Understanding Representation of Deep Equilibrium Models from Neural Collapse Perspective
–Neural Information Processing Systems
Deep Equilibrium Model (DEQ), which serves as a typical implicit neural network, emphasizes their memory efficiency and competitive performance compared to explicit neural networks. However, there has been relatively limited theoretical analysis on the representation of DEQ. In this paper, we utilize the Neural Collapse ($\mathcal{NC}$) as a tool to systematically analyze the representation of DEQ under both balanced and imbalanced conditions.
Neural Information Processing Systems
Dec-24-2025, 00:32:14 GMT
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