多用户机会性频谱接入中的合作与学习

Hua Liu, B. Krishnamachari, Qing Zhao
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引用次数: 70

摘要

我们考虑了在频谱机会时变且空间不均匀的双通道感知机会频谱接入网络中,两个辅助用户应该如何交互以最大化其总吞吐量。通过将主用户占用率建模为离散时间马尔可夫链,利用部分可观察马尔可夫决策过程求解器得到最优动态协调策略。我们还开发了几种易于处理的方法-基于二级用户之间明确通信的合作多用户方法,涉及使用碰撞反馈信息的基于学习的方法,以及基于非合作独立决策的单用户方法。作为基准,我们考虑静态分区策略,其中两个用户都分配了自己的单个通道。仿真比较了这些策略的性能,得出了几个有趣的发现:最优方案可以显著改善静态分区;合作多用户方法在所有情况下都显示出接近最优的性能;在某些情况下,通过碰撞反馈学习是有益的;单用户方法通常表现不佳。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cooperation and Learning in Multiuser Opportunistic Spectrum Access
We consider how two secondary users should interact to maximize their total throughput in a two- channel sensing-based opportunistic spectrum access network where spectrum opportunities are time varying and spatially inhomogeneous. By modeling the occupancy of the primary users as discrete-time Markov chains, we obtain the optimal dynamic coordination policy using a partially observable Markov decision process (POMDP) solver. We also develop several tractable approaches - a cooperative multiuser approach based on explicit communication between the secondary users, a learning-based approach involving use of collision feedback information, and a single-user approach based on uncooperative independent decisions. As a baseline we consider the static partitioning policy where both users are allocated a single channel of their own. Simulations comparing the performance of these strategies yield several interesting findings: that significant improvements over static partitioning are possible with the optimal scheme; that the cooperative multiuser approach shows near-optimal performance in all cases; that there are scenarios when learning through collision feedback can be beneficial; and that the single-user approach generally shows poor performance.
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