Is it possible when listing a directory to view numerical unix permissions such as 644 rather than the symbolic output -rw-rw-r--

Thanks.

up vote 285 down vote accepted

it almost can ..

 ls -l | awk '{k=0;for(i=0;i<=8;i++)k+=((substr($1,i+2,1)~/[rwx]/) \
             *2^(8-i));if(k)printf("%0o ",k);print}'
  • 26
    For creating it as an alias (example below: 'cls' command), use: alias cls="ls -l | awk '{k=0;for(i=0;i<=8;i++)k+=((substr(\$1,i+2,1)~/[rwx]/)*2^(8-i));if(k)printf(\"%0o \",k);print}'" – danger89 Mar 6 '14 at 16:15
  • 6
    I copy and pasted the line from danger89 and found that strangely the output began with %0..o per line, instead of say 755. If anyone else comes across this, the cause appears to be a hidden character between the 0 and o. Once deleted the command is set up nicely. Cheers! – Donna Mar 9 '14 at 17:31
  • I think there is an calculation issue. After chmod 777 dir your command prints permissions as 767 – Julian F. Weinert Apr 24 '14 at 10:55
  • As Donna mentions, there is a funny character (or 2) between the 0 and o, also, weirdly it looks like SO is adding it... – nbsp Nov 17 '14 at 19:49
  • Does anyone have a working alias for this command? awk runtime error involving "%0o " on a debian derivative – cremefraiche Oct 18 '15 at 0:01

Closest I can think of (keeping it simple enough) is stat, assuming you know which files you're looking for. If you don't, * can find most of them:

/usr/bin$ stat -c '%a %n' *
755 [
755 a2p
755 a2ps
755 aclocal
...

It handles sticky, suid and company out of the box:

$ stat -c '%a %n' /tmp /usr/bin/sudo
1777 /tmp
4755 /usr/bin/sudo
  • 15
    This works great under Linux, I found stat -f '%A %N' * does the same thing on a mac (FreeBSD) – reevesy May 29 '14 at 12:07
  • works wonderful in Solaris 11! – Alexandre Alves Nov 21 '14 at 11:07
  • 2
    I guess the argument is that stat is not ls therefore this is not the correct answer. However, I believe this is the correct answer in context of the desired output. If awk is permitted in a pipe, then find should be permitted where stat is called in -exec; then you can use stat directly without * – javafueled Mar 4 '15 at 14:29
  • 2
    This is much better shorter and 100% working on any system – Kangarooo Mar 24 '16 at 23:15
  • If you want to use stat to see the rights recursively, under bash, use stat -c '%a %n' * **/*. – Denis Chevalier Aug 11 '17 at 13:37

you can just use GNU find.

find . -printf "%m:%f\n"
  • This is a command I can actually remember. Helpful and effective. – Trent Oct 28 '15 at 13:55
  • 2
    This should also have -maxdepth 1 option, otherwise it traverses the whole directory tree. – Ruslan May 23 '17 at 13:26

You can use the following command

stat -c "%a %n" *

Also you can use any filename or directoryname instead of * to get a specific result.

On Mac, you can use

stat -f '%A %N' *
  • 1
    Didn't work for me. stat: illegal option -- c usage: stat [-FlLnqrsx] [-f format] [-t timefmt] [file ...] – rschwieb Mar 14 '16 at 19:25
  • 1
    works on ubuntu 14.04.. to never have to remember this I've added an alias in my .bashrc: alias xxx="stat -c '%a %n' *" – faeb187 Apr 29 '16 at 1:52
  • Helpful! How you dig it out the %A which not even shows up in man of stat on Mac? – igonejack Jan 17 at 3:43
  • It actually is a FreeBSD command, and Mac just happens to be built upon that using it as upper kernel. – 9KSoft Jan 17 at 4:44

@The MYYN

wow, nice awk! But what about suid, sgid and sticky bit?

You have to extend your filter with s and t, otherwise they will not count and you get the wrong result. To calculate the octal number for this special flags, the procedure is the same but the index is at 4 7 and 10. the possible flags for files with execute bit set are ---s--s--t amd for files with no execute bit set are ---S--S--T

ls -l | awk '{
    k = 0
    s = 0
    for( i = 0; i <= 8; i++ )
    {
        k += ( ( substr( $1, i+2, 1 ) ~ /[rwxst]/ ) * 2 ^( 8 - i ) )
    }
    j = 4 
    for( i = 4; i <= 10; i += 3 )
    {
        s += ( ( substr( $1, i, 1 ) ~ /[stST]/ ) * j )
        j/=2
    }
    if ( k )
    {
        printf( "%0o%0o ", s, k )
    }
    print
}'  

For test:

touch blah
chmod 7444 blah

will result in:

7444 -r-Sr-Sr-T 1 cheko cheko   0 2009-12-05 01:03 blah

and

touch blah
chmod 7555 blah

will give:

7555 -r-sr-sr-t 1 cheko cheko   0 2009-12-05 01:03 blah
  • 3
    +1 Thanks! I shortened it to a 1-line alias: alias "lsmod=ls -al|awk '{k=0;s=0;for(i=0;i<=8;i++){;k+=((substr(\$1,i+2,1)~/[rwxst]/)*2^(8-i));};j=4;for(i=4;i<=10;i+=3){;s+=((substr(\$1,i,1)~/[stST]/)*j);j/=2;};if(k){;printf(\"%0o%0o \",s,k);};print;}'" – Jeroen Wiert Pluimers Apr 11 '11 at 12:16
  • +1 took the idea further to restore working file permissions : ysgitdiary.blogspot.fi/2013/04/… – Yordan Georgiev Apr 30 '13 at 20:04
  • 5
    Don't use lsmod as an alias.. that's a known posix command for listing kernel mods. – shadowbq Oct 6 '14 at 18:43
  • @JeroenWiertPluimers That is giving me a syntax error from awk – Evan Langlois Nov 9 '15 at 6:32
  • @EvanLanglois so ask a new question. – Jeroen Wiert Pluimers Nov 9 '15 at 20:47

You don't use ls to get a file's permission information. You use the stat command. It will give you the numerical values you want. The "Unix Way" says that you should invent your own script using ls (or 'echo *') and stat and whatever else you like to give the information in the format you desire.

no, it can only print numercial uids/guids.

Building off of the chosen answer and the suggestion to use an alias, I converted it to a function so that passing a directory to list is possible.

# ls, with chmod-like permissions and more.
# @param $1 The directory to ls
function lls {
  LLS_PATH=$1

  ls -AHl $LLS_PATH | awk "{k=0;for(i=0;i<=8;i++)k+=((substr(\$1,i+2,1)~/[rwx]/) \
                            *2^(8-i));if(k)printf(\"%0o \",k);print}"
}

Edit your custom.sh vi /etc/profile.d/custom.sh and enter the following alias.

This displays the unix numerical permission values and the folder's sgid and sticky bit, organized by group directories first and displaying in color.

alias cls="ls -lha --color=always -F --group-directories-first |awk '{k=0;s=0;for(i=0;i<=8;i++){;k+=((substr(\$1,i+2,1)~/[rwxst]/)*2^(8-i));};j=4;for(i=4;i<=10;i+=3){;s+=((substr(\$1,i,1)~/[stST]/)*j);j/=2;};if(k){;printf(\"%0o%0o \",s,k);};print;}'"

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