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This may seem silly but I seem to have forgotten the order of replacement of macros. Can someone help me figure out how to correctly swap the values of two macros? Consider the following:

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

#define var1 5
#define var2 10

#define _VAL(a) a
#define VAL(a) _VAL(a)


int main(){

    printf("var1 = %d, var2 = %d\n", var1, var2);

#define TEMP VAL(var1)
#undef var1
#define var1 VAL(var2)
#undef var2
#define var2 VAL(TEMP)

    printf("var1 = %d, var2 = %d\n", var1, var2);
}

All I want is to have var1 to be replaced by 10 and var2 to be replaced by 5. Any ideas of how to fix this mess?

I'm trying to use this to try to figure something out for this other question:

C Macro to protect definitions

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That seems unnecessarily complex and fragile. Is there another way to do whatever you're trying to do? –  Greg Hewgill Feb 22 '12 at 21:14
7  
I don't think you understand quite how macros work. They don't have a value. Macros simply replace one text string with another before compilation (well, basic ones). Anyway, run the pre-processor on your code and look at the intermediate output (there is a compiler option for this; what compiler are you using?). This will illuminate the source of your issue. –  jeffamaphone Feb 22 '12 at 21:15
    
@jeffamaphone, I'm using gcc, How can I see the intermediate output. I'd like to test this on an example such as stringification: gcc.gnu.org/onlinedocs/cpp/Stringification.html#Stringification –  jmlopez Feb 22 '12 at 23:05
    
I'm not as familiar with gcc, but I believe you use the -E option at the command line. –  jeffamaphone Feb 22 '12 at 23:28
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1 Answer

up vote 2 down vote accepted

Can't be done.
As @jeffamaphone explains in his comment, macro definitions are not assignments.
#define A B doesn't care about the value of B. It just remembers that A should be replaced to B. Later, when A is seen in the source, it's replaced to B, which may then be replaced again, with whatever B is defined to be at that time.

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