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Data Analysis

Predicting Tau Burden and Tau Positivity from Multimodal Neuroimaging and Clinical Data in ADNI

This project is a complete and reproducible ML pipeline using data from the Alzheimer’s Disease Neuroimaging Initiative (ADNI) to: Predict tau PET SUVR as a continuous outcome, predict tau positivity as a binary outcome (classify participants as tau-positive or tau-negative), and identify which predictors drive model performance using SHAP explainability

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EEG Athlete Project: Brain Activity During Golf Performance

Using EEG band power to investigate cognitive states during golf swings and correlate them with subjective performance ratings.

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