Find and print the uncommon characters of the two given strings in sorted order. Here uncommon character means that either the character is present in one string or it is present in another string but not in both. The strings contain only lowercase characters and can contain duplicates.
Source: Amazon Interview Experience | Set 355 (For 1 Year Experienced)
Examples:
Input: str1 = “characters”, str2 = “alphabets”
Output: b c l p rInput: str1 = “geeksforgeeks”, str2 = “geeksquiz”
Output: f i o q r u z
Naive Approach: Using two loops, for each character of 1st string check whether it is present in the 2nd string or not. Likewise, for each character of 2nd string check whether it is present in the 1st string or not.
Note: In the practice area of gfg the string has to be sorted in order to match with the output.
Algorithm:
- Take two strings str1 and str2 as input.
- Initialize an empty string ans to store the uncommon characters.
- Initialize a boolean vector used of size 26 to keep track of characters already visited.
- Traverse str1 and for each character check if it is present in str2.
- If the character is not present in str2 and not already added to ans, then add it to ans and mark it as used.
- Traverse str2 and for each character check if it is present in str1.
- If the character is not present in str1 and not already added to ans, then add it to ans and mark it as used.
- Sort the ans string in lexicographical order.
- If ans is empty, print -1. Otherwise, print the contents of ans.
Below is the implementation of the above approach:
// C++ implementation to find the uncommon // characters of the two strings #include <bits/stdc++.h> using namespace std;
// function to find the uncommon characters // of the two strings void findAndPrintUncommonChars(string str1, string str2)
{ // to store the answer
string ans = "" ;
// to handle the case of duplicates
vector< int > used(26, false );
// check first for str1
for ( int i = 0; i < str1.size(); i++) {
// keeping a flag variable
bool found = false ;
for ( int j = 0; j < str2.size(); j++) {
// if found change the flag
// and break from loop
if (str1[i] == str2[j]) {
found = true ;
break ;
}
}
// if duplicate character not found
// then add it to ans
if (!found and !used[str1[i] - 'a' ]) {
used[str1[i] - 'a' ] = true ;
ans += str1[i];
}
}
// now check for str2
for ( int i = 0; i < str2.size(); i++) {
// keeping a flag variable
bool found = false ;
for ( int j = 0; j < str1.size(); j++) {
// if found change the flag
// and break from loop
if (str2[i] == str1[j]) {
found = true ;
break ;
}
}
// if duplicate character not found
// then add it to ans
if (!found and !used[str2[i] - 'a' ]) {
used[str2[i] - 'a' ] = true ;
ans += str2[i];
}
}
// to match with output
sort(ans.begin(), ans.end());
// if not found any character
if (ans.size() == 0)
cout << "-1" ;
// else print the answer
else
cout << ans << " " ;
} // Driver program to test above int main()
{ string str1 = "characters" ;
string str2 = "alphabets" ;
findAndPrintUncommonChars(str1, str2);
return 0;
} |
// Java implementation to find the uncommon // characters of the two strings import java.util.*;
public class Solution
{ // function to find the uncommon characters
// of the two strings
static void findAndPrintUncommonChars(String str1,
String str2)
{
// to store the answer
String ans = "" ;
// to handle the case of duplicates
boolean [] used = new boolean [ 26 ];
// check first for str1
for ( int i = 0 ; i < str1.length(); i++)
{
// keeping a flag variable
boolean found = false ;
for ( int j = 0 ; j < str2.length(); j++)
{
// if found change the flag
// and break from loop
if (str1.charAt(i) == str2.charAt(j)) {
found = true ;
break ;
}
}
// if duplicate character not found
// then add it to ans
if (!found && !used[str1.charAt(i) - 'a' ]) {
used[str1.charAt(i) - 'a' ] = true ;
ans += str1.charAt(i);
}
}
// now check for str2
for ( int i = 0 ; i < str2.length(); i++)
{
// keeping a flag variable
boolean found = false ;
for ( int j = 0 ; j < str1.length(); j++)
{
// if found change the flag
// and break from loop
if (str2.charAt(i) == str1.charAt(j)) {
found = true ;
break ;
}
}
// if duplicate character not found
// then add it to ans
if (!found && !used[str2.charAt(i) - 'a' ]) {
used[str2.charAt(i) - 'a' ] = true ;
ans += str2.charAt(i);
}
}
// to match with output
char tempArray[] = ans.toCharArray();
// Sorting temp array using
Arrays.sort(tempArray);
ans = new String(tempArray);
// if not found any character
if (ans.length() == 0 )
System.out.println( "-1" );
// else print the answer
else
System.out.println(ans + " " );
}
// Driver program to test above
public static void main(String[] args)
{
String str1 = "characters" ;
String str2 = "alphabets" ;
findAndPrintUncommonChars(str1, str2);
}
} // This code is contributed by karandeep1234 |
def findAndPrintUncommonChars(str1, str2):
# to store the answer
ans = ""
# to handle the case of duplicates
used = [ False ] * 26
# check first for str1
for i in range ( len (str1)):
# keeping a flag variable
found = False
for j in range ( len (str2)):
# if found change the flag
# and break from loop
if str1[i] = = str2[j]:
found = True
break
# if duplicate character not found
# then add it to ans
if not found and not used[ ord (str1[i]) - ord ( 'a' )]:
used[ ord (str1[i]) - ord ( 'a' )] = True
ans + = str1[i]
# now check for str2
for i in range ( len (str2)):
# keeping a flag variable
found = False
for j in range ( len (str1)):
# if found change the flag
# and break from loop
if str2[i] = = str1[j]:
found = True
break
# if duplicate character not found
# then add it to ans
if not found and not used[ ord (str2[i]) - ord ( 'a' )]:
used[ ord (str2[i]) - ord ( 'a' )] = True
ans + = str2[i]
# to match with output
ans = "".join( sorted (ans))
# if not found any character
if len (ans) = = 0 :
print ( "-1" )
# else print the answer
else :
print (ans)
# Driver program to test above str1 = "characters"
str2 = "alphabets"
findAndPrintUncommonChars(str1, str2) |
// C# implementation to find the uncommon // characters of the two strings using System;
public class GFG {
// function to find the uncommon characters
// of the two strings
static void findAndPrintUncommonChars( string str1,
string str2)
{
// to store the answer
string ans = "" ;
// to handle the case of duplicates
bool [] used = new bool [26];
// check first for str1
for ( int i = 0; i < str1.Length; i++) {
// keeping a flag variable
bool found = false ;
for ( int j = 0; j < str2.Length; j++) {
// if found change the flag
// and break from loop
if (str1[i] == str2[j]) {
found = true ;
break ;
}
}
// if duplicate character not found
// then add it to ans
if (!found && !used[str1[i] - 'a' ]) {
used[str1[i] - 'a' ] = true ;
ans += str1[i];
}
}
// now check for str2
for ( int i = 0; i < str2.Length; i++) {
// keeping a flag variable
bool found = false ;
for ( int j = 0; j < str1.Length; j++) {
// if found change the flag
// and break from loop
if (str2[i] == str1[j]) {
found = true ;
break ;
}
}
// if duplicate character not found
// then add it to ans
if (!found && !used[str2[i] - 'a' ]) {
used[str2[i] - 'a' ] = true ;
ans += str2[i];
}
}
// to match with output
char [] tempArray = ans.ToCharArray();
// Sorting temp array using
Array.Sort(tempArray);
ans = new String(tempArray);
// if not found any character
if (ans.Length == 0)
Console.WriteLine( "-1" );
// else print the answer
else
Console.WriteLine(ans + " " );
}
// Driver program to test above
public static void Main( string [] args)
{
string str1 = "characters" ;
string str2 = "alphabets" ;
findAndPrintUncommonChars(str1, str2);
}
} // This code is contributed by karandeep1234 |
// JavaScript implementation to find the uncommon // characters of the two strings function findAndPrintUncommonChars(str1, str2) {
// to store the answer
let ans = "" ;
// to handle the case of duplicates
let used = new Array(26).fill( false );
// check first for str1
for (let i = 0; i < str1.length; i++) {
// keeping a flag variable
let found = false ;
for (let j = 0; j < str2.length; j++) {
// if found change the flag
// and break from loop
if (str1[i] === str2[j]) {
found = true ;
break ;
}
}
// if duplicate character not found
// then add it to ans
if (!found && !used[str1.charCodeAt(i) - 97]) {
used[str1.charCodeAt(i) - 97] = true ;
ans += str1[i];
}
}
// now check for str2
for (let i = 0; i < str2.length; i++) {
// keeping a flag variable
let found = false ;
for (let j = 0; j < str1.length; j++) {
// if found change the flag
// and break from loop
if (str2[i] === str1[j]) {
found = true ;
break ;
}
}
// if duplicate character not found
// then add it to ans
if (!found && !used[str2.charCodeAt(i) - 97]) {
used[str2.charCodeAt(i) - 97] = true ;
ans += str2[i];
}
}
// to match with output
ans = ans.split( '' ).sort().join( '' );
// if not found any character
if (ans.length === 0) {
console.log( "-1" );
}
// else print the answer
else {
console.log(ans);
}
} // Driver program to test above let str1 = "characters" ;
let str2 = "alphabets" ;
findAndPrintUncommonChars(str1, str2); |
bclpr
Time Complexity: O(n1*n2)
Auxiliary Space: O(1), as a constant-size array is used to handle duplicates.
Efficient Approach: An efficient approach is to use hashing.
- Use a hash table of size 26 for all the lowercase characters.
- Initially, mark the presence of each character as ‘0’ (denoting that the character is not present in both strings).
- Traverse the 1st string and mark the presence of each character of 1st string as ‘1’ (denoting 1st string) in the hash table.
- Now, traverse the 2nd string. For each character of the 2nd string, check whether its presence in the hash table is ‘1’ or not. If it is ‘1’, then mark its presence as ‘-1’ (denoting that the character is common to both the strings), else mark its presence as ‘2’ (denoting 2nd string).
The below image is a dry run of the above approach:
Below is the implementation of the above approach:
// C++ implementation to find the uncommon // characters of the two strings #include <bits/stdc++.h> using namespace std;
// size of the hash table const int MAX_CHAR = 26;
// function to find the uncommon characters // of the two strings void findAndPrintUncommonChars(string str1, string str2)
{ // mark presence of each character as 0
// in the hash table 'present[]'
int present[MAX_CHAR];
for ( int i=0; i<MAX_CHAR; i++)
present[i] = 0;
int l1 = str1.size();
int l2 = str2.size();
// for each character of str1, mark its
// presence as 1 in 'present[]'
for ( int i=0; i<l1; i++)
present[str1[i] - 'a' ] = 1;
// for each character of str2
for ( int i=0; i<l2; i++)
{
// if a character of str2 is also present
// in str1, then mark its presence as -1
if (present[str2[i] - 'a' ] == 1
|| present[str2[i] - 'a' ] == -1)
present[str2[i] - 'a' ] = -1;
// else mark its presence as 2
else
present[str2[i] - 'a' ] = 2;
}
// print all the uncommon characters
for ( int i=0; i<MAX_CHAR; i++)
if (present[i] == 1 || present[i] == 2 )
cout << ( char (i + 'a' )) << " " ;
} // Driver program to test above int main()
{ string str1 = "characters" ;
string str2 = "alphabets" ;
findAndPrintUncommonChars(str1, str2);
return 0;
} |
// Java implementation to find the uncommon // characters of the two strings import java.io.*;
class GFG
{ // size of the hash table
static int MAX_CHAR = 26 ;
// function to find the uncommon
// characters of the two strings
static void findAndPrintUncommonChars(String str1,
String str2)
{
// mark presence of each character as 0
// in the hash table 'present[]'
int present[] = new int [MAX_CHAR];
for ( int i = 0 ; i < MAX_CHAR; i++)
{
present[i] = 0 ;
}
int l1 = str1.length();
int l2 = str2.length();
// for each character of str1, mark its
// presence as 1 in 'present[]'
for ( int i = 0 ; i < l1; i++)
{
present[str1.charAt(i) - 'a' ] = 1 ;
}
// for each character of str2
for ( int i = 0 ; i < l2; i++)
{
// if a character of str2 is also present
// in str1, then mark its presence as -1
if (present[str2.charAt(i) - 'a' ] == 1
|| present[str2.charAt(i) - 'a' ] == - 1 )
{
present[str2.charAt(i) - 'a' ] = - 1 ;
}
// else mark its presence as 2
else
{
present[str2.charAt(i) - 'a' ] = 2 ;
}
}
// print all the uncommon characters
for ( int i = 0 ; i < MAX_CHAR; i++)
{
if (present[i] == 1 || present[i] == 2 )
{
System.out.print(( char ) (i + 'a' ) + " " );
}
}
}
// Driver code
public static void main(String[] args)
{
String str1 = "characters" ;
String str2 = "alphabets" ;
findAndPrintUncommonChars(str1, str2);
}
} // This code is contributed by Rajput-JI |
# Python 3 implementation to find the # uncommon characters of the two strings # size of the hash table MAX_CHAR = 26
# function to find the uncommon characters # of the two strings def findAndPrintUncommonChars(str1, str2):
# mark presence of each character as 0
# in the hash table 'present[]'
present = [ 0 ] * MAX_CHAR
for i in range ( 0 , MAX_CHAR):
present[i] = 0
l1 = len (str1)
l2 = len (str2)
# for each character of str1, mark its
# presence as 1 in 'present[]'
for i in range ( 0 , l1):
present[ ord (str1[i]) - ord ( 'a' )] = 1
# for each character of str2
for i in range ( 0 , l2):
# if a character of str2 is also present
# in str1, then mark its presence as -1
if (present[ ord (str2[i]) - ord ( 'a' )] = = 1 or
present[ ord (str2[i]) - ord ( 'a' )] = = - 1 ):
present[ ord (str2[i]) - ord ( 'a' )] = - 1
# else mark its presence as 2
else :
present[ ord (str2[i]) - ord ( 'a' )] = 2
# print all the uncommon characters
for i in range ( 0 , MAX_CHAR):
if (present[i] = = 1 or present[i] = = 2 ):
print ( chr (i + ord ( 'a' )), end = " " )
# Driver Code if __name__ = = "__main__" :
str1 = "characters"
str2 = "alphabets"
findAndPrintUncommonChars(str1, str2)
# This code is contributed # by Sairahul099 |
// C# implementation to find the uncommon // characters of the two strings using System;
class GFG
{ // size of the hash table
static int MAX_CHAR = 26;
// function to find the uncommon
// characters of the two strings
static void findAndPrintUncommonChars(String str1,
String str2)
{
// mark presence of each character as 0
// in the hash table 'present[]'
int []present = new int [MAX_CHAR];
for ( int i = 0; i < MAX_CHAR; i++)
{
present[i] = 0;
}
int l1 = str1.Length;
int l2 = str2.Length;
// for each character of str1, mark its
// presence as 1 in 'present[]'
for ( int i = 0; i < l1; i++)
{
present[str1[i] - 'a' ] = 1;
}
// for each character of str2
for ( int i = 0; i < l2; i++)
{
// if a character of str2 is also present
// in str1, then mark its presence as -1
if (present[str2[i] - 'a' ] == 1
|| present[str2[i] - 'a' ] == -1)
{
present[str2[i] - 'a' ] = -1;
}
// else mark its presence as 2
else
{
present[str2[i] - 'a' ] = 2;
}
}
// print all the uncommon characters
for ( int i = 0; i < MAX_CHAR; i++)
{
if (present[i] == 1 || present[i] == 2)
{
Console.Write(( char ) (i + 'a' ) + " " );
}
}
}
// Driver code
public static void Main(String[] args)
{
String str1 = "characters" ;
String str2 = "alphabets" ;
findAndPrintUncommonChars(str1, str2);
}
} // This code is contributed by PrinciRaj1992 |
<script> // Javascript implementation to find the uncommon // characters of the two strings // size of the hash table var MAX_CHAR = 26;
// function to find the uncommon characters // of the two strings function findAndPrintUncommonChars(str1, str2)
{ // mark presence of each character as 0
// in the hash table 'present[]'
var present = Array(MAX_CHAR);
for ( var i = 0; i < MAX_CHAR; i++)
present[i] = 0;
var l1 = str1.length;
var l2 = str2.length;
// for each character of str1, mark its
// presence as 1 in 'present[]'
for ( var i = 0; i < l1; i++)
present[str1[i].charCodeAt(0) - 'a' .charCodeAt(0)] = 1;
// for each character of str2
for ( var i = 0; i < l2; i++)
{
// if a character of str2 is also present
// in str1, then mark its presence as -1
if (present[str2[i].charCodeAt(0) - 'a' .charCodeAt(0)] == 1
|| present[str2[i].charCodeAt(0) - 'a' .charCodeAt(0)] == -1)
present[str2[i].charCodeAt(0) - 'a' .charCodeAt(0)] = -1;
// else mark its presence as 2
else
present[str2[i].charCodeAt(0) - 'a' .charCodeAt(0)] = 2;
}
// print all the uncommon characters
for ( var i=0; i<MAX_CHAR; i++)
if (present[i] == 1 || present[i] == 2 )
document.write( (String.fromCharCode(i + 'a' .charCodeAt(0))) + " " );
} // Driver program to test above var str1 = "characters" ;
var str2 = "alphabets" ;
findAndPrintUncommonChars(str1, str2); // This code is contributed by importantly. </script> |
b c l p r
Time Complexity: O(m + n), where m and n are the sizes of the two strings respectively.
Auxiliary Space: O(1), no any other extra space is required, so it is a constant.
Another Map-based approach:
- Take two maps and initialize their value as 0.
- traverse the first string, for each character present in first string, set 1 in the 1st map.
- Do the same for second string also.
- Iterate through all 26 characters, if the xor of map 1 and map 2 is 1 then it is present in one of the string only. i.e those characters are uncommon characters. Add them in the result string.
- return the result string, if the string is empty, return -1.
This approach is contributed by Bibhash Ghosh.
Below is the implementation of the above approach:
#include<bits/stdc++.h> using namespace std;
string UncommonChars(string a, string b) { int mp1[26] = {0}, mp2[26] = {0};
int n = a.size(), m = b.size();
for ( auto &x: a){
mp1[x- 'a' ] = 1;
}
for ( auto &x: b){
mp2[x- 'a' ] = 1;
}
string chars = "" ;
for ( int i = 0; i < 26; ++i){
if (mp1[i]^mp2[i])
chars+= char (i+ 'a' );
}
if (chars == "" )
return "-1" ;
else
return chars;
} int main(){
string a = "geeksforgeeks" ;
string b = "geeksquiz" ;
string result = UncommonChars(a,b);
cout << result << endl;
return 0;
} |
// Java implementation to find the uncommon // characters of the two strings import java.io.*;
class GFG {
// size of the hash table
static int MAX_CHAR = 26 ;
// function to find the uncommon
// characters of the two strings
static String UncommonChars(String a, String b)
{
int mp1[] = new int [MAX_CHAR];
int mp2[] = new int [MAX_CHAR];
int n = a.length();
int m = b.length();
for ( int i = 0 ; i < n; i++) {
mp1[a.charAt(i) - 'a' ] = 1 ;
}
for ( int i = 0 ; i < m; i++) {
mp2[b.charAt(i) - 'a' ] = 1 ;
}
String chars = "" ;
for ( int i = 0 ; i < 26 ; i++) {
if ((mp1[i] ^ mp2[i]) != 0 ) {
chars += ( char )(i + 'a' );
}
}
if (chars == "" )
return "-1" ;
else
return chars;
}
// Driver code
public static void main(String[] args)
{
String a = "geeksforgeeks" ;
String b = "geeksquiz" ;
String result = UncommonChars(a, b);
System.out.print(result);
}
} // This code is contributed by Aarti_Rathi |
def uncommon_chars(a: str , b: str ) - > str :
mp1 = [ 0 ] * 26
mp2 = [ 0 ] * 26
n = len (a)
m = len (b)
for x in a:
mp1[ ord (x) - ord ( 'a' )] = 1
for x in b:
mp2[ ord (x) - ord ( 'a' )] = 1
chars = ""
for i in range ( 26 ):
if mp1[i] ^ mp2[i]:
chars + = chr (i + ord ( 'a' ))
if chars = = "":
return "-1"
else :
return chars
a = "geeksforgeeks"
b = "geeksquiz"
result = uncommon_chars(a, b)
print (result)
|
using System;
public static class GFG {
public static string UncommonChars( string a, string b)
{
int [] mp1 = new int [26];
int [] mp2 = new int [26];
int n = a.Length;
int m = b.Length;
foreach ( var x in a) { mp1[x - 'a' ] = 1; }
foreach ( var x in b) { mp2[x - 'a' ] = 1; }
string chars = "" ;
for ( int i = 0; i < 26; ++i) {
if ((mp1[i] ^ mp2[i]) != 0) {
chars += ( char )(i + 'a' );
}
}
if (chars == "" ) {
return "-1" ;
}
else {
return chars;
}
}
public static void Main()
{
string a = "geeksforgeeks" ;
string b = "geeksquiz" ;
string result = UncommonChars(a, b);
Console.Write(result);
Console.Write( "\n" );
}
} // This code is contributed by Aarti_Rathi |
function UncommonChars(a, b)
{ let mp1 = [], mp2 = [];
for (let i = 0; i < 26; i++)
{
mp1.push(0);
mp2.push(0);
}
let n = a.length, m = b.length;
for (let i = 0; i < n; i++) {
let index = a.charCodeAt(i) - 97;
mp1[index] = 1;
}
for (let i = 0; i < m; i++)
{
let index = b.charCodeAt(i) - 97;
mp2[index] = 1;
}
let chars = "" ;
for (let i = 0; i < 26; ++i){
if (mp1[i]^mp2[i])
{
let char = String.fromCharCode(97+i);
chars += char;
}
}
if (chars == "" )
return "-1" ;
else
return chars;
} let a = "geeksforgeeks" ;
let b = "geeksquiz" ;
let result = UncommonChars(a,b);
console.log(result);
// This code is contributed by garg28harsh.
|
fioqruz
Time Complexity: O(m+n), Where m is the length of the first string and n is the length of second string.
Auxiliary Space: O(1), no any other extra space is required, so it is a constant.
Another Python-specific approach using set() and symmetric_difference().
In this approach we will convert both the strings into sets and use symmetric_diffference() to find out the uncommon characters between them.
#include <iostream> #include <string> #include <algorithm> #include <iterator> #include <set> using namespace std;
int main() {
string str1 = "characters" ;
string str2 = "alphabets" ;
// Converting both the string into sets
set< char > set1(str1.begin(), str1.end());
set< char > set2(str2.begin(), str2.end());
// Using symmetric difference operator
string result1;
set_symmetric_difference(set1.begin(), set1.end(), set2.begin(), set2.end(),
inserter(result1, result1.begin()));
cout << result1 << endl;
// Using symmetric_difference() method
string result2;
set_symmetric_difference(set1.begin(), set1.end(), set2.begin(), set2.end(),
inserter(result2, result2.begin()));
cout << result2 << endl;
return 0;
} |
import java.util.HashSet;
import java.util.Set;
public class Main {
public static void main(String[] args) {
String str1 = "characters" ;
String str2 = "alphabets" ;
Set<Character> set1 = new HashSet<>();
Set<Character> set2 = new HashSet<>();
// Adding characters of str1 to set1
for ( int i = 0 ; i < str1.length(); i++) {
set1.add(str1.charAt(i));
}
// Adding characters of str2 to set2
for ( int i = 0 ; i < str2.length(); i++) {
set2.add(str2.charAt(i));
}
// Using symmetric difference operator
Set<Character> diff = new HashSet<>(set1);
diff.addAll(set2);
Set<Character> temp = new HashSet<>(set1);
temp.retainAll(set2);
diff.removeAll(temp);
StringBuilder sb = new StringBuilder();
for ( char ch : diff) {
sb.append(ch);
}
String result = sb.toString();
System.out.println(result);
} } |
str1 = "characters"
str2 = "alphabets"
# Converting both the string # into sets str1 = set (str1)
str2 = set (str2)
# Using symmetric difference operator print ("".join( sorted (str1 ^ str2)))
# using symmetric_difference() method print ("".join( sorted (str1.symmetric_difference(str2))))
|
using System;
using System.Collections.Generic;
using System.Linq;
class Program
{ static void Main()
{
string str1 = "characters" ;
string str2 = "alphabets" ;
// Converting both strings into sets
var set1 = new HashSet< char >(str1);
var set2 = new HashSet< char >(str2);
// Using the symmetric difference operator (^) to
// find elements in either set, but not in both
var result1 = new string (set1.Except(set2).Union(set2.Except(set1)).ToArray());
Console.WriteLine( new string (result1.OrderBy(c => c).ToArray()));
// Using the SymmetricExceptWith method to modify
// one set with the symmetric difference of the two sets
var result2 = new HashSet< char >(set1);
result2.SymmetricExceptWith(set2);
Console.WriteLine( new string (result2.OrderBy(c => c).ToArray()));
}
} |
let str1 = "characters" ;
let str2 = "alphabets" ;
let set1 = new Set();
let set2 = new Set();
// Adding characters of str1 to set1 for (let i = 0; i < str1.length; i++) {
set1.add(str1.charAt(i));
} // Adding characters of str2 to set2 for (let i = 0; i < str2.length; i++) {
set2.add(str2.charAt(i));
} // Using symmetric difference operator let diff = new Set([...set1, ...set2]);
for (let char of set1) {
if (set2.has(char)) {
diff. delete (char);
}
} let result = [...diff].sort().join( "" );
console.log(result); |
bclpr bclpr
Time Complexity – O(nlogn) # Just for the sorted function.
Space Complexity – O(1) # No extra space has been used