Given a string S which may contain lowercase and uppercase characters. The task is to remove all duplicate characters from the string and find the resultant string.
Note: The order of remaining characters in the output should be the same as in the original string.
Example:
Input: Str = geeksforgeeks
Output: geksfor
Explanation: After removing duplicate characters such as e, k, g, s, we have string as “geksfor”.Input: Str = HappyNewYear
Output: HapyNewYr
Explanation: After removing duplicate characters such as p, e, a, we have string as “HapyNewYr”.
Naive Approach:
Iterate through the string and for each character check if that particular character has occurred before it in the string. If not, add the character to the result, otherwise the character is not added to result.
Below is the implementation of above approach:
// CPP program to remove duplicate character // from character array and print in sorted // order #include <bits/stdc++.h> using namespace std;
char *removeDuplicate( char str[], int n)
{ // Used as index in the modified string
int index = 0;
// Traverse through all characters
for ( int i=0; i<n; i++) {
// Check if str[i] is present before it
int j;
for (j=0; j<i; j++)
if (str[i] == str[j])
break ;
// If not present, then add it to
// result.
if (j == i)
str[index++] = str[i];
}
return str;
} // Driver code int main()
{ char str[]= "geeksforgeeks" ;
int n = sizeof (str) / sizeof (str[0]);
cout << removeDuplicate(str, n);
return 0;
} |
#include <stdio.h> #include <string.h> char * removeDuplicate( char str[], int n)
{ // Used as an index in the modified string
int index = 0;
// Traverse through all characters
for ( int i = 0; i < n; i++) {
// Check if str[i] is present before it
int j;
for (j = 0; j < i; j++) {
if (str[i] == str[j])
break ;
}
// If not present, then add it to the result.
if (j == i)
str[index++] = str[i];
}
// Add null character at the end to terminate the string
str[index] = '\0' ;
return str;
} // Driver code int main()
{ char str[] = "geeksforgeeks" ;
int n = sizeof (str) / sizeof (str[0]);
printf ( "%s\n" , removeDuplicate(str, n));
return 0;
} |
// Java program to remove duplicate character // from character array and print in sorted // order import java.util.*;
class GFG
{ static String removeDuplicate( char str[], int n)
{
// Used as index in the modified string
int index = 0 ;
// Traverse through all characters
for ( int i = 0 ; i < n; i++)
{
// Check if str[i] is present before it
int j;
for (j = 0 ; j < i; j++)
{
if (str[i] == str[j])
{
break ;
}
}
// If not present, then add it to
// result.
if (j == i)
{
str[index++] = str[i];
}
}
return String.valueOf(Arrays.copyOf(str, index));
}
// Driver code
public static void main(String[] args)
{
char str[] = "geeksforgeeks" .toCharArray();
int n = str.length;
System.out.println(removeDuplicate(str, n));
}
} // This code is contributed by Rajput-Ji |
string = "geeksforgeeks"
p = ""
for char in string:
if char not in p:
p = p + char
print (p)
k = list ( "geeksforgeeks" )
|
// C# program to remove duplicate character // from character array and print in sorted // order using System;
using System.Collections.Generic;
class GFG
{ static String removeDuplicate( char []str, int n)
{ // Used as index in the modified string
int index = 0;
// Traverse through all characters
for ( int i = 0; i < n; i++)
{
// Check if str[i] is present before it
int j;
for (j = 0; j < i; j++)
{
if (str[i] == str[j])
{
break ;
}
}
// If not present, then add it to
// result.
if (j == i)
{
str[index++] = str[i];
}
}
char [] ans = new char [index];
Array.Copy(str, ans, index);
return String.Join( "" , ans);
} // Driver code public static void Main(String[] args)
{ char []str = "geeksforgeeks" .ToCharArray();
int n = str.Length;
Console.WriteLine(removeDuplicate(str, n));
} } // This code is contributed by PrinciRaj1992 |
<script> // JavaScript program to remove duplicate character // from character array and print in sorted // order function removeDuplicate(str, n)
{
// Used as index in the modified string
var index = 0;
// Traverse through all characters
for ( var i = 0; i < n; i++)
{
// Check if str[i] is present before it
var j;
for (j = 0; j < i; j++)
{
if (str[i] == str[j])
{
break ;
}
}
// If not present, then add it to
// result.
if (j == i)
{
str[index++] = str[i];
}
}
return str.join( "" ).slice(str, index);
}
// Driver code
var str = "geeksforgeeks" .split( "" );
var n = str.length;
document.write(removeDuplicate(str, n));
// This code is contributed by shivanisinghss2110 </script> |
geksfor
Time Complexity: O(n * n)
Auxiliary Space: O(1), Keeps the order of elements the same as the input.
Remove duplicates from a given string using Hashing
Iterating through the given string and use a map to efficiently track of encountered characters. If a character is encountered for the first time, it’s added to the result string, Otherwise, it’s skipped. This ensures the output string contains only unique characters in the same order as the input string.
Below is the implementation of above approach:
// C++ program to create a unique string using unordered_map /* access time in unordered_map on is O(1) generally if no collisions occur and therefore it helps us check if an element exists in a string in O(1) time complexity with constant space. */ #include <bits/stdc++.h> using namespace std;
string removeDuplicates(string s, int n)
{ unordered_map< char , int > exists;
string ans = "" ;
for ( int i = 0; i < n; i++) {
if (exists.find(s[i]) == exists.end()) {
ans.push_back(s[i]);
exists[s[i]]++;
}
}
return ans;
} // driver code int main()
{ string s = "geeksforgeeks" ;
int n = s.size();
cout << removeDuplicates(s, n) << endl;
return 0;
} |
// Java program to create a unique String using unordered_map /* access time in unordered_map on is O(1) generally if no collisions occur and therefore it helps us check if an element exists in a String in O(1) time complexity with constant space. */ import java.util.*;
class GFG{
static char [] removeDuplicates( char []s, int n){
Map<Character,Integer> exists = new HashMap<>();
String st = "" ;
for ( int i = 0 ; i < n; i++){
if (!exists.containsKey(s[i]))
{
st += s[i];
exists.put(s[i], 1 );
}
}
return st.toCharArray();
} // driver code public static void main(String[] args){
char s[] = "geeksforgeeks" .toCharArray();
int n = s.length;
System.out.print(removeDuplicates(s,n));
} } |
# Python program to create a unique string using unordered_map # access time in unordered_map on is O(1) generally if no collisions occur # and therefore it helps us check if an element exists in a string in O(1) # time complexity with constant space. def removeDuplicates(s, n):
exists = {}
index = 0
ans = ""
for i in range ( 0 , n):
if s[i] not in exists or exists[s[i]] = = 0 :
s[index] = s[i]
print (s[index], end = '')
index + = 1
exists[s[i]] = 1
# driver code s = "geeksforgeeks"
s1 = list (s)
n = len (s1)
removeDuplicates(s1, n) |
// C# program to create a unique String using unordered_map /* access time in unordered_map on is O(1) generally if no collisions occur and therefore it helps us check if an element exists in a String in O(1) time complexity with constant space. */ using System;
using System.Collections.Generic;
public class GFG{
static char [] removeDuplicates( char []s, int n){
Dictionary< char , int > exists = new Dictionary< char , int >();
String st = "" ;
for ( int i = 0; i < n; i++){
if (!exists.ContainsKey(s[i]))
{
st += s[i];
exists.Add(s[i], 1);
}
}
return st.ToCharArray();
} // driver code public static void Main(String[] args){
char []s = "geeksforgeeks" .ToCharArray();
int n = s.Length;
Console.Write(removeDuplicates(s,n));
} } |
<script> // javascript program to create a unique String using unordered_map /* access time in unordered_map on is O(1) generally if no collisions occur and therefore it helps us check if an element exists in a String in O(1) time complexity with constant space. */ function removeDuplicates( s , n) {
var exists = new Map();
var st = "" ;
for ( var i = 0; i < n; i++) {
if (!exists.has(s[i])) {
st += s[i];
exists.set(s[i], 1);
}
}
return st;
}
// driver code
var s = "geeksforgeeks" ;
var n = s.length;
document.write(removeDuplicates(s, n));
</script> |
geksfor
Time Complexity: O(n)
Auxiliary Space: O(n)