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In Java what pros/cons exist surrounding the choice to use a.getClass() or A.class? Either can be used wherever a Class<?> is expected, but I imagine that there would be performance or other subtle benefits to using both in different circumstances (just like there are with Class.forName() and ClassLoader.loadClass(). Thanks in advance.

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5 Answers

up vote 52 down vote accepted

I wouldn't compare them in terms of pros/cons since they have different purposes and there's seldom a "choice" to make between the two.

  • a.getClass() returns the runtime type of a. I.e., if you have A a = new B(); then a.getClass() will return the B class.

  • A.class evaluates to the A class statically, and is used for other purposes often related to reflection.

In terms of performance, there may be a measurable difference, but I won't say anything about it because in the end it is JVM and/or compiler dependent.

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They are actually different with regards to where you can use them. A.class works at compile time while a.getClass() requires an instance of type A and works at runtime.

There may be a performance difference as well. While A.class can be resolved by the compiler because it knows the actual type of A, a.getClass() is a virtual method call happening at runtime.

For reference, a compiler targeting bytecode typically emits the following instructions for Integer.getClass():

aload_1
invokevirtual   #3; //Method java/lang/Object.getClass:()Ljava/lang/Class;

and the following for Integer.class:

//const #3 = class  #16;    //  java/lang/Integer

ldc_w   #3; //class java/lang/Integer

The former would typically involve a virtual method dispatch and therefore presumably take longer time to execute. That is in the end JVM-dependent however.

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[1] technically the Java Language Specification doesn't mention any constant pool at all... –  aioobe Jun 8 '12 at 11:33
    
@aioobe: I guess you are right, that's why I checked the bytecode generated by Sun JDK. –  Tomasz Nurkiewicz Jun 8 '12 at 11:35
1  
...which technically speaking does not provide an authoritative answer either, since the Java Language Specification doesn't even mention bytecode when it comes to semantics. –  aioobe Jun 8 '12 at 11:37
    
@aioobe: I get your point. I have never mentioned JLS, just empirically checked how it works, as I wasn't sure. The OP asks about performance and examining bytecode seemed like a good idea. Feel free to edit my post or remove ambiguous statements –  Tomasz Nurkiewicz Jun 8 '12 at 12:11
1  
roll back if you don't like it ;-) –  aioobe Jun 8 '12 at 12:24
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have a look at the examples below

a.getClass()!= A.class, i.e. a is not an instance of A but of an anonymous sub class of A

a.getClass() requires an instance of type A

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Class<MyClass> clazz = o.getClass() means that o is an instanciated object of the class MyClass. You can't use MyClass.getClass(), but MyClass.class.

To resume, .getClass() is for instanciated objects whereas .class isn't.

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There is one difference i would like to add. Let us say you have a class a constructor as shown below with a super class which takes a Class object. You want that whenever a subclass object is created the subClass' class object should be passed to the super class. Below code will not compile as you cannot call an instance method in a constructor. In that case if you replace myObject.getClass() with MyClass.class. It will run perfectly.

Class MyClass
{
    private MyClass myObject = new MyClass();
    public MyClass()
    {
        super(myObject.getClass()); //error line compile time error
    }
}
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Having instance of the same class as instance variables of the same class.... You will run out of heap space as you are recursively creating objects. –  Aniket Thakur Aug 20 '13 at 9:27
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