A Smart Trust Management Method to Detect On-Off Attacks in the Internet of Things

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Abstract

Internet of Things (IoT) resources cooperate with themselves for requesting and providing services. In heterogeneous and complex environments, those resources must trust each other. On-Off attacks threaten the IoT trust security through nodes performing good and bad behaviors randomly, to avoid being rated as a menace. Some countermeasures demand prior levels of trust knowledge and time to classify a node behavior. In some cases, a malfunctioning node can be mismatched as an attacker. In this paper, we introduce a smart trust management method, based on machine learning and an elastic slide window technique that automatically assesses the IoT resource trust, evaluating service provider attributes. In simulated and real-world data, this method was able to identify On-Off attackers and fault nodes with a precision up to 96% and low time consumption.

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Caminha, J., Perkusich, A., & Perkusich, M. (2018). A Smart Trust Management Method to Detect On-Off Attacks in the Internet of Things. Security and Communication Networks, 2018. https://doi.org/10.1155/2018/6063456

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