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A Novel Estimation Method in Generalized Single Index Models

Bibliographic Data

ID19419232
AuthorsDixin Zhang (Department of Finance, Nanjing University, Nanjing, Jiangsu, China), Yulin Wang (0000-0002-9899-7712, Shanghai University of Finance and Economics), Hua Liang (0000-0002-6670-4188, George Washington University, corresponding author)
Year2023
Volume41
Issue2
Pages399-413
Publication date2023-04-03
Peer ReviewedYes
Open AccessNo
TypeARTICLE
VenueJournal of Business and Economic Statistics (JOURNAL)
Journal identifiersISSN: 0735-0015 • E-ISSN: 1537-2707
PublisherInforma UK Limited (PUBLISHER • GB)
DOI10.1080/07350015.2022.2027777
OpenAlexW4206239430
LanguageEN
References cited38

The single index and generalized single index models have been demonstrated to be a powerful tool for studying nonlinear interaction effects of variables in the low-dimensional case. In this article, we propose a new estimation approach for generalized single index models E(Y | θ⊤X)=ψ(g(θ⊤X)) with ψ(·) known but g(·) unknown. Specifically, we first obtain a consistent estimator of the regression function by using a local linear smoother, and then estimate the parametric components by treating ψ(ĝ(θ⊤Xi)) as our continuous response. The resulting estimators of θ are asymptotically normal. The proposed procedure can substantially overcome convergence problems encountered in generalized linear models with discrete response variables when sparseness occurs and misspecification. We conduct simulation experiments to evaluate the numerical performance of the proposed methods and analyze a financial dataset from a peer-to-peer lending platform of China as an illustration

Estimator · Generalized linear model · Linear model · Mathematical optimization · Nonlinear system · Parametric statistics · Single-index model · Statistics · Bayesian Methods and Mixture Models · Computer Science · Financial Risk and Volatility Modeling · Mathematics · Statistical Methods and Inference · Applied Mathematics

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