Identifying discriminative features of brain network for prediction of Alzheimer’s disease using graph theory and machine learning
S. M. Shayez Karim,
Md Shah Fahad,
R. S. Rathore
Abstract:Alzheimer’s disease (AD) is a challenging neurodegenerative condition, necessitating early diagnosis and intervention. This research leverages machine learning (ML) and graph theory metrics, derived from resting-state functional magnetic resonance imaging (rs-fMRI) data to predict AD. Using Southwest University Adult Lifespan Dataset (SALD, age 21–76 years) and the Open Access Series of Imaging Studies (OASIS, age 64–95 years) dataset, containing 112 participants, various ML models were developed for the purpo… Show more
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