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I have a file which has a lot of floating point numbers like this:

4.5268e-06 4.5268e-08 4.5678e-01 4.5689e-04...

I need to check if there is atleast one number with an expoenent -1. So, I wrote this short snippet with the regex. The regex works because I checked and it does. But what I am getting in the output is all 1s. I know I am missing something very basic. Please help.

#!usr/local/bin/perl
use strict;
use warnings;

my $i;
my @values;

open(WPR,"test.txt")||die "couldnt open $!";
while(<WPR>)
{
chomp();
push @values,(/\d\.\d\d\d\de+[+-][0][1]/);
}
foreach $i (@values){
print "$i\n";}
close(WPR);
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3 Answers 3

up vote 1 down vote accepted

If I move the parenthesis, it works fine:

push @values,/(\d\.\d\d\d\de+[+-][0][1])/;

If there's going to be more than one match on the line, I'd add a g at the end.

If you have capture groups, and a list context, then match returns a list of capture results.

If you want to take this to its insane conclusion then:

my @values = map { /(\d\.\d\d\d\de+[+-][0][1])/g } <WPR> ;

Yes, you can use <WPR> in a list context too.

BTW, while your regex works, it probably isn't exactly what you meant. For example e+ matches one or more es. A little simpler might be:

/\d\.\d{4}e[+-]01/ ;

Which is still going to have other issues like matching x.xxxxe+01 as well.

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Hi, this works perfectly. But why is it that parenthesis changed? Aren't they grouped anyway? –  Hitch Jan 29 at 23:46
    
The () inside the regex is a capture group. It puts stuff in $1 and returns it in list context (which push is). You had the parens around the whole match, making it's return value a list. That doesn't do anything at all. –  simbabque Jan 29 at 23:47

The regular expression match operator m (which you have omitted) returns true if it matches. True in Perl is usually returned as 1. (Note that most stuff is true, though).

If you want to stick with the short syntax, do this:

push @values, $1 if /(\d\.\d\d\d\de+[+-][0][1])/;
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1  
Or if OP just wants the matching part: push @values, $1 if /(\d\.\d\d\d\de+[+-][0][1])/ –  grebneke Jan 29 at 23:26
    
Yeah. Let's play guess: I think they are all in each line. OP is chomping them. This question is full of guesses. :-/ –  simbabque Jan 29 at 23:27
    
Question lists numbers as many per line. In which cases simply push @values, /\d\.\d\d\d\de+[+-][0][1]/g –  grebneke Jan 29 at 23:31
1  
Fixes main problem and explains why it's 1s so +1. @Hitch you might consider using a different regex also as the one that you have can be written easier... you can replace \d\d\d with just \d{3} which means the same, or \d+ which means 1 or more digits. e+ can be replaced with just e unless you want eeeeeeeee to be matched there, [+-] => + is special character in regexes... so you should rather escape it [\+-] (although I am not entirely sure if you actually would like to have + matched there) –  mgsk Jan 29 at 23:39
1  
@mgsk: in this case there is no need to escape the + because it's inside a character group. There can be no quantifiers there. Only the - (and some others, but they don't apply here) can be a special char as it's the from...to operator. But if it's the last one, no need to escape it either. –  simbabque Jan 29 at 23:41

You could try with this one:

/\d+\.\d+e-01/
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1  
That regex is a lot simpler, but it will still only give the OP a list full of 1s. ;) –  simbabque Jan 29 at 23:26

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