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I have the following code:

#include <stdio.h>
#include <stdlib.h>

int main()
{
    char buf[256];

    printf("\nString - Enter your string: ");
    scanf ("%s", buf);

    char *_S = buf;

     .....

}

defining char *_S = buf; in the middle of the code could generate compilation error in some CXX versions

What version of CXX this could generate error. and are there some option to add to the gcc command in order to avoid this error?

EDIT:

I tried with the following option and I did not get any error:

$ gcc -std=c99 -o test test.c
$ gcc -std=c90 -o test test.c
$ gcc -std=c89 -o test test.c
$ gcc -v
Using built-in specs.
COLLECT_GCC=gcc
COLLECT_LTO_WRAPPER=/usr/lib/i386-linux-gnu/gcc/i686-linux-gnu/4.5.2/lto-wrapper
Target: i686-linux-gnu
Configured with: ../src/configure -v --with-pkgversion='Ubuntu/Linaro 4.5.2-8ubuntu4' --with-bugurl=file:///usr/share/doc/gcc-4.5/README.Bugs --enable-languages=c,c++,fortran,objc,obj-c++ --prefix=/usr --program-suffix=-4.5 --enable-shared --enable-multiarch --with-multiarch-defaults=i386-linux-gnu --enable-linker-build-id --with-system-zlib --libexecdir=/usr/lib/i386-linux-gnu --without-included-gettext --enable-threads=posix --with-gxx-include-dir=/usr/include/c++/4.5 --libdir=/usr/lib/i386-linux-gnu --enable-nls --with-sysroot=/ --enable-clocale=gnu --enable-libstdcxx-debug --enable-libstdcxx-time=yes --enable-plugin --enable-gold --enable-ld=default --with-plugin-ld=ld.gold --enable-objc-gc --enable-targets=all --disable-werror --with-arch-32=i686 --with-tune=generic --enable-checking=release --build=i686-linux-gnu --host=i686-linux-gnu --target=i686-linux-gnu
Thread model: posix
gcc version 4.5.2 (Ubuntu/Linaro 4.5.2-8ubuntu4) 
$
share|improve this question
    
on my system its fine in both ways, I tried gcc -std=c99 try.c as well as $ gcc -std=c89 try.c also as gcc try.c all are correct –  Grijesh Chauhan Jan 7 '13 at 14:58
1  
@GrijeshChauhan Are you certain? It should not work with C89. What happens if you add -Wall -pedantic? –  Lundin Jan 7 '13 at 15:02
    
@Lundin Problematic :( , its long, should I post in answer? –  Grijesh Chauhan Jan 7 '13 at 15:05
    
@Lundin I posted below , I will remove after some time its not my answer –  Grijesh Chauhan Jan 7 '13 at 15:08
    
@Lundin -std=c89 -pedantic gives a warning (more than a diagnostic isn't required, I think), -std=c89 -pedantic-errors of course errors. –  Daniel Fischer Jan 7 '13 at 15:10

4 Answers 4

You need to tell GCC to build as C90 or earlier.

$ gcc -std=c90 mycode.c
share|improve this answer
    
This creates the error, it doesn't avoid it. –  Lundin Jan 7 '13 at 14:57
    
so the CXX should be > C90 ? –  MOHAMED Jan 7 '13 at 14:58
    
With -std=CXX you ask for standard behaviour as described in C standard XX vintage (as far as GCC is capable, anyway); many of the new features in the standard were present before in GCC, to use standard as of year XX with GCC extensions use -std=gnuXX. Some extensions in GCC where included as is, others changed syntax or semantics, others where discarded (and will probably dissapear for GCC soonish). –  vonbrand Jan 20 '13 at 21:22

To avoid the error, compile as -std=c99 or -std=c11.

By default, GCC uses "non-standard GNU goo", which typically will default to something similar to C99 in any GCC version released during the past 10 years or so. Meaning that by default, GCC shouldn't give you an error.

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C99 is the first version of the standard that allows local variables to be declared after the first non-declaring statement of a block.

So if you pass -std=c99 to gcc, it will accept your code. Obviously, later versions of the standard also allow locals to be declared after non-declaring statements.

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so the CXX should be >= C99 ? and what about C11? –  MOHAMED Jan 7 '13 at 15:01
    
C11 also allows local variables to be declared after non-declaration statements. You can safely assuming that this feature will never be removed from future versions of the standard. –  David Heffernan Jan 7 '13 at 15:02

Prior to C99 local variable declarations must be declared at the top of a block. If your compiler does not support C99 you can either simply use C++ compilation, or create an unconditional statement block

int main()
{
    char buf[256];

    printf("\nString - Enter your string: ");
    scanf ("%s", buf);

    // Unconditional block to localise the variable buf
    {
        char *_S = buf;

        ...
    }

    // buf no longer in scope here
    ...
}
share|improve this answer
    
Internal block is perhaps as good a name as any. –  vonbrand Jan 20 '13 at 21:23
    
@vonbrand: Upon reflection I have changed the term to unconditional statement block as that seems clear and in need of no explanation. –  Clifford Jan 21 '13 at 18:49
    
The block by itself is never conditional. [Perhaps should look up what the standard calls this]. –  vonbrand Jan 21 '13 at 20:00
    
@vonbrand: You think? When a statement block either executes or does not execute depending on a preceding conditional control flow statment, then it is of course conditional. The block in my example is not conditional, but that is an unusual usage. The qualifying term unconditional does not need sactionaing by the ISO standard to be usful in describing its purpose here in distinguishing it from the more normal usage in relation to a control flow statement. –  Clifford Jan 21 '13 at 23:11

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