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Elsa Cazelles

4 accepted papers

2026

On the Wasserstein Geodesic Principal Component Analysis of probability measures

ICLR 2026oral

This paper focuses on Geodesic Principal Component Analysis (GPCA) on a collection of probability distributions using the Otto-Wasserstein geometry. The goal is to identify geodesic curves in the space of probability measures that best capture the modes of variation of the underlying dataset. We fir…

Cited by 5SourceScholar
2021

A novel notion of barycenter for probability distributions based on optimal weak mass transport

NeurIPS 2021poster

We introduce weak barycenters of a family of probability distributions, based on the recently developed notion of optimal weak transport of mass by Gozlan et al. (2017) and Backhoff-Veraguas et al. (2020). We provide a theoretical analysis of this object and discuss its interpretation in the light o…

Cited by 17SourcePDFScholar