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首页> 外文期刊>IEEE Transactions on Cognitive Communications and Networking >Optimal Channel Sensing Strategy for Cognitive Radio Networks With Heavy-Tailed Idle Times
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Optimal Channel Sensing Strategy for Cognitive Radio Networks With Heavy-Tailed Idle Times

机译:重尾空闲时间的认知无线电网络的最优信道感知策略

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In cognitive radio network (CRN), the secondary user (SU) opportunistically access the wireless channels whenever they are free from the licensed/primary user (PU). Even after occupying the channel, the SU has to sense the channel intermittently to detect reappearance of PU, so that it can stop its transmission and avoid interference to PU. Frequent channel sensing results in the degradation of SU’s throughput whereas sparse sensing increases the interference experienced by the PU. Thus, optimal sensing interval policy plays a vital role in CRN. In the literature, optimal channel sensing strategy has been analyzed for the case when the ON-OFF time distributions of PU are exponential. However, the analysis of recent spectrum measurement traces reveals that PU exhibits heavy-tailed idle times which can be approximated well with hyper-exponential distribution (HED). In this paper, we deduce the structure of optimal sensing interval policy for channels with HED OFF times through Markov decision process. We then use dynamic programming framework to derive suboptimal sensing interval policies. A new multishot sensing interval policy is proposed and it is compared with existing policies for its performance in terms of number of channel sensing and interference to PU.
机译:在认知无线电网络(CRN)中,只要次级用户(SU)摆脱了许可/主要用户(PU)的控制,它们就会有机会访问无线信道。即使在占用信道之后,SU也必须间歇性地感测信道以检测PU的出现,从而可以停止其传输并避免对PU的干扰。频繁的信道检测会导致SU吞吐量降低,而稀疏的检测则会增加PU所遭受的干扰。因此,最佳传感间隔策略在CRN中起着至关重要的作用。在文献中,对于PU的开-关时间分布是指数的情况,已经分析了最佳信道感测策略。然而,对最新频谱测量轨迹的分析表明,PU表现出重尾的空闲时间,可以用超指数分布(HED)很好地近似。本文通过马尔可夫决策过程推导了具有HED OFF时间的信道的最优感知间隔策略的结构。然后,我们使用动态编程框架来得出次优的感应间隔策略。提出了一种新的多重感知间隔策略,并将其与现有策略在信道感知数量和对PU的干扰方面的性能进行了比较。

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