318

The way you would normally include a script is with "source"

eg:

main.sh:

#!/bin/bash

source incl.sh

echo "The main script"

incl.sh:

echo "The included script"

The output of executing "./main.sh" is:

The included script
The main script

... Now, if you attempt to execute that shell script from another location, it can't find the include unless it's in your path.

What's a good way to ensure that your script can find the include script, especially if for instance, the script needs to be portable?

20 Answers 20

204

I tend to make my scripts all be relative to one another. That way I can use dirname:

#!/bin/sh

my_dir="$(dirname "$0")"

"$my_dir/other_script.sh"
  • 3
    This will not work if the script is executed through $PATH. then which $0 will be useful – Hugo Sep 13 '09 at 13:49
  • 34
    There is no reliable way to determine the location of a shell script, see mywiki.wooledge.org/BashFAQ/028 – Philipp Sep 11 '10 at 18:35
  • 11
    @Philipp, The author of that entry is correct, it is complex, and there are gotchas. But it's missing some key points, first, the author assumes a whole lot of things about what you are going to be doing with your bash script. I wouldn't expect a python script to run without it's dependencies either. Bash is a glue language that allows you to do things quickly that would be hard otherwise. When you need your build system to work, pragmatism (And a nice warning about the script not being able to find dependencies) wins. – Aaron H. Oct 29 '10 at 16:54
  • 10
    Just learned about BASH_SOURCE array, and how the first element in this array always points to the current source. – haridsv Feb 11 '14 at 9:31
  • 5
    This will not work if the scripts are different locations. e.g. /home/me/main.sh calls /home/me/test/inc.sh as dirname will return /home/me. sacii answer using BASH_SOURCE is a better solution stackoverflow.com/a/12694189/1000011 – opticyclic May 13 '14 at 19:09
164

I know I am late to the party, but this should work no matter how you start the script and uses builtins exclusively:

DIR="${BASH_SOURCE%/*}"
if [[ ! -d "$DIR" ]]; then DIR="$PWD"; fi
. "$DIR/incl.sh"
. "$DIR/main.sh"

. (dot) command is alias to source, $PWD is the Path for the Working Directory, BASH_SOURCE is an array variable whose members are the source filenames, ${string%substring} strips shortest match of $substring from back of $string

  • 2
    dir=$(dirname $o) could be rewritten to use your ${BASH_SOURCE%/*} implementation, which is simplier. But I'd source as . $dir/incl.sh and . $dir/main.sh. – gustavotkg Oct 2 '12 at 20:46
  • 5
    This is the only answer in the thread that consistently worked for me – Justin May 9 '13 at 8:11
  • 25
    for those lazy to go for the books: . (dot) command is alias to source, $PWD is the Path for the Working Directory, BASH_SOURCE is an array variable whose members are the source filenames, ${string%substring} Strips shortest match of $substring from back of $string – Stefan Rogin Sep 24 '14 at 12:13
  • 3
    @sacii May I know when is the line if [[ ! -d "$DIR" ]]; then DIR="$PWD"; fi needed? I can find a need for it if the commands are being pasted to a bash prompt to run. However, if running inside a script file context, I can't see a need for it... – Johnny Wong Mar 8 '16 at 9:04
  • 2
    It is also worth noting that it works as expected across multiple sources (i mean, if you source a script that sources another in another directory and so on, it still works). – Ciro Costa Apr 7 '16 at 0:57
50

An alternative to:

scriptPath=$(dirname $0)

is:

scriptPath=${0%/*}

.. the advantage being not having the dependence on dirname, which is not a built-in command (and not always available in emulators)

  • 2
    basePath=$(dirname $0) gave me blank value when the containing script file is sourced. – prayagupd May 27 '14 at 22:11
37

If it is in the same directory you can use dirname $0:

#!/bin/bash

source $(dirname $0)/incl.sh

echo "The main script"
  • 2
    Two pitfalls: 1) $0 is ./t.sh and dirname returns .; 2) after cd bin the returned . is not correct. $BASH_SOURCE is no better. – 18446744073709551615 Oct 5 '15 at 9:16
  • another pitfall: try this with spaces in directory name. – Hubert Grzeskowiak Nov 7 '17 at 2:22
  • source "$(dirname $0)/incl.sh" works for those cases – dsm Nov 28 '17 at 0:30
25

I think the best way to do this is to use the Chris Boran's way, BUT you should compute MY_DIR this way:

#!/bin/sh
MY_DIR=$(dirname $(readlink -f $0))
$MY_DIR/other_script.sh

To quote the man pages for readlink:

readlink - display value of a symbolic link

...

  -f, --canonicalize
        canonicalize  by following every symlink in every component of the given 
        name recursively; all but the last component must exist

I've never encountered a use case where MY_DIR is not correctly computed. If you access your script through a symlink in your $PATH it works.

  • Nice and simple solution, and works famously for me in as many variations of script invocation that I could think of. Thanks. – Brian Cline Oct 11 '13 at 23:59
  • Aside from issues with missing quotes, is there any actual use case where you would want to resolve the symbolic links rather than use $0 directly? – l0b0 May 31 '14 at 12:47
  • 1
    @l0b0: Imagine your script is /home/you/script.sh You can cd /home and run your script from there as ./you/script.sh In this case dirname $0 will return ./you and including other script will fail – dr.scre Aug 24 '16 at 15:47
  • Great suggestion, however, I needed to do the following in order for it to read my variables in ` MY_DIR=$(dirname $(readlink -f $0)); source $MY_DIR/incl.sh – Frederick Ollinger Jan 25 '18 at 18:49
19
SRC=$(cd $(dirname "$0"); pwd)
source "${SRC}/incl.sh"
  • 1
    I suspect that you got down voted for the "cd ..." when dirname "$0" should accomplish the same thing... – Aaron H. Nov 19 '10 at 16:38
  • 7
    This code will return absolute path even when script is executed from current directory. $(dirname "$0") alone will return just "." – Max Jun 26 '11 at 12:48
  • 1
    And ./incl.sh resolves to the same path as cd + pwd. So what is the advantage of changing the directory? – l0b0 May 31 '14 at 12:50
18

A combination of the answers to this question provides the most robust solution.

It worked for us in production-grade scripts with great support of dependencies and directory structure:

#!/bin/bash

# Full path of the current script
THIS=`readlink -f "${BASH_SOURCE[0]}" 2>/dev/null||echo $0`

# The directory where current script resides
DIR=`dirname "${THIS}"`

# 'Dot' means 'source', i.e. 'include':
. "$DIR/compile.sh"

The method supports all of these:

  • Spaces in path
  • Links (via readlink)
  • ${BASH_SOURCE[0]} is more robust than $0
  • 1
    THIS=readlink -f "${BASH_SOURCE[0]}" 2>/dev/null||echo $0 if your readlink is BusyBox v1.01 – Alexx Roche Feb 24 '17 at 23:23
  • @AlexxRoche thank you! Will this work on all Linuxes? – Brian Haak Feb 25 '17 at 0:31
  • 1
    I would expect so. Seems to work on Debian Sid 3.16 and QNAP's armv5tel 3.4.6 Linux. – Alexx Roche Feb 25 '17 at 15:18
  • I put it in this one line: DIR=$(dirname $(readlink -f "${BASH_SOURCE[0]}" 2>/dev/null||echo $0)) # https://stackoverflow.com/a/34208365/ – A-B-B Jan 21 at 14:21
12

This works even if the script is sourced:

source "$( dirname "${BASH_SOURCE[0]}" )/incl.sh"
  • Could you explain what is the purpose of the "[0]"? – Ray Jul 1 '16 at 13:08
  • 1
    @Ray BASH_SOURCE is an array of paths, corresponding to a call-stack. The first element corresponds to the most recent script in the stack, which is the currently executing script. Actually, $BASH_SOURCE called as a variable expands to its first element by default, so [0] is not necessary here. See this link for details. – Sheljohn Jun 13 '18 at 9:30
7

You need to specify the location of the other scripts, there is no other way around it. I'd recommend a configurable variable at the top of your script:

#!/bin/bash
installpath=/where/your/scripts/are

. $installpath/incl.sh

echo "The main script"

Alternatively, you can insist that the user maintain an environment variable indicating where your program home is at, like PROG_HOME or somesuch. This can be supplied for the user automatically by creating a script with that information in /etc/profile.d/, which will be sourced every time a user logs in.

  • 1
    I appreciate the desire for specificity, but I can't see why the full path should be required unless the include scripts were part of another package. I don't see a security difference loading from a specific relative path (i.e. same dir where the script is executing.) vs a specific fullpath. Why do you say there's no way around it? – Aaron H. Sep 14 '10 at 20:08
  • 4
    Because the directory where your script is executing is not necessarily where the scripts you want to include in your script are located. You want to load the scripts where they are installed at and there is no reliable way to tell where that is at run-time. Not using a fixed location is also a good way to include the wrong (i.e. hacker supplied) script and run it. – Steve Baker Sep 15 '10 at 13:39
6

1. Neatest

I explored almost every suggestion and here is the neatest one that worked for me:

script_root=$(dirname $(readlink -f $0))

It works even when the script is symlinked to a $PATH directory.

See it in action here: https://github.com/pendashteh/hcagent/blob/master/bin/hcagent

2. The coolest

# Copyright https://stackoverflow.com/a/13222994/257479
script_root=$(ls -l /proc/$$/fd | grep "255 ->" | sed -e 's/^.\+-> //')

This is actually from another answer on this very page, but I'm adding it to my answer too!

2. The most reliable

Alternatively, in the rare case that those didn't work, here is the bullet proof approach:

# Copyright http://stackoverflow.com/a/7400673/257479
myreadlink() { [ ! -h "$1" ] && echo "$1" || (local link="$(expr "$(command ls -ld -- "$1")" : '.*-> \(.*\)$')"; cd $(dirname $1); myreadlink "$link" | sed "s|^\([^/].*\)\$|$(dirname $1)/\1|"); }
whereis() { echo $1 | sed "s|^\([^/].*/.*\)|$(pwd)/\1|;s|^\([^/]*\)$|$(which -- $1)|;s|^$|$1|"; } 
whereis_realpath() { local SCRIPT_PATH=$(whereis $1); myreadlink ${SCRIPT_PATH} | sed "s|^\([^/].*\)\$|$(dirname ${SCRIPT_PATH})/\1|"; } 

script_root=$(dirname $(whereis_realpath "$0"))

You can see it in action in taskrunner source: https://github.com/pendashteh/taskrunner/blob/master/bin/taskrunner

Hope this help someone out there :)

Also, please leave it as a comment if one did not work for you and mention your operating system and emulator. Thanks!

5

I'd suggest that you create a setenv script whose sole purpose is to provide locations for various components across your system.

All other scripts would then source this script so that all locations are common across all scripts using the setenv script.

This is very useful when running cronjobs. You get a minimal environment when running cron, but if you make all cron scripts first include the setenv script then you are able to control and synchronise the environment that you want the cronjobs to execute in.

We used such a technique on our build monkey that was used for continuous integration across a project of about 2,000 kSLOC.

3

Steve's reply is definitely the correct technique but it should be refactored so that your installpath variable is in a separate environment script where all such declarations are made.

Then all scripts source that script and should installpath change, you only need to change it in one location. Makes things more, er, futureproof. God I hate that word! (-:

BTW You should really refer to the variable using ${installpath} when using it in the way shown in your example:

. ${installpath}/incl.sh

If the braces are left out, some shells will try and expand the variable "installpath/incl.sh"!

2

Shell Script Loader is my solution for this.

It provides a function named include() that can be called many times in many scripts to refer a single script but will only load the script once. The function can accept complete paths or partial paths (script is searched in a search path). A similar function named load() is also provided that will load the scripts unconditionally.

It works for bash, ksh, pd ksh and zsh with optimized scripts for each one of them; and other shells that are generically compatible with the original sh like ash, dash, heirloom sh, etc., through a universal script that automatically optimizes its functions depending on the features the shell can provide.

[Fowarded example]

start.sh

This is an optional starter script. Placing the startup methods here is just a convenience and can be placed in the main script instead. This script is also not needed if the scripts are to be compiled.

#!/bin/sh

# load loader.sh
. loader.sh

# include directories to search path
loader_addpath /usr/lib/sh deps source

# load main script
load main.sh

main.sh

include a.sh
include b.sh

echo '---- main.sh ----'

# remove loader from shellspace since
# we no longer need it
loader_finish

# main procedures go from here

# ...

a.sh

include main.sh
include a.sh
include b.sh

echo '---- a.sh ----'

b.sh

include main.sh
include a.sh
include b.sh

echo '---- b.sh ----'

output:

---- b.sh ----
---- a.sh ----
---- main.sh ----

What's best is scripts based on it may also be compiled to form a single script with the available compiler.

Here's a project that uses it: http://sourceforge.net/p/playshell/code/ci/master/tree/. It can run portably with or without compiling the scripts. Compiling to produce a single script can also happen, and is helpful during installation.

I also created a simpler prototype for any conservative party that may want to have a brief idea of how an implementation script works: https://sourceforge.net/p/loader/code/ci/base/tree/loader-include-prototype.bash. It's small and anyone can just include the code in their main script if they want to if their code is intended to run with Bash 4.0 or newer, and it also doesn't use eval.

  • 3
    12 kilobytes of Bash script containing over 100 lines of evaled code to load dependencies. Ouch – l0b0 May 31 '14 at 12:56
  • 1
    Exactly one of the three eval blocks near the bottom is always run. So whether it's needed or not, it sure is using eval. – l0b0 May 31 '14 at 13:01
  • 2
    That eval call is safe and it's not used if you have Bash 4.0+. I see, you are one of those old-time scripters who think eval is pure evil, and doesn't know how to make good use of it instead. – konsolebox May 31 '14 at 13:02
  • 1
    I don't know what you mean by "not used", but it is run. And after some years of shell scripting as part of my job, yes, I'm more convinced than ever that eval is evil. – l0b0 May 31 '14 at 13:07
  • 1
    Two portable, simple ways to flag files come to mind instantly: Either referring to them by their inode number, or by putting NUL-separated paths into a file. – l0b0 May 31 '14 at 13:09
2

Personally put all libraries in a lib folder and use an import function to load them.

folder structure

enter image description here

script.sh contents

# Imports '.sh' files from 'lib' directory
function import()
{
  local file="./lib/$1.sh"
  local error="\e[31mError: \e[0mCannot find \e[1m$1\e[0m library at: \e[2m$file\e[0m"
  if [ -f "$file" ]; then
     source "$file"
    if [ -z $IMPORTED ]; then
      echo -e $error
      exit 1
    fi
  else
    echo -e $error
    exit 1
  fi
}

Note that this import function should be at the beginning of your script and then you can easily import your libraries like this:

import "utils"
import "requirements"

Add a single line at the top of each library (i.e. utils.sh):

IMPORTED="$BASH_SOURCE"

Now you have access to functions inside utils.sh and requirements.sh from script.sh

TODO: Write a linker to build a single sh file

  • Does this also solve the problem of executing the script outside of the dir it is in? – Aaron H. Aug 10 '18 at 17:57
  • @AaronH. No. It is a structured way for including dependencies in large projects. – Xaqron Aug 10 '18 at 18:31
1

Using source or $0 will not give you the real path of your script. You could use the process id of the script to retrieve its real path

ls -l       /proc/$$/fd           | 
grep        "255 ->"            |
sed -e      's/^.\+-> //'

I am using this script and it has always served me well :)

  • piece of art... – Alexar Apr 7 '18 at 10:40
1

I put all my startup scripts in a .bashrc.d directory. This is a common technique in such places as /etc/profile.d, etc.

while read file; do source "${file}"; done <<HERE
$(find ${HOME}/.bashrc.d -type f)
HERE

The problem with the solution using globbing...

for file in ${HOME}/.bashrc.d/*.sh; do source ${file};done

...is you might have a file list which is "too long". An approach like...

find ${HOME}/.bashrc.d -type f | while read file; do source ${file}; done

...runs but doesn't change the environment as desired.

1

Of course, to each their own, but I think the block below is pretty solid. I believe this involves the "best" way to find a directory, and the "best" way to call another bash script:

scriptdir=`dirname "$BASH_SOURCE"`
source $scriptdir/incl.sh

echo "The main script"

So this may be the "best" way to include other scripts. This is based off another "best" answer that tells a bash script where it is stored

1

This should work reliably:

source_relative() {
 local dir="${BASH_SOURCE%/*}"
 [[ -z "$dir" ]] && dir="$PWD"
 source "$dir/$1"
}

source_relative incl.sh
0

we just need to find out the folder where our incl.sh and main.sh is stored; just change your main.sh with this:

main.sh

#!/bin/bash

SCRIPT_NAME=$(basename $0)
SCRIPT_DIR="$(echo $0| sed "s/$SCRIPT_NAME//g")"
source $SCRIPT_DIR/incl.sh

echo "The main script"
  • Incorrect quoting, unnecessary use of echo, and incorrect use of sed's g option. -1. – l0b0 May 31 '14 at 12:53
  • Anyway, to get this script work do: SCRIPT_DIR=$(echo "$0" | sed "s/${SCRIPT_NAME}//") and then source "${SCRIPT_DIR}incl.sh" – Krzysiek Dec 30 '14 at 10:07
-5

You can also use:

PWD=$(pwd)
source "$PWD/inc.sh"
  • 9
    You assume that you are in the same directory where scripts are located. It won't work if you are somewhere else. – Luc M May 31 '13 at 17:11

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