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Let clazz be some Class and obj be some Object.

Is

clazz.isAssignableFrom(obj.getClass())

always the same as

clazz.isInstance(obj)

?

If not, what are the differences?

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9  
if obj == null, the second returns false, the first does not. ;) –  Peter Lawrey Oct 19 '10 at 19:07
5  
@PeterLawrey, the first will throw a NullPointerException if obj == null. –  ryvantage Jan 9 '14 at 22:40

3 Answers 3

up vote 51 down vote accepted

clazz.isAssignableFrom(Foo.class) will be true whenever the class represented by the clazz object is a superclass or superinterface of Foo.

clazz.isInstance(obj) will be true whenever the object obj is an instance of the class clazz.

That is:

clazz.isAssignableFrom(obj.getClass()) == clazz.isInstance(obj)

is always true.

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1  
this misses the case where the Foo is the same as clazz - in which case it returns true: Pauls top-voted answer below corrects this –  Rhubarb Mar 21 '13 at 14:18
2  
I agree that when clazz is a Foo, then clazz.isAssignableFrom(Foo.class) is true. Where did I say otherwise? –  uckelman Apr 2 '13 at 9:09
3  
@Gili This isn't what uckelman said. Please re-read his answer. –  Puce Mar 3 '14 at 11:03
2  
Byte b = 3; Comparable.class.isAssignableFrom(b.getClass()) == Comparable.class.isInstance(b)); -> it's true also for interfaces. –  Puce Mar 3 '14 at 11:05
1  
@Puce You're totally right. My mistake! –  Gili Mar 4 '14 at 15:32

Both answers are in the ballpark but neither is a complete answer.

MyClass.class.isInstance(obj) is for checking an instance. It returns true when the parameter obj is non-null and can be cast to MyClass without raising a ClassCastException. In other words, obj is an instance of MyClass or its subclasses.

MyClass.class.isAssignableFrom(Other.class) will return true if MyClass is the same as, or a superclass or superinterface of, Other. Other can be a class or an interface. It answers true if Other can be converted to a MyClass.

A little code to demonstrate:

public class NewMain
{
    public static void main(String[] args)
    {
        NewMain nm = new NewMain();
        nm.doit();
    }

    public void doit()
    {
        A myA = new A();
        B myB = new B();
        A[] aArr = new A[0];
        B[] bArr = new B[0];

        System.out.println("b instanceof a: " + (myB instanceof A));
        System.out.println("b isInstance a: " + A.class.isInstance(myB));
        System.out.println("a isInstance b: " + B.class.isInstance(myA));
        System.out.println("b isAssignableFrom a: " + A.class.isAssignableFrom(B.class));
        System.out.println("a isAssignableFrom b: " + B.class.isAssignableFrom(A.class));
        System.out.println("bArr isInstance A: " + A.class.isInstance(bArr));
        System.out.println("bArr isInstance aArr: " + aArr.getClass().isInstance(bArr));
        System.out.println("bArr isAssignableFrom aArr: " + aArr.getClass().isAssignableFrom(bArr.getClass()));
    }

    class A
    {
    }

    class B extends A
    {
    }
}

And the output:

b instanceof a: true
b isInstance a: true
a isInstance b: false
b isAssignableFrom a: true
a isAssignableFrom b: false
bArr isInstance A: false
bArr isInstance aArr: true
bArr isAssignableFrom aArr: true
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1  
The 3rd-to-last and 2nd-to-last lines both say bArr isInstance aArr but the code is different. –  Brad Cupit May 29 '13 at 1:32
2  
Why in your example "b isAssignableFrom a:" but code is A.class.isAssignableFrom(B.class)? I confused by output :) –  Roman Truba Jan 30 '14 at 11:45
    
MyClass.class.isInstance(obj) will also work for interfaces: If this Class object represents an interface, this method returns true if the class or any superclass of the specified Object argument implements this interface. –  Patrick May 3 '14 at 0:07
2  
ummm... in all your examples "instanceOf" returns true iff "isAssignableFrom" returns true... I don't see the difference this way. –  android developer May 5 '14 at 18:46
    
System.out.println("b isAssignableFrom a: " + A.class.isAssignableFrom(B.class)); System.out.println("a isAssignableFrom b: " + B.class.isAssignableFrom(A.class)); should be System.out.println("b isAssignableFrom a: " + B.class.isAssignableFrom(A.class)); System.out.println("a isAssignableFrom b: " + A.class.isAssignableFrom(B.class)); –  unify Aug 31 '14 at 18:38

I think the result for those two should always be the same. The difference is that you need an instance of the class to use isInstance but just the Class object to use isAssignableFrom.

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This isn't 100% true. Comparable.class.isAssignableFrom(Byte.class) == true but Byte.class.isInstance(Comparable.class) == false. In other words, isInstance() is not symmetric for interfaces, only for subclasses. –  Gili Feb 28 '14 at 5:56
    
@Gili: You've got it a bit wrong there. Byte.class.isInstance(Comparable.class) is false because a Class object is not an instance of Byte. The correct comparison to Comparable.class.isAssignableFrom(Byte.class) is Comparable.class.isInstance((byte) 1), which is true. –  ColinD Feb 28 '14 at 17:17
    
I disagree. If you look up the Javadoc of Byte you will discover it extends Number and is a class. (byte) 1 is not equivalent to Byte. The former is a primitive. The latter is a Class. –  Gili Feb 28 '14 at 22:11
    
@Gili: Autoboxing casts primitive byte to Byte because the parameter type of isInstance is Object. –  ColinD Feb 28 '14 at 22:13
1  
Okay. My original point was that the calls are not exactly symmetric to each other, but having re-read your answer you never made this assertion so you're right. –  Gili Mar 2 '14 at 16:28

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