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#include<stdio.h>
#define x 4+1
int main()
{
     int i;
     i = x*x*x;
     printf("%d",i);
     return 0;
}

I would like to know how the expression is evaluated.

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The C preprocessor will literally substitute all instances of x for 4+1, resulting in the following code:

i = 4+1*4+1*4+1;

Since * has precedence over +, this evaluates to:

i = 4+4+4+1;

and i gets the value 13.

share|improve this answer
    
+1 for it took me a while to realize how it was going. :) @prasanthi This sure is not a good way to use define but still if you want the expected result like i = 5*5*5 then use the parentheses like i = (x)*(x)*(x). This works because it has precedence over the other operators. – Lokesh Mehra Nov 18 '12 at 7:24
    
In this case, it would be better to put the parentheses in the definition, as @user2808726's answer states. However, it would be best to use an inline function, and let the optimizer do its thing. – Christian Mann Jul 7 '15 at 0:44

You can also use parentheses in definition like this:

#define x (4+1)

then, this evaluates to:

i = (4+1)*(4+1)*(4+1)

the value of i is 125

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