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High Impact = High Statistical Standards? Not Necessarily So

机译:高影响力=高统计标准?不一定如此

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摘要

What are the statistical practices of articles published in journals with a high impact factor? Are there differences compared with articles published in journals with a somewhat lower impact factor that have adopted editorial policies to reduce the impact of limitations of Null Hypothesis Significance Testing? To investigate these questions, the current study analyzed all articles related to psychological, neuropsychological and medical issues, published in 2011 in four journals with high impact factors: Science, Nature, The New England Journal of Medicine and The Lancet, and three journals with relatively lower impact factors: Neuropsychology, Journal of Experimental Psychology-Applied and the American Journal of Public Health. show that Null Hypothesis Significance Testing without any use of confidence intervals, effect size, prospective power and model estimation, is the prevalent statistical practice used in articles published in Nature, 89%, followed by articles published in Science, 42%. By contrast, in all other journals, both with high and lower impact factors, most articles report confidence intervals and/or effect size measures. We interpreted these differences as consequences of the editorial policies adopted by the journal editors, which are probably the most effective means to improve the statistical practices in journals with high or low impact factors.
机译:在影响因子高的期刊上发表文章的统计实践是什么?与在影响因子稍低的期刊上发表的文章相比是否有差异,这些文章采用了编辑政策来减少零假设假设显着性检验的局限性影响?为了调查这些问题,本研究分析了与心理学,神经心理学和医学问题有关的所有文章,这些文章于2011年发表在四类影响因子高的期刊上:《科学》,《自然》,《新英格兰医学杂志》和《柳叶刀》,以及三篇相对影响较大的期刊。较低的影响因素:神经心理学,应用实验心理学杂志和美国公共卫生杂志。结果表明,不使用置信区间,效应大小,预期功效和模型估计的空假设显着性检验是《自然》杂志上使用的普遍统计实践,占89%,其次是《科学》杂志上的占42%。相反,在所有其他期刊中,无论影响因子高低,大多数文章都报告置信区间和/或效应量度。我们将这些差异解释为期刊编辑所采用的编辑政策的结果,这可能是改善具有高或低影响因子的期刊中统计实践的最有效手段。

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