Deep Reinforcement Learning for EH-Enabled Cognitive-IoT Under Jamming Attacks
Nadia Abdolkhani, Nada Abdel Khalek, and Walaa Hamouda

TL;DR
This paper presents a novel deep reinforcement learning framework that enables energy-harvesting cognitive IoT devices to optimize throughput and resilience against jamming attacks without prior knowledge, improving spectrum sharing efficiency.
Contribution
The paper introduces a new DRL approach with a UCB-IA algorithm for CIoT under jamming, enhancing adaptability, energy efficiency, and security in spectrum sharing.
Findings
The proposed DRL algorithm outperforms existing benchmarks in simulations.
The UCB-IA strategy improves jamming attack navigation.
The framework enables autonomous, energy-efficient decision-making in CIoT devices.
Abstract
In the evolving landscape of the Internet of Things (IoT), integrating cognitive radio (CR) has become a practical solution to address the challenge of spectrum scarcity, leading to the development of cognitive IoT (CIoT). However, the vulnerability of radio communications makes radio jamming attacks a key concern in CIoT networks. In this paper, we introduce a novel deep reinforcement learning (DRL) approach designed to optimize throughput and extend network lifetime of an energy-constrained CIoT system under jamming attacks. This DRL framework equips a CIoT device with the autonomy to manage energy harvesting (EH) and data transmission, while also regulating its transmit power to respect spectrum-sharing constraints. We formulate the optimization problem under various constraints, and we model the CIoT device's interactions within the channel as a model-free Markov decision process…
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Taxonomy
TopicsCognitive Radio Networks and Spectrum Sensing · Wireless Communication Security Techniques · Security in Wireless Sensor Networks
