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I would like to have the files that I am creating to be output into the directory I created in my perl script.

I can create the directory

use File::Path;

$dir = "foo/";
mkpath($dir);

and my files

$FILE = "output.txt";
unless(open $filehandle, ">", $FILE){
  die "\nUnable to create $FILE:\n$!";
}
printf $filehandle "writing stuff to my file\n";
printf $filehandle "and some more stuff\n";
close($filehandle);

Everything works fine except I was the files to be output into the directory I made earlier in the script.

Any help would be appreciated.

share|improve this question
    
Where did your file gets created now?? –  Rohit Jain Sep 27 '12 at 15:58
    
Why mkpath instead of mkdir? Either way, check whether the function succeeded. If you do need File::Path, use make_path() if available (in later versions). Include "$!" in your open() or die error message. –  runrig Sep 27 '12 at 16:11
    
Ok, mkpath() does croak on error, so checking its success is not necessary. Other comments stand. –  runrig Sep 27 '12 at 18:25
    
@RohitJain, In the directory the script is located. I just wanted to create a new directory because my actual script generates a large number of files. –  Casa Sep 27 '12 at 18:46
2  
If you are only creating one new level of directory, then mkdir() works fine. mkpath() is generally for /multiple/levels/of/new/directories. –  runrig Sep 27 '12 at 19:05

3 Answers 3

up vote 1 down vote accepted

This code will do what you're asking:

$FILE = "$dir/output.txt";
unless(open $filehandle, ">", $FILE){
  die "\nUnable to create $FILE:\n$!";
}
printf $filehandle "writing stuff to my file\n";
printf $filehandle "and some more stuff\n";
close($filehandle);

You need to specify the path where you want your file to be written. You could use either an absolute path or a relative path, starting from your current working directory.

share|improve this answer
2  
Downvote for 2-arg open. –  darch Sep 27 '12 at 16:20
    
@darch, I just copied the code the user had posted, changing it to accomplish what he wants... I didn't know I had to optimize it. My answer fits the question... –  Zagorax Sep 27 '12 at 16:26
    
Your answer should model good code or at least not-bad code. 2-arg open is wrong. –  darch Sep 27 '12 at 16:29
    
That's a bit harsh, but in this particular case I agree (catenate > and the filename? Really!) –  tripleee Sep 27 '12 at 16:29
    
@darch, Sorry, I do not agree. The question was "How do I output a file to a specific directory?" and not "Is this code correct and beautiful to see? Does it respect standards?". I could change it to a cleaner one, but the questioner will just spot the change in path (as his question was for that) and will not question himself about why I'm using a different syntax. I don't even think a question like this is the right place to explain in the answer these things. Cheers. –  Zagorax Sep 27 '12 at 16:38

You can either use chdir to change to the directory, or prepend the directory to the file name:

chdir($dir) or die "Failed to cd to $dir: $!";
# or
$FILE = "$dir/output.txt";

But don't do both.

share|improve this answer
use File::Spec::Functions;
my $dir = "/somedir";
my $FILE = "output.txt";

my $path = catfile($dir, $FILE)
my $filehandle

unless(open $filehandle, '>',  $path){
  die "\nUnable to create $FILE\n";
}
close($filehandle)

There is not much of a difference from others, but you can use catfile to make a path according to the current OS. You don't want to change the way you build path when you port your code..

Also, using lexical filehandler is a better option than using Bareword (FILE)..

share|improve this answer
    
Could be a good answer, except for 2-arg open. –  darch Sep 27 '12 at 17:15
    
@darch.. What do you suggest?? I am new to perl, so am aware of this kind of open only.. Are you saying to use 3-arg open?? '<' for read as 2nd arg?? That I knew.. But for reading it's default thats why I didn't use.. –  Rohit Jain Sep 27 '12 at 17:20
    
@darch.. Edited code.. Will this do?? –  Rohit Jain Sep 27 '12 at 17:24
1  
Yes, use 3-arg open even for reading. 2-arg open has problems (consider, for example, trying to open a file with the name >badly-named file<) and should not be used. –  darch Sep 27 '12 at 17:25
    
Flipped my vote. –  darch Sep 27 '12 at 17:26

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