PERBANDINGAN MODEL REGRESI LOGISTIK ORDINAL ANTARA MAXIMUM LIKELIHOOD ESTIMATION (MLE) DAN GENERALIZED METHOD OF MOMENT (GMM) UNTUK PREDIKSI TINGKAT BERAT BADAN LAHIR

Maximum Likelihood Estimation (MLE) and Generalized Method of Moment (GMM) are method of estimation used in ordinal logistic regression model to determine the effect among variables without requiring assumptions. This method can be used to estimate parameters in health data. Birth weight is an in...

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Main Author: SRI EKA PURWANENGSI, 101414153050
Format: Theses and Dissertations NonPeerReviewed
Language:Indonesian
Indonesian
Published: 2016
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Online Access:http://repository.unair.ac.id/45475/13/217.%20ABSTRAK.pdf
http://repository.unair.ac.id/45475/19/TKM.11-16%20Pur%20p.pdf
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Institution: Universitas Airlangga
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spelling id-langga.454752018-03-22T17:40:58Z http://repository.unair.ac.id/45475/ PERBANDINGAN MODEL REGRESI LOGISTIK ORDINAL ANTARA MAXIMUM LIKELIHOOD ESTIMATION (MLE) DAN GENERALIZED METHOD OF MOMENT (GMM) UNTUK PREDIKSI TINGKAT BERAT BADAN LAHIR SRI EKA PURWANENGSI, 101414153050 QA276-280 Mathematical Analysis Maximum Likelihood Estimation (MLE) and Generalized Method of Moment (GMM) are method of estimation used in ordinal logistic regression model to determine the effect among variables without requiring assumptions. This method can be used to estimate parameters in health data. Birth weight is an indicator of the health of the baby because it has an impact on the survival of the infant, if the baby is born less than 2500 grams known low birth weight (BBLR). Low birth weight is one of the causes of high infant mortality and morbidity in Indonesia. The purpose of this research is comparing the ordinal logistic regression Maximum Likelihood estimation method (MLE) and Generalized Method of Moments (GMM) for prediction of birth weight. This type of research was Study of Non Reactive. The sampling technique was simple random sampling with a sample size of 123 data. The study was conducted in April-May 2016. The results of ordinal logistic regression analysis using the MLE and GMM obtained that three variables X that significantly different with birth weight (Y) variable were age of the mother, age of pregnancy, and HB levels while the parity was not significant. The value R square of MLE method of 0.218 while the value of R square of GMM method of 0.242, so it can be concluded that the GMM method was better than the MLE because it has a larger R square. 2016 Thesis NonPeerReviewed text id http://repository.unair.ac.id/45475/13/217.%20ABSTRAK.pdf text id http://repository.unair.ac.id/45475/19/TKM.11-16%20Pur%20p.pdf SRI EKA PURWANENGSI, 101414153050 (2016) PERBANDINGAN MODEL REGRESI LOGISTIK ORDINAL ANTARA MAXIMUM LIKELIHOOD ESTIMATION (MLE) DAN GENERALIZED METHOD OF MOMENT (GMM) UNTUK PREDIKSI TINGKAT BERAT BADAN LAHIR. Thesis thesis, Universitas Airlangga. http://lib.unair.ac.id
institution Universitas Airlangga
building Universitas Airlangga Library
country Indonesia
collection UNAIR Repository
language Indonesian
Indonesian
topic QA276-280 Mathematical Analysis
spellingShingle QA276-280 Mathematical Analysis
SRI EKA PURWANENGSI, 101414153050
PERBANDINGAN MODEL REGRESI LOGISTIK ORDINAL ANTARA MAXIMUM LIKELIHOOD ESTIMATION (MLE) DAN GENERALIZED METHOD OF MOMENT (GMM) UNTUK PREDIKSI TINGKAT BERAT BADAN LAHIR
description Maximum Likelihood Estimation (MLE) and Generalized Method of Moment (GMM) are method of estimation used in ordinal logistic regression model to determine the effect among variables without requiring assumptions. This method can be used to estimate parameters in health data. Birth weight is an indicator of the health of the baby because it has an impact on the survival of the infant, if the baby is born less than 2500 grams known low birth weight (BBLR). Low birth weight is one of the causes of high infant mortality and morbidity in Indonesia. The purpose of this research is comparing the ordinal logistic regression Maximum Likelihood estimation method (MLE) and Generalized Method of Moments (GMM) for prediction of birth weight. This type of research was Study of Non Reactive. The sampling technique was simple random sampling with a sample size of 123 data. The study was conducted in April-May 2016. The results of ordinal logistic regression analysis using the MLE and GMM obtained that three variables X that significantly different with birth weight (Y) variable were age of the mother, age of pregnancy, and HB levels while the parity was not significant. The value R square of MLE method of 0.218 while the value of R square of GMM method of 0.242, so it can be concluded that the GMM method was better than the MLE because it has a larger R square.
format Theses and Dissertations
NonPeerReviewed
author SRI EKA PURWANENGSI, 101414153050
author_facet SRI EKA PURWANENGSI, 101414153050
author_sort SRI EKA PURWANENGSI, 101414153050
title PERBANDINGAN MODEL REGRESI LOGISTIK ORDINAL ANTARA MAXIMUM LIKELIHOOD ESTIMATION (MLE) DAN GENERALIZED METHOD OF MOMENT (GMM) UNTUK PREDIKSI TINGKAT BERAT BADAN LAHIR
title_short PERBANDINGAN MODEL REGRESI LOGISTIK ORDINAL ANTARA MAXIMUM LIKELIHOOD ESTIMATION (MLE) DAN GENERALIZED METHOD OF MOMENT (GMM) UNTUK PREDIKSI TINGKAT BERAT BADAN LAHIR
title_full PERBANDINGAN MODEL REGRESI LOGISTIK ORDINAL ANTARA MAXIMUM LIKELIHOOD ESTIMATION (MLE) DAN GENERALIZED METHOD OF MOMENT (GMM) UNTUK PREDIKSI TINGKAT BERAT BADAN LAHIR
title_fullStr PERBANDINGAN MODEL REGRESI LOGISTIK ORDINAL ANTARA MAXIMUM LIKELIHOOD ESTIMATION (MLE) DAN GENERALIZED METHOD OF MOMENT (GMM) UNTUK PREDIKSI TINGKAT BERAT BADAN LAHIR
title_full_unstemmed PERBANDINGAN MODEL REGRESI LOGISTIK ORDINAL ANTARA MAXIMUM LIKELIHOOD ESTIMATION (MLE) DAN GENERALIZED METHOD OF MOMENT (GMM) UNTUK PREDIKSI TINGKAT BERAT BADAN LAHIR
title_sort perbandingan model regresi logistik ordinal antara maximum likelihood estimation (mle) dan generalized method of moment (gmm) untuk prediksi tingkat berat badan lahir
publishDate 2016
url http://repository.unair.ac.id/45475/13/217.%20ABSTRAK.pdf
http://repository.unair.ac.id/45475/19/TKM.11-16%20Pur%20p.pdf
http://repository.unair.ac.id/45475/
http://lib.unair.ac.id
_version_ 1681145464719671296