自适应辛普森积分hdu1724 Ellipse

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Ellipse

Time Limit: 1000/1000 MS (Java/Others)    Memory Limit: 32768/32768 K (Java/Others)
Total Submission(s): 2502    Accepted Submission(s): 1126

Problem Description
Math is important!! Many students failed in 2+2’s mathematical test, so let‘s AC this problem to mourn for our lost youth..
Look this sample picture:

技术分享图片


A ellipses in the plane and center in point O. the L,R lines will be vertical through the X-axis. The problem is calculating the blue intersection area. But calculating the intersection area is dull, so I have turn to you, a talent of programmer. Your task is tell me the result of calculations.(defined PI=3.14159265 , The area of an ellipse A=PI*a*b )
 
Input
Input may contain multiple test cases. The first line is a positive integer N, denoting the number of test cases below. One case One line. The line will consist of a pair of integers a and b, denoting the ellipse equation 技术分享图片, A pair of integers l and r, mean the L is (l, 0) and R is (r, 0). (-a <= l <= r <= a).
 
Output
For each case, output one line containing a float, the area of the intersection, accurate to three decimals after the decimal point.
 
Sample Input
2
2 1 -2 2
2 1 0 2
 
Sample Output
6.283
3.142
 
Author
威士忌

题意

给定椭圆的a,b,求椭圆在[L,R]范围内的面积,多组数据

题解

自适应辛普森积分裸题

直接对某个区间进行辛普森积分的话公式为(r - l )*(f(l )+4 * f(( l + r )/ 2)+f( r ))/ 6

然后如果直接拆分所求区间的话,如果遇到鬼畜的函数就会使误差变大

所以就有了自适应辛普森积分

就是说我们求这个区间的辛普森积分和左右部分的辛普森积分

如果相差小于eps的话,就直接返回答案

否则递归计算左右区间

就酱

代码

#include<cstdio>
#include<iostream>
#include<cmath>
#define db double
using namespace std;

db a,b,l,r;
int t;

db f(db x)
{
    return sqrt(b*b*(1.0-x*x/a/a));
}

db xin(db l,db r)
{
    db mid=(l+r)/2;
    return (r-l)*(f(l)+4*f(mid)+f(r))/6.0;
}

db getans(db x,db y,db eps,db val)
{
    db mid=(x+y)/2;
    db aa=xin(x,mid),bb=xin(mid,y);
    if(fabs(val-aa-bb)<=eps*15.0) return aa+bb+(aa+bb-val)/15.0;
    return getans(x,mid,eps/2.0,aa)+getans(mid,y,eps/2.0,bb);
}

int main()
{
    scanf("%d",&t);
    while(t--)
    {
        scanf("%lf%lf%lf%lf",&a,&b,&l,&r);
        printf("%.3lf\n",2.0*getans(l,r,0.00005,xin(l,r)));
    }
    return 0;
}

 








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