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Samuel Kipsang Kaptum

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Open access Jul 2026

Explainable AI for Malaria Diagnosis: Comparative Analysis of ML Models Using Random Forest Feature Selection and SHAP Interpretability

This framework illustrates, without any claim of clinical validity, how a leakage-safe ML pipeline and SHAP interpretability can be combined and rigorously self-audited; real patient-level data and external validation are required before any clinical inference is drawn.

David Chepkonga, A. Langat, Ebenezer Esenogho et al. · 0 citations