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Is there a native way (preferably without implementing your own method) to check that a string is parsable with Double.parseDouble()?

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6 Answers

up vote 14 down vote accepted

The common approach would be to check it with a regular expression like it's also suggested inside the Double documentation.

The regexp provided there should cover all valid floating point cases, so you don't need to fiddle with it, since you will eventually miss out on some of the finer points.

If you don't want to do that, try catch is still an option.

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+1 - Much better than catching an exception (my lame answer...) –  Starkey Aug 22 '10 at 22:40
    
how does one do this exactly? –  Louis Rhys Aug 22 '10 at 22:40
2  
@Louis Rhys - There is a code example in the documentation link in the answer. –  Starkey Aug 22 '10 at 22:44
1  
@Louis Rhys: The complete code you need is provided in behind the link. You just need to copy that into your code and wrap the final if statement around your use of Double.parseDouble. But I would put the could into a utility class or method so it's easier reusable in your project. Something like parseDoubleSafe(String check, Double default) or something like that. –  Johannes Wachter Aug 22 '10 at 22:45
    
oh ok found that. Thanks! –  Louis Rhys Aug 22 '10 at 22:46
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Apache, as usual, has a good answer

NumberUtils.isNumber(string);

Handles nulls, no try/catch block. That's in the Lang package I believe.

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does Apache ship with the normal JDK? –  Louis Rhys Aug 23 '10 at 1:44
4  
No. You can find the Apache Commons libraries here. commons.apache.org Highly recommended that you use them rather than writing custom code whenever you can. –  Chris Nava Aug 23 '10 at 2:14
    
Does this identify decimal numbers ? –  TechCrunch Sep 16 '13 at 17:09
    
It returns false for float/double numbers. –  Constantine Gladky May 30 at 9:49
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You can always wrap Double.parseDouble() in a try catch block.

try
{
  Double.parseDouble(number);
}
catch(NumberFormatException e)
{
  //not a double
}
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This would be my preferred method because your guaranteed to get exactly the same behavior as the parse. It's very easy with a custom regular expression to overlook edge cases. –  Chris Nava Aug 23 '10 at 2:17
    
This is good EXCEPT if you type in a number followed by a space, it doesn't catch it. –  giant91 Sep 6 '13 at 5:03
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Something like below should suffice :-

String decimalPattern = "([0-9]*)\\.([0-9]*)";  
String number="20.00";  
boolean match = Pattern.matches(decimalPattern, number);
System.out.println(match); //if true then decimal else not  
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actually it's more complicated than that. see johannes wachter's answer –  Louis Rhys Aug 22 '10 at 22:47
1  
Got it. The link that Wachter provided is helpful indeed. –  CoolBeans Aug 23 '10 at 13:56
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All answers are OK, depending on how academic you want to be. If you wish to follow the Java specifications accurately, use the following:

private static final Pattern DOUBLE_PATTERN = Pattern.compile(
    "[\\x00-\\x20]*[+-]?(NaN|Infinity|((((\\p{Digit}+)(\\.)?((\\p{Digit}+)?)" +
    "([eE][+-]?(\\p{Digit}+))?)|(\\.((\\p{Digit}+))([eE][+-]?(\\p{Digit}+))?)|" +
    "(((0[xX](\\p{XDigit}+)(\\.)?)|(0[xX](\\p{XDigit}+)?(\\.)(\\p{XDigit}+)))" +
    "[pP][+-]?(\\p{Digit}+)))[fFdD]?))[\\x00-\\x20]*");

public static boolean isFloat(String s)
{
    return DOUBLE_PATTERN.matcher(s).matches();
}

This code is based on the JavaDocs at Double.

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Google's Guava library provides a nice helper method to do this: Doubles#tryParse. You use it like Double.parseDouble but it returns null rather than throw an Exception if the string does not parse to a valid double. Note that it returns Double object, so you have to cast it back to double primitive.

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