HDU 3826 Squarefree number 判断无平方因子的数

Squarefree number

Time Limit: 10000/3000 MS (Java/Others)    Memory Limit: 32768/32768 K (Java/Others)
Total Submission(s): 1636    Accepted Submission(s): 438


Problem Description
In mathematics, a squarefree number is one which is divisible by no perfect squares, except 1. For example, 10 is square-free but 18 is not, as it is divisible by 9 = 3^2. Now you need to determine whether an integer is squarefree or not.
 

 

Input
The first line contains an integer T indicating the number of test cases.
For each test case, there is a single line contains an integer N.

Technical Specification

1. 1 <= T <= 20
2. 2 <= N <= 10^18
 

 

Output
For each test case, output the case number first. Then output "Yes" if N is squarefree, "No" otherwise.
 

 

Sample Input
2 30 75
 

 

Sample Output
Case 1: Yes Case 2: No
 
思路:题意说的是,给你一个数N,问这个数是否存在因子且该因子是某个整数的平方,若存在则输出No,否则输出Yes.由于N的最大范围达到10^18,这里可以用筛选法得到2-10^6之间的素数,然后依次用小于N的这些数去除N,若某个素数可以除N两次以上,则输出No;否则,若除完2-10^6之间的素数后,N为1则输出Yes;最后若N不为1,则将N开根,得到的数若是整数,输出No,否则输出Yes。简单的原理就是,如果N不存在10^6一下的素数因子,则N必定是大于10^6的数,它可能是某个大于10^6的素数,也可能是大于10^6的某个数的平方(不可能是三次方,也不存在平方后再乘以小于10^6的数,因为之前已经筛选掉了。)
 
View Code
 1 #include 
 2 #include 
 3 #include 
 4 #include 
 5 #include 
 6 
 7 using namespace std;
 8 
 9 int prime[1000001];
10 bool vis[1000001];
11 
12 int main()
13 {
14     memset(vis,0,sizeof(vis));
15     int idx = 0;
16     for(int i=2; i<=1000; i++)
17     {
18         if(!vis[i])
19         {
20             for(int j=i*i; j<=1000000; j+=i)
21                 vis[j] = true;
22         }
23 
24     }
25     for(int i=2; i<=1000000; i++)
26         if(!vis[i])
27             prime[idx++] = i;
28     int Case;
29     scanf("%d",&Case);
30     for(int ca = 1; ca <= Case; ca ++)
31     {
32         __int64 n;
33         scanf("%I64d",&n);
34         printf("Case %d: ",ca);
35         int time = 0;
36         for(int i=0; i)
37         {
38             time = 0;
39             while(n % prime[i] == 0)
40             {
41                 n /= prime[i];
42                 time ++;
43             }
44             if(time >= 2)
45             {
46                 break;
47             }
48         }
49         if(time >= 2)
50         {
51             printf("No\n");
52             continue;
53         }
54         if(n == 1)
55         {
56             printf("Yes\n");
57             continue;
58         }
59         if(((__int64)sqrt(n*1.0+0.00000001)*(__int64)sqrt(n*1.0+0.00000001)) == n)
60             printf("No\n");
61         else
62             printf("Yes\n");
63     }
64     return 0;
65 }

 

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