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I'm trying to create a regular expression in Java to validate a number with the following constraints:

  1. The number can be of any length but can only contain digits
  2. First digit can be 0 - 9
  3. Subsequent digits can be 0 - 9, but one of the digits must be non-zero.

For example: 042004359 is valid, but 0000000000 is not.

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Please leave reason for downvote – Reimeus Aug 13 '12 at 21:47
Is 0 valid? You say that the number can be any length and the first digit can be 0-9, and apply the restriction that "one of the digits must be non-zero" in the sentence referring to "subsequent digits", but it seems likely you intended that no all-zero number would be valid. – KRyan Aug 13 '12 at 21:59
Per @Keppil's comment on LouisWasserman's answer below, is #3 intended to restrict the subsequent digits to having at least one non-zero digit even if the first digit is non-zero? – KRyan Aug 13 '12 at 22:01

4 Answers 4

\\d+[1-9]\\d* should work, I'd think.

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Change the first * to a +, and you are home. – Keppil Aug 13 '12 at 21:48
I disagree, actually. If I changed the first * to a +, then this would only accept numbers with at least 2 digits, which I don't think is correct. (As it stands, the [1-9] is mandatory, so that forces at least one digit to be present.) – Louis Wasserman Aug 13 '12 at 21:55
According to the specs, one of the numbers after the first one has to be non-zero, but your pattern accepts 10000 for example. This also implies that the number is at least of length 2. – Keppil Aug 13 '12 at 21:57
Hrrrrm. I read the spec as "one of the digits in the whole string must be nonzero," but I suppose that reading makes more sense. – Louis Wasserman Aug 13 '12 at 21:58
+1, deleting my identical answer. – Keppil Aug 13 '12 at 22:03

This should do what you need:


Whilst it matches all of digits [0-9] it contains a lookahead that makes sure there is at least one of [1-9].

I am fairly certain that Java allows can use lookaheads.

EDIT: This regular expression test page seems to imply that it can.

EDIT: If 0 is valid, then you can use this:


This will make an exception for 0 on its own (notice the OR operator).

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^(\d{1}) - Line must start with 1 digit
(\d*?[1-9]{1}\d*)*$ - Line must end with zero or more 0-9 digits(? for conservative), then 1 1-9 digit, then zero or more digits. This pattern can repeat zero or more times.

Works with:


Maybe this is too complicated, lol.

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Here's one solution using lookarounds: (?<=\D|^)\d+(?=[1-9])\d*

(?<=\D|^)   # lookbehind for non-digit or beginning of line
\d+         # match any number of digits 0-9
(?=[1-9])   # but lookahead to make sure there is 1-9
\d*         # then match all subsequent digits, once the lookahead is satisfied
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