2017-11-29 Vladimir Makarov <vmakarov@redhat.com>
[official-gcc.git] / libgfortran / io / unix.c
blob61e9f7997b25819514af546b50aa1d00b1d116f9
1 /* Copyright (C) 2002-2017 Free Software Foundation, Inc.
2 Contributed by Andy Vaught
3 F2003 I/O support contributed by Jerry DeLisle
5 This file is part of the GNU Fortran runtime library (libgfortran).
7 Libgfortran is free software; you can redistribute it and/or modify
8 it under the terms of the GNU General Public License as published by
9 the Free Software Foundation; either version 3, or (at your option)
10 any later version.
12 Libgfortran is distributed in the hope that it will be useful,
13 but WITHOUT ANY WARRANTY; without even the implied warranty of
14 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 GNU General Public License for more details.
17 Under Section 7 of GPL version 3, you are granted additional
18 permissions described in the GCC Runtime Library Exception, version
19 3.1, as published by the Free Software Foundation.
21 You should have received a copy of the GNU General Public License and
22 a copy of the GCC Runtime Library Exception along with this program;
23 see the files COPYING3 and COPYING.RUNTIME respectively. If not, see
24 <http://www.gnu.org/licenses/>. */
26 /* Unix stream I/O module */
28 #include "io.h"
29 #include "unix.h"
30 #include <limits.h>
32 #ifdef HAVE_UNISTD_H
33 #include <unistd.h>
34 #endif
36 #include <sys/stat.h>
37 #include <fcntl.h>
39 #include <string.h>
40 #include <errno.h>
43 /* For mingw, we don't identify files by their inode number, but by a
44 64-bit identifier created from a BY_HANDLE_FILE_INFORMATION. */
45 #ifdef __MINGW32__
47 #define WIN32_LEAN_AND_MEAN
48 #include <windows.h>
50 #if !defined(_FILE_OFFSET_BITS) || _FILE_OFFSET_BITS != 64
51 #undef lseek
52 #define lseek _lseeki64
53 #undef fstat
54 #define fstat _fstati64
55 #undef stat
56 #define stat _stati64
57 #endif
59 #ifndef HAVE_WORKING_STAT
60 static uint64_t
61 id_from_handle (HANDLE hFile)
63 BY_HANDLE_FILE_INFORMATION FileInformation;
65 if (hFile == INVALID_HANDLE_VALUE)
66 return 0;
68 memset (&FileInformation, 0, sizeof(FileInformation));
69 if (!GetFileInformationByHandle (hFile, &FileInformation))
70 return 0;
72 return ((uint64_t) FileInformation.nFileIndexLow)
73 | (((uint64_t) FileInformation.nFileIndexHigh) << 32);
77 static uint64_t
78 id_from_path (const char *path)
80 HANDLE hFile;
81 uint64_t res;
83 if (!path || !*path || access (path, F_OK))
84 return (uint64_t) -1;
86 hFile = CreateFile (path, 0, 0, NULL, OPEN_EXISTING,
87 FILE_FLAG_BACKUP_SEMANTICS | FILE_ATTRIBUTE_READONLY,
88 NULL);
89 res = id_from_handle (hFile);
90 CloseHandle (hFile);
91 return res;
95 static uint64_t
96 id_from_fd (const int fd)
98 return id_from_handle ((HANDLE) _get_osfhandle (fd));
101 #endif /* HAVE_WORKING_STAT */
104 /* On mingw, we don't use umask in tempfile_open(), because it
105 doesn't support the user/group/other-based permissions. */
106 #undef HAVE_UMASK
108 #endif /* __MINGW32__ */
111 /* These flags aren't defined on all targets (mingw32), so provide them
112 here. */
113 #ifndef S_IRGRP
114 #define S_IRGRP 0
115 #endif
117 #ifndef S_IWGRP
118 #define S_IWGRP 0
119 #endif
121 #ifndef S_IROTH
122 #define S_IROTH 0
123 #endif
125 #ifndef S_IWOTH
126 #define S_IWOTH 0
127 #endif
130 #ifndef HAVE_ACCESS
132 #ifndef W_OK
133 #define W_OK 2
134 #endif
136 #ifndef R_OK
137 #define R_OK 4
138 #endif
140 #ifndef F_OK
141 #define F_OK 0
142 #endif
144 /* Fallback implementation of access() on systems that don't have it.
145 Only modes R_OK, W_OK and F_OK are used in this file. */
147 static int
148 fallback_access (const char *path, int mode)
150 int fd;
152 if ((mode & R_OK) && (fd = open (path, O_RDONLY)) < 0)
153 return -1;
154 close (fd);
156 if ((mode & W_OK) && (fd = open (path, O_WRONLY)) < 0)
157 return -1;
158 close (fd);
160 if (mode == F_OK)
162 struct stat st;
163 return stat (path, &st);
166 return 0;
169 #undef access
170 #define access fallback_access
171 #endif
174 /* Fallback directory for creating temporary files. P_tmpdir is
175 defined on many POSIX platforms. */
176 #ifndef P_tmpdir
177 #ifdef _P_tmpdir
178 #define P_tmpdir _P_tmpdir /* MinGW */
179 #else
180 #define P_tmpdir "/tmp"
181 #endif
182 #endif
185 /* Unix and internal stream I/O module */
187 static const int BUFFER_SIZE = 8192;
189 typedef struct
191 stream st;
193 gfc_offset buffer_offset; /* File offset of the start of the buffer */
194 gfc_offset physical_offset; /* Current physical file offset */
195 gfc_offset logical_offset; /* Current logical file offset */
196 gfc_offset file_length; /* Length of the file. */
198 char *buffer; /* Pointer to the buffer. */
199 int fd; /* The POSIX file descriptor. */
201 int active; /* Length of valid bytes in the buffer */
203 int ndirty; /* Dirty bytes starting at buffer_offset */
205 /* Cached stat(2) values. */
206 dev_t st_dev;
207 ino_t st_ino;
209 bool unbuffered; /* Buffer should be flushed after each I/O statement. */
211 unix_stream;
214 /* fix_fd()-- Given a file descriptor, make sure it is not one of the
215 standard descriptors, returning a non-standard descriptor. If the
216 user specifies that system errors should go to standard output,
217 then closes standard output, we don't want the system errors to a
218 file that has been given file descriptor 1 or 0. We want to send
219 the error to the invalid descriptor. */
221 static int
222 fix_fd (int fd)
224 #ifdef HAVE_DUP
225 int input, output, error;
227 input = output = error = 0;
229 /* Unix allocates the lowest descriptors first, so a loop is not
230 required, but this order is. */
231 if (fd == STDIN_FILENO)
233 fd = dup (fd);
234 input = 1;
236 if (fd == STDOUT_FILENO)
238 fd = dup (fd);
239 output = 1;
241 if (fd == STDERR_FILENO)
243 fd = dup (fd);
244 error = 1;
247 if (input)
248 close (STDIN_FILENO);
249 if (output)
250 close (STDOUT_FILENO);
251 if (error)
252 close (STDERR_FILENO);
253 #endif
255 return fd;
259 /* If the stream corresponds to a preconnected unit, we flush the
260 corresponding C stream. This is bugware for mixed C-Fortran codes
261 where the C code doesn't flush I/O before returning. */
262 void
263 flush_if_preconnected (stream *s)
265 int fd;
267 fd = ((unix_stream *) s)->fd;
268 if (fd == STDIN_FILENO)
269 fflush (stdin);
270 else if (fd == STDOUT_FILENO)
271 fflush (stdout);
272 else if (fd == STDERR_FILENO)
273 fflush (stderr);
277 /********************************************************************
278 Raw I/O functions (read, write, seek, tell, truncate, close).
280 These functions wrap the basic POSIX I/O syscalls. Any deviation in
281 semantics is a bug, except the following: write restarts in case
282 of being interrupted by a signal, and as the first argument the
283 functions take the unix_stream struct rather than an integer file
284 descriptor. Also, for POSIX read() and write() a nbyte argument larger
285 than SSIZE_MAX is undefined; here the type of nbyte is ssize_t rather
286 than size_t as for POSIX read/write.
287 *********************************************************************/
289 static int
290 raw_flush (unix_stream *s __attribute__ ((unused)))
292 return 0;
295 static ssize_t
296 raw_read (unix_stream *s, void *buf, ssize_t nbyte)
298 /* For read we can't do I/O in a loop like raw_write does, because
299 that will break applications that wait for interactive I/O. We
300 still can loop around EINTR, though. */
301 while (true)
303 ssize_t trans = read (s->fd, buf, nbyte);
304 if (trans == -1 && errno == EINTR)
305 continue;
306 return trans;
310 static ssize_t
311 raw_write (unix_stream *s, const void *buf, ssize_t nbyte)
313 ssize_t trans, bytes_left;
314 char *buf_st;
316 bytes_left = nbyte;
317 buf_st = (char *) buf;
319 /* We must write in a loop since some systems don't restart system
320 calls in case of a signal. */
321 while (bytes_left > 0)
323 trans = write (s->fd, buf_st, bytes_left);
324 if (trans == -1)
326 if (errno == EINTR)
327 continue;
328 else
329 return trans;
331 buf_st += trans;
332 bytes_left -= trans;
335 return nbyte - bytes_left;
338 static gfc_offset
339 raw_seek (unix_stream *s, gfc_offset offset, int whence)
341 while (true)
343 gfc_offset off = lseek (s->fd, offset, whence);
344 if (off == (gfc_offset) -1 && errno == EINTR)
345 continue;
346 return off;
350 static gfc_offset
351 raw_tell (unix_stream *s)
353 while (true)
355 gfc_offset off = lseek (s->fd, 0, SEEK_CUR);
356 if (off == (gfc_offset) -1 && errno == EINTR)
357 continue;
358 return off;
362 static gfc_offset
363 raw_size (unix_stream *s)
365 struct stat statbuf;
366 if (TEMP_FAILURE_RETRY (fstat (s->fd, &statbuf)) == -1)
367 return -1;
368 if (S_ISREG (statbuf.st_mode))
369 return statbuf.st_size;
370 else
371 return 0;
374 static int
375 raw_truncate (unix_stream *s, gfc_offset length)
377 #ifdef __MINGW32__
378 HANDLE h;
379 gfc_offset cur;
381 if (isatty (s->fd))
383 errno = EBADF;
384 return -1;
386 h = (HANDLE) _get_osfhandle (s->fd);
387 if (h == INVALID_HANDLE_VALUE)
389 errno = EBADF;
390 return -1;
392 cur = lseek (s->fd, 0, SEEK_CUR);
393 if (cur == -1)
394 return -1;
395 if (lseek (s->fd, length, SEEK_SET) == -1)
396 goto error;
397 if (!SetEndOfFile (h))
399 errno = EBADF;
400 goto error;
402 if (lseek (s->fd, cur, SEEK_SET) == -1)
403 return -1;
404 return 0;
405 error:
406 lseek (s->fd, cur, SEEK_SET);
407 return -1;
408 #elif defined HAVE_FTRUNCATE
409 if (TEMP_FAILURE_RETRY (ftruncate (s->fd, length)) == -1)
410 return -1;
411 return 0;
412 #elif defined HAVE_CHSIZE
413 return chsize (s->fd, length);
414 #else
415 runtime_error ("required ftruncate or chsize support not present");
416 return -1;
417 #endif
420 static int
421 raw_close (unix_stream *s)
423 int retval;
425 if (s->fd == -1)
426 retval = -1;
427 else if (s->fd != STDOUT_FILENO
428 && s->fd != STDERR_FILENO
429 && s->fd != STDIN_FILENO)
431 retval = close (s->fd);
432 /* close() and EINTR is special, as the file descriptor is
433 deallocated before doing anything that might cause the
434 operation to be interrupted. Thus if we get EINTR the best we
435 can do is ignore it and continue (otherwise if we try again
436 the file descriptor may have been allocated again to some
437 other file). */
438 if (retval == -1 && errno == EINTR)
439 retval = errno = 0;
441 else
442 retval = 0;
443 free (s);
444 return retval;
447 static int
448 raw_markeor (unix_stream *s __attribute__ ((unused)))
450 return 0;
453 static const struct stream_vtable raw_vtable = {
454 .read = (void *) raw_read,
455 .write = (void *) raw_write,
456 .seek = (void *) raw_seek,
457 .tell = (void *) raw_tell,
458 .size = (void *) raw_size,
459 .trunc = (void *) raw_truncate,
460 .close = (void *) raw_close,
461 .flush = (void *) raw_flush,
462 .markeor = (void *) raw_markeor
465 static int
466 raw_init (unix_stream *s)
468 s->st.vptr = &raw_vtable;
470 s->buffer = NULL;
471 return 0;
475 /*********************************************************************
476 Buffered I/O functions. These functions have the same semantics as the
477 raw I/O functions above, except that they are buffered in order to
478 improve performance. The buffer must be flushed when switching from
479 reading to writing and vice versa.
480 *********************************************************************/
482 static int
483 buf_flush (unix_stream *s)
485 int writelen;
487 /* Flushing in read mode means discarding read bytes. */
488 s->active = 0;
490 if (s->ndirty == 0)
491 return 0;
493 if (s->physical_offset != s->buffer_offset
494 && raw_seek (s, s->buffer_offset, SEEK_SET) < 0)
495 return -1;
497 writelen = raw_write (s, s->buffer, s->ndirty);
499 s->physical_offset = s->buffer_offset + writelen;
501 if (s->physical_offset > s->file_length)
502 s->file_length = s->physical_offset;
504 s->ndirty -= writelen;
505 if (s->ndirty != 0)
506 return -1;
508 return 0;
511 static ssize_t
512 buf_read (unix_stream *s, void *buf, ssize_t nbyte)
514 if (s->active == 0)
515 s->buffer_offset = s->logical_offset;
517 /* Is the data we want in the buffer? */
518 if (s->logical_offset + nbyte <= s->buffer_offset + s->active
519 && s->buffer_offset <= s->logical_offset)
521 /* When nbyte == 0, buf can be NULL which would lead to undefined
522 behavior if we called memcpy(). */
523 if (nbyte != 0)
524 memcpy (buf, s->buffer + (s->logical_offset - s->buffer_offset),
525 nbyte);
527 else
529 /* First copy the active bytes if applicable, then read the rest
530 either directly or filling the buffer. */
531 char *p;
532 int nread = 0;
533 ssize_t to_read, did_read;
534 gfc_offset new_logical;
536 p = (char *) buf;
537 if (s->logical_offset >= s->buffer_offset
538 && s->buffer_offset + s->active >= s->logical_offset)
540 nread = s->active - (s->logical_offset - s->buffer_offset);
541 memcpy (buf, s->buffer + (s->logical_offset - s->buffer_offset),
542 nread);
543 p += nread;
545 /* At this point we consider all bytes in the buffer discarded. */
546 to_read = nbyte - nread;
547 new_logical = s->logical_offset + nread;
548 if (s->physical_offset != new_logical
549 && raw_seek (s, new_logical, SEEK_SET) < 0)
550 return -1;
551 s->buffer_offset = s->physical_offset = new_logical;
552 if (to_read <= BUFFER_SIZE/2)
554 did_read = raw_read (s, s->buffer, BUFFER_SIZE);
555 if (likely (did_read >= 0))
557 s->physical_offset += did_read;
558 s->active = did_read;
559 did_read = (did_read > to_read) ? to_read : did_read;
560 memcpy (p, s->buffer, did_read);
562 else
563 return did_read;
565 else
567 did_read = raw_read (s, p, to_read);
568 if (likely (did_read >= 0))
570 s->physical_offset += did_read;
571 s->active = 0;
573 else
574 return did_read;
576 nbyte = did_read + nread;
578 s->logical_offset += nbyte;
579 return nbyte;
582 static ssize_t
583 buf_write (unix_stream *s, const void *buf, ssize_t nbyte)
585 if (nbyte == 0)
586 return 0;
588 if (s->ndirty == 0)
589 s->buffer_offset = s->logical_offset;
591 /* Does the data fit into the buffer? As a special case, if the
592 buffer is empty and the request is bigger than BUFFER_SIZE/2,
593 write directly. This avoids the case where the buffer would have
594 to be flushed at every write. */
595 if (!(s->ndirty == 0 && nbyte > BUFFER_SIZE/2)
596 && s->logical_offset + nbyte <= s->buffer_offset + BUFFER_SIZE
597 && s->buffer_offset <= s->logical_offset
598 && s->buffer_offset + s->ndirty >= s->logical_offset)
600 memcpy (s->buffer + (s->logical_offset - s->buffer_offset), buf, nbyte);
601 int nd = (s->logical_offset - s->buffer_offset) + nbyte;
602 if (nd > s->ndirty)
603 s->ndirty = nd;
605 else
607 /* Flush, and either fill the buffer with the new data, or if
608 the request is bigger than the buffer size, write directly
609 bypassing the buffer. */
610 buf_flush (s);
611 if (nbyte <= BUFFER_SIZE/2)
613 memcpy (s->buffer, buf, nbyte);
614 s->buffer_offset = s->logical_offset;
615 s->ndirty += nbyte;
617 else
619 if (s->physical_offset != s->logical_offset)
621 if (raw_seek (s, s->logical_offset, SEEK_SET) < 0)
622 return -1;
623 s->physical_offset = s->logical_offset;
626 nbyte = raw_write (s, buf, nbyte);
627 s->physical_offset += nbyte;
630 s->logical_offset += nbyte;
631 if (s->logical_offset > s->file_length)
632 s->file_length = s->logical_offset;
633 return nbyte;
637 /* "Unbuffered" really means I/O statement buffering. For formatted
638 I/O, the fbuf manages this, and then uses raw I/O. For unformatted
639 I/O, buffered I/O is used, and the buffer is flushed at the end of
640 each I/O statement, where this function is called. Alternatively,
641 the buffer is flushed at the end of the record if the buffer is
642 more than half full; this prevents needless seeking back and forth
643 when writing sequential unformatted. */
645 static int
646 buf_markeor (unix_stream *s)
648 if (s->unbuffered || s->ndirty >= BUFFER_SIZE / 2)
649 return buf_flush (s);
650 return 0;
653 static gfc_offset
654 buf_seek (unix_stream *s, gfc_offset offset, int whence)
656 switch (whence)
658 case SEEK_SET:
659 break;
660 case SEEK_CUR:
661 offset += s->logical_offset;
662 break;
663 case SEEK_END:
664 offset += s->file_length;
665 break;
666 default:
667 return -1;
669 if (offset < 0)
671 errno = EINVAL;
672 return -1;
674 s->logical_offset = offset;
675 return offset;
678 static gfc_offset
679 buf_tell (unix_stream *s)
681 return buf_seek (s, 0, SEEK_CUR);
684 static gfc_offset
685 buf_size (unix_stream *s)
687 return s->file_length;
690 static int
691 buf_truncate (unix_stream *s, gfc_offset length)
693 int r;
695 if (buf_flush (s) != 0)
696 return -1;
697 r = raw_truncate (s, length);
698 if (r == 0)
699 s->file_length = length;
700 return r;
703 static int
704 buf_close (unix_stream *s)
706 if (buf_flush (s) != 0)
707 return -1;
708 free (s->buffer);
709 return raw_close (s);
712 static const struct stream_vtable buf_vtable = {
713 .read = (void *) buf_read,
714 .write = (void *) buf_write,
715 .seek = (void *) buf_seek,
716 .tell = (void *) buf_tell,
717 .size = (void *) buf_size,
718 .trunc = (void *) buf_truncate,
719 .close = (void *) buf_close,
720 .flush = (void *) buf_flush,
721 .markeor = (void *) buf_markeor
724 static int
725 buf_init (unix_stream *s)
727 s->st.vptr = &buf_vtable;
729 s->buffer = xmalloc (BUFFER_SIZE);
730 return 0;
734 /*********************************************************************
735 memory stream functions - These are used for internal files
737 The idea here is that a single stream structure is created and all
738 requests must be satisfied from it. The location and size of the
739 buffer is the character variable supplied to the READ or WRITE
740 statement.
742 *********************************************************************/
744 char *
745 mem_alloc_r (stream *strm, int *len)
747 unix_stream *s = (unix_stream *) strm;
748 gfc_offset n;
749 gfc_offset where = s->logical_offset;
751 if (where < s->buffer_offset || where > s->buffer_offset + s->active)
752 return NULL;
754 n = s->buffer_offset + s->active - where;
755 if (*len > n)
756 *len = n;
758 s->logical_offset = where + *len;
760 return s->buffer + (where - s->buffer_offset);
764 char *
765 mem_alloc_r4 (stream *strm, int *len)
767 unix_stream *s = (unix_stream *) strm;
768 gfc_offset n;
769 gfc_offset where = s->logical_offset;
771 if (where < s->buffer_offset || where > s->buffer_offset + s->active)
772 return NULL;
774 n = s->buffer_offset + s->active - where;
775 if (*len > n)
776 *len = n;
778 s->logical_offset = where + *len;
780 return s->buffer + (where - s->buffer_offset) * 4;
784 char *
785 mem_alloc_w (stream *strm, int *len)
787 unix_stream *s = (unix_stream *)strm;
788 gfc_offset m;
789 gfc_offset where = s->logical_offset;
791 m = where + *len;
793 if (where < s->buffer_offset)
794 return NULL;
796 if (m > s->file_length)
797 return NULL;
799 s->logical_offset = m;
801 return s->buffer + (where - s->buffer_offset);
805 gfc_char4_t *
806 mem_alloc_w4 (stream *strm, int *len)
808 unix_stream *s = (unix_stream *)strm;
809 gfc_offset m;
810 gfc_offset where = s->logical_offset;
811 gfc_char4_t *result = (gfc_char4_t *) s->buffer;
813 m = where + *len;
815 if (where < s->buffer_offset)
816 return NULL;
818 if (m > s->file_length)
819 return NULL;
821 s->logical_offset = m;
822 return &result[where - s->buffer_offset];
826 /* Stream read function for character(kind=1) internal units. */
828 static ssize_t
829 mem_read (stream *s, void *buf, ssize_t nbytes)
831 void *p;
832 int nb = nbytes;
834 p = mem_alloc_r (s, &nb);
835 if (p)
837 memcpy (buf, p, nb);
838 return (ssize_t) nb;
840 else
841 return 0;
845 /* Stream read function for chracter(kind=4) internal units. */
847 static ssize_t
848 mem_read4 (stream *s, void *buf, ssize_t nbytes)
850 void *p;
851 int nb = nbytes;
853 p = mem_alloc_r4 (s, &nb);
854 if (p)
856 memcpy (buf, p, nb * 4);
857 return (ssize_t) nb;
859 else
860 return 0;
864 /* Stream write function for character(kind=1) internal units. */
866 static ssize_t
867 mem_write (stream *s, const void *buf, ssize_t nbytes)
869 void *p;
870 int nb = nbytes;
872 p = mem_alloc_w (s, &nb);
873 if (p)
875 memcpy (p, buf, nb);
876 return (ssize_t) nb;
878 else
879 return 0;
883 /* Stream write function for character(kind=4) internal units. */
885 static ssize_t
886 mem_write4 (stream *s, const void *buf, ssize_t nwords)
888 gfc_char4_t *p;
889 int nw = nwords;
891 p = mem_alloc_w4 (s, &nw);
892 if (p)
894 while (nw--)
895 *p++ = (gfc_char4_t) *((char *) buf);
896 return nwords;
898 else
899 return 0;
903 static gfc_offset
904 mem_seek (stream *strm, gfc_offset offset, int whence)
906 unix_stream *s = (unix_stream *)strm;
907 switch (whence)
909 case SEEK_SET:
910 break;
911 case SEEK_CUR:
912 offset += s->logical_offset;
913 break;
914 case SEEK_END:
915 offset += s->file_length;
916 break;
917 default:
918 return -1;
921 /* Note that for internal array I/O it's actually possible to have a
922 negative offset, so don't check for that. */
923 if (offset > s->file_length)
925 errno = EINVAL;
926 return -1;
929 s->logical_offset = offset;
931 /* Returning < 0 is the error indicator for sseek(), so return 0 if
932 offset is negative. Thus if the return value is 0, the caller
933 has to use stell() to get the real value of logical_offset. */
934 if (offset >= 0)
935 return offset;
936 return 0;
940 static gfc_offset
941 mem_tell (stream *s)
943 return ((unix_stream *)s)->logical_offset;
947 static int
948 mem_truncate (unix_stream *s __attribute__ ((unused)),
949 gfc_offset length __attribute__ ((unused)))
951 return 0;
955 static int
956 mem_flush (unix_stream *s __attribute__ ((unused)))
958 return 0;
962 static int
963 mem_close (unix_stream *s)
965 free (s);
967 return 0;
970 static const struct stream_vtable mem_vtable = {
971 .read = (void *) mem_read,
972 .write = (void *) mem_write,
973 .seek = (void *) mem_seek,
974 .tell = (void *) mem_tell,
975 /* buf_size is not a typo, we just reuse an identical
976 implementation. */
977 .size = (void *) buf_size,
978 .trunc = (void *) mem_truncate,
979 .close = (void *) mem_close,
980 .flush = (void *) mem_flush,
981 .markeor = (void *) raw_markeor
984 static const struct stream_vtable mem4_vtable = {
985 .read = (void *) mem_read4,
986 .write = (void *) mem_write4,
987 .seek = (void *) mem_seek,
988 .tell = (void *) mem_tell,
989 /* buf_size is not a typo, we just reuse an identical
990 implementation. */
991 .size = (void *) buf_size,
992 .trunc = (void *) mem_truncate,
993 .close = (void *) mem_close,
994 .flush = (void *) mem_flush,
995 .markeor = (void *) raw_markeor
998 /*********************************************************************
999 Public functions -- A reimplementation of this module needs to
1000 define functional equivalents of the following.
1001 *********************************************************************/
1003 /* open_internal()-- Returns a stream structure from a character(kind=1)
1004 internal file */
1006 stream *
1007 open_internal (char *base, int length, gfc_offset offset)
1009 unix_stream *s;
1011 s = xcalloc (1, sizeof (unix_stream));
1013 s->buffer = base;
1014 s->buffer_offset = offset;
1016 s->active = s->file_length = length;
1018 s->st.vptr = &mem_vtable;
1020 return (stream *) s;
1023 /* open_internal4()-- Returns a stream structure from a character(kind=4)
1024 internal file */
1026 stream *
1027 open_internal4 (char *base, int length, gfc_offset offset)
1029 unix_stream *s;
1031 s = xcalloc (1, sizeof (unix_stream));
1033 s->buffer = base;
1034 s->buffer_offset = offset;
1036 s->active = s->file_length = length * sizeof (gfc_char4_t);
1038 s->st.vptr = &mem4_vtable;
1040 return (stream *)s;
1044 /* fd_to_stream()-- Given an open file descriptor, build a stream
1045 around it. */
1047 static stream *
1048 fd_to_stream (int fd, bool unformatted)
1050 struct stat statbuf;
1051 unix_stream *s;
1053 s = xcalloc (1, sizeof (unix_stream));
1055 s->fd = fd;
1057 /* Get the current length of the file. */
1059 if (TEMP_FAILURE_RETRY (fstat (fd, &statbuf)) == -1)
1061 s->st_dev = s->st_ino = -1;
1062 s->file_length = 0;
1063 if (errno == EBADF)
1064 s->fd = -1;
1065 raw_init (s);
1066 return (stream *) s;
1069 s->st_dev = statbuf.st_dev;
1070 s->st_ino = statbuf.st_ino;
1071 s->file_length = statbuf.st_size;
1073 /* Only use buffered IO for regular files. */
1074 if (S_ISREG (statbuf.st_mode)
1075 && !options.all_unbuffered
1076 && !(options.unbuffered_preconnected &&
1077 (s->fd == STDIN_FILENO
1078 || s->fd == STDOUT_FILENO
1079 || s->fd == STDERR_FILENO)))
1080 buf_init (s);
1081 else
1083 if (unformatted)
1085 s->unbuffered = true;
1086 buf_init (s);
1088 else
1089 raw_init (s);
1092 return (stream *) s;
1096 /* Given the Fortran unit number, convert it to a C file descriptor. */
1099 unit_to_fd (int unit)
1101 gfc_unit *us;
1102 int fd;
1104 us = find_unit (unit);
1105 if (us == NULL)
1106 return -1;
1108 fd = ((unix_stream *) us->s)->fd;
1109 unlock_unit (us);
1110 return fd;
1114 /* Set the close-on-exec flag for an existing fd, if the system
1115 supports such. */
1117 static void __attribute__ ((unused))
1118 set_close_on_exec (int fd __attribute__ ((unused)))
1120 /* Mingw does not define F_SETFD. */
1121 #if defined(HAVE_FCNTL) && defined(F_SETFD) && defined(FD_CLOEXEC)
1122 if (fd >= 0)
1123 fcntl(fd, F_SETFD, FD_CLOEXEC);
1124 #endif
1128 /* Helper function for tempfile(). Tries to open a temporary file in
1129 the directory specified by tempdir. If successful, the file name is
1130 stored in fname and the descriptor returned. Returns -1 on
1131 failure. */
1133 static int
1134 tempfile_open (const char *tempdir, char **fname)
1136 int fd;
1137 const char *slash = "/";
1138 #if defined(HAVE_UMASK) && defined(HAVE_MKSTEMP)
1139 mode_t mode_mask;
1140 #endif
1142 if (!tempdir)
1143 return -1;
1145 /* Check for the special case that tempdir ends with a slash or
1146 backslash. */
1147 size_t tempdirlen = strlen (tempdir);
1148 if (*tempdir == 0 || tempdir[tempdirlen - 1] == '/'
1149 #ifdef __MINGW32__
1150 || tempdir[tempdirlen - 1] == '\\'
1151 #endif
1153 slash = "";
1155 /* Take care that the template is longer in the mktemp() branch. */
1156 char *template = xmalloc (tempdirlen + 23);
1158 #ifdef HAVE_MKSTEMP
1159 snprintf (template, tempdirlen + 23, "%s%sgfortrantmpXXXXXX",
1160 tempdir, slash);
1162 #ifdef HAVE_UMASK
1163 /* Temporarily set the umask such that the file has 0600 permissions. */
1164 mode_mask = umask (S_IXUSR | S_IRWXG | S_IRWXO);
1165 #endif
1167 #if defined(HAVE_MKOSTEMP) && defined(O_CLOEXEC)
1168 TEMP_FAILURE_RETRY (fd = mkostemp (template, O_CLOEXEC));
1169 #else
1170 TEMP_FAILURE_RETRY (fd = mkstemp (template));
1171 set_close_on_exec (fd);
1172 #endif
1174 #ifdef HAVE_UMASK
1175 (void) umask (mode_mask);
1176 #endif
1178 #else /* HAVE_MKSTEMP */
1179 fd = -1;
1180 int count = 0;
1181 size_t slashlen = strlen (slash);
1182 int flags = O_RDWR | O_CREAT | O_EXCL;
1183 #if defined(HAVE_CRLF) && defined(O_BINARY)
1184 flags |= O_BINARY;
1185 #endif
1186 #ifdef O_CLOEXEC
1187 flags |= O_CLOEXEC;
1188 #endif
1191 snprintf (template, tempdirlen + 23, "%s%sgfortrantmpaaaXXXXXX",
1192 tempdir, slash);
1193 if (count > 0)
1195 int c = count;
1196 template[tempdirlen + slashlen + 13] = 'a' + (c% 26);
1197 c /= 26;
1198 template[tempdirlen + slashlen + 12] = 'a' + (c % 26);
1199 c /= 26;
1200 template[tempdirlen + slashlen + 11] = 'a' + (c % 26);
1201 if (c >= 26)
1202 break;
1205 if (!mktemp (template))
1207 errno = EEXIST;
1208 count++;
1209 continue;
1212 TEMP_FAILURE_RETRY (fd = open (template, flags, S_IRUSR | S_IWUSR));
1214 while (fd == -1 && errno == EEXIST);
1215 #ifndef O_CLOEXEC
1216 set_close_on_exec (fd);
1217 #endif
1218 #endif /* HAVE_MKSTEMP */
1220 *fname = template;
1221 return fd;
1225 /* tempfile()-- Generate a temporary filename for a scratch file and
1226 open it. mkstemp() opens the file for reading and writing, but the
1227 library mode prevents anything that is not allowed. The descriptor
1228 is returned, which is -1 on error. The template is pointed to by
1229 opp->file, which is copied into the unit structure
1230 and freed later. */
1232 static int
1233 tempfile (st_parameter_open *opp)
1235 const char *tempdir;
1236 char *fname;
1237 int fd = -1;
1239 tempdir = secure_getenv ("TMPDIR");
1240 fd = tempfile_open (tempdir, &fname);
1241 #ifdef __MINGW32__
1242 if (fd == -1)
1244 char buffer[MAX_PATH + 1];
1245 DWORD ret;
1246 ret = GetTempPath (MAX_PATH, buffer);
1247 /* If we are not able to get a temp-directory, we use
1248 current directory. */
1249 if (ret > MAX_PATH || !ret)
1250 buffer[0] = 0;
1251 else
1252 buffer[ret] = 0;
1253 tempdir = strdup (buffer);
1254 fd = tempfile_open (tempdir, &fname);
1256 #elif defined(__CYGWIN__)
1257 if (fd == -1)
1259 tempdir = secure_getenv ("TMP");
1260 fd = tempfile_open (tempdir, &fname);
1262 if (fd == -1)
1264 tempdir = secure_getenv ("TEMP");
1265 fd = tempfile_open (tempdir, &fname);
1267 #endif
1268 if (fd == -1)
1269 fd = tempfile_open (P_tmpdir, &fname);
1271 opp->file = fname;
1272 opp->file_len = strlen (fname); /* Don't include trailing nul */
1274 return fd;
1278 /* regular_file2()-- Open a regular file.
1279 Change flags->action if it is ACTION_UNSPECIFIED on entry,
1280 unless an error occurs.
1281 Returns the descriptor, which is less than zero on error. */
1283 static int
1284 regular_file2 (const char *path, st_parameter_open *opp, unit_flags *flags)
1286 int mode;
1287 int rwflag;
1288 int crflag, crflag2;
1289 int fd;
1291 #ifdef __CYGWIN__
1292 if (opp->file_len == 7)
1294 if (strncmp (path, "CONOUT$", 7) == 0
1295 || strncmp (path, "CONERR$", 7) == 0)
1297 fd = open ("/dev/conout", O_WRONLY);
1298 flags->action = ACTION_WRITE;
1299 return fd;
1303 if (opp->file_len == 6 && strncmp (path, "CONIN$", 6) == 0)
1305 fd = open ("/dev/conin", O_RDONLY);
1306 flags->action = ACTION_READ;
1307 return fd;
1309 #endif
1312 #ifdef __MINGW32__
1313 if (opp->file_len == 7)
1315 if (strncmp (path, "CONOUT$", 7) == 0
1316 || strncmp (path, "CONERR$", 7) == 0)
1318 fd = open ("CONOUT$", O_WRONLY);
1319 flags->action = ACTION_WRITE;
1320 return fd;
1324 if (opp->file_len == 6 && strncmp (path, "CONIN$", 6) == 0)
1326 fd = open ("CONIN$", O_RDONLY);
1327 flags->action = ACTION_READ;
1328 return fd;
1330 #endif
1332 switch (flags->action)
1334 case ACTION_READ:
1335 rwflag = O_RDONLY;
1336 break;
1338 case ACTION_WRITE:
1339 rwflag = O_WRONLY;
1340 break;
1342 case ACTION_READWRITE:
1343 case ACTION_UNSPECIFIED:
1344 rwflag = O_RDWR;
1345 break;
1347 default:
1348 internal_error (&opp->common, "regular_file(): Bad action");
1351 switch (flags->status)
1353 case STATUS_NEW:
1354 crflag = O_CREAT | O_EXCL;
1355 break;
1357 case STATUS_OLD: /* open will fail if the file does not exist*/
1358 crflag = 0;
1359 break;
1361 case STATUS_UNKNOWN:
1362 if (rwflag == O_RDONLY)
1363 crflag = 0;
1364 else
1365 crflag = O_CREAT;
1366 break;
1368 case STATUS_REPLACE:
1369 crflag = O_CREAT | O_TRUNC;
1370 break;
1372 default:
1373 /* Note: STATUS_SCRATCH is handled by tempfile () and should
1374 never be seen here. */
1375 internal_error (&opp->common, "regular_file(): Bad status");
1378 /* rwflag |= O_LARGEFILE; */
1380 #if defined(HAVE_CRLF) && defined(O_BINARY)
1381 crflag |= O_BINARY;
1382 #endif
1384 #ifdef O_CLOEXEC
1385 crflag |= O_CLOEXEC;
1386 #endif
1388 mode = S_IRUSR | S_IWUSR | S_IRGRP | S_IWGRP | S_IROTH | S_IWOTH;
1389 TEMP_FAILURE_RETRY (fd = open (path, rwflag | crflag, mode));
1390 if (flags->action != ACTION_UNSPECIFIED)
1391 return fd;
1393 if (fd >= 0)
1395 flags->action = ACTION_READWRITE;
1396 return fd;
1398 if (errno != EACCES && errno != EPERM && errno != EROFS)
1399 return fd;
1401 /* retry for read-only access */
1402 rwflag = O_RDONLY;
1403 if (flags->status == STATUS_UNKNOWN)
1404 crflag2 = crflag & ~(O_CREAT);
1405 else
1406 crflag2 = crflag;
1407 TEMP_FAILURE_RETRY (fd = open (path, rwflag | crflag2, mode));
1408 if (fd >=0)
1410 flags->action = ACTION_READ;
1411 return fd; /* success */
1414 if (errno != EACCES && errno != EPERM && errno != ENOENT)
1415 return fd; /* failure */
1417 /* retry for write-only access */
1418 rwflag = O_WRONLY;
1419 TEMP_FAILURE_RETRY (fd = open (path, rwflag | crflag, mode));
1420 if (fd >=0)
1422 flags->action = ACTION_WRITE;
1423 return fd; /* success */
1425 return fd; /* failure */
1429 /* Lock the file, if necessary, based on SHARE flags. */
1431 #if defined(HAVE_FCNTL) && defined(F_SETLK) && defined(F_UNLCK)
1432 static int
1433 open_share (st_parameter_open *opp, int fd, unit_flags *flags)
1435 int r = 0;
1436 struct flock f;
1437 if (fd == STDOUT_FILENO || fd == STDERR_FILENO || fd == STDIN_FILENO)
1438 return 0;
1440 f.l_start = 0;
1441 f.l_len = 0;
1442 f.l_whence = SEEK_SET;
1444 switch (flags->share)
1446 case SHARE_DENYNONE:
1447 f.l_type = F_RDLCK;
1448 r = fcntl (fd, F_SETLK, &f);
1449 break;
1450 case SHARE_DENYRW:
1451 /* Must be writable to hold write lock. */
1452 if (flags->action == ACTION_READ)
1454 generate_error (&opp->common, LIBERROR_BAD_ACTION,
1455 "Cannot set write lock on file opened for READ");
1456 return -1;
1458 f.l_type = F_WRLCK;
1459 r = fcntl (fd, F_SETLK, &f);
1460 break;
1461 case SHARE_UNSPECIFIED:
1462 default:
1463 break;
1466 return r;
1468 #else
1469 static int
1470 open_share (st_parameter_open *opp __attribute__ ((unused)),
1471 int fd __attribute__ ((unused)),
1472 unit_flags *flags __attribute__ ((unused)))
1474 return 0;
1476 #endif /* defined(HAVE_FCNTL) ... */
1479 /* Wrapper around regular_file2, to make sure we free the path after
1480 we're done. */
1482 static int
1483 regular_file (st_parameter_open *opp, unit_flags *flags)
1485 char *path = fc_strdup (opp->file, opp->file_len);
1486 int fd = regular_file2 (path, opp, flags);
1487 free (path);
1488 return fd;
1491 /* open_external()-- Open an external file, unix specific version.
1492 Change flags->action if it is ACTION_UNSPECIFIED on entry.
1493 Returns NULL on operating system error. */
1495 stream *
1496 open_external (st_parameter_open *opp, unit_flags *flags)
1498 int fd;
1500 if (flags->status == STATUS_SCRATCH)
1502 fd = tempfile (opp);
1503 if (flags->action == ACTION_UNSPECIFIED)
1504 flags->action = flags->readonly ? ACTION_READ : ACTION_READWRITE;
1506 #if HAVE_UNLINK_OPEN_FILE
1507 /* We can unlink scratch files now and it will go away when closed. */
1508 if (fd >= 0)
1509 unlink (opp->file);
1510 #endif
1512 else
1514 /* regular_file resets flags->action if it is ACTION_UNSPECIFIED and
1515 if it succeeds */
1516 fd = regular_file (opp, flags);
1517 #ifndef O_CLOEXEC
1518 set_close_on_exec (fd);
1519 #endif
1522 if (fd < 0)
1523 return NULL;
1524 fd = fix_fd (fd);
1526 if (open_share (opp, fd, flags) < 0)
1527 return NULL;
1529 return fd_to_stream (fd, flags->form == FORM_UNFORMATTED);
1533 /* input_stream()-- Return a stream pointer to the default input stream.
1534 Called on initialization. */
1536 stream *
1537 input_stream (void)
1539 return fd_to_stream (STDIN_FILENO, false);
1543 /* output_stream()-- Return a stream pointer to the default output stream.
1544 Called on initialization. */
1546 stream *
1547 output_stream (void)
1549 stream *s;
1551 #if defined(HAVE_CRLF) && defined(HAVE_SETMODE)
1552 setmode (STDOUT_FILENO, O_BINARY);
1553 #endif
1555 s = fd_to_stream (STDOUT_FILENO, false);
1556 return s;
1560 /* error_stream()-- Return a stream pointer to the default error stream.
1561 Called on initialization. */
1563 stream *
1564 error_stream (void)
1566 stream *s;
1568 #if defined(HAVE_CRLF) && defined(HAVE_SETMODE)
1569 setmode (STDERR_FILENO, O_BINARY);
1570 #endif
1572 s = fd_to_stream (STDERR_FILENO, false);
1573 return s;
1577 /* compare_file_filename()-- Given an open stream and a fortran string
1578 that is a filename, figure out if the file is the same as the
1579 filename. */
1582 compare_file_filename (gfc_unit *u, const char *name, int len)
1584 struct stat st;
1585 int ret;
1586 #ifdef HAVE_WORKING_STAT
1587 unix_stream *s;
1588 #else
1589 # ifdef __MINGW32__
1590 uint64_t id1, id2;
1591 # endif
1592 #endif
1594 char *path = fc_strdup (name, len);
1596 /* If the filename doesn't exist, then there is no match with the
1597 existing file. */
1599 if (TEMP_FAILURE_RETRY (stat (path, &st)) < 0)
1601 ret = 0;
1602 goto done;
1605 #ifdef HAVE_WORKING_STAT
1606 s = (unix_stream *) (u->s);
1607 ret = (st.st_dev == s->st_dev) && (st.st_ino == s->st_ino);
1608 goto done;
1609 #else
1611 # ifdef __MINGW32__
1612 /* We try to match files by a unique ID. On some filesystems (network
1613 fs and FAT), we can't generate this unique ID, and will simply compare
1614 filenames. */
1615 id1 = id_from_path (path);
1616 id2 = id_from_fd (((unix_stream *) (u->s))->fd);
1617 if (id1 || id2)
1619 ret = (id1 == id2);
1620 goto done;
1622 # endif
1623 if (u->filename)
1624 ret = (strcmp(path, u->filename) == 0);
1625 else
1626 ret = 0;
1627 #endif
1628 done:
1629 free (path);
1630 return ret;
1634 #ifdef HAVE_WORKING_STAT
1635 # define FIND_FILE0_DECL struct stat *st
1636 # define FIND_FILE0_ARGS st
1637 #else
1638 # define FIND_FILE0_DECL uint64_t id, const char *path
1639 # define FIND_FILE0_ARGS id, path
1640 #endif
1642 /* find_file0()-- Recursive work function for find_file() */
1644 static gfc_unit *
1645 find_file0 (gfc_unit *u, FIND_FILE0_DECL)
1647 gfc_unit *v;
1648 #if defined(__MINGW32__) && !HAVE_WORKING_STAT
1649 uint64_t id1;
1650 #endif
1652 if (u == NULL)
1653 return NULL;
1655 #ifdef HAVE_WORKING_STAT
1656 if (u->s != NULL)
1658 unix_stream *s = (unix_stream *) (u->s);
1659 if (st[0].st_dev == s->st_dev && st[0].st_ino == s->st_ino)
1660 return u;
1662 #else
1663 # ifdef __MINGW32__
1664 if (u->s && ((id1 = id_from_fd (((unix_stream *) u->s)->fd)) || id1))
1666 if (id == id1)
1667 return u;
1669 else
1670 # endif
1671 if (u->filename && strcmp (u->filename, path) == 0)
1672 return u;
1673 #endif
1675 v = find_file0 (u->left, FIND_FILE0_ARGS);
1676 if (v != NULL)
1677 return v;
1679 v = find_file0 (u->right, FIND_FILE0_ARGS);
1680 if (v != NULL)
1681 return v;
1683 return NULL;
1687 /* find_file()-- Take the current filename and see if there is a unit
1688 that has the file already open. Returns a pointer to the unit if so. */
1690 gfc_unit *
1691 find_file (const char *file, gfc_charlen_type file_len)
1693 struct stat st[1];
1694 gfc_unit *u;
1695 #if defined(__MINGW32__) && !HAVE_WORKING_STAT
1696 uint64_t id = 0ULL;
1697 #endif
1699 char *path = fc_strdup (file, file_len);
1701 if (TEMP_FAILURE_RETRY (stat (path, &st[0])) < 0)
1703 u = NULL;
1704 goto done;
1707 #if defined(__MINGW32__) && !HAVE_WORKING_STAT
1708 id = id_from_path (path);
1709 #endif
1711 __gthread_mutex_lock (&unit_lock);
1712 retry:
1713 u = find_file0 (unit_root, FIND_FILE0_ARGS);
1714 if (u != NULL)
1716 /* Fast path. */
1717 if (! __gthread_mutex_trylock (&u->lock))
1719 /* assert (u->closed == 0); */
1720 __gthread_mutex_unlock (&unit_lock);
1721 goto done;
1724 inc_waiting_locked (u);
1726 __gthread_mutex_unlock (&unit_lock);
1727 if (u != NULL)
1729 __gthread_mutex_lock (&u->lock);
1730 if (u->closed)
1732 __gthread_mutex_lock (&unit_lock);
1733 __gthread_mutex_unlock (&u->lock);
1734 if (predec_waiting_locked (u) == 0)
1735 free (u);
1736 goto retry;
1739 dec_waiting_unlocked (u);
1741 done:
1742 free (path);
1743 return u;
1746 static gfc_unit *
1747 flush_all_units_1 (gfc_unit *u, int min_unit)
1749 while (u != NULL)
1751 if (u->unit_number > min_unit)
1753 gfc_unit *r = flush_all_units_1 (u->left, min_unit);
1754 if (r != NULL)
1755 return r;
1757 if (u->unit_number >= min_unit)
1759 if (__gthread_mutex_trylock (&u->lock))
1760 return u;
1761 if (u->s)
1762 sflush (u->s);
1763 __gthread_mutex_unlock (&u->lock);
1765 u = u->right;
1767 return NULL;
1770 void
1771 flush_all_units (void)
1773 gfc_unit *u;
1774 int min_unit = 0;
1776 __gthread_mutex_lock (&unit_lock);
1779 u = flush_all_units_1 (unit_root, min_unit);
1780 if (u != NULL)
1781 inc_waiting_locked (u);
1782 __gthread_mutex_unlock (&unit_lock);
1783 if (u == NULL)
1784 return;
1786 __gthread_mutex_lock (&u->lock);
1788 min_unit = u->unit_number + 1;
1790 if (u->closed == 0)
1792 sflush (u->s);
1793 __gthread_mutex_lock (&unit_lock);
1794 __gthread_mutex_unlock (&u->lock);
1795 (void) predec_waiting_locked (u);
1797 else
1799 __gthread_mutex_lock (&unit_lock);
1800 __gthread_mutex_unlock (&u->lock);
1801 if (predec_waiting_locked (u) == 0)
1802 free (u);
1805 while (1);
1809 /* Unlock the unit if necessary, based on SHARE flags. */
1812 close_share (gfc_unit *u __attribute__ ((unused)))
1814 int r = 0;
1815 #if defined(HAVE_FCNTL) && defined(F_SETLK) && defined(F_UNLCK)
1816 unix_stream *s = (unix_stream *) u->s;
1817 int fd = s->fd;
1818 struct flock f;
1820 switch (u->flags.share)
1822 case SHARE_DENYRW:
1823 case SHARE_DENYNONE:
1824 if (fd != STDOUT_FILENO && fd != STDERR_FILENO && fd != STDIN_FILENO)
1826 f.l_start = 0;
1827 f.l_len = 0;
1828 f.l_whence = SEEK_SET;
1829 f.l_type = F_UNLCK;
1830 r = fcntl (fd, F_SETLK, &f);
1832 break;
1833 case SHARE_UNSPECIFIED:
1834 default:
1835 break;
1838 #endif
1839 return r;
1843 /* file_exists()-- Returns nonzero if the current filename exists on
1844 the system */
1847 file_exists (const char *file, gfc_charlen_type file_len)
1849 char *path = fc_strdup (file, file_len);
1850 int res = !(access (path, F_OK));
1851 free (path);
1852 return res;
1856 /* file_size()-- Returns the size of the file. */
1858 GFC_IO_INT
1859 file_size (const char *file, gfc_charlen_type file_len)
1861 char *path = fc_strdup (file, file_len);
1862 struct stat statbuf;
1863 int err;
1864 TEMP_FAILURE_RETRY (err = stat (path, &statbuf));
1865 free (path);
1866 if (err == -1)
1867 return -1;
1868 return (GFC_IO_INT) statbuf.st_size;
1871 static const char yes[] = "YES", no[] = "NO", unknown[] = "UNKNOWN";
1873 /* inquire_sequential()-- Given a fortran string, determine if the
1874 file is suitable for sequential access. Returns a C-style
1875 string. */
1877 const char *
1878 inquire_sequential (const char *string, int len)
1880 struct stat statbuf;
1882 if (string == NULL)
1883 return unknown;
1885 char *path = fc_strdup (string, len);
1886 int err;
1887 TEMP_FAILURE_RETRY (err = stat (path, &statbuf));
1888 free (path);
1889 if (err == -1)
1890 return unknown;
1892 if (S_ISREG (statbuf.st_mode) ||
1893 S_ISCHR (statbuf.st_mode) || S_ISFIFO (statbuf.st_mode))
1894 return unknown;
1896 if (S_ISDIR (statbuf.st_mode) || S_ISBLK (statbuf.st_mode))
1897 return no;
1899 return unknown;
1903 /* inquire_direct()-- Given a fortran string, determine if the file is
1904 suitable for direct access. Returns a C-style string. */
1906 const char *
1907 inquire_direct (const char *string, int len)
1909 struct stat statbuf;
1911 if (string == NULL)
1912 return unknown;
1914 char *path = fc_strdup (string, len);
1915 int err;
1916 TEMP_FAILURE_RETRY (err = stat (path, &statbuf));
1917 free (path);
1918 if (err == -1)
1919 return unknown;
1921 if (S_ISREG (statbuf.st_mode) || S_ISBLK (statbuf.st_mode))
1922 return unknown;
1924 if (S_ISDIR (statbuf.st_mode) ||
1925 S_ISCHR (statbuf.st_mode) || S_ISFIFO (statbuf.st_mode))
1926 return no;
1928 return unknown;
1932 /* inquire_formatted()-- Given a fortran string, determine if the file
1933 is suitable for formatted form. Returns a C-style string. */
1935 const char *
1936 inquire_formatted (const char *string, int len)
1938 struct stat statbuf;
1940 if (string == NULL)
1941 return unknown;
1943 char *path = fc_strdup (string, len);
1944 int err;
1945 TEMP_FAILURE_RETRY (err = stat (path, &statbuf));
1946 free (path);
1947 if (err == -1)
1948 return unknown;
1950 if (S_ISREG (statbuf.st_mode) ||
1951 S_ISBLK (statbuf.st_mode) ||
1952 S_ISCHR (statbuf.st_mode) || S_ISFIFO (statbuf.st_mode))
1953 return unknown;
1955 if (S_ISDIR (statbuf.st_mode))
1956 return no;
1958 return unknown;
1962 /* inquire_unformatted()-- Given a fortran string, determine if the file
1963 is suitable for unformatted form. Returns a C-style string. */
1965 const char *
1966 inquire_unformatted (const char *string, int len)
1968 return inquire_formatted (string, len);
1972 /* inquire_access()-- Given a fortran string, determine if the file is
1973 suitable for access. */
1975 static const char *
1976 inquire_access (const char *string, int len, int mode)
1978 if (string == NULL)
1979 return no;
1980 char *path = fc_strdup (string, len);
1981 int res = access (path, mode);
1982 free (path);
1983 if (res == -1)
1984 return no;
1986 return yes;
1990 /* inquire_read()-- Given a fortran string, determine if the file is
1991 suitable for READ access. */
1993 const char *
1994 inquire_read (const char *string, int len)
1996 return inquire_access (string, len, R_OK);
2000 /* inquire_write()-- Given a fortran string, determine if the file is
2001 suitable for READ access. */
2003 const char *
2004 inquire_write (const char *string, int len)
2006 return inquire_access (string, len, W_OK);
2010 /* inquire_readwrite()-- Given a fortran string, determine if the file is
2011 suitable for read and write access. */
2013 const char *
2014 inquire_readwrite (const char *string, int len)
2016 return inquire_access (string, len, R_OK | W_OK);
2021 stream_isatty (stream *s)
2023 return isatty (((unix_stream *) s)->fd);
2027 stream_ttyname (stream *s __attribute__ ((unused)),
2028 char *buf __attribute__ ((unused)),
2029 size_t buflen __attribute__ ((unused)))
2031 #ifdef HAVE_TTYNAME_R
2032 return ttyname_r (((unix_stream *)s)->fd, buf, buflen);
2033 #elif defined HAVE_TTYNAME
2034 char *p;
2035 size_t plen;
2036 p = ttyname (((unix_stream *)s)->fd);
2037 if (!p)
2038 return errno;
2039 plen = strlen (p);
2040 if (buflen < plen)
2041 plen = buflen;
2042 memcpy (buf, p, plen);
2043 return 0;
2044 #else
2045 return ENOSYS;
2046 #endif
2052 /* How files are stored: This is an operating-system specific issue,
2053 and therefore belongs here. There are three cases to consider.
2055 Direct Access:
2056 Records are written as block of bytes corresponding to the record
2057 length of the file. This goes for both formatted and unformatted
2058 records. Positioning is done explicitly for each data transfer,
2059 so positioning is not much of an issue.
2061 Sequential Formatted:
2062 Records are separated by newline characters. The newline character
2063 is prohibited from appearing in a string. If it does, this will be
2064 messed up on the next read. End of file is also the end of a record.
2066 Sequential Unformatted:
2067 In this case, we are merely copying bytes to and from main storage,
2068 yet we need to keep track of varying record lengths. We adopt
2069 the solution used by f2c. Each record contains a pair of length
2070 markers:
2072 Length of record n in bytes
2073 Data of record n
2074 Length of record n in bytes
2076 Length of record n+1 in bytes
2077 Data of record n+1
2078 Length of record n+1 in bytes
2080 The length is stored at the end of a record to allow backspacing to the
2081 previous record. Between data transfer statements, the file pointer
2082 is left pointing to the first length of the current record.
2084 ENDFILE records are never explicitly stored.