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How would I go about removing all characters before a "_" in perl? So if I had a string that was "124312412_hithere" it would replace the string as just "hithere". I imagine there is a very simple way to do this using regex, but I am still new dealing with that so I need help here.

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[^_]*_ is your regex. The first part matches everything up to the underscore, the _ matches itself. –  Brad Koch Dec 12 '12 at 19:08
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what have you tried? –  Rohit Jain Dec 12 '12 at 19:09
    
my @var = split(/_/, $str); $str = $var[1]; –  DarkCthulhu Dec 12 '12 at 19:11
    
@BradKoch - not quite. You forgot a * or a + modifier. Your regex presently only matches one non-underscore, followed by an underscore. Now I look like a crazy person :-) –  Len Jaffe Dec 12 '12 at 19:11
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4 Answers

up vote 3 down vote accepted

This is a bit more verbose than it needs to be, but would be probably more valuable for you to see what's going on:

my $astring = "124312412_hithere";
my $find = "^[^_]*_";
my $replace = "_";

$astring  =~ s/$find/$replace/;

print $astring;

Also, there's a bit of conflicting requirements in your question. If you just want hithere (without the leading _), then change it to:

$astring  =~ s/$find//;
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Perfect thank you! –  Twisterz Dec 12 '12 at 19:11
    
/g is kinda useless without /m when your pattern start with ^. –  Oleg V. Volkov Dec 12 '12 at 20:27
    
@OlegV.Volkov fixed! –  sampson-chen Dec 12 '12 at 20:35
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Remove all characters up to and including "_":

s/^[^_]*_//;

Remove all characters before "_":

s/^[^_]*(?=_)//;
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You can try out this: -

$_ = "124312412_hithere";
s/^[^_]*_//;
print $_;    # hithere

Note that this will also remove the _(as I infer from your sample output). If you want to keep the _ (as it seems doubtful what you want as per your first statement), you would probably need to use look-ahead as in @ikegami's answer.

Also, just to make it little more clear, any substitution and matching in regex is applied by default on $_. So, you don't need to bind it to $_ explicitly. That is implied.

So, s/^[^_]*_//; is essentially same as - $_ =~ s/^[^_]*_//;, but later one is not really required.

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for someone not familiar with regular expressions, would he understand that your regex is operating on $_ ? I think it's more clear if you use: $str = "124312412_hithere"; $str =~ s/^[^_]*_//g; –  Tim A Dec 12 '12 at 19:27
    
@TimA.. There you go. I added some content, to make it more clear. –  Rohit Jain Dec 12 '12 at 19:35
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I know it's slightly different than what was asked, but in cases like this (where you KNOW the character you are looking for exists in the string) I prefer to use split:

$str = '124312412_hithere';
$str = (split (/_/, $str, 2))[1];

Here I am splitting the string into parts, using the '_' as a delimiter, but to a maximum of 2 parts. Then, I am assigning the second part back to $str.

There's still a regex in this solution (the /_/) but I think this is a much simpler solution to read and understand than regexes full of character classes, conditional matches, etc.

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This only works if the string initially contained a _. Definitely not my preferred solution since you would normally need to add a redundant if /_/ or some such. –  ikegami Dec 12 '12 at 19:39
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