Given two words (beginWord and endWord), and a dictionary's word list, find the length of shortest transformation sequence from beginWord to endWord, such that:
- Only one letter can be changed at a time.
- Each transformed word must exist in the word list. Note that beginWord is not a transformed word.
Note:
- Return 0 if there is no such transformation sequence.
- All words have the same length.
- All words contain only lowercase alphabetic characters.
- You may assume no duplicates in the word list.
- You may assume beginWord and endWord are non-empty and are not the same.
Example 1:
Input:
beginWord = "hit",
endWord = "cog",
wordList = ["hot","dot","dog","lot","log","cog"] Output: 5 Explanation: As one shortest transformation is "hit" -> "hot" -> "dot" -> "dog" -> "cog",
return its length 5.
思路
BFS
代码
class Solution {
public int ladderLength(String beginWord, String endWord, List<String> wordList) {
// use dict to check duplicats
Set<String> dict = new HashSet<>(wordList);
Queue<String> queue = new LinkedList<>();
queue.add(beginWord);
int level = 0;
while(!queue.isEmpty()){
int size = queue.size();
for(int i = 0; i < size; i++){
String cur = queue.remove();
if(cur.equals(endWord)){ return level + 1;}
for(int j = 0; j < cur.length(); j++){
// hit -> {'h', 'i', 't'}
char[] charArray = cur.toCharArray();
for(char c = 'a'; c <='z'; c++){
// {'h', 'i', 't'} for'h', try checking 'a','b'...'z' which forms ait, bit...zit
charArray[j] = c;
String temp = new String(charArray);
if(dict.contains(temp)){
queue.add(temp);
// to avoid dead loop, like hit will find hit itself
dict.remove(temp);
}
}
}
}
level++;
}
return 0;
}
}