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What does the following Perl regular expression modifer do?

/o

For example,

$string =~ /foo\(\"([^\)]*)\"\)/o)   

What does the /o mean?

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5  
check here for more discussion about /o modifier. –  dave Jul 19 '11 at 16:42

3 Answers 3

It tells Perl to only compile the expression once. See What is /o really for?.

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Absolutely nothing!

It affects interpolation, and nothing is being interpolated into that pattern.

Were there something interpolated, /o would cause the interpolation to only happen once, no matter how many times the match operator is executed.

>perl -E"for (['o','foo'],['a','bar'],['e','neo']) {
    my ($pat, $s) = @$_; say $s =~ /$pat/ ? $& : 0 }"
o
a
e

>perl -E"for (['o','foo'],['a','bar'],['e','neo']) {
    my ($pat, $s) = @$_; say $s =~ /$pat/o ? $& : 0 }"
o
0
o
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1  
And even when there is interpolation, it does almost nothing! And even when it does do something, you probably didn't want it to! So there's not a lot of point in using /o. –  hobbs Jul 19 '11 at 17:11
1  
@hobbs, I agree fully. It's much better to use qr//. –  ikegami Jul 19 '11 at 18:50

The /o option for regular expressions (documented in perlop and perlreref) tells Perl to compile the regular expression only once. This is only useful when the pattern contains a variable. Perls 5.6 and later handle this automatically if the pattern does not change.

(source)

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