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In OS X I am trying to combine the following two commands into a single command in a bash script, so that find operates once only. The files used by find contain spaces and special characters.

Command 1:

find /path -print0 | tr '\n' '\0' | xargs -0 chmod -N

Command 2:

find /path -print0 | tr '\n' '\0' | xargs -0 xattr -c

Both the above commands work.

I understand from 'Make xargs execute the command once for each line of input' that multiple commands can be executed through xargs with something like

find /path -print0 | xargs -0 -I '{}' sh -c 'command1 {} ; command2 {}'

However, my attempt to combine the commands with

find /path -print0 | tr '\n' '\0' | xargs -0 -I '{}' sh -c 'chmod -N {} ; xattr -c {}'

results in multiple errors for each file and folder in the /path, such as

chmod: Failed to clear ACL on file {}: No such file or directory
xattr: No such file: {}
sh: -c: line 0: syntax error near unexpected token `('

Is anyone able to help? Thank you in advance.

  • If an answer solves your problem, please accept it by clicking the large check mark (✓) next to it. If you found other answers helpful, please up-vote them. Accepting and up-voting answers helps not only those who answered, but future readers too. Please see the relevant help-center article. If your question isn't fully answered yet, please provide feedback. – mklement0 Jan 28 '16 at 5:19
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Try the following:

find /path -exec sh -c 'chmod -N "$@"; xattr -c "$@"' - {} +
  • -exec ... +, passes (typically) all matching paths to the specified command, which is them most efficient approach.

    • Both chmod and xattr support multiple file operands, so this approach is feasible.

    • find properly retains argument boundaries when passing substituting the paths for {}, so it would even handle filenames with embedded newlines correctly.
      Incidentally: I'm unclear on what the purpose of tr '\n', '\0' in your code is, given that you already output \0-separated paths thanks to -print0.

  • Note the - as the first (dummy) argument passed to sh -c, because the first argument will become $0.


As for the problem with your original command:

I can't explain the specific symptoms, but one problem is that you're not quoting the {} instances inside your shell command, which makes them subject to word splitting (breaks file paths with embedded spaces into multiple arguments).

  • Shouldn't it be -exec bash instead of -exec sh, just to be explicit (OP is using bash)? – Sumit Dec 23 '15 at 13:54
  • @Sumit: The OP's original command uses sh, so I stuck with it. In practice, given the specific command, it doesn't make a difference. It wouldn't make a difference even on other platforms, given that the entire command is POSIX-compliant. – mklement0 Dec 23 '15 at 13:57

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