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21-08-2024

Statistical Machine and Deep Learning Methods for Forecasting of Covid-19

Authors: Mamta Juneja, Sumindar Kaur Saini, Harleen Kaur, Prashant Jindal

Published in: Wireless Personal Communications | Issue 1/2024

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Abstract

The outbreak of Covid-19 has prompted researchers to develop predictive models for forecasting the spread of the virus. This article compares the performance of statistical machine learning methods like polynomial regression, ARIMA, and deep learning models such as RNN in predicting Covid-19 cases and deaths in five countries: India, South Korea, the US, the UK, and Italy. The study highlights the strengths and limitations of each model in different contexts, providing valuable insights into the most effective approaches for predicting pandemic trends. The article concludes with recommendations for future research and the application of these models in similar pandemics.

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Literature
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Metadata
Title
Statistical Machine and Deep Learning Methods for Forecasting of Covid-19
Authors
Mamta Juneja
Sumindar Kaur Saini
Harleen Kaur
Prashant Jindal
Publication date
21-08-2024
Publisher
Springer US
Published in
Wireless Personal Communications / Issue 1/2024
Print ISSN: 0929-6212
Electronic ISSN: 1572-834X
DOI
https://doi.org/10.1007/s11277-024-11518-0