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So, I write a short code that would move a "box" (rectangle) to the right. This part works well. Then, I wanted to see, how many "steps" this box makes till it stops. So, println should print the size of the console and number of steps. But it prints 'zero'.

 import acm.program.*;
 import acm.graphics.*;

public class animation extends GraphicsProgram{

public void run(){
    int x=0;
    GRect box = new GRect(50,50);
    add(box, 10,10);
    moveBox(box, x);
    println(getWidth() + ", " + x);
}

public int moveBox(GObject box, int x){
    while(true){
        box.move(10,0);
        pause(50);
        x++;
        if (box.getX()==getWidth()) break;
    }
    return x;
}

}
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Maybe you should read smth about primitive types. –  Dmitry Ginzburg Jul 6 at 17:32

3 Answers 3

up vote 3 down vote accepted

You're returning x inside the method, but discarding it from the caller. Reassign it to your caller's x variable

x = moveBox(box, x);
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Thanks! Indeed, it shows 19 steps now =) So, "return" does not do all the job. I also have to fix the returned variable, right? Thanks again –  user3349993 Jul 6 at 17:32
    
@user3349993 The x in run and the x in moveBox are completely unrelated (in the sense that changing one doesn't affect the other). –  Sotirios Delimanolis Jul 6 at 17:34
    
i know. I though I renamed the variables in run() to "steps", but I apparently, I forgot to do so. I was asking aobut assignment like "steps = moveBox(box, x)". But anyway. Thanks –  user3349993 Jul 6 at 17:36
1  
@user Oh, the return value basically acts as the value of resolving the method invocation exception. If you don't assign it to anything, you simply discard it and it is popped off the stack. –  Sotirios Delimanolis Jul 6 at 17:37
return x;

will just say - i am returning a value from this method.

but the caller should receive the returned value.

so to receive the returned value we should assign the returned value to some variable.

x = moveBox(box, x);

now the x on left side of = will have returned value.

if we just write moveBox(box, x); like this then value is returned but no one is received it.

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yeah, I got it. That's what I was asking from Sotirios Delimanolis. Thanks for answer! –  user3349993 Jul 6 at 17:38

You are calling moveBox(box, x); that returns a value but you don't have anything that will catch the value being thrown from the method moveBox either you can do something like

int moves = moveBox(box, x);
System.out.println("Movements : "+moves);

or

System.out.println("Movements : "+moveBox(box, x));
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yeap, I got it from previous answers. Thanks anyway! –  user3349993 Jul 6 at 17:39

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