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I have some files in different route like below:

./a/b/c/test.h
./d/e/f/g/h/abc1.c
./i/j/k/l/m/n/o/p/hello.log
...

And I want to get only the file name of each one. That is: I want to get "test.h", "abc1.c", "hello.log".

As the deep of the route is uncertain, so maybe awk can't help my problem. Can anyone help me with this?

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3  
man basename ? – Paul R May 10 '12 at 6:45
    
Yes, Thanks to all! basename is the exact command I want! – zhaojing May 10 '12 at 6:59
up vote 2 down vote accepted

You can use the basename command:

while read line
do
basename $line
done < "myfile"
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I haven't heard the basename command, I will google about it. Thanks! – zhaojing May 10 '12 at 6:46
    
Thanks a lot! That is exactly want I want :-) – zhaojing May 10 '12 at 6:56

basename is often the way to do this, but here is how you could do it in AWK:

filename=./i/j/k/l/m/n/o/p/hello.log
echo "$filename" | awk -F/ '{print $NF}'

another:

awk -v filename="$filename" 'BEGIN {len = split("/", filename, a); print a[len]}'

in pure Bash:

echo ${filename##*/}
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awk -F"/" '{print $NF}' file_name
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