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Parameter Symmetry and Noise Equilibrium of Stochastic Gradient Descent

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arxiv 2402.07193 v3 pith:DXVZJI3I submitted 2024-02-11 cs.LG math.OCstat.ML

classification cs.LGmath.OCstat.ML
keywords noisegradientsymmetriesdescentlearningnetworksneuralpoints
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abstract

Symmetries are prevalent in deep learning and can significantly influence the learning dynamics of neural networks. In this paper, we examine how exponential symmetries -- a broad subclass of continuous symmetries present in the model architecture or loss function -- interplay with stochastic gradient descent (SGD). We first prove that gradient noise creates a systematic motion (a ``Noether flow") of the parameters $\theta$ along the degenerate direction to a unique initialization-independent fixed point $\theta^*$. These points are referred to as the {\it noise equilibria} because, at these points, noise contributions from different directions are balanced and aligned. Then, we show that the balance and alignment of gradient noise can serve as a novel alternative mechanism for explaining important phenomena such as progressive sharpening/flattening and representation formation within neural networks and have practical implications for understanding techniques like representation normalization and warmup.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Beyond the Permutation Symmetry of Transformers: The Role of Rotation for Model Fusion

    cs.LG 2025-02 conditional novelty 5.0 of 10

    Transformer attention layers admit continuous rotation symmetries, and aligning a source model's attention weights by the optimal rotation before weight averaging improves model fusion accuracy.

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