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#include<stdio.h>
#include<conio.h>
#define PROD(x) (x*x)
void main()
{
clrscr();
int p=3,k;
k=PROD(p+1); //here i think value 3+1=4 would be passed to macro
printf("\n%d",k);
getch();
}

In my opinion, the output should be 16, but I get 7.

Can anyone please tell me why?

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5  
Schoolbook example of where C macros go wrong :) Use functions instead. – Johan Kotlinski Feb 26 '11 at 16:54
4  
Isn't this the first thing they warn about in any C programming book? Whatever you use, I'm sure you can find a better one. – Hans Passant Feb 26 '11 at 16:55
4  
Urgh, a void main()... – Etienne de Martel Feb 26 '11 at 17:22
    
"In my opinion" ... opinions aren't relevant, language standards are. – Jim Balter Feb 27 '11 at 3:44
up vote 5 down vote accepted

The preprocessor expands PROD(p+1) as follows:

k = (p+1*p+1);

With p=3, this gives: 3+1*3+1 = 7.

You should have written your #define as follows:

#define PROD(x) ((x)*(x))
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Macros are expanded, they don't have values passed to them. Have look what your macro expands to in the statement that assigns to k.

k=(p+1*p+1);

Prefer functions to macros, if you have to use a macro the minimum you should do is to fully parenthesise the parameters. Note that even this has potential surprises if users use it with expressions that have side effects.

#define PROD(x) ((x)*(x))
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The problem here is that PROD is a macro and will not behave exactly like you intend it to. Hence, it will look like this:

k = p+1*p+1

Which of course means you have:

k = 3+1*3+1 = 7
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#define PROD(x) (x*x)

PROD(3+1) is changed by the preprocessor to 3+1*3+1

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macro are not function . These are replaced by name

It will be p+1*p+1

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This is what compiler is going to see after preprocessors does its job: k= p+1*p+1. When p = 3, this is evaluated as k = 3+(1*3)+1. Hence 7.

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This is exactly why you should use functions instead of macros. A function only evaluates each parameter once. Why not try

int prod(int x)
{ return x * x; }

and see the difference!

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