Check whether two Strings are anagram of each other
Given two strings. The task is to check whether the given strings are anagrams of each other or not.
An anagram of a string is another string that contains the same characters, only the order of characters can be different. For example, “abcd” and “dabc” are an anagram of each other.
Examples:
Input: str1 = “listen” str2 = “silent”
Output: “Anagram”
Explanation: All characters of “listen” and “silent” are the same.Input: str1 = “gram” str2 = “arm”
Output: “Not Anagram”
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Check whether two strings are anagrams of each other using sorting
Sort the two given strings and compare, if they are equal then they are anagram of each other.
- Sort both strings.
- Compare the sorted strings:
- If they are equal return True.
- Else return False.
Below is the implementation of the above idea:
C++
// C++ program to check whether two strings are anagrams// of each other#include <bits/stdc++.h>using namespace std;/* function to check whether two strings are anagram ofeach other */bool areAnagram(string str1, string str2){ // Get lengths of both strings int n1 = str1.length(); int n2 = str2.length(); // If length of both strings is not same, then they // cannot be anagram if (n1 != n2) return false; // Sort both the strings sort(str1.begin(), str1.end()); sort(str2.begin(), str2.end()); // Compare sorted strings for (int i = 0; i < n1; i++) if (str1[i] != str2[i]) return false; return true;}// Driver codeint main(){ string str1 = "gram"; string str2 = "arm"; // Function Call if (areAnagram(str1, str2)) cout << "The two strings are anagram of each other"; else cout << "The two strings are not anagram of each " "other"; return 0;} |
Java
// JAVA program to check whether two strings// are anagrams of each otherimport java.io.*;import java.util.Arrays;import java.util.Collections;class GFG { /* function to check whether two strings are anagram of each other */ static boolean areAnagram(char[] str1, char[] str2) { // Get lengths of both strings int n1 = str1.length; int n2 = str2.length; // If length of both strings is not same, // then they cannot be anagram if (n1 != n2) return false; // Sort both strings Arrays.sort(str1); Arrays.sort(str2); // Compare sorted strings for (int i = 0; i < n1; i++) if (str1[i] != str2[i]) return false; return true; } /* Driver Code*/ public static void main(String args[]) { char str1[] = { 'g', 'r', 'a', 'm' }; char str2[] = { 'a', 'r', 'm' }; // Function Call if (areAnagram(str1, str2)) System.out.println("The two strings are" + " anagram of each other"); else System.out.println("The two strings are not" + " anagram of each other"); }}// This code is contributed by Nikita Tiwari. |
Python
class Solution: # Function is to check whether two strings are anagram of each other or not. def isAnagram(self, a, b): if sorted(a) == sorted(b): return True else: return False# {# Driver Code Startsif __name__ == '__main__': a = "gram" b = "arm" if(Solution().isAnagram(a, b)): print("The two strings are anagram of each other") else: print("The two strings are not anagram of each other")# } Driver Code Ends |
C#
// C# program to check whether two// strings are anagrams of each otherusing System;using System.Collections;class GFG { /* function to check whether twostrings are anagram of each other */ public static bool areAnagram(ArrayList str1, ArrayList str2) { // Get lengths of both strings int n1 = str1.Count; int n2 = str2.Count; // If length of both strings is not // same, then they cannot be anagram if (n1 != n2) { return false; } // Sort both strings str1.Sort(); str2.Sort(); // Compare sorted strings for (int i = 0; i < n1; i++) { if (str1[i] != str2[i]) { return false; } } return true; } // Driver Code public static void Main(string[] args) { // create and initialize new ArrayList ArrayList str1 = new ArrayList(); str1.Add('g'); str1.Add('r'); str1.Add('a'); str1.Add('m'); // create and initialize new ArrayList ArrayList str2 = new ArrayList(); str2.Add('a'); str2.Add('r'); str2.Add('m'); // Function call if (areAnagram(str1, str2)) { Console.WriteLine("The two strings are" + " anagram of each other"); } else { Console.WriteLine("The two strings are not" + " anagram of each other"); } }}// This code is contributed by Shrikant13 |
Javascript
<script>// JavaScript program to check whether two strings// are anagrams of each other /* function to check whether two strings are anagram of each other */ function areAnagram(str1,str2) { // Get lengths of both strings let n1 = str1.length; let n2 = str2.length; // If length of both strings is not same, // then they cannot be anagram if (n1 != n2) return false; // Sort both strings str1.sort(); str2.sort() // Compare sorted strings for (let i = 0; i < n1; i++) if (str1[i] != str2[i]) return false; return true; } /* Driver Code*/ let str1=['g', 'r', 'a', 'm' ]; let str2=['a', 'r', 'm' ]; // Function Call if (areAnagram(str1, str2)) document.write("The two strings are" + " anagram of each other<br>"); else document.write("The two strings are not" + " anagram of each other<br>");// This code is contributed by rag2127</script> |
Output
The two strings are not anagram of each other
Time Complexity: O(N * logN), For sorting.
Auxiliary Space: O(1) as it is using constant extra space
Check whether two strings are anagrams of each other by using std::string::compare() function
Below is the idea to solve the problem:
1. Use Sort() function to sort both the strings a and b.
2. Use Compare() function to compare between strings a and b.
C++
#include <bits/stdc++.h>using namespace std;int isAnagram(string a, string b){ int flag=0; sort(a.begin(),a.end()); sort(b.begin(),b.end()); if(a.compare(b)==0){ flag=1; } else{ flag=0; } return flag;}int main() { string a="geeksforgeeks"; string b="forgeeksgeeks"; if(isAnagram(a,b)==1) cout<<"YES, They are Anagram"<<endl; else cout<<"NO, They are not Anagram"<<endl; return 0;} |
Output
YES, They are Anagram
Please write comments if you find anything incorrect, or if you want to share more information about the topic discussed above.
Check whether two strings are anagrams of each other by counting frequency:
The idea is based in an assumption that the set of possible characters in both strings is small. that the characters are stored using 8 bit and there can be 256 possible characters.
So count the frequency of the characters and if the frequency of characters in both strings are the same, they are anagram of each other.
Follow the below steps to Implement the idea:
- Create count arrays of size 256 for both strings. Initialize all values in count arrays as 0.
- Iterate through every character of both strings and increment the count of characters in the corresponding count arrays.
- Compare count arrays. If both count arrays are the same, then return true else return false.
Below is the implementation of the above approach:
C++
// C++ program to check if two strings// are anagrams of each other#include <bits/stdc++.h>using namespace std;#define NO_OF_CHARS 256/* function to check whether two strings are anagram ofeach other */bool areAnagram(char* str1, char* str2){ // Create 2 count arrays and initialize all values as 0 int count1[NO_OF_CHARS] = { 0 }; int count2[NO_OF_CHARS] = { 0 }; int i; // For each character in input strings, increment count // in the corresponding count array for (i = 0; str1[i] && str2[i]; i++) { count1[str1[i]]++; count2[str2[i]]++; } // If both strings are of different length. Removing // this condition will make the program fail for strings // like "aaca" and "aca" if (str1[i] || str2[i]) return false; // Compare count arrays for (i = 0; i < NO_OF_CHARS; i++) if (count1[i] != count2[i]) return false; return true;}/* Driver code*/int main(){ char str1[] = "gram"; char str2[] = "arm"; // Function Call if (areAnagram(str1, str2)) cout << "The two strings are anagram of each other"; else cout << "The two strings are not anagram of each " "other"; return 0;}// This is code is contributed by rathbhupendra |
C
// C program to check if two strings// are anagrams of each other#include <stdio.h>#define NO_OF_CHARS 256/* function to check whether two strings are anagram of each other */bool areAnagram(char* str1, char* str2){ // Create 2 count arrays and initialize all values as 0 int count1[NO_OF_CHARS] = { 0 }; int count2[NO_OF_CHARS] = { 0 }; int i; // For each character in input strings, increment count // in the corresponding count array for (i = 0; str1[i] && str2[i]; i++) { count1[str1[i]]++; count2[str2[i]]++; } // If both strings are of different length. Removing // this condition will make the program fail for strings // like "aaca" and "aca" if (str1[i] || str2[i]) return false; // Compare count arrays for (i = 0; i < NO_OF_CHARS; i++) if (count1[i] != count2[i]) return false; return true;}/* Driver code*/int main(){ char str1[] = "gram"; char str2[] = "arm"; // Function Call if (areAnagram(str1, str2)) printf("The two strings are anagram of each other"); else printf("The two strings are not anagram of each " "other"); return 0;} |
Java
// JAVA program to check if two strings// are anagrams of each otherimport java.io.*;import java.util.*;class GFG { static int NO_OF_CHARS = 256; /* function to check whether two strings are anagram of each other */ static boolean areAnagram(char str1[], char str2[]) { // Create 2 count arrays and initialize // all values as 0 int count1[] = new int[NO_OF_CHARS]; Arrays.fill(count1, 0); int count2[] = new int[NO_OF_CHARS]; Arrays.fill(count2, 0); int i; // For each character in input strings, // increment count in the corresponding // count array for (i = 0; i < str1.length && i < str2.length; i++) { count1[str1[i]]++; count2[str2[i]]++; } // If both strings are of different length. // Removing this condition will make the program // fail for strings like "aaca" and "aca" if (str1.length != str2.length) return false; // Compare count arrays for (i = 0; i < NO_OF_CHARS; i++) if (count1[i] != count2[i]) return false; return true; } /* Driver code*/ public static void main(String args[]) { char str1[] = ("gram").toCharArray(); char str2[] = ("arm").toCharArray(); // Function call if (areAnagram(str1, str2)) System.out.println("The two strings are" + " anagram of each other"); else System.out.println("The two strings are not" + " anagram of each other"); }}// This code is contributed by Nikita Tiwari. |
Python
# Python program to check if two strings are anagrams of# each otherNO_OF_CHARS = 256# Function to check whether two strings are anagram of# each otherdef areAnagram(str1, str2): # Create two count arrays and initialize all values as 0 count1 = [0] * NO_OF_CHARS count2 = [0] * NO_OF_CHARS # For each character in input strings, increment count # in the corresponding count array for i in str1: count1[ord(i)] += 1 for i in str2: count2[ord(i)] += 1 # If both strings are of different length. Removing this # condition will make the program fail for strings like # "aaca" and "aca" if len(str1) != len(str2): return 0 # Compare count arrays for i in xrange(NO_OF_CHARS): if count1[i] != count2[i]: return 0 return 1# Driver codestr1 = "gram"str2 = "arm"# Function callif areAnagram(str1, str2): print "The two strings are anagram of each other"else: print "The two strings are not anagram of each other"# This code is contributed by Bhavya Jain |
C#
// C# program to check if two strings// are anagrams of each otherusing System;public class GFG { static int NO_OF_CHARS = 256; /* function to check whether two strings are anagram of each other */ static bool areAnagram(char[] str1, char[] str2) { // Create 2 count arrays and initialize // all values as 0 int[] count1 = new int[NO_OF_CHARS]; int[] count2 = new int[NO_OF_CHARS]; int i; // For each character in input strings, // increment count in the corresponding // count array for (i = 0; i < str1.Length && i < str2.Length; i++) { count1[str1[i]]++; count2[str2[i]]++; } // If both strings are of different length. // Removing this condition will make the program // fail for strings like "aaca" and "aca" if (str1.Length != str2.Length) return false; // Compare count arrays for (i = 0; i < NO_OF_CHARS; i++) if (count1[i] != count2[i]) return false; return true; } /* Driver code*/ public static void Main() { char[] str1 = ("gram").ToCharArray(); char[] str2 = ("arm").ToCharArray(); // Function Call if (areAnagram(str1, str2)) Console.WriteLine("The two strings are" + " anagram of each other"); else Console.WriteLine("The two strings are not" + " anagram of each other"); }}// This code contributed by 29AjayKumar |
Javascript
<script>// JAVAscript program to check if two strings// are anagrams of each otherlet NO_OF_CHARS = 256;/* function to check whether two strings are anagram of each other */function areAnagram(str1, str2){ // Create 2 count arrays and initialize // all values as 0 let count1 = new Array(NO_OF_CHARS); let count2 = new Array(NO_OF_CHARS); for(let i = 0; i < NO_OF_CHARS; i++) { count1[i] = 0; count2[i] = 0; } let i; // For each character in input strings, // increment count in the corresponding // count array for (i = 0; i < str1.length && i < str2.length; i++) { count1[str1[i].charCodeAt(0)]++; count2[str1[i].charCodeAt(0)]++; } // If both strings are of different length. // Removing this condition will make the program // fail for strings like "aaca" and "aca" if (str1.length != str2.length) return false; // Compare count arrays for (i = 0; i < NO_OF_CHARS; i++) if (count1[i] != count2[i]) return false; return true;}/* Driver code*/let str1 = ("gram").split(""); let str2 = ("arm").split(""); // Function call if (areAnagram(str1, str2)) document.write("The two strings are" + "anagram of each other<br>"); else document.write("The two strings are not" + " anagram of each other<br>");// This code is contributed by avanitrachhadiya2155</script> |
Output
The two strings are not anagram of each other
Time Complexity: O(n)
Auxiliary Space: O(256) i.e. O(1) for constant space.
Check whether two strings are anagrams of each other using one count array:
Below is the idea to solve the problem:
The above can be modified to use only one count array instead of two. Increment the value in count array for characters in str1 and decrement for characters in str2. Finally, if all count values are 0, then the two strings are anagram of each other.
Below is the implementation of the above approach:
C++
// C++ program to check if two strings// are anagrams of each other#include <bits/stdc++.h>using namespace std;#define NO_OF_CHARS 256bool areAnagram(char* str1, char* str2){ // Create a count array and initialize all values as 0 int count[NO_OF_CHARS] = { 0 }; int i; // For each character in input strings, increment count // in the corresponding count array for (i = 0; str1[i] && str2[i]; i++) { count[str1[i]]++; count[str2[i]]--; } // If both strings are of different length. Removing // this condition will make the program fail for strings // like "aaca" and "aca" if (str1[i] || str2[i]) return false; // See if there is any non-zero value in count array for (i = 0; i < NO_OF_CHARS; i++) if (count[i]) return false; return true;}// Driver codeint main(){ char str1[] = "gram"; char str2[] = "arm"; // Function call if (areAnagram(str1, str2)) cout << "The two strings are anagram of each other"; else cout << "The two strings are not anagram of each " "other"; return 0;} |
Java
// Java program to check if two strings// are anagrams of each otherclass GFG{static int NO_OF_CHARS = 256;// function to check if two strings// are anagrams of each otherstatic boolean areAnagram(char[] str1, char[] str2){ // Create a count array and initialize // all values as 0 int[] count = new int[NO_OF_CHARS]; int i; // If both strings are of different // length. Removing this condition // will make the program fail for // strings like "aaca" and "aca" if (str1.length != str2.length) return false; // For each character in input strings, // increment count in the corresponding // count array for(i = 0; i < str1.length; i++) { count[str1[i]]++; count[str2[i]]--; } // See if there is any non-zero // value in count array for(i = 0; i < NO_OF_CHARS; i++) if (count[i] != 0) { return false; } return true;}// Driver codepublic static void main(String[] args){ char str1[] = "gram".toCharArray(); char str2[] = "arm".toCharArray(); // Function call if (areAnagram(str1, str2)) System.out.print("The two strings are " + "anagram of each other"); else System.out.print("The two strings are " + "not anagram of each other");}}// This code is contributed by mark_85 |
Python3
# Python program to check if two strings# are anagrams of each otherNO_OF_CHARS = 256# function to check if two strings# are anagrams of each otherdef areAnagram(str1,str2): # If both strings are of different # length. Removing this condition # will make the program fail for # strings like "aaca" and "aca" if(len(str1) != len(str2)): return False; # Create a count array and initialize # all values as 0 count=[0 for i in range(NO_OF_CHARS)] i=0 # For each character in input strings, # increment count in the corresponding # count array for i in range(len(str1)): count[ord(str1[i]) - ord('a')] += 1; count[ord(str2[i]) - ord('a')] -= 1; # See if there is any non-zero # value in count array for i in range(NO_OF_CHARS): if (count[i] != 0): return False return True# Driver codestr1="gram"str2="arm"# Function callif (areAnagram(str1, str2)): print("The two strings are anagram of each other")else: print("The two strings are not anagram of each other") # This code is contributed by patel2127 |
C#
// C# program to check if two strings// are anagrams of each otherusing System;class GFG{static int NO_OF_CHARS = 256;// function to check if two strings// are anagrams of each otherstatic bool areAnagram(char[] str1, char[] str2){ // If both strings are of different // Length. Removing this condition // will make the program fail for // strings like "aaca" and "aca" if (str1.Length != str2.Length) return false; // Create a count array and initialize // all values as 0 int[] count = new int[NO_OF_CHARS]; int i; // For each character in input strings, // increment count in the corresponding // count array for(i = 0; i < str1.Length; i++) { count[str1[i] - 'a']++; count[str2[i] - 'a']--; } // See if there is any non-zero // value in count array for(i = 0; i < NO_OF_CHARS; i++) if (count[i] != 0) { return false; } return true;}// Driver codepublic static void Main(String []args){ char []str1 = "gram".ToCharArray(); char []str2 = "arm".ToCharArray(); // Function call if (areAnagram(str1, str2)) Console.Write("The two strings are " + "anagram of each other"); else Console.Write("The two strings are " + "not anagram of each other");}}// This code is contributed by shivanisinghss2110 |
Javascript
<script>// Javascript program to check if two strings// are anagrams of each otherlet NO_OF_CHARS = 256;// function to check if two strings// are anagrams of each otherfunction areAnagram(str1, str2){ // If both strings are of different // length. Removing this condition // will make the program fail for // strings like "aaca" and "aca" if (str1.length != str2.length) return false; // Create a count array and initialize // all values as 0 let count = new Array(NO_OF_CHARS); for(let i = 0; i < NO_OF_CHARS; i++) { count[i] = 0; } let i; // For each character in input strings, // increment count in the corresponding // count array for(i = 0; i < str1.length; i++) { count[str1[i].charCodeAt(0) - 'a'.charCodeAt(0)]++; count[str2[i].charCodeAt(0) - 'a'.charCodeAt(0)]--; } // See if there is any non-zero // value in count array for(i = 0; i < NO_OF_CHARS; i++) if (count[i] != 0) { return false; } return true;}// Driver codelet str1 = "gram".split("");let str2 = "arm".split("");// Function callif (areAnagram(str1, str2)) document.write("The two strings are " + "anagram of each other");else document.write("The two strings are " + "not anagram of each other");// This code is contributed by unknown2108.</script> |
Output
The two strings are not anagram of each other
Time Complexity: O(n)
Auxiliary Space: O(256) i.e. O(1), As constant space is used
Thanks to Ace for suggesting this optimization.
Check whether two strings are anagrams of each other by storing all characters in HashMap
Below is the idea to solve the problem:
The idea is a modification of the above approach where instead of creating an array of 256 characters HashMap is used to store characters and count of characters in HashMap. Idea is to put all characters of one String in HashMap and reduce them as they are encountered while looping over other the string.
Below is the implementation of the above approach:
C++
// C++ implementation of the approach// Function that returns true if a and b// are anagarams of each other#include <bits/stdc++.h>using namespace std;bool isAnagram(string a, string b){ // Check if length of both strings is same or not if (a.length() != b.length()) { return false; } // Create a HashMap containing Character as Key and // Integer as Value. We will be storing character as // Key and count of character as Value. unordered_map<char, int> Map; // Loop over all character of String a and put in // HashMap. for (int i = 0; i < a.length(); i++) { Map[a[i]]++; } // Now loop over String b for (int i = 0; i < b.length(); i++) { // Check if current character already exists in // HashMap/map if (Map.find(b[i]) != Map.end()) { // If contains reduce count of that // character by 1 to indicate that current // character has been already counted as // idea here is to check if in last count of // all characters in last is zero which // means all characters in String a are // present in String b. Map[b[i]] -= 1; } else { return false; } } // Loop over all keys and check if all keys are 0. // If so it means it is anagram. for (auto items : Map) { if (items.second != 0) { return false; } } // Returning True as all keys are zero return true;}// Driver codeint main(){ string str1 = "gram"; string str2 = "arm"; // Function call if (isAnagram(str1, str2)) cout << "The two strings are anagram of each other" << endl; else cout << "The two strings are not anagram of each " "other" << endl;}// This code is contributed by shinjanpatra |
Java
import java.io.*;import java.util.*;class GFG { public static boolean isAnagram(String a, String b) { // Check if length of both strings is same or not if (a.length() != b.length()) { return false; } // Create a HashMap containing Character as Key and // Integer as Value. We will be storing character as // Key and count of character as Value. HashMap<Character, Integer> map = new HashMap<>(); // Loop over all character of String a and put in // HashMap. for (int i = 0; i < a.length(); i++) { // Check if HashMap already contain current // character or not if (map.containsKey(a.charAt(i))) { // If contains increase count by 1 for that // character map.put(a.charAt(i), map.get(a.charAt(i)) + 1); } else { // else put that character in map and set // count to 1 as character is encountered // first time map.put(a.charAt(i), 1); } } // Now loop over String b for (int i = 0; i < b.length(); i++) { // Check if current character already exists in // HashMap/map if (map.containsKey(b.charAt(i))) { // If contains reduce count of that // character by 1 to indicate that current // character has been already counted as // idea here is to check if in last count of // all characters in last is zero which // means all characters in String a are // present in String b. map.put(b.charAt(i), map.get(b.charAt(i)) - 1); } else { return false; } } // Extract all keys of HashMap/map Set<Character> keys = map.keySet(); // Loop over all keys and check if all keys are 0. // If so it means it is anagram. for (Character key : keys) { if (map.get(key) != 0) { return false; } } // Returning True as all keys are zero return true; } public static void main(String[] args) { String str1 = "gram"; String str2 = "arm"; // Function call if (isAnagram(str1, str2)) System.out.print("The two strings are " + "anagram of each other"); else System.out.print("The two strings are " + "not anagram of each other"); }} |
Python3
# Python3 implementation of the approach# Function that returns True if a and b# are anagarams of each otherdef isAnagram(a, b): # Check if length of both strings is same or not if (len(a) != len(b)): return False # Create a HashMap containing Character as Key and # Integer as Value. We will be storing character as # Key and count of character as Value. map = {} # Loop over all character of String a and put in # HashMap. for i in range(len(a)): # Check if HashMap already contain current # character or not if (a[i] in map): # If contains increase count by 1 for that # character map[a[i]] += 1 else: # else set that character in map and set # count to 1 as character is encountered # first time map[a[i]] = 1 # Now loop over String b for i in range(len(b)): # Check if current character already exists in # HashMap/map if (b[i] in map): # If contains reduce count of that # character by 1 to indicate that current # character has been already counted as # idea here is to check if in last count of # all characters in last is zero which # means all characters in String a are # present in String b. map[b[i]] -= 1 else: return False # Extract all keys of HashMap/map keys = map.keys() # Loop over all keys and check if all keys are 0. # If so it means it is anagram. for key in keys: if (map[key] != 0): return False # Returning True as all keys are zero return True# Driver codestr1 = "gram"str2 = "arm"# Function callif (isAnagram(str1, str2)): print("The two strings are anagram of each other")else: print("The two strings are not anagram of each other")# This code is contributed by shinjanpatra |
C#
using System;using System.Collections.Generic;public class GFG { public static bool isAnagram(String a, String b) { // Check if length of both strings is same or not if (a.Length != b.Length) { return false; } // Create a Dictionary containing char as Key and // int as Value. We will be storing character as // Key and count of character as Value. Dictionary<char, int> map = new Dictionary<char, int>(); // Loop over all character of String a and put in // Dictionary. for (int i = 0; i < a.Length; i++) { // Check if Dictionary already contain current // character or not if (map.ContainsKey(a[i])) { // If contains increase count by 1 for that // character map[a[i]] = map[a[i]] + 1; } else { // else put that character in map and set // count to 1 as character is encountered // first time map.Add(a[i], 1); } } // Now loop over String b for (int i = 0; i < b.Length; i++) { // Check if current character already exists in // Dictionary/map if (map.ContainsKey(b[i])) { // If contains reduce count of that // character by 1 to indicate that current // character has been already counted as // idea here is to check if in last count of // all characters in last is zero which // means all characters in String a are // present in String b. map[b[i]] = map[b[i]] - 1; } else { return false; } } // Extract all keys of Dictionary/map var keys = map.Keys; // Loop over all keys and check if all keys are 0. // If so it means it is anagram. foreach(char key in keys) { if (map[key] != 0) { return false; } } // Returning True as all keys are zero return true; } // Driver code public static void Main(String[] args) { String str1 = "gram"; String str2 = "arm"; // Function call if (isAnagram(str1, str2)) Console.Write("The two strings are " + "anagram of each other"); else Console.Write("The two strings are " + "not anagram of each other"); }}// This code is contributed by shikhasingrajput |
Javascript
<script>// JavaScript implementation of the approach// Function that returns true if a and b// are anagarams of each otherfunction isAnagram(a, b){ // Check if length of both strings is same or not if (a.length != b.length) { return false; } // Create a HashMap containing Character as Key and // Integer as Value. We will be storing character as // Key and count of character as Value. let map = new Map(); // Loop over all character of String a and put in // HashMap. for (let i = 0; i < a.length; i++) { // Check if HashMap already contain current // character or not if (map.has(a[i])) { // If contains increase count by 1 for that // character map.set(a[i], map.get(a[i]) + 1); } else { // else set that character in map and set // count to 1 as character is encountered // first time map.set(a[i], 1); } } // Now loop over String b for (let i = 0; i < b.length; i++) { // Check if current character already exists in // HashMap/map if (map.has(b[i])) { // If contains reduce count of that // character by 1 to indicate that current // character has been already counted as // idea here is to check if in last count of // all characters in last is zero which // means all characters in String a are // present in String b. map.set(b[i], map.get(b[i]) - 1); } else { return false; } } // Extract all keys of HashMap/map let keys = map.keys(); // Loop over all keys and check if all keys are 0. // If so it means it is anagram. for (let key of keys) { if (map.get(key) != 0) { return false; } } // Returning True as all keys are zero return true; }// Driver codelet str1 = "gram";let str2 = "arm"; // Function callif (isAnagram(str1, str2)) document.write("The two strings are anagram of each other");else document.write("The two strings are not anagram of each other");// This code is contributed by shinjanpatra</script> |
Output
The two strings are not anagram of each other
Time Complexity: O(N)
Auxiliary Space: O(N), Hashmap uses an extra space
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