0676. 实现一个魔法字典【中等】
1. 📝 题目描述
设计一个使用单词列表进行初始化的数据结构,单词列表中的单词 互不相同。 如果给出一个单词,请判定能否只将这个单词中一个字母换成另一个字母,使得所形成的新单词存在于你构建的字典中。
实现 MagicDictionary 类:
MagicDictionary()初始化对象void buildDict(String[] dictionary)使用字符串数组dictionary设定该数据结构,dictionary中的字符串互不相同bool search(String searchWord)给定一个字符串searchWord,判定能否只将字符串中 一个 字母换成另一个字母,使得所形成的新字符串能够与字典中的任一字符串匹配。如果可以,返回true;否则,返回false。
示例:
txt
输入
["MagicDictionary", "buildDict", "search", "search", "search", "search"]
[[], [["hello", "leetcode"]], ["hello"], ["hhllo"], ["hell"], ["leetcoded"]]
输出
[null, null, false, true, false, false]
解释
MagicDictionary magicDictionary = new MagicDictionary();
magicDictionary.buildDict(["hello", "leetcode"]);
magicDictionary.search("hello"); // 返回 False
magicDictionary.search("hhllo"); // 将第二个 'h' 替换为 'e' 可以匹配 "hello",所以返回 True
magicDictionary.search("hell"); // 返回 False
magicDictionary.search("leetcoded"); // 返回 False1
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提示:
1 <= dictionary.length <= 1001 <= dictionary[i].length <= 100dictionary[i]仅由小写英文字母组成dictionary中的所有字符串 互不相同1 <= searchWord.length <= 100searchWord仅由小写英文字母组成buildDict仅在search之前调用一次- 最多调用
100次search
2. 🎯 s.1 - 枚举
c
typedef struct {
char** words;
int size;
} MagicDictionary;
MagicDictionary* magicDictionaryCreate() {
MagicDictionary* obj = (MagicDictionary*)malloc(sizeof(MagicDictionary));
obj->words = NULL;
obj->size = 0;
return obj;
}
void magicDictionaryBuildDict(MagicDictionary* obj, char** dictionary, int dictionarySize) {
obj->words = dictionary;
obj->size = dictionarySize;
}
bool magicDictionarySearch(MagicDictionary* obj, char* searchWord) {
int sLen = strlen(searchWord);
for (int i = 0; i < obj->size; i++) {
if ((int)strlen(obj->words[i]) != sLen) continue;
int diff = 0;
for (int j = 0; j < sLen; j++) {
if (obj->words[i][j] != searchWord[j]) diff++;
if (diff > 1) break;
}
if (diff == 1) return true;
}
return false;
}
void magicDictionaryFree(MagicDictionary* obj) {
free(obj);
}1
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js
var MagicDictionary = function () {
this.words = []
}
/**
* @param {string[]} dictionary
* @return {void}
*/
MagicDictionary.prototype.buildDict = function (dictionary) {
this.words = dictionary
}
/**
* @param {string} searchWord
* @return {boolean}
*/
MagicDictionary.prototype.search = function (searchWord) {
for (const word of this.words) {
if (word.length !== searchWord.length) continue
let diff = 0
for (let i = 0; i < word.length; i++) {
if (word[i] !== searchWord[i]) diff++
if (diff > 1) break
}
if (diff === 1) return true
}
return false
}1
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py
class MagicDictionary:
def __init__(self):
self.words = []
def buildDict(self, dictionary: List[str]) -> None:
self.words = dictionary
def search(self, searchWord: str) -> bool:
for word in self.words:
if len(word) != len(searchWord):
continue
diff = sum(a != b for a, b in zip(word, searchWord))
if diff == 1:
return True
return False1
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- 时间复杂度:buildDict
,search ,其中 n 是字典大小,l 是单词长度 - 空间复杂度:
算法思路:
- 直接存储字典中所有单词
- 搜索时遍历字典,找长度相同且恰好差一个字符的单词