Given an array arr[] of size N, the task is to convert every array element to 0 by applying the following operations exactly three times:
- Select a subarray.
- Increment every element of the subarray by the integer multiple of its length.
Finally, print the first and last indices of the subarray involved and the elements added to every index of the subarray in each step.
Examples:
Input: arr[] = {1, 3, 2, 4}
Output:
Operation 1: 1 1
Added elements: 1
Operation 2: 3 4
Added elements: 4 2
Operation 3: 2 4
Added elements: -3 -6 -6
Explanation:
Step 1: Select subarray {arr[1]} and add -1 to the only element in the subarray. Hence, the array arr[] modifies to {0, 3, 2, 4}.
Step 2: Select subarray {arr[3], arr[4]} and add {4, 2} to the subarray elements respectively. Hence, the array arr[] modifies to {0, 3, 6, 6}.
Step 3: Select subarray {arr[2], arr[4]} and add {-3, -6, -6} to the subarray elements respectively. Hence, the array arr[] modifies to {0, 0, 0, 0}Input: arr[] = { 5 }
Output:
Operation 1 : 1 1
Added elements: -5
Operation 2 : 1 1
Added elements: 5
Operation 3 : 1 1
Added elements: -5
Approach: The given problem can be solved based on the following observations:
Operation 1: Select subarray {arr[1], .., arr[N]}. Set A[i] = A[i] – N * A[i] = (N – 1) * (-A[i]).
After operation 1, each element is a multiple of (N – 1).
Operation 2: Select subarray {arr[1], .. arr[N – 1]}. Add / Subtract a multiple of (N – 1) to all values of the subarray till they reduce to 0.
Operation 3: Select subarray {arr[N]}, of size 1. Add / Subtract a multiple of 1 to make A[N] = 0.
Follow the steps below to solve the problem:
- If N is equal to 1, then print -arr[0], +arr[0], -arr[0] respectively in three moves.
-
Otherwise, perform the following operations:
- Print 1 N. Subtract N * arr[i] from each element of the array print the subtracted elements.
- Print 1 N – 1. Subtract (N – 1) * arr[i] from each element of the subarray and print the subtracted values.
- Finally, print N. Subtract arr[i – 1] from the element. Print arr[i – 1].
Below is the implementation of the above approach:
C++
// C++ program of the above approach#include <bits/stdc++.h>using namespace std;
// Function to reduce all// array elements to zerovoid ConvertArray(int arr[], int N)
{ // If size of array is 1
if (N == 1) {
// First operation
cout << "Operation 1 : " << 1
<< " " << 1 << endl;
cout << "Added elements: "
<< -1 * arr[0] << endl;
cout << endl;
// 2nd Operation
cout << "Operation 2 : "
<< 1 << " " << 1 << endl;
cout << "Added elements: "
<< 1 * arr[0] << endl;
cout << endl;
// 3rd Operation
cout << "Operation 3 : "
<< 1 << " " << 1 << endl;
cout << "Added elements: "
<< -1 * arr[0] << endl;
}
// Otherwise
else {
// 1st Operation
cout << "Operation 1 : "
<< 1 << " " << N << endl;
cout << "Added elements: ";
for (int i = 0; i < N; i++) {
cout << -1 * arr[i] * N << " ";
}
cout << endl;
cout << endl;
// 2nd Operation
cout << "Operation 2 : "
<< 1 << " " << N - 1 << endl;
cout << "Added elements: ";
for (int i = 0; i < N - 1; i++) {
cout << arr[i] * (N - 1) << " ";
}
cout << endl;
cout << endl;
// 3rd Operation
cout << "Operation 3 : " << N
<< " " << N << endl;
cout << "Added elements: ";
cout << arr[N - 1] * (N - 1) << endl;
}
}// Driver Codeint main()
{ // Input
int arr[] = { 1, 3, 2, 4 };
int N = sizeof(arr) / sizeof(arr[0]);
// Function call to make all
// array elements equal to 0
ConvertArray(arr, N);
return 0;
} |
Java
// Java program for the above approach import java.util.*;
class GFG{
// Function to reduce all
// array elements to zero
static void ConvertArray(int arr[], int N)
{
// If size of array is 1
if (N == 1) {
// First operation
System.out.println("Operation 1 : " + 1
+ " " + 1 );
System.out.println("Added elements: "
+ -1 * arr[0] );
System.out.println();
// 2nd Operation
System.out.println("Operation 2 : "
+ 1 + " " + 1 );
System.out.println("Added elements: "
+ 1 * arr[0] );
System.out.println();
// 3rd Operation
System.out.println("Operation 3 : "
+ 1 + " " + 1 );
System.out.println("Added elements: "
+ -1 * arr[0] );
}
// Otherwise
else {
// 1st Operation
System.out.println("Operation 1 : "
+ 1 + " " + N );
System.out.print("Added elements: ");
for (int i = 0; i < N; i++) {
System.out.print(-1 * arr[i] * N + " ");
}
System.out.println();
System.out.println();
// 2nd Operation
System.out.println("Operation 2 : "
+ 1 + " " + (N - 1) );
System.out.print("Added elements: ");
for (int i = 0; i < N - 1; i++) {
System.out.print(arr[i] * (N - 1) + " ");
}
System.out.println();
System.out.println();
// 3rd Operation
System.out.println("Operation 3 : " + N
+ " " + N );
System.out.print("Added elements: ");
System.out.println(arr[N - 1] * (N - 1) );
}
}
// Driver code
public static void main(String[] args)
{
// Input
int arr[] = { 1, 3, 2, 4 };
int N = arr.length;
// Function call to make all
// array elements equal to 0
ConvertArray(arr, N);
}
}// This code is contributed by souravghosh0416. |
Python3
# Python 3 program of the above approach# Function to reduce all# array elements to zerodef ConvertArray(arr, N):
# If size of array is 1
if (N == 1):
# First operation
print("Operation 1 :",1,1)
print("Added elements:",-1 * arr[0])
print("\n",end = "")
# 2nd Operation
print("Operation 2 :",1,1)
print("Added elements:",1 * arr[0])
print("\n",end = "")
# 3rd Operation
print("Operation 3 :",1,1)
print("Added elements:",-1 * arr[0])
print("\n",end = "")
# Otherwise
else:
# 1st Operation
print("Operation 1 :",1,N)
print("Added elements:",end = " ")
for i in range(N):
print(-1 * arr[i] * N,end = " ")
print("\n")
# 2nd Operation
print("Operation 2 :",1,N - 1)
print("Added elements:",end = " ")
for i in range(N - 1):
print(arr[i] * (N - 1),end = " ")
print("\n")
# 3rd Operation
print("Operation 3 : ",N,N)
print("Added elements:",end = " ")
print(arr[N - 1] * (N - 1))
# Driver Codeif __name__ == '__main__':
# Input
arr = [1, 3, 2, 4]
N = len(arr)
# Function call to make all
# array elements equal to 0
ConvertArray(arr, N)
# This code is contributed by ipg2016107.
|
C#
// C# program for the above approachusing System;
class GFG{
// Function to reduce all
// array elements to zero
static void ConvertArray(int[] arr, int N)
{
// If size of array is 1
if (N == 1) {
// First operation
Console.WriteLine("Operation 1 : " + 1
+ " " + 1 );
Console.WriteLine("Added elements: "
+ -1 * arr[0] );
Console.WriteLine();
// 2nd Operation
Console.WriteLine("Operation 2 : "
+ 1 + " " + 1 );
Console.WriteLine("Added elements: "
+ 1 * arr[0] );
Console.WriteLine();
// 3rd Operation
Console.WriteLine("Operation 3 : "
+ 1 + " " + 1 );
Console.WriteLine("Added elements: "
+ -1 * arr[0] );
}
// Otherwise
else {
// 1st Operation
Console.WriteLine("Operation 1 : "
+ 1 + " " + N );
Console.Write("Added elements: ");
for (int i = 0; i < N; i++) {
Console.Write(-1 * arr[i] * N + " ");
}
Console.WriteLine();
Console.WriteLine();
// 2nd Operation
Console.WriteLine("Operation 2 : "
+ 1 + " " + (N - 1) );
Console.Write("Added elements: ");
for (int i = 0; i < N - 1; i++) {
Console.Write(arr[i] * (N - 1) + " ");
}
Console.WriteLine();
Console.WriteLine();
// 3rd Operation
Console.WriteLine("Operation 3 : " + N
+ " " + N );
Console.Write("Added elements: ");
Console.WriteLine(arr[N - 1] * (N - 1) );
}
}
// Driver Codepublic static void Main(string[] args)
{ // Input
int[] arr = { 1, 3, 2, 4 };
int N = arr.Length;
// Function call to make all
// array elements equal to 0
ConvertArray(arr, N);
}}// This code is contributed by code_hunt. |
Javascript
<script>// javascript program for the above approach // Function to reduce all
// array elements to zero
function ConvertArray(arr, N)
{
// If size of array is 1
if (N == 1)
{
// First operation
document.write("Operation 1 : " + 1 + " " + 1+ "<br/>");
document.write("Added elements: " + -1 * arr[0]+"<br/>");
document.write("<br/>");
// 2nd Operation
document.write("Operation 2 : " + 1 + " " + 1+"<br/>");
document.write("Added elements: " + 1 * arr[0]+"<br/>");
document.write("<br/>");
// 3rd Operation
document.write("Operation 3 : " + 1 + " " + 1+"<br/>");
document.write("Added elements: " + -1 * arr[0]+"<br/>");
}
// Otherwise
else
{
// 1st Operation
document.write("Operation 1 : " + 1 + " " + N+"<br/>");
document.write("Added elements: ");
for (i = 0; i < N; i++) {
document.write(-1 * arr[i] * N + " ");
}
document.write("<br/>");
document.write("<br/>");
// 2nd Operation
document.write("Operation 2 : " + 1 + " " + (N - 1)+"<br/>");
document.write("Added elements: ");
for (i = 0; i < N - 1; i++) {
document.write(arr[i] * (N - 1) + " ");
}
document.write("<br/>");
document.write("<br/>");
// 3rd Operation
document.write("Operation 3 : " + N + " " + N+"<br/>");
document.write("Added elements: ");
document.write(arr[N - 1] * (N - 1)+"<br/>");
}
}
// Driver code
// Input
var arr = [ 1, 3, 2, 4 ];
var N = arr.length;
// Function call to make all
// array elements equal to 0
ConvertArray(arr, N);
// This code is contributed by todaysgaurav. </script> |
Output:
Operation 1 : 1 4 Added elements: -4 -12 -8 -16 Operation 2 : 1 3 Added elements: 3 9 6 Operation 3 : 4 4 Added elements: 12
Time Complexity: O(N)
Auxiliary Space: O(1)