English

Tight Nonparametric Convergence Rates for Stochastic Gradient Descent under the Noiseless Linear Model

Machine Learning 2020-10-28 v2 Multiagent Systems Optimization and Control Machine Learning

Abstract

In the context of statistical supervised learning, the noiseless linear model assumes that there exists a deterministic linear relation Y=θ,XY = \langle \theta_*, X \rangle between the random output YY and the random feature vector Φ(U)\Phi(U), a potentially non-linear transformation of the inputs UU. We analyze the convergence of single-pass, fixed step-size stochastic gradient descent on the least-square risk under this model. The convergence of the iterates to the optimum θ\theta_* and the decay of the generalization error follow polynomial convergence rates with exponents that both depend on the regularities of the optimum θ\theta_* and of the feature vectors Φ(u)\Phi(u). We interpret our result in the reproducing kernel Hilbert space framework. As a special case, we analyze an online algorithm for estimating a real function on the unit interval from the noiseless observation of its value at randomly sampled points; the convergence depends on the Sobolev smoothness of the function and of a chosen kernel. Finally, we apply our analysis beyond the supervised learning setting to obtain convergence rates for the averaging process (a.k.a. gossip algorithm) on a graph depending on its spectral dimension.

Keywords

Cite

@article{arxiv.2006.08212,
  title  = {Tight Nonparametric Convergence Rates for Stochastic Gradient Descent under the Noiseless Linear Model},
  author = {Raphaël Berthier and Francis Bach and Pierre Gaillard},
  journal= {arXiv preprint arXiv:2006.08212},
  year   = {2020}
}
R2 v1 2026-06-23T16:19:36.500Z