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Othmane Sebbouh

4 accepted papers

2024

Structured Transforms Across Spaces with Cost-Regularized Optimal Transport

AISTATS 2024poster

Matching a source to a target probability measure is often solved by instantiating a linear optimal transport (OT) problem, parameterized by a ground cost function that quantifies discrepancy between points. When these measures live in the same metric space, the ground cost often defaults to its dis…

Cited by 3SourcePDFScholar
2021

SGD for Structured Nonconvex Functions: Learning Rates, Minibatching and Interpolation

AISTATS 2021poster

Stochastic Gradient Descent (SGD) is being used routinely for optimizing non-convex functions. Yet, the standard convergence theory for SGD in the smooth non-convex setting gives a slow sublinear convergence to a stationary point. In this work, we provide several convergence theorems for SGD showing…

Cited by 102SourcePDFScholar
2019

Towards closing the gap between the theory and practice of SVRG

NeurIPS 2019poster

Amongst the very first variance reduced stochastic methods for solving the empirical risk minimization problem was the SVRG method. SVRG is an inner-outer loop based method, where in the outer loop a reference full gradient is evaluated, after which $m \in \N$ steps of an inner loop are executed whe…