Estimation in regret-regression using quadratic inference functions with ridge estimator
In this paper, we propose a new estimation method in estimating optimal dynamic treatment regimes. The quadratic inference functions in myopic regret-regression (QIF-MRr) can be used to estimate the parameters of the mean response at each visit, conditional on previous states and actions. Singularit...
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my.um.eprints.404362024-07-15T07:51:10Z http://eprints.um.edu.my/40436/ Estimation in regret-regression using quadratic inference functions with ridge estimator Jalil, Nur Raihan Abdul Mohamed, Nur Anisah Yunus, Rossita Mohamad QA Mathematics In this paper, we propose a new estimation method in estimating optimal dynamic treatment regimes. The quadratic inference functions in myopic regret-regression (QIF-MRr) can be used to estimate the parameters of the mean response at each visit, conditional on previous states and actions. Singularity issues may arise during computation when estimating the parameters in ODTR using QIF-MRr due to multicollinearity. Hence, the ridge penalty was introduced in rQIF-MRr to tackle the issues. A simulation study and an application to anticoagulation dataset were conducted to investigate the model's performance in parameter estimation. The results show that estimations using rQIF-MRr are more efficient than the QIF-MRr. PUBLIC LIBRARY SCIENCE 2022-07-21 Article PeerReviewed Jalil, Nur Raihan Abdul and Mohamed, Nur Anisah and Yunus, Rossita Mohamad (2022) Estimation in regret-regression using quadratic inference functions with ridge estimator. PLOS ONE, 17 (7). ISSN 1932-6203, DOI https://doi.org/10.1371/journal.pone.0271542 <https://doi.org/10.1371/journal.pone.0271542>. https://doi.org/10.1371/journal.pone.0271542 10.1371/journal.pone.0271542 |
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QA Mathematics Jalil, Nur Raihan Abdul Mohamed, Nur Anisah Yunus, Rossita Mohamad Estimation in regret-regression using quadratic inference functions with ridge estimator |
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In this paper, we propose a new estimation method in estimating optimal dynamic treatment regimes. The quadratic inference functions in myopic regret-regression (QIF-MRr) can be used to estimate the parameters of the mean response at each visit, conditional on previous states and actions. Singularity issues may arise during computation when estimating the parameters in ODTR using QIF-MRr due to multicollinearity. Hence, the ridge penalty was introduced in rQIF-MRr to tackle the issues. A simulation study and an application to anticoagulation dataset were conducted to investigate the model's performance in parameter estimation. The results show that estimations using rQIF-MRr are more efficient than the QIF-MRr. |
format |
Article |
author |
Jalil, Nur Raihan Abdul Mohamed, Nur Anisah Yunus, Rossita Mohamad |
author_facet |
Jalil, Nur Raihan Abdul Mohamed, Nur Anisah Yunus, Rossita Mohamad |
author_sort |
Jalil, Nur Raihan Abdul |
title |
Estimation in regret-regression using quadratic inference functions with ridge estimator |
title_short |
Estimation in regret-regression using quadratic inference functions with ridge estimator |
title_full |
Estimation in regret-regression using quadratic inference functions with ridge estimator |
title_fullStr |
Estimation in regret-regression using quadratic inference functions with ridge estimator |
title_full_unstemmed |
Estimation in regret-regression using quadratic inference functions with ridge estimator |
title_sort |
estimation in regret-regression using quadratic inference functions with ridge estimator |
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PUBLIC LIBRARY SCIENCE |
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2022 |
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http://eprints.um.edu.my/40436/ https://doi.org/10.1371/journal.pone.0271542 |
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1805881120088129536 |