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Is there a reason where static final variable will not be instantiated before the static block?
So in the example I provided will print:

someVar value= null

Instead of:

 someVar value=SomeValue


I saw this behavior today, In my application,
I am trying to reproduce - unsuccessfully - I do see the value of the static member...

class SomeClass{
    static final String someVar ="SomeValue";

    static{
         System.out.println("someVar value=" + someVar );
   }

public static void main(String[] args){     
    new SomeClass();
}

}
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marked as duplicate by Jarrod Roberson, prunge, Makoto May 13 at 3:54

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

1  
i think the order matters. to where if the static block comes first it is executed first. why dont you try it out? –  Logan Murphy May 13 at 3:09
    
when the member is after the method there is a compilation problem: Cannot reference a field before it is defined –  user648026 May 13 at 3:13
    
I believe both static and instance initializer blocks are executed, along with field initializations, in text order. –  chrylis May 13 at 3:17

3 Answers 3

up vote 2 down vote accepted

The order of initialization is given in JSL #12.4.2:

For static initialization:

  • Execute either the class variable initializers and static initializers of the class, or the field initializers of the interface, in textual order, as though they were a single block.

For construction:

  • Evaluate the arguments and process that superclass constructor invocation recursively

  • Execute the instance initializers and instance variable initializers for this class, assigning the values of instance variable initializers to the corresponding instance variables, in the left-to-right order in which they appear textually in the source code for the class.

  • Execute the rest of the body of this constructor.

Note that initializer blocks and variable initializers are considered together, not separately.

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thanks very helpful. –  user648026 May 13 at 3:58

I would to say, it depend on your code sequence. Run following code in your local, it will tell you the answer.

public class SomeClass{
    static final String someVar ="SomeValue";
    static final StaticMember staticMem = new StaticMember(1);

    static{
        System.out.println("someVar value=" + someVar );
    }

    static final StaticMember staticMem2 = new StaticMember(2);

    public static void main(String[] args){     
        new SomeClass();
    }

}

class StaticMember {
    StaticMember(int num) {
        System.out.println("StaticMember constructor " + num);
    }
}
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There is an order the jvm will excecute and instanciate always in this priority:

  1. Static Blocks
  2. Static Members
  3. Instance Blocks
  4. Instance Members
  5. Constructor

If you have inheritance the instanciation order will be a little bit different:

  1. Parent Static Block
  2. Parent Static Members
  3. Child Static Block
  4. Child Static Members
  5. Parent Non-Static Members
  6. Child Non-Static Members
  7. Parent Constructor
  8. Child Constructor

I hope this clarifies a little your issue.

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So if static block is first to instantiate - why for the simple case above, the print statement print its value... –  user648026 May 13 at 3:21
    
In the example above it will print null because the member someVar has not been instanciated yet, the static block will run before someVar is instanciated. –  ocespedes May 13 at 3:24
    
No, I just execute the code - JRE7 - its printing its value... –  user648026 May 13 at 3:25
    
I think I know the reason why, a object "String" will be created at the moment of the compilation called a String pool that is why the object is there before the static block. –  ocespedes May 13 at 3:31
    
Initializer blocks and member initializers are not separated as stated here. See JLS #12.4.2. –  EJP May 13 at 3:32

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