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A hierarchical regression approach to meta‐analysis of diagnostic test accuracy evaluations

Statistics in Medicine · 2001 · Vol. 20(19) · pp. 2865–2884
Carolyn M. RutterConstantine Gatsonis

Abstract

An important quality of meta-analytic models for research synthesis is their ability to account for both within- and between-study variability. Currently available meta-analytic approaches for studies of diagnostic test accuracy work primarily within a fixed-effects framework. In this paper we describe a hierarchical regression model for meta-analysis of studies reporting estimates of test sensitivity and specificity. The model allows more between- and within-study variability than fixed-effect approaches, by allowing both test stringency and test accuracy to vary across studies. It is also possible to examine the effects of study specific covariates. Estimates are computed using Markov Chain Monte Carlo simulation with publicly available software (BUGS). This estimation method allows flexibility in the choice of summary statistics. We demonstrate the advantages of this modelling approach using a recently published meta-analysis comparing three tests used to detect nodal metastasis of cervical cancer.

Meta-analysis and systematic reviewsStatistical Methods in Clinical TrialsStatistical Methods and Bayesian InferenceComputer scienceCovariateMarkov chain Monte CarloMeta-analysisStatisticsRegression analysisMarkov chainData miningEconometricsMachine learning

MeSH terms

Uterine Cervical NeoplasmsComputer SimulationDiagnostic ImagingFemaleHumansLymph NodesLymphographyMagnetic Resonance ImagingMarkov ChainsMonte Carlo MethodRegression AnalysisROC CurveSensitivity and SpecificityTomography, X-Ray ComputedMeta-Analysis as Topic
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References
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Simulation Run Length Control in the Presence of an Initial Transient
Operations Research · 1983 · 1,294 citations
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