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Design of Binary Quantizers for Distributed Detection Under Secrecy Constraints

机译:保密约束下的分布式检测二进制量化器设计

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In this paper, we investigate the design of distributed detection networks in the presence of an eavesdropper (Eve). We consider the problem of designing binary sensor quantizers that maximize the Kullback-Leibler (KL) divergence at the fusion center (FC), when subject to a tolerable constraint on the KL divergence at Eve. We assume that the channels between the sensors and the FC (likewise the channels between the sensors and the Eve) are modeled as binary symmetric channels (BSCs). In the case of i.i.d. received symbols at both the FC and Eve, we prove that the structure of the optimal binary quantizers is a likelihood ratio test (LRT). We also present an algorithm to find the threshold of the optimal LRT, and illustrate it for the case of Additive white Gaussian noise (AWGN) observation models at the sensors. In the case of non-i.i.d. received symbols at both FC and Eve, we propose a dynamic-programming based algorithm to find efficient quantizers at the sensors. Numerical results are presented to illustrate the performance of the proposed network.
机译:在本文中,我们研究了存在窃听者(Eve)的分布式检测网络的设计。当在前夕对KL散度施加可容忍的约束时,我们考虑设计二进制传感器量化器的问题,以最大化融合中心(FC)的Kullback-Leibler(KL)散度。我们假设传感器和FC之间的通道(同样,传感器和Eve之间的通道)被建模为二进制对称通道(BSC)。如果是i.d.在FC和Eve接收到符号后,我们证明了最佳二进制量化器的结构是似然比检验(LRT)。我们还提出了一种算法,以找到最佳LRT的阈值,并针对传感器处的加性高斯白噪声(AWGN)观察模型的情况进行了说明。如果不是i.i.d.在FC和Eve接收到符号后,我们提出了一种基于动态编程的算法,以在传感器处找到有效的量化器。数值结果表明了所提出网络的性能。

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