hackerrank Project Euler #210: Obtuse Angled Triangles

时间:2021-02-17 12:01:05

传送门

做出一个好几个星期屯下来的题目的感觉就是一个字:

爽!

hackerrank  Project Euler #210: Obtuse Angled Triangles

上图的黄点部分就是我们需要求的点

两边的部分很好算

求圆的地方有一个优化,由于圆心是整数点,我们可以把圆分为下面几个部分,阴影部分最难算,最后乘就好了

hackerrank  Project Euler #210: Obtuse Angled Triangles

代码如下所示

#include <bits/stdc++.h>
using namespace std;
const int MAXN = 2005;
const int INF = 0x3f3f3f3f;
typedef long long ll;
typedef long double Double;
const Double tiny = 1e-20; ll Ceil(Double x) {
ll tt = ceil(x);
if(abs(tt - x) < tiny) tt ++;
return tt;
} ll Floor(Double x) {
ll tt = floor(x);
if(abs(tt - x) < tiny) tt --;
return tt;
} int main() {
#ifdef LOCAL
freopen("in.txt", "r", stdin);
#endif int r, a, b, n;
while(~scanf("%d %d %d %d", &r, &a, &b, &n)) {
Double leftEdge = Double(a*1.0)/b;
Double rightEdge = 2*n - Double(a*1.0)/b;
Double radiusTo2 = n - Double(a*1.0)/b;
if(leftEdge > rightEdge) swap(leftEdge, rightEdge);
ll sum = 0; Double leftDouble = r + 2*leftEdge;
int leftInt = ceil(leftDouble); Double rightDouble = r - 2*rightEdge;
int rightInt = ceil(rightDouble); sum += 1ll * (rightInt + leftInt) * r;
if(rightInt % 2) sum += r & 1;
if(leftInt % 2) sum += r & 1;
// printf("%d %d %lld\n", leftInt, rightInt, sum);
Double cirRadius = (rightEdge - leftEdge) / sqrt(2);
// printf("%.3f\n", cirRadius);
ll tmpSum = 0;
for(int i = Floor(cirRadius), edge = ceil(radiusTo2); i >= edge; --i) {
tmpSum += Floor(sqrt( (rightEdge - leftEdge)*(rightEdge - leftEdge) / 2 - 1ll*i*i));
// tmpSum += Floor(sqrt( cirRadius * cirRadius - 1ll*i*i));
}
sum += tmpSum * 8;
// printf("%lld\n", sum);
sum += 1ll * Floor(cirRadius) * 4;
// printf("%lld\n", sum);
// printf("%.9f\n", (rightEdge - leftEdge)/2.0);
sum += 1ll* Floor(radiusTo2) * Floor(radiusTo2) * 4; sum -= 1ll * Floor(n - leftEdge) * 2; printf("%lld\n", sum);
}
return 0;
}