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nerve-brain-fc-tokenization

NERVE (Network-Aware Representations of Brain Functional Connectivity via Bilinear Tokenization) - self-supervised learning framework for brain functional connectivity (FC) representation learning. Redefines FC matrix tokenization by partitioning into intra/inter-network connectivity blocks, using structured bilinear factorization for heterogeneous patch sizes. Use when: building brain network ML models, self-supervised fMRI/FC representation learning, masked autoencoder for brain data, brain-behavior prediction, or developmental neuroimaging analysis. Keywords: NERVE, brain functional connectivity, bilinear tokenization, masked autoencoder, self-supervised learning, brain network, FC representation, MAE brain, connectome tokenization.

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Repository
hiyenwong/ai_collection
Last source activity
July 13, 2026 at 02:00
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English
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2
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0

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