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DeleteNodeInBST450.kt
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DeleteNodeInBST450.kt
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package medium
/**
* Given a root node reference of a BST and a key, delete the node with the given key in the BST. Return the root node reference (possibly updated) of the BST.
Basically, the deletion can be divided into two stages:
Search for a node to remove.
If the node is found, delete the node.
Example 1:
Input: root = [5,3,6,2,4,null,7], key = 3
Output: [5,4,6,2,null,null,7]
Explanation: Given key to delete is 3. So we find the node with value 3 and delete it.
One valid answer is [5,4,6,2,null,null,7], shown in the above BST.
Please notice that another valid answer is [5,2,6,null,4,null,7] and it's also accepted.
Example 2:
Input: root = [5,3,6,2,4,null,7], key = 0
Output: [5,3,6,2,4,null,7]
Explanation: The tree does not contain a node with value = 0.
Example 3:
Input: root = [], key = 0
Output: []
Constraints:
The number of nodes in the tree is in the range [0, 104].
-105 <= Node.val <= 105
Each node has a unique value.
root is a valid binary search tree.
-105 <= key <= 105
*/
fun deleteNode(root: TreeNode?, key: Int): TreeNode? {
if(root==null) return null
if(key < root.`val`)
{
root.left = deleteNode(root.left,key)
return root
}else if( key > root.`val`)
{
root.right = deleteNode(root.right,key)
return root
}else
{
// in case if key equals root value
if(root.left == null && root.right ==null)
return null
if(root.left==null)
return root.right
else if(root.right==null)
return root.left
else
{
var temp = root.right
while (temp?.left!=null)
{
temp = temp.left
}
temp?.left = root.left
return root.right
}
}
}