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this code:

#include <stdio.h>
#include <iostream>
using namespace std;
int main() {
  cout << fileno(stdout) << endl;
}

Works fine in this compiler: http://sourceforge.net/projects/mingwbuilds/files/host-windows/releases/4.7.2/32-bit/threads-posix/sjlj/x32-4.7.2-release-posix-sjlj-rev6.7z

but in this package : http://nuwen.net/files/mingw/mingw-9.5-without-git.exe

it returns: test.cpp:5:24: error: 'fileno' was not declared in this scope

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3 Answers 3

up vote 0 down vote accepted

fileno is not part of C or C++, but is POSIX. Therefore it has no place on Windows. To write portable code, stick to the features provided by the C and C++ standards.

That's probably why they don't ship it in a GCC port for Windows. By contrast, the POSIX threads implementation you linked to likely relies on it as an implementation detail to keep the ported code as similar as possible to the original code.

Any further rationale is subjective and off-topic; in short, you'd have to ask them!

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This answer is nonsense. MinGW is a "GNU Environment". Though it is "minimal", it has an isatty function, which "has no place on Windows". How can you do isatty(fileno(stdin)) if you do have isatty but no fileno? –  Kaz Jan 10 at 3:49
    
Furthermore, there is evidence of fileno in the headers. –  Kaz Jan 10 at 3:50

You don't specify what compiler flags you're using, but this is probably happening because you're compiling with -ansi, which enforces strict ANSI compliance and disables the compatibility macros. (Or something like -std=c99, which implies -ansi.)

Try it without the -ansi or specifying a standard like -std=gnu99 instead.

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-ansi is a synonym for either -std=c90 or -std=c++98 (depending on the language being compiled) so it's not true that -std=c99 implies -ansi, but it does imply __STRICT_ANSI__, so you're right to suggest -std=gnuXX. The question's about C++ so the right option to get C++11 without disabling extensions is -std=gnu++11 –  Jonathan Wakely Jun 9 at 8:50

MinGW has fileno. From my MinGW window:

$ grep -r fileno c:/mingw/include
c:/mingw/include/stdio.h:_CRTIMP int __cdecl __MINGW_NOTHROW    _fileno (FILE*);

c:/mingw/include/stdio.h:_CRTIMP int __cdecl __MINGW_NOTHROW    fileno (FILE*);
c:/mingw/include/stdio.h:#define _fileno(__F) ((__F)->_file)
c:/mingw/include/stdio.h:#define fileno(__F) ((__F)->_file)

Oops, unfortunately, the problem is that MinGW does something supremely idiotic. It makes the visibility of extensions to stdio.h (a library which has nothing to do with GCC) the subject of GCC-specific dialect control flags.

Cygwin also has this problem, and in a discussion thread some years ago in the Cygwin mailing list, they vehemently denied that it is a problem.

The correct way is to have feature selection macros like _POSIX_SOURCE, _XOPEN_SOURCE and so on. (These macros have proliferated in recent years and have become more complicated.)

MinGW should obey -D_POSIX_SOURCE on the command line and reveal fileno even if --ansi is specified.

The way things are now, you have to compromise the language dialect and accept GCC extensions and non-compliances, just because you want POSIX function declarations to be visible.

I have come up with a workaround, however, which doesn't involve doing anything ugly in the source code. Watch this:

gcc -Wall -ansi -pedantic -U__STRICT_ANSI__ foo.c -c

That's it. On MinGW, instead of using a feature selection macro like -D_POSIX_SOURCE, we use -U__STRICT_ANSI__ to strip away GCC's macro.

I added a test to my ./configure script to detect this broken situation and add -U__STRICT_ANSI__ to the CFLAGS. Works like a charm in my project.

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Using -ansi -U__STRICT_ANSI__ means "I don't want extensions but please allow me to use extensions" which is silly. Just use -std=gnu++03 or -std=gnu++11 instead which doesn't set __STRICT_ANSI__ in the first place. –  Jonathan Wakely Jun 9 at 8:51
    
@JohathanWakely: using __STRICT_ANSI__ means "I'm inappropriately using/undefining an internal macro to obtain a desired effect, because the library designers do not understand feature selection macros." I don't think -std=gnu++03 is appropriate for my code that is written in C90. (Which is why I'm using -ansi: to request conformance to the C90 dialect.) –  Kaz Jun 9 at 14:21
    
well then use -std=gnu90 which requests the C90 dialect without defining __STRICT_ANSI__. By using -std=c90 you've explicitly requested the mode that defines __STRICT_ANSI__, so don't blame the library designers for doing as asked –  Jonathan Wakely Jun 9 at 17:04

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