Dismiss
Announcing Stack Overflow Documentation

We started with Q&A. Technical documentation is next, and we need your help.

Whether you're a beginner or an experienced developer, you can contribute.

Sign up and start helping → Learn more about Documentation →

I'm tring to create an arraylist of different class instances. How can I create a list without defining a class type? (<Employee>)

List<Employee> employees = new ArrayList<Employee>();
employees.add(new Employee());
Employee employee = employees.get(0);
share|improve this question

You could create a list of Object like List<Object> list = new ArrayList<Object>(). As all classes implementation extends implicit or explicit from java.lang.Object class, this list can hold any object, including instances of Employee, Integer, String etc.

When you retrieve an element from this list, you will be retrieving an Object and no longer an Employee, meaning you need to perform a explicit cast in this case as follows:

List<Object> list = new ArrayList<Object>();
list.add("String");
list.add(Integer.valueOf(1));
list.add(new Employee());

Object retrievedObject = list.get(2);
Employee employee = (Employee)list.get(2); // explicit cast
share|improve this answer
    
List <Object> example=new ArrayList<>(); example.get(0).myFunction(); AND List <Object> example=new ArrayList<Object>(); example.get(0).myFunction(); I used these codes but ERROR: cannot find symbol symbol: method myFunction(); – mypolat Jun 17 '12 at 18:22
    
it should be List<Object example = new ArrayList<Object>(); when you get the object like example.get(0) you need to make a explicit cast. Which class implements the method myFunction()? If Employee implements myFunction() you should do something like ((Employee)(example.get(0))).myFunction();, with this you are indicating that the object retrieved from position 0 can be handled as an Employee. Of course if it is not an exception will be thrown. – Francisco Spaeth Jun 17 '12 at 18:31
    
class apple{ int price; public void myFunction(int iPrice) { price=iPrice; } } class orange{ int price; public void myFunction(int iPrice) { price=iPrice; } } public class main { public static void main(String[] args) { List <Object> list= new ArrayList<>(); //create 3 apple object to list list.add( new apple() ); list.add( new apple() ); list.add( new orange() ); list.get(0). /* "get(0)." this isn't using apple object and my function */ } } – mypolat Jun 17 '12 at 18:50
    
instead of list.get(0).myFunction(..) try ((apple)(list.get(0))).myFunction(1); – Francisco Spaeth Jun 17 '12 at 19:00
    
check the code I paste here: heypasteit.com/clip/0DGC in order to see if this is what you are trying to do... – Francisco Spaeth Jun 17 '12 at 19:06
List<Object> objects = new ArrayList<Object>();

objects list will accept any of the Object

You could design like as follows

public class BaseEmployee{/* stuffs */}

public class RegularEmployee extends BaseEmployee{/* stuffs */}

public class Contractors extends BaseEmployee{/* stuffs */}

and in list

List<? extends BaseEmployee> employeeList = new ArrayList<? extends BaseEmployee>();
share|improve this answer
    
Use of raw types is discouraged. The Java Language Specification even states that it is possible that future versions of the Java programming language will disallow the use of raw types. Also, the use of extends would prevent adding elements to the list, as the question seems to suggest. – Edwin Dalorzo Jun 17 '12 at 18:14
    
What raw type ? – Jigar Joshi Jun 17 '12 at 18:15
    
List and ArrayList are raw types, aren't they? The JLS section 4.8 says: "The use of raw types is allowed only as a concession to compatibility of legacy code.The use of raw types in code written after the introduction of generics into the Java programming language is strongly discouraged. It is possible that future versions of the Java programming language will disallow the use of raw types" – Edwin Dalorzo Jun 17 '12 at 18:26
    
@Edwin, updated the answer, but I still suggest OP to use ? extends Base pattern for such scenario – Jigar Joshi Jun 17 '12 at 18:31
    
If you use the ? extends Base in a generic type, you are allowed to get things out of the structure, but you are not allowed to put things into it. Your reference to employeeList would never allow to add a new Employee because it is using a wildcard reference. It would, though, to safely read whatever it already contains as a BaseEmployee. There is no way to do what the question suggest using wildcards, IMHO. – Edwin Dalorzo Jun 17 '12 at 18:35

List anyObject = new ArrayList();

or

List<Object> anyObject = new ArrayList<Object>();

now anyObject can hold objects of any type.

use instanceof to know what kind of object it is.

share|improve this answer

I believe your best shot is to declare the list as a list of objects:

List<Object> anything = new ArrayList<Object>();

Then you can put whatever you want in it, like:

anything.add(new Employee(..))

Evidently, you will not be able to read anything out of the list without a proper casting:

Employee mike = (Employee) anything.get(0);

I would discourage the use of raw types like:

List anything = new ArrayList()

Since the whole purpose of generics is precisely to avoid them, in the future Java may no longer suport raw types, the raw types are considered legacy and once you use a raw type you are not allowed to use generics at all in a given reference. For instance, take a look a this another question: Combining Raw Types and Generic Methods

share|improve this answer

How can I create a list without defining a class type? (<Employee>)

If I'm reading this correctly, you just want to avoid having to specify the type, correct?

In Java 7, you can do

List<Employee> list = new ArrayList<>();

but any of the other alternatives being discussed are just going to sacrifice type safety.

share|improve this answer

If you can't be more specific than Object with your instances, then use:

List<Object> employees = new ArrayList<Object>();

Otherwise be as specific as you can:

List<? extends SpecificType> employees = new ArrayList<? extends SpecificType>();
share|improve this answer
    
Going back in time, huh! – Edwin Dalorzo Jun 17 '12 at 17:57

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.