PTA(Advanced Level)1096.Consecutive Factors

Among all the factors of a positive integer N, there may exist several consecutive numbers. For example, 630 can be factored as 3×5×6×7, where 5, 6, and 7 are the three consecutive numbers. Now given any positive N, you are supposed to find the maximum number of consecutive factors, and list the smallest sequence of the consecutive factors.

Input Specification:

Each input file contains one test case, which gives the integer N (1<N<231).

Output Specification:

For each test case, print in the first line the maximum number of consecutive factors. Then in the second line, print the smallest sequence of the consecutive factors in the format factor[1]*factor[2]*...*factor[k], where the factors are listed in increasing order, and 1 is NOT included.

Sample Input:
630
Sample Output:
3
5*6*7
思路
  • 找一个数字(n)的因数连乘中存在的最长序列,且要求这个序列为1的等差数列。
  • 方法:从小到大开始找,一个数除了本身,最大的因数不可能超过(sqrt{n}),这就是循环范围。如果当前为因数,那么检查这个数的下一个,看最长能多少
  • (N)的最大是(2^{31}-1)(sqrt{n}approx2^{15.5}),因为要测试连乘,所以用int会超时,使用long long即可
代码
#include<bits/stdc++.h>
using namespace std;
typedef long long LL;
int main()
{
	LL n;
	cin >> n;
	LL up = (LL)sqrt(n * 1.0);
	LL ans = 0, length = 0;
	for(LL i=2;i<=up;i++)
	{
		LL tmp = 1;
		LL step = i;
		while(true)
		{
			tmp *= step;
			if(n % tmp != 0)	break;	//不是因子
			if(step - i + 1 > length)
			{
				ans = i;
				length = step - i + 1;
			}
			step++;
		}
	}
	if(length == 0)		//也就是这个是质数,因子只有1和自己
	{
		cout << 1 << endl;
		cout << n;		//不能输出1这个因子
	}
	else
	{
		cout << length << endl;
		for(LL i=0;i<length;i++)
		{
			cout << ans + i;
			if(i != length - 1)
				cout << "*";
		}
	}
	return 0;
}

引用

https://pintia.cn/problem-sets/994805342720868352/problems/994805370650738688

原文地址:https://www.cnblogs.com/MartinLwx/p/12533311.html