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Unexpected failures of recommended tests in basic statistical analyses of ecological data

机译:生态数据基本统计分析中推荐测试的意外失败

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Ecologists, when analyzing the output of simple experiments, often have to compare statistical samples that simultaneously are of uneven size, unequal variance and distribute non-normally. Although there are special tests designed to address each of these unsuitable characteristics, it is unclear how their combination affects the tests. Here we compare the performance of recommended tests using generated data sets that simulate statistical samples typical in ecological research. We measured rates of type I and II errors, and found that common parametric tests such as ANOVA are quite robust to non-normality, uneven sample size, unequal variance, and their effect combined. ANOVA and randomization tests produced very similar results. At the same time, the t-test for unequal variance unexpectedly lost power with samples of uneven size. Also, non-parametric tests were strongly affected by unequal variance in large samples, yet non-parametric tests could complement parametric tests when testing samples of uneven size. Thus, we demonstrate that the robustness of each kind of test strongly depends on the combination of parameters (distribution, sample size, equality of variances). We conclude that manuals should be revised to offer more elaborate instructions for applying specific statistical tests.
机译:生态学家在分析简单实验的输出时,常常不得不比较大小不均,方差不等且分布不正常的统计样本。尽管针对这些不合适的特征设计了特殊的测试,但尚不清楚它们的组合如何影响测试。在这里,我们使用模拟生态研究中典型的统计样本的生成数据集比较推荐测试的性能。我们测量了I型和II型错误的发生率,并发现常见的参数检验(例如ANOVA)对于非正态性,样本大小不均,方差不均以及它们的综合效果非常可靠。方差分析和随机试验得出的结果非常相似。同时,不均等方差的t检验会因大小不均的样本而意外丧失功效。同样,非参数测试在较大样本中受到不均等方差的强烈影响,但是当测试大小不均的样本时,非参数测试可以补充参数测试。因此,我们证明了每种测试的鲁棒性在很大程度上取决于参数的组合(分布,样本大小,方差相等)。我们得出结论,应该对手册进行修订,以提供适用于特定统计测试的更详尽的说明。

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