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Detecting MCI: A New Approach Using Brain and Genetic Data
Saturday, January 11, 2025
This matrix helps create a multiview network that considers how non-imaging data might affect the disease. After cleaning up the MRI data with weights, the team used bilinear convolution to restore the brain's spatial patterns. Finally, they mixed these patterns with genetic info for a more accurate disease prediction. Testing on the ADNI dataset showed this method worked better than others, hitting an average accuracy of 89. 6% in binary classification tasks. This study paves the way for using multimodal data in MCI diagnosis.
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