Given a string, str consisting of lowercase English alphabets, the task is to find the number of unique characters present in the string.
Examples:
Input: str = “geeksforgeeks”
Output: 7
Explanation: The given string “geeksforgeeks” contains 7 unique characters {‘g’, ‘e’, ‘k’, ‘s’, ‘f’, ‘o’, ‘r’}.Input: str = “madam”
Output: 3
Approach: The given problem can be solved using the set data structure. The idea is to initialize an unordered set that stores all the distinct characters of the given string. The size of the set after the string is traversed is the required answer.
Below is the implementation of the above approach:
// C++ program of the above approach #include <bits/stdc++.h> using namespace std;
// Program to count the number of // unique characters in a string int cntDistinct(string str)
{ // Set to store unique characters
// in the given string
unordered_set< char > s;
// Loop to traverse the string
for ( int i = 0; i < str.size(); i++) {
// Insert current character
// into the set
s.insert(str[i]);
}
// Return Answer
return s.size();
} // Driver Code int main()
{ string str = "geeksforgeeks" ;
cout << cntDistinct(str);
return 0;
} |
// Java program of the above approach import java.util.*;
class GFG{
// Program to count the number of // unique characters in a string static int cntDistinct(String str)
{ // Set to store unique characters
// in the given string
HashSet<Character> s = new HashSet<Character>();
// Loop to traverse the string
for ( int i = 0 ; i < str.length(); i++)
{
// Insert current character
// into the set
s.add(str.charAt(i));
}
// Return Answer
return s.size();
} // Driver Code public static void main(String args[])
{ String str = "geeksforgeeks" ;
System.out.print(cntDistinct(str));
} } // This code is contributed by sanjoy_62 |
# Python 3 program of the above approach # Program to count the number of # unique characters in a string def cntDistinct(st):
# Set to store unique characters
# in the given string
s = set ([])
# Loop to traverse the string
for i in range ( len (st)):
# Insert current character
# into the set
s.add(st[i])
# Return Answer
return len (s)
# Driver Code if __name__ = = "__main__" :
st = "geeksforgeeks"
print (cntDistinct(st))
# This code is contributed by ukasp.
|
// C# program to implement // the above approach using System;
using System.Collections.Generic;
class GFG
{ // Program to count the number of // unique characters in a string static int cntDistinct( string str)
{ // Set to store unique characters
// in the given string
HashSet< char > s = new HashSet< char >();
// Loop to traverse the string
for ( int i = 0; i < str.Length; i++)
{
// Insert current character
// into the set
s.Add(str[i]);
}
// Return Answer
return s.Count;
} // Driver Code public static void Main()
{ string str = "geeksforgeeks" ;
Console.Write(cntDistinct(str));
} } // This code is contributed by Samim Hossain Mondal. |
<script> // JavaScript code for the above approach
// Program to count the number of
// unique characters in a string
function cntDistinct(str)
{
// Set to store unique characters
// in the given string
let s = new Set();
// Loop to traverse the string
for (let i = 0; i < str.length; i++) {
// Insert current character
// into the set
s.add(str[i]);
}
// Return Answer
return s.size;
}
// Driver Code
let str = "geeksforgeeks" ;
document.write(cntDistinct(str));
// This code is contributed by Potta Lokesh </script>
|
7
Time Complexity: O(N)
Auxiliary space: O(N)
Another approach using map/dictionary data structure.
# Algorithm
Step 1: First we create key value data pair structure
Step 2: After creating data structure Run a conditional for loop for storing the elements in the created data structure.
Step 3: Finally print the size of the data Structure
#include<bits/stdc++.h> using namespace std;
int cntDistinct(string str){
map< char , int > count;
for ( int i = 0; i < str.size(); i++){
count[str[i]]++;
}
return count.size();
} signed main(){
string str = "geeksforgeeks" ;
int ans = cntDistinct(str);
cout << ans;
cout << endl;
return 0;
} |
// Implementation in Java language import java.util.*;
class GFG
{ static void countFreq(String arr, int n)
{
Map<Character, Integer> mp = new HashMap<>();
// Traverse through array elements and
// count frequencies
for ( int i = 0 ; i < n; i++)
{
if (mp.containsKey(arr.charAt(i)))
{
mp.put(arr.charAt(i), mp.get(arr.charAt(i)) + 1 );
}
else
{
mp.put(arr.charAt(i), 1 );
}
}
int count = 0 ;
// Traverse through map and print frequencies
for (Map.Entry<Character, Integer> entry : mp.entrySet())
{
count += 1 ;
}
System.out.println(count);
}
// Driver code
public static void main(String args[])
{
String arr = "geeksforgeeks" ;
int n = arr.length();
countFreq(arr, n);
}
} // This code contributed by Prince Kumar |
def cntDistinct( str ):
# created a empty dictionary over here
count = {}
for i in range ( len ( str )):
# we are checking that if element already exist
# we will be incrementing the count of element by 1
if str [i] in count:
count[ str [i]] + = 1
# if exist in count then insert that element
# and initialize its count by 1
else :
count[ str [i]] = 1
return len (count)
string = "geeksforgeeks"
ans = cntDistinct(string)
print (ans)
|
// Implementation in C# language using System;
using System.Collections.Generic;
public class GFG {
static int cntDistinct( string str)
{
Dictionary< char , int > count
= new Dictionary< char , int >();
for ( int i = 0; i < str.Length; i++) {
// we are checking that if element already exist
// we will be incrementing the count of element by 1
if (count.ContainsKey(str[i]))
count[str[i]]++;
// if exist in count then insert that element
// and initialize its count by 1
else
count[str[i]] = 1;
}
return count.Count;
}
// Driver Code
static public void Main( string [] args)
{
string str = "geeksforgeeks" ;
int ans = cntDistinct(str);
Console.WriteLine(ans);
}
} // This Code is Contributed by Prasad Kandekar(prasad264) |
// JavaScript Code for the above approach function cntDistinct(str){
let count = new Map();
for (let i = 0; i < str.length; i++){
if (count.has(str[i])){
count.set(str[i], count.get(str[i])+1);
}
else {
count.set(str[i],1);
}
}
return count.size;
} // driver Code let str = "geeksforgeeks" ;
let ans = cntDistinct(str);
console.log(ans);
// This code is contributed by poojaagarwal2.
|
7
Time Complexity: O(N)
Auxiliary Space: O(N)
Approach: The above two approaches uses extra space. In this approach we are going to use an integer to store whether we have seen the character or not. It is similar to storing the frequency of array. But we don’t need to store how many times we have seen that particular character. since we are using it only for English lower case letters. only 26 bits we are going to use.
#include <bits/stdc++.h> using namespace std;
int countDistinct(string str)
{ int freq = 0;
// If the position of zeroth bit is set which means
// we have seen letter 'a' If the position of 25th
// bit is set which means we have seen letter 'z'
int n = str.size();
for ( int i = 0; i < n; i++) {
int curr_pos = str[i] - 'a' ;
// setting the curr_pos using left shift
// operator
freq = freq | (1 << curr_pos);
// Already if we have seen that character we are
// making it again 1
}
// Couting how many characters are there by counting
// set bits in the freq
int ans = 0;
while (freq != 0) {
if ((freq & 1) == 1)
ans++;
freq = freq >> 1;
}
return ans;
} //Driver code int main(){
string str = "geeksforgeeks" ;
int ans = countDistinct(str);
cout << ans << endl;
} //This code is contributed by Vishal Dhaygude |
/*package whatever //do not write package name here */ import java.io.*;
class GFG {
public static int countDistinct(String str)
{
int freq = 0 ;
// If the position of zeroth bit is set which means
// we have seen letter 'a' If the position of 25th
// bit is set which means we have seen letter 'z'
int n = str.length();
for ( int i = 0 ; i < n; i++) {
int curr_pos = str.charAt(i) - 'a' ;
// setting the curr_pos using left shift
// operator
freq = freq | ( 1 << curr_pos);
// Already if we have seen that character we are
// making it again 1
}
// Couting how many characters are there by counting
// set bits in the freq
int ans = 0 ;
while (freq != 0 ) {
if ((freq & 1 ) == 1 )
ans++;
freq = freq >> 1 ;
}
return ans;
}
public static void main(String[] args)
{
String str = "geeksforgeeks" ;
int ans = countDistinct(str);
System.out.println(ans);
}
} |
def countDistinct(s):
freq = 0
# If the position of zeroth bit is set which means
# we have seen letter 'a' If the position of 25th
# bit is set which means we have seen letter 'z'
n = len (s)
for i in range (n):
curr_pos = ord (s[i]) - ord ( 'a' )
# setting the curr_pos using left shift
# operator
freq = freq | ( 1 << curr_pos)
# Already if we have seen that character we are
# making it again 1
# Couting how many characters are there by counting
# set bits in the freq
ans = 0
while freq ! = 0 :
if freq & 1 = = 1 :
ans + = 1
freq = freq >> 1
return ans
s = "geeksforgeeks"
ans = countDistinct(s)
print (ans)
|
// C# code for the above approach using System;
class GFG {
static int CountDistinct( string str) {
int freq = 0;
// If the position of zeroth bit is set which means
// we have seen letter 'a' If the position of 25th
// bit is set which means we have seen letter 'z'
int n = str.Length;
for ( int i = 0; i < n; i++) {
int curr_pos = str[i] - 'a' ;
// setting the curr_pos using left shift
// operator
freq = freq | (1 << curr_pos);
// Already if we have seen that character we are
// making it again 1
}
// Couting how many characters are there by counting
// set bits in the freq
int ans = 0;
while (freq != 0) {
if ((freq & 1) == 1)
ans++;
freq = freq >> 1;
}
return ans;
}
public static void Main( string [] args) {
string str = "geeksforgeeks" ;
int ans = CountDistinct(str);
Console.WriteLine(ans);
}
} // this code is contributed by bhardwajji |
// JavaScript program for the above approach function countDistinct(str){
let freq = 0;
// If the position of zeroth bit is set which means
// we have seen letter 'a' If the position of 25th
// bit is set which means we have seen letter 'z'
let n = str.length;
for (let i = 0; i<n; i++)
{
let curr_pos = str[i].charCodeAt(0) - "a" .charCodeAt(0);
// setting the curr_pos using left shift
// operator
freq = freq | (1 << curr_pos);
// already if we have seen that character we are
// making it again1
}
// counting how many characters are there by counting
// set bits in the freq
let ans = 0;
while (freq != 0){
if ((freq & 1) == 1) ans++;
freq = freq >> 1;
}
return ans;
} // driver function to check above function let str = "geeksforgeeks" ;
let ans = countDistinct(str); console.log(ans); // THIS CODE IS CONTRIBUTED BY YASH AGARWAL(YASHAGAWRAL2852002) |
7
Time Complexity: O(N)
Auxiliary Space: O(1)
Note: The above Code not works if we have all characters. To make it versatile we have to use long Double data type. where we can incorporate all frequency of every character.
Approach: Simple approach in which counting number of alphabets present in string using array.
1. Take a string s and convert it into lowercase if not.
2. Create an array arr of size 26 with 0.
3. Loop the the string s.
4. Update the value of array arr[ s[i] -‘ a’ ] or a[ s[i] – 97] to 1.
5. Take a counter count = 0;
6. Take loop to 26 and check if arr[i] is equal to 1 then increment the value of count by 1.
7. Print the value of count.
Below is the implementation of the above approach:
// C++ program of above approach #include <bits/stdc++.h> using namespace std;
// Function to count distinct characters int countDistinct(string s)
{ transform(s.begin(), s.end(), s.begin(), :: tolower ); // convert the string to lowercase
int n = s.length(); // size of string
int a[26] = {0}; // an array of size 26, initialize with 0
// iterate over the string s
for ( int i = 0; i < n; i++) {
int index = s[i] - 'a' ; // calculate index by (s[i] - 'a') in ASCII value
a[index] = 1; // Set the value at index to 1
}
int count = 0; // Take a counter with 0
for ( int i = 0; i < 26; i++) { // Loop to 26
// count no. of index having value 1
if (a[i] == 1) {
count += 1;
}
}
return count;
} // Driver code int main() {
string s = "geeksforgeeks" ; // string taken
cout << countDistinct(s) << endl; // Print answer
return 0;
} |
import java.util.*;
public class Main {
// Function to count distinct characters
public static int countDistinct(String s) {
s = s.toLowerCase(); // convert the string to lowercase
int n = s.length(); // size of string
int [] a = new int [ 26 ]; // an array of size 26, initialize with 0
// iterate over the string s
for ( int i = 0 ; i < n; i++) {
int index = s.charAt(i) - 'a' ; // calculate index by (s[i] - 'a') in ASCII value
a[index] = 1 ; // Set the value at index to 1
}
int count = 0 ; // Take a counter with 0
for ( int i = 0 ; i < 26 ; i++) { // Loop to 26
// count no. of index having value 1
if (a[i] == 1 ) {
count += 1 ;
}
}
return count;
}
// Driver code
public static void main(String[] args) {
String s = "geeksforgeeks" ; // string taken
System.out.println(countDistinct(s)); // Print answer
}
} |
# Function to count distinct characters def countDistinct(s):
s = s.lower() # convert the string to lowercase
n = len (s) # size of string
a = [ 0 ] * 26 # an array of size 26, initialize with 0
# iterate over the string s
for i in range (n):
index = ord (s[i]) - ord ( 'a' ) # calculate index by (s[i] - 'a') in ASCII value
a[index] = 1 # Set the value at index to 1
count = 0 # Take a counter with 0
for i in range ( 26 ): # Loop to 26
# count no. of index having value 1
if a[i] = = 1 :
count + = 1
return count
# Driver code s = "geeksforgeeks" # string taken
print (countDistinct(s)) # Print answer
|
using System;
public class GFG
{ // Function to count distinct characters
public static int CountDistinct( string s)
{
s = s.ToLower(); // convert the string to lowercase
int n = s.Length; // size of string
int [] a = new int [26]; // an array of size 26, initialize with 0
// iterate over the string s
for ( int i = 0; i < n; i++)
{
int index = s[i] - 'a' ; // calculate index by (s[i] - 'a') in ASCII value
a[index] = 1; // Set the value at index to 1
}
int count = 0; // Take a counter with 0
for ( int i = 0; i < 26; i++) // Loop to 26
{
// count no. of index having value 1
if (a[i] == 1)
{
count += 1;
}
}
return count;
}
// Driver code
public static void Main( string [] args)
{
string s = "geeksforgeeks" ; // string taken
Console.WriteLine(CountDistinct(s)); // Print answer
}
} |
// JavaScript program of above approach // Function to count distinct characters function countDistinct(s) {
s = s.toLowerCase(); // convert the string to lowercase
let n = s.length; // size of string
let a = new Array(26).fill(0); // an array of size 26, initialize with 0
// iterate over the string s
for (let i = 0; i < n; i++) {
let index = s.charCodeAt(i) - 'a' .charCodeAt(0); // calculate index by (s[i] - 'a') in ASCII value
a[index] = 1; // Set the value at index to 1
}
let count = 0; // Take a counter with 0
for (let i = 0; i < 26; i++) { // Loop to 26
// count no. of index having value 1
if (a[i] == 1) {
count += 1;
}
}
return count;
} // Driver code let s = "geeksforgeeks" ; // string taken
console.log(countDistinct(s)); // Print answer
|
7
Time Complexity: O(N)
Auxiliary Space: O(1)