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my data looks like

NC_004415 NC_010199 ([T(trnH ,trnS1 trnL1 ,)])
NC_006131 NC_010199 ([T(trnH ,trnS1 trnL1 ,)])
NC_006355 NC_007231 ([T(trnM ,trnQ ,)])

I want to capture everything between [];

while( my $line = <crex> )

 {  $t=$line=~m/(\[.*\])/;

    print $t;
}   
    }

the output of $t is 1 ! why does it not working

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I can't help with the perl but your expression is fine. The problem lies in your code. –  Lindrian Sep 16 '12 at 1:41
    
Also, you've got an extra trailing brace. –  nneonneo Sep 16 '12 at 2:15

3 Answers 3

up vote 3 down vote accepted

Since you're using a capturing group, you can just use $1 after the match succeeds:

if($line =~ m/(\[.*\])/)
    print $1;
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Use parens around $t:

($t) = $line =~m/(\[.*\])/;

Refer to perldoc perlretut (Extracting matches)

I believe you are using the match operator (m//) in scalar context and storing the result in $t. Since the match is successful m// returns 1. Refer to perldoc perlop

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$line =~ m/(\[.*\])/ returns a list of the matches in list context, but you are using it in scalar context. In scalar context, the match operator returns a boolean that indicates whether the match was successful or not. Therefore you get 1. You can use

my ($t) = $line =~ m/(\[.*\])/;

to create a list context, or you can use $1 instead of using $t.

share|improve this answer
    
Not so. =~ returns an array in a list context, which is not the case here. print is called in a void context in the OP's code, and does not force scalar interpretation of array arguments — and there aren't any of those anyway. The OP cannot "try $t[0]" unless there is a @t. –  pilcrow Sep 16 '12 at 2:19
    
@pilcrow Now it looks right? I didn't have much perl experience other than read the first few chapters of Learning Perl. –  xiaomao Sep 16 '12 at 2:25
    
@pilcrow. It never returns an array. It's impossible to return an array. Only lists of scalars can be returned. –  ikegami Sep 16 '12 at 7:42
    
@ikegami, yes, right. –  pilcrow Sep 16 '12 at 13:20

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