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Considering

NN = number/digit
x = any single letter

I want to match these patterns:

1. NN
2. NNx
3. NN.NN
4. NN.NNx
5. NN.NN.NN
6. NN.NN.NNx

Example that needs to be match:

1. 20
2. 20a
3. 20.20
4. 20.20a
5. 20.20.20
6. 20.20.20a

Right now I am trying to use this regex:

\b\d+\.?\d+\.?\d+?[a-z]?\b

But if fails.

Any help would be greatly appreciate, thanks! XD

EDIT:

I am matching this:

<fn:footnote fr="10.23.20a">    (Just a sample)

Now I have a regex that will extract the '10.23.20a'

Now I will check if this value will be valid, the 6 examples above will be the only string that will be accepted.

This examples are invalid:

1. 20.a
2. 20a.20.20
3. etc.

Many thanks for your help men! :D

share|improve this question
    
Is 1. to 6. (and the following space) part of your input? –  Martin Büttner Dec 18 '12 at 9:06
    
No it's just the enumeration of the example. –  jomsk1e Dec 18 '12 at 9:11

2 Answers 2

up vote 1 down vote accepted

You always have \d+, which is one or more digits. So you require at least three digits. Try grouping the digits with their periods:

^\d+(?:[.]\d+){0,2}[a-z]?$

The ?: is just an optimization (and a good practice) that suppresses capturing. [.] and \. are completely interchangeable, but I prefer the readability of the former. Choose whatever you like best.

If you actually want to capture the numbers and the letter, there two options:

^(?<first>\d+)(?:[.](?<second>\d+))?(?:[.](?<third>\d+))?(?<letter>[a-z])?$

Note that the important point is to group a period and the digits together and make them optional together. You could as well use unnamed groups, it doesn't really matter. However, if you use my version, you can now access the parts through (for instance)

match.Groups["first"].Value

where match is a Match object returned by Regex.Match or Regex.Matches for example.

Alternatively, you can use .NET's feature of capturing multiple values with one group:

^(?<d>\d+)(?:[.](?<d>\d+){0,2}(?<letter>[a-z])?$

Now match.Groups["d"].Captures will contain a list of all captured numbers (1 to 3). And match.Groups["letter"].Value will still contain the letter if it was there.

share|improve this answer
    
@OskarKjellin I figured those 1. to 6. were just the enumeration of the examples –  Martin Büttner Dec 18 '12 at 9:06
    
Thanks for this! But how about if I want to group them? I mean I want to get the 1st digit 2nd and 3rd and the letter respectively? –  jomsk1e Dec 18 '12 at 9:07
    
@JRC will it never be more than 3 parts? –  Martin Büttner Dec 18 '12 at 9:09
    
yeap, its just 1-3 parts only, How can I group them so I can get them respectively? thanks for your help! –  jomsk1e Dec 18 '12 at 9:09
    
@JRC edited the answer –  Martin Büttner Dec 18 '12 at 9:14

Try this

^\d+(?:(?:\.\d+)*[a-z]?)$
share|improve this answer

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