sys_pipe.c revision 1.23 1 /* $NetBSD: sys_pipe.c,v 1.23 2002/03/08 20:48:41 thorpej Exp $ */
2
3 /*
4 * Copyright (c) 1996 John S. Dyson
5 * All rights reserved.
6 *
7 * Redistribution and use in source and binary forms, with or without
8 * modification, are permitted provided that the following conditions
9 * are met:
10 * 1. Redistributions of source code must retain the above copyright
11 * notice immediately at the beginning of the file, without modification,
12 * this list of conditions, and the following disclaimer.
13 * 2. Redistributions in binary form must reproduce the above copyright
14 * notice, this list of conditions and the following disclaimer in the
15 * documentation and/or other materials provided with the distribution.
16 * 3. Absolutely no warranty of function or purpose is made by the author
17 * John S. Dyson.
18 * 4. Modifications may be freely made to this file if the above conditions
19 * are met.
20 *
21 * $FreeBSD: src/sys/kern/sys_pipe.c,v 1.82 2001/06/15 20:45:01 jlemon Exp $
22 */
23
24 /*
25 * This file contains a high-performance replacement for the socket-based
26 * pipes scheme originally used in FreeBSD/4.4Lite. It does not support
27 * all features of sockets, but does do everything that pipes normally
28 * do.
29 *
30 * Adaption for NetBSD UVM, including uvm_loan() based direct write, was
31 * written by Jaromir Dolecek.
32 */
33
34 /*
35 * This code has two modes of operation, a small write mode and a large
36 * write mode. The small write mode acts like conventional pipes with
37 * a kernel buffer. If the buffer is less than PIPE_MINDIRECT, then the
38 * "normal" pipe buffering is done. If the buffer is between PIPE_MINDIRECT
39 * and PIPE_SIZE in size, it is fully mapped into the kernel (on FreeBSD,
40 * those pages are also wired), and the receiving process can copy it directly
41 * from the pages in the sending process.
42 *
43 * If the sending process receives a signal, it is possible that it will
44 * go away, and certainly its address space can change, because control
45 * is returned back to the user-mode side. In that case, the pipe code
46 * arranges to copy the buffer supplied by the user process on FreeBSD, to
47 * a pageable kernel buffer, and the receiving process will grab the data
48 * from the pageable kernel buffer. Since signals don't happen all that often,
49 * the copy operation is normally eliminated.
50 * For NetBSD, the pages are mapped read-only, COW for kernel by uvm_loan(),
51 * so no explicit handling need to be done, all is handled by standard VM
52 * facilities.
53 *
54 * The constant PIPE_MINDIRECT is chosen to make sure that buffering will
55 * happen for small transfers so that the system will not spend all of
56 * its time context switching. PIPE_SIZE is constrained by the
57 * amount of kernel virtual memory.
58 */
59
60 #include <sys/cdefs.h>
61 __KERNEL_RCSID(0, "$NetBSD: sys_pipe.c,v 1.23 2002/03/08 20:48:41 thorpej Exp $");
62
63 #include <sys/param.h>
64 #include <sys/systm.h>
65 #include <sys/proc.h>
66 #include <sys/fcntl.h>
67 #include <sys/file.h>
68 #include <sys/filedesc.h>
69 #include <sys/filio.h>
70 #include <sys/ttycom.h>
71 #include <sys/stat.h>
72 #include <sys/poll.h>
73 #include <sys/signalvar.h>
74 #include <sys/vnode.h>
75 #include <sys/uio.h>
76 #include <sys/lock.h>
77 #ifdef __FreeBSD__
78 #include <sys/mutex.h>
79 #include <sys/selinfo.h>
80 #include <sys/sysproto.h>
81 #elif defined(__NetBSD__)
82 #include <sys/select.h>
83 #include <sys/malloc.h>
84 #include <sys/mount.h>
85 #include <sys/syscallargs.h>
86 #include <uvm/uvm.h>
87 #include <sys/sysctl.h>
88 #include <sys/kernel.h>
89 #endif /* NetBSD, FreeBSD */
90
91 #include <sys/pipe.h>
92
93 #ifdef __NetBSD__
94 /*
95 * Avoid microtime(9), it's slow. We don't guard the read from time(9)
96 * with splclock(9) since we don't actually need to be THAT sure the access
97 * is atomic.
98 */
99 #define vfs_timestamp(tv) (*(tv) = time)
100 #endif
101
102 /*
103 * Use this define if you want to disable *fancy* VM things. Expect an
104 * approx 30% decrease in transfer rate. This could be useful for
105 * OpenBSD.
106 */
107 /* #define PIPE_NODIRECT */
108
109 /*
110 * interfaces to the outside world
111 */
112 #ifdef __FreeBSD__
113 static int pipe_read __P((struct file *fp, struct uio *uio,
114 struct ucred *cred, int flags, struct proc *p));
115 static int pipe_write __P((struct file *fp, struct uio *uio,
116 struct ucred *cred, int flags, struct proc *p));
117 static int pipe_close __P((struct file *fp, struct proc *p));
118 static int pipe_poll __P((struct file *fp, int events, struct ucred *cred,
119 struct proc *p));
120 static int pipe_kqfilter __P((struct file *fp, struct knote *kn));
121 static int pipe_stat __P((struct file *fp, struct stat *sb, struct proc *p));
122 static int pipe_ioctl __P((struct file *fp, u_long cmd, caddr_t data, struct proc *p));
123
124 static struct fileops pipeops = {
125 pipe_read, pipe_write, pipe_ioctl, pipe_poll, pipe_kqfilter,
126 pipe_stat, pipe_close
127 };
128
129 static void filt_pipedetach(struct knote *kn);
130 static int filt_piperead(struct knote *kn, long hint);
131 static int filt_pipewrite(struct knote *kn, long hint);
132
133 static struct filterops pipe_rfiltops =
134 { 1, NULL, filt_pipedetach, filt_piperead };
135 static struct filterops pipe_wfiltops =
136 { 1, NULL, filt_pipedetach, filt_pipewrite };
137 #endif /* FreeBSD */
138
139 #ifdef __NetBSD__
140 static int pipe_read __P((struct file *fp, off_t *offset, struct uio *uio,
141 struct ucred *cred, int flags));
142 static int pipe_write __P((struct file *fp, off_t *offset, struct uio *uio,
143 struct ucred *cred, int flags));
144 static int pipe_close __P((struct file *fp, struct proc *p));
145 static int pipe_poll __P((struct file *fp, int events, struct proc *p));
146 static int pipe_fcntl __P((struct file *fp, u_int com, caddr_t data,
147 struct proc *p));
148 static int pipe_stat __P((struct file *fp, struct stat *sb, struct proc *p));
149 static int pipe_ioctl __P((struct file *fp, u_long cmd, caddr_t data, struct proc *p));
150
151 static struct fileops pipeops =
152 { pipe_read, pipe_write, pipe_ioctl, pipe_fcntl, pipe_poll,
153 pipe_stat, pipe_close };
154 #endif /* NetBSD */
155
156 /*
157 * Default pipe buffer size(s), this can be kind-of large now because pipe
158 * space is pageable. The pipe code will try to maintain locality of
159 * reference for performance reasons, so small amounts of outstanding I/O
160 * will not wipe the cache.
161 */
162 #define MINPIPESIZE (PIPE_SIZE/3)
163 #define MAXPIPESIZE (2*PIPE_SIZE/3)
164
165 /*
166 * Maximum amount of kva for pipes -- this is kind-of a soft limit, but
167 * is there so that on large systems, we don't exhaust it.
168 */
169 #define MAXPIPEKVA (8*1024*1024)
170 static int maxpipekva = MAXPIPEKVA;
171
172 /*
173 * Limit for direct transfers, we cannot, of course limit
174 * the amount of kva for pipes in general though.
175 */
176 #define LIMITPIPEKVA (16*1024*1024)
177 static int limitpipekva = LIMITPIPEKVA;
178
179 /*
180 * Limit the number of "big" pipes
181 */
182 #define LIMITBIGPIPES 32
183 static int maxbigpipes = LIMITBIGPIPES;
184 static int nbigpipe = 0;
185
186 /*
187 * Amount of KVA consumed by pipe buffers.
188 */
189 static int amountpipekva = 0;
190
191 static void pipeclose __P((struct pipe *));
192 static void pipe_free_kmem __P((struct pipe *));
193 static int pipe_create __P((struct pipe **, int));
194 static __inline int pipelock __P((struct pipe *, int));
195 static __inline void pipeunlock __P((struct pipe *));
196 static __inline void pipeselwakeup __P((struct pipe *, struct pipe *));
197 static int pipespace __P((struct pipe *, int));
198
199 #ifdef __FreeBSD__
200 #ifndef PIPE_NODIRECT
201 static int pipe_build_write_buffer __P((struct pipe *wpipe, struct uio *uio));
202 static void pipe_destroy_write_buffer __P((struct pipe *wpipe));
203 static int pipe_direct_write __P((struct pipe *wpipe, struct uio *uio));
204 static void pipe_clone_write_buffer __P((struct pipe *wpipe));
205 #endif
206
207 static vm_zone_t pipe_zone;
208 #endif /* FreeBSD */
209
210 #ifdef __NetBSD__
211 #ifndef PIPE_NODIRECT
212 static int pipe_direct_write __P((struct pipe *, struct uio *));
213 static int pipe_loan_alloc __P((struct pipe *, int));
214 static void pipe_loan_free __P((struct pipe *));
215 #endif /* PIPE_NODIRECT */
216
217 static struct pool pipe_pool;
218 #endif /* NetBSD */
219
220 /*
221 * The pipe system call for the DTYPE_PIPE type of pipes
222 */
223
224 /* ARGSUSED */
225 #ifdef __FreeBSD__
226 int
227 pipe(p, uap)
228 struct proc *p;
229 struct pipe_args /* {
230 int dummy;
231 } */ *uap;
232 #elif defined(__NetBSD__)
233 int
234 sys_pipe(p, v, retval)
235 struct proc *p;
236 void *v;
237 register_t *retval;
238 #endif
239 {
240 struct file *rf, *wf;
241 struct pipe *rpipe, *wpipe;
242 int fd, error;
243
244 #ifdef __FreeBSD__
245 if (pipe_zone == NULL)
246 pipe_zone = zinit("PIPE", sizeof(struct pipe), 0, 0, 4);
247
248 rpipe = wpipe = NULL;
249 if (pipe_create(&rpipe, 1) || pipe_create(&wpipe, 1)) {
250 pipeclose(rpipe);
251 pipeclose(wpipe);
252 return (ENFILE);
253 }
254
255 error = falloc(p, &rf, &fd);
256 if (error) {
257 pipeclose(rpipe);
258 pipeclose(wpipe);
259 return (error);
260 }
261 fhold(rf);
262 p->p_retval[0] = fd;
263
264 /*
265 * Warning: once we've gotten past allocation of the fd for the
266 * read-side, we can only drop the read side via fdrop() in order
267 * to avoid races against processes which manage to dup() the read
268 * side while we are blocked trying to allocate the write side.
269 */
270 rf->f_flag = FREAD | FWRITE;
271 rf->f_type = DTYPE_PIPE;
272 rf->f_data = (caddr_t)rpipe;
273 rf->f_ops = &pipeops;
274 error = falloc(p, &wf, &fd);
275 if (error) {
276 struct filedesc *fdp = p->p_fd;
277
278 if (fdp->fd_ofiles[p->p_retval[0]] == rf) {
279 fdp->fd_ofiles[p->p_retval[0]] = NULL;
280 fdrop(rf, p);
281 }
282 fdrop(rf, p);
283 /* rpipe has been closed by fdrop(). */
284 pipeclose(wpipe);
285 return (error);
286 }
287 wf->f_flag = FREAD | FWRITE;
288 wf->f_type = DTYPE_PIPE;
289 wf->f_data = (caddr_t)wpipe;
290 wf->f_ops = &pipeops;
291 p->p_retval[1] = fd;
292
293 rpipe->pipe_peer = wpipe;
294 wpipe->pipe_peer = rpipe;
295 fdrop(rf, p);
296 #endif /* FreeBSD */
297
298 #ifdef __NetBSD__
299 rpipe = wpipe = NULL;
300 if (pipe_create(&rpipe, 1) || pipe_create(&wpipe, 0)) {
301 pipeclose(rpipe);
302 pipeclose(wpipe);
303 return (ENFILE);
304 }
305
306 /*
307 * Note: the file structure returned from falloc() is marked
308 * as 'larval' initially. Unless we mark it as 'mature' by
309 * FILE_SET_MATURE(), any attempt to do anything with it would
310 * return EBADF, including e.g. dup(2) or close(2). This avoids
311 * file descriptor races if we block in the second falloc().
312 */
313
314 error = falloc(p, &rf, &fd);
315 if (error)
316 goto free2;
317 retval[0] = fd;
318 rf->f_flag = FREAD;
319 rf->f_type = DTYPE_PIPE;
320 rf->f_data = (caddr_t)rpipe;
321 rf->f_ops = &pipeops;
322
323 error = falloc(p, &wf, &fd);
324 if (error)
325 goto free3;
326 retval[1] = fd;
327 wf->f_flag = FWRITE;
328 wf->f_type = DTYPE_PIPE;
329 wf->f_data = (caddr_t)wpipe;
330 wf->f_ops = &pipeops;
331
332 rpipe->pipe_peer = wpipe;
333 wpipe->pipe_peer = rpipe;
334
335 FILE_SET_MATURE(rf);
336 FILE_SET_MATURE(wf);
337 FILE_UNUSE(rf, p);
338 FILE_UNUSE(wf, p);
339 return (0);
340 free3:
341 FILE_UNUSE(rf, p);
342 ffree(rf);
343 fdremove(p->p_fd, retval[0]);
344 free2:
345 pipeclose(wpipe);
346 pipeclose(rpipe);
347 #endif /* NetBSD */
348
349 return (error);
350 }
351
352 /*
353 * Allocate kva for pipe circular buffer, the space is pageable
354 * This routine will 'realloc' the size of a pipe safely, if it fails
355 * it will retain the old buffer.
356 * If it fails it will return ENOMEM.
357 */
358 static int
359 pipespace(cpipe, size)
360 struct pipe *cpipe;
361 int size;
362 {
363 caddr_t buffer;
364 #ifdef __FreeBSD__
365 struct vm_object *object;
366 int npages, error;
367
368 npages = round_page(size)/PAGE_SIZE;
369 /*
370 * Create an object, I don't like the idea of paging to/from
371 * kernel_object.
372 */
373 mtx_lock(&vm_mtx);
374 object = vm_object_allocate(OBJT_DEFAULT, npages);
375 buffer = (caddr_t) vm_map_min(kernel_map);
376
377 /*
378 * Insert the object into the kernel map, and allocate kva for it.
379 * The map entry is, by default, pageable.
380 */
381 error = vm_map_find(kernel_map, object, 0,
382 (vm_offset_t *) &buffer, size, 1,
383 VM_PROT_ALL, VM_PROT_ALL, 0);
384
385 if (error != KERN_SUCCESS) {
386 vm_object_deallocate(object);
387 mtx_unlock(&vm_mtx);
388 return (ENOMEM);
389 }
390 #endif /* FreeBSD */
391
392 #ifdef __NetBSD__
393 /*
394 * Allocate pageable virtual address space. Physical memory is allocated
395 * on demand.
396 */
397 buffer = (caddr_t) uvm_km_valloc(kernel_map, round_page(size));
398 if (buffer == NULL)
399 return (ENOMEM);
400 #endif /* NetBSD */
401
402 /* free old resources if we're resizing */
403 pipe_free_kmem(cpipe);
404 #ifdef __FreeBSD__
405 mtx_unlock(&vm_mtx);
406 cpipe->pipe_buffer.object = object;
407 #endif
408 cpipe->pipe_buffer.buffer = buffer;
409 cpipe->pipe_buffer.size = size;
410 cpipe->pipe_buffer.in = 0;
411 cpipe->pipe_buffer.out = 0;
412 cpipe->pipe_buffer.cnt = 0;
413 amountpipekva += cpipe->pipe_buffer.size;
414 return (0);
415 }
416
417 /*
418 * initialize and allocate VM and memory for pipe
419 */
420 static int
421 pipe_create(cpipep, allockva)
422 struct pipe **cpipep;
423 int allockva;
424 {
425 struct pipe *cpipe;
426 int error;
427
428 #ifdef __FreeBSD__
429 *cpipep = zalloc(pipe_zone);
430 #endif
431 #ifdef __NetBSD__
432 *cpipep = pool_get(&pipe_pool, M_WAITOK);
433 #endif
434 if (*cpipep == NULL)
435 return (ENOMEM);
436
437 cpipe = *cpipep;
438
439 /* Initialize */
440 memset(cpipe, 0, sizeof(*cpipe));
441 cpipe->pipe_state = PIPE_SIGNALR;
442
443 if (allockva && (error = pipespace(cpipe, PIPE_SIZE)))
444 return (error);
445
446 vfs_timestamp(&cpipe->pipe_ctime);
447 cpipe->pipe_atime = cpipe->pipe_ctime;
448 cpipe->pipe_mtime = cpipe->pipe_ctime;
449 #ifdef __NetBSD__
450 cpipe->pipe_pgid = NO_PID;
451 lockinit(&cpipe->pipe_lock, PRIBIO | PCATCH, "pipelk", 0, 0);
452 #endif
453
454 return (0);
455 }
456
457
458 /*
459 * lock a pipe for I/O, blocking other access
460 */
461 static __inline int
462 pipelock(cpipe, catch)
463 struct pipe *cpipe;
464 int catch;
465 {
466 int error;
467
468 #ifdef __FreeBSD__
469 while (cpipe->pipe_state & PIPE_LOCK) {
470 cpipe->pipe_state |= PIPE_LWANT;
471 error = tsleep(cpipe, catch ? (PRIBIO | PCATCH) : PRIBIO,
472 "pipelk", 0);
473 if (error != 0)
474 return (error);
475 }
476 cpipe->pipe_state |= PIPE_LOCK;
477 return (0);
478 #endif
479
480 #ifdef __NetBSD__
481 do {
482 error = lockmgr(&cpipe->pipe_lock, LK_EXCLUSIVE, NULL);
483 } while (!catch && (error == EINTR || error == ERESTART));
484 return (error);
485 #endif
486 }
487
488 /*
489 * unlock a pipe I/O lock
490 */
491 static __inline void
492 pipeunlock(cpipe)
493 struct pipe *cpipe;
494 {
495 #ifdef __FreeBSD__
496 cpipe->pipe_state &= ~PIPE_LOCK;
497 if (cpipe->pipe_state & PIPE_LWANT) {
498 cpipe->pipe_state &= ~PIPE_LWANT;
499 wakeup(cpipe);
500 }
501 #endif
502
503 #ifdef __NetBSD__
504 lockmgr(&cpipe->pipe_lock, LK_RELEASE, NULL);
505 #endif
506 }
507
508 /*
509 * Select/poll wakup. This also sends SIGIO to peer connected to
510 * 'sigpipe' side of pipe.
511 */
512 static __inline void
513 pipeselwakeup(selp, sigp)
514 struct pipe *selp, *sigp;
515 {
516 if (selp->pipe_state & PIPE_SEL) {
517 selp->pipe_state &= ~PIPE_SEL;
518 selwakeup(&selp->pipe_sel);
519 }
520 #ifdef __FreeBSD__
521 if (sigp && (sigp->pipe_state & PIPE_ASYNC) && sigp->pipe_sigio)
522 pgsigio(sigp->pipe_sigio, SIGIO, 0);
523 KNOTE(&selp->pipe_sel.si_note, 0);
524 #endif
525
526 #ifdef __NetBSD__
527 if (sigp && (sigp->pipe_state & PIPE_ASYNC)
528 && sigp->pipe_pgid != NO_PID){
529 struct proc *p;
530
531 if (sigp->pipe_pgid < 0)
532 gsignal(-sigp->pipe_pgid, SIGIO);
533 else if (sigp->pipe_pgid > 0 && (p = pfind(sigp->pipe_pgid)) != 0)
534 psignal(p, SIGIO);
535 }
536 #endif /* NetBSD */
537 }
538
539 /* ARGSUSED */
540 #ifdef __FreeBSD__
541 static int
542 pipe_read(fp, uio, cred, flags, p)
543 struct file *fp;
544 struct uio *uio;
545 struct ucred *cred;
546 int flags;
547 struct proc *p;
548 #elif defined(__NetBSD__)
549 static int
550 pipe_read(fp, offset, uio, cred, flags)
551 struct file *fp;
552 off_t *offset;
553 struct uio *uio;
554 struct ucred *cred;
555 int flags;
556 #endif
557 {
558 struct pipe *rpipe = (struct pipe *) fp->f_data;
559 int error;
560 size_t nread = 0;
561 size_t size;
562 size_t ocnt;
563
564 ++rpipe->pipe_busy;
565 error = pipelock(rpipe, 1);
566 if (error)
567 goto unlocked_error;
568
569 ocnt = rpipe->pipe_buffer.cnt;
570
571 while (uio->uio_resid) {
572 /*
573 * normal pipe buffer receive
574 */
575 if (rpipe->pipe_buffer.cnt > 0) {
576 size = rpipe->pipe_buffer.size - rpipe->pipe_buffer.out;
577 if (size > rpipe->pipe_buffer.cnt)
578 size = rpipe->pipe_buffer.cnt;
579 if (size > uio->uio_resid)
580 size = uio->uio_resid;
581
582 error = uiomove(&rpipe->pipe_buffer.buffer[rpipe->pipe_buffer.out],
583 size, uio);
584 if (error)
585 break;
586
587 rpipe->pipe_buffer.out += size;
588 if (rpipe->pipe_buffer.out >= rpipe->pipe_buffer.size)
589 rpipe->pipe_buffer.out = 0;
590
591 rpipe->pipe_buffer.cnt -= size;
592
593 /*
594 * If there is no more to read in the pipe, reset
595 * its pointers to the beginning. This improves
596 * cache hit stats.
597 */
598 if (rpipe->pipe_buffer.cnt == 0) {
599 rpipe->pipe_buffer.in = 0;
600 rpipe->pipe_buffer.out = 0;
601 }
602 nread += size;
603 #ifndef PIPE_NODIRECT
604 /*
605 * Direct copy, bypassing a kernel buffer.
606 */
607 } else if ((size = rpipe->pipe_map.cnt) &&
608 (rpipe->pipe_state & PIPE_DIRECTW)) {
609 caddr_t va;
610 if (size > uio->uio_resid)
611 size = uio->uio_resid;
612
613 va = (caddr_t) rpipe->pipe_map.kva +
614 rpipe->pipe_map.pos;
615 error = uiomove(va, size, uio);
616 if (error)
617 break;
618 nread += size;
619 rpipe->pipe_map.pos += size;
620 rpipe->pipe_map.cnt -= size;
621 if (rpipe->pipe_map.cnt == 0) {
622 rpipe->pipe_state &= ~PIPE_DIRECTW;
623 wakeup(rpipe);
624 }
625 #endif
626 } else {
627 /*
628 * detect EOF condition
629 * read returns 0 on EOF, no need to set error
630 */
631 if (rpipe->pipe_state & PIPE_EOF)
632 break;
633
634 /*
635 * If the "write-side" has been blocked, wake it up now.
636 */
637 if (rpipe->pipe_state & PIPE_WANTW) {
638 rpipe->pipe_state &= ~PIPE_WANTW;
639 wakeup(rpipe);
640 }
641
642 /*
643 * Break if some data was read.
644 */
645 if (nread > 0)
646 break;
647
648 /*
649 * don't block on non-blocking I/O
650 */
651 if (fp->f_flag & FNONBLOCK) {
652 error = EAGAIN;
653 break;
654 }
655
656 /*
657 * Unlock the pipe buffer for our remaining processing.
658 * We will either break out with an error or we will
659 * sleep and relock to loop.
660 */
661 pipeunlock(rpipe);
662
663 /*
664 * We want to read more, wake up select/poll.
665 */
666 pipeselwakeup(rpipe, rpipe->pipe_peer);
667
668 rpipe->pipe_state |= PIPE_WANTR;
669 error = tsleep(rpipe, PRIBIO | PCATCH, "piperd", 0);
670 if (error != 0 || (error = pipelock(rpipe, 1)))
671 goto unlocked_error;
672 }
673 }
674 pipeunlock(rpipe);
675
676 if (error == 0)
677 vfs_timestamp(&rpipe->pipe_atime);
678 unlocked_error:
679 --rpipe->pipe_busy;
680
681 /*
682 * PIPE_WANTCLOSE processing only makes sense if pipe_busy is 0.
683 */
684 if ((rpipe->pipe_busy == 0) && (rpipe->pipe_state & PIPE_WANTCLOSE)) {
685 rpipe->pipe_state &= ~(PIPE_WANTCLOSE|PIPE_WANTW);
686 wakeup(rpipe);
687 } else if (rpipe->pipe_buffer.cnt < MINPIPESIZE) {
688 /*
689 * Handle write blocking hysteresis.
690 */
691 if (rpipe->pipe_state & PIPE_WANTW) {
692 rpipe->pipe_state &= ~PIPE_WANTW;
693 wakeup(rpipe);
694 }
695 }
696
697 /*
698 * If anything was read off the buffer, signal to the writer it's
699 * possible to write more data. Also send signal if we are here for the
700 * first time after last write.
701 */
702 if ((rpipe->pipe_buffer.size - rpipe->pipe_buffer.cnt) >= PIPE_BUF
703 && (ocnt != rpipe->pipe_buffer.cnt || (rpipe->pipe_state & PIPE_SIGNALR))) {
704 pipeselwakeup(rpipe, rpipe->pipe_peer);
705 rpipe->pipe_state &= ~PIPE_SIGNALR;
706 }
707
708 return (error);
709 }
710
711 #ifdef __FreeBSD__
712 #ifndef PIPE_NODIRECT
713 /*
714 * Map the sending processes' buffer into kernel space and wire it.
715 * This is similar to a physical write operation.
716 */
717 static int
718 pipe_build_write_buffer(wpipe, uio)
719 struct pipe *wpipe;
720 struct uio *uio;
721 {
722 size_t size;
723 int i;
724 vm_offset_t addr, endaddr, paddr;
725
726 size = uio->uio_iov->iov_len;
727 if (size > wpipe->pipe_buffer.size)
728 size = wpipe->pipe_buffer.size;
729
730 endaddr = round_page((vm_offset_t)uio->uio_iov->iov_base + size);
731 mtx_lock(&vm_mtx);
732 addr = trunc_page((vm_offset_t)uio->uio_iov->iov_base);
733 for (i = 0; addr < endaddr; addr += PAGE_SIZE, i++) {
734 vm_page_t m;
735
736 if (vm_fault_quick((caddr_t)addr, VM_PROT_READ) < 0 ||
737 (paddr = pmap_kextract(addr)) == 0) {
738 int j;
739
740 for (j = 0; j < i; j++)
741 vm_page_unwire(wpipe->pipe_map.ms[j], 1);
742 mtx_unlock(&vm_mtx);
743 return (EFAULT);
744 }
745
746 m = PHYS_TO_VM_PAGE(paddr);
747 vm_page_wire(m);
748 wpipe->pipe_map.ms[i] = m;
749 }
750
751 /*
752 * set up the control block
753 */
754 wpipe->pipe_map.npages = i;
755 wpipe->pipe_map.pos =
756 ((vm_offset_t) uio->uio_iov->iov_base) & PAGE_MASK;
757 wpipe->pipe_map.cnt = size;
758
759 /*
760 * and map the buffer
761 */
762 if (wpipe->pipe_map.kva == 0) {
763 /*
764 * We need to allocate space for an extra page because the
765 * address range might (will) span pages at times.
766 */
767 wpipe->pipe_map.kva = kmem_alloc_pageable(kernel_map,
768 wpipe->pipe_buffer.size + PAGE_SIZE);
769 amountpipekva += wpipe->pipe_buffer.size + PAGE_SIZE;
770 }
771 pmap_qenter(wpipe->pipe_map.kva, wpipe->pipe_map.ms,
772 wpipe->pipe_map.npages);
773
774 mtx_unlock(&vm_mtx);
775 /*
776 * and update the uio data
777 */
778
779 uio->uio_iov->iov_len -= size;
780 uio->uio_iov->iov_base += size;
781 if (uio->uio_iov->iov_len == 0)
782 uio->uio_iov++;
783 uio->uio_resid -= size;
784 uio->uio_offset += size;
785 return (0);
786 }
787
788 /*
789 * unmap and unwire the process buffer
790 */
791 static void
792 pipe_destroy_write_buffer(wpipe)
793 struct pipe *wpipe;
794 {
795 int i;
796
797 mtx_lock(&vm_mtx);
798 if (wpipe->pipe_map.kva) {
799 pmap_qremove(wpipe->pipe_map.kva, wpipe->pipe_map.npages);
800
801 if (amountpipekva > maxpipekva) {
802 vm_offset_t kva = wpipe->pipe_map.kva;
803 wpipe->pipe_map.kva = 0;
804 kmem_free(kernel_map, kva,
805 wpipe->pipe_buffer.size + PAGE_SIZE);
806 amountpipekva -= wpipe->pipe_buffer.size + PAGE_SIZE;
807 }
808 }
809 for (i = 0; i < wpipe->pipe_map.npages; i++)
810 vm_page_unwire(wpipe->pipe_map.ms[i], 1);
811 mtx_unlock(&vm_mtx);
812 }
813
814 /*
815 * In the case of a signal, the writing process might go away. This
816 * code copies the data into the circular buffer so that the source
817 * pages can be freed without loss of data.
818 */
819 static void
820 pipe_clone_write_buffer(wpipe)
821 struct pipe *wpipe;
822 {
823 int size;
824 int pos;
825
826 size = wpipe->pipe_map.cnt;
827 pos = wpipe->pipe_map.pos;
828 memcpy((caddr_t) wpipe->pipe_buffer.buffer,
829 (caddr_t) wpipe->pipe_map.kva + pos, size);
830
831 wpipe->pipe_buffer.in = size;
832 wpipe->pipe_buffer.out = 0;
833 wpipe->pipe_buffer.cnt = size;
834 wpipe->pipe_state &= ~PIPE_DIRECTW;
835
836 pipe_destroy_write_buffer(wpipe);
837 }
838
839 /*
840 * This implements the pipe buffer write mechanism. Note that only
841 * a direct write OR a normal pipe write can be pending at any given time.
842 * If there are any characters in the pipe buffer, the direct write will
843 * be deferred until the receiving process grabs all of the bytes from
844 * the pipe buffer. Then the direct mapping write is set-up.
845 */
846 static int
847 pipe_direct_write(wpipe, uio)
848 struct pipe *wpipe;
849 struct uio *uio;
850 {
851 int error;
852
853 retry:
854 while (wpipe->pipe_state & PIPE_DIRECTW) {
855 if (wpipe->pipe_state & PIPE_WANTR) {
856 wpipe->pipe_state &= ~PIPE_WANTR;
857 wakeup(wpipe);
858 }
859 wpipe->pipe_state |= PIPE_WANTW;
860 error = tsleep(wpipe, PRIBIO | PCATCH, "pipdww", 0);
861 if (error)
862 goto error1;
863 if (wpipe->pipe_state & PIPE_EOF) {
864 error = EPIPE;
865 goto error1;
866 }
867 }
868 wpipe->pipe_map.cnt = 0; /* transfer not ready yet */
869 if (wpipe->pipe_buffer.cnt > 0) {
870 if (wpipe->pipe_state & PIPE_WANTR) {
871 wpipe->pipe_state &= ~PIPE_WANTR;
872 wakeup(wpipe);
873 }
874
875 wpipe->pipe_state |= PIPE_WANTW;
876 error = tsleep(wpipe, PRIBIO | PCATCH, "pipdwc", 0);
877 if (error)
878 goto error1;
879 if (wpipe->pipe_state & PIPE_EOF) {
880 error = EPIPE;
881 goto error1;
882 }
883 goto retry;
884 }
885
886 wpipe->pipe_state |= PIPE_DIRECTW;
887
888 error = pipe_build_write_buffer(wpipe, uio);
889 if (error) {
890 wpipe->pipe_state &= ~PIPE_DIRECTW;
891 goto error1;
892 }
893
894 error = 0;
895 while (!error && (wpipe->pipe_state & PIPE_DIRECTW)) {
896 if (wpipe->pipe_state & PIPE_EOF) {
897 pipelock(wpipe, 0);
898 pipe_destroy_write_buffer(wpipe);
899 pipeunlock(wpipe);
900 pipeselwakeup(wpipe, wpipe);
901 error = EPIPE;
902 goto error1;
903 }
904 if (wpipe->pipe_state & PIPE_WANTR) {
905 wpipe->pipe_state &= ~PIPE_WANTR;
906 wakeup(wpipe);
907 }
908 pipeselwakeup(wpipe, wpipe);
909 error = tsleep(wpipe, PRIBIO | PCATCH, "pipdwt", 0);
910 }
911
912 pipelock(wpipe,0);
913 if (wpipe->pipe_state & PIPE_DIRECTW) {
914 /*
915 * this bit of trickery substitutes a kernel buffer for
916 * the process that might be going away.
917 */
918 pipe_clone_write_buffer(wpipe);
919 } else {
920 pipe_destroy_write_buffer(wpipe);
921 }
922 pipeunlock(wpipe);
923 return (error);
924
925 error1:
926 wakeup(wpipe);
927 return (error);
928 }
929 #endif /* !PIPE_NODIRECT */
930 #endif /* FreeBSD */
931
932 #ifdef __NetBSD__
933 #ifndef PIPE_NODIRECT
934 /*
935 * Allocate structure for loan transfer.
936 */
937 static int
938 pipe_loan_alloc(wpipe, npages)
939 struct pipe *wpipe;
940 int npages;
941 {
942 vsize_t len;
943
944 len = (vsize_t)npages << PAGE_SHIFT;
945 wpipe->pipe_map.kva = uvm_km_valloc_wait(kernel_map, len);
946 if (wpipe->pipe_map.kva == 0)
947 return (ENOMEM);
948
949 amountpipekva += len;
950 wpipe->pipe_map.npages = npages;
951 wpipe->pipe_map.pgs = malloc(npages * sizeof(struct vm_page *), M_PIPE,
952 M_WAITOK);
953 return (0);
954 }
955
956 /*
957 * Free resources allocated for loan transfer.
958 */
959 static void
960 pipe_loan_free(wpipe)
961 struct pipe *wpipe;
962 {
963 vsize_t len;
964
965 len = (vsize_t)wpipe->pipe_map.npages << PAGE_SHIFT;
966 uvm_km_free(kernel_map, wpipe->pipe_map.kva, len);
967 wpipe->pipe_map.kva = 0;
968 amountpipekva -= len;
969 free(wpipe->pipe_map.pgs, M_PIPE);
970 wpipe->pipe_map.pgs = NULL;
971 }
972
973 /*
974 * NetBSD direct write, using uvm_loan() mechanism.
975 * This implements the pipe buffer write mechanism. Note that only
976 * a direct write OR a normal pipe write can be pending at any given time.
977 * If there are any characters in the pipe buffer, the direct write will
978 * be deferred until the receiving process grabs all of the bytes from
979 * the pipe buffer. Then the direct mapping write is set-up.
980 */
981 static int
982 pipe_direct_write(wpipe, uio)
983 struct pipe *wpipe;
984 struct uio *uio;
985 {
986 int error, npages, j;
987 struct vm_page **pgs;
988 vaddr_t bbase, kva, base, bend;
989 vsize_t blen, bcnt;
990 voff_t bpos;
991
992 retry:
993 while (wpipe->pipe_state & PIPE_DIRECTW) {
994 if (wpipe->pipe_state & PIPE_WANTR) {
995 wpipe->pipe_state &= ~PIPE_WANTR;
996 wakeup(wpipe);
997 }
998 wpipe->pipe_state |= PIPE_WANTW;
999 error = tsleep(wpipe, PRIBIO | PCATCH, "pipdww", 0);
1000 if (error)
1001 goto error;
1002 if (wpipe->pipe_state & PIPE_EOF) {
1003 error = EPIPE;
1004 goto error;
1005 }
1006 }
1007 wpipe->pipe_map.cnt = 0; /* transfer not ready yet */
1008 if (wpipe->pipe_buffer.cnt > 0) {
1009 if (wpipe->pipe_state & PIPE_WANTR) {
1010 wpipe->pipe_state &= ~PIPE_WANTR;
1011 wakeup(wpipe);
1012 }
1013
1014 wpipe->pipe_state |= PIPE_WANTW;
1015 error = tsleep(wpipe, PRIBIO | PCATCH, "pipdwc", 0);
1016 if (error)
1017 goto error;
1018 if (wpipe->pipe_state & PIPE_EOF) {
1019 error = EPIPE;
1020 goto error;
1021 }
1022 goto retry;
1023 }
1024
1025 /*
1026 * Handle first PIPE_CHUNK_SIZE bytes of buffer. Deal with buffers
1027 * not aligned to PAGE_SIZE.
1028 */
1029 bbase = (vaddr_t)uio->uio_iov->iov_base;
1030 base = trunc_page(bbase);
1031 bend = round_page(bbase + uio->uio_iov->iov_len);
1032 blen = bend - base;
1033 bpos = bbase - base;
1034
1035 if (blen > PIPE_DIRECT_CHUNK) {
1036 blen = PIPE_DIRECT_CHUNK;
1037 bend = base + blen;
1038 bcnt = PIPE_DIRECT_CHUNK - bpos;
1039 } else {
1040 bcnt = uio->uio_iov->iov_len;
1041 }
1042 npages = blen >> PAGE_SHIFT;
1043
1044 wpipe->pipe_map.pos = bpos;
1045 wpipe->pipe_map.cnt = bcnt;
1046
1047 /*
1048 * Free the old kva if we need more pages than we have
1049 * allocated.
1050 */
1051 if (wpipe->pipe_map.kva && npages > wpipe->pipe_map.npages)
1052 pipe_loan_free(wpipe);
1053
1054 /* Allocate new kva. */
1055 if (wpipe->pipe_map.kva == 0) {
1056 error = pipe_loan_alloc(wpipe, npages);
1057 if (error) {
1058 goto error;
1059 }
1060 }
1061
1062 /* Loan the write buffer memory from writer process */
1063 pgs = wpipe->pipe_map.pgs;
1064 error = uvm_loan(&uio->uio_procp->p_vmspace->vm_map, base, blen,
1065 pgs, UVM_LOAN_TOPAGE);
1066 if (error) {
1067 pgs = NULL;
1068 goto cleanup;
1069 }
1070
1071 /* Enter the loaned pages to kva */
1072 kva = wpipe->pipe_map.kva;
1073 for (j = 0; j < npages; j++, kva += PAGE_SIZE) {
1074 pmap_kenter_pa(kva, VM_PAGE_TO_PHYS(pgs[j]), VM_PROT_READ);
1075 }
1076 pmap_update(pmap_kernel());
1077
1078 wpipe->pipe_state |= PIPE_DIRECTW;
1079 while (!error && (wpipe->pipe_state & PIPE_DIRECTW)) {
1080 if (wpipe->pipe_state & PIPE_EOF) {
1081 error = EPIPE;
1082 break;
1083 }
1084 if (wpipe->pipe_state & PIPE_WANTR) {
1085 wpipe->pipe_state &= ~PIPE_WANTR;
1086 wakeup(wpipe);
1087 }
1088 pipeselwakeup(wpipe, wpipe);
1089 error = tsleep(wpipe, PRIBIO | PCATCH, "pipdwt", 0);
1090 }
1091
1092 if (error)
1093 wpipe->pipe_state &= ~PIPE_DIRECTW;
1094
1095 cleanup:
1096 pipelock(wpipe, 0);
1097 if (pgs != NULL) {
1098 pmap_kremove(wpipe->pipe_map.kva, blen);
1099 uvm_unloan(pgs, npages, UVM_LOAN_TOPAGE);
1100 }
1101 if (error || amountpipekva > maxpipekva)
1102 pipe_loan_free(wpipe);
1103 pipeunlock(wpipe);
1104
1105 if (error) {
1106 pipeselwakeup(wpipe, wpipe);
1107
1108 /*
1109 * If nothing was read from what we offered, return error
1110 * straight on. Otherwise update uio resid first. Caller
1111 * will deal with the error condition, returning short
1112 * write, error, or restarting the write(2) as appropriate.
1113 */
1114 if (wpipe->pipe_map.cnt == bcnt) {
1115 error:
1116 wakeup(wpipe);
1117 return (error);
1118 }
1119
1120 bcnt -= wpipe->pipe_map.cnt;
1121 }
1122
1123 uio->uio_resid -= bcnt;
1124 /* uio_offset not updated, not set/used for write(2) */
1125 uio->uio_iov->iov_base = (char *)uio->uio_iov->iov_base + bcnt;
1126 uio->uio_iov->iov_len -= bcnt;
1127 if (uio->uio_iov->iov_len == 0) {
1128 uio->uio_iov++;
1129 uio->uio_iovcnt--;
1130 }
1131
1132 return (error);
1133 }
1134 #endif /* !PIPE_NODIRECT */
1135 #endif /* NetBSD */
1136
1137 #ifdef __FreeBSD__
1138 static int
1139 pipe_write(fp, uio, cred, flags, p)
1140 struct file *fp;
1141 off_t *offset;
1142 struct uio *uio;
1143 struct ucred *cred;
1144 int flags;
1145 struct proc *p;
1146 #elif defined(__NetBSD__)
1147 static int
1148 pipe_write(fp, offset, uio, cred, flags)
1149 struct file *fp;
1150 off_t *offset;
1151 struct uio *uio;
1152 struct ucred *cred;
1153 int flags;
1154 #endif
1155 {
1156 int error = 0;
1157 struct pipe *wpipe, *rpipe;
1158
1159 rpipe = (struct pipe *) fp->f_data;
1160 wpipe = rpipe->pipe_peer;
1161
1162 /*
1163 * detect loss of pipe read side, issue SIGPIPE if lost.
1164 */
1165 if ((wpipe == NULL) || (wpipe->pipe_state & PIPE_EOF))
1166 return (EPIPE);
1167
1168 ++wpipe->pipe_busy;
1169
1170 /*
1171 * If it is advantageous to resize the pipe buffer, do
1172 * so.
1173 */
1174 if ((uio->uio_resid > PIPE_SIZE) &&
1175 (nbigpipe < maxbigpipes) &&
1176 #ifndef PIPE_NODIRECT
1177 (wpipe->pipe_state & PIPE_DIRECTW) == 0 &&
1178 #endif
1179 (wpipe->pipe_buffer.size <= PIPE_SIZE) &&
1180 (wpipe->pipe_buffer.cnt == 0)) {
1181
1182 if ((error = pipelock(wpipe,1)) == 0) {
1183 if (pipespace(wpipe, BIG_PIPE_SIZE) == 0)
1184 nbigpipe++;
1185 pipeunlock(wpipe);
1186 } else {
1187 /*
1188 * If an error occurred, unbusy and return, waking up
1189 * any waiting readers.
1190 */
1191 --wpipe->pipe_busy;
1192 if (wpipe->pipe_busy == 0
1193 && (wpipe->pipe_state & PIPE_WANTCLOSE)) {
1194 wpipe->pipe_state &=
1195 ~(PIPE_WANTCLOSE | PIPE_WANTR);
1196 wakeup(wpipe);
1197 }
1198
1199 return (error);
1200 }
1201 }
1202
1203 #ifdef __FreeBSD__
1204 KASSERT(wpipe->pipe_buffer.buffer != NULL, ("pipe buffer gone"));
1205 #endif
1206
1207 while (uio->uio_resid) {
1208 int space;
1209
1210 #ifndef PIPE_NODIRECT
1211 /*
1212 * If the transfer is large, we can gain performance if
1213 * we do process-to-process copies directly.
1214 * If the write is non-blocking, we don't use the
1215 * direct write mechanism.
1216 *
1217 * The direct write mechanism will detect the reader going
1218 * away on us.
1219 */
1220 if ((uio->uio_iov->iov_len >= PIPE_MINDIRECT) &&
1221 (fp->f_flag & FNONBLOCK) == 0 &&
1222 (wpipe->pipe_map.kva || (amountpipekva < limitpipekva))) {
1223 error = pipe_direct_write(wpipe, uio);
1224
1225 /*
1226 * Break out if error occured, unless it's ENOMEM.
1227 * ENOMEM means we failed to allocate some resources
1228 * for direct write, so we just fallback to ordinary
1229 * write. If the direct write was successful,
1230 * process rest of data via ordinary write.
1231 */
1232 if (!error)
1233 continue;
1234
1235 if (error != ENOMEM)
1236 break;
1237 }
1238 #endif /* PIPE_NODIRECT */
1239
1240 /*
1241 * Pipe buffered writes cannot be coincidental with
1242 * direct writes. We wait until the currently executing
1243 * direct write is completed before we start filling the
1244 * pipe buffer. We break out if a signal occurs or the
1245 * reader goes away.
1246 */
1247 retrywrite:
1248 while (wpipe->pipe_state & PIPE_DIRECTW) {
1249 if (wpipe->pipe_state & PIPE_WANTR) {
1250 wpipe->pipe_state &= ~PIPE_WANTR;
1251 wakeup(wpipe);
1252 }
1253 error = tsleep(wpipe, PRIBIO | PCATCH, "pipbww", 0);
1254 if (wpipe->pipe_state & PIPE_EOF)
1255 break;
1256 if (error)
1257 break;
1258 }
1259 if (wpipe->pipe_state & PIPE_EOF) {
1260 error = EPIPE;
1261 break;
1262 }
1263
1264 space = wpipe->pipe_buffer.size - wpipe->pipe_buffer.cnt;
1265
1266 /* Writes of size <= PIPE_BUF must be atomic. */
1267 if ((space < uio->uio_resid) && (uio->uio_resid <= PIPE_BUF))
1268 space = 0;
1269
1270 if (space > 0) {
1271 int size; /* Transfer size */
1272 int segsize; /* first segment to transfer */
1273
1274 if ((error = pipelock(wpipe,1)) != 0)
1275 break;
1276
1277 /*
1278 * It is possible for a direct write to
1279 * slip in on us... handle it here...
1280 */
1281 if (wpipe->pipe_state & PIPE_DIRECTW) {
1282 pipeunlock(wpipe);
1283 goto retrywrite;
1284 }
1285 /*
1286 * If a process blocked in uiomove, our
1287 * value for space might be bad.
1288 *
1289 * XXX will we be ok if the reader has gone
1290 * away here?
1291 */
1292 if (space > wpipe->pipe_buffer.size -
1293 wpipe->pipe_buffer.cnt) {
1294 pipeunlock(wpipe);
1295 goto retrywrite;
1296 }
1297
1298 /*
1299 * Transfer size is minimum of uio transfer
1300 * and free space in pipe buffer.
1301 */
1302 if (space > uio->uio_resid)
1303 size = uio->uio_resid;
1304 else
1305 size = space;
1306 /*
1307 * First segment to transfer is minimum of
1308 * transfer size and contiguous space in
1309 * pipe buffer. If first segment to transfer
1310 * is less than the transfer size, we've got
1311 * a wraparound in the buffer.
1312 */
1313 segsize = wpipe->pipe_buffer.size -
1314 wpipe->pipe_buffer.in;
1315 if (segsize > size)
1316 segsize = size;
1317
1318 /* Transfer first segment */
1319
1320 error = uiomove(&wpipe->pipe_buffer.buffer[wpipe->pipe_buffer.in],
1321 segsize, uio);
1322
1323 if (error == 0 && segsize < size) {
1324 /*
1325 * Transfer remaining part now, to
1326 * support atomic writes. Wraparound
1327 * happened.
1328 */
1329 #ifdef DEBUG
1330 if (wpipe->pipe_buffer.in + segsize !=
1331 wpipe->pipe_buffer.size)
1332 panic("Expected pipe buffer wraparound disappeared");
1333 #endif
1334
1335 error = uiomove(&wpipe->pipe_buffer.buffer[0],
1336 size - segsize, uio);
1337 }
1338 if (error == 0) {
1339 wpipe->pipe_buffer.in += size;
1340 if (wpipe->pipe_buffer.in >=
1341 wpipe->pipe_buffer.size) {
1342 #ifdef DEBUG
1343 if (wpipe->pipe_buffer.in != size - segsize + wpipe->pipe_buffer.size)
1344 panic("Expected wraparound bad");
1345 #endif
1346 wpipe->pipe_buffer.in = size - segsize;
1347 }
1348
1349 wpipe->pipe_buffer.cnt += size;
1350 #ifdef DEBUG
1351 if (wpipe->pipe_buffer.cnt > wpipe->pipe_buffer.size)
1352 panic("Pipe buffer overflow");
1353 #endif
1354 }
1355 pipeunlock(wpipe);
1356 if (error)
1357 break;
1358 } else {
1359 /*
1360 * If the "read-side" has been blocked, wake it up now.
1361 */
1362 if (wpipe->pipe_state & PIPE_WANTR) {
1363 wpipe->pipe_state &= ~PIPE_WANTR;
1364 wakeup(wpipe);
1365 }
1366
1367 /*
1368 * don't block on non-blocking I/O
1369 */
1370 if (fp->f_flag & FNONBLOCK) {
1371 error = EAGAIN;
1372 break;
1373 }
1374
1375 /*
1376 * We have no more space and have something to offer,
1377 * wake up select/poll.
1378 */
1379 pipeselwakeup(wpipe, wpipe);
1380
1381 wpipe->pipe_state |= PIPE_WANTW;
1382 error = tsleep(wpipe, PRIBIO | PCATCH, "pipewr", 0);
1383 if (error != 0)
1384 break;
1385 /*
1386 * If read side wants to go away, we just issue a signal
1387 * to ourselves.
1388 */
1389 if (wpipe->pipe_state & PIPE_EOF) {
1390 error = EPIPE;
1391 break;
1392 }
1393 }
1394 }
1395
1396 --wpipe->pipe_busy;
1397 if ((wpipe->pipe_busy == 0) && (wpipe->pipe_state & PIPE_WANTCLOSE)) {
1398 wpipe->pipe_state &= ~(PIPE_WANTCLOSE | PIPE_WANTR);
1399 wakeup(wpipe);
1400 } else if (wpipe->pipe_buffer.cnt > 0) {
1401 /*
1402 * If we have put any characters in the buffer, we wake up
1403 * the reader.
1404 */
1405 if (wpipe->pipe_state & PIPE_WANTR) {
1406 wpipe->pipe_state &= ~PIPE_WANTR;
1407 wakeup(wpipe);
1408 }
1409 }
1410
1411 /*
1412 * Don't return EPIPE if I/O was successful
1413 */
1414 if ((error == EPIPE) && (wpipe->pipe_buffer.cnt == 0)
1415 && (uio->uio_resid == 0))
1416 error = 0;
1417
1418 if (error == 0)
1419 vfs_timestamp(&wpipe->pipe_mtime);
1420
1421 /*
1422 * We have something to offer, wake up select/poll.
1423 * wpipe->pipe_map.cnt is always 0 in this point (direct write
1424 * is only done synchronously), so check only wpipe->pipe_buffer.cnt
1425 */
1426 if (wpipe->pipe_buffer.cnt)
1427 pipeselwakeup(wpipe, wpipe);
1428
1429 /*
1430 * Arrange for next read(2) to do a signal.
1431 */
1432 wpipe->pipe_state |= PIPE_SIGNALR;
1433
1434 return (error);
1435 }
1436
1437 /*
1438 * we implement a very minimal set of ioctls for compatibility with sockets.
1439 */
1440 int
1441 pipe_ioctl(fp, cmd, data, p)
1442 struct file *fp;
1443 u_long cmd;
1444 caddr_t data;
1445 struct proc *p;
1446 {
1447 struct pipe *mpipe = (struct pipe *)fp->f_data;
1448
1449 switch (cmd) {
1450
1451 case FIONBIO:
1452 return (0);
1453
1454 case FIOASYNC:
1455 if (*(int *)data) {
1456 mpipe->pipe_state |= PIPE_ASYNC;
1457 } else {
1458 mpipe->pipe_state &= ~PIPE_ASYNC;
1459 }
1460 return (0);
1461
1462 case FIONREAD:
1463 #ifndef PIPE_NODIRECT
1464 if (mpipe->pipe_state & PIPE_DIRECTW)
1465 *(int *)data = mpipe->pipe_map.cnt;
1466 else
1467 #endif
1468 *(int *)data = mpipe->pipe_buffer.cnt;
1469 return (0);
1470
1471 #ifdef __FreeBSD__
1472 case FIOSETOWN:
1473 return (fsetown(*(int *)data, &mpipe->pipe_sigio));
1474
1475 case FIOGETOWN:
1476 *(int *)data = fgetown(mpipe->pipe_sigio);
1477 return (0);
1478
1479 /* This is deprecated, FIOSETOWN should be used instead. */
1480 case TIOCSPGRP:
1481 return (fsetown(-(*(int *)data), &mpipe->pipe_sigio));
1482
1483 /* This is deprecated, FIOGETOWN should be used instead. */
1484 case TIOCGPGRP:
1485 *(int *)data = -fgetown(mpipe->pipe_sigio);
1486 return (0);
1487 #endif /* FreeBSD */
1488 #ifdef __NetBSD__
1489 case TIOCSPGRP:
1490 mpipe->pipe_pgid = *(int *)data;
1491 return (0);
1492
1493 case TIOCGPGRP:
1494 *(int *)data = mpipe->pipe_pgid;
1495 return (0);
1496 #endif /* NetBSD */
1497
1498 }
1499 return (ENOTTY);
1500 }
1501
1502 int
1503 pipe_poll(fp, events, p)
1504 struct file *fp;
1505 int events;
1506 struct proc *p;
1507 {
1508 struct pipe *rpipe = (struct pipe *)fp->f_data;
1509 struct pipe *wpipe;
1510 int revents = 0;
1511
1512 wpipe = rpipe->pipe_peer;
1513 if (events & (POLLIN | POLLRDNORM))
1514 if ((rpipe->pipe_buffer.cnt > 0) ||
1515 #ifndef PIPE_NODIRECT
1516 (rpipe->pipe_state & PIPE_DIRECTW) ||
1517 #endif
1518 (rpipe->pipe_state & PIPE_EOF))
1519 revents |= events & (POLLIN | POLLRDNORM);
1520
1521 if (events & (POLLOUT | POLLWRNORM))
1522 if (wpipe == NULL || (wpipe->pipe_state & PIPE_EOF)
1523 || (
1524 #ifndef PIPE_NODIRECT
1525 ((wpipe->pipe_state & PIPE_DIRECTW) == 0) &&
1526 #endif
1527 (wpipe->pipe_buffer.size - wpipe->pipe_buffer.cnt) >= PIPE_BUF))
1528 revents |= events & (POLLOUT | POLLWRNORM);
1529
1530 if ((rpipe->pipe_state & PIPE_EOF) ||
1531 (wpipe == NULL) ||
1532 (wpipe->pipe_state & PIPE_EOF))
1533 revents |= POLLHUP;
1534
1535 if (revents == 0) {
1536 if (events & (POLLIN | POLLRDNORM)) {
1537 selrecord(p, &rpipe->pipe_sel);
1538 rpipe->pipe_state |= PIPE_SEL;
1539 }
1540
1541 if (events & (POLLOUT | POLLWRNORM)) {
1542 selrecord(p, &wpipe->pipe_sel);
1543 wpipe->pipe_state |= PIPE_SEL;
1544 }
1545 }
1546
1547 return (revents);
1548 }
1549
1550 static int
1551 pipe_stat(fp, ub, p)
1552 struct file *fp;
1553 struct stat *ub;
1554 struct proc *p;
1555 {
1556 struct pipe *pipe = (struct pipe *)fp->f_data;
1557
1558 memset((caddr_t)ub, 0, sizeof(*ub));
1559 ub->st_mode = S_IFIFO;
1560 ub->st_blksize = pipe->pipe_buffer.size;
1561 ub->st_size = pipe->pipe_buffer.cnt;
1562 ub->st_blocks = (ub->st_size) ? 1 : 0;
1563 #ifdef __FreeBSD__
1564 ub->st_atimespec = pipe->pipe_atime;
1565 ub->st_mtimespec = pipe->pipe_mtime;
1566 ub->st_ctimespec = pipe->pipe_ctime;
1567 #endif /* FreeBSD */
1568 #ifdef __NetBSD__
1569 TIMEVAL_TO_TIMESPEC(&pipe->pipe_atime, &ub->st_atimespec)
1570 TIMEVAL_TO_TIMESPEC(&pipe->pipe_mtime, &ub->st_mtimespec);
1571 TIMEVAL_TO_TIMESPEC(&pipe->pipe_ctime, &ub->st_ctimespec);
1572 #endif /* NetBSD */
1573 ub->st_uid = fp->f_cred->cr_uid;
1574 ub->st_gid = fp->f_cred->cr_gid;
1575 /*
1576 * Left as 0: st_dev, st_ino, st_nlink, st_rdev, st_flags, st_gen.
1577 * XXX (st_dev, st_ino) should be unique.
1578 */
1579 return (0);
1580 }
1581
1582 /* ARGSUSED */
1583 static int
1584 pipe_close(fp, p)
1585 struct file *fp;
1586 struct proc *p;
1587 {
1588 struct pipe *cpipe = (struct pipe *)fp->f_data;
1589
1590 #ifdef __FreeBSD__
1591 fp->f_ops = &badfileops;
1592 funsetown(cpipe->pipe_sigio);
1593 #endif
1594 fp->f_data = NULL;
1595 pipeclose(cpipe);
1596 return (0);
1597 }
1598
1599 static void
1600 pipe_free_kmem(cpipe)
1601 struct pipe *cpipe;
1602 {
1603
1604 #ifdef __FreeBSD__
1605 mtx_assert(&vm_mtx, MA_OWNED);
1606 #endif
1607 if (cpipe->pipe_buffer.buffer != NULL) {
1608 if (cpipe->pipe_buffer.size > PIPE_SIZE)
1609 --nbigpipe;
1610 amountpipekva -= cpipe->pipe_buffer.size;
1611 #ifdef __FreeBSD__
1612 kmem_free(kernel_map,
1613 (vm_offset_t)cpipe->pipe_buffer.buffer,
1614 cpipe->pipe_buffer.size);
1615 #elif defined(__NetBSD__)
1616 uvm_km_free(kernel_map,
1617 (vaddr_t)cpipe->pipe_buffer.buffer,
1618 cpipe->pipe_buffer.size);
1619 #endif /* NetBSD */
1620 cpipe->pipe_buffer.buffer = NULL;
1621 }
1622 #ifndef PIPE_NODIRECT
1623 if (cpipe->pipe_map.kva != 0) {
1624 #ifdef __FreeBSD__
1625 amountpipekva -= cpipe->pipe_buffer.size + PAGE_SIZE;
1626 kmem_free(kernel_map,
1627 cpipe->pipe_map.kva,
1628 cpipe->pipe_buffer.size + PAGE_SIZE);
1629 #elif defined(__NetBSD__)
1630 pipe_loan_free(cpipe);
1631 #endif /* NetBSD */
1632 cpipe->pipe_map.cnt = 0;
1633 cpipe->pipe_map.kva = 0;
1634 cpipe->pipe_map.pos = 0;
1635 cpipe->pipe_map.npages = 0;
1636 }
1637 #endif /* !PIPE_NODIRECT */
1638 }
1639
1640 /*
1641 * shutdown the pipe
1642 */
1643 static void
1644 pipeclose(cpipe)
1645 struct pipe *cpipe;
1646 {
1647 struct pipe *ppipe;
1648
1649 if (!cpipe)
1650 return;
1651
1652 pipeselwakeup(cpipe, cpipe);
1653
1654 /*
1655 * If the other side is blocked, wake it up saying that
1656 * we want to close it down.
1657 */
1658 while (cpipe->pipe_busy) {
1659 wakeup(cpipe);
1660 cpipe->pipe_state |= PIPE_WANTCLOSE | PIPE_EOF;
1661 tsleep(cpipe, PRIBIO, "pipecl", 0);
1662 }
1663
1664 /*
1665 * Disconnect from peer
1666 */
1667 if ((ppipe = cpipe->pipe_peer) != NULL) {
1668 pipeselwakeup(ppipe, ppipe);
1669
1670 ppipe->pipe_state |= PIPE_EOF;
1671 wakeup(ppipe);
1672 ppipe->pipe_peer = NULL;
1673 }
1674
1675 /*
1676 * free resources
1677 */
1678 #ifdef __FreeBSD__
1679 mtx_lock(&vm_mtx);
1680 pipe_free_kmem(cpipe);
1681 /* XXX: erm, doesn't zalloc already have its own locks and
1682 * not need the giant vm lock?
1683 */
1684 zfree(pipe_zone, cpipe);
1685 mtx_unlock(&vm_mtx);
1686 #endif /* FreeBSD */
1687
1688 #ifdef __NetBSD__
1689 pipe_free_kmem(cpipe);
1690 (void) lockmgr(&cpipe->pipe_lock, LK_DRAIN, NULL);
1691 pool_put(&pipe_pool, cpipe);
1692 #endif
1693 }
1694
1695 #ifdef __FreeBSD__
1696 /*ARGSUSED*/
1697 static int
1698 pipe_kqfilter(struct file *fp, struct knote *kn)
1699 {
1700 struct pipe *cpipe = (struct pipe *)kn->kn_fp->f_data;
1701
1702 switch (kn->kn_filter) {
1703 case EVFILT_READ:
1704 kn->kn_fop = &pipe_rfiltops;
1705 break;
1706 case EVFILT_WRITE:
1707 kn->kn_fop = &pipe_wfiltops;
1708 cpipe = cpipe->pipe_peer;
1709 break;
1710 default:
1711 return (1);
1712 }
1713 kn->kn_hook = (caddr_t)cpipe;
1714 SLIST_INSERT_HEAD(&cpipe->pipe_sel.si_note, kn, kn_selnext);
1715 return (0);
1716 }
1717
1718 static void
1719 filt_pipedetach(struct knote *kn)
1720 {
1721 struct pipe *cpipe = (struct pipe *)kn->kn_fp->f_data;
1722
1723 SLIST_REMOVE(&cpipe->pipe_sel.si_note, kn, knote, kn_selnext);
1724 }
1725
1726 /*ARGSUSED*/
1727 static int
1728 filt_piperead(struct knote *kn, long hint)
1729 {
1730 struct pipe *rpipe = (struct pipe *)kn->kn_fp->f_data;
1731 struct pipe *wpipe = rpipe->pipe_peer;
1732
1733 kn->kn_data = rpipe->pipe_buffer.cnt;
1734 if ((kn->kn_data == 0) && (rpipe->pipe_state & PIPE_DIRECTW))
1735 kn->kn_data = rpipe->pipe_map.cnt;
1736
1737 if ((rpipe->pipe_state & PIPE_EOF) ||
1738 (wpipe == NULL) || (wpipe->pipe_state & PIPE_EOF)) {
1739 kn->kn_flags |= EV_EOF;
1740 return (1);
1741 }
1742 return (kn->kn_data > 0);
1743 }
1744
1745 /*ARGSUSED*/
1746 static int
1747 filt_pipewrite(struct knote *kn, long hint)
1748 {
1749 struct pipe *rpipe = (struct pipe *)kn->kn_fp->f_data;
1750 struct pipe *wpipe = rpipe->pipe_peer;
1751
1752 if ((wpipe == NULL) || (wpipe->pipe_state & PIPE_EOF)) {
1753 kn->kn_data = 0;
1754 kn->kn_flags |= EV_EOF;
1755 return (1);
1756 }
1757 kn->kn_data = wpipe->pipe_buffer.size - wpipe->pipe_buffer.cnt;
1758 if (wpipe->pipe_state & PIPE_DIRECTW)
1759 kn->kn_data = 0;
1760
1761 return (kn->kn_data >= PIPE_BUF);
1762 }
1763 #endif /* FreeBSD */
1764
1765 #ifdef __NetBSD__
1766 static int
1767 pipe_fcntl(fp, cmd, data, p)
1768 struct file *fp;
1769 u_int cmd;
1770 caddr_t data;
1771 struct proc *p;
1772 {
1773 if (cmd == F_SETFL)
1774 return (0);
1775 else
1776 return (EOPNOTSUPP);
1777 }
1778
1779 /*
1780 * Handle pipe sysctls.
1781 */
1782 int
1783 sysctl_dopipe(name, namelen, oldp, oldlenp, newp, newlen)
1784 int *name;
1785 u_int namelen;
1786 void *oldp;
1787 size_t *oldlenp;
1788 void *newp;
1789 size_t newlen;
1790 {
1791 /* All sysctl names at this level are terminal. */
1792 if (namelen != 1)
1793 return (ENOTDIR); /* overloaded */
1794
1795 switch (name[0]) {
1796 case KERN_PIPE_MAXKVASZ:
1797 return (sysctl_int(oldp, oldlenp, newp, newlen, &maxpipekva));
1798 case KERN_PIPE_LIMITKVA:
1799 return (sysctl_int(oldp, oldlenp, newp, newlen, &limitpipekva));
1800 case KERN_PIPE_MAXBIGPIPES:
1801 return (sysctl_int(oldp, oldlenp, newp, newlen, &maxbigpipes));
1802 case KERN_PIPE_NBIGPIPES:
1803 return (sysctl_rdint(oldp, oldlenp, newp, nbigpipe));
1804 case KERN_PIPE_KVASIZE:
1805 return (sysctl_rdint(oldp, oldlenp, newp, amountpipekva));
1806 default:
1807 return (EOPNOTSUPP);
1808 }
1809 /* NOTREACHED */
1810 }
1811
1812 /*
1813 * Initialize pipe structs.
1814 */
1815 void
1816 pipe_init(void)
1817 {
1818 pool_init(&pipe_pool, sizeof(struct pipe), 0, 0, 0, "pipepl", NULL);
1819 }
1820
1821 #endif /* __NetBSD __ */
1822