Single Number III
Given an array of numbers nums, in which exactly two elements appear only
once and all the other elements appear exactly twice. Find the two elements that appear only once.
For example:
Given nums = [1, 2, 1, 3, 2, 5], return [3,
5].
Note:
- The order of the result is not important. So in the above example,
[5, 3]is also correct. - Your algorithm should run in linear runtime complexity. Could you implement it using only constant space complexity?
Credits:
Special thanks to @jianchao.li.fighter for adding this problem and creating all test cases.
解题思路:
题意为给定一个整数数组。当中有两个数仅仅出现一次。其余数出现两次。
要求线性时间、常量空间找出这两个数。
我们知道。两个相等的数异或结果为0。因此。首次扫描数组,得到两个单独的数A、B的异或结果AxorB。由于A和B不相等。因此AxorB一定不为0,且二进制位为1的位A和B一定不同。任取AxorB中的一个二进制位。能够将原数组元素分成两组异或即得结果。
注意n&(~(n-1))表示取的n中的最后一位二进制位。
另外,&的优先级小于==的优先级。
class Solution {
public:
vector<int> singleNumber(vector<int>& nums) {
int len = nums.size();
int AxorB = 0;
for(int i=0; i<len; i++){
AxorB ^= nums[i];
}
int mask = AxorB & (~(AxorB-1));
int A = 0;
int B = 0;
for(int i=0; i<len; i++){
if((mask&nums[i])==0){
A ^= nums[i];
}else{
B ^= nums[i];
}
}
return vector<int>({A, B});
}
};