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Quang Huy Tran

3 accepted papers

2024

Breaking isometric ties and introducing priors in Gromov-Wasserstein distances

AISTATS 2024poster

Gromov-Wasserstein distance has many applications in machine learning due to its ability to compare measures across metric spaces and its invariance to isometric transformations. However, in certain applications, this invariant property can be too flexible, thus undesirable. Moreover, the Gromov-Was…

2023

Unbalanced CO-optimal Transport

AAAI 2023technical

Optimal transport (OT) compares probability distributions by computing a meaningful alignment between their samples. CO-optimal transport (COOT) takes this comparison further by inferring an alignment between features as well. While this approach leads to better alignments and generalizes both OT an…

Cited by 22SourcePDFScholar
2022

Aligning individual brains with fused unbalanced Gromov Wasserstein

NeurIPS 2022accept

Individual brains vary in both anatomy and functional organization, even within a given species. Inter-individual variability is a major impediment when trying to draw generalizable conclusions from neuroimaging data collected on groups of subjects. Current co-registration procedures rely on limited…