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I'm reading this textfile to get ONLY the words in it and ignore all kind of whitespaces:

hello
now
    do you see this.sadslkd.das,msdlsa but 
      i   hoohoh

And this is my Perl code:

#!usr/bin/perl -w
require 5.004;

open F1, './text.txt';

while ($line = <F1>) {

    #print $line;
    @arr = split /\s+/, $line;
    foreach $w (@arr) {

        if ($w !~ /^\s+$/) {

            print $w."\n";
        }
    }
    #print @arr;
}
close F1;

And this is the output:

hello
now

do
you
see
this.sadslkd.das,msdlsa
but

i
hoohoh

The output is showing two newlines but I am expecting the output to be just words. What should I do to just get words?

share|improve this question
2  
I see you've not declared any of your variables in the sample code. Take a look at this: perl.about.com/b/2006/09/21/why-you-should-use-strict.htm –  martin clayton Oct 6 '12 at 12:25

3 Answers 3

up vote 2 down vote accepted

This line is the problem:

@arr=split(/\s+/,$line);

\s+ does a match just before the leading spaces. Use ' ' instead.

@arr=split(' ',$line);
share|improve this answer
    
This is perfect. Thanks. –  Programming Noob Oct 6 '12 at 23:45
    
So basically when you use the first parameter as a constant string in the split function, it doesn't care if the leading portion of the string $line contains the first parameter or not, but if you use a regexp that changes? –  Programming Noob Oct 6 '12 at 23:46
    
Yes. Using a literal single-space string as the separator parameter is a special case that makes split find all sequences of non-space characters in the string –  Borodin Oct 7 '12 at 3:39

You should always use strict and use warnings (in preference to the -w command-line qualifier) at the top of every Perl program, and declare each variable at its first point of use using my. That way Perl will tell you about simple errors that you may otherwise overlook.

You should also use lexical file handles with the three-parameter form of open, and check the status to make sure it succeeded. There is little point in explicitly closing an input file unless you expect your program to run for an appreciable time, as Perl will close all files for you on exit.

Do you really need to require Perl v5.4? That version is fifteen years old, and if there is anything older than that installed then you have a museum!

Your program would be better like this:

use strict;
use warnings;

open my $fh, '<', './text.txt' or die $!;

while (my $line = <$fh>) {

    my @arr = split /\s+/, $line;

    foreach my $w (@arr) {
        if ($w !~ /^\s+$/) {
            print $w."\n";
        }
    }
}

Note: my apologies. The warnings pragma and lexical file handles were introduced only in v5.6 so that part of my answer is irrelevant. The latest version of Perl is v5.16 and you really should upgrade

As Birei has pointed out, the problem is that, when the line has leading whitespace, there is a empty field before the first separator. Imagine if your data was comma-separated, then you would want Perl to report a leading empty field if the line started with a comma.

To extract all the non-space characters you can use a regular expression that does exactly that

my @arr = $line =~ /\S+/g;

and this can be emulated by using the default parameter for split which is a single quoted space (not a regular expression)

my @arr = $line =~ split ' ', $line;

In this case split behaves like the awk utility and discards any leading empty fields as you expected.

This is even simpler if you let Perl use the $_ variable in the read loop, as all of the parameters for split can be defaulted:

while (<F1>) {
    my @arr = split;
    foreach my $w (@arr) {
        print "$w\n" if $w !~ /^\s+$/;
    }
}
share|improve this answer
    
/\s+/g doesn't work saying "Use of /g modifier is meaningless in split at term_freq.pl line 12." And this is actually true right? Also the above is my first perl program, so I'm having a lot of difficulty understanding your shorthand code. –  Programming Noob Oct 6 '12 at 23:49
    
If you read my answer I don't use /\S+/g with split. The regex simply looks for all sequences of non-space characters and puts them into @arr. Note that it has an upper-case S - \S matches any non-space character. Perl is unusual in its use of the default variable $_, but it simplifies code a lot. while (<F1>) {...} reads a line from the file into $_ and split on its own is the same as split ' ', $_. You should get used to using $_ if you expect to write much Perl –  Borodin Oct 7 '12 at 3:36

I believe that in this line:

if(!($w =~ /^\s+$/))

You wanted to ask if there's nothing in this row - don't print it. But the "+" in the REGEX actually force it to have at least 1 space.

If you change the "\s+" to "\s*", you'll see that it's working. because * is 0 occurrences or more ...

share|improve this answer
    
No. * would match basically every character since it is followed and preceeded by zero occurances of a space. It doesn't work. I checked it too. –  Programming Noob Oct 6 '12 at 23:45
    
I checked it as well, and it's working ... not sure what you mean .. –  Ricky Oct 7 '12 at 13:49

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