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I'm taking user input from System.in using a java.util.Scanner. I need to validate the input for things like:

  • It must be a non-negative number
  • It must be an alphabetical letter
  • ... etc

What's the best way to do this?

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please provide input method –  akf Jun 17 '10 at 6:22
8  
Many of your questions are in a form like this: badly worded pleas for someone else to post code without you showing what your have done (or tried) yourself. This is not the way to learn new things. Get your hand dirty! Try a couple of things yourself and, when getting stuck somewhere, post a specific question here (and post the code that didn't work). I assure you that by doing so, you will receive better responses than these close-votes. –  Bart Kiers Jun 17 '10 at 6:33
1  
@Bart K: would it be fair to other answerers if, in an effort to improve the question to make it worthy of reopening, I edit it to ask how to validate inputs using Scanner? Based on OP's previous Q, it seems that Scanner is what OP is working with. –  polygenelubricants Jun 17 '10 at 6:55
    
@polygenelubricants, yes, I'd vote to re-open if the question would be rephrased so that it made more sense. It would be a shame if this question would get deleted in the long run (and all good answer with it (mainly yours)). Of course, I had hoped @bhavna would have tried to improve it him- or herself... –  Bart Kiers Jun 17 '10 at 7:19
1  
@polygenelubricants, thanks. Voted to re-open. –  Bart Kiers Jun 17 '10 at 7:27
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5 Answers

For checking Strings for letters you can use regular expressions for example:

someString.matches("[A-F]");

For checking numbers and stopping the program crashing, I have a quite simple class you can find below where you can define the range of values you want. http://computersciencecs.blogspot.dk/2012/12/java-input-checking.html

    public int readInt(String prompt, int min, int max)
    {
    Scanner scan = new Scanner(System.in);

    int number = 0;

    //Run once and loop until the input is within the specified range.
    do 
    {
        //Print users message.
        System.out.printf("\n%s > ", prompt);

        //Prevent string input crashing the program.
        while (!scan.hasNextInt()) 
        {
            System.out.printf("Input doesn't match specifications. Try again.");
            System.out.printf("\n%s > ", prompt);
            scan.next(); 
        }

        //Set the number.
        number = scan.nextInt();

        //If the number is outside range print an error message.
        if (number < min || number > max)
            System.out.printf("Input doesn't match specifications. Try again.");

    } while (number < min || number > max);

    return number;
}
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Overview of Scanner.hasNextXXX methods

java.util.Scanner has many hasNextXXX methods that can be used to validate input. Here's a brief overview of all of them:

Scanner is capable of more, enabled by the fact that it's regex-based. One important feature is useDelimiter(String pattern), which lets you define what pattern separates your tokens. There are also find and skip methods that ignores delimiters.

The following discussion will keep the regex as simple as possible, so the focus remains on Scanner.


Example 1: Validating positive ints

Here's a simple example of using hasNextInt() to validate positive int from the input.

    Scanner sc = new Scanner(System.in);
    int number;
    do {
        System.out.println("Please enter a positive number!");
        while (!sc.hasNextInt()) {
            System.out.println("That's not a number!");
            sc.next(); // this is important!
        }
        number = sc.nextInt();
    } while (number <= 0);
    System.out.println("Thank you! Got " + number);

Here's an example session:

Please enter a positive number!
five
That's not a number!
-3
Please enter a positive number!
5
Thank you! Got 5

Note how much easier Scanner.hasNextInt() is to use compared to the more verbose try/catch Integer.parseInt/NumberFormatException combo. By contract, a Scanner guarantees that if it hasNextInt(), then nextInt() will peacefully give you that int, and will not throw any NumberFormatException/InputMismatchException/NoSuchElementException.

Related questions


Example 2: Multiple hasNextXXX on the same token

Note that the snippet above contains a sc.next() statement to advance the Scanner until it hasNextInt(). It's important to realize that none of the hasNextXXX methods advance the Scanner past any input! You will find that if you omit this line from the snippet, then it'd go into an infinite loop on an invalid input!

This has two consequences:

  • If you need to skip the "garbage" input that fails your hasNextXXX test, then you need to advance the Scanner one way or another (e.g. next(), nextLine(), skip, etc).
  • If one hasNextXXX test fails, you can still test if it perhaps hasNextYYY!

Here's an example of performing multiple hasNextXXX tests.

    Scanner sc = new Scanner(System.in);
    while (!sc.hasNext("exit")) {
        System.out.println(
            sc.hasNextInt() ? "(int) " + sc.nextInt() :
            sc.hasNextLong() ? "(long) " + sc.nextLong() :  
            sc.hasNextDouble() ? "(double) " + sc.nextDouble() :
            sc.hasNextBoolean() ? "(boolean) " + sc.nextBoolean() :
            "(String) " + sc.next()
        );
    }

Here's an example session:

5
(int) 5
false
(boolean) false
blah
(String) blah
1.1
(double) 1.1
100000000000
(long) 100000000000
exit

Note that the order of the tests matters. If a Scanner hasNextInt(), then it also hasNextLong(), but it's not necessarily true the other way around. More often than not you'd want to do the more specific test before the more general test.


Example 3 : Validating vowels

Scanner has many advanced features supported by regular expressions. Here's an example of using it to validate vowels.

    Scanner sc = new Scanner(System.in);
    System.out.println("Please enter a vowel, lowercase!");
    while (!sc.hasNext("[aeiou]")) {
        System.out.println("That's not a vowel!");
        sc.next();
    }
    String vowel = sc.next();
    System.out.println("Thank you! Got " + vowel);

Here's an example session:

Please enter a vowel, lowercase!
5
That's not a vowel!
z
That's not a vowel!
e
Thank you! Got e

In regex, as a Java string literal, the pattern "[aeiou]" is what is called a "character class"; it matches any of the letters a, e, i, o, u. Note that it's trivial to make the above test case-insensitive: just provide such regex pattern to the Scanner.

API links

Related questions

References


Example 4: Using two Scanner at once

Sometimes you need to scan line-by-line, with multiple tokens on a line. The easiest way to accomplish this is to use two Scanner, where the second Scanner takes the nextLine() from the first Scanner as input. Here's an example:

    Scanner sc = new Scanner(System.in);
    System.out.println("Give me a bunch of numbers in a line (or 'exit')");
    while (!sc.hasNext("exit")) {
        Scanner lineSc = new Scanner(sc.nextLine());
        int sum = 0;
        while (lineSc.hasNextInt()) {
            sum += lineSc.nextInt();
        }
        System.out.println("Sum is " + sum);
    }

Here's an example session:

Give me a bunch of numbers in a line (or 'exit')
3 4 5
Sum is 12
10 100 a million dollar
Sum is 110
wait what?
Sum is 0
exit

In addition to Scanner(String) constructor, there's also Scanner(java.io.File) among others.


Summary

  • Scanner provides a rich set of features, such as hasNextXXX methods for validation.
  • Proper usage of hasNextXXX/nextXXX in combination means that a Scanner will NEVER throw an InputMismatchException/NoSuchElementException.
  • Always remember that hasNextXXX does not advance the Scanner past any input.
  • Don't be shy to create multiple Scanner if necessary. Two simple Scanner is often better than one overly complex Scanner.
  • Finally, even if you don't have any plans to use the advanced regex features, do keep in mind which methods are regex-based and which aren't. Any Scanner method that takes a String pattern argument is regex-based.
    • Tip: an easy way to turn any String into a literal pattern is to Pattern.quote it.
share|improve this answer
    
this code is working for negative numbers but not for alphabet –  bhavna raghuvanshi Jun 17 '10 at 6:30
    
That's probably the best way yo go about it, depending on the input method, of course. –  Nubsis Jun 17 '10 at 6:30
3  
@bhavna: learn from the code and do the rest yourself. –  polygenelubricants Jun 17 '10 at 6:31
3  
@bhavna, please stop expecting others to do all your work. Also, thanking someone from time to time wouldn't hurt either. –  Bart Kiers Jun 17 '10 at 6:38
    
I love hasNextInt(). Ive been dealing with NumberFormatException cuz i didn't read doc enough. ouch. thanks for the information. very nice example too. –  masato-san Feb 5 '13 at 23:05
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If you are parsing string data from the console or similar, the best way is to use regular expressions. Read more on that here: http://java.sun.com/developer/technicalArticles/releases/1.4regex/

Otherwise, to parse an int from a string, try Integer.parseInt(string). If the string is not a number, you will get an exception. Otherise you can then perform your checks on that value to make sure it is not negative.

String input;
int number;
try
{
    number = Integer.parseInt(input);
    if(number > 0)
    {
        System.out.println("You positive number is " + number);
    }
} catch (NumberFormatException ex)
{
     System.out.println("That is not a positive number!");
}

To get a character-only string, you would probably be better of looping over each character checking for digits, using for instance Character.isLetter(char).

String input
for(int i = 0; i<input.length(); i++)
{
   if(!Character.isLetter(input.charAt(i)))
   {
      System.out.println("This string does not contain only letters!");
      break;
   }
}

Good luck!

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One idea:

try {
    int i = Integer.parseInt(myString);
    if (i < 0) {
        // Error, negative input
    }
} catch (NumberFormatException e) {
    // Error, not a number.
}

There is also, in commons-lang library the CharUtils class that provides the methods isAsciiNumeric() to check that a character is a number, and isAsciiAlpha() to check that the character is a letter...

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You can check the ascii value for the characters and write your conditions.

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can u pls code it. –  bhavna raghuvanshi Jun 17 '10 at 6:26
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