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I need a bash script that lists files recursively in a directory in the following way:

filename,size (in kb),numeric value (in filename)

e.g.:

/directory/1/file-100.txt,50,100
/directory/1/file-200.txt,45,200
/directory/2/file-100.txt,20,100
/directory/2/file-500.txt,100,500

Also, I need it to ignore directories that start with ".svn"

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tree might come in handy, but beyond that I'm not sure. – Christian Mann Nov 13 '10 at 0:44
up vote 2 down vote accepted

maybe not the best way but should work:

find /path -type f | grep -v '.svn' | xargs du -k |\
  awk '{print $2","$1}' | sed 's/-\([0-9]*\)\(\..*\)/-\1\2,\1/'
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Give this a try:

find -name ".svn" -prune -o -type f -printf "%p,%k,\n" | sed 's/\([^-]\+-\([0-9]\+\)\..*\)/\1\2/'

Only two utilities used (GNU versions probably required).

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Features:

  • Avoid possible expensive traverse down .svn-dirs.
  • Have find report size instead of 'du'
  • Make awk do some more magic, no need for sed.

Suggestion on solution:

$ find . -path '*/.svn' -prune -o -type f -printf '%p %k\n' |\
  awk -v OFS=, '{ print $1, $2, gensub(/[^0-9]*([0-9]*)/, "\\1", "g", $1) }'

find-options:

  • -path ... Match .svn directories
  • -prune If match (-path) is a directory, don't descend.
  • -o ... Or ...
  • -type f Match files only.
  • -printf ... Print a custom line containing path (%p) and size in 1K-blocks (%k).

awk:

Edit: Updated per Dennis suggestion. Can't believe I missed %k actually, I blame 3AM.

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1  
You could set OFS=,. find can -printf %k so you don't have to do the division in AWK. – Dennis Williamson Nov 13 '10 at 2:43

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