Inputn (0 < n < 20). OutputThe output format is shown as sample below. Each row represents a series of circle numbers in the ring beginning from 1 clockwisely and anticlockwisely. The order of numbers must satisfy the above requirements. Print solutions in lexicographical order.You are to write a program that completes above process.Print a blank line after each case. Sample Input68 Sample OutputCase 1:1 4 3 2 5 61 6 5 2 3 4Case 2:1 2 3 8 5 6 7 41 2 5 8 3 4 7 61 4 7 6 5 8 3 21 6 7 4 3 8 5 2 SourceAsia 1996, Shanghai (Mainland China) RecommendJGShining | We have carefully selected several similar problems for you: 1072 1242 1175 1253 1181 题意: 给你一个整数n, 求解1~n排列成环使得每相邻的两个数相加是素数的所有情况。解题思路: DFSDFS从x = 1开始深搜, 每次找到符合条件的两个数就加入数组a,当满足x == n 并且a[x] + a[1] 也是素数时结束, 并输出a数组。代码:#include <cmath>#include <string>#include <cstdio>#include <sstream>#include <cstring>#include <iostream>#include <algorithm>#define LOCALusing namespace std;int n;int a[105];int visit[105];int is_prime[105];void f() //素数打表, 也可直接写入前40个素数入该数组{ for (int i = 2; i <= 10; i++) if(!is_prime[i]) for (int j = i+i; j <= 100; j+=i) is_prime[j] = 1;}void dfs(int x){ if(x == n && !is_prime[a[x]+a[1]]) //满足条件并输出 { for (int i = 1; i < n; i++) printf("%d ",a[i]); printf("%d/n", a[x]); } else { for (int i = 2; i <= n; i++) { if(!visit[i]) //判断是否访问过 { if(!is_prime[i + a[x]]) //判断i是否符合当前条件 { visit[i] = 1; //标记已访问 a[++x] = i; //i加入a数组 dfs(x); x--; //退一格 visit[i] = 0; //取消标记,以便之后DFS } } } }}int main(){// #ifdef LOCAL// freopen("data.in", "r", stdin);// freopen("data.out", "w", stdout);// #endif f(); int z = 1; while (scanf("%d", &n) != EOF) { memset(visit, 0, sizeof(visit)); a[1] = 1; //初始时从1开始 visit[1] = 1; //标记1已经走过,虽然并不会影响。 printf("Case %d:/n", z++); dfs(1); printf("/n"); } return 0;}
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