On testing for infections during epidemics, with application to Covid-19 in Ontario, Canada
During an epidemic, accurate estimation of the numbers of viral infections in different regions and groups is important for understanding transmission and guiding public health actions. This depends on effective testing strategies that identify a high proportion of infections (that is, provide high...
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KeAi Communications Co., Ltd.
2021-01-01
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doaj-8e77df1a19c14559b3b553e9101ae0a92021-07-31T04:40:28ZengKeAi Communications Co., Ltd.Infectious Disease Modelling2468-04272021-01-016930941On testing for infections during epidemics, with application to Covid-19 in Ontario, CanadaJerald F. Lawless0Ping Yan1Department of Statistics and Actuarial Science, University of Waterloo, Waterloo, ON, N2L 3G1, Canada; Corresponding author.Department of Statistics and Actuarial Science, University of Waterloo, Waterloo, ON, N2L 3G1, Canada; Public Health Agency of Canada, 130 Colonnade Rd., Ottawa, ON, K1A 0K9, CanadaDuring an epidemic, accurate estimation of the numbers of viral infections in different regions and groups is important for understanding transmission and guiding public health actions. This depends on effective testing strategies that identify a high proportion of infections (that is, provide high ascertainment rates). For the novel coronavirus SARS-CoV-2, ascertainment rates do not appear to be high in most jurisdictions, but quantitative analysis of testing has been limited. We provide statistical models for studying testing and ascertainment rates, and illustrate them on public data on testing and case counts in Ontario, Canada.http://www.sciencedirect.com/science/article/pii/S2468042721000518Count dataCOVID-19ModellingTesting strategiesAscertainment rate |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Jerald F. Lawless Ping Yan |
spellingShingle |
Jerald F. Lawless Ping Yan On testing for infections during epidemics, with application to Covid-19 in Ontario, Canada Infectious Disease Modelling Count data COVID-19 Modelling Testing strategies Ascertainment rate |
author_facet |
Jerald F. Lawless Ping Yan |
author_sort |
Jerald F. Lawless |
title |
On testing for infections during epidemics, with application to Covid-19 in Ontario, Canada |
title_short |
On testing for infections during epidemics, with application to Covid-19 in Ontario, Canada |
title_full |
On testing for infections during epidemics, with application to Covid-19 in Ontario, Canada |
title_fullStr |
On testing for infections during epidemics, with application to Covid-19 in Ontario, Canada |
title_full_unstemmed |
On testing for infections during epidemics, with application to Covid-19 in Ontario, Canada |
title_sort |
on testing for infections during epidemics, with application to covid-19 in ontario, canada |
publisher |
KeAi Communications Co., Ltd. |
series |
Infectious Disease Modelling |
issn |
2468-0427 |
publishDate |
2021-01-01 |
description |
During an epidemic, accurate estimation of the numbers of viral infections in different regions and groups is important for understanding transmission and guiding public health actions. This depends on effective testing strategies that identify a high proportion of infections (that is, provide high ascertainment rates). For the novel coronavirus SARS-CoV-2, ascertainment rates do not appear to be high in most jurisdictions, but quantitative analysis of testing has been limited. We provide statistical models for studying testing and ascertainment rates, and illustrate them on public data on testing and case counts in Ontario, Canada. |
topic |
Count data COVID-19 Modelling Testing strategies Ascertainment rate |
url |
http://www.sciencedirect.com/science/article/pii/S2468042721000518 |
work_keys_str_mv |
AT jeraldflawless ontestingforinfectionsduringepidemicswithapplicationtocovid19inontariocanada AT pingyan ontestingforinfectionsduringepidemicswithapplicationtocovid19inontariocanada |
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