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Prediction of Coercive Measures Using AI and Electronic Health Records

Prize: Publication/Conference prize

Description

Our study demonstrates a possible real-word application for the transformative power of Large Language Models in psychiatry: based on a standardized information extraction pipeline, a psychiatry-native model delivers highly relevant data to the classifying algorithm. In clinical practice, this predictive score might be useful to allocate scarce preventive resources more efficiently to minimise the necessary application of coercive measures.

Notes

Shared authorship of poster: Guillermo Calvi and Falk Gerrik Verhees. Poster presentation at the conference: Falk Gerrik Verhees
Degree of recognitionNational
Granting OrganisationsDeutsche Gesellschaft für Psychiatrie und Psychotherapie, Psychosomatik und Nervenheilkunde (DGPPN)