Optimal Transport in machine learning with application to Domain Adaptation

By Alain Rakotomamonjy

Appears in collection : GDR ISIS - Transport Optimal et Apprentissage Statistique

In this talk, I will present the role that optimal transport can play within the context of machine learning, as optimal transport (OT) theory provides geometric tools to compare probability measures. After a brief introduction on the basics of OT, I will describe how they can be applied in domain adaptation and representation learning context.

Information about the video

  • Date of publication 15/04/2024
  • Institution IHP
  • Language French
  • Format MP4

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