Applying Machine Learning Techniques to Predict Drug-Related Side Effect: A Policy Brief.
Esmaeel Toni1, Haleh Ayatollahi2
1Student Research Committee, Iran University of Medical Sciences, Tehran, Islamic Republic of Iran.
Summary
Machine learning (ML) can predict drug side effects early, improving public health. Policy recommendations focus on data standardization, validation, integration, education, and fairness regulations for responsible ML adoption in drug development.
Area of Science:
- Pharmacovigilance
- Health Informatics
- Regulatory Science
Background:
- Traditional drug safety monitoring may not detect rare or long-term side effects.
- Machine learning (ML) shows potential for early prediction of drug-related adverse events.
Purpose of the Study:
- To propose evidence-based policy options for utilizing ML in predicting drug-related side effects.
- To address barriers and opportunities in ML adoption for drug safety.
Main Methods:
- Scoping review of relevant studies.
- Secondary analysis of barriers and opportunities for policy development.
- Synthesis of policy recommendations.
Main Results:
- Challenges identified include data standardization, model interpretability, and regulatory alignment.
- Explainable ML and cross-sector collaboration can enhance prediction accuracy and fairness.
- Five policy recommendations were proposed for data collection, model validation, integration, public awareness, and fairness regulations.
Conclusions:
- ML offers significant potential for advancing drug safety and patient outcomes.
- Ethical, regulatory, and technical challenges must be addressed for effective ML implementation.
- Interdisciplinary coordination and evidence-based policymaking are crucial for responsible ML adoption in drug development.
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