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If ' is the delimiter, or if interpolated from a variable, the regular expression \QW\ER matches QWER and not WR (observed with v5.6.2, v5.10.1 and v5.18.2 of Perl and at http://www.perlfect.com/articles/regextutor.shtml), i. e., \Q \E in the pattern are not interpreted as a quoting escape, but as literal Q E.

Example:

#!/usr/bin/env perl
$re = '\QW\ER';
print '$re = ', $re, "\n";
while (<DATA>)
{
    print qw(/\QW\ER/), "  matches ", $_ if /\QW\ER/;
    print qw(m'\QW\ER'), " matches ", $_ if m'\QW\ER';
    print qw(/$re/), "     matches ", $_ if /$re/;
}
__DATA__
QWERT
WRONG

Output:

$re = \QW\ER
m'\QW\ER' matches QWERT
/$re/     matches QWERT
/\QW\ER/  matches WRONG

(Only the last line is what I had expected.)

Is this a bug? ... a feature? ... documented anywhere?

share|improve this question
    
Works OK in 5.14.2. –  choroba Jan 14 '14 at 12:50
    
@Armali, how do you test it? Can you show the code and the output? –  perreal Jan 14 '14 at 12:58
    
@choroba: How did you observe that it works okay in v5.14.2? –  Armali Jan 15 '14 at 12:35
    
perl -E 'say /(?<=\QW\E)R/ for qw( QWERT WRONG )', returns an empty line and 1. –  choroba Jan 15 '14 at 12:44
    

2 Answers 2

up vote 3 down vote accepted

I found the explanation in the Perl Language reference, section perlop:

The following escape sequences are available in constructs that interpolate, ...

\Q          quote (disable) pattern metacharacters till \E or
            end of string
\E          end either case modification or quoted section
            (whichever was last seen)

Since '\QW\ER' is a construct where the delimiter is ' ', which provides no interpolating, \Q \E are not available as a quoting escape here.

share|improve this answer

You may be observing this if you are using a string with escapes to define a regex:

# don't use strings if you have escapes:
#  my $re = '(?<=\QW\E)R';
my $re = qr/(?<=\QW\E)R/;
/($re)/ and print "$_: $1\n" for qw(QWERT WRONG);
share|improve this answer
    
Using qr shows the expected behaviour because the \Q \E are thereby removed from the RE, which you can see if you print $re; so, this doesn't say anything about actually using \Q \E in the lookbehind pattern. –  Armali Jan 15 '14 at 12:11

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