[LintCode] Letter Combinations of a Phone Number 电话号码的字母组合

时间:2023-03-09 15:49:22
[LintCode] Letter Combinations of a Phone Number 电话号码的字母组合

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.

[LintCode] Letter Combinations of a Phone Number 电话号码的字母组合

Notice

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

Have you met this question in a real interview?
Yes
Example

Given "23"

Return["ad", "ae", "af", "bd", "be", "bf", "cd", "ce", "cf"]

 

LeetCode上的原题,请参见我之前的博客Letter Combinations of a Phone Number

解法一:

class Solution {

public:

    /**

     * @param digits A digital string

     * @return all posible letter combinations

     */

    vector<string> letterCombinations(string& digits) {

        if (digits.empty()) return {};

        vector<string> res;

        vector<string> v{"", "", "abc", "def", "ghi", "jkl", "mno", "pqrs", "tuv", "wxyz"};

        helper(digits, v, , "", res);

        return res;

    }

    void helper(string& digits, vector<string>& v, int level, string out, vector<string>& res) {

        if (level == digits.size()) {

            res.push_back(out);

            return;

        }

        string t = v[digits[level] - ''];

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

            out.push_back(t[i]);

            helper(digits, v, level + , out, res);

            out.pop_back();

        }

    }

};

解法二:

class Solution {

public:

    /**

     * @param digits A digital string

     * @return all posible letter combinations

     */

    vector<string> letterCombinations(string& digits) {

        if (digits.empty()) return {};

        vector<string> res{""};

        vector<string> v{"", "", "abc", "def", "ghi", "jkl", "mno", "pqrs", "tuv", "wxyz"};

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

            string str = v[digits[i] - ''];

            int n = res.size();

            for (int j = ; j < n; ++j) {

                string t = res.front();

                res.erase(res.begin());

                for (int k = ; k < str.size(); ++k) {

                    res.push_back(t + str[k]);

                }

            }

        }

        return res;

    }

};

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