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Publication year
2014Source
Journal of Computational and Graphical Statistics, 23, 1, (2014), pp. 232-248ISSN
Publication type
Article / Letter to editor
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Organization
PI Group Statistical Imaging Neuroscience
Cognitive Neuroscience
Journal title
Journal of Computational and Graphical Statistics
Volume
vol. 23
Issue
iss. 1
Page start
p. 232
Page end
p. 248
Subject
220 Statistical Imaging Neuroscience; Radboudumc 0: Other Research DCMN: Donders Center for Medical NeuroscienceAbstract
We propose a penalized spline approach to performing large numbers of parallel non-parametric analyses of either of two types: restricted likelihood ratio tests of a parametric regression model versus a general smooth alternative, and nonparametric regression. Compared with naively performing each analysis in turn, our techniques reduce computation time dramatically. Viewing the large collection of scatterplot smooths produced by our methods as functional data, we develop a clustering approach to summarize and visualize these results. Our approach is applicable to ultra-high-dimensional data, particularly data acquired by neuroimaging; we illustrate it with an analysis of developmental trajectories of functional connectivity at each of approximately 70000 brain locations. Supplementary materials, including an appendix and an R package, are available online.
This item appears in the following Collection(s)
- Academic publications [243984]
- Donders Centre for Cognitive Neuroimaging [3983]
- Electronic publications [130695]
- Faculty of Medical Sciences [92811]
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