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I wrote a Perl program which reads text from text file and prints it out.

I want to print out a line which has specific format.

For example, there are some lines like this:

information:
Ahmad.prn:592118:2001:7:5:/Essay
Ashford.rtf:903615:2001:6:28:/usr/Essay
Barger.doc:243200:2001:7:4:/home/dir
end of Information.

I want to read only these three lines:

Ahmad.prn:592118:2001:7:5:/Essay
Ashford.rtf:903615:2001:6:28:/usr/Essay
Barger.doc:243200:2001:7:4:/home/dir

I think that the meaning of the fields is:

Ahmad.prn <- file name
592118 <- size of file
2001:7:5 <- created date
/Essay <- path of file

My code is this:

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

open (my $infh, "<", $file)||die "cant open";

while(my $line = <$infh>) {
    chomp ($line);
    if ($line =~ /(what regular expression do I have to put in here?)/) {
        print "$line";
    }
}

close ($infh);
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1  
You really need to put more information around what you are trying to achieve. –  dalton Mar 5 '11 at 12:12
1  
Please state clearly what the line format is. It's not clear whether you just want to strip the first & last lines, match only lines ending with /Essay, match lines matching a:b:c:d:e:f .... –  Mat Mar 5 '11 at 12:20

4 Answers 4

If lines you need always ends with /Essay, you may use following regex

/:\/Essay$/

Edit 1: looks there is middle parts are only numbers, you may match this way.

/:\d+:\d+:\d+:\d+:/
share|improve this answer
    
not alwyas end with essay... there are other words –  misaka Mar 5 '11 at 12:15
    
i think notation is 'filename:filesize:date:path' em.. '~' –  misaka Mar 5 '11 at 12:20
    
@misaka, so, middle parts only numbers? added another regex –  YOU Mar 5 '11 at 12:22
    
What about make it separate? –  misaka Mar 5 '11 at 12:31
    
@misaka, do you mean split? split(/:/, $line); would return 6 items array –  YOU Mar 5 '11 at 12:35
   $line =~ m{
   ^
   (\w+\.\w+) # filename stored as $1
   :
   (\d+) # size stored as $2
   :
   (\d{4}) # year stored as $3
   :
   (\d+) # month stored as $4
   :
   (\d+) # day stored as $5
   :
   (.*) # path stored as $6
   $
   }x
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Since you have this format for Ahmad.prn:592118:2001:7:5:/Essay

Ahmad.prn <- file name
592118 <- size of file
2001:7:5 <- created date
/Essay <- path of file

you can use this regular expression

/^\s*(\S+):(\d+):(\d+:\d+:\d+):(\S+)\s*$/

With this you will have file name in $1, Size of the file in $2, Date of creation in $3, Path to the file in $4

I added optional spaces in the start and end of the line, if you want to allow optional spaces after or before : you can add \s*

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#!/usr/bin/perl
use strict;

my $inputText = qq{
Ahmad.prn:592118:2001:7:5:/Essay
Ashford.rtf:903615:2001:6:28:/usr/Essay
Barger.doc:243200:2001:7:4:/home/dir
end of Information.
};

my @input = split /\n/, $inputText;
my $i = 0;
while ($input[$i] !~ /^end of Information.$/) {
    if ($input[$i] !~ /:/) {
        $i++;
        next;
    }
    my ($fileName, $fileSize, $year, $month, $day, $filePath) = split /:/, $input[$i];
    print "$fileName\t $fileSize\t $month/$day/$year\t $filePath\n";
    $i++;
}
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