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I'm trying to write a post-commit hook for SVN, which is hosted on our development server. My goal is to try to automatically checkout a copy of the committed project to the directory where it is hosted on the server. However I need to be able to read only the last directory in the directory string passed to the script in order to checkout to the same sub-directory where our projects are hosted.

For example if I make an SVN commit to the project "example", my script gets "/usr/local/svn/repos/example" as its first argument. I need to get just "example" off the end of the string and then concat it with another string so I can checkout to "/server/root/example" and see the changes live immediately.

346
0

basename does remove the directory prefix of a path:

$ basename /usr/local/svn/repos/example
example
$ echo "/server/root/$(basename /usr/local/svn/repos/example)"
/server/root/example
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    basename is definitely what I'm looking for. How can get the basename of an argument stored into a variable though? E.g. SUBDIR="/path/to/whatever/$(basename $1)" – TJ L Jul 20 '10 at 20:38
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    @tj111: sounds like is no $1, or $1 is empty – sth Jul 20 '10 at 20:59
  • unfortunately, if you wrap commands, basename is not a good idea. just something to keep in mind – dtc Jul 20 '16 at 20:36
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The following approach can be used to get any path of a pathname:

some_path=a/b/c
echo $(basename $some_path)
echo $(basename $(dirname $some_path))
echo $(basename $(dirname $(dirname $some_path)))

Output:

c
b
a
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    does not work with paths that have spaces... you can overcome that with quotes... which somehow works echo "$(basename "$(dirname "$pathname")")" – Ray Foss Aug 15 '19 at 14:52
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Bash can get the last part of a path without having to call the external basename:

subdir="/path/to/whatever/${1##*/}"
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    On my Mac, using substring notation is more than order of magnitude faster than dirname / basename for the case where you're doing something trivial to each of a few thousand files. – George Jun 26 '14 at 1:24
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    d=/home/me/somefolder;subdir="/$d/${1##*/}" I ended up with something like //home/me/somefolder// the $d actually comes from a loop for d in $(find $SOMEFOLDER -maxdepth 1 -type d); Using subdir=$(basename $d) works as expected. – Buttle Butkus May 5 '15 at 2:02
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    @ButtleButkus: You should use while instead of for to iterate over the output of find (find -print0 | xargs -0 is better) or use globbing: for d in $SOMEFOLDER/*/ (the final slash works like -type d - you can use ** in Bash 4 for recursion if you shopt -s globstar, but an "Argument list too long" message is possible). Note that the ${1} portion of the command represents the first argument of a script or function. You may need to use ${d##*/} or some other variable or argument specification or make sure that an argument is being passed in $1 – Paused until further notice. May 5 '15 at 2:55
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    @DennisWilliamson Thanks a lot for sharing. For any future readers who start to wonder why it is not working or I am the only stupid out here 😂. Above answer assumes that $1 contains the path from which last component is to be taken out. I missed that part. My use case: target_path='/home/user/dir1/dir2/dir3/'; target_path="${target_path%/}"; last_component=${target_path##*/}; echo $last_component - Works 😉 – Vinay Vissh Apr 13 '18 at 11:10
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    See here for an explanation of how and why ${1##*/} works: unix.stackexchange.com/a/171786/15070 – Matthew Apr 15 '18 at 10:50

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