Generalized ridge regresyon by using deformed logarithms
2019
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Danışman: Dr. Öğr. Üyesi Esra Pamukçu ; Dr. Öğr. Üyesi Mehmet Niyazi Çankaya
Özet (EN)
Ridge regression is an alternative approach in regression analysis when there is multicollinearity problem between independent variables. The aim of this study is to define M-estimators which is a generalization of the likelihood estimators by using deformed logarithms and to perform ridge regression analysis with M-estimators based on deformed logarithms. In this way, both multicollinearity problem will be overcome and robust estimations will be obtained.. In order to demonstrate the effectiveness and applicability of the proposed method, two applications was performed on the real data sets. The importance of ridge parameter was determined in ridge regression using M-estimation method based on deformed logarithms and comparisons of ridge Huber M-estimation and Student t distribution regression parameters with maximum likelihood estimators were made.
Yazar
Dr. Meryem Göktürk Şap
Bu Yayına Nasıl Atıf Yapılır
Meryem Göktürk Şap (Master Thesis). Generalized ridge regresyon by using deformed logarithms, 2019, Fırat University.
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