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i am extracting first word from a line using regex in Perl

for my $source_line (@lines) {
    $source_line =~ /^(.*?)\s/
}

But I want to store the first word into a variable

when I print the below code, I get correct output

print($source_line =~ /^(.*?)\s/)

when I want to store in $i and print it, I get output as 1.

my $i =  ($source_line =~ /^(.*?)\s/);
print $i;

How do the store the first word into a temporary variable

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2 Answers 2

up vote 2 down vote accepted

You need to evaluate the match in list context.

my ($i) = $source_line =~ /^(.*?)\s/;

my ($i) is the same as (my $i), which "looks like a list", so it causes = to be the list assignment operator, and the list assignment operator evaluates its RHS in list context.


By the way, the following version works even if there's only one work and when there's leading whitespace:

my ($i) = $source_line =~ /(\S+)/;
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thanks..works fine now. –  Ad-vic Jan 16 '14 at 14:15
    
there won't be any leading space thats y i used /^(.*?)\s/ but you are right its better to use /(\S+)/ –  Ad-vic Jan 16 '14 at 14:16
    
Then you can use /^(\S+)/ for its self-documenting aspects, but it's effectively going to be the same as /(\S+)/ –  ikegami Jan 16 '14 at 14:20

It all comes down to context, this expression:

$source_line =~ /^(.*?)\s/

returns a list of matches.

When you evaluate a list in list context, you get the list itself back. When you evaluate a list in scalar context, you get the size of the list back; which is what is happening here.

So changing your lhs expression to be in list context:

my ($i) = $source_line =~ /^(.*?)\s/;

captures the word correctly.

There were recently a few articles on Perl Weekly related to context, here is one of them that was particularly good: http://perlhacks.com/2013/12/misunderstanding-context/

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thanks for the article.its really good –  Ad-vic Jan 16 '14 at 14:17

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