给定一个仅包含数字 2-9 的字符串,返回所有它能表示的字母组合。
给出数字到字母的映射如下(与电话按键相同)。注意 1 不对应任何字母。
image.png
示例:
输入:"23"
输出:["ad", "ae", "af", "bd", "be", "bf", "cd", "ce", "cf"].
说明:
尽管上面的答案是按字典序排列的,但是你可以任意选择答案输出的顺序。
来源:力扣(LeetCode)
链接:https://leetcode-cn.com/problems/letter-combinations-of-a-phone-number
解题思路:这里我首先想到用hashmap简单暴力地存储数字到字母之间的映射关系,然后再采用一个递归函数,递归生成所有可能。递归地结束条件就是字符串遍历完毕地时候,这时添加到List String中。
package leetcode;
import java.util.*;
public class LetterCombinations {
static Map<Character, List<String>> letters = new HashMap<>();
static List<String> results = new ArrayList<>();
static String source;
public List<String> letterCombinations(String digits) {
source = digits;
letters.clear();
results.clear();
if (digits.equals("")) return results;
letters.put('2', Arrays.asList("a", "b", "c"));
letters.put('3', Arrays.asList("d", "e", "f"));
letters.put('4', Arrays.asList("g", "h", "i"));
letters.put('5', Arrays.asList("j", "k", "l"));
letters.put('6', Arrays.asList("m", "n", "o"));
letters.put('7', Arrays.asList("p", "q", "r", "s"));
letters.put('8', Arrays.asList("t", "u", "v"));
letters.put('9', Arrays.asList("w", "x", "y", "z"));
putLetter(0, "");
return results;
}
private void putLetter(int idx, String tmp) {
if (idx == source.length()) {
results.add(tmp);
return;
}
for (String s : letters.get(source.charAt(idx))) {
putLetter(idx + 1, tmp + s);
}
}
}
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