한국통계학회:학술대회논문집 (Proceedings of the Korean Statistical Society Conference)
- 한국통계학회 2003년도 춘계 학술발표회 논문집
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- Pages.85-90
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- 2003
A Bayesian Approach to Dependent Paired Comparison Rankings
- Kim, Hea-Jung (Dongguk University) ;
- Kim, Dae-Hwang (Department of Statistics, Dongguk University)
- 발행 : 2003.05.23
초록
In this paper we develop a method for finding optimal ordering of K statistical models. This is based on a dependent paired comparison experimental arrangement whose results can naturally be represented by a completely oriented graph (also so called tournament graph). Introducing preference probabilities, strong transitivity conditions, and an optimal criterion to the graph, we show that a Hamiltonian path obtained from row sum ranking is the optimal ordering. Necessary theories involved in the method and computation are provided. As an application of the method, generalized variances of K multivariate normal populations are compared by a Bayesian approach.
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