Find sub-arrays from given two arrays such that they have equal sum
Given two arrays A[] and B[] of equal sizes i.e. N containing integers from 1 to N. The task is to find sub-arrays from the given arrays such that they have equal sum. Print the indices of such sub-arrays. If no such sub-arrays are possible then print -1.
Examples:
Input: A[] = {1, 2, 3, 4, 5}, B[] = {6, 2, 1, 5, 4}
Output:
Indices in array 1 : 0, 1, 2
Indices in array 2 : 0
A[0..2] = 1 + 2 + 3 = 6
B[0] = 6
Input: A[] = {10, 1}, B[] = {5, 3}
Output: -1
No such sub-arrays.
Naive Approach:
The idea is to find the sum of every subarray of 1st array and the sum of every subarray of 2nd array. Now compare the sum of each subarray of the 1st array with every subarray of the 2nd array. If anytime during comparison, the sum becomes equal, then print indices of the element that are chosen to make both subarrays. In last if the sum never becomes equal then print -1.
Steps for Implementation will be-
- Run two nested for loops to find all subarrays of 1st Array
- Now to compare each subarray of 1st array with every subarray of the 2nd array we will have two more nested for loops in that loop
- Anytime during this comparison, if the sum of the subarray from the 1st array becomes equal to the sum of the subarray of the 2nd Array then print indices of the subarrays using a for loop and stop comparing.
- Till last if nothing got printed then print “-1”.
Code-
C++
// C++ implementation of the approach #include <bits/stdc++.h> using namespace std; // Function to find sub-arrays from two // different arrays with equal sum void findSubarray( int N, int A[], int B[]) { int sum1; int sum2; for ( int i = 0; i < N; i++) { sum1 = 0; for ( int j = i; j < N; j++) { sum1 += A[j]; for ( int a = 0; a < N; a++) { sum2 = 0; for ( int b = a; b < N; b++) { sum2 += B[b]; if (sum1 == sum2) { cout << "Indices in array 1 : " ; for ( int m = i; m <= j; m++) { cout << m << " " ; } cout << endl; cout << "Indices in array 2 : " ; for ( int m = a; m <= b; m++) { cout << m << " " ; } cout << endl; return ; } } } } } // When no such answer exists then print -1 cout << "-1" << endl; } // Driver code int main() { int A[] = { 1, 2, 3, 4, 5 }; int B[] = { 6, 2, 1, 5, 4 }; int N = sizeof (A) / sizeof (A[0]); findSubarray(N, A, B); return 0; } |
Java
// Java implementation of the approach import java.util.*; public class GFG { // Function to find sub-arrays from two different arrays // with equal sum static void findSubarray( int N, int [] A, int [] B) { int sum1, sum2; for ( int i = 0 ; i < N; i++) { sum1 = 0 ; for ( int j = i; j < N; j++) { sum1 += A[j]; for ( int a = 0 ; a < N; a++) { sum2 = 0 ; for ( int b = a; b < N; b++) { sum2 += B[b]; if (sum1 == sum2) { System.out.print( "Indices in array 1: " ); for ( int m = i; m <= j; m++) { System.out.print(m + " " ); } System.out.println(); System.out.print( "Indices in array 2: " ); for ( int m = a; m <= b; m++) { System.out.print(m + " " ); } System.out.println(); return ; } } } } } // When no such answer exists, then print -1 System.out.println( "-1" ); } // Driver code public static void main(String[] args) { int [] A = { 1 , 2 , 3 , 4 , 5 }; int [] B = { 6 , 2 , 1 , 5 , 4 }; int N = A.length; findSubarray(N, A, B); } } // This code is contributed by Susobhan Akhuli |
Python3
# Python implementation of the approach # Function to find sub-arrays from two different arrays with equal sum def findSubarray(N, A, B): for i in range (N): sum1 = 0 for j in range (i, N): sum1 + = A[j] for a in range (N): sum2 = 0 for b in range (a, N): sum2 + = B[b] if sum1 = = sum2: print ( "Indices in array 1 : " , end = "") for m in range (i, j + 1 ): print (m, end = " " ) print () print ( "Indices in array 2 : " , end = "") for m in range (a, b + 1 ): print (m, end = " " ) print () return # When no such answer exists then print -1 print ( "-1" ) # Driver code if __name__ = = "__main__" : A = [ 1 , 2 , 3 , 4 , 5 ] B = [ 6 , 2 , 1 , 5 , 4 ] N = len (A) findSubarray(N, A, B) # This code is contributed by Susobhan Akhuli |
C#
using System; class Program { // Function to find sub-arrays from two // different arrays with equal sum static void FindSubarray( int [] A, int [] B) { int sum1; int sum2; for ( int i = 0; i < A.Length; i++) { sum1 = 0; for ( int j = i; j < A.Length; j++) { sum1 += A[j]; for ( int a = 0; a < B.Length; a++) { sum2 = 0; for ( int b = a; b < B.Length; b++) { sum2 += B[b]; if (sum1 == sum2) { Console.Write( "Indices in array 1: " ); for ( int m = i; m <= j; m++) { Console.Write(m + " " ); } Console.WriteLine(); Console.Write( "Indices in array 2: " ); for ( int m = a; m <= b; m++) { Console.Write(m + " " ); } Console.WriteLine(); return ; } } } } } // When no such answer exists then print -1 Console.WriteLine( "-1" ); } static void Main() { int [] A = { 1, 2, 3, 4, 5 }; int [] B = { 6, 2, 1, 5, 4 }; FindSubarray(A, B); } } |
Javascript
// JavaScript implementation of the approach // Function to find sub-arrays from two // different arrays with equal sum function findSubarray(N, A, B) { let sum1; let sum2; for (let i = 0; i < N; i++) { sum1 = 0; for (let j = i; j < N; j++) { sum1 += A[j]; for (let a = 0; a < N; a++) { sum2 = 0; for (let b = a; b < N; b++) { sum2 += B[b]; if (sum1 === sum2) { document.write( "Indices in array 1 : " + Array.from({ length: j - i + 1 }, (_, idx) => idx + i).join( " " )); document.write( "<br>" ); document.write( "Indices in array 2 : " + Array.from({ length: b - a + 1 }, (_, idx) => idx + a).join( " " )); return ; } } } } } // When no such answer exists then print -1 document.write( "-1" ); } // Driver code let A = [1, 2, 3, 4, 5]; let B = [6, 2, 1, 5, 4]; let N = A.length; findSubarray(N, A, B); // This code is contributed by Susobhan Akhuli |
Indices in array 1 : 0 Indices in array 2 : 2
Time Complexity: O(N2 * N2 *N)=O(N5), O(N2) for finding subarray from the first array and O(N2) for finding subarray from 2nd array, and O(N) for printing indices.
Space Complexity: O(1), because no extra space has been used
Approach: Let Ai denote the sum of first i elements in A and Bj denote the sum of first j elements in B. Without loss of generality we assume that An <= Bn.
Now Bn >= An >= Ai. So for each Ai we can find the smallest j such that Ai <= Bj. For each i we find the difference
Bj – Ai .
If difference is 0 then we are done as the elements from 1 to i in A and 1 to j in B have the same sum. Suppose difference is not 0.Then the difference must lie in the range [1, n-1].
Proof:
Let Bj – Ai >= n
Bj >= Ai + n
Bj-1 >= Ai (As the jth element in B can be at most n so Bj <= Bj-1 + n)
Now this is a contradiction as we had assumed that j is the smallest index
such that Bj >= Ai is j. So our assumption is wrong.
So Bj – Ai < n
Now there are n such differences(corresponding to each index) but only (n-1) possible values, so at least two indices will produce the same difference(By Pigeonhole principle). Let Aj – By = Ai – Bx. On rearranging we get Aj – Ai = By – Bx. So the required subarrays are [ i+1, j ] in A and [ x+1, y ] in B.
Below is the implementation of the above approach:
C++
// C++ implementation of the approach #include <bits/stdc++.h> using namespace std; // Function to print the valid indices in the array void printAns( int x, int y, int num) { cout << "Indices in array " << num << " : " ; for ( int i = x; i < y; ++i) { cout << i << ", " ; } cout << y << "\n" ; } // Function to find sub-arrays from two // different arrays with equal sum void findSubarray( int N, int a[], int b[], bool swap) { // Map to store the indices in A and B // which produce the given difference std::map< int , pair< int , int > > index; int difference; index[0] = make_pair(-1, -1); int j = 0; for ( int i = 0; i < N; ++i) { // Find the smallest j such that b[j] >= a[i] while (b[j] < a[i]) { j++; } difference = b[j] - a[i]; // Difference encountered for the second time if (index.find(difference) != index.end()) { // b[j] - a[i] = b[idx.second] - a[idx.first] // b[j] - b[idx.second] = a[i] = a[idx.first] // So sub-arrays are a[idx.first+1...i] and b[idx.second+1...j] if (swap) { pair< int , int > idx = index[b[j] - a[i]]; printAns(idx.second + 1, j, 1); printAns(idx.first + 1, i, 2); } else { pair< int , int > idx = index[b[j] - a[i]]; printAns(idx.first + 1, i, 1); printAns(idx.second + 1, j, 2); } return ; } // Store the indices for difference in the map index[difference] = make_pair(i, j); } cout << "-1" ; } // Utility function to calculate the // cumulative sum of the array void cumulativeSum( int arr[], int n) { for ( int i = 1; i < n; ++i) arr[i] += arr[i - 1]; } // Driver code int main() { int a[] = { 1, 2, 3, 4, 5 }; int b[] = { 6, 2, 1, 5, 4 }; int N = sizeof (a) / sizeof (a[0]); // Function to update the arrays // with their cumulative sum cumulativeSum(a, N); cumulativeSum(b, N); if (b[N - 1] > a[N - 1]) { findSubarray(N, a, b, false ); } else { // Swap is true as a and b are swapped during // function call findSubarray(N, b, a, true ); } return 0; } |
Java
/*package whatever //do not write package name here */ import java.io.*; import java.util.*; class GFG { // Function to print the valid indices in the array static void printAns( int x, int y, int num) { System.out.print( "Indices in array " + num + " : " ); for ( int i = x; i < y; ++i) { System.out.print(i + ", " ); } System.out.println(y); } // Function to find sub-arrays from two // different arrays with equal sum static void findSubarray( int N, int a[], int b[], Boolean swap) { // Map to store the indices in A and B // which produce the given difference HashMap<Integer,ArrayList<Integer>> index = new HashMap<>(); int difference; index.put( 0 , new ArrayList<Integer>(Arrays.asList(- 1 , - 1 ))); int j = 0 ; for ( int i = 0 ; i < N; ++i) { // Find the smallest j such that b[j] >= a[i] while (b[j] < a[i]) { j++; } difference = b[j] - a[i]; // Difference encountered for the second time if (index.containsKey(difference)) { // b[j] - a[i] = b[idx.second] - a[idx.first] // b[j] - b[idx.second] = a[i] = a[idx.first] // So sub-arrays are a[idx.first+1...i] and b[idx.second+1...j] if (swap) { ArrayList<Integer> idx = index.get(b[j] - a[i]); printAns(idx.get( 1 ) + 1 , j, 1 ); printAns(idx.get( 0 ) + 1 , i, 2 ); } else { ArrayList<Integer> idx = index.get(b[j] - a[i]); printAns(idx.get( 0 ) + 1 , i, 1 ); printAns(idx.get( 1 ) + 1 , j, 2 ); } return ; } // Store the indices for difference in the map ArrayList<Integer>arr = new ArrayList<>(Arrays.asList(i,j)); } System.out.print( "-1" ); } // Utility function to calculate the // cumulative sum of the array static void cumulativeSum( int arr[], int n) { for ( int i = 1 ; i < n; ++i) arr[i] += arr[i - 1 ]; } // Driver code public static void main(String args[]) { int a[] = { 1 , 2 , 3 , 4 , 5 }; int b[] = { 6 , 2 , 1 , 5 , 4 }; int N = a.length; // Function to update the arrays // with their cumulative sum cumulativeSum(a, N); cumulativeSum(b, N); if (b[N - 1 ] > a[N - 1 ]) { findSubarray(N, a, b, false ); } else { // Swap is true as a and b are swapped during // function call findSubarray(N, b, a, true ); } } } // This code is contributed by shinjanpatra |
Python3
# Python3 implementation of the approach # Function to print the valid indices in the array def printAns(x, y, num): print ( "Indices in array" , num, ":" , end = " " ) for i in range (x, y): print (i, end = ", " ) print (y) # Function to find sub-arrays from two # different arrays with equal sum def findSubarray(N, a, b, swap): # Map to store the indices in A and B # which produce the given difference index = {} difference, j = 0 , 0 index[ 0 ] = ( - 1 , - 1 ) for i in range ( 0 , N): # Find the smallest j such that b[j] >= a[i] while b[j] < a[i]: j + = 1 difference = b[j] - a[i] # Difference encountered for the second time if difference in index: # b[j] - a[i] = b[idx.second] - a[idx.first] # b[j] - b[idx.second] = a[i] = a[idx.first] # So sub-arrays are a[idx.first+1...i] and b[idx.second+1...j] if swap: idx = index[b[j] - a[i]] printAns(idx[ 1 ] + 1 , j, 1 ) printAns(idx[ 0 ] + 1 , i, 2 ) else : idx = index[b[j] - a[i]] printAns(idx[ 0 ] + 1 , i, 1 ) printAns(idx[ 1 ] + 1 , j, 2 ) return # Store the indices for difference in the map index[difference] = (i, j) print ( "-1" ) # Utility function to calculate the # cumulative sum of the array def cumulativeSum(arr, n): for i in range ( 1 , n): arr[i] + = arr[i - 1 ] # Driver code if __name__ = = "__main__" : a = [ 1 , 2 , 3 , 4 , 5 ] b = [ 6 , 2 , 1 , 5 , 4 ] N = len (a) # Function to update the arrays # with their cumulative sum cumulativeSum(a, N) cumulativeSum(b, N) if b[N - 1 ] > a[N - 1 ]: findSubarray(N, a, b, False ) else : # Swap is true as a and b are # swapped during function call findSubarray(N, b, a, True ) # This code is contributed by Rituraj Jain |
C#
// C# code to implement the approach using System; using System.Collections.Generic; class GFG { // Function to print the valid indices in the array static void printAns( int x, int y, int num) { Console.Write( "Indices in array " + num + " : " ); for ( int i = x; i < y; ++i) { Console.Write(i + ", " ); } Console.WriteLine(y); } // Function to find sub-arrays from two // different arrays with equal sum static void findSubarray( int N, int [] a, int [] b, bool swap) { // Map to store the indices in A and B // which produce the given difference Dictionary< int , List< int >> index = new Dictionary< int , List< int >>(); int difference; index[0] = new List< int >( new [] {-1, -1}); int j = 0; for ( int i = 0; i < N; ++i) { // Find the smallest j such that b[j] >= a[i] while (b[j] < a[i]) { j++; } difference = b[j] - a[i]; // Difference encountered for the second time if (index.ContainsKey(difference)) { // b[j] - a[i] = b[idx.second] - a[idx.first] // b[j] - b[idx.second] = a[i] = a[idx.first] // So sub-arrays are a[idx.first+1...i] and b[idx.second+1...j] if (swap) { List< int > idx = index[b[j] - a[i]]; printAns(idx[1] + 1, j, 1); printAns(idx[0] + 1, i, 2); } else { List< int > idx = index[b[j] - a[i]]; printAns(idx[0] + 1, i, 1); printAns(idx[1] + 1, j, 2); } return ; } } Console.Write( "-1" ); } // Utility function to calculate the // cumulative sum of the array static void cumulativeSum( int [] arr, int n) { for ( int i = 1; i < n; ++i) arr[i] += arr[i - 1]; } // Driver code public static void Main( string [] args) { int [] a = { 1, 2, 3, 4, 5 }; int [] b = { 6, 2, 1, 5, 4 }; int N = a.Length; // Function to update the arrays // with their cumulative sum cumulativeSum(a, N); cumulativeSum(b, N); if (b[N - 1] > a[N - 1]) { findSubarray(N, a, b, false ); } else { // Swap is true as a and b are swapped during // function call findSubarray(N, b, a, true ); } } } // This code is contributed by phasing17 |
Javascript
<script> // JavaScript implementation of the approach // Function to print the valid indices in the array function printAns(x, y, num) { document.write( "Indices in array" , num, ":" , " " ) for (let i = x; i < y; i++) document.write(i, ", " ) document.write(y, "</br>" ) } // Function to find sub-arrays from two // different arrays with equal sum function findSubarray(N, a, b, swap){ // Map to store the indices in A and B // which produce the given difference let index = new Map(); let difference = 0, j = 0 index.set(0, [-1, -1]) for (let i = 0; i < N; i++) { // Find the smallest j such that b[j] >= a[i] while (b[j] < a[i]) j += 1 let difference = b[j] - a[i] // Difference encountered for the second time if (index.has(difference)){ // b[j] - a[i] = b[idx.second] - a[idx.first] // b[j] - b[idx.second] = a[i] = a[idx.first] // So sub-arrays are a[idx.first+1...i] and b[idx.second+1...j] if (swap){ let idx = index.get(b[j] - a[i]) printAns(idx[1] + 1, j, 1) printAns(idx[0] + 1, i, 2) } else { let idx = index.get(b[j] - a[i]) printAns(idx[0] + 1, i, 1) printAns(idx[1] + 1, j, 2) } return // Store the indices for difference in the map } index.set(difference,[i, j]) } document.write( "-1" ) } // Utility function to calculate the // cumulative sum of the array function cumulativeSum(arr, n){ for (let i = 1; i < n; i++) arr[i] += arr[i - 1] } // Driver code let a = [1, 2, 3, 4, 5] let b = [6, 2, 1, 5, 4] let N = a.length // Function to update the arrays // with their cumulative sum cumulativeSum(a, N) cumulativeSum(b, N) if (b[N - 1] > a[N - 1]) findSubarray(N, a, b, false ) else // Swap is true as a and b are // swapped during function call findSubarray(N, b, a, true ) // This code is contributed by shinjanpatra </script> |
Indices in array 1 : 0, 1, 2 Indices in array 2 : 0
Time Complexity: O(N* Log N)
Space Complexity: O(N)
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