Different substrings in a string that start and end with given strings
Given a string s and two other strings begin and end, find the number of different substrings in the string which begin and end with the given begin and end strings.
Examples:
Input : s = "w3wiki" begin = "Beginner" end = "for" Output : 1 Input : s = "vishakha" begin = "h" end = "a" Output : 2 Two different sub-strings are "ha" and "hakha".
Approach: Find all occurrences of string begin and string end. Store the index of each string in two different arrays. After that traverse through the whole string and add one symbol per iteration to already seen sub-strings and map new strings to some non-negative integers. As the ends and beginnings of strings and different strings of equal length are mapped to different numbers (and equal strings are mapped equally), simply count the number of necessary sub-strings of a certain length.
Implementation:
C++
// Cpp program to find number of // different sub strings #include <bits/stdc++.h> using namespace std; // function to return number of different // sub-strings int numberOfDifferentSubstrings(string s, string a, string b) { // initially our answer is zero. int ans = 0; // find the length of given strings int ls = s.size(), la = a.size(), lb = b.size(); // currently make array and initially put zero. int x[ls] = { 0 }, y[ls] = { 0 }; // find occurrence of "a" and "b" in string "s" for ( int i = 0; i < ls; i++) { if (s.substr(i, la) == a) x[i] = 1; if (s.substr(i, lb) == b) y[i] = 1; } // We use a hash to make sure that same // substring is not counted twice. unordered_set<string> hash; // go through all the positions to find // occurrence of "a" first. string curr_substr = "" ; for ( int i = 0; i < ls; i++) { // if we found occurrence of "a". if (x[i]) { // then go through all the positions // to find occurrence of "b". for ( int j = i; j < ls; j++) { // if we do found "b" at index // j then add it to already // existed substring. if (!y[j]) curr_substr += s[j]; // if we found occurrence of "b". if (y[j]) { // now add string "b" to // already existed substring. curr_substr += s.substr(j, lb); // If current substring is not // included already. if (hash.find(curr_substr) == hash.end()) ans++; // put any non negative // integer to make this // string as already // existed. hash.insert(curr_substr); } } // make substring null. curr_substr = "" ; } } // return answer. return ans; } // Driver program for above function. int main() { string s = "codecppforfood" ; string begin = "c" ; string end = "d" ; cout << numberOfDifferentSubstrings(s, begin, end) << endl; return 0; } |
Java
// Java program to find number of // different sub strings import java.util.HashSet; class GFG { // function to return number of // different sub-strings static int numberOfDifferentSubstrings(String s, char a, char b) { // initially our answer is zero. int ans = 0 ; // find the length of given strings int ls = s.length(); // currently make array and // initially put zero. int [] x = new int [ls]; int [] y = new int [ls]; // find occurrence of "a" and "b" // in string "s" for ( int i = 0 ; i < ls; i++) { if (s.charAt(i) == a) x[i] = 1 ; if (s.charAt(i) == b) y[i] = 1 ; } // We use a hash to make sure that same // substring is not counted twice. HashSet<String> hash = new HashSet<>(); // go through all the positions to find // occurrence of "a" first. String curr_substr = "" ; for ( int i = 0 ; i < ls; i++) { // if we found occurrence of "a". if (x[i] != 0 ) { // then go through all the positions // to find occurrence of "b". for ( int j = i; j < ls; j++) { // if we do found "b" at index // j then add it to already // existed substring. if (y[j] == 0 ) curr_substr += s.charAt(i); // if we found occurrence of "b". if (y[j] != 0 ) { // now add string "b" to // already existed substring. curr_substr += s.charAt(j); // If current substring is not // included already. if (!hash.contains(curr_substr)) ans++; // put any non negative // integer to make this // string as already // existed. hash.add(curr_substr); } } // make substring null. curr_substr = "" ; } } // return answer. return ans; } // Driver Code public static void main(String[] args) { String s = "codecppforfood" ; char begin = 'c' ; char end = 'd' ; System.out.println( numberOfDifferentSubstrings(s, begin, end)); } } // This code is contributed by // sanjeev2552 |
Python3
# Python 3 program to find number of # different sub strings # function to return number of different # sub-strings def numberOfDifferentSubstrings(s, a, b): # initially our answer is zero. ans = 0 # find the length of given strings ls = len (s) la = len (a) lb = len (b) # currently make array and initially # put zero. x = [ 0 ] * ls y = [ 0 ] * ls # find occurrence of "a" and "b" in string "s" for i in range (ls): if (s[i: la + i] = = a): x[i] = 1 if (s[i: lb + i] = = b): y[i] = 1 # We use a hash to make sure that same # substring is not counted twice. hash = [] # go through all the positions to find # occurrence of "a" first. curr_substr = "" for i in range (ls): # if we found occurrence of "a". if (x[i]): # then go through all the positions # to find occurrence of "b". for j in range ( i, ls): # if we do found "b" at index # j then add it to already # existed substring. if ( not y[j]): curr_substr + = s[j] # if we found occurrence of "b". if (y[j]): # now add string "b" to # already existed substring. curr_substr + = s[j: lb + j] # If current substring is not # included already. if curr_substr not in hash : ans + = 1 # put any non negative integer # to make this string as already # existed. hash .append(curr_substr) # make substring null. curr_substr = "" # return answer. return ans # Driver Code if __name__ = = "__main__" : s = "codecppforfood" begin = "c" end = "d" print (numberOfDifferentSubstrings(s, begin, end)) # This code is contributed by ita_c |
C#
// C# program to find number of // different sub strings using System; using System.Collections.Generic; class GFG { // function to return number of // different sub-strings static int numberOfDifferentSubstrings(String s, char a, char b) { // initially our answer is zero. int ans = 0; // find the length of given strings int ls = s.Length; // currently make array and // initially put zero. int [] x = new int [ls]; int [] y = new int [ls]; // find occurrence of "a" and "b" // in string "s" for ( int i = 0; i < ls; i++) { if (s[i] == a) x[i] = 1; if (s[i] == b) y[i] = 1; } // We use a hash to make sure that same // substring is not counted twice. HashSet<String> hash = new HashSet<String>(); // go through all the positions to find // occurrence of "a" first. String curr_substr = "" ; for ( int i = 0; i < ls; i++) { // if we found occurrence of "a". if (x[i] != 0) { // then go through all the positions // to find occurrence of "b". for ( int j = i; j < ls; j++) { // if we do found "b" at index // j then add it to already // existed substring. if (y[j] == 0) curr_substr += s[i]; // if we found occurrence of "b". if (y[j] != 0) { // now add string "b" to // already existed substring. curr_substr += s[j]; // If current substring is not // included already. if (!hash.Contains(curr_substr)) ans++; // put any non negative // integer to make this // string as already // existed. hash.Add(curr_substr); } } // make substring null. curr_substr = "" ; } } // return answer. return ans; } // Driver Code public static void Main(String[] args) { String s = "codecppforfood" ; char begin = 'c' ; char end = 'd' ; Console.WriteLine( numberOfDifferentSubstrings(s, begin, end)); } } // This code is contributed by Rajput-Ji |
Javascript
<script> // Javascript program to find number of // different sub strings // function to return number of // different sub-strings function numberOfDifferentSubstrings(s,a,b) { // initially our answer is zero. let ans = 0; // find the length of given strings let ls = s.length; // currently make array and // initially put zero. let x = new Array(ls); let y = new Array(ls); for (let i=0;i<ls;i++) { x[i]=0; y[i]=0; } // find occurrence of "a" and "b" // in string "s" for (let i = 0; i < ls; i++) { if (s[i] == a) x[i] = 1; if (s[i] == b) y[i] = 1; } // We use a hash to make sure that same // substring is not counted twice. let hash = new Set(); // go through all the positions to find // occurrence of "a" first. let curr_substr = "" ; for (let i = 0; i < ls; i++) { // if we found occurrence of "a". if (x[i] != 0) { // then go through all the positions // to find occurrence of "b". for (let j = i; j < ls; j++) { // if we do found "b" at index // j then add it to already // existed substring. if (y[j] == 0) curr_substr += s[i]; // if we found occurrence of "b". if (y[j] != 0) { // now add string "b" to // already existed substring. curr_substr += s[j]; // If current substring is not // included already. if (!hash.has(curr_substr)) ans++; // put any non negative // integer to make this // string as already // existed. hash.add(curr_substr); } } // make substring null. curr_substr = "" ; } } // return answer. return ans; } // Driver Code let s = "codecppforfood" ; let begin = 'c' ; let end = 'd' ; document.write(numberOfDifferentSubstrings(s, begin, end)); // This code is contributed by rag2127 </script> |
Output:
3
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