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  • POJ2689 Prime Distance(数论:素数筛选模板)

    题目链接:传送门

    题目:

    Prime Distance
    Time Limit: 1000MS        Memory Limit: 65536K
    Total Submissions: 24073        Accepted: 6306
    
    Description
    The branch of mathematics called number theory is about properties of numbers. One of the areas that has captured the interest of number theoreticians for thousands of years is the question of primality. A prime number is a number that is has no proper factors (it is only evenly divisible by 1 and itself). The first prime numbers are 2,3,5,7 but they quickly become less frequent. One of the interesting questions is how dense they are in various ranges. Adjacent primes are two numbers that are both primes, but there are no other prime numbers between the adjacent primes. For example, 2,3 are the only adjacent primes that are also adjacent numbers.
    Your program is given 2 numbers: L and U (1<=L< U<=2,147,483,647), and you are to find the two adjacent primes C1 and C2 (L<=C1< C2<=U) that are closest (i.e. C2-C1 is the minimum). If there are other pairs that are the same distance apart, use the first pair. You are also to find the two adjacent primes D1 and D2 (L<=D1< D2<=U) where D1 and D2 are as distant from each other as possible (again choosing the first pair if there is a tie).
    
    Input
    Each line of input will contain two positive integers, L and U, with L < U. The difference between L and U will not exceed 1,000,000.
    
    Output
    For each L and U, the output will either be the statement that there are no adjacent primes (because there are less than two primes between the two given numbers) or a line giving the two pairs of adjacent primes.
    
    Sample Input
    
    2 17
    14 17
    
    Sample Output
    
    2,3 are closest, 7,11 are most distant.
    There are no adjacent primes.
    View Code

    思路:

    大区间素数筛选。预处理小素数,拿去筛大素数就好了。

    上kuangbin大大的模板。

    #include <iostream>
    #include <cstring>
    #include <cstdio>
    #include <algorithm>
    
    using namespace std;
    const int MAX_N = 1e5 + 5;
    
    int prime[100005];
    void getPrime() {
        memset(prime, 0, sizeof prime);
        for (int i = 2; i < MAX_N; i++) {
            if (!prime[i]) prime[++prime[0]] = i;
            for (int j = 1; j <= prime[0] && prime[j] <= MAX_N/i; j++) {
                prime[prime[j]*i] = 1;
                if (i%prime[j] == 0) break;
            }
        }
    }
    
    bool notprime[1000005];
    int prime2[MAX_N];
    void getPrime2(int L, int R) {
        memset(notprime, false, sizeof notprime);
        if (L < 2) L = 2;
        for (int i = 1; i <= prime[0] && (long long)prime[i]*prime[i] <= R; i++)
            for (int j = max(2, L/prime[i] + (L%prime[i] > 0)); (long long)j*prime[i] <= R; j++)
                if ((long long)j*prime[i] >= L)
                    notprime[j*prime[i]-L] = true;
        prime2[0] = 0;
        for (int i = 0; i <= R-L; i++)
            if (!notprime[i])
                prime2[++prime2[0]] = i+L;
    }
    
    int main()
    {
        getPrime();
        int L, U;
        while (~scanf("%d%d", &L, &U)) {
            getPrime2(L, U);
            if (prime2[0] < 2) puts("There are no adjacent primes.");
            else {
                int x1 = 0, x2 = 1e7, y1 = 0, y2 = 0;
                for (int i = 2; i <= prime2[0]; i++) {
                    if (prime2[i] - prime2[i-1] < x2 - x1)
                        x2 = prime2[i], x1 = prime2[i-1];
                    if (prime2[i] - prime2[i-1] > y2 - y1)
                        y2 = prime2[i], y1 = prime2[i-1];
                }
                printf("%d,%d are closest, %d,%d are most distant.
    ", x1, x2, y1, y2);
            }
        }
        return 0;
    }
    View Code
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  • 原文地址:https://www.cnblogs.com/Lubixiaosi-Zhaocao/p/9886421.html
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