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How to write regular expression to find between one and three digits separated by periods without returning the last period? For example, find the string

1.1.

and it would also need to match

1.1

or simply

1

Likewise, it needs to support between one and three digits, so

11.11.11

and

111.111.111

need to work as well.

So..the string won't always end with a period, but it may. Further, if it does end with a period, don't return the last period (so, using a positive lookahead). So, 1.1. if matched would return 1.1

Here is what I have so far, but I am struggling to find a way to NOT return the last period:

(\d{1,3}\.?)+(?=(\Z|\s|\-|\;|\:|\?|\!|\.|\,|\)))

It is returning

6.6.

but I want it to return

6.6
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I added explicitely the matching (or not) of a . at the end because you gave importace to it, but take in count that you can just ommit and just match ###.###.....### and will work for you. –  Oscar Mederos Mar 11 '11 at 5:54

4 Answers 4

You require: match d.d.d.d. or d.d.dxxx, and regardless of whether it ends with a "." or not, always stop at the last d (never the dot).

What's wrong with just: (\d(\.\d)*)

If you want your dotted-digit string to be terminated by a set of characters, put a look-ahead after it, as you have in your question:

(\d(\.\d)*)(?=(\Z|\s|\-|\;|\:|\?|\!|\.|\,|\)))

If you also want it to match a stand-alone string (with or without the terminator), add a ? after the look-ahead:

(\d(\.\d)*)(?=(\Z|\s|\-|\;|\:|\?|\!|\.|\,|\)))?

For more than one digits, just replace \d with \d{1,3} etc.

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This is helpful, however it still doesn't work for all scenarios, such as "1", "1.", "1.1", "1.1." and on. –  jJack Mar 11 '11 at 4:29
    
I can see that you also want to match single digits. Edited. –  Stephen Chung Mar 11 '11 at 4:41
    
Beautiful! And I edited my question a bit. Here was my final expression:(\d{1,3}(\.\d{1,3})*)(?=(\Z|\s|\-|\;|\:|\?|\!|\.|\,|))) –  jJack Mar 11 '11 at 5:00
    
No prob. Glad to be of help. I've edited the answer to include a comment on 1-3 digits. –  Stephen Chung Mar 11 '11 at 5:15

The regex (\d{1,3}(?:\.\d{1,3})*)\.{0,1} should work.

In the Group 1 (if taken Group 0 as the entire match) will be stored the string you want to keep, without the . at the end, in case it contains it.

It basically does:

  • Start matching 1-3 digits
  • Then match strings like .d, .dd, or .ddd
  • If the match ends with a ., it won't take it because it isn't inside the group.

Do your tests and let us know if it works with all your examples.

Edit:

Replace + with *

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/\d{1,3}(\.\d{1,3})*/

Quick explanation:

\d{1,3}  # Match 1-3 digits
(        # Start Capture Group 1
  \.       # Match '.'
  \d{1,3}  # Match 1-3 digits
)*       # End Capture Group 1 - match 0 or more times
share|improve this answer

You can write your own Regular expression and test with dummy data on following Site:

http://myregexp.com/

share|improve this answer
    
How can this answer this question? –  Oscar Mederos Mar 11 '11 at 5:15
    
Its a suggestion to create the regular expression whihc the user can use. –  Shivkant Mar 11 '11 at 10:04
    
Sorry, I thought it was pretty close to spam –  jJack Mar 11 '11 at 14:22

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