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Impact of Correlated Primary Transmissions on the Design of a Cognitive Radio Inference Engine

机译:相关初级传输对认知无线电推理引擎设计的影响

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We consider sensing for cognitive network users, in particular focusing on a scenario where a primary user (PU) and a secondary user (SU) operate on the same frequency band. The SU is interested in identifying transmission opportunities when the PU is silent. We investigate how this sensing performed by the SU can be improved through modeling the PU transmission pattern with increasing accuracy. In particular, we are interested in evaluating the impact of correlation in PU's transmissions. Therefore, we assume that the real behavior of the PU follows a Markov chain, used to model correlation in its activity, and we discuss how the maximum likelihood estimation of the SU can be subsequently improved by adding more information about this underlying process. In this way, the estimate can evolve into a maximum a-posteriori criterion, and furthermore knowledge about the whole Markov chain can be exploited. Also, we investigate the practical setup of training periods of variable length used to estimate the PU's parameters.
机译:我们考虑对认知网络用户感测,特别是专注于主用户(PU)和辅助用户(SU)在同一频带上操作的场景。苏有兴趣在PU沉默时识别传输机会。我们调查如何通过以提高精度建模PU传输模式来改善SU执行的该感测。特别是,我们有兴趣评估PU的传输中相关的影响。因此,我们假设PU的真实行为跟随Markov链,用于在其活动中模拟相关性,并且我们讨论如何通过添加有关该底层过程的更多信息来改善SU的最大似然估计。以这种方式,估计可以进化为最大A-Bouthiori标准,并且还可以利用关于整个马尔可夫链的知识。此外,我们调查了用于估计PU参数的可变长度的实际设置。

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