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Meta-analysis: formulating, evaluating, combining, and reporting

Statistics in Medicine · 1999 · Vol. 18(3) · pp. 321–359
Sharon‐Lise T. Normand

Abstract

Meta-analysis involves combining summary information from related but independent studies. The objectives of a meta-analysis include increasing power to detect an overall treatment effect, estimation of the degree of benefit associated with a particular study treatment, assessment of the amount of variability between studies, or identification of study characteristics associated with particularly effective treatments. This article presents a tutorial on meta-analysis intended for anyone with a mathematical statistics background. Search strategies and review methods of the literature are discussed. Emphasis is focused on analytic methods for estimation of the parameters of interest. Three modes of inference are discussed: maximum likelihood; restricted maximum likelihood, and Bayesian. Finally, software for performing inference using restricted maximum likelihood and fully Bayesian methods are demonstrated. Methods are illustrated using two examples: an evaluation of mortality from prophylactic use of lidocaine after a heart attack, and a comparison of length of hospital stay for stroke patients under two different management protocols.

Meta-analysis and systematic reviewsHemodynamic Monitoring and TherapyReliability and Agreement in MeasurementComputer scienceMeta-analysisIdentification (biology)Bayesian probabilityInferenceMaximum likelihoodStatisticsBayesian inferenceData miningMedicine

MeSH terms

Anti-Arrhythmia AgentsBayes TheoremBiometryCerebrovascular DisordersHumansLength of StayLidocaineMyocardial InfarctionSoftwareMeta-Analysis as TopicLikelihood FunctionsRandomized Controlled Trials as Topic
Citations
970
FWCI
44.42
field-weighted impact
References
26
Percentile
100%
vs. same field & year
Citations per year
References
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