return (error);
}
SYSCTL_PROC(_vfs, OID_AUTO, conflist, CTLTYPE_OPAQUE | CTLFLAG_RD |
CTLFLAG_MPSAFE, NULL, 0, sysctl_vfs_conflist,
"S,xvfsconf", "List of all configured filesystems");
#ifndef BURN_BRIDGES
static int sysctl_ovfs_conf(SYSCTL_HANDLER_ARGS);
static int
vfs_sysctl(SYSCTL_HANDLER_ARGS)
{
int *name = (int *)arg1 - 1;
u_int namelen = arg2 + 1;
struct vfsconf *vfsp;
log(LOG_WARNING, "userland calling deprecated sysctl, "
"please rebuild world\n");
#if 1 || defined(COMPAT_PRELITE2)
if (namelen == 1)
return (sysctl_ovfs_conf(oidp, arg1, arg2, req));
#endif
switch (name[1]) {
case VFS_MAXTYPENUM:
if (namelen != 2)
return (ENOTDIR);
return (SYSCTL_OUT(req, &maxvfsconf, sizeof(int)));
case VFS_CONF:
if (namelen != 3)
return (ENOTDIR);
vfsconf_slock();
TAILQ_FOREACH(vfsp, &vfsconf, vfc_list) {
if (vfsp->vfc_typenum == name[2])
break;
}
vfsconf_sunlock();
if (vfsp == NULL)
return (EOPNOTSUPP);
#ifdef COMPAT_FREEBSD32
if (req->flags & SCTL_MASK32)
return (vfsconf2x32(req, vfsp));
else
#endif
return (vfsconf2x(req, vfsp));
}
return (EOPNOTSUPP);
}
static SYSCTL_NODE(_vfs, VFS_GENERIC, generic, CTLFLAG_RD | CTLFLAG_SKIP |
CTLFLAG_MPSAFE, vfs_sysctl,
"Generic filesystem");
#if 1 || defined(COMPAT_PRELITE2)
static int
sysctl_ovfs_conf(SYSCTL_HANDLER_ARGS)
{
int error;
struct vfsconf *vfsp;
struct ovfsconf ovfs;
vfsconf_slock();
TAILQ_FOREACH(vfsp, &vfsconf, vfc_list) {
bzero(&ovfs, sizeof(ovfs));
ovfs.vfc_vfsops = vfsp->vfc_vfsops;
strcpy(ovfs.vfc_name, vfsp->vfc_name);
ovfs.vfc_index = vfsp->vfc_typenum;
ovfs.vfc_refcount = vfsp->vfc_refcount;
ovfs.vfc_flags = vfsp->vfc_flags;
error = SYSCTL_OUT(req, &ovfs, sizeof ovfs);
if (error != 0) {
vfsconf_sunlock();
return (error);
}
}
vfsconf_sunlock();
return (0);
}
#endif
#endif
static void
unmount_or_warn(struct mount *mp)
{
int error;
error = dounmount(mp, MNT_FORCE, curthread);
if (error != 0) {
printf("unmount of %s failed (", mp->mnt_stat.f_mntonname);
if (error == EBUSY)
printf("BUSY)\n");
else
printf("%d)\n", error);
}
}
void
vfs_unmountall(void)
{
struct mount *mp, *tmp;
CTR1(KTR_VFS, "%s: unmounting all filesystems", __func__);
TAILQ_FOREACH_REVERSE_SAFE(mp, &mountlist, mntlist, mnt_list, tmp) {
vfs_ref(mp);
if (mp == rootdevmp)
continue;
unmount_or_warn(mp);
}
if (rootdevmp != NULL)
unmount_or_warn(rootdevmp);
}
static void
vfs_deferred_inactive(struct vnode *vp, int lkflags)
{
ASSERT_VI_LOCKED(vp, __func__);
VNPASS((vp->v_iflag & VI_DEFINACT) == 0, vp);
if ((vp->v_iflag & VI_OWEINACT) == 0) {
vdropl(vp);
return;
}
if (vn_lock(vp, lkflags) == 0) {
VI_LOCK(vp);
vinactive(vp);
VOP_UNLOCK(vp);
vdropl(vp);
return;
}
vdefer_inactive_unlocked(vp);
}
static int
vfs_periodic_inactive_filter(struct vnode *vp, void *arg)
{
return (vp->v_iflag & VI_DEFINACT);
}
static void __noinline
vfs_periodic_inactive(struct mount *mp, int flags)
{
struct vnode *vp, *mvp;
int lkflags;
lkflags = LK_EXCLUSIVE | LK_INTERLOCK;
if (flags != MNT_WAIT)
lkflags |= LK_NOWAIT;
MNT_VNODE_FOREACH_LAZY(vp, mp, mvp, vfs_periodic_inactive_filter, NULL) {
if ((vp->v_iflag & VI_DEFINACT) == 0) {
VI_UNLOCK(vp);
continue;
}
vp->v_iflag &= ~VI_DEFINACT;
vfs_deferred_inactive(vp, lkflags);
}
}
static inline bool
vfs_want_msync(struct vnode *vp)
{
struct vm_object *obj;
if (vp->v_vflag & VV_NOSYNC)
return (false);
obj = vp->v_object;
return (obj != NULL && vm_object_mightbedirty(obj));
}
static int
vfs_periodic_msync_inactive_filter(struct vnode *vp, void *arg __unused)
{
if (vp->v_vflag & VV_NOSYNC)
return (false);
if (vp->v_iflag & VI_DEFINACT)
return (true);
return (vfs_want_msync(vp));
}
static void __noinline
vfs_periodic_msync_inactive(struct mount *mp, int flags)
{
struct vnode *vp, *mvp;
int lkflags;
bool seen_defer;
lkflags = LK_EXCLUSIVE | LK_INTERLOCK;
if (flags != MNT_WAIT)
lkflags |= LK_NOWAIT;
MNT_VNODE_FOREACH_LAZY(vp, mp, mvp, vfs_periodic_msync_inactive_filter, NULL) {
seen_defer = false;
if (vp->v_iflag & VI_DEFINACT) {
vp->v_iflag &= ~VI_DEFINACT;
seen_defer = true;
}
if (!vfs_want_msync(vp)) {
if (seen_defer)
vfs_deferred_inactive(vp, lkflags);
else
VI_UNLOCK(vp);
continue;
}
if (vget(vp, lkflags) == 0) {
if ((vp->v_vflag & VV_NOSYNC) == 0) {
if (flags == MNT_WAIT)
vnode_pager_clean_sync(vp);
else
vnode_pager_clean_async(vp);
}
vput(vp);
if (seen_defer)
vdrop(vp);
} else {
if (seen_defer)
vdefer_inactive_unlocked(vp);
}
}
}
void
vfs_periodic(struct mount *mp, int flags)
{
CTR2(KTR_VFS, "%s: mp %p", __func__, mp);
if ((mp->mnt_kern_flag & MNTK_NOMSYNC) != 0)
vfs_periodic_inactive(mp, flags);
else
vfs_periodic_msync_inactive(mp, flags);
}
static void
destroy_vpollinfo_free(struct vpollinfo *vi)
{
knlist_destroy(&vi->vpi_selinfo.si_note);
mtx_destroy(&vi->vpi_lock);
free(vi, M_VNODEPOLL);
}
static void
destroy_vpollinfo(struct vpollinfo *vi)
{
KASSERT(TAILQ_EMPTY(&vi->vpi_inotify),
("%s: pollinfo %p has lingering watches", __func__, vi));
knlist_clear(&vi->vpi_selinfo.si_note, 1);
seldrain(&vi->vpi_selinfo);
destroy_vpollinfo_free(vi);
}
void
v_addpollinfo(struct vnode *vp)
{
struct vpollinfo *vi;
if (atomic_load_ptr(&vp->v_pollinfo) != NULL)
return;
vi = malloc(sizeof(*vi), M_VNODEPOLL, M_WAITOK | M_ZERO);
mtx_init(&vi->vpi_lock, "vnode pollinfo", NULL, MTX_DEF);
knlist_init(&vi->vpi_selinfo.si_note, vp, vfs_knllock,
vfs_knlunlock, vfs_knl_assert_lock);
TAILQ_INIT(&vi->vpi_inotify);
VI_LOCK(vp);
if (vp->v_pollinfo != NULL) {
VI_UNLOCK(vp);
destroy_vpollinfo_free(vi);
return;
}
vp->v_pollinfo = vi;
VI_UNLOCK(vp);
}
int
vn_pollrecord(struct vnode *vp, struct thread *td, int events)
{
v_addpollinfo(vp);
mtx_lock(&vp->v_pollinfo->vpi_lock);
if (vp->v_pollinfo->vpi_revents & events) {
events &= vp->v_pollinfo->vpi_revents;
vp->v_pollinfo->vpi_revents &= ~events;
mtx_unlock(&vp->v_pollinfo->vpi_lock);
return (events);
}
vp->v_pollinfo->vpi_events |= events;
selrecord(td, &vp->v_pollinfo->vpi_selinfo);
mtx_unlock(&vp->v_pollinfo->vpi_lock);
return (0);
}
#define sync_close ((int (*)(struct vop_close_args *))nullop)
static int sync_fsync(struct vop_fsync_args *);
static int sync_inactive(struct vop_inactive_args *);
static int sync_reclaim(struct vop_reclaim_args *);
static struct vop_vector sync_vnodeops = {
.vop_bypass = VOP_EOPNOTSUPP,
.vop_close = sync_close,
.vop_fsync = sync_fsync,
.vop_getwritemount = vop_stdgetwritemount,
.vop_inactive = sync_inactive,
.vop_need_inactive = vop_stdneed_inactive,
.vop_reclaim = sync_reclaim,
.vop_lock1 = vop_stdlock,
.vop_unlock = vop_stdunlock,
.vop_islocked = vop_stdislocked,
.vop_fplookup_vexec = VOP_EAGAIN,
.vop_fplookup_symlink = VOP_EAGAIN,
};
VFS_VOP_VECTOR_REGISTER(sync_vnodeops);
void
vfs_allocate_syncvnode(struct mount *mp)
{
struct vnode *vp;
struct bufobj *bo;
static long start, incr, next;
int error;
error = getnewvnode("syncer", mp, &sync_vnodeops, &vp);
if (error != 0)
panic("vfs_allocate_syncvnode: getnewvnode() failed");
vp->v_type = VNON;
vn_lock(vp, LK_EXCLUSIVE | LK_RETRY);
vp->v_vflag |= VV_FORCEINSMQ;
error = insmntque1(vp, mp);
if (error != 0)
panic("vfs_allocate_syncvnode: insmntque() failed");
vp->v_vflag &= ~VV_FORCEINSMQ;
vn_set_state(vp, VSTATE_CONSTRUCTED);
VOP_UNLOCK(vp);
next += incr;
if (next == 0 || next > syncer_maxdelay) {
start /= 2;
incr /= 2;
if (start == 0) {
start = syncer_maxdelay / 2;
incr = syncer_maxdelay;
}
next = start;
}
bo = &vp->v_bufobj;
BO_LOCK(bo);
vn_syncer_add_to_worklist(bo, syncdelay > 0 ? next % syncdelay : 0);
mtx_lock(&sync_mtx);
sync_vnode_count++;
if (mp->mnt_syncer == NULL) {
mp->mnt_syncer = vp;
vp = NULL;
}
mtx_unlock(&sync_mtx);
BO_UNLOCK(bo);
if (vp != NULL) {
vn_lock(vp, LK_EXCLUSIVE | LK_RETRY);
vgone(vp);
vput(vp);
}
}
void
vfs_deallocate_syncvnode(struct mount *mp)
{
struct vnode *vp;
mtx_lock(&sync_mtx);
vp = mp->mnt_syncer;
if (vp != NULL)
mp->mnt_syncer = NULL;
mtx_unlock(&sync_mtx);
if (vp != NULL)
vrele(vp);
}
static int
sync_fsync(struct vop_fsync_args *ap)
{
struct vnode *syncvp = ap->a_vp;
struct mount *mp = syncvp->v_mount;
int error, save;
struct bufobj *bo;
if (ap->a_waitfor != MNT_LAZY)
return (0);
bo = &syncvp->v_bufobj;
BO_LOCK(bo);
vn_syncer_add_to_worklist(bo, syncdelay);
BO_UNLOCK(bo);
if (vfs_busy(mp, MBF_NOWAIT) != 0)
return (0);
VOP_UNLOCK(syncvp);
save = curthread_pflags_set(TDP_SYNCIO);
vfs_periodic(mp, MNT_NOWAIT);
error = VFS_SYNC(mp, MNT_LAZY);
curthread_pflags_restore(save);
vn_lock(syncvp, LK_EXCLUSIVE | LK_RETRY);
vfs_unbusy(mp);
return (error);
}
static int
sync_inactive(struct vop_inactive_args *ap)
{
vgone(ap->a_vp);
return (0);
}
static int
sync_reclaim(struct vop_reclaim_args *ap)
{
struct vnode *vp = ap->a_vp;
struct bufobj *bo;
bo = &vp->v_bufobj;
BO_LOCK(bo);
mtx_lock(&sync_mtx);
if (vp->v_mount->mnt_syncer == vp)
vp->v_mount->mnt_syncer = NULL;
if (bo->bo_flag & BO_ONWORKLST) {
LIST_REMOVE(bo, bo_synclist);
syncer_worklist_len--;
sync_vnode_count--;
bo->bo_flag &= ~BO_ONWORKLST;
}
mtx_unlock(&sync_mtx);
BO_UNLOCK(bo);
return (0);
}
int
vn_need_pageq_flush(struct vnode *vp)
{
struct vm_object *obj;
obj = vp->v_object;
return (obj != NULL && (vp->v_vflag & VV_NOSYNC) == 0 &&
vm_object_mightbedirty(obj));
}
bool
vn_isdisk_error(struct vnode *vp, int *errp)
{
int error;
if (vp->v_type != VCHR) {
error = ENOTBLK;
goto out;
}
error = 0;
dev_lock();
if (vp->v_rdev == NULL)
error = ENXIO;
else if (vp->v_rdev->si_devsw == NULL)
error = ENXIO;
else if (!(vp->v_rdev->si_devsw->d_flags & D_DISK))
error = ENOTBLK;
dev_unlock();
out:
*errp = error;
return (error == 0);
}
bool
vn_isdisk(struct vnode *vp)
{
int error;
return (vn_isdisk_error(vp, &error));
}
int
vaccess_vexec_smr(mode_t file_mode, uid_t file_uid, gid_t file_gid, struct ucred *cred)
{
int error;
VFS_SMR_ASSERT_ENTERED();
if (cred->cr_uid == file_uid) {
if (file_mode & S_IXUSR)
return (0);
goto out_error;
}
if (groupmember(file_gid, cred)) {
if (file_mode & S_IXGRP)
return (0);
goto out_error;
}
if (file_mode & S_IXOTH)
return (0);
out_error:
error = priv_check_cred_vfs_lookup_nomac(cred);
switch (error) {
case 0:
return (0);
case EAGAIN:
return (EAGAIN);
case EPERM:
return (EACCES);
default:
return (error);
}
}
int
vaccess(__enum_uint8(vtype) type, mode_t file_mode, uid_t file_uid, gid_t file_gid,
accmode_t accmode, struct ucred *cred)
{
accmode_t dac_granted;
accmode_t priv_granted;
KASSERT((accmode & ~(VEXEC | VWRITE | VREAD | VADMIN | VAPPEND)) == 0,
("invalid bit in accmode"));
KASSERT((accmode & VAPPEND) == 0 || (accmode & VWRITE),
("VAPPEND without VWRITE"));
dac_granted = 0;
if (cred->cr_uid == file_uid) {
dac_granted |= VADMIN;
if (file_mode & S_IXUSR)
dac_granted |= VEXEC;
if (file_mode & S_IRUSR)
dac_granted |= VREAD;
if (file_mode & S_IWUSR)
dac_granted |= (VWRITE | VAPPEND);
if ((accmode & dac_granted) == accmode)
return (0);
goto privcheck;
}
if (groupmember(file_gid, cred)) {
if (file_mode & S_IXGRP)
dac_granted |= VEXEC;
if (file_mode & S_IRGRP)
dac_granted |= VREAD;
if (file_mode & S_IWGRP)
dac_granted |= (VWRITE | VAPPEND);
if ((accmode & dac_granted) == accmode)
return (0);
goto privcheck;
}
if (file_mode & S_IXOTH)
dac_granted |= VEXEC;
if (file_mode & S_IROTH)
dac_granted |= VREAD;
if (file_mode & S_IWOTH)
dac_granted |= (VWRITE | VAPPEND);
if ((accmode & dac_granted) == accmode)
return (0);
privcheck:
priv_granted = 0;
if (type == VDIR) {
if ((accmode & VEXEC) && ((dac_granted & VEXEC) == 0) &&
!priv_check_cred(cred, PRIV_VFS_LOOKUP))
priv_granted |= VEXEC;
} else {
if ((accmode & VEXEC) && ((dac_granted & VEXEC) == 0) &&
(file_mode & (S_IXUSR | S_IXGRP | S_IXOTH)) != 0 &&
!priv_check_cred(cred, PRIV_VFS_EXEC))
priv_granted |= VEXEC;
}
if ((accmode & VREAD) && ((dac_granted & VREAD) == 0) &&
!priv_check_cred(cred, PRIV_VFS_READ))
priv_granted |= VREAD;
if ((accmode & VWRITE) && ((dac_granted & VWRITE) == 0) &&
!priv_check_cred(cred, PRIV_VFS_WRITE))
priv_granted |= (VWRITE | VAPPEND);
if ((accmode & VADMIN) && ((dac_granted & VADMIN) == 0) &&
!priv_check_cred(cred, PRIV_VFS_ADMIN))
priv_granted |= VADMIN;
if ((accmode & (priv_granted | dac_granted)) == accmode) {
return (0);
}
return ((accmode & VADMIN) ? EPERM : EACCES);
}
int
extattr_check_cred(struct vnode *vp, int attrnamespace, struct ucred *cred,
struct thread *td, accmode_t accmode)
{
if (cred == NOCRED)
return (0);
switch (attrnamespace) {
case EXTATTR_NAMESPACE_SYSTEM:
return (priv_check_cred(cred, PRIV_VFS_EXTATTR_SYSTEM));
case EXTATTR_NAMESPACE_USER:
return (VOP_ACCESS(vp, accmode, cred, td));
default:
return (EPERM);
}
}
#ifdef INVARIANTS
void
assert_vi_locked(struct vnode *vp, const char *str)
{
VNASSERT(mtx_owned(VI_MTX(vp)), vp,
("%s: vnode interlock is not locked but should be", str));
}
void
assert_vi_unlocked(struct vnode *vp, const char *str)
{
VNASSERT(!mtx_owned(VI_MTX(vp)), vp,
("%s: vnode interlock is locked but should not be", str));
}
void
assert_vop_locked(struct vnode *vp, const char *str)
{
bool locked;
if (KERNEL_PANICKED() || vp == NULL)
return;
#ifdef WITNESS
locked = !((vp->v_irflag & VIRF_CROSSMP) == 0 &&
witness_is_owned(&vp->v_vnlock->lock_object) == -1);
#else
int state = VOP_ISLOCKED(vp);
locked = state != 0 && state != LK_EXCLOTHER;
#endif
VNASSERT(locked, vp, ("%s: vnode is not locked but should be", str));
}
void
assert_vop_unlocked(struct vnode *vp, const char *str)
{
bool locked;
if (KERNEL_PANICKED() || vp == NULL)
return;
#ifdef WITNESS
locked = (vp->v_irflag & VIRF_CROSSMP) == 0 &&
witness_is_owned(&vp->v_vnlock->lock_object) == 1;
#else
locked = VOP_ISLOCKED(vp) == LK_EXCLUSIVE;
#endif
VNASSERT(!locked, vp, ("%s: vnode is locked but should not be", str));
}
void
assert_vop_elocked(struct vnode *vp, const char *str)
{
bool locked;
if (KERNEL_PANICKED() || vp == NULL)
return;
locked = VOP_ISLOCKED(vp) == LK_EXCLUSIVE;
VNASSERT(locked, vp,
("%s: vnode is not exclusive locked but should be", str));
}
#endif
void
vop_rename_fail(struct vop_rename_args *ap)
{
if (ap->a_tvp != NULL)
vput(ap->a_tvp);
if (ap->a_tdvp == ap->a_tvp)
vrele(ap->a_tdvp);
else
vput(ap->a_tdvp);
vrele(ap->a_fdvp);
vrele(ap->a_fvp);
}
void
vop_rename_pre(void *ap)
{
struct vop_rename_args *a = ap;
#ifdef INVARIANTS
struct mount *tmp;
if (a->a_tvp)
ASSERT_VI_UNLOCKED(a->a_tvp, "VOP_RENAME");
ASSERT_VI_UNLOCKED(a->a_tdvp, "VOP_RENAME");
ASSERT_VI_UNLOCKED(a->a_fvp, "VOP_RENAME");
ASSERT_VI_UNLOCKED(a->a_fdvp, "VOP_RENAME");
if (a->a_tdvp->v_vnlock != a->a_fdvp->v_vnlock &&
(a->a_tvp == NULL || a->a_tvp->v_vnlock != a->a_fdvp->v_vnlock))
ASSERT_VOP_UNLOCKED(a->a_fdvp, "vop_rename: fdvp locked");
if (a->a_tvp == NULL || a->a_tvp->v_vnlock != a->a_fvp->v_vnlock)
ASSERT_VOP_UNLOCKED(a->a_fvp, "vop_rename: fvp locked");
if (a->a_tvp)
ASSERT_VOP_LOCKED(a->a_tvp, "vop_rename: tvp not locked");
ASSERT_VOP_LOCKED(a->a_tdvp, "vop_rename: tdvp not locked");
tmp = NULL;
VOP_GETWRITEMOUNT(a->a_tdvp, &tmp);
lockmgr_assert(&tmp->mnt_renamelock, KA_XLOCKED);
vfs_rel(tmp);
#endif
if (a->a_tdvp != a->a_fdvp)
vhold(a->a_fdvp);
if (a->a_tvp != a->a_fvp)
vhold(a->a_fvp);
vhold(a->a_tdvp);
if (a->a_tvp)
vhold(a->a_tvp);
}
#ifdef INVARIANTS
void
vop_fplookup_vexec_debugpre(void *ap __unused)
{
VFS_SMR_ASSERT_ENTERED();
}
void
vop_fplookup_vexec_debugpost(void *ap, int rc)
{
struct vop_fplookup_vexec_args *a;
struct vnode *vp;
a = ap;
vp = a->a_vp;
VFS_SMR_ASSERT_ENTERED();
if (rc == EOPNOTSUPP)
VNPASS(VN_IS_DOOMED(vp), vp);
}
void
vop_fplookup_symlink_debugpre(void *ap __unused)
{
VFS_SMR_ASSERT_ENTERED();
}
void
vop_fplookup_symlink_debugpost(void *ap __unused, int rc __unused)
{
VFS_SMR_ASSERT_ENTERED();
}
static void
vop_fsync_debugprepost(struct vnode *vp, const char *name)
{
struct mount *mp;
if (vp->v_type == VCHR)
;
else {
mp = NULL;
VOP_GETWRITEMOUNT(vp, &mp);
if (vn_lktype_write(mp, vp) == LK_SHARED)
ASSERT_VOP_LOCKED(vp, name);
else
ASSERT_VOP_ELOCKED(vp, name);
if (mp != NULL)
vfs_rel(mp);
}
}
void
vop_fsync_debugpre(void *a)
{
struct vop_fsync_args *ap;
ap = a;
vop_fsync_debugprepost(ap->a_vp, "fsync");
}
void
vop_fsync_debugpost(void *a, int rc __unused)
{
struct vop_fsync_args *ap;
ap = a;
vop_fsync_debugprepost(ap->a_vp, "fsync");
}
void
vop_fdatasync_debugpre(void *a)
{
struct vop_fdatasync_args *ap;
ap = a;
vop_fsync_debugprepost(ap->a_vp, "fsync");
}
void
vop_fdatasync_debugpost(void *a, int rc __unused)
{
struct vop_fdatasync_args *ap;
ap = a;
vop_fsync_debugprepost(ap->a_vp, "fsync");
}
void
vop_strategy_debugpre(void *ap)
{
struct vop_strategy_args *a;
struct buf *bp;
a = ap;
bp = a->a_bp;
if ((bp->b_flags & B_CLUSTER) != 0)
return;
BUF_ASSERT_LOCKED(bp);
}
void
vop_lock_debugpre(void *ap)
{
struct vop_lock1_args *a = ap;
if ((a->a_flags & LK_INTERLOCK) == 0)
ASSERT_VI_UNLOCKED(a->a_vp, "VOP_LOCK");
else
ASSERT_VI_LOCKED(a->a_vp, "VOP_LOCK");
}
void
vop_lock_debugpost(void *ap, int rc)
{
struct vop_lock1_args *a = ap;
ASSERT_VI_UNLOCKED(a->a_vp, "VOP_LOCK");
if (rc == 0 && (a->a_flags & LK_EXCLOTHER) == 0)
ASSERT_VOP_LOCKED(a->a_vp, "VOP_LOCK");
}
void
vop_unlock_debugpre(void *ap)
{
struct vop_unlock_args *a = ap;
struct vnode *vp = a->a_vp;
VNPASS(vn_get_state(vp) != VSTATE_UNINITIALIZED, vp);
ASSERT_VOP_LOCKED(vp, "VOP_UNLOCK");
}
void
vop_need_inactive_debugpre(void *ap)
{
struct vop_need_inactive_args *a = ap;
ASSERT_VI_LOCKED(a->a_vp, "VOP_NEED_INACTIVE");
}
void
vop_need_inactive_debugpost(void *ap, int rc)
{
struct vop_need_inactive_args *a = ap;
ASSERT_VI_LOCKED(a->a_vp, "VOP_NEED_INACTIVE");
}
#endif
void
vop_allocate_post(void *ap, int rc)
{
struct vop_allocate_args *a;
a = ap;
if (rc == 0)
INOTIFY(a->a_vp, IN_MODIFY);
}
void
vop_copy_file_range_post(void *ap, int rc)
{
struct vop_copy_file_range_args *a;
a = ap;
if (rc == 0) {
INOTIFY(a->a_invp, IN_ACCESS);
INOTIFY(a->a_outvp, IN_MODIFY);
}
}
void
vop_create_pre(void *ap)
{
struct vop_create_args *a;
struct vnode *dvp;
a = ap;
dvp = a->a_dvp;
vn_seqc_write_begin(dvp);
}
void
vop_create_post(void *ap, int rc)
{
struct vop_create_args *a;
struct vnode *dvp;
a = ap;
dvp = a->a_dvp;
vn_seqc_write_end(dvp);
if (!rc) {
VFS_KNOTE_LOCKED(dvp, NOTE_WRITE);
INOTIFY_NAME(*a->a_vpp, dvp, a->a_cnp, IN_CREATE);
}
}
void
vop_deallocate_post(void *ap, int rc)
{
struct vop_deallocate_args *a;
a = ap;
if (rc == 0)
INOTIFY(a->a_vp, IN_MODIFY);
}
void
vop_whiteout_pre(void *ap)
{
struct vop_whiteout_args *a;
struct vnode *dvp;
a = ap;
dvp = a->a_dvp;
vn_seqc_write_begin(dvp);
}
void
vop_whiteout_post(void *ap, int rc)
{
struct vop_whiteout_args *a;
struct vnode *dvp;
a = ap;
dvp = a->a_dvp;
vn_seqc_write_end(dvp);
}
void
vop_deleteextattr_pre(void *ap)
{
struct vop_deleteextattr_args *a;
struct vnode *vp;
a = ap;
vp = a->a_vp;
vn_seqc_write_begin(vp);
}
void
vop_deleteextattr_post(void *ap, int rc)
{
struct vop_deleteextattr_args *a;
struct vnode *vp;
a = ap;
vp = a->a_vp;
vn_seqc_write_end(vp);
if (!rc) {
VFS_KNOTE_LOCKED(a->a_vp, NOTE_ATTRIB);
INOTIFY(vp, IN_ATTRIB);
}
}
void
vop_link_pre(void *ap)
{
struct vop_link_args *a;
struct vnode *vp, *tdvp;
a = ap;
vp = a->a_vp;
tdvp = a->a_tdvp;
vn_seqc_write_begin(vp);
vn_seqc_write_begin(tdvp);
}
void
vop_link_post(void *ap, int rc)
{
struct vop_link_args *a;
struct vnode *vp, *tdvp;
a = ap;
vp = a->a_vp;
tdvp = a->a_tdvp;
vn_seqc_write_end(vp);
vn_seqc_write_end(tdvp);
if (!rc) {
VFS_KNOTE_LOCKED(vp, NOTE_LINK);
VFS_KNOTE_LOCKED(tdvp, NOTE_WRITE);
INOTIFY_NAME(vp, tdvp, a->a_cnp, _IN_ATTRIB_LINKCOUNT);
INOTIFY_NAME(vp, tdvp, a->a_cnp, IN_CREATE);
}
}
void
vop_mkdir_pre(void *ap)
{
struct vop_mkdir_args *a;
struct vnode *dvp;
a = ap;
dvp = a->a_dvp;
vn_seqc_write_begin(dvp);
}
void
vop_mkdir_post(void *ap, int rc)
{
struct vop_mkdir_args *a;
struct vnode *dvp;
a = ap;
dvp = a->a_dvp;
vn_seqc_write_end(dvp);
if (!rc) {
VFS_KNOTE_LOCKED(dvp, NOTE_WRITE | NOTE_LINK);
INOTIFY_NAME(*a->a_vpp, dvp, a->a_cnp, IN_CREATE);
}
}
#ifdef INVARIANTS
void
vop_mkdir_debugpost(void *ap, int rc)
{
struct vop_mkdir_args *a;
a = ap;
if (!rc)
cache_validate(a->a_dvp, *a->a_vpp, a->a_cnp);
}
#endif
void
vop_mknod_pre(void *ap)
{
struct vop_mknod_args *a;
struct vnode *dvp;
a = ap;
dvp = a->a_dvp;
vn_seqc_write_begin(dvp);
}
void
vop_mknod_post(void *ap, int rc)
{
struct vop_mknod_args *a;
struct vnode *dvp;
a = ap;
dvp = a->a_dvp;
vn_seqc_write_end(dvp);
if (!rc) {
VFS_KNOTE_LOCKED(dvp, NOTE_WRITE);
INOTIFY_NAME(*a->a_vpp, dvp, a->a_cnp, IN_CREATE);
}
}
void
vop_reclaim_post(void *ap, int rc)
{
struct vop_reclaim_args *a;
struct vnode *vp;
a = ap;
vp = a->a_vp;
ASSERT_VOP_IN_SEQC(vp);
if (!rc) {
VFS_KNOTE_LOCKED(vp, NOTE_REVOKE);
INOTIFY_REVOKE(vp);
}
}
void
vop_remove_pre(void *ap)
{
struct vop_remove_args *a;
struct vnode *dvp, *vp;
a = ap;
dvp = a->a_dvp;
vp = a->a_vp;
vfs_notify_upper(vp, VFS_NOTIFY_UPPER_UNLINK);
vn_seqc_write_begin(dvp);
vn_seqc_write_begin(vp);
}
void
vop_remove_post(void *ap, int rc)
{
struct vop_remove_args *a;
struct vnode *dvp, *vp;
a = ap;
dvp = a->a_dvp;
vp = a->a_vp;
vn_seqc_write_end(dvp);
vn_seqc_write_end(vp);
if (!rc) {
VFS_KNOTE_LOCKED(dvp, NOTE_WRITE);
VFS_KNOTE_LOCKED(vp, NOTE_DELETE);
INOTIFY_NAME(vp, dvp, a->a_cnp, _IN_ATTRIB_LINKCOUNT);
INOTIFY_NAME(vp, dvp, a->a_cnp, IN_DELETE);
}
}
void
vop_rename_post(void *ap, int rc)
{
struct vop_rename_args *a = ap;
long hint;
if (!rc) {
hint = NOTE_WRITE;
if (a->a_fdvp == a->a_tdvp) {
if (a->a_tvp != NULL && a->a_tvp->v_type == VDIR)
hint |= NOTE_LINK;
VFS_KNOTE_UNLOCKED(a->a_fdvp, hint);
VFS_KNOTE_UNLOCKED(a->a_tdvp, hint);
} else {
hint |= NOTE_EXTEND;
if (a->a_fvp->v_type == VDIR)
hint |= NOTE_LINK;
VFS_KNOTE_UNLOCKED(a->a_fdvp, hint);
if (a->a_fvp->v_type == VDIR && a->a_tvp != NULL &&
a->a_tvp->v_type == VDIR)
hint &= ~NOTE_LINK;
VFS_KNOTE_UNLOCKED(a->a_tdvp, hint);
}
VFS_KNOTE_UNLOCKED(a->a_fvp, NOTE_RENAME);
if (a->a_tvp)
VFS_KNOTE_UNLOCKED(a->a_tvp, NOTE_DELETE);
INOTIFY_MOVE(a->a_fvp, a->a_fdvp, a->a_fcnp, a->a_tvp,
a->a_tdvp, a->a_tcnp);
}
if (a->a_tdvp != a->a_fdvp)
vdrop(a->a_fdvp);
if (a->a_tvp != a->a_fvp)
vdrop(a->a_fvp);
vdrop(a->a_tdvp);
if (a->a_tvp)
vdrop(a->a_tvp);
}
void
vop_rmdir_pre(void *ap)
{
struct vop_rmdir_args *a;
struct vnode *dvp, *vp;
a = ap;
dvp = a->a_dvp;
vp = a->a_vp;
vfs_notify_upper(vp, VFS_NOTIFY_UPPER_UNLINK);
vn_seqc_write_begin(dvp);
vn_seqc_write_begin(vp);
}
void
vop_rmdir_post(void *ap, int rc)
{
struct vop_rmdir_args *a;
struct vnode *dvp, *vp;
a = ap;
dvp = a->a_dvp;
vp = a->a_vp;
vn_seqc_write_end(dvp);
vn_seqc_write_end(vp);
if (!rc) {
vp->v_vflag |= VV_UNLINKED;
VFS_KNOTE_LOCKED(dvp, NOTE_WRITE | NOTE_LINK);
VFS_KNOTE_LOCKED(vp, NOTE_DELETE);
INOTIFY_NAME(vp, dvp, a->a_cnp, IN_DELETE);
}
}
void
vop_setattr_pre(void *ap)
{
struct vop_setattr_args *a;
struct vnode *vp;
a = ap;
vp = a->a_vp;
vn_seqc_write_begin(vp);
}
void
vop_setattr_post(void *ap, int rc)
{
struct vop_setattr_args *a;
struct vnode *vp;
a = ap;
vp = a->a_vp;
vn_seqc_write_end(vp);
if (!rc) {
VFS_KNOTE_LOCKED(vp, NOTE_ATTRIB);
INOTIFY(vp, IN_ATTRIB);
}
}
void
vop_setacl_pre(void *ap)
{
struct vop_setacl_args *a;
struct vnode *vp;
a = ap;
vp = a->a_vp;
vn_seqc_write_begin(vp);
}
void
vop_setacl_post(void *ap, int rc __unused)
{
struct vop_setacl_args *a;
struct vnode *vp;
a = ap;
vp = a->a_vp;
vn_seqc_write_end(vp);
}
void
vop_setextattr_pre(void *ap)
{
struct vop_setextattr_args *a;
struct vnode *vp;
a = ap;
vp = a->a_vp;
vn_seqc_write_begin(vp);
}
void
vop_setextattr_post(void *ap, int rc)
{
struct vop_setextattr_args *a;
struct vnode *vp;
a = ap;
vp = a->a_vp;
vn_seqc_write_end(vp);
if (!rc) {
VFS_KNOTE_LOCKED(vp, NOTE_ATTRIB);
INOTIFY(vp, IN_ATTRIB);
}
}
void
vop_symlink_pre(void *ap)
{
struct vop_symlink_args *a;
struct vnode *dvp;
a = ap;
dvp = a->a_dvp;
vn_seqc_write_begin(dvp);
}
void
vop_symlink_post(void *ap, int rc)
{
struct vop_symlink_args *a;
struct vnode *dvp;
a = ap;
dvp = a->a_dvp;
vn_seqc_write_end(dvp);
if (!rc) {
VFS_KNOTE_LOCKED(dvp, NOTE_WRITE);
INOTIFY_NAME(*a->a_vpp, dvp, a->a_cnp, IN_CREATE);
}
}
void
vop_open_post(void *ap, int rc)
{
struct vop_open_args *a = ap;
if (!rc) {
VFS_KNOTE_LOCKED(a->a_vp, NOTE_OPEN);
INOTIFY(a->a_vp, IN_OPEN);
}
}
void
vop_close_post(void *ap, int rc)
{
struct vop_close_args *a = ap;
if (!rc && (a->a_cred != NOCRED ||
!VN_IS_DOOMED(a->a_vp))) {
VFS_KNOTE_LOCKED(a->a_vp, (a->a_fflag & FWRITE) != 0 ?
NOTE_CLOSE_WRITE : NOTE_CLOSE);
INOTIFY(a->a_vp, (a->a_fflag & FWRITE) != 0 ?
IN_CLOSE_WRITE : IN_CLOSE_NOWRITE);
}
}
void
vop_read_post(void *ap, int rc)
{
struct vop_read_args *a = ap;
if (!rc) {
VFS_KNOTE_LOCKED(a->a_vp, NOTE_READ);
INOTIFY(a->a_vp, IN_ACCESS);
}
}
void
vop_read_pgcache_post(void *ap, int rc)
{
struct vop_read_pgcache_args *a = ap;
if (!rc)
VFS_KNOTE_UNLOCKED(a->a_vp, NOTE_READ);
}
static struct knlist fs_knlist;
static void
vfs_event_init(void *arg)
{
knlist_init_mtx(&fs_knlist, NULL);
}
SYSINIT(vfs_knlist, SI_SUB_VFS, SI_ORDER_ANY, vfs_event_init, NULL);
void
vfs_event_signal(fsid_t *fsid, uint32_t event, intptr_t data __unused)
{
KNOTE_UNLOCKED(&fs_knlist, event);
}
static int filt_fsattach(struct knote *kn);
static void filt_fsdetach(struct knote *kn);
static int filt_fsevent(struct knote *kn, long hint);
const struct filterops fs_filtops = {
.f_isfd = 0,
.f_attach = filt_fsattach,
.f_detach = filt_fsdetach,
.f_event = filt_fsevent,
.f_copy = knote_triv_copy,
};
static int
filt_fsattach(struct knote *kn)
{
kn->kn_flags |= EV_CLEAR;
knlist_add(&fs_knlist, kn, 0);
return (0);
}
static void
filt_fsdetach(struct knote *kn)
{
knlist_remove(&fs_knlist, kn, 0);
}
static int
filt_fsevent(struct knote *kn, long hint)
{
kn->kn_fflags |= kn->kn_sfflags & hint;
return (kn->kn_fflags != 0);
}
static int
sysctl_vfs_ctl(SYSCTL_HANDLER_ARGS)
{
struct vfsidctl vc;
int error;
struct mount *mp;
if (req->newptr == NULL)
return (EINVAL);
error = SYSCTL_IN(req, &vc, sizeof(vc));
if (error)
return (error);
if (vc.vc_vers != VFS_CTL_VERS1)
return (EINVAL);
mp = vfs_getvfs(&vc.vc_fsid);
if (mp == NULL)
return (ENOENT);
if (strcmp(vc.vc_fstypename, "*") != 0 &&
strcmp(vc.vc_fstypename, mp->mnt_vfc->vfc_name) != 0) {
vfs_rel(mp);
return (EINVAL);
}
VCTLTOREQ(&vc, req);
error = VFS_SYSCTL(mp, vc.vc_op, req);
vfs_rel(mp);
return (error);
}
SYSCTL_PROC(_vfs, OID_AUTO, ctl, CTLTYPE_OPAQUE | CTLFLAG_MPSAFE | CTLFLAG_WR,
NULL, 0, sysctl_vfs_ctl, "",
"Sysctl by fsid");
u_quad_t
init_va_filerev(void)
{
struct bintime bt;
getbinuptime(&bt);
return (((u_quad_t)bt.sec << 32LL) | (bt.frac >> 32LL));
}
static int filt_vfsread(struct knote *kn, long hint);
static int filt_vfswrite(struct knote *kn, long hint);
static int filt_vfsvnode(struct knote *kn, long hint);
static void filt_vfsdetach(struct knote *kn);
static int filt_vfsdump(struct proc *p, struct knote *kn,
struct kinfo_knote *kin);
static int filt_vfscopy(struct knote *kn, struct proc *p1);
static const struct filterops vfsread_filtops = {
.f_isfd = 1,
.f_detach = filt_vfsdetach,
.f_event = filt_vfsread,
.f_userdump = filt_vfsdump,
.f_copy = filt_vfscopy,
};
static const struct filterops vfswrite_filtops = {
.f_isfd = 1,
.f_detach = filt_vfsdetach,
.f_event = filt_vfswrite,
.f_userdump = filt_vfsdump,
.f_copy = filt_vfscopy,
};
static const struct filterops vfsvnode_filtops = {
.f_isfd = 1,
.f_detach = filt_vfsdetach,
.f_event = filt_vfsvnode,
.f_userdump = filt_vfsdump,
.f_copy = filt_vfscopy,
};
static void
vfs_knllock(void *arg)
{
struct vnode *vp = arg;
vn_lock(vp, LK_EXCLUSIVE | LK_RETRY);
}
static void
vfs_knlunlock(void *arg)
{
struct vnode *vp = arg;
VOP_UNLOCK(vp);
}
static void
vfs_knl_assert_lock(void *arg, int what)
{
#ifdef INVARIANTS
struct vnode *vp = arg;
if (what == LA_LOCKED)
ASSERT_VOP_LOCKED(vp, "vfs_knl_assert_locked");
else
ASSERT_VOP_UNLOCKED(vp, "vfs_knl_assert_unlocked");
#endif
}
int
vfs_kqfilter(struct vop_kqfilter_args *ap)
{
struct vnode *vp = ap->a_vp;
struct knote *kn = ap->a_kn;
struct knlist *knl;
KASSERT(vp->v_type != VFIFO || (kn->kn_filter != EVFILT_READ &&
kn->kn_filter != EVFILT_WRITE),
("READ/WRITE filter on a FIFO leaked through"));
switch (kn->kn_filter) {
case EVFILT_READ:
kn->kn_fop = &vfsread_filtops;
break;
case EVFILT_WRITE:
kn->kn_fop = &vfswrite_filtops;
break;
case EVFILT_VNODE:
kn->kn_fop = &vfsvnode_filtops;
break;
default:
return (EINVAL);
}
kn->kn_hook = (caddr_t)vp;
v_addpollinfo(vp);
if (vp->v_pollinfo == NULL)
return (ENOMEM);
knl = &vp->v_pollinfo->vpi_selinfo.si_note;
vhold(vp);
knlist_add(knl, kn, 0);
return (0);
}
static void
filt_vfsdetach(struct knote *kn)
{
struct vnode *vp = (struct vnode *)kn->kn_hook;
KASSERT(vp->v_pollinfo != NULL, ("Missing v_pollinfo"));
knlist_remove(&vp->v_pollinfo->vpi_selinfo.si_note, kn, 0);
vdrop(vp);
}
static int
filt_vfsread(struct knote *kn, long hint)
{
struct vnode *vp = (struct vnode *)kn->kn_hook;
off_t size;
int res;
if (hint == NOTE_REVOKE || (hint == 0 && vp->v_type == VBAD)) {
VI_LOCK(vp);
kn->kn_flags |= (EV_EOF | EV_ONESHOT);
VI_UNLOCK(vp);
return (1);
}
if (vn_getsize_locked(vp, &size, curthread->td_ucred) != 0)
return (0);
VI_LOCK(vp);
kn->kn_data = size - kn->kn_fp->f_offset;
res = (kn->kn_sfflags & NOTE_FILE_POLL) != 0 || kn->kn_data != 0;
VI_UNLOCK(vp);
return (res);
}
static int
filt_vfswrite(struct knote *kn, long hint)
{
struct vnode *vp = (struct vnode *)kn->kn_hook;
VI_LOCK(vp);
if (hint == NOTE_REVOKE || (hint == 0 && vp->v_type == VBAD))
kn->kn_flags |= (EV_EOF | EV_ONESHOT);
kn->kn_data = 0;
VI_UNLOCK(vp);
return (1);
}
static int
filt_vfsvnode(struct knote *kn, long hint)
{
struct vnode *vp = (struct vnode *)kn->kn_hook;
int res;
VI_LOCK(vp);
if (kn->kn_sfflags & hint)
kn->kn_fflags |= hint;
if (hint == NOTE_REVOKE || (hint == 0 && vp->v_type == VBAD)) {
kn->kn_flags |= EV_EOF;
VI_UNLOCK(vp);
return (1);
}
res = (kn->kn_fflags != 0);
VI_UNLOCK(vp);
return (res);
}
static int
filt_vfsdump(struct proc *p, struct knote *kn, struct kinfo_knote *kin)
{
struct vattr va;
struct vnode *vp;
char *fullpath, *freepath;
int error;
kin->knt_extdata = KNOTE_EXTDATA_VNODE;
vp = kn->kn_fp->f_vnode;
kin->knt_vnode.knt_vnode_type = vntype_to_kinfo(vp->v_type);
va.va_fsid = VNOVAL;
vn_lock(vp, LK_SHARED | LK_RETRY);
error = VOP_GETATTR(vp, &va, curthread->td_ucred);
VOP_UNLOCK(vp);
if (error != 0)
return (error);
kin->knt_vnode.knt_vnode_fsid = va.va_fsid;
kin->knt_vnode.knt_vnode_fileid = va.va_fileid;
freepath = NULL;
fullpath = "-";
error = vn_fullpath(vp, &fullpath, &freepath);
if (error == 0) {
strlcpy(kin->knt_vnode.knt_vnode_fullpath, fullpath,
sizeof(kin->knt_vnode.knt_vnode_fullpath));
}
if (freepath != NULL)
free(freepath, M_TEMP);
return (0);
}
static int
filt_vfscopy(struct knote *kn, struct proc *p1)
{
struct vnode *vp;
vp = (struct vnode *)kn->kn_hook;
vhold(vp);
return (0);
}
int
vfs_read_dirent(struct vop_readdir_args *ap, struct dirent *dp, off_t off)
{
int error;
if (dp->d_reclen > ap->a_uio->uio_resid)
return (ENAMETOOLONG);
error = uiomove(dp, dp->d_reclen, ap->a_uio);
if (error) {
if (ap->a_ncookies != NULL) {
if (ap->a_cookies != NULL)
free(ap->a_cookies, M_TEMP);
ap->a_cookies = NULL;
*ap->a_ncookies = 0;
}
return (error);
}
if (ap->a_ncookies == NULL)
return (0);
KASSERT(ap->a_cookies,
("NULL ap->a_cookies value with non-NULL ap->a_ncookies!"));
*ap->a_cookies = realloc(*ap->a_cookies,
(*ap->a_ncookies + 1) * sizeof(uint64_t), M_TEMP, M_WAITOK | M_ZERO);
(*ap->a_cookies)[*ap->a_ncookies] = off;
*ap->a_ncookies += 1;
return (0);
}
int
vfs_unixify_accmode(accmode_t *accmode)
{
if (*accmode & VEXPLICIT_DENY) {
*accmode = 0;
return (0);
}
if (*accmode & (VDELETE_CHILD | VDELETE))
return (EPERM);
if (*accmode & VADMIN_PERMS) {
*accmode &= ~VADMIN_PERMS;
*accmode |= VADMIN;
}
*accmode &= ~(VSTAT_PERMS | VSYNCHRONIZE);
return (0);
}
static int __noinline
vfs_cache_root_fallback(struct mount *mp, int flags, struct vnode **vpp)
{
struct vnode *vp;
int error;
restart:
if (mp->mnt_rootvnode != NULL) {
MNT_ILOCK(mp);
vp = mp->mnt_rootvnode;
if (vp != NULL) {
if (!VN_IS_DOOMED(vp)) {
vrefact(vp);
MNT_IUNLOCK(mp);
error = vn_lock(vp, flags);
if (error == 0) {
*vpp = vp;
return (0);
}
vrele(vp);
goto restart;
}
mp->mnt_rootvnode = NULL;
}
MNT_IUNLOCK(mp);
if (vp != NULL) {
vfs_op_barrier_wait(mp);
vrele(vp);
}
}
error = VFS_CACHEDROOT(mp, flags, vpp);
if (error != 0)
return (error);
if (mp->mnt_vfs_ops == 0) {
MNT_ILOCK(mp);
if (mp->mnt_vfs_ops != 0) {
MNT_IUNLOCK(mp);
return (0);
}
if (mp->mnt_rootvnode == NULL) {
vrefact(*vpp);
mp->mnt_rootvnode = *vpp;
} else {
if (mp->mnt_rootvnode != *vpp) {
if (!VN_IS_DOOMED(mp->mnt_rootvnode)) {
panic("%s: mismatch between vnode returned "
" by VFS_CACHEDROOT and the one cached "
" (%p != %p)",
__func__, *vpp, mp->mnt_rootvnode);
}
}
}
MNT_IUNLOCK(mp);
}
return (0);
}
int
vfs_cache_root(struct mount *mp, int flags, struct vnode **vpp)
{
struct mount_pcpu *mpcpu;
struct vnode *vp;
int error;
if (!vfs_op_thread_enter(mp, mpcpu))
return (vfs_cache_root_fallback(mp, flags, vpp));
vp = atomic_load_ptr(&mp->mnt_rootvnode);
if (vp == NULL || VN_IS_DOOMED(vp)) {
vfs_op_thread_exit(mp, mpcpu);
return (vfs_cache_root_fallback(mp, flags, vpp));
}
vrefact(vp);
vfs_op_thread_exit(mp, mpcpu);
error = vn_lock(vp, flags);
if (error != 0) {
vrele(vp);
return (vfs_cache_root_fallback(mp, flags, vpp));
}
*vpp = vp;
return (0);
}
struct vnode *
vfs_cache_root_clear(struct mount *mp)
{
struct vnode *vp;
MPASS(mp->mnt_vfs_ops > 0);
vp = mp->mnt_rootvnode;
if (vp != NULL)
vn_seqc_write_begin(vp);
mp->mnt_rootvnode = NULL;
return (vp);
}
void
vfs_cache_root_set(struct mount *mp, struct vnode *vp)
{
MPASS(mp->mnt_vfs_ops > 0);
vrefact(vp);
mp->mnt_rootvnode = vp;
}
struct vnode *
__mnt_vnode_next_all(struct vnode **mvp, struct mount *mp)
{
struct vnode *vp;
maybe_yield();
MNT_ILOCK(mp);
KASSERT((*mvp)->v_mount == mp, ("marker vnode mount list mismatch"));
for (vp = TAILQ_NEXT(*mvp, v_nmntvnodes); vp != NULL;
vp = TAILQ_NEXT(vp, v_nmntvnodes)) {
if (vp->v_type == VMARKER || VN_IS_DOOMED(vp))
continue;
VI_LOCK(vp);
if (VN_IS_DOOMED(vp)) {
VI_UNLOCK(vp);
continue;
}
break;
}
if (vp == NULL) {
__mnt_vnode_markerfree_all(mvp, mp);
mtx_assert(MNT_MTX(mp), MA_NOTOWNED);
return (NULL);
}
TAILQ_REMOVE(&mp->mnt_nvnodelist, *mvp, v_nmntvnodes);
TAILQ_INSERT_AFTER(&mp->mnt_nvnodelist, vp, *mvp, v_nmntvnodes);
MNT_IUNLOCK(mp);
return (vp);
}
struct vnode *
__mnt_vnode_first_all(struct vnode **mvp, struct mount *mp)
{
struct vnode *vp;
*mvp = vn_alloc_marker(mp);
MNT_ILOCK(mp);
MNT_REF(mp);
TAILQ_FOREACH(vp, &mp->mnt_nvnodelist, v_nmntvnodes) {
if (vp->v_type == VMARKER || VN_IS_DOOMED(vp))
continue;
VI_LOCK(vp);
if (VN_IS_DOOMED(vp)) {
VI_UNLOCK(vp);
continue;
}
break;
}
if (vp == NULL) {
MNT_REL(mp);
MNT_IUNLOCK(mp);
vn_free_marker(*mvp);
*mvp = NULL;
return (NULL);
}
TAILQ_INSERT_AFTER(&mp->mnt_nvnodelist, vp, *mvp, v_nmntvnodes);
MNT_IUNLOCK(mp);
return (vp);
}
void
__mnt_vnode_markerfree_all(struct vnode **mvp, struct mount *mp)
{
if (*mvp == NULL) {
MNT_IUNLOCK(mp);
return;
}
mtx_assert(MNT_MTX(mp), MA_OWNED);
KASSERT((*mvp)->v_mount == mp, ("marker vnode mount list mismatch"));
TAILQ_REMOVE(&mp->mnt_nvnodelist, *mvp, v_nmntvnodes);
MNT_REL(mp);
MNT_IUNLOCK(mp);
vn_free_marker(*mvp);
*mvp = NULL;
}
static void
mnt_vnode_markerfree_lazy(struct vnode **mvp, struct mount *mp)
{
KASSERT((*mvp)->v_mount == mp, ("marker vnode mount list mismatch"));
MNT_ILOCK(mp);
MNT_REL(mp);
MNT_IUNLOCK(mp);
vn_free_marker(*mvp);
*mvp = NULL;
}
static bool
mnt_vnode_next_lazy_relock(struct vnode *mvp, struct mount *mp,
struct vnode *vp)
{
VNASSERT(mvp->v_mount == mp && mvp->v_type == VMARKER &&
TAILQ_NEXT(mvp, v_lazylist) != NULL, mvp,
("%s: bad marker", __func__));
VNASSERT(vp->v_mount == mp && vp->v_type != VMARKER, vp,
("%s: inappropriate vnode", __func__));
ASSERT_VI_UNLOCKED(vp, __func__);
mtx_assert(&mp->mnt_listmtx, MA_OWNED);
TAILQ_REMOVE(&mp->mnt_lazyvnodelist, mvp, v_lazylist);
TAILQ_INSERT_BEFORE(vp, mvp, v_lazylist);
vhold(vp);
mtx_unlock(&mp->mnt_listmtx);
VI_LOCK(vp);
if (VN_IS_DOOMED(vp)) {
VNPASS((vp->v_mflag & VMP_LAZYLIST) == 0, vp);
goto out_lost;
}
VNPASS(vp->v_mflag & VMP_LAZYLIST, vp);
if (!refcount_release_if_not_last(&vp->v_holdcnt))
goto out_lost;
mtx_lock(&mp->mnt_listmtx);
return (true);
out_lost:
vdropl(vp);
maybe_yield();
mtx_lock(&mp->mnt_listmtx);
return (false);
}
static struct vnode *
mnt_vnode_next_lazy(struct vnode **mvp, struct mount *mp, mnt_lazy_cb_t *cb,
void *cbarg)
{
struct vnode *vp;
mtx_assert(&mp->mnt_listmtx, MA_OWNED);
KASSERT((*mvp)->v_mount == mp, ("marker vnode mount list mismatch"));
restart:
vp = TAILQ_NEXT(*mvp, v_lazylist);
while (vp != NULL) {
if (vp->v_type == VMARKER) {
vp = TAILQ_NEXT(vp, v_lazylist);
continue;
}
VNPASS(!VN_IS_DOOMED(vp), vp);
if (!cb(vp, cbarg)) {
if (!should_yield()) {
vp = TAILQ_NEXT(vp, v_lazylist);
continue;
}
TAILQ_REMOVE(&mp->mnt_lazyvnodelist, *mvp,
v_lazylist);
TAILQ_INSERT_AFTER(&mp->mnt_lazyvnodelist, vp, *mvp,
v_lazylist);
mtx_unlock(&mp->mnt_listmtx);
kern_yield(PRI_USER);
mtx_lock(&mp->mnt_listmtx);
goto restart;
}
if (!VI_TRYLOCK(vp) &&
!mnt_vnode_next_lazy_relock(*mvp, mp, vp))
goto restart;
KASSERT(vp->v_type != VMARKER, ("locked marker %p", vp));
KASSERT(vp->v_mount == mp || vp->v_mount == NULL,
("alien vnode on the lazy list %p %p", vp, mp));
VNPASS(vp->v_mount == mp, vp);
VNPASS(!VN_IS_DOOMED(vp), vp);
break;
}
TAILQ_REMOVE(&mp->mnt_lazyvnodelist, *mvp, v_lazylist);
if (vp == NULL) {
mtx_unlock(&mp->mnt_listmtx);
mnt_vnode_markerfree_lazy(mvp, mp);
return (NULL);
}
TAILQ_INSERT_AFTER(&mp->mnt_lazyvnodelist, vp, *mvp, v_lazylist);
mtx_unlock(&mp->mnt_listmtx);
ASSERT_VI_LOCKED(vp, "lazy iter");
return (vp);
}
struct vnode *
__mnt_vnode_next_lazy(struct vnode **mvp, struct mount *mp, mnt_lazy_cb_t *cb,
void *cbarg)
{
maybe_yield();
mtx_lock(&mp->mnt_listmtx);
return (mnt_vnode_next_lazy(mvp, mp, cb, cbarg));
}
struct vnode *
__mnt_vnode_first_lazy(struct vnode **mvp, struct mount *mp, mnt_lazy_cb_t *cb,
void *cbarg)
{
struct vnode *vp;
if (TAILQ_EMPTY(&mp->mnt_lazyvnodelist))
return (NULL);
*mvp = vn_alloc_marker(mp);
MNT_ILOCK(mp);
MNT_REF(mp);
MNT_IUNLOCK(mp);
mtx_lock(&mp->mnt_listmtx);
vp = TAILQ_FIRST(&mp->mnt_lazyvnodelist);
if (vp == NULL) {
mtx_unlock(&mp->mnt_listmtx);
mnt_vnode_markerfree_lazy(mvp, mp);
return (NULL);
}
TAILQ_INSERT_BEFORE(vp, *mvp, v_lazylist);
return (mnt_vnode_next_lazy(mvp, mp, cb, cbarg));
}
void
__mnt_vnode_markerfree_lazy(struct vnode **mvp, struct mount *mp)
{
if (*mvp == NULL)
return;
mtx_lock(&mp->mnt_listmtx);
TAILQ_REMOVE(&mp->mnt_lazyvnodelist, *mvp, v_lazylist);
mtx_unlock(&mp->mnt_listmtx);
mnt_vnode_markerfree_lazy(mvp, mp);
}
int
vn_dir_check_exec(struct vnode *vp, struct componentname *cnp)
{
if ((cnp->cn_flags & NOEXECCHECK) != 0) {
cnp->cn_flags &= ~NOEXECCHECK;
return (0);
}
return (VOP_ACCESS(vp, VEXEC, cnp->cn_cred, curthread));
}
void
vn_seqc_write_begin_locked(struct vnode *vp)
{
ASSERT_VI_LOCKED(vp, __func__);
VNPASS(vp->v_holdcnt > 0, vp);
VNPASS(vp->v_seqc_users >= 0, vp);
vp->v_seqc_users++;
if (vp->v_seqc_users == 1)
seqc_sleepable_write_begin(&vp->v_seqc);
}
void
vn_seqc_write_begin(struct vnode *vp)
{
VI_LOCK(vp);
vn_seqc_write_begin_locked(vp);
VI_UNLOCK(vp);
}
void
vn_seqc_write_end_locked(struct vnode *vp)
{
ASSERT_VI_LOCKED(vp, __func__);
VNPASS(vp->v_seqc_users > 0, vp);
vp->v_seqc_users--;
if (vp->v_seqc_users == 0)
seqc_sleepable_write_end(&vp->v_seqc);
}
void
vn_seqc_write_end(struct vnode *vp)
{
VI_LOCK(vp);
vn_seqc_write_end_locked(vp);
VI_UNLOCK(vp);
}
static void
vn_seqc_init(struct vnode *vp)
{
vp->v_seqc = 0;
vp->v_seqc_users = 0;
}
static void
vn_seqc_write_end_free(struct vnode *vp)
{
VNPASS(seqc_in_modify(vp->v_seqc), vp);
VNPASS(vp->v_seqc_users == 1, vp);
}
void
vn_irflag_set_locked(struct vnode *vp, short toset)
{
short flags;
ASSERT_VI_LOCKED(vp, __func__);
flags = vn_irflag_read(vp);
VNASSERT((flags & toset) == 0, vp,
("%s: some of the passed flags already set (have %d, passed %d)\n",
__func__, flags, toset));
atomic_store_short(&vp->v_irflag, flags | toset);
}
void
vn_irflag_set(struct vnode *vp, short toset)
{
VI_LOCK(vp);
vn_irflag_set_locked(vp, toset);
VI_UNLOCK(vp);
}
void
vn_irflag_set_cond_locked(struct vnode *vp, short toset)
{
short flags;
ASSERT_VI_LOCKED(vp, __func__);
flags = vn_irflag_read(vp);
atomic_store_short(&vp->v_irflag, flags | toset);
}
void
vn_irflag_set_cond(struct vnode *vp, short toset)
{
VI_LOCK(vp);
vn_irflag_set_cond_locked(vp, toset);
VI_UNLOCK(vp);
}
void
vn_irflag_unset_locked(struct vnode *vp, short tounset)
{
short flags;
ASSERT_VI_LOCKED(vp, __func__);
flags = vn_irflag_read(vp);
VNASSERT((flags & tounset) == tounset, vp,
("%s: some of the passed flags not set (have %d, passed %d)\n",
__func__, flags, tounset));
atomic_store_short(&vp->v_irflag, flags & ~tounset);
}
void
vn_irflag_unset(struct vnode *vp, short tounset)
{
VI_LOCK(vp);
vn_irflag_unset_locked(vp, tounset);
VI_UNLOCK(vp);
}
int
vn_getsize_locked(struct vnode *vp, off_t *size, struct ucred *cred)
{
struct vattr vattr;
int error;
ASSERT_VOP_LOCKED(vp, __func__);
error = VOP_GETATTR(vp, &vattr, cred);
if (__predict_true(error == 0)) {
if (vattr.va_size <= OFF_MAX)
*size = vattr.va_size;
else
error = EFBIG;
}
return (error);
}
int
vn_getsize(struct vnode *vp, off_t *size, struct ucred *cred)
{
int error;
VOP_LOCK(vp, LK_SHARED);
error = vn_getsize_locked(vp, size, cred);
VOP_UNLOCK(vp);
return (error);
}
#ifdef INVARIANTS
void
vn_set_state_validate(struct vnode *vp, __enum_uint8(vstate) state)
{
switch (vp->v_state) {
case VSTATE_UNINITIALIZED:
switch (state) {
case VSTATE_CONSTRUCTED:
case VSTATE_DESTROYING:
return;
default:
break;
}
break;
case VSTATE_CONSTRUCTED:
ASSERT_VOP_ELOCKED(vp, __func__);
switch (state) {
case VSTATE_DESTROYING:
return;
default:
break;
}
break;
case VSTATE_DESTROYING:
ASSERT_VOP_ELOCKED(vp, __func__);
switch (state) {
case VSTATE_DEAD:
return;
default:
break;
}
break;
case VSTATE_DEAD:
switch (state) {
case VSTATE_UNINITIALIZED:
return;
default:
break;
}
break;
}
vn_printf(vp, "invalid state transition %d -> %d\n", vp->v_state, state);
panic("invalid state transition %d -> %d\n", vp->v_state, state);
}
#endif