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I need to remove ordinals via regex, but my regex skills are quite lacking. The following locates the ordinals, but includes the digit just prior in the return value. I need to isolate and remove just the ordinal.

[0-9](?:st|nd|rd|th)
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There is no regex standard.. Do you want to use it from perl, javascript, csharp or bash ? –  parapura rajkumar May 31 '11 at 2:06
    
@raj you forgot Java, Python and Erlang amongst others –  Jarrod Roberson May 31 '11 at 2:08
    
@Jarrod Only the languages I was confident I could answer :). Not being a pedant. –  parapura rajkumar May 31 '11 at 2:11

3 Answers 3

up vote 6 down vote accepted

You need to use a look-behind assertion so that only st|nd|rd|th preceded by a [0-9] are matched, but the [0-9] isn't included in the match. i.e.:

(?<=[0-9])(?:st|nd|rd|th)

I've linked to the perl-compatible syntax, but if you're using posix, posix extended, vi or one of many other regex syntaxes you'll need to look up the syntax.

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Also, the PHP docs have a slightly more wordy explanation if you want more background on the concept (PHP's PCRE functions use the same syntax as Perl). –  joelhardi May 31 '11 at 2:26
    
i'm using php. this worked perfectly -- thanks. –  lcdservices May 31 '11 at 2:29
    
Works brilliantly with Ruby. Consider adding case insensitivity to the regexp options so that it matched 85th as well as 85TH: /(?<=[0-9])(?:st|nd|rd|th)/i. –  Avishai May 29 '12 at 10:40

In perl:

$var =~ s{\b(\d+)(?:st|nd|rd|th)\b}{$1};

In PHP:

$var = preg_replace('/\\b(\d+)(?:st|nd|rd|th)\\b/', '$1', $var);

In .NET:

var = Regex.Replace(@"\b(\d+)(?:st|nd|rd|th)\b", "$1");
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Thanks, the .NET one worked flawlessly! –  Zachar543 Jun 20 '13 at 21:58

Try a negative lookbehind:

(?<=[0-9])(?:st|nd|rd|th)

assuming the dialect of regex supports it.

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