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java.util.Queue<TreeNode> queue = new java.util.LinkedList<TreeNode>();

LinkedList implements Queue. Shouldn't Queue be on the right side of the above statement and LinkedList the left?

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No, Queue is an interface; LinkedList is an implementation. –  trashgod Mar 4 '12 at 5:01
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Why? What do you think new Queue() means? –  SLaks Mar 4 '12 at 5:01
    
Queue is a data structure that allows pushing data to one end and getting data from the other end. There are many ways to implement a structure that displays this kind of behavior: LinkedList is one. –  user880772 Mar 4 '12 at 5:04
    
@trashgod I am a beginner in Java. I know Queue is an interface and LinkedList has implemented it. The class which implements the interface creates object right? So, that's why I thought LinkedList should have been on the other side –  Ava Mar 4 '12 at 5:05
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I may see your confusion. You might be thinking 'when I say "int i;" I'm asking for i to be implemented as an int; so how can the Queue be on the left. That's not quite it though. The left is the type/behavior you need. What you assign to it is what is concrete. So in your case 'queue' needs to look like a Queue; and you are assigning to it (or initializing it with) the concrete type LinkedList. –  Joe Mar 4 '12 at 5:13

2 Answers 2

up vote 1 down vote accepted

In Java, you can assign a value to a variable of the same type or a more general type. In your example, new LinkedList<TreeNode>() is a value. Since LinkedList implements Queue, it's more specific than Queue. i.e. A LinkedList is a Queue.

For instance, all three of these are valid

Object o = new LinkedList<TreeNode>();
Queue<TreeNode> queue = new LinkedList<TreeNode>();
LinkedList<TreeNode> list = new LinkedList<TreeNode>();

But you can't write any of these because they're incorrect assignment.

LinkedList<TreeNode> o = new Object();
LinkedList<TreeNode> queue = new Queue<TreeNode>();

P.S. the second one in that example is also invalid because Queue is an interface, and you can't instantiate (new) an interface because it's not a concrete type

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On you first line, don't you mean a more specific type, not a more general type? You can assign a Dog object (specific) to an Animal variable (general) but not the other way around. –  Hovercraft Full Of Eels Mar 4 '12 at 5:53

The example declares queue to be a reference to an object having the type of Queue<TreeNode>, but the variable must refer to an instance of a concrete implementation of that interface, LinkedList<TreeNode>. By coding to the interface, you agree to use only the methods of Queue. This allows you to change the implementation if required, without changing how queue is used.

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