1

How can you print the 6 smallest files in /usr/bin directory for Shell?

ls /usr/bin

I know that this shows all the files that is in that directory but I just don't know to to print out the 6 smallest files.

What would be a one line command for this process on the command line for Shell?

3

Try this:

ls -SrqL /usr/bin | head -6

-S makes it sorted by file size

-r for reverse order

-q to print ? instead of nongraphic characters (line breaks included)

-L when showing file information for a symbolic link, this shows information for the file the link references rather than for the link itself

head Shows the 6 first lines of the previous output

  • 2
    Why not parse ls? – Cyrus Sep 15 '19 at 19:37
  • 1
    @Cyrus you are faster than your own shadow. @user10752715 only mentioned printing. So ls -Sr and even head -6 is quite harmless. – Léa Gris Sep 15 '19 at 19:44
  • 2
    @MadPhysicist: It is not guaranteed that the output contains six file names, because line breaks in file names are allowed. – Cyrus Sep 15 '19 at 19:54
  • 2
    @Carlos Your command includes symbolic links as well. I ran the command and it listed all the first 6 links which are smallest in size however the actual file link is pointing to is bigger. I think we should exclude links. – Pacifist Sep 15 '19 at 20:46
  • 1
    @Carlos: No problem. Bug: In my example, you have to remove the -r from sort to reverse the wrong sorting. – Cyrus Sep 15 '19 at 20:50
2

List the six smallest files in current directory:

find . -maxdepth 1 -type f -printf "%s %f\0" | sort -z -n | head -z -n 6 | cut -z -d ' ' -f 2- | tr '\0' '\n'
  • This only lists files
  • It can handle all special characters in file names, even line breaks.

Not the answer you're looking for? Browse other questions tagged or ask your own question.