1034

How would I get just the current working directory name in a bash script, or even better, just a terminal command.

pwd gives the full path of the current working directory, e.g. /opt/local/bin but I only want bin

2

21 Answers 21

1387

No need for basename, and especially no need for a subshell running pwd (which adds an extra, and expensive, fork operation); the shell can do this internally using parameter expansion:

result=${PWD##*/}          # to assign to a variable
result=${result:-/}        # to correct for the case where PWD=/

printf '%s\n' "${PWD##*/}" # to print to stdout
                           # ...more robust than echo for unusual names
                           #    (consider a directory named -e or -n)

printf '%q\n' "${PWD##*/}" # to print to stdout, quoted for use as shell input
                           # ...useful to make hidden characters readable.

Note that if you're applying this technique in other circumstances (not PWD, but some other variable holding a directory name), you might need to trim any trailing slashes. The below uses bash's extglob support to work even with multiple trailing slashes:

dirname=/path/to/somewhere//
shopt -s extglob           # enable +(...) glob syntax
result=${dirname%%+(/)}    # trim however many trailing slashes exist
result=${result##*/}       # remove everything before the last / that still remains
result=${result:-/}        # correct for dirname=/ case
printf '%s\n' "$result"

Alternatively, without extglob:

dirname="/path/to/somewhere//"
result="${dirname%"${dirname##*[!/]}"}" # extglob-free multi-trailing-/ trim
result="${result##*/}"                  # remove everything before the last /
result=${result:-/}                     # correct for dirname=/ case
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  • 45
    What is the difference between ${PWD##*/} and $PWD?
    – Mr_Chimp
    Nov 22, 2011 at 12:34
  • 34
    @Mr_Chimp the former is a parameter expansion operations which trims the rest of the directory to provide only the basename. I have a link in my answer to the documentation on parameter expansion; feel free to follow that if you have any questions. Nov 25, 2011 at 14:07
  • 34
    @stefgosselin $PWD is the name of a built-in bash variable; all built-in variable names are in all-caps (to distinguish them from local variables, which should always have at least one lower-case character). result=${PWD#*/} does not evaluate to /full/path/to/directory; instead, it strips only the first element, making it path/to/directory; using two # characters makes the pattern match greedy, matching as many characters as it can. Read the parameter expansion page, linked in the answer, for more. Mar 20, 2013 at 12:20
  • 8
    Note that the output from pwd is not always the same as the value of $PWD, due to complications arising from cding through symbolic links, whether bash has the -o physical option set, and so on. This used to get especially nasty around handling of automounted directories, where recording the physical path instead of the logical one would produce a path that, if used, would allow the automounter to spontaneously dismount the directory one was using. May 17, 2013 at 9:53
  • 5
    Nice! Someone should write a book for old Borne shell guys like me. Maybe there is one out there? It could have a crotchity old sys admin saying stuff like, "back in my day we only sh and csh and if you wanted the backspace key to work you had to read the whole stty man page, and we liked it!" Oct 3, 2013 at 22:17
480

Use the basename program. For your case:

% basename "$PWD"
bin
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  • 28
    Isn't this the purpose of the basename program? What is wrong with this answer besides missing the quotes?
    – Nacht
    Apr 30, 2013 at 7:18
  • 18
    @Nacht basename is indeed an external program that does the right thing, but running any external program for a thing bash can do out-of-the-box using only built-in functionality is silly, incurring performance impact (fork(), execve(), wait(), etc) for no reason. Jun 29, 2013 at 18:30
  • 6
    ...as an aside, my objections to basename here don't apply to dirname, because dirname has functionality that ${PWD##*/} does not -- transforming a string with no slashes to ., for instance. Thus, while using dirname as an external tool has performance overhead, it also has functionality that helps to compensate for same. Oct 20, 2014 at 12:29
  • 71
    Sure using basename is less "efficient". But it's probably more efficient in terms of developer productivity because it's easy to remember compared to the ugly bash syntax. So if you remember it, go for it. Otherwise, basename works just as well. Has anyone ever had to improve the "performance" of a bash script and make it more efficient?
    – P.P
    Dec 5, 2017 at 14:48
  • 7
    @usr, ...speaking as someone who's written bash scripts that operate over maildirs (a mailbox storage format with one file per email, as used by qmail), yes, absolutely, I've had real-world cause to pay attention to efficiency in scripting. We're talking on the scale of 20ms per command substitution on non-embedded hardware -- loop over 100,000 items and you're talking real time even if your code just has one of them. (Sure, there's a point where shell is no longer the right tool, but you reach that point far faster if you don't pay any attention to how well you write your code). Oct 24, 2018 at 13:34
164
$ echo "${PWD##*/}"

​​​​​

2
  • 4
    @jocap ...except that the usage of echo there, without quoting the argument, is wrong. If the directory name has multiple spaces, or a tab character, it'll be collapsed to a single space; if it has a wildcard character, it will be expanded. Correct usage would be echo "${PWD##*/}". Dec 11, 2012 at 3:04
  • 12
    @jocap ...also, I'm not sure that "echo" is in fact a legitimate part of the answer. The question was how to get the answer, not how to print the answer; if the goal was to assign it to a variable, for instance, name=${PWD##*/} would be right, and name=$(echo "${PWD##*/}") would be wrong (in a needless-inefficiency sense). Jan 21, 2013 at 17:16
32

Use:

basename "$PWD"

OR

IFS=/ 
var=($PWD)
echo ${var[-1]} 

Turn the Internal Filename Separator (IFS) back to space.

IFS= 

There is one space after the IFS.

0
29

You can use a combination of pwd and basename. E.g.

#!/bin/bash

CURRENT=`pwd`
BASENAME=`basename "$CURRENT"`

echo "$BASENAME"

exit;
4
  • 21
    Please, no. The backticks create a subshell (thus, a fork operation) -- and in this case, you're using them twice! [As an additional, albeit stylistic quibble -- variable names should be lower-case unless you're exporting them to the environment or they're a special, reserved case]. Sep 3, 2009 at 3:26
  • 12
    and as a second style quibble backtics should be replaced by $(). still forks but more readable and with less excaping needed. Sep 3, 2009 at 21:17
  • 2
    By convention, environment variables (PATH, EDITOR, SHELL, ...) and internal shell variables (BASH_VERSION, RANDOM, ...) are fully capitalized. All other variable names should be lowercase. Since variable names are case-sensitive, this convention avoids accidentally overriding environmental and internal variables. Jan 21, 2016 at 4:09
  • 4
    Depends on the convention. One could argue that all shell variables are environment variables (depending on the shell), and thus all shell variables should be in all-caps. Someone else could argue based on scope - global variables are all-caps, while local variables are lowercase, and these are all globals. Yet another might argue that making variables all-uppercase adds an extra layer of contrast with the commands littering shell scripts, which are also all lower-case short but meaningful words. I may or may not /agree/ with any of those arguments, but I've seen all three in use. :)
    – dannysauer
    Jan 27, 2017 at 21:00
20

How about grep:

pwd | grep -o '[^/]*$'
1
  • 2
    would not recommend because it seems to get some color information whereas pwd | xargs basename doesn't.. probably not that important but the other answer is simpler and more consistent across environments
    – davidhq
    Sep 13, 2018 at 22:56
12
basename $(pwd)

or

echo "$(basename $(pwd))"
2
  • 3
    Needs more quotes to be correct -- as it is, the output of pwd is string-split and glob-expanded before being passed to basename. Jul 6, 2014 at 16:49
  • Thus, basename "$(pwd)" -- though that's very inefficient compared to just basename "$PWD", which is itself inefficient compared to using a parameter expansion instead of calling basename at all. May 13, 2020 at 22:18
10

This thread is great! Here is one more flavor:

pwd | awk -F / '{print $NF}'
9

I like the selected answer (Charles Duffy), but be careful if you are in a symlinked dir and you want the name of the target dir. Unfortunately I don't think it can be done in a single parameter expansion expression, perhaps I'm mistaken. This should work:

target_PWD=$(readlink -f .)
echo ${target_PWD##*/}

To see this, an experiment:

cd foo
ln -s . bar
echo ${PWD##*/}

reports "bar"

DIRNAME

To show the leading directories of a path (without incurring a fork-exec of /usr/bin/dirname):

echo ${target_PWD%/*}

This will e.g. transform foo/bar/baz -> foo/bar

1
  • 6
    Unfortunately, readlink -f is a GNU extension, and thus not available on the BSDs (including OS X). Oct 26, 2013 at 5:32
8
echo "$PWD" | sed 's!.*/!!'

If you are using Bourne shell or ${PWD##*/} is not available.

2
  • 5
    FYI, ${PWD##*/} is POSIX sh -- every modern /bin/sh (including dash, ash, etc) supports it; to hit actual Bourne on a recent box, you'd need to be on a mildly oldish Solaris system. Beyond that -- echo "$PWD"; leaving out the quotes leads to bugs (if the directory name has spaces, wildcard characters, etc). Feb 3, 2014 at 14:06
  • 3
    Yes, I was using an oldish Solaris system. I have updated the command to use quotes.
    – anomal
    Feb 5, 2014 at 1:11
6

Surprisingly, no one mentioned this alternative that uses only built-in bash commands:

i="$IFS";IFS='/';set -f;p=($PWD);set +f;IFS="$i";echo "${p[-1]}"

As an added bonus you can easily obtain the name of the parent directory with:

[ "${#p[@]}" -gt 1 ] && echo "${p[-2]}"

These will work on Bash 4.3-alpha or newer.

2
  • surprisingly ? just joking, but others are much shorter and easier to remember Jul 8, 2016 at 15:20
  • This is pretty funny =P Had not heard of $IFS (internal field separator) before this. my bash was too old, but can test it here: jdoodle.com/test-bash-shell-script-online Feb 12, 2017 at 5:50
6

There are a lots way of doing that I particularly liked Charles way because it avoid a new process, but before know this I solved it with awk

pwd | awk -F/ '{print $NF}'
5

For the find jockeys out there like me:

find $PWD -maxdepth 0 -printf "%f\n"
1
  • 2
    Change the $PWD to "$PWD" to correctly handle unusual directory names. May 13, 2020 at 22:16
4

i usually use this in sh scripts

SCRIPTSRC=`readlink -f "$0" || echo "$0"`
RUN_PATH=`dirname "${SCRIPTSRC}" || echo .`
echo "Running from ${RUN_PATH}"
...
cd ${RUN_PATH}/subfolder

you can use this to automate things ...

1
  • readlink: illegal option -- f usage: readlink [-n] [file ...]
    – user5549921
    Jul 19, 2017 at 8:52
3

Just use:

pwd | xargs basename

or

basename "`pwd`"
3
  • 3
    This is in all respects a worse version of the answer previously given by Arkady (stackoverflow.com/a/1371267/14122): The xargs formultion is inefficient and buggy when directory names contain literal newlines or quote characters, and the second formulation calls the pwd command in a subshell, rather than retrieving the same result via a built-in variable expansion. Jun 8, 2015 at 0:55
  • @CharlesDuffy Nevertheless is it a valid and practical answer to the question.
    – bachph
    Mar 14, 2020 at 9:53
  • @bachph, I disagree: A buggy answer (f/e, an answer that doesn't work when directory names contain spaces) should not be considered an answer at all. Jun 6 at 14:49
3

Below grep with regex is also working,

>pwd | grep -o "\w*-*$"
1
  • 4
    It doesn't work if directory name contains "-" characters.
    – daniula
    Apr 5, 2017 at 19:40
3

If you want to see only the current directory in the bash prompt region, you can edit .bashrc file in ~. Change \w to \W in the line:

PS1='${debian_chroot:+($debian_chroot)}\[\033[01;32m\]\u@\h\[\033[00m\]:\[\033[01;34m\]\w\[\033[00m\]\$ '

Run source ~/.bashrc and it will only display the directory name in the prompt region.

Ref: https://superuser.com/questions/60555/show-only-current-directory-name-not-full-path-on-bash-prompt

2

I strongly prefer using gbasename, which is part of GNU coreutils.

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  • 2
    FYI, it doesn't come with my Ubuntu distribution. Sep 25, 2017 at 8:34
  • 2
    @KatasticVoyage, it's there on Ubuntu, it's just called basename there. It's only typically called gbasename on MacOS and other platforms that otherwise ship with a non-GNU basename. May 13, 2020 at 22:15
0

You can use the basename utility which deletes any prefix ending in / and the suffix (if present in string) from string, and prints the result on the standard output.

$basename <path-of-directory>
0
-1

The following commands will result in printing your current working directory in a bash script.

pushd .
CURRENT_DIR="`cd $1; pwd`"
popd
echo $CURRENT_DIR
1
  • 3
    (1) I'm not sure where we're ensuring that the argument list is such that $1 will contain the current working directory. (2) The pushd and popd serve no purpose here because anything inside backticks is done in a subshell -- so it can't affect the parent shell's directory to start with. (3) Using "$(cd "$1"; pwd)" would be both more readable and resilient against directory names with whitespace. Jun 13, 2012 at 16:21
-1

Just remove any character until a / (or \, if you're on Windows). As the match is gonna be made greedy it will remove everything until the last /:

pwd | sed 's/.*\///g'

In your case the result is as expected:

λ a='/opt/local/bin'

λ echo $a | sed 's/.*\///g'
bin

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