UVA 11123 - Counting Trapizoid(计数问题+容斥)
时间:2014-07-01 09:11:48
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UVA 11123 - Counting Trapizoid
题意:给定一些点,不重复,求出一共有几个梯形
思路:先把所有两点组成直线求出来,然后排序,斜率相同的C2n个,然后再扣除掉重叠的直线情况和长度相等情况(这样为平行四边形或矩形),由于扣除的时候会重复扣掉重叠和相等,所以在加回来,这是容斥原理。
代码:
#include <stdio.h> #include <string.h> #include <math.h> #include <algorithm> using namespace std; const double eps = 1e-9; const double pi = acos(-1.0); const int N = 205; int n, ln; struct Point { double x, y; } p[N]; struct Line { double l, a, b, c, k, y; } l[N * N]; bool cmpk(Line a, Line b) { return a.k < b.k; } bool cmpl(Line a, Line b) { return a.l < b.l; } bool cmpy(Line a, Line b) { if (fabs(a.y - b.y) < eps) return a.l < b.l; return a.y < b.y; } Line build(Point a, Point b) { Line ans; ans.l = sqrt((a.x - b.x) * (a.x - b.x) + (a.y - b.y) * (a.y - b.y)); ans.a = b.y - a.y, ans.b = a.x - b.x, ans.c = ans.a * a.x + ans.b * a.y; ans.k = atan2(ans.a, -ans.b); if (ans.k < 0 || fabs(ans.k) < eps) ans.k += pi; if (fabs(ans.b) < eps) ans.y = ans.c / ans.a; else ans.y = ans.c / ans.b; return ans; } long long C(long long n) { return n * (n - 1) / 2; } long long solve() { sort(l, l + ln, cmpk); long long ans = 0, cnt = 0; Line save[N * N]; int sn = 0; l[ln++].k = -1; cnt = 0; for (int i = 0; i < ln; i++) { if (!i || fabs(l[i].k - l[i - 1].k) < eps) { save[sn++] = l[i]; cnt++; continue; } ans += C(cnt); cnt = 0; sort(save, save + sn, cmpl); for (int j = 0; j < sn; j++) { if (!j || fabs(save[j - 1].l - save[j].l) < eps) { cnt++; continue; } ans -= C(cnt); cnt = 1; } ans -= C(cnt); cnt = 0; sort(save, save + sn, cmpy); for (int j = 0; j < sn; j++) { if (!j || fabs(save[j - 1].y - save[j].y) < eps) { cnt++; continue; } ans -= C(cnt); cnt = 1; } ans -= C(cnt); cnt = 0; for (int j = 0; j < sn; j++) { if (!j || (fabs(save[j - 1].y - save[j].y) < eps && fabs(save[j - 1].l - save[j].l) < eps)) { cnt++; continue; } ans += C(cnt); cnt = 1; } ans += C(cnt); sn = 0; save[sn++] = l[i]; cnt = 1; } return ans; } int main() { int cas = 0; while (~scanf("%d", &n) && n) { ln = 0; for (int i = 0; i < n; i++) scanf("%lf%lf", &p[i].x, &p[i].y); for (int i = 0; i < n; i++) { for (int j = i + 1; j < n; j++) { l[ln++] = build(p[i], p[j]); } } printf("Case %d: %lld\n", ++cas, solve()); } return 0; }
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