📜  大小为 K 的子阵列中谷元素的最大计数数

📅  最后修改于: 2021-09-05 11:51:35             🧑  作者: Mango

给定一个数组arr[] ,任务是选择一个大小为K的子数组,其中包含相对于相邻元素的最大谷点数。
元素 arr[i] 被称为谷点,如果它的两个相邻元素都大于它,即    .

例子:

做法:思路是使用滑动窗口技术来解决这个问题。
下面是该方法步骤的说明:

  • 求第一个大小为 K 的子数组中谷点的总数。
  • 迭代所有可能子数组的起始点,即数组的NK个点,应用包含和排除原理计算当前窗口中谷点的数量。
  • 在每一步,更新最终答案以计算每个子数组的全局最大值。

下面是上述方法的实现:

C++
// C++ implementation to find the
// maximum number of valley elements
// in the subarrays of size K
 
#include
using namespace std;
 
// Function to find the valley elements
// in the array which contains
// in the subarrays of the size K
void minpoint(int arr[],int n, int k)
{
    int min_point = 0;
    for (int i = 1; i < k-1 ; i++)
    {
        // Increment min_point
        // if element at index i
        // is smaller than element
        // at index i + 1 and i-1
        if(arr[i] < arr[i - 1] && arr[i] < arr[i + 1])
            min_point += 1;
    }
    // final_point to maintain maximum
    // of min points of subarray
    int final_point = min_point;
     
    // Iterate over array
    // from kth element
    for(int i = k ; i < n; i++)
    {
        // Leftmost element of subarray
        if(arr[i - ( k - 1 )] < arr[i - ( k - 1 ) + 1]&&
        arr[i - ( k - 1 )] < arr[i - ( k - 1 ) - 1])
            min_point -= 1;
         
        // Rightmost element of subarray
        if(arr[i - 1] < arr[i] && arr[i - 1] < arr[i - 2])
            min_point += 1;
         
        // if new subarray have greater
        // number of min points than previous
        // subarray, then final_point is modified
        if(min_point > final_point)
            final_point = min_point;
    }
     
    // Max minimum points in
    // subarray of size k
    cout<<(final_point);
}
 
// Driver Code
int main()
{
    int arr[] = {2, 1, 4, 2, 3, 4, 1, 2};
    int n = sizeof(arr)/sizeof(arr[0]);
    int k = 4;
    minpoint(arr, n, k);
    return 0;
}
// This code contributed by chitranayal


Java
// Java implementation to find the
// maximum number of valley elements
// in the subarrays of size K
class GFG{
     
// Function to find the valley elements
// in the array which contains
// in the subarrays of the size K
static void minpoint(int arr[], int n, int k)
{
    int min_point = 0;
    for(int i = 1; i < k - 1; i++)
    {
        
       // Increment min_point
       // if element at index i
       // is smaller than element
       // at index i + 1 and i-1
       if(arr[i] < arr[i - 1] &&
          arr[i] < arr[i + 1])
          min_point += 1;
    }
     
    // final_point to maintain maximum
    // of min points of subarray
    int final_point = min_point;
         
    // Iterate over array
    // from kth element
    for(int i = k ; i < n; i++)
    {
        
       // Leftmost element of subarray
       if(arr[i - ( k - 1 )] < arr[i - ( k - 1 ) + 1] &&
          arr[i - ( k - 1 )] < arr[i - ( k - 1 ) - 1])
          min_point -= 1;
           
       // Rightmost element of subarray
       if(arr[i - 1] < arr[i] &&
          arr[i - 1] < arr[i - 2])
          min_point += 1;
           
       // If new subarray have greater
       // number of min points than previous
       // subarray, then final_point is modified
       if(min_point > final_point)
          final_point = min_point;
    }
     
    // Max minimum points in
    // subarray of size k
    System.out.println(final_point);
}
     
// Driver Code
public static void main (String[] args)
{
    int arr[] = { 2, 1, 4, 2, 3, 4, 1, 2 };
    int n = arr.length;
    int k = 4;
     
    minpoint(arr, n, k);
}
}
 
// This code is contributed by AnkitRai01


Python3
# Python3 implementation to find the
# maximum number of valley elements
# in the subarrays of size K
 
# Function to find the valley elements
# in the array which contains
# in the subarrays of the size K
def minpoint(arr, n, k):
    min_point = 0
    for i in range(1, k-1):
         
        # Increment min_point
        # if element at index i
        # is smaller than element
        # at index i + 1 and i-1
        if(arr[i] < arr[i - 1] and arr[i] < arr[i + 1]):
            min_point += 1
 
    # final_point to maintain maximum
    # of min points of subarray
    final_point = min_point
     
    # Iterate over array
    # from kth element
    for i in range(k, n):
         
        # Leftmost element of subarray
        if(arr[i - ( k - 1 )] < arr[i - ( k - 1 ) + 1] and\
           arr[i - ( k - 1 )] < arr[i - ( k - 1 ) - 1]):
            min_point -= 1
         
        # Rightmost element of subarray
        if(arr[i - 1] < arr[i] and arr[i - 1] < arr[i - 2]):
            min_point += 1
         
        # if new subarray have greater
        # number of min points than previous
        # subarray, then final_point is modified
        if(min_point > final_point):
            final_point = min_point
     
    # Max minimum points in
    # subarray of size k
    print(final_point)
 
# Driver Code
if __name__ == "__main__":
    arr = [2, 1, 4, 2, 3, 4, 1, 2]
    n = len(arr)
    k = 4
    minpoint(arr, n, k)


C#
// C# implementation to find the
// maximum number of valley elements
// in the subarrays of size K
using System;
 
class GFG{
     
// Function to find the valley elements
// in the array which contains
// in the subarrays of the size K
static void minpoint(int []arr, int n, int k)
{
    int min_point = 0;
    for(int i = 1; i < k - 1; i++)
    {
 
       // Increment min_point
       // if element at index i
       // is smaller than element
       // at index i + 1 and i-1
       if(arr[i] < arr[i - 1] &&
          arr[i] < arr[i + 1])
          min_point += 1;
    }
         
    // final_point to maintain maximum
    // of min points of subarray
    int final_point = min_point;
             
    // Iterate over array
    // from kth element
    for(int i = k ; i < n; i++)
    {
        
       // Leftmost element of subarray
       if(arr[i - ( k - 1 )] < arr[i - ( k - 1 ) + 1] &&
          arr[i - ( k - 1 )] < arr[i - ( k - 1 ) - 1])
          min_point -= 1;
        
       // Rightmost element of subarray
       if(arr[i - 1] < arr[i] &&
          arr[i - 1] < arr[i - 2])
          min_point += 1;
             
       // If new subarray have greater
       // number of min points than previous
       // subarray, then final_point is modified
       if(min_point > final_point)
          final_point = min_point;
    }
         
    // Max minimum points in
    // subarray of size k
    Console.WriteLine(final_point);
}
         
// Driver Code
public static void Main (string[] args)
{
    int []arr = { 2, 1, 4, 2, 3, 4, 1, 2 };
    int n = arr.Length;
    int k = 4;
         
    minpoint(arr, n, k);
}
}
 
// This code is contributed by AnkitRai01


Javascript


输出:
1

时间复杂度: O(N)

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