给定一个由N个整数组成的数组arr []和一个整数X。数组中的元素arr [i]表示使用2 i的成本。任务是找到最小成本,以选择加到X上的数字。
例子:
Input: arr[] = { 20, 50, 60, 90 }, X = 7
Output: 120
22 + 21 + 20 = 4 + 2 + 1 = 7 with cost = 60 + 50 + 20 = 130
But we can use 22 + 3 * 20 = 4 + 3 * 1 = 7 with cost = 60 + 3 * 20 = 120 which is minimum possible.
Input: arr[] = { 10, 5, 50 }, X = 4
Output: 10
方法:可以使用基本的动态编程解决问题。这里使用了每个数字都可以使用2的幂形成的事实。我们最初可以计算形成2的幂的最小成本。重复发生如下:
a[i] = min(a[i], 2 * a[i – 1])
重新计算数组后,我们可以简单地根据数字X中设置的位数继续增加成本。
下面是上述方法的实现:
C++
// C++ implementation of the approach
#include
using namespace std;
// Function to return the minimum cost
int MinimumCost(int a[], int n, int x)
{
// Re-compute the array
for (int i = 1; i < n; i++) {
a[i] = min(a[i], 2 * a[i - 1]);
}
int ind = 0;
int sum = 0;
// Add answers for set bits
while (x) {
// If bit is set
if (x & 1)
sum += a[ind];
// Increase the counter
ind++;
// Right shift the number
x = x >> 1;
}
return sum;
}
// Driver code
int main()
{
int a[] = { 20, 50, 60, 90 };
int x = 7;
int n = sizeof(a) / sizeof(a[0]);
cout << MinimumCost(a, n, x);
return 0;
}
Java
// Java implementation of the approach
import java.io.*;
class GFG
{
// Function to return the minimum cost
static int MinimumCost(int a[], int n, int x)
{
// Re-compute the array
for (int i = 1; i < n; i++)
{
a[i] = Math.min(a[i], 2 * a[i - 1]);
}
int ind = 0;
int sum = 0;
// Add answers for set bits
while (x > 0)
{
// If bit is set
if (x != 0 )
sum += a[ind];
// Increase the counter
ind++;
// Right shift the number
x = x >> 1;
}
return sum;
}
// Driver code
public static void main (String[] args)
{
int a[] = { 20, 50, 60, 90 };
int x = 7;
int n =a.length;
System.out.println (MinimumCost(a, n, x));
}
}
// This Code is contributed by akt_mit
Python3
# Python 3 implementation of the approach
# Function to return the minimum cost
def MinimumCost(a, n, x):
# Re-compute the array
for i in range(1, n, 1):
a[i] = min(a[i], 2 * a[i - 1])
ind = 0
sum = 0
# Add answers for set bits
while (x):
# If bit is set
if (x & 1):
sum += a[ind]
# Increase the counter
ind += 1
# Right shift the number
x = x >> 1
return sum
# Driver code
if __name__ == '__main__':
a = [20, 50, 60, 90]
x = 7
n = len(a)
print(MinimumCost(a, n, x))
# This code is contributed by
# Surendra_Gangwar
C#
// C# implementation of the approach
using System;
class GFG
{
// Function to return the minimum cost
public static int MinimumCost(int []a, int n, int x)
{
// Re-compute the array
for (int i = 1; i < n; i++)
{
a[i] = Math.Min(a[i], 2 * a[i - 1]);
}
int ind = 0;
int sum = 0;
// Add answers for set bits
while (x > 0)
{
// If bit is set
if (x != 0 )
sum += a[ind];
// Increase the counter
ind++;
// Right shift the number
x = x >> 1;
}
return sum;
}
// Driver code
public static void Main ()
{
int []a = { 20, 50, 60, 90 };
int x = 7;
int n =a.Length;
Console.WriteLine(MinimumCost(a, n, x));
}
}
// This Code is contributed by SoM15242
PHP
> 1;
}
return $sum;
}
// Driver code
$a = array( 20, 50, 60, 90 );
$x = 7;
$n = sizeof($a) / sizeof($a[0]);
echo MinimumCost($a, $n, $x);
// This code is contributed by ajit.
?>
Javascript
输出:
120
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