English

Constrained Sampling with Primal-Dual Langevin Monte Carlo

Machine Learning 2025-01-08 v2 Machine Learning Optimization and Control

Abstract

This work considers the problem of sampling from a probability distribution known up to a normalization constant while satisfying a set of statistical constraints specified by the expected values of general nonlinear functions. This problem finds applications in, e.g., Bayesian inference, where it can constrain moments to evaluate counterfactual scenarios or enforce desiderata such as prediction fairness. Methods developed to handle support constraints, such as those based on mirror maps, barriers, and penalties, are not suited for this task. This work therefore relies on gradient descent-ascent dynamics in Wasserstein space to put forward a discrete-time primal-dual Langevin Monte Carlo algorithm (PD-LMC) that simultaneously constrains the target distribution and samples from it. We analyze the convergence of PD-LMC under standard assumptions on the target distribution and constraints, namely (strong) convexity and log-Sobolev inequalities. To do so, we bring classical optimization arguments for saddle-point algorithms to the geometry of Wasserstein space. We illustrate the relevance and effectiveness of PD-LMC in several applications.

Keywords

Cite

@article{arxiv.2411.00568,
  title  = {Constrained Sampling with Primal-Dual Langevin Monte Carlo},
  author = {Luiz F. O. Chamon and Mohammad Reza Karimi and Anna Korba},
  journal= {arXiv preprint arXiv:2411.00568},
  year   = {2025}
}

Comments

39 pages, 14 figures. Published at NeurIPS 2024

R2 v1 2026-06-28T19:44:13.358Z