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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

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11 Answers

up vote 243 down vote accepted

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

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.
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3  
What is the difference between ${PWD##*/} and $PWD? –  Mr_Chimp Nov 22 '11 at 12:34
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@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. –  Charles Duffy Nov 25 '11 at 14:07
    
@Mr_Chimp - I was trying to set variable (and failing) with the initial ${pwd}, and all full path variants. Friend no rush but if you can maybe add or comment back, clue me in on why ##*/ is needed for this to work? And the pwd in capitals, that really surprised me. Why does result=${PWD#*/} evaluate to /full/path/to/script and result=${PWD##*/} evaluates to script? Thanks again for the great answer. –  stefgosselin Mar 20 '13 at 6:11
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@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. –  Charles Duffy Mar 20 '13 at 12:20
1  
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. –  Alex North-Keys May 17 '13 at 9:53
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Use the basename program. For your case:

% basename "$PWD"
bin
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5  
This is particularly bad usage, because it doesn't quote the working directory. Thus, if you were in /My Directory/, it would invoke basename "My" "Directory" -- passing the directory name as two arguments rather than one. –  Charles Duffy Feb 18 '13 at 21:52
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Isn't this the purpose of the basename program? What is wrong with this answer besides missing the quotes? –  Nacht Apr 30 '13 at 7:18
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@Nacht basename is indeed an external program that does the right thing, but running any external program for a thing bash can do out-of-the-box using only built-in functionality is silly, incurring performance impact (fork(), execve(), wait(), etc) for no reason. –  Charles Duffy Jun 29 '13 at 18:30
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$ echo ${PWD##*/}

​​​​​

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The correct answer, but I believe I beat you to it. :) –  Charles Duffy Sep 3 '09 at 3:24
    
Si. If it were a harder question I would say GMTA :-) –  DigitalRoss Sep 3 '09 at 3:56
3  
This guy was more clear about the echo, Charlie ;) –  jocap Aug 11 '12 at 11:22
    
@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 "${PWD##*/}". –  Charles Duffy Dec 11 '12 at 3:04
3  
@jocap ...also, I'm not sure that "echo" is in fact a legitimate part of the answer. The question was how to get the answer, not how to print the answer; if the goal was to assign it to a variable, for instance, name=${PWD##*/} would be right, and name=$(echo "${PWD##*/}") would be wrong (in a needless-inefficiency sense). –  Charles Duffy Jan 21 '13 at 17:16
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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

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Unfortunately, readlink -f is a GNU extension, and thus not available on the BSDs (including OS X). –  Xiong Chiamiov Oct 26 '13 at 5:32
    
But there are a few alternatives. –  Xiong Chiamiov Oct 26 '13 at 5:39
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You can use a combination of pwd and basename. E.g.

#!/bin/bash

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

echo $BASENAME

exit;
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9  
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]. –  Charles Duffy Sep 3 '09 at 3:26
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and as a second style quibble backtics should be replaced by $(). still forks but more readable and with less excaping needed. –  Jeremy Wall Sep 3 '09 at 21:17
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This thread is great! Here is one more flavor:

pwd | awk -F / '{print $NF}'
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echo "$PWD" | sed 's!.*/!!'

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

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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). –  Charles Duffy Feb 3 at 14:06
    
Yes, I was using an oldish Solaris system. I have updated the command to use quotes. –  anomal Feb 5 at 1:11
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Just enter it as below:

echo $PWD

You will get the info as:

/System/Library/Frameworks/JavaVM.framework/Versions/CurrentJDK/Home/bin

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12  
That wasn't what he asked for. –  jocap Aug 11 '12 at 11:23
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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
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1  
(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. –  Charles Duffy Jun 13 '12 at 16:21
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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>
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basename $(pwd)

or

echo "$(basename $(pwd))"
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