An Intelligent Approach to Automated Operating Systems Log Analysis for Enhanced Security

被引:0
|
作者
Johnphill, Obinna [1 ]
Sadiq, Ali Safaa [1 ]
Kaiwartya, Omprakash [1 ]
Aljaidi, Mohammad [2 ]
机构
[1] Nottingham Trent Univ, Dept Comp Sci, Cyber Secur Res Grp CSRG, Clifton Lane, Nottingham NG11 8NS, England
[2] Zarqa Univ, Fac Informat Technol, Dept Comp Sci, Zarqa 13110, Jordan
关键词
multiclass system log classification; operating system log mining; self-healing systems; cybersecurity; CountVectorizer; feature selection; artificial intelligence;
D O I
10.3390/info15100657
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Self-healing systems have become essential in modern computing for ensuring continuous and secure operations while minimising downtime and maintenance costs. These systems autonomously detect, diagnose, and correct anomalies, with effective self-healing relying on accurate interpretation of system logs generated by operating systems (OSs). Manual analysis of these logs in complex environments is often cumbersome, time-consuming, and error-prone, highlighting the need for automated, reliable log analysis methods. Our research introduces an intelligent methodology for creating self-healing systems for multiple OSs, focusing on log classification using CountVectorizer and the Multinomial Naive Bayes algorithm. This approach involves preprocessing OS logs to ensure quality, converting them into a numerical format with CountVectorizer, and then classifying them using the Naive Bayes algorithm. The system classifies multiple OS logs into distinct categories, identifying errors and warnings. We tested our model on logs from four major OSs; Mac, Android, Linux, and Windows; sourced from Zenodo to simulate real-world scenarios. The model's accuracy, precision, and reliability were evaluated, demonstrating its potential for deployment in practical self-healing systems.
引用
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页数:37
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