• [Leetcode]937. Reorder Log Files给日志文件排序


    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.

    题意:

    给定日志文件(规定首单词是认证号), 要求以字母日志在前,数字日志在后的顺序排序

    思路:

    重写一个Comparator

    代码:

     1 class Solution {
     2       public String[] reorderLogFiles(String[] logs) {
     3        Comparator<String> myComp = new Comparator<String>() {
     4          @Override
     5          public int compare(String s1, String s2) {
     6            String[] split1 = s1.split(" ", 2);
     7            String[] split2 = s2.split(" ", 2);
     8            boolean isDigit1 = Character.isDigit(split1[1].charAt(0));
     9            boolean isDigit2 = Character.isDigit(split2[1].charAt(0));
    10            if(!isDigit1 && !isDigit2) {             
    11              int comp = split1[1].compareTo(split2[1]);
    12              if(comp != 0)
    13               return comp;
    14               return split1[0].compareTo(split2[0]);
    15            }
    16              return isDigit1 ? (isDigit2 ? 0 : 1) : -1;
    17          }
    18        };
    19        Arrays.sort(logs, myComp);
    20        return logs;
    21     }
    22 }
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  • 原文地址:https://www.cnblogs.com/liuliu5151/p/11026126.html
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