Quoit Design
Time Limit: 10000/5000 MS (Java/Others) Memory Limit: 65536/32768 K (Java/Others)
Total Submission(s): 34400 Accepted Submission(s): 8981
Problem Description
Have you ever played quoit in a playground? Quoit is a game in which flat rings are pitched at some toys, with all the toys encircled awarded.
In the field of Cyberground, the position of each toy is fixed, and the ring is carefully designed so it can only encircle one toy at a time. On the other hand, to make the game look more attractive, the ring is designed to have the largest radius. Given a configuration of the field, you are supposed to find the radius of such a ring.
Assume that all the toys are points on a plane. A point is encircled by the ring if the distance between the point and the center of the ring is strictly less than the radius of the ring. If two toys are placed at the same point, the radius of the ring is considered to be 0.
Input
The input consists of several test cases. For each case, the first line contains an integer N (2 <= N <= 100,000), the total number of toys in the field. Then N lines follow, each contains a pair of (x, y) which are the coordinates of a toy. The input is terminated by N = 0.
Output
For each test case, print in one line the radius of the ring required by the Cyberground manager, accurate up to 2 decimal places.
Sample Input
2
0 0
1 1
2
1 1
1 1
3
-1.5 0
0 0
0 1.5
0
Sample Output
/**
最近点对问题,时间复杂度为O(n*logn*logn)
*/
#include <iostream>
#include <cstdio>
#include <cstring>
#include <cmath>
#include <algorithm>
using namespace std;
const double INF = 1e20;
const int N = 100005;
struct Point
{
double x;
double y;
}point[N];
int n;
int tmpt[N];
bool cmpxy(const Point& a, const Point& b)
{
if(a.x != b.x)
return a.x < b.x;
return a.y < b.y;
}
bool cmpy(const int& a, const int& b)
{
return point[a].y < point[b].y;
}
double min(double a, double b)
{
return a < b ? a : b;
}
double dis(int i, int j)
{
return sqrt((point[i].x-point[j].x)*(point[i].x-point[j].x)
+ (point[i].y-point[j].y)*(point[i].y-point[j].y));
}
double Closest_Pair(int left, int right)
{
double d = INF;
if(left==right)
return d;
if(left + 1 == right)
return dis(left, right);
int mid = (left+right)>>1;
double d1 = Closest_Pair(left,mid);
double d2 = Closest_Pair(mid+1,right);
d = min(d1,d2);
int i,j,k=0;
//分离出宽度为d的区间
for(i = left; i <= right; i++)
{
if(fabs(point[mid].x-point[i].x) <= d)
tmpt[k++] = i;
}
sort(tmpt,tmpt+k,cmpy);
//线性扫描
for(i = 0; i < k; i++)
{
for(j = i+1; j < k && point[tmpt[j]].y-point[tmpt[i]].y<d; j++)
{
double d3 = dis(tmpt[i],tmpt[j]);
if(d > d3)
d = d3;
}
}
return d;
}
int main()
{
while(scanf("%d",&n),n)
{
if(n==0)
break;
for(int i = 0; i < n; i++)
scanf("%lf %lf",&point[i].x,&point[i].y);
sort(point,point+n,cmpxy);
printf("%.2lf\n",Closest_Pair(0,n-1)/2);
}
return 0;
}