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A New Framework for Distributed Detection With Conditionally Dependent Observations

机译:具有条件相关观测值的分布式检测新框架

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摘要

Distributed detection with conditionally dependent observations is known to be a challenging problem in decentralized inference. This paper attempts to make progress on this problem by proposing a new framework for distributed detection that builds on a hierarchical conditional independence model. Through the introduction of a hidden variable that induces conditional independence among the sensor observations, the proposed model unifies distributed detection with dependent or independent observations. This new framework allows us to identify several classes of distributed detection problems with dependent observations whose optimal decision rules resemble the ones for the independent case. The new framework induces a decoupling effect on the forms of the optimal local decision rules for these problems, much in the same way as the conditionally independent case. This is in sharp contrast to the general dependent case where the coupling of the forms of local sensor decision rules often renders the problem intractable. Such decoupling enables the use of, for example, the person-by-person optimization approach to find optimal local decision rules. Two classical examples in distributed detection with dependent observations are reexamined under this new framework: detection of a deterministic signal in dependent noises and detection of a random signal in independent noises.
机译:具有条件依赖观测的分布式检测是分散推理中的一个难题。本文试图通过提出一个新的基于分层条件独立模型的分布式检测框架来在此问题上取得进展。通过引入一个隐含变量,该变量在传感器观测值之间引起条件独立性,所提出的模型将分布式检测与相关观测值或独立观测值统一起来。这个新的框架使我们能够识别具有相关观测值的几类分布式检测问题,这些观测值的最佳决策规则类似于独立案例的决策规则。新框架对这些问题的最佳局部决策规则的形式产生去耦效应,与有条件独立案例的方式大致相同。这与通常的依赖情况形成鲜明对比,在常规情况下,本地传感器决策规则形式的耦合通常使问题变得棘手。这样的解耦使得能够使用例如逐人优化方法来找到最佳局部决策规则。在这个新框架下,重新研究了具有相关观测的分布式检测中的两个经典示例:在相关噪声中确定性信号的检测和在独立噪声中随机信号的检测。

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