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) 2003-2020 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 3 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, visit the http://fsf.org website.
21 */
22
23 /* Rsync provides its own multiplexing system, which is used to send
24 * stderr and stdout over a single socket.
25 *
26 * For historical reasons this is off during the start of the
27 * connection, but it's switched on quite early using
28 * io_start_multiplex_out() and io_start_multiplex_in(). */
29
30 #include "rsync.h"
31 #include "ifuncs.h"
32 #include "inums.h"
33
34 /** If no timeout is specified then use a 60 second select timeout */
35 #define SELECT_TIMEOUT 60
36
37 extern int bwlimit;
38 extern size_t bwlimit_writemax;
39 extern int io_timeout;
40 extern int am_server;
41 extern int am_sender;
42 extern int am_receiver;
43 extern int am_generator;
44 extern int msgs2stderr;
45 extern int inc_recurse;
46 extern int io_error;
47 extern int batch_fd;
48 extern int eol_nulls;
49 extern int flist_eof;
50 extern int file_total;
51 extern int file_old_total;
52 extern int list_only;
53 extern int read_batch;
54 extern int compat_flags;
55 extern int protect_args;
56 extern int checksum_seed;
57 extern int daemon_connection;
58 extern int protocol_version;
59 extern int remove_source_files;
60 extern int preserve_hard_links;
61 extern BOOL extra_flist_sending_enabled;
62 extern BOOL flush_ok_after_signal;
63 extern struct stats stats;
64 extern time_t stop_at_utime;
65 extern struct file_list *cur_flist;
66 #ifdef ICONV_OPTION
67 extern int filesfrom_convert;
68 extern iconv_t ic_send, ic_recv;
69 #endif
70
71 int csum_length = SHORT_SUM_LENGTH; /* initial value */
72 int allowed_lull = 0;
73 int msgdone_cnt = 0;
74 int forward_flist_data = 0;
75 BOOL flist_receiving_enabled = False;
76
77 /* Ignore an EOF error if non-zero. See whine_about_eof(). */
78 int kluge_around_eof = 0;
79 int got_kill_signal = -1; /* is set to 0 only after multiplexed I/O starts */
80
81 int sock_f_in = -1;
82 int sock_f_out = -1;
83
84 int64 total_data_read = 0;
85 int64 total_data_written = 0;
86
87 static struct {
88 xbuf in, out, msg;
89 int in_fd;
90 int out_fd; /* Both "out" and "msg" go to this fd. */
91 int in_multiplexed;
92 unsigned out_empty_len;
93 size_t raw_data_header_pos; /* in the out xbuf */
94 size_t raw_flushing_ends_before; /* in the out xbuf */
95 size_t raw_input_ends_before; /* in the in xbuf */
96 } iobuf = { .in_fd = -1, .out_fd = -1 };
97
98 static time_t last_io_in;
99 static time_t last_io_out;
100
101 static int write_batch_monitor_in = -1;
102 static int write_batch_monitor_out = -1;
103
104 static int ff_forward_fd = -1;
105 static int ff_reenable_multiplex = -1;
106 static char ff_lastchar = '\0';
107 static xbuf ff_xb = EMPTY_XBUF;
108 #ifdef ICONV_OPTION
109 static xbuf iconv_buf = EMPTY_XBUF;
110 #endif
111 static int select_timeout = SELECT_TIMEOUT;
112 static int active_filecnt = 0;
113 static OFF_T active_bytecnt = 0;
114 static int first_message = 1;
115
116 static char int_byte_extra[64] = {
117 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, /* (00 - 3F)/4 */
118 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, /* (40 - 7F)/4 */
119 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, 1, /* (80 - BF)/4 */
120 2, 2, 2, 2, 2, 2, 2, 2, 3, 3, 3, 3, 4, 4, 5, 6, /* (C0 - FF)/4 */
121 };
122
123 /* Our I/O buffers are sized with no bits on in the lowest byte of the "size"
124 * (indeed, our rounding of sizes in 1024-byte units assures more than this).
125 * This allows the code that is storing bytes near the physical end of a
126 * circular buffer to temporarily reduce the buffer's size (in order to make
127 * some storing idioms easier), while also making it simple to restore the
128 * buffer's actual size when the buffer's "pos" wraps around to the start (we
129 * just round the buffer's size up again). */
130
131 #define IOBUF_WAS_REDUCED(siz) ((siz) & 0xFF)
132 #define IOBUF_RESTORE_SIZE(siz) (((siz) | 0xFF) + 1)
133
134 #define IN_MULTIPLEXED (iobuf.in_multiplexed != 0)
135 #define IN_MULTIPLEXED_AND_READY (iobuf.in_multiplexed > 0)
136 #define OUT_MULTIPLEXED (iobuf.out_empty_len != 0)
137
138 #define PIO_NEED_INPUT (1<<0) /* The *_NEED_* flags are mutually exclusive. */
139 #define PIO_NEED_OUTROOM (1<<1)
140 #define PIO_NEED_MSGROOM (1<<2)
141
142 #define PIO_CONSUME_INPUT (1<<4) /* Must becombined with PIO_NEED_INPUT. */
143
144 #define PIO_INPUT_AND_CONSUME (PIO_NEED_INPUT | PIO_CONSUME_INPUT)
145 #define PIO_NEED_FLAGS (PIO_NEED_INPUT | PIO_NEED_OUTROOM | PIO_NEED_MSGROOM)
146
147 #define REMOTE_OPTION_ERROR "rsync: on remote machine: -"
148 #define REMOTE_OPTION_ERROR2 ": unknown option"
149
150 #define FILESFROM_BUFLEN 2048
151
152 enum festatus { FES_SUCCESS, FES_REDO, FES_NO_SEND };
153
154 static flist_ndx_list redo_list, hlink_list;
155
156 static void read_a_msg(void);
157 static void drain_multiplex_messages(void);
158 static void sleep_for_bwlimit(int bytes_written);
159
check_timeout(BOOL allow_keepalive,int keepalive_flags)160 static void check_timeout(BOOL allow_keepalive, int keepalive_flags)
161 {
162 time_t t, chk;
163
164 /* On the receiving side, the generator is now the one that decides
165 * when a timeout has occurred. When it is sifting through a lot of
166 * files looking for work, it will be sending keep-alive messages to
167 * the sender, and even though the receiver won't be sending/receiving
168 * anything (not even keep-alive messages), the successful writes to
169 * the sender will keep things going. If the receiver is actively
170 * receiving data, it will ensure that the generator knows that it is
171 * not idle by sending the generator keep-alive messages (since the
172 * generator might be blocked trying to send checksums, it needs to
173 * know that the receiver is active). Thus, as long as one or the
174 * other is successfully doing work, the generator will not timeout. */
175 if (!io_timeout)
176 return;
177
178 t = time(NULL);
179
180 if (allow_keepalive) {
181 /* This may put data into iobuf.msg w/o flushing. */
182 maybe_send_keepalive(t, keepalive_flags);
183 }
184
185 if (!last_io_in)
186 last_io_in = t;
187
188 if (am_receiver)
189 return;
190
191 chk = MAX(last_io_out, last_io_in);
192 if (t - chk >= io_timeout) {
193 if (am_server)
194 msgs2stderr = 1;
195 rprintf(FERROR, "[%s] io timeout after %d seconds -- exiting\n",
196 who_am_i(), (int)(t-chk));
197 exit_cleanup(RERR_TIMEOUT);
198 }
199 }
200
201 /* It's almost always an error to get an EOF when we're trying to read from the
202 * network, because the protocol is (for the most part) self-terminating.
203 *
204 * There is one case for the receiver when it is at the end of the transfer
205 * (hanging around reading any keep-alive packets that might come its way): if
206 * the sender dies before the generator's kill-signal comes through, we can end
207 * up here needing to loop until the kill-signal arrives. In this situation,
208 * kluge_around_eof will be < 0.
209 *
210 * There is another case for older protocol versions (< 24) where the module
211 * listing was not terminated, so we must ignore an EOF error in that case and
212 * exit. In this situation, kluge_around_eof will be > 0. */
whine_about_eof(BOOL allow_kluge)213 static NORETURN void whine_about_eof(BOOL allow_kluge)
214 {
215 if (kluge_around_eof && allow_kluge) {
216 int i;
217 if (kluge_around_eof > 0)
218 exit_cleanup(0);
219 /* If we're still here after 10 seconds, exit with an error. */
220 for (i = 10*1000/20; i--; )
221 msleep(20);
222 }
223
224 rprintf(FERROR, RSYNC_NAME ": connection unexpectedly closed "
225 "(%s bytes received so far) [%s]\n",
226 big_num(stats.total_read), who_am_i());
227
228 exit_cleanup(RERR_STREAMIO);
229 }
230
231 /* Do a safe read, handling any needed looping and error handling.
232 * Returns the count of the bytes read, which will only be different
233 * from "len" if we encountered an EOF. This routine is not used on
234 * the socket except very early in the transfer. */
safe_read(int fd,char * buf,size_t len)235 static size_t safe_read(int fd, char *buf, size_t len)
236 {
237 size_t got = 0;
238
239 assert(fd != iobuf.in_fd);
240
241 while (1) {
242 struct timeval tv;
243 fd_set r_fds, e_fds;
244 int cnt;
245
246 FD_ZERO(&r_fds);
247 FD_SET(fd, &r_fds);
248 FD_ZERO(&e_fds);
249 FD_SET(fd, &e_fds);
250 tv.tv_sec = select_timeout;
251 tv.tv_usec = 0;
252
253 cnt = select(fd+1, &r_fds, NULL, &e_fds, &tv);
254 if (cnt <= 0) {
255 if (cnt < 0 && errno == EBADF) {
256 rsyserr(FERROR, errno, "safe_read select failed");
257 exit_cleanup(RERR_FILEIO);
258 }
259 check_timeout(1, MSK_ALLOW_FLUSH);
260 continue;
261 }
262
263 /*if (FD_ISSET(fd, &e_fds))
264 rprintf(FINFO, "select exception on fd %d\n", fd); */
265
266 if (FD_ISSET(fd, &r_fds)) {
267 int n = read(fd, buf + got, len - got);
268 if (DEBUG_GTE(IO, 2))
269 rprintf(FINFO, "[%s] safe_read(%d)=%ld\n", who_am_i(), fd, (long)n);
270 if (n == 0)
271 break;
272 if (n < 0) {
273 if (errno == EINTR)
274 continue;
275 rsyserr(FERROR, errno, "safe_read failed to read %ld bytes", (long)len);
276 exit_cleanup(RERR_STREAMIO);
277 }
278 if ((got += (size_t)n) == len)
279 break;
280 }
281 }
282
283 return got;
284 }
285
what_fd_is(int fd)286 static const char *what_fd_is(int fd)
287 {
288 static char buf[20];
289
290 if (fd == sock_f_out)
291 return "socket";
292 else if (fd == iobuf.out_fd)
293 return "message fd";
294 else if (fd == batch_fd)
295 return "batch file";
296 else {
297 snprintf(buf, sizeof buf, "fd %d", fd);
298 return buf;
299 }
300 }
301
302 /* Do a safe write, handling any needed looping and error handling.
303 * Returns only if everything was successfully written. This routine
304 * is not used on the socket except very early in the transfer. */
safe_write(int fd,const char * buf,size_t len)305 static void safe_write(int fd, const char *buf, size_t len)
306 {
307 int n;
308
309 assert(fd != iobuf.out_fd);
310
311 n = write(fd, buf, len);
312 if ((size_t)n == len)
313 return;
314 if (n < 0) {
315 if (errno != EINTR && errno != EWOULDBLOCK && errno != EAGAIN) {
316 write_failed:
317 rsyserr(FERROR, errno,
318 "safe_write failed to write %ld bytes to %s",
319 (long)len, what_fd_is(fd));
320 exit_cleanup(RERR_STREAMIO);
321 }
322 } else {
323 buf += n;
324 len -= n;
325 }
326
327 while (len) {
328 struct timeval tv;
329 fd_set w_fds;
330 int cnt;
331
332 FD_ZERO(&w_fds);
333 FD_SET(fd, &w_fds);
334 tv.tv_sec = select_timeout;
335 tv.tv_usec = 0;
336
337 cnt = select(fd + 1, NULL, &w_fds, NULL, &tv);
338 if (cnt <= 0) {
339 if (cnt < 0 && errno == EBADF) {
340 rsyserr(FERROR, errno, "safe_write select failed on %s", what_fd_is(fd));
341 exit_cleanup(RERR_FILEIO);
342 }
343 if (io_timeout)
344 maybe_send_keepalive(time(NULL), MSK_ALLOW_FLUSH);
345 continue;
346 }
347
348 if (FD_ISSET(fd, &w_fds)) {
349 n = write(fd, buf, len);
350 if (n < 0) {
351 if (errno == EINTR)
352 continue;
353 goto write_failed;
354 }
355 buf += n;
356 len -= n;
357 }
358 }
359 }
360
361 /* This is only called when files-from data is known to be available. We read
362 * a chunk of data and put it into the output buffer. */
forward_filesfrom_data(void)363 static void forward_filesfrom_data(void)
364 {
365 int len;
366
367 len = read(ff_forward_fd, ff_xb.buf + ff_xb.len, ff_xb.size - ff_xb.len);
368 if (len <= 0) {
369 if (len == 0 || errno != EINTR) {
370 /* Send end-of-file marker */
371 ff_forward_fd = -1;
372 write_buf(iobuf.out_fd, "\0\0", ff_lastchar ? 2 : 1);
373 free_xbuf(&ff_xb);
374 if (ff_reenable_multiplex >= 0)
375 io_start_multiplex_out(ff_reenable_multiplex);
376 }
377 return;
378 }
379
380 if (DEBUG_GTE(IO, 2))
381 rprintf(FINFO, "[%s] files-from read=%ld\n", who_am_i(), (long)len);
382
383 #ifdef ICONV_OPTION
384 len += ff_xb.len;
385 #endif
386
387 if (!eol_nulls) {
388 char *s = ff_xb.buf + len;
389 /* Transform CR and/or LF into '\0' */
390 while (s-- > ff_xb.buf) {
391 if (*s == '\n' || *s == '\r')
392 *s = '\0';
393 }
394 }
395
396 if (ff_lastchar)
397 ff_xb.pos = 0;
398 else {
399 char *s = ff_xb.buf;
400 /* Last buf ended with a '\0', so don't let this buf start with one. */
401 while (len && *s == '\0')
402 s++, len--;
403 ff_xb.pos = s - ff_xb.buf;
404 }
405
406 #ifdef ICONV_OPTION
407 if (filesfrom_convert && len) {
408 char *sob = ff_xb.buf + ff_xb.pos, *s = sob;
409 char *eob = sob + len;
410 int flags = ICB_INCLUDE_BAD | ICB_INCLUDE_INCOMPLETE | ICB_CIRCULAR_OUT;
411 if (ff_lastchar == '\0')
412 flags |= ICB_INIT;
413 /* Convert/send each null-terminated string separately, skipping empties. */
414 while (s != eob) {
415 if (*s++ == '\0') {
416 ff_xb.len = s - sob - 1;
417 if (iconvbufs(ic_send, &ff_xb, &iobuf.out, flags) < 0)
418 exit_cleanup(RERR_PROTOCOL); /* impossible? */
419 write_buf(iobuf.out_fd, s-1, 1); /* Send the '\0'. */
420 while (s != eob && *s == '\0')
421 s++;
422 sob = s;
423 ff_xb.pos = sob - ff_xb.buf;
424 flags |= ICB_INIT;
425 }
426 }
427
428 if ((ff_xb.len = s - sob) == 0)
429 ff_lastchar = '\0';
430 else {
431 /* Handle a partial string specially, saving any incomplete chars. */
432 flags &= ~ICB_INCLUDE_INCOMPLETE;
433 if (iconvbufs(ic_send, &ff_xb, &iobuf.out, flags) < 0) {
434 if (errno == E2BIG)
435 exit_cleanup(RERR_PROTOCOL); /* impossible? */
436 if (ff_xb.pos)
437 memmove(ff_xb.buf, ff_xb.buf + ff_xb.pos, ff_xb.len);
438 }
439 ff_lastchar = 'x'; /* Anything non-zero. */
440 }
441 } else
442 #endif
443
444 if (len) {
445 char *f = ff_xb.buf + ff_xb.pos;
446 char *t = ff_xb.buf;
447 char *eob = f + len;
448 /* Eliminate any multi-'\0' runs. */
449 while (f != eob) {
450 if (!(*t++ = *f++)) {
451 while (f != eob && *f == '\0')
452 f++;
453 }
454 }
455 ff_lastchar = f[-1];
456 if ((len = t - ff_xb.buf) != 0) {
457 /* This will not circle back to perform_io() because we only get
458 * called when there is plenty of room in the output buffer. */
459 write_buf(iobuf.out_fd, ff_xb.buf, len);
460 }
461 }
462 }
463
reduce_iobuf_size(xbuf * out,size_t new_size)464 void reduce_iobuf_size(xbuf *out, size_t new_size)
465 {
466 if (new_size < out->size) {
467 /* Avoid weird buffer interactions by only outputting this to stderr. */
468 if (msgs2stderr == 1 && DEBUG_GTE(IO, 4)) {
469 const char *name = out == &iobuf.out ? "iobuf.out"
470 : out == &iobuf.msg ? "iobuf.msg"
471 : NULL;
472 if (name) {
473 rprintf(FINFO, "[%s] reduced size of %s (-%d)\n",
474 who_am_i(), name, (int)(out->size - new_size));
475 }
476 }
477 out->size = new_size;
478 }
479 }
480
restore_iobuf_size(xbuf * out)481 void restore_iobuf_size(xbuf *out)
482 {
483 if (IOBUF_WAS_REDUCED(out->size)) {
484 size_t new_size = IOBUF_RESTORE_SIZE(out->size);
485 /* Avoid weird buffer interactions by only outputting this to stderr. */
486 if (msgs2stderr == 1 && DEBUG_GTE(IO, 4)) {
487 const char *name = out == &iobuf.out ? "iobuf.out"
488 : out == &iobuf.msg ? "iobuf.msg"
489 : NULL;
490 if (name) {
491 rprintf(FINFO, "[%s] restored size of %s (+%d)\n",
492 who_am_i(), name, (int)(new_size - out->size));
493 }
494 }
495 out->size = new_size;
496 }
497 }
498
handle_kill_signal(BOOL flush_ok)499 static void handle_kill_signal(BOOL flush_ok)
500 {
501 got_kill_signal = -1;
502 flush_ok_after_signal = flush_ok;
503 exit_cleanup(RERR_SIGNAL);
504 }
505
506 /* Perform buffered input and/or output until specified conditions are met.
507 * When given a "needed" read or write request, this returns without doing any
508 * I/O if the needed input bytes or write space is already available. Once I/O
509 * is needed, this will try to do whatever reading and/or writing is currently
510 * possible, up to the maximum buffer allowances, no matter if this is a read
511 * or write request. However, the I/O stops as soon as the required input
512 * bytes or output space is available. If this is not a read request, the
513 * routine may also do some advantageous reading of messages from a multiplexed
514 * input source (which ensures that we don't jam up with everyone in their
515 * "need to write" code and nobody reading the accumulated data that would make
516 * writing possible).
517 *
518 * The iobuf.in, .out and .msg buffers are all circular. Callers need to be
519 * aware that some data copies will need to be split when the bytes wrap around
520 * from the end to the start. In order to help make writing into the output
521 * buffers easier for some operations (such as the use of SIVAL() into the
522 * buffer) a buffer may be temporarily shortened by a small amount, but the
523 * original size will be automatically restored when the .pos wraps to the
524 * start. See also the 3 raw_* iobuf vars that are used in the handling of
525 * MSG_DATA bytes as they are read-from/written-into the buffers.
526 *
527 * When writing, we flush data in the following priority order:
528 *
529 * 1. Finish writing any in-progress MSG_DATA sequence from iobuf.out.
530 *
531 * 2. Write out all the messages from the message buf (if iobuf.msg is active).
532 * Yes, this means that a PIO_NEED_OUTROOM call will completely flush any
533 * messages before getting to the iobuf.out flushing (except for rule 1).
534 *
535 * 3. Write out the raw data from iobuf.out, possibly filling in the multiplexed
536 * MSG_DATA header that was pre-allocated (when output is multiplexed).
537 *
538 * TODO: items for possible future work:
539 *
540 * - Make this routine able to read the generator-to-receiver batch flow?
541 *
542 * Unlike the old routines that this replaces, it is OK to read ahead as far as
543 * we can because the read_a_msg() routine now reads its bytes out of the input
544 * buffer. In the old days, only raw data was in the input buffer, and any
545 * unused raw data in the buf would prevent the reading of socket data. */
perform_io(size_t needed,int flags)546 static char *perform_io(size_t needed, int flags)
547 {
548 fd_set r_fds, e_fds, w_fds;
549 struct timeval tv;
550 int cnt, max_fd;
551 size_t empty_buf_len = 0;
552 xbuf *out;
553 char *data;
554
555 if (iobuf.in.len == 0 && iobuf.in.pos != 0) {
556 if (iobuf.raw_input_ends_before)
557 iobuf.raw_input_ends_before -= iobuf.in.pos;
558 iobuf.in.pos = 0;
559 }
560
561 switch (flags & PIO_NEED_FLAGS) {
562 case PIO_NEED_INPUT:
563 /* We never resize the circular input buffer. */
564 if (iobuf.in.size < needed) {
565 rprintf(FERROR, "need to read %ld bytes, iobuf.in.buf is only %ld bytes.\n",
566 (long)needed, (long)iobuf.in.size);
567 exit_cleanup(RERR_PROTOCOL);
568 }
569
570 if (msgs2stderr == 1 && DEBUG_GTE(IO, 3)) {
571 rprintf(FINFO, "[%s] perform_io(%ld, %sinput)\n",
572 who_am_i(), (long)needed, flags & PIO_CONSUME_INPUT ? "consume&" : "");
573 }
574 break;
575
576 case PIO_NEED_OUTROOM:
577 /* We never resize the circular output buffer. */
578 if (iobuf.out.size - iobuf.out_empty_len < needed) {
579 fprintf(stderr, "need to write %ld bytes, iobuf.out.buf is only %ld bytes.\n",
580 (long)needed, (long)(iobuf.out.size - iobuf.out_empty_len));
581 exit_cleanup(RERR_PROTOCOL);
582 }
583
584 if (msgs2stderr == 1 && DEBUG_GTE(IO, 3)) {
585 rprintf(FINFO, "[%s] perform_io(%ld, outroom) needs to flush %ld\n",
586 who_am_i(), (long)needed,
587 iobuf.out.len + needed > iobuf.out.size
588 ? (long)(iobuf.out.len + needed - iobuf.out.size) : 0L);
589 }
590 break;
591
592 case PIO_NEED_MSGROOM:
593 /* We never resize the circular message buffer. */
594 if (iobuf.msg.size < needed) {
595 fprintf(stderr, "need to write %ld bytes, iobuf.msg.buf is only %ld bytes.\n",
596 (long)needed, (long)iobuf.msg.size);
597 exit_cleanup(RERR_PROTOCOL);
598 }
599
600 if (msgs2stderr == 1 && DEBUG_GTE(IO, 3)) {
601 rprintf(FINFO, "[%s] perform_io(%ld, msgroom) needs to flush %ld\n",
602 who_am_i(), (long)needed,
603 iobuf.msg.len + needed > iobuf.msg.size
604 ? (long)(iobuf.msg.len + needed - iobuf.msg.size) : 0L);
605 }
606 break;
607
608 case 0:
609 if (msgs2stderr == 1 && DEBUG_GTE(IO, 3))
610 rprintf(FINFO, "[%s] perform_io(%ld, %d)\n", who_am_i(), (long)needed, flags);
611 break;
612
613 default:
614 exit_cleanup(RERR_UNSUPPORTED);
615 }
616
617 while (1) {
618 switch (flags & PIO_NEED_FLAGS) {
619 case PIO_NEED_INPUT:
620 if (iobuf.in.len >= needed)
621 goto double_break;
622 break;
623 case PIO_NEED_OUTROOM:
624 /* Note that iobuf.out_empty_len doesn't factor into this check
625 * because iobuf.out.len already holds any needed header len. */
626 if (iobuf.out.len + needed <= iobuf.out.size)
627 goto double_break;
628 break;
629 case PIO_NEED_MSGROOM:
630 if (iobuf.msg.len + needed <= iobuf.msg.size)
631 goto double_break;
632 break;
633 }
634
635 max_fd = -1;
636
637 FD_ZERO(&r_fds);
638 FD_ZERO(&e_fds);
639 if (iobuf.in_fd >= 0 && iobuf.in.size - iobuf.in.len) {
640 if (!read_batch || batch_fd >= 0) {
641 FD_SET(iobuf.in_fd, &r_fds);
642 FD_SET(iobuf.in_fd, &e_fds);
643 }
644 if (iobuf.in_fd > max_fd)
645 max_fd = iobuf.in_fd;
646 }
647
648 /* Only do more filesfrom processing if there is enough room in the out buffer. */
649 if (ff_forward_fd >= 0 && iobuf.out.size - iobuf.out.len > FILESFROM_BUFLEN*2) {
650 FD_SET(ff_forward_fd, &r_fds);
651 if (ff_forward_fd > max_fd)
652 max_fd = ff_forward_fd;
653 }
654
655 FD_ZERO(&w_fds);
656 if (iobuf.out_fd >= 0) {
657 if (iobuf.raw_flushing_ends_before
658 || (!iobuf.msg.len && iobuf.out.len > iobuf.out_empty_len && !(flags & PIO_NEED_MSGROOM))) {
659 if (OUT_MULTIPLEXED && !iobuf.raw_flushing_ends_before) {
660 /* The iobuf.raw_flushing_ends_before value can point off the end
661 * of the iobuf.out buffer for a while, for easier subtracting. */
662 iobuf.raw_flushing_ends_before = iobuf.out.pos + iobuf.out.len;
663
664 SIVAL(iobuf.out.buf + iobuf.raw_data_header_pos, 0,
665 ((MPLEX_BASE + (int)MSG_DATA)<<24) + iobuf.out.len - 4);
666
667 if (msgs2stderr == 1 && DEBUG_GTE(IO, 1)) {
668 rprintf(FINFO, "[%s] send_msg(%d, %ld)\n",
669 who_am_i(), (int)MSG_DATA, (long)iobuf.out.len - 4);
670 }
671
672 /* reserve room for the next MSG_DATA header */
673 iobuf.raw_data_header_pos = iobuf.raw_flushing_ends_before;
674 if (iobuf.raw_data_header_pos >= iobuf.out.size)
675 iobuf.raw_data_header_pos -= iobuf.out.size;
676 else if (iobuf.raw_data_header_pos + 4 > iobuf.out.size) {
677 /* The 4-byte header won't fit at the end of the buffer,
678 * so we'll temporarily reduce the output buffer's size
679 * and put the header at the start of the buffer. */
680 reduce_iobuf_size(&iobuf.out, iobuf.raw_data_header_pos);
681 iobuf.raw_data_header_pos = 0;
682 }
683 /* Yes, it is possible for this to make len > size for a while. */
684 iobuf.out.len += 4;
685 }
686
687 empty_buf_len = iobuf.out_empty_len;
688 out = &iobuf.out;
689 } else if (iobuf.msg.len) {
690 empty_buf_len = 0;
691 out = &iobuf.msg;
692 } else
693 out = NULL;
694 if (out) {
695 FD_SET(iobuf.out_fd, &w_fds);
696 if (iobuf.out_fd > max_fd)
697 max_fd = iobuf.out_fd;
698 }
699 } else
700 out = NULL;
701
702 if (max_fd < 0) {
703 switch (flags & PIO_NEED_FLAGS) {
704 case PIO_NEED_INPUT:
705 iobuf.in.len = 0;
706 if (kluge_around_eof == 2)
707 exit_cleanup(0);
708 if (iobuf.in_fd == -2)
709 whine_about_eof(True);
710 rprintf(FERROR, "error in perform_io: no fd for input.\n");
711 exit_cleanup(RERR_PROTOCOL);
712 case PIO_NEED_OUTROOM:
713 case PIO_NEED_MSGROOM:
714 msgs2stderr = 1;
715 drain_multiplex_messages();
716 if (iobuf.out_fd == -2)
717 whine_about_eof(True);
718 rprintf(FERROR, "error in perform_io: no fd for output.\n");
719 exit_cleanup(RERR_PROTOCOL);
720 default:
721 /* No stated needs, so I guess this is OK. */
722 break;
723 }
724 break;
725 }
726
727 if (got_kill_signal > 0)
728 handle_kill_signal(True);
729
730 if (extra_flist_sending_enabled) {
731 if (file_total - file_old_total < MAX_FILECNT_LOOKAHEAD && IN_MULTIPLEXED_AND_READY)
732 tv.tv_sec = 0;
733 else {
734 extra_flist_sending_enabled = False;
735 tv.tv_sec = select_timeout;
736 }
737 } else
738 tv.tv_sec = select_timeout;
739 tv.tv_usec = 0;
740
741 cnt = select(max_fd + 1, &r_fds, &w_fds, &e_fds, &tv);
742
743 if (cnt <= 0) {
744 if (cnt < 0 && errno == EBADF) {
745 msgs2stderr = 1;
746 exit_cleanup(RERR_SOCKETIO);
747 }
748 if (extra_flist_sending_enabled) {
749 extra_flist_sending_enabled = False;
750 send_extra_file_list(sock_f_out, -1);
751 extra_flist_sending_enabled = !flist_eof;
752 } else
753 check_timeout((flags & PIO_NEED_INPUT) != 0, 0);
754 FD_ZERO(&r_fds); /* Just in case... */
755 FD_ZERO(&w_fds);
756 }
757
758 if (iobuf.in_fd >= 0 && FD_ISSET(iobuf.in_fd, &r_fds)) {
759 size_t len, pos = iobuf.in.pos + iobuf.in.len;
760 int n;
761 if (pos >= iobuf.in.size) {
762 pos -= iobuf.in.size;
763 len = iobuf.in.size - iobuf.in.len;
764 } else
765 len = iobuf.in.size - pos;
766 if ((n = read(iobuf.in_fd, iobuf.in.buf + pos, len)) <= 0) {
767 if (n == 0) {
768 /* Signal that input has become invalid. */
769 if (!read_batch || batch_fd < 0 || am_generator)
770 iobuf.in_fd = -2;
771 batch_fd = -1;
772 continue;
773 }
774 if (errno == EINTR || errno == EWOULDBLOCK || errno == EAGAIN)
775 n = 0;
776 else {
777 /* Don't write errors on a dead socket. */
778 if (iobuf.in_fd == sock_f_in) {
779 if (am_sender)
780 msgs2stderr = 1;
781 rsyserr(FERROR_SOCKET, errno, "read error");
782 } else
783 rsyserr(FERROR, errno, "read error");
784 exit_cleanup(RERR_SOCKETIO);
785 }
786 }
787 if (msgs2stderr == 1 && DEBUG_GTE(IO, 2))
788 rprintf(FINFO, "[%s] recv=%ld\n", who_am_i(), (long)n);
789
790 if (io_timeout) {
791 last_io_in = time(NULL);
792 if (io_timeout && flags & PIO_NEED_INPUT)
793 maybe_send_keepalive(last_io_in, 0);
794 }
795 stats.total_read += n;
796
797 iobuf.in.len += n;
798 }
799
800 if (stop_at_utime && time(NULL) >= stop_at_utime) {
801 rprintf(FERROR, "stopping at requested limit\n");
802 exit_cleanup(RERR_TIMEOUT);
803 }
804
805 if (out && FD_ISSET(iobuf.out_fd, &w_fds)) {
806 size_t len = iobuf.raw_flushing_ends_before ? iobuf.raw_flushing_ends_before - out->pos : out->len;
807 int n;
808
809 if (bwlimit_writemax && len > bwlimit_writemax)
810 len = bwlimit_writemax;
811
812 if (out->pos + len > out->size)
813 len = out->size - out->pos;
814 if ((n = write(iobuf.out_fd, out->buf + out->pos, len)) <= 0) {
815 if (errno == EINTR || errno == EWOULDBLOCK || errno == EAGAIN)
816 n = 0;
817 else {
818 /* Don't write errors on a dead socket. */
819 msgs2stderr = 1;
820 iobuf.out_fd = -2;
821 iobuf.out.len = iobuf.msg.len = iobuf.raw_flushing_ends_before = 0;
822 rsyserr(FERROR_SOCKET, errno, "write error");
823 drain_multiplex_messages();
824 exit_cleanup(RERR_SOCKETIO);
825 }
826 }
827 if (msgs2stderr == 1 && DEBUG_GTE(IO, 2)) {
828 rprintf(FINFO, "[%s] %s sent=%ld\n",
829 who_am_i(), out == &iobuf.out ? "out" : "msg", (long)n);
830 }
831
832 if (io_timeout)
833 last_io_out = time(NULL);
834 stats.total_written += n;
835
836 if (bwlimit_writemax)
837 sleep_for_bwlimit(n);
838
839 if ((out->pos += n) == out->size) {
840 if (iobuf.raw_flushing_ends_before)
841 iobuf.raw_flushing_ends_before -= out->size;
842 out->pos = 0;
843 restore_iobuf_size(out);
844 } else if (out->pos == iobuf.raw_flushing_ends_before)
845 iobuf.raw_flushing_ends_before = 0;
846 if ((out->len -= n) == empty_buf_len) {
847 out->pos = 0;
848 restore_iobuf_size(out);
849 if (empty_buf_len)
850 iobuf.raw_data_header_pos = 0;
851 }
852 }
853
854 if (got_kill_signal > 0)
855 handle_kill_signal(True);
856
857 /* We need to help prevent deadlock by doing what reading
858 * we can whenever we are here trying to write. */
859 if (IN_MULTIPLEXED_AND_READY && !(flags & PIO_NEED_INPUT)) {
860 while (!iobuf.raw_input_ends_before && iobuf.in.len > 512)
861 read_a_msg();
862 if (flist_receiving_enabled && iobuf.in.len > 512)
863 wait_for_receiver(); /* generator only */
864 }
865
866 if (ff_forward_fd >= 0 && FD_ISSET(ff_forward_fd, &r_fds)) {
867 /* This can potentially flush all output and enable
868 * multiplexed output, so keep this last in the loop
869 * and be sure to not cache anything that would break
870 * such a change. */
871 forward_filesfrom_data();
872 }
873 }
874 double_break:
875
876 if (got_kill_signal > 0)
877 handle_kill_signal(True);
878
879 data = iobuf.in.buf + iobuf.in.pos;
880
881 if (flags & PIO_CONSUME_INPUT) {
882 iobuf.in.len -= needed;
883 iobuf.in.pos += needed;
884 if (iobuf.in.pos == iobuf.raw_input_ends_before)
885 iobuf.raw_input_ends_before = 0;
886 if (iobuf.in.pos >= iobuf.in.size) {
887 iobuf.in.pos -= iobuf.in.size;
888 if (iobuf.raw_input_ends_before)
889 iobuf.raw_input_ends_before -= iobuf.in.size;
890 }
891 }
892
893 return data;
894 }
895
raw_read_buf(char * buf,size_t len)896 static void raw_read_buf(char *buf, size_t len)
897 {
898 size_t pos = iobuf.in.pos;
899 char *data = perform_io(len, PIO_INPUT_AND_CONSUME);
900 if (iobuf.in.pos <= pos && len) {
901 size_t siz = len - iobuf.in.pos;
902 memcpy(buf, data, siz);
903 memcpy(buf + siz, iobuf.in.buf, iobuf.in.pos);
904 } else
905 memcpy(buf, data, len);
906 }
907
raw_read_int(void)908 static int32 raw_read_int(void)
909 {
910 char *data, buf[4];
911 if (iobuf.in.size - iobuf.in.pos >= 4)
912 data = perform_io(4, PIO_INPUT_AND_CONSUME);
913 else
914 raw_read_buf(data = buf, 4);
915 return IVAL(data, 0);
916 }
917
noop_io_until_death(void)918 void noop_io_until_death(void)
919 {
920 char buf[1024];
921
922 if (!iobuf.in.buf || !iobuf.out.buf || iobuf.in_fd < 0 || iobuf.out_fd < 0 || kluge_around_eof)
923 return;
924
925 /* If we're talking to a daemon over a socket, don't short-circuit this logic */
926 if (msgs2stderr && daemon_connection >= 0)
927 return;
928
929 kluge_around_eof = 2;
930 /* Setting an I/O timeout ensures that if something inexplicably weird
931 * happens, we won't hang around forever. */
932 if (!io_timeout)
933 set_io_timeout(60);
934
935 while (1)
936 read_buf(iobuf.in_fd, buf, sizeof buf);
937 }
938
939 /* Buffer a message for the multiplexed output stream. Is not used for (normal) MSG_DATA. */
send_msg(enum msgcode code,const char * buf,size_t len,int convert)940 int send_msg(enum msgcode code, const char *buf, size_t len, int convert)
941 {
942 char *hdr;
943 size_t needed, pos;
944 BOOL want_debug = DEBUG_GTE(IO, 1) && convert >= 0 && (msgs2stderr == 1 || code != MSG_INFO);
945
946 if (!OUT_MULTIPLEXED)
947 return 0;
948
949 if (want_debug)
950 rprintf(FINFO, "[%s] send_msg(%d, %ld)\n", who_am_i(), (int)code, (long)len);
951
952 /* When checking for enough free space for this message, we need to
953 * make sure that there is space for the 4-byte header, plus we'll
954 * assume that we may waste up to 3 bytes (if the header doesn't fit
955 * at the physical end of the buffer). */
956 #ifdef ICONV_OPTION
957 if (convert > 0 && ic_send == (iconv_t)-1)
958 convert = 0;
959 if (convert > 0) {
960 /* Ensuring double-size room leaves space for maximal conversion expansion. */
961 needed = len*2 + 4 + 3;
962 } else
963 #endif
964 needed = len + 4 + 3;
965 if (iobuf.msg.len + needed > iobuf.msg.size) {
966 if (!am_receiver)
967 perform_io(needed, PIO_NEED_MSGROOM);
968 else { /* We allow the receiver to increase their iobuf.msg size to avoid a deadlock. */
969 size_t old_size = iobuf.msg.size;
970 restore_iobuf_size(&iobuf.msg);
971 realloc_xbuf(&iobuf.msg, iobuf.msg.size * 2);
972 if (iobuf.msg.pos + iobuf.msg.len > old_size)
973 memcpy(iobuf.msg.buf + old_size, iobuf.msg.buf, iobuf.msg.pos + iobuf.msg.len - old_size);
974 }
975 }
976
977 pos = iobuf.msg.pos + iobuf.msg.len; /* Must be set after any flushing. */
978 if (pos >= iobuf.msg.size)
979 pos -= iobuf.msg.size;
980 else if (pos + 4 > iobuf.msg.size) {
981 /* The 4-byte header won't fit at the end of the buffer,
982 * so we'll temporarily reduce the message buffer's size
983 * and put the header at the start of the buffer. */
984 reduce_iobuf_size(&iobuf.msg, pos);
985 pos = 0;
986 }
987 hdr = iobuf.msg.buf + pos;
988
989 iobuf.msg.len += 4; /* Allocate room for the coming header bytes. */
990
991 #ifdef ICONV_OPTION
992 if (convert > 0) {
993 xbuf inbuf;
994
995 INIT_XBUF(inbuf, (char*)buf, len, (size_t)-1);
996
997 len = iobuf.msg.len;
998 iconvbufs(ic_send, &inbuf, &iobuf.msg,
999 ICB_INCLUDE_BAD | ICB_INCLUDE_INCOMPLETE | ICB_CIRCULAR_OUT | ICB_INIT);
1000 if (inbuf.len > 0) {
1001 rprintf(FERROR, "overflowed iobuf.msg buffer in send_msg");
1002 exit_cleanup(RERR_UNSUPPORTED);
1003 }
1004 len = iobuf.msg.len - len;
1005 } else
1006 #endif
1007 {
1008 size_t siz;
1009
1010 if ((pos += 4) == iobuf.msg.size)
1011 pos = 0;
1012
1013 /* Handle a split copy if we wrap around the end of the circular buffer. */
1014 if (pos >= iobuf.msg.pos && (siz = iobuf.msg.size - pos) < len) {
1015 memcpy(iobuf.msg.buf + pos, buf, siz);
1016 memcpy(iobuf.msg.buf, buf + siz, len - siz);
1017 } else
1018 memcpy(iobuf.msg.buf + pos, buf, len);
1019
1020 iobuf.msg.len += len;
1021 }
1022
1023 SIVAL(hdr, 0, ((MPLEX_BASE + (int)code)<<24) + len);
1024
1025 if (want_debug && convert > 0)
1026 rprintf(FINFO, "[%s] converted msg len=%ld\n", who_am_i(), (long)len);
1027
1028 return 1;
1029 }
1030
send_msg_int(enum msgcode code,int num)1031 void send_msg_int(enum msgcode code, int num)
1032 {
1033 char numbuf[4];
1034
1035 if (DEBUG_GTE(IO, 1))
1036 rprintf(FINFO, "[%s] send_msg_int(%d, %d)\n", who_am_i(), (int)code, num);
1037
1038 SIVAL(numbuf, 0, num);
1039 send_msg(code, numbuf, 4, -1);
1040 }
1041
got_flist_entry_status(enum festatus status,int ndx)1042 static void got_flist_entry_status(enum festatus status, int ndx)
1043 {
1044 struct file_list *flist = flist_for_ndx(ndx, "got_flist_entry_status");
1045
1046 if (remove_source_files) {
1047 active_filecnt--;
1048 active_bytecnt -= F_LENGTH(flist->files[ndx - flist->ndx_start]);
1049 }
1050
1051 if (inc_recurse)
1052 flist->in_progress--;
1053
1054 switch (status) {
1055 case FES_SUCCESS:
1056 if (remove_source_files)
1057 send_msg_int(MSG_SUCCESS, ndx);
1058 /* FALL THROUGH */
1059 case FES_NO_SEND:
1060 #ifdef SUPPORT_HARD_LINKS
1061 if (preserve_hard_links) {
1062 struct file_struct *file = flist->files[ndx - flist->ndx_start];
1063 if (F_IS_HLINKED(file)) {
1064 if (status == FES_NO_SEND)
1065 flist_ndx_push(&hlink_list, -2); /* indicates a failure follows */
1066 flist_ndx_push(&hlink_list, ndx);
1067 if (inc_recurse)
1068 flist->in_progress++;
1069 }
1070 }
1071 #endif
1072 break;
1073 case FES_REDO:
1074 if (read_batch) {
1075 if (inc_recurse)
1076 flist->in_progress++;
1077 break;
1078 }
1079 if (inc_recurse)
1080 flist->to_redo++;
1081 flist_ndx_push(&redo_list, ndx);
1082 break;
1083 }
1084 }
1085
1086 /* Note the fds used for the main socket (which might really be a pipe
1087 * for a local transfer, but we can ignore that). */
io_set_sock_fds(int f_in,int f_out)1088 void io_set_sock_fds(int f_in, int f_out)
1089 {
1090 sock_f_in = f_in;
1091 sock_f_out = f_out;
1092 }
1093
set_io_timeout(int secs)1094 void set_io_timeout(int secs)
1095 {
1096 io_timeout = secs;
1097 allowed_lull = (io_timeout + 1) / 2;
1098
1099 if (!io_timeout || allowed_lull > SELECT_TIMEOUT)
1100 select_timeout = SELECT_TIMEOUT;
1101 else
1102 select_timeout = allowed_lull;
1103
1104 if (read_batch)
1105 allowed_lull = 0;
1106 }
1107
check_for_d_option_error(const char * msg)1108 static void check_for_d_option_error(const char *msg)
1109 {
1110 static char rsync263_opts[] = "BCDHIKLPRSTWabceghlnopqrtuvxz";
1111 char *colon;
1112 int saw_d = 0;
1113
1114 if (*msg != 'r'
1115 || strncmp(msg, REMOTE_OPTION_ERROR, sizeof REMOTE_OPTION_ERROR - 1) != 0)
1116 return;
1117
1118 msg += sizeof REMOTE_OPTION_ERROR - 1;
1119 if (*msg == '-' || (colon = strchr(msg, ':')) == NULL
1120 || strncmp(colon, REMOTE_OPTION_ERROR2, sizeof REMOTE_OPTION_ERROR2 - 1) != 0)
1121 return;
1122
1123 for ( ; *msg != ':'; msg++) {
1124 if (*msg == 'd')
1125 saw_d = 1;
1126 else if (*msg == 'e')
1127 break;
1128 else if (strchr(rsync263_opts, *msg) == NULL)
1129 return;
1130 }
1131
1132 if (saw_d) {
1133 rprintf(FWARNING, "*** Try using \"--old-d\" if remote rsync is <= 2.6.3 ***\n");
1134 }
1135 }
1136
1137 /* This is used by the generator to limit how many file transfers can
1138 * be active at once when --remove-source-files is specified. Without
1139 * this, sender-side deletions were mostly happening at the end. */
increment_active_files(int ndx,int itemizing,enum logcode code)1140 void increment_active_files(int ndx, int itemizing, enum logcode code)
1141 {
1142 while (1) {
1143 /* TODO: tune these limits? */
1144 int limit = active_bytecnt >= 128*1024 ? 10 : 50;
1145 if (active_filecnt < limit)
1146 break;
1147 check_for_finished_files(itemizing, code, 0);
1148 if (active_filecnt < limit)
1149 break;
1150 wait_for_receiver();
1151 }
1152
1153 active_filecnt++;
1154 active_bytecnt += F_LENGTH(cur_flist->files[ndx - cur_flist->ndx_start]);
1155 }
1156
get_redo_num(void)1157 int get_redo_num(void)
1158 {
1159 return flist_ndx_pop(&redo_list);
1160 }
1161
get_hlink_num(void)1162 int get_hlink_num(void)
1163 {
1164 return flist_ndx_pop(&hlink_list);
1165 }
1166
1167 /* When we're the receiver and we have a local --files-from list of names
1168 * that needs to be sent over the socket to the sender, we have to do two
1169 * things at the same time: send the sender a list of what files we're
1170 * processing and read the incoming file+info list from the sender. We do
1171 * this by making recv_file_list() call forward_filesfrom_data(), which
1172 * will ensure that we forward data to the sender until we get some data
1173 * for recv_file_list() to use. */
start_filesfrom_forwarding(int fd)1174 void start_filesfrom_forwarding(int fd)
1175 {
1176 if (protocol_version < 31 && OUT_MULTIPLEXED) {
1177 /* Older protocols send the files-from data w/o packaging
1178 * it in multiplexed I/O packets, so temporarily switch
1179 * to buffered I/O to match this behavior. */
1180 iobuf.msg.pos = iobuf.msg.len = 0; /* Be extra sure no messages go out. */
1181 ff_reenable_multiplex = io_end_multiplex_out(MPLX_TO_BUFFERED);
1182 }
1183 ff_forward_fd = fd;
1184
1185 alloc_xbuf(&ff_xb, FILESFROM_BUFLEN);
1186 }
1187
1188 /* Read a line into the "buf" buffer. */
read_line(int fd,char * buf,size_t bufsiz,int flags)1189 int read_line(int fd, char *buf, size_t bufsiz, int flags)
1190 {
1191 char ch, *s, *eob;
1192
1193 #ifdef ICONV_OPTION
1194 if (flags & RL_CONVERT && iconv_buf.size < bufsiz)
1195 realloc_xbuf(&iconv_buf, ROUND_UP_1024(bufsiz) + 1024);
1196 #endif
1197
1198 start:
1199 #ifdef ICONV_OPTION
1200 s = flags & RL_CONVERT ? iconv_buf.buf : buf;
1201 #else
1202 s = buf;
1203 #endif
1204 eob = s + bufsiz - 1;
1205 while (1) {
1206 /* We avoid read_byte() for files because files can return an EOF. */
1207 if (fd == iobuf.in_fd)
1208 ch = read_byte(fd);
1209 else if (safe_read(fd, &ch, 1) == 0)
1210 break;
1211 if (flags & RL_EOL_NULLS ? ch == '\0' : (ch == '\r' || ch == '\n')) {
1212 /* Skip empty lines if dumping comments. */
1213 if (flags & RL_DUMP_COMMENTS && s == buf)
1214 continue;
1215 break;
1216 }
1217 if (s < eob)
1218 *s++ = ch;
1219 }
1220 *s = '\0';
1221
1222 if (flags & RL_DUMP_COMMENTS && (*buf == '#' || *buf == ';'))
1223 goto start;
1224
1225 #ifdef ICONV_OPTION
1226 if (flags & RL_CONVERT) {
1227 xbuf outbuf;
1228 INIT_XBUF(outbuf, buf, 0, bufsiz);
1229 iconv_buf.pos = 0;
1230 iconv_buf.len = s - iconv_buf.buf;
1231 iconvbufs(ic_recv, &iconv_buf, &outbuf,
1232 ICB_INCLUDE_BAD | ICB_INCLUDE_INCOMPLETE | ICB_INIT);
1233 outbuf.buf[outbuf.len] = '\0';
1234 return outbuf.len;
1235 }
1236 #endif
1237
1238 return s - buf;
1239 }
1240
read_args(int f_in,char * mod_name,char * buf,size_t bufsiz,int rl_nulls,char *** argv_p,int * argc_p,char ** request_p)1241 void read_args(int f_in, char *mod_name, char *buf, size_t bufsiz, int rl_nulls,
1242 char ***argv_p, int *argc_p, char **request_p)
1243 {
1244 int maxargs = MAX_ARGS;
1245 int dot_pos = 0, argc = 0, request_len = 0;
1246 char **argv, *p;
1247 int rl_flags = (rl_nulls ? RL_EOL_NULLS : 0);
1248
1249 #ifdef ICONV_OPTION
1250 rl_flags |= (protect_args && ic_recv != (iconv_t)-1 ? RL_CONVERT : 0);
1251 #endif
1252
1253 argv = new_array(char *, maxargs);
1254 if (mod_name && !protect_args)
1255 argv[argc++] = "rsyncd";
1256
1257 if (request_p)
1258 *request_p = NULL;
1259
1260 while (1) {
1261 if (read_line(f_in, buf, bufsiz, rl_flags) == 0)
1262 break;
1263
1264 if (argc == maxargs-1) {
1265 maxargs += MAX_ARGS;
1266 argv = realloc_array(argv, char *, maxargs);
1267 }
1268
1269 if (dot_pos) {
1270 if (request_p && request_len < 1024) {
1271 int len = strlen(buf);
1272 if (request_len)
1273 request_p[0][request_len++] = ' ';
1274 *request_p = realloc_array(*request_p, char, request_len + len + 1);
1275 memcpy(*request_p + request_len, buf, len + 1);
1276 request_len += len;
1277 }
1278 if (mod_name)
1279 glob_expand_module(mod_name, buf, &argv, &argc, &maxargs);
1280 else
1281 glob_expand(buf, &argv, &argc, &maxargs);
1282 } else {
1283 p = strdup(buf);
1284 argv[argc++] = p;
1285 if (*p == '.' && p[1] == '\0')
1286 dot_pos = argc;
1287 }
1288 }
1289 argv[argc] = NULL;
1290
1291 glob_expand(NULL, NULL, NULL, NULL);
1292
1293 *argc_p = argc;
1294 *argv_p = argv;
1295 }
1296
io_start_buffering_out(int f_out)1297 BOOL io_start_buffering_out(int f_out)
1298 {
1299 if (msgs2stderr == 1 && DEBUG_GTE(IO, 2))
1300 rprintf(FINFO, "[%s] io_start_buffering_out(%d)\n", who_am_i(), f_out);
1301
1302 if (iobuf.out.buf) {
1303 if (iobuf.out_fd == -1)
1304 iobuf.out_fd = f_out;
1305 else
1306 assert(f_out == iobuf.out_fd);
1307 return False;
1308 }
1309
1310 alloc_xbuf(&iobuf.out, ROUND_UP_1024(IO_BUFFER_SIZE * 2));
1311 iobuf.out_fd = f_out;
1312
1313 return True;
1314 }
1315
io_start_buffering_in(int f_in)1316 BOOL io_start_buffering_in(int f_in)
1317 {
1318 if (msgs2stderr == 1 && DEBUG_GTE(IO, 2))
1319 rprintf(FINFO, "[%s] io_start_buffering_in(%d)\n", who_am_i(), f_in);
1320
1321 if (iobuf.in.buf) {
1322 if (iobuf.in_fd == -1)
1323 iobuf.in_fd = f_in;
1324 else
1325 assert(f_in == iobuf.in_fd);
1326 return False;
1327 }
1328
1329 alloc_xbuf(&iobuf.in, ROUND_UP_1024(IO_BUFFER_SIZE));
1330 iobuf.in_fd = f_in;
1331
1332 return True;
1333 }
1334
io_end_buffering_in(BOOL free_buffers)1335 void io_end_buffering_in(BOOL free_buffers)
1336 {
1337 if (msgs2stderr == 1 && DEBUG_GTE(IO, 2)) {
1338 rprintf(FINFO, "[%s] io_end_buffering_in(IOBUF_%s_BUFS)\n",
1339 who_am_i(), free_buffers ? "FREE" : "KEEP");
1340 }
1341
1342 if (free_buffers)
1343 free_xbuf(&iobuf.in);
1344 else
1345 iobuf.in.pos = iobuf.in.len = 0;
1346
1347 iobuf.in_fd = -1;
1348 }
1349
io_end_buffering_out(BOOL free_buffers)1350 void io_end_buffering_out(BOOL free_buffers)
1351 {
1352 if (msgs2stderr == 1 && DEBUG_GTE(IO, 2)) {
1353 rprintf(FINFO, "[%s] io_end_buffering_out(IOBUF_%s_BUFS)\n",
1354 who_am_i(), free_buffers ? "FREE" : "KEEP");
1355 }
1356
1357 io_flush(FULL_FLUSH);
1358
1359 if (free_buffers) {
1360 free_xbuf(&iobuf.out);
1361 free_xbuf(&iobuf.msg);
1362 }
1363
1364 iobuf.out_fd = -1;
1365 }
1366
maybe_flush_socket(int important)1367 void maybe_flush_socket(int important)
1368 {
1369 if (flist_eof && iobuf.out.buf && iobuf.out.len > iobuf.out_empty_len
1370 && (important || time(NULL) - last_io_out >= 5))
1371 io_flush(NORMAL_FLUSH);
1372 }
1373
1374 /* Older rsync versions used to send either a MSG_NOOP (protocol 30) or a
1375 * raw-data-based keep-alive (protocol 29), both of which implied forwarding of
1376 * the message through the sender. Since the new timeout method does not need
1377 * any forwarding, we just send an empty MSG_DATA message, which works with all
1378 * rsync versions. This avoids any message forwarding, and leaves the raw-data
1379 * stream alone (since we can never be quite sure if that stream is in the
1380 * right state for a keep-alive message). */
maybe_send_keepalive(time_t now,int flags)1381 void maybe_send_keepalive(time_t now, int flags)
1382 {
1383 if (flags & MSK_ACTIVE_RECEIVER)
1384 last_io_in = now; /* Fudge things when we're working hard on the files. */
1385
1386 /* Early in the transfer (before the receiver forks) the receiving side doesn't
1387 * care if it hasn't sent data in a while as long as it is receiving data (in
1388 * fact, a pre-3.1.0 rsync would die if we tried to send it a keep alive during
1389 * this time). So, if we're an early-receiving proc, just return and let the
1390 * incoming data determine if we timeout. */
1391 if (!am_sender && !am_receiver && !am_generator)
1392 return;
1393
1394 if (now - last_io_out >= allowed_lull) {
1395 /* The receiver is special: it only sends keep-alive messages if it is
1396 * actively receiving data. Otherwise, it lets the generator timeout. */
1397 if (am_receiver && now - last_io_in >= io_timeout)
1398 return;
1399
1400 if (!iobuf.msg.len && iobuf.out.len == iobuf.out_empty_len)
1401 send_msg(MSG_DATA, "", 0, 0);
1402 if (!(flags & MSK_ALLOW_FLUSH)) {
1403 /* Let the caller worry about writing out the data. */
1404 } else if (iobuf.msg.len)
1405 perform_io(iobuf.msg.size - iobuf.msg.len + 1, PIO_NEED_MSGROOM);
1406 else if (iobuf.out.len > iobuf.out_empty_len)
1407 io_flush(NORMAL_FLUSH);
1408 }
1409 }
1410
start_flist_forward(int ndx)1411 void start_flist_forward(int ndx)
1412 {
1413 write_int(iobuf.out_fd, ndx);
1414 forward_flist_data = 1;
1415 }
1416
stop_flist_forward(void)1417 void stop_flist_forward(void)
1418 {
1419 forward_flist_data = 0;
1420 }
1421
1422 /* Read a message from a multiplexed source. */
read_a_msg(void)1423 static void read_a_msg(void)
1424 {
1425 char data[BIGPATHBUFLEN];
1426 int tag, val;
1427 size_t msg_bytes;
1428
1429 /* This ensures that perform_io() does not try to do any message reading
1430 * until we've read all of the data for this message. We should also
1431 * try to avoid calling things that will cause data to be written via
1432 * perform_io() prior to this being reset to 1. */
1433 iobuf.in_multiplexed = -1;
1434
1435 tag = raw_read_int();
1436
1437 msg_bytes = tag & 0xFFFFFF;
1438 tag = (tag >> 24) - MPLEX_BASE;
1439
1440 if (msgs2stderr == 1 && DEBUG_GTE(IO, 1))
1441 rprintf(FINFO, "[%s] got msg=%d, len=%ld\n", who_am_i(), (int)tag, (long)msg_bytes);
1442
1443 switch (tag) {
1444 case MSG_DATA:
1445 assert(iobuf.raw_input_ends_before == 0);
1446 /* Though this does not yet read the data, we do mark where in
1447 * the buffer the msg data will end once it is read. It is
1448 * possible that this points off the end of the buffer, in
1449 * which case the gradual reading of the input stream will
1450 * cause this value to wrap around and eventually become real. */
1451 if (msg_bytes)
1452 iobuf.raw_input_ends_before = iobuf.in.pos + msg_bytes;
1453 iobuf.in_multiplexed = 1;
1454 break;
1455 case MSG_STATS:
1456 if (msg_bytes != sizeof stats.total_read || !am_generator)
1457 goto invalid_msg;
1458 raw_read_buf((char*)&stats.total_read, sizeof stats.total_read);
1459 iobuf.in_multiplexed = 1;
1460 break;
1461 case MSG_REDO:
1462 if (msg_bytes != 4 || !am_generator)
1463 goto invalid_msg;
1464 val = raw_read_int();
1465 iobuf.in_multiplexed = 1;
1466 got_flist_entry_status(FES_REDO, val);
1467 break;
1468 case MSG_IO_ERROR:
1469 if (msg_bytes != 4)
1470 goto invalid_msg;
1471 val = raw_read_int();
1472 iobuf.in_multiplexed = 1;
1473 io_error |= val;
1474 if (am_receiver)
1475 send_msg_int(MSG_IO_ERROR, val);
1476 break;
1477 case MSG_IO_TIMEOUT:
1478 if (msg_bytes != 4 || am_server || am_generator)
1479 goto invalid_msg;
1480 val = raw_read_int();
1481 iobuf.in_multiplexed = 1;
1482 if (!io_timeout || io_timeout > val) {
1483 if (INFO_GTE(MISC, 2))
1484 rprintf(FINFO, "Setting --timeout=%d to match server\n", val);
1485 set_io_timeout(val);
1486 }
1487 break;
1488 case MSG_NOOP:
1489 /* Support protocol-30 keep-alive method. */
1490 if (msg_bytes != 0)
1491 goto invalid_msg;
1492 iobuf.in_multiplexed = 1;
1493 if (am_sender)
1494 maybe_send_keepalive(time(NULL), MSK_ALLOW_FLUSH);
1495 break;
1496 case MSG_DELETED:
1497 if (msg_bytes >= sizeof data)
1498 goto overflow;
1499 if (am_generator) {
1500 raw_read_buf(data, msg_bytes);
1501 iobuf.in_multiplexed = 1;
1502 send_msg(MSG_DELETED, data, msg_bytes, 1);
1503 break;
1504 }
1505 #ifdef ICONV_OPTION
1506 if (ic_recv != (iconv_t)-1) {
1507 xbuf outbuf, inbuf;
1508 char ibuf[512];
1509 int add_null = 0;
1510 int flags = ICB_INCLUDE_BAD | ICB_INIT;
1511
1512 INIT_CONST_XBUF(outbuf, data);
1513 INIT_XBUF(inbuf, ibuf, 0, (size_t)-1);
1514
1515 while (msg_bytes) {
1516 size_t len = msg_bytes > sizeof ibuf - inbuf.len ? sizeof ibuf - inbuf.len : msg_bytes;
1517 raw_read_buf(ibuf + inbuf.len, len);
1518 inbuf.pos = 0;
1519 inbuf.len += len;
1520 if (!(msg_bytes -= len) && !ibuf[inbuf.len-1])
1521 inbuf.len--, add_null = 1;
1522 if (iconvbufs(ic_send, &inbuf, &outbuf, flags) < 0) {
1523 if (errno == E2BIG)
1524 goto overflow;
1525 /* Buffer ended with an incomplete char, so move the
1526 * bytes to the start of the buffer and continue. */
1527 memmove(ibuf, ibuf + inbuf.pos, inbuf.len);
1528 }
1529 flags &= ~ICB_INIT;
1530 }
1531 if (add_null) {
1532 if (outbuf.len == outbuf.size)
1533 goto overflow;
1534 outbuf.buf[outbuf.len++] = '\0';
1535 }
1536 msg_bytes = outbuf.len;
1537 } else
1538 #endif
1539 raw_read_buf(data, msg_bytes);
1540 iobuf.in_multiplexed = 1;
1541 /* A directory name was sent with the trailing null */
1542 if (msg_bytes > 0 && !data[msg_bytes-1])
1543 log_delete(data, S_IFDIR);
1544 else {
1545 data[msg_bytes] = '\0';
1546 log_delete(data, S_IFREG);
1547 }
1548 break;
1549 case MSG_SUCCESS:
1550 if (msg_bytes != 4) {
1551 invalid_msg:
1552 rprintf(FERROR, "invalid multi-message %d:%lu [%s%s]\n",
1553 tag, (unsigned long)msg_bytes, who_am_i(),
1554 inc_recurse ? "/inc" : "");
1555 exit_cleanup(RERR_STREAMIO);
1556 }
1557 val = raw_read_int();
1558 iobuf.in_multiplexed = 1;
1559 if (am_generator)
1560 got_flist_entry_status(FES_SUCCESS, val);
1561 else
1562 successful_send(val);
1563 break;
1564 case MSG_NO_SEND:
1565 if (msg_bytes != 4)
1566 goto invalid_msg;
1567 val = raw_read_int();
1568 iobuf.in_multiplexed = 1;
1569 if (am_generator)
1570 got_flist_entry_status(FES_NO_SEND, val);
1571 else
1572 send_msg_int(MSG_NO_SEND, val);
1573 break;
1574 case MSG_ERROR_SOCKET:
1575 case MSG_ERROR_UTF8:
1576 case MSG_CLIENT:
1577 case MSG_LOG:
1578 if (!am_generator)
1579 goto invalid_msg;
1580 if (tag == MSG_ERROR_SOCKET)
1581 msgs2stderr = 1;
1582 /* FALL THROUGH */
1583 case MSG_INFO:
1584 case MSG_ERROR:
1585 case MSG_ERROR_XFER:
1586 case MSG_WARNING:
1587 if (msg_bytes >= sizeof data) {
1588 overflow:
1589 rprintf(FERROR,
1590 "multiplexing overflow %d:%lu [%s%s]\n",
1591 tag, (unsigned long)msg_bytes, who_am_i(),
1592 inc_recurse ? "/inc" : "");
1593 exit_cleanup(RERR_STREAMIO);
1594 }
1595 raw_read_buf(data, msg_bytes);
1596 /* We don't set in_multiplexed value back to 1 before writing this message
1597 * because the write might loop back and read yet another message, over and
1598 * over again, while waiting for room to put the message in the msg buffer. */
1599 rwrite((enum logcode)tag, data, msg_bytes, !am_generator);
1600 iobuf.in_multiplexed = 1;
1601 if (first_message) {
1602 if (list_only && !am_sender && tag == 1 && msg_bytes < sizeof data) {
1603 data[msg_bytes] = '\0';
1604 check_for_d_option_error(data);
1605 }
1606 first_message = 0;
1607 }
1608 break;
1609 case MSG_ERROR_EXIT:
1610 if (msg_bytes == 4)
1611 val = raw_read_int();
1612 else if (msg_bytes == 0)
1613 val = 0;
1614 else
1615 goto invalid_msg;
1616 iobuf.in_multiplexed = 1;
1617 if (DEBUG_GTE(EXIT, 3))
1618 rprintf(FINFO, "[%s] got MSG_ERROR_EXIT with %ld bytes\n", who_am_i(), (long)msg_bytes);
1619 if (msg_bytes == 0) {
1620 if (!am_sender && !am_generator) {
1621 if (DEBUG_GTE(EXIT, 3)) {
1622 rprintf(FINFO, "[%s] sending MSG_ERROR_EXIT (len 0)\n",
1623 who_am_i());
1624 }
1625 send_msg(MSG_ERROR_EXIT, "", 0, 0);
1626 io_flush(FULL_FLUSH);
1627 }
1628 } else if (protocol_version >= 31) {
1629 if (am_generator || am_receiver) {
1630 if (DEBUG_GTE(EXIT, 3)) {
1631 rprintf(FINFO, "[%s] sending MSG_ERROR_EXIT with exit_code %d\n",
1632 who_am_i(), val);
1633 }
1634 send_msg_int(MSG_ERROR_EXIT, val);
1635 } else {
1636 if (DEBUG_GTE(EXIT, 3)) {
1637 rprintf(FINFO, "[%s] sending MSG_ERROR_EXIT (len 0)\n",
1638 who_am_i());
1639 }
1640 send_msg(MSG_ERROR_EXIT, "", 0, 0);
1641 }
1642 }
1643 /* Send a negative linenum so that we don't end up
1644 * with a duplicate exit message. */
1645 _exit_cleanup(val, __FILE__, 0 - __LINE__);
1646 default:
1647 rprintf(FERROR, "unexpected tag %d [%s%s]\n",
1648 tag, who_am_i(), inc_recurse ? "/inc" : "");
1649 exit_cleanup(RERR_STREAMIO);
1650 }
1651
1652 assert(iobuf.in_multiplexed > 0);
1653 }
1654
drain_multiplex_messages(void)1655 static void drain_multiplex_messages(void)
1656 {
1657 while (IN_MULTIPLEXED_AND_READY && iobuf.in.len) {
1658 if (iobuf.raw_input_ends_before) {
1659 size_t raw_len = iobuf.raw_input_ends_before - iobuf.in.pos;
1660 iobuf.raw_input_ends_before = 0;
1661 if (raw_len >= iobuf.in.len) {
1662 iobuf.in.len = 0;
1663 break;
1664 }
1665 iobuf.in.len -= raw_len;
1666 if ((iobuf.in.pos += raw_len) >= iobuf.in.size)
1667 iobuf.in.pos -= iobuf.in.size;
1668 }
1669 read_a_msg();
1670 }
1671 }
1672
wait_for_receiver(void)1673 void wait_for_receiver(void)
1674 {
1675 if (!iobuf.raw_input_ends_before)
1676 read_a_msg();
1677
1678 if (iobuf.raw_input_ends_before) {
1679 int ndx = read_int(iobuf.in_fd);
1680 if (ndx < 0) {
1681 switch (ndx) {
1682 case NDX_FLIST_EOF:
1683 flist_eof = 1;
1684 if (DEBUG_GTE(FLIST, 3))
1685 rprintf(FINFO, "[%s] flist_eof=1\n", who_am_i());
1686 break;
1687 case NDX_DONE:
1688 msgdone_cnt++;
1689 break;
1690 default:
1691 exit_cleanup(RERR_STREAMIO);
1692 }
1693 } else {
1694 struct file_list *flist;
1695 flist_receiving_enabled = False;
1696 if (DEBUG_GTE(FLIST, 2)) {
1697 rprintf(FINFO, "[%s] receiving flist for dir %d\n",
1698 who_am_i(), ndx);
1699 }
1700 flist = recv_file_list(iobuf.in_fd, ndx);
1701 flist->parent_ndx = ndx;
1702 #ifdef SUPPORT_HARD_LINKS
1703 if (preserve_hard_links)
1704 match_hard_links(flist);
1705 #endif
1706 flist_receiving_enabled = True;
1707 }
1708 }
1709 }
1710
read_shortint(int f)1711 unsigned short read_shortint(int f)
1712 {
1713 char b[2];
1714 read_buf(f, b, 2);
1715 return (UVAL(b, 1) << 8) + UVAL(b, 0);
1716 }
1717
read_int(int f)1718 int32 read_int(int f)
1719 {
1720 char b[4];
1721 int32 num;
1722
1723 read_buf(f, b, 4);
1724 num = IVAL(b, 0);
1725 #if SIZEOF_INT32 > 4
1726 if (num & (int32)0x80000000)
1727 num |= ~(int32)0xffffffff;
1728 #endif
1729 return num;
1730 }
1731
read_varint(int f)1732 int32 read_varint(int f)
1733 {
1734 union {
1735 char b[5];
1736 int32 x;
1737 } u;
1738 uchar ch;
1739 int extra;
1740
1741 u.x = 0;
1742 ch = read_byte(f);
1743 extra = int_byte_extra[ch / 4];
1744 if (extra) {
1745 uchar bit = ((uchar)1<<(8-extra));
1746 if (extra >= (int)sizeof u.b) {
1747 rprintf(FERROR, "Overflow in read_varint()\n");
1748 exit_cleanup(RERR_STREAMIO);
1749 }
1750 read_buf(f, u.b, extra);
1751 u.b[extra] = ch & (bit-1);
1752 } else
1753 u.b[0] = ch;
1754 #if CAREFUL_ALIGNMENT
1755 u.x = IVAL(u.b,0);
1756 #endif
1757 #if SIZEOF_INT32 > 4
1758 if (u.x & (int32)0x80000000)
1759 u.x |= ~(int32)0xffffffff;
1760 #endif
1761 return u.x;
1762 }
1763
read_varlong(int f,uchar min_bytes)1764 int64 read_varlong(int f, uchar min_bytes)
1765 {
1766 union {
1767 char b[9];
1768 int64 x;
1769 } u;
1770 char b2[8];
1771 int extra;
1772
1773 #if SIZEOF_INT64 < 8
1774 memset(u.b, 0, 8);
1775 #else
1776 u.x = 0;
1777 #endif
1778 read_buf(f, b2, min_bytes);
1779 memcpy(u.b, b2+1, min_bytes-1);
1780 extra = int_byte_extra[CVAL(b2, 0) / 4];
1781 if (extra) {
1782 uchar bit = ((uchar)1<<(8-extra));
1783 if (min_bytes + extra > (int)sizeof u.b) {
1784 rprintf(FERROR, "Overflow in read_varlong()\n");
1785 exit_cleanup(RERR_STREAMIO);
1786 }
1787 read_buf(f, u.b + min_bytes - 1, extra);
1788 u.b[min_bytes + extra - 1] = CVAL(b2, 0) & (bit-1);
1789 #if SIZEOF_INT64 < 8
1790 if (min_bytes + extra > 5 || u.b[4] || CVAL(u.b,3) & 0x80) {
1791 rprintf(FERROR, "Integer overflow: attempted 64-bit offset\n");
1792 exit_cleanup(RERR_UNSUPPORTED);
1793 }
1794 #endif
1795 } else
1796 u.b[min_bytes + extra - 1] = CVAL(b2, 0);
1797 #if SIZEOF_INT64 < 8
1798 u.x = IVAL(u.b,0);
1799 #elif CAREFUL_ALIGNMENT
1800 u.x = IVAL64(u.b,0);
1801 #endif
1802 return u.x;
1803 }
1804
read_longint(int f)1805 int64 read_longint(int f)
1806 {
1807 #if SIZEOF_INT64 >= 8
1808 char b[9];
1809 #endif
1810 int32 num = read_int(f);
1811
1812 if (num != (int32)0xffffffff)
1813 return num;
1814
1815 #if SIZEOF_INT64 < 8
1816 rprintf(FERROR, "Integer overflow: attempted 64-bit offset\n");
1817 exit_cleanup(RERR_UNSUPPORTED);
1818 #else
1819 read_buf(f, b, 8);
1820 return IVAL(b,0) | (((int64)IVAL(b,4))<<32);
1821 #endif
1822 }
1823
read_buf(int f,char * buf,size_t len)1824 void read_buf(int f, char *buf, size_t len)
1825 {
1826 if (f != iobuf.in_fd) {
1827 if (safe_read(f, buf, len) != len)
1828 whine_about_eof(False); /* Doesn't return. */
1829 goto batch_copy;
1830 }
1831
1832 if (!IN_MULTIPLEXED) {
1833 raw_read_buf(buf, len);
1834 total_data_read += len;
1835 if (forward_flist_data)
1836 write_buf(iobuf.out_fd, buf, len);
1837 batch_copy:
1838 if (f == write_batch_monitor_in)
1839 safe_write(batch_fd, buf, len);
1840 return;
1841 }
1842
1843 while (1) {
1844 size_t siz;
1845
1846 while (!iobuf.raw_input_ends_before)
1847 read_a_msg();
1848
1849 siz = MIN(len, iobuf.raw_input_ends_before - iobuf.in.pos);
1850 if (siz >= iobuf.in.size)
1851 siz = iobuf.in.size;
1852 raw_read_buf(buf, siz);
1853 total_data_read += siz;
1854
1855 if (forward_flist_data)
1856 write_buf(iobuf.out_fd, buf, siz);
1857
1858 if (f == write_batch_monitor_in)
1859 safe_write(batch_fd, buf, siz);
1860
1861 if ((len -= siz) == 0)
1862 break;
1863 buf += siz;
1864 }
1865 }
1866
read_sbuf(int f,char * buf,size_t len)1867 void read_sbuf(int f, char *buf, size_t len)
1868 {
1869 read_buf(f, buf, len);
1870 buf[len] = '\0';
1871 }
1872
read_byte(int f)1873 uchar read_byte(int f)
1874 {
1875 uchar c;
1876 read_buf(f, (char*)&c, 1);
1877 return c;
1878 }
1879
read_vstring(int f,char * buf,int bufsize)1880 int read_vstring(int f, char *buf, int bufsize)
1881 {
1882 int len = read_byte(f);
1883
1884 if (len & 0x80)
1885 len = (len & ~0x80) * 0x100 + read_byte(f);
1886
1887 if (len >= bufsize) {
1888 rprintf(FERROR, "over-long vstring received (%d > %d)\n",
1889 len, bufsize - 1);
1890 return -1;
1891 }
1892
1893 if (len)
1894 read_buf(f, buf, len);
1895 buf[len] = '\0';
1896 return len;
1897 }
1898
1899 /* Populate a sum_struct with values from the socket. This is
1900 * called by both the sender and the receiver. */
read_sum_head(int f,struct sum_struct * sum)1901 void read_sum_head(int f, struct sum_struct *sum)
1902 {
1903 int32 max_blength = protocol_version < 30 ? OLD_MAX_BLOCK_SIZE : MAX_BLOCK_SIZE;
1904 sum->count = read_int(f);
1905 if (sum->count < 0) {
1906 rprintf(FERROR, "Invalid checksum count %ld [%s]\n",
1907 (long)sum->count, who_am_i());
1908 exit_cleanup(RERR_PROTOCOL);
1909 }
1910 sum->blength = read_int(f);
1911 if (sum->blength < 0 || sum->blength > max_blength) {
1912 rprintf(FERROR, "Invalid block length %ld [%s]\n",
1913 (long)sum->blength, who_am_i());
1914 exit_cleanup(RERR_PROTOCOL);
1915 }
1916 sum->s2length = protocol_version < 27 ? csum_length : (int)read_int(f);
1917 if (sum->s2length < 0 || sum->s2length > MAX_DIGEST_LEN) {
1918 rprintf(FERROR, "Invalid checksum length %d [%s]\n",
1919 sum->s2length, who_am_i());
1920 exit_cleanup(RERR_PROTOCOL);
1921 }
1922 sum->remainder = read_int(f);
1923 if (sum->remainder < 0 || sum->remainder > sum->blength) {
1924 rprintf(FERROR, "Invalid remainder length %ld [%s]\n",
1925 (long)sum->remainder, who_am_i());
1926 exit_cleanup(RERR_PROTOCOL);
1927 }
1928 }
1929
1930 /* Send the values from a sum_struct over the socket. Set sum to
1931 * NULL if there are no checksums to send. This is called by both
1932 * the generator and the sender. */
write_sum_head(int f,struct sum_struct * sum)1933 void write_sum_head(int f, struct sum_struct *sum)
1934 {
1935 static struct sum_struct null_sum;
1936
1937 if (sum == NULL)
1938 sum = &null_sum;
1939
1940 write_int(f, sum->count);
1941 write_int(f, sum->blength);
1942 if (protocol_version >= 27)
1943 write_int(f, sum->s2length);
1944 write_int(f, sum->remainder);
1945 }
1946
1947 /* Sleep after writing to limit I/O bandwidth usage.
1948 *
1949 * @todo Rather than sleeping after each write, it might be better to
1950 * use some kind of averaging. The current algorithm seems to always
1951 * use a bit less bandwidth than specified, because it doesn't make up
1952 * for slow periods. But arguably this is a feature. In addition, we
1953 * ought to take the time used to write the data into account.
1954 *
1955 * During some phases of big transfers (file FOO is uptodate) this is
1956 * called with a small bytes_written every time. As the kernel has to
1957 * round small waits up to guarantee that we actually wait at least the
1958 * requested number of microseconds, this can become grossly inaccurate.
1959 * We therefore keep track of the bytes we've written over time and only
1960 * sleep when the accumulated delay is at least 1 tenth of a second. */
sleep_for_bwlimit(int bytes_written)1961 static void sleep_for_bwlimit(int bytes_written)
1962 {
1963 static struct timeval prior_tv;
1964 static long total_written = 0;
1965 struct timeval tv, start_tv;
1966 long elapsed_usec, sleep_usec;
1967
1968 #define ONE_SEC 1000000L /* # of microseconds in a second */
1969
1970 total_written += bytes_written;
1971
1972 gettimeofday(&start_tv, NULL);
1973 if (prior_tv.tv_sec) {
1974 elapsed_usec = (start_tv.tv_sec - prior_tv.tv_sec) * ONE_SEC
1975 + (start_tv.tv_usec - prior_tv.tv_usec);
1976 total_written -= (int64)elapsed_usec * bwlimit / (ONE_SEC/1024);
1977 if (total_written < 0)
1978 total_written = 0;
1979 }
1980
1981 sleep_usec = total_written * (ONE_SEC/1024) / bwlimit;
1982 if (sleep_usec < ONE_SEC / 10) {
1983 prior_tv = start_tv;
1984 return;
1985 }
1986
1987 tv.tv_sec = sleep_usec / ONE_SEC;
1988 tv.tv_usec = sleep_usec % ONE_SEC;
1989 select(0, NULL, NULL, NULL, &tv);
1990
1991 gettimeofday(&prior_tv, NULL);
1992 elapsed_usec = (prior_tv.tv_sec - start_tv.tv_sec) * ONE_SEC
1993 + (prior_tv.tv_usec - start_tv.tv_usec);
1994 total_written = (sleep_usec - elapsed_usec) * bwlimit / (ONE_SEC/1024);
1995 }
1996
io_flush(int flush_type)1997 void io_flush(int flush_type)
1998 {
1999 if (iobuf.out.len > iobuf.out_empty_len) {
2000 if (flush_type == FULL_FLUSH) /* flush everything in the output buffers */
2001 perform_io(iobuf.out.size - iobuf.out_empty_len, PIO_NEED_OUTROOM);
2002 else if (flush_type == NORMAL_FLUSH) /* flush at least 1 byte */
2003 perform_io(iobuf.out.size - iobuf.out.len + 1, PIO_NEED_OUTROOM);
2004 /* MSG_FLUSH: flush iobuf.msg only */
2005 }
2006 if (iobuf.msg.len)
2007 perform_io(iobuf.msg.size, PIO_NEED_MSGROOM);
2008 }
2009
write_shortint(int f,unsigned short x)2010 void write_shortint(int f, unsigned short x)
2011 {
2012 char b[2];
2013 b[0] = (char)x;
2014 b[1] = (char)(x >> 8);
2015 write_buf(f, b, 2);
2016 }
2017
write_int(int f,int32 x)2018 void write_int(int f, int32 x)
2019 {
2020 char b[4];
2021 SIVAL(b, 0, x);
2022 write_buf(f, b, 4);
2023 }
2024
write_varint(int f,int32 x)2025 void write_varint(int f, int32 x)
2026 {
2027 char b[5];
2028 uchar bit;
2029 int cnt;
2030
2031 SIVAL(b, 1, x);
2032
2033 for (cnt = 4; cnt > 1 && b[cnt] == 0; cnt--) {}
2034 bit = ((uchar)1<<(7-cnt+1));
2035
2036 if (CVAL(b, cnt) >= bit) {
2037 cnt++;
2038 *b = ~(bit-1);
2039 } else if (cnt > 1)
2040 *b = b[cnt] | ~(bit*2-1);
2041 else
2042 *b = b[1];
2043
2044 write_buf(f, b, cnt);
2045 }
2046
write_varlong(int f,int64 x,uchar min_bytes)2047 void write_varlong(int f, int64 x, uchar min_bytes)
2048 {
2049 char b[9];
2050 uchar bit;
2051 int cnt = 8;
2052
2053 #if SIZEOF_INT64 >= 8
2054 SIVAL64(b, 1, x);
2055 #else
2056 SIVAL(b, 1, x);
2057 if (x <= 0x7FFFFFFF && x >= 0)
2058 memset(b + 5, 0, 4);
2059 else {
2060 rprintf(FERROR, "Integer overflow: attempted 64-bit offset\n");
2061 exit_cleanup(RERR_UNSUPPORTED);
2062 }
2063 #endif
2064
2065 while (cnt > min_bytes && b[cnt] == 0)
2066 cnt--;
2067 bit = ((uchar)1<<(7-cnt+min_bytes));
2068 if (CVAL(b, cnt) >= bit) {
2069 cnt++;
2070 *b = ~(bit-1);
2071 } else if (cnt > min_bytes)
2072 *b = b[cnt] | ~(bit*2-1);
2073 else
2074 *b = b[cnt];
2075
2076 write_buf(f, b, cnt);
2077 }
2078
2079 /*
2080 * Note: int64 may actually be a 32-bit type if ./configure couldn't find any
2081 * 64-bit types on this platform.
2082 */
write_longint(int f,int64 x)2083 void write_longint(int f, int64 x)
2084 {
2085 char b[12], * const s = b+4;
2086
2087 SIVAL(s, 0, x);
2088 if (x <= 0x7FFFFFFF && x >= 0) {
2089 write_buf(f, s, 4);
2090 return;
2091 }
2092
2093 #if SIZEOF_INT64 < 8
2094 rprintf(FERROR, "Integer overflow: attempted 64-bit offset\n");
2095 exit_cleanup(RERR_UNSUPPORTED);
2096 #else
2097 memset(b, 0xFF, 4);
2098 SIVAL(s, 4, x >> 32);
2099 write_buf(f, b, 12);
2100 #endif
2101 }
2102
write_bigbuf(int f,const char * buf,size_t len)2103 void write_bigbuf(int f, const char *buf, size_t len)
2104 {
2105 size_t half_max = (iobuf.out.size - iobuf.out_empty_len) / 2;
2106
2107 while (len > half_max + 1024) {
2108 write_buf(f, buf, half_max);
2109 buf += half_max;
2110 len -= half_max;
2111 }
2112
2113 write_buf(f, buf, len);
2114 }
2115
write_buf(int f,const char * buf,size_t len)2116 void write_buf(int f, const char *buf, size_t len)
2117 {
2118 size_t pos, siz;
2119
2120 if (f != iobuf.out_fd) {
2121 safe_write(f, buf, len);
2122 goto batch_copy;
2123 }
2124
2125 if (iobuf.out.len + len > iobuf.out.size)
2126 perform_io(len, PIO_NEED_OUTROOM);
2127
2128 pos = iobuf.out.pos + iobuf.out.len; /* Must be set after any flushing. */
2129 if (pos >= iobuf.out.size)
2130 pos -= iobuf.out.size;
2131
2132 /* Handle a split copy if we wrap around the end of the circular buffer. */
2133 if (pos >= iobuf.out.pos && (siz = iobuf.out.size - pos) < len) {
2134 memcpy(iobuf.out.buf + pos, buf, siz);
2135 memcpy(iobuf.out.buf, buf + siz, len - siz);
2136 } else
2137 memcpy(iobuf.out.buf + pos, buf, len);
2138
2139 iobuf.out.len += len;
2140 total_data_written += len;
2141
2142 batch_copy:
2143 if (f == write_batch_monitor_out)
2144 safe_write(batch_fd, buf, len);
2145 }
2146
2147 /* Write a string to the connection */
write_sbuf(int f,const char * buf)2148 void write_sbuf(int f, const char *buf)
2149 {
2150 write_buf(f, buf, strlen(buf));
2151 }
2152
write_byte(int f,uchar c)2153 void write_byte(int f, uchar c)
2154 {
2155 write_buf(f, (char *)&c, 1);
2156 }
2157
write_vstring(int f,const char * str,int len)2158 void write_vstring(int f, const char *str, int len)
2159 {
2160 uchar lenbuf[3], *lb = lenbuf;
2161
2162 if (len > 0x7F) {
2163 if (len > 0x7FFF) {
2164 rprintf(FERROR,
2165 "attempting to send over-long vstring (%d > %d)\n",
2166 len, 0x7FFF);
2167 exit_cleanup(RERR_PROTOCOL);
2168 }
2169 *lb++ = len / 0x100 + 0x80;
2170 }
2171 *lb = len;
2172
2173 write_buf(f, (char*)lenbuf, lb - lenbuf + 1);
2174 if (len)
2175 write_buf(f, str, len);
2176 }
2177
2178 /* Send a file-list index using a byte-reduction method. */
write_ndx(int f,int32 ndx)2179 void write_ndx(int f, int32 ndx)
2180 {
2181 static int32 prev_positive = -1, prev_negative = 1;
2182 int32 diff, cnt = 0;
2183 char b[6];
2184
2185 if (protocol_version < 30 || read_batch) {
2186 write_int(f, ndx);
2187 return;
2188 }
2189
2190 /* Send NDX_DONE as a single-byte 0 with no side effects. Send
2191 * negative nums as a positive after sending a leading 0xFF. */
2192 if (ndx >= 0) {
2193 diff = ndx - prev_positive;
2194 prev_positive = ndx;
2195 } else if (ndx == NDX_DONE) {
2196 *b = 0;
2197 write_buf(f, b, 1);
2198 return;
2199 } else {
2200 b[cnt++] = (char)0xFF;
2201 ndx = -ndx;
2202 diff = ndx - prev_negative;
2203 prev_negative = ndx;
2204 }
2205
2206 /* A diff of 1 - 253 is sent as a one-byte diff; a diff of 254 - 32767
2207 * or 0 is sent as a 0xFE + a two-byte diff; otherwise we send 0xFE
2208 * & all 4 bytes of the (non-negative) num with the high-bit set. */
2209 if (diff < 0xFE && diff > 0)
2210 b[cnt++] = (char)diff;
2211 else if (diff < 0 || diff > 0x7FFF) {
2212 b[cnt++] = (char)0xFE;
2213 b[cnt++] = (char)((ndx >> 24) | 0x80);
2214 b[cnt++] = (char)ndx;
2215 b[cnt++] = (char)(ndx >> 8);
2216 b[cnt++] = (char)(ndx >> 16);
2217 } else {
2218 b[cnt++] = (char)0xFE;
2219 b[cnt++] = (char)(diff >> 8);
2220 b[cnt++] = (char)diff;
2221 }
2222 write_buf(f, b, cnt);
2223 }
2224
2225 /* Receive a file-list index using a byte-reduction method. */
read_ndx(int f)2226 int32 read_ndx(int f)
2227 {
2228 static int32 prev_positive = -1, prev_negative = 1;
2229 int32 *prev_ptr, num;
2230 char b[4];
2231
2232 if (protocol_version < 30)
2233 return read_int(f);
2234
2235 read_buf(f, b, 1);
2236 if (CVAL(b, 0) == 0xFF) {
2237 read_buf(f, b, 1);
2238 prev_ptr = &prev_negative;
2239 } else if (CVAL(b, 0) == 0)
2240 return NDX_DONE;
2241 else
2242 prev_ptr = &prev_positive;
2243 if (CVAL(b, 0) == 0xFE) {
2244 read_buf(f, b, 2);
2245 if (CVAL(b, 0) & 0x80) {
2246 b[3] = CVAL(b, 0) & ~0x80;
2247 b[0] = b[1];
2248 read_buf(f, b+1, 2);
2249 num = IVAL(b, 0);
2250 } else
2251 num = (UVAL(b,0)<<8) + UVAL(b,1) + *prev_ptr;
2252 } else
2253 num = UVAL(b, 0) + *prev_ptr;
2254 *prev_ptr = num;
2255 if (prev_ptr == &prev_negative)
2256 num = -num;
2257 return num;
2258 }
2259
2260 /* Read a line of up to bufsiz-1 characters into buf. Strips
2261 * the (required) trailing newline and all carriage returns.
2262 * Returns 1 for success; 0 for I/O error or truncation. */
read_line_old(int fd,char * buf,size_t bufsiz,int eof_ok)2263 int read_line_old(int fd, char *buf, size_t bufsiz, int eof_ok)
2264 {
2265 assert(fd != iobuf.in_fd);
2266 bufsiz--; /* leave room for the null */
2267 while (bufsiz > 0) {
2268 if (safe_read(fd, buf, 1) == 0) {
2269 if (eof_ok)
2270 break;
2271 return 0;
2272 }
2273 if (*buf == '\0')
2274 return 0;
2275 if (*buf == '\n')
2276 break;
2277 if (*buf != '\r') {
2278 buf++;
2279 bufsiz--;
2280 }
2281 }
2282 *buf = '\0';
2283 return bufsiz > 0;
2284 }
2285
io_printf(int fd,const char * format,...)2286 void io_printf(int fd, const char *format, ...)
2287 {
2288 va_list ap;
2289 char buf[BIGPATHBUFLEN];
2290 int len;
2291
2292 va_start(ap, format);
2293 len = vsnprintf(buf, sizeof buf, format, ap);
2294 va_end(ap);
2295
2296 if (len < 0)
2297 exit_cleanup(RERR_PROTOCOL);
2298
2299 if (len >= (int)sizeof buf) {
2300 rprintf(FERROR, "io_printf() was too long for the buffer.\n");
2301 exit_cleanup(RERR_PROTOCOL);
2302 }
2303
2304 write_sbuf(fd, buf);
2305 }
2306
2307 /* Setup for multiplexing a MSG_* stream with the data stream. */
io_start_multiplex_out(int fd)2308 void io_start_multiplex_out(int fd)
2309 {
2310 io_flush(FULL_FLUSH);
2311
2312 if (msgs2stderr == 1 && DEBUG_GTE(IO, 2))
2313 rprintf(FINFO, "[%s] io_start_multiplex_out(%d)\n", who_am_i(), fd);
2314
2315 if (!iobuf.msg.buf)
2316 alloc_xbuf(&iobuf.msg, ROUND_UP_1024(IO_BUFFER_SIZE));
2317
2318 iobuf.out_empty_len = 4; /* See also OUT_MULTIPLEXED */
2319 io_start_buffering_out(fd);
2320 got_kill_signal = 0;
2321
2322 iobuf.raw_data_header_pos = iobuf.out.pos + iobuf.out.len;
2323 iobuf.out.len += 4;
2324 }
2325
2326 /* Setup for multiplexing a MSG_* stream with the data stream. */
io_start_multiplex_in(int fd)2327 void io_start_multiplex_in(int fd)
2328 {
2329 if (msgs2stderr == 1 && DEBUG_GTE(IO, 2))
2330 rprintf(FINFO, "[%s] io_start_multiplex_in(%d)\n", who_am_i(), fd);
2331
2332 iobuf.in_multiplexed = 1; /* See also IN_MULTIPLEXED */
2333 io_start_buffering_in(fd);
2334 }
2335
io_end_multiplex_in(int mode)2336 int io_end_multiplex_in(int mode)
2337 {
2338 int ret = iobuf.in_multiplexed ? iobuf.in_fd : -1;
2339
2340 if (msgs2stderr == 1 && DEBUG_GTE(IO, 2))
2341 rprintf(FINFO, "[%s] io_end_multiplex_in(mode=%d)\n", who_am_i(), mode);
2342
2343 iobuf.in_multiplexed = 0;
2344 if (mode == MPLX_SWITCHING)
2345 iobuf.raw_input_ends_before = 0;
2346 else
2347 assert(iobuf.raw_input_ends_before == 0);
2348 if (mode != MPLX_TO_BUFFERED)
2349 io_end_buffering_in(mode);
2350
2351 return ret;
2352 }
2353
io_end_multiplex_out(int mode)2354 int io_end_multiplex_out(int mode)
2355 {
2356 int ret = iobuf.out_empty_len ? iobuf.out_fd : -1;
2357
2358 if (msgs2stderr == 1 && DEBUG_GTE(IO, 2))
2359 rprintf(FINFO, "[%s] io_end_multiplex_out(mode=%d)\n", who_am_i(), mode);
2360
2361 if (mode != MPLX_TO_BUFFERED)
2362 io_end_buffering_out(mode);
2363 else
2364 io_flush(FULL_FLUSH);
2365
2366 iobuf.out.len = 0;
2367 iobuf.out_empty_len = 0;
2368 if (got_kill_signal > 0) /* Just in case... */
2369 handle_kill_signal(False);
2370 got_kill_signal = -1;
2371
2372 return ret;
2373 }
2374
start_write_batch(int fd)2375 void start_write_batch(int fd)
2376 {
2377 /* Some communication has already taken place, but we don't
2378 * enable batch writing until here so that we can write a
2379 * canonical record of the communication even though the
2380 * actual communication so far depends on whether a daemon
2381 * is involved. */
2382 write_int(batch_fd, protocol_version);
2383 if (protocol_version >= 30)
2384 write_varint(batch_fd, compat_flags);
2385 write_int(batch_fd, checksum_seed);
2386
2387 if (am_sender)
2388 write_batch_monitor_out = fd;
2389 else
2390 write_batch_monitor_in = fd;
2391 }
2392
stop_write_batch(void)2393 void stop_write_batch(void)
2394 {
2395 write_batch_monitor_out = -1;
2396 write_batch_monitor_in = -1;
2397 }
2398