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BGL-Net: A Brain-Inspired Global-Local Information Fusion Network for Alzheimer’s Disease Based on sMRI

Chen-Chen Fan, Hongjun Yang, Liang Peng, Xiao-Hu Zhou, Zhen-Liang Ni, Yan-Jie Zhou, Sheng Chen, Zeng‐Guang Hou

2022IEEE Transactions on Cognitive and Developmental Systems12 citationsDOI

Abstract

Alzheimer’s disease (AD) is an irreversible neurodegenerative disease, the most common form of dementia, affecting millions worldwide. Neuroimaging-based early AD diagnosis has become an effective approach, especially by using structural magnetic resonance imaging (sMRI). The convolutional neural network (CNN)-based method is challenging to learn dependencies between spatially distant positions in the various brain regions due to its local convolution operation. In contrast, the graph convolutional network (GCN)-based work can connect the brain regions to capture global information but is not sensitive to the local information in a single brain region. Unlike a separate CNN or GCN-based method, we proposed a brain-inspired global-local information fusion network (BGL-Net) to diagnose AD. It essentially inherits the advantages of both CNN and GCN. The experiments on three public data sets demonstrate the effectiveness and robustness of our BGL-Net. Our method achieved the best performance on three popular public data sets compared with the existing CNN and GCN-based methods. In addition, our visualization results of the learned brain connection on AD and normal people agree with many current AD clinical research.

Topics & Concepts

Computer scienceConvolutional neural networkRobustness (evolution)Artificial intelligenceNeuroimagingDementiaGraphPattern recognition (psychology)Machine learningDiseaseNeuroscienceTheoretical computer scienceMedicineChemistryBiochemistryGenePathologyBiologyDementia and Cognitive Impairment ResearchBrain Tumor Detection and ClassificationFunctional Brain Connectivity Studies
BGL-Net: A Brain-Inspired Global-Local Information Fusion Network for Alzheimer’s Disease Based on sMRI | Litcius