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I'm a newbie on programming, i'm confused with arrays, how do you guys understand the line says box[rows][cols] = x++; we know that x=1, so in this statement means box[0][0] = 2; because of x++? when i printf box[row][cols] giving me a value of 1, why is it 1 when we set it as box[rows][cols]= x++; which should be 2 cause we set x=1 then x++ right?

int box[2][2], rows, cols, x, i, j;

for(i=1; i<2; i++)
{
    for( j=1; j<2; j++)
    {
       box[rows][cols]= x++;
       printf("%d", box[rows][cols]);  
    }
}
share|improve this question
    
a = x++ assigns the value of x to a and after that adds 1 to x. To do it vise versa you could use ++x – sashkello Jun 11 '13 at 3:10
7  
It's undefined bahaviour, because x, rows, and cols were never initialized, so no one can tell you why it behaves any way at all. – Paulpro Jun 11 '13 at 3:11
    
x is assigned as 0 by default, at least in some compilers. – sashkello Jun 11 '13 at 3:11
3  
@sashkello Not if it's on the stack (IE. not a global) – Paulpro Jun 11 '13 at 3:12
    
aha, I guess user2472887 did assign 1 to it, otherwise where else would it come from? – sashkello Jun 11 '13 at 3:13

You need to understand that there is a post increment and pre increment versions to the operator ++ and --. In your case the statement box[rows][cols]= x++; uses the post increment operator which updates the value of x after assignment.

Try box[rows][cols]= ++x; and you will get the expected output of 2.

Also in your code you need to initialize the two variables rows and cols are uninitialized. So change the loop as follows,

for(i=0; i<2; i++)
{
    for( j=0; j<2; j++)
    {
       box[i][j]= x++;
       printf("%d", box[j][j]);  
    }
}
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