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import java.util.*;

public class ArrayListDemo{
  public static void main(String[] args) {
    ArrayList<Object> arl=new ArrayList<Object>();
    Integer i1=new Integer(10);
    Integer i2=new Integer(20);
    Integer i3=new Integer(30);
    Integer i4=new Integer(40);

arl.add(i1);
arl.add(i2);
arl.add(s1);
System.out.println("The content of arraylist is: " + arl);
System.out.println("The size of an arraylist is: " + arl.size());

Here is a simple arrayList program. ArrayList extends AbstractList and implements List, Cloneable, Serializable.

Here my question is: Is it not necessary to implement all the methods present in above mentioned interface (List, Cloneable, Serializable) by arrayList class (ArrayListDemo).

share|improve this question
    
In your case, it isn't necessary to implement anything in the ArrayListDemo because it doesn't extend or implement any class or interface at all. But I probably got your question wrong, please clarify it. –  Sergey Tachenov Jan 28 '11 at 8:07
    
It isn't, if you override an abstract sub-class or implementation, you don't need to override all, or even any methods. –  Peter Lawrey Jan 28 '11 at 9:04
    
Otherwise it is necessary. –  EJP Jan 29 '11 at 0:52

6 Answers 6

It is, unless your class extends another class which already supplies those methods, or your class is an abstract class. For example:

interface Foo {
    void bar();
    void baz();
}

class Superclass {
    public void bar() {}
}

class Subclass extends Superclass implements Foo {
    // We need to implement baz, but bar is okay already
    @Override public void baz() {}
}

abstract class AbstractClass implements Foo {
    // No need to do anything... a subclass will need
    // to implement both bar and baz though
}
share|improve this answer

With something like

class C implements Collection {...}

you must implement all methods, did you try? You can use

class C extends AbstractCollection {...}

and get a lot of methods implemented.

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ArraylistDemo is not extending arraylist, it is just using one. As ArrayList allready implements those interfaces, you do not need to do so yourself.

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He is not claiming that. He is saying "ArrayList extends AbstractList" –  aioobe Jan 28 '11 at 8:00
    
it does, but it is not a class he implemented ( download.oracle.com/javase/1.4.2/docs/api/java/util/… ). the last sentence is hard-ish to understand but the fact that "arraylistdemo" is there in brackets i assumed he wants to implement them there. So there is no need to implement those functions in HIS class, because they are allready in arralyist. –  Nanne Jan 28 '11 at 8:02

ArrayList only has to implement the methods which aren't already present in AbstractList. So long as the methods are available, it doesn't matter whether they come from ArrayList itself or one of its superclasses.

It's not clear to me what you mean by "by arrayList class (ArrayListDemo)" though. ArrayListDemo itself doesn't implement the interfaces or extend ArrayList.

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Not at all, because ArrayListDemo does'nt extend or implement any class (Object of course). It only uses ArrayList as a local variable type. And ArrayList is full implemented.

share|improve this answer
    
He is not claiming that. He is saying "ArrayList extends AbstractList" –  aioobe Jan 28 '11 at 8:00

It is, unless your implementation is only partial (abstract class). Then the remaining interface methods have to be implemented by the (concrete) class that extends the abstract class.

Finally, all interface methods need an implementation, otherwise the compiler will complain.

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