2020
DOI: 10.1186/s41256-020-00175-y
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Application of artificial neural networks to predict the COVID-19 outbreak

Abstract: Background Millions of people have been infected worldwide in the COVID-19 pandemic. In this study, we aim to propose fourteen prediction models based on artificial neural networks (ANN) to predict the COVID-19 outbreak for policy makers. Methods The ANN-based models were utilized to estimate the confirmed cases of COVID-19 in China, Japan, Singapore, Iran, Italy, South Africa and United States of America. These models exploit historical records of… Show more

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Cited by 84 publications
(49 citation statements)
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“…In Ghazaly et al (2020), to predict the outbreak COVID-19 use AI and DL with time series using nonlinear regressive network (NAR). Niazkar and Niazkar (2020) predicted the COVID-19 outbreak by prediction models based on ANN. In Tamang et al (2020), to predict and forecast the number of death due to COVID-19, ANN-based curve fitting is used.…”
Section: Literature Survey On Mathematical Modelsmentioning
confidence: 99%
See 1 more Smart Citation
“…In Ghazaly et al (2020), to predict the outbreak COVID-19 use AI and DL with time series using nonlinear regressive network (NAR). Niazkar and Niazkar (2020) predicted the COVID-19 outbreak by prediction models based on ANN. In Tamang et al (2020), to predict and forecast the number of death due to COVID-19, ANN-based curve fitting is used.…”
Section: Literature Survey On Mathematical Modelsmentioning
confidence: 99%
“…( 2020 ), to predict the outbreak COVID-19 use AI and DL with time series using nonlinear regressive network (NAR). Niazkar and Niazkar ( 2020 ) predicted the COVID-19 outbreak by prediction models based on ANN. In Tamang et al.…”
Section: Introductionmentioning
confidence: 99%
“…In late 2019, a new coronavirus was isolated from pneumonia patients with unknown etiology for the first time in Wuhan, China 1,2 . According to the latest reported data, the emerging coronavirus has crossed international borders, infecting more than thirty‐seven million individuals, leading to more than million deaths 3 .…”
Section: Introductionmentioning
confidence: 99%
“…For this purpose, numerous prediction models have been proposed in the literature, which may be categorized into mathematical models [ 4 7 ] and soft computing approaches [ 3 , 8 , 9 ]. The former has many different types including simple explicit equations to a complicated system of equations with many parameters required to be calibrated.…”
Section: Introductionmentioning
confidence: 99%
“…The former has many different types including simple explicit equations to a complicated system of equations with many parameters required to be calibrated. The soft computing techniques use a part of data to capture the pandemic trend, which enables them to predict an approximation of future confirmed cases [ 9 ]. Both of these two types of prediction models require data either to calibrate parameters or to train intelligence-based models.…”
Section: Introductionmentioning
confidence: 99%