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Principles of Model Specification in ANOVA Designs

机译:方差分析设计中的模型规范原则

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Abstract ANOVA—the workhorse of experimental psychology—seems well understood in that behavioral sciences have agreed-upon contrasts and reporting conventions. Yet, we argue this consensus hides considerable flaws in common ANOVA procedures, and these flaws become especially salient in the within-subject and mixed-model cases. The main thesis is that these flaws are in model specification. The specifications underlying common use are deficient from a substantive perspective, that is, they do not match reality in behavioral experiments. The problem, in particular, is that specifications rely on coincidental rather than robust statements about reality. We provide specifications that avoid making arguments based on coincidences, and note these Bayes factor model comparisons among these specifications are already convenient in the BayesFactor package. Finally, we argue that model specification necessarily and critically reflects substantive concerns, and, consequently, is ultimately the responsibility of substantive researchers. Source code for this project is at github/PerceptionAndCognitionLab/stat_aov2.
机译:文摘ANOVA-the主力实验想法是很好理解的行为科学已商定的对比和报告约定。共识隐藏着相当大的缺陷共同之处方差分析程序,这些缺陷在受试,尤其突出混合模式的案例。缺陷模型规范。常用规范基础从实质性的角度来看,不足是,他们不匹配现实行为实验。规范依靠巧合而不是健壮的陈述事实。基于规范,避免争论巧合,注意这些贝叶斯因子这些规范模型之间的比较已经在BayesFactor包方便。最后,我们认为模型规范一定和批判性反映出实质性的的担忧,因此,最终的实质性的研究人员的责任。在这个项目的代码

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