A Thompson sampling approach to channel exploration-exploitation problem in multihop cognitive radio networks

V. Toldov, L. Clavier, V. Loscrí, N. Mitton
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引用次数: 21

Abstract

Cognitive radio technology is a promising solution to the exponential growth in bandwidth demand sustained by increasing number of ubiquitous connected devices. The allocated spectrum is opened to the secondary users conditioned on limited interference on the primary owner of the band. A major bottleneck in cognitive radio systems is to find the best available channel quickly from a large accessible set of channels. This work formulates the channel exploration-exploitation dilemma as a multi-arm bandit problem. Existing theoretical solutions to a multi-arm bandit are adapted for cognitive radio and evaluated in an experimental test-bed. It is shown that a Thompson sampling based algorithm efficiently converges to the best channel faster than the existing algorithms and achieves higher asymptotic average throughput. We then propose a multihop extension together with an experimental proof of concept.
多跳认知无线网络中信道探索利用问题的汤普森采样方法
认知无线电技术是一种很有前途的解决方案,可以解决由于无处不在的连接设备数量增加而导致的带宽需求呈指数增长的问题。分配的频谱开放给二级用户,条件是对该频段的主要所有者的干扰有限。认知无线电系统的一个主要瓶颈是从大量可访问的信道中快速找到最佳可用信道。本工作将渠道探索-开发困境表述为一个多臂强盗问题。现有的理论解决方案的多臂强盗适用于认知无线电,并在实验测试台上进行了评估。结果表明,基于汤普森采样的算法比现有算法更快地收敛到最佳信道,并获得更高的渐近平均吞吐量。然后,我们提出了一个多跳扩展以及一个实验概念证明。
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