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Thibaut Le Gouic

5 accepted papers

2022

Rejection sampling from shape-constrained distributions in sublinear time

AISTATS 2022poster

We consider the task of generating exact samples from a target distribution, known up to normalization, over a finite alphabet. The classical algorithm for this task is rejection sampling, and although it has been used in practice for decades, there is surprisingly little study of its fundamental li…

2021

Fast and Smooth Interpolation on Wasserstein Space

AISTATS 2021poster

We propose a new method for smoothly interpolating probability measures using the geometry of optimal transport. To that end, we reduce this problem to the classical Euclidean setting, allowing us to directly leverage the extensive toolbox of spline interpolation. Unlike previous approaches to measu…

Cited by 40SourcePDFScholar
2020

Exponential ergodicity of mirror-Langevin diffusions

NeurIPS 2020poster

Motivated by the problem of sampling from ill-conditioned log-concave distributions, we give a clean non-asymptotic convergence analysis of mirror-Langevin diffusions as introduced in Zhang et al. (2020). As a special case of this framework, we propose a class of diffusions called Newton-Langevin di…

Cited by 60SourcePDFScholar
2020

SVGD as a kernelized Wasserstein gradient flow of the chi-squared divergence

NeurIPS 2020poster

Stein Variational Gradient Descent (SVGD), a popular sampling algorithm, is often described as the kernelized gradient flow for the Kullback-Leibler divergence in the geometry of optimal transport. We introduce a new perspective on SVGD that instead views SVGD as the kernelized gradient flow of the…

Cited by 90SourcePDFScholar