给定n个正整数的链表。我们必须找到具有最小值和最大值的质数。
如果给定的列表是-
10 -> 4 -> 1 -> 12 -> 13 -> 7 -> 6 -> 2 -> 27 -> 33 then minimum prime number is 2 and maximum prime number is 13
1.从给定数字中找到最大数字。 让我们称之为maxNumber 2.生成从1到maxNumber的质数,并将它们存储在动态数组中 3.迭代链接列表,并使用动态数组查找具有最小值和最大值的素数
#include <iostream>
#include <vector>
#include <climits>
#include <algorithm>
#include <list>
#define SIZE(arr) (sizeof(arr) / sizeof(arr[0]))
using namespace std;
void printMinAndMaxPrimes(list<int> intList){
int maxNumber = *max_element(intList.begin(),
intList.end());
vector<bool> primes(maxNumber + 1, true);
primes[0] = primes[1] = false;
for (int p = 2; p * p <= maxNumber; ++p) {
if (primes[p]) {
for (int i = p * 2; i <= maxNumber; i +=p) {
primes[i] = false;
}
}
}
int minPrime = INT_MAX;
int maxPrime = INT_MIN;
for (auto it = intList.begin(); it != intList.end(); ++it) {
if (primes[*it]) {
minPrime = min(minPrime, *it);
maxPrime = max(maxPrime, *it);
}
}
cout << "Prime number of min value = " << minPrime << "\n";
cout << "Prime number of max value = " << maxPrime << "\n";
}
int main(){
int arr [] = {10, 4, 1, 12, 13, 7, 6, 2, 27, 33};
list<int> intList(arr, arr + SIZE(arr));
printMinAndMaxPrimes(intList);
return 0;
}输出结果
当您编译并执行上述程序时。它生成以下输出-
Prime number of min value = 2 Prime number of max value = 13