Multi-bit Decentralized Detection of a Weak Signal in Wireless Sensor Networks with a Rao test

Xu Cheng, D. Ciuonzo, P. Rossi
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引用次数: 5

Abstract

We consider decentralized detection (DD) of an unknown signal corrupted by zero-mean unimodal noise via wireless sensor networks (WSNs). To cope with energy and/or bandwidth constraints, we assume that sensors adopt multilevel quantization. The data are then transmitted through binary symmetric channels to a fusion center (FC), where a Rao test is proposed as a simpler alternative to the generalized likelihood ratio test (GLRT). The asymptotic performance analysis of the multi-bit Rao test is provided and exploited to propose a (signal-independent) quantizer design. Numerical results show the effectiveness of Rao test in comparison to GLRT and the performance gain obtained by threshold optimization.
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基于Rao测试的无线传感器网络弱信号多比特分散检测
我们考虑通过无线传感器网络(WSNs)对被零均值单峰噪声破坏的未知信号进行分散检测(DD)。为了应对能量和/或带宽的限制,我们假设传感器采用多电平量化。然后,数据通过二进制对称通道传输到融合中心(FC),在那里,Rao测试被提出作为广义似然比测试(GLRT)的更简单的替代方案。给出了多位Rao测试的渐近性能分析,并利用该分析提出了一种(信号无关的)量化器设计。数值结果表明,Rao测试与GLRT测试相比是有效的,并且阈值优化获得了性能增益。
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