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首页> 外文期刊>Calcutta statistical association bulletin >INFERENGE PRINCIPLES FOR MULTIVARIATE SURVEILLANCE1
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INFERENGE PRINCIPLES FOR MULTIVARIATE SURVEILLANCE1

机译:多元监视的推理原理1

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Multivariate surveillance is of interest in industrial production as it enables the monitoring of several components. Recently there has been an increased interest also in other areas such as detection of bioterror-ism, spatial surveillance and transaction strategies in finance. Multivariate counterparts to the univariate Shewhart, EWMA and CUSUM methods have earlier been proposed. A review of general approaches to multivariate surveillance is given with respect to how suggested methods relate to general statistical inference principles. Multivariate on-line surveillance problems can be complex. The sufficiency principle can be of great use to find simplifications without loss of information. We will use this to clarify the structure of some problems. This will be of help to find relevant metrics for evaluations of multivariate surveillance and to find optimal methods. The sufficiency principle will be used to determine efficient methods to combine data from sources with different time lag. Surveillance of spatial data is one example. Illustrations will be given of surveillance of outbreaks of influenza.
机译:多元监视在工业生产中非常重要,因为它可以监视多个组件。最近,人们对其他领域也越来越感兴趣,例如发现生物恐怖主义,空间监视和金融交易策略。较早提出了单变量Shewhart,EWMA和CUSUM方法的多变量对应方法。本文就建议的方法与一般统计推断原则之间的关系进行了综述,对多元监测的一般方法进行了回顾。多元在线监视问题可能很复杂。充分性原则对于发现简化而不会丢失信息很有用。我们将使用它来阐明一些问题的结构。这将有助于找到用于评估多变量监视的相关指标并找到最佳方法。充分性原则将用于确定有效的方法,以合并来自具有不同时滞的来源的数据。空间数据的监视就是一个例子。将举例说明对流感爆发的监测。

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