[leetcode] 1545. Find Kth Bit in Nth Binary String

[leetcode] 1545. Find Kth Bit in Nth Binary String

Description

Given two positive integers n and k, the binary string Sn is formed as follows:

S1 = “0”Si = Si-1 + “1” + reverse(invert(Si-1)) for i > 1

Where + denotes the concatenation operation, reverse(x) returns the reversed string x, and invert(x) inverts all the bits in x (0 changes to 1 and 1 changes to 0).

For example, the first 4 strings in the above sequence are:

S1 = “0”S2 = “011”S3 = “0111001”S4 = “011100110110001”

Return the kth bit in Sn. It is guaranteed that k is valid for the given n.

Example 1:

Input: n = 3, k = 1Output: "0"Explanation: S3 is "0111001". The first bit is "0".

Example 2:

Input: n = 4, k = 11Output: "1"Explanation: S4 is "011100110110001". The 11th bit is "1".

Example 3:

Input: n = 1, k = 1Output: "0"

Example 4:

Input: n = 2, k = 3Output: "1"

Constraints:

1 <= n <= 201 <= k <= 2n - 1

分析

题目的意思是：给定变换规则，求第N次变换后第K个比特位的值。题目中的n比较小，思路比较直接，直接模拟找到答案。看了一下别人的实现，思路跟我差不多。

代码

class Solution: def solve(self,s): t=[] for ch in s: if(ch=='1'): t.append('0') else: t.append('1') t.reverse() s=s+'1'+''.join(t) return s def findKthBit(self, n: int, k: int) -> str: s='0' for i in range(n): s=self.solve(s) return s[k-1]

参考文献

​​[LeetCode] Simple Python Solution with clean and understandable code​​

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