Application of Mixture and Non-mixture Cure Models in Survival Analysis of Patients With COVID-19
Mohadese Kamalzade, Jamileh Abolghasemi, Masoud Salehi, Malihe Hasannezhad, Sadegh Kargarian-Marvasti

TL;DR
This study uses cure models to analyze survival rates of COVID-19 patients and identifies age and medication as key factors affecting long-term survival.
Contribution
The study introduces the log-logistic mixed cure model with a logit link as a suitable method for analyzing survival in a subset of long-term surviving COVID-19 patients.
Findings
The log-logistic mixed cure model with a logit link provided the best fit for survival analysis.
Age and prescribed medication type were significant predictors of long-term survival.
Occupation was influential in short-term survival.
Abstract
Background Due to the emergence of new COVID-19 mutations and an increase in re-infection rates, it has become an important priority for the medical community to identify the factors affecting the short- and long-term survival of patients. This study aimed to determine the risk factors of short- and long-term survival in patients with COVID-19 based on mixture and non-mixture cure models. Methodology In this study, the data of 880 patients with COVID-19 confirmed with polymerase chain reaction in Fereydunshahr city (Isfahan, Iran) from February 20, 2020, to December 21, 2021, were gathered, and the vital status of these patients was followed for at least one year. Due to the high rate of censoring, mixture and non-mixture cure models were applied to estimate the survival. Akaike information criterion values were used to evaluate the fit of the models. Results In this study, the…
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Taxonomy
TopicsCOVID-19 Clinical Research Studies · SARS-CoV-2 and COVID-19 Research · COVID-19 diagnosis using AI
