Goodness of fit test for higher order binary Markov chain models

IF 0.1 Q4 MATHEMATICS Cogent mathematics & statistics Pub Date : 2018-01-01 DOI:10.1080/23311835.2017.1421003
Mahboobeh Zangeneh Sirdari, M. Islam
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引用次数: 3

Abstract

Abstract When the interest is in making statements about change based on repeated measurements of discrete data, one way to do so is using Markov chain models. Goodness of fit test to find a good model is very important in analyzing the underlying patterns and relationships in the repeated measures data. To test for the various associations in the models, the likelihood ratio and Wald tests are used. However, it has been observed that the efficient score tests can provide equally good tests and can provide an easier alternative. In this paper, we provide an extension of Tsiatis method for goodness of fit test on higher order Markov chains. In our method, we follow the approach of Tsiatis goodness of fit test in logistic regression models. New method provided in this paper is applied to real-life data to examine the suitability of the techniques.
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高阶二元马尔可夫链模型的拟合优度检验
当对基于离散数据的重复测量的变化的陈述感兴趣时,一种方法是使用马尔可夫链模型。拟合优度检验对于分析重复测量数据的潜在规律和关系是非常重要的。为了检验模型中的各种关联,使用了似然比和沃尔德检验。然而,据观察,有效的分数测试可以提供同样好的测试,并且可以提供一个更容易的替代方案。本文给出了高阶马尔可夫链拟合优度检验的Tsiatis方法的推广。在我们的方法中,我们在逻辑回归模型中采用Tsiatis拟合优度检验的方法。将本文提出的新方法应用于实际数据,以检验这些技术的适用性。
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