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how to extract numeric n character from 1960102214217F by using regular expression ??

I tried somthing like this ([0-9*])\+([A-Z*]) but result return Match failed!!

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Does n stand for and in your language? –  Kobi Oct 4 '11 at 7:12
    
The expression you used, while not quite correct, should match the string you gave as an example. Can you provide your full code? –  Mark Byers Oct 4 '11 at 7:14
    
which RegExp implementation would be the target? From the example you've given I guess .NET is OK? –  yas4891 Oct 4 '11 at 7:18

5 Answers 5

You can find it with following perl code:

$v = "1960102214217F";
$v =~ s/^(\d+)\D*$/$1/;

This means that regular expression /^(\d+)\D*$/ would find a number for you. Here ^ and $ are beginning and end of the string correspondingly. \d stands for numbers, \D stands for everything which is not a number.

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Use

([0-9]+)([A-Z])

That * will mess up numeric matching.

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2  
More like ([0-9]+)([A-Z]) –  Tomalak Oct 4 '11 at 7:15
    
@Tomalak: thanks, edited. –  darioo Oct 4 '11 at 7:17

try this one for .NET:

([0-9]+)

you might find this software handy if you're doing .NET: RegExp Designer

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The * needs to be outside of the brackets, not inside.

So try

([0-9]*)+([A-Z]*)
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[0-9]+[A-Z]* 

will match that. It simply means one or more numeric characters with zero or more upper-case letters following it. Is that what you wanted? If you just want to get the single letter (only one), you can use:

(?<=\d+)([A-Z]{1})$
  • (?<=\d+) is a look-behind for one or more numbers
  • ([A-Z]*) is the matching group and will match zero or more upper-case letters following one or more numbers
  • $ is the end of the string

Look-behinds will not be included in the match.

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Your second pattern will match after each digit. 123A -> 3 matches. (even without the A at the end...) –  Kobi Oct 4 '11 at 7:52
    
Thanks for the comment. I fixed it. Plus I added an example how to get at the number when there is only 1. –  Issun Oct 4 '11 at 8:03

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