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I'm trying to get the name of a file from the full path of a parameter for a function in my bashrc. I don't know any regular expressions, so I'm kind of lost. I know I want to get the last forward slash and use everything after that, but I'm not quite sure how to go about doing that. Then I want to store it in a variable in my function, which I'll use later.

Any help is appreciated!

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6 Answers 6

up vote 7 down vote accepted

The fastest way is to use variable substitution like


echo ${f1##*/}
echo ${f2##*/}
echo ${f3##*/}
echo ${f4##*/}

# This is how you get value out



You can use basename but that will be slow as it will launch a new child process.

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Nicely done! Alternate to basename ! – another.anon.coward Dec 2 '11 at 5:39
This behaves differently than basename when the path name is a directory that ends in '/'. This may or may not be a problem, depending on usage. basename /foo/bar/ outputs bar whereas x=/foo/bar/; echo ${x##*/} outputs nothing. – Flimzy Dec 2 '11 at 7:51
if you are trying to extract file name then /foo/bar/ should return nothing as there is no filename in the path. So logically it is correct. – havexz Dec 2 '11 at 8:13

Maybe use basename $file_path

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i think you are looking for basename

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Probably the easiest way is:

FILENAME=`basename $PATH`

would output 'file'

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You should quote both the input to basename and its output in case either of them have meaningful characters like spaces in them.

file_basename="$(basename "$filename")"
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below awk command does that:

259> which cna_update
262> which cna_update|awk -F"/" '{print $NF}'
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