Surround the Trees
Time Limit: 2000/1000 MS (Java/Others) Memory Limit: 65536/32768 K (Java/Others)
Total Submission(s): 7164 Accepted Submission(s): 2738
Problem Description
There are a lot of trees in an area. A peasant wants to buy a rope to surround all these trees. So at first he must know the minimal required length of the rope. However, he does not know how to calculate it. Can you help him?
The diameter and length of the trees are omitted, which means a tree can be seen as a point. The thickness of the rope is also omitted which means a rope can be seen as a line.
There are no more than 100 trees.
The diameter and length of the trees are omitted, which means a tree can be seen as a point. The thickness of the rope is also omitted which means a rope can be seen as a line.
There are no more than 100 trees.
Input
The input contains one or more data sets. At first line of each input data set is number of trees in this data set, it is followed by series of coordinates of the trees. Each coordinate is a positive integer pair, and each integer
is less than 32767. Each pair is separated by blank.
Zero at line for number of trees terminates the input for your program.
Zero at line for number of trees terminates the input for your program.
Output
The minimal length of the rope. The precision should be 10^-2.
Sample Input
9 12 7 24 9 30 5 41 9 80 7 50 87 22 9 45 1 50 7 0
Sample Output
243.06
题意是求将全部点围住的那个面积的最小周长。。可是要注意当仅仅有一个点时,也就输出0.00,当仅仅有两个点时。
。也就是两点间的距离。
。
这是凸包问题的入门题。。。(Orz) 用的是刘汝佳大白上的Andrew算法。。看他的代码实现。。简直丧心病狂。
。
Orz 。
。搞了好久的时间。。智商全然不够用。。
好吧。。由于是今天刚刚接触。
。所以一天也就弄了这么一道题。
。5555555.。
。泪流满面。。。
</pre><pre name="code" class="cpp">
#include<cstdio>
#include<cstring>
#include<iostream>
#include<algorithm>
#include<vector>
#include<queue>
#include<sstream>
#include<cmath>
#define f1(i, n) for(int i=0; i<n; i++)
#define f2(i, m) for(int i=1; i<=m; i++)
struct Point
{
double x, y;
};
void sort(Point *p, int n) //依照x从小到大排序(假设x同样, 依照y从小到大排序)
{
Point temp;
int i, j;
for(i=0; i<n-1; i++)
for(j=0; j<n-1-i; j++)
{
if(p[j].x>p[j+1].x)
{
temp = p[j];
p[j] = p[j+1];
p[j+1] = temp;
}
if(p[j].x==p[j+1].x && p[j].y>p[j+1].y)
{
temp = p[j];
p[j] = p[j+1];
p[j+1] = temp;
}
}
}
int cross(int x1, int y1, int x2, int y2) //看P[i]是否是在其内部。。
{
if(x1*y2-x2*y1<=0) //叉积小于0。说明p[i]在当前前进方向的右边。因此须要从凸包中删除c[m-1],c[m-2]
return 0;
else
return 1;
}
int convexhull(Point *p, Point *c, int n)
{
int i,m=0,k;
f1(i, n) //下凸包
{
while(m>1 && !cross(c[m-2].x-c[m-1].x,c[m-2].y-c[m-1].y,c[m-1].x-p[i].x,c[m-1].y-p[i].y))
m--;
c[m++]=p[i];
}
k=m;
for(i=n-2; i>=0; i--) //求上凸包
{
while(m>k && !cross(c[m-2].x-c[m-1].x,c[m-2].y-c[m-1].y,c[m-1].x-p[i].x,c[m-1].y-p[i].y))
m--;
c[m++]=p[i];
}
if(n>1)
m--;
return m;
}
double dis(Point a, Point b) //求两个凸包点之间的长度。。
{
return sqrt((a.x-b.x)*(a.x-b.x)+(a.y-b.y)*(a.y-b.y));
}
int main()
{
Point a[105], p[105];
int n, i, m;
double lenth;
while(scanf("%d",&n) &&n)
{
f1(i, n)
scanf("%lf %lf",&a[i].x, &a[i].y);
if(n==1)
{
printf("0.00
");
continue;
}
else if(n==2)
{
printf("%.2lf
", dis(a[0], a[1]));
continue;
}
sort(a, n);
m=convexhull(a, p, n);
lenth = 0;
f2(i, m)
lenth+=dis(p[i],p[i-1]);
printf("%.2lf
",lenth);
}
return 0;
}