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Hello Programmers/Coders, Today we are going to share solutions to the Programming problems of LeetCode Solutions in C++, Java, & Python. At Each Problem with Successful submission with all Test Cases Passed, you will get a score or marks and LeetCode Coins. And after solving maximum problems, you will be getting stars. This will highlight your profile to the recruiters.
In this post, you will find the solution for the Unique Binary Search Trees II in C++, Java & Python-LeetCode problem. We are providing the correct and tested solutions to coding problems present on LeetCode. If you are not able to solve any problem, then you can take help from our Blog/website.
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- Mathematics/Basic Logical Based Questions
- Arrays
- Strings
- Hash Table
- Dynamic Programming
- Stack & Queue
- Trees & Graphs
- Greedy Algorithms
- Breadth-First Search
- Depth-First Search
- Sorting & Searching
- BST (Binary Search Tree)
- Database
- Linked List
- Recursion, etc.
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Link for the Problem – Unique Binary Search Trees II– LeetCode Problem
Unique Binary Search Trees II– LeetCode Problem
Problem:
Given an integer n
, return all the structurally unique BST’s (binary search trees), which has exactly n
nodes of unique values from 1
to n
. Return the answer in any order.
Example 1:
Input: n = 3 Output: [[1,null,2,null,3],[1,null,3,2],[2,1,3],[3,1,null,null,2],[3,2,null,1]]
Example 2:
Input: n = 1 Output: [[1]]
Constraints:
1 <= n <= 8
Unique Binary Search Trees II– LeetCode Solutions
Unique Binary Search Trees II Solution in C++:
class Solution { public: vector<TreeNode*> generateTrees(int n) { if (n == 0) return {}; return generateTrees(1, n); } private: vector<TreeNode*> generateTrees(int min, int max) { if (min > max) return {nullptr}; vector<TreeNode*> ans; for (int i = min; i <= max; ++i) for (TreeNode* left : generateTrees(min, i - 1)) for (TreeNode* right : generateTrees(i + 1, max)) { ans.push_back(new TreeNode(i)); ans.back()->left = left; ans.back()->right = right; } return ans; } };
Unique Binary Search Trees II Solution in Java:
class Solution { public List<TreeNode> generateTrees(int n) { if (n == 0) return new ArrayList<>(); return generateTrees(1, n); } private List<TreeNode> generateTrees(int min, int max) { if (min > max) return Arrays.asList((TreeNode) null); List<TreeNode> ans = new ArrayList<>(); for (int i = min; i <= max; ++i) for (TreeNode left : generateTrees(min, i - 1)) for (TreeNode right : generateTrees(i + 1, max)) { ans.add(new TreeNode(i)); ans.get(ans.size() - 1).left = left; ans.get(ans.size() - 1).right = right; } return ans; } }
Unique Binary Search Trees II Solution in Python:
class Solution: def generateTrees(self, n: int) -> List[TreeNode]: if n == 0: return [] def generateTrees(mini: int, maxi: int) -> List[Optional[int]]: if mini > maxi: return [None] ans = [] for i in range(mini, maxi + 1): for left in generateTrees(mini, i - 1): for right in generateTrees(i + 1, maxi): ans.append(TreeNode(i)) ans[-1].left = left ans[-1].right = right return ans return generateTrees(1, n)
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