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LeetCode 【190. Reverse Bits】

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).

Follow up:
If this function is called many times, how would you optimize it?

 

思路

基本思路即分别提取出当前最高位和最低位的信息,进行交换即可,然后最高位置--,最低位位置++,直到相遇;32位数,所以0-15和16-31分别进行操作。这边我先判断最高位,如果为1,则判断最低位,如果也为1,不进行操作,如果为0,则最低为变成1,这边用到了位移,然后最高位做减法,则变为0。如果最高位为0,同理,做相反的操作即可。

class Solution {
public:
    uint32_t reverseBits(uint32_t n) {
        int cur;
        for(int i = 31 ; i >= 16;i--){
            if(n&(1<<i)){
                cur = n&1<<(31-i);
                if(cur == 0){
                n -= 1<<i;
                n += 1<<(31-i);
                }
                
            }
            else{
                cur = n&1<<(31-i);
                if(cur != 0){
                n += 1<<i;
                n -=1<<(31-i);
                }
            }
        }
        return n;
    }
};

  

posted on 2016-08-06 16:59  Rockwall  阅读(180)  评论(0编辑  收藏  举报