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  • title: Diffusion Based Representation Learning
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            Diffusion Based Representation Learning
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            Diffusion Based Representation Learning

            Jul 24, 2023

            Speakers

            SM

            Sarthak Mittal

            Sprecher:in · 1 Follower:in

            KA

            Korbinian Abstreiter

            Sprecher:in · 0 Follower:innen

            SB

            Stefan Bauer

            Sprecher:in · 0 Follower:innen

            About

            Diffusion-based methods, represented as stochastic differential equations on a continuous-time domain, have recently proven successful as non-adversarial generative models. Training such models relies on denoising score matching, which can be seen as multi-scale denoising autoencoders. Here, we augment the denoising score matching framework to enable representation learning without any supervised signal. GANs and VAEs learn representations by directly transforming latent codes to data samples. I…

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            I2

            ICML 2023

            Konto · 657 Follower:innen

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