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A computational clinical decision-supporting system to suggest effective anti-epileptic drugs for pediatric epilepsy patients based on deep learning models using patient's medical history.

Daeahn ChoMyeong-Sang YuJeongyoon ShinJingyu LeeYubin KimHoon-Chul KangSe Hee KimDokyun Na
Published in: BMC medical informatics and decision making (2024)
Our CNN models in the system demonstrated high PPVs for the three AEDs, which signifies the potential of our approach to support the clinical decision-making by assisting doctors in recommending effective AEDs within the three AEDs for patients based on their medical history. This would result in a reduction in the number of unnecessary ad hoc attempts to find an effective AED for pediatric epilepsy patients.
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