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Fine-tuning of diffusion models via stochastic control: entropy regularization and beyond

10 March 2024
Wenpin Tang
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Abstract

This paper aims to develop and provide a rigorous treatment to the problem of entropy regularized fine-tuning in the context of continuous-time diffusion models, which was recently proposed by Uehara et al. (arXiv:2402.15194, 2024). The idea is to use stochastic control for sample generation, where the entropy regularizer is introduced to mitigate reward collapse. We also show how the analysis can be extended to fine-tuning involving a general fff-divergence regularizer.

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