首页> 外文期刊>Journal of Clinical Epidemiology >Increasing physicians' awareness of the impact of statistics on research outcomes: comparative power of the t-test and and Wilcoxon Rank-Sum test in small samples applied research.
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Increasing physicians' awareness of the impact of statistics on research outcomes: comparative power of the t-test and and Wilcoxon Rank-Sum test in small samples applied research.

机译:越来越多的医生意识到统计学对研究结果的影响:t检验和Wilcoxon秩和检验在小样本应用研究中的比较功效。

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摘要

To effectively evaluate medical literature, practicing physicians and medical researchers must understand the impact of statistical tests on research outcomes. Applying inefficient statistics not only increases the need for resources, but more importantly increases the probability of committing a Type I or Type II error. The t-test is one of the most prevalent tests used in the medical field and is the uniformally most powerful unbiased test (UMPU) under normal curve theory. But does it maintain its UMPU properties when assumptions of normality are violated? A Monte Carlo investigation evaluates the comparative power of the independent samples t-test and its nonparametric counterpart, the Wilcoxon Rank-Sum (WRS) test, to violations from population normality, using three commonly occurring distributions and small sample sizes. The t-test was more powerful under relatively symmetric distributions, although the magnitude of the differences was moderate. Under distributions with extreme skews, the WRS held large power advantages. When distributions consist of heavier tails or extreme skews, the WRS should be the test of choice. In turn, when population characteristics are unknown, the WRS is recommended, based on the magnitude of these power differences in extreme skews, and the modest variation in symmetric distributions.
机译:为了有效评估医学文献,执业医师和医学研究人员必须了解统计测试对研究成果的影响。应用低效率的统计信息不仅增加了对资源的需求,而且更重要的是增加了犯下I型或II型错误的可能性。 t检验是医学领域中使用最广泛的检验之一,并且是法线曲线理论下统一最有效的无偏检验(UMPU)。但是,当违反正常性假设时,它是否保留其UMPU属性?蒙特卡洛调查使用三个普遍存在的分布和小样本量,评估了独立样本t检验及其非参数对应的Wilcoxon秩和检验(WRS)相对于总体正态性的比较能力。尽管差异的大小适中,但t检验在相对对称的分布下更有效。在极度倾斜的分布下,WRS拥有强大的功率优势。当分布由较重的尾部或极端的偏斜组成时,应选择WRS。反过来,当人口特征未知时,建议根据极端偏斜中这些功效差异的大小以及对称分布的适度变化来建议WRS。

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