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I'd like to be able to match zero or more of a list of characters AND/OR match zero or more of a list of strings.

Example: Here is my 12345 test string 123456.

Target: Here is my 45 test string .

So I wish to remove 1, 2, and 3, but only remove 456 if it's a whole string.

I have tried something like /[123]+456+/gs but I know this is wrong.

Any help is appreciated.

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"zero or more of a list of characters" will match everywhere! (@matches = "12345" =~ /a*/g; print scalar @matches, " matches found\n".) –  bobbogo Mar 24 '11 at 9:16
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3 Answers

up vote 1 down vote accepted

/[123]|456/ may be what you want.

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Excellent - I just used /[123]|456/gs - thank you very much! Edit: I see you made an edit to remove your first example - you should keep this in as it could be useful to those looking to find strings at word boundaries: /[123]|\b456\b/gs –  dancingpriest Mar 23 '11 at 12:26
    
@dancingpriest if this worked, please mark it as your answer (click the tick) –  Richard Parnaby-King Mar 23 '11 at 12:27
    
@Dickie - I'm yet unable to upvote. –  dancingpriest Mar 23 '11 at 12:29
    
@dancingpriest below the up/down triangles there is a small white tick. This indicates that you have accepted this as an answer. –  Richard Parnaby-King Mar 23 '11 at 13:29
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Code:

$str = "Here is my 12345 test string 123456.";
$res = preg_replace('/[123]|456/','',$str);
echo $res;

Output:

Here is my 45 test string .
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For javascript, this works:

var oldString = 'Here is my 12345 test string 123456.';

var newString = oldString.replace(/[123](456)?/g, '');
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No, bad. This will only remove the string 456 when it is preceeded by a 1, 2 or 3 character (which is also removed). –  bobbogo Mar 23 '11 at 13:24
    
I thought the requirements were pretty loosely defined... but if you want to remove 456 even when not preceded by 1,2 or 3, just add a ? after the [123] (that is, oldString.replace(/[123]?(456)?/g, '')) –  Mike C Mar 23 '11 at 14:57
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