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I have the following code fragment but when I execute it is not printing out the value of the die.

Here is the source code:

System.out.println("Player 1s Go.\nEnter R to Roll and H to Hold");
input = scanner.next();
while (input.equals("R")) {
    input = scanner.next();
    die.throwDie();
    System.out.println("Value on Die: " + die.getFaceValue());
    if (rolledOne()) {
        player1Rolled.clear();
        System.out.println("Player 1 scored 0, End of turn");
        holdPlayer1 = true;
        holdPlayer2 = false;
        break;
    } else {
        player1Rolled.add(die.getFaceValue());
    }
}

getFaceValue() is a accessor method for the die class which returns the value of the die. throwDie() is a mutator method which changes the value and simulates the rolling of a die.

The output I get is the following:

Player 1s Go.
Enter R to Roll and H to Hold
*R
R*
Value on Die: 5
*R*
Value on Die: 5
*R*

Notice that I have to tell it to roll twice, it is rolling twice but only printing out of the value of the second roll.

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3  
and the problem is? –  Steven Feb 24 '12 at 9:49
3  
You say your code is not printing out the value of the die, and yet your sample output says it is. –  mcfinnigan Feb 24 '12 at 9:52
    
See my edit. Its that I have to initially roll twice. –  Dean Feb 24 '12 at 10:18

1 Answer 1

up vote 1 down vote accepted

You call scanner.next() twice. Once outside the loop and once inside. If the first input is "R" then it enters the while loop and immediately waits for a new input.

Moving input = scanner.next(); to the end of the loop rather than the start I think should give you the behaviour you're looking for.

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Yes I'm half asleep. Didn't notice that I put it in because the input never changed. But I placed it in the wrong place in the loop. –  Dean Feb 24 '12 at 10:34

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