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I'm wondering why such code generates following error while compiling:

1.c:11: error: expected expression before 'else'

code:

#include <stdio.h> 

#define xprintk(...)    while(0); 


int main (void)
{
 if (1)
    xprintk("aaa\n");
 else
    xprintk("bbb\n");

 return 0;
}
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up vote 8 down vote accepted
 #define xprintk(...)    while(0)
                                ^^ Remove semi-colon

See what happens after pre-processing

gcc -E test.c

int main (void)
{
 if (1)
    while(0);; //<- Two semi-colon (i.e. Two statements)
 else
    while(0);; //<- Two semi-colon

 return 0;
}
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Is this the entirety of your code? Regardless of that, it's because after macro expansion, your code follows the form of:

if (1) 
    stmt1; 
    stmt2; 
    stmt ... // Possibly more statements than this depending on the macro
else 
    stmt3; 

This is not a valid form for the if-else construct, hence an error.

share|improve this answer
1  
Adding to what you have mentioned above, having braces around the if condition block would solve the problem too. But thats like a workaround to the actual problem. – Vivek S Sep 15 '13 at 6:37

The best method is to remove the semicolon in the macro definition (as in previous answer) so it doesn't lead to duplicate semicolons, and replace while(0) with do{}while(0), this way the compiler will report an error if you miss the semicolon when you're using xprintk(), rather than confusing the next statement for the body of the while loop.

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