Monitoring SEIRD model parameters using MEWMA for the COVID-19 pandemic with application to the state of Qatar
المؤلف | Boone, Edward L. |
المؤلف | Abdel-Salam, Abdel Salam G. |
المؤلف | Sahoo, Indranil |
المؤلف | Ghanam, Ryad |
المؤلف | Chen, Xi |
المؤلف | Hanif, Aiman |
تاريخ الإتاحة | 2022-08-23T07:04:22Z |
تاريخ النشر | 2021-01-01 |
اسم المنشور | Journal of Applied Statistics |
المعرّف | http://dx.doi.org/10.1080/02664763.2021.1985091 |
الاقتباس | Edward L. Boone, Abdel-Salam G. Abdel-Salam, Indranil Sahoo, Ryad Ghanam, Xi Chen & Aiman Hanif (2021) Monitoring SEIRD model parameters using MEWMA for the COVID-19 pandemic with application to the state of Qatar, Journal of Applied Statistics, DOI: 10.1080/02664763.2021.1985091 |
الرقم المعياري الدولي للكتاب | 02664763 |
الملخص | During the current COVID-19 pandemic, decision-makers are tasked with implementing and evaluating strategies for both treatment and disease prevention. In order to make effective decisions, they need to simultaneously monitor various attributes of the pandemic such as transmission rate and infection rate for disease prevention, recovery rate which indicates treatment effectiveness as well as the mortality rate and others. This work presents a technique for monitoring the pandemic by employing an Susceptible, Exposed, Infected, Recovered, Death model regularly estimated by an augmented particle Markov chain Monte Carlo scheme in which the posterior distribution samples are monitored via Multivariate Exponentially Weighted Average process monitoring. This is illustrated on the COVID-19 data for the State of Qatar. |
اللغة | en |
الناشر | Taylor and Francis Group |
الموضوع | augmented particle Markov chain Monte Carlo COVID-19 Epidemiology Multivariate exponentially weighted moving average process monitoring |
النوع | Article |
ESSN | 1360-0532 |
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