Is there a way to get just the file's owner and group, separated by space in unix shell?

I'm trying to write a script to find the owner of all the files in a directory and print it (in a specific format, can't use ls -la).

closed as off topic by bmargulies, Tejs, svick, Lily Ballard, Justin Ethier Sep 8 '11 at 0:14

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up vote 18 down vote accepted
ls -l | awk '{print $3, $4 }'

That'll do it

  • What is -tr here for? – sanmai Sep 7 '11 at 9:44
  • You can add |sort |uniq if you only want the distinct users/groups rather than a long list with duplicate – CPJ Sep 7 '11 at 9:44
  • the tr was just my fingers twitching out of habit - it orders them by time, reversed – CPJ Sep 7 '11 at 9:45
  • What does: -l mean. What does awk mean, etc. etc. – bart Feb 4 '17 at 6:03

Use the stat command, if available on your version of UNIX:

    $ stat -c "%U %G" /etc/passwd
    root root

or, to do this operation for all files in a directory and print the name of each file too:

    $ stat -c "%n %U %G" *

Try also the stat command:

stat -c %U file

GNU find has the -printf option which will do this for you:

# if you want just the files in the directory, no recursion
find "$dir" -maxdepth 1 -type f -printf "%u %g\n"

# if you want all the files from here down 
find "$dir" -type f -printf "%u %g\n"

# if you need the filename as well for disambiguation, stick a %f in there
find "$dir" -maxdepth 1 -type f -printf "%u %g %f\n"

Other systems might have this as gfind.

ls -l | cut -f3,4 -d" " | tail -n +2

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