Powering Filtration Process of Cyber Security Ecosystem Using Knowledge Graph

C. Asamoah, Lixin Tao, Keke Gai, Ning Jiang
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引用次数: 9

Abstract

Cyber Security breaches and attacks are on the ascendancy as corporations, governments, universities, and private individuals are conducting their business and personal transactions on the web. This increasing participating on the web necessitates that robust and efficient cyber security systems need to be put in place by these entities to safeguard their cyber assets. Intelligent Systems needs to be employed to buttress the cyber security protocols established in cloud computing for proper decision-making, which may depend on the effective knowledge representation. However, as one of the dominant industry standards for knowledge representation, Web Ontology Language (OWL) has limitations, such as the lack of support for custom relations. Pace University has extended OWL to support Knowledge Graph as a replacement to better support knowledge representation and decision making. This paper examines using KG as the basis in the design of a knowledge-representation system that drives the filtration process of a company's cyber security ecosystem in cloud computing by employing a use case of cyber security communications in-order to identify the entity relations of threat types for the filtration process.
利用知识图谱驱动网络安全生态系统过滤过程
随着企业、政府、大学和个人在网络上进行商业和个人交易,网络安全漏洞和攻击正在上升。随着网络参与度的不断提高,这些实体需要建立强大而高效的网络安全系统来保护其网络资产。为了实现正确的决策,需要使用智能系统来支持云计算中建立的网络安全协议,而这可能取决于有效的知识表示。然而,作为知识表示的主要行业标准之一,Web本体语言(OWL)存在局限性,如缺乏对定制关系的支持。佩斯大学扩展了OWL来支持知识图谱,以更好地支持知识表示和决策制定。本文将KG作为知识表示系统设计的基础,该系统采用网络安全通信用例来驱动云计算中公司网络安全生态系统的过滤过程,以便识别过滤过程中威胁类型的实体关系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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