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Predicting efficacy of antiseizure medication treatment with machine learning algorithms in North Indian population.

Mahima KaushikSiddhartha MahajanNitin MachaharySarita ThakranSaransh ChopraRaj Vardhan TomarSuman S KushwahaRachna AgarwalSangeeta SharmaRitushree KukretiBibhu Biswal
Published in: Epilepsy research (2024)
Utilizing XG Boost and SVC-based machine learning classifier, we successfully forecasted the likelihood of a patient's response to ASM treatment, categorizing them as either PR or GR, post-completion of standard epilepsy examinations. The classifier's predictions were found to be statistically significant, suggesting their potential utility in improving treatment strategies, particularly in the personalized selection of ASM regimens for individual epilepsy patients.
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