本文深入探讨了算法、数据结构、IT技术领域的关键概念,包括排序算法、数据挖掘、深度学习等,同时覆盖了软件开发流程、版本控制、项目管理等多个方面。通过实例解析,帮助读者理解并掌握复杂技术的应用。
题目8 : Fractal
-
3 0.375 0.001 0.478
样例输出 -
-1 4 20
描述
This is the logo of PKUACM 2016. More specifically, the logo is generated as follows:
1. Put four points A0(0,0), B0(0,1), C0(1,1), D0(1,0) on a cartesian coordinate system.
2. Link A0B0, B0C0, C0D0, D0A0 separately, forming square A0B0C0D0.
3. Assume we have already generated square AiBiCiDi, then square Ai+1Bi+1Ci+1Di+1 is generated by linking the midpoints of AiBi, BiCi, CiDi and DiAi successively.
4. Repeat step three 1000 times.
Now the designer decides to add a vertical line x=k to this logo( 0<= k < 0.5, and for k, there will be at most 8 digits after the decimal point). He wants to know the number of common points between the new line and the original logo.
输入
In the first line there’s an integer T( T < 10,000), indicating the number of test cases.
Then T lines follow, each describing a test case. Each line contains an float number k, meaning that you should calculate the number of common points between line x = k and the logo.
输出
For each test case, print a line containing one integer indicating the answer. If there are infinity common points, print -1.
/*********************************************************************/
题意:以A0(0,0), B0(0,1), C0(1,1), D0(1,0)四个点组成的正方形,每次取边A0B0, B0C0, C0D0, D0A0的中点相连,能得到新的正方形,按此操作1000次,可以得到如图的标识
#include<cstdio>
#include<cstring>
#include<algorithm>
#include<vector>
#include<map>
#include<deque>
#include<functional>
#include<iterator>
#include<set>
#include<utility>
#include<stack>
#include<queue>
using namespace std;
#define maxn 22222
#define inf 1500000007
int main()
{
int i,j,k,n,m,T,p=1;
int s;
double x,y;
scanf("%d",&T);
while(T--)
{
scanf("%lf",&x);
y = 0.25;
s = 4;
if(x == 0)
{
printf("-1\n");
continue;
}
while(1)
{
if(x == y)
{
s = -1;
break;
}
if(x < y)
break;
y = (y + 0.5)/2;
s = s + 4;
}
printf("%d\n",s);
}
return 0;
}
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