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➤微信公众号:山青咏芝(shanqingyongzhi)
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There is a special square room with mirrors on each of the four walls. Except for the southwest corner, there are receptors on each of the remaining corners, numbered 0
, 1
, and 2
.
The square room has walls of length p
, and a laser ray from the southwest corner first meets the east wall at a distance q
from the 0
th receptor.
Return the number of the receptor that the ray meets first. (It is guaranteed that the ray will meet a receptor eventually.)
Example 1:
Input: p = 2, q = 1
Output: 2
Explanation: The ray meets receptor 2 the first time it gets reflected back to the left wall.
Note:
1 <= p <= 1000
0 <= q <= p
有一个特殊的正方形房间,每面墙上都有一面镜子。除西南角以外,每个角落都放有一个接受器,编号为 0
, 1
,以及 2
。
正方形房间的墙壁长度为 p
,一束激光从西南角射出,首先会与东墙相遇,入射点到接收器 0
的距离为 q
。
返回光线最先遇到的接收器的编号(保证光线最终会遇到一个接收器)。
示例:
输入: p = 2, q = 1 输出: 2 解释: 这条光线在第一次被反射回左边的墙时就遇到了接收器 2 。
提示:
1 <= p <= 1000
0 <= q <= p
1 class Solution { 2 func mirrorReflection(_ p: Int, _ q: Int) -> Int { 3 var p = p 4 var q = q 5 while (p % 2 == 0 && q % 2 == 0) 6 { 7 p /= 2 8 q /= 2 9 } 10 if p % 2 == 0 11 { 12 return 2 13 } 14 else if q % 2 == 0 15 { 16 return 0 17 } 18 else 19 { 20 return 1 21 } 22 } 23 }
4ms
1 final class Solution { 2 func mirrorReflection(_ p: Int, _ q: Int) -> Int { 3 var curQ = 0 4 var count = 0 5 var opposite = false 6 while curQ != p { 7 curQ &+= q 8 count &+= 1 9 if curQ > p { 10 curQ &-= p 11 opposite = !opposite 12 } 13 } 14 if opposite { return 0 } 15 return count % 2 == 1 ? 1 : 2 16 } 17 }
8ms
1 class Solution { 2 func mirrorReflection(_ p: Int, _ q: Int) -> Int { 3 var n=1 4 while Double(n*q)/Double(p)-Double(n*q/p) != 0 { 5 n+=1 6 } 7 if Double(n*q/p)/Double(2) - Double(n*q/(2*p))==0 { 8 return Double(n)/Double(2) - Double(n/2)==0 ? -1:0 9 }else{ 10 return Double(n)/Double(2) - Double(n/2)==0 ? 2:1 11 } 12 } 13 }