3

Is it a good practice to override clone method, without implementing Cloneable interface and not calling super.clone(). This way, CloneNotSupportedException exception will not be thrown.

Consider this class :

class Money {

    private BigDecimal x ;

    public Object clone() {
        Money m1 = new Money();
        m1.setX(this.x);
        return m1;
    }

    public BigDecimal getX() {
        return x;
    }

    public void setX(BigDecimal x) {
        this.x = x;
    }

}        

This class, does not throw CloneNotSupportedException and it works just like a copy constructor.

Is this a good way to do it ?

  • It's a good practice to ignore that clone exists and to write your own copy method instead. – Cephalopod Dec 2 '13 at 9:52
2

It's bad practice not to call super.clone(). See this answer for more on how to implement the clone method.

  • By the way: note that BigDecimal objects are immutable, so in your example a shallow copy suffices. – Rinke Dec 2 '13 at 10:17
  • Agreed with "bad practice", but I would like to point out the real problems with this: like subclassing, or adding a field. – Michaela Elschner Sep 16 '16 at 11:50
0

In your case you have a class which has the clone method without telling the outside world that it is actually Cloneable. This is not called cloning but prototyping.

If you want to clone use the interface if not choose some other method name.

Please check the documentation as well:

Creates and returns a copy of this object. The precise meaning of "copy" may depend on the class of the object. The general intent is that, for any object x, the expression: x.clone() != x will be true, and that the expression: x.clone().getClass() == x.getClass() will be true, but these are not absolute requirements. While it is typically the case that: x.clone().equals(x) will be true, this is not an absolute requirement. By convention, the returned object should be obtained by calling super.clone. If a class and all of its superclasses (except Object) obey this convention, it will be the case that x.clone().getClass() == x.getClass().

There is a reason you have to call super.clone().

  • Your quote confirms that OP's implementation does not break the contract. – Marko Topolnik Dec 2 '13 at 9:54
  • By convention, the returned object should be obtained by calling super.clone – Adam Arold Dec 2 '13 at 9:54
  • What happens if someone wants to actually override clone? – Adam Arold Dec 2 '13 at 9:55
  • Do you understand the meaning of the term should? Hint: it is different from must. – Marko Topolnik Dec 2 '13 at 9:55
  • 1
    I don't see any problem in the question. He is asking whether "it is a good way to do it". So my answer would be "if you plan to make your class final, then it's perfectly OK." – Marko Topolnik Dec 2 '13 at 10:03
0

clone is all about the coping/duplicating the type and state of an object. And if we have to identify the type and it make sense to have it associated with the Object class. Java by nature, operates by reference and by principle of shallow copy. If we have to enable deep copy then user has to indicate the runtime special handling is been done in clone(). And that is done by tagging with the Clonable interface.

0

theoretically adding an override of clone is the right way to enforce the prototype pattern, i.e. creating copies of an object at runtime without knowing the type.

Practically its a different story. Clone is the API standard way to do it. When you are writing your own clone method for a standalone class its ok to drop the super.clone call and go ahead. But its a naive practice. Assume that you have a class which follows an inheritance mechanism. Imagine, a Lion which is a Carnivore and thus in turn is an Animal. Now if you drop the super.clone in Lion you could end up recreating a copy of Lion without it being a Carnivore or god forbid even an Animal.

So its best to follow the API standards and keep yourself free of any hickups.

0

You have your cloning logic and of course you know, that your class supports cloning and therefore clone method should not throw CloneNotSupportedException. So calling super.clone() here causes you to write boilerplate try/catch block with rethrowing CloneNotSupportedException wrapped inside AssertionError, which is obviously never thrown. And this marker Cloneable... I think, that this part of Java is misdesigned. So I just ignore documentation and copy fields by hands.

The only two arguments for using super.clone() are performance (I suppose, something like memcpy used internally) and persistence to errors when new fields added.

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