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A Proposal for Information Systems Security Monitoring Based on Large Datasets

机译:基于大数据集的信息系统安全监控的建议

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This article describes how the objective of recent advances in soft computing and machine learning models is the resolution of issues related to security monitoring for information systems. Most current techniques and models face significant limitations, in the monitoring of information systems. To address these limitations, the authors propose a new model designed to detect potential security breaches at an early stage using logging data. The proposed model uses unsupervised training techniques with a rule-based system to analyse data file logs. The proposed approach has been evaluated using a case study based on the learning of data file logs to determine the effectiveness of the proposed approach. Experimental results show that the proposed approach performs well, the results demonstrate that the proposed approach performs better than other conventional security methods in the identification of the correct decisions related to potential security in information systems.
机译:本文介绍了软计算和机器学习模型的最新进展如何解决与信息系统安全监视有关的问题。在监视信息系统方面,大多数当前的技术和模型都面临着很大的局限性。为了解决这些限制,作者提出了一种新模型,该模型旨在使用日志记录数据在早期阶段检测潜在的安全漏洞。提出的模型使用无监督训练技术和基于规则的系统来分析数据文件日志。使用基于数据文件日志学习的案例研究对提出的方法进行了评估,以确定提出的方法的有效性。实验结果表明,该方法在识别与信息系统中潜在安全性相关的正确决策方面比其他常规安全性方法表现更好。

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