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I use the method String.matches(String regex) to find if a string matches the regex expression

From my point of view the regular expression regex="[0-9]+" means a String that contains at least one figure between 0 and 9

But when I debug "3.5".matches("[0-9]+") it returns false.

So what is wrong ?

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5  
The . is not a digit. –  BalusC Jul 27 '12 at 16:32

3 Answers 3

matches determines if the regex matches the whole string. It won't return true if the string contains a match.

To test if the string contains a match to a given regex, use Pattern.compile(regex).matcher(string).find().

(Your regex, [0-9]+, will match any string that contains only digits from 0 to 9, and at least one digit. It doesn't magically match against any real number. If you want something matching any real number, look at e.g. the Javadoc for Double.valueOf(String), which specifies a regex used in validating doubles. That regex allows hexadecimal input, NaNs, and infinities, but it should give you a better idea of what's required.)

Alternately, edit the regex so it directly matches any string containing one or more digits, e.g. .*[0-9]+.* would do the job.

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.*[0-9]+.* does match any string with a # in it, but I don't think that is what the OP is looking for. Sounds like he was confused thinking that his regex would match numerically instead of as a string. .*[0-9]+.* matches 3.5 sure, but it also matches a1b. You have the best explanation but maybe incorporate the regex from RoddyoftheFrozenPea's answer? +1 with update –  Windle Jul 27 '12 at 16:50

If you want to match decimal numbers, your reg ex needs to be \d*\.?\d+. If you want negatives as well, then \-?\d*\.?\d+.

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. is not 0-9 and matches tests the entire string.

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