Codeforces Round #328 (Div. 2)

时间:2023-03-08 16:22:14
Codeforces Round #328 (Div. 2)

这场CF,准备充足,回寝室洗了澡,睡了一觉,可结果。。。

 

水 A - PawnChess

第一次忘记判断相等时A先走算A赢,hack掉。后来才知道自己的代码写错了(摔

for (int i=1; i<=8; ++i)	{

	scanf ("%s", s[i]);    //!!!

}

数学(找规律) B - The Monster and the Squirrel

题意:多边形每个顶点向其它的点引射线,如果碰到其他射线则停止,问最后多边形被分成多少个区域

Codeforces Round #328 (Div. 2)

分析:搬题解:

Problem B. The monster and the squirrel

After drawing the rays from the first vertex (n - 2) triangles are formed. The subsequent rays will generate independently sub-regions in these triangles. Let's analyse the triangle determined by vertices 1, i, i + 1, after drawing the rays from vertex i and (i + 1) the triangle will be divided into (n - i) + (i - 2) = n - 2 regions. Therefore the total number of convex regions is (n - 2)2

Codeforces Round #328 (Div. 2)

If the squirrel starts from the region that have 1 as a vertex, then she can go through each region of triangle (1, i, i + 1) once. That implies that the squirrel can collect all the walnuts in (n - 2)2 jumps.

 

我一直在猜结论,试了一些公式,但和3,4的情况对不上。(卒

注意爆int

 

数学 C - The Big Race

题意:两个在比赛,每个人的速度固定,终点<=t,问两人不分胜负的可能情况

分析:分类讨论,如果LCM (b, w) <= t, 那么每个LCM的倍数的点以及之后跟着的min (b, w) - 1都是不分胜负的,其他情况不详细分析。。。

注意的是LCM可能爆long long,可以先除和t比较或者转换成double log函数比较

/************************************************

* Author        :Running_Time

* Created Time  :2015/10/31 星期六 22:41:05

* File Name     :C.cpp

 ************************************************/

#include <cstdio>

#include <algorithm>

#include <iostream>

#include <sstream>

#include <cstring>

#include <cmath>

#include <string>

#include <vector>

#include <queue>

#include <deque>

#include <stack>

#include <list>

#include <map>

#include <set>

#include <bitset>

#include <cstdlib>

#include <ctime>

using namespace std;

#define lson l, mid, rt << 1

#define rson mid + 1, r, rt << 1 | 1

typedef long long ll;

const int N = 1e5 + 10;

const int INF = 0x3f3f3f3f;

const int MOD = 1e9 + 7;

const double EPS = 1e-10;

const double PI = acos (-1.0);

ll GCD(ll a, ll b)	{

	return b ? GCD (b, a % b) : a;

}

int main(void)    {

	ll t, w, b;	scanf ("%I64d%I64d%I64d", &t, &w, &b);

	if (w > b)	swap (w, b);

	if (w > t && b > t)	{

		printf ("1/1\n");

	}

	else if (b > t)	{

		ll x = GCD (w - 1, t);

		printf ("%I64d/%I64d\n", (w - 1) / x, t / x);

	}

	else if (log ((double) w) + log ((double) b) - log ((double) GCD (w, b)) > log ((double) t))	{

		ll x = GCD (w - 1, t);

		printf ("%I64d/%I64d\n", (w - 1) / x, t / x);

	}

	else	{

		ll lcm = b / GCD (w, b) * w;

		if (t % lcm == 0)	{

			ll y = (w - 1) + (t / lcm - 1) * w + 1;

			ll x = GCD (y, t);

			printf ("%I64d/%I64d\n", y / x, t / x);

		}

		else	{

			ll y = (w - 1) + (t / lcm - 1) * w + (1 + min (t % lcm, w - 1));

			ll x = GCD (y, t);

			printf ("%I64d/%I64d\n", y / x, t / x);

		}

	}

   //cout << "Time elapsed: " << 1.0 * clock() / CLOCKS_PER_SEC << " s.\n";

    return 0;

}

  

虚树的直径 D - Super M

题意:一棵树,有若干个点要走,问从哪个点出发可以使得路径最短,走完不用走回起点

分析:如果回到起点的话就是路径上的边的两倍,不回起点就减去一条最长的回路(直径)。首先找出包含所有要走的点的子树,从任意一点DFS找深度最大的点再DFS一遍,这样就可以找到直径,最后贪心找字典序小的直径的端点

/************************************************

* Author        :Running_Time

* Created Time  :2015/10/31 星期六 22:41:05

* File Name     :D.cpp

 ************************************************/

#include <cstdio>

#include <algorithm>

#include <iostream>

#include <sstream>

#include <cstring>

#include <cmath>

#include <string>

#include <vector>

#include <queue>

#include <deque>

#include <stack>

#include <list>

#include <map>

#include <set>

#include <bitset>

#include <cstdlib>

#include <ctime>

using namespace std;

#define lson l, mid, rt << 1

#define rson mid + 1, r, rt << 1 | 1

typedef long long ll;

const int N = 123456 + 10;

const int INF = 0x3f3f3f3f;

const int MOD = 1e9 + 7;

const double EPS = 1e-10;

const double PI = acos (-1.0);

bool mark[N];

int d[N];

int cnt[N];

vector<int> G[N];

void DFS(int u, int fa) {

    cnt[u] = 0;

    if (mark[u])    cnt[u] = 1;

    for (int v, i=0; i<G[u].size (); ++i)   {

        v = G[u][i];

        if (v == fa)    continue;

        d[v] = d[u] + 1;

        DFS (v, u);

        cnt[u] += cnt[v];

    }

}

int main(void)    {

    int n, m;   scanf ("%d%d", &n, &m);

    for (int u, v, i=1; i<n; ++i)   {

        scanf ("%d%d", &u, &v);

        G[u].push_back (v);

        G[v].push_back (u);

    }

    int id = -1;

    for (int u, i=1; i<=m; ++i) {

        scanf ("%d", &u);

        mark[u] = true;

        if (id == -1 || id > u) {

            id = u;

        }

    }

    if (m == 1) {

        printf ("%d\n0\n", id); return 0;

    }

    DFS (1, 0);

    id = -1;

    for (int i=1; i<=n; ++i)    {

        if (mark[i] && (id == -1 || d[id] < d[i]))  {

            id = i;

        }

    }

    int es = 0, len = 0;

    memset (d, 0, sizeof (d));

    DFS (id, 0);                         //从深度最深的点开始搜

    for (int i=1; i<=n; ++i)    {

        if (cnt[i] > 0 && m - cnt[i] > 0)   {       //这个cnt数组记录了以i为根的子树中被攻击的城市的个数

            es += 2;

        }

        if (mark[i])    len = max (len, d[i]);

    }

    for (int i=1; i<=n; ++i)    {       //找到直径后取id小的端点

        if (mark[i] && i < id && d[i] == len)    {

            id = i; break;

        }

    }

    printf ("%d\n%d\n", id, es - len);

   //cout << "Time elapsed: " << 1.0 * clock() / CLOCKS_PER_SEC << " s.\n";

    return 0;

}

  

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