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Distributed Detection Over Adaptive Networks Using Diffusion Adaptation

机译:使用扩散自适应的自适应网络分布式检测

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We study the problem of distributed detection, where a set of nodes is required to decide between two hypotheses based on available measurements. We seek fully distributed and adaptive implementations, where all nodes make individual real-time decisions by communicating with their immediate neighbors only, and no fusion center is necessary. The proposed distributed detection algorithms are based on diffusion strategies [C. G. Lopes and A. H. Sayed, “Diffusion Least-Mean Squares Over Adaptive Networks: Formulation and Performance Analysis,” IEEE Trans. Signal Process., vol. 56, no. 7, pp. 3122–3136, July 2008; F. S. Cattivelli and A. H. Sayed, “Diffusion LMS Strategies for Distributed Estimation,” IEEE Trans. Signal Process., vol. 58, no. 3, pp. 1035–1048, March 2010; F. S. Cattivelli, C. G. Lopes, and A. H. Sayed, “Diffusion Recursive Least-Squares for Distributed Estimation Over Adaptive Networks,” IEEE Trans. Signal Process., vol. 56, no. 5, pp. 1865–1877, May 2008] for distributed estimation. Diffusion detection schemes are attractive in the context of wireless and sensor networks due to their scalability, improved robustness to node and link failure as compared to centralized schemes, and their potential to save energy and communication resources. The proposed algorithms are inherently adaptive and can track changes in the active hypothesis. We analyze the performance of the proposed algorithms in terms of their probabilities of detection and false alarm, and provide simulation results comparing with other cooperation schemes, including centralized processing and the case where there is no cooperation. Finally, we apply the proposed algorithms to the problem of spectrum sensing in cognitive radios.
机译:我们研究了分布式检测的问题,其中需要一组节点才能根据可用的度量在两个假设之间做出决定。我们寻求完全分布式和自适应的实现,其中所有节点仅通过与它们的直接邻居进行通信来做出单独的实时决策,并且不需要融合中心。所提出的分布式检测算法是基于扩散策略的。 G. Lopes和A. H. Sayed,“自适应网络上的扩散最小均方:公式化和性能分析”,IEEE Trans。信号处理,第一卷56号7,第3122–3136页,2008年7月; F. S. Cattivelli和A. H. Sayed,“分布式LMS分布式估计的策略”,IEEE Trans。信号处理,第一卷58号3,第1035-1048页,2010年3月; F. S. Cattivelli,C。G. Lopes和A. H. Sayed,“在自适应网络上进行分布式估计的扩散递归最小二乘”,IEEE Trans。信号处理,第一卷56号5,第1865-1877页,2008年5月]进行分布式估算。扩散检测方案在无线和传感器网络中具有吸引力,这是因为它们的可伸缩性,与集中式方案相比提高了对节点和链路故障的鲁棒性,并且具有节省能源和通信资源的潜力。所提出的算法本质上是自适应的,并且可以跟踪主动假设中的变化。我们从检测算法和虚警概率的角度分析了所提出算法的性能,并提供了与其他协作方案(包括集中处理和无协作情况)相比较的仿真结果。最后,我们将提出的算法应用于认知无线电中的频谱感应问题。

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