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Activity Number: 341
Type: Topic Contributed
Date/Time: Tuesday, August 11, 2015 : 10:30 AM to 12:20 PM
Sponsor: W.J. Youden Award in Interlaboratory Testing
Abstract #316349 View Presentation
Title: Bayesian Local Contamination Models for Multivariate Outliers
Author(s): Garritt L. Page* and David Dunson
Companies: Pontificia Universidad Católica de Chile and Duke University
Keywords: Bayesian robustness ; Inter-laboratory studies ; Mixtures
Abstract:

In studies where data are generated from multiple locations or sources it is common for there to exist observations that are quite unlike the majority. Motivated by the application of establishing a reference value in an inter-laboratory setting when outlying labs are present, we propose a local contamination model that is able to accommodate unusual multivariate realizations in a flexible way. The proposed method models the process level of a hierarchical model using a mixture with a parametric component and a possibly nonparametric contamination. Much of the flexibility in the methodology is achieved by allowing varying random subsets of the elements in the lab-specific mean vectors to be allocated to the contamination component. Computational methods are developed and the methodology is compared to three other possible approaches using a simulation study. We apply the proposed method to a NIST/NOAA sponsored inter-laboratory study which motivated the methodological development.


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