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nparcomp: An R software package for nonparametric multiple comparisons and simultaneous confidence intervals

机译:nparcomp:R软件包,用于非参数多重比较和同时置信区间

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摘要

One-way layouts, i.e., a single factor with several levels and multiple observations at each level, frequently arise in various fields. Usually not only a global hypothesis is of interest but also multiple comparisons between the different treatment levels. In most practical situations, the distribution of observed data is unknown and there may exist a number of atypical measurements and outliers. Hence, use of parametric and semipara-metric procedures that impose restrictive distributional assumptions on observed samples becomes questionable. This, in turn, emphasizes the demand on statistical procedures that enable us to accurately and reliably analyze one-way layouts with minimal conditions on available data. Nonparametric methods offer such a possibility and thus become of particular practical importance. In this article, we introduce a new R package nparcomp which provides an easy and user-friendly access to rank-based methods for the analysis of unbalanced one-way layouts. It provides procedures performing multiple comparisons and computing simultaneous confidence intervals for the estimated effects which can be easily visualized. The special case of two samples, the nonparametric Behrens-Fisher problem, is included. We illustrate the implemented procedures by examples from biology and medicine.
机译:单向布局,即具有多个级别的单个因子,并且每个级别都有多个观测值,经常出现在各个领域。通常,不仅要关注整体假设,而且还要对不同治疗水平之间进行多次比较。在大多数实际情况下,观测数据的分布是未知的,并且可能存在许多非典型测量值和异常值。因此,使用对观察样本施加限制性分布假设的参数和半参数程序成为可疑的。反过来,这也强调了对统计过程的需求,这些需求使我们能够以最少的可用数据条件准确,可靠地分析单向布局。非参数方法提供了这种可能性,因此变得特别重要。在本文中,我们介绍了一个新的R包nparcomp,它提供了一种方便且用户友好的方式来访问基于等级的方法,以分析不平衡的单向布局。它提供了执行多个比较并计算估计效果的同时置信区间的过程,这些效果可以很容易地看到。包括两个样本的特殊情况,即非参数Behrens-Fisher问题。我们以生物学和医学为例说明实施的程序。

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