[LeetCode] 937. Reorder Data in Log Files
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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: logs = ["dig1 8 1 5 1","let1 art can","dig2 3 6","let2 own kit dig","let3 art zero"] Output: ["let1 art can","let3 art zero","let2 own kit dig","dig1 8 1 5 1","dig2 3 6"]
Constraints:
0 <= logs.length <= 100
3 <= logs[i].length <= 100
logs[i]
is guaranteed to have an identifier, and a word after the identifier.
重新排列日志文件。分两种日志,一种是字母日志,一种是数字日志。每个日志的第一个单词决定了他到底是字母日志还是数字日志,请按如下规则对日志排序。
- 所有 字母日志 都排在 数字日志 之前。
- 字母日志 在内容不同时,忽略标识符后,按内容字母顺序排序;在内容相同时,按标识符排序;
- 数字日志 应该按原来的顺序排列。
思路是需要自己写comparator函数。
时间O(nlogn)
空间O(n)
Java实现
1 class Solution { 2 public String[] reorderLogFiles(String[] logs) { 3 List<String> llogs = new ArrayList<>(); 4 List<String> dlogs = new ArrayList<>(); 5 for (String log : logs) { 6 int i = log.indexOf(" "); 7 char ch = log.charAt(i + 1); 8 if (ch >= \'0\' && ch <= \'9\') { 9 dlogs.add(log); 10 } else { 11 llogs.add(log); 12 } 13 } 14 Collections.sort(llogs, new Comparator<String>() { 15 @Override 16 public int compare(String s1, String s2) { 17 int index1 = s1.indexOf(" "); 18 String id1 = s1.substring(0, index1); 19 String letter1 = s1.substring(index1 + 1); 20 int index2 = s2.indexOf(" "); 21 String id2 = s2.substring(0, index2); 22 String letter2 = s2.substring(index2 + 1); 23 int v1 = letter1.compareTo(letter2); 24 if (v1 != 0) { 25 return v1; 26 } 27 int v2 = id1.compareTo(id2); 28 return v2; 29 } 30 }); 31 String[] res = new String[llogs.size() + dlogs.size()]; 32 int i = 0; 33 for (String s : llogs) { 34 res[i++] = s; 35 } 36 for (String s : dlogs) { 37 res[i++] = s; 38 } 39 return res; 40 } 41 }
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