ICCV 2023 - Diffusion Models as Masked Autoencoders
AI Breakdown

ICCV 2023 - Diffusion Models as Masked Autoencoders

2023-10-06
In this episode we discuss Diffusion Models as Masked Autoencoders by Chen Wei, Karttikeya Mangalam, Po-Yao Huang, Yanghao Li, Haoqi Fan, Hu Xu, Huiyu Wang, Cihang Xie, Alan Yuille, Christoph Feichtenhofer. The authors present a method called Diffusion Models as Masked Autoencoders (DiffMAE) that combines generative pre-training with diffusion models for visual data. They show that DiffMAE can be a strong initialization for recognition tasks, perform high-quality image inpainting, and...
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