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#!/usr/bin/perl -w
#use Parallel::ForkManager;
use Data::Dumper;

my $parent='/source';
my $destdir='/destination';

#open parent directory
opendir(DIR, $parent) or die "Can't open the current directory: $!\n";

# read directory names in that directory into @names 
my @dirs = grep {-d "$parent/$_" && ! /^\.{1,2}$/} readdir(DIR);

#my $pm=new Parallel::ForkManager();

foreach (@dirs)
{
    #$pm -> start and next;
    #do only if a folder contains .fastq.gz files
    my @txt = <$parent/$_/*.fastq.gz>;
    if(@txt)
    {         
        system("zcat $parent/$_/*R1*.fastq.gz | gzip > $destdir/$_.R1.fastq.gz");
        system("zcat $parent/$_/*R2*.fastq.gz | gzip > $destdir/$_.R2.fastq.gz");
        print "Inside $_ folder \n";
    }
    #$pm -> finish;
}

Hi everyone, So I have a source "$parent/" directory. There are 32 sub-directories in it. Each directory contains some R1.fastq.gz files and R2.fastq.gz files. I have to merge the R1.fastq.gz files into one R1.fastq.gz file and similarly for R2.fastq.gz files. The merged fastq.gz files are stored in destination directory "$destdir/". I also want the name of the merged fastq.gz files to match the name of the sub-directory from which it was merged and created (lines 23 & 24). When I run my code, I get the following errors:

sh: 1: cannot create /destination/Fastqc.R1.fastq.gz: Directory nonexistent 
sh: 1: cannot create /destination/Fastqc.R2.fastq.gz: Directory nonexistent

For e.g. here Fastqc comes from the name of my directory from which I am creating merged files. I have tried but I can't figure out what's wrong with my code. Can someone help?

When I use

system("zcat $parent/$_/*R1*.fastq.gz | gzip > $_.R1.fastq.gz"); instead of 
system("zcat $parent/$_/*R1*.fastq.gz | gzip > $destdir/$_.R1.fastq.gz"); 

it works fine.

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2  
I think you need to create your destination directory before you can create a file inside it. mkdir –  toolic Aug 26 '13 at 19:26
    
I already have that directory given by $destdir in my system –  Komal Rathi Aug 26 '13 at 19:27
4  
@user2703967, Your system disagrees –  ikegami Aug 26 '13 at 19:31
1  
Does this show what you expect? system "ls $destdir"; –  toolic Aug 26 '13 at 19:39
2  
Write that up as an Answer and Accept it so it is more obvious your problem is solved. –  toolic Aug 26 '13 at 19:46

1 Answer 1

up vote 3 down vote accepted

The code works fine. It was a silly mistake from my end, I was referring to '/destination' instead of '/home/destination' in $destdir. In essence, I was really referring to a non-existent directory.

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