To strenger sies å være komplette hvis de ved sammenkobling inneholder alle de 26 engelske alfabetene. For eksempel er 'abcdefghi' og 'jklmnopqrstuvwxyz' komplette siden de sammen har alle tegn fra 'a' til 'z'.
hovedmetode java
Vi får to sett med størrelser henholdsvis n og m, og vi må finne antall par som er komplette ved å sette sammen hver streng fra sett 1 til hver streng fra sett 2.
Input : set1[] = {'abcdefgh' 'geeksforgeeks' 'lmnopqrst' 'abc'} set2[] = {'ijklmnopqrstuvwxyz' 'abcdefghijklmnopqrstuvwxyz' 'defghijklmnopqrstuvwxyz'} Output : 7 The total complete pairs that are forming are: 'abcdefghijklmnopqrstuvwxyz' 'abcdefghabcdefghijklmnopqrstuvwxyz' 'abcdefghdefghijklmnopqrstuvwxyz' 'geeksforgeeksabcdefghijklmnopqrstuvwxyz' 'lmnopqrstabcdefghijklmnopqrstuvwxyz' 'abcabcdefghijklmnopqrstuvwxyz' 'abcdefghijklmnopqrstuvwxyz' Metode 1 (naiv metode): En enkel løsning er å vurdere alle par med strenger som sammenkobler dem og deretter sjekke om den sammenkoblede strengen har alle tegnene fra 'a' til 'z' ved å bruke en frekvensmatrise.
Implementering:
C++// C++ implementation for find pairs of complete // strings. #include
// Java implementation for find pairs of complete // strings. class GFG { // Returns count of complete pairs from set[0..n-1] // and set2[0..m-1] static int countCompletePairs(String set1[] String set2[] int n int m) { int result = 0; // Consider all pairs of both strings for (int i = 0; i < n; i++) { for (int j = 0; j < m; j++) { // Create a concatenation of current pair String concat = set1[i] + set2[j]; // Compute frequencies of all characters // in the concatenated String. int frequency[] = new int[26]; for (int k = 0; k < concat.length(); k++) { frequency[concat.charAt(k) - 'a']++; } // If frequency of any character is not // greater than 0 then this pair is not // complete. int k; for (k = 0; k < 26; k++) { if (frequency[k] < 1) { break; } } if (k == 26) { result++; } } } return result; } // Driver code static public void main(String[] args) { String set1[] = { 'abcdefgh' 'geeksforgeeks' 'lmnopqrst' 'abc' }; String set2[] = { 'ijklmnopqrstuvwxyz' 'abcdefghijklmnopqrstuvwxyz' 'defghijklmnopqrstuvwxyz' }; int n = set1.length; int m = set2.length; System.out.println(countCompletePairs(set1 set2 n m)); } } // This code is contributed by PrinciRaj19992
# Python3 implementation for find pairs of complete # strings. # Returns count of complete pairs from set[0..n-1] # and set2[0..m-1] def countCompletePairs(set1set2nm): result = 0 # Consider all pairs of both strings for i in range(n): for j in range(m): # Create a concatenation of current pair concat = set1[i] + set2[j] # Compute frequencies of all characters # in the concatenated String. frequency = [0 for i in range(26)] for k in range(len(concat)): frequency[ord(concat[k]) - ord('a')] += 1 # If frequency of any character is not # greater than 0 then this pair is not # complete. k = 0 while(k<26): if (frequency[k] < 1): break k += 1 if (k == 26): result += 1 return result # Driver code set1=['abcdefgh' 'geeksforgeeks' 'lmnopqrst' 'abc'] set2=['ijklmnopqrstuvwxyz' 'abcdefghijklmnopqrstuvwxyz' 'defghijklmnopqrstuvwxyz'] n = len(set1) m = len(set2) print(countCompletePairs(set1 set2 n m)) # This code is contributed by shinjanpatra
// C# implementation for find pairs of complete // strings. using System; class GFG { // Returns count of complete pairs from set[0..n-1] // and set2[0..m-1] static int countCompletePairs(string[] set1 string[] set2 int n int m) { int result = 0; // Consider all pairs of both strings for (int i = 0; i < n; i++) { for (int j = 0; j < m; j++) { // Create a concatenation of current pair string concat = set1[i] + set2[j]; // Compute frequencies of all characters // in the concatenated String. int[] frequency = new int[26]; for (int k = 0; k < concat.Length; k++) { frequency[concat[k] - 'a']++; } // If frequency of any character is not // greater than 0 then this pair is not // complete. int l; for (l = 0; l < 26; l++) { if (frequency[l] < 1) { break; } } if (l == 26) { result++; } } } return result; } // Driver code static public void Main() { string[] set1 = { 'abcdefgh' 'geeksforgeeks' 'lmnopqrst' 'abc' }; string[] set2 = { 'ijklmnopqrstuvwxyz' 'abcdefghijklmnopqrstuvwxyz' 'defghijklmnopqrstuvwxyz' }; int n = set1.Length; int m = set2.Length; Console.Write(countCompletePairs(set1 set2 n m)); } } // This article is contributed by Ita_c.
<script> // Javascript implementation for find pairs of complete // strings. // Returns count of complete pairs from set[0..n-1] // and set2[0..m-1] function countCompletePairs(set1set2nm) { let result = 0; // Consider all pairs of both strings for (let i = 0; i < n; i++) { for (let j = 0; j < m; j++) { // Create a concatenation of current pair let concat = set1[i] + set2[j]; // Compute frequencies of all characters // in the concatenated String. let frequency = new Array(26); for(let i= 0;i<26;i++) { frequency[i]=0; } for (let k = 0; k < concat.length; k++) { frequency[concat[k].charCodeAt(0) - 'a'.charCodeAt(0)]++; } // If frequency of any character is not // greater than 0 then this pair is not // complete. let k; for (k = 0; k < 26; k++) { if (frequency[k] < 1) { break; } } if (k == 26) { result++; } } } return result; } // Driver code let set1=['abcdefgh' 'geeksforgeeks' 'lmnopqrst' 'abc']; let set2=['ijklmnopqrstuvwxyz' 'abcdefghijklmnopqrstuvwxyz' 'defghijklmnopqrstuvwxyz'] let n = set1.length; let m=set2.length; document.write(countCompletePairs(set1 set2 n m)); // This code is contributed by avanitrachhadiya2155 </script>
Produksjon
7
Tidskompleksitet: O(n * m * k)
Hjelpeområde: O(1)
Metode 2 (optimalisert metode ved bruk av bitmanipulasjon): I denne metoden komprimerer vi frekvensarray til et heltall. Vi tildeler hver bit av det hele tallet et tegn, og vi setter det til 1 når tegnet er funnet. Vi fremfører dette for alle strengene i begge settene. Til slutt sammenligner vi bare de to heltallene i settene, og hvis de ved å kombinere alle bitene er satt, danner de et komplett strengpar.
hva er java hashmap
Implementering:
C++14// C++ program to find count of complete pairs #include
// Java program to find count of complete pairs class GFG { // Returns count of complete pairs from set[0..n-1] // and set2[0..m-1] static int countCompletePairs(String set1[] String set2[] int n int m) { int result = 0; // con_s1[i] is going to store an integer whose // set bits represent presence/absence of characters // in string set1[i]. // Similarly con_s2[i] is going to store an integer // whose set bits represent presence/absence of // characters in string set2[i] int[] con_s1 = new int[n]; int[] con_s2 = new int[m]; // Process all strings in set1[] for (int i = 0; i < n; i++) { // initializing all bits to 0 con_s1[i] = 0; for (int j = 0; j < set1[i].length(); j++) { // Setting the ascii code of char s[i][j] // to 1 in the compressed integer. con_s1[i] = con_s1[i] | (1 << (set1[i].charAt(j) - 'a')); } } // Process all strings in set2[] for (int i = 0; i < m; i++) { // initializing all bits to 0 con_s2[i] = 0; for (int j = 0; j < set2[i].length(); j++) { // setting the ascii code of char s[i][j] // to 1 in the compressed integer. con_s2[i] = con_s2[i] | (1 << (set2[i].charAt(j) - 'a')); } } // assigning a variable whose all 26 (0..25) // bits are set to 1 long complete = (1 << 26) - 1; // Now consider every pair of integer in con_s1[] // and con_s2[] and check if the pair is complete. for (int i = 0; i < n; i++) { for (int j = 0; j < m; j++) { // if all bits are set the strings are // complete! if ((con_s1[i] | con_s2[j]) == complete) { result++; } } } return result; } // Driver code public static void main(String args[]) { String set1[] = { 'abcdefgh' 'geeksforgeeks' 'lmnopqrst' 'abc' }; String set2[] = { 'ijklmnopqrstuvwxyz' 'abcdefghijklmnopqrstuvwxyz' 'defghijklmnopqrstuvwxyz' }; int n = set1.length; int m = set2.length; System.out.println(countCompletePairs(set1 set2 n m)); } } // This code contributed by Rajput-Ji
// C# program to find count of complete pairs using System; class GFG { // Returns count of complete pairs from set[0..n-1] // and set2[0..m-1] static int countCompletePairs(String[] set1 String[] set2 int n int m) { int result = 0; // con_s1[i] is going to store an integer whose // set bits represent presence/absence of characters // in string set1[i]. // Similarly con_s2[i] is going to store an integer // whose set bits represent presence/absence of // characters in string set2[i] int[] con_s1 = new int[n]; int[] con_s2 = new int[m]; // Process all strings in set1[] for (int i = 0; i < n; i++) { // initializing all bits to 0 con_s1[i] = 0; for (int j = 0; j < set1[i].Length; j++) { // Setting the ascii code of char s[i][j] // to 1 in the compressed integer. con_s1[i] = con_s1[i] | (1 << (set1[i][j] - 'a')); } } // Process all strings in set2[] for (int i = 0; i < m; i++) { // initializing all bits to 0 con_s2[i] = 0; for (int j = 0; j < set2[i].Length; j++) { // setting the ascii code of char s[i][j] // to 1 in the compressed integer. con_s2[i] = con_s2[i] | (1 << (set2[i][j] - 'a')); } } // assigning a variable whose all 26 (0..25) // bits are set to 1 long complete = (1 << 26) - 1; // Now consider every pair of integer in con_s1[] // and con_s2[] and check if the pair is complete. for (int i = 0; i < n; i++) { for (int j = 0; j < m; j++) { // if all bits are set the strings are // complete! if ((con_s1[i] | con_s2[j]) == complete) { result++; } } } return result; } // Driver code public static void Main(String[] args) { String[] set1 = { 'abcdefgh' 'geeksforgeeks' 'lmnopqrst' 'abc' }; String[] set2 = { 'ijklmnopqrstuvwxyz' 'abcdefghijklmnopqrstuvwxyz' 'defghijklmnopqrstuvwxyz' }; int n = set1.Length; int m = set2.Length; Console.WriteLine(countCompletePairs(set1 set2 n m)); } } // This code has been contributed by 29AjayKumar
# Python3 program to find count of complete pairs # Returns count of complete pairs from set[0..n-1] # and set2[0..m-1] def countCompletePairs(set1 set2 n m): result = 0 # con_s1[i] is going to store an integer whose # set bits represent presence/absence of characters # in set1[i]. # Similarly con_s2[i] is going to store an integer # whose set bits represent presence/absence of # characters in set2[i] con_s1 con_s2 = [0] * n [0] * m # Process all strings in set1[] for i in range(n): # initializing all bits to 0 con_s1[i] = 0 for j in range(len(set1[i])): # Setting the ascii code of char s[i][j] # to 1 in the compressed integer. con_s1[i] = con_s1[i] | (1 << (ord(set1[i][j]) - ord('a'))) # Process all strings in set2[] for i in range(m): # initializing all bits to 0 con_s2[i] = 0 for j in range(len(set2[i])): # setting the ascii code of char s[i][j] # to 1 in the compressed integer. con_s2[i] = con_s2[i] | (1 << (ord(set2[i][j]) - ord('a'))) # assigning a variable whose all 26 (0..25) # bits are set to 1 complete = (1 << 26) - 1 # Now consider every pair of integer in con_s1[] # and con_s2[] and check if the pair is complete. for i in range(n): for j in range(m): # if all bits are set the strings are # complete! if ((con_s1[i] | con_s2[j]) == complete): result += 1 return result # Driver code if __name__ == '__main__': set1 = ['abcdefgh' 'geeksforgeeks' 'lmnopqrst' 'abc'] set2 = ['ijklmnopqrstuvwxyz' 'abcdefghijklmnopqrstuvwxyz' 'defghijklmnopqrstuvwxyz'] n = len(set1) m = len(set2) print(countCompletePairs(set1 set2 n m)) # This code is contributed by mohit kumar 29
<script> // Javascript program to find count of complete pairs // Returns count of complete pairs from set[0..n-1] // and set2[0..m-1] function countCompletePairs(set1set2nm) { let result = 0; // con_s1[i] is going to store an integer whose // set bits represent presence/absence of characters // in string set1[i]. // Similarly con_s2[i] is going to store an integer // whose set bits represent presence/absence of // characters in string set2[i] let con_s1 = new Array(n); let con_s2 = new Array(m); // Process all strings in set1[] for (let i = 0; i < n; i++) { // initializing all bits to 0 con_s1[i] = 0; for (let j = 0; j < set1[i].length; j++) { // Setting the ascii code of char s[i][j] // to 1 in the compressed integer. con_s1[i] = con_s1[i] | (1 << (set1[i][j].charCodeAt(0) - 'a'.charCodeAt(0))); } } // Process all strings in set2[] for (let i = 0; i < m; i++) { // initializing all bits to 0 con_s2[i] = 0; for (let j = 0; j < set2[i].length; j++) { // setting the ascii code of char s[i][j] // to 1 in the compressed integer. con_s2[i] = con_s2[i] | (1 << (set2[i][j].charCodeAt(0) - 'a'.charCodeAt(0))); } } // assigning a variable whose all 26 (0..25) // bits are set to 1 let complete = (1 << 26) - 1; // Now consider every pair of integer in con_s1[] // and con_s2[] and check if the pair is complete. for (let i = 0; i < n; i++) { for (let j = 0; j < m; j++) { // if all bits are set the strings are // complete! if ((con_s1[i] | con_s2[j]) == complete) { result++; } } } return result; } // Driver code let set1=['abcdefgh' 'geeksforgeeks' 'lmnopqrst' 'abc']; let set2=['ijklmnopqrstuvwxyz' 'abcdefghijklmnopqrstuvwxyz' 'defghijklmnopqrstuvwxyz' ] let n = set1.length; let m = set2.length; document.write(countCompletePairs(set1 set2 n m)); // This code is contributed by avanitrachhadiya2155 </script>
Produksjon
7
Tidskompleksitet: O(n*m) hvor n er størrelsen på det første settet og m er størrelsen på det andre settet.
Hjelpeplass: På)
Denne artikkelen er bidratt av Rishabh Jain .