English

Nonlinear Stochastic Gradient Descent and Heavy-tailed Noise: A Unified Framework and High-probability Guarantees

Machine Learning 2025-03-24 v2 Optimization and Control

Abstract

We study high-probability convergence in online learning, in the presence of heavy-tailed noise. To combat the heavy tails, a general framework of nonlinear SGD methods is considered, subsuming several popular nonlinearities like sign, quantization, component-wise and joint clipping. In our work the nonlinearity is treated in a black-box manner, allowing us to establish unified guarantees for a broad range of nonlinear methods. For symmetric noise and non-convex costs we establish convergence of gradient norm-squared, at a rate O~(t1/4)\widetilde{\mathcal{O}}(t^{-1/4}), while for the last iterate of strongly convex costs we establish convergence to the population optima, at a rate O(tζ)\mathcal{O}(t^{-\zeta}), where ζ(0,1)\zeta \in (0,1) depends on noise and problem parameters. Further, if the noise is a (biased) mixture of symmetric and non-symmetric components, we show convergence to a neighbourhood of stationarity, whose size depends on the mixture coefficient, nonlinearity and noise. Compared to state-of-the-art, who only consider clipping and require unbiased noise with bounded pp-th moments, p(1,2]p \in (1,2], we provide guarantees for a broad class of nonlinearities, without any assumptions on noise moments. While the rate exponents in state-of-the-art depend on noise moments and vanish as p1p \rightarrow 1, our exponents are constant and strictly better whenever p<6/5p < 6/5 for non-convex and p<8/7p < 8/7 for strongly convex costs. Experiments validate our theory, showing that clipping is not always the optimal nonlinearity, further underlining the value of a general framework.

Keywords

Cite

@article{arxiv.2410.13954,
  title  = {Nonlinear Stochastic Gradient Descent and Heavy-tailed Noise: A Unified Framework and High-probability Guarantees},
  author = {Aleksandar Armacki and Shuhua Yu and Pranay Sharma and Gauri Joshi and Dragana Bajovic and Dusan Jakovetic and Soummya Kar},
  journal= {arXiv preprint arXiv:2410.13954},
  year   = {2025}
}

Comments

40 pages, 6 figures