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

Thanks.

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5 Answers 5

up vote 98 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}'
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5  
+1 Brilliant. That's very handy. –  RobS Nov 25 '09 at 10:37
    
Fantastic, thanks! –  Jon Winstanley Nov 25 '09 at 14:49
1  
I've aliased this to 'lsn' and its been super helpful. ++ –  brockangelo Sep 19 '13 at 18:08
    
This is great. Thank you. –  rhinoinrepose Mar 5 at 22:14
3  
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(\"%0‌​o \",k);print}'" –  danger89 Mar 6 at 16:15

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
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3  
This works great under Linux, I found stat -f '%A %N' * does the same thing on a mac (FreeBSD) –  reevesy May 29 at 12:07

you can just use GNU find.

find . -printf "%m:%f\n"
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@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
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2  
+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;fo‌​r(i=4;i<=10;i+=3){;s+=((substr(\$1,i,1)~/[stST]/)*j);j/=2;};if(k){;printf(\"%0o%0‌​o \",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/… –  YordanGeorgiev Apr 30 '13 at 20:04
    
Don't use lsmod as an alias.. that's a known posix command for listing kernel mods. –  shadowbq Oct 6 at 18:43

no, it can only print numercial uids/guids.

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