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poj 1328 区间,贪心

2019-11-11 07:24:48
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        Assume the coasting is an infinite straight line. Land is in one side of coasting, sea in the other. Each small island is a point locating in the sea side. And any radar installation, locating on the coasting, can only cover d distance, so an island in the sea can be covered by a radius installation, if the distance between them is at most d.We use Cartesian coordinate system, defining the coasting is the x-axis. The sea side is above x-axis, and the land side below. Given the position of each island in the sea, and given the distance of the coverage of the radar installation, your task is to write a PRogram to find the minimal number of radar installations to cover all the islands. Note that the position of an island is represented by its x-y coordinates.
Figure A Sample Input of Radar Installations
InputThe input consists of several test cases. The first line of each case contains two integers n (1<=n<=1000) and d, where n is the number of islands in the sea and d is the distance of coverage of the radar installation. This is followed by n lines each containing two integers representing the coordinate of the position of each island. Then a blank line follows to separate the cases.The input is terminated by a line containing pair of zeros OutputFor each test case output one line consisting of the test case number followed by the minimal number of radar installations needed. "-1" installation means no solution for that case.Sample Input
3 21 2-3 12 11 20 20 0Sample Output
Case 1: 2Case 2: 1

给定海岛个数、雷达半径以及各海岛坐标,求能覆盖所有海岛的最小雷达数。

贪心策略依然是从左往右,尽量让每颗雷达覆盖最大岛屿数。

对于每个点先求出以该点为圆心,d为半径的圆在x轴上的交点,左右交点就是覆盖此海岛的雷达所在的区间。

对于每个区间,按照区间的右端点排序。

从最左边开始贪心,对于第一个右端点x0,所有左端点<x0的海岛都会与x0共用一个雷达

#include<iostream>#include<cmath>#include<cstring>#include<cstdio>#include<algorithm>#define inf 0x3f3f3f3f#define ll long longusing namespace std;struct node{    int x,y;}q[1010];struct xnode{    double l,r;}xn[1010];bool cmp(xnode a,xnode b){    if(a.r==b.r)        return a.l<b.l;    return a.r<b.r;}bool visited[1010];int main(){    int n,d;    int kcase=1;    while(cin>>n>>d)    {        if(n==0)            return 0;        bool flag=0;        for(int i=1;i<=n;i++)        {            cin>>q[i].x>>q[i].y;            if(q[i].y>d)                flag=1;        }        if(flag==1||d==0)        {            cout<<"Case "<<kcase++<<": "<<-1<<endl;            continue;        }        for(int i=1;i<=n;i++)        {            double len=sqrt(1.0*d*d-q[i].y*q[i].y);            xn[i].l=q[i].x-len;            xn[i].r=q[i].x+len;        }        sort(xn+1,xn+n+1,cmp);        int ans=0;        memset(visited,0,sizeof(visited));        for(int i=1;i<=n;i++)            if(!visited[i])        {            visited[i]=1;            ans++;            for(int j=i+1;j<=n;j++)                if(!visited[j]&&xn[j].l<=xn[i].r)                    visited[j]=1;        }         cout<<"Case "<<kcase++<<": "<<ans<<endl;    }    return 0;}


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