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As an exercise, I try to implement my own TreeSet. Before coding the add and remove methods, I prefer start by contains which seems more easy but I'm stuck.

My Tree is composed with Node and Leaf :

static class Leaf<E extends Comparable<E>> implements Tree<E> {

                 //stuff
        @Override
        public boolean contains() {
           return false;
        }

}

Here's the Node class :

static class Node<E extends Comparable<E>> implements Tree<E> {

    private final E value;
    private Tree<E> left;
    private Tree<E> right;

   //some stuff
   @Override
   public boolean contains(E elem) {
       //here i'm blocked
   }
}

How can I say to my tree to look into the good part of it (left or right) with the element ?

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2 Answers 2

up vote 2 down vote accepted

Use recursivity !

As you can see the Leaf objects compose the end of the Tree, so it will be the stop condition of the method.

You can see that the objects that will be stocked in the Tree have to implements Comparable. So contains can look like this :

@Override
public boolean contains(E elem) {
    int compare = elem.compareTo(value); //here we compare the element with 
                                         //the compareTo method that the objects 
                                         //used must redefined

    if(compare==0)
            return true; //here the current node contains elem !
        else if(compare < 0)
            return left.contains(elem); //elem is inferior than the elem present in the current node hence we look into the left part of the tree
        else
            return right.contains(elem); //elem is superior than the elem present in the current node hence we look into the right part of the tree
    }

As you can see, if the element isn't present in the Tree, we will be in a Leaf at the end and it will return false.

You can implement the same logic to code add and remove

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How can I say to my tree to look into the good part of it (left or right) with the element ?

Well, you need to compare elem with value using compareTo. If the result is 0, then the values are already equal, and you can return true.

If elem is less than value, then you can recurse into left.contains(elem), otherwise recurse into right.contains(elem). If the left or right value is just a leaf, that will return false, otherwise it will recurse down appropriately.

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