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Belief State Approaches to Signaling Alarms in Surveillance Systems

机译:信仰状态在监控系统中发信号通知的方法

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Surveillance systems have long been used to monitor industrial processes and are becoming increasingly popular in public health and anti-terrorism applications. Most early detection systems produce a time series of p-values or some other statistic as their output. Typically, the decision to signal an alarm is based on a threshold or other simple algorithm such as CUSUM that accumulates detection information temporally. We formulate a POMDP model of underlying events and observations from a detector. We solve the model and show how it is used for single-output detectors. When dealing with spatio-temporal data, scan statistics are a popular method of building detectors. We describe the use of scan statistics in surveillance and how our POMDP model can be used to perform alarm signaling with them. We compare the results obtained by our method with simple thresholding and CUSUM on synthetic and semi-synthetic health data.
机译:监控系统长期以来一直用于监测工业流程,在公共卫生和反恐应用中越来越受欢迎。大多数早期检测系统产生的P值或其他统计量为它们的输出产生时间序列。通常,发信号警报的决定基于阈值或其他简单算法,例如Cusum,其在时间上累积检测信息。我们制定了潜在事件的POMDP模型和探测器的观察。我们解决了模型,并展示了它用于单输出探测器的用途。在处理时空数据时,扫描统计是一种普遍的建筑物检测器方法。我们描述了在监控中使用扫描统计信息以及我们的POMDP模型如何使用与它们进行警报信号。我们比较了我们在合成和半合成健康数据上具有简单阈值和CUSUM的方法获得的结果。

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