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I want to detect if a String is a decimal by using a regular expression. My question is more on how to use the regular expression mechanism than detecting that a String is a decimal. I use the RegExp class provided by GWT.

        String regexDecimal = "\\d+(?:\\.\\d+)?";
        RegExp regex = RegExp.compile(regexDecimal);
        String[] decimals = { "one", "+2", "-2", ".4", "-.4", ".5", "2.5" };
        for (int i = 0; i < decimals.length; i++) {
            System.out.println(decimals[i] + " "
                    + decimals[i].matches(regexDecimal) + " "
                    + regex.test(decimals[i]) + " "
                    + regex.exec(decimals[i]));
        }

The output:

one false false null
+2 false true 2
-2 false true 2
.4 false true 4
-.4 false true 4
.5 false true 5
2.5 true true 2.5

I was expecting that both methods String.matches() and RegExp.test() return the same result.

  1. So what's the difference between both methods?
  2. How to use the RegExp.test() to get the same behaviour?
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Both answers are good and fixed my problem, so now which one do I accept since they are basically the same answer? –  Sydney May 14 '11 at 12:25

2 Answers 2

Try to change the regex to

"^\\d+(?:\\.\\d+)?$"

explain
double escape is because we're in Java...
regex start with ^ to forces the regex to match from the very start of the string.
regex end with $ to forces the regex to match from the very end of the string.

this is how you should get String.matches() to do the same as GWT RegExp.test()

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I don't know the difference, but I would say that RegExp.test() is correct, because your regex matches as soon as there is a digit within your string and String.matches() behaves like there where anchors around the regex.

\\d+(?:\\.\\d+)?

Your non capturing group is optional, so one \\d ([0-9]) is enough to match, no matter what is around.

When you add anchors to your regex, that means it has to match the string from the start to the end, then RegExp.test() will probably show the same results.

^\\d+(?:\\.\\d+)?$
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