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Related Experiment Video

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Reproducing real-world clinical prediction models using the DIVE platform: A comparative validation study across

Francesco Lapi1, Ettore Marconi1, Marco Gorini2

  • 1Genomedics Srl, Florence, Italy.

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|January 27, 2026
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Summary

The Data Insight Validation Engine (DIVE) reliably reproduces real-world evidence (RWE) studies, showing high fidelity with traditional methods for chronic kidney disease, COPD, and severe asthma prediction models.

Keywords:
Analyses platformData analysisReal-world dataReal-world evidence

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Area of Science:

  • Health Informatics
  • Biostatistics
  • Machine Learning in Healthcare

Background:

  • Real-world evidence (RWE) generation from clinical data is crucial for healthcare insights.
  • Existing analytical methods can be complex and time-consuming.
  • The need for reproducible and scalable RWE analytics platforms is growing.

Purpose of the Study:

  • To evaluate the performance and reproducibility of the Python-based Data Insight Validation Engine (DIVE).
  • To assess DIVE's capability in generating RWE by replicating three published clinical studies.
  • To compare DIVE's results with conventional statistical environments.

Main Methods:

  • DIVE was used to replicate studies on chronic kidney disease (CKD), chronic obstructive pulmonary disease (COPD), and severe asthma prediction.
  • Machine learning (ML)-based Generalized Additive 2 Model (GA2M) and Cox-based regression models were employed.
  • Data from over one million patients in Italian primary care were analyzed, including external temporal validation.

Main Results:

  • DIVE demonstrated high fidelity in replicating published findings across all three studies.
  • CKD model: AUC 89.2% (DIVE) vs. 89.3% (original).
  • COPD model: AUC 65.5% vs. 66%; Severe Asthma model: AUC 71.9% vs. 72.5%.

Conclusions:

  • DIVE is a reliable, scalable, and interoperable solution for RWE analytics.
  • The platform shows equivalence with traditional analytic methods, supporting data reproducibility.
  • Future development could enhance DIVE's utility through federated analyses and broader interoperability.