5

I was trying to understand the hashCode() for Java's Object and saw the following code for Java Object's hashCode() method:

package java.lang;
public class Object {

 // Some more code

 public native int hashCode();

 // Some other code

}

Now, we know that if we create a class it implicitly extends the Object class, and to do this I wrote a sample example:

package com.example.entity;
public class FirstClass {
    private int id;
    private String name;
    // getters and setters
}

So, this class viz: FirstClass would be extending the Object class implicitly.

Main class:

package com.example.app.main;
import com.example.entity.FirstClass;
    public class MainApp {
        public static void main(String[] args) {
             FirstClass fs = new FirstClass();
             fs.setId(1);
             fs.setName("TEST");
             System.out.println("The hasCode for object fs is " + fs.hashCode());
         }
 }

As FirstClass is extending Object class implicitly, hence it would have Object classes' hashCode() method.

I invoked the hashCode() on FirstClass object , and as I haven't overridden the hashCode(), by theory it should invoke Object class's hashCode().

My doubt is:

As Object class don't have any implementation, how is it able to calculate the hash-code for any object?

In my case, when I run the program the hash-code which it returned was 366712642.

Can anyone help me understand this?

  • 2
    What makes you think that the object class of Java didn't implement hashCode? – Neijwiert Mar 8 '18 at 12:08
  • 3
    It has native modifier, which means it's implemented most likely in C or C++ and those native methods come with JDK. stackoverflow.com/questions/18900736/…. Note that Native and abstract methods are not the same ! – whatamidoingwithmylife Mar 8 '18 at 12:08
  • 1
    @Neijwiert: Yes I don't have full understanding on this, that is why I asked this question. As I see only the method declaration (with no body), I got this doubt how it is able to still get the value. – CuriousMind Mar 8 '18 at 12:30
15

Even though there are some answers here stating that the default implementation is "memory" based, this is plain wrong. This is not the case for a lot of years now.

Under java-8, you can do :

java -XX:+PrintFlagsFinal | grep hashCode

To get the exact algorithm that is used (5 being default).

  0 == Lehmer random number generator, 
  1 == "somehow" based on memory address
  2 ==  always 1
  3 ==  increment counter 
  4 == memory based again ("somehow")
  5 == read below

By default (5), it is using Marsaglia XOR-Shift algorithm, that has nothing to do with memory.

This is not very hard to prove, if you do:

 System.out.println(new Object().hashCode());

multiple times, in a new VM all the time - you will get the same value, so Marsaglia XOR-Shift starts with a seed (always the same, unless some other code does not alter it) and works from that.

But even if you switch to some hashCode that is memory based, and Objects potentially move around (Garbage Collector calls), how do you ensure that the same hashCode is taken after GC has moved this object? Hint: indentityHashCode and Object headers.

| improve this answer | |
  • Thanks for the information. What information this flag shows? I have never seen this option, can you explain a bit? – CuriousMind Mar 8 '18 at 17:44
  • @CuriousMind I don't know what more can I add here... there are 5 options for hashCode as I said in my answer, default being 5. What type of more would you have in ming here? – Eugene Mar 8 '18 at 19:49
  • I was taking about -XX:+PrintFlagsFinal ; your answer is perfect; however i have never heard this option ; it was this information I was asking for. However, I will try to find online. Thanks for taking time and helping. – CuriousMind Mar 8 '18 at 19:55
  • 2
    @CuriousMind oh that one. it just prints all the flags that a JVM has and their default values... – Eugene Mar 8 '18 at 19:57
  • 2
    One never stops learning. Will see what I can do about updating my answer to be more accurate. – GhostCat Mar 8 '18 at 20:01
6

You are getting things wrong:

public native int hashCode();

doesn't mean there is no implementation. It just means that the method is implemented in the native aka C/C++ parts of the JVM. This means you can't find Java source code for that method. But there is still some code somewhere within the JVM that gets invoked whenever you call hashCode() on some Object.

And as the other answer explains: that "default" implementation used the "memory" address of the underlying object. Thing is: using java means, there is no knowledge of "memory addresses". Keep in mind: the JVM is written in C/C++ - and the real memory management happens in these native parts of the JVM.

In other words: you can't write Java code that tells you about the "native memory address" of an object.

But as the other answer by Eugene makes clear: the hash being about "memory location" is a thing of the past.

| improve this answer | |
  • 1
    @CuriousMind I added another paragraph to my answer. Hope that helps. – GhostCat Mar 8 '18 at 12:54
  • 1
    @GhostCat wrong. The default implementation is not memory based. Read this: stackoverflow.com/a/49175508/1059372 – Eugene Mar 8 '18 at 14:28
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    @Eugene there are two aspects here. Since memory addresses of objects can change when the garbage collector moves them, they have to remember their reported hash code somehow, once it has been queried. But then, there is the problem that objects are created within a thread’s TLAB, in other words, the same memory region, before being moved to the survivor space, if still reachable. So using memory based hash codes bears the risk of having very close values (a poor hash distribution). – Holger Mar 8 '18 at 16:23
  • 1
    @Holger right, IIRC there is a flag in objects header for that, if hashCode has been already computed or not and kept in the space for identityHashCode of that header – Eugene Mar 8 '18 at 19:48
  • 4
    @Eugene The spec for Object.hashCode still mentions the object's address, which is misleading. I've filed JDK-8199394 to fix this. – Stuart Marks Mar 9 '18 at 6:06
2

The default implementation of Hashcode in object class is the object's memory address in hexadecimal. The JVM invokes the implementation of this.

Some helpful links are:

https://docs.oracle.com/javase/tutorial/java/IandI/objectclass.html https://docs.oracle.com/javase/7/docs/api/java/lang/Object.html

| improve this answer | |
  • wrong. The default implementation is not memory based – Eugene Mar 8 '18 at 14:28
  • 2
    Besides not being a memory address, the hash code is not “in hexadecimal”. That doesn’t make any sense; the hash code is just an int. The default implementation of toString() produces a hexdecimal representation of the hash code value, but that’s not a property of the hash code itself. – Holger Mar 9 '18 at 7:35
  • thanks for the links! don't know why the comments arguing it's not address based when it's written clearly in the oracle documents – dontloo Oct 10 '19 at 2:40

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