Literature DB >> 23956461

Bayesian geostatistical modelling with informative sampling locations.

D Pati1, B J Reich, D B Dunson.   

Abstract

We consider geostatistical models that allow the locations at which data are collected to be informative about the outcomes. A Bayesian approach is proposed, which models the locations using a log Gaussian Cox process, while modelling the outcomes conditionally on the locations as Gaussian with a Gaussian process spatial random effect and adjustment for the location intensity process. We prove posterior propriety under an improper prior on the parameter controlling the degree of informative sampling, demonstrating that the data are informative. In addition, we show that the density of the locations and mean function of the outcome process can be estimated consistently under mild assumptions. The methods show significant evidence of informative sampling when applied to ozone data over Eastern U.S.A.

Entities:  

Keywords:  Cox process; Gaussian process; Joint model; Point pattern; Posterior consistency; Preferential sampling

Year:  2011        PMID: 23956461      PMCID: PMC3744635          DOI: 10.1093/biomet/asq067

Source DB:  PubMed          Journal:  Biometrika        ISSN: 0006-3444            Impact factor:   2.445


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