首页 > 代码库 > LeetCode: Word Break II [140]
LeetCode: Word Break II [140]
【题目】
Given a string s and a dictionary of words dict, add spaces in s to construct a sentence where each word is a valid dictionary word.
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"]
.
【题意】
给定一个单词s和词典dict, 返回所有切分情况,使得切分后每个单词都是dict中的单词【思路】
依次确定以每个位置i结尾的单词的前驱单词集合(只要记住前驱单词的结束位置)然后从后往前恢复切分路径即可。
DP问题
【代码】
class Solution { public: void recoverPath(vector<string>&result, vector<string>&words, string&s, map<int, vector<int> >preorders, int end){ vector<int>preorder=preorders[end]; for(int i=0; i<preorder.size(); i++){ string word=s.substr(preorder[i]+1, end-preorder[i]); if(preorder[i]==-1){ string cutstr=word; int size=words.size(); for(int j=size-1; j>=0; j--){ cutstr+=" "+words[j]; } result.push_back(cutstr); } else{ words.push_back(word); recoverPath(result, words, s, preorders, preorder[i]); words.pop_back(); } } } vector<string> wordBreak(string s, unordered_set<string> &dict) { vector<string> result; if(s.length()==0)return result; map<int, vector<int> >preorders; //记录各个可分位置的前驱集合 vector<int> pos(1,-1); //以确定可分的位置 for(int i=0; i<s.length(); i++){ vector<int>preorder; for(int k=0; k<pos.size(); k++){ if(dict.find(s.substr(pos[k]+1, i-pos[k]))!=dict.end()){ preorder.push_back(pos[k]); } } if(preorder.size()>0){ preorders[i]=preorder; pos.push_back(i); } } //恢复所有可能的切分路径 if(preorders.find(s.length()-1)==preorders.end())return result; vector<string>words; recoverPath(result, words, s, preorders, s.length()-1); return result; } };
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