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I'm trying to do (what I would have thought) was a simple macro expansion

#define CLEAR_DIGIT(a,b)    iconMap[a] &= ~(b)
#define R1 4, 16
CLEAR_DIGIT(R1);

Now I would expect that to expand to CLEAR_DIGIT(4,16) which expands to iconMap[4] &= ~16 However, it doesn't... If I make CLEAR_DIGIT a function:

void ClearDigit(unsigned char a, unsigned char b)
{
    iconMap[a] &= ~b;
}
#define R1 4, 16
ClearDigit(R1);

then it works fine, so R1 being expanded out to the two arguments isn't an issue... Is there any way of forcing it to expand R1 before doing the macro function expansion?

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1  
Related: stackoverflow.com/questions/3776750/… – MByD Dec 21 '11 at 10:09
up vote 11 down vote accepted

You could use a helper macro. See also double-stringize problem

#define CLEAR_DIGIT_HELPER(a,b) iconMap[a] &= ~(b)
#define CLEAR_DIGIT(x) CLEAR_DIGIT_HELPER(x)
#define R1 4, 16
CLEAR_DIGIT(R1);
share|improve this answer
    
+1 -- beat me to it :) – bitmask Dec 21 '11 at 10:21
1  
It's a fine answer, but it does not explain why this works. The linked double-stringize problem is notably different - there are special rules when # and ## are used. Those rules do not apply here. – jwd Feb 13 '15 at 21:44

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