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Meta-analysis for the comparison of two diagnostic tests to a common gold standard: A generalized linear mixed model approach
- Source :
- Statistical Methods in Medical Research. 27:1410-1421
- Publication Year :
- 2016
- Publisher :
- SAGE Publications, 2016.
-
Abstract
- Meta-analysis of diagnostic studies is still a rapidly developing area of biostatistical research. Especially, there is an increasing interest in methods to compare different diagnostic tests to a common gold standard. Restricting to the case of two diagnostic tests, in these meta-analyses the parameters of interest are the differences of sensitivities and specificities (with their corresponding confidence intervals) between the two diagnostic tests while accounting for the various associations across single studies and between the two tests. We propose statistical models with a quadrivariate response (where sensitivity of test 1, specificity of test 1, sensitivity of test 2, and specificity of test 2 are the four responses) as a sensible approach to this task. Using a quadrivariate generalized linear mixed model naturally generalizes the common standard bivariate model of meta-analysis for a single diagnostic test. If information on several thresholds of the tests is available, the quadrivariate model can be further generalized to yield a comparison of full receiver operating characteristic (ROC) curves. We illustrate our model by an example where two screening methods for the diagnosis of type 2 diabetes are compared.
- Subjects :
- Statistics and Probability
Epidemiology
Bivariate analysis
Sensitivity and Specificity
01 natural sciences
Generalized linear mixed model
010104 statistics & probability
03 medical and health sciences
0302 clinical medicine
Meta-Analysis as Topic
Health Information Management
Statistics
Humans
030212 general & internal medicine
Sensitivity (control systems)
0101 mathematics
Mathematics
Models, Statistical
Receiver operating characteristic
Clinical Laboratory Techniques
Statistical model
Gold standard (test)
Confidence interval
Logistic Models
Meta-analysis
Linear Models
Subjects
Details
- ISSN :
- 14770334 and 09622802
- Volume :
- 27
- Database :
- OpenAIRE
- Journal :
- Statistical Methods in Medical Research
- Accession number :
- edsair.doi.dedup.....5cfccbdcaa19b50a3614b55a0e038b9b
- Full Text :
- https://doi.org/10.1177/0962280216661587