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I was looking over some code the other day and I came across:

static {
    ...
}

Coming from C++, I had no idea why that was there. Its not an error because the code compiled fine. What is this "static" block of code?

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marked as duplicate by Ciro Santilli 六四事件 法轮功 纳米比亚 威视, Grzegorz Żur, Balder, Alex Char, Martin Feb 12 at 13:00

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7 Answers 7

up vote 176 down vote accepted

It's a static initializer. It's executed when the class is loaded (or initialized, to be precise, but you usually don't notice the difference).

It can be thought of as a "class constructor".

Note that there are also instance initializers, which look the same, except that they don't have the static keyword. Those are run in addition to the code in the constructor when a new instance of the object is created.

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3  
So why would you use a non-static instance initializers and not simply make use of the class constructor (I can think of this being useful in anonymous classes)? –  Jori Jul 19 '13 at 9:59
20  
@Jori: a common reason is if you have multiple separate constructors (that don't just "redirect" to a single canonical one) and you want all of those to have some initialization in common. –  Joachim Sauer Jul 19 '13 at 10:10
2  
Makes the code clearer and less repetitive. The folks that make Java specifications sometimes make things more confusing, but almost always there is a underlying reason to why they did it that way. Stream manipulation, anyone? –  Mindwin Aug 28 '13 at 19:31
4  
the order of execution is: static initializer, instance initializer, constructor –  Someone Somewhere Feb 19 '14 at 0:46
    
@SomeoneSomewhere While "instance initializer, constructor" follow each other, the "static initializer" may have been executed long before. But you are right, the order is that, initially. Indeed, it is "SI, II, C, II, C, II, C, ...". –  glglgl Aug 31 '14 at 8:34

It is a static initializer. It's executed when the class is loaded and a good place to put initialization of static variables.

From http://java.sun.com/docs/books/tutorial/java/javaOO/initial.html

A class can have any number of static initialization blocks, and they can appear anywhere in the class body. The runtime system guarantees that static initialization blocks are called in the order that they appear in the source code.

If you have a class with a static look-up map it could look like this

class MyClass {
    static Map<Double, String> labels = new HashMap<Double, String>();
    static {
        labels.put(5.5, "five and a half");
        labels.put(7.1, "seven point 1");
    }
    //...
}

It's useful since the above static field could not have been initialized using labels = .... It needs to call the put-method somehow.

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9  
You could put the new HashMap<Double, String>(); initializer inside the static block, in order to make things less confusing and easier to read. –  Mindwin Mar 11 '13 at 19:56
    
Sure. Slightly less confusing for someone who doesn't know about static initializers, at the cost of one extra line of code. –  aioobe Jul 16 '13 at 19:28
    
@aioobe I understand that it might not be necessary, but one will never learn of static initializers without being exposed to them. Also, in some cases class member initialization in the declaration is disencouraged (some companies I worked for), and initializing them inside static block or in the constructor (for non-static members) was the recommended practice. –  Mindwin Aug 28 '13 at 19:29
    
I see. Why is it discouraged? Personally I find member initialization at the declaration quite easy to read and maintain. I would argue that forcing them into the constructors may a bad idea, especially if you have more than one constructor and need to repeat the initialization. (If you for instance change from ArrayList to LinkedList you need to remember to change it in multiple places.) –  aioobe Aug 28 '13 at 20:18
    
As you said, we need to repeat the initialization code in every constructor. It would be best, if we initialize them in the instance initializers. –  JavaTechnical Oct 31 '13 at 10:15

It's a block of code which is executed when the class gets loaded by a classloader. It is meant to do initialization of static members of the class.

It is also possible to write non-static initializers, which look even stranger:

public class Foo {
    {
        // This code will be executed before every constructor
        // but after the call to super()
    }

    Foo() {

    }
}
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This looks like a normal constructor. –  Der Golem Jun 14 at 15:08
1  
@DerGolem I think he's referring to the braces above the normal constructor. –  saadq Jun 28 at 16:55
    
Didn't even notice that... ;) Yes, weird! –  Der Golem Jun 28 at 16:57

static block executes once in life cycle of any program another property of static block that it executes before main method

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Static blocks are used for initializaing the code and will be executed when JVM loads the class.Refer to the below link which gives the detailed explanation. http://www.jusfortechies.com/java/core-java/static-blocks.php

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Static block can be used to show that a program can run without main function also.

//static block
//static block is used to initlize static data member of the clas at the time of clas loading
//static block is exeuted before the main
class B
{
    static
    {
        System.out.println("Welcome to Java"); 
        System.exit(0); 
    }
}
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this is only true until version 7 where you are obligated to write a main if you want to run the code. –  Filipe Carvalho Dec 4 '14 at 15:02

yes, static block is used for initialize the code and it will load at the time JVM start for execution.

static block is used in previous versions of java but in latest version it doesn't work.

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not when JVM starts but when the class is loaded. JVM uses a class loading mechanism so it loads the class when it is used, not before and never when the JVM starts –  4lberto May 26 at 20:27

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