501. Find Mode in Binary Search Tree
Problem Description
The problem is about finding the most frequently occurring elements in a Binary Search Tree (BST). The challenge is that a BST may contain duplicates and the goal is to identify the mode(s), which are the values that appear most frequently. As a reminder, a BST has the property where each node’s left child has a value less than or equal to its own value, while the right child has a value greater than or equal to its own value. This property must hold true for every node’s left and right subtrees as well.
The output should be a list of the modes. If there's more than one mode, they can be returned in any order. What makes this interesting is that we must traverse the tree and keep track of the frequency of each element without knowing beforehand which values appear in the BST.
Flowchart Walkthrough
Let's analyze the problem from LeetCode 501, Find Mode in Binary Search Tree, using the provided algorithm flowchart. Here's the step-by-step process:
-
Is it a graph?
- Yes: A Binary Search Tree is a special kind of graph where each node has at most two children.
-
Is it a tree?
- Yes: By definition, a Binary Search Tree is a tree.
-
Perform Depth-First Search (DFS)
- The next appropriate action stated in the flowchart is to utilize Depth-First Search (DFS) since we've identified the structure as a tree.
-
Use DFS to find the mode
- DFS can efficiently traverse each node of the tree to check their values and calculate their frequencies. Given that the mode is the value that appears most frequently, DFS allows for a comprehensive and linear check without extra space if done in an in-order manner which adheres nicely to the BST properties.
Conclusion: Based on the process and nature of the problem, DFS is ideally suited for efficiently traversing the tree and keeping track of value frequencies to determine the mode in the BST.
Intuition
To solve this problem, one effective approach is to perform an in-order traversal of the BST. An in-order traversal is a type of depth-first traversal that visits the left subtree, then the root node, and finally the right subtree. This traversal order guarantees that the values are accessed in a sorted manner because of the BST property.
As we perform the traversal, we can track the current value, its count, and compare it with the maximum frequency (or mode) encountered so far. There are a few edge cases to consider:
- If the current value is the same as the previous value we saw, we increment the count for this value.
- If it's a new value (not the same as the previous one), we reset the count to 1.
- If the count for the current value is greater than the current maximum frequency, we update the maximum frequency and reset the list of modes to now only include this new value.
- If the count matches the current maximum frequency, we add the current value to the list of modes.
A nonlocal variable is used to maintain state between recursive calls. Variables like mx
(short for 'maximum'), prev
(short for 'previous value'), ans
(short for 'answer'), and cnt
(short for 'count') are updated as the in-order traversal proceeds. After the traversal is complete, the ans
list will contain the mode(s) of the BST.
This approach efficiently computes the mode(s) using the BST's inherent properties, all without needing additional data structures to track frequency of all elements, thus saving space.
Learn more about Tree, Depth-First Search, Binary Search Tree and Binary Tree patterns.
Solution Approach
The solution uses a Depth-First Search (DFS) in-order traversal algorithm to walk through the tree. Since it's a BST, an in-order traversal will access the nodes in ascending order. This property is critical because it allows us to track the mode(s) without the need for additional data structures like a hash table to count the frequencies of each value.
In the Python solution, a nested function dfs
is defined, capturing the variables mx
, prev
, ans
, and cnt
from the enclosing findMode
function scope using the nonlocal
keyword. These captured variables serve as state throughout the traversal:
mx
: This keeps track of the maximum frequency of any value encountered so far.prev
: This holds the previous value processed in the in-order traversal. It's used to compare with the current node's value to determine if the count should be increased or reset.cnt
: This records the current count of consecutive nodes with the same value.ans
: This list stores the mode(s) — the values with the highest frequency seen so far.
Here is a step-by-step explanation of the function dfs
which is called with the root
of the BST:
- The base case checks if the current node
root
isNone
, and if it is, the function returns because there's nothing to process. - Recursive calls are made to visit the left subtree:
dfs(root.left)
. - When control returns from the left subtree, the current node is processed. If
prev
is the same asroot.val
,cnt
is incremented. Otherwise,cnt
is set to 1 since we're seeing this value for the first time. - We then check if
cnt
is greater thanmx
. If it is, this is the new maximum frequency, and somx
is updated tocnt
, andans
is set to a list containing justroot.val
. - If
cnt
equalsmx
, we appendroot.val
toans
because it's a mode with the same frequency as the current maximum. prev
is updated to the current node's value:prev = root.val
.- Recursive calls are made to visit the right subtree:
dfs(root.right)
.
After the dfs
function has completed the in-order traversal, the ans
list will have the mode(s). The Solution class's findMode
function then returns ans
. The result is that all modes in the BST are found in a single pass through the tree, which is an efficient use of time and space.
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Start EvaluatorExample Walkthrough
Let's illustrate the solution with a small example. Suppose our BST looks like this:
2 / \ 1 2
The BST contains duplicates, and we want to find the mode. In this case, the mode is 2
, since it occurs more frequently than any other number.
Now, let's walk through how the solution processes this BST:
- We start with an in-order traversal of the BST, visiting the left child first, then the current node, and finally the right child.
- Begin the traversal. The
dfs
function runs:- The
dfs
function visits the leftmost node which is1
. - Since this is our first visit, we compare
prev
androot.val
. They are different (prev
isNone
at the start, androot.val
is1
), so we setcnt
to1
. - As this is the first value we've seen,
mx
is also set to1
, andans
is updated to[1]
becausecnt
equalsmx
at this point. - We update
prev
to1
now that we have processed this node.
- The
- Up next, we backtrack and visit the root node which has a value
2
. Now,prev
is1
:prev
(1) does not matchroot.val
(2), so we setcnt
to1
.- Currently,
cnt
does not exceedmx
, soans
remains the same. - We update
prev
to2
.
- Finally, we visit the right child which also has a value of
2
:- This time,
prev
matchesroot.val
, so we incrementcnt
to2
. - Now
cnt
(2) is greater thanmx
(1), so we have a new mode. Therefore, we updatemx
to2
, and resetans
to[2]
, the new mode.
- This time,
- The traversal is now complete, and since there are no more nodes to visit,
ans
contains the mode(s).
In this example, the output is [2]
, which is the correct mode of the given BST.
This walkthrough demonstrates the effectiveness of the algorithm as it leverages the BST property to perform an in-order traversal and identify the most frequently occurring element with the need for any additional data structures for frequency counting, making it space efficient.
Solution Implementation
1# Definition for a binary tree node.
2class TreeNode:
3 def __init__(self, val=0, left=None, right=None):
4 self.val = val
5 self.left = left
6 self.right = right
7
8class Solution:
9 def findMode(self, root: TreeNode) -> List[int]:
10 # Helper function to perform in-order traversal
11 def in_order_traversal(node):
12 if node is None:
13 return
14 nonlocal max_count, previous_value, modes, current_count
15 # Traverse the left subtree
16 in_order_traversal(node.left)
17
18 # Update the count for the current value
19 # If the current value matches the previous value, increment the count;
20 # Otherwise, reset the count to 1 for the new value
21 current_count = current_count + 1 if previous_value == node.val else 1
22
23 # If the current count exceeds the max_count found so far,
24 # update max_count and reset modes with the current value
25 if current_count > max_count:
26 modes = [node.val]
27 max_count = current_count
28 # If the current count matches the max_count,
29 # add the current value to the list of modes
30 elif current_count == max_count:
31 modes.append(node.val)
32
33 # Update the previous_value to the current node's value
34 previous_value = node.val
35
36 # Traverse the right subtree
37 in_order_traversal(node.right)
38
39 # Initialize variables
40 previous_value = None # Stores the previously seen value
41 max_count = current_count = 0 # max_count is the maximum frequency of any value,
42 # current_count is the frequency of the current node value
43 modes = [] # Stores the modes
44
45 # Perform the in-order traversal starting from the root
46 in_order_traversal(root)
47
48 # Return the list of modes
49 return modes
50
1import java.util.ArrayList;
2import java.util.Arrays;
3import java.util.List;
4
5// Definition for a binary tree node.
6class TreeNode {
7 int val;
8 TreeNode left;
9 TreeNode right;
10 TreeNode() {}
11 TreeNode(int val) { this.val = val; }
12 TreeNode(int val, TreeNode left, TreeNode right) {
13 this.val = val;
14 this.left = left;
15 this.right = right;
16 }
17}
18
19class Solution {
20 private int maxFrequency;
21 private int currentCount;
22 private TreeNode previousNode;
23 private List<Integer> modes;
24
25 // Finds the mode(s) in a binary search tree.
26 public int[] findMode(TreeNode root) {
27 modes = new ArrayList<>();
28 inorderTraversal(root);
29 int[] result = new int[modes.size()];
30 for (int i = 0; i < modes.size(); ++i) {
31 result[i] = modes.get(i);
32 }
33 return result;
34 }
35
36 // Helper function to perform inorder traversal of the binary tree.
37 private void inorderTraversal(TreeNode node) {
38 if (node == null) {
39 return;
40 }
41
42 // Traverse the left subtree
43 inorderTraversal(node.left);
44
45 // Update the current count of the current value
46 // If it's the same as the previous node's value, increment the count; otherwise, reset it to 1
47 currentCount = (previousNode != null && previousNode.val == node.val) ? currentCount + 1 : 1;
48
49 // If current count is greater than max frequency, update max frequency and reset modes list
50 if (currentCount > maxFrequency) {
51 maxFrequency = currentCount;
52 modes = new ArrayList<>(Arrays.asList(node.val));
53 }
54 // If current count is equal to max frequency, add the current value to modes list
55 else if (currentCount == maxFrequency) {
56 modes.add(node.val);
57 }
58
59 // Update previousNode to the current node before traversing right subtree
60 previousNode = node;
61
62 // Traverse the right subtree
63 inorderTraversal(node.right);
64 }
65}
66
1/**
2 * Definition for a binary tree node.
3 */
4struct TreeNode {
5 int val;
6 TreeNode *left;
7 TreeNode *right;
8 TreeNode() : val(0), left(nullptr), right(nullptr) {}
9 TreeNode(int x) : val(x), left(nullptr), right(nullptr) {}
10 TreeNode(int x, TreeNode *left, TreeNode *right) : val(x), left(left), right(right) {}
11};
12
13class Solution {
14public:
15 TreeNode* previous;
16 int maxFrequency, currentCount;
17 vector<int> modes;
18
19 /**
20 * Finds the mode(s) in a binary search tree (BST), which are the values with the highest frequency of occurrence.
21 *
22 * @param root The root node of the BST.
23 * @return A vector containing the mode(s) of the BST.
24 */
25 vector<int> findMode(TreeNode* root) {
26 previous = nullptr;
27 maxFrequency = 0;
28 currentCount = 0;
29 modes.clear();
30
31 inOrderTraversal(root);
32
33 return modes;
34 }
35
36 /**
37 * In-order depth-first search (DFS) traversal of the BST to find the mode(s).
38 *
39 * @param node The current node being visited.
40 */
41 void inOrderTraversal(TreeNode* node) {
42 if (!node) return; // Base case: if the current node is null, do nothing.
43
44 // Traverse the left subtree.
45 inOrderTraversal(node->left);
46
47 // Process the current node.
48 if (previous != nullptr && previous->val == node->val) {
49 // If the value of the current node is the same as the previous node's value, increment the count.
50 currentCount++;
51 } else {
52 // Otherwise, reset the count to 1.
53 currentCount = 1;
54 }
55
56 if (currentCount > maxFrequency) {
57 // If the current count exceeds the max frequency found so far,
58 // clear the current modes and add the new mode.
59 modes.clear();
60 modes.push_back(node->val);
61 maxFrequency = currentCount;
62 } else if (currentCount == maxFrequency) {
63 // If the current count equals the max frequency, add this node's value to the modes.
64 modes.push_back(node->val);
65 }
66
67 // Update the previous node to the current one.
68 previous = node;
69
70 // Traverse the right subtree.
71 inOrderTraversal(node->right);
72 }
73};
74
1/**
2 * Definition for a binary tree node.
3 */
4class TreeNode {
5 val: number;
6 left: TreeNode | null;
7 right: TreeNode | null;
8
9 constructor(val: number, left?: TreeNode, right?: TreeNode) {
10 this.val = val === undefined ? 0 : val;
11 this.left = left === undefined ? null : left;
12 this.right = right === undefined ? null : right;
13 }
14}
15
16let previous: TreeNode | null = null;
17let maxFrequency: number = 0;
18let currentCount: number = 0;
19let modes: number[] = [];
20
21/**
22 * Finds the modes in a binary search tree (BST), which are the values with the highest frequency of occurrence.
23 * @param root The root node of the BST.
24 * @returns An array containing the modes of the BST.
25 */
26function findMode(root: TreeNode | null): number[] {
27 previous = null;
28 maxFrequency = 0;
29 currentCount = 0;
30 modes = [];
31
32 inOrderTraversal(root);
33
34 return modes;
35}
36
37/**
38 * Performs an in-order traversal of the BST to find the modes.
39 * @param node The current node in the traversal.
40 */
41function inOrderTraversal(node: TreeNode | null): void {
42 if (!node) return; // Base case: If the current node is null, return.
43
44 // Traverse the left subtree.
45 inOrderTraversal(node.left);
46
47 // Process the current node.
48 if (previous && node.val === previous.val) {
49 // If the current node value is the same as the previous node's value, increment the count.
50 currentCount++;
51 } else {
52 // Otherwise, reset the count to 1.
53 currentCount = 1;
54 }
55
56 if (currentCount > maxFrequency) {
57 // If the current count is greater than the max frequency found so far,
58 // clear the modes array and add the new mode.
59 modes = [node.val];
60 maxFrequency = currentCount;
61 } else if (currentCount === maxFrequency) {
62 // If the current count is equal to the max frequency, add this node's value to the modes.
63 modes.push(node.val);
64 }
65
66 // Update the previous node to the current node for the next iteration.
67 previous = node;
68
69 // Traverse the right subtree.
70 inOrderTraversal(node.right);
71}
72
Time and Space Complexity
The time complexity of the provided code is O(N)
, where N
is the number of nodes in the binary tree. This is because the in-order traversal performed by the dfs
function visits each node exactly once.
The space complexity of the code is O(H)
, where H
is the height of the binary tree, due to the call stack during the recursive traversals. In the worst-case scenario of a skewed tree, the height H
can be N
, leading to a space complexity of O(N)
. Additionally, the space required to store the modes in ans
does not exceed O(N)
(in the case where all elements are the same and hence the mode list contains all elements), but it does not affect the worst-case space complexity which is dominated by the recursive stack.
Learn more about how to find time and space complexity quickly using problem constraints.
You are given an array of intervals where intervals[i] = [start_i, end_i]
represent the start and end of the ith
interval. You need to merge all overlapping intervals and return an array of the non-overlapping intervals that cover all the intervals in the input.
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