New functions, variables, and file-list code to support the new
[rsync/rsync.git] / io.c
... / ...
CommitLineData
1/*
2 * Socket and pipe I/O utilities used in rsync.
3 *
4 * Copyright (C) 1996-2001 Andrew Tridgell
5 * Copyright (C) 1996 Paul Mackerras
6 * Copyright (C) 2001, 2002 Martin Pool <mbp@samba.org>
7 * Copyright (C) 2003, 2004, 2005, 2006 Wayne Davison
8 *
9 * This program is free software; you can redistribute it and/or modify
10 * it under the terms of the GNU General Public License as published by
11 * the Free Software Foundation; either version 2 of the License, or
12 * (at your option) any later version.
13 *
14 * This program is distributed in the hope that it will be useful,
15 * but WITHOUT ANY WARRANTY; without even the implied warranty of
16 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
17 * GNU General Public License for more details.
18 *
19 * You should have received a copy of the GNU General Public License along
20 * with this program; if not, write to the Free Software Foundation, Inc.,
21 * 51 Franklin Street - Fifth Floor, Boston, MA 02110-1301, USA.
22 */
23
24/* Rsync provides its own multiplexing system, which is used to send
25 * stderr and stdout over a single socket.
26 *
27 * For historical reasons this is off during the start of the
28 * connection, but it's switched on quite early using
29 * io_start_multiplex_out() and io_start_multiplex_in(). */
30
31#include "rsync.h"
32
33/** If no timeout is specified then use a 60 second select timeout */
34#define SELECT_TIMEOUT 60
35
36extern int bwlimit;
37extern size_t bwlimit_writemax;
38extern int io_timeout;
39extern int allowed_lull;
40extern int am_server;
41extern int am_daemon;
42extern int am_sender;
43extern int am_generator;
44extern int eol_nulls;
45extern int read_batch;
46extern int csum_length;
47extern int checksum_seed;
48extern int protocol_version;
49extern int remove_source_files;
50extern int preserve_hard_links;
51extern char *filesfrom_host;
52extern struct stats stats;
53extern struct file_list *the_file_list;
54
55const char phase_unknown[] = "unknown";
56int ignore_timeout = 0;
57int batch_fd = -1;
58int batch_gen_fd = -1;
59
60/* Ignore an EOF error if non-zero. See whine_about_eof(). */
61int kluge_around_eof = 0;
62
63int msg_fd_in = -1;
64int msg_fd_out = -1;
65int sock_f_in = -1;
66int sock_f_out = -1;
67
68static int io_multiplexing_out;
69static int io_multiplexing_in;
70static time_t last_io_in;
71static time_t last_io_out;
72static int no_flush;
73
74static int write_batch_monitor_in = -1;
75static int write_batch_monitor_out = -1;
76
77static int io_filesfrom_f_in = -1;
78static int io_filesfrom_f_out = -1;
79static char io_filesfrom_buf[2048];
80static char *io_filesfrom_bp;
81static char io_filesfrom_lastchar;
82static int io_filesfrom_buflen;
83static int defer_forwarding_messages = 0;
84static int select_timeout = SELECT_TIMEOUT;
85static int active_filecnt = 0;
86static OFF_T active_bytecnt = 0;
87
88static char int_byte_cnt[64] = {
89 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, /* (00 - 3F)/4 */
90 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, 3, /* (40 - 7F)/4 */
91 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, /* (80 - BF)/4 */
92 5, 5, 5, 5, 5, 5, 5, 5, 6, 6, 6, 6, 7, 7, 8, 9, /* (C0 - FF)/4 */
93};
94
95static void read_loop(int fd, char *buf, size_t len);
96
97struct flist_ndx_item {
98 struct flist_ndx_item *next;
99 int ndx;
100};
101
102struct flist_ndx_list {
103 struct flist_ndx_item *head, *tail;
104};
105
106static struct flist_ndx_list redo_list, hlink_list;
107
108struct msg_list_item {
109 struct msg_list_item *next;
110 int len;
111 char buf[1];
112};
113
114struct msg_list {
115 struct msg_list_item *head, *tail;
116};
117
118static struct msg_list msg2genr, msg2sndr;
119
120static void flist_ndx_push(struct flist_ndx_list *lp, int ndx)
121{
122 struct flist_ndx_item *item;
123
124 if (!(item = new(struct flist_ndx_item)))
125 out_of_memory("flist_ndx_push");
126 item->next = NULL;
127 item->ndx = ndx;
128 if (lp->tail)
129 lp->tail->next = item;
130 else
131 lp->head = item;
132 lp->tail = item;
133}
134
135static int flist_ndx_pop(struct flist_ndx_list *lp)
136{
137 struct flist_ndx_item *next;
138 int ndx;
139
140 if (!lp->head)
141 return -1;
142
143 ndx = lp->head->ndx;
144 next = lp->head->next;
145 free(lp->head);
146 lp->head = next;
147 if (!next)
148 lp->tail = NULL;
149
150 return ndx;
151}
152
153static void check_timeout(void)
154{
155 time_t t;
156
157 if (!io_timeout || ignore_timeout)
158 return;
159
160 if (!last_io_in) {
161 last_io_in = time(NULL);
162 return;
163 }
164
165 t = time(NULL);
166
167 if (t - last_io_in >= io_timeout) {
168 if (!am_server && !am_daemon) {
169 rprintf(FERROR, "io timeout after %d seconds -- exiting\n",
170 (int)(t-last_io_in));
171 }
172 exit_cleanup(RERR_TIMEOUT);
173 }
174}
175
176/* Note the fds used for the main socket (which might really be a pipe
177 * for a local transfer, but we can ignore that). */
178void io_set_sock_fds(int f_in, int f_out)
179{
180 sock_f_in = f_in;
181 sock_f_out = f_out;
182}
183
184void set_io_timeout(int secs)
185{
186 io_timeout = secs;
187
188 if (!io_timeout || io_timeout > SELECT_TIMEOUT)
189 select_timeout = SELECT_TIMEOUT;
190 else
191 select_timeout = io_timeout;
192
193 allowed_lull = read_batch ? 0 : (io_timeout + 1) / 2;
194}
195
196/* Setup the fd used to receive MSG_* messages. Only needed during the
197 * early stages of being a local sender (up through the sending of the
198 * file list) or when we're the generator (to fetch the messages from
199 * the receiver). */
200void set_msg_fd_in(int fd)
201{
202 msg_fd_in = fd;
203}
204
205/* Setup the fd used to send our MSG_* messages. Only needed when
206 * we're the receiver (to send our messages to the generator). */
207void set_msg_fd_out(int fd)
208{
209 msg_fd_out = fd;
210 set_nonblocking(msg_fd_out);
211}
212
213/* Add a message to the pending MSG_* list. */
214static void msg_list_add(struct msg_list *lst, int code, const char *buf, int len)
215{
216 struct msg_list_item *m;
217 int sz = len + 4 + sizeof m[0] - 1;
218
219 if (!(m = (struct msg_list_item *)new_array(char, sz)))
220 out_of_memory("msg_list_add");
221 m->next = NULL;
222 m->len = len + 4;
223 SIVAL(m->buf, 0, ((code+MPLEX_BASE)<<24) | len);
224 memcpy(m->buf + 4, buf, len);
225 if (lst->tail)
226 lst->tail->next = m;
227 else
228 lst->head = m;
229 lst->tail = m;
230}
231
232/* Read a message from the MSG_* fd and handle it. This is called either
233 * during the early stages of being a local sender (up through the sending
234 * of the file list) or when we're the generator (to fetch the messages
235 * from the receiver). */
236static void read_msg_fd(void)
237{
238 char buf[2048];
239 size_t n;
240 int fd = msg_fd_in;
241 int tag, len;
242
243 /* Temporarily disable msg_fd_in. This is needed to avoid looping back
244 * to this routine from writefd_unbuffered(). */
245 msg_fd_in = -1;
246
247 read_loop(fd, buf, 4);
248 tag = IVAL(buf, 0);
249
250 len = tag & 0xFFFFFF;
251 tag = (tag >> 24) - MPLEX_BASE;
252
253 switch (tag) {
254 case MSG_DONE:
255 if (len != 0 || !am_generator) {
256 rprintf(FERROR, "invalid message %d:%d\n", tag, len);
257 exit_cleanup(RERR_STREAMIO);
258 }
259 flist_ndx_push(&redo_list, -1);
260 break;
261 case MSG_REDO:
262 if (len != 4 || !am_generator) {
263 rprintf(FERROR, "invalid message %d:%d\n", tag, len);
264 exit_cleanup(RERR_STREAMIO);
265 }
266 read_loop(fd, buf, 4);
267 if (remove_source_files)
268 decrement_active_files(IVAL(buf,0));
269 flist_ndx_push(&redo_list, IVAL(buf,0));
270 break;
271 case MSG_DELETED:
272 if (len >= (int)sizeof buf || !am_generator) {
273 rprintf(FERROR, "invalid message %d:%d\n", tag, len);
274 exit_cleanup(RERR_STREAMIO);
275 }
276 read_loop(fd, buf, len);
277 send_msg(MSG_DELETED, buf, len);
278 break;
279 case MSG_SUCCESS:
280 if (len != 4 || !am_generator) {
281 rprintf(FERROR, "invalid message %d:%d\n", tag, len);
282 exit_cleanup(RERR_STREAMIO);
283 }
284 read_loop(fd, buf, len);
285 if (remove_source_files) {
286 decrement_active_files(IVAL(buf,0));
287 send_msg(MSG_SUCCESS, buf, len);
288 }
289 if (preserve_hard_links)
290 flist_ndx_push(&hlink_list, IVAL(buf,0));
291 break;
292 case MSG_SOCKERR:
293 case MSG_CLIENT:
294 if (!am_generator) {
295 rprintf(FERROR, "invalid message %d:%d\n", tag, len);
296 exit_cleanup(RERR_STREAMIO);
297 }
298 if (tag == MSG_SOCKERR)
299 close_multiplexing_out();
300 /* FALL THROUGH */
301 case MSG_INFO:
302 case MSG_ERROR:
303 case MSG_LOG:
304 while (len) {
305 n = len;
306 if (n >= sizeof buf)
307 n = sizeof buf - 1;
308 read_loop(fd, buf, n);
309 rwrite((enum logcode)tag, buf, n);
310 len -= n;
311 }
312 break;
313 default:
314 rprintf(FERROR, "unknown message %d:%d [%s]\n",
315 tag, len, who_am_i());
316 exit_cleanup(RERR_STREAMIO);
317 }
318
319 msg_fd_in = fd;
320}
321
322/* This is used by the generator to limit how many file transfers can
323 * be active at once when --remove-source-files is specified. Without
324 * this, sender-side deletions were mostly happening at the end. */
325void increment_active_files(int ndx, int itemizing, enum logcode code)
326{
327 /* TODO: tune these limits? */
328 while (active_filecnt >= (active_bytecnt >= 128*1024 ? 10 : 50)) {
329#ifdef SUPPORT_HARD_LINKS
330 if (hlink_list.head)
331 check_for_finished_hlinks(itemizing, code);
332#endif
333 read_msg_fd();
334 }
335
336 active_filecnt++;
337 active_bytecnt += F_LENGTH(the_file_list->files[ndx]);
338}
339
340void decrement_active_files(int ndx)
341{
342 active_filecnt--;
343 active_bytecnt -= F_LENGTH(the_file_list->files[ndx]);
344}
345
346/* Try to push messages off the list onto the wire. If we leave with more
347 * to do, return 0. On error, return -1. If everything flushed, return 1.
348 * This is only active in the receiver. */
349static int msg2genr_flush(int flush_it_all)
350{
351 static int written = 0;
352 struct timeval tv;
353 fd_set fds;
354
355 if (msg_fd_out < 0)
356 return -1;
357
358 while (msg2genr.head) {
359 struct msg_list_item *m = msg2genr.head;
360 int n = write(msg_fd_out, m->buf + written, m->len - written);
361 if (n < 0) {
362 if (errno == EINTR)
363 continue;
364 if (errno != EWOULDBLOCK && errno != EAGAIN)
365 return -1;
366 if (!flush_it_all)
367 return 0;
368 FD_ZERO(&fds);
369 FD_SET(msg_fd_out, &fds);
370 tv.tv_sec = select_timeout;
371 tv.tv_usec = 0;
372 if (!select(msg_fd_out+1, NULL, &fds, NULL, &tv))
373 check_timeout();
374 } else if ((written += n) == m->len) {
375 msg2genr.head = m->next;
376 if (!msg2genr.head)
377 msg2genr.tail = NULL;
378 free(m);
379 written = 0;
380 }
381 }
382 return 1;
383}
384
385int send_msg(enum msgcode code, const char *buf, int len)
386{
387 if (msg_fd_out < 0) {
388 if (!defer_forwarding_messages)
389 return io_multiplex_write(code, buf, len);
390 if (!io_multiplexing_out)
391 return 0;
392 msg_list_add(&msg2sndr, code, buf, len);
393 return 1;
394 }
395 msg_list_add(&msg2genr, code, buf, len);
396 msg2genr_flush(NORMAL_FLUSH);
397 return 1;
398}
399
400void send_msg_int(enum msgcode code, int num)
401{
402 char numbuf[4];
403 SIVAL(numbuf, 0, num);
404 send_msg(code, numbuf, 4);
405}
406
407int get_redo_num(int itemizing, enum logcode code)
408{
409 while (1) {
410#ifdef SUPPORT_HARD_LINKS
411 if (hlink_list.head)
412 check_for_finished_hlinks(itemizing, code);
413#endif
414 if (redo_list.head)
415 break;
416 read_msg_fd();
417 }
418
419 return flist_ndx_pop(&redo_list);
420}
421
422int get_hlink_num(void)
423{
424 return flist_ndx_pop(&hlink_list);
425}
426
427/**
428 * When we're the receiver and we have a local --files-from list of names
429 * that needs to be sent over the socket to the sender, we have to do two
430 * things at the same time: send the sender a list of what files we're
431 * processing and read the incoming file+info list from the sender. We do
432 * this by augmenting the read_timeout() function to copy this data. It
433 * uses the io_filesfrom_buf to read a block of data from f_in (when it is
434 * ready, since it might be a pipe) and then blast it out f_out (when it
435 * is ready to receive more data).
436 */
437void io_set_filesfrom_fds(int f_in, int f_out)
438{
439 io_filesfrom_f_in = f_in;
440 io_filesfrom_f_out = f_out;
441 io_filesfrom_bp = io_filesfrom_buf;
442 io_filesfrom_lastchar = '\0';
443 io_filesfrom_buflen = 0;
444}
445
446/* It's almost always an error to get an EOF when we're trying to read from the
447 * network, because the protocol is (for the most part) self-terminating.
448 *
449 * There is one case for the receiver when it is at the end of the transfer
450 * (hanging around reading any keep-alive packets that might come its way): if
451 * the sender dies before the generator's kill-signal comes through, we can end
452 * up here needing to loop until the kill-signal arrives. In this situation,
453 * kluge_around_eof will be < 0.
454 *
455 * There is another case for older protocol versions (< 24) where the module
456 * listing was not terminated, so we must ignore an EOF error in that case and
457 * exit. In this situation, kluge_around_eof will be > 0. */
458static void whine_about_eof(int fd)
459{
460 if (kluge_around_eof && fd == sock_f_in) {
461 int i;
462 if (kluge_around_eof > 0)
463 exit_cleanup(0);
464 /* If we're still here after 10 seconds, exit with an error. */
465 for (i = 10*1000/20; i--; )
466 msleep(20);
467 }
468
469 rprintf(FERROR, RSYNC_NAME ": connection unexpectedly closed "
470 "(%.0f bytes received so far) [%s]\n",
471 (double)stats.total_read, who_am_i());
472
473 exit_cleanup(RERR_STREAMIO);
474}
475
476/**
477 * Read from a socket with I/O timeout. return the number of bytes
478 * read. If no bytes can be read then exit, never return a number <= 0.
479 *
480 * TODO: If the remote shell connection fails, then current versions
481 * actually report an "unexpected EOF" error here. Since it's a
482 * fairly common mistake to try to use rsh when ssh is required, we
483 * should trap that: if we fail to read any data at all, we should
484 * give a better explanation. We can tell whether the connection has
485 * started by looking e.g. at whether the remote version is known yet.
486 */
487static int read_timeout(int fd, char *buf, size_t len)
488{
489 int n, cnt = 0;
490
491 io_flush(NORMAL_FLUSH);
492
493 while (cnt == 0) {
494 /* until we manage to read *something* */
495 fd_set r_fds, w_fds;
496 struct timeval tv;
497 int maxfd = fd;
498 int count;
499
500 FD_ZERO(&r_fds);
501 FD_ZERO(&w_fds);
502 FD_SET(fd, &r_fds);
503 if (msg2genr.head) {
504 FD_SET(msg_fd_out, &w_fds);
505 if (msg_fd_out > maxfd)
506 maxfd = msg_fd_out;
507 }
508 if (io_filesfrom_f_out >= 0) {
509 int new_fd;
510 if (io_filesfrom_buflen == 0) {
511 if (io_filesfrom_f_in >= 0) {
512 FD_SET(io_filesfrom_f_in, &r_fds);
513 new_fd = io_filesfrom_f_in;
514 } else {
515 io_filesfrom_f_out = -1;
516 new_fd = -1;
517 }
518 } else {
519 FD_SET(io_filesfrom_f_out, &w_fds);
520 new_fd = io_filesfrom_f_out;
521 }
522 if (new_fd > maxfd)
523 maxfd = new_fd;
524 }
525
526 tv.tv_sec = select_timeout;
527 tv.tv_usec = 0;
528
529 errno = 0;
530
531 count = select(maxfd + 1, &r_fds, &w_fds, NULL, &tv);
532
533 if (count <= 0) {
534 if (errno == EBADF)
535 exit_cleanup(RERR_SOCKETIO);
536 check_timeout();
537 continue;
538 }
539
540 if (msg2genr.head && FD_ISSET(msg_fd_out, &w_fds))
541 msg2genr_flush(NORMAL_FLUSH);
542
543 if (io_filesfrom_f_out >= 0) {
544 if (io_filesfrom_buflen) {
545 if (FD_ISSET(io_filesfrom_f_out, &w_fds)) {
546 int l = write(io_filesfrom_f_out,
547 io_filesfrom_bp,
548 io_filesfrom_buflen);
549 if (l > 0) {
550 if (!(io_filesfrom_buflen -= l))
551 io_filesfrom_bp = io_filesfrom_buf;
552 else
553 io_filesfrom_bp += l;
554 } else {
555 /* XXX should we complain? */
556 io_filesfrom_f_out = -1;
557 }
558 }
559 } else if (io_filesfrom_f_in >= 0) {
560 if (FD_ISSET(io_filesfrom_f_in, &r_fds)) {
561 int l = read(io_filesfrom_f_in,
562 io_filesfrom_buf,
563 sizeof io_filesfrom_buf);
564 if (l <= 0) {
565 /* Send end-of-file marker */
566 io_filesfrom_buf[0] = '\0';
567 io_filesfrom_buf[1] = '\0';
568 io_filesfrom_buflen = io_filesfrom_lastchar? 2 : 1;
569 io_filesfrom_f_in = -1;
570 } else {
571 if (!eol_nulls) {
572 char *s = io_filesfrom_buf + l;
573 /* Transform CR and/or LF into '\0' */
574 while (s-- > io_filesfrom_buf) {
575 if (*s == '\n' || *s == '\r')
576 *s = '\0';
577 }
578 }
579 if (!io_filesfrom_lastchar) {
580 /* Last buf ended with a '\0', so don't
581 * let this buf start with one. */
582 while (l && !*io_filesfrom_bp)
583 io_filesfrom_bp++, l--;
584 }
585 if (!l)
586 io_filesfrom_bp = io_filesfrom_buf;
587 else {
588 char *f = io_filesfrom_bp;
589 char *t = f;
590 char *eob = f + l;
591 /* Eliminate any multi-'\0' runs. */
592 while (f != eob) {
593 if (!(*t++ = *f++)) {
594 while (f != eob && !*f)
595 f++, l--;
596 }
597 }
598 io_filesfrom_lastchar = f[-1];
599 }
600 io_filesfrom_buflen = l;
601 }
602 }
603 }
604 }
605
606 if (!FD_ISSET(fd, &r_fds))
607 continue;
608
609 n = read(fd, buf, len);
610
611 if (n <= 0) {
612 if (n == 0)
613 whine_about_eof(fd); /* Doesn't return. */
614 if (errno == EINTR || errno == EWOULDBLOCK
615 || errno == EAGAIN)
616 continue;
617
618 /* Don't write errors on a dead socket. */
619 if (fd == sock_f_in) {
620 close_multiplexing_out();
621 rsyserr(FSOCKERR, errno, "read error");
622 } else
623 rsyserr(FERROR, errno, "read error");
624 exit_cleanup(RERR_STREAMIO);
625 }
626
627 buf += n;
628 len -= n;
629 cnt += n;
630
631 if (fd == sock_f_in && io_timeout)
632 last_io_in = time(NULL);
633 }
634
635 return cnt;
636}
637
638/**
639 * Read a line into the "fname" buffer (which must be at least MAXPATHLEN
640 * characters long).
641 */
642int read_filesfrom_line(int fd, char *fname)
643{
644 char ch, *s, *eob = fname + MAXPATHLEN - 1;
645 int cnt;
646 int reading_remotely = filesfrom_host != NULL;
647 int nulls = eol_nulls || reading_remotely;
648
649 start:
650 s = fname;
651 while (1) {
652 cnt = read(fd, &ch, 1);
653 if (cnt < 0 && (errno == EWOULDBLOCK
654 || errno == EINTR || errno == EAGAIN)) {
655 struct timeval tv;
656 fd_set r_fds, e_fds;
657 FD_ZERO(&r_fds);
658 FD_SET(fd, &r_fds);
659 FD_ZERO(&e_fds);
660 FD_SET(fd, &e_fds);
661 tv.tv_sec = select_timeout;
662 tv.tv_usec = 0;
663 if (!select(fd+1, &r_fds, NULL, &e_fds, &tv))
664 check_timeout();
665 if (FD_ISSET(fd, &e_fds)) {
666 rsyserr(FINFO, errno,
667 "select exception on fd %d", fd);
668 }
669 continue;
670 }
671 if (cnt != 1)
672 break;
673 if (nulls? !ch : (ch == '\r' || ch == '\n')) {
674 /* Skip empty lines if reading locally. */
675 if (!reading_remotely && s == fname)
676 continue;
677 break;
678 }
679 if (s < eob)
680 *s++ = ch;
681 }
682 *s = '\0';
683
684 /* Dump comments. */
685 if (*fname == '#' || *fname == ';')
686 goto start;
687
688 return s - fname;
689}
690
691static char *iobuf_out;
692static int iobuf_out_cnt;
693
694void io_start_buffering_out(void)
695{
696 if (iobuf_out)
697 return;
698 if (!(iobuf_out = new_array(char, IO_BUFFER_SIZE)))
699 out_of_memory("io_start_buffering_out");
700 iobuf_out_cnt = 0;
701}
702
703static char *iobuf_in;
704static size_t iobuf_in_siz;
705
706void io_start_buffering_in(void)
707{
708 if (iobuf_in)
709 return;
710 iobuf_in_siz = 2 * IO_BUFFER_SIZE;
711 if (!(iobuf_in = new_array(char, iobuf_in_siz)))
712 out_of_memory("io_start_buffering_in");
713}
714
715void io_end_buffering(void)
716{
717 io_flush(NORMAL_FLUSH);
718 if (!io_multiplexing_out) {
719 free(iobuf_out);
720 iobuf_out = NULL;
721 }
722}
723
724void maybe_flush_socket(void)
725{
726 if (iobuf_out && iobuf_out_cnt && time(NULL) - last_io_out >= 5)
727 io_flush(NORMAL_FLUSH);
728}
729
730void maybe_send_keepalive(void)
731{
732 if (time(NULL) - last_io_out >= allowed_lull) {
733 if (!iobuf_out || !iobuf_out_cnt) {
734 if (protocol_version < 29)
735 return; /* there's nothing we can do */
736 write_int(sock_f_out, the_file_list->count);
737 write_shortint(sock_f_out, ITEM_IS_NEW);
738 }
739 if (iobuf_out)
740 io_flush(NORMAL_FLUSH);
741 }
742}
743
744/**
745 * Continue trying to read len bytes - don't return until len has been
746 * read.
747 **/
748static void read_loop(int fd, char *buf, size_t len)
749{
750 while (len) {
751 int n = read_timeout(fd, buf, len);
752
753 buf += n;
754 len -= n;
755 }
756}
757
758/**
759 * Read from the file descriptor handling multiplexing - return number
760 * of bytes read.
761 *
762 * Never returns <= 0.
763 */
764static int readfd_unbuffered(int fd, char *buf, size_t len)
765{
766 static size_t remaining;
767 static size_t iobuf_in_ndx;
768 size_t msg_bytes;
769 int tag, cnt = 0;
770 char line[BIGPATHBUFLEN];
771
772 if (!iobuf_in || fd != sock_f_in)
773 return read_timeout(fd, buf, len);
774
775 if (!io_multiplexing_in && remaining == 0) {
776 remaining = read_timeout(fd, iobuf_in, iobuf_in_siz);
777 iobuf_in_ndx = 0;
778 }
779
780 while (cnt == 0) {
781 if (remaining) {
782 len = MIN(len, remaining);
783 memcpy(buf, iobuf_in + iobuf_in_ndx, len);
784 iobuf_in_ndx += len;
785 remaining -= len;
786 cnt = len;
787 break;
788 }
789
790 read_loop(fd, line, 4);
791 tag = IVAL(line, 0);
792
793 msg_bytes = tag & 0xFFFFFF;
794 tag = (tag >> 24) - MPLEX_BASE;
795
796 switch (tag) {
797 case MSG_DATA:
798 if (msg_bytes > iobuf_in_siz) {
799 if (!(iobuf_in = realloc_array(iobuf_in, char,
800 msg_bytes)))
801 out_of_memory("readfd_unbuffered");
802 iobuf_in_siz = msg_bytes;
803 }
804 read_loop(fd, iobuf_in, msg_bytes);
805 remaining = msg_bytes;
806 iobuf_in_ndx = 0;
807 break;
808 case MSG_DELETED:
809 if (msg_bytes >= sizeof line)
810 goto overflow;
811 read_loop(fd, line, msg_bytes);
812 /* A directory name was sent with the trailing null */
813 if (msg_bytes > 0 && !line[msg_bytes-1])
814 log_delete(line, S_IFDIR);
815 else {
816 line[msg_bytes] = '\0';
817 log_delete(line, S_IFREG);
818 }
819 break;
820 case MSG_SUCCESS:
821 if (msg_bytes != 4) {
822 rprintf(FERROR, "invalid multi-message %d:%ld [%s]\n",
823 tag, (long)msg_bytes, who_am_i());
824 exit_cleanup(RERR_STREAMIO);
825 }
826 read_loop(fd, line, msg_bytes);
827 successful_send(IVAL(line, 0));
828 break;
829 case MSG_INFO:
830 case MSG_ERROR:
831 if (msg_bytes >= sizeof line) {
832 overflow:
833 rprintf(FERROR,
834 "multiplexing overflow %d:%ld [%s]\n",
835 tag, (long)msg_bytes, who_am_i());
836 exit_cleanup(RERR_STREAMIO);
837 }
838 read_loop(fd, line, msg_bytes);
839 rwrite((enum logcode)tag, line, msg_bytes);
840 break;
841 default:
842 rprintf(FERROR, "unexpected tag %d [%s]\n",
843 tag, who_am_i());
844 exit_cleanup(RERR_STREAMIO);
845 }
846 }
847
848 if (remaining == 0)
849 io_flush(NORMAL_FLUSH);
850
851 return cnt;
852}
853
854/**
855 * Do a buffered read from @p fd. Don't return until all @p n bytes
856 * have been read. If all @p n can't be read then exit with an
857 * error.
858 **/
859static void readfd(int fd, char *buffer, size_t N)
860{
861 int cnt;
862 size_t total = 0;
863
864 while (total < N) {
865 cnt = readfd_unbuffered(fd, buffer + total, N-total);
866 total += cnt;
867 }
868
869 if (fd == write_batch_monitor_in) {
870 if ((size_t)write(batch_fd, buffer, total) != total)
871 exit_cleanup(RERR_FILEIO);
872 }
873
874 if (fd == sock_f_in)
875 stats.total_read += total;
876}
877
878unsigned short read_shortint(int f)
879{
880 char b[2];
881 readfd(f, b, 2);
882 return (UVAL(b, 1) << 8) + UVAL(b, 0);
883}
884
885int32 read_int(int f)
886{
887 char b[4];
888 int32 num;
889
890 readfd(f, b, 4);
891 num = IVAL(b, 0);
892#if SIZEOF_INT32 > 4
893 if (num & (int32)0x80000000)
894 num |= ~(int32)0xffffffff;
895#endif
896 return num;
897}
898
899int64 read_longint(int f)
900{
901 int64 num;
902 char b[9];
903
904 if (protocol_version < 30) {
905 num = read_int(f);
906
907 if ((int32)num != (int32)0xffffffff)
908 return num;
909
910#if SIZEOF_INT64 < 8
911 rprintf(FERROR, "Integer overflow: attempted 64-bit offset\n");
912 exit_cleanup(RERR_UNSUPPORTED);
913#else
914 readfd(f, b, 8);
915 num = IVAL(b,0) | (((int64)IVAL(b,4))<<32);
916#endif
917 } else {
918 int cnt;
919 readfd(f, b, 3);
920 cnt = int_byte_cnt[CVAL(b, 0) / 4];
921#if SIZEOF_INT64 < 8
922 if (cnt > 5 || (cnt == 5 && (CVAL(b,0)&0x3F || CVAL(b,1)&0x80))) {
923 rprintf(FERROR, "Integer overflow: attempted 64-bit offset\n");
924 exit_cleanup(RERR_UNSUPPORTED);
925 }
926#endif
927 if (cnt > 3)
928 readfd(f, b + 3, cnt - 3);
929 switch (cnt) {
930 case 3:
931 num = NVAL3(b, 0);
932 break;
933 case 4:
934 num = NVAL4(b, 0x80);
935 break;
936 case 5:
937 num = NVAL5(b, 0xC0);
938 break;
939#if SIZEOF_INT64 >= 8
940 case 6:
941 num = NVAL6(b, 0xE0);
942 break;
943 case 7:
944 num = NVAL7(b, 0xF0);
945 break;
946 case 8:
947 num = NVAL8(b, 0xF8);
948 break;
949 case 9:
950 num = NVAL8(b+1, 0);
951 break;
952#endif
953 default:
954 exit_cleanup(RERR_PROTOCOL); /* impossible... */
955 }
956 }
957
958 return num;
959}
960
961void read_buf(int f, char *buf, size_t len)
962{
963 readfd(f,buf,len);
964}
965
966void read_sbuf(int f, char *buf, size_t len)
967{
968 readfd(f, buf, len);
969 buf[len] = '\0';
970}
971
972uchar read_byte(int f)
973{
974 uchar c;
975 readfd(f, (char *)&c, 1);
976 return c;
977}
978
979int read_vstring(int f, char *buf, int bufsize)
980{
981 int len = read_byte(f);
982
983 if (len & 0x80)
984 len = (len & ~0x80) * 0x100 + read_byte(f);
985
986 if (len >= bufsize) {
987 rprintf(FERROR, "over-long vstring received (%d > %d)\n",
988 len, bufsize - 1);
989 return -1;
990 }
991
992 if (len)
993 readfd(f, buf, len);
994 buf[len] = '\0';
995 return len;
996}
997
998/* Populate a sum_struct with values from the socket. This is
999 * called by both the sender and the receiver. */
1000void read_sum_head(int f, struct sum_struct *sum)
1001{
1002 sum->count = read_int(f);
1003 if (sum->count < 0) {
1004 rprintf(FERROR, "Invalid checksum count %ld [%s]\n",
1005 (long)sum->count, who_am_i());
1006 exit_cleanup(RERR_PROTOCOL);
1007 }
1008 sum->blength = read_int(f);
1009 if (sum->blength < 0 || sum->blength > MAX_BLOCK_SIZE) {
1010 rprintf(FERROR, "Invalid block length %ld [%s]\n",
1011 (long)sum->blength, who_am_i());
1012 exit_cleanup(RERR_PROTOCOL);
1013 }
1014 sum->s2length = protocol_version < 27 ? csum_length : (int)read_int(f);
1015 if (sum->s2length < 0 || sum->s2length > MD4_SUM_LENGTH) {
1016 rprintf(FERROR, "Invalid checksum length %d [%s]\n",
1017 sum->s2length, who_am_i());
1018 exit_cleanup(RERR_PROTOCOL);
1019 }
1020 sum->remainder = read_int(f);
1021 if (sum->remainder < 0 || sum->remainder > sum->blength) {
1022 rprintf(FERROR, "Invalid remainder length %ld [%s]\n",
1023 (long)sum->remainder, who_am_i());
1024 exit_cleanup(RERR_PROTOCOL);
1025 }
1026}
1027
1028/* Send the values from a sum_struct over the socket. Set sum to
1029 * NULL if there are no checksums to send. This is called by both
1030 * the generator and the sender. */
1031void write_sum_head(int f, struct sum_struct *sum)
1032{
1033 static struct sum_struct null_sum;
1034
1035 if (sum == NULL)
1036 sum = &null_sum;
1037
1038 write_int(f, sum->count);
1039 write_int(f, sum->blength);
1040 if (protocol_version >= 27)
1041 write_int(f, sum->s2length);
1042 write_int(f, sum->remainder);
1043}
1044
1045/**
1046 * Sleep after writing to limit I/O bandwidth usage.
1047 *
1048 * @todo Rather than sleeping after each write, it might be better to
1049 * use some kind of averaging. The current algorithm seems to always
1050 * use a bit less bandwidth than specified, because it doesn't make up
1051 * for slow periods. But arguably this is a feature. In addition, we
1052 * ought to take the time used to write the data into account.
1053 *
1054 * During some phases of big transfers (file FOO is uptodate) this is
1055 * called with a small bytes_written every time. As the kernel has to
1056 * round small waits up to guarantee that we actually wait at least the
1057 * requested number of microseconds, this can become grossly inaccurate.
1058 * We therefore keep track of the bytes we've written over time and only
1059 * sleep when the accumulated delay is at least 1 tenth of a second.
1060 **/
1061static void sleep_for_bwlimit(int bytes_written)
1062{
1063 static struct timeval prior_tv;
1064 static long total_written = 0;
1065 struct timeval tv, start_tv;
1066 long elapsed_usec, sleep_usec;
1067
1068#define ONE_SEC 1000000L /* # of microseconds in a second */
1069
1070 if (!bwlimit_writemax)
1071 return;
1072
1073 total_written += bytes_written;
1074
1075 gettimeofday(&start_tv, NULL);
1076 if (prior_tv.tv_sec) {
1077 elapsed_usec = (start_tv.tv_sec - prior_tv.tv_sec) * ONE_SEC
1078 + (start_tv.tv_usec - prior_tv.tv_usec);
1079 total_written -= elapsed_usec * bwlimit / (ONE_SEC/1024);
1080 if (total_written < 0)
1081 total_written = 0;
1082 }
1083
1084 sleep_usec = total_written * (ONE_SEC/1024) / bwlimit;
1085 if (sleep_usec < ONE_SEC / 10) {
1086 prior_tv = start_tv;
1087 return;
1088 }
1089
1090 tv.tv_sec = sleep_usec / ONE_SEC;
1091 tv.tv_usec = sleep_usec % ONE_SEC;
1092 select(0, NULL, NULL, NULL, &tv);
1093
1094 gettimeofday(&prior_tv, NULL);
1095 elapsed_usec = (prior_tv.tv_sec - start_tv.tv_sec) * ONE_SEC
1096 + (prior_tv.tv_usec - start_tv.tv_usec);
1097 total_written = (sleep_usec - elapsed_usec) * bwlimit / (ONE_SEC/1024);
1098}
1099
1100/* Write len bytes to the file descriptor fd, looping as necessary to get
1101 * the job done and also (in certain circumstances) reading any data on
1102 * msg_fd_in to avoid deadlock.
1103 *
1104 * This function underlies the multiplexing system. The body of the
1105 * application never calls this function directly. */
1106static void writefd_unbuffered(int fd, const char *buf, size_t len)
1107{
1108 size_t n, total = 0;
1109 fd_set w_fds, r_fds, e_fds;
1110 int maxfd, count, cnt, using_r_fds;
1111 int defer_save = defer_forwarding_messages;
1112 struct timeval tv;
1113
1114 no_flush++;
1115
1116 while (total < len) {
1117 FD_ZERO(&w_fds);
1118 FD_SET(fd, &w_fds);
1119 FD_ZERO(&e_fds);
1120 FD_SET(fd, &e_fds);
1121 maxfd = fd;
1122
1123 if (msg_fd_in >= 0) {
1124 FD_ZERO(&r_fds);
1125 FD_SET(msg_fd_in, &r_fds);
1126 if (msg_fd_in > maxfd)
1127 maxfd = msg_fd_in;
1128 using_r_fds = 1;
1129 } else
1130 using_r_fds = 0;
1131
1132 tv.tv_sec = select_timeout;
1133 tv.tv_usec = 0;
1134
1135 errno = 0;
1136 count = select(maxfd + 1, using_r_fds ? &r_fds : NULL,
1137 &w_fds, &e_fds, &tv);
1138
1139 if (count <= 0) {
1140 if (count < 0 && errno == EBADF)
1141 exit_cleanup(RERR_SOCKETIO);
1142 check_timeout();
1143 continue;
1144 }
1145
1146 if (FD_ISSET(fd, &e_fds)) {
1147 rsyserr(FINFO, errno,
1148 "select exception on fd %d", fd);
1149 }
1150
1151 if (using_r_fds && FD_ISSET(msg_fd_in, &r_fds))
1152 read_msg_fd();
1153
1154 if (!FD_ISSET(fd, &w_fds))
1155 continue;
1156
1157 n = len - total;
1158 if (bwlimit_writemax && n > bwlimit_writemax)
1159 n = bwlimit_writemax;
1160 cnt = write(fd, buf + total, n);
1161
1162 if (cnt <= 0) {
1163 if (cnt < 0) {
1164 if (errno == EINTR)
1165 continue;
1166 if (errno == EWOULDBLOCK || errno == EAGAIN) {
1167 msleep(1);
1168 continue;
1169 }
1170 }
1171
1172 /* Don't try to write errors back across the stream. */
1173 if (fd == sock_f_out)
1174 close_multiplexing_out();
1175 rsyserr(FERROR, errno,
1176 "writefd_unbuffered failed to write %ld bytes [%s]",
1177 (long)len, who_am_i());
1178 /* If the other side is sending us error messages, try
1179 * to grab any messages they sent before they died. */
1180 while (fd == sock_f_out && io_multiplexing_in) {
1181 set_io_timeout(30);
1182 ignore_timeout = 0;
1183 readfd_unbuffered(sock_f_in, io_filesfrom_buf,
1184 sizeof io_filesfrom_buf);
1185 }
1186 exit_cleanup(RERR_STREAMIO);
1187 }
1188
1189 total += cnt;
1190 defer_forwarding_messages = 1;
1191
1192 if (fd == sock_f_out) {
1193 if (io_timeout || am_generator)
1194 last_io_out = time(NULL);
1195 sleep_for_bwlimit(cnt);
1196 }
1197 }
1198
1199 defer_forwarding_messages = defer_save;
1200 no_flush--;
1201}
1202
1203static void msg2sndr_flush(void)
1204{
1205 if (defer_forwarding_messages)
1206 return;
1207
1208 while (msg2sndr.head && io_multiplexing_out) {
1209 struct msg_list_item *m = msg2sndr.head;
1210 if (!(msg2sndr.head = m->next))
1211 msg2sndr.tail = NULL;
1212 stats.total_written += m->len;
1213 defer_forwarding_messages = 1;
1214 writefd_unbuffered(sock_f_out, m->buf, m->len);
1215 defer_forwarding_messages = 0;
1216 free(m);
1217 }
1218}
1219
1220/**
1221 * Write an message to a multiplexed stream. If this fails then rsync
1222 * exits.
1223 **/
1224static void mplex_write(enum msgcode code, const char *buf, size_t len)
1225{
1226 char buffer[1024];
1227 size_t n = len;
1228
1229 SIVAL(buffer, 0, ((MPLEX_BASE + (int)code)<<24) + len);
1230
1231 if (n > sizeof buffer - 4)
1232 n = 0;
1233 else
1234 memcpy(buffer + 4, buf, n);
1235
1236 writefd_unbuffered(sock_f_out, buffer, n+4);
1237
1238 len -= n;
1239 buf += n;
1240
1241 if (len) {
1242 defer_forwarding_messages = 1;
1243 writefd_unbuffered(sock_f_out, buf, len);
1244 defer_forwarding_messages = 0;
1245 msg2sndr_flush();
1246 }
1247}
1248
1249void io_flush(int flush_it_all)
1250{
1251 msg2genr_flush(flush_it_all);
1252 msg2sndr_flush();
1253
1254 if (!iobuf_out_cnt || no_flush)
1255 return;
1256
1257 if (io_multiplexing_out)
1258 mplex_write(MSG_DATA, iobuf_out, iobuf_out_cnt);
1259 else
1260 writefd_unbuffered(sock_f_out, iobuf_out, iobuf_out_cnt);
1261 iobuf_out_cnt = 0;
1262}
1263
1264static void writefd(int fd, const char *buf, size_t len)
1265{
1266 if (fd == msg_fd_out) {
1267 rprintf(FERROR, "Internal error: wrong write used in receiver.\n");
1268 exit_cleanup(RERR_PROTOCOL);
1269 }
1270
1271 if (fd == sock_f_out)
1272 stats.total_written += len;
1273
1274 if (fd == write_batch_monitor_out) {
1275 if ((size_t)write(batch_fd, buf, len) != len)
1276 exit_cleanup(RERR_FILEIO);
1277 }
1278
1279 if (!iobuf_out || fd != sock_f_out) {
1280 writefd_unbuffered(fd, buf, len);
1281 return;
1282 }
1283
1284 while (len) {
1285 int n = MIN((int)len, IO_BUFFER_SIZE - iobuf_out_cnt);
1286 if (n > 0) {
1287 memcpy(iobuf_out+iobuf_out_cnt, buf, n);
1288 buf += n;
1289 len -= n;
1290 iobuf_out_cnt += n;
1291 }
1292
1293 if (iobuf_out_cnt == IO_BUFFER_SIZE)
1294 io_flush(NORMAL_FLUSH);
1295 }
1296}
1297
1298void write_shortint(int f, unsigned short x)
1299{
1300 char b[2];
1301 b[0] = (char)x;
1302 b[1] = (char)(x >> 8);
1303 writefd(f, b, 2);
1304}
1305
1306void write_int(int f, int32 x)
1307{
1308 char b[4];
1309 SIVAL(b, 0, x);
1310 writefd(f, b, 4);
1311}
1312
1313/*
1314 * Note: int64 may actually be a 32-bit type if ./configure couldn't find any
1315 * 64-bit types on this platform.
1316 */
1317void write_longint(int f, int64 x)
1318{
1319 char b[12];
1320
1321#if SIZEOF_INT64 < 8
1322 if (x < 0 || x > 0x7FFFFFFF) {
1323 rprintf(FERROR, "Integer overflow: attempted 64-bit offset\n");
1324 exit_cleanup(RERR_UNSUPPORTED);
1325 }
1326#endif
1327
1328 if (protocol_version < 30) {
1329 char * const s = b+4;
1330 SIVAL(s, 0, x);
1331#if SIZEOF_INT64 < 8
1332 writefd(f, s, 4);
1333#else
1334 if (x <= 0x7FFFFFFF && x >= 0) {
1335 writefd(f, s, 4);
1336 return;
1337 }
1338
1339 memset(b, 0xFF, 4);
1340 SIVAL(s, 4, x >> 32);
1341 writefd(f, b, 12);
1342 } else if (x < 0) {
1343 goto all_bits;
1344#endif
1345 } else if (x < ((int32)1<<(3*8-1))) {
1346 b[0] = (char)(x >> 16);
1347 b[1] = (char)(x >> 8);
1348 b[2] = (char)x;
1349 writefd(f, b, 3);
1350 } else if (x < ((int64)1<<(4*8-2))) {
1351 b[0] = (char)((x >> 24) | 0x80);
1352 b[1] = (char)(x >> 16);
1353 b[2] = (char)(x >> 8);
1354 b[3] = (char)x;
1355 writefd(f, b, 4);
1356#if SIZEOF_INT64 < 8
1357 } else {
1358 b[0] = 0xC0;
1359 b[1] = (char)(x >> 24);
1360 b[2] = (char)(x >> 16);
1361 b[3] = (char)(x >> 8);
1362 b[4] = (char)x;
1363 writefd(f, b, 5);
1364 }
1365#else
1366 } else if (x < ((int64)1<<(5*8-3))) {
1367 b[0] = (char)((x >> 32) | 0xC0);
1368 b[1] = (char)(x >> 24);
1369 b[2] = (char)(x >> 16);
1370 b[3] = (char)(x >> 8);
1371 b[4] = (char)x;
1372 writefd(f, b, 5);
1373 } else if (x < ((int64)1<<(6*8-4))) {
1374 b[0] = (char)((x >> 40) | 0xE0);
1375 b[1] = (char)(x >> 32);
1376 b[2] = (char)(x >> 24);
1377 b[3] = (char)(x >> 16);
1378 b[4] = (char)(x >> 8);
1379 b[5] = (char)x;
1380 writefd(f, b, 6);
1381 } else if (x < ((int64)1<<(7*8-5))) {
1382 b[0] = (char)((x >> 48) | 0xF0);
1383 b[1] = (char)(x >> 40);
1384 b[2] = (char)(x >> 32);
1385 b[3] = (char)(x >> 24);
1386 b[4] = (char)(x >> 16);
1387 b[5] = (char)(x >> 8);
1388 b[6] = (char)x;
1389 writefd(f, b, 7);
1390 } else if (x < ((int64)1<<(8*8-6))) {
1391 b[0] = (char)((x >> 56) | 0xF8);
1392 b[1] = (char)(x >> 48);
1393 b[2] = (char)(x >> 40);
1394 b[3] = (char)(x >> 32);
1395 b[4] = (char)(x >> 24);
1396 b[5] = (char)(x >> 16);
1397 b[6] = (char)(x >> 8);
1398 b[7] = (char)x;
1399 writefd(f, b, 8);
1400 } else {
1401 all_bits:
1402 b[0] = (char)0xFC;
1403 b[1] = (char)(x >> 56);
1404 b[2] = (char)(x >> 48);
1405 b[3] = (char)(x >> 40);
1406 b[4] = (char)(x >> 32);
1407 b[5] = (char)(x >> 24);
1408 b[6] = (char)(x >> 16);
1409 b[7] = (char)(x >> 8);
1410 b[8] = (char)x;
1411 writefd(f, b, 9);
1412 }
1413#endif
1414}
1415
1416void write_buf(int f, const char *buf, size_t len)
1417{
1418 writefd(f,buf,len);
1419}
1420
1421/** Write a string to the connection */
1422void write_sbuf(int f, const char *buf)
1423{
1424 writefd(f, buf, strlen(buf));
1425}
1426
1427void write_byte(int f, uchar c)
1428{
1429 writefd(f, (char *)&c, 1);
1430}
1431
1432void write_vstring(int f, const char *str, int len)
1433{
1434 uchar lenbuf[3], *lb = lenbuf;
1435
1436 if (len > 0x7F) {
1437 if (len > 0x7FFF) {
1438 rprintf(FERROR,
1439 "attempting to send over-long vstring (%d > %d)\n",
1440 len, 0x7FFF);
1441 exit_cleanup(RERR_PROTOCOL);
1442 }
1443 *lb++ = len / 0x100 + 0x80;
1444 }
1445 *lb = len;
1446
1447 writefd(f, (char*)lenbuf, lb - lenbuf + 1);
1448 if (len)
1449 writefd(f, str, len);
1450}
1451
1452/**
1453 * Read a line of up to @p maxlen characters into @p buf (not counting
1454 * the trailing null). Strips the (required) trailing newline and all
1455 * carriage returns.
1456 *
1457 * @return 1 for success; 0 for I/O error or truncation.
1458 **/
1459int read_line(int f, char *buf, size_t maxlen)
1460{
1461 while (maxlen) {
1462 buf[0] = 0;
1463 read_buf(f, buf, 1);
1464 if (buf[0] == 0)
1465 return 0;
1466 if (buf[0] == '\n')
1467 break;
1468 if (buf[0] != '\r') {
1469 buf++;
1470 maxlen--;
1471 }
1472 }
1473 *buf = '\0';
1474 return maxlen > 0;
1475}
1476
1477void io_printf(int fd, const char *format, ...)
1478{
1479 va_list ap;
1480 char buf[BIGPATHBUFLEN];
1481 int len;
1482
1483 va_start(ap, format);
1484 len = vsnprintf(buf, sizeof buf, format, ap);
1485 va_end(ap);
1486
1487 if (len < 0)
1488 exit_cleanup(RERR_STREAMIO);
1489
1490 if (len > (int)sizeof buf) {
1491 rprintf(FERROR, "io_printf() was too long for the buffer.\n");
1492 exit_cleanup(RERR_STREAMIO);
1493 }
1494
1495 write_sbuf(fd, buf);
1496}
1497
1498/** Setup for multiplexing a MSG_* stream with the data stream. */
1499void io_start_multiplex_out(void)
1500{
1501 io_flush(NORMAL_FLUSH);
1502 io_start_buffering_out();
1503 io_multiplexing_out = 1;
1504}
1505
1506/** Setup for multiplexing a MSG_* stream with the data stream. */
1507void io_start_multiplex_in(void)
1508{
1509 io_flush(NORMAL_FLUSH);
1510 io_start_buffering_in();
1511 io_multiplexing_in = 1;
1512}
1513
1514/** Write an message to the multiplexed data stream. */
1515int io_multiplex_write(enum msgcode code, const char *buf, size_t len)
1516{
1517 if (!io_multiplexing_out)
1518 return 0;
1519
1520 io_flush(NORMAL_FLUSH);
1521 stats.total_written += (len+4);
1522 mplex_write(code, buf, len);
1523 return 1;
1524}
1525
1526void close_multiplexing_in(void)
1527{
1528 io_multiplexing_in = 0;
1529}
1530
1531/** Stop output multiplexing. */
1532void close_multiplexing_out(void)
1533{
1534 io_multiplexing_out = 0;
1535}
1536
1537void start_write_batch(int fd)
1538{
1539 /* Some communication has already taken place, but we don't
1540 * enable batch writing until here so that we can write a
1541 * canonical record of the communication even though the
1542 * actual communication so far depends on whether a daemon
1543 * is involved. */
1544 write_int(batch_fd, protocol_version);
1545 write_int(batch_fd, checksum_seed);
1546
1547 if (am_sender)
1548 write_batch_monitor_out = fd;
1549 else
1550 write_batch_monitor_in = fd;
1551}
1552
1553void stop_write_batch(void)
1554{
1555 write_batch_monitor_out = -1;
1556 write_batch_monitor_in = -1;
1557}