Potential Flow Generator with $L_2$ Optimal Transport Regularity for Generative Models

August 29, 2019 ยท Declared Dead ยท ๐Ÿ› IEEE Transactions on Neural Networks and Learning Systems

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Authors Liu Yang, George Em Karniadakis arXiv ID 1908.11462 Category cs.LG: Machine Learning Cross-listed cs.CV, stat.ML Citations 47 Venue IEEE Transactions on Neural Networks and Learning Systems Last Checked 6 months ago
Abstract
We propose a potential flow generator with $L_2$ optimal transport regularity, which can be easily integrated into a wide range of generative models including different versions of GANs and flow-based models. We show the correctness and robustness of the potential flow generator in several 2D problems, and illustrate the concept of "proximity" due to the $L_2$ optimal transport regularity. Subsequently, we demonstrate the effectiveness of the potential flow generator in image translation tasks with unpaired training data from the MNIST dataset and the CelebA dataset.
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