2011年7月22日
poj2603
摘要: 简单题View Code #include <iostream>#include <cstdio>#include <cstdlib>#include <cstring>#include <cmath>using namespace std;#define maxn 10005bool is[maxn];int prm[maxn];int f[maxn];int getprm(int n){ int i, j, k = 0; int s, e = (int) (sqrt(0.0 + n) + 1); memset(is, 1, siz 阅读全文
posted @ 2011-07-22 20:56 undefined2024 阅读(186) 评论(0) 推荐(0)
poj3032
摘要: 简单题View Code #include <iostream>#include <cstdio>#include <cstdlib>#include <cstring>using namespace std;#define maxn 20int f[maxn];int vis[maxn];int n;int main(){ //freopen("t.txt", "r", stdin); int t; scanf("%d", &t); while (t--) { memset(v 阅读全文
posted @ 2011-07-22 20:30 undefined2024 阅读(179) 评论(0) 推荐(0)
poj3444
摘要: 简单题View Code #include <iostream>#include <cstdio>#include <cstdlib>#include <cstring>using namespace std;#define maxn 300int n;int f[maxn], g[maxn];void input(){ for (int i = 0; i < n; i++) scanf("%d", &f[i]);}void work(int a){ for (int i = 0; i < a; i++) 阅读全文
posted @ 2011-07-22 19:59 undefined2024 阅读(163) 评论(0) 推荐(0)
poj1958
摘要: 题意:4柱子hanoi,给出n<=12,求最少步数。分析:我们知道3柱子的hanoi,步数=2^n-1。题中给出四个的解题思路,用dp求解,题中说先把n分成两部分,A部分用4柱子方法挪到2柱子,B部分用3柱子法挪到4柱子,然后用4柱子法把A挪到4柱子。假设B部分有k个,则g[i] = g[i - j] * 2 + f[j];g[i]表示4柱子法,f[i]是3柱子法,挪动i个盘子的步数。View Code #include <iostream>#include <cstdio>#include <cstdlib>#include <cstring& 阅读全文
posted @ 2011-07-22 19:25 undefined2024 阅读(355) 评论(0) 推荐(0)
poj2101
摘要: 简单题View Code #include <iostream>#include <cstdio>#include <cstdlib>#include <cstring>#include <cmath>using namespace std;int n, m;int main(){ //freopen("t.txt", "r", stdin); int x, y; scanf("%d%d", &n, &m); x = 0; y = 0; for (int i 阅读全文
posted @ 2011-07-22 17:48 undefined2024 阅读(164) 评论(0) 推荐(0)
poj2977
摘要: 题意:给定一个长方体,和长方体表面上的一个点。求该点在长方体表面上移动到长方体一个(确定的)顶点的最短距离。分析:陷阱就在于可能需要经过三个面,而不是两个面,如果一个点在顶面,那么可能需要经过顶面、后面和左面,也可能经过顶面、右面和前面。View Code #include <iostream>#include <cstdio>#include <cstdlib>#include <cstring>using namespace std;int main(){ //freopen("t.txt", "r", 阅读全文
posted @ 2011-07-22 16:56 undefined2024 阅读(229) 评论(0) 推荐(0)
poj1010
摘要: dfs对于多解的判断很复杂。另外注意输出的括号中的数字是邮票的种类。View Code #include <iostream>#include <cstdio>#include <cstdlib>#include <cstring>#include <algorithm>using namespace std;#define maxn 300int n;int m, tot;int stamp[maxn];int ans[5], ansnum;int sel[5];bool tie, none;bool vis[maxn];void 阅读全文
posted @ 2011-07-22 10:15 undefined2024 阅读(333) 评论(2) 推荐(0)