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2023-04-11Zeitschriftenartikel
Collaborative nowcasting of COVID-19 hospitalization incidences in Germany
dc.contributor.authorWolffram, Daniel
dc.contributor.authorAbbott, Sam
dc.contributor.authoran der Heiden, Matthias
dc.contributor.authorFunk, Sebastian
dc.contributor.authorGünther, Felix
dc.contributor.authorHailer, Davide
dc.contributor.authorHeyder, Stefan
dc.contributor.authorHotz, Thomas
dc.contributor.authorvan de Kassteele, Jan
dc.contributor.authorKüchenhoff, Helmut
dc.contributor.authorMüller-Hansen, Sören
dc.contributor.authorSyliqi, Diellë
dc.contributor.authorUllrich, Alexander
dc.contributor.authorWeigert, Maximilian
dc.contributor.authorSchienle, Melanie
dc.contributor.authorBracher, Johannes
dc.date.accessioned2025-07-16T08:43:26Z
dc.date.available2025-07-16T08:43:26Z
dc.date.issued2023-04-11none
dc.identifier.other10.1371/journal.pcbi.1011394
dc.identifier.urihttp://edoc.rki.de/176904/12821
dc.description.abstractReal-time surveillance is a crucial element in the response to infectious disease outbreaks. However, the interpretation of incidence data is often hampered by delays occurring at various stages of data gathering and reporting. As a result, recent values are biased downward, which obscures current trends. Statistical nowcasting techniques can be employed to correct these biases, allowing for accurate characterization of recent developments and thus enhancing situational awareness. In this paper, we present a preregistered real-time assessment of eight nowcasting approaches, applied by independent research teams to German 7-day hospitalization incidences during the COVID-19 pandemic. This indicator played an important role in the management of the outbreak in Germany and was linked to levels of non-pharmaceutical interventions via certain thresholds. Due to its definition, in which hospitalization counts are aggregated by the date of case report rather than admission, German hospitalization incidences are particularly affected by delays and can take several weeks or months to fully stabilize. For this study, all methods were applied from 22 November 2021 to 29 April 2022, with probabilistic nowcasts produced each day for the current and 28 preceding days. Nowcasts at the national, state, and age-group levels were collected in the form of quantiles in a public repository and displayed in a dashboard. Moreover, a mean and a median ensemble nowcast were generated. We find that overall, the compared methods were able to remove a large part of the biases introduced by delays. Most participating teams underestimated the importance of very long delays, though, resulting in nowcasts with a slight downward bias. The accompanying prediction intervals were also too narrow for almost all methods. Averaged over all nowcast horizons, the best performance was achieved by a model using case incidences as a covariate and taking into account longer delays than the other approaches. For the most recent days, which are often considered the most relevant in practice, a mean ensemble of the submitted nowcasts performed best. We conclude by providing some lessons learned on the definition of nowcasting targets and practical challenges.eng
dc.language.isoengnone
dc.publisherRobert Koch-Institut
dc.rights(CC BY 3.0 DE) Namensnennung 3.0 Deutschlandger
dc.rights.urihttp://creativecommons.org/licenses/by/3.0/de/
dc.subjectEpidemiologyeng
dc.subjectAge groupseng
dc.subjectCOVID 19eng
dc.subjectPandemicseng
dc.subjectVirus testingeng
dc.subjectHospitalizationseng
dc.subjectHospitalseng
dc.subjectPublic and occupational healtheng
dc.subject.ddc610 Medizin und Gesundheitnone
dc.titleCollaborative nowcasting of COVID-19 hospitalization incidences in Germanynone
dc.typearticle
dc.identifier.urnurn:nbn:de:0257-176904/12821-4
dc.type.versionpublishedVersionnone
local.edoc.container-titlePLOS Computational Biologynone
local.edoc.type-nameZeitschriftenartikel
local.edoc.container-typeperiodical
local.edoc.container-type-nameZeitschrift
local.edoc.container-publisher-namePLOSnone
local.edoc.container-reportyear2023none
local.edoc.container-firstpage1none
local.edoc.container-lastpage25none
dc.description.versionPeer Reviewednone

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