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Second-Order Asymptotic Optimality in Multisensor Sequential Change Detection

机译:多传感器顺序变化检测中的二阶渐近最优性

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A generalized multisensor sequential change detection problem is considered, in which a number of (possibly correlated) sensors monitor an environment in real time, the joint distribution of their observations is determined by a global parameter vector, and at some unknown time there is a change in an unknown subset of components of this parameter vector. The goal is to detect the change as soon as possible, while controlling the rate of false alarms. We establish the second-order asymptotic optimality (with respect to Lorden’s criterion) of various generalizations of the CUSUM rule; that is, we show that their additional expected worst case detection delay (relative to the one that could be achieved if the affected subset was known) remains bounded as the rate of false alarm goes to 0, for any possible subset of affected components. This general framework incorporates the traditional multisensor setup in which only an unknown subset of sensors is affected by the change. The latter problem has a special structure which we exploit in order to obtain feasible representations of the proposed schemes. We present the results of a simulation study where we compare the proposed schemes with scalable detection rules that are only first-order asymptotically optimal. Finally, in the special case that the change affects exactly one sensor, we consider the scheme that runs in parallel the local CUSUM rules and study the problem of specifying the local thresholds.
机译:考虑了一个广义的多传感器顺序变化检测问题,其中许多(可能是相关的)传感器实时监视环境,其观测值的联合分布由全局参数矢量确定,并且在某个未知时间发生变化在此参数向量的分量的未知子集中。目的是在控制误报率的同时,尽快发现变化。我们建立CUSUM规则的各种泛化的二阶渐近最优性(相对于Lorden准则);也就是说,我们表明,对于任何可能的受影响组件子集,当误报率变为0时,它们的额外预期最坏情况检测延迟(相对于已知受影响子集时可以实现的延迟)仍然是有限的。该通用框架结合了传统的多传感器设置,其中只有未知的传感器子集受更改影响。后一个问题具有一种特殊的结构,我们可以利用它来获得所提出方案的可行表示。我们提出了一项仿真研究的结果,在该研究中,我们将所提出的方案与仅一阶渐近最优的可伸缩检测规则进行了比较。最后,在这种变化仅影响一个传感器的特殊情况下,我们考虑与本地CUSUM规则并行运行的方案,并研究指定本地阈值的问题。

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