问题
Readers,
I have the following regex problem:
code
#!/usr/bin/perl -w
use 5.010;
use warnings;
my $filename = 'input.txt';
open my $FILE, "<", $filename or die $!;
while (my $row = <$FILE>)
{ # take one input line at a time
chomp $row;
if ($row =~ /\b\w*a\b/)
{
print "Matched: |$`<$&>$'|\n"; # the special match vars
print "\$1 contains '$1' \n";
}
else
{
#print "No match: |$row|\n";
}
}
input.txt
I like wilma.
this line does not match
output
Matched: |I like <wilma>|
Use of uninitialized value $1 in concatenation (.) or string at ./derp.pl line 14, <$FILE> line 22.
$1 contains ''
I am totally confused. If it is matching and I am checking things in a conditional. Why am I getting an empty result for $1? This isn't supposed to be happening. What am I doing wrong? How can I get 'wilma' to be in $1?
I looked here but this didn't help because I am getting a "match".
回答1:
You don't have any parentheses in your regex. No parentheses, no $1.
I'm guessing you want the "word" value that ends in -a, so that would be /\b(\w*a)\b/.
Alternatively, since your whole regex only matches the bit you want, you can just use $& instead of $1, like you did in your debug output.
Another example:
my $row = 'I like wilma.';
$row =~ /\b(\w+)\b\s*\b(\w+)\b\s*(\w+)\b/;
print join "\n", "\$&='$&'", "\$1='$1'", "\$2='$2'", "\$3='$3'\n";
The above code produces this output:
$&='I like wilma'
$1='I'
$2='like'
$3='wilma'
来源:https://stackoverflow.com/questions/24936145/perl-empty-1-regex-value-when-matching