0

I'm trying to use find or grep onto the LS output.

for now, ls -l is printing tons of informations. But I only want the user associated to a filename. And the filename might be greped

  • So, what's the question? And why is find relevant? I am asking because neither of the two is very clear from what you wrote. – Stefano Sanfilippo Jun 22 '15 at 15:04
  • 3
    This sounds like an XY problem. What are you actually trying to accomplish? – Sobrique Jun 22 '15 at 15:11
6

Use find with the -printf flag:

find . -name "a*" -printf "%u %f\n"
find . -name "M*" -printf "%u %f\n"

From man find:

-printf format

%u File's user name, or numeric user ID if the user has no name

%f File's name with any leading directories removed (only the last element).

  • The -printf option is present on linux, but is missing on Mac os. It is ok though, since OP hasn't included any Mac os related notes/tags. – Eugeniu Rosca Jun 22 '15 at 15:42
3

Most systems offer a stat command, which can easily produce whatever information you want about a file (or list of files). Unfortunately, the stat command is not standardized and the set of options vary considerably. For more information, read man 1 stat on your system.

On Linux, with GNU stat, you can use

stat -c%U file...

On BSD (including Mac OS X), you should be able to use

stat -f%Su file ...

(If you wanted the uid instead of the username, you would use -c%u or -f%u, respectively.)

0

I found the answer by myself but my way seems way more tricky. I was using :

tr -s ' ' | cut -d ' ' -f3,9 | grep " $1.*"  

But yours seems good. The thing is that the

find . -name "M*" -printf "%u %f\n"

also shows .git files. The topic is solved I guess, thanks for your consideration !

  • 4
    do not post an answer. Instead, either accept an answer (by clicking on the check mark beside the answer to toggle it from hollow to green) or give some feedback in comments to the answers. You can probably omit the .git files with a similar approach to the one described in How can I get find to ignore .svn directories? – fedorqui Jun 22 '15 at 15:56
-2

Consider adding a perl oneliner like this:

ll | grep user_u | perl -lane 'print "$F[2] $F[8]"'

-lane allow to slice the output using the space as separator, $F[2] and $F[8] are the slices of interest (first slice is $F[0])

  • Whilst I like perl, I'd be suggesting instead - why not use File::Find and more specific. – Sobrique Jun 22 '15 at 15:09
  • I would like that you provide us with a oneliner using this module. My solution can be easily reuse for every formated output. – Gvim-Louu Jun 22 '15 at 15:19
  • You could always use awk instead of perl. Then you don't need to remember what the -lane options do. – Mr. Llama Jun 22 '15 at 15:52
  • 2
    Again, don't parse ls. Plus, suggesting use of alias (ll) is another no-no. AFAIK, aliases don't work in a non-interactive shell (read: shell scripts). Plus, you don't know what aliases would be defined to. I have set alias ll='ls -alF' Someone would have set it to ls -l – anishsane Jun 22 '15 at 16:12

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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