leecode 937 Reorder Log Files (模拟)

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You have an array of logs.  Each log is a space delimited string of words.

For each log, the first word in each log is an alphanumeric identifier.  Then, either:

  • Each word after the identifier will consist only of lowercase letters, or;
  • Each word after the identifier will consist only of digits.

We will call these two varieties of logs letter-logs and digit-logs.  It is guaranteed that each log has at least one word after its identifier.

Reorder the logs so that all of the letter-logs come before any digit-log.  The letter-logs are ordered lexicographically ignoring identifier, with the identifier used in case of ties.  The digit-logs should be put in their original order.

Return the final order of the logs.

 

Example 1:

Input: ["a1 9 2 3 1","g1 act car","zo4 4 7","ab1 off key dog","a8 act zoo"]
Output: ["g1 act car","a8 act zoo","ab1 off key dog","a1 9 2 3 1","zo4 4 7"]

 

Note:

  1. 0 <= logs.length <= 100
  2. 3 <= logs[i].length <= 100
  3. logs[i] is guaranteed to have an identifier, and a word after the identifier.

 

大意:给你一些日志,包括英文日志和数字日志,每个日志又包括日志头和日志内容,日志头是第一个单词,日志内容全数字的是数字日志,全英文的是英文日志。要求排序后输出。

排序规则:对英文的日志,去掉日志头,按日志内容字典序排序。对数字的日志,按输入顺序。

                 总体上,英文日志在前,数字日志在后。

思路:对每个字符串的最后一位进行判断之后,分类到两个向量里,对英语日志用stringstream进行分割,然后sort排序。

代码:

class Solution {
public:
    static bool cmp(string s1,string s2){
        string news1="",news2="";
        stringstream ss1(s1);
        string s;
        int k = 0;
        while(ss1>>s){
            if(k > 0){
                news1 = news1 + s +" "; 
            }
            k++;
        }
        k = 0;
        stringstream ss2(s2);
        while(ss2>>s){
            if(k > 0){
                news2 = news2 + s +" "; 
            }
            k++;
        }
        if(news1<news2) return true;
           return false;
        //return news1 < news2;
    }
    vector<string> reorderLogFiles(vector<string>& logs) {
        vector<string>p1,p2,ans;
        for(int i = 0 ; i < logs.size() ; i++){
            string s = logs[i];
            if(s[s.size()-1]<='9' && s[s.size()-1] >= '0'){
                p2.push_back(s);
            }
            else{
                p1.push_back(s);
            }
        }
        sort(p1.begin(),p1.end(),cmp);
        for(int i = 0 ; i < p1.size() ; i ++){
            ans.push_back(p1[i]);
        }
        for(int i = 0 ; i < p2.size() ; i ++){
            ans.push_back(p2[i]);
        }
        return ans;
    }
};

 

posted on 2019-01-26 22:55  Esquecer  阅读(211)  评论(0编辑  收藏  举报

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