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首页> 外文期刊>The British journal of mathematical and statistical psychology >Properties of hypothesis testing techniques and (Bayesian) model selection for exploration-based and theory-based (order-restricted) hypotheses
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Properties of hypothesis testing techniques and (Bayesian) model selection for exploration-based and theory-based (order-restricted) hypotheses

机译:基于探索和基于理论(顺序受限)假设的假设检验技术和(贝叶斯)模型选择的属性

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摘要

In this paper, the performance of six types of techniques for comparisons of means is examined. These six emerge from the distinction between the method employed (hypothesis testing, model selection using information criteria, or Bayesian model selection) and the set of hypotheses that is investigated (a classical, exploration-based set of hypotheses containing equality constraints on the means, or a theory-based limited set of hypotheses with equality and/or order restrictions). A simulation study is conducted to examine the performance of these techniques. We demonstrate that, if one has specific, a priori specified hypotheses, confirmation (i.e., investigating theory-based hypotheses) has advantages over exploration (i.e., examining all possible equality-constrained hypotheses). Furthermore, examining reasonable order-restricted hypotheses has more power to detect the true effecton-null hypothesis than evaluating only equality restrictions. Additionally, when investigating more than one theory-based hypothesis, model selection is preferred over hypothesis testing. Because of the first two results, we further examine the techniques that are able to evaluate order restrictions in a confirmatory fashion by examining their performance when the homogeneity of variance assumption is violated. Results show that the techniques are robust to heterogeneity when the sample sizes are equal. When the sample sizes are unequal, the performance is affected by heterogeneity. The size and direction of the deviations from the baseline, where there is no heterogeneity, depend on the effect size (of the means) and on the trend in the group variances with respect to the ordering of the group sizes. Importantly, the deviations are less pronounced when the group variances and sizes exhibit the same trend (e.g., are both increasing with group number).
机译:在本文中,我们检验了六种用于均值比较的技术的性能。这六个方面的区别在于所采用的方法(假设检验,使用信息准则进行模型选择或贝叶斯模型选择)与所研究的假设集(基于探索的经典假设集,其均值约束相等,或具有相等和/或顺序限制的基于理论的有限假设集)。进行了仿真研究,以检查这些技术的性能。我们证明,如果有特定的先验指定假设,则确认(即研究基于理论的假设)相对于探索(即检查所有可能的均等约束假设)具有优势。此外,与仅评估相等性限制相比,研究合理的有序限制的假设具有更大的能力来检测真实效果/非零假设。此外,在研究多个基于理论的假设时,模型选择优于假设检验。由于前两个结果,我们进一步检查了能够在违反方差假设的同质性的情况下通过检查其性能来以确认方式评估订单限制的技术。结果表明,当样本数量相等时,该技术对于异质性具有鲁棒性。当样本大小不相等时,性能会受到异质性的影响。与基线之间的偏差的大小和方向(不存在异质性)取决于(均值的)效应大小以及与组大小有关的组方差趋势。重要的是,当组方差和大小呈现相同趋势时(例如,两者都随着组数而增加),偏差就不太明显。

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