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I have a text containing expressions that may be generated by the regular expression "[1-9]?[0-9].[1-9]?[0-9].[1-9]?[0-9]".

No I want to perform a regular replacement that puts a "0" in front of each part when there is no first digit. So for example the string "1.10.3" would turn into "01.10.03".

My problem is that I don't know how to capture the first digit if and only if there there is no second digit in the first part. Using something like ".?([0-9])[^0-9]" would capture the first digit even if there is another one. So "12.3.4" would be turned into "02.03.04" or "102.03.04".

Do you have any idea if there is any regular expression that matches this case?

[Edit:]

I am using the VBScript Regexp Object v5.5 which supports lookaheads.

I tried to use the Regular Expression provided by the the answer of Mark Byers:

Set re = New RegExp
re.Global = True
re.Pattern = "(?:^|[^0-9])([0-9])(?![0-9])"
Dim x As String
x = "1.3.4 string"
x = re.replace(x, "0$1")
MsgBox (x)

unfortunately the result of this code is "010304 string" - the dots are stripped away. I tried to modify the pattern to match the dots and whitespaces like "(?:^|[^0-9])([0-9])([. ])" and then to replace with "0$1$2" but the result is the same.

Do you have any idea what the problem might be?

share|improve this question
    
What language are you using? Regex is different depending on the language. –  Mark Byers Sep 28 '11 at 20:28
    
Note you can (usually) use \d to represent [0-9] and \D to represent non numeric symbols. –  DavidEG Sep 28 '11 at 20:35
    
@MarkByers: This is why I wrote "(usually)" ;) –  DavidEG Sep 29 '11 at 10:03

2 Answers 2

up vote 1 down vote accepted

Using lookarounds you can find digits that are not next to another digit:

(?<![0-9])[0-9](?![0-9])

And without a lookbehind (as it is not supported by some popular regular expression engines):

(^|[^0-9])([0-9])(?![0-9])

See the second version online: Rubular


Update

Try this:

re.Pattern = "(^|[^0-9])([0-9])(?![0-9])"
Dim x As String
x = "1.3.4 string"
x = re.replace(x, "$1X$2")
share|improve this answer
    
Thank you, but unfortunately this doesn't work in VBA. Could you please check the code I added to the question above? –  muffel Sep 28 '11 at 21:40
    
@muffel: Try my update. Note I used X instead of 0 to avoid a potential problem if $10 is interpreted as "the value of group 10" instead of "the value of group 1, followed by a literal 0". You may want to try to get it working with the X first, and when you have that sorted, try seeing if "$10$2" works, and if not, find out how to fix it. –  Mark Byers Sep 28 '11 at 21:54
    
great, thank you! That saved my day ;) –  muffel Sep 30 '11 at 9:34

With GNU sed you can try:

sed 's/^\(\d\.\)/0\1/;s/\.\(\d\)\./.0\1./g;\.\(\d\)$/.0\1/' INPUTFILE

HTH

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