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Interval-Valued Intuitionistic Fuzzy-Analytic Hierarchy Process for evaluating the impact of security attributes in Fog based Internet of Things paradigm

机译:间隔的直观模糊分析层次评估基于FOG的安全属性的影响范式范式

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摘要

Internet of Things (IoT) may be defined as a network of smart devices that are involved in data collection and exchange. This technology has automated the day-to-day jobs and thus made our lives easier. But, realtime analysis of data is not always possible in a typical cloud-IoT architecture, especially for latency-sensitive applications. This led to the introduction of fog computing. On one side, fog layer has the capability of data processing and computation at the network edge and thus provides faster results. But, on the other hand, it also brings the attack surface closer to the devices. This makes the sensitive data on the layer vulnerable to attacks. Thus, considering Fog-IoT security is of prime importance. The security of a system or platform depends upon multiple factors. The order of selection of these factors plays a vital role in efficient assessment of security. This makes the problem of assessment of Fog-IoT security a Multi-Criteria Decision-Making (MCDM) problem. Therefore, the authors have deployed an Interval-Valued Intuitionistic Fuzzy Set (IVIFS) based Analytical Hierarchy Process (AHP) for the said environment. Using this integrated approach, the Fog-IoT security factors and their sub-factors are prioritized and ranked. The results obtained using above hybrid approach are validated by comparing them with Fuzzy-AHP (F-AHP) and Classical-AHP (C-AHP) results and are found to statistically correlated. The ideology and results of this research will help the security practitioners in accessing the security of Fog-IoT environment effectively. Moreover, the outcome of this analysis will help in paving a path for researchers by shifting their focus towards the most prioritized factor thereby assuring security in the environment.
机译:物联网(IOT)可以被定义为涉及数据收集和交换的智能设备网络。这项技术自动化日常工作,从而使我们的生活更容易。但是,在典型的Cloud-IoT架构中,对数据的实时分析并不总是可能,特别是对于延迟敏感的应用程序。这导致了雾计算的引入。在一侧,雾层具有数据处理和网络边缘的计算能力,从而提供更快的结果。但另一方面,它还使攻击表面更靠近设备。这使得易受攻击的层上的敏感数据。因此,考虑到FOG-IOT Security是一个重要的重要性。系统或平台的安全性取决于多个因素。这些因素的选择顺序在有效的安全性评估中起着至关重要的作用。这使得雾物有所安全评估的问题是一个多标准决策(MCDM)问题。因此,作者已经部署了用于所述环境的基于间隔值的直觉模糊集(IVIFS)的分析层次处理(AHP)。使用这种综合方法,优先级和排列雾物联网安全因子及其子因素。通过将其与模糊AHP(F-AHP)和经典-AHP(C-AHP)结果进行比较来验证使用上述混合方法获得的结果,并发现统计相关。该研究的意识形态和结果将有助于有效地帮助安全从业人员访问迷雾环境的安全性。此外,这种分析的结果将有助于通过将重点转移到最优先考虑的因素,从而确保环境中的安全性来帮助为研究人员铺平一条路径。

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