This question already has an answer here:

I have a bash script that needs to know its full path. I'm trying to find a broadly-compatible way of doing that without ending up with relative or funky-looking paths. I only need to support bash, not sh, csh, etc.

What I've found so far:

  1. The accepted answer to "Getting the source directory of a Bash script from within" addresses getting the path of the script via dirname $0, which is fine, but that may return a relative path (like .), which is a problem if you want to change directories in the script and have the path still point to the script's directory. Still, dirname will be part of the puzzle.

  2. The accepted answer to "Bash script absolute path with OSX" (OS X specific, but the answer works regardless) gives a function that will test to see if $0 looks relative and if so will pre-pend $PWD to it. But the result can still have relative bits in it (although overall it's absolute) — for instance, if the script is t in the directory /usr/bin and you're in /usr and you type bin/../bin/t to run it (yes, that's convoluted), you end up with /usr/bin/../bin as the script's directory path. Which works, but...

  3. The readlink solution on this page, which looks like this:

    # Absolute path to this script. /home/user/bin/foo.sh
    SCRIPT=$(readlink -f $0)
    # Absolute path this script is in. /home/user/bin
    SCRIPTPATH=`dirname $SCRIPT`
    

    But readlink isn't POSIX and apparently the solution relies on GNU's readlink where BSD's won't work for some reason (I don't have access to a BSD-like system to check).

So, various ways of doing it, but they all have their caveats.

What would be a better way? Where "better" means:

  • Gives me the absolute path.
  • Takes out funky bits even when invoked in a convoluted way (see comment on #2 above). (E.g., at least moderately canonicalizes the path.)
  • Relies only on bash-isms or things that are almost certain to be on most popular flavors of *nix systems (GNU/Linux, BSD and BSD-like systems like OS X, etc.).
  • Avoids calling external programs if possible (e.g., prefers bash built-ins).
  • (Updated, thanks for the heads up, wich) Doesn't have to resolve symlinks (in fact, I'd kind of prefer it left them alone, but that's not a requirement).

marked as duplicate by T.J. Crowder, tripleee bash Jan 13 '17 at 9:12

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

  • 11
    Please see BashFAQ/028. – Dennis Williamson Jan 23 '11 at 15:11
  • 1
    The link in solution #3 above is dead. Anyone have an updated one? – the Tin Man Jun 4 '14 at 18:12
  • 1
    $(readlink -f $0) - doesn't work on Mac OS 10.9.2 – Bogdan Nechyporenko Oct 24 '14 at 19:39
  • use GNU readlink via homebrew to replace the BSD one – dragonxlwang Apr 1 '16 at 16:49
  • 1
    (1.) the link you give in your own question has about 10x question-upvotes, 10x favorites, >15x answer-upvotes. (2.) Your summary is somewhat disingenious. (The link you gave has a first revision answer of "DIRECTORY=$(cd dirname $0 && pwd)" ... which does not match your summary "getting the path of the script via dirname $0"and does not as you say "return a relative path".) – Trevor Boyd Smith Jul 21 '16 at 14:24

23 Answers 23

up vote 411 down vote accepted

Here's what I've come up with (edit: plus some tweaks provided by sfstewman, levigroker, Kyle Strand, and Rob Kennedy), that seems to mostly fit my "better" criteria:

SCRIPTPATH="$( cd "$(dirname "$0")" ; pwd -P )"

That SCRIPTPATH line seems particularly roundabout, but we need it rather than SCRIPTPATH=`pwd` in order to properly handle spaces and symlinks.

Note also that esoteric situations, such as executing a script that isn't coming from a file in an accessible file system at all (which is perfectly possible), is not catered to there (or in any of the other answers I've seen).

  • still no way to tell what the name of the file itself is though ? – quickshiftin Apr 20 '12 at 4:49
  • 6
    This does not work if the script is in a directory from the $PATH and you call it bash scriptname. In such a case $0 does not contain any path, just scriptname. – pabouk Jun 15 '15 at 10:40
  • I agree with @pabouk, I am launching my shell script from Python and this SCRIPTPATH="$( cd "$(dirname "$0")" ; pwd -P )" is returning me nothing – Alexis.Rolland Apr 14 at 2:47
  • -1 (please don't take it personnaly, it is just so that the real answer cat maybe get closer to the top): I used to do a similar thing (I used: "$(cd -P "$(dirname "$0")" && pwd)" until today, but Andrew Norrie's answer covers more cases (ie : PATH="/some/path:$PATH" ; bash "script_in_path" : will only work with his answer, not with yours (as $0 contains only "script_in_path" and no indication of where (in $PATH) bash found it). correct is : ABSOLUTE_PATH="$(cd "$(dirname "${BASH_SOURCE[0]}")" && pwd)/$(basename "${BASH_SOURCE[0]}")" (ie, @andrew-norrie 's answer: covers all cases, imo) – Olivier Dulac Apr 18 at 12:10
  • 1
    I would prefer if you used dirname "${BASH_SOURCE[0]}" rather than dirname "$0" for added support for sourced scripts. – Egg Jul 25 at 10:18

I'm surprised that the realpath command hasn't been mentioned here. My understanding is that it is widely portable / ported.

Your initial solution becomes:

SCRIPT=`realpath $0`
SCRIPTPATH=`dirname $SCRIPT`

And to leave symbolic links unresolved per your preference:

SCRIPT=`realpath -s $0`
SCRIPTPATH=`dirname $SCRIPT`
  • 26
    I just ran which realpath on Ubuntu 12.04, and it returned nothing. I was able to sudo apt-get install realpath, and now it's there, but this is something to consider if you want to include this in a script that "just works" for anyone. – bolinfest Oct 5 '12 at 16:54
  • 25
    OSX 10.8 no any realpath – idonnie Mar 15 '13 at 12:55
  • 8
    Using realpath, and even shorter: SCRIPT_PATH=$(dirname $(realpath -s $0)) – GuySoft Jul 8 '13 at 21:28
  • 11
    realpath is part of coreutils project. It's ridiculous Ubuntu repackages a part of coreutils into a separate package. – Nowaker Sep 27 '13 at 15:12
  • 5
    Many if not most of these answers are buggy when given filenames with whitespace. SCRIPT_PATH=$(dirname "$(realpath -s "$0")") is a fixed version of GuySoft's answer, though using $BASH_SOURCE would be more reliable still than $0 (and this depends on having realpath, a non-POSIX tool, installed). – Charles Duffy Jun 12 '15 at 23:09

The simplest way that I have found to get a full canonical path in bash is to use cd and pwd:

ABSOLUTE_PATH="$(cd "$(dirname "${BASH_SOURCE[0]}")" && pwd)/$(basename "${BASH_SOURCE[0]}")"

Using ${BASH_SOURCE[0]} instead of $0 produces the same behavior regardless of whether the script is invoked as <name> or source <name>

  • 3
    This doesn't seem to work if the originally-specified file is a symlink. I think you need to use something like readlink (or ls) in a loop, to make sure you've found a final non-symlink file. I've been on the lookout for something more concise, but in any case you can find the last version of the solution I used in the Android codebase, under dalvik/dx/etc/dx. – danfuzz Mar 20 '12 at 21:02
  • @danfuzz see Dennis Williamson comment, regarding using -P for pwd. It should do what you want. – over_optimistic Apr 17 '12 at 18:57
  • 5
    @over_optimistic I'm not convinced that -P helps here: If $0 names a symlink, then cd $(dirname $0); pwd -P still just tells you what directory the symlink is in and not the physical directory where the actual script resides. You really need to use something like readlink on the script name, except that readlink is not actually POSIX and it does seem to vary in practice between OSes. – danfuzz Apr 20 '12 at 21:52
  • @danfuzz: linux.die.net/man/8/symlinks looks like a good thing to use, to both have "cleaner" symlinks, and find their full path equivalent – Olivier Dulac Apr 23 '14 at 9:33
  • 5
    +1 works nicely in all reasonable scenarios on a mac. No external dependencies and executes in 1 line. I use it to get the script's directory like so: SCRIPTPATH=$(cd `dirname "${BASH_SOURCE[0]}"` && pwd) – Richard Hodges May 25 '14 at 16:02

I just had to revisit this issue today and found https://stackoverflow.com/a/246128/1034080. It elaborates on a solution that I've used in the past as well.

DIR="$( cd "$( dirname "${BASH_SOURCE[0]}" )" && pwd )"

There's more variants at the linked answer, e.g. for the case where the script itself is a symlink.

Get absolute path of shell script

Does not use -f option in readlink, therefore should work in bsd/mac-osx

Supports

  • source ./script (When called by the . dot operator)
  • Absolute path /path/to/script
  • Relative path like ./script
  • /path/dir1/../dir2/dir3/../script
  • When called from symlink
  • When symlink is nested eg) foo->dir1/dir2/bar bar->./../doe doe->script
  • When caller changes the scripts name

I am looking for corner cases where this code does not work. Please let me know.

Code

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

Known issuse

Script must be on disk somewhere, let it be over a network. If you try to run this script from a PIPE it will not work

wget -o /dev/null -O - http://host.domain/dir/script.sh |bash

Technically speaking, it is undefined.
Practically speaking, there is no sane way to detect this. (co-process can not access env of parent)

  • 2
    As stated elsewhere, and it's not quite an edge case I think, but readlink -f is not a standard parameter and very well not be available, e.g. on my BSD. – conny Nov 21 '12 at 13:25
  • I ran into a corner case where this didn't work. I had a script under ~/scripts/myscript and a symlink at ~/bin/myscript which pointed to ../scripts/myscript. Running ~/bin/myscript from ~/ caused it to think the script's location was ~/. The solution here worked fine, which looks pretty similar to your solution – redbmk Feb 13 '15 at 19:30

What about using:

SCRIPT_PATH=$(dirname `which $0`)

which prints to stdout the full path of the executable that would have been executed when the passed argument had been entered at the shell prompt (which is what $0 contains)

dirname strips the non-directory suffix from file name

Hence what you end up with is the full path to the script, no matter if the path was specified or not.

  • 1
    Simple, and that works for me. Nice solution. – Jeremy Banks Oct 3 '13 at 20:55
  • 5
    dirname ./myscript returns .. This might not be what you want. – Bobby Norton May 22 '14 at 0:09
  • @BobbyNorton Yes because the non-directory suffix at that point is simply .. However, if you run which on the script name and store it in a variable, such as a=$(which ./myscript), it will return the full path, such as /tmp/myscript, which if passed to dirname will return the path. Interestingly if you run which ./myscript and not assign it to a variable, it simply returns ./myscript. I suspect this is because when assigning it to a variable it executes in another shell and passes the complete path to bash at that time. – Matt May 24 '14 at 0:32
  • 3
    Unfortunately, this doesn't appear to work on OS X. It would be a nice solution if it did! – Aron Ahmadia Mar 24 '15 at 20:34
  • 2
    @Matt I would not use the 'which' command unless the command is in the current path. Which only searches for the command in the path. If your script is not in the path it will never be found. – muman Mar 15 '16 at 22:39

As realpath is not installed per default on my Linux System the following works for me:

SCRIPT="$(readlink --canonicalize-existing "$0")"
SCRIPTPATH="$(dirname "$SCRIPT")"

$SCRIPT will contain the real file path to the script and $SCRIPTPATH the real path of the directory containing the script.

Before using this read the comments of this answer.

  • 2
    The OP already noted this solution and disregarded it for not being POSIX -- but this is nice and tidy for GNU-based systems at least. The key feature of this is that it resolves symbolic links. – nobar May 17 '13 at 17:42

Answering this question very late, but I use:

SCRIPT=$( readlink -m $( type -p $0 ))      # Full path to script
BASE_DIR=`dirname ${SCRIPT}`                # Directory script is run in
NAME=`basename ${SCRIPT}`                   # Actual name of script even if linked
  • The full path provided is exactly what I was looking for. Compact, efficient, reliable. Well done! – lucaferrario Oct 4 '16 at 12:43
  • Not all implementation of readlink have -m I believe the OP is looking for a solution that does not depend on GNU readlink extended functionality. – ecerulm Aug 10 '17 at 9:37

We have placed our own product realpath-lib on GitHub for free and unencumbered community use.

Shameless plug but with this Bash library you can:

get_realpath <absolute|relative|symlink|local file>

This function is the core of the library:

function get_realpath() {

if [[ -f "$1" ]]
then 
    # file *must* exist
    if cd "$(echo "${1%/*}")" &>/dev/null
    then 
        # file *may* not be local
        # exception is ./file.ext
        # try 'cd .; cd -;' *works!*
        local tmppwd="$PWD"
        cd - &>/dev/null
    else 
        # file *must* be local
        local tmppwd="$PWD"
    fi
else 
    # file *cannot* exist
    return 1 # failure
fi

# reassemble realpath
echo "$tmppwd"/"${1##*/}"
return 0 # success

}

It doesn't require any external dependencies, just Bash 4+. Also contains functions to get_dirname, get_filename, get_stemname and validate_path validate_realpath. It's free, clean, simple and well documented, so it can be used for learning purposes too, and no doubt can be improved. Try it across platforms.

Update: After some review and testing we have replaced the above function with something that achieves the same result (without using dirname, only pure Bash) but with better efficiency:

function get_realpath() {

    [[ ! -f "$1" ]] && return 1 # failure : file does not exist.
    [[ -n "$no_symlinks" ]] && local pwdp='pwd -P' || local pwdp='pwd' # do symlinks.
    echo "$( cd "$( echo "${1%/*}" )" 2>/dev/null; $pwdp )"/"${1##*/}" # echo result.
    return 0 # success

}

This also includes an environment setting no_symlinks that provides the ability to resolve symlinks to the physical system. By default it keeps symlinks intact.

  • Thank you Ben. New to the site (as a contributor) and I have amended the entry as required. I didn't think that there were any commercial issues here since we are giving the code away without restriction. We also see it as a good learning tool and have documented it thoroughly for that purpose. – AsymLabs Oct 2 '13 at 19:52
  • Thanks @Asym; much appreciated. – Ben Oct 4 '13 at 22:45
  • 1
    Unfortunately, the symlink resolution in the updated get_realpath doesn't work for the last (basename) part of the input path, only the earlier (dirname) parts. I opened an issue for this in the Github repo. Hopefully there is a solution for this so that we can get a pure bash equivalent of readlink -f. github.com/AsymLabs/realpath-lib/issues/1 – Mikael Auno Nov 6 '13 at 12:01
  • @Mikael Auno You have supplied an excellent test case. We've picked up the discussion at github and will have look at it. – AsymLabs Nov 7 '13 at 18:14

You may try to define the following variable:

CWD="$(cd -P -- "$(dirname -- "$0")" && pwd -P)"

or you can try the following function in bash:

realpath () {
  [[ $1 = /* ]] && echo "$1" || echo "$PWD/${1#./}"
}

This function takes 1 argument. If argument has already absolute path, print it as it is, otherwise print $PWD variable + filename argument (without ./ prefix).

Related:

  • Neither of your methods can follow recursive symbolic links – Meow Dec 19 '14 at 14:14

sh compliant way:

SCRIPT_HOME=`dirname $0 | while read a; do cd $a && pwd && break; done`
  • Why do we need while read a part? Why don't just cd $(dirname $a) && pwd? – Gill Bates Dec 25 '16 at 12:04
  • 2
    Because $( ... ) won't work in no-bash shell. I saw bad script that is using $( ... ) expression and begins #!/bin/sh manytimes. I recommend to write #!/bin/bash at beginning or stop using $( ... ) expression. This example for 1st recommendation. – Haruo Kinoshita Dec 26 '16 at 15:53
  • Sorry for mistake. "This example is for 2nd recommendation" – Haruo Kinoshita Dec 26 '16 at 15:55

simply: BASEDIR=$(readlink -f $0 | xargs dirname)

no fancy operators

HIH.

Considering this issue again: there is a very popular solution that is referenced within this thread that has its origin here:

DIR="$( cd "$( dirname "${BASH_SOURCE[0]}" )" && pwd )"

I have stayed away from this solution because of the use of dirname - it can present cross-platform difficulties, particularly if a script needs to be locked down for security reasons. But as a pure Bash alternative, how about using:

DIR="$( cd "$( echo "${BASH_SOURCE[0]%/*}" )" && pwd )"

Would this be an option?

  • BASH_SOURCE seems to be necessary for running the script using PATH=/path/to/your/script:$PATH yourscript.sh. Unfortunately, this needs bash – Daniel Alder Jan 27 '15 at 9:37

Easy to read? alternative. Ignores symlinks

#!/bin/bash
currentDir=$(
  cd $(dirname "$0")
  pwd
) 

echo -n "current "
pwd
echo script $currentDir 
  • I get bash: currentDir: command not found – muon Sep 19 '16 at 15:40
  • 1
    This will only resolve the symlink of directories. It will fail to resolve the symlink for a path. Consider when $0 is a link to a script in the same directory. – gesell Oct 21 '16 at 12:49

Perhaps the accepted answer to the following question may be of help.

How can I get the behavior of GNU's readlink -f on a Mac?

Given that you just want to canonicalize the name you get from concatenating $PWD and $0 (assuming that $0 is not absolute to begin with) Just use a series of regex replacements along the line of abs_dir=${abs_dir//\/.\//\/} and such.

Yes, I know it looks horrible but it'll work and is pure bash.

  • Thanks. Re the linked question, it still relies on changing the directory and using pwd, which is what I find clunky about my solution. The regex is interesting. I can't help but worry about edge cases, though. – T.J. Crowder Jan 23 '11 at 13:41
  • Yes, it would need some good testing, but as far as I'm aware there is no portable one-shot solution that will canonicalize a name for you. – wich Jan 23 '11 at 13:45
  • Oh and of course the regexing will only work on *nix, it'll bomb on a cygwin environment or such. – wich Jan 23 '11 at 13:48

The accepted solution has the inconvenient (for me) to not be "source-able":
if you call it from a "source ../../yourScript", $0 would be "bash"!

The following function (for bash >= 3.0) gives me the right path, however the script might be called (directly or through source, with an absolute or a relative path):
(by "right path", I mean the full absolute path of the script being called, even when called from another path, directly or with "source")

#!/bin/bash
echo $0 executed

function bashscriptpath() {
  local _sp=$1
  local ascript="$0"
  local asp="$(dirname $0)"
  #echo "b1 asp '$asp', b1 ascript '$ascript'"
  if [[ "$asp" == "." && "$ascript" != "bash" && "$ascript" != "./.bashrc" ]] ; then asp="${BASH_SOURCE[0]%/*}"
  elif [[ "$asp" == "." && "$ascript" == "./.bashrc" ]] ; then asp=$(pwd)
  else
    if [[ "$ascript" == "bash" ]] ; then
      ascript=${BASH_SOURCE[0]}
      asp="$(dirname $ascript)"
    fi  
    #echo "b2 asp '$asp', b2 ascript '$ascript'"
    if [[ "${ascript#/}" != "$ascript" ]]; then asp=$asp ;
    elif [[ "${ascript#../}" != "$ascript" ]]; then
      asp=$(pwd)
      while [[ "${ascript#../}" != "$ascript" ]]; do
        asp=${asp%/*}
        ascript=${ascript#../}
      done
    elif [[ "${ascript#*/}" != "$ascript" ]];  then
      if [[ "$asp" == "." ]] ; then asp=$(pwd) ; else asp="$(pwd)/${asp}"; fi
    fi  
  fi  
  eval $_sp="'$asp'"
}

bashscriptpath H
export H=${H}

The key is to detect the "source" case and to use ${BASH_SOURCE[0]} to get back the actual script.

If we use Bash I believe this is the most convenient way as it doesn't require calls to any external commands:

THIS_PATH="${BASH_SOURCE[0]}";
THIS_DIR=$(dirname $THIS_PATH)
  • $(dirname calls dirname(1). – bukzor Jan 1 '15 at 1:53

Try this:

cd $(dirname $([ -L $0 ] && readlink -f $0 || echo $0))
  • readlink does not work like this on BSD (and hence on OS X) and the question was referring to an alternative. – Christian Fries May 26 '15 at 19:38
  • On Linux CentOS 7, this works fine when the script is executed with the full path (/home/me/script.sh) but returns just . when the script is executed with sh script.sh or ./script.sh – Dr. Gianluigi Zane Zanettini Aug 13 '15 at 16:17

Just for the hell of it I've done a bit of hacking on a script that does things purely textually, purely in bash. I hope I caught all the edge cases. Note that the ${var//pat/repl} that I mentioned in the other answer doesn't work since you can't make it replace only the shortest possible match, which is a problem for replacing /foo/../ as e.g. /*/../ will take everything before it, not just a single entry. And since these patterns aren't really regexes I don't see how that can be made to work. So here's the nicely convoluted solution I came up with, enjoy. ;)

By the way, let me know if you find any unhandled edge cases.

#!/bin/bash

canonicalize_path() {
  local path="$1"
  OIFS="$IFS"
  IFS=$'/'
  read -a parts < <(echo "$path")
  IFS="$OIFS"

  local i=${#parts[@]}
  local j=0
  local back=0
  local -a rev_canon
  while (($i > 0)); do
    ((i--))
    case "${parts[$i]}" in
      ""|.) ;;
      ..) ((back++));;
      *) if (($back > 0)); then
           ((back--))
         else
           rev_canon[j]="${parts[$i]}"
           ((j++))
         fi;;
    esac
  done
  while (($j > 0)); do
    ((j--))
    echo -n "/${rev_canon[$j]}"
  done
  echo
}

canonicalize_path "/.././..////../foo/./bar//foo/bar/.././bar/../foo/bar/./../..//../foo///bar/"

I have used the following approach successfully for a while (not on OSX though) and it only uses shell built-in and handles the 'source foobar.sh' case as far as I have seen.

One issue with the (hastly put together) example code below is that the function uses $PWD which may or may not be correct at the time of the function call. So that needs to be handled.

#!/bin/bash

function canonical_path() {
  # Handle realtive vs absolute path
  [ ${1:0:1} == '/' ] && x=$1 || x=$PWD/$1
  # Change to dirname of x
  cd ${x%/*}
  # Combine new pwd with basename of x
  echo $(pwd -P)/${x##*/}
  cd $OLDPWD
}

echo $(canonical_path "${BASH_SOURCE[0]}")

type [
type cd
type echo
type pwd

Yet another way to do this:

shopt -s extglob

selfpath=$0
selfdir=${selfpath%%+([!/])}

while [[ -L "$selfpath" ]];do
  selfpath=$(readlink "$selfpath")
  if [[ ! "$selfpath" =~ ^/ ]];then
    selfpath=${selfdir}${selfpath}
  fi
  selfdir=${selfpath%%+([!/])}
done

echo $selfpath $selfdir

One liner

`dirname $(realpath $0)`
  • This seems to work for me, I think it may have been downvoted for not having any additional commentary that explains how it works. – halfer Jun 13 '17 at 17:22
  • FWIW I like the conciseness of this solution and it works out of box on Ubuntu 16.04 LTS. – sxc731 Sep 28 '17 at 3:10
  • 2
    realpath doesn't exist on Mac OS – njh Oct 9 '17 at 16:19

More simply, this is what works for me:

MY_DIR=`dirname $0`
source $MY_DIR/_inc_db.sh

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