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I came across this following code:

#include<stdio.h>
#define d(x) x(#x[3])
int main(){
d(putchar);
}

Which prints c as the output. I wonder what does the macro #define d(x) x(#x[3]) does? In C language is there an operator like #? I can see this inside the macro body i.e here x(#x[3]). According to my normal eye it looks something different I see in C language but actually What does this does?

Edit : Whats the real use of # in real world?

I'm a novice in C and it will be good if the explanation is in simple terms. Thanks in advance.

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Note that # is solely a preprocessor feature, not a C language feature. –  delnan Sep 28 '11 at 15:40
1  
Refer to string-izing tokens in this link. –  JRL Sep 28 '11 at 15:40
1  
+1 - that would have caught me off-guard too, haha. –  w00te Sep 28 '11 at 15:42
    
@w00te : good comment ;) –  Ant's Sep 28 '11 at 15:54
    
today i understood ;) why the first person answering getting so many upvotes :P –  Ant's Sep 28 '11 at 16:02

4 Answers 4

up vote 23 down vote accepted

The character '#' is a stringizer -- it turns a symbol into a string. The code becomes

putchar("putchar"[3]);

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quickest answer i have ever seen :) –  Ant's Sep 28 '11 at 15:39
    
wait! putchar("putchar"[3]); is this valid? Please be clear I'm a novice in C! What this actually does? –  Ant's Sep 28 '11 at 15:41
2  
C basic strings are char arrays, "putchar" is an array where item[0]='p',item[1]='u',item[2]='t',item[3]='c', etc..., that's why "putchar"[3] is 'c' –  Hernán Eche Sep 28 '11 at 15:53
    
@Ant's: "putchar"[3] is equal to the character at offset 3 (starting from zero of course) in the string (which is just an array of char), so that’s why you get "c". –  Jon Purdy Sep 28 '11 at 15:54
1  
@Ant's: Consider an assert(x) macro that asserts the expression x is true, and prints #x with __LINE__ and fails otherwise. –  Jon Purdy Sep 28 '11 at 16:00

The hash sign means "stringify", so d(x) expands to putchar("putchar"[3]), whence the c.

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From here:

Function macro definitions accept two special operators (# and ##) in the replacement sequence: If the operator # is used before a parameter is used in the replacement sequence, that parameter is replaced by a string literal (as if it were enclosed between double quotes)

#define str(x) #x
cout << str(test);

Put simply, it changes the "x" parameter into a string. In this case test becomes a char array containing 't', 'e', 's', 't', '\0'.

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To be precise, test becomes "test", which is an array of five characters, the four letters plus the null character at the end. –  Derek Ledbetter Sep 28 '11 at 19:04
    
@DerekLedbetter Corrected. –  mydogisbox Sep 28 '11 at 19:14

The # is a pre-processor operator which turns a literal into a string. In fact your d macro prints the fourth char of the converted string of your literal.

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2  
Bit of a cruel down vote... but the d macro actually passes the 4th character of its argument to the function named by its argument. d (james) would not print 'm' as your answer suggests (unless of course, james was a function whose effect was to print 'm' ;-)) –  James Greenhalgh Sep 28 '11 at 16:20
    
Of course, you are right... stupid me :| Edited. –  Constantinius Sep 29 '11 at 9:04

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