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[journal article]

dc.contributor.authorRappl, Anjade
dc.contributor.authorKneib, Thomasde
dc.contributor.authorLang, Stefande
dc.contributor.authorBergherr, Elisabethde
dc.date.accessioned2023-11-08T07:50:04Z
dc.date.available2023-11-08T07:50:04Z
dc.date.issued2023de
dc.identifier.issn1573-1375de
dc.identifier.urihttps://www.ssoar.info/ssoar/handle/document/90305
dc.description.abstractJoint models for longitudinal and time-to-event data simultaneously model longitudinal and time-to-event information to avoid bias by combining usually a linear mixed model with a proportional hazards model. This model class has seen many developments in recent years, yet joint models including a spatial predictor are still rare and the traditional proportional hazards formulation of the time-to-event part of the model is accompanied by computational challenges. We propose a joint model with a piecewise exponential formulation of the hazard using the counting process representation of a hazard and structured additive predictors able to estimate (non-)linear, spatial and random effects. Its capabilities are assessed in a simulation study comparing our approach to an established one and highlighted by an example on physical functioning after cardiovascular events from the German Ageing Survey. The Structured Piecewise Additive Joint Model yielded good estimation performance, also and especially in spatial effects, while being double as fast as the chosen benchmark approach and performing stable in an imbalanced data setting with few events.de
dc.languageende
dc.subject.ddcSozialwissenschaften, Soziologiede
dc.subject.ddcSocial sciences, sociology, anthropologyen
dc.subject.otherDEAS; Herz-Kreislauf-Erkrankung; Herzinfakt; Körperliche Leistungsfähigkeit; Structured Piecewise Additive; Joint Modelde
dc.titleSpatial joint models through Bayesian structured piecewise additive joint modelling for longitudinal and time-to-event datade
dc.description.reviewbegutachtet (peer reviewed)de
dc.description.reviewpeer revieweden
dc.source.journalStatistics and Computing
dc.source.volume33de
dc.publisher.countryNLDde
dc.source.issue6de
dc.subject.classozGerontologie, Alterssoziologiede
dc.subject.classozGerontologyen
dc.identifier.urnurn:nbn:de:0168-ssoar-90305-8
dc.rights.licenceCreative Commons - Namensnennung 4.0de
dc.rights.licenceCreative Commons - Attribution 4.0en
ssoar.contributor.institutionDeutsches Zentrum für Altersfragende
internal.statusformal und inhaltlich fertig erschlossende
dc.type.stockarticlede
dc.type.documentZeitschriftenartikelde
dc.type.documentjournal articleen
internal.identifier.classoz20300
internal.identifier.journal2571
internal.identifier.document32
dc.rights.sherpaGrüner Verlagde
dc.rights.sherpaGreen Publisheren
internal.identifier.ddc300
dc.identifier.doihttps://doi.org/10.1007/s11222-023-10293-5de
dc.description.pubstatusVeröffentlichungsversionde
dc.description.pubstatusPublished Versionen
internal.identifier.sherpa1
internal.identifier.licence16
internal.identifier.pubstatus1
internal.identifier.review1
dc.subject.classhort20300de
internal.embargo.terms2023-10-27
internal.pdf.validtrue
internal.pdf.wellformedtrue
internal.pdf.encryptedfalse


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