1

I'm trying to regex match patterns with the following criteria:

I want to match a string that only has one single occurrence in the entire string. I then want to capture the portion before the single colon.

Examples of valid strings:

JohnP: random text here
BobF::student: random text here (this is valid because there's only ONE occurrence of a single colon. the other is a double colon)
Paris: random text here::student (valid for the same reason as above)

Examples of invalid strings:

JohnP: student: random text here
BobF::student: random text here: more

I have no idea how to do a regex match like this. In the case of the valid strings, the group i want to return is:

JohnP
BobF::student
Paris

I would appreciate the help! I have tried $string =~ ^[^:]+:\s* but that only matches up to the first colon.

4

You can use this regex:

^((?:::|[^:])*+):(?!.*(?<!:):(?!:))

It looks for some number of pairs of colons or non-colon characters followed by a colon, using a possessive quantifier (*+) to prevent matching part-way through a double-colon in a string such as Bill:: xyz. Those characters are captured in group 1. A negative lookahead assertion is then used to check that there are no more single colons in the string.

Demo on regex101

0
0

Perhaps regular expression can be in form: match until : not preceded with : and not followed with :.

Note: code written in shorted form

use strict;
use warnings;
use feature 'say';

my $re = qr/^(.+)(?<!:):(?!:)/;

/$re/ && say $1 for <DATA>;

__DATA__
JohnP: random text here
BobF::student: random text here (this is valid because there's only ONE occurrence of a single colon. the other is a double colon)
Paris: random text here::student (valid for the same reason as above)

Output

JohnP
BobF::student
Paris

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