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Following code prints value 100.

#define f(g,g2) g##g2
int main()
{
    int var12=100;
    printf("%d",f(var,12));

    return 0;
}

Please explain how is that happening..

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closed as off-topic by Grijesh Chauhan, djechlin, chris, Charles Duffy, mizo Jul 23 '13 at 19:37

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9  
Check the output of your preprocessor and discover it for yourself. –  Kerrek SB Jul 23 '13 at 19:33
3  
The funny thing is that with a username of cpp, one would expect someone to be familiar with the tool of the same name... –  Charles Duffy Jul 23 '13 at 19:34
    
where is var defined? You've got int var12, but use var in the macro... –  Marc B Jul 23 '13 at 19:36
    
@MarcB: Note that the check for the variable existence is done after the preprocessor runs. –  ereOn Jul 23 '13 at 19:37
    
@ereone: ah yeah., right... the joys of lack of sleep. –  Marc B Jul 23 '13 at 19:39
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2 Answers 2

The ## token in macros is replaced with nothing, but it serves to separate tokens. It is a kind of "glue" where you want the preprocessor to pretend that two macro tokens were separated, but output their substitutions concatenated together without any whitespace. (You can think of it as whitespace semantically, but that expands to nothing at all.)

In this case, f(var, 12) is expanded by the preprocessor into var12 which contains a value of 100. If the macro definition was:

#define f(g,g2) gg2

Then the macro would simply expand to gg2. The ## allows g and g2 in the macro definition to be treated separately (in this case references to macro parameters) and then the ## text is discarded.

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## is the preprocessor's concatenation operator, so:

#define f(g,g2) g##g2

translates this:

f(var,12)

into this:

var12

and the value of var12 is 100, so that's what it outputs.

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