Second most repeated word in a sequence
Given a sequence of strings, the task is to find out the second most repeated (or frequent) string in the given sequence.(Considering no two words are the second most repeated, there will be always a single word).
Examples:
Input : {"aaa", "bbb", "ccc", "bbb",
"aaa", "aaa"}
Output : bbb
Input : {"geeks", "for", "geeks", "for",
"geeks", "aaa"}
Output : for
Asked in : Amazon
BRUTE FORCE METHOD:
Implementation:
C++
#include <bits/stdc++.h>using namespace std;string secFrequent(string arr[], int N){ unordered_map<string, int> um; // Counting frequency of each element for (int i = 0; i < N; i++) { if (um.find(arr[i]) != um.end()) { um[arr[i]]++; } else { um[arr[i]] = 1; } } int max = INT_MIN; vector<int> a; // Finding second maximum frequency for (auto j : um) { if (j.second > max) { max = j.second; } } for (auto j : um) { if (j.second != max) { a.push_back(j.second); } } sort(a.begin(), a.end()); // Returning second most frequent element for (auto x : um) { if (x.second == a[a.size() - 1]) { return x.first; } } return "-1";}int main(){ string arr[] = { "ccc", "aaa", "ccc", "ddd", "aaa", "aaa" }; int N = sizeof(arr) / sizeof(arr[0]); string ans = secFrequent(arr, N); cout << ans << endl; return 0;} |
Java
// Java program to find out the second// most repeated wordimport java.io.*;import java.util.*;class GFG { public static String secFrequent(String arr[], int N) { // your code here HashMap<String, Integer> hm = new HashMap<>(); for (int i = 0; i < N; i++) { if (hm.containsKey(arr[i])) { hm.put(arr[i], hm.get(arr[i]) + 1); } else { hm.put(arr[i], 1); } } int max = Collections.max(hm.values()); ArrayList<Integer> a = new ArrayList<>(); for (Map.Entry<String, Integer> j : hm.entrySet()) { if (j.getValue() != max) { a.add(j.getValue()); } } Collections.sort(a); for (Map.Entry<String, Integer> x : hm.entrySet()) { if (x.getValue() == a.get(a.size() - 1)) { return x.getKey(); } } return "-1"; } public static void main(String[] args) { String arr[] = { "ccc", "aaa", "ccc", "ddd", "aaa", "aaa" }; int N = arr.length; String ans = secFrequent(arr, N); System.out.println(ans); }}//This code is contributed by Raunak Singh |
Python3
from collections import Counterdef secFrequent(arr): # Counting frequency of each element freq = Counter(arr) max_freq = max(freq.values()) a = [x for x in freq.values() if x != max_freq] a.sort() # Returning second most frequent element for x in freq: if freq[x] == a[-1]: return x return "-1"arr = ["ccc", "aaa", "ccc", "ddd", "aaa", "aaa"]ans = secFrequent(arr)print(ans) |
Output
ccc
- Time Complexity: O(NLog(N)).
- Space Complexity: O(N).
Implementation:
C++
// C++ program to find out the second// most repeated word#include <bits/stdc++.h>using namespace std;// Function to find the wordstring secMostRepeated(vector<string> seq){ // Store all the words with its occurrence unordered_map<string, int> occ; for (int i = 0; i < seq.size(); i++) occ[seq[i]]++; // find the second largest occurrence int first_max = INT_MIN, sec_max = INT_MIN; for (auto it = occ.begin(); it != occ.end(); it++) { if (it->second > first_max) { sec_max = first_max; first_max = it->second; } else if (it->second > sec_max && it->second != first_max) sec_max = it->second; } // Return string with occurrence equals // to sec_max for (auto it = occ.begin(); it != occ.end(); it++) if (it->second == sec_max) return it->first;}// Driver programint main(){ vector<string> seq = { "ccc", "aaa", "ccc", "ddd", "aaa", "aaa" }; cout << secMostRepeated(seq); return 0;} |
Java
// Java program to find out the second// most repeated wordimport java.util.*;class GFG { // Method to find the word static String secMostRepeated(Vector<String> seq) { // Store all the words with its occurrence HashMap<String, Integer> occ = new HashMap<String,Integer>(seq.size()){ @Override public Integer get(Object key) { return containsKey(key) ? super.get(key) : 0; } }; for (int i = 0; i < seq.size(); i++) occ.put(seq.get(i), occ.get(seq.get(i))+1); // find the second largest occurrence int first_max = Integer.MIN_VALUE, sec_max = Integer.MIN_VALUE; Iterator<Map.Entry<String, Integer>> itr = occ.entrySet().iterator(); while (itr.hasNext()) { Map.Entry<String, Integer> entry = itr.next(); int v = entry.getValue(); if( v > first_max) { sec_max = first_max; first_max = v; } else if (v > sec_max && v != first_max) sec_max = v; } // Return string with occurrence equals // to sec_max itr = occ.entrySet().iterator(); while (itr.hasNext()) { Map.Entry<String, Integer> entry = itr.next(); int v = entry.getValue(); if (v == sec_max) return entry.getKey(); } return null; } // Driver method public static void main(String[] args) { String arr[] = { "ccc", "aaa", "ccc", "ddd", "aaa", "aaa" }; List<String> seq = Arrays.asList(arr); System.out.println(secMostRepeated(new Vector<>(seq))); } }// This program is contributed by Gaurav Miglani |
Python3
# Python3 program to find out the second# most repeated word# Function to find the worddef secMostRepeated(seq): # Store all the words with its occurrence occ = {} for i in range(len(seq)): occ[seq[i]] = occ.get(seq[i], 0) + 1 # Find the second largest occurrence first_max = -10**8 sec_max = -10**8 for it in occ: if (occ[it] > first_max): sec_max = first_max first_max = occ[it] elif (occ[it] > sec_max and occ[it] != first_max): sec_max = occ[it] # Return with occurrence equals # to sec_max for it in occ: if (occ[it] == sec_max): return it# Driver codeif __name__ == '__main__': seq = [ "ccc", "aaa", "ccc", "ddd", "aaa", "aaa" ] print(secMostRepeated(seq))# This code is contributed by mohit kumar 29 |
Javascript
<script>// JavaScript program to find out the second// most repeated word// Function to find the wordfunction secMostRepeated(seq){ // Store all the words with its occurrence let occ = new Map(); for (let i = 0; i < seq.length; i++) { if(occ.has(seq[i])){ occ.set(seq[i], occ.get(seq[i])+1); } else occ.set(seq[i], 1); } // find the second largest occurrence let first_max = Number.MIN_VALUE, sec_max = Number.MIN_VALUE; for (let [key,value] of occ) { if (value > first_max) { sec_max = first_max; first_max = value; } else if (value > sec_max && value != first_max) sec_max = value; } // Return string with occurrence equals // to sec_max for (let [key,value] of occ) if (value == sec_max) return key;}// Driver programlet seq = [ "ccc", "aaa", "ccc", "ddd", "aaa", "aaa" ];document.write(secMostRepeated(seq));// This code is contributed by shinjanpatra</script> |
C#
// C# program to find out the second// most repeated wordusing System;using System.Collections.Generic;class GFG { // Method to find the word static String secMostRepeated(List<String> seq) { // Store all the words with its occurrence Dictionary<String, int> occ = new Dictionary<String, int>(); for (int i = 0; i < seq.Count; i++) if(occ.ContainsKey(seq[i])) occ[seq[i]] = occ[seq[i]] + 1; else occ.Add(seq[i], 1); // find the second largest occurrence int first_max = int.MinValue, sec_max = int.MinValue; foreach(KeyValuePair<String, int> entry in occ) { int v = entry.Value; if( v > first_max) { sec_max = first_max; first_max = v; } else if (v > sec_max && v != first_max) sec_max = v; } // Return string with occurrence equals // to sec_max foreach(KeyValuePair<String, int> entry in occ) { int v = entry.Value; if (v == sec_max) return entry.Key; } return null; } // Driver method public static void Main(String[] args) { String []arr = { "ccc", "aaa", "ccc", "ddd", "aaa", "aaa" }; List<String> seq = new List<String>(arr); Console.WriteLine(secMostRepeated(seq)); } }// This code is contributed by Rajput-Ji |
Output
ccc
Time Complexity: O(N), where N represents the size of the given vector.
Auxiliary Space: O(N), where N represents the size of the given vector.
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