This code does not compile for me on gcc version 4.3.2 (Debian 4.3.2-1.1)

main(){
  int unix;
}

I've checked the C keywords list and "unix" is not one of them. Why am I getting the following error?

unix.c:2: error: expected identifier or ‘(’ before numeric constant

Anybody?

up vote 25 down vote accepted

unix is not a identifier reserved by the Standard.

If you compile with -std=c89 or -std=c99 the gcc compiler will accept the program as you expected.

From gcc manual ( https://gcc.gnu.org/onlinedocs/cpp/System-specific-Predefined-Macros.html ), the emphasis is mine.

... However, historically system-specific macros have had names with no special prefix; for instance, it is common to find unix defined on Unix systems. For all such macros, GCC provides a parallel macro with two underscores added at the beginning and the end. If unix is defined, __unix__ will be defined too. There will never be more than two underscores; the parallel of _mips is __mips__.

unix is one of the defines the preprocessor uses in gcc to get a list of defs use

gcc -dM -E  -x c /dev/null

(-dM tells gcc to debugdump the defs -E tells it to stop after prepreocessing and -x c /dev/null tells him to pretend /dev/null is a c file)

  • shorter and easier: echo | gcc -E -dD - – mirabilos Mar 31 '14 at 21:03
  • Why not just #define unix unix ? Then #ifdef would still have worked ... – Will Crawford Aug 26 at 13:23

Run your code through the preprocessor to find out what the compiler is actually seeing:

gcc -E unix.c

Then see if your variable unix is preserved or converted by the preprocessor.

It is not a keyword.

It is a predefined macro to identify the type of system. On Unix and Unix like systems it is defined to be 1.

To disable this use the -ansi option:

In C mode, this is equivalent to -std=c89. In C++ mode, it is equivalent to -std=c++98. This turns off certain features of GCC that are incompatible with ISO C90 (when compiling C code), or of standard C++ (when compiling C++ code), such as the "asm" and "typeof" keywords, and predefined macros such as "unix" and "vax" that identify the type of system you are using. It also enables the undesirable and rarely used ISO trigraph feature. For the C compiler, it disables recognition of C++ style // comments as well as the "inline" keyword.

I'm gona take a wild stab at this and guess that gcc effectively #defined unix as 1 on UNIX systems.

try

main(){ 
  printf("%d", unix); 
} 

and see what you get.

  • Ha! You're right: codepad.org/ML9VEsOa Stupid gcc. – Steve M Sep 22 '10 at 14:41
  • 1
    @Steve: see pmg's answer to see why gcc in non-standard mode tends to define this macro. – Jens Gustedt Sep 22 '10 at 15:17

To answer your question, no unix is not a reserved word in C.

However, the symbol unix is most likely defined by the preprocessor either because you include a header file or because the compiler defines it.

  • It's gcc that does it. – Steve M Sep 22 '10 at 14:41
  • It should be noted that it's broken and nonconformant behavior for gcc to do this. – R.. Sep 23 '10 at 0:07

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