get the file name from the path

Question

I have a file file.txt having the following structure:-

./a/b/c/sdsd.c
./sdf/sdf/wer/saf/poi.c
./asd/wer/asdf/kljl.c
./wer/asdfo/wer/asf/asdf/hj.c

How can I get only the c file names from the path. i.e., my output will be

sdsd.c
poi.c
kljl.c
hj.c

Answer 1

You can do this simpy with using awk.

set field seperator FS="/" and $NF will print the last field of every record.

awk 'BEGIN{FS="/"} {print $NF}' file.txt

or

awk -F/ '{print $NF}' file.txt

Or, you can do with cut and unix command rev like this

rev file.txt | cut -d '/' -f1 | rev

Answer 2

You can use basename command:

basename /a/b/c/sdsd.c

will give you sdsd.c

For a list of files in file.txt, this will do:

while IFS= read -r line; do basename "$line"; done < file.txt

Answer 3

Using sed:

$ sed 's|.*/||g' file
sdsd.c
poi.c
kljl.c
hj.c

Answer 4

Perl solution :

perl -F/ -ane 'print $F[@F-1]' your_file

also u can use sed :

sed 's/.*[/]//g' your_file

Answer 5

The most simple one ($NF is the last column of current line):

awk -F/ '{print $NF}' file.txt

or using bash & parameter expansion:

while read file; do echo "${file##*/}"; done < file.txt

or bash with basename :

while read file; do basename "$file"; done < file.txt

OUTPUT

sdsd.c
poi.c
kljl.c
hj.c