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Transformations of count data for tests of interaction in factorial and split-plot experiments

机译:因子数据和分解图实验中交互测试的计数数据转换

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In applied entomological experiments, when the response is a count-type variable, certain transformation remedies such as the square root, logarithm (log), or rank transformation are often used to normalize data before analysis of variance. In this study, we examine the usefulness of these transformations by reanalyzing field-collected data from a split-plot experiment and by performing a more comprehensive simulation study of factorial and split-plot experiments. For field-collected data, significant interactions were dependent upon the type of transformation. For the simulation study, Poisson distributed errors were used for a 2 by 2 factorial arrangement, in both randomized complete block and split-plot settings. Various sizes of main effects were induced, and type I error rates and powers of the tests for interaction were examined for the raw response values, log-, square root-, and rank-transformed responses. The aligned rank transformation also was investigated because it has been shown to perform well in testing interactions in factorial arrangements. We found that for testing interactions, the untransformed response and the aligned rank response performed best (preserved nominal type I error rates), whereas the other transformations had inflated error rates when main effects were present. No evaluations of the tests for main effects or simple effects have been conducted. Potentially these transformations will still be necessary when performing these tests.
机译:在应用的昆虫学实验中,当响应是计数类型的变量时,在进行方差分析之前,通常使用某些转换方法(例如平方根,对数(log)或秩转换)对数据进行归一化。在这项研究中,我们通过重新分析拆分图实验中的实地数据并通过对阶乘和拆分图实验进行更全面的模拟研究,来检验这些转换的有用性。对于现场收集的数据,重要的交互作用取决于转换类型。对于仿真研究,在随机完整块和分割图设置中,泊松分布误差用于2×2因数排列。诱发了各种大小的主要影响,并针对原始响应值,对数,平方根和秩变换的响应检查了I型错误率和交互测试的功效。还对对齐的秩变换进行了研究,因为它已被证明在测试阶乘安排中的交互方面表现良好。我们发现,对于交互测试,未转换的响应和对齐的秩响应表现最佳(保留了名义上的I型错误率),而其他转换在出现主要影响时却提高了错误率。没有对测试的主要效果或简单效果进行评估。在执行这些测试时,可能仍然需要进行这些转换。

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