Robust weights of generalized M-estimator for panel data
ABSTRACT Ordinary Least Square estimation for panel data suffers biasness in the presence of high leverage points. Robust alternatives are proposed by incorporating new robust weights in Generalized M-estimator; determined by superior outlier detection methods. In this study, Diagnostic Robust Gene...
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my-unisza-ir.13592020-11-12T07:05:59Z http://eprints.unisza.edu.my/1359/ Robust weights of generalized M-estimator for panel data Nor Mazlina, Abu Bakar@Harun Habsah, Midi QA75 Electronic computers. Computer science ZA4450 Databases ABSTRACT Ordinary Least Square estimation for panel data suffers biasness in the presence of high leverage points. Robust alternatives are proposed by incorporating new robust weights in Generalized M-estimator; determined by superior outlier detection methods. In this study, Diagnostic Robust Generalized Potential (DRGP) and Robust Diagnostic-F (RDF) are considered to form new weighting schemes for Robust Within GM-estimator. The performance of the newly proposed methods are called RWGM-DRGP and RWGM-RDF and investigated using real and simulated data sets. The ratios of root mean square error are evaluated and compared with the existing RWGM under robust centering procedures. The newly proposed estimators are found to be more efficient and resilient towards high leverage points due to the success of the new robust weights. The results are confirmed through reanalyzing numerical examples. 2017 Conference or Workshop Item NonPeerReviewed image en http://eprints.unisza.edu.my/1359/1/FH03-FESP-17-11875.jpg Nor Mazlina, Abu Bakar@Harun and Habsah, Midi (2017) Robust weights of generalized M-estimator for panel data. In: AIP Conference Proceedings, 4-7 December 2017, Universiti Utara MalaysiaKedah. |
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QA75 Electronic computers. Computer science ZA4450 Databases Nor Mazlina, Abu Bakar@Harun Habsah, Midi Robust weights of generalized M-estimator for panel data |
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ABSTRACT
Ordinary Least Square estimation for panel data suffers biasness in the presence of high leverage points. Robust alternatives are proposed by incorporating new robust weights in Generalized M-estimator; determined by superior outlier detection methods. In this study, Diagnostic Robust Generalized Potential (DRGP) and Robust Diagnostic-F (RDF) are considered to form new weighting schemes for Robust Within GM-estimator. The performance of the newly proposed methods are called RWGM-DRGP and RWGM-RDF and investigated using real and simulated data sets. The ratios of root mean square error are evaluated and compared with the existing RWGM under robust centering procedures. The newly proposed estimators are found to be more efficient and resilient towards high leverage points due to the success of the new robust weights. The results are confirmed through reanalyzing numerical examples. |
format |
Conference or Workshop Item |
author |
Nor Mazlina, Abu Bakar@Harun Habsah, Midi |
author_facet |
Nor Mazlina, Abu Bakar@Harun Habsah, Midi |
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Nor Mazlina, Abu Bakar@Harun |
title |
Robust weights of generalized M-estimator for panel data |
title_short |
Robust weights of generalized M-estimator for panel data |
title_full |
Robust weights of generalized M-estimator for panel data |
title_fullStr |
Robust weights of generalized M-estimator for panel data |
title_full_unstemmed |
Robust weights of generalized M-estimator for panel data |
title_sort |
robust weights of generalized m-estimator for panel data |
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2017 |
url |
http://eprints.unisza.edu.my/1359/1/FH03-FESP-17-11875.jpg http://eprints.unisza.edu.my/1359/ |
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