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I'm new to perl and was wondering how I could replace some text after a matched pattern.

For example I have a string:

    my $string = 'startDate="2014-06-10"';
    $string =~ s/startDate="2014-06-10"/startDate=""\g;

This code replaces what I want but I want to be able to have any date and for it replace the date with a blank string. So I want to replace any text after startDate=" and stop replacing after 10 characters. What is the best way to do this?

Thanks

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up vote 4 down vote accepted

Assuming your date is always in that format, you can use a more general regular expression to replace the date:

my $string = 'startDate="2014-06-10"';
$string =~ s/startDate="\d{4}-\d{1,2}-\d{1,2}"/startDate=""/g;

and since startDate="" stays the same you really just need to replace the date itself:

my $string = 'startDate="2014-06-10"';
$string =~ s/\d{4}-\d{1,2}-\d{1,2}//g;
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Works great. Thanks :) – Luke CheerfulPlum Pace Jun 11 '14 at 15:31

Assuming perl >5.10:

s/startDate="\K[^"]{10}//g;

Replaces 10 characters which aren't " following startDate=". Using \K means you don't need to replace the bit you wanted to retain:

\K , which causes the regex engine to "keep" everything it had matched prior to the \K and not include it in $&

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