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I'm looking at the output of find . -ls. For example, here is a small excerpt for /lib64 on a CentOS system:

163542   28 -rwxr-xr-x   1 root     root        28448 Aug  4  2010 ./libvolume_id.so.0.66.0
163423    0 lrwxrwxrwx   1 root     root           16 Mar  3  2010 ./libwrap.so.0 -> libwrap.so.0.7.6
163601    0 lrwxrwxrwx   1 root     root           11 Nov  9  2010 ./libc.so.6 -> libc-2.5.so

The find(1) man page says "list current file in ls -dils format on standard output". I then tried to figure it out from ls(1) man page, but I'm stumped on the second column. Any idea?

For reference: the columns (with ref. for the first line) are:

  1. inode 163542
  2. ??? 28 what is this? stat that file doesn't mention any field equals to '28'
  3. permissions -rwxr-xr-x
  4. hard-links 1
  5. owner root
  6. group root
  7. size(bytes) 28448
  8. modified Aug 4 2010
  9. name ./libvolume_id.so.0.66.0
  10. (for logical links: -> softlink)
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closed as off topic by Oded, Paul Sasik, H2CO3, Kev Oct 10 '12 at 23:14

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That second column is the block size that you get from ls -s. See file block size - difference between stat and ls and perhaps also What does size of a directory mean in output of 'ls -l' command? –  Gilles Oct 10 '12 at 23:32
    
@Oded et.al: may I respectfully ask what is wrong with this question? –  Pierre D Oct 12 '12 at 17:40
    
The question was considered off-topic because it isn't clearly programming related. Kev suggested migrating to Unix & Linux; I said not to migrate because I think it would be a duplicate of the question I cited. –  Gilles Oct 12 '12 at 18:25
    
@Gilles: ok, thanks. –  Pierre D Oct 12 '12 at 18:28
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1 Answer 1

Doh, a casual regression against size reveals that it's roughly the number of 1024-byte blocks...

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good to know that –  Desislav Kamenov Oct 10 '12 at 18:51
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