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We can use the ouptut of a command (with flags) as macro preprocesor (eg. uname --kernel-name)

#include <stdio.h>

#define version(v) #v
#define VERSION(v) version(v)

int main(void)
{
    printf("Version: %s\n", VERSION(kernel_name));
    return 0;
}

Compiled using:

gcc -Wall -pedantic -o demo demo.c -Dkernel_name=$(uname --kernel-name)

Output:

Version: Linux

But this fail when macro begins with # (eg. uname --kernel-version):

david@debian:~$ uname --kernel-version
#1 SMP Debian 3.2.46-1+deb7u1

Because you can not define a preprocessor starting with #

#define SOMETHING #something /* error: stray ‘#’ in program */

Is there way to quote the output of command?

"#1 SMP Debian 3.2.46-1+deb7u1"

in order to get a valid input?

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1 Answer 1

up vote 1 down vote accepted

Easy.

Replace

-Dkernel_name=$(uname --kernel-name)

with

-Dkernel_name="\"$(uname --kernel-name)\""

This works because the -D flag is equivalent to a define. So -Dvar=val is equivalent to having a #define var val in your source.

When you do -Dkernel_name="\"$(uname --kernel-name)\"", your shell converts the define option value to equal "#1 SMP Debian 3.2.46-1+deb7u1" - one set of quotes for your shell and another for your actual program. This saves you from having to stringify too.

share|improve this answer
    
Stupid me!!, works like a charm, I was trying ""$(uname --kernel-name)"" –  Alter Mann Oct 22 '13 at 11:01
    
Yup, you forgot to escape :) –  tangrs Oct 22 '13 at 11:03
    
:( Yes, thanks!! –  Alter Mann Oct 22 '13 at 11:04

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