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How do I get the path of the directory in which a Bash script is located FROM that Bash script?

For instance, let's say I want to use a Bash script as a launcher for another application. I want to change the working directory to the one where the Bash script is located, so I can operate on the files in that directory, like so:

$ ./application
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20  
None of the current solutions work if there are any newlines at the end of the directory name - They will be stripped by the command substitution. To work around this you can append a non-newline character inside the command substitution - DIR="$( cd "$( dirname "${BASH_SOURCE[0]}" )" && pwd && echo x)" - and remove it without a command substitution - DIR="${DIR%x}". –  l0b0 Sep 24 '12 at 12:15
6  
@l0b0 Can you suggest a real world situation where a directory would have a newline at the end? I think that would tend to be rather unhelpful. Typing it in the shell sounds very difficult, and I can't imagine how it would help users understand the purpose of the directory (which I view as the reason for naming). –  jpmc26 Mar 27 '13 at 23:02
30  
@jpmc26 There are two very common situations: Accidents and sabotage. A script shouldn't fail in unpredictable ways just because someone, somewhere, did a mkdir $'\n'. –  l0b0 Mar 28 '13 at 8:14
14  
Just FYI: in Windows cmd, it's %~dp0. –  SiPlus May 7 '13 at 14:13

43 Answers 43

up vote 2361 down vote accepted
DIR=$( cd "$( dirname "${BASH_SOURCE[0]}" )" && pwd )

Is a useful one-liner which will give you the full directory name of the script no matter where it is being called from

These will work as long as the last component of the path used to find the script is not a symlink (directory links are OK). If you want to also resolve any links to the script itself, you need a multi-line solution:

SOURCE="${BASH_SOURCE[0]}"
while [ -h "$SOURCE" ]; do # resolve $SOURCE until the file is no longer a symlink
  DIR="$( cd -P "$( dirname "$SOURCE" )" && pwd )"
  SOURCE="$(readlink "$SOURCE")"
  [[ $SOURCE != /* ]] && SOURCE="$DIR/$SOURCE" # if $SOURCE was a relative symlink, we need to resolve it relative to the path where the symlink file was located
done
DIR="$( cd -P "$( dirname "$SOURCE" )" && pwd )"

This last one will work with any combination of aliases, source, bash -c, symlinks, etc.

Beware: if you cd to a different directory before running this snippet, the result may be incorrect! Also, watch out for $CDPATH gotchas.

To understand how it works, try running this more verbose form:

#!/bin/bash

SOURCE="${BASH_SOURCE[0]}"
while [ -h "$SOURCE" ]; do # resolve $SOURCE until the file is no longer a symlink
  TARGET="$(readlink "$SOURCE")"
  if [[ $SOURCE == /* ]]; then
    echo "SOURCE '$SOURCE' is an absolute symlink to '$TARGET'"
    SOURCE="$TARGET"
  else
    DIR="$( dirname "$SOURCE" )"
    echo "SOURCE '$SOURCE' is a relative symlink to '$TARGET' (relative to '$DIR')"
    SOURCE="$DIR/$TARGET" # if $SOURCE was a relative symlink, we need to resolve it relative to the path where the symlink file was located
  fi
done
echo "SOURCE is '$SOURCE'"
RDIR="$( dirname "$SOURCE" )"
DIR="$( cd -P "$( dirname "$SOURCE" )" && pwd )"
if [ "$DIR" != "$RDIR" ]; then
  echo "DIR '$RDIR' resolves to '$DIR'"
fi
echo "DIR is '$DIR'"

And it will print something like:

SOURCE './scriptdir.sh' is a relative symlink to 'sym2/scriptdir.sh' (relative to '.')
SOURCE is './sym2/scriptdir.sh'
DIR './sym2' resolves to '/home/ubuntu/dotfiles/fo fo/real/real1/real2'
DIR is '/home/ubuntu/dotfiles/fo fo/real/real1/real2'
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37  
The quotes are a good idea, but the ones around the assignment are unnecessary, i.e. you can get away with: DIR=$( cd "$( dirname "$0" )" && pwd ) –  wds Aug 25 '11 at 9:48
11  
You can fuse this approach with the answer by user25866 to arrive at a solution that works with source <script> and bash <script>: DIR="$(cd -P "$(dirname "${BASH_SOURCE[0]}")" && pwd)". –  Dan Moulding Oct 19 '11 at 15:54
4  
To deal with a relative symlink, I found I needed DIR="$( cd "$( dirname "${BASH_SOURCE[0]}" )" && cd -P "$( dirname "$SOURCE" )" && pwd )" –  Joseph Wright Apr 15 '12 at 19:35
4  
Sometimes cd prints something to STDOUT! E.g., if your $CDPATH has .. To cover this case, use DIR="$( cd "$( dirname "${BASH_SOURCE[0]}" )" > /dev/null && pwd )" –  user716468 Feb 3 '13 at 2:33
10  
Wait, so what is the final command to use? –  Xeoncross Jun 5 '14 at 14:19

Use dirname:

#!/bin/bash
echo "The script you are running has basename `basename $0`, dirname `dirname $0`"
echo "The present working directory is `pwd`"

using pwd alone will not work if you are not running the script from the directory it is contained in.

[matt@server1 ~]$ pwd
/home/matt
[matt@server1 ~]$ ./test2.sh
The script you are running has basename test2.sh, dirname .
The present working directory is /home/matt
[matt@server1 ~]$ cd /tmp
[matt@server1 tmp]$ ~/test2.sh
The script you are running has basename test2.sh, dirname /home/matt
The present working directory is /tmp
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13  
For portability beyond bash, $0 may not always be enough. You may need to substitute "type -p $0" to make this work if the command was found on the path. –  Darron Oct 23 '08 at 20:15
3  
@Darron: you can only use type -p if the script is executable. This can also open a subtle hole if the script is executed using bash test2.sh and there is another script with the same name executable somewhere else. –  D.Shawley Feb 5 '10 at 12:18
26  
@Darron: but since the question is tagged bash and the hash-bang line explicitly mentions /bin/bash I'd say it's pretty safe to depend on bashisms. –  Joachim Sauer Jun 11 '10 at 12:56
10  
+1, but the problem with using dirname $0 is that if the directory is the current directory, you'll get .. That's fine unless you're going to change directories in the script and expect to use the path you got from dirname $0 as though it were absolute. To get the absolute path: pushd `dirname $0` > /dev/null, SCRIPTPATH=`pwd`, popd > /dev/null: pastie.org/1489386 (But surely there's a better way to expand that path?) –  T.J. Crowder Jan 23 '11 at 10:30
5  
I always thought it was print working directory. –  Brian Gordon Aug 14 '12 at 14:39

You can use $BASH_SOURCE

#!/bin/bash

scriptdir=`dirname "$BASH_SOURCE"`

Note that you need to use #!/bin/bash and not #!/bin/sh since its a bash extension

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5  
When I do ./foo/script, then $(dirname $BASH_SOURCE) is ./foo. –  Till Oct 25 '10 at 17:06

I don't think this is as easy as others have made it out to be. pwd doesn't work, as the current dir is not necessarily the directory with the script. $0 doesn't always have the info either. Consider the following three ways to invoke a script.

./script

/usr/bin/script

script

In the first and third ways $0 doesn't have the full path info. In the second and third, pwd do not work. The only way to get the dir in the third way would be to run through the path and find the file with the correct match. Basically the code would have to redo what the OS does.

One way to do what you are asking would be to just hardcode the data in the /usr/share dir, and reference it by full path. Data shoudn't be in the /usr/bin dir anyway, so this is probably the thing to do.

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3  
-1 This is simply not correct. In most cases, a script can easily figure out where it is and how it was invoked. –  Aaron Digulla Nov 4 '13 at 13:44
#!/bin/sh
PRG="$0"

# need this for relative symlinks
while [ -h "$PRG" ] ; do
   PRG=`readlink "$PRG"`
done

scriptdir=`dirname "$PRG"`
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pwd can be used to find the current working directory, and dirname to find the directory of a particular file (command that was run, is $0, so dirname $0 should give you the directory of the current script).

However, dirname gives precisely the directory portion of the filename, which more likely then not is going to be relative to the current working directory. If your script needs to change directory for some reason, then the output from dirname becomes meaningless.

I suggest the following:

#!/bin/bash

reldir=`dirname $0`
cd $reldir
directory=`pwd`

echo "Directory is $directory"

This way, you get an absolute, rather then relative directory.

Since the script will be run in a seperate bash instance, there is no need to restore the working directory afterwards, but if you do want to change back in your script for some reason, you can easily assign the value of pwd to a variable before you change directory, for future use.

Although just

cd `dirname $0`

solves the specific scenario in the question, I find having the absolute path to more more useful generally.

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2  
You can do it all in one line like this: DIRECTORY=$(cd dirname $0 && pwd) –  dogbane Oct 29 '08 at 8:38

If $0 is an absolute path then you are done, and an alternative to dirname is just iterating through the paths defined in $PATH. The cd trick to make the path absolute can be combined with pushd/popd. Another option for an absolute path is to prefix the path with pwd if the path from dirname/basename is relative. Keep in mind that $0 can be supplied by the user and hence should not be trusted.

/Allan

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This is Linux specific, but you could use:

SELF=$(readlink /proc/$$/fd/255)
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SCRIPT_PATH="${BASH_SOURCE[0]}";
if ([ -h "${SCRIPT_PATH}" ]) then
  while([ -h "${SCRIPT_PATH}" ]) do SCRIPT_PATH=`readlink "${SCRIPT_PATH}"`; done
fi
pushd . > /dev/null
cd `dirname ${SCRIPT_PATH}` > /dev/null
SCRIPT_PATH=`pwd`;
popd  > /dev/null

Works for all versions,including

  • when called via multple depth soft link,
  • when the file it
  • when script called by command "source" aka . (dot) operator.
  • when arg $0 is modified from caller.
  • "./script"
  • "/full/path/to/script"
  • "/some/path/../../another/path/script"
  • "./some/folder/script"

Alternatively, if the bash script itself is a relative symlink you want to follow it and return the full path of the linked-to script:

pushd . > /dev/null
SCRIPT_PATH="${BASH_SOURCE[0]}";
if ([ -h "${SCRIPT_PATH}" ]) then
  while([ -h "${SCRIPT_PATH}" ]) do cd `dirname "$SCRIPT_PATH"`; SCRIPT_PATH=`readlink "${SCRIPT_PATH}"`; done
fi
cd `dirname ${SCRIPT_PATH}` > /dev/null
SCRIPT_PATH=`pwd`;
popd  > /dev/null

SCRIPT_PATH is given in full path, no matter how it is called.
Just make sure you locate this at start of the script.

This comment and code Copyleft, selectable license under the GPL2.0 or later or CC-SA 3.0 (CreativeCommons Share Alike) or later. (c) 2008. All rights reserved. No warranty of any kind. You have been warned.
http://www.gnu.org/licenses/gpl-2.0.txt
http://creativecommons.org/licenses/by-sa/3.0/
18eedfe1c99df68dc94d4a94712a71aaa8e1e9e36cacf421b9463dd2bbaa02906d0d6656

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14  
Thanks, I was hoping at least one answer would help with sourced scripts. –  Joshua Swink Oct 29 '08 at 9:02
3  
Nice! Could be made shorter replacing "pushd[...] popd /dev/null" by SCRIPT_PATH=readlink -f $(dirname "${VIRTUAL_ENV}"); –  e-satis Nov 29 '09 at 11:34
1  
This is by far the most "stable" version I've seen. Thank you! –  Tomer Gabel Jan 26 '10 at 8:19
3  
And instead of using pushd ...; would not it be better to use $(cd dirname "${SCRIPT_PATH}" && pwd)? But anyway great script! –  ovanes Aug 18 '10 at 10:16
5  
Isn't the if redundant? while is testing the same thing... –  gatopeich Aug 5 '11 at 13:28

This works in bash-3.2:

path="$( dirname "$( which "$0" )" )"

Here's an example of its usage:

Say you have a ~/bin directory, which is in your $PATH. You have script A inside this directory. It source*s script *~/bin/lib/B. You know where the included script is relative to the original one (the subdirectory lib), but not where it is relative to the user's current directory.

This is solved by the following (inside A):

source "$( dirname "$( which "$0" )" )/lib/B"

It doesn't matter where the user is or how he calls the script, this will always work.

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2  
The point on which is very debatable. type, hash, and other builtins do the same thing better in bash. which is kindof more portable, though it really isn't the same which used in other shells like tcsh, that has it as a builtin. –  BroSlow Jan 13 '14 at 22:30

Short answer:

`dirname $0`

or

$(dirname $0)
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2  
It won't work if you source the script. "source my/script.sh" –  Arunprasad Rajkumar Feb 5 '14 at 7:34

I usually do:

LIBDIR=$(dirname "$(readlink -f "$(type -P $0 || echo $0)")")
source $LIBDIR/lib.sh
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Hmm, if in the path basename & dirname are just not going to cut it and walking the path is hard (what if parent didn't export PATH!). However, the shell has to have an open handle to its script, and in bash the handle is #255.

SELF=`readlink /proc/$$/fd/255`

works for me.

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I want to make sure that the script is running in its directory. So

cd $(dirname $(which $0) )

After this, if you really want to know where the you are running then run the command below.

DIR=$(/usr/bin/pwd)
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This is the only way I've found to tell reliably:

SCRIPT_DIR=$(dirname $(cd "$(dirname "$BASH_SOURCE")"; pwd))
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ME=`type -p $0`
MDIR="${ME%/*}"
WORK_DIR=$(cd $MDIR && pwd)
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The dirname command is the most basic, simply parsing the path up to the filename off of the $0 (script name) variable:

dirname "$0"

But, as matt b pointed out, the path returned is different depending on how the script is called. pwd doesn't do the job because that only tells you what the current directory is, not what directory the script resides in. Additionally, if a symbolic link to a script is executed, you're going to get a (probably relative) path to where the link resides, not the actual script.

Some others have mentioned the readlink command, but at it's simplest, you can use:

dirname "$(readlink -f "$0")"

readlink will resolve the script path to an absolute path from the root of the filesystem. So, any paths containing single or double dots, tildes and/or symbolic links will be resolved to a full path.

Here's a script demonstrating each of these, whatdir.sh:

#!/bin/bash
echo "pwd: `pwd`"
echo "\$0: $0"
echo "basename: `basename $0`"
echo "dirname: `dirname $0`"
echo "dirname/readlink: $(dirname $(readlink -f $0))"

Running this script in my home dir, using a relative path:

>>>$ ./whatdir.sh 
pwd: /Users/phatblat
$0: ./whatdir.sh
basename: whatdir.sh
dirname: .
dirname/readlink: /Users/phatblat

Again, but using the full path to the script:

>>>$ /Users/phatblat/whatdir.sh 
pwd: /Users/phatblat
$0: /Users/phatblat/whatdir.sh
basename: whatdir.sh
dirname: /Users/phatblat
dirname/readlink: /Users/phatblat

Now changing directories:

>>>$ cd /tmp
>>>$ ~/whatdir.sh 
pwd: /tmp
$0: /Users/phatblat/whatdir.sh
basename: whatdir.sh
dirname: /Users/phatblat
dirname/readlink: /Users/phatblat

And finally using a symbolic link to execute the script:

>>>$ ln -s ~/whatdir.sh whatdirlink.sh
>>>$ ./whatdirlink.sh 
pwd: /tmp
$0: ./whatdirlink.sh
basename: whatdirlink.sh
dirname: .
dirname/readlink: /Users/phatblat
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5  
be careful to quote everything to avoid whitespace issues: export SCRIPT_DIR="$(dirname "$(readlink -f "$0")")" –  Catskul Sep 17 '13 at 19:40
function getScriptAbsoluteDir { # fold>>
    # @description used to get the script path
    # @param $1 the script $0 parameter
    local script_invoke_path="$1"
    local cwd=`pwd`

    # absolute path ? if so, the first character is a /
    if test "x${script_invoke_path:0:1}" = 'x/'
    then
        RESULT=`dirname "$script_invoke_path"`
    else
        RESULT=`dirname "$cwd/$script_invoke_path"`
    fi
} # <<fold
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1  
-1: The function keyword isn't available on POSIX shells, and is a needlessly incompatible bash/ksh/&c. extension. Also, if you're on a shell new enough to have that extension, you don't need the test "x[...]" hack. –  Charles Duffy Jun 9 '14 at 3:41

A slight revision to the solution e-satis and 3bcdnlklvc04a pointed out in their answer

SCRIPT_DIR=''
pushd "$(dirname "$(readlink -f "$BASH_SOURCE")")" > /dev/null && {
    SCRIPT_DIR="$PWD"
    popd > /dev/null
}    

This should still work in all the cases they listed.

EDIT: prevent popd after failed pushd, thanks to konsolebox

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I tried every one of these and none of them worked. One was very close but had a tiny bug that broke it badly; they forgot to wrap the path in quotation marks.

Also a lot of people assume you're running the script from a shell so forget when you open a new script it defaults to your home.

Try this directory on for size:

/var/No one/Thought/About Spaces Being/In a Directory/Name/And Here's your file.text

This gets it right regardless how or where you run it.

#!/bin/bash
echo "pwd: `pwd`"
echo "\$0: $0"
echo "basename: `basename "$0"`"
echo "dirname: `dirname "$0"`"

So to make it actually useful here's how to change to the directory of the running script:

cd "`dirname "$0"`"

Hope that helps

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1  
Doesn't work if the script is being sourced from another script. –  reinierpost Mar 28 '14 at 13:12

None of these worked for a bash script launched by Finder in OS X - I ended up using:

SCRIPT_LOC="`ps -p $$ | sed /PID/d | sed s:.*/Network/:/Network/: |
sed s:.*/Volumes/:/Volumes/:`"

Not pretty, but it gets the job done.

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Use a combination of readlink to canonicalize the name (with a bonus of following it back to its source if it is a symlink) and dirname to extract the directory name:

script="`readlink -f "${BASH_SOURCE[0]}"`"
dir="`dirname "$script"`"
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This gets the current working directory on Mac OS X 10.6.6:

DIR=$(cd "$(dirname "$0")"; pwd)
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It is not possible to find the location reliably in 100% of all cases!

Greg Wooledge ('greycat' on freenode #bash IRC channel) explains this very thoroughly in the Bash FAQ at the GreyCatWiki

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$_ is worth mentioning as an alternative to $0. If you're running a script from bash, the accepted answer can be shortened to:

DIR="$( dirname "$_" )"

Note that this has to be the first statement in your script.

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4  
I wish people would comment when downvoting. Is this question downvoted because it's incorrect? Because of a typo? Because the downvoter was having a bad day? Grrr... –  Cody Poll Apr 12 '13 at 14:48
1  
@CodyPoll me too. Still works for me... –  hurrymaplelad Apr 17 '13 at 4:31
2  
It breaks if you source or . the script. In those situations, $_ would contain the last parameter of the last command you ran before the .. $BASH_SOURCE works every time. –  clacke Jan 31 '14 at 14:55

Try using:

real=$(realpath $(dirname $0))
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3  
realpath is not a standard utility. –  Steve Bennett May 13 '13 at 12:06

I would use something like this:

# retrieve the full pathname of the called script
scriptPath=$(which $0)

# check whether the path is a link or not
if [ -L $scriptPath ]; then

    # it is a link then retrieve the target path and get the directory name
    sourceDir=$(dirname $(readlink -f $scriptPath))

else

    # otherwise just get the directory name of the script path
    sourceDir=$(dirname $scriptPath)

fi
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Here is a POSIX compliant one-liner:

SCRIPT_PATH=`dirname "$0"`; SCRIPT_PATH=`eval "cd \"$SCRIPT_PATH\" && pwd"`

# test
echo $SCRIPT_PATH
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protected by NullPoiиteя Jun 10 '13 at 5:06

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