Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise
use File::Basename;
my $path = "a/b/c/d";
my $dirpath = basename ($path);
my $basepath = dirname ($path);
my $base_basepath = dirname ($basepath);
my $dir_dirpath = basename ($basepath);
print "$dir_dirpath/$dirpath\n";

I want c/d to be printed (i.e the list dir/filename). Is the above the best way to do that? The above obviously works but I somehow don't like it. Is there a better/cool/efficient way to do it? Something like a regex match??

Actually, that program just does a part of what I really want it to do. These are the different use cases and what the expected result is :

a/b/c/d => c/d d
b/c/d => c/d d
/c/d => c/d d
c/d => c/d d
/d => d
d => d
share|improve this question

The File::Spec module is the canonical and portable way to manipulate file paths, and File::Spec::Functions allows direct access to that module's functions without having to prefix them with File::Spec-> everywhere.

use strict;
use warnings;

use File::Spec::Functions qw/ splitdir catdir /;

my $path = "a/b/c/d";
my @path = splitdir $path;
print catdir @path[-2,-1];

output

c/d
share|improve this answer

One way using split

#!/usr/bin/perl

my $z="a/b/c/d";
my ($a, $b, $c, $d) = split ('/', $z);
print "$c/$d";

Using just a regex

#!/usr/bin/perl

my $z = "a/b/c/d"; 
($a, $b) = $z[$cnt] =~ m#(\w+){0,1}/{0,1}(\w+)$#;
printf "$a/$b - $b\n";

NOTE: This approach looks for trailing dir1/dir2 and saves them to $a and $b. The dollar sign ($) forces the match to anchor to the end of the string, so it's matching the right side or $z. The {0,1} allow for us to match something there if it's present, but if not then to ignore it. These are necessary for the /d and d cases.

All the possible paths demo

#!/usr/bin/perl

my @z = qw(a/b/c/d b/c/d /c/d c/d);

for (my $cnt = 0; $cnt <= 3; $cnt++) {
  ($a, $b) = $z[$cnt] =~ m#(\w+){0,1}/{0,1}(\w+)$#;
  printf "%10s   -   %s/%s  -  %s\n", $z[$cnt], $a, $b, $b;
}

### output
% ./script.pl 
a/b/c/d   -   c/d  -  d
  b/c/d   -   c/d  -  d
   /c/d   -   c/d  -  d
    c/d   -   c/d  -  d
     /d   -   /d  -  d
      d   -   /d  -  d

This just shows that this approach works for the directories mentioned in the question.

NOTE: This approach does have it's cons. It will only work on UNIX systems and special attention needs to be paid to the (\w+) matcher for the directory names. If you have directories with spaces in them, this will fail.

share|improve this answer
    
Ah! I like the regex one. What if I want both c/d and d from a single regex? Is that possible? i.e., print c/d and d. – Apad Feb 11 '13 at 1:33
    
Thanks for being patient. If i have : a/b/c/d, or b/c/d or /c/d or c/d, i should get c/d and d. I will never have a /d or d case. – Apad Feb 11 '13 at 3:47
    
Modified the question above. – Apad Feb 11 '13 at 4:19
    
Super. Thank you. Lemme know if I can rate this very high... :-) – Apad Feb 11 '13 at 5:30
    
Please mark this as the accepted answer if it's the best one for your question. – slm Feb 13 '13 at 2:24

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.