Two-Parameter Modified Ridge-Type M-Estimator for Linear Regression Model

Author:

Lukman Adewale F.1ORCID,Ayinde Kayode2,Golam Kibria B. M.3ORCID,Jegede Segun L.1

Affiliation:

1. Department of Physical Sciences, Landmark University, Omu-Aran, Nigeria

2. Department of Statistics, Federal University of Technology, Akure, Nigeria

3. Department of Mathematics and Statistics, Florida International University, Miami, FL, USA

Abstract

The general linear regression model has been one of the most frequently used models over the years, with the ordinary least squares estimator (OLS) used to estimate its parameter. The problems of the OLS estimator for linear regression analysis include that of multicollinearity and outliers, which lead to unfavourable results. This study proposed a two-parameter ridge-type modified M-estimator (RTMME) based on the M-estimator to deal with the combined problem resulting from multicollinearity and outliers. Through theoretical proofs, Monte Carlo simulation, and a numerical example, the proposed estimator outperforms the modified ridge-type estimator and some other considered existing estimators.

Publisher

Hindawi Limited

Subject

General Environmental Science,General Biochemistry, Genetics and Molecular Biology,General Medicine

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