Publication:
Estimating the contribution of studies in network meta-analysis: paths, flows and streams.

cris.virtual.author-orcid0000-0002-6630-6817
cris.virtual.author-orcid0000-0001-7462-5132
cris.virtual.author-orcid0000-0002-3830-8508
cris.virtualsource.author-orcid0712a976-a58f-465b-b9e7-bda5a4f1a990
cris.virtualsource.author-orcid94cc1dd7-9dd1-48ee-9b3e-dce1c3c31412
cris.virtualsource.author-orcida47a659b-5a23-43fa-86e3-f9401108114c
cris.virtualsource.author-orcidade91a16-6e2b-4d1c-b538-15aac7c36747
datacite.rightsopen.access
dc.contributor.authorPapakonstantinou, Theodoros
dc.contributor.authorNikolakopoulou, Adriani
dc.contributor.authorRücker, Gerta
dc.contributor.authorChaimani, Anna
dc.contributor.authorSchwarzer, Guido
dc.contributor.authorEgger, Matthias
dc.contributor.authorSalanti, Georgia
dc.date.accessioned2024-10-07T16:29:23Z
dc.date.available2024-10-07T16:29:23Z
dc.date.issued2018-09-03
dc.description.abstractIn network meta-analysis, it is important to assess the influence of the limitations or other characteristics of individual studies on the estimates obtained from the network. The percentage contribution matrix, which shows how much each direct treatment effect contributes to each treatment effect estimate from network meta-analysis, is crucial in this context. We use ideas from graph theory to derive the percentage that is contributed by each direct treatment effect. We start with the 'projection' matrix in a two-step network meta-analysis model, called the matrix, which is analogous to the hat matrix in a linear regression model. We develop a method to translate entries to percentage contributions based on the observation that the rows of  can be interpreted as flow networks, where a stream is defined as the composition of a path and its associated flow. We present an algorithm that identifies the flow of evidence in each path and decomposes it into direct comparisons. To illustrate the methodology, we use two published networks of interventions. The first compares no treatment, quinolone antibiotics, non-quinolone antibiotics and antiseptics for underlying eardrum perforations and the second compares 14 antimanic drugs. We believe that this approach is a useful and novel addition to network meta-analysis methodology, which allows the consistent derivation of the percentage contributions of direct evidence from individual studies to network treatment effects.
dc.description.notePapkonstantinou and Nikolakopoulou contributed equally to this work
dc.description.numberOfPages24
dc.description.sponsorshipInstitut für Sozial- und Präventivmedizin (ISPM)
dc.identifier.doi10.7892/boris.120654
dc.identifier.pmid30338058
dc.identifier.publisherDOI10.12688/f1000research.14770.2
dc.identifier.urihttps://boris-portal.unibe.ch/handle/20.500.12422/60216
dc.language.isoen
dc.publisherF1000 Research Ltd
dc.relation.ispartofF1000Research
dc.relation.issn2046-1402
dc.relation.organizationInstitute of Social and Preventive Medicine
dc.subjectflow networks indirect evidence percentage contributions projection matrix
dc.subject.ddc600 - Technology::610 - Medicine & health
dc.subject.ddc300 - Social sciences, sociology & anthropology::360 - Social problems & social services
dc.titleEstimating the contribution of studies in network meta-analysis: paths, flows and streams.
dc.typearticle
dspace.entity.typePublication
dspace.file.typetext
oaire.citation.startPage610
oaire.citation.volume7
oairecerif.author.affiliationInstitut für Sozial- und Präventivmedizin (ISPM)
oairecerif.author.affiliationInstitut für Sozial- und Präventivmedizin (ISPM)
oairecerif.author.affiliationInstitut für Sozial- und Präventivmedizin (ISPM)
oairecerif.author.affiliationInstitut für Sozial- und Präventivmedizin (ISPM)
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unibe.date.licenseChanged2019-10-22 15:31:33
unibe.description.ispublishedpub
unibe.eprints.legacyId120654
unibe.refereedtrue
unibe.subtype.articlejournal

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