Publication:

Bayesian model reduction and empirical Bayes for group (DCM) studies

Date

Date

Date
2016
Journal Article
Published version
cris.lastimport.scopus2025-08-10T03:42:01Z
cris.lastimport.wos2025-08-14T01:34:18Z
dc.contributor.institutionUniversity of Zurich
dc.date.accessioned2016-04-28T14:13:17Z
dc.date.available2016-04-28T14:13:17Z
dc.date.issued2016-03
dc.description.abstract

This technical note describes some Bayesian procedures for the analysis of group studies that use nonlinear models at the first (within-subject) level - e.g., dynamic causal models - and linear models at subsequent (between-subject) levels. Its focus is on using Bayesian model reduction to finesse the inversion of multiple models of a single dataset or a single (hierarchical or empirical Bayes) model of multiple datasets. These applications of Bayesian model reduction allow one to consider parametric random effects and make inferences about group effects very efficiently (in a few seconds). We provide the relatively straightforward theoretical background to these procedures and illustrate their application using a worked example. This example uses a simulated mismatch negativity study of schizophrenia. We illustrate the robustness of Bayesian model reduction to violations of the (commonly used) Laplace assumption in dynamic causal modelling and show how its recursive application can facilitate both classical and Bayesian inference about group differences. Finally, we consider the application of these empirical Bayesian procedures to classification and prediction.

dc.identifier.doi10.1016/j.neuroimage.2015.11.015
dc.identifier.issn1053-8119
dc.identifier.scopus2-s2.0-84960801280
dc.identifier.urihttps://www.zora.uzh.ch/handle/20.500.14742/119394
dc.identifier.wos000370386000037
dc.language.isoeng
dc.subjectBayesian model reduction
dc.subjectClassification
dc.subjectDynamic causal modelling
dc.subjectEmpirical Bayes
dc.subjectFixed effects
dc.subjectHierarchical modelling
dc.subjectRandom effects
dc.subject.ddc170 Ethics
dc.subject.ddc610 Medicine & health
dc.title

Bayesian model reduction and empirical Bayes for group (DCM) studies

dc.typearticle
dcterms.accessRightsinfo:eu-repo/semantics/openAccess
dcterms.bibliographicCitation.journaltitleNeuroImage
dcterms.bibliographicCitation.originalpublishernameElsevier
dcterms.bibliographicCitation.pageend431
dcterms.bibliographicCitation.pagestart413
dcterms.bibliographicCitation.pmid26569570
dcterms.bibliographicCitation.volume128
dspace.entity.typePublicationen
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jdb.apc.feeCHF2130.75
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uzh.apc.currencyEUR
uzh.apc.date2016
uzh.apc.funderunivint
uzh.contributor.affiliationUCL
uzh.contributor.affiliationUCL
uzh.contributor.affiliationUCL
uzh.contributor.affiliationUCL, NED University of Engineering & Technology
uzh.contributor.affiliationUCL, University of Zurich
uzh.contributor.affiliationUCL
uzh.contributor.affiliationUCL
uzh.contributor.affiliationUCL
uzh.contributor.authorFriston, K J
uzh.contributor.authorLitvak, V
uzh.contributor.authorOswal, A
uzh.contributor.authorRazi, Adeel
uzh.contributor.authorStephan, K E
uzh.contributor.authorvan Wijk, B C M
uzh.contributor.authorZiegler, G
uzh.contributor.authorZeidman, Peter
uzh.contributor.correspondenceNo
uzh.contributor.correspondenceNo
uzh.contributor.correspondenceNo
uzh.contributor.correspondenceNo
uzh.contributor.correspondenceNo
uzh.contributor.correspondenceNo
uzh.contributor.correspondenceNo
uzh.contributor.correspondenceYes
uzh.document.availabilitypublished_version
uzh.eprint.datestamp2016-04-28 14:13:17
uzh.eprint.lastmod2025-08-14 01:41:17
uzh.eprint.statusChange2016-04-28 14:13:17
uzh.harvester.ethYes
uzh.harvester.nbNo
uzh.identifier.doi10.5167/uzh-123854
uzh.jdb.eprintsId14127
uzh.oastatus.unpaywallhybrid
uzh.oastatus.zoraHybrid
uzh.publication.citationFriston, K J; Litvak, V; Oswal, A; Razi, Adeel; Stephan, K E; van Wijk, B C M; Ziegler, G; Zeidman, Peter (2016). Bayesian model reduction and empirical Bayes for group (DCM) studies. NeuroImage, 128:413-431.
uzh.publication.freeAccessAtpubmedid
uzh.publication.originalworkoriginal
uzh.publication.publishedStatusfinal
uzh.scopus.impact431
uzh.scopus.subjectsNeurology
uzh.scopus.subjectsCognitive Neuroscience
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uzh.workflow.eprintid123854
uzh.workflow.fulltextStatuspublic
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