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I'm trying to match the last set of 0s in a decimal. Eg: In 9780.56120000 0000 would be matched. This regex:

(?<=\.\d{0,20})0*$

seems to work in RegexBuddy but Java fails with the following error:

Look-behind pattern matches must have a bounded maximum length near index 15

Can anyone provide some insight into this problem?

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Thanks for the clarification edits, Perception. –  Kevin Mark Nov 19 '12 at 5:34

2 Answers 2

up vote 8 down vote accepted
+100

Java is interpreting {0,20} as being "unbounded", which it doesn't support.

Why do you need a look behind? Use a non-capturing group instead:

(?:\.\d*)0*$

Edited:

To remove trailing zeros from decimal numbers in a String, use this single line:

input.replaceAll("(\\.(\\d*[1-9])?)0+", "$1");

Here's some test code:

public static void main(String[] args) {
    String input = "trim 9780.56120000 and 512.0000 but not this00, 00 or 1234000";
    String trimmed = input.replaceAll("(\\.(\\d*[1-9])?)0+", "$1");
    System.out.println(trimmed);
}

Output:

trim 9780.5612 and 512. but not this00, 00 or 1234000

Edited again:

If you want to handle when there are only trailing zeros to also remove the decimal point, ie "512.0000" becomes "512", but "123.45000" still retains the decimal point ie "123.45", do this:

String trimmed = input.replaceAll("(\\.|(\\.(\\d*[1-9])?))0+\\b", "$2");

More test code:

public static void main(String[] args) {
    String input = "trim 9780.56120000 and 512.0000 but not this00, 00 or 1234000";
    String trimmed = input.replaceAll("(\\.|(\\.(\\d*[1-9])?))0+\\b", "$2");
    System.out.println(trimmed);
}

Output:

trim 9780.5612 and 512 but not this00, 00 or 1234000
share|improve this answer
    
Because that matches more than just 0000 it matches everything after the decimal. I need to replace the 0000 with an empty string. How can I bound it? –  Kevin Mark Nov 19 '12 at 5:09
    
So you want to delete trailing zeros from decimal numbers in a String? –  Bohemian Nov 19 '12 at 5:13
    
That's the end goal, yes. –  Kevin Mark Nov 19 '12 at 5:14
    
@KevinMark See edited answer for your solution –  Bohemian Nov 19 '12 at 5:38
    
Exactly what I was looking for, thanks. –  Kevin Mark Nov 19 '12 at 5:40

I ended up not using regular expressions at all and decided to just loop through each character of the decimal starting at the end and working backwards. Here's the implementation I used. Thanks to Bohemian for pushing me in the right direction.

if(num.contains(".")) { // If it's a decimal
    int i = num.length() - 1;
    while(i > 0 && num.charAt(i) == '0') {
        i--;
    }
    num = num.substring(0, i + 1);
}

Code based off the rtrim function found here: http://www.fromdev.com/2009/07/playing-with-java-string-trim-basics.html

Edit: And here's something to remove the decimal for this solution.

// Remove the decimal if we don't need it anymore
// Eg: 4.0000 -> 4. -> 4
if(num.substring(num.length() - 1).equals(".")) {
        num = num.substring(0, num.length() - 1);
}
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Can I get some justification for the down vote, please? It's a possible solution I came up with. Not necessarily the best and I think I made that clear with the up vote, acceptance, and bounty on the other answer. –  Kevin Mark Nov 24 '12 at 5:32

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