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Split the number into N parts such that difference between the smallest and the largest part is minimum

Given two integers ‘X’ and ‘N’, the task is to split the integer ‘X’ into exactly ‘N’ parts such that: 
X1 + X2 + X3 + … + Xn = X and the difference between the maximum and the minimum number from the sequence is minimized. 
Print the sequence in the end, if the number cannot be divided into exactly ‘N’ parts then print ‘-1’ instead.

Examples:  

Input: X = 5, N = 3 
Output: 1 2 2 
Divide 5 into 3 parts such that the difference between the largest and smallest integer among 
them is as minimal as possible. So we divide 5 as 1 + 2 + 2.

Input: X = 25, N = 5 
Output: 5 5 5 5 5

Approach: There is always a way of splitting the number if X >= N.  

Below is the implementation of the above approach:  




// CPP implementation of the approach
#include<bits/stdc++.h>
using namespace std;
 
// Function that prints
// the required sequence
void split(int x, int n)
{
 
// If we cannot split the
// number into exactly 'N' parts
if(x < n)
cout<<"-1"<<" ";
 
         
 
    // If x % n == 0 then the minimum
    // difference is 0 and all
    // numbers are x / n
    else if (x % n == 0)
    {
        for(int i=0;i<n;i++)
        cout<<(x/n)<<" ";
    }
    else
    {
 
        // upto n-(x % n) the values
        // will be x / n
        // after that the values
        // will be x / n + 1
        int zp = n - (x % n);
        int pp = x/n;
        for(int i=0;i<n;i++)
        {
 
            if(i>= zp)
            cout<<(pp + 1)<<" ";
            else
            cout<<pp<<" ";
        }
    }
}
     
// Driver code
int main()
{
         
int x = 5;
int n = 3;
split(x, n);
 
}
//THis code is contributed
// Surendra_Gangwar




// Java implementation of the approach
  
class GFG{
// Function that prints
// the required sequence
static void split(int x, int n)
{
  
// If we cannot split the
// number into exactly 'N' parts
if(x < n)
System.out.print("-1 ");
  
          
  
    // If x % n == 0 then the minimum
    // difference is 0 and all
    // numbers are x / n
    else if (x % n == 0)
    {
        for(int i=0;i<n;i++)
        System.out.print((x/n)+" ");
    }
    else
    {
  
        // upto n-(x % n) the values
        // will be x / n
        // after that the values
        // will be x / n + 1
        int zp = n - (x % n);
        int pp = x/n;
        for(int i=0;i<n;i++)
        {
  
            if(i>= zp)
            System.out.print((pp + 1)+" ");
            else
            System.out.print(pp+" ");
        }
    }
}
      
// Driver code
public static void main(String[] args)
{
          
int x = 5;
int n = 3;
split(x, n);
  
}
}
//This code is contributed by mits




# Python3 implementation of the approach
 
# Function that prints
# the required sequence
def split(x, n):
 
    # If we cannot split the
    # number into exactly 'N' parts
    if(x < n):
        print(-1)
 
    # If x % n == 0 then the minimum
    # difference is 0 and all
    # numbers are x / n
    elif (x % n == 0):
        for i in range(n):
            print(x//n, end =" ")
    else:
        # upto n-(x % n) the values
        # will be x / n
        # after that the values
        # will be x / n + 1
        zp = n - (x % n)
        pp = x//n
        for i in range(n):
            if(i>= zp):
                print(pp + 1, end =" ")
            else:
                print(pp, end =" ")
       
# Driver code         
x = 5
n = 3
split(x, n)




// C# implementation of the approach
using System;
 
public class GFG{
    // Function that prints
// the required sequence
static void split(int x, int n)
{
 
// If we cannot split the
// number into exactly 'N' parts
if(x < n)
Console.WriteLine("-1 ");
 
         
 
    // If x % n == 0 then the minimum
    // difference is 0 and all
    // numbers are x / n
    else if (x % n == 0)
    {
        for(int i=0;i<n;i++)
    Console.Write((x/n)+" ");
    }
    else
    {
 
        // upto n-(x % n) the values
        // will be x / n
        // after that the values
        // will be x / n + 1
        int zp = n - (x % n);
        int pp = x/n;
        for(int i=0;i<n;i++)
        {
 
            if(i>= zp)
            Console.Write((pp + 1)+" ");
            else
            Console.Write(pp+" ");
        }
    }
}
     
// Driver code
static public void Main (){
 
int x = 5;
int n = 3;
split(x, n);
 
}
}
//This code is contributed by Sachin.




<?php
// PHP implementation of the approach
 
// Function that prints
// the required sequence
function split($x, $n)
{
    // If we cannot split the
    // number into exactly 'N' parts
    if($x < $n)
        echo (-1);
 
    // If x % n == 0 then the minimum
    // difference is 0 and all
    // numbers are x / n
    else if ($x % $n == 0)
    {
        for($i = 0; $i < $n; $i++)
        {
            echo ($x / $n);
            echo (" ");
        }
    }
     
    else
    {
        // upto n-(x % n) the values
        // will be x / n
        // after that the values
        // will be x / n + 1
        $zp = $n - ($x % $n);
        $pp = $x / $n;
        for ($i = 0; $i < $n; $i++)
        {
            if($i >= $zp)
            {
                echo (int)$pp + 1;
                echo (" ");
            }
            else
            {
                echo (int)$pp;
                echo (" ");
            }
        }
    }
}
 
// Driver code    
$x = 5;
$n = 3;
split( $x, $n);
 
// This code is contributed
// by Shivi_Aggarwal
?>




<script>
 
// JavaScript implementation of the above approach
 
// Function that prints
// the required sequence
function split(x, n)
{
    
// If we cannot split the
// number into exactly 'N' parts
if(x < n)
document.write("-1 ");
    
            
    
    // If x % n == 0 then the minimum
    // difference is 0 and all
    // numbers are x / n
    else if (x % n == 0)
    {
        for(let i=0;i<n;i++)
        document.write((x/n)+" ");
    }
    else
    {
    
        // upto n-(x % n) the values
        // will be x / n
        // after that the values
        // will be x / n + 1
        let zp = n - (x % n);
        let pp = Math.floor(x/n);
        for(let i=0;i<n;i++)
        {
    
            if(i>= zp)
            document.write((pp + 1)+" ");
            else
            document.write(pp+" ");
        }
    }
}
 
// driver code
 
        let x = 5;
        let n = 3;
        split(x, n);
   
</script>

Output: 
1 2 2

 

Time Complexity: O(n), since there run loop from 0 to (n – 1).
Auxiliary Space: O(1), since no extra space has been taken.


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