53

The following code:

((tempVar instanceof ArrayList<Foo>) ? tempVar : null);

causes:

Cannot perform instanceof check against parameterized type ArrayList<Foo>. Use the form ArrayList<?> instead since further generic type information will be erased at runtime

Can someone explain me what is meant by "further generic type information will be erased at runtime" and how to fix this?

56

It means that if you have anything that is parameterized, e.g. List<Foo> fooList = new ArrayList<Foo>();, the Generics information will be erased at runtime. Instead, this is what the JVM will see List fooList = new ArrayList();.

This is called type erasure. The JVM has no parameterized type information of the List (in the example) during runtime.

A fix? Since the JVM has no information of the Parameterized type on runtime, there's no way you can do an instanceof of ArrayList<Foo>. You can "store" the parameterized type explicitly and do a comparison there.

| improve this answer | |
  • 12
    You can "store" the parameterized type explicitly and do a comparison there. Could we see an example of this? – jocull Jun 20 '18 at 20:46
27

You could always do this instead

try
{
    if(obj instanceof ArrayList<?>)
    {
        if(((ArrayList<?>)obj).get(0) instanceof MyObject)
        {
            // do stuff
        }
    }
}
catch(NullPointerException e)
{
    e.printStackTrace();
}
| improve this answer | |
  • 8
    what about if it's empty – Rafael Ruiz Muñoz Oct 16 '15 at 13:08
  • @RafaelRuiz I think a simple try/catch cast to the right type ArrayList<MyObject> would do the trick? – Aquarius Power Dec 28 '15 at 21:22
11

Due to type erasure, the parameterized type of the ArrayList won't be known at runtime. The best you can do with instanceof is to check whether tempVar is an ArrayList (of anything). To do this in a generics-friendly way, use:

((tempVar instanceof ArrayList<?>) ? tempVar : null);
| improve this answer | |
2

instanceof operator works at runtime. But java does not carry the parametrized type info at runtime. They are erased at compile time. Hence the error.

| improve this answer | |
2

This is sufficient:

if(obj instanceof ArrayList<?>)
{
   if(((ArrayList<?>)obj).get(0) instanceof MyObject)
   {
       // do stuff
   }
}

In fact, instanceof checks whether the left operand is null or not and returns false if it is actually null.
So: no need to catch NullPointerException.

| improve this answer | |
  • 5
    Would this not be better suited towards a comment on the original post? – Greg Nov 9 '16 at 20:20
1

You can't fix that. The type information for Generics is not available at runtime and you won't have access to it. You can only check the content of the array.

| improve this answer | |
0

You could always do this

Create a class

public class ListFoo {
  private List<Foo> theList;

  public ListFoo(List<Foo> theList {
    this.theList = theLista;
  }

  public List<Foo> getList() {
    return theList;
  }
}

Is not the same but ...

myList = new ArrayList<Foo>;
.....
Object tempVar = new ListFoo(myList);
....
((tempVar instanceof ListFoo) ? tempVar.getList() : null);
| improve this answer | |
0

You can use

boolean isInstanceArrayList = tempVar.getClass() == ArrayList.class
| improve this answer | |

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