Remove characters from the first string which are present in the second string
Given two strings string1 and string2, remove those characters from the first string(string1) which are present in the second string(string2). Both strings are different and contain only lowercase characters.
NOTE: The size of the first string is always greater than the size of the second string( |string1| > |string2|).
Example:
Input:
string1 = “computer”
string2 = “cat”
Output: “ompuer”
Explanation: After removing characters(c, a, t)
from string1 we get “ompuer”.Input:
string1 = “occurrence”
string2 = “car”
Output: “ouene”
Explanation: After removing characters
(c, a, r) from string1 we get “ouene”.
We strongly recommend that you click here and practise it, before moving on to the solution.
Algorithm: Let the first input string be a ”test string” and the string which has characters to be removed from the first string be a “mask”
- Initialize: res_ind = 0 /* index to keep track of the processing of each character in i/p string */
ip_ind = 0 /* index to keep track of the processing of each character in the resultant string */ - Construct count array from mask_str. The count array would be:
(We can use a Boolean array here instead of an int count array because we don’t need a count, we need to know only if the character is present in a mask string)
count[‘a’] = 1
count[‘k’] = 1
count[‘m’] = 1
count[‘s’] = 1 - Process each character in the input string and if the count of that character is 0, then only add the character to the resultant string.
str = “tet tringng” // ’s’ has been removed because ’s’ was present in mask_str, but we have got two extra characters “ng”
ip_ind = 11
res_ind = 9
Put a ‘\0′ at the end of the string.
Implementations:
C
#include <stdio.h>#include <stdlib.h>#define NO_OF_CHARS 256/* Returns an array of size 256 containing count of characters in the passed char array */int* getCharCountArray(char* str){ int* count = (int*)calloc(sizeof(int), NO_OF_CHARS); int i; for (i = 0; *(str + i); i++) count[*(str + i)]++; return count;}/* removeDirtyChars takes two string as arguments: Firststring (str) is the one fromwhere function removes dirtycharacters. Second string isthe string which contain alldirty characters which need to be removed from first string*/char* removeDirtyChars(char* str, char* mask_str){ int* count = getCharCountArray(mask_str); int ip_ind = 0, res_ind = 0; while (*(str + ip_ind)) { char temp = *(str + ip_ind); if (count[temp] == 0) { *(str + res_ind) = *(str + ip_ind); res_ind++; } ip_ind++; } /* After above step string is ngring. Removing extra "iittg" after string*/ *(str + res_ind) = '\0'; return str;}/* Driver code*/int main(){ char str[] = "geeksforgeeks"; char mask_str[] = "mask"; printf("%s", removeDirtyChars(str, mask_str)); return 0;} |
C++
// C++ program to remove duplicates, the order of// characters is not maintained in this progress#include <bits/stdc++.h>#define NO_OF_CHAR 256using namespace std;int* getcountarray(string str2){ int* count = (int*)calloc(sizeof(int), NO_OF_CHAR); for (int i = 0; i < str2.size(); i++) { count[str2[i]]++; } return count;}/* removeDirtyChars takes two string as arguments: Firststring (str1) is the one fromwhere function removes dirtycharacters. Second string(str2) is the string which containall dirty characters which need to be removed from firststring */string removeDirtyChars(string str1, string str2){ // str2 is the string // which is to be removed int* count = getcountarray(str2); string res; // ip_idx helps to keep // track of the first string int ip_idx = 0; while (ip_idx < str1.size()) { char temp = str1[ip_idx]; if (count[temp] == 0) { res.push_back(temp); } ip_idx++; } return res;}// Driver Codeint main(){ string str1 = "geeksforgeeks"; string str2 = "mask"; // Function call cout << removeDirtyChars(str1, str2) << endl;} |
Java
// Java program to remove duplicates, the order of// characters is not maintained in this programpublic class GFG { static final int NO_OF_CHARS = 256; /* Returns an array of size 256 containing count of characters in the passed char array */ static int[] getCharCountArray(String str) { int count[] = new int[NO_OF_CHARS]; for (int i = 0; i < str.length(); i++) count[str.charAt(i)]++; return count; } /* removeDirtyChars takes two string as arguments: First string (str) is the one from where function removes dirty characters. Second string is the string which contain all dirty characters which need to be removed from first string */ static String removeDirtyChars(String str, String mask_str) { int count[] = getCharCountArray(mask_str); int ip_ind = 0, res_ind = 0; char arr[] = str.toCharArray(); while (ip_ind != arr.length) { char temp = arr[ip_ind]; if (count[temp] == 0) { arr[res_ind] = arr[ip_ind]; res_ind++; } ip_ind++; } str = new String(arr); /* After above step string is ngring. Removing extra "iittg" after string*/ return str.substring(0, res_ind); } // Driver Code public static void main(String[] args) { String str = "geeksforgeeks"; String mask_str = "mask"; System.out.println(removeDirtyChars(str, mask_str)); }} |
Python3
# Python program to remove characters# from first string which# are present in the second stringNO_OF_CHARS = 256# Utility function to convert # from string to listdef toList(string): temp = [] for x in string: temp.append(x) return temp# Utility function to # convert from list to stringdef toString(List): return ''.join(List)# Returns an array of size # 256 containing count of characters# in the passed char arraydef getCharCountArray(string): count = [0] * NO_OF_CHARS for i in string: count[ord(i)] += 1 return count# removeDirtyChars takes two # string as arguments: First# string (str) is the one # from where function removes dirty# characters. Second string # is the string which contain all# dirty characters which need # to be removed from first stringdef removeDirtyChars(string, mask_string): count = getCharCountArray(mask_string) ip_ind = 0 res_ind = 0 temp = '' str_list = toList(string) while ip_ind != len(str_list): temp = str_list[ip_ind] if count[ord(temp)] == 0: str_list[res_ind] = str_list[ip_ind] res_ind += 1 ip_ind += 1 # After above step string is ngring. # Removing extra "iittg" after string return toString(str_list[0:res_ind])# Driver codemask_string = "mask"string = "geeksforgeeks"print(removeDirtyChars(string, mask_string))# This code is contributed by Bhavya Jain |
C#
// C# program to remove// duplicates, the order// of characters is not// maintained in this programusing System;class GFG { static int NO_OF_CHARS = 256; /* Returns an array of size 256 containing count of characters in the passed char array */ static int[] getCharCountArray(String str) { int[] count = new int[NO_OF_CHARS]; for (int i = 0; i < str.Length; i++) count[str[i]]++; return count; } /* removeDirtyChars takes two string as arguments: First string (str) is the one from where function removes dirty characters. Second string is the string which contain all dirty characters which need to be removed from first string */ static String removeDirtyChars(String str, String mask_str) { int[] count = getCharCountArray(mask_str); int ip_ind = 0, res_ind = 0; char[] arr = str.ToCharArray(); while (ip_ind != arr.Length) { char temp = arr[ip_ind]; if (count[temp] == 0) { arr[res_ind] = arr[ip_ind]; res_ind++; } ip_ind++; } str = new String(arr); /* After above step string is ngring. Removing extra "iittg" after string*/ return str.Substring(0, res_ind); } // Driver Code public static void Main() { String str = "geeksforgeeks"; String mask_str = "mask"; Console.WriteLine(removeDirtyChars(str, mask_str)); }}// This code is contributed by mits |
Javascript
<script>//Javascript Implementationlet NO_OF_CHARS = 256;function getcountarray(str2){ var count = new Array(NO_OF_CHARS).fill(0); for (var i = 0; i < str2.length; i++) { count[str2.charCodeAt(i)]++; } return count;} /* removeDirtyChars takes twostring as arguments: Firststring (str1) is the one fromwhere function removes dirtycharacters. Second string(str2)is the string which containall dirty characters which needto be removed from firststring */function removeDirtyChars(str1, str2){ // str2 is the string // which is to be removed var count = getcountarray(str2); var res =""; // ip_idx helps to keep // track of the first string var ip_idx = 0; while (ip_idx < str1.length) { var temp = str1[ip_idx]; if (count[temp.charCodeAt(0)] == 0) { res = res.concat(temp); } ip_idx++; } return res;} // Driver Codevar mask_string = "mask"var string = "geeksforgeeks"document.write(removeDirtyChars(string, mask_string)); // This code is contributed by shivani</script> |
Output
geeforgee
Time Complexity: O(m+n) Where m is the length of the mask string and n is the length of the input string.
Auxiliary Space: O(m)
An efficient solution is we find every character of string2 in string1 if that character is present then we simply erase that character from string1.
C
#include <stdio.h>#include <string.h>char* removeChars(char string1[], char string2[]) { int i, j, k; int len1 = strlen(string1); int len2 = strlen(string2); for (i = 0; i < len2; i++) { for (j = 0; j < len1; j++) { if (string1[j] == string2[i]) { for (k = j; k < len1; k++) { string1[k] = string1[k + 1]; } len1--; j--; } } } return string1;}int main() { char string1[] = "geeksforgeeks"; char string2[] = "mask"; printf("%s\n", removeChars(string1, string2)); return 0;} |
C++
// C++ program to remove duplicates#include <bits/stdc++.h>using namespace std;string removeChars(string string1, string string2) { //we extract every character of string string 2 for(auto i:string2) { //we find char exit or not while(find(string1.begin(),string1.end(),i)!=string1.end()) { auto itr = find(string1.begin(),string1.end(),i); //if char exit we simply remove that char string1.erase(itr); } } return string1; }// Driver Codeint main(){ string string1,string2; string1="geeksforgeeks"; string2="mask"; cout<< removeChars(string1,string2)<<endl;; return 0;} |
Java
/*package whatever //do not write package name here */import java.io.*;class GFG { public static String removeChars(String string1, String string2) { // we extract every character of string string 2 for (int index = 0; index < string2.length(); index++) { char i = string2.charAt(index); // we find char exit or not while (string1.contains(i + "")) { int itr = string1.indexOf(i); // if char exit we simply remove that char string1 = string1.replace((i + ""), ""); } } return string1; } // Driver Code public static void main(String[] args) { String string1, string2; string1 = "geeksforgeeks"; string2 = "mask"; System.out.println(removeChars(string1, string2)); }}//This code is contributed by KaaL-EL. |
Python3
# Python 3 program to remove duplicatesdef removeChars(string1, string2): # we extract every character of string string 2 for i in string2: # we find char exit or not while i in string1: itr = string1.find(i) # if char exit we simply remove that char string1 = string1.replace(i, '') return string1# Driver Codeif __name__ == "__main__": string1 = "geeksforgeeks" string2 = "mask" print(removeChars(string1, string2)) # This code is contributed by ukasp. |
C#
// Include namespace systemusing System;public class GFG{ public static String removeChars(String string1, String string2) { // we extract every character of string string 2 for (int index = 0; index < string2.Length; index++) { var i = string2[index]; // we find char exit or not while (string1.Contains(i.ToString() + "")) { // if char exit we simply remove that char string1 = string1.Replace((i.ToString() + ""),""); } } return string1; } // Driver Code public static void Main(String[] args) { String string1; String string2; string1 = "geeksforgeeks"; string2 = "mask"; Console.WriteLine(GFG.removeChars(string1, string2)); }}// This code is contributed by aadityaburujwale. |
Javascript
// function to remove characters from string1 that are present in string2function removeChars(string1, string2) { let i, j, k; let len1 = string1.length; // get length of string1 let len2 = string2.length; // get length of string2 // loop over characters in string2 for (i = 0; i < len2; i++) { // loop over characters in string1 for (j = 0; j < len1; j++) { // if character is found in both strings if (string1.charAt(j) == string2.charAt(i)) { // remove character from string1 string1 = string1.substring(0, j) + string1.substring(j + 1); len1--; // decrease length of string1 j--; // decrement j to account for shifted indices } } } return string1;}let string1 = "geeksforgeeks";let string2 = "mask";console.log(removeChars(string1, string2)); |
Output
geeforgee
Time Complexity: O(n*m), where n is the size of given string2 and m is the size of string1.
Auxiliary Space: O(1), as no extra space is used
Efficient Solution: An efficient solution is that we can mark the occurrence of all characters present in second string by -1 in frequency character array and then while traversing first string we can ignore the marked characters as shown in below program.
C
// C program to remove duplicates#include <stdio.h>#include <string.h>char* removeChars(char* s1, int n1, char* s2, int n2){ int arr[26] = { 0 }; // an array of size 26 to count the // frequency of characters int curr = 0; for (int i = 0; i < n2; i++) // assigned all the index of characters which // are present arr[s2[i] - 'a'] = -1; // in second string by -1 (just flagging) for (int i = 0; i < n1; i++) if (arr[s1[i] - 'a'] != -1) { // Checking if the index of characters // don't have -1 s1[curr] = s1[i]; // i.e, that character was not // present in second string curr++; // and then storing that character in // string } s1[curr] = '\0'; // marking last character as null to // point the end of string return s1;}// driver codeint main(){ char string1[] = "geeksforgeeks"; char string2[] = "mask"; int n1 = strlen(string1); int n2 = strlen(string2); printf("%s\n", removeChars(string1, n1, string2, n2)); return 0;}//contributed by SATYAM NAYAK |
C++
// C++ program to remove duplicates#include <bits/stdc++.h>using namespace std;char* removeChars(char* s1, int n1, char* s2, int n2){ int arr[26] = { 0 }; // an array of size 26 to count the frequency of characters int curr = 0; for (int i = 0; i < n2; i++) // assigned all the index of characters which are present arr[s2[i] - 'a'] = -1; // in second string by -1 (just flagging) for (int i = 0; i < n1; i++) if (arr[s1[i] - 'a'] != -1) { // Checking if the index of characters don't have -1 s1[curr] = s1[i]; // i.e, that character was not present in second string curr++; // and then storing that character in string } s1[curr] = '\0'; // marking last character as null to point the end of string return s1;}// driver codeint main(){ char string1[] = "geeksforgeeks"; char string2[] = "mask"; int n1 = sizeof(string1) / sizeof(string1[0]); int n2 = sizeof(string2) / sizeof(string2[0]); cout << removeChars(string1, n1, string2, n2) << endl; return 0;} |
Java
import java.util.*;public class GFG { static String removeChars(String s1, int n1, String s2, int n2) { String s3 = ""; // an array of size 26 to count the frequency of // characters int[] arr = new int[26]; for (int i = 0; i < 26; i++) { arr[i] = 0; } for (int i = 0; i < n2; i++) // assigned all the index of characters // which are present arr[s2.charAt(i) - 'a'] = -1; // in second string by -1 // (just flagging) for (int i = 0; i < n1; i++) { if (arr[s1.charAt(i) - 'a'] != -1) { // Checking if the index of // characters don't have -1 s3 += s1.charAt( i); // i.e, that character was not // present in second string and // then storing that character // in string } } s1 = s3; return s1; } // driver code public static void main(String args[]) { String string1 = "geeksforgeeks"; String string2 = "mask"; int n1 = string1.length(); int n2 = string2.length(); System.out.println( removeChars(string1, n1, string2, n2)); }}// This code is contributed by Samim Hossain// Mondal. |
Python3
# Python3 program to remove duplicatesdef removeChars(s1, n1, s2, n2): s3 = "" # an array of size 26 to count the frequency of # characters arr = [None] * 26 for i in range(0, 26): arr[i] = 0 for i in range(0, n2): # assigned all the index of characters # which are present arr[ord(s2[i]) - ord('a')] = -1 # in second string by -1 # (just flagging) for i in range(0, n1): if (arr[ord(s1[i]) - ord('a')] != -1): # Checking if the index of # characters don't have -1 s3 += s1[i] # i.e, that character was not # present in second string and # then storing that character # in string s1 = s3 return s1# driver codestring1 = "geeksforgeeks"string2 = "mask"n1 = len(string1)n2 = len(string2)print(removeChars(string1, n1, string2, n2))# contributed by akashish__ |
C#
// C# program to remove duplicatesusing System;class GFG { static string removeChars(string s1, int n1, string s2, int n2) { string s3 = ""; // an array of size 26 to count the frequency of // characters int[] arr = new int[26]; for (int i = 0; i < 26; i++) { arr[i] = 0; } for (int i = 0; i < n2; i++) // assigned all the index of characters // which are present arr[s2[i] - 'a'] = -1; // in second string by -1 // (just flagging) for (int i = 0; i < n1; i++) { if (arr[s1[i] - 'a'] != -1) { // Checking if the index of // characters don't have -1 s3 += s1[i]; // i.e, that character was not // present in second string and // then storing that character // in string } } s1 = s3; return s1; } // driver code public static void Main() { string string1 = "geeksforgeeks"; string string2 = "mask"; int n1 = string1.Length; int n2 = string2.Length; Console.WriteLine( removeChars(string1, n1, string2, n2)); }}// This code is contributed by Samim Hossain Mondal. |
Javascript
function removeChars(s1, n1, s2, n2) { let arr = new Array(26).fill(0); // an array of size 26 to count the frequency of characters let curr = 0; for (let i = 0; i < n2; i++) { // assigned all the index of characters which are present in second string by -1 (just flagging) arr[s2.charCodeAt(i) - 'a'.charCodeAt(0)] = -1; } let output = ''; for (let i = 0; i < n1; i++) { if (arr[s1.charCodeAt(i) - 'a'.charCodeAt(0)] != -1) { // Checking if the index of characters don't have -1 output += s1.charAt(i); // i.e, that character was not present in second string } } return output;}let string1 = "geeksforgeeks";let string2 = "mask";let n1 = string1.length;let n2 = string2.length;console.log(removeChars(string1, n1, string2, n2)); |
Output
geeforgee
Time Complexity: O(|S1|), where |S1| is the size of given string 1.
Auxiliary Space: O(1), as only an array of constant size (26) is used.
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