力扣挑战赛第15天-No.190颠倒二进制位

技术
Word count: 296   |   Reading time≈ 1 min

题目描述

颠倒给定的 32 位无符号整数的二进制位。

示例:

输入: 00000010100101000001111010011100
输出: 00111001011110000010100101000000
解释: 输入的二进制串 00000010100101000001111010011100 表示无符号整数 43261596,
     因此返回 964176192,其二进制表示形式为 00111001011110000010100101000000。

注意:

输入是一个长度为 32 的二进制字符串

解法一

调用函数懒蛋法

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/**
 * @param {number} n - a positive integer
 * @return {number} - a positive integer
 */
let reverseBits = function(n) {
    return parseInt(n.toString(2).padStart(32, 0).split('').reverse().join(''), 2);
};

解法二

位运算

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/**
 * @param {number} n - a positive integer
 * @return {number} - a positive integer
 */
let reverseBits = function(n) {
  let ret = 0;
  for (let i = 0; i < 32; i++) {
    ret = (ret << 1) + (n & 1);
    n >>= 1;
  }
  return ret >>> 0;
};

解法三

分治

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/**
 * @param {number} n - a positive integer
 * @return {number} - a positive integer
 */
let reverseBits = function(n) {
  let M1 = 0b01010101010101010101010101010101;
  let M2 = 0b00110011001100110011001100110011;
  let M3 = 0b00001111000011110000111100001111;
  let M4 = 0b00000000111111110000000011111111;
  n = n >>> 1 & M1 | (n & M1) << 1;
  n = n >>> 2 & M2 | (n & M2) << 2;
  n = n >>> 4 & M3 | (n & M3) << 4;
  n = n >>> 8 & M4 | (n & M4) << 8;
  return (n >>> 16 | n << 16) >>> 0;
};
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