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一. 题目描述
Reverse bits of a given 32 bits unsigned integer.
For example, given input 43261596 (represented in binary as 00000010100101000001111010011100), return 964176192 (represented in binary as 00111001011110000010100101000000).
二. 题目分析
题目的要求比较简单,输入一个32位的无符号整数,根据其二进制表示,输出与其二进制相对称的无符号整数。题目也给出了一个例子。
该题使用基本的位运算即可解决,当然网上也提出了一种很巧妙的方法,其中对于位运算有这样的一种方法,将数字的位按照整块整块的翻转,例如32位分成两块16位的数字,16位分成两个8位进行翻转,以此类推。
对于一个8bit数字abcdefgh来说,其处理过程如下:
abcdefgh -> efghabcd -> ghefcdab -> hgfedcba
进一步的论述,抄送网上的解释:
Remember how merge sort works? Let us use an example of n == 8 (one byte) to see how this works:
01101001
/ 0110 1001
/ \ / 01 10 10 01
/\ /\ /\ /0 1 1 0 1 0 0 1The first step is to swap all odd and even bits. After that swap consecutive pairs of bits, and so on…
Therefore, only a total of log(n) operations are necessary.
The below code shows a specific case where n == 32, but it could be easily adapted to larger n‘s as well.
三. 示例代码
class Solution {
public:
uint32_t reverseBits(uint32_t n) {
uint32_t result = 0;
if (n == result) return result;
int index = 31; // 初始时n的最低位需要右移31位到最高位
while (n)
{
result |= (n & 0x1) << index; // 取n的最低位,并右移到高位
--index; // 右移位数,保持对称
n >>= 1;
}
return result;
}
};// 另一种巧妙的做法
/*
0x55555555 = 0101 0101 0101 0101 0101 0101 0101 0101
0xAAAAAAAA = 1010 1010 1010 1010 1010 1010 1010 1010
0x33333333 = 0011 0011 0011 0011 0011 0011 0011 0011
0xCCCCCCCC = 1100 1100 1100 1100 1100 1100 1100 1100
*/
class Solution {
public:
uint32_t reverseBits(uint32_t n) {
uint32_t x = n;
x = ((x & 0x55555555) << 1) | ((x & 0xAAAAAAAA) >> 1);
x = ((x & 0x33333333) << 2) | ((x & 0xCCCCCCCC) >> 2);
x = ((x & 0x0F0F0F0F) << 4) | ((x & 0xF0F0F0F0) >> 4);
x = ((x & 0x00FF00FF) << 8) | ((x & 0xFF00FF00) >> 8);
x = ((x & 0x0000FFFF) << 16) | ((x & 0xFFFF0000) >> 16);
return x;
}
};四. 小结
实现该题的要求不难,但是精彩的做法让人大开眼界。
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原文地址:http://blog.csdn.net/liyuefeilong/article/details/50608439
