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I am very confused as to what <E> means. I am confused as to what is to be put in place of the E. I have been told that types could be put there such as Integer or Double. But I have also been told that ArrayList or LinkedList could be placed there. If anyone could clarify it would be much appreciated.

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closed as not a real question by Jarrod Roberson, Secator, alfasin, Yan Sklyarenko, Graviton Apr 11 '13 at 7:47

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It's just a placeholder to indicate any type. –  asgs Apr 11 '13 at 2:35
    
@asgs: I'd say that it indicates any specific type. To avoid generating confusion with ? which stands for any unspecified type. On the first you can make assumptions but you can't on the latter. –  Jack Apr 11 '13 at 2:41
    
@Jack, totally agree. –  asgs Apr 11 '13 at 2:42
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5 Answers

up vote 3 down vote accepted

E is a type variable. It's a variable and a place holder for a specific type.

This kind of syntax is used with parametric polymorphism when you want to tell that a specific class is parametrized over a type which is not specified.

This means that you can write code that relies on the fact that E is a specific type with a deegree of specification that is given by some constraints you can add, eg <E extends MySuperType>. And you can use E to refer to the generic type throughout the class definition.

You have been told right: since a variable is nothing more than a placeholder it can contain a concrete type like a Double, but even an ArrayList<Double> or finally also an ArrayList<?>, which is a collection of unspecified type. ? is another special keyword in Java generics.

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Thank you this is perfect. –  user2268305 Apr 11 '13 at 3:13
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<E> is a type argument, used in Java Generics, specifying some type which will be useful later. For example, in a container class, you don't know what will go in it when you first write it, but your implementation cares about what's in it.

Normally, you'll see something like this:

List somelist = new ArrayList<Integer>(); //or some other type

meaning that the ArrayList will hold Integers. Of course, the implementation stays the same regardless of what type you put in in place of Integer, but Java requires you to declare the types of all your referenced objects. (or you could be lazy and just say it's an Object, but that breaks the usefulness of the typing system.)

At other times, you may see

class Queue<T> {
   private LinkedList<T> items = new LinkedList<T>();
   public void enqueue(T item) {
      items.addLast(item);
   }
   public T dequeue() {
      return items.removeFirst();
   }
   public boolean isEmpty() {
      return (items.size() == 0);
   }
}

(taken from Javanotes). The variable T in the class definition captures the type passed in, and T can be used in place of whatever type was passed in. For example, the method dequeue returns some object, but specifically of type T, which is only known after the class is written. In the method enqueue, you want some object to add to your queue, but specifically of the type T, which you don't know until you instantiate an instance of your class.

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Thank you this helped a lot. –  user2268305 Apr 11 '13 at 3:14
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<E> in generics is simply a place holder for the generic type.

This is necessary because you need some kind of a reference in the method or class you are writing in order to make use of the type in the return type etc.

You will many examples if you just take a look at the collection API.

Generally if you have just E you can pass whatever Type as that parameter.

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Yes. Oops... Thanks for pointing it out... –  Thihara Apr 11 '13 at 3:06
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<E> is a type parameter. Just like a variable can hold values, a type parameter holds types. For example, If you want to create a class that contains two values of any type with type safety, you would do:

class Pair<T1, T2> {
    private final T1 first;
    private final T2 second;

    public Pair(final T1 first, final T2 second) {
      this.first = first;
      this.second = second;
    }

    public T1 first() {return first;}

    public T2 second() {return second;}

    public static <A, B> Pair<A, B> of(final A first, final B second) {
        return new Pair<A, B>(first, second);
    }
}

Here we have used type parameters in two places: one for the class to abstract over the field types and one for the static factory method of to abstract over the types of pairs it creates. We can make use of this class like:

public static void main(final String[] args) {
    final Pair<Integer, String> intStringPair = Pair.of(1, "One");
    final int intStringPairFirst = intStringPair.first();
    final String intStringPairSecond = intStringPair.second();

    final Pair<List<String>, Boolean> listBoolPair = Pair.of(
            Arrays.asList("foo", "bar"), true);
    final List<String> listBoolPairFirst = listBoolPair.first();
    final boolean listBoolPairSecond = listBoolPair.second();
}

Here you can see how the types for intStringPairFirst, intStringPairSecond, listBoolPairFirst, listBoolPairSecond are correctly inferred without involving any casts.

This is to get you started. There are more things to it like variance, bounds using extends and super and wildcard (?) for which I suggest you read on a tutorial on generics.

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< E > is a place holder for a "type" that will be passed in. This is the type that a list will hold. For example the implementation on an arrayList. When you want to create a new array list you need to pass in the type of that list.

ArrayList example = new ArrayList ();

if we were to look at the arrayList class it would be something like this

public class ArrayList < E > {...}

basically it is saying we will hold a list of some "type" but that type must be passed in at compile time and will not be known until then

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You may want to rewrite your answer. It's not very clear at the moment, i.e. "The type of that list" - you really mean "the type of object which the list will contain"... –  Simon MᶜKenzie Apr 11 '13 at 2:57
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