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Trust and reputation scheme for clustering in Cognitive Radio Networks

机译:认知无线电网络中集群的信任和信誉方案

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Cognitive radio is the next-generation wireless communication network that improves the efficiency of the radio spectrum through exploitation of underutilized licensed spectrum (or white spaces). This paper applies a reinforcement learning-based Trust and Reputation Management (TRM) scheme to cluster-based routing and shows network performance enhancement, including throughput and rewards. Generally speaking, clustering forms logical groups of nodes throughout the entire network, and routing establishes routes on the underlying clustered network which is distributed in nature. Each cluster is comprised of a clusterhead (or the leader of the cluster) and member nodes. TRM is applied as a security measure to allow each node to determine credibility of its neighbouring nodes. Reinforcement Learning (RL) is applied to keep track of the credibility level of a node, and it provides reward based on a node's behaviour; subsequently the reward is applied to select clusterheads. The selection of trusted nodes as clusterheads has been a problem that is of great significance due to the important role played by clusterheads as the local point of process for various applications such as channel sensing and routing. Our simulation results show that the RL-based TRM approach applied to clusterhead selection helps to reduce the effects of attacks from malicious nodes, and this has been shown to increase average throughput and reward rate, as well as to reduce changes of clusterhead in a cluster.
机译:认知无线电是通过利用未充分利用的许可频谱(或空白空间)来提高无线电频谱效率的下一代无线通信网络。本文将基于强化学习的信任和信誉管理(TRM)方案应用于基于群集的路由,并展示了网络性能的增强,包括吞吐量和奖励。一般而言,集群形成了整个网络中节点的逻辑组,而路由则在自然分布的底层集群网络上建立了路由。每个群集由一个群集头(或群集的领导者)和成员节点组成。 TRM被用作一种安全措施,以允许每个节点确定其相邻节点的可信度。强化学习(RL)用于跟踪节点的信誉级别,并根据节点的行为提供奖励;随后,奖励将用于选择簇头。由于簇头作为各种应用程序(如信道感知和路由)的本地处理点所起的重要作用,因此选择可信节点作为簇头已经成为一个具有重大意义的问题。我们的模拟结果表明,应用于集群头选择的基于RL的TRM方法有助于减少来自恶意节点的攻击的影响,并且已证明这可以提高平均吞吐量和奖励率,并减少集群中集群头的变化。

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