126. Word Ladder II( Queue; BFS)

时间:2023-03-09 06:47:37
126. Word Ladder II( Queue; BFS)

Given two words (beginWord and endWord), and a dictionary's word list, find all shortest transformation sequence(s) from beginWord to endWord, such that:

  1. Only one letter can be changed at a time
  2. Each intermediate word must exist in the word list

For example,

Given:
beginWord = "hit"
endWord = "cog"
wordList = ["hot","dot","dog","lot","log"]

Return

  [

    ["hit","hot","dot","dog","cog"],

    ["hit","hot","lot","log","cog"]

  ]

Note:

  • All words have the same length.
  • All words contain only lowercase alphabetic characters.

思路:仍然使用两个队列做WFS, 不同于I的是

  1. 入队的元素是从根节点至当前节点的单词数组
  2. 不能立即删dict中的元素,因为该元素可能在同级的其他节点中存在
class Solution {

public:

    vector<vector<string>> findLadders(string beginWord, string endWord, unordered_set<string> &wordList) {

        queue<vector<string>> queue_to_push;

        queue<vector<string>> queue_to_pop;

        set<string> flag;

        set<string>::iterator it;

        bool endFlag = false;

        string curStr;

        vector<string> curVec;

        vector<vector<string>> ret;

        char tmp;

        curVec.push_back(beginWord);

        queue_to_pop.push(curVec);

        wordList.erase(beginWord); //if beginWord is in the dict, it should be erased to ensure shortest path

        while(!queue_to_pop.empty()){

            curVec = queue_to_pop.front();

            curStr = curVec[curVec.size()-];

            queue_to_pop.pop();

            //find one letter transformation

            for(int i = ; i < curStr.length(); i++){ //traverse each letter in the word

                for(int j = 'a'; j <= 'z'; j++){ //traverse letters to replace

                    if(curStr[i]==j) continue; //ignore itself

                    tmp = curStr[i];

                    curStr[i]=j;

                    if(curStr == endWord){

                        curVec.push_back(curStr);

                        ret.push_back(curVec);

                        endFlag = true;

                        curVec.pop_back(); //back track

                    }

                    else if(!endFlag && wordList.count(curStr)>){ //occur in the dict

                        flag.insert(curStr);

                        curVec.push_back(curStr);

                        queue_to_push.push(curVec);

                        curVec.pop_back(); //back track

                    }

                    curStr[i] = tmp; //back track

                }

            }

            if(queue_to_pop.empty()){//move to next level

                if(endFlag){ //terminate

                    break; //Maybe there's no such path, so we return uniformaly at the end

                }

                for(it=flag.begin(); it != flag.end();it++){ //erase the word occurred in current level from the dict

                    wordList.erase(*it);

                }

                swap(queue_to_pop, queue_to_push); //maybe there's no such path, then endFlag = false, queue_to_push empty, so we should check if queue_to_pop is empty in the next while

                flag.clear();

            }

        }

        return ret;

    }

};

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