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.
Example:
Input:[1,2,1,3,2,5]
Output:[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?
这次的问题变成special的数又两个了,实际上题目并不是找single number了,而是找special two number。所以之前两个题目的解法是不适用的,起码不是直接适用的。如果可以把two number的问题变成两个single number的问题,就可以套用之前第一个问题的解法了,也就是说我们可以通过某种方式把数组分为两组,每组只包含那两个special number中的一个。
问题的关键就变成如何分组了。思路也是有点巧妙,考虑到两个special number是不一样的,而恰好其余的数都是出现两次,所以如果对每个数都做亦或操作,最后的结果就是那两个special number的亦或,而且至少有一个位是1,那么就可以根据其中一个为1的位将所有的数分为两组,再套用第一个题的方法即可。
Java:
public class Solution { public int[] singleNumber(int[] nums) { // Pass 1 : // Get the XOR of the two numbers we need to find int diff = 0; for (int num : nums) { diff ^= num; } // Get its last set bit diff &= -diff; // Pass 2 : int[] rets = {0, 0}; // this array stores the two numbers we will return for (int num : nums) { if ((num & diff) == 0) // the bit is not set { rets[0] ^= num; } else // the bit is set { rets[1] ^= num; } } return rets; } }
Python:
class Solution(object): def singleNumber(self, nums): """ :type nums: List[int] :rtype: List[int] """ xor = 0 a = 0 b = 0 for num in nums: xor ^= num mask = 1 while(xor&mask == 0): mask = mask << 1 for num in nums: if num&mask: a ^= num else: b ^= num return [a, b]
C++:
class Solution { public: vector<int> singleNumber(vector<int>& nums) { // Pass 1 : // Get the XOR of the two numbers we need to find int diff = accumulate(nums.begin(), nums.end(), 0, bit_xor<int>()); // Get its last set bit diff &= -diff; // Pass 2 : vector<int> rets = {0, 0}; // this vector stores the two numbers we will return for (int num : nums) { if ((num & diff) == 0) // the bit is not set { rets[0] ^= num; } else // the bit is set { rets[1] ^= num; } } return rets; } };
C++:
class Solution { public: vector<int> singleNumber(vector<int>& nums) { int diff = accumulate(nums.begin(), nums.end(), 0, bit_xor<int>()); diff &= -diff; vector<int> res(2, 0); for (auto &a : nums) { if (a & diff) res[0] ^= a; else res[1] ^= a; } return res; } };
类似题目:
[LeetCode] 136. Single Number 单独数
[LeetCode] 137. Single Number II 单独数 II
原文地址:https://www.cnblogs.com/lightwindy/p/9680951.html
时间: 2024-10-14 11:00:54