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ENTROPY-REGULARIZED OPTIMAL TRANSPORT GENERATIVE MODELS

Citation Author(s):
Minh Thành Vu, Saikat Chatterjee, Lars K. Rasmussen
Submitted by:
Dong Liu
Last updated:
8 May 2019 - 4:10am
Document Type:
Poster
Document Year:
2019
Event:
Presenters:
Dong Liu
Paper Code:
3407
 

We investigate the use of entropy-regularized optimal transport (EOT) cost in developing generative models to learn implicit distributions. Two generative models are proposed. One uses EOT cost directly in an one-shot optimization problem and the other uses EOT cost iteratively in an adversarial game. The proposed generative models show improved performance over contemporary models on scores of sample based test.

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