Skycity
Time Limit: 2000/1000 MS (Java/Others) Memory Limit: 32768/32768 K (Java/Others)
Total Submission(s): 269 Accepted Submission(s): 63
Problem Description
The world's new tallest building is going to be built in Changsha, which will be called as "Skycity". The Skycity is going to be built as a circular truncated cone, radius of its bottom is marked as R, and radius of its top is marked as r, height of the building is marked as H, and there will be F floors with exact the same height in the whole building.
After construction of the building's skeleton, the construction team is going to construct the curtain wall using thousands of glass panes. The curtain wall is installed in each floor. When installing the curtain wall in a floor, first the construction team will measure the radius r' of the ceiling, then they will install the glass curtain wall as a regular prism which can exactly contain the ceiling circle. When constructing the glass curtain wall, all the glass pane has a minimum area requirement S, and amount of glass usage should be as little as possible.
As all the glass has exact the same thickness, so we can calculate the consumption of each glass pane as its area. Could you calculate the minimum total glass consumption?
After construction of the building's skeleton, the construction team is going to construct the curtain wall using thousands of glass panes. The curtain wall is installed in each floor. When installing the curtain wall in a floor, first the construction team will measure the radius r' of the ceiling, then they will install the glass curtain wall as a regular prism which can exactly contain the ceiling circle. When constructing the glass curtain wall, all the glass pane has a minimum area requirement S, and amount of glass usage should be as little as possible.
As all the glass has exact the same thickness, so we can calculate the consumption of each glass pane as its area. Could you calculate the minimum total glass consumption?
Input
There will be multiple test cases. In each test case, there will be 5 integers R, r (10 ≤ r < R ≤ 10000), H (100 ≤ H ≤ 10000), F (10 ≤ F ≤ 1000) and S (1 ≤ S <
× r × H ÷ F) in one line.
× r × H ÷ F) in one line.Output
For each test case, please output the minimum total glass consumption, an absolute error not more than 1e-3 is acceptable.
Sample Input
50 10 800 120 5
300 50 2000 500 10
Sample Output
149968.308
2196020.459
Source
这条是2013年长沙的题目
二分的题目就是卡姿势,同浮点误差~
二分姿势稍有不当就WA
求第 i 层的圆的半径一层层的加又WA , 要直接用公式 ri = add * i + r ;
#include <iostream> #include <string.h> #include <stdio.h> #include <algorithm> #include <cmath> using namespace std; const double PI = acos(-1.0); const double eps = 1e-8; inline double getlen(int n,double r) { return 2.0 * r * tan( PI / n ); } int main() { ios::sync_with_stdio(0); #ifdef LOCAL freopen("in.txt","r",stdin); #endif // LOCAL double R,r,H,F,S; while( cin >> R >> r >> H >> F >> S ){ double h = H / F , ans = 0 , add = ( R - r ) / F , ri ; for( int i = 0 ; i < F ; i++ ) { ri = add * i + r ; int ll = 3 ,rr = 100000 ; double area ; int num; while( ll <= rr ) { int mm = ( ll + rr ) >> 1; double tmp = getlen( mm , ri ) * h; if( S + eps < tmp ){ area = tmp , num = mm; ll = mm + 1; } else{ rr = mm - 1; }
} ans += num * area; } printf("%.3lf ",ans); } return 0; }