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Jun, 2023
利用前向模型的扩散:无需直接监督解决随机逆问题
Diffusion with Forward Models: Solving Stochastic Inverse Problems Without Direct Supervision
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Ayush Tewari, Tianwei Yin, George Cazenavette, Semon Rezchikov, Joshua B. Tenenbaum...
TL;DR
本文提出了一种基于去噪扩散概率模型的条件生成模型,通过把一个已知的、可求导的正向模型集成到去噪过程中,实现了间接观测信号的采样, 并在三项具有挑战性的计算机视觉任务中进行了验证。
Abstract
denoising diffusion models
are a powerful type of
generative models
used to capture complex distributions of real-world signals. However, their applicability is limited to scenarios where training samples are rea
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