mthoutai

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Problem Description
Xiao Ming is traveling around several cities by train. And the time on the train is very boring, so Xiao Ming will use the mobile Internet. We all know that mobile phone receives the signal from base station and it will change the base station when moving on the train. Xiao Ming would like to know how many times the base station will change from city A to city B.
Now, the problem is simplified. We assume the route of train is straight, and the mobile phone will receive the signal from the nearest base station.
 

Input
Multiple cases. For each case, The first line: N(3<=N<=50) - the number of cities, M(2<=M<=50) - the number of base stations. Then there are N cities with coordinates of (x, y) and M base stations with coordinates of (x, y) - (0<=x<=1000, 0<=y<=1000, both x and y is integer).Then there is a number : K, the next, there are K queries, for each query, each line, there are two numbers: a, b.
 

Output
For each query, tell Xiao Ming how many times the base station will change from city a to city b.
 

Sample Input
4 4 0 2 1 3 1 0 2 0 1 2 1 1 2 2 2 1 4 1 2 1 3 1 4 3 4
 

Sample Output
0 1 2 1
Hint
The train way from a to b will not cross the point with the same distance from more than 2 base stations. (For the distance d1 and d2, if fabs(d1-d2)<1e-7, we think d1 == d2). And every city exactly receive signal from just one base station.
 

Source


思路:每次获取中点的近期的基站的id,id跟哪边不一样就往哪边递归查找。


#include <stdio.h>
#define INF 99999999

int n,m,ans;
bool vis[50];
double sx[50],sy[50],ex[50],ey[50];

int get(double x,double y)//获取离该点近期的基站
{
    double mn=INF;
    int id,i;

    for(i=0;i<m;i++)
    {
        if((x-ex[i])*(x-ex[i])+(y-ey[i])*(y-ey[i])<mn)
        {
            mn=(x-ex[i])*(x-ex[i])+(y-ey[i])*(y-ey[i]);
            id=i;
        }
    }

    return id;
}

void dfs(int l,int r,double lx,double ly,double rx,double ry)//递归查找,每次获取中点的近期的基站的id,id跟哪边不一样就往哪边找。
{
    if((lx-rx)*(lx-rx)+(ly-ry)*(ly-ry)<1e-14) return;

    double x=(lx+rx)/2.0;
    double y=(ly+ry)/2.0;

    int id=get(x,y);

    if(!vis[id])
    {
        vis[id]=1;
        ans++;
    }

    if(id!=l) dfs(l,id,lx,ly,x,y);

    if(id!=r) dfs(id,r,x,y,rx,ry);
}

int main()
{
    int i,q,id1,id2;
    int from,to;

    while(~scanf("%d%d",&n,&m))
    {
        for(i=0;i<n;i++) scanf("%lf%lf",&sx[i],&sy[i]);

        for(i=0;i<m;i++) scanf("%lf%lf",&ex[i],&ey[i]);

        scanf("%d",&q);

        while(q--)
        {
            scanf("%d%d",&from,&to);

            id1=get(sx[from-1],sy[from-1]);
            id2=get(sx[to-1],sy[to-1]);

            if(id1==id2) printf("0\n");
            else
            {
                for(i=0;i<m;i++) vis[i]=0;
                vis[id1]=1;
                vis[id2]=1;
                ans=1;
                dfs(id1,id2,sx[from-1],sy[from-1],sx[to-1],sy[to-1]);
                printf("%d\n",ans);
            }
        }
    }
}


posted on 2017-07-05 17:23  mthoutai  阅读(248)  评论(0编辑  收藏  举报