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Prior choice in discrete latent modeling of spatially referenced cancer survival

Authors
Lawson, Andrew B.Choi, JungsoonZhang, Jiajia
Issue Date
Apr-2014
Publisher
SAGE PUBLICATIONS LTD
Keywords
spatial; health; prior; Bayesian; latent; survival
Citation
STATISTICAL METHODS IN MEDICAL RESEARCH, v.23, no.2, pp.183 - 200
Indexed
SCIE
SCOPUS
Journal Title
STATISTICAL METHODS IN MEDICAL RESEARCH
Volume
23
Number
2
Start Page
183
End Page
200
URI
https://scholarworks.bwise.kr/hanyang/handle/2021.sw.hanyang/160300
DOI
10.1177/0962280212447148
ISSN
0962-2802
Abstract
In this article, we examine the development and use of covariate models where the relation with explanantory covariates is spatially adaptive. In this way space is regarded as an effect modifier. We examine the possibility of discrete groupings of coefficients (clustering of coefficients). Our application is to prostate cancer survival based on the SEER cancer registry for the state of Louisiana, USA. This registry holds individual records linked to vital outcomes and is geo-coded at county level. We examine a range of potential prior distributions for groupings of regression coefficients in application to these data.
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