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I need to search for all files that have certain permissions while excluding two directories under /. These directories contain far to much information and the system chokes on them.

I've tried various combinations of -type -path -wholename and -prune and cannot seem to get it to exclude these two directories.

Currently this is what I am attempting.

find . -path './dir1/' -prune -o -path './dir2/' -prune -o -type d -perm -002 ! -perm -1000 > wwlist

Any assistance would be greatly appreciated.

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marked as duplicate by BroSlow, Kevin Panko, Adrian Cox, Justin, esqew Aug 1 '14 at 18:37

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
This question belongs on superuser.com or unix.stackexchange.com. –  ajp15243 Aug 1 '14 at 13:57
    
Meant to add a comment as well as just closing this. But in particular, your syntax would be something like find \( -path './dir1' -o -path './dir2' \) -type d -prune -o -type -d -perm -002 ! -perm -1000 -print > wwlist. Which would get treated logically as find ((-path './dir1' -o -path './dir2)) AND -type d AND -prune) OR (-type -d AND -perm -002 AND (! -perm -1000) AND -print) . Also not positive, but I believe that find won't treat -path './dir1' and -path './dir1/' the same, and I think the first will match the path at that point. –  BroSlow Aug 2 '14 at 4:14

1 Answer 1

You can add conditions that would exclude directories:

find . '!' -path './dir1/*' '!' -path './dir2/*' ...

To be more precise also exclude the directory themselves:

find . '!' -path './dir1' '!' -path './dir2' '!' -path './dir1/*' '!' -path './dir2/*' ...

You can also use regex:

find . -regextype posix-extended -not -regex '[.]/dir(1|2)(/.*)?' ...
  • You can also use -not instead of ! but it's not POSIX compliant.
  • -wholename is synonymous to -path but it's not POSIX compliant.
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