mirror of
https://github.com/ShusenTang/LeetCode.git
synced 2024-09-02 14:20:01 +00:00
23 lines
965 B
Markdown
23 lines
965 B
Markdown
|
# [389. Find the Difference](https://leetcode.com/problems/find-the-difference/description/)
|
|||
|
|
# 思路
|
|||
|
|
分别记录两个字符串中每个字符的出现次数,最后比较一下字符的出现次数,次数差1对应的字符即所求。
|
|||
|
|
因为全是小写字母,所以开辟一个大小为26的数组进行计数即可。另外,没必要开辟两个计数数组,用一个数组记录即可,对s中出现的字符进行次数累加,对t中出现的字符进行次数累减。
|
|||
|
|
最后次数为-1的对应的字母即所求。
|
|||
|
|
时间复杂度O(n), 空间复杂度O(1)
|
|||
|
|
# C++
|
|||
|
|
```
|
|||
|
|
class Solution {
|
|||
|
|
public:
|
|||
|
|
char findTheDifference(string s, string t) {
|
|||
|
|
vector<int>count(26, 0);
|
|||
|
|
for(int i = 0; i < s.size(); i++){
|
|||
|
|
count[s[i] - 'a']++;
|
|||
|
|
count[t[i] - 'a']--;
|
|||
|
|
}
|
|||
|
|
count[t[t.size() - 1] - 'a']--;
|
|||
|
|
for(int i = 0; i < 26; i++)
|
|||
|
|
if(count[i] == -1) return char(i + 'a');
|
|||
|
|
}
|
|||
|
|
};
|
|||
|
|
```
|