[LeetCode] Add and Search Word - Data structure design 添加和查找单词-数据结构设计

Design a data structure that supports the following two operations:

void addWord(word)

bool search(word)

search(word) can search a literal word or a regular expression string containing only letters a-z or .. A . means it can represent any one letter.

For example:

addWord("bad")

addWord("dad")

addWord("mad")

search("pad") -> false

search("bad") -> true

search(".ad") -> true

search("b..") -> true

Note:
You may assume that all words are consist of lowercase letters a-z.

click to show hint.

You should be familiar with how a Trie works. If not, please work on this problem: Implement Trie (Prefix Tree) first.

LeetCode出新题的速度越来越快了，有点跟不上节奏的感觉了。这道题如果做过之前的那道Implement Trie (Prefix Tree) 实现字典树(前缀树)的话就没有太大的难度了，还是要用到字典树的结构，唯一不同的地方就是search的函数需要重新写一下，因为这道题里面'.'可以代替任意字符，所以一旦有了'.'，就需要查找所有的子树，只要有一个返回true，整个search函数就返回true，典型的DFS的问题，其他部分跟上一道实现字典树没有太大区别，代码如下：

class WordDictionary {

public:

    struct TrieNode {

    public:

        TrieNode *child[];

        bool isWord;

        TrieNode() : isWord(false) {

            for (auto &a : child) a = NULL;

        }

    };

    WordDictionary() {

        root = new TrieNode();

    }

    // Adds a word into the data structure.

    void addWord(string word) {

        TrieNode *p = root;

        for (auto &a : word) {

            int i = a - 'a';

            if (!p->child[i]) p->child[i] = new TrieNode();

            p = p->child[i];

        }

        p->isWord = true;

    }

    // Returns if the word is in the data structure. A word could

    // contain the dot character '.' to represent any one letter.

    bool search(string word) {

        return searchWord(word, root, );

    }

    bool searchWord(string &word, TrieNode *p, int i) {

        if (i == word.size()) return p->isWord;

        if (word[i] == '.') {

            for (auto &a : p->child) {

                if (a && searchWord(word, a, i + )) return true;

            }

            return false;

        } else {

            return p->child[word[i] - 'a'] && searchWord(word, p->child[word[i] - 'a'], i + );

        }

    }

private:

    TrieNode *root;

};

// Your WordDictionary object will be instantiated and called as such:

// WordDictionary wordDictionary;

// wordDictionary.addWord("word");

// wordDictionary.search("pattern");

讨论：这道题有个很好的Follow up，就是当搜索的单词中存在星号怎么搞，星号的定义和Wildcard Matching中一样，可以代表任意的字符串，包括空字符串，请参见评论区1楼。

类似题目：

Implement Trie (Prefix Tree)

Wildcard Matching

参考资料：

https://leetcode.com/discuss/36246/my-java-trie-based-solution

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