zoukankan      html  css  js  c++  java
  • acdream 1414 Geometry Problem

    Geometry Problem

    Time Limit: 2000/1000MS (Java/Others) Memory Limit: 128000/64000KB (Java/Others)     Special Judge

    Problem Description

          Peter is studying in the third grade of elementary school. His teacher of geometry often gives him difficult home tasks.
          At the last lesson the students were studying circles. They learned how to draw circles with compasses. Peter has completed most of his homework and now he needs to solve the following problem. He is given two segments. He needs to draw a circle which intersects interior of each segment exactly once.
          The circle must intersect the interior of each segment, just touching or passing through the end of the segment is not satisfactory.
          Help Peter to complete his homework.
     

    Input

          The input file contains several test cases. Each test case consists of two lines.
          The first line of the test case contains four integer numbers x11, y11, x12, y12— the coordinates of the ends of the first segment. The second line contains x21. y21, x22, y22 and describes the second segment in the same way.
          Input is followed by two lines each of which contains four zeroes these lines must not be processed.
          All coordinates do not exceed 102 by absolute value.

    Output

          For each test case output three real numbers — the coordinates of the center and the radius of the circle. All numbers in the output file must not exceed 1010 by their absolute values. The jury makes all comparisons of real numbers with the precision of 10-4.

    Sample Input

    0 0 0 4
    1 0 1 4
    0 0 0 0
    0 0 0 0

    Sample Output

    0.5 0 2

    Hint



    题解及代码:

          这道题目的做法 应该挺多的吧。我的解法不知道是不是对的,可是能AC(个人觉得是对的)。

         首先我们从两条直线各取一个点。要求:两点的距离最短。之后我们把这两个点的中点作为圆的圆心,把圆心到两点的距离求出来记为r,然后求出圆心到另外两直线端点的距离r1,r2,半径R=(r+min(r1,r2))/2.0。即可了。


    代码:

    #include <iostream>
    #include <cstdio>
    #include <cmath>
    using namespace std;
    
    struct Point
    {
        double x,y;
        Point(){}
        Point(double X,double Y):x(X),y(Y) {}
    }t;
    
    struct Line
    {
        Point l,r;
    }a,b;
    
    double dis(Point a,Point b)
    {
        return sqrt((a.x-b.x)*(a.x-b.x)+(a.y-b.y)*(a.y-b.y));
    }
    
    void init()
    {
        double Dis[5];
    
        Dis[1]=dis(a.l,b.l);
        Dis[2]=dis(a.l,b.r);
        Dis[3]=dis(a.r,b.l);
        Dis[4]=dis(a.r,b.r);
    
        int p=1;
        for(int i=2;i<=4;i++)
        {
            if(Dis[i]<Dis[p]) p=i;
        }
    
        if(p==2)
        {
            t=b.r;b.r=b.l;b.l=t;
        }
        if(p==3)
        {
            t=a.l;a.l=a.r;a.r=t;
        }
        if(p==4)
        {
            t=a.l;a.l=a.r;a.r=t;
            t=b.r;b.r=b.l;b.l=t;
        }
    }
    
    int main()
    {
        while(scanf("%lf%lf%lf%lf",&a.l.x,&a.l.y,&a.r.x,&a.r.y))
        {
            scanf("%lf%lf%lf%lf",&b.l.x,&b.l.y,&b.r.x,&b.r.y);
    
            if(!a.l.x&&!a.l.y&&!a.r.x&&!a.r.y&&!b.l.x&&!b.l.y&&!b.r.x&&!b.r.y)
                break;
    
            init();
    
            double x,y,r;
            x=(a.l.x+b.l.x)/2.0;
            y=(a.l.y+b.l.y)/2.0;
            r=dis(Point(x,y),a.l);
    
            double r1,r2;
            r1=dis(Point(x,y),a.r);
            r2=dis(Point(x,y),b.r);
    
            r=r+min(r1,r2);
            r/=2.0;
            printf("%.5lf %.5lf %.5lf
    ",x,y,r);
        }
        return 0;
    }
    







  • 相关阅读:
    oracle中常用的函数
    请求转发和URL重定向的原理和区别
    servlet的生命周期和servlet的继承关系
    Jdbc来操作事物 完成模拟银行的转账业务
    Map的嵌套 练习
    正则表达式练习
    学习 day4 html 盒子模型
    学习day03
    学习day02
    学习day01
  • 原文地址:https://www.cnblogs.com/jzssuanfa/p/7150618.html
Copyright © 2011-2022 走看看