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Rocio Diaz Martin

5 accepted papers

2025

Expected Sliced Transport Plans

ICLR 2025poster

The optimal transport (OT) problem has gained significant traction in modern machine learning for its ability to: (1) provide versatile metrics, such as Wasserstein distances and their variants, and (2) determine optimal couplings between probability measures. To reduce the computational complexity…

Cited by 3SourcePDFScholar
2025

Linear Partial Gromov-Wasserstein Embedding

ICLR 2025poster

The Gromov–Wasserstein (GW) problem, a variant of the classical optimal transport (OT) problem, has attracted growing interest in the machine learning and data science communities due to its ability to quantify similarity between measures in different metric spaces. However, like the classical OT pr…

2025

Linear Spherical Sliced Optimal Transport: A Fast Metric for Comparing Spherical Data

ICLR 2025spotlight

Efficient comparison of spherical probability distributions becomes important in fields such as computer vision, geosciences, and medicine. Sliced optimal transport distances, such as spherical and stereographic spherical sliced Wasserstein distances, have recently been developed to address this nee…

Cited by 0SourcePDFScholar
2025

Partial Gromov-Wasserstein Metric

ICLR 2025poster

The Gromov-Wasserstein (GW) distance has gained increasing interest in the machine learning community in recent years, as it allows for the comparison of measures in different metric spaces. To overcome the limitations imposed by the equal mass requirements of the classical GW problem, researchers h…

2023

Linear optimal partial transport embedding

ICML 2023poster

Optimal transport (OT) has gained popularity due to its various applications in fields such as machine learning, statistics, and signal processing. However, the balanced mass requirement limits its performance in practical problems. To address these limitations, variants of the OT problem, including…