Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Is there a neater way of climbing up multiple directory levels from the location of a script.

This is what I currently have.

# get the full path of the script
D=$(cd ${0%/*} && echo $PWD/${0##*/})

D=$(dirname $D)
D=$(dirname $D)
D=$(dirname $D)

# second level parent directory of script
echo $D

I would like a neat way of finding the nth level. Any ideas other than putting in a for loop?

share|improve this question

6 Answers 6

up vote 5 down vote accepted
dir="/path/to/somewhere/interesting"
saveIFS=$IFS
IFS='/'
parts=($dir)
IFS=$saveIFS
level=${parts[3]}
echo "$level"    # output: somewhere
share|improve this answer
#!/bin/sh
ancestor() {
  local n=${1:-1}
  (for ((; n != 0; n--)); do cd $(dirname ${PWD}); done; pwd)
}

Usage:

 $ pwd
 /home/nix/a/b/c/d/e/f/g

 $ ancestor 3
 /home/nix/a/b/c/d
share|improve this answer

If you're OK with including a Perl command:

$ pwd
/u1/myuser/dir3/dir4/dir5/dir6/dir7

The first command lists the directory containing first N (in my case 5) directories

$ perl-e 'use File::Spec; \
          my @dirs = File::Spec->splitdir( \
             File::Spec->rel2abs( File::Spec->curdir() ) ); \
          my @dirs2=@dirs[0..5]; print File::Spec->catdir(@dirs2) . "\n";'
/u1/myuser/dir3/dir4/dir5

The second command lists the directory N levels up (in my case 5) directories (I think you wanted the latter).

$ perl -e 'use File::Spec; \
           my @dirs = File::Spec->splitdir( \
              File::Spec->rel2abs( File::Spec->curdir() ) ); \
           my @dirs2=@dirs[0..$#dir-5]; print File::Spec->catdir(@dirs2)."\n";'
/u1/myuser

To use it in your bash script, of course:

D=$(perl -e 'use File::Spec; \
           my @dirs = File::Spec->splitdir( \
              File::Spec->rel2abs( File::Spec->curdir() ) ); \
           my @dirs2=@dirs[0..$#dir-5]; print File::Spec->catdir(@dirs2)."\n";')
share|improve this answer
    
Thank you for your answer. I am not familiar with perl. Any alternatives using awk, sed would be greatly appreciated. –  Michael Aug 27 '10 at 16:03
    
@Michael - no, you can't do that in awk or sed - the logic is encapsulated in Perl File::Spec library and the array slice syntax (@dirs2=@dirs[0..$#dir-5]). However, you don't need to know perl to use this answer - just copy/paste the last line into your shell script as-is (after testing of course) and change "5" to your desired depth. –  DVK Aug 27 '10 at 16:22

Any ideas other than putting in a for loop?

In shells, you can't avoid the loop, because traditionally they do not support regexp, but glob matching instead. And glob patterns do not support the any sort of repeat counters.

And BTW, simplest way is to do it in shell is: echo $(cd $PWD/../.. && echo $PWD) where the /../.. makes it strip two levels.

With tiny bit of Perl that would be:

perl -e '$ENV{PWD} =~ m@^(.*)(/[^/]+){2}$@ && print $1,"\n"'

The {2} in the Perl's regular expression is the number of directory entries to strip. Or making it configurable:

N=2
perl -e '$ENV{PWD} =~ m@^(.*)(/[^/]+){'$N'}$@ && print $1,"\n"'

One can also use Perl's split(), join() and splice() for the purpose, e.g.:

perl -e '@a=split("/", $ENV{PWD}); print join("/", splice(@a, 0, -2)),"\n"'

where -2 says that from the path the last two entries has to be removed.

share|improve this answer

Two levels above the script directory:

echo "$(readlink -f -- "$(dirname -- "$0")/../..")"

All the quoting and -- are to avoid problems with tricky paths.

share|improve this answer

This method uses the actual full path to the perl script itself ... TIMTOWTDI You could just easily replace the $RunDir with the path you would like to start with ...

        #resolve the run dir where this scripts is placed
        $0 =~ m/^(.*)(\\|\/)(.*)\.([a-z]*)/; 
        $RunDir = $1 ; 
        #change the \'s to /'s if we are on Windows
        $RunDir =~s/\\/\//gi ; 
        my @DirParts = split ('/' , $RunDir) ; 
        for (my $count=0; $count < 4; $count++) {   pop @DirParts ;     }

        $confHolder->{'ProductBaseDir'} = $ProductBaseDir ; 
share|improve this answer

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.