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I need a (Java) regular expression that will match:

XXXX.X

Where X is any number, only one number after the decimal point.

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up vote 6 down vote accepted

Try ^\d{4}\.\d$ if you want the entire string to match, remove the ^ and/or $ if you want it to find matches within a larger string.

If there can be any number of integers before the . use \d+ instead of \d{4} to match one or more, or \d* to match zero or more (the string ".5" would match \d*\.\d).

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what does d{4} stand for ? – NewBeee_Java Dec 22 '10 at 17:28
    
\d means digit, it's like [0-9] and {4} is "repeat 4" (assuming your regexp engine supports it). You could go back to basics and use ^[0-9][0-9][0-9][0-9]\.[0-9]$ – Ben Jackson Dec 22 '10 at 17:31

Instead of giving you the expression, here is a cheat sheet with all you need to know on it http://www.regular-expressions.info/reference.html. Make sure to escape the decimal point!

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If the number is exactly 4 digits,then try this

"/(^([0-9]{4})[.]([0-9]{1})$)/"

Eg : 1234.4

Or if the number is of unlimited digits,try this..

"/(^([0-9]{0,})[.]([0-9]{1})$)/"

Eg: 1234.4
45.8
589745324744.7

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