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Channel Selection Algorithm for Cognitive Radio Networks with Heavy-Tailed Idle Times

机译:重尾空闲时间的认知无线网络信道选择算法

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We consider a multichannel Cognitive Radio Network (CRN), where secondary users sequentially sense channels for opportunistic spectrum access. In this scenario, the Channel Selection Algorithm (CSA) allows secondary users to find a vacant channel with the minimal number of channel switches. Most of the existing CSA literature assumes exponential ON-OFF time distribution for primary user's (PU) channel occupancy pattern. This exponential assumption might be helpful to get performance bounds; but not useful to evaluate the performance of CSA under realistic conditions. An in-depth analysis of independent spectrum measurement traces reveals that wireless channels have typically heavy-tailed PU OFF times. In this paper, we propose an extension to the Predictive CSA framework and its generalization for heavy tailed PU OFF time distribution, which represents realistic scenarios. In particular, we calculate the probability of channel being idle for hyper-exponential OFF times to use in CSA. We implement our proposed CSA framework in a wireless test-bed and comprehensively evaluate its performance by recreating the realistic PU channel occupancy patterns. The proposed CSA shows significant reduction in channel switches and energy consumption as compared to Predictive CSA which always assumes exponential PU ON-OFF times. Through our work, we show the impact of the PU channel occupancy pattern on the performance of CSA in multichannel CRN.
机译:我们考虑一个多通道认知无线电网络(CRN),其中二级用户依次感测用于机会频谱访问的信道。在这种情况下,通道选择算法(CSA)允许辅助用户找到具有最少数量的通道切换的空闲通道。现有的大多数CSA文献都假设主要用户(PU)信道占用模式的指数开-关时间分布。这个指数假设可能有助于获得性能界限。但对评估实际条件下CSA的性能没有帮助。对独立频谱测量轨迹的深入分析表明,无线信道通常具有很长的尾巴PU关闭时间。在本文中,我们提出了对预测性CSA框架的扩展及其对重尾PU OFF时间分布的概括,它代表了现实的情况。特别是,我们计算出在CSA中使用超指数OFF时间的信道空闲的可能性。我们在无线测试平台上实施了我们提出的CSA框架,并通过重新创建了现实的PU信道占用模式来全面评估其性能。与始终采用指数PU开-关时间的预测CSA相比,拟议的CSA显示出显着减少了信道切换和能耗。通过我们的工作,我们展示了PU信道占用模式对多信道CRN中CSA性能的影响。

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