本文介绍了一种算法,用于确定一只蚂蚁按照特定蛇形路径走过M*M棋盘上每个格子的位置。通过分析蚂蚁行走的规律,文章提供了一个C语言实现的例子,能够计算在任意给定时间内蚂蚁所处的具体坐标。
Background
One day, an ant called Alice came to an M*M chessboard. She wanted to go around all the grids. So she began to walk along the chessboard according to this way: (you can assume that her speed is one grid per second)
At the first second, Alice was standing at (1,1). Firstly she went up for a grid, then a grid to the right, a grid downward. After that, she went a grid to the right, then two grids upward, and then two grids to the left…in a word, the path was like a snake.
For example, her first 25 seconds went like this:
( the numbers in the grids stands for the time when she went into the grids)
|
25 |
24 |
23 |
22 |
21 |
|
10 |
11 |
12 |
13 |
20 |
|
9 |
8 |
7 |
14 |
19 |
|
2 |
3 |
6 |
15 |
18 |
|
1 |
4 |
5 |
16 |
17 |
5
4
3
2
1
1 2 3 4 5
At the 8th second , she was at (2,3), and at 20th second, she was at (5,4).
Your task is to decide where she was at a given time.
(you can assume that M is large enough)
Input
Input file will contain several lines, and each line contains a number N(1<=N<=2*10^9), which stands for the time. The file will be ended with a line that contains a number 0.
Output
For each input situation you should print a line with two numbers (x, y), the column and the row number, there must be only a space between them.
Sample Input
8
20
25
0
Sample Output
2 3
5 4
1 5
此题明白了过程,程序就会写出 :
#include <stdio.h>
#include <math.h>
int main()
{
long long int n,s,t,X,Y;
while(scanf("%lld",&t)!=EOF)
{
if(t==0)
{
break;
}
if(t<4)
{
if(t==1)
{
X=1;Y=1;
}else if(t==2)
{
X=2;Y=1;
}else if(t==3)
{
X=2;Y=2;
}
}else
{
n=2;
while(n*n<t)
{
n+=2;
}
if(n*n==t)
{
X=1;Y=n;
}else
{
n-=2;
X=1;Y=n+1;
s=t-n*n;
n+=1;
if(s<=(2*n-1))
{
if(s<=n)
{
X=s;
}else
{
X=n;
s-=n;
Y-=s;
}
}else
{
X=n;Y=1;
s-=2*n-1;
n+=1;
if(s<=n)
{
X+=1;
Y=s;
}else
{
X+=1;
s-=n;
Y=n;
X-=s;
}
}
}
}
printf("%lld %lld\n",Y,X);
}
return 0;
}
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