leetcode [338]Counting Bits
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Given a non negative integer number num. For every numbers i in the range 0 ≤ i ≤ num calculate the number of 1‘s in their binary representation and return them as an array.
Example 1:
Input: 2
Output: [0,1,1]
Example 2:
Input: 5
Output: [0,1,1,2,1,2]
Follow up:
- It is very easy to come up with a solution with run time O(n*sizeof(integer)). But can you do it in linear time O(n) /possibly in a single pass?
- Space complexity should be O(n).
- Can you do it like a boss? Do it without using any builtin function like __builtin_popcount in c++ or in any other language.
题目大意:
计算[0,n]这个区间内所有整数中1的个数。
解法:
最简单的做法可以对这个区间的每个数字求解1的个数,但是这样做的话,时间复杂度比较大。
java:
class Solution { public int[] countBits(int num) { int[] res=new int[num+1]; for (int i=0;i<=num;i++){ int n=i; while(n!=0){ n&=(n-1); res[i]++; } } return res; } }
还可以使用动态规划的方法,这种做法真机智,直接res[i]=res[i>>1]+(1&i),这样比起上面时间复杂度小了很多,只有O(n)。
class Solution { public int[] countBits(int num) { int[] res=new int[num+1]; for (int i=1;i<=num;i++){ res[i]=res[i>>1]+(1&i); } return res; } }
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