140. Word Break II
Problem statement:
Given a non-empty string s and a dictionary wordDict containing a list of non-empty words, add spaces in s to construct a sentence where each word is a valid dictionary word. You may assume the dictionary does not contain duplicate words.
Return all such possible sentences.
For example, given
s = "catsanddog",
dict = ["cat", "cats", "and", "sand", "dog"].
A solution is ["cats and dog", "cat sand dog"].
Solution one: Dynamic programming
We can use dynamic programming to solve this problem. But, it cause TLE since we did not record all possible solutions.
keep two arrays, one is for dynamic programming,
vector<bool> dp(size + 1, false);
- It records if s.substr(0, size) is breakable or not.
- dp[0] is true, "" is a solution.
Another array keep the all possible solutions for current position
vector<vector<string>> components(size + 1);
The code is as following:
class Solution { public: vector<string> wordBreak(string s, vector<string>& wordDict) { vector<string> sentences; int size = s.size(); vector<vector<string>> components(size + 1); components[0].push_back(""); // initialize the dp array // dp[0] is true for following iteration vector<bool> dp(size + 1, false); dp[0] = true; for(int i = 1; i <= size; i++){ for(int j = 0; j < i; j++){ if(dp[j] && find(wordDict.begin(), wordDict.end(), s.substr(j, i - j)) != wordDict.end()){ dp[i] = true; // update sentence components array for(vector<string>::size_type ix = 0; ix < components[j].size(); ix++){ // get to the end of s and it is also a sentence // add it to the sentences if(i == size){ if(j == 0){ sentences.push_back(s.substr(j, i - j)); } else { sentences.push_back(components[j][ix] + " " + s.substr(j, i - j)); } } else { if(j == 0){ // the first word in the sentence components[i].push_back(s.substr(j, i - j)); } else { // not the first word in the sentence components[i].push_back(components[j][ix] + " " + s.substr(j, i - j)); } } } } } } return sentences; } };
solution two: DFS without return value(AC)
This problem need to return all possible sentences. It is DFS. But, it is not simply do DFS, we need pruning while searching, to reduce the workload, otherwise, it will cause TLE.
Keep an array(s.size() + 1), it records whether the string is breakable from current position to the end.
class Solution { public: vector<string> wordBreak(string s, vector<string>& wordDict) { vector<string> sentence_set; vector<int> isbreak(s.size() + 1, true); string sentence; word_break_dfs(wordDict, sentence_set, isbreak, s, sentence, 0); return sentence_set; } private: void word_break_dfs(vector<string>& wordDict, vector<string>& sentence_set, vector<int>& isbreak, string& s, string& sentence, int start){ if(start == s.size()){ // reach to the end, find one solution // -1 is for " " sentence_set.push_back(sentence.substr(0, sentence.size() - 1)); return; } for(int i = start + 1; i <= s.size(); i++){ string word = s.substr(start, i - start); // find a new word in dictionary // the word is brakable from i to the end of the sentence. if(find(wordDict.begin(), wordDict.end(), word) != wordDict.end() && isbreak[i]){ // update the sentence sentence += word + " "; // keep a size to update isbreak array int size = sentence_set.size(); word_break_dfs(wordDict, sentence_set, isbreak, s, sentence, i); if(sentence_set.size() == size){ isbreak[i] = false; } // resize the sentence sentence.resize(sentence.size() - word.size() - 1); } } return; } };
Solution three: DFS with return value(AC)
In this solution, the return value of DFS function is vector<string>, it stores all possible sentences when we pass a string to it. Thhere is a hash table to store all the values we already got, to prune the DFS search.
class Solution { public: vector<string> wordBreak(string s, vector<string>& wordDict) { unordered_map<string, vector<string>> str_table; return word_break_dfs(s, wordDict, str_table); } private: vector<string> word_break_dfs( string str, vector<string>& wordDict, unordered_map<string, vector<string>>& str_table){ // already get the value of current string if(str_table.find(str) != str_table.end()){ return str_table[str]; } if(str.empty()){ // DFS stop condition return {""}; } vector<string> sentences_set; for(int i = 1; i <= str.size(); i++){ string word = str.substr(0, i); if(find(wordDict.begin(), wordDict.end(), word) != wordDict.end()){ // current word in dictionary, do DFS search vector<string> word_set = word_break_dfs(str.substr(i, str.size() - 1), wordDict, str_table); for(auto component : word_set){ // add the value to return set sentences_set.push_back(word + (component.empty()? "" : " ") + component); } } } // store current value to hash table for future prune str_table[str] = sentences_set; return sentences_set; } };
