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Checking consistency in mixed treatment comparison meta‐analysis

Statistics in Medicine · 2010 · Vol. 29(7-8) · pp. 932–944
Sofia DiasNicky J. WeltonDeborah M CaldwellA. E. Ades

Abstract

Pooling of direct and indirect evidence from randomized trials, known as mixed treatment comparisons (MTC), is becoming increasingly common in the clinical literature. MTC allows coherent judgements on which of the several treatments is the most effective and produces estimates of the relative effects of each treatment compared with every other treatment in a network.We introduce two methods for checking consistency of direct and indirect evidence. The first method (back-calculation) infers the contribution of indirect evidence from the direct evidence and the output of an MTC analysis and is useful when the only available data consist of pooled summaries of the pairwise contrasts. The second more general, but computationally intensive, method is based on 'node-splitting' which separates evidence on a particular comparison (node) into 'direct' and 'indirect' and can be applied to networks where trial-level data are available. Methods are illustrated with examples from the literature. We take a hierarchical Bayesian approach to MTC implemented using WinBUGS and R.We show that both methods are useful in identifying potential inconsistencies in different types of network and that they illustrate how the direct and indirect evidence combine to produce the posterior MTC estimates of relative treatment effects. This allows users to understand how MTC synthesis is pooling the data, and what is 'driving' the final estimates.We end with some considerations on the modelling assumptions being made, the problems with the extension of the back-calculation method to trial-level data and discuss our methods in the context of the existing literature.

Meta-analysis and systematic reviewsStatistical Methods in Clinical TrialsHemodynamic Monitoring and TherapyConsistency (knowledge bases)Computer scienceMeta-analysisStatisticsEconometricsMathematicsMedicineArtificial intelligenceInternal medicine

MeSH terms

Bayes TheoremFibrinolytic AgentsHumansMarkov ChainsMonte Carlo MethodMyocardial InfarctionReview Literature as TopicMeta-Analysis as TopicRandomized Controlled Trials as TopicSmoking CessationAngioplastyBiostatistics

Funding

  • University of Bristol
Citations
2,469
FWCI
39.13
field-weighted impact
References
36
Percentile
100%
vs. same field & year
Citations per year
References
Network meta‐analysis for indirect treatment comparisons
Statistics in Medicine · 2002 · 1,194 citations
The Handbook of Research Synthesis.
Biometrics · 1995 · 3,672 citations
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