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sys_pipe.c revision 1.64
      1 /*	$NetBSD: sys_pipe.c,v 1.64 2005/03/12 18:43:42 christos Exp $	*/
      2 
      3 /*-
      4  * Copyright (c) 2003 The NetBSD Foundation, Inc.
      5  * All rights reserved.
      6  *
      7  * This code is derived from software contributed to The NetBSD Foundation
      8  * by Paul Kranenburg.
      9  *
     10  * Redistribution and use in source and binary forms, with or without
     11  * modification, are permitted provided that the following conditions
     12  * are met:
     13  * 1. Redistributions of source code must retain the above copyright
     14  *    notice, this list of conditions and the following disclaimer.
     15  * 2. Redistributions in binary form must reproduce the above copyright
     16  *    notice, this list of conditions and the following disclaimer in the
     17  *    documentation and/or other materials provided with the distribution.
     18  * 3. All advertising materials mentioning features or use of this software
     19  *    must display the following acknowledgement:
     20  *        This product includes software developed by the NetBSD
     21  *        Foundation, Inc. and its contributors.
     22  * 4. Neither the name of The NetBSD Foundation nor the names of its
     23  *    contributors may be used to endorse or promote products derived
     24  *    from this software without specific prior written permission.
     25  *
     26  * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
     27  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     28  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     29  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
     30  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     31  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     32  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     33  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     34  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     35  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     36  * POSSIBILITY OF SUCH DAMAGE.
     37  */
     38 
     39 /*
     40  * Copyright (c) 1996 John S. Dyson
     41  * All rights reserved.
     42  *
     43  * Redistribution and use in source and binary forms, with or without
     44  * modification, are permitted provided that the following conditions
     45  * are met:
     46  * 1. Redistributions of source code must retain the above copyright
     47  *    notice immediately at the beginning of the file, without modification,
     48  *    this list of conditions, and the following disclaimer.
     49  * 2. Redistributions in binary form must reproduce the above copyright
     50  *    notice, this list of conditions and the following disclaimer in the
     51  *    documentation and/or other materials provided with the distribution.
     52  * 3. Absolutely no warranty of function or purpose is made by the author
     53  *    John S. Dyson.
     54  * 4. Modifications may be freely made to this file if the above conditions
     55  *    are met.
     56  *
     57  * $FreeBSD: src/sys/kern/sys_pipe.c,v 1.95 2002/03/09 22:06:31 alfred Exp $
     58  */
     59 
     60 /*
     61  * This file contains a high-performance replacement for the socket-based
     62  * pipes scheme originally used in FreeBSD/4.4Lite.  It does not support
     63  * all features of sockets, but does do everything that pipes normally
     64  * do.
     65  *
     66  * Adaption for NetBSD UVM, including uvm_loan() based direct write, was
     67  * written by Jaromir Dolecek.
     68  */
     69 
     70 /*
     71  * This code has two modes of operation, a small write mode and a large
     72  * write mode.  The small write mode acts like conventional pipes with
     73  * a kernel buffer.  If the buffer is less than PIPE_MINDIRECT, then the
     74  * "normal" pipe buffering is done.  If the buffer is between PIPE_MINDIRECT
     75  * and PIPE_SIZE in size it is mapped read-only into the kernel address space
     76  * using the UVM page loan facility from where the receiving process can copy
     77  * the data directly from the pages in the sending process.
     78  *
     79  * The constant PIPE_MINDIRECT is chosen to make sure that buffering will
     80  * happen for small transfers so that the system will not spend all of
     81  * its time context switching.  PIPE_SIZE is constrained by the
     82  * amount of kernel virtual memory.
     83  */
     84 
     85 #include <sys/cdefs.h>
     86 __KERNEL_RCSID(0, "$NetBSD: sys_pipe.c,v 1.64 2005/03/12 18:43:42 christos Exp $");
     87 
     88 #include <sys/param.h>
     89 #include <sys/systm.h>
     90 #include <sys/proc.h>
     91 #include <sys/fcntl.h>
     92 #include <sys/file.h>
     93 #include <sys/filedesc.h>
     94 #include <sys/filio.h>
     95 #include <sys/kernel.h>
     96 #include <sys/lock.h>
     97 #include <sys/ttycom.h>
     98 #include <sys/stat.h>
     99 #include <sys/malloc.h>
    100 #include <sys/poll.h>
    101 #include <sys/signalvar.h>
    102 #include <sys/vnode.h>
    103 #include <sys/uio.h>
    104 #include <sys/lock.h>
    105 #include <sys/select.h>
    106 #include <sys/mount.h>
    107 #include <sys/sa.h>
    108 #include <sys/syscallargs.h>
    109 #include <uvm/uvm.h>
    110 #include <sys/sysctl.h>
    111 #include <sys/kernel.h>
    112 
    113 #include <sys/pipe.h>
    114 
    115 /*
    116  * Avoid microtime(9), it's slow. We don't guard the read from time(9)
    117  * with splclock(9) since we don't actually need to be THAT sure the access
    118  * is atomic.
    119  */
    120 #define PIPE_TIMESTAMP(tvp)	(*(tvp) = time)
    121 
    122 
    123 /*
    124  * Use this define if you want to disable *fancy* VM things.  Expect an
    125  * approx 30% decrease in transfer rate.
    126  */
    127 /* #define PIPE_NODIRECT */
    128 
    129 /*
    130  * interfaces to the outside world
    131  */
    132 static int pipe_read(struct file *fp, off_t *offset, struct uio *uio,
    133 		struct ucred *cred, int flags);
    134 static int pipe_write(struct file *fp, off_t *offset, struct uio *uio,
    135 		struct ucred *cred, int flags);
    136 static int pipe_close(struct file *fp, struct proc *p);
    137 static int pipe_poll(struct file *fp, int events, struct proc *p);
    138 static int pipe_kqfilter(struct file *fp, struct knote *kn);
    139 static int pipe_stat(struct file *fp, struct stat *sb, struct proc *p);
    140 static int pipe_ioctl(struct file *fp, u_long cmd, void *data,
    141 		struct proc *p);
    142 
    143 static const struct fileops pipeops = {
    144 	pipe_read, pipe_write, pipe_ioctl, fnullop_fcntl, pipe_poll,
    145 	pipe_stat, pipe_close, pipe_kqfilter
    146 };
    147 
    148 /*
    149  * Default pipe buffer size(s), this can be kind-of large now because pipe
    150  * space is pageable.  The pipe code will try to maintain locality of
    151  * reference for performance reasons, so small amounts of outstanding I/O
    152  * will not wipe the cache.
    153  */
    154 #define MINPIPESIZE (PIPE_SIZE/3)
    155 #define MAXPIPESIZE (2*PIPE_SIZE/3)
    156 
    157 /*
    158  * Maximum amount of kva for pipes -- this is kind-of a soft limit, but
    159  * is there so that on large systems, we don't exhaust it.
    160  */
    161 #define MAXPIPEKVA (8*1024*1024)
    162 static int maxpipekva = MAXPIPEKVA;
    163 
    164 /*
    165  * Limit for direct transfers, we cannot, of course limit
    166  * the amount of kva for pipes in general though.
    167  */
    168 #define LIMITPIPEKVA (16*1024*1024)
    169 static int limitpipekva = LIMITPIPEKVA;
    170 
    171 /*
    172  * Limit the number of "big" pipes
    173  */
    174 #define LIMITBIGPIPES  32
    175 static int maxbigpipes = LIMITBIGPIPES;
    176 static int nbigpipe = 0;
    177 
    178 /*
    179  * Amount of KVA consumed by pipe buffers.
    180  */
    181 static int amountpipekva = 0;
    182 
    183 MALLOC_DEFINE(M_PIPE, "pipe", "Pipe structures");
    184 
    185 static void pipeclose(struct file *fp, struct pipe *pipe);
    186 static void pipe_free_kmem(struct pipe *pipe);
    187 static int pipe_create(struct pipe **pipep, int allockva);
    188 static int pipelock(struct pipe *pipe, int catch);
    189 static __inline void pipeunlock(struct pipe *pipe);
    190 static void pipeselwakeup(struct pipe *pipe, struct pipe *sigp, void *data,
    191     int code);
    192 #ifndef PIPE_NODIRECT
    193 static int pipe_direct_write(struct file *fp, struct pipe *wpipe,
    194     struct uio *uio);
    195 #endif
    196 static int pipespace(struct pipe *pipe, int size);
    197 
    198 #ifndef PIPE_NODIRECT
    199 static int pipe_loan_alloc(struct pipe *, int);
    200 static void pipe_loan_free(struct pipe *);
    201 #endif /* PIPE_NODIRECT */
    202 
    203 static POOL_INIT(pipe_pool, sizeof(struct pipe), 0, 0, 0, "pipepl",
    204     &pool_allocator_nointr);
    205 
    206 /*
    207  * The pipe system call for the DTYPE_PIPE type of pipes
    208  */
    209 
    210 /* ARGSUSED */
    211 int
    212 sys_pipe(l, v, retval)
    213 	struct lwp *l;
    214 	void *v;
    215 	register_t *retval;
    216 {
    217 	struct file *rf, *wf;
    218 	struct pipe *rpipe, *wpipe;
    219 	int fd, error;
    220 	struct proc *p;
    221 
    222 	p = l->l_proc;
    223 	rpipe = wpipe = NULL;
    224 	if (pipe_create(&rpipe, 1) || pipe_create(&wpipe, 0)) {
    225 		pipeclose(NULL, rpipe);
    226 		pipeclose(NULL, wpipe);
    227 		return (ENFILE);
    228 	}
    229 
    230 	/*
    231 	 * Note: the file structure returned from falloc() is marked
    232 	 * as 'larval' initially. Unless we mark it as 'mature' by
    233 	 * FILE_SET_MATURE(), any attempt to do anything with it would
    234 	 * return EBADF, including e.g. dup(2) or close(2). This avoids
    235 	 * file descriptor races if we block in the second falloc().
    236 	 */
    237 
    238 	error = falloc(p, &rf, &fd);
    239 	if (error)
    240 		goto free2;
    241 	retval[0] = fd;
    242 	rf->f_flag = FREAD;
    243 	rf->f_type = DTYPE_PIPE;
    244 	rf->f_data = (caddr_t)rpipe;
    245 	rf->f_ops = &pipeops;
    246 
    247 	error = falloc(p, &wf, &fd);
    248 	if (error)
    249 		goto free3;
    250 	retval[1] = fd;
    251 	wf->f_flag = FWRITE;
    252 	wf->f_type = DTYPE_PIPE;
    253 	wf->f_data = (caddr_t)wpipe;
    254 	wf->f_ops = &pipeops;
    255 
    256 	rpipe->pipe_peer = wpipe;
    257 	wpipe->pipe_peer = rpipe;
    258 
    259 	FILE_SET_MATURE(rf);
    260 	FILE_SET_MATURE(wf);
    261 	FILE_UNUSE(rf, p);
    262 	FILE_UNUSE(wf, p);
    263 	return (0);
    264 free3:
    265 	FILE_UNUSE(rf, p);
    266 	ffree(rf);
    267 	fdremove(p->p_fd, retval[0]);
    268 free2:
    269 	pipeclose(NULL, wpipe);
    270 	pipeclose(NULL, rpipe);
    271 
    272 	return (error);
    273 }
    274 
    275 /*
    276  * Allocate kva for pipe circular buffer, the space is pageable
    277  * This routine will 'realloc' the size of a pipe safely, if it fails
    278  * it will retain the old buffer.
    279  * If it fails it will return ENOMEM.
    280  */
    281 static int
    282 pipespace(pipe, size)
    283 	struct pipe *pipe;
    284 	int size;
    285 {
    286 	caddr_t buffer;
    287 	/*
    288 	 * Allocate pageable virtual address space. Physical memory is
    289 	 * allocated on demand.
    290 	 */
    291 	buffer = (caddr_t) uvm_km_valloc(kernel_map, round_page(size));
    292 	if (buffer == NULL)
    293 		return (ENOMEM);
    294 
    295 	/* free old resources if we're resizing */
    296 	pipe_free_kmem(pipe);
    297 	pipe->pipe_buffer.buffer = buffer;
    298 	pipe->pipe_buffer.size = size;
    299 	pipe->pipe_buffer.in = 0;
    300 	pipe->pipe_buffer.out = 0;
    301 	pipe->pipe_buffer.cnt = 0;
    302 	amountpipekva += pipe->pipe_buffer.size;
    303 	return (0);
    304 }
    305 
    306 /*
    307  * Initialize and allocate VM and memory for pipe.
    308  */
    309 static int
    310 pipe_create(pipep, allockva)
    311 	struct pipe **pipep;
    312 	int allockva;
    313 {
    314 	struct pipe *pipe;
    315 	int error;
    316 
    317 	pipe = *pipep = pool_get(&pipe_pool, PR_WAITOK);
    318 
    319 	/* Initialize */
    320 	memset(pipe, 0, sizeof(struct pipe));
    321 	pipe->pipe_state = PIPE_SIGNALR;
    322 
    323 	PIPE_TIMESTAMP(&pipe->pipe_ctime);
    324 	pipe->pipe_atime = pipe->pipe_ctime;
    325 	pipe->pipe_mtime = pipe->pipe_ctime;
    326 	simple_lock_init(&pipe->pipe_slock);
    327 	lockinit(&pipe->pipe_lock, PSOCK | PCATCH, "pipelk", 0, 0);
    328 
    329 	if (allockva && (error = pipespace(pipe, PIPE_SIZE)))
    330 		return (error);
    331 
    332 	return (0);
    333 }
    334 
    335 
    336 /*
    337  * Lock a pipe for I/O, blocking other access
    338  * Called with pipe spin lock held.
    339  * Return with pipe spin lock released on success.
    340  */
    341 static int
    342 pipelock(pipe, catch)
    343 	struct pipe *pipe;
    344 	int catch;
    345 {
    346 	int error;
    347 
    348 	LOCK_ASSERT(simple_lock_held(&pipe->pipe_slock));
    349 
    350 	while (1) {
    351 		error = lockmgr(&pipe->pipe_lock, LK_EXCLUSIVE | LK_INTERLOCK,
    352 				&pipe->pipe_slock);
    353 		if (error == 0)
    354 			break;
    355 
    356 		simple_lock(&pipe->pipe_slock);
    357 		if (catch || (error != EINTR && error != ERESTART))
    358 			break;
    359 		/*
    360 		 * XXX XXX XXX
    361 		 * The pipe lock is initialised with PCATCH on and we cannot
    362 		 * override this in a lockmgr() call. Thus a pending signal
    363 		 * will cause lockmgr() to return with EINTR or ERESTART.
    364 		 * We cannot simply re-enter lockmgr() at this point since
    365 		 * the pending signals have not yet been posted and would
    366 		 * cause an immediate EINTR/ERESTART return again.
    367 		 * As a workaround we pause for a while here, giving the lock
    368 		 * a chance to drain, before trying again.
    369 		 * XXX XXX XXX
    370 		 *
    371 		 * NOTE: Consider dropping PCATCH from this lock; in practice
    372 		 * it is never held for long enough periods for having it
    373 		 * interruptable at the start of pipe_read/pipe_write to be
    374 		 * beneficial.
    375 		 */
    376 		(void) ltsleep(&lbolt, PSOCK, "rstrtpipelock", hz,
    377 		    &pipe->pipe_slock);
    378 	}
    379 	return (error);
    380 }
    381 
    382 /*
    383  * unlock a pipe I/O lock
    384  */
    385 static __inline void
    386 pipeunlock(pipe)
    387 	struct pipe *pipe;
    388 {
    389 
    390 	lockmgr(&pipe->pipe_lock, LK_RELEASE, NULL);
    391 }
    392 
    393 /*
    394  * Select/poll wakup. This also sends SIGIO to peer connected to
    395  * 'sigpipe' side of pipe.
    396  */
    397 static void
    398 pipeselwakeup(selp, sigp, data, code)
    399 	struct pipe *selp, *sigp;
    400 	void *data;
    401 	int code;
    402 {
    403 	int band;
    404 
    405 	selnotify(&selp->pipe_sel, NOTE_SUBMIT);
    406 
    407 	if (sigp == NULL || (sigp->pipe_state & PIPE_ASYNC) == 0)
    408 		return;
    409 
    410 	switch (code) {
    411 	case POLL_IN:
    412 		band = POLLIN|POLLRDNORM;
    413 		break;
    414 	case POLL_OUT:
    415 		band = POLLOUT|POLLWRNORM;
    416 		break;
    417 	case POLL_HUP:
    418 		band = POLLHUP;
    419 		break;
    420 #if POLL_HUP != POLL_ERR
    421 	case POLL_ERR:
    422 		band = POLLERR;
    423 		break;
    424 #endif
    425 	default:
    426 		band = 0;
    427 #ifdef DIAGNOSTIC
    428 		printf("bad siginfo code %d in pipe notification.\n", code);
    429 #endif
    430 		break;
    431 	}
    432 
    433 	fownsignal(sigp->pipe_pgid, SIGIO, code, band, selp);
    434 }
    435 
    436 /* ARGSUSED */
    437 static int
    438 pipe_read(fp, offset, uio, cred, flags)
    439 	struct file *fp;
    440 	off_t *offset;
    441 	struct uio *uio;
    442 	struct ucred *cred;
    443 	int flags;
    444 {
    445 	struct pipe *rpipe = (struct pipe *) fp->f_data;
    446 	struct pipebuf *bp = &rpipe->pipe_buffer;
    447 	int error;
    448 	size_t nread = 0;
    449 	size_t size;
    450 	size_t ocnt;
    451 
    452 	PIPE_LOCK(rpipe);
    453 	++rpipe->pipe_busy;
    454 	ocnt = bp->cnt;
    455 
    456 again:
    457 	error = pipelock(rpipe, 1);
    458 	if (error)
    459 		goto unlocked_error;
    460 
    461 	while (uio->uio_resid) {
    462 		/*
    463 		 * normal pipe buffer receive
    464 		 */
    465 		if (bp->cnt > 0) {
    466 			size = bp->size - bp->out;
    467 			if (size > bp->cnt)
    468 				size = bp->cnt;
    469 			if (size > uio->uio_resid)
    470 				size = uio->uio_resid;
    471 
    472 			error = uiomove(&bp->buffer[bp->out], size, uio);
    473 			if (error)
    474 				break;
    475 
    476 			bp->out += size;
    477 			if (bp->out >= bp->size)
    478 				bp->out = 0;
    479 
    480 			bp->cnt -= size;
    481 
    482 			/*
    483 			 * If there is no more to read in the pipe, reset
    484 			 * its pointers to the beginning.  This improves
    485 			 * cache hit stats.
    486 			 */
    487 			if (bp->cnt == 0) {
    488 				bp->in = 0;
    489 				bp->out = 0;
    490 			}
    491 			nread += size;
    492 #ifndef PIPE_NODIRECT
    493 		} else if ((rpipe->pipe_state & PIPE_DIRECTR) != 0) {
    494 			/*
    495 			 * Direct copy, bypassing a kernel buffer.
    496 			 */
    497 			caddr_t	va;
    498 
    499 			KASSERT(rpipe->pipe_state & PIPE_DIRECTW);
    500 
    501 			size = rpipe->pipe_map.cnt;
    502 			if (size > uio->uio_resid)
    503 				size = uio->uio_resid;
    504 
    505 			va = (caddr_t) rpipe->pipe_map.kva +
    506 			    rpipe->pipe_map.pos;
    507 			error = uiomove(va, size, uio);
    508 			if (error)
    509 				break;
    510 			nread += size;
    511 			rpipe->pipe_map.pos += size;
    512 			rpipe->pipe_map.cnt -= size;
    513 			if (rpipe->pipe_map.cnt == 0) {
    514 				PIPE_LOCK(rpipe);
    515 				rpipe->pipe_state &= ~PIPE_DIRECTR;
    516 				wakeup(rpipe);
    517 				PIPE_UNLOCK(rpipe);
    518 			}
    519 #endif
    520 		} else {
    521 			/*
    522 			 * Break if some data was read.
    523 			 */
    524 			if (nread > 0)
    525 				break;
    526 
    527 			PIPE_LOCK(rpipe);
    528 
    529 			/*
    530 			 * detect EOF condition
    531 			 * read returns 0 on EOF, no need to set error
    532 			 */
    533 			if (rpipe->pipe_state & PIPE_EOF) {
    534 				PIPE_UNLOCK(rpipe);
    535 				break;
    536 			}
    537 
    538 			/*
    539 			 * don't block on non-blocking I/O
    540 			 */
    541 			if (fp->f_flag & FNONBLOCK) {
    542 				PIPE_UNLOCK(rpipe);
    543 				error = EAGAIN;
    544 				break;
    545 			}
    546 
    547 			/*
    548 			 * Unlock the pipe buffer for our remaining processing.
    549 			 * We will either break out with an error or we will
    550 			 * sleep and relock to loop.
    551 			 */
    552 			pipeunlock(rpipe);
    553 
    554 			/*
    555 			 * The PIPE_DIRECTR flag is not under the control
    556 			 * of the long-term lock (see pipe_direct_write()),
    557 			 * so re-check now while holding the spin lock.
    558 			 */
    559 			if ((rpipe->pipe_state & PIPE_DIRECTR) != 0)
    560 				goto again;
    561 
    562 			/*
    563 			 * We want to read more, wake up select/poll.
    564 			 */
    565 			pipeselwakeup(rpipe, rpipe->pipe_peer, fp->f_data,
    566 			    POLL_IN);
    567 
    568 			/*
    569 			 * If the "write-side" is blocked, wake it up now.
    570 			 */
    571 			if (rpipe->pipe_state & PIPE_WANTW) {
    572 				rpipe->pipe_state &= ~PIPE_WANTW;
    573 				wakeup(rpipe);
    574 			}
    575 
    576 			/* Now wait until the pipe is filled */
    577 			rpipe->pipe_state |= PIPE_WANTR;
    578 			error = ltsleep(rpipe, PSOCK | PCATCH,
    579 					"piperd", 0, &rpipe->pipe_slock);
    580 			if (error != 0)
    581 				goto unlocked_error;
    582 			goto again;
    583 		}
    584 	}
    585 
    586 	if (error == 0)
    587 		PIPE_TIMESTAMP(&rpipe->pipe_atime);
    588 
    589 	PIPE_LOCK(rpipe);
    590 	pipeunlock(rpipe);
    591 
    592 unlocked_error:
    593 	--rpipe->pipe_busy;
    594 
    595 	/*
    596 	 * PIPE_WANTCLOSE processing only makes sense if pipe_busy is 0.
    597 	 */
    598 	if ((rpipe->pipe_busy == 0) && (rpipe->pipe_state & PIPE_WANTCLOSE)) {
    599 		rpipe->pipe_state &= ~(PIPE_WANTCLOSE|PIPE_WANTW);
    600 		wakeup(rpipe);
    601 	} else if (bp->cnt < MINPIPESIZE) {
    602 		/*
    603 		 * Handle write blocking hysteresis.
    604 		 */
    605 		if (rpipe->pipe_state & PIPE_WANTW) {
    606 			rpipe->pipe_state &= ~PIPE_WANTW;
    607 			wakeup(rpipe);
    608 		}
    609 	}
    610 
    611 	/*
    612 	 * If anything was read off the buffer, signal to the writer it's
    613 	 * possible to write more data. Also send signal if we are here for the
    614 	 * first time after last write.
    615 	 */
    616 	if ((bp->size - bp->cnt) >= PIPE_BUF
    617 	    && (ocnt != bp->cnt || (rpipe->pipe_state & PIPE_SIGNALR))) {
    618 		pipeselwakeup(rpipe, rpipe->pipe_peer, fp->f_data, POLL_OUT);
    619 		rpipe->pipe_state &= ~PIPE_SIGNALR;
    620 	}
    621 
    622 	PIPE_UNLOCK(rpipe);
    623 	return (error);
    624 }
    625 
    626 #ifndef PIPE_NODIRECT
    627 /*
    628  * Allocate structure for loan transfer.
    629  */
    630 static int
    631 pipe_loan_alloc(wpipe, npages)
    632 	struct pipe *wpipe;
    633 	int npages;
    634 {
    635 	vsize_t len;
    636 
    637 	len = (vsize_t)npages << PAGE_SHIFT;
    638 	wpipe->pipe_map.kva = uvm_km_valloc_wait(kernel_map, len);
    639 	if (wpipe->pipe_map.kva == 0)
    640 		return (ENOMEM);
    641 
    642 	amountpipekva += len;
    643 	wpipe->pipe_map.npages = npages;
    644 	wpipe->pipe_map.pgs = malloc(npages * sizeof(struct vm_page *), M_PIPE,
    645 	    M_WAITOK);
    646 	return (0);
    647 }
    648 
    649 /*
    650  * Free resources allocated for loan transfer.
    651  */
    652 static void
    653 pipe_loan_free(wpipe)
    654 	struct pipe *wpipe;
    655 {
    656 	vsize_t len;
    657 
    658 	len = (vsize_t)wpipe->pipe_map.npages << PAGE_SHIFT;
    659 	uvm_km_free(kernel_map, wpipe->pipe_map.kva, len);
    660 	wpipe->pipe_map.kva = 0;
    661 	amountpipekva -= len;
    662 	free(wpipe->pipe_map.pgs, M_PIPE);
    663 	wpipe->pipe_map.pgs = NULL;
    664 }
    665 
    666 /*
    667  * NetBSD direct write, using uvm_loan() mechanism.
    668  * This implements the pipe buffer write mechanism.  Note that only
    669  * a direct write OR a normal pipe write can be pending at any given time.
    670  * If there are any characters in the pipe buffer, the direct write will
    671  * be deferred until the receiving process grabs all of the bytes from
    672  * the pipe buffer.  Then the direct mapping write is set-up.
    673  *
    674  * Called with the long-term pipe lock held.
    675  */
    676 static int
    677 pipe_direct_write(fp, wpipe, uio)
    678 	struct file *fp;
    679 	struct pipe *wpipe;
    680 	struct uio *uio;
    681 {
    682 	int error, npages, j;
    683 	struct vm_page **pgs;
    684 	vaddr_t bbase, kva, base, bend;
    685 	vsize_t blen, bcnt;
    686 	voff_t bpos;
    687 
    688 	KASSERT(wpipe->pipe_map.cnt == 0);
    689 
    690 	/*
    691 	 * Handle first PIPE_CHUNK_SIZE bytes of buffer. Deal with buffers
    692 	 * not aligned to PAGE_SIZE.
    693 	 */
    694 	bbase = (vaddr_t)uio->uio_iov->iov_base;
    695 	base = trunc_page(bbase);
    696 	bend = round_page(bbase + uio->uio_iov->iov_len);
    697 	blen = bend - base;
    698 	bpos = bbase - base;
    699 
    700 	if (blen > PIPE_DIRECT_CHUNK) {
    701 		blen = PIPE_DIRECT_CHUNK;
    702 		bend = base + blen;
    703 		bcnt = PIPE_DIRECT_CHUNK - bpos;
    704 	} else {
    705 		bcnt = uio->uio_iov->iov_len;
    706 	}
    707 	npages = blen >> PAGE_SHIFT;
    708 
    709 	/*
    710 	 * Free the old kva if we need more pages than we have
    711 	 * allocated.
    712 	 */
    713 	if (wpipe->pipe_map.kva != 0 && npages > wpipe->pipe_map.npages)
    714 		pipe_loan_free(wpipe);
    715 
    716 	/* Allocate new kva. */
    717 	if (wpipe->pipe_map.kva == 0) {
    718 		error = pipe_loan_alloc(wpipe, npages);
    719 		if (error)
    720 			return (error);
    721 	}
    722 
    723 	/* Loan the write buffer memory from writer process */
    724 	pgs = wpipe->pipe_map.pgs;
    725 	error = uvm_loan(&uio->uio_procp->p_vmspace->vm_map, base, blen,
    726 			 pgs, UVM_LOAN_TOPAGE);
    727 	if (error) {
    728 		pipe_loan_free(wpipe);
    729 		return (ENOMEM); /* so that caller fallback to ordinary write */
    730 	}
    731 
    732 	/* Enter the loaned pages to kva */
    733 	kva = wpipe->pipe_map.kva;
    734 	for (j = 0; j < npages; j++, kva += PAGE_SIZE) {
    735 		pmap_kenter_pa(kva, VM_PAGE_TO_PHYS(pgs[j]), VM_PROT_READ);
    736 	}
    737 	pmap_update(pmap_kernel());
    738 
    739 	/* Now we can put the pipe in direct write mode */
    740 	wpipe->pipe_map.pos = bpos;
    741 	wpipe->pipe_map.cnt = bcnt;
    742 	wpipe->pipe_state |= PIPE_DIRECTW;
    743 
    744 	/*
    745 	 * But before we can let someone do a direct read,
    746 	 * we have to wait until the pipe is drained.
    747 	 */
    748 
    749 	/* Relase the pipe lock while we wait */
    750 	PIPE_LOCK(wpipe);
    751 	pipeunlock(wpipe);
    752 
    753 	while (error == 0 && wpipe->pipe_buffer.cnt > 0) {
    754 		if (wpipe->pipe_state & PIPE_WANTR) {
    755 			wpipe->pipe_state &= ~PIPE_WANTR;
    756 			wakeup(wpipe);
    757 		}
    758 
    759 		wpipe->pipe_state |= PIPE_WANTW;
    760 		error = ltsleep(wpipe, PSOCK | PCATCH, "pipdwc", 0,
    761 				&wpipe->pipe_slock);
    762 		if (error == 0 && wpipe->pipe_state & PIPE_EOF)
    763 			error = EPIPE;
    764 	}
    765 
    766 	/* Pipe is drained; next read will off the direct buffer */
    767 	wpipe->pipe_state |= PIPE_DIRECTR;
    768 
    769 	/* Wait until the reader is done */
    770 	while (error == 0 && (wpipe->pipe_state & PIPE_DIRECTR)) {
    771 		if (wpipe->pipe_state & PIPE_WANTR) {
    772 			wpipe->pipe_state &= ~PIPE_WANTR;
    773 			wakeup(wpipe);
    774 		}
    775 		pipeselwakeup(wpipe, wpipe, fp->f_data, POLL_IN);
    776 		error = ltsleep(wpipe, PSOCK | PCATCH, "pipdwt", 0,
    777 				&wpipe->pipe_slock);
    778 		if (error == 0 && wpipe->pipe_state & PIPE_EOF)
    779 			error = EPIPE;
    780 	}
    781 
    782 	/* Take pipe out of direct write mode */
    783 	wpipe->pipe_state &= ~(PIPE_DIRECTW | PIPE_DIRECTR);
    784 
    785 	/* Acquire the pipe lock and cleanup */
    786 	(void)pipelock(wpipe, 0);
    787 	if (pgs != NULL) {
    788 		pmap_kremove(wpipe->pipe_map.kva, blen);
    789 		uvm_unloan(pgs, npages, UVM_LOAN_TOPAGE);
    790 	}
    791 	if (error || amountpipekva > maxpipekva)
    792 		pipe_loan_free(wpipe);
    793 
    794 	if (error) {
    795 		pipeselwakeup(wpipe, wpipe, fp->f_data, POLL_ERR);
    796 
    797 		/*
    798 		 * If nothing was read from what we offered, return error
    799 		 * straight on. Otherwise update uio resid first. Caller
    800 		 * will deal with the error condition, returning short
    801 		 * write, error, or restarting the write(2) as appropriate.
    802 		 */
    803 		if (wpipe->pipe_map.cnt == bcnt) {
    804 			wpipe->pipe_map.cnt = 0;
    805 			wakeup(wpipe);
    806 			return (error);
    807 		}
    808 
    809 		bcnt -= wpipe->pipe_map.cnt;
    810 	}
    811 
    812 	uio->uio_resid -= bcnt;
    813 	/* uio_offset not updated, not set/used for write(2) */
    814 	uio->uio_iov->iov_base = (char *)uio->uio_iov->iov_base + bcnt;
    815 	uio->uio_iov->iov_len -= bcnt;
    816 	if (uio->uio_iov->iov_len == 0) {
    817 		uio->uio_iov++;
    818 		uio->uio_iovcnt--;
    819 	}
    820 
    821 	wpipe->pipe_map.cnt = 0;
    822 	return (error);
    823 }
    824 #endif /* !PIPE_NODIRECT */
    825 
    826 static int
    827 pipe_write(fp, offset, uio, cred, flags)
    828 	struct file *fp;
    829 	off_t *offset;
    830 	struct uio *uio;
    831 	struct ucred *cred;
    832 	int flags;
    833 {
    834 	struct pipe *wpipe, *rpipe;
    835 	struct pipebuf *bp;
    836 	int error;
    837 
    838 	/* We want to write to our peer */
    839 	rpipe = (struct pipe *) fp->f_data;
    840 
    841 retry:
    842 	error = 0;
    843 	PIPE_LOCK(rpipe);
    844 	wpipe = rpipe->pipe_peer;
    845 
    846 	/*
    847 	 * Detect loss of pipe read side, issue SIGPIPE if lost.
    848 	 */
    849 	if (wpipe == NULL)
    850 		error = EPIPE;
    851 	else if (simple_lock_try(&wpipe->pipe_slock) == 0) {
    852 		/* Deal with race for peer */
    853 		PIPE_UNLOCK(rpipe);
    854 		goto retry;
    855 	} else if ((wpipe->pipe_state & PIPE_EOF) != 0) {
    856 		PIPE_UNLOCK(wpipe);
    857 		error = EPIPE;
    858 	}
    859 
    860 	PIPE_UNLOCK(rpipe);
    861 	if (error != 0)
    862 		return (error);
    863 
    864 	++wpipe->pipe_busy;
    865 
    866 	/* Aquire the long-term pipe lock */
    867 	if ((error = pipelock(wpipe,1)) != 0) {
    868 		--wpipe->pipe_busy;
    869 		if (wpipe->pipe_busy == 0
    870 		    && (wpipe->pipe_state & PIPE_WANTCLOSE)) {
    871 			wpipe->pipe_state &= ~(PIPE_WANTCLOSE | PIPE_WANTR);
    872 			wakeup(wpipe);
    873 		}
    874 		PIPE_UNLOCK(wpipe);
    875 		return (error);
    876 	}
    877 
    878 	bp = &wpipe->pipe_buffer;
    879 
    880 	/*
    881 	 * If it is advantageous to resize the pipe buffer, do so.
    882 	 */
    883 	if ((uio->uio_resid > PIPE_SIZE) &&
    884 	    (nbigpipe < maxbigpipes) &&
    885 #ifndef PIPE_NODIRECT
    886 	    (wpipe->pipe_state & PIPE_DIRECTW) == 0 &&
    887 #endif
    888 	    (bp->size <= PIPE_SIZE) && (bp->cnt == 0)) {
    889 
    890 		if (pipespace(wpipe, BIG_PIPE_SIZE) == 0)
    891 			nbigpipe++;
    892 	}
    893 
    894 	while (uio->uio_resid) {
    895 		size_t space;
    896 
    897 #ifndef PIPE_NODIRECT
    898 		/*
    899 		 * Pipe buffered writes cannot be coincidental with
    900 		 * direct writes.  Also, only one direct write can be
    901 		 * in progress at any one time.  We wait until the currently
    902 		 * executing direct write is completed before continuing.
    903 		 *
    904 		 * We break out if a signal occurs or the reader goes away.
    905 		 */
    906 		while (error == 0 && wpipe->pipe_state & PIPE_DIRECTW) {
    907 			PIPE_LOCK(wpipe);
    908 			if (wpipe->pipe_state & PIPE_WANTR) {
    909 				wpipe->pipe_state &= ~PIPE_WANTR;
    910 				wakeup(wpipe);
    911 			}
    912 			pipeunlock(wpipe);
    913 			error = ltsleep(wpipe, PSOCK | PCATCH,
    914 					"pipbww", 0, &wpipe->pipe_slock);
    915 
    916 			(void)pipelock(wpipe, 0);
    917 			if (wpipe->pipe_state & PIPE_EOF)
    918 				error = EPIPE;
    919 		}
    920 		if (error)
    921 			break;
    922 
    923 		/*
    924 		 * If the transfer is large, we can gain performance if
    925 		 * we do process-to-process copies directly.
    926 		 * If the write is non-blocking, we don't use the
    927 		 * direct write mechanism.
    928 		 *
    929 		 * The direct write mechanism will detect the reader going
    930 		 * away on us.
    931 		 */
    932 		if ((uio->uio_iov->iov_len >= PIPE_MINDIRECT) &&
    933 		    (fp->f_flag & FNONBLOCK) == 0 &&
    934 		    (wpipe->pipe_map.kva || (amountpipekva < limitpipekva))) {
    935 			error = pipe_direct_write(fp, wpipe, uio);
    936 
    937 			/*
    938 			 * Break out if error occurred, unless it's ENOMEM.
    939 			 * ENOMEM means we failed to allocate some resources
    940 			 * for direct write, so we just fallback to ordinary
    941 			 * write. If the direct write was successful,
    942 			 * process rest of data via ordinary write.
    943 			 */
    944 			if (error == 0)
    945 				continue;
    946 
    947 			if (error != ENOMEM)
    948 				break;
    949 		}
    950 #endif /* PIPE_NODIRECT */
    951 
    952 		space = bp->size - bp->cnt;
    953 
    954 		/* Writes of size <= PIPE_BUF must be atomic. */
    955 		if ((space < uio->uio_resid) && (uio->uio_resid <= PIPE_BUF))
    956 			space = 0;
    957 
    958 		if (space > 0) {
    959 			int size;	/* Transfer size */
    960 			int segsize;	/* first segment to transfer */
    961 
    962 			/*
    963 			 * Transfer size is minimum of uio transfer
    964 			 * and free space in pipe buffer.
    965 			 */
    966 			if (space > uio->uio_resid)
    967 				size = uio->uio_resid;
    968 			else
    969 				size = space;
    970 			/*
    971 			 * First segment to transfer is minimum of
    972 			 * transfer size and contiguous space in
    973 			 * pipe buffer.  If first segment to transfer
    974 			 * is less than the transfer size, we've got
    975 			 * a wraparound in the buffer.
    976 			 */
    977 			segsize = bp->size - bp->in;
    978 			if (segsize > size)
    979 				segsize = size;
    980 
    981 			/* Transfer first segment */
    982 			error = uiomove(&bp->buffer[bp->in], segsize, uio);
    983 
    984 			if (error == 0 && segsize < size) {
    985 				/*
    986 				 * Transfer remaining part now, to
    987 				 * support atomic writes.  Wraparound
    988 				 * happened.
    989 				 */
    990 #ifdef DEBUG
    991 				if (bp->in + segsize != bp->size)
    992 					panic("Expected pipe buffer wraparound disappeared");
    993 #endif
    994 
    995 				error = uiomove(&bp->buffer[0],
    996 						size - segsize, uio);
    997 			}
    998 			if (error)
    999 				break;
   1000 
   1001 			bp->in += size;
   1002 			if (bp->in >= bp->size) {
   1003 #ifdef DEBUG
   1004 				if (bp->in != size - segsize + bp->size)
   1005 					panic("Expected wraparound bad");
   1006 #endif
   1007 				bp->in = size - segsize;
   1008 			}
   1009 
   1010 			bp->cnt += size;
   1011 #ifdef DEBUG
   1012 			if (bp->cnt > bp->size)
   1013 				panic("Pipe buffer overflow");
   1014 #endif
   1015 		} else {
   1016 			/*
   1017 			 * If the "read-side" has been blocked, wake it up now.
   1018 			 */
   1019 			PIPE_LOCK(wpipe);
   1020 			if (wpipe->pipe_state & PIPE_WANTR) {
   1021 				wpipe->pipe_state &= ~PIPE_WANTR;
   1022 				wakeup(wpipe);
   1023 			}
   1024 			PIPE_UNLOCK(wpipe);
   1025 
   1026 			/*
   1027 			 * don't block on non-blocking I/O
   1028 			 */
   1029 			if (fp->f_flag & FNONBLOCK) {
   1030 				error = EAGAIN;
   1031 				break;
   1032 			}
   1033 
   1034 			/*
   1035 			 * We have no more space and have something to offer,
   1036 			 * wake up select/poll.
   1037 			 */
   1038 			if (bp->cnt)
   1039 				pipeselwakeup(wpipe, wpipe, fp->f_data,
   1040 				    POLL_OUT);
   1041 
   1042 			PIPE_LOCK(wpipe);
   1043 			pipeunlock(wpipe);
   1044 			wpipe->pipe_state |= PIPE_WANTW;
   1045 			error = ltsleep(wpipe, PSOCK | PCATCH, "pipewr", 0,
   1046 					&wpipe->pipe_slock);
   1047 			(void)pipelock(wpipe, 0);
   1048 			if (error != 0)
   1049 				break;
   1050 			/*
   1051 			 * If read side wants to go away, we just issue a signal
   1052 			 * to ourselves.
   1053 			 */
   1054 			if (wpipe->pipe_state & PIPE_EOF) {
   1055 				error = EPIPE;
   1056 				break;
   1057 			}
   1058 		}
   1059 	}
   1060 
   1061 	PIPE_LOCK(wpipe);
   1062 	--wpipe->pipe_busy;
   1063 	if ((wpipe->pipe_busy == 0) && (wpipe->pipe_state & PIPE_WANTCLOSE)) {
   1064 		wpipe->pipe_state &= ~(PIPE_WANTCLOSE | PIPE_WANTR);
   1065 		wakeup(wpipe);
   1066 	} else if (bp->cnt > 0) {
   1067 		/*
   1068 		 * If we have put any characters in the buffer, we wake up
   1069 		 * the reader.
   1070 		 */
   1071 		if (wpipe->pipe_state & PIPE_WANTR) {
   1072 			wpipe->pipe_state &= ~PIPE_WANTR;
   1073 			wakeup(wpipe);
   1074 		}
   1075 	}
   1076 
   1077 	/*
   1078 	 * Don't return EPIPE if I/O was successful
   1079 	 */
   1080 	if (error == EPIPE && bp->cnt == 0 && uio->uio_resid == 0)
   1081 		error = 0;
   1082 
   1083 	if (error == 0)
   1084 		PIPE_TIMESTAMP(&wpipe->pipe_mtime);
   1085 
   1086 	/*
   1087 	 * We have something to offer, wake up select/poll.
   1088 	 * wpipe->pipe_map.cnt is always 0 in this point (direct write
   1089 	 * is only done synchronously), so check only wpipe->pipe_buffer.cnt
   1090 	 */
   1091 	if (bp->cnt)
   1092 		pipeselwakeup(wpipe, wpipe, fp->f_data, POLL_OUT);
   1093 
   1094 	/*
   1095 	 * Arrange for next read(2) to do a signal.
   1096 	 */
   1097 	wpipe->pipe_state |= PIPE_SIGNALR;
   1098 
   1099 	pipeunlock(wpipe);
   1100 	PIPE_UNLOCK(wpipe);
   1101 	return (error);
   1102 }
   1103 
   1104 /*
   1105  * we implement a very minimal set of ioctls for compatibility with sockets.
   1106  */
   1107 int
   1108 pipe_ioctl(fp, cmd, data, p)
   1109 	struct file *fp;
   1110 	u_long cmd;
   1111 	void *data;
   1112 	struct proc *p;
   1113 {
   1114 	struct pipe *pipe = (struct pipe *)fp->f_data;
   1115 
   1116 	switch (cmd) {
   1117 
   1118 	case FIONBIO:
   1119 		return (0);
   1120 
   1121 	case FIOASYNC:
   1122 		PIPE_LOCK(pipe);
   1123 		if (*(int *)data) {
   1124 			pipe->pipe_state |= PIPE_ASYNC;
   1125 		} else {
   1126 			pipe->pipe_state &= ~PIPE_ASYNC;
   1127 		}
   1128 		PIPE_UNLOCK(pipe);
   1129 		return (0);
   1130 
   1131 	case FIONREAD:
   1132 		PIPE_LOCK(pipe);
   1133 #ifndef PIPE_NODIRECT
   1134 		if (pipe->pipe_state & PIPE_DIRECTW)
   1135 			*(int *)data = pipe->pipe_map.cnt;
   1136 		else
   1137 #endif
   1138 			*(int *)data = pipe->pipe_buffer.cnt;
   1139 		PIPE_UNLOCK(pipe);
   1140 		return (0);
   1141 
   1142 	case FIONWRITE:
   1143 		/* Look at other side */
   1144 		pipe = pipe->pipe_peer;
   1145 		PIPE_LOCK(pipe);
   1146 #ifndef PIPE_NODIRECT
   1147 		if (pipe->pipe_state & PIPE_DIRECTW)
   1148 			*(int *)data = pipe->pipe_map.cnt;
   1149 		else
   1150 #endif
   1151 			*(int *)data = pipe->pipe_buffer.cnt;
   1152 		PIPE_UNLOCK(pipe);
   1153 		return (0);
   1154 
   1155 	case FIONSPACE:
   1156 		/* Look at other side */
   1157 		pipe = pipe->pipe_peer;
   1158 		PIPE_LOCK(pipe);
   1159 #ifndef PIPE_NODIRECT
   1160 		/*
   1161 		 * If we're in direct-mode, we don't really have a
   1162 		 * send queue, and any other write will block. Thus
   1163 		 * zero seems like the best answer.
   1164 		 */
   1165 		if (pipe->pipe_state & PIPE_DIRECTW)
   1166 			*(int *)data = 0;
   1167 		else
   1168 #endif
   1169 			*(int *)data = pipe->pipe_buffer.size -
   1170 					pipe->pipe_buffer.cnt;
   1171 		PIPE_UNLOCK(pipe);
   1172 		return (0);
   1173 
   1174 	case TIOCSPGRP:
   1175 	case FIOSETOWN:
   1176 		return fsetown(p, &pipe->pipe_pgid, cmd, data);
   1177 
   1178 	case TIOCGPGRP:
   1179 	case FIOGETOWN:
   1180 		return fgetown(p, pipe->pipe_pgid, cmd, data);
   1181 
   1182 	}
   1183 	return (EPASSTHROUGH);
   1184 }
   1185 
   1186 int
   1187 pipe_poll(fp, events, td)
   1188 	struct file *fp;
   1189 	int events;
   1190 	struct proc *td;
   1191 {
   1192 	struct pipe *rpipe = (struct pipe *)fp->f_data;
   1193 	struct pipe *wpipe;
   1194 	int eof = 0;
   1195 	int revents = 0;
   1196 
   1197 retry:
   1198 	PIPE_LOCK(rpipe);
   1199 	wpipe = rpipe->pipe_peer;
   1200 	if (wpipe != NULL && simple_lock_try(&wpipe->pipe_slock) == 0) {
   1201 		/* Deal with race for peer */
   1202 		PIPE_UNLOCK(rpipe);
   1203 		goto retry;
   1204 	}
   1205 
   1206 	if (events & (POLLIN | POLLRDNORM))
   1207 		if ((rpipe->pipe_buffer.cnt > 0) ||
   1208 #ifndef PIPE_NODIRECT
   1209 		    (rpipe->pipe_state & PIPE_DIRECTR) ||
   1210 #endif
   1211 		    (rpipe->pipe_state & PIPE_EOF))
   1212 			revents |= events & (POLLIN | POLLRDNORM);
   1213 
   1214 	eof |= (rpipe->pipe_state & PIPE_EOF);
   1215 	PIPE_UNLOCK(rpipe);
   1216 
   1217 	if (wpipe == NULL)
   1218 		revents |= events & (POLLOUT | POLLWRNORM);
   1219 	else {
   1220 		if (events & (POLLOUT | POLLWRNORM))
   1221 			if ((wpipe->pipe_state & PIPE_EOF) || (
   1222 #ifndef PIPE_NODIRECT
   1223 			     (wpipe->pipe_state & PIPE_DIRECTW) == 0 &&
   1224 #endif
   1225 			     (wpipe->pipe_buffer.size - wpipe->pipe_buffer.cnt) >= PIPE_BUF))
   1226 				revents |= events & (POLLOUT | POLLWRNORM);
   1227 
   1228 		eof |= (wpipe->pipe_state & PIPE_EOF);
   1229 		PIPE_UNLOCK(wpipe);
   1230 	}
   1231 
   1232 	if (wpipe == NULL || eof)
   1233 		revents |= POLLHUP;
   1234 
   1235 	if (revents == 0) {
   1236 		if (events & (POLLIN | POLLRDNORM))
   1237 			selrecord(td, &rpipe->pipe_sel);
   1238 
   1239 		if (events & (POLLOUT | POLLWRNORM))
   1240 			selrecord(td, &wpipe->pipe_sel);
   1241 	}
   1242 
   1243 	return (revents);
   1244 }
   1245 
   1246 static int
   1247 pipe_stat(fp, ub, td)
   1248 	struct file *fp;
   1249 	struct stat *ub;
   1250 	struct proc *td;
   1251 {
   1252 	struct pipe *pipe = (struct pipe *)fp->f_data;
   1253 
   1254 	memset((caddr_t)ub, 0, sizeof(*ub));
   1255 	ub->st_mode = S_IFIFO | S_IRUSR | S_IWUSR;
   1256 	ub->st_blksize = pipe->pipe_buffer.size;
   1257 	if (ub->st_blksize == 0 && pipe->pipe_peer)
   1258 		ub->st_blksize = pipe->pipe_peer->pipe_buffer.size;
   1259 	ub->st_size = pipe->pipe_buffer.cnt;
   1260 	ub->st_blocks = (ub->st_size) ? 1 : 0;
   1261 	TIMEVAL_TO_TIMESPEC(&pipe->pipe_atime, &ub->st_atimespec);
   1262 	TIMEVAL_TO_TIMESPEC(&pipe->pipe_mtime, &ub->st_mtimespec);
   1263 	TIMEVAL_TO_TIMESPEC(&pipe->pipe_ctime, &ub->st_ctimespec);
   1264 	ub->st_uid = fp->f_cred->cr_uid;
   1265 	ub->st_gid = fp->f_cred->cr_gid;
   1266 	/*
   1267 	 * Left as 0: st_dev, st_ino, st_nlink, st_rdev, st_flags, st_gen.
   1268 	 * XXX (st_dev, st_ino) should be unique.
   1269 	 */
   1270 	return (0);
   1271 }
   1272 
   1273 /* ARGSUSED */
   1274 static int
   1275 pipe_close(fp, td)
   1276 	struct file *fp;
   1277 	struct proc *td;
   1278 {
   1279 	struct pipe *pipe = (struct pipe *)fp->f_data;
   1280 
   1281 	fp->f_data = NULL;
   1282 	pipeclose(fp, pipe);
   1283 	return (0);
   1284 }
   1285 
   1286 static void
   1287 pipe_free_kmem(pipe)
   1288 	struct pipe *pipe;
   1289 {
   1290 
   1291 	if (pipe->pipe_buffer.buffer != NULL) {
   1292 		if (pipe->pipe_buffer.size > PIPE_SIZE)
   1293 			--nbigpipe;
   1294 		amountpipekva -= pipe->pipe_buffer.size;
   1295 		uvm_km_free(kernel_map,
   1296 			(vaddr_t)pipe->pipe_buffer.buffer,
   1297 			pipe->pipe_buffer.size);
   1298 		pipe->pipe_buffer.buffer = NULL;
   1299 	}
   1300 #ifndef PIPE_NODIRECT
   1301 	if (pipe->pipe_map.kva != 0) {
   1302 		pipe_loan_free(pipe);
   1303 		pipe->pipe_map.cnt = 0;
   1304 		pipe->pipe_map.kva = 0;
   1305 		pipe->pipe_map.pos = 0;
   1306 		pipe->pipe_map.npages = 0;
   1307 	}
   1308 #endif /* !PIPE_NODIRECT */
   1309 }
   1310 
   1311 /*
   1312  * shutdown the pipe
   1313  */
   1314 static void
   1315 pipeclose(fp, pipe)
   1316 	struct file *fp;
   1317 	struct pipe *pipe;
   1318 {
   1319 	struct pipe *ppipe;
   1320 
   1321 	if (pipe == NULL)
   1322 		return;
   1323 
   1324 retry:
   1325 	PIPE_LOCK(pipe);
   1326 
   1327 	if (fp)
   1328 		pipeselwakeup(pipe, pipe, fp->f_data, POLL_HUP);
   1329 
   1330 	/*
   1331 	 * If the other side is blocked, wake it up saying that
   1332 	 * we want to close it down.
   1333 	 */
   1334 	while (pipe->pipe_busy) {
   1335 		wakeup(pipe);
   1336 		pipe->pipe_state |= PIPE_WANTCLOSE | PIPE_EOF;
   1337 		ltsleep(pipe, PSOCK, "pipecl", 0, &pipe->pipe_slock);
   1338 	}
   1339 
   1340 	/*
   1341 	 * Disconnect from peer
   1342 	 */
   1343 	if ((ppipe = pipe->pipe_peer) != NULL) {
   1344 		/* Deal with race for peer */
   1345 		if (simple_lock_try(&ppipe->pipe_slock) == 0) {
   1346 			PIPE_UNLOCK(pipe);
   1347 			goto retry;
   1348 		}
   1349 		if (fp)
   1350 			pipeselwakeup(ppipe, ppipe, fp->f_data, POLL_HUP);
   1351 
   1352 		ppipe->pipe_state |= PIPE_EOF;
   1353 		wakeup(ppipe);
   1354 		ppipe->pipe_peer = NULL;
   1355 		PIPE_UNLOCK(ppipe);
   1356 	}
   1357 
   1358 	(void)lockmgr(&pipe->pipe_lock, LK_DRAIN | LK_INTERLOCK,
   1359 			&pipe->pipe_slock);
   1360 
   1361 	/*
   1362 	 * free resources
   1363 	 */
   1364 	pipe_free_kmem(pipe);
   1365 	pool_put(&pipe_pool, pipe);
   1366 }
   1367 
   1368 static void
   1369 filt_pipedetach(struct knote *kn)
   1370 {
   1371 	struct pipe *pipe = (struct pipe *)kn->kn_fp->f_data;
   1372 
   1373 	switch(kn->kn_filter) {
   1374 	case EVFILT_WRITE:
   1375 		/* need the peer structure, not our own */
   1376 		pipe = pipe->pipe_peer;
   1377 		/* XXXSMP: race for peer */
   1378 
   1379 		/* if reader end already closed, just return */
   1380 		if (pipe == NULL)
   1381 			return;
   1382 
   1383 		break;
   1384 	default:
   1385 		/* nothing to do */
   1386 		break;
   1387 	}
   1388 
   1389 #ifdef DIAGNOSTIC
   1390 	if (kn->kn_hook != pipe)
   1391 		panic("filt_pipedetach: inconsistent knote");
   1392 #endif
   1393 
   1394 	PIPE_LOCK(pipe);
   1395 	SLIST_REMOVE(&pipe->pipe_sel.sel_klist, kn, knote, kn_selnext);
   1396 	PIPE_UNLOCK(pipe);
   1397 }
   1398 
   1399 /*ARGSUSED*/
   1400 static int
   1401 filt_piperead(struct knote *kn, long hint)
   1402 {
   1403 	struct pipe *rpipe = (struct pipe *)kn->kn_fp->f_data;
   1404 	struct pipe *wpipe = rpipe->pipe_peer;
   1405 
   1406 	if ((hint & NOTE_SUBMIT) == 0)
   1407 		PIPE_LOCK(rpipe);
   1408 	kn->kn_data = rpipe->pipe_buffer.cnt;
   1409 	if ((kn->kn_data == 0) && (rpipe->pipe_state & PIPE_DIRECTW))
   1410 		kn->kn_data = rpipe->pipe_map.cnt;
   1411 
   1412 	/* XXXSMP: race for peer */
   1413 	if ((rpipe->pipe_state & PIPE_EOF) ||
   1414 	    (wpipe == NULL) || (wpipe->pipe_state & PIPE_EOF)) {
   1415 		kn->kn_flags |= EV_EOF;
   1416 		if ((hint & NOTE_SUBMIT) == 0)
   1417 			PIPE_UNLOCK(rpipe);
   1418 		return (1);
   1419 	}
   1420 	if ((hint & NOTE_SUBMIT) == 0)
   1421 		PIPE_UNLOCK(rpipe);
   1422 	return (kn->kn_data > 0);
   1423 }
   1424 
   1425 /*ARGSUSED*/
   1426 static int
   1427 filt_pipewrite(struct knote *kn, long hint)
   1428 {
   1429 	struct pipe *rpipe = (struct pipe *)kn->kn_fp->f_data;
   1430 	struct pipe *wpipe = rpipe->pipe_peer;
   1431 
   1432 	if ((hint & NOTE_SUBMIT) == 0)
   1433 		PIPE_LOCK(rpipe);
   1434 	/* XXXSMP: race for peer */
   1435 	if ((wpipe == NULL) || (wpipe->pipe_state & PIPE_EOF)) {
   1436 		kn->kn_data = 0;
   1437 		kn->kn_flags |= EV_EOF;
   1438 		if ((hint & NOTE_SUBMIT) == 0)
   1439 			PIPE_UNLOCK(rpipe);
   1440 		return (1);
   1441 	}
   1442 	kn->kn_data = wpipe->pipe_buffer.size - wpipe->pipe_buffer.cnt;
   1443 	if (wpipe->pipe_state & PIPE_DIRECTW)
   1444 		kn->kn_data = 0;
   1445 
   1446 	if ((hint & NOTE_SUBMIT) == 0)
   1447 		PIPE_UNLOCK(rpipe);
   1448 	return (kn->kn_data >= PIPE_BUF);
   1449 }
   1450 
   1451 static const struct filterops pipe_rfiltops =
   1452 	{ 1, NULL, filt_pipedetach, filt_piperead };
   1453 static const struct filterops pipe_wfiltops =
   1454 	{ 1, NULL, filt_pipedetach, filt_pipewrite };
   1455 
   1456 /*ARGSUSED*/
   1457 static int
   1458 pipe_kqfilter(struct file *fp, struct knote *kn)
   1459 {
   1460 	struct pipe *pipe;
   1461 
   1462 	pipe = (struct pipe *)kn->kn_fp->f_data;
   1463 	switch (kn->kn_filter) {
   1464 	case EVFILT_READ:
   1465 		kn->kn_fop = &pipe_rfiltops;
   1466 		break;
   1467 	case EVFILT_WRITE:
   1468 		kn->kn_fop = &pipe_wfiltops;
   1469 		/* XXXSMP: race for peer */
   1470 		pipe = pipe->pipe_peer;
   1471 		if (pipe == NULL) {
   1472 			/* other end of pipe has been closed */
   1473 			return (EBADF);
   1474 		}
   1475 		break;
   1476 	default:
   1477 		return (1);
   1478 	}
   1479 	kn->kn_hook = pipe;
   1480 
   1481 	PIPE_LOCK(pipe);
   1482 	SLIST_INSERT_HEAD(&pipe->pipe_sel.sel_klist, kn, kn_selnext);
   1483 	PIPE_UNLOCK(pipe);
   1484 	return (0);
   1485 }
   1486 
   1487 /*
   1488  * Handle pipe sysctls.
   1489  */
   1490 SYSCTL_SETUP(sysctl_kern_pipe_setup, "sysctl kern.pipe subtree setup")
   1491 {
   1492 
   1493 	sysctl_createv(clog, 0, NULL, NULL,
   1494 		       CTLFLAG_PERMANENT,
   1495 		       CTLTYPE_NODE, "kern", NULL,
   1496 		       NULL, 0, NULL, 0,
   1497 		       CTL_KERN, CTL_EOL);
   1498 	sysctl_createv(clog, 0, NULL, NULL,
   1499 		       CTLFLAG_PERMANENT,
   1500 		       CTLTYPE_NODE, "pipe",
   1501 		       SYSCTL_DESCR("Pipe settings"),
   1502 		       NULL, 0, NULL, 0,
   1503 		       CTL_KERN, KERN_PIPE, CTL_EOL);
   1504 
   1505 	sysctl_createv(clog, 0, NULL, NULL,
   1506 		       CTLFLAG_PERMANENT|CTLFLAG_READWRITE,
   1507 		       CTLTYPE_INT, "maxkvasz",
   1508 		       SYSCTL_DESCR("Maximum amount of kernel memory to be "
   1509 				    "used for pipes"),
   1510 		       NULL, 0, &maxpipekva, 0,
   1511 		       CTL_KERN, KERN_PIPE, KERN_PIPE_MAXKVASZ, CTL_EOL);
   1512 	sysctl_createv(clog, 0, NULL, NULL,
   1513 		       CTLFLAG_PERMANENT|CTLFLAG_READWRITE,
   1514 		       CTLTYPE_INT, "maxloankvasz",
   1515 		       SYSCTL_DESCR("Limit for direct transfers via page loan"),
   1516 		       NULL, 0, &limitpipekva, 0,
   1517 		       CTL_KERN, KERN_PIPE, KERN_PIPE_LIMITKVA, CTL_EOL);
   1518 	sysctl_createv(clog, 0, NULL, NULL,
   1519 		       CTLFLAG_PERMANENT|CTLFLAG_READWRITE,
   1520 		       CTLTYPE_INT, "maxbigpipes",
   1521 		       SYSCTL_DESCR("Maximum number of \"big\" pipes"),
   1522 		       NULL, 0, &maxbigpipes, 0,
   1523 		       CTL_KERN, KERN_PIPE, KERN_PIPE_MAXBIGPIPES, CTL_EOL);
   1524 	sysctl_createv(clog, 0, NULL, NULL,
   1525 		       CTLFLAG_PERMANENT,
   1526 		       CTLTYPE_INT, "nbigpipes",
   1527 		       SYSCTL_DESCR("Number of \"big\" pipes"),
   1528 		       NULL, 0, &nbigpipe, 0,
   1529 		       CTL_KERN, KERN_PIPE, KERN_PIPE_NBIGPIPES, CTL_EOL);
   1530 	sysctl_createv(clog, 0, NULL, NULL,
   1531 		       CTLFLAG_PERMANENT,
   1532 		       CTLTYPE_INT, "kvasize",
   1533 		       SYSCTL_DESCR("Amount of kernel memory consumed by pipe "
   1534 				    "buffers"),
   1535 		       NULL, 0, &amountpipekva, 0,
   1536 		       CTL_KERN, KERN_PIPE, KERN_PIPE_KVASIZE, CTL_EOL);
   1537 }
   1538