Word Ladder题解
原创文章,拒绝转载
题目来源:https://leetcode.com/problems/word-ladder/description/
Description
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.
For example,
Given:
beginWord = "hit"
endWord = "cog"
wordList = ["hot","dot","dog","lot","log","cog"]
As one shortest transformation is "hit" -> "hot" -> "dot" -> "dog" -> "cog",
return its length 5.
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.
UPDATE (2017/1/20):
The wordList parameter had been changed to a list of strings (instead of a set of strings). Please reload the code definition to get the latest changes.
Solution
class Solution {
private:
set<string> isVisited;
map<string, string> preVertex;
public:
bool canTrans(string a, string b) {
int count = 0;
for (int i = 0; i < a.length(); i++)
if (a[i] != b[i]) {
if (count == 0)
count++;
else
return false;
}
return count == 1;
}
int ladderLength(string beginWord, string endWord, vector<string>& wordList) {
if (wordList.size() == 0)
return 0;
isVisited.insert(beginWord);
queue<string> vq;
vq.push(beginWord);
string qfront;
bool finish = false;
while (!finish && !vq.empty()) {
qfront = vq.front();
vq.pop();
for (auto& w: wordList) {
if (canTrans(qfront, w) && isVisited.count(w) == 0) {
isVisited.insert(w);
vq.push(w);
preVertex[w] = qfront;
if (w == endWord) {
finish = true;
break;
}
}
}
}
if (finish) {
int len = 1;
string v = endWord;
while (v != beginWord) {
v = preVertex[v];
len++;
}
return len;
} else {
return 0;
}
}
};
解题描述
这道题我采用的是BFS去查找指定的终点。同时用一个map来记录每一个已经被搜索的顶点的前一个点。