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How can i find decimal(dot) in a given number in java.

I am getting input from user, he may give integer or float value.

I need to find he entered integer or float, is it possible?

if yes could u tell me please.

-- Thanks

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getting input from user - is this via a GUI or from a text file? –  Mark May 21 '10 at 11:14
    
Is this homework? –  ponzao May 21 '10 at 11:33

4 Answers 4

Assuming you got the digits of the number in a String, it would be

String number = ...;
if (number.indexOf('.') > -1)
  ...
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you can try with yourNumberString.indexOf("."). If it returns a number greater than -1 there's a dot in the input.

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Anticipating your need, I would suggest that you use java.util.Scanner for number parsing, and use its hasNextXXX methods instead of dealing with parseInt etc and deal with NumberFormatException.

    import java.util.*;

    String[] inputs = {
        "1",
        "100000000000000",
        "123.45",
        "blah",
        "  "
    };
    for (String input : inputs) {
        Scanner sc = new Scanner(input);
        if (sc.hasNextInt()) {
            int i = sc.nextInt();
            System.out.println("(int) " + i);
        } else if (sc.hasNextLong()) {
            long ll = sc.nextLong();
            System.out.println("(long) " + ll);
        } else if (sc.hasNextDouble()) {
            double d = sc.nextDouble();
            System.out.println("(double) " + d);
        } else if (sc.hasNext()) {
            System.out.println("(string) " + sc.next());
        }
    }

This prints:

(int) 1
(long) 100000000000000
(double) 123.45
(string) blah
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You do not need to explicitly search for the location of the decimal point as some answers suggest. Simply parse the String into a double and then check whether that double represents an integer value. This has the advantage of coping with scientific notation for doubles; e.g. "1E-10", as well as failing to parse badly formatted input; e.g. "12.34.56" (whereas searching for a '.' character would not detect this).

String s = ...
Double d = new Double(s);
int i = d.intValue();

if (i != d) {
  System.err.println("User entered a real number.");
} else {
  System.err.println("User entered an integer.");
}
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Your int isn't going to be equal to the Double in a lot of cases even if the input was an integer. Floating point isn't that precise. You need to convert the int back to a Double and check for closeness (within 1.0e-6). –  Gilbert Le Blanc May 22 '10 at 0:11

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