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Computing high-dimensional optimal transport by flow neural networks

Publication ,  Conference
Xu, C; Cheng, X; Xie, Y
Published in: Proceedings of Machine Learning Research
January 1, 2025

Computing optimal transport (OT) for general high-dimensional data has been a longstanding challenge. Despite much progress, most of the efforts including neural network methods have been focused on the static formulation of the OT problem. The current work proposes to compute the dynamic OT between two arbitrary distributions P and Q by optimizing a flow model, where both distributions are only accessible via finite samples. Our method learns the dynamic OT by finding an invertible flow that minimizes the transport cost. The trained optimal transport flow subsequently allows for performing many downstream tasks, including infinitesimal density ratio estimation (DRE) and domain adaptation by interpolating distributions in the latent space. The effectiveness of the proposed model on high-dimensional data is demonstrated by strong empirical performance on OT baselines, image-to-image translation, and high-dimensional DRE.

Duke Scholars

Published In

Proceedings of Machine Learning Research

EISSN

2640-3498

Publication Date

January 1, 2025

Volume

258

Start / End Page

2872 / 2880
 

Citation

APA
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MLA
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Xu, C., Cheng, X., & Xie, Y. (2025). Computing high-dimensional optimal transport by flow neural networks. In Proceedings of Machine Learning Research (Vol. 258, pp. 2872–2880).
Xu, C., X. Cheng, and Y. Xie. “Computing high-dimensional optimal transport by flow neural networks.” In Proceedings of Machine Learning Research, 258:2872–80, 2025.
Xu C, Cheng X, Xie Y. Computing high-dimensional optimal transport by flow neural networks. In: Proceedings of Machine Learning Research. 2025. p. 2872–80.
Xu, C., et al. “Computing high-dimensional optimal transport by flow neural networks.” Proceedings of Machine Learning Research, vol. 258, 2025, pp. 2872–80.
Xu C, Cheng X, Xie Y. Computing high-dimensional optimal transport by flow neural networks. Proceedings of Machine Learning Research. 2025. p. 2872–2880.

Published In

Proceedings of Machine Learning Research

EISSN

2640-3498

Publication Date

January 1, 2025

Volume

258

Start / End Page

2872 / 2880