Description
致力于建设全国示范和谐小村庄的H村村长dadzhi,决定在村中建立一个瞭望塔,以此加强村中的治安。我们将H村抽象为一维的轮廓。如下图所示 我们可以用一条山的上方轮廓折线(x1, y1), (x2, y2), …. (xn, yn)来描述H村的形状,这里x1 < x2 < …< xn。瞭望塔可以建造在[x1, xn]间的任意位置, 但必须满足从瞭望塔的顶端可以看到H村的任意位置。可见在不同的位置建造瞭望塔,所需要建造的高度是不同的。为了节省开支,dadzhi村长希望建造的塔高度尽可能小。请你写一个程序,帮助dadzhi村长计算塔的最小高度。
Input
第一行包含一个整数n,表示轮廓折线的节点数目。接下来第一行n个整数, 为x1 ~ xn. 第三行n个整数,为y1 ~ yn。
Output
仅包含一个实数,为塔的最小高度,精确到小数点后三位。
Sample Input
【输入样例一】
6
1 2 4 5 6 7
1 2 2 4 2 1
【输入样例二】
4
10 20 49 59
0 10 10 0
6
1 2 4 5 6 7
1 2 2 4 2 1
【输入样例二】
4
10 20 49 59
0 10 10 0
Sample Output
【输出样例一】
1.000
【输出样例二】
14.500
1.000
【输出样例二】
14.500
HINT
对于100%的数据, N ≤ 300,输入坐标绝对值不超过106,注意考虑实数误差带来的问题。
Source
半平面交。对于每条线段,所能看到其整条线段的点一定的在其所延长直线的上方,因此我们可以对所以直线求一次半平面交。
然后,最优解一定在线段端点处或半平面交所得多边形的顶点处。
#include<iostream>
#include<algorithm>
#include<cmath>
#include<cstdio>
#include<cstdlib>
#include<cstring>
using namespace std; #define eps (1e-6)
#define oo ((double)(1ll<<50))
#define maxn 310
int n,m,tot,cnt;
double ans = oo;
struct NODE
{
double x,y;
friend inline NODE operator + (const NODE &p,const NODE &q) { return (NODE) {p.x+q.x,p.y+q.y}; }
friend inline NODE operator - (const NODE &p,const NODE &q) { return (NODE) {p.x-q.x,p.y-q.y}; }
friend inline NODE operator * (const NODE &p,const double &q) { return (NODE) {p.x*q,p.y*q}; }
friend inline double operator /(const NODE &p,const NODE &q) { return p.x*q.y-p.y*q.x; }
inline double alpha() { return atan2(y,x); }
}mou[maxn],pol[maxn],pp[maxn];
struct LINE
{
NODE p,v; double slop;
inline void maintain() { slop = v.alpha(); }
friend inline bool operator <(const LINE &l1,const LINE &l2) { return l1.slop < l2.slop; }
}lines[maxn],qq[maxn];
struct SCAN
{
double x,y; int id; bool sign;
friend inline bool operator <(const SCAN &a,const SCAN &b)
{
if (a.x != b.x) return a.x < b.x;
else return a.sign < b.sign;
}
}bac[maxn]; inline bool ol(const LINE &l,const NODE &p) { return l.v/(p-l.p) > ; } inline NODE cp(const LINE &a,const LINE &b)
{
NODE u = a.p - b.p;
double t = (b.v/u)/(a.v/b.v);
return a.p+a.v*t;
} inline bool para(const LINE &a,const LINE &b)
{
return fabs(a.v/b.v) < eps;
} inline void ready()
{
for (int i = ;i < n;++i)
{
lines[++tot] = (LINE) {mou[i],(mou[i+]-mou[i])*1e-};
lines[tot].maintain();
}
lines[++tot] = (LINE) {(NODE) {-oo,},(NODE){,-0.001}};
lines[tot].maintain(); lines[++tot] = (LINE) {(NODE) {,oo},(NODE){-0.001,}};
lines[tot].maintain(); lines[++tot] = (LINE) {(NODE) {oo,},(NODE){,0.001}};
lines[tot].maintain(); lines[++tot] = (LINE) {(NODE) {,-oo},(NODE){0.001,}};
lines[tot].maintain();
} inline int half_plane_intersection()
{
sort(lines+,lines+tot+);
int head,tail;
qq[head = tail = ] = lines[];
for (int i = ;i <= tot;++i)
{
while (head < tail&&!ol(lines[i],pp[tail-])) --tail;
while (head < tail&&!ol(lines[i],pp[head])) ++head;
qq[++tail] = lines[i];
if (para(qq[tail],qq[tail-]))
{
tail--;
if (ol(qq[tail],lines[i].p)) qq[tail] = lines[i];
}
if (head < tail) pp[tail-] = cp(qq[tail],qq[tail-]);
}
while (head < tail && !ol(qq[head],pp[tail-])) --tail;
if (tail-head <= ) return ;
pp[tail] = cp(qq[tail],qq[head]);
for (int i = head;i <= tail;++i) pol[++m] = pp[i];
pol[] = pol[m];
return m;
} inline void work()
{
int all = ;
for (int i = ;i <= n;++i)
bac[++all] = (SCAN) { mou[i].x,mou[i].y,i,false };
for (int i = ;i <= m;++i)
if (pol[i].x >= mou[].x&&pol[i].x <= mou[n].x)
bac[++all] = (SCAN) { pol[i].x,pol[i].y,i,true };
sort(bac+,bac+all+);
int s1,s2;
for (int i = ;i <= all;++i) if (bac[i].sign) { s1 = bac[i].id-; break; }
for (int i = ;i <= all;++i)
{
LINE l = (LINE) {(NODE) {bac[i].x,},(NODE) {,}},l1; NODE p;
if (!bac[i].sign)
{
l1= (LINE) {pol[s1],pol[s1+]-pol[s1]};
s2 = bac[i].id;
}
else
{
l1= (LINE) {mou[s2],mou[s2+]-mou[s2]};
s1 = bac[i].id;
}
p = cp(l,l1);
ans = min(ans,fabs(p.y-bac[i].y));
}
} int main()
{
freopen("1038.in","r",stdin);
freopen("1038.out","w",stdout);
scanf("%d ",&n);
for (int i = ;i <= n;++i) scanf("%lf",&mou[i].x);
for (int i = ;i <= n;++i) scanf("%lf",&mou[i].y);
ready();
half_plane_intersection();
work();
printf("%.3lf",ans);
fclose(stdin); fclose(stdout);
return ;
}