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Research Article | Open Access

The k nearest neighbors local linear estimator of semi functional partial linear model with missing response at random

Laboratory of Statistics and Stochastic Processes, University of Djillali Liabes BP 89, Sidi Bel Abbes 22000, Algeria; Email: benchikh.tawfik@gmail.com, attou_kadi@yahoo.fr
Medical Faculty, Djillali Liabes University BP 89, Sidi Bel Abbes, 22000, Algeria
Ecole Supérieure en Informatique, Sidi Bel Abbes, 22000, Algeria; Email: am.naceri@esi-sba.dz, o.fetitah@esi-sba.dz
Department of Mathematics, College of Science, King Khalid University, Abha 62223, Saudi Arabia; Email: imalmanjahi@kku.edu.sa
Department of Mathematical Sciences, College of Science, Princess Nourah bint Abdulrahman University, P.O. Box 84428, Riyadh 11671, Saudi Arabia; Email: fmalshahrani@pnu.edu.sa
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Abstract

This paper aims to investigate a semi-functional partial linear regression model in the presence of missing data in the response variable under the missing at random mechanism. We construct estimators using the kNN-local linear method and establish the asymptotic distribution of the parametric component. Additionally, the uniform almost complete consistency rates for the nonparametric component with respect to the number of neighbors under appropriate conditions is derived. Through simulations and real data analysis, we assess the effectiveness of the proposed approach and demonstrate its superiority by comparing it with existing methods for semi-functional partial linear regression models.

CLC number: 60G25, 62G05, 62G08, 62G20

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AIMS Mathematics
Pages 15929-15954

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Cite this article:
Naceri A, Benchikh T, Almanjahie IM, et al. The k nearest neighbors local linear estimator of semi functional partial linear model with missing response at random. AIMS Mathematics, 2025, 10(7): 15929-15954. https://doi.org/10.3934/math.2025714

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Received: 24 March 2025
Revised: 17 June 2025
Accepted: 08 July 2025
Published: 15 July 2025
©2025 the Author(s), licensee AIMS Press.

This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0)