Adversarial Training Improves Joint Energy-Based Generative Modelling
Korst, Rostislav, Asadulaev, Arip
–arXiv.org Artificial Intelligence
We propose the novel framework for generative modelling using hybrid energy-based models. In our method we combine the interpretable input gradients of the robust classifier and Langevin Dynamics for sampling. Using the adversarial training we improve not only the training stability, but robustness and generative modelling of the joint energy-based models.
arXiv.org Artificial Intelligence
Jul-18-2022
- Country:
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- Europe > Russia
- Asia
- Russia (0.06)
- Middle East > UAE
- Abu Dhabi Emirate > Abu Dhabi (0.05)
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- Research Report (0.52)
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