Leetcode 642. Design Search Autocomplete System

Problem:

Design a search autocomplete system for a search engine. Users may input a sentence (at least one word and end with a special character '#'). For each character they type except '#', you need to return the top 3 historical hot sentences that have prefix the same as the part of sentence already typed. Here are the specific rules:

1. The hot degree for a sentence is defined as the number of times a user typed the exactly same sentence before.
2. The returned top 3 hot sentences should be sorted by hot degree (The first is the hottest one). If several sentences have the same degree of hot, you need to use ASCII-code order (smaller one appears first).
3. If less than 3 hot sentences exist, then just return as many as you can.
4. When the input is a special character, it means the sentence ends, and in this case, you need to return an empty list.

Your job is to implement the following functions:

The constructor function:

AutocompleteSystem(String[] sentences, int[] times): This is the constructor. The input is historical data. Sentences is a string array consists of previously typed sentences. Times is the corresponding times a sentence has been typed. Your system should record these historical data.

Now, the user wants to input a new sentence. The following function will provide the next character the user types:

List<String> input(char c): The input c is the next character typed by the user. The character will only be lower-case letters ('a' to 'z'), blank space (' ') or a special character ('#'). Also, the previously typed sentence should be recorded in your system. The output will be the top 3 historical hot sentences that have prefix the same as the part of sentence already typed.

 

Example:
Operation: AutocompleteSystem(["i love you", "island","ironman", "i love leetcode"], [5,3,2,2])
The system have already tracked down the following sentences and their corresponding times:
"i love you" : 5 times
"island" : 3 times
"ironman" : 2 times
"i love leetcode" : 2 times
Now, the user begins another search:

Operation: input('i')
Output: ["i love you", "island","i love leetcode"]
Explanation:
There are four sentences that have prefix "i". Among them, "ironman" and "i love leetcode" have same hot degree. Since ' ' has ASCII code 32 and 'r' has ASCII code 114, "i love leetcode" should be in front of "ironman". Also we only need to output top 3 hot sentences, so "ironman" will be ignored.

Operation: input(' ')
Output: ["i love you","i love leetcode"]
Explanation:
There are only two sentences that have prefix "i ".

Operation: input('a')
Output: []
Explanation:
There are no sentences that have prefix "i a".

Operation: input('#')
Output: []
Explanation:
The user finished the input, the sentence "i a" should be saved as a historical sentence in system. And the following input will be counted as a new search.

 

Note:

1. The input sentence will always start with a letter and end with '#', and only one blank space will exist between two words.
2. The number of complete sentences that to be searched won't exceed 100. The length of each sentence including those in the historical data won't exceed 100.
3. Please use double-quote instead of single-quote when you write test cases even for a character input.
4. Please remember to RESET your class variables declared in class AutocompleteSystem, as static/class variables are persisted across multiple test cases. Please see here for more details.

 

Solution:

　　這道題的難點在於，題目太長了。。。爲了避免再看第二遍，解釋下題意。構造函數輸入一堆句子以及它們出現的次數，而後input函數每次輸入一個字符，找出歷史輸入加上如今輸入的字符串爲前綴的出現次數最多的3個句子，若是出現‘#’，則將當前的句子做爲出現一次的句子添加到數據集中，而後將句子置爲空。這道題能夠不用Trie解決，last數據集用於記錄上一次符合條件的字符串，由於後面輸入一個字符，必然是從上一次數據集的子集，而後調用優先級隊列找出頻率前三的字符串便可

Code:

 

 1 class AutocompleteSystem {
 2 public:
 3     struct mycompare{
 4         bool operator()(pair<int,string> &p1,pair<int,string> &p2){
 5             if(p1.first < p2.first) 
 6                 return true;
 7             else if(p1.first > p2.first)
 8                 return false;
 9             else{
10                 return p1.second > p2.second;
11             }
12         }
13     };
14     AutocompleteSystem(vector<string> sentences, vector<int> times) {
15         sentence = "";
16         for(int i = 0;i != sentences.size();++i){
17             count[sentences[i]] = times[i];
18         }
19     }
20     
21     vector<string> input(char c) {
22         if(c == '#'){
23             count[sentence]++;
24             sentence = "";
25             last.clear();
26             return {};
27         }
28         sentence += c;
29         if(sentence.size() == 1){
30             for(auto iter:count){
31                 if(iter.first.at(0) == c)
32                     last.insert(iter.first);
33             }
34         }
35         else{
36             int m = sentence.size()-1;
37             auto iter = last.begin();
38             while(iter != last.end()){
39                 string str = *iter;
40                 if(str[m] != c)
41                     iter = last.erase(iter);
42                 else
43                     iter++;
44             }
45         }
46         priority_queue<pair<int,string>,vector<pair<int,string>>,mycompare> pq;
47         for(auto str:last)
48             pq.push(make_pair(count[str],str));
49         vector<string> result;
50         int k = 0;
51         while(!pq.empty() && k != 3){
52             result.push_back(pq.top().second);
53             pq.pop();
54             k++;
55         }
56         return result;
57     }
58 private:
59     unordered_set<string> last;
60     string sentence;
61     unordered_map<string,int> count;
62 };
63 
64 /**
65  * Your AutocompleteSystem object will be instantiated and called as such:
66  * AutocompleteSystem obj = new AutocompleteSystem(sentences, times);
67  * vector<string> param_1 = obj.input(c);
68  */