Given an array of names of candidates in an election. A candidate’s name in the array represents a vote cast on the candidate. Print the name of candidates who received the maximum vote. If there is a tie, print a lexicographically smaller name.
Examples:
Input: votes[] = {“john”, “johnny”, “jackie”, “johnny”, “john”, “jackie”, “jamie”, “jamie”, “john”, “johnny”, “jamie”, “johnny”, “john”}
Output: John
Explanation: We have four Candidates with name as ‘John’, ‘Johnny’, ‘jamie’, ‘jackie’. The candidates John and Johny get maximum votes. Since John is alphabetically smaller.Input: votes[] = {“virat”, “rohit”, “rishabh”, “rohit”, “virat”, “rohit”}
Output: rohit
Explanation: We have three Candidates with name as ‘virat’, ‘rohit’, ‘rishabh’. rohit get maximum votes.
Naive Approach:
A simple solution is to run two loops and count the occurrences of every word. And then find the maximum count.
- Iterate over every string
- Count the occurrence of the current string in the given votes[]
- Maximise the result if count > previous count
- return the result
Below is the implementation of the above approach:
C++
Java
Python3
# Python program to find winner in an election.import math
# We have four Candidates with name as 'John', #'Johnny', 'jamie', 'jackie'.
# The votes in String array are as per the #votes casted. Print the name of candidates
#received Max vote. */
def findWinner(votes):
n = len(votes);
prevCount = 0;
result = "";
# Iterate over every string
for i in range(0, n):
count = 0;
# Count the occurrence of current string in the
# given votes[]
for j in range(0, n):
if (votes[i] == votes[j]):
count += 1;
# Maximise the result if count > previous count
if (count > prevCount):
prevCount = count;
result = votes[i];
elif (count == prevCount) :
result = min(result, votes[i]);
# return the result
print(result);
# Driver codevotes = [ "john", "johnny", "jackie", "johnny",
"john", "jackie", "jamie", "jamie",
"john", "johnny", "jamie", "johnny",
"john" ];
findWinner(votes);# This code is contributed by agrawalpoojaa976. |
C#
using System;
using System.Linq;
using System.Collections.Generic;
class Gfg {
public static void findWinner(List<string> votes)
{
int n = votes.Count;
int prevCount = 0;
string result = "";
// Iterate over every string
for (int i = 0; i < n; i++) {
int count = 0;
// Count the occurrence of current string in the
// given votes[]
for (int j = 0; j < n; j++) {
if (votes[i] == votes[j]) {
count++;
}
// Maximise the result if count > previous
// count
if (count > prevCount) {
prevCount = count;
result = votes[i];
}
else if (count == prevCount) {
if (votes[i].CompareTo(result) < 0)
result = votes[i];
}
}
}
// return the result
Console.WriteLine(result);
}
public static void Main(string[] args)
{
List<string> votes = new List<string>() {
"john", "johnny", "jackie", "johnny", "john",
"jackie", "jamie", "jamie", "john",
"johnny", "jamie", "johnny", "john"
};
findWinner(votes);
}
}// This code is contributed by divya_p123. |
Javascript
function findWinner(votes) {
let n = votes.length;
let prevCount = 0;
let result = "";
// Iterate over every string
for (let i = 0; i < n; i++) {
let count = 0;
// Count the occurrence of current string in the
// given votes[]
for (let j = 0; j < n; j++) {
if (votes[i] == votes[j])
count++;
// Maximise the result if count > previous count
if (count > prevCount) {
prevCount = count;
result = votes[i];
}
else if (count == prevCount) {
result = Math.min(result, votes[i]);
}
}
}
// return the result
console.log(result);
} // Driver code let votes = ["john", "johnny", "jackie", "johnny",
"john", "jackie", "jamie", "jamie",
"john", "johnny", "jamie", "johnny",
"john"];
findWinner(votes);// This code is contributed by factworx412 |
Output
john
Time Complexity: O(n * n * MAX_WORD_LEN).
Auxiliary Space: O(MAX_WORD_LEN)
Find winner of an election where votes are represented as candidate names using Hashing:
An efficient solution is to use Hashing. Insert all votes in a hash map and keep track of counts of different names. Finally, traverse the map and print the person with the maximum votes.
Follow the steps below to solve the problem:
- Create a map of string, value pair
- Now iterate on the votes array and increment the count of every string
- Traverse the map and the string having maximum count store it as a string variable
- If there is a tie pick the smaller one
Below is the Implementation of the above approach:
C++
// C++ program to find winner in an election.#include "bits/stdc++.h"using namespace std;
/* We have four Candidates with name as 'John', 'Johnny', 'jamie', 'jackie'.
The votes in String array are as per the
votes casted. Print the name of candidates
received Max vote. */
void findWinner(vector<string>& votes)
{ // Insert all votes in a hashmap
unordered_map<string, int> mapObj;
for (auto& str : votes) {
mapObj[str]++;
}
// Traverse through map to find the candidate
// with maximum votes.
int maxValueInMap = 0;
string winner;
for (auto& entry : mapObj) {
string key = entry.first;
int val = entry.second;
if (val > maxValueInMap) {
maxValueInMap = val;
winner = key;
}
// If there is a tie, pick lexicographically
// smaller.
else if (val == maxValueInMap && winner > key)
winner = key;
}
cout << winner << endl;
}// Driver codeint main()
{ vector<string> votes
= { "john", "johnny", "jackie", "johnny",
"john", "jackie", "jamie", "jamie",
"john", "johnny", "jamie", "johnny",
"john" };
findWinner(votes);
return 0;
} |
Java
// Java program to find winner in an election.import java.util.*;
public class ElectoralVotingBallot {
/* We have four Candidates with name as 'John',
'Johnny', 'jamie', 'jackie'.
The votes in String array are as per the
votes casted. Print the name of candidates
received Max vote. */
public static void findWinner(String votes[])
{
// Insert all votes in a hashmap
Map<String, Integer> map
= new HashMap<String, Integer>();
for (String str : votes) {
if (map.keySet().contains(str))
map.put(str, map.get(str) + 1);
else
map.put(str, 1);
}
// Traverse through map to find the candidate
// with maximum votes.
int maxValueInMap = 0;
String winner = "";
for (Map.Entry<String, Integer> entry :
map.entrySet()) {
String key = entry.getKey();
Integer val = entry.getValue();
if (val > maxValueInMap) {
maxValueInMap = val;
winner = key;
}
// If there is a tie, pick lexicographically
// smaller.
else if (val == maxValueInMap
&& winner.compareTo(key) > 0)
winner = key;
}
System.out.println(winner);
}
// Driver code
public static void main(String[] args)
{
String[] votes
= { "john", "johnny", "jackie", "johnny",
"john", "jackie", "jamie", "jamie",
"john", "johnny", "jamie", "johnny",
"john" };
findWinner(votes);
}
} |
Python3
# Python3 program to find winner in an election.from collections import defaultdict
''' We have four Candidates with name as 'John','Johnny', 'jamie', 'jackie'.The votes in String array are as per thevotes casted. Print the name of candidatesreceived Max vote. '''def findWinner(votes):
# Insert all votes in a hashmap
mapObj = defaultdict(int)
for st in votes:
mapObj[st] += 1
# Traverse through map to find the
# candidate with maximum votes.
maxValueInMap = 0
winner = ""
for entry in mapObj:
key = entry
val = mapObj[entry]
if (val > maxValueInMap):
maxValueInMap = val
winner = key
# If there is a tie, pick lexicographically
# smaller.
else if (val == maxValueInMap and
winner > key):
winner = key
print(winner)
# Driver codeif __name__ == "__main__":
votes = ["john", "johnny", "jackie",
"johnny", "john", "jackie",
"jamie", "jamie", "john",
"johnny", "jamie", "johnny",
"john"]
findWinner(votes)
# This code is contributed by ukasp |
C#
// C# program to find winner in an election.using System;
using System.Collections.Generic;
public class ElectoralVotingBallot {
/* We have four Candidates with name as 'John',
'Johnny', 'jamie', 'jackie'.
The votes in String array are as per the
votes casted. Print the name of candidates
received Max vote. */
public static void findWinner(String[] votes)
{
// Insert all votes in a hashmap
Dictionary<String, int> map
= new Dictionary<String, int>();
foreach(String str in votes)
{
if (map.ContainsKey(str))
map[str] = map[str] + 1;
else
map.Add(str, 1);
}
// Traverse through map to find the candidate
// with maximum votes.
int maxValueInMap = 0;
String winner = "";
foreach(KeyValuePair<String, int> entry in map)
{
String key = entry.Key;
int val = entry.Value;
if (val > maxValueInMap) {
maxValueInMap = val;
winner = key;
}
// If there is a tie, pick lexicographically
// smaller.
else if (val == maxValueInMap
&& winner.CompareTo(key) > 0)
winner = key;
}
Console.WriteLine(winner);
}
// Driver code
public static void Main(String[] args)
{
String[] votes
= { "john", "johnny", "jackie", "johnny",
"john", "jackie", "jamie", "jamie",
"john", "johnny", "jamie", "johnny",
"john" };
findWinner(votes);
}
}// This code is contributed by PrinciRaj1992 |
Javascript
<script>// Javascript program to find winner in an election. /* We have four Candidates with name as 'John',
'Johnny', 'jamie', 'jackie'.
The votes in String array are as per the
votes casted. Print the name of candidates
received Max vote. */
function findWinner(votes)
{
let map = new Map();
for(let i=0;i<votes.length;i++)
{
if(map.has(votes[i]))
{
map.set(votes[i], map.get(votes[i]) + 1);
}
else
map.set(votes[i], 1);
}
// Traverse through map to find the candidate
// with maximum votes.
let maxValueInMap = 0;
let winner = "";
for (let [key, value] of map.entries())
{
let Key = key;
let val = value;
if (val > maxValueInMap)
{
maxValueInMap = val;
winner = key;
}
// If there is a tie, pick lexicographically
// smaller.
else if (val == maxValueInMap &&
winner>Key)
winner = Key;
}
document.write(winner);
}
// Driver code
let votes=["john", "johnny", "jackie",
"johnny", "john", "jackie",
"jamie", "jamie", "john",
"johnny", "jamie", "johnny",
"john"];
findWinner(votes);
// This code is contributed by rag2127
</script> |
Output
john
Time Complexity: O(N), where N is the total number of votes.
Auxiliary Space: O(N), since unordered_map data structure is used.
Another efficient solution is to use Trie. Please refer most frequent word in an array of strings.