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

This code gives output 100, but if the preprocessor is implemented, printf will be rewritten as, printf("%d",var##12);

Then, how the output came?

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What do you mean by implemented? –  Stefano Sanfilippo May 24 '13 at 16:42
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2 Answers

up vote 0 down vote accepted

The double hash ## is a token pasting operator of the preprocessor. The printf will be re-written like this:

printf("%d",var12); // No double-hash

The double-number-sign or "token-pasting" operator (##), which is sometimes called the "merging" operator, is used in both object-like and function-like macros. It permits separate tokens to be joined into a single token and therefore cannot be the first or last token in the macro definition.

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Is this "token-pasting" operator used only in macros definition or elsewhere too in a program? –  Ceres111 May 24 '13 at 16:45
    
@Ceres111 Token-pasting operator is defined by the preprocessor, so it is not valid outside macros. You can use it with both function-style and "object-like" macros, i.e. it's OK to write #define MYVAR var##12 and then printf("%d",MYVAR); –  dasblinkenlight May 24 '13 at 16:48
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Because f(var, 12) is replaced with var12, which is the name of the variable you declared and assigned in the line above. The preprocessor directive ## pastes together the two arguments.

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