思路
方法:用栈模拟
1 class Solution {
2 public:
3 string decodeString(string s) {
4 deque<char> d;
5
6 for(int i = 0; i < s.length(); ++i) {
7 if(s[i] == ']') {
8 deque<char> tmp;
9 while(d.back() != '[') {
10 tmp.push_front(d.back());
11 d.pop_back();
12 }
13
14 d.pop_back(); //左括号'['出栈
15 //获取循环次数repeat,注意repeat可能大于1位数
16 int repeat = 0, r = 1;
17 while(!d.empty() && isdigit(d.back())) {
18 repeat += r * (d.back() - '0');
19 r *= 10;
20 d.pop_back();
21 }
22
23 while(repeat--) {
24 for(int j = 0; j < tmp.size(); ++j) {
25 d.push_back(tmp[j]);
26 }
27 }
28 } else {
29 d.push_back(s[i]);
30 }
31 }
32
33 string res(d.begin(), d.end());
34
35 return res;
36 }
37 };复杂度分析:
时间复杂度:O(S),S为答案字符串的长度
空间复杂度:O(S)
