JOURNAL ARTICLE

Orthogonality based modal empirical likelihood inferences for partially nonlinear models

Jieqiong LuPeixin ZhaoXiaoshuang Zhou

Year: 2024 Journal:   AIMS Mathematics Vol: 9 (7)Pages: 18117-18133   Publisher: American Institute of Mathematical Sciences

Abstract

<abstract><p>This paper explored the effective empirical likelihood inferences for partially nonlinear models. By combining the modal regression method with orthogonal projection technology, a modal empirical likelihood-based estimation procedure was proposed. The proposed empirical likelihood approach retained Wilk's theorem under mild conditions, and the confidence regions of model coefficients were constructed. Nonparametric and parametric components of the estimators were independent. Simulation results demonstrated that it is more robust and effective than the existing methods.</p></abstract>

Keywords:
Orthogonality Modal Nonlinear system Mathematics Econometrics Applied mathematics Physics Materials science Geometry

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Statistical Methods and Inference
Physical Sciences →  Mathematics →  Statistics and Probability
Control Systems and Identification
Physical Sciences →  Engineering →  Control and Systems Engineering
Spectroscopy and Chemometric Analyses
Physical Sciences →  Chemistry →  Analytical Chemistry

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