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.

Input: Digit string "23"

Output: ["ad", "ae", "af", "bd", "be", "bf", "cd", "ce", "cf"].

Note:

Although the above answer is in lexicographical order, your answer could be in any order you want.

解题思路：

心想要是我们可以得到这样一棵树，那么我们的问题就变得很简单了，只需要利用DFS遍历一遍问题就解决了。

当然不建立这棵树，也是可以进行DFS遍历的。

#include <iostream>

#include <map>

#include <vector>

using namespace std;

class Solution {

public:

    vector<string> letterCombinations(string digits) {

        if (digits.size() == 0)

            return result;

        init();

        dfs(0, (int)digits.size(), digits, "");

        return result;

    }

private:

    vector<string> result;

    map<char, string> dict;

    void init() {

        dict['0'] = " ";

        dict['1'] = "";

        dict['2'] = "abc";

        dict['3'] = "def";

        dict['4'] = "ghi";

        dict['5'] = "jkl";

        dict['6'] = "mno";

        dict['7'] = "pqrs";

        dict['8'] = "tuv";

        dict['9'] = "wxyz";

    }

    void dfs(int dep, int max_dep, string digits, string tmp) {

        if (dep == max_dep) {

            result.push_back(tmp);

            return;

        }

        //for循环遍历每个数字所对应的所有字符的情况，dfs递归是不断的深入

        for (int i = 0; i < dict[digits[dep]].size(); i++) {

            dfs(dep + 1, max_dep, digits, tmp + dict[digits[dep]][i]);

        }

    }

};

int main() {

    string input = "23";

    Solution* solution = new Solution();

    vector<string> result = solution->letterCombinations(input);

    for (int i = 0; i < result.size(); i++) {

        cout << result[i] << endl;

    }

    return 0;

}