Print all ways to break a string in bracket form
Given a string, find all ways to break the given string in bracket form. Enclose each substring within a parenthesis.
Examples:
Input : abc Output: (a)(b)(c) (a)(bc) (ab)(c) (abc) Input : abcd Output : (a)(b)(c)(d) (a)(b)(cd) (a)(bc)(d) (a)(bcd) (ab)(c)(d) (ab)(cd) (abc)(d) (abcd)
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The idea is to use recursion. We maintain two parameters – index of the next character to be processed and the output string so far. We start from index of next character to be processed, append substring formed by unprocessed string to the output string and recurse on remaining string until we process the whole string. We use std::substr to form the output string. substr(pos, n) returns a substring of length n that starts at position pos of current string.
Below diagram shows recursion tree for input string “abc”. Each node on the diagram shows processed string (marked by green) and unprocessed string (marked by red).
Below is the implementation of the above idea
C++
// C++ Program to find all combinations of Non- // overlapping substrings formed from given // string #include <iostream> using namespace std; // find all combinations of non-overlapping // substrings formed by input string str // index – index of the next character to // be processed // out - output string so far void findCombinations(string str, int index, string out) { if (index == str.length()) cout << out << endl; for ( int i = index; i < str.length(); i++) { // append substring formed by str[index, // i] to output string findCombinations( str, i + 1, out + "(" + str.substr(index, i + 1 - index) + ")" ); } } // Driver Code int main() { // input string string str = "abcd" ; findCombinations(str, 0, "" ); return 0; } |
Java
// Java program to find all combinations of Non- // overlapping substrings formed from given // string class GFG { // find all combinations of non-overlapping // substrings formed by input string str static void findCombinations(String str, int index, String out) { if (index == str.length()) System.out.println(out); for ( int i = index; i < str.length(); i++) // append substring formed by str[index, // i] to output string findCombinations(str, i + 1 , out + "(" + str.substring(index, i+ 1 ) + ")" ); } // Driver Code public static void main (String[] args) { // input string String str = "abcd" ; findCombinations(str, 0 , "" ); } } // Contributed by Pramod Kumar |
Python3
# Python3 Program to find all combinations of Non- # overlapping substrings formed from given # string # find all combinations of non-overlapping # substrings formed by input string str # index – index of the next character to # be processed # out - output string so far def findCombinations(string, index, out): if index = = len (string): print (out) for i in range (index, len (string), 1 ): # append substring formed by str[index, # i] to output string findCombinations(string, i + 1 , out + "(" + string[index:i + 1 ] + ")" ) # Driver Code if __name__ = = "__main__" : # input string string = "abcd" findCombinations(string, 0 , "") # This code is contributed by # sanjeev2552 |
C#
// C# program to find all combinations // of Non-overlapping substrings formed // from given string using System; class GFG { // find all combinations of non-overlapping // substrings formed by input string str public static void findCombinations( string str, int index, string @ out ) { if (index == str.Length) { Console.WriteLine(@ out ); } for ( int i = index; i < str.Length; i++) { // append substring formed by // str[index, i] to output string findCombinations( str, i + 1, @ out + "(" + str.Substring(index, (i + 1) - index) + ")" ); } } // Driver Code public static void Main( string [] args) { // input string string str = "abcd" ; findCombinations(str, 0, "" ); } } // This code is contributed by Shrikant13 |
Javascript
// Javascript program for the above approach // find all combinations of non-overlapping // substrings formed by input string str // index – index of the next character to // be processed // out - output string so far function findCombinations(string, index, out) { if (index == string.length) { console.log(out); } for (let i = index; i < string.length; i++) { // append substring formed by str[index, // i] to output string findCombinations(string, i + 1, out + "(" + string.substring(index, i + 1) + ")" ); } } // Driver Code const string = "abcd" ; findCombinations(string, 0, "" ); // contributed by adityasharmadev01 |
(a)(b)(c)(d) (a)(b)(cd) (a)(bc)(d) (a)(bcd) (ab)(c)(d) (ab)(cd) (abc)(d) (abcd)
Time Complexity: O(N2)
Auxiliary Space: O(N2)