A variational Bayes method for pharmacokinetic model

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초록

In the following paper we introduce a variational Bayes method that approximates posterior distributions with mean-field method. In particular, we introduce automatic differentiation variation inference (ADVI), which approximates joint posterior distributions using the product of Gaussian distributions after transforming parameters into real coordinate space, and then apply it to pharmacokinetic models that are models for the study of the time course of drug absorption, distribution, metabolism and excretion. We analyze real data sets using ADVI and compare the results with those based on Markov chain Monte Carlo. We implement the algorithms using Stan.

키워드

automatic differentiation variational inferencemarkov chain monte carlopharmacokinetic modelsstanvariational bayes
제목
A variational Bayes method for pharmacokinetic model
저자
Park, SunJo, SeongilLee, Woojoo
DOI
10.5351/KJAS.2021.34.1.009
발행일
2021-02
유형
Article
저널명
응용통계연구
34
1
페이지
9 ~ 23