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稀疏函数型数据的有效降维

Effective dimension reduction for sparse functional data.

作者信息

Yao F, Lei E, Wu Y

机构信息

Department of Statistical Sciences, University of Toronto, Toronto, Ontario M5S 3G3, Canada.

Department of Statistics, North Carolina State University, Raleigh, North Carolina 27695, U.S.A.

出版信息

Biometrika. 2015 Jun;102(2):421-437. doi: 10.1093/biomet/asv006. Epub 2015 Apr 2.

Abstract

We propose a method of effective dimension reduction for functional data, emphasizing the sparse design where one observes only a few noisy and irregular measurements for some or all of the subjects. The proposed method borrows strength across the entire sample and provides a way to characterize the effective dimension reduction space, via functional cumulative slicing. Our theoretical study reveals a bias-variance trade-off associated with the regularizing truncation and decaying structures of the predictor process and the effective dimension reduction space. A simulation study and an application illustrate the superior finite-sample performance of the method.

摘要

我们提出了一种用于功能数据的有效降维方法,重点关注稀疏设计,即对于部分或所有受试者,仅观察到少数有噪声且不规则的测量值。所提出的方法利用整个样本的优势,并通过功能累积切片提供了一种表征有效降维空间的方法。我们的理论研究揭示了与预测过程和有效降维空间的正则化截断及衰减结构相关的偏差-方差权衡。一项模拟研究和一个应用实例说明了该方法卓越的有限样本性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/80bf/4640368/a66eece2e86d/nihms-733755-f0001.jpg

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