Broadcasted nonparametric tensor regression

Author:

Zhou Ya12,Wong Raymond K W2,He Kejun1ORCID

Affiliation:

1. Center for Applied Statistics, Institute of Statistics and Big Data, Renmin University of China , Beijing , People’s Republic of China

2. Department of Statistics, Texas A&M University , College Station, TX , USA

Abstract

Abstract We propose a novel use of a broadcasting operation, which distributes univariate functions to all entries of the tensor covariate, to model the nonlinearity in tensor regression nonparametrically. A penalized estimation and the corresponding algorithm are proposed. Our theoretical investigation, which allows the dimensions of the tensor covariate to diverge, indicates that the proposed estimation yields a desirable convergence rate. We also provide a minimax lower bound, which characterizes the optimality of the proposed estimator for a wide range of scenarios. Numerical experiments are conducted to confirm the theoretical findings, and they show that the proposed model has advantages over its existing linear counterparts.

Funder

NSF

NSFC

Publisher

Oxford University Press (OUP)

Reference59 articles.

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4. Predicted parallel epigenomics data imputation with cloud-based tensor decomposition;Durham;Nature Communications,2018

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