How can I determine the name of the Bash script file inside the script itself?

Like if my script is in file runme.sh, then how would I make it to display "You are running runme.sh" message without hardcoding that?

21 Answers 21

up vote 473 down vote accepted
me=`basename "$0"`

For reading through a symlink, which is usually not what you want (you usually don't want to confuse the user this way), try:

me="$(basename "$(test -L "$0" && readlink "$0" || echo "$0")")"

IMO, that'll produce confusing output. "I ran foo.sh, but it's saying I'm running bar.sh!? Must be a bug!" Besides, one of the purposes of having differently-named symlinks is to provide different functionality based on the name it's called as (think gzip and gunzip on some platforms).

  • 22
    $0 gives you the name via which the script was invoked, not the real path of the actual script file. – Chris Conway Oct 10 '08 at 17:48
  • 3
    It works unless you're being called via symlink. But, even then, it's usually what you want anyway, IME. – Tanktalus Oct 10 '08 at 17:50
  • 56
    Doesn't work for scripts which are sourced as opposed to invoked. – Charles Duffy Jan 27 '11 at 18:42
  • 1
    @Charles Duffy: See Dimitre Radoulov's answer below. – Serge Wautier Oct 27 '11 at 8:14
  • 5
    -1, 1. readlink will only travel one symlink deep, 2. $0 in the first example is subject to word splitting, 3. $0 is passed to basename, readlink, and echo in a position which allows it to be treated as a command line switch. I suggest instead me=$(basename -- "$0") or much more efficiently at the expense of readability, me=${0##*/}. For symlinks, me=$(basename -- "$(readlink -f -- "$0")") assuming gnu utils, otherwise it will be a very long script which I will not write here. – Score_Under Apr 28 '15 at 17:22
# ------------- SCRIPT ------------- #

#!/bin/bash

echo
echo "# arguments called with ---->  ${@}     "
echo "# \$1 ---------------------->  $1       "
echo "# \$2 ---------------------->  $2       "
echo "# path to me --------------->  ${0}     "
echo "# parent path -------------->  ${0%/*}  "
echo "# my name ------------------>  ${0##*/} "
echo
exit

# ------------- CALLED ------------- #

# Notice on the next line, the first argument is called within double, 
# and single quotes, since it contains two words

$  /misc/shell_scripts/check_root/show_parms.sh "'hello there'" "'william'"

# ------------- RESULTS ------------- #

# arguments called with --->  'hello there' 'william'
# $1 ---------------------->  'hello there'
# $2 ---------------------->  'william'
# path to me -------------->  /misc/shell_scripts/check_root/show_parms.sh
# parent path ------------->  /misc/shell_scripts/check_root
# my name ----------------->  show_parms.sh

# ------------- END ------------- #
  • 7
    How do the ${0%/*} and ${0##*/} syntax work? – Nicole Nov 21 '13 at 5:50
  • 9
    @NickC see Substring Removal – cychoi Apr 22 '14 at 17:00
  • 1
    How do I get just show_params, i.e. the name without any optional extension? – A-B-B Jul 8 '15 at 1:54
  • Not working in case the script is invoked from another folder. The path is included in the ${0##*/}. Tested using GitBash. – AlikElzin-kilaka Jul 30 '15 at 6:30
  • The above didn't work for me from a .bash_login script, but the Dimitre Radoulov solution of $BASH_SOURCE works great. – John May 6 '16 at 19:11

With bash >= 3 the following works:

$ ./s
0 is: ./s
BASH_SOURCE is: ./s
$ . ./s
0 is: bash
BASH_SOURCE is: ./s

$ cat s
#!/bin/bash

printf '$0 is: %s\n$BASH_SOURCE is: %s\n' "$0" "$BASH_SOURCE"
  • 18
    Great! That's the answer which works for both ./scrip.sh and source ./script.sh – zhaorufei Oct 11 '10 at 7:08
  • 3
    This is what I want, and it is easily to use "dirname $BASE_SOURCE" to get directory that the scripts located. – Larry Cai Sep 6 '11 at 4:43
  • 1
    I almost learnt that difference the hard way when writing a self-deleting script. Luckily 'rm' was aliased to 'rm -i' :) – kervin May 4 '12 at 21:47
  • anyway to the . ./s to get the name ./s instead of bash? I've found that $1 is not always set to ./s... – David Mokon Bond Feb 12 '13 at 14:14
  • 1
    It's in BASH_SOURCE, isn't it? – Dimitre Radoulov Feb 12 '13 at 15:10

If the script name has spaces in it, a more robust way is to use "$0" or "$(basename "$0")" - or on MacOS: "$(basename \"$0\")". This prevents the name from getting mangled or interpreted in any way. In general, it is good practice to always double-quote variable names in the shell.

  • 2
    (Better answer then the one thats getting all the votes!) – slashmais Oct 10 '08 at 17:40
  • 9
    (Agreed! But why are we talking parenthetically?) – ephemient Oct 10 '08 at 17:46
  • 2
    (IME, it's rare that it's important, which is why my answer didn't bother with the quotes.) – Tanktalus Oct 10 '08 at 17:51
  • 2
    +1 for direct answer + concise. if needing symlink features I suggest seeing: Travis B. Hartwell's answer. – Trevor Boyd Smith Aug 27 '12 at 22:37

$BASH_SOURCE gives the correct answer when sourcing the script.

This however includes the path so to get the scripts filename only, use:

$(basename $BASH_SOURCE) 
  • 1
    This answer is IMHO the best one because teh solution makes use of self-documenting code. $BASH_SOURCE is totally understandable without reading any documentation whereas e.g. ${0##*/} is not – Andreas M. Oberheim Sep 6 at 12:28

If you want it without the path then you would use ${0##*/}

  • And what if I want it without any optional file extension? – A-B-B Jul 8 '15 at 1:56

To answer Chris Conway, on Linux (at least) you would do this:

echo $(basename $(readlink -nf $0))

readlink prints out the value of a symbolic link. If it isn't a symbolic link, it prints the file name. -n tells it to not print a newline. -f tells it to follow the link completely (if a symbolic link was a link to another link, it would resolve that one as well).

  • 1
    -n is harmless but not necessary because $(...) structure will trim it. – zhaorufei Oct 11 '10 at 7:06

I've found this line to always work, regardless of whether the file is being sourced or run as a script.

echo "${BASH_SOURCE[${#BASH_SOURCE[@]} - 1]}"

If you want to follow symlinks use readlink on the path you get above, recursively or non-recursively.

The reason the one-liner works is explained by the use of the BASH_SOURCE environment variable and its associate FUNCNAME.

BASH_SOURCE

An array variable whose members are the source filenames where the corresponding shell function names in the FUNCNAME array variable are defined. The shell function ${FUNCNAME[$i]} is defined in the file ${BASH_SOURCE[$i]} and called from ${BASH_SOURCE[$i+1]}.

FUNCNAME

An array variable containing the names of all shell functions currently in the execution call stack. The element with index 0 is the name of any currently-executing shell function. The bottom-most element (the one with the highest index) is "main". This variable exists only when a shell function is executing. Assignments to FUNCNAME have no effect and return an error status. If FUNCNAME is unset, it loses its special properties, even if it is subsequently reset.

This variable can be used with BASH_LINENO and BASH_SOURCE. Each element of FUNCNAME has corresponding elements in BASH_LINENO and BASH_SOURCE to describe the call stack. For instance, ${FUNCNAME[$i]} was called from the file ${BASH_SOURCE[$i+1]} at line number ${BASH_LINENO[$i]}. The caller builtin displays the current call stack using this information.

[Source: Bash manual]

  • 2
    It works if you source in file a (assume a's contents is echo "${BASH_SOURCE[${#BASH_SOURCE[@]} - 1]}") from an interactive session -- then it will give you a's path. But if you write a script b with source a in it and run ./b, it'll return b's path. – PSkocik Jan 30 '15 at 12:59

These answers are correct for the cases they state but there is a still a problem if you run the script from another script using the 'source' keyword (so that it runs in the same shell). In this case, you get the $0 of the calling script. And in this case, I don't think it is possible to get the name of the script itself.

This is an edge case and should not be taken TOO seriously. If you run the script from another script directly (without 'source'), using $0 will work.

Re: Tanktalus's (accepted) answer above, a slightly cleaner way is to use:

me=$(readlink --canonicalize --no-newline $0)

If your script has been sourced from another bash script, you can use:

me=$(readlink --canonicalize --no-newline $BASH_SOURCE)

I agree that it would be confusing to dereference symlinks if your objective is to provide feedback to the user, but there are occasions when you do need to get the canonical name to a script or other file, and this is the best way, imo.

  • 1
    Nice details, thanks. – Ma99uS Oct 15 '10 at 14:00
  • 1
    Thanks for sourced script names. – Fredrick Gauss Dec 11 '15 at 9:11

if your invoke shell script like

/home/mike/runme.sh

$0 is full name

 /home/mike/runme.sh

basename $0 will get the base file name

 runme.sh

and you need to put this basic name into a variable like

filename=$(basename $0)

and add your additional text

echo "You are running $filename"

so your scripts like

/home/mike/runme.sh
#!/bin/bash 
filename=$(basename $0)
echo "You are running $filename"

You can use $0 to determine your script name (with full path) - to get the script name only you can trim that variable with

basename $0
this="$(dirname "$(realpath "$BASH_SOURCE")")"

This resolves symbolic links (realpath does that), handles spaces (double quotes do this), and will find the current script name even when sourced (. ./myscript) or called by other scripts ($BASH_SOURCE handles that). After all that, it is good to save this in a environment variable for re-use or for easy copy elsewhere (this=)...

  • 3
    FYI realpath is not a built-in BASH command. It is a standalone executable that is available only in certain distributions – StvnW Jul 4 '14 at 13:59

Since some comments asked about the filename without extension, here's an example how to accomplish that:

FileName=${0##*/}
FileNameWithoutExtension=${FileName%.*}

Enjoy!

Info thanks to Bill Hernandez. I added some preferences I'm adopting.

#!/bin/bash
function Usage(){
    echo " Usage: show_parameters [ arg1 ][ arg2 ]"
}
[[ ${#2} -eq 0 ]] && Usage || {
    echo
    echo "# arguments called with ---->  ${@}     "
    echo "# \$1 ----------------------->  $1       "
    echo "# \$2 ----------------------->  $2       "
    echo "# path to me --------------->  ${0}     " | sed "s/$USER/\$USER/g"
    echo "# parent path -------------->  ${0%/*}  " | sed "s/$USER/\$USER/g"
    echo "# my name ------------------>  ${0##*/} "
    echo
}

Cheers

In bash you can get the script file name using $0. Generally $1, $2 etc are to access CLI arguments. Similarly $0 is to access the name which triggers the script(script file name).

#!/bin/bash
echo "You are running $0"
...
...

If you invoke the script with path like /path/to/script.sh then $0 also will give the filename with path. In that case need to use $(basename $0) to get only script file name.

echo "$(basename "`test -L ${BASH_SOURCE[0]} \
                   && readlink ${BASH_SOURCE[0]} \
                   || echo ${BASH_SOURCE[0]}`")"

echo "You are running $0"

  • Is not bash script, is full path. – e-info128 May 23 '16 at 1:45

$0 doesn't answer the question (as I understand it). A demonstration:

$ cat script.sh
#! /bin/sh
echo `basename $0`
$ ./script.sh 
script.sh
$ ln script.sh linktoscript
$ ./linktoscript 
linktoscript

How does one get ./linktoscript to print out script.sh?

[EDIT] Per @ephemient in comments above, though the symbolic link thing may seem contrived, it is possible to fiddle with $0 such that it does not represent a filesystem resource. The OP is a bit ambiguous about what he wanted.

  • added answer to this to my answer above, but I disagree that this is what's really wanted (or that you should want it, barring some extenuating circumstances that I can't currently fathom) – Tanktalus Oct 10 '08 at 18:03
  • 2
    I think that printing linktoscript instead of script.sh is a feature, not a bug. Several unix commands use their name for altering their behaviour. An example is vi/ex/view. – mouviciel Mar 12 '09 at 16:54
  • @Tanktalus: There are cases where you want the behaviour to change based on the real location of the file -- on a previous project I had an "Active branch" script, which would symlink in to the path several tools from the branch I was working on; those tools could then find out which directory they'd been checked out into to run against the right files. – Andrew Aylett Mar 17 '10 at 10:35
DIRECTORY=$(cd `dirname $0` && pwd)

I got the above from another Stack Overflow question, Can a Bash script tell what directory it's stored in?, but I think it's useful for this topic as well.

somthing like this?

export LC_ALL=en_US.UTF-8
#!/bin/bash
#!/bin/sh

#----------------------------------------------------------------------
start_trash(){
ver="htrash.sh v0.0.4"
$TRASH_DIR  # url to trash $MY_USER
$TRASH_SIZE # Show Trash Folder Size

echo "Would you like to empty Trash  [y/n]?"
read ans
if [ $ans = y -o $ans = Y -o $ans = yes -o $ans = Yes -o $ans = YES ]
then
echo "'yes'"
cd $TRASH_DIR && $EMPTY_TRASH
fi
if [ $ans = n -o $ans = N -o $ans = no -o $ans = No -o $ans = NO ]
then
echo "'no'"
fi
 return $TRUE
} 
#-----------------------------------------------------------------------

start_help(){
echo "HELP COMMANDS-----------------------------"
echo "htest www                 open a homepage "
echo "htest trash               empty trash     "
 return $TRUE
} #end Help
#-----------------------------------------------#

homepage=""

return $TRUE
} #end cpdebtemp

# -Case start
# if no command line arg given
# set val to Unknown
if [ -z $1 ]
then
  val="*** Unknown  ***"
elif [ -n $1 ]
then
# otherwise make first arg as val
  val=$1
fi
# use case statement to make decision for rental
case $val in
   "trash") start_trash ;;
   "help") start_help ;;
   "www") firefox $homepage ;;
   *) echo "Sorry, I can not get a $val   for you!";;
esac
# Case stop
  • 4
    -1, does not answer the question (doesn't show how to find the script's name), and is a confusing example in a very buggy script. – Score_Under Apr 28 '15 at 17:32

protected by Vamsi Prabhala Apr 19 at 21:07

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