Description
Given a digit string, return all possible letter combinations that the number could represent.
A mapping of digit to letters (just like on the telephone buttons) is given below.
Example
Input:Digit string "23"
Output: ["ad", "ae", "af", "bd", "be", "bf", "cd", "ce", "cf"].
思路
- 思路1:
- 使用两个队列完成,代码如下:
- 思路2:
- dfs
代码
class Solution {
public:
vector<string> letterCombinations(string digits) {
vector<string> res;
int len = digits.size();
if (len == 0) return res;
string letters[] = {
"abc", "def", "ghi", "jkl", "mno", "pqrs", "tuv", "wxyz"
};
queue<string> Que, QueTemp;
int j = 0;
for (int i = 0; i < len; ++i){
if (digits[i] > '9' || digits[i] <= '1') return vector<string>();
j = digits[i] - '2';
if (Que.empty()){
for (int k = 0; k < letters[j].size(); ++k){
string tmp(charToString(letters[j][k]));
Que.push(tmp);
}
}
else{
while (!Que.empty()){
string tmp = Que.front();
Que.pop();
for (int k = 0; k < letters[j].size(); ++k){
QueTemp.push(tmp + letters[j][k]);
}
}
Que.swap(QueTemp);
}
}
while (!Que.empty()){
res.push_back(Que.front());
Que.pop();
}
return res;
}
string charToString(char c){
string res;
stringstream ss;
ss << c;
ss >> res;
return res;
}
};
class Solution {
public:
vector<string> letterCombinations(string digits) {
vector<string> res;
int len = digits.size();
if (len == 0) return res;
string letters[] = {
"", "", "abc", "def", "ghi", "jkl", "mno", "pqrs", "tuv", "wxyz"
};
string path;
dfs(res, digits, path, 0, letters);
return res;
}
void dfs(vector<string> &res, string& digits, string path, int index, string letters[]){
if (index == digits.size()){
res.push_back(path);
return;
}
for (int i = 0; i < letters[digits[index] - '0'].size(); ++i){
dfs(res, digits, path + letters[digits[index] - '0'][i], index + 1, letters);
}
}
};