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enum Day{SAT,SUN,MON,TUE,WED,THURS,FRI}

class Plan{
    Day d;

    public plan(Day d)
    {
        this.d=d;
    }

    Day getDay()
    {
        return d;
    }
}

class tester{
    public static void main(String[] args){
        Plan p=new Plan(Day.SAT);

        Day e=p.getDay();

        System.out.println(e.MON);
    }
}

In the main function e is intialized with Day.SAT, but why is e.MON not an error? Does it make sense initializing it?

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Why would it throw an error? It's doing exactly as you're telling it to do. If you want to output the day you initialized you should just System.out.println(e); Your current code wont throw an error but it will throw a warning about static access. (e.MON isn't static access, you would use Day.MON) Also, just as a quick FYI, you should label your classes in camel case: java.about.com/od/javasyntax/a/nameconventions.htm –  Party Pete Sep 18 '12 at 15:40
    
I took the liberty to remove some code that's irrelevant to the question. –  Joachim Sauer Sep 18 '12 at 15:41
    
please read oracle.com/technetwork/java/javase/documentation/… I know it is off topic, but I do this for all people who will have the bad luck to read your code, because to me, it is a pain. –  Jiri Kremser Sep 18 '12 at 15:46
    
Try replacing e with Day e = null; and see what happens ;) –  Peter Lawrey Sep 18 '12 at 16:06
    
@SHTester Please don't use 'throw' in connection with compiler errors. Exceptions are thrown, at runtime. –  EJP Sep 18 '12 at 21:45

2 Answers 2

Enum values are pretty much "only" static final fields. In Java you can access static fields via a reference. You should not do that, however because it's confusing.

In essence these two lines do the same thing (assuming there's a Day e define somewhere above them):

System.out.println(Day.MON); // sane, normal way
System.out.println(e.MON); // supported, but discouraged way.
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e.MON is "like" accessing static member of a class through an instance variable of that class, and so no error will be shown.

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