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I'm new to Java. Where is umask exposed in the api?

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3 Answers 3

You can't fiddle with the umask directly, since Java is an abstraction and the umask is POSIX-implementation specific. But you have the following API:

File f;
f.setExecutable(true);
f.setReadable(false);
f.setWritable(true);

There are some more APIs available, check the docs.

If you must have direct access to the umask, either do it via JNI and the chmod() syscall, or spawn a new process with exec("chmod").

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Hm interesting, thanks. I guess I can use JNI to call umask(2), then? –  eeee Jul 4 '10 at 16:58
    
@eeee sure, but you'd have to deploy your JNI module to all platforms you want to support, as it's almost by definition platform dependent. –  extraneon Jul 4 '10 at 17:04
    
@extraneon yes, of course. To be honest I'm very surprised that no one has made a module for Java exposing all the posix interfaces. I mean, that can't be right -- right? How do people perform system activities in java without this kind of thing? –  eeee Jul 4 '10 at 23:21
    
@eeee New APIs for this are coming in Java 7 (which is not out yet), in the package java.nio.file. –  Jesper Jul 5 '10 at 7:03
    
to be precise: in the package java.nio.file.attribute. –  Jesper Jul 5 '10 at 7:35

java.nio.file.attribute.PosixFileAttributes in Java SE 7.

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I didn't not find any functions there for setting the umask specifically, only file permissions. –  Nakedible Apr 19 '12 at 13:49
    
@Nakedible Yes. –  Tom Hawtin - tackline Apr 19 '12 at 14:14

Another approach is to use a 3rd-party Java library that exposes POSIX system calls; e.g.

The problem with this approach is that it is intrinsically non-portable (won't work on a non-POSIX compliant platform), and requires a platform-specific native library ... and all that that entails.

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