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Towards understanding neural collapse in supervised contrastive learning with the information bottleneck method

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arxiv 2305.11957 v2 pith:5XQNTWVY submitted 2023-05-19 cs.LG cs.ITmath.IT

classification cs.LGcs.ITmath.IT
keywords neuralcollapsecontrastiveproblemgeneralizationlearningoptimalsimplex
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abstract

Neural collapse describes the geometry of activation in the final layer of a deep neural network when it is trained beyond performance plateaus. Open questions include whether neural collapse leads to better generalization and, if so, why and how training beyond the plateau helps. We model neural collapse as an information bottleneck (IB) problem in order to investigate whether such a compact representation exists and discover its connection to generalization. We demonstrate that neural collapse leads to good generalization specifically when it approaches an optimal IB solution of the classification problem. Recent research has shown that two deep neural networks independently trained with the same contrastive loss objective are linearly identifiable, meaning that the resulting representations are equivalent up to a matrix transformation. We leverage linear identifiability to approximate an analytical solution of the IB problem. This approximation demonstrates that when class means exhibit $K$-simplex Equiangular Tight Frame (ETF) behavior (e.g., $K$=10 for CIFAR10 and $K$=100 for CIFAR100), they coincide with the critical phase transitions of the corresponding IB problem. The performance plateau occurs once the optimal solution for the IB problem includes all of these phase transitions. We also show that the resulting $K$-simplex ETF can be packed into a $K$-dimensional Gaussian distribution using supervised contrastive learning with a ResNet50 backbone. This geometry suggests that the $K$-simplex ETF learned by supervised contrastive learning approximates the optimal features for source coding. Hence, there is a direct correspondence between optimal IB solutions and generalization in contrastive learning.

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Cited by 1 Pith paper

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  1. Enhancing Pre-Trained Model-Based Class-Incremental Learning through Neural Collapse

    cs.LG 2025-04 conditional novelty 4.0 of 10

    NCPTM-CIL applies a dynamic equiangular-tight-frame classifier and pull-and-push loss to pre-trained model-based class-incremental learning and reports state-of-the-art average accuracy on four benchmarks.

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