rectangle

D - rectangle

Given two rectangles and the coordinates of two points on the diagonals of each rectangle,you have to calculate the area of the intersected part of two rectangles. its sides are parallel to OX and OY .

InputInput The first line of input is 8 positive numbers which indicate the coordinates of four points that must be on each diagonal.The 8 numbers are x1,y1,x2,y2,x3,y3,x4,y4.That means the two points on the first rectangle are(x1,y1),(x2,y2);the other two points on the second rectangle are (x3,y3),(x4,y4).OutputOutput For each case output the area of their intersected part in a single line.accurate up to 2 decimal places.Sample Input

1.00 1.00 3.00 3.00 2.00 2.00 4.00 4.00
5.00 5.00 13.00 13.00 4.00 4.00 12.50 12.50

Sample Output

1.00
56.25

解题思路：我先把输入的对角线的点全部变成副对角线，然后把下图中x1,y1,x2,y2找出来，相互比较计算出覆盖的矩形面积。

我的代码 ：

#include
#include
#include
#include
#include
#include
using namespace std;
struct point
{
    double x,y;
};
int main()
{
    point a, b, c, d;
    while (cin>>a.x>>a.y>>b.x>>b.y>>c.x>>c.y>>d.x>>d.y)
    {
        double x1, y1, x2, y2;
        if (a.x > b.x)
            swap (a.x , b.x);
        if (c.x > d.x)
            swap (c.x , d.x);
        if (a.y > b.y)
            swap (a.y , b.y);
        if (c.y > d.y)
            swap (c.y , d.y);
        x1 = max(a.x , c.x);
        x2 = min(b.x , d.x);
        y1 = min(b.y , d.y);
        y2 = max(a.y , c.y);
        double l , w;
        if (x2 < x1 || y2 > y1)
            cout << "0.00" << endl;
       else{
        l = x2 - x1;
        w = y1 - y2;
        printf("%.2lf\n", l*w);
       }
    }
    return 0;
}