84

How do I go about echoing only the filename of a file if I iterate a directory with a for loop?

for filename in /home/user/*
do
  echo $filename
done;

will pull the full path with the file name. I just want the file name.

137

If you want a native bash solution

for file in /home/user/*; do
  echo "${file##*/}"
done

The above uses Parameter Expansion which is native to the shell and does not require a call to an external binary such as basename

However, might I suggest just using find

find /home/user -type f -printf "%f\n"
41

Just use basename:

echo `basename "$filename"`

The quotes are needed in case $filename contains e.g. spaces.

  • Thanks. Straightforward. – Mechaflash Jan 25 '12 at 22:22
  • 2
    better to use parameter expansion, requires no calls to external binaries. – SiegeX Jan 25 '12 at 22:22
  • 5
    Btw, `` is deprecated. Better to use $() like Oli did – SiegeX Jan 25 '12 at 22:25
  • Good to know. Thanks. – Sean Bright Jan 25 '12 at 22:28
  • Sorry for commenting on this old answer, but basename won't work correctly for files with space. Example: pwd output: /test 1, basename $(pwd) output: test. Tested on OS X and Ubuntu Server (14.04). Native bash solution, as @SiegeX recommended, is what worked for me. – Marko Grešak Nov 9 '14 at 0:56
14

Use basename:

echo $(basename /foo/bar/stuff)
  • Why do you use echo? basename already prints the results. echo may even mangle the result if you don't quote the subshell. Example: echo $(basename path/with\ \ spaces) incorrectly prints with spaces (only one space). – Socowi Jul 21 at 20:12
5

Another approach is to use ls when reading the file list within a directory so as to give you what you want, i.e. "just the file name/s". As opposed to reading the full file path and then extracting the "file name" component in the body of the for loop.

Example below that follows your original:

for filename in $(ls /home/user/)
do
  echo $filename
done;

If you are running the script in the same directory as the files, then it simply becomes:

for filename in $(ls)
do
  echo $filename
done;
  • 1
    ls includes any dotfiles where * expansion usually does not. Also for f in $(...) ... fails if any filename contains whitespace unless you set IFS, may fail if any filename contains a glob char unless you set -f/-o noglob, and depending on system or shell echo may fail if any filename is hyphen+letter or contains backslash. OTOH just ls -1 /path/to/dir all by itself reliably prints each filename on a line, modulo the dotfiles difference. – dave_thompson_085 May 26 at 2:39

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