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I have a program.

#include <stdio.h>

#define f(a,b) a##b
#define g(a)   #a
#define h(a) g(a)

int main()
{
      printf("%s\n",h(f(1,2)));
      printf("%s\n",g(f(1,2)));
      return 0;
}

this program working properly and giving output as:

12
f(1, 2)

I don't understand how compiler giving this output.

What is the function of # in a##b and #a?

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marked as duplicate by Yu Hao, Pascal Cuoq, Mat, Matt S, Neolisk Oct 5 '13 at 17:10

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
    
@YuHao , I'm really sorry. I searched for this question. I didn't get any related. because i don't know # is called stringify. –  SGG Oct 5 '13 at 14:03
    
@SGG Hey, that's all right because it's hard to search for this question as there's no particular keyword. I remember seeing this program before and still spent several minutes to find the duplicate:) Even knowing the basic usage of # and ##, this question is still hard to get. –  Yu Hao Oct 5 '13 at 14:08

3 Answers 3

up vote 4 down vote accepted

let me break it down for you :

#define f(a,b) a##b //2 this macro is evaluated first with a = 1 and b = 2 it concatenates them and returns 12
#define g(a)   #a //4 g turns 12 into "12" (string)
#define h(a) g(a) //3 back to h which now has a = 12 and call g()

int main()
{
      printf("%s\n",h(f(1,2)));//1 printf calls the macro h() and gives it the macro f() as an argument 
      printf("%s\n",g(f(1,2)));// g here turns f(1,2) into "f(1,2)" (string)
      return 0;
}
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Generally right, but after (1) comes first the h() definition as (2), which in turn "activates" f(), which would be (3) and then g() (4). –  glglgl Oct 5 '13 at 14:19

The ## concatenates two tokens together.

The important thing is it can only be used in the preprocessor.

The # operator is used to stringify tokens.

For example:-

#(a ## b) which becomes #ab which becomes "ab"

So h(f(1,2)) becomes "f(1,2)"

Also note that # and ## are two different operators.

The preprocessor operator ## provides a way to concatenate actual arguments during macro expansion. If a parameter in the replacement text is adjacent to a ##, the parameter is replaced by the actual argument, the ## and surrounding white space are removed, and the result is re-scanned.

Also check this Concatenation for more details.

From here:-

Stringification

Sometimes you may want to convert a macro argument into a string constant. Parameters are not replaced inside string constants, but you can use the '#' preprocessing operator instead. When a macro parameter is used with a leading `#', the preprocessor replaces it with the literal text of the actual argument, converted to a string constant. Unlike normal parameter replacement, the argument is not macro-expanded first. This is called stringification.

There is no way to combine an argument with surrounding text and stringify it all together. Instead, you can write a series of adjacent string constants and stringified arguments. The preprocessor will replace the stringified arguments with string constants. The C compiler will then combine all the adjacent string constants into one long string.

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+1 You may want to mention that # and ## are two different operators. –  dasblinkenlight Oct 5 '13 at 13:46
    
Why the difference in results if we have almost identical calls? –  this Oct 5 '13 at 13:46
1  
@self. How they are "almost identical"? 2*12 and 2+12 are as well "almost identical" and produce completely different results. –  glglgl Oct 5 '13 at 13:48
    
@glglgl You explanation is useless. –  this Oct 5 '13 at 13:49
2  
@self. No. It shows that a seemingly minor difference can make a significant difference. Concerning the question, f(1,2) produces 12. But g() just takes its argument and makes it a string, producing "f(1, 2)" (the space probably comes from the lexer or the parser). But if you feed h() with the f() call, you have one level of indirection more: h() references to g(), during which process the f(1,2) is expanded to 12, which is what g() now stringizes, leading to the equivalent of "12". –  glglgl Oct 5 '13 at 14:16

## is called "token-pasting" operator, or "merging" operator which can be used to combine two tokens to form an actual argument.

# is called Stringizing Operator which "converts macro parameters to string literals without expanding the parameter definition".

These are generally called Preprocessor Operators. There exists a few more preprocessor operators like these. Check out Preprocessor Operators in C (http://msdn.microsoft.com/en-us/library/wy090hkc.aspx) for more explanation.


Also checkout http://msdn.microsoft.com/en-us/library/3sxhs2ty.aspx and the "see also" section of that page for more information on C Preprocessor.

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