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Inferring ADR causality by predicting the Naranjo Score from Clinical Notes.
Bhanu Pratap Singh Rawat1, Abhyuday Jagannatha1, Feifan Liu2
1College of Information and Computer Science, University of Massachusetts Amherst.
This study introduces an automated method using deep learning and statistical models to assess drug-induced adverse drug reactions (ADRs) from patient records, improving pharmacovigilance efficiency.
Area of Science:
- Pharmacovigilance and Drug Safety
- Artificial Intelligence in Healthcare
- Clinical Informatics
Background:
- Clinical judgment studies are crucial for drug safety surveillance and quantifying medication-adverse drug reaction (ADR) causality.
- Current methods require manual chart review by physicians to complete the Naranjo questionnaire, which is time-consuming and resource-intensive.
Purpose of the Study:
- To develop and validate an automated methodology for inferring causal relationships between medications and ADRs.
- To leverage natural language processing (NLP) and machine learning to analyze patient discharge summaries.
Main Methods:
- Utilized Bidirectional Encoder Representations from Transformers (BERT) for automated extraction of relevant patient data pertinent to Naranjo questionnaire criteria.
- Employed logistic regression, a statistical learning model, to predict Naranjo scores and determine causality between drugs and ADRs based on extracted information.
Main Results:
- The proposed methodology achieved a macro-averaged F1-score of 0.50 and a weighted F1-score of 0.63 in inferring causal relationships.
- Demonstrated the feasibility of automating aspects of clinical judgment for pharmacovigilance using AI.
Conclusions:
- The developed automated approach shows promise in streamlining the process of causality assessment in pharmacovigilance.
- This methodology can potentially reduce the manual burden on healthcare professionals and enhance the efficiency of drug safety monitoring.
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