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Power-linear models for incomplete contingency tables with nonignorable non-responses

Authors
Kim, SeongyoungPark, Yousung
Issue Date
2-Nov-2015
Publisher
TAYLOR & FRANCIS LTD
Keywords
boundary solution; correlation; generalized linear model; nonignorable non-responses; power link functions
Citation
STATISTICS, v.49, no.6, pp.1189 - 1203
Indexed
SCIE
SCOPUS
Journal Title
STATISTICS
Volume
49
Number
6
Start Page
1189
End Page
1203
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/91939
DOI
10.1080/02331888.2013.869595
ISSN
0233-1888
Abstract
For categorical data exhibiting nonignorable non-responses, it is well known that maximum likelihood (ML) estimates with a boundary solution are implausible and do not provide a perfect fit to the observed data even for saturated models. We provide the conditions under which ML estimates for the generalized linear model (GLM) with the usual log/logit link function have a boundary solution. These conditions introduce a new GLM with appropriately defined power link functions where its ML estimates resolve the problems arising from a boundary solution and offer useful statistics for identifying the non-response mechanism. This model is applied to a real dataset and compared with Bayesian models.
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