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Joint Detection and Identification of an Unobservable Change in the Distribution of a Random Sequence

机译:联合检测和识别随机序列分布中不可观察的变化

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This paper examines the joint problem of detection and identification of a sudden and unobservable change in the probability distribution function (pdf) of a sequence of independent and identically distributed (i.i.d.) random variables to one of finitely many alternative pdf''s. The objective is quick detection of the change and accurate inference of the ensuing pdf. Following a Bayesian approach, a new sequential decision strategy for this problem is revealed and is proven optimal. Geometrical properties of this strategy are demonstrated via numerical examples.
机译:本文介绍了一个独立的和相同分布的概率分布函数(PDF)的检测和识别突然和不可观察变化的联合问题,并将其与最多的替代PDF'之一。目的是快速检测随后的PDF的变化和精确推理。在贝叶斯方法之后,揭示了这个问题的新的顺序决策策略,并被证明是最佳的。通过数值例子证明了该策略的几何特性。

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