Count the nodes of the tree which make a pangram when concatenated with the sub-tree nodes
Given a tree, and the weights (in the form of strings) of all the nodes, the task is to count the nodes whose weighted string when concatenated with the strings of the sub-tree nodes becomes a pangram.
Pangram: A pangram is a sentence containing every letter of the English Alphabet.
Examples:
Input:
Output: 1
Only the weighted string of sub-tree of node 1 makes the pangram.
Approach: Perform dfs on the tree and update the weight of every node such that it stores its weight concatenated with the weights of the sub-tree nodes. Then, count the nodes whose updated weighted string forms a pangram.
Below is the implementation of the above approach:
// C++ implementation of the approach #include <bits/stdc++.h> using namespace std; vector<int> graph[100]; vector<string> weight(100); // Function that returns if the // string x is a pangram bool Pangram(string x) { map<char, int> mp; int n = x.size(); for (int i = 0; i < n; i++) mp[x[i]]++; if (mp.size() == 26) return true; else return false; } // Function to return the count of nodes // which make pangram with the // sub-tree nodes int countTotalPangram(int n) { int cnt = 0; for (int i = 1; i <= n; i++) if (Pangram(weight[i])) cnt++; return cnt; } // Function to perform dfs and update the nodes // such that weight[i] will store the weight[i] // concatenated with the weights of // all the nodes in the sub-tree void dfs(int node, int parent) { for (int to : graph[node]) { if (to == parent) continue; dfs(to, node); weight[node] += weight[to]; } } // Driver code int main() { int n = 6; // Weights of the nodes weight[1] = "abcde"; weight[2] = "fghijkl"; weight[3] = "abcdefg"; weight[4] = "mnopqr"; weight[5] = "stuvwxy"; weight[6] = "zabcdef"; // Edges of the tree graph[1].push_back(2); graph[2].push_back(3); graph[2].push_back(4); graph[1].push_back(5); graph[5].push_back(6); dfs(1, 1); cout << countTotalPangram(n); return 0; } |
chevron_right
filter_none
Output:
1
Recommended Posts:
- Subtree of all nodes in a tree using DFS
- Number of leaf nodes in the subtree of every node of an n-ary tree
- Convert a Binary Tree such that every node stores the sum of all nodes in its right subtree
- Change a Binary Tree so that every node stores sum of all nodes in left subtree
- Count the nodes in the given tree whose weight is even
- Count the nodes in the given tree whose weight is a power of two
- Determine the count of Leaf nodes in an N-ary tree
- Count the nodes in the given tree whose weight is prime
- Count the nodes of the given tree whose weight has X as a factor
- Count the number of nodes at given level in a tree using BFS.
- Count Non-Leaf nodes in a Binary Tree
- Count the number of nodes at a given level in a tree using DFS
- Count the nodes in the given tree whose sum of digits of weight is odd
- Count the nodes in the given tree whose weight is even parity
- Count nodes with two children at level L in a Binary Tree
If you like GeeksforGeeks and would like to contribute, you can also write an article using contribute.geeksforgeeks.org or mail your article to contribute@geeksforgeeks.org. See your article appearing on the GeeksforGeeks main page and help other Geeks.
Please Improve this article if you find anything incorrect by clicking on the "Improve Article" button below.
