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:
For num = 5 you should return [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.
思路:
1.按位与运算(1&1=1, 1&0=0) :res[n] = res[n & (n - 1)] + 1
2.移位运算:ans[n] = ans[n >> 1] + (n & 1)
注意:后面加逗号;
class Solution(): def countBits(self, num): """ :type num: int :rtype: List[int] """ res = [0] for i in range(1, num + 1): res += res[i & (i - 1)] + 1, # res += res[i >>1] + (i & 1), return res