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1000 Titel
  • Methods to estimate the between‐study variance and its uncertainty in meta‐analysis†
1000 Autor/in
  1. Veroniki Areti, Angeliki |
  2. Jackson, Dan |
  3. Viechtbauer, Wolfgang |
  4. Bender, Ralf |
  5. Bowden, Jack |
  6. Kuss, Oliver |
  7. Higgins, Julian |
  8. Langan, Dean |
  9. Salanti, Georgia |
1000 Erscheinungsjahr 2015
1000 LeibnizOpen
1000 Art der Datei
1000 Publikationstyp
  1. Artikel |
1000 Online veröffentlicht
  • 2015-09-02
1000 Erschienen in
1000 Quellenangabe
  • 1(7):55–79
1000 FRL-Sammlung
1000 Copyrightjahr
  • 2015
1000 Lizenz
1000 Verlagsversion
  • https://doi.org/10.1002/jrsm.1164 |
  • https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4950030/ |
1000 Ergänzendes Material
  • https://onlinelibrary.wiley.com/doi/full/10.1002/jrsm.1164#support-information-section |
1000 Publikationsstatus
1000 Begutachtungsstatus
1000 Sprache der Publikation
1000 Abstract/Summary
  • Meta‐analyses are typically used to estimate the overall/mean of an outcome of interest. However, inference about between‐study variability, which is typically modelled using a between‐study variance parameter, is usually an additional aim. The DerSimonian and Laird method, currently widely used by default to estimate the between‐study variance, has been long challenged. Our aim is to identify known methods for estimation of the between‐study variance and its corresponding uncertainty, and to summarise the simulation and empirical evidence that compares them. We identified 16 estimators for the between‐study variance, seven methods to calculate confidence intervals, and several comparative studies. Simulation studies suggest that for both dichotomous and continuous data the estimator proposed by Paule and Mandel and for continuous data the restricted maximum likelihood estimator are better alternatives to estimate the between‐study variance. Based on the scenarios and results presented in the published studies, we recommend the Q‐profile method and the alternative approach based on a ‘generalised Cochran between‐study variance statistic’ to compute corresponding confidence intervals around the resulting estimates. Our recommendations are based on a qualitative evaluation of the existing literature and expert consensus. Evidence‐based recommendations require an extensive simulation study where all methods would be compared under the same scenarios.
1000 Sacherschließung
lokal mean squared error
lokal bias
lokal coverage probability
lokal heterogeneity
lokal confidence interval
1000 Fachgruppe
  1. Interdisziplinär |
1000 Fächerklassifikation (DDC)
1000 Liste der Beteiligten
  1. https://frl.publisso.de/adhoc/creator/VmVyb25pa2kgQXJldGksIEFuZ2VsaWtpIA==|https://frl.publisso.de/adhoc/creator/SmFja3NvbiwgRGFuIA==|https://frl.publisso.de/adhoc/creator/VmllY2h0YmF1ZXIsIFdvbGZnYW5n|https://frl.publisso.de/adhoc/creator/QmVuZGVyLCBSYWxm|https://frl.publisso.de/adhoc/creator/Qm93ZGVuLCBKYWNr|http://orcid.org/0000-0003-3301-5869|https://frl.publisso.de/adhoc/creator/SGlnZ2lucywgSnVsaWFu|https://frl.publisso.de/adhoc/creator/TGFuZ2FuLCBEZWFu|https://frl.publisso.de/adhoc/creator/U2FsYW50aSwgR2VvcmdpYQ==
1000 Förderer
  1. CIHR Banting
  2. MRC Methodology Research Fellowship
  3. UK Medical Research Council
  4. Centre for Reviews and Dissemination, University of York
  5. Institute for Quality and Efficiency in Health Care, Cologne, Germany
  6. European Research Council
1000 Fördernummer
  1. -
  2. MR/L012286/1
  3. U105260558
  4. -
  5. -
  6. 260559
1000 Förderprogramm
  1. Postdoctoral Fellowship Program
  2. -
  3. -
  4. -
  5. -
  6. IMMA
1000 Dateien
  1. Methods to estimate the between‐study variance and its uncertainty in meta‐analysis†
1000 Objektart article
1000 Beschrieben durch
1000 @id frl:6408284.rdf
1000 Erstellt am 2018-06-13T11:57:18.600+0200
1000 Erstellt von 218
1000 beschreibt frl:6408284
1000 Bearbeitet von 25
1000 Zuletzt bearbeitet Thu Jul 26 07:52:48 CEST 2018
1000 Objekt bearb. Wed Jun 13 11:58:37 CEST 2018
1000 Vgl. frl:6408284
1000 Oai Id
  1. oai:frl.publisso.de:frl:6408284 |
1000 Sichtbarkeit Metadaten public
1000 Sichtbarkeit Daten public
1000 Gegenstand von

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