USACO fc 构造凸包
本题的意思就是构造一个凸包然后求出凸包的周长。代码如下:
/* ID: m1500293 LANG: C++ PROG: fc */ #include <cstdio> #include <cstring> #include <algorithm> #include <cmath> #include <iostream> #include <vector> using namespace std; double eps = 1e-10; struct P { double x, y; P(double x=0, double y=0):x(x), y(y) {} double add(double a, double b){ if(abs(a+b)<eps*(abs(a)+abs(b))) return 0; return a+b; } P operator + (P p){ return P(add(x, p.x), add(y, p.y)); } P operator - (P p){ return P(add(x, -p.x), add(y, -p.y)); } P operator *(double d){ return P(x*d, y*d); } double dot(P p){ //点积 return add(x*p.x, y*p.y); } double det(P p){ //差积 return add(x*p.y, -y*p.x); } }ps[10000 + 100]; double dist(P a, P b) { return sqrt((b-a).dot(b-a)); } bool cmp_x(const P& p, const P& q) { if(p.x!=q.x) return p.x < q.x; return p.y < q.y; } vector<P> convex_hull(P *ps, int n) { sort(ps, ps+n, cmp_x); int k = 0; //凸包顶点数 vector<P> qs(n*2); //构造凸包的下侧 for(int i=0; i<n; i++) { while(k>1 && (qs[k-1]-qs[k-2]).det(ps[i]-qs[k-1])<=0) k--; qs[k++] = ps[i]; } //构造凸包的上侧 for(int i=n-2,t=k; i>=0; i--) { while(k>t && (qs[k-1]-qs[k-2]).det(ps[i]-qs[k-1])<=0) k--; qs[k++] = ps[i]; } qs.resize(k-1); return qs; } vector<P> hulls; int main() { freopen("fc.in", "r", stdin); freopen("fc.out", "w", stdout); int n; scanf("%d", &n); for(int i=0; i<n; i++) { double x, y; scanf("%lf%lf", &x, &y); ps[i] = P(x, y); } hulls = convex_hull(ps, n); double dis = 0; for(int i=1; i<hulls.size(); i++) dis += dist(hulls[i], hulls[i-1]); dis += dist(hulls[hulls.size()-1], hulls[0]); printf("%.2f\n", dis); return 0; }