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Decision-Making Accuracy for Sensor Networks with Inhomogeneous Poisson Observations

机译:传感器网络具有不均匀泊松观测的决策精度

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The paper considers a network of sensors which observes a time-inhomogeneous Poisson signal and has to decide, within a fixed time interval, between two hypotheses concerning the intensity of the observed signal. The focus is on the impact of information sharing among individual sensors on the accuracy of a decision. Each sensor computes locally a likelihood ratio based on its own observations, and, at the end of the decision interval, shares this information with its neighbors according to a communication graph, transforming each sensor to a decision-making unit. Using analytically derived upper bounds on the decision error probabilities, the capacity of each sensor as a decision maker is evaluated, and conse-quences of ranking are explored. Example communication topologies are studied to highlight the interplay between a sensor's location in the underlying communication graph (quantity of information) and the strength of the signal it observes (quality of information). The results are illustrated through application to the problem of deciding whether or not a moving target carries a radioactive source.
机译:本文考虑了一个传感器网络,其观察时间不均匀的泊松信号,并且必须在一个关于观察信号的强度的两个假设之间决定在固定时间间隔内。重点是在各个传感器之间对信息共享的影响决策的准确性。每个传感器基于其自己的观察来计算局部似然比,并且在决策间隔的末尾,根据通信图,将该信息与其邻居共享,将每个传感器转换为决策单元。在判定误差概率上使用分析派生的上限,评估每个传感器作为决策者的容量,并探讨了排名的Conse Quences。研究了示例通信拓扑,以突出传感器位置之间的相互作用,在底层通信图(信息量)和所观察信号的强度(信息质量)中。通过应用于决定移动目标是否带有放射源的问题来说明结果。

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