DTMS-IoT: A Dirichlet-based trust management system mitigating on-off attacks and dishonest recommendations for the Internet of Things

Oumaima Ben Abderrahim, Mohamed Houcine Elhedhili, L. Saïdane
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引用次数: 8

Abstract

The Internet of Things (IoT) is based on the idea that things surrounding the human living space can be connected to the Internet, allowing smarter living environments and more comfortable life. However, adoption of the IoT might not be approved unless security issues are solved. In this paper, we propose a new Dirichlet based trust management system for the IoT called DTMS-IoT. This system detects nodes malicious behaviour which permits to mitigate both on-off attacks and dishonest recommendations. It also uses service levels and things capacities to reinforce security. As in many trust management systems introduced in the literature, the computation of trust in our solution is based on direct observations and recommendations. The novelty of our approach can be summed up in two aspects. The first aspect concerns recommendations that we do not consider unless direct observations are not credible. However the second aspect tries to prevent On-Off attacks using the precaution factor and mitigates dishonest recommendations based on k-means selection algorithm and guarantor things. The effectiveness of the proposed system is proved by simulation against on-off attacks and good/bad mouthing attacks.
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DTMS-IoT:基于dirichlet的信任管理系统,可减轻物联网的开关攻击和不诚实建议
物联网(IoT)的理念是将人类生活空间周围的事物连接到互联网,从而实现更智能的生活环境和更舒适的生活。然而,除非安全问题得到解决,否则物联网的采用可能不会得到批准。本文提出了一种新的基于Dirichlet的物联网信任管理系统DTMS-IoT。该系统检测节点的恶意行为,从而可以减轻开关攻击和不诚实的建议。它还使用服务级别和事物能力来加强安全性。与文献中介绍的许多信任管理系统一样,我们的解决方案中的信任计算基于直接观察和建议。我们方法的新颖性可以概括为两个方面。第一个方面涉及除非直接观察不可信,否则我们不会考虑的建议。然而,第二个方面试图使用预防因子来防止on - off攻击,并减轻基于k-means选择算法和保证事物的不诚实推荐。通过仿真验证了该系统在抗开关攻击和恶意攻击中的有效性。
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