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I can not initialize a List as in the following code:

List<String> supplierNames = new List<String>();
supplierNames.add("sup1");
supplierNames.add("sup2");
supplierNames.add("sup3");
System.out.println(supplierNames.get(1));

I face the following error:

Cannot instantiate the type List<String>

How can I instantiate List<String>?

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7 Answers 7

up vote 119 down vote accepted

If you check the API for List http://docs.oracle.com/javase/6/docs/api/java/util/List.html you'll notice it says:

Interface List<E>

Being an interface means it cannot be instantiated (no new List() is possible).

If you check that link, you'll find some classes that implement List:

All Known Implementing Classes:

AbstractList, AbstractSequentialList, ArrayList, AttributeList, CopyOnWriteArrayList, LinkedList, RoleList, RoleUnresolvedList, Stack, Vector

Those can be instantiated. Use their links to know more about them, I.E: to know which fits better your needs.

The 3 most comonly ones probably are:

 List<String> supplierNames1 = new ArrayList<String>();
 List<String> supplierNames2 = new LinkedList<String>();
 List<String> supplierNames3 = new Vector<String>();

Bonus: You can also instantiate it with values, in an easier way, using the Arrays class, as follows:

List<String> supplierNames = Arrays.asList("sup1", "sup2", "sup3");
System.out.println(supplierNames.get(1));

But note you are not allowed to add more elements to that list, as it's fixed-size.

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3  
The "bonus" (Arrays.asList()) is nice. Why didn't I know about this sooner? –  ford Mar 20 at 11:26
    
Arrays.asList is great but as you should have noticed by now fails to do what one expects in cases like int[] a = {1,2,3}; System.out.println(Arrays.asList(a)); // [[I@70cdd2] –  Mr_and_Mrs_D Apr 9 at 23:02
    
@Mr_andMrs_D that's exactly what I expect to get in that case. List.toString() (a well as Object.toString()) return the memory address of the list. That's it's defined behaviour. –  J.A.I.L. Apr 10 at 12:54
    
Sweet. The "bonus" is exactly what I came looking to this question to do. –  Gary May 15 at 20:57

List is an INTERFACE, You cannot Initialize an Interface, this is correct:

List<String> supplierNames = new ArrayList<String>(); 
or
List<String> supplierNames = new LinkedList<String>();
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List is an Interface . You cant use List to initialize it.

  List<String> supplierNames = new ArrayList<String>();

These are the some of List impelemented classes,

ArrayList, LinkedList, Vector

You could use any of this as per your requirement. These each classes have its own features.

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List is just an interface, a definition of some generic list. You need to provide an implementation of this list interface. Two most common are:

ArrayList - a list implemented over an array

List<String> supplierNames = new ArrayList<String>();

LinkedList - a list implemented like an interconnected chain of elements

List<String> supplierNames = new LinkedList<String>();
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You will need to use ArrayList<String> or such.

List<String> is an interface.

Use this:

import java.util.ArrayList;

...

List<String> supplierNames = new ArrayList<String>();
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Your import statement will not compile. You need to use fully qualified name. –  Rohit Jain Nov 15 '12 at 10:09
    
Correct, I guess I was too quick on posting :) anyway, fixed –  Ofir Farchy Nov 15 '12 at 10:13
    
Ok. Now its fine. Can you do a little bit changes in your post. I can't remove my downvote untill you change something. It is locked now. –  Rohit Jain Nov 15 '12 at 10:15
1  
changed something :) –  Ofir Farchy Nov 15 '12 at 10:17

List is an interface, and you can not initialize an interface. Instantiate an implementing class instead.

Like:

List<String> abc = new ArrayList<String>();
List<String> xyz = new LinkedList<String>();
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Depending on what kind of List you want to use, something like

List<String> supplierNames = new ArrayList<String>();

should get you going.

List is the interface, ArrayList is one implementation of the List interface. More implementations that may better suit your needs can be found by reading the JavaDocs of the List interface.

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