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Parallel distributed Neyman-Pearson detection with privacy constraints

机译:具有隐私约束的并行分布式Neyman-Pearson检测

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In this paper, the privacy problem of a parallel distributed detection system vulnerable to an eavesdropper is proposed and studied in the Neyman-Pearson formulation. The privacy leakage is evaluated by a metric related to the Neyman-Pearson criterion. We will show that it is sufficient to consider a deterministic likelihood-ratio test for the optimal detection strategy at the eavesdropped sensor. This fundamental insight helps to simplify the problem to find the optimal privacy-constrained distributed detection system design. The trade-off between the detection performance and privacy leakage is illustrated in a numerical example.
机译:在本文中,以Neyman-Pearson公式提出并研究了易受窃听的并行分布式检测系统的隐私问题。隐私泄漏是通过与Neyman-Pearson准则相关的度量进行评估的。我们将表明,对于窃听传感器的最佳检测策略而言,考虑确定性似然比测试就足够了。这种基本见解有助于简化问题,以找到最佳的受隐私限制的分布式检测系统设计。数值示例说明了检测性能与隐私泄漏之间的权衡。

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