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  1. Prepare
  2. Data Structures
  3. Trees
  4. Tree : Top View
  5. Discussions

Tree : Top View

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  • yashdeora98294
     + 0 comments

    Here is Tree: Top View solution in Python, Java, C++ and c programming - https://programmingoneonone.com/hackerrank-tree-top-view-problem-solution.html

  • ilovemylittlecr1
     + 0 comments

    Editorial solution complicates the problem into a whole new dimension. This BFS of mine is more intuitive, efficient and faster. Hope this helps :)

    Output Buffer Logic: - According to the constraint, there are exactly 500 nodes in the tree in the worst case.

    So, I created a raw array where negative "horizontal distance" vlaues will be placed from index 0 to 499 and positive values will be placed from index 499 to 999.

    Then I did simple index mapping arithmetic and get the job done. That's all. 

    //BFS is required 
    void topView(Node * root) {
        int arr[1000]; memset(arr, 0, sizeof(arr)); 
        queue<pair<Node*, int>> q; 
        q.push(make_pair(root, 0)); 
        int neg = 0, pos = 0; 
        
        arr[499] = root->data; 
        
        Node* tmp; int hd; 
        while(!q.empty()) {
            tmp = q.front().first; 
            hd = q.front().second; 
            
            q.pop(); 
            
            if(tmp->left) {
                q.push(make_pair(tmp->left, hd - 1)); 
                if(hd - 1 < neg) {
                    arr[499 + --neg] = tmp->left->data; 
                }
            }
            
            if(tmp->right) {
                q.push(make_pair(tmp->right, hd + 1)); 
                if(hd + 1 > pos) {
                    arr[499 + ++pos] = tmp->right->data;                           
                }
            }
        }
        
        for(int i = 0; i < 1000; ++i) {
            if(arr[i]) cout << arr[i] << ' '; 
        }
    }

  • msshreekar
     + 0 comments

    In Java 15 , I can neither create Node class on my own nor there is anything defined . I guess platform needs to correct it

  • ethan_rama11
     + 1 comment

    Terrible question. Doesn't provide an example for the left side and the logical correct answer is somehow wrong.

  • suxihong07
     + 0 comments

    Python code:

    from collections import deque

    def topView(root):

    #Write your code here

if not root:

    return []

# Dictionary to store the first node at each horizontal distance

top_view_map = {}

# Queue for BFS: (node, horizontal_distance)

queue = deque([(root, 0)])

while queue:

    node, hd = queue.popleft()

    # If this horizontal distance is seen for the first time, record the node

    if hd not in top_view_map:

        top_view_map[hd] = node.info

    # Add left and right children to the queue with updated horizontal distances

    if node.left:

        queue.append((node.left, hd - 1))

    if node.right:

        queue.append((node.right, hd + 1))


for hd in sorted(top_view_map.keys()):
    print(top_view_map[hd], end = " ")