HDU2161 Primes【筛选法+打表】
Primes
Time Limit: 1000/1000 MS (Java/Others) Memory Limit: 32768/32768 K (Java/Others)Total Submission(s): 12512 Accepted Submission(s): 5178
Problem Description
Write a program to read in a list of integers and determine whether or not each number is prime. A number, n, is prime if its only divisors are 1 and n. For this problem, the numbers 1 and 2 are not considered primes.
Input
Each input line contains a single integer. The list of integers is terminated with a number<= 0. You may assume that the input contains at most 250 numbers and each number is less than or equal to 16000.
Output
The output should consists of one line for every number, where each line first lists the problem number, followed by a colon and space, followed by "yes" or "no".
Sample Input
1 2 3 4 5 17 0
Sample Output
1: no 2: no 3: yes 4: no 5: yes 6: yes
Source
问题链接:HDU2161 Primes。
题意简述:参见上文。
问题分析:用Eratosthenes筛选法设置一个素数判定数组,然后根据输入的正整数判定输出即可。
参考链接:(略)
AC的C++语言程序如下:
/* HDU2161 Primes */ #include <iostream> #include <string.h> #include <math.h> using namespace std; const int N = 16000; bool prime[N+1]; // 筛选法 void sieveofe(int n) { memset(prime, true, sizeof(prime)); prime[0] = prime[1] = false; for(int i=2; i<=sqrt(n); i++) { if(prime[i]) { for(int j=i*i; j<=n; j+=i) //筛选 prime[j] = false; } } prime[2] = false; // 坑:这是特殊的地方 } int main() { sieveofe(N); int n, caseno=0; while(cin >> n && n > 0) { // 坑:结束条件是n<=0,不是n=0 cout << ++caseno << ": " << (prime[n] ? "yes" : "no") << endl; } return 0; }