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Updated: May 21, 2026

Probing the Brain in Autism Using fMRI and Diffusion Tensor Imaging
Published on: September 12, 2011
Classification of autism spectrum disorder using a directional graph attention network on brain effective
Yuan Huang1, Fangfang Huang1, Yingfang Wang1
1Department of Preventive Medicine, College of Basic Medicine and Forensic Medicine, Henan University of Science and Technology, Luoyang 471000, China.
None:
Recent research into the neural mechanisms underlying autism spectrum increasingly relies on brain network analysis; however, conventional models remain limited in their ability to capture directed causal interactions between brain regions. To address this limitation, we propose a directional graph attention network (DGAT) as a proof-of-concept framework for autism classification using directed effective connectivity. DGAT takes Granger causality matrices as input and employs a dual-branch attention architecture to model incoming and outgoing information flows separately, then adaptively fuses the resulting bidirectional embeddings through learnable weights to more explicitly characterize driver-response relationships between regions. In addition, the model incorporates multiscale node descriptors, including temporal statistics, graph-theoretic centrality measures, and global graph metrics, to enhance representational capacity. Under nested cross-validation, DGAT achieved competitive performance on key metrics (accuracy: 71.99%, AUC: 75.15%, specificity: 73.07%) and produced more favorable results than support vector machines, random forests, graph convolutional networks, and GAT based on undirected functional connectivity. These findings suggest that DGAT may serve as a promising exploratory framework and offer a novel perspective for disease classification based on directed brain networks.
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Autism Spectrum Disorder
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