As suggested almost everywhere shall I be using interface all the time, especially when working with collections.

// Using interfaces
List<Integer> list = new LinkedList<Integer>();
((LinkedList) list).offerFirst(num);

//Using concrete class
LinkedList list = new LinkedList<Integer>();
list.offerFirst(num);

In first approach compiler gives warning and even syntax seems cumbersome.

warning: [unchecked] unchecked call to offerFirst(E) as a member of the raw type LinkedList
  • 1
    a) use diamond operator, and b) use some judgment about whether there’s an appropriate interface to use, offerFirst is part of Deque. – Nathan Hughes Oct 10 at 13:36
up vote 6 down vote accepted

If you are using the offerFirst method, perhaps you should be programming to the Deque interface (which represents double ended queue) instead of the List interface:

Deque<Integer> deque = new LinkedList<Integer>();
deque.offerFirst(num);
  • Okay for this case I can use Deque, in case I want to use method which is specific to the implementation then which approach I should take, first or second? – Akshay Naik Oct 10 at 13:38
  • 2
    @AkshayNaik If you are using a method specific to an implementation, and there is no suitable interface containing that method, you should use the implementation type (i.e. the class). It's pointless to program to interface if you are always going to cast it back to the implementation. – Eran Oct 10 at 13:44

This normally is best:

List<Integer> list = new LinkedList<>();
list.add(42);

Deque<Integer> list = new LinkedList<>();
list.offerFirst(num);

While sometimes there is no choice.

LinkedList<Integer> list = new LinkedList<>();
list.add(42);
list.offerFirst(num);

The interface approach gives a more general algorithm with freedom of implementation, reimplementation in the future, a greater applicability.

However that only goes as far generalisation goes.

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