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首页> 外文期刊>Communications in Statistics >Analyzing Binomial Data in a Split-Plot Design: Classical Approach or Modern Techniques?
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Analyzing Binomial Data in a Split-Plot Design: Classical Approach or Modern Techniques?

机译:在分割图设计中分析二项式数据:经典方法还是现代技术?

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摘要

Modeling data that are non-normally distributed with random effects is the major challenge in analyzing binomial data in split-plot designs. Seven methods for analyzing such data using mixed, generalized linear, or generalized linear mixed models are compared for the size and power of the tests. This study shows that analyzing random effects properly is more important than adjusting the analysis for non-normality. Methods based on mixed and generalized linear mixed models hold Type I error rates better than generalized linear models. Mixed model methods tend to have higher power than generalized linear mixed models when the sample size is small.
机译:建模具有随机效应的非正态分布的数据是分析分割图设计中的二项式数据的主要挑战。比较了使用混合,广义线性或广义线性混合模型分析此类数据的七种方法的测试大小和功效。这项研究表明,正确分析随机效应比调整非正态分析更为重要。基于混合和广义线性混合模型的方法比广义线性模型具有更好的I类错误率。当样本量较小时,混合模型方法往往比广义线性混合模型具有更高的功效。

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