回归、方差分析和信号比较的排列检验:permuco包

IF 5.4 2区 计算机科学 Q1 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS Journal of Statistical Software Pub Date : 2021-01-01 DOI:10.18637/jss.v099.i15
Jaromil Frossard, O. Renaud
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引用次数: 61

摘要

最近的方法学研究产生了排列方法来测试线性模型或重复测量方差分析中存在的有害变量的参数。排列测试对于克服多重比较问题也特别有用,因为它们用于测试因素或变量对信号的影响,同时控制家庭错误率(FWER)。本文介绍了permuco包,它实现了几种排列方法。它们都可以与多个比较过程(如集群质量测试或无阈值集群增强(TFCE))联合使用。permuco包的设计,首先,单变量排列测试与干扰变量,如回归和方差分析;其次,根据需要对信号进行比较,例如,使用脑电图(EEG)分析实验的事件相关电位(ERP)。本文描述了置换方法和实现的多重比较过程。本文提供了针对每种情况的教程。
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Permutation Tests for Regression, ANOVA, and Comparison of Signals: The permuco Package
Recent methodological researches produced permutation methods to test parameters in presence of nuisance variables in linear models or repeated measures ANOVA. Permutation tests are also particularly useful to overcome the multiple comparisons problem as they are used to test the effect of factors or variables on signals while controlling the family-wise error rate (FWER). This article introduces the permuco package which implements several permutation methods. They can all be used jointly with multiple comparisons procedures like the cluster-mass tests or threshold-free cluster enhancement (TFCE). The permuco package is designed, first, for univariate permutation tests with nuisance variables, like regression and ANOVA; and secondly, for comparing signals as required, for example, for the analysis of event-related potential (ERP) of experiments using electroencephalography (EEG). This article describes the permutation methods and the multiple comparisons procedures implemented. A tutorial for each of theses cases is provided.
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来源期刊
Journal of Statistical Software
Journal of Statistical Software 工程技术-计算机:跨学科应用
CiteScore
10.70
自引率
1.70%
发文量
40
审稿时长
6-12 weeks
期刊介绍: The Journal of Statistical Software (JSS) publishes open-source software and corresponding reproducible articles discussing all aspects of the design, implementation, documentation, application, evaluation, comparison, maintainance and distribution of software dedicated to improvement of state-of-the-art in statistical computing in all areas of empirical research. Open-source code and articles are jointly reviewed and published in this journal and should be accessible to a broad community of practitioners, teachers, and researchers in the field of statistics.
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