Bitwise AND of Numbers Range

最新推荐文章于 2020-01-08 16:18:01 发布

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最新推荐文章于 2020-01-08 16:18:01 发布

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原文链接：http://www.cnblogs.com/luckygxf/p/4431739.html

Given a range [m, n] where 0 <= m <= n <= 2147483647, return the bitwise AND of all numbers in this range, inclusive.

For example, given the range [5, 7], you should return 4.

 1 public class Solution {
 2     public int rangeBitwiseAnd(int m, int n) {
 3         if(m == 0)
 4             return 0;
 5         int result = 0;
 6         int temp = m;
 7         int bits[] = new int[32];
 8         for(int i = 0; i < 32; i++){
 9             bits[i] = (temp & 1);
10             temp >>>= 1;
11         }
12         
13         int carry = (n - m);
14         for(int i = 0; i < 32; i++){
15             carry = (carry + bits[i]) / 2;
16             if(bits[i] + carry > 1)
17                 bits[i] = 0;
18         }
19         
20         for(int i = 31; i >=0; i--){
21             result <<= 1;
22             result += bits[i];
23         }//for
24         
25         return result;
26     }
27 }