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For a program I am writing, I need to ask a user for an integer between 1 and 8. I've tried multiple (cleaner) ways of doing this but none of them worked, so I'm left with this:

    int x = 0;
    while (x < 1 || x > 8)
    {   
        System.out.print("Please enter integer  (1-8): ");

        try
        {
            x = Integer.parseInt(inputScanner.next());
        }
        catch(NumberFormatException e)
        {
            x = 0;
        }
    }

Where inputScanner is a Scanner. Surely there is a better way?

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6 Answers 6

up vote 4 down vote accepted

Scanner does regular expressions, right? Why not check if it matches "^[1-8]$" first?

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Using the nextInt() is already an improvement compare to simply using the next() method. And before that, you can use the hasNextInt() to avoid haing all this bunch of useless exceptions.

Resulting in something like this:

int x = 0;
do {
  System.out.print("Please...");
  if(scanner.hasNextInt()) x = scanner.nextInt();
  else scanner.next();
} while (x < 1 || x > 8);
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That results in an infinite loop if you provide a string. –  Logan Serman Jan 22 '09 at 22:12
    
While I know your code is syntactically correct, having a if then on one line without braces is none standard. From Sun: Note: if statements always use braces {}. Avoid the following error-prone form: if (condition) statement; //AVOID! THIS OMITS THE BRACES {}! –  WolfmanDragon Jan 22 '09 at 22:39
    
And he also omitted the semicolon after the while(), yet I somehow managed to understand his meaning. :) –  Michael Myers Jan 22 '09 at 22:44
    
I thought a snip-it was one of those things the kids put around their ankle and jumped over while it spun in circles? –  Joe Philllips Jan 22 '09 at 23:11
    
@Gizmo: I've heard that same reasoning thousands of times in my life. A lot of bugs have been introduced by that same reason. Although it is correct that such a small piece of code shouldn't be taken so serious, it ultimately reflects your practices. Is a matter of good habits. –  OscarRyz Jan 22 '09 at 23:12

I had to do a graphic interface calculator (works only with Integers), and the problem was, that the Tests didn't allow any Exceptions to be thrown if the input wasn't Integer. So I couldn't use

try { int x = Integer.parseInt(input)} catch (Exception e) {dosomethingelse}

Because Java programs generally treat an input to a JTextField as a String I used this:

if (input.matches("[1-9][0-9]*"){ // String.matches() returns boolean
   goodforyou
} else {
   dosomethingelse
}

// this checks if the input's (type String) character sequence matches
// the given parameter. The [1-9] means that the first char is a Digit
// between 1 and 9 (because the input should be an Integer can't be 0)
// the * after [0-9] means that after the first char there can be 0 - infinity
// characters between digits 0-9

hope this helps :)

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Apache Commons is your friend. See NumberUtils.toInt(String, int)

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Does it worth to bring a new lib just for one function? : - / –  OscarRyz Jan 22 '09 at 23:13
String input;
int number;

while (inputScanner.hasNextLine())
{
    input = inputScanner.nextLine();

    if (input.equals("quit")) { System.exit(0); }
    else
    {
        //If you don't want to put your code in here, make an event handler
        //that gets called from this spot with the input passed in
        try
        {
            number = Integer.parseInt(input);
            if ((number < 1) || (number > 8))
            { System.out.print("Please choose 1-8: "); }
            else { /* Do stuff */ }
        }
        catch (NumberFormatException e) { number = 0; }
    }
}

I always like to pull in the full string so you can be sure that the user pushed the Enter button. If you just use inputScanner.nextInt() you can put two ints on a line and it will pull in one, then the other.

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Example code:

int x;
Scanner in = new Scanner(System.in);
System.out.println("Enter integer value: ");
x = in.nextInt();

An array can also be used to store the integer.

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