Assessing the goodness of fit of the Gompertz model in the presence of right and interval censored data with covariate

This research focuses on assessing the goodness of fit for the Gompertz model in the presence of right and interval censored data with covariate. The performance of the maximum likelihood estimates was evaluated via a simulation study at various censoring proportions and sample sizes. The conclusion...

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Main Authors: Azid @ Maarof, Nur Niswah Naslina, Arasan, Jayanthi, Zulkafli, Hani Syahida, Mohd Bakri, Adam
Format: Article
Language:English
Published: Austrian Society for Statistics 2020
Online Access:http://psasir.upm.edu.my/id/eprint/87943/1/ABSTRACT.pdf
http://psasir.upm.edu.my/id/eprint/87943/
https://www.ajs.or.at/index.php/ajs/article/view/1085
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spelling my.upm.eprints.879432021-10-07T02:12:49Z http://psasir.upm.edu.my/id/eprint/87943/ Assessing the goodness of fit of the Gompertz model in the presence of right and interval censored data with covariate Azid @ Maarof, Nur Niswah Naslina Arasan, Jayanthi Zulkafli, Hani Syahida Mohd Bakri, Adam This research focuses on assessing the goodness of fit for the Gompertz model in the presence of right and interval censored data with covariate. The performance of the maximum likelihood estimates was evaluated via a simulation study at various censoring proportions and sample sizes. The conclusions were drawn based on the results of bias, standard error and root mean square error at different settings. Following that, another simulation study was carried out to compare the performance of the proposed modifications to the Cox-Snell residuals for both censored and uncensored observations at different combinations of sample sizes and censoring levels. The results show that standard error and root mean square error values of the parameter estimates increase with the increase in censoring proportions and decrease in the number of sample size. This indicates that the estimates perform better when sample sizes are larger and censoring proportions are lower. The performance of the proposed modifications of the Cox-Snell residuals showed that they perform slightly better than existing method. Austrian Society for Statistics 2020 Article PeerReviewed text en http://psasir.upm.edu.my/id/eprint/87943/1/ABSTRACT.pdf Azid @ Maarof, Nur Niswah Naslina and Arasan, Jayanthi and Zulkafli, Hani Syahida and Mohd Bakri, Adam (2020) Assessing the goodness of fit of the Gompertz model in the presence of right and interval censored data with covariate. Austrian Journal of Statistics, 49 (3 spec.). 57 - 71. ISSN 1026-597X https://www.ajs.or.at/index.php/ajs/article/view/1085 10.17713/ajs.v49i3.1085
institution Universiti Putra Malaysia
building UPM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Putra Malaysia
content_source UPM Institutional Repository
url_provider http://psasir.upm.edu.my/
language English
description This research focuses on assessing the goodness of fit for the Gompertz model in the presence of right and interval censored data with covariate. The performance of the maximum likelihood estimates was evaluated via a simulation study at various censoring proportions and sample sizes. The conclusions were drawn based on the results of bias, standard error and root mean square error at different settings. Following that, another simulation study was carried out to compare the performance of the proposed modifications to the Cox-Snell residuals for both censored and uncensored observations at different combinations of sample sizes and censoring levels. The results show that standard error and root mean square error values of the parameter estimates increase with the increase in censoring proportions and decrease in the number of sample size. This indicates that the estimates perform better when sample sizes are larger and censoring proportions are lower. The performance of the proposed modifications of the Cox-Snell residuals showed that they perform slightly better than existing method.
format Article
author Azid @ Maarof, Nur Niswah Naslina
Arasan, Jayanthi
Zulkafli, Hani Syahida
Mohd Bakri, Adam
spellingShingle Azid @ Maarof, Nur Niswah Naslina
Arasan, Jayanthi
Zulkafli, Hani Syahida
Mohd Bakri, Adam
Assessing the goodness of fit of the Gompertz model in the presence of right and interval censored data with covariate
author_facet Azid @ Maarof, Nur Niswah Naslina
Arasan, Jayanthi
Zulkafli, Hani Syahida
Mohd Bakri, Adam
author_sort Azid @ Maarof, Nur Niswah Naslina
title Assessing the goodness of fit of the Gompertz model in the presence of right and interval censored data with covariate
title_short Assessing the goodness of fit of the Gompertz model in the presence of right and interval censored data with covariate
title_full Assessing the goodness of fit of the Gompertz model in the presence of right and interval censored data with covariate
title_fullStr Assessing the goodness of fit of the Gompertz model in the presence of right and interval censored data with covariate
title_full_unstemmed Assessing the goodness of fit of the Gompertz model in the presence of right and interval censored data with covariate
title_sort assessing the goodness of fit of the gompertz model in the presence of right and interval censored data with covariate
publisher Austrian Society for Statistics
publishDate 2020
url http://psasir.upm.edu.my/id/eprint/87943/1/ABSTRACT.pdf
http://psasir.upm.edu.my/id/eprint/87943/
https://www.ajs.or.at/index.php/ajs/article/view/1085
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