给定整数元素数组arr [] ,任务是找到arr []的最大子数组的长度,以使子数组中的所有元素都是Powerful number 。
A number n is said to be Powerful Number if, for every prime factor p of it, p2 also divides it.
例子:
Input: arr[] = {1, 7, 36, 4, 6, 28, 4}
Output:2
Maximum length sub-array with all elements as Powerful number is {36, 4}
Input: arr[] = {25, 100, 2, 3, 9, 1}
Output: 2
Maximum length sub-array with all elements as Powerful number is {25, 100} or {9, 1}
方法:
- 从左到右遍历数组。用0初始化max_length和current_length变量。
- 如果当前元素是一个有力数,则增加current_length变量并继续。否则,将current_length设置为0 。
- 在每个步骤中,将max_length分配为max_length = max(current_length,max_length) 。
- 最后输出max_length的值。
C++
// C++ program to find the length of the
// largest sub-array of an array every
// element of whose is a powerful number
#include
using namespace std;
// Function to check if the
// number is powerful
bool isPowerful(int n)
{
// First divide the number repeatedly by 2
while (n % 2 == 0) {
int power = 0;
while (n % 2 == 0) {
n /= 2;
power++;
}
// If only 2^1 divides n
// (not higher powers),
// then return false
if (power == 1)
return false;
}
// If n is not a power of 2
// then this loop will execute
// repeat above process
for (int factor = 3;
factor <= sqrt(n);
factor += 2) {
// Find highest power of "factor"
// that divides n
int power = 0;
while (n % factor == 0) {
n = n / factor;
power++;
}
// If only factor^1 divides n
// (not higher powers),
// then return false
if (power == 1)
return false;
}
// n must be 1 now
// if it is not a prime number.
// Since prime numbers are not powerful,
// we return false if n is not 1.
return (n == 1);
}
// Function to return the length of the
// largest sub-array of an array every
// element of whose is a powerful number
int contiguousPowerfulNumber(int arr[], int n)
{
int current_length = 0;
int max_length = 0;
for (int i = 0; i < n; i++) {
// If arr[i] is
// a Powerful number
if (isPowerful(arr[i]))
current_length++;
else
current_length = 0;
max_length = max(max_length,
current_length);
}
return max_length;
}
// Driver code
int main()
{
int arr[] = { 1, 7, 36, 4, 6, 28, 4 };
int n = sizeof(arr) / sizeof(arr[0]);
cout << contiguousPowerfulNumber(arr, n);
return 0;
} Java
// Java program to find the length of the
// largest sub-array of an array every
// element of whose is a powerful number
import java.util.*;
class solution{
// Function to check if the
// number is powerful
static boolean isPowerful(int n)
{
// First divide the number repeatedly by 2
while (n % 2 == 0) {
int power = 0;
while (n % 2 == 0) {
n /= 2;
power++;
}
// If only 2^1 divides n
// (not higher powers),
// then return false
if (power == 1)
return false;
}
// If n is not a power of 2
// then this loop will execute
// repeat above process
for (int factor = 3;
factor <= Math.sqrt(n);
factor += 2) {
// Find highest power of "factor"
// that divides n
int power = 0;
while (n % factor == 0) {
n = n / factor;
power++;
}
// If only factor^1 divides n
// (not higher powers),
// then return false
if (power == 1)
return false;
}
// n must be 1 now
// if it is not a prime number.
// Since prime numbers are not powerful,
// we return false if n is not 1.
return (n == 1);
}
// Function to return the length of the
// largest sub-array of an array every
// element of whose is a powerful number
static int contiguousPowerfulNumber(int[] arr, int n)
{
int current_length = 0;
int max_length = 0;
for (int i = 0; i < n; i++) {
// If arr[i] is
// a Powerful number
if (isPowerful(arr[i]))
current_length++;
else
current_length = 0;
max_length = Math.max(max_length,
current_length);
}
return max_length;
}
// Driver code
public static void main(String args[])
{
int []arr = { 1, 7, 36, 4, 6, 28, 4 };
int n = arr.length;
System.out.println(contiguousPowerfulNumber(arr, n));
}
}
// This code is contributed by Bhupendra_SinghPython3
# Python 3 program to find the length of
# the largest sub-array of an array every
# element of whose is a powerful number
import math
# function to check if
# the number is powerful
def isPowerful(n):
# First divide the number repeatedly by 2
while (n % 2 == 0):
power = 0
while (n % 2 == 0):
n = n//2
power = power + 1
# If only 2 ^ 1 divides
# n (not higher powers),
# then return false
if (power == 1):
return False
# If n is not a power of 2
# then this loop will execute
# repeat above process
for factor in range(3, int(math.sqrt(n))+1, 2):
# Find highest power of
# "factor" that divides n
power = 0
while (n % factor == 0):
n = n//factor
power = power + 1
# If only factor ^ 1 divides
# n (not higher powers),
# then return false
if (power == 1):
return false
# n must be 1 now if it
# is not a prime numenr.
# Since prime numbers are
# not powerful, we return
# false if n is not 1.
return (n == 1)
# Function to return the length of the
# largest sub-array of an array every
# element of whose is a powerful number
def contiguousPowerfulNumber(arr, n):
current_length = 0
max_length = 0
for i in range(0, n, 1):
# If arr[i] is a
# Powerful number
if (isPowerful(arr[i])):
current_length += 1
else:
current_length = 0
max_length = max(max_length,
current_length)
return max_length
# Driver code
if __name__ == '__main__':
arr = [1, 7, 36, 4, 6, 28, 4]
n = len(arr)
print(contiguousPowerfulNumber(arr, n))C#
// C# program to find the length of the
// largest sub-array of an array every
// element of whose is a powerful number
using System;
class solution{
// Function to check if the
// number is powerful
static bool isPowerful(int n)
{
// First divide the number repeatedly by 2
while (n % 2 == 0) {
int power = 0;
while (n % 2 == 0) {
n /= 2;
power++;
}
// If only 2^1 divides n
// (not higher powers),
// then return false
if (power == 1)
return false;
}
// If n is not a power of 2
// then this loop will execute
// repeat above process
for (int factor = 3;
factor <= Math.Sqrt(n);
factor += 2) {
// Find highest power of "factor"
// that divides n
int power = 0;
while (n % factor == 0) {
n = n / factor;
power++;
}
// If only factor^1 divides n
// (not higher powers),
// then return false
if (power == 1)
return false;
}
// n must be 1 now
// if it is not a prime number.
// Since prime numbers are not powerful,
// we return false if n is not 1.
return (n == 1);
}
// Function to return the length of the
// largest sub-array of an array every
// element of whose is a powerful number
static int contiguousPowerfulNumber(int[] arr, int n)
{
int current_length = 0;
int max_length = 0;
for (int i = 0; i < n; i++) {
// If arr[i] is
// a Powerful number
if (isPowerful(arr[i]))
current_length++;
else
current_length = 0;
max_length = Math.Max(max_length,
current_length);
}
return max_length;
}
// Driver code
public static void Main(String []args)
{
int []arr = { 1, 7, 36, 4, 6, 28, 4 };
int n = arr.Length;
Console.WriteLine(contiguousPowerfulNumber(arr, n));
}
}
// This code is contributed by gauravrajput1输出:
2
时间复杂度: O(N×√N)
辅助空间复杂度: O(1)