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I have a Java application. Is there anyway I can tell if the process was run with admin privileges, on Windows 7.

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3  
which Operating System? –  thejh Dec 3 '10 at 22:20
    
OS is Windows 7 –  user489041 Dec 3 '10 at 22:22
    
I tested my answer in Linux. It's probably not OS-dependent, but I can't tell. –  Goran Jovic Dec 3 '10 at 22:32

6 Answers 6

up vote 14 down vote accepted

I found this code snippet online, that I think will do the job for you.

public static boolean isAdmin() {
    String groups[] = (new com.sun.security.auth.module.NTSystem()).getGroupIDs();
    for (String group : groups) {
        if (group.equals("S-1-5-32-544"))
            return true;
    }
    return false;
}

It ONLY works on windows, and comes built in to the core Java package. I just tested this code and it does work. It surprised me, but it does.

The SID S-1-5-32-544 is the id of the Administrator group in the Windows operating system.

Here is the link for more details of how it works.

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6  
S-1-5-32-544, of course, LMFAO :D –  Peter Lawrey Dec 3 '10 at 23:27
2  
Good ol' S-1-5-32-544. I should have thought of that. –  Tom Dec 3 '10 at 23:50
1  
... And only with a Sun JVM due to private classes. –  Thorbjørn Ravn Andersen Dec 4 '10 at 1:11
    
Very cool. Did exactly what I needed –  user489041 Dec 6 '10 at 16:16
6  
Note this snippet tests whether the active user is an Administrator, instead of whether the user has launched the application as an elevated process! –  tbacker Sep 5 '13 at 7:39

I've found a different solution that seems to be platform-independent. It tries to write system-preferences. If that fails, the user might not be an admin.

public static boolean isAdmin(){
    Preferences prefs = Preferences.systemRoot();
    try{
        prefs.put("foo", "bar"); // SecurityException on Windows
        prefs.remove("foo");
        prefs.flush(); // BackingStoreException on Linux
        return true;
    }catch(Exception e){
        return false;
    }
}

As Tomáš Zato suggested, you might want to supress error messages caused by this method. You can do this by setting System.err:

public static boolean isAdmin(){
    Preferences prefs = Preferences.systemRoot();
    PrintStream systemErr = System.err;
    synchronized(systemErr){    // better synchroize to avoid problems with other threads that access System.err
        System.setErr(null);
        try{
            prefs.put("foo", "bar"); // SecurityException on Windows
            prefs.remove("foo");
            prefs.flush(); // BackingStoreException on Linux
            return true;
        }catch(Exception e){
            return false;
        }finally{
            System.setErr(systemErr);
        }
    }
}
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Good, but I suggest that you cache the status into private static variable. It's not gonna change within one instance of the program. –  Tomáš Zato May 7 at 11:30
    
@TomášZato You're definetly right that it won't change, but I wanted to make the code-example as short as possible –  MyPasswordIsLasercats May 7 at 11:43
    
One more thing - the function keeps producing output, such as Kvě 07, 2015 1:49:14 ODP. java.util.prefs.WindowsPreferences <init> WARNING: Could not open/create prefs root node Software\JavaSoft\Prefs at root 0x80000002. Windows RegCreateKeyEx(...) returned error code 5. Is it possible to surpress these? –  Tomáš Zato May 7 at 11:51
    
@TomášZato I improved my answer –  MyPasswordIsLasercats May 8 at 8:11
1  
Thanks a lot! :) Unfortunatelly, I can't upvote you a second time. Hopefully, someone else will. –  Tomáš Zato May 8 at 8:36

There is not such a facility available in the Java Runtime Environment, but might be in a platform-dependent native routine. Note that usually the best way to be certain is to actually try to do it, and see if it fails.

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Only by attempting an operation which requires such access (like binding a low-numbered port, or opening a known-to-be-protected file).

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Thanks. That worked for me. I attempted to create a test file in program files and caught IOException (Access is Denied)... new File(System.getenv("programfiles")+"/test.tst").createNewFile() –  Brian O Carroll Apr 14 '14 at 12:52
    
Windows only of course! –  Brian O Carroll Apr 14 '14 at 12:52

Or you could do this:

System.getenv().get("USER")

And see which user started the process.

When I run it as me I get "goran", when I run it with sudo I get "root". Works on Linux. Probably what was needed.

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Hmm, this is interesting, let me try this and see what it does on windows. If it says "admin" this will work. –  user489041 Dec 3 '10 at 22:38
1  
And please, post your results. I'd really like to know if this is OS-independent –  Goran Jovic Dec 3 '10 at 22:41
    
On Windows 7, I get a null if I run this code. However, if I run System.getProperty("user.name"), I get my username. But, this still does not tell if I am admin or not. –  Codemwnci Dec 3 '10 at 22:59
    
Interesting. Try getting all the properties: System.out.println(System.getenv()); Maybe, there is something else. –  Goran Jovic Dec 3 '10 at 23:01
    
Also try: System.out.println(System.getProperties()); –  Goran Jovic Dec 3 '10 at 23:03

The method from the answer marked best worked nicely for me until the point when I had to build the code in Jenkins on a Linux machine. com.sun.security.auth.module.NTSystem() is not available there and using sun packages is generally considered a bad practice: link

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Grab the “rt.jar” from your windows machine. Add it to the class path on your Linux machine. Then have code inside your app that can see if its a windows PC, execute the accepted answer, if its Linux, run the Linux answers from this question. First solution that comes to mind. For me, I just needed to do this on Windows, so I didnt have this problem. Its one of those things where Java kind of sucks at doing. Just a side note, you should add this as a comment. –  user489041 Mar 7 '12 at 16:20
    
Thanks for the hint regarding the rt.jar! I will give it a try. PS:I know, that this should have been a comment, but unfortunately, due to the somewhat weird way stackoverflow gives permissions, with my current reputation I am only allowed to comment on my own answers/questions =) –  Alex Fedulov Mar 7 '12 at 19:10

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