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2024 | OriginalPaper | Chapter

Methods of Obtaining the Ridge Parameter K in Multiple Linear Regression Analysis

Authors : Mowafaq Muhammed Al-Kassab, Muhammad Abduljabar Al-Hasawi, Sherin Youns Mohyaldeen

Published in: Mathematical Analysis and Numerical Methods

Publisher: Springer Nature Singapore

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Abstract

This chapter delves into the methods of obtaining the Ridge parameter k in Multiple Linear Regression Analysis, emphasizing the use of Ridge Regression to mitigate the challenges posed by multicollinearity. By employing a new technique based on matrix X'X eigenvalues and eigenvectors, the authors introduce three estimators for the Ridge parameter k: as a constant, vector, and matrix. Through comprehensive statistical analysis, including correlation coefficients and mean squares error criteria, the study compares the performance of these estimators with traditional Ordinary Least Squares (OLS) methods. The results indicate that the Ridge Regression method, particularly when k is a vector, outperforms OLS in handling multicollinearity, offering more accurate and reliable parameter estimations. This chapter is a valuable resource for professionals seeking advanced techniques in regression analysis to improve model accuracy and interpretability.

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Literature
3.
go back to reference Al-Kassab, M.M., Al-Awjar, M.: Performance of the new ridge regression parameters. J. Adv. Math. Comp. Sci. 34(5), 1–9 (2019) Al-Kassab, M.M., Al-Awjar, M.: Performance of the new ridge regression parameters. J. Adv. Math. Comp. Sci. 34(5), 1–9 (2019)
6.
go back to reference Mansson, K., Shukur, G., Kibria, B.M.G.: On some ridge regression estimators: a Monte Carlo simulation study under different error variances. J. Statist. 17(1), 1–22 (2010) Mansson, K., Shukur, G., Kibria, B.M.G.: On some ridge regression estimators: a Monte Carlo simulation study under different error variances. J. Statist. 17(1), 1–22 (2010)
Metadata
Title
Methods of Obtaining the Ridge Parameter K in Multiple Linear Regression Analysis
Authors
Mowafaq Muhammed Al-Kassab
Muhammad Abduljabar Al-Hasawi
Sherin Youns Mohyaldeen
Copyright Year
2024
Publisher
Springer Nature Singapore
DOI
https://doi.org/10.1007/978-981-97-4876-1_40

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