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I'm listing just the file basenames with an ls command like this, which I got from here:

ls --color -1 . | tr '\n' '\0' | xargs -0 -n 1 basename

I would like to list all the directories in the first column, all the executables in the next, all the regular files last (perhaps also with a column for each extension).

So the first (and main) "challenge" is to print multiple columns of different lengths.

Do you have any suggestions what commands I should be using to write that script? Should I switch to find? Or should I just write the script all in Perl?

I want to be able to optionally sort the columns by size too ;-) I'm not necessarily looking for a script to do the above, but perhaps some advice on ways to approach writing such a script.

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ls --sort=extension --group-directories-first may help. –  Mikel Mar 18 '11 at 3:20
    
See also the -x and -C options. –  Mikel Mar 18 '11 at 3:22

1 Answer 1

up vote 4 down vote accepted
#!/bin/bash

width=20

awk -F':' '

/directory/{
  d[i++]=$1
  next
}

/executable/{
  e[j++]=$1
  next
}

{
  f[k++]=$1
}

END{
  a[1]=i;a[2]=j;a[3]=k
  asort(a)
  printf("%-*.*s | \t%-*.*s | \t%-*.*s\n", w,w,"Directories", w,w,"Executables", w,w,"Files")
  print "------------------------------------------------------------------------"
  for (i=0;i<a[3];i++)
    printf("%-*.*s |\t%-*.*s |\t%-*.*s\n", w,w,d[i], w,w,e[i], w,w,f[i])
}' w=$width < <(find . -exec file {} +)

Sample output HERE

This can be further improved upon by calculating what the longest entry is per-column and using that as the width. I'll leave that as an exercise to the reader

share|improve this answer
    
I'm not sure the format string is working correctly, I get the full length of filenames when I try it. But color me impressed. :) –  sarnold Mar 18 '11 at 3:04
    
Gorgeous. Thank you! –  Lex Mar 18 '11 at 3:58

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