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How can I verify if the user is root?

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8  
Normally, a question this short is incomplete. In this case, it's just concise. –  T.J. Crowder Nov 11 '10 at 22:31
    
You shouldn't. See my answer. –  R.. Nov 11 '10 at 23:46

2 Answers 2

up vote 37 down vote accepted

Usually it's a mistake to test if the user is root. POSIX does not even require a root user, but leaves it to the implementation to determine how permissions work. Code such as:

if (i_am_root) do_privileged_op(); else print_error();

will really annoy users with advanced privilege models where root is not necessary to perform the necessary privileged operations. I remember back in the early days of cd burning on Linux, I had to hack all over the cdrecord source to remove all the useless checks to see if it was running as root, when it worked just fine with permission to read /dev/sga.

Instead, you should always attempt the privileged operation you need to perform, and check for EPERM or similar if it fails to notify the user that they have insufficient privileges (and perhaps should retry running as root).

The one case where it's useful to check for root is checking if your program was invoked "suid-root". A reasonable test would be:

uid_t uid=getuid(), euid=geteuid();
if (uid<0 || uid!=euid) {
    /* We might have elevated privileges beyond that of the user who invoked
     * the program, due to suid bit. Be very careful about trusting any data! */
} else {
    /* Anything goes. */
}

Note that I allowed for the possibility (far-fetched, but best to be paranoid) that either of the calls to get uid/euid could fail, and that in the failure case we should assume we're suid and a malicious user has somehow caused the syscalls to fail in an attempt to hide that we're suid.

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3  
Agreed, completely. –  caf Nov 11 '10 at 23:50
3  
The Linux Standards Base does require a root user, however. Just for the record. Not that I disagree with the overall premise, of course. :) –  dannysauer Nov 12 '10 at 0:22
2  
LSB has a lot of bugs, like requiring accidentally-left-visible internal glibc functions to be available to applications. :-) –  R.. Nov 12 '10 at 1:07
    
It turns out if any of the get*uid calls fail either your libc is compromised (in which case you've already lost) or your code is not setuid. The system calls are not allowed to fail in kernel, but negative UID is possible on 32 bit systems. –  Joshua Mar 20 '12 at 21:27
    
What could be the purpose of allowing negative uid values? Seems like that's just asking for problems. Fortunately they won't arise unless the admin creates such users... –  R.. Mar 20 '12 at 22:56

getuid or geteuid, depending on what you really mean. In either case, 0 means root.

if(geteuid() != 0)
{
  // Tell user to run app as root, then exit.
}

The point made by R is valid. You should consider trial and error, or another approach that does not explicitly require root.

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1  
What's the difference between getuid and geteuid? –  Mohit Deshpande Nov 11 '10 at 22:40
1  
geteuid returns the effective user id, taking into account calls to seteuid or similar. getuid returns the real user id. –  Matthew Flaschen Nov 11 '10 at 22:44
4  
'e' is for 'effective'; the euid is the one that is actually used for permission checks. Normally the uid and the euid are the same, but if you're in a setuid program, when it starts, getuid will return the uid of the user who invoked the program and geteuid will return the uid of the user that owns the executable. You can set the euid to the uid, and back, with seteuid(). The precise rules are too complicated for a comment. –  Zack Nov 11 '10 at 22:46
    
effective userid can differ from user's actual ID (to be precise be the program's owner's ID) if setuid program is executed - see lst.de/~okir/blackhats/node23.html –  DVK Nov 11 '10 at 22:46
3  
@Zack: Why is it that "too complicated for a comment" comments always remind me of Fermat? ;-) –  R.. Jan 2 '12 at 15:34

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