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Here is the demo String:

beforeValueAfter

Assume that I know the value I want is between "before" and "After" I want to extact the "Value" using the regex....

pervious909078375639355544after

Assume that I know the value I want is between "pervious90907" and "55544after" I want to extact the "83756393" using the regex....

thx in advance.

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you can just do a string substitution on "pervious90907" and "55544after". you will be left with the value you want. no need regex –  ghostdog74 Aug 2 '09 at 0:01

4 Answers 4

up vote 1 down vote accepted

The answer depends on two things:

  • If you know exactly what the value consists of (if you know it will be digits, etc., it makes it easier). If it could be anything, the answer is a little harder.
  • If your system is greedy/ungreedy by default, it affects the way you'd set up the expression. I will assume it is greedy by default.

If it can be anything (the ? will be needed to toggle the .* to ungreedy because ".*" also matches "After":

/before(.*?)After/

If you know it is digits:

/before(\d*)After

If it could be any word characters (0-9, a-z, A-Z, _):

/before(\w*?)After
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very clear and fast respone. –  Tattat Aug 1 '09 at 13:57
    
\w contains more word character than just 0-9, a-z, A-Z and _. –  Gumbo Aug 1 '09 at 14:03
    
@Gumbo, depends on the platform you are using –  NickC Aug 1 '09 at 14:53

Try this regular expression:

pervious90907(.*?)55544after

That will get you the shortest string (note the non-greedy *? quantifier) between pervious90907 and 55544after.

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If I want to limited the result is digit only, what can I do? –  Tattat Aug 1 '09 at 13:43
    
Replace the . with [0-9], so [0-9]*?. –  Gumbo Aug 1 '09 at 13:44
    
@Tattat: \d See my answer for more info. –  NickC Aug 1 '09 at 13:44
    
Very fast response. thx u a lot. –  Tattat Aug 1 '09 at 13:47

The regex should be like this:

previous([0-9]*)after
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bash-3.2$ echo pervious909078375639355544after | perl -ne 'print "$1\n" if /pervious90907(.*)55544after/'
83756393
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