6

I have many file paths in a file that look like so:

/home/rtz11/files/testfiles/547/prob547455_01

I want to use a bash script that will print all the filenames only to the screen. so basically after the last /. I don't want to assume that it would always be the same length because it might not be. Would there be a way to delete everything before the last /? Maybe a sed command? Any help would be greatly appreciated!

  • Do you also want to delete the last /, or only content prior to it? – Charles Duffy Apr 21 '15 at 1:31
12
awk '{print $NF}' FS=/ input-file

The 'print $NF' directs awk to print the last field of each line, and assigning FS=/ makes forward slash the field delimeter. In sed, you could do:

sed 's@.*/@@' input-file

which simply deletes everything up to and including the last /.

26

Using sed for this is vast overkill -- bash has extensive string manipulation built in, and using this built-in support is far more efficient when operating on only a single line.

s=/home/rtz11/files/testfiles/547/prob547455_01
basename="${s##*/}"
echo "$basename"

This will remove everything from the beginning of the string greedily matching */. See the bash-hackers wiki entry for parameter expansion.


If you only want to remove everything prior to the last /, but not including it (a literal reading of your question, but also a generally less useful operation), you might instead want if [[ $s = */* ]]; then echo "/${s##*/}"; else echo "$s"; fi.

  • 1
    Excellent resource. Side note, if you need the Path to a file use ${PATHNAME%/*}. – Ashesh Kumar Singh Feb 6 '16 at 13:25
0

Meandering but simply because I can remember the syntax I use:

cat file | rev | cut -d/ -f1 | rev

Many ways to skin a 'cat'. Ouch.

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