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Learning-based algorithm for energy-efficient channel decision in cognitive radio-based wireless sensor networks

机译:基于学习的认知无线电无线传感器网络中的节能信道决策算法

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Cognitive radio-based wireless sensor network is the new paradigm in sensor network technology. It is a combination of the traditional sensor network and cognitive radio technology. Apparent challenge to this new sensor network outlook is the problem of energy efficiency. In this paper, we present the energy-efficient channel decision using reinforcement learning-based algorithm. The proposed algorithm is a learning-based algorithm in which a learning agent decides its action in a particular state based on its learned experience in the past. Hence, future decisions are based on reward or punishment obtained from previous actions. Results of simulations carried out shows that the proposed algorithm performs nearly 70% better in terms of energy-efficiency compared with random channel selection scheme.
机译:基于认知无线电的无线传感器网络是传感器网络技术的新范例。它是传统传感器网络和认知无线电技术的结合。这种新型传感器网络前景的明显挑战是能源效率问题。在本文中,我们提出了基于增强学习的算法的节能通道决策。提出的算法是一种基于学习的算法,其中学习代理根据过去的学习经验来决定其在特定状态下的动作。因此,未来的决定是基于从先前行动中获得的报酬或惩罚。仿真结果表明,与随机信道选择方案相比,该算法在能效方面提高了近70%。

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