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Exact Inference for Three-way Interaction EffectsExact Inference for Three-way Interaction Effects

Other Titles
Exact Inference for Three-way Interaction Effects
Authors
전수영
Issue Date
2013
Publisher
한국자료분석학회
Keywords
Contingency Table; Exact Inference; Three-way Interaction; Markov Chain Monte Carlo; Stochastic Approximation Monte Carlo.
Citation
Journal of The Korean Data Analysis Society, v.15, no.1, pp.41 - 51
Indexed
KCI
Journal Title
Journal of The Korean Data Analysis Society
Volume
15
Number
1
Start Page
41
End Page
51
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/105766
ISSN
1229-2354
Abstract
The contingency table analysis is generally based on the log-linear model conditioning on sufficient statistics. We can easily design algorithms to maintain these conditions, but it is often very difficult to ensure irreducibility, particularly, in no three-way interaction test. Recently, Cheon (2012) applied the stochastic approximation Monte Carlo algorithm (SAMC, Liang et al., 2007) to approximate the exact test of mutual independence in multiway contingency table. In this paper, we propose a method using SAMC to approximate the exact test for the contingency table as a test of the null hypothesis of no three-way interaction among variables. The proposed method avoids reducibility problem and its performance has been investigated on three real datasets, comparing with existing importance sampling and Markov chain Monte Carlo methods. The numerical results are in favor of our method in terms of quality of estimates.
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