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首页> 外文期刊>IEEE communications letters >Rate and Channel Adaptation in Cognitive Radio Networks Under Time-Varying Constraints
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Rate and Channel Adaptation in Cognitive Radio Networks Under Time-Varying Constraints

机译:在时变约束下认知无线电网络的速率和通道适应

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We consider dynamic rate and channel adaptation in a cognitive radio network serving heterogeneous applications under dynamically varying channel availability and rate constraint. We formalize it as a Bayesian learning problem, and propose a novel learning algorithm, called Volatile Constrained Thompson Sampling (V-CoTS), which considers each rate-channel pair as a two-dimensional action. The set of available actions varies dynamically over time due to variations in primary user activity and rate requirements of the applications served by the users. Our algorithm learns to adapt its rate and opportunistically exploit spectrum holes when the channel conditions are unknown and channel state information is absent, by using acknowledgment only feedback. It uses the monotonicity of the transmission success probability in the transmission rate to optimally tradeoff exploration and exploitation of the actions. Numerical results demonstrate that V-CoTS achieves significant gains in throughput compared to the state-of-the-art methods.
机译:我们考虑在动态变化的信道可用性和速率约束下在服务异构应用的认知无线电网络中进行动态速率和信道适应。我们将其形式形式化为贝叶斯学习问题,并提出一种新颖的学习算法,称为挥发约束汤普森采样(V-COTS),其将每个速率通道对视为二维动作。由于主要用户活动的变化和用户服务的应用程序的速率要求,该组可用操作随着时间的变化而变化。我们的算法学习在通道条件未知的情况下,通过使用确认反馈,在信道条件未知并且不存在通道状态信息时,可以调整其速率和机会地利用频谱孔。它使用传输速率的传输成功概率的单调性,以最佳地权衡探索和开发行动。数值结果表明,与最先进的方法相比,V-Cots实现了吞吐量的显着增益。

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