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A Mirror Descent Perspective of Smoothed Sign Descent

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arxiv 2410.14158 v1 pith:5VBIKIII submitted 2024-10-18 cs.LG math.OC

classification cs.LGmath.OC
keywords descentdynamicsmirrordualconstantperspectiveproblemssign
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abstract

Recent work by Woodworth et al. (2020) shows that the optimization dynamics of gradient descent for overparameterized problems can be viewed as low-dimensional dual dynamics induced by a mirror map, explaining the implicit regularization phenomenon from the mirror descent perspective. However, the methodology does not apply to algorithms where update directions deviate from true gradients, such as ADAM. We use the mirror descent framework to study the dynamics of smoothed sign descent with a stability constant $\varepsilon$ for regression problems. We propose a mirror map that establishes equivalence to dual dynamics under some assumptions. By studying dual dynamics, we characterize the convergent solution as an approximate KKT point of minimizing a Bregman divergence style function, and show the benefit of tuning the stability constant $\varepsilon$ to reduce the KKT error.

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

  1. Mirror Descent Using the Tempesta Generalized Multi-parametric Logarithms

    stat.ML 2025-06 conditional novelty 4.0 of 10

    The authors derive mirror descent and mirror-less updates using the Tempesta generalized logarithm as the link function, with an approximate inverse exponential obtained via Lagrange inversion.

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