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:
Attention reader! Don’t stop learning now. Get hold of all the important DSA concepts with the DSA Self Paced Course at a student-friendly price and become industry ready. To complete your preparation from learning a language to DS Algo and many more, please refer Complete Interview Preparation Course.
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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++
// 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 pangrambool 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 nodesint 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-treevoid dfs(int node, int parent){ for (int to : graph[node]) { if (to == parent) continue; dfs(to, node); weight[node] += weight[to]; }}// Driver codeint 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;} |
Java
// Java implementation of the approachimport java.util.*;class GFG{ @SuppressWarnings("unchecked")static Vector<Integer> []graph = new Vector[100];static String []weight = new String[100];// Function that returns if the// String x is a pangramstatic boolean Pangram(String x){ HashMap<Character, Integer> mp = new HashMap<>(); int n = x.length(); for(int i = 0 ; i < n; i++) { if (mp.containsKey(x.charAt(i))) { mp.put(x.charAt(i), mp.get(x.charAt(i)) + 1); } else { mp.put(x.charAt(i), 1); } } if (mp.size() == 26) return true; else return false;}// Function to return the count of nodes// which make pangram with the// sub-tree nodesstatic 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-treestatic void dfs(int node, int parent){ for(int to : graph[node]) { if (to == parent) continue; dfs(to, node); weight[node] += weight[to]; }}// Driver codepublic static void main(String[] args){ 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"; for(int i = 0; i < graph.length; i++) graph[i] = new Vector<Integer>(); // Edges of the tree graph[1].add(2); graph[2].add(3); graph[2].add(4); graph[1].add(5); graph[5].add(6); dfs(1, 1); System.out.print(countTotalPangram(n));}}// This code is contributed by Amit Katiyar |
Python3
# Python3 implementation of the approachgraph = [[] for i in range(100)]weight = [0] * 100# Function that returns if the# string x is a pangramdef Pangram(x): mp = {} n = len(x) for i in range(n): if x[i] not in mp: mp[x[i]] = 0 mp[x[i]] += 1 if (len(mp)== 26): return True else: return False# Function to return the count of nodes# which make pangram with the# sub-tree nodesdef countTotalPangram(n): cnt = 0 for i in range(1, n + 1): if (Pangram(weight[i])): cnt += 1 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-treedef dfs(node, parent): for to in graph[node]: if (to == parent): continue dfs(to, node) weight[node] += weight[to]# Driver coden = 6# Weights of the nodesweight[1] = "abcde"weight[2] = "fghijkl"weight[3] = "abcdefg"weight[4] = "mnopqr"weight[5] = "stuvwxy"weight[6] = "zabcdef"# Edges of the treegraph[1].append(2)graph[2].append(3)graph[2].append(4)graph[1].append(5)graph[5].append(6)dfs(1, 1)print(countTotalPangram(n))# This code is contributed by SHUBHAMSINGH10 |
C#
// C# implementation of// the above approachusing System;using System.Collections.Generic;class GFG{ static List<int> []graph = new List<int>[100];static String []weight = new String[100];// Function that returns if the// String x is a pangramstatic bool Pangram(String x){ Dictionary<char, int> mp = new Dictionary<char, int>(); int n = x.Length; for(int i = 0 ; i < n; i++) { if (mp.ContainsKey(x[i])) { mp[x[i]] = mp[x[i]] + 1; } else { mp.Add(x[i], 1); } } if (mp.Count == 26) return true; else return false;}// Function to return the// count of nodes which// make pangram with the// sub-tree nodesstatic 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-treestatic void dfs(int node, int parent){ foreach(int to in graph[node]) { if (to == parent) continue; dfs(to, node); weight[node] += weight[to]; }}// Driver codepublic static void Main(String[] args){ 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"; for(int i = 0; i < graph.Length; i++) graph[i] = new List<int>(); // Edges of the tree graph[1].Add(2); graph[2].Add(3); graph[2].Add(4); graph[1].Add(5); graph[5].Add(6); dfs(1, 1); Console.Write(countTotalPangram(n));}}// This code is contributed by shikhasingrajput |
Javascript
<script>// JavaScript implementation of the approachlet graph = new Array();for (let i = 0; i < 100; i++) { graph.push([])}let weight = new Array(100).fill(0);// Function that returns if the// string x is a pangramfunction Pangram(x) { let mp = new Map(); let n = x.length; for (let i = 0; i < n; i++) { if (mp.has(x[i])) { mp.set(x[i], mp.get(x[i]) + 1) } else { mp.set(x[i], 1) } } if (mp.size == 26) return true; else return false;}// Function to return the count of nodes// which make pangram with the// sub-tree nodesfunction countTotalPangram(n) { let cnt = 0; for (let 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-treefunction dfs(node, parent) { for (let to of graph[node]) { if (to == parent) continue; dfs(to, node); weight[node] += weight[to]; }}// Driver codelet n = 6;// Weights of the nodesweight[1] = "abcde";weight[2] = "fghijkl";weight[3] = "abcdefg";weight[4] = "mnopqr";weight[5] = "stuvwxy";weight[6] = "zabcdef";// Edges of the treegraph[1].push(2);graph[2].push(3);graph[2].push(4);graph[1].push(5);graph[5].push(6);dfs(1, 1);document.write(countTotalPangram(n));// This code is contributed by gfgking</script> |
Output:
1
Complexity Analysis:
- Time Complexity: O(N*S).
In dfs, every node of the tree is processed once, and hence the complexity due to the dfs is O(N) if there are total N nodes in the tree. Also, for processing each node the Pangram() function is used for every node which has a complexity of O(S) where S is the sum of the length of all weight strings in a subtree and since this is done for every node, the overall time complexity for this part becomes O(N*S). Therefore, the final time complexity is O(N*S). - Auxiliary Space: O(1).
Any extra space is not required, so the space complexity is constant.
