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Published on: June 29, 2018
The reliability of replications: a study in computational reproductions
Nate Breznau1, Eike Mark Rinke2, Alexander Wuttke3
1Organization and Program Planning, German Institute for Adult Education-Leibniz Center of Lifelong Learning, Bonn 53175, Germany.
Computational reproduction success varied by transparency. Transparent access to original data and code improved result verification, highlighting the need for better research practices and training to ensure scientific reproducibility.
Area of Science:
- Computational social science
- Research methodology
Background:
- Reproducibility is crucial for scientific integrity.
- Computational reproduction, or replicating analyses with code, faces challenges.
- Variability in researcher approaches can impact replication success.
Purpose of the Study:
- To investigate researcher variability in computational reproduction.
- To compare reproduction success rates between transparent and opaque conditions.
- To identify causes of error in computational replication workflows.
Main Methods:
- 85 independent teams attempted to numerically replicate an original study on policy preferences and immigration.
- Teams were divided into 'transparent' (received code and data) and 'opaque' (received only methods and results) groups.
- Qualitative analysis of workflows was conducted to identify error sources.
Main Results:
- The transparent group achieved higher success rates in verifying original results (95.7%) compared to the opaque group (89.3%).
- Exact numerical reproductions to the second decimal place were less common, especially in the opaque group (48.1%).
- Mistakes and procedural variations were identified as key causes of error, with transparency aiding reliable success.
Conclusions:
- Transparency, including access to original code and data, is essential for reliable computational reproduction.
- Improved training, institutional checks, and greater awareness of research complexity are needed.
- Reducing subjective difficulty in reproduction tasks can enhance researcher engagement and success.
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