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2015ACM/ICPC亚洲区长春站 E hdu 5531 Rebuild

时间:2015-11-04 21:18:07      阅读:363      评论:0      收藏:0      [点我收藏+]

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Rebuild

Time Limit: 2000/1000 MS (Java/Others)    Memory Limit: 262144/262144 K (Java/Others)
Total Submission(s): 446    Accepted Submission(s): 113


Problem Description
Archaeologists find ruins of Ancient ACM Civilization, and they want to rebuild it.

The ruins form a closed path on an x-y plane, which has n endpoints. The endpoints locate on (x1,y1)(x2,y2),(xn,yn) respectively. Endpoint i and endpoint i1 are adjacent for 1<in, also endpoint 1 and endpoint n are adjacent. Distances between any two adjacent endpoints are positive integers.

To rebuild, they need to build one cylindrical pillar at each endpoint, the radius of the pillar of endpoint i is ri. All the pillars perpendicular to the x-y plane, and the corresponding endpoint is on the centerline of it. We call two pillars are adjacent if and only if two corresponding endpoints are adjacent. For any two adjacent pillars, one must be tangent externally to another, otherwise it will violate the aesthetics of Ancient ACM Civilization. If two pillars are not adjacent, then there are no constraints, even if they overlap each other.

Note that ri must not be less than 0 since we cannot build a pillar with negative radius and pillars with zero radius are acceptable since those kind of pillars still exist in their neighbors.

You are given the coordinates of n endpoints. Your task is to find r1,r2,,rn which makes sum of base area of all pillars as minimum as possible.

技术分享


For example, if the endpoints are at (0,0)(11,0)(27,12)(5,12), we can choose (r1r2r3r4)=(3.757.2512.759.25). The sum of base area equals to 3.752π+7.252π+12.752π+9.252π=988.816. Note that we count the area of the overlapping parts multiple times.

If there are several possible to produce the minimum sum of base area, you may output any of them.
 

 

Input
The first line contains an integer t indicating the total number of test cases. The following lines describe a test case.

The first line of each case contains one positive integer n, the size of the closed path. Next n lines, each line consists of two integers (xi,yi) indicate the coordinate of the i-th endpoint.

1t100
3n104
|xi|,|yi|104
Distances between any two adjacent endpoints are positive integers.
 

 

Output
If such answer doesn‘t exist, then print on a single line "IMPOSSIBLE" (without the quotes). Otherwise, in the first line print the minimum sum of base area, and then print n lines, the i-th of them should contain a number ri, rounded to 2 digits after the decimal point.

If there are several possible ways to produce the minimum sum of base area, you may output any of them.
 

 

Sample Input
3 4 0 0 11 0 27 12 5 12 5 0 0 7 0 7 3 3 6 0 6 5 0 0 1 0 6 12 3 16 0 12
 

 

Sample Output
988.82 3.75 7.25 12.75 9.25 157.08 6.00 1.00 2.00 3.00 0.00 IMPOSSIBLE
 

 

Source
 
题意:按顺序给出一个多边形,以多边形的每个顶点为圆心作圆,使得任意两相邻点对应的圆相切,求所有圆面积总和的最小值。
分析:显然确定了第一个圆的半径就能确定其他的圆的半径。那么判断无解也变得简单。
列出面积与半径的式子发现是个二次函数。然后发现要分n的奇偶讨论。
所以是个三分的题目

2015ACM/ICPC亚洲区长春站 E hdu 5531 Rebuild

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原文地址:http://www.cnblogs.com/StupidBoy/p/4937223.html

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