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I have a variable which has the directory path along with file name. I want to extract the filename alone from the unix directory path and store it in a variable

fspec="/exp/home1/abc.txt"

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7 Answers 7

up vote 20 down vote accepted

Use the basename command to extract the filename from the path:

[/tmp]$ export fspec=/exp/home1/abc.txt 
[/tmp]$ fname=`basename $fspec`
[/tmp]$ echo $fname
abc.txt
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bash to get file name

fspec="/exp/home1/abc.txt" 
filename="${fspec##*/}"  # get filename
dirname="${fspec%/*}" # get directory/path name

other ways

awk

$ echo $fspec | awk -F"/" '{print $NF}'
abc.txt

sed

$ echo $fspec | sed 's/.*\///'
abc.txt

using IFS

$ IFS="/"
$ set -- $fspec
$ eval echo \${${#@}}
abc.txt
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base=$(basename $fspec)

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bash:

fspec="/exp/home1/abc.txt"
fname="${fspec##*/}"
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echo $fspec | tr "/" "\n"|tail -1
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Using bash "here string":

fspec="/exp/home1/abc.txt"

tr "/" "\n" <<< $fspec | tail -1

filename=`tr "/" "\n" <<< $fspec | tail -1`

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dirname "/usr/home/theconjuring/music/song.mp3" will yield /usr/home/theconjuring/music.

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