Neural partial differential equations for chaotic systems

dc.bibliographicCitation.firstPage043005eng
dc.bibliographicCitation.issue4eng
dc.bibliographicCitation.volume23eng
dc.contributor.authorGelbrecht, Maximilian
dc.contributor.authorBoers, Niklas
dc.contributor.authorKurths, Jürgen
dc.date.accessioned2022-03-30T09:29:06Z
dc.date.available2022-03-30T09:29:06Z
dc.date.issued2021
dc.description.abstractWhen predicting complex systems one typically relies on differential equation which can often be incomplete, missing unknown influences or higher order effects. By augmenting the equations with artificial neural networks we can compensate these deficiencies. We show that this can be used to predict paradigmatic, high-dimensional chaotic partial differential equations even when only short and incomplete datasets are available. The forecast horizon for these high dimensional systems is about an order of magnitude larger than the length of the training data.eng
dc.description.versionpublishedVersioneng
dc.identifier.urihttps://oa.tib.eu/renate/handle/123456789/8469
dc.identifier.urihttps://doi.org/10.34657/7507
dc.language.isoengeng
dc.publisher[London] : IOPeng
dc.relation.doihttps://doi.org/10.1088/1367-2630/abeb90
dc.relation.essn1367-2630
dc.relation.ispartofseriesNew journal of physics : the open-access journal for physics 23 (2021), Nr. 4eng
dc.rights.licenseCC BY 4.0 Unportedeng
dc.rights.urihttps://creativecommons.org/licenses/by/4.0/eng
dc.subjectcomplex systemseng
dc.subjecthybrid modeleng
dc.subjectmachine learningeng
dc.subjectnonlinear dynamicseng
dc.subjectpartial differential equationseng
dc.subjectpredictioneng
dc.subject.ddc530eng
dc.titleNeural partial differential equations for chaotic systemseng
dc.typearticleeng
dc.typeTexteng
dcterms.bibliographicCitation.journalTitleNew journal of physics : the open-access journal for physicseng
tib.accessRightsopenAccesseng
wgl.contributorPIKeng
wgl.subjectPhysikeng
wgl.typeZeitschriftenartikeleng
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