REGRESI LOGISTIK POLIKOTOMUS DENGAN DATA HILANG

Logistic regression is an analytical tool generally applied in health studies and researchs whom the response variable have two values �success/yes� and �failure/no�. This paper intends to study polychotomous logistic regression models where the response variable has more than two categories...

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Main Authors: , SUSWANTI, , Prof. Dr. Sri Haryatmi, M.Sc.
格式: Theses and Dissertations NonPeerReviewed
出版: [Yogyakarta] : Universitas Gadjah Mada 2012
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spelling id-ugm-repo.990922016-03-04T08:48:49Z https://repository.ugm.ac.id/99092/ REGRESI LOGISTIK POLIKOTOMUS DENGAN DATA HILANG , SUSWANTI , Prof. Dr. Sri Haryatmi, M.Sc. ETD Logistic regression is an analytical tool generally applied in health studies and researchs whom the response variable have two values �success/yes� and �failure/no�. This paper intends to study polychotomous logistic regression models where the response variable has more than two categories and the covariates have missing values. In many medical data sets, we may face some missingness in some covariates such as denying to respond, lack of information in files, and incompleteness of study frame. In such case we deal with missing values. In this study, it is assumed that the missingness is at random and independent of deal with missing values. To obtain the estimator of parameters of the polychotomous logistic regression models it can use some method. In this thesis we use a Maximum Likelihood Estimation (MLE) of the parameter β from an polychotomous logistic regression models. It has been seen that the estimators obtained are not available in nice closed form, so they can be easily evaluated by using Newton- Raphson solution method. [Yogyakarta] : Universitas Gadjah Mada 2012 Thesis NonPeerReviewed , SUSWANTI and , Prof. Dr. Sri Haryatmi, M.Sc. (2012) REGRESI LOGISTIK POLIKOTOMUS DENGAN DATA HILANG. UNSPECIFIED thesis, UNSPECIFIED. http://etd.ugm.ac.id/index.php?mod=penelitian_detail&sub=PenelitianDetail&act=view&typ=html&buku_id=54846
institution Universitas Gadjah Mada
building UGM Library
country Indonesia
collection Repository Civitas UGM
topic ETD
spellingShingle ETD
, SUSWANTI
, Prof. Dr. Sri Haryatmi, M.Sc.
REGRESI LOGISTIK POLIKOTOMUS DENGAN DATA HILANG
description Logistic regression is an analytical tool generally applied in health studies and researchs whom the response variable have two values �success/yes� and �failure/no�. This paper intends to study polychotomous logistic regression models where the response variable has more than two categories and the covariates have missing values. In many medical data sets, we may face some missingness in some covariates such as denying to respond, lack of information in files, and incompleteness of study frame. In such case we deal with missing values. In this study, it is assumed that the missingness is at random and independent of deal with missing values. To obtain the estimator of parameters of the polychotomous logistic regression models it can use some method. In this thesis we use a Maximum Likelihood Estimation (MLE) of the parameter β from an polychotomous logistic regression models. It has been seen that the estimators obtained are not available in nice closed form, so they can be easily evaluated by using Newton- Raphson solution method.
format Theses and Dissertations
NonPeerReviewed
author , SUSWANTI
, Prof. Dr. Sri Haryatmi, M.Sc.
author_facet , SUSWANTI
, Prof. Dr. Sri Haryatmi, M.Sc.
author_sort , SUSWANTI
title REGRESI LOGISTIK POLIKOTOMUS DENGAN DATA HILANG
title_short REGRESI LOGISTIK POLIKOTOMUS DENGAN DATA HILANG
title_full REGRESI LOGISTIK POLIKOTOMUS DENGAN DATA HILANG
title_fullStr REGRESI LOGISTIK POLIKOTOMUS DENGAN DATA HILANG
title_full_unstemmed REGRESI LOGISTIK POLIKOTOMUS DENGAN DATA HILANG
title_sort regresi logistik polikotomus dengan data hilang
publisher [Yogyakarta] : Universitas Gadjah Mada
publishDate 2012
url https://repository.ugm.ac.id/99092/
http://etd.ugm.ac.id/index.php?mod=penelitian_detail&sub=PenelitianDetail&act=view&typ=html&buku_id=54846
_version_ 1681230480399138816