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I understand how umask works, at least a basic level, when dealing with the permissions of an executable file or directory. However, I struggle when it comes to how umask applies its rules to text files.

For example, consider the umask 037. On newly created executables or directories I understand that the permissions would arise from a simple subtraction (777-037 = 740). My question though is then how does the apparent subtraction work for determining the permissions on say a text file who's default permissions would be 666.

To be clear how is the subtraction done (666-037 = 637?) obviously having an executable text file makes no sense, and according to some examples I have carried out I know that that the file permissions in such a case should work out to 640.

How is this subtraction done? How do we arrive at 666-037 = 640?

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It's not subtraction. It's masking: Boolean "AND" using the bitwise complement ("NOT") of the umask. So, think of the umask as the bits that should be removed from the mode.

Create mode  0666 (octal)                         = 110110110 (binary)
Mask          037 (octal) = 000011111 (binary)
(Complement of mask)      = 111100000 (binary)    = 111100000 (binary) &
                                                    ---------
Result       0640                                   110100000

See also http://en.wikipedia.org/wiki/Boolean_algebra#Basic_operations

  • Thank you for both the quick reply with worked out example and literature! – user3277807 Jun 5 '15 at 12:30
  • The only thing I might add is that the umask itself is negated before combining using the "AND" operation. – user3277807 Jul 24 '15 at 18:53
  • Haha. You're totally correct. Apparently I just did that part in my head and didn't even notice. I've updated the answer to reflect that. Thanks. – Gil Hamilton Jul 24 '15 at 19:26

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