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Simulation models for aggregated data meta-analysis: Evaluation of pooling effect sizes and publication biases
Edwin R van den Heuvel1,2, Osama Almalik1, Zhuozhao Zhan1
1Department of Mathematics and Computer Science, Eindhoven University of Technology, Eindhoven, the Netherlands.
Simulating aggregated data directly in meta-analysis can impact method performance. Researchers should use multiple simulation models and clarify individual data distributions for robust meta-analysis evaluations.
Area of Science:
- Biostatistics
- Medical Research Methodology
Background:
- Meta-analysis methods are frequently evaluated using simulation studies.
- Current simulations often directly generate aggregated data, bypassing individual participant data (IPD) simulation.
Approach:
- This study derives and provides the distribution of aggregated data statistics from a heteroscedastic mixed effects model for continuous IPD.
- A procedure for direct simulation of aggregated data statistics is presented.
- The approach is compared with existing simulation methods, highlighting theoretical differences.
Key Points:
- Directly simulating aggregated data can influence meta-analysis method performance assessments.
- The choice of simulation model impacts conclusions regarding meta-analysis method efficacy.
- Three meta-analysis methods (DerSimonian and Laird, Trim & Fill, PET-PEESE) were evaluated.
Conclusions:
- Multiple aggregated data simulation models should be employed to assess the sensitivity of meta-analysis method performance.
- Researchers are encouraged to explicitly state their IPD models and derive aggregated statistics' distributional consequences to inform simulation model selection.
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