Given a string str and an array of strings arr[], the task is to check if the given string can be formed by any of the string pair from the array or their permutations. Examples:
Input: str = “amazon”, arr[] = {“loa”, “azo”, “ft”, “amn”, “lka”} Output: Yes The chosen strings are “amn” and “azo” which can be rearranged as “amazon”. Input: str = “neveropen”, arr[] = {“neveropen”, “geek”, “for”} Output: No
Java
// Java implementation of the approach import java.util.*; class GFG { // Function that returns true if str can be // generated from any permutation of the // two strings selected from the given vector static boolean isPossible(Vector<String> v, String str) { // Sort the given string str = sortString(str); // Select two strings at a time from given vector for (int i = 0; i < v.size() - 1; i++) { for (int j = i + 1; j < v.size(); j++) { // Get the concatenated string String temp = v.get(i) + v.get(j); // Sort the resultant string temp = sortString(temp); // If the resultant string is equal // to the given string str if (temp.compareTo(str) == 0) { return true; } } } // No valid pair found return false; } // Method to sort a string alphabetically public static String sortString(String inputString) { // convert input string to char array char tempArray[] = inputString.toCharArray(); // sort tempArray Arrays.sort(tempArray); // return new sorted string return new String(tempArray); } // Driver code public static void main(String[] args) { String str = "amazon"; String []arr = { "fds", "oxq", "zoa", "epw", "amn" }; Vector<String> v = new Vector<String>(Arrays.asList(arr)); if (isPossible(v, str)) System.out.println("Yes"); else System.out.println("No"); } } // This code is contributed by Rajput-Ji |
Time complexity: O(n*logn + m2*k*logk) where n is the size of the given string, m is the size of the given array, and k is the maximum size obtained by adding any two strings (which is basically the sum of the size of the two longest strings in the given array).
Space Complexity: O(x) where x is the maximum length of two input strings after concatenating
Method 2: Counting sort can be used to reduce the running time of the above approach. Counting sort uses a table to store the count of each character. We have 26 alphabets hence we make an array of size 26 to store counts of each character in the string. Then take the characters in increasing order to get the sorted string. Below is the implementation of the above approach:
Java
// Java implementation of the approach import java.util.*; class GFG { static int MAX = 26; // Function to sort the given string // using counting sort static String countingsort(char[] s) { // Array to store the count of each character int []count = new int[MAX]; for (int i = 0; i < s.length; i++) { count[s[i] - 'a']++; } int index = 0; // Insert characters in the string // in increasing order for (int i = 0; i < MAX; i++) { int j = 0; while (j < count[i]) { s[index++] = (char)(i + 'a'); j++; } } return String.valueOf(s); } // Function that returns true if str can be // generated from any permutation of the // two strings selected from the given vector static boolean isPossible(Vector<String> v, String str) { // Sort the given string str=countingsort(str.toCharArray()); // Select two strings at a time from given vector for (int i = 0; i < v.size() - 1; i++) { for (int j = i + 1; j < v.size(); j++) { // Get the concatenated string String temp = v.get(i) + v.get(j); // Sort the resultant string temp = countingsort(temp.toCharArray()); // If the resultant string is equal // to the given string str if (temp.equals(str)) { return true; } } } // No valid pair found return false; } // Driver code public static void main(String[] args) { String str = "amazon"; String []arr = { "fds", "oxq", "zoa", "epw", "amn" }; Vector<String> v = new Vector<String>(Arrays.asList(arr)); if (isPossible(v, str)) System.out.println("Yes"); else System.out.println("No"); } } // This code is contributed by 29AjayKumar |
Time complexity: O(n+(m^2)*k) where n is the size of the given string, m is the size of the given array, and k is the maximum size obtained by adding any two strings
Please refer complete article on Check if given string can be formed by two other strings or their permutations for more details!
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