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having another problem with perl and regex, sorry for being a badass perl noobie ;-)

I get the whole programm output via backticks in the variable $output.

My regex matches always just for the first appearing in the output but not for every appearance..

/g didn't work either..

$output = `$calling 2>>bla.txt`;

if ($output =~ m/SegmentMean .+ Likelihood: ([-+]?\d+\.?\d+)/g) {
    print "$1\n";
}

Outputs from the Java Output is:

SegmentMean 0 Likelihood: -7.138117738068088 SegmentMean 1 Likelihood: -11.508156736772925 SegmentMean 2 Likelihood: -10.424706822552386 SegmentMean 3 Likelihood: -9.560308776447586 SegmentMean 4 Likelihood: -9.26826400149502 SegmentMean 5 Likelihood: -9.524685714290996 SegmentMean 6 Likelihood: -8.360030637461975 SegmentMean 7 Likelihood: -8.163275211919945 SegmentMean 8 Likelihood: -7.917569593466525 SegmentMean 9 Likelihood: -9.043243571260344

Up to SegmentMean 20 ..

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2 Answers 2

up vote 4 down vote accepted

Try going through the matches like an array (and use a better regex):

while ($output =~ m/SegmentMean \S+ Likelihood: ([-+]?\d+(\.\d+)?)/g) {
    print "$1\n";
}

That should work.

You can even turn it into a single line:

print "$1\n" while ($output =~ /SegmentMean \S+ Likelihood: ([-+]?\d+(?:\.\d+)?)/g);
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1  
I hope it's OK I edited your post. I don't know Perl at all, so I deleted my answer and used the regex in your post. +1 :) –  Tim Pietzcker Jan 6 '12 at 17:23
    
saw your post earlier Tim and yes it helped me! can be easy if you get the right point ;= –  Stefan Jan 6 '12 at 17:27
1  
You should use a while() (m//g in scalar context) rather than a for() (m//g in a list context). –  tadmc Jan 6 '12 at 18:00
    
Cheers Tim! And good point on the while loop, tadmc, edited. Thanks! –  Rohaq Jan 6 '12 at 19:08

You're only printing the first match. $1 is the first match.

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