Analysis of cross‐over experiments with count data in the presence of carry‐over effects

IF 1.4 3区 数学 Q2 STATISTICS & PROBABILITY
Nelson Alirio Cruz, Luis Alberto López Pérez, Oscar Orlando Melo
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引用次数: 0

Abstract

This paper presents an experimental cross‐over design whose response variable is a count that belongs to the Poisson distribution. The methodology is extended to data with overdispersion or subdispersion. We present the theoretical development for analysis of cases with few treatments and a few periods. In this case, we consider the log‐linear link for estimation effects and the Delta method for the asymptotic inference of the estimators. When the number of periods and sequences increases, we propose an extension of the previous methodology, using the generalized linear models. In this extension, cross‐over designs for count data include treatments, sequences, time effects, covariables, and any correlation structure. The most important result of the methodology is that it allows the detection of significant factors within the cross‐over design when the response variable belongs to the exponential family, especially the treatment effects. Finally, we present the analysis of data obtained in a student hydration study and a simulation study. We show a comparison between the usual methods of analysis and those obtained in the present work, demonstrating the advantage over the usual methods in situations with carry‐over presence.
对存在结转效应的计数数据进行交叉实验分析
本文提出了一种实验交叉设计,其响应变量为属于泊松分布的计数。该方法可扩展到具有过色散或次色散的数据。我们提出了对几种治疗方法和几种时期的病例分析的理论发展。在这种情况下,我们考虑对数线性联系的估计效果和Delta方法的渐近推断的估计量。当周期和序列的数量增加时,我们提出使用广义线性模型扩展先前的方法。在这个扩展中,计数数据的交叉设计包括处理,序列,时间效应,协变量和任何相关结构。该方法最重要的结果是,当响应变量属于指数族时,它允许在交叉设计中检测显着因素,特别是处理效果。最后,我们对学生水化研究和模拟研究中获得的数据进行了分析。我们展示了通常的分析方法与在当前工作中获得的分析方法之间的比较,证明了在结转存在的情况下比通常方法的优势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Statistica Neerlandica
Statistica Neerlandica 数学-统计学与概率论
CiteScore
2.60
自引率
6.70%
发文量
26
审稿时长
>12 weeks
期刊介绍: Statistica Neerlandica has been the journal of the Netherlands Society for Statistics and Operations Research since 1946. It covers all areas of statistics, from theoretical to applied, with a special emphasis on mathematical statistics, statistics for the behavioural sciences and biostatistics. This wide scope is reflected by the expertise of the journal’s editors representing these areas. The diverse editorial board is committed to a fast and fair reviewing process, and will judge submissions on quality, correctness, relevance and originality. Statistica Neerlandica encourages transparency and reproducibility, and offers online resources to make data, code, simulation results and other additional materials publicly available.
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